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Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\nimport type { ChartEncoding, ChartTemplateDef } from './types';\n\n/**\n * Compose a template's encoding-action overrides onto the base encodings.\n *\n * Category-B quick options (sort, color scheme, aggregate, orientation, …) are\n * stored by the host as *configuration overrides* keyed by the action's `key`\n * inside `chartProperties` — exactly like a chart property. They are NOT written\n * into the encoding map. This function is where the compiler composes them:\n * for each `encodingAction` whose override is present, it applies the action's\n * `set(encodings, value)` to produce the transformed encodings that feed the\n * rest of assembly.\n *\n * Backends call this once, at the very top of `assemble`, so every downstream\n * phase (semantic resolution → overflow → layout → instantiate) — and the\n * `InstantiateContext.encodings` handed to templates — sees the transformed\n * encodings. The base `encodings` argument is never mutated.\n *\n * An absent override (`undefined`) means \"no override\" and is skipped, so the\n * base encoding value (whatever the encoding shelf set, if anything) stands.\n * Because the override key matches the action key, charts saved before this\n * mechanism — which stored e.g. `chartProperties.colorScheme` directly — are\n * picked up automatically with no separate legacy fallback.\n */\nexport function applyEncodingOverrides(\n    template: ChartTemplateDef,\n    encodings: Record<string, ChartEncoding>,\n    chartProperties?: Record<string, any>,\n): Record<string, ChartEncoding> {\n    const actions = template.encodingActions;\n    if (!actions || actions.length === 0 || !chartProperties) return encodings;\n\n    let result = encodings;\n    for (const action of actions) {\n        const override = chartProperties[action.key];\n        if (override !== undefined) {\n            result = action.set(result, override);\n        }\n    }\n    return result;\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Optional data aggregation transform.\n *\n * Flint's default contract is \"callers own the data\" — the host passes in rows\n * that are already shaped for the chart. As a convenience, an encoding may set\n * `aggregate` to ask Flint to collapse the rows itself, mirroring the way\n * Vega-Lite derives an aggregated field:\n *\n *   - Rows are grouped by every channel that has a `field` and no `aggregate`\n *     (the dimensions).\n *   - For each group, each aggregated channel produces a derived column named\n *     `${field}_${op}` (`count` produces `_count`), which the backend assemblers\n *     already reference once `aggregate` is set.\n *\n * The derived column name IS the contract: if a caller has already\n * pre-aggregated, they simply reference that column by name (e.g. `revenue_sum`)\n * and omit `aggregate`, and this transform is a no-op. `average` and `mean` are\n * synonyms (both arithmetic mean) and keep distinct suffixes by design.\n *\n * This is a deliberate, opt-in exception to the no-transform principle — most\n * callers should still aggregate upstream.\n */\n\nimport { ChartEncoding } from './types';\n\ninterface AggSpec {\n    field?: string;\n    op: string;\n    /** Derived column name the assemblers expect (`${field}_${op}` or `_count`). */\n    target: string;\n}\n\n/**\n * Apply requested `aggregate` operations to the data, returning grouped rows.\n *\n * Returns the input unchanged when no encoding requests aggregation, or when the\n * derived columns are already present (caller pre-aggregated).\n */\nexport function applyAggregation(\n    encodings: Record<string, ChartEncoding>,\n    data: any[],\n): any[] {\n    if (!data || data.length === 0) return data;\n\n    // Collect aggregate requests from the input encodings.\n    const specs: AggSpec[] = [];\n    for (const enc of Object.values(encodings)) {\n        if (!enc || !enc.aggregate) continue;\n        const op = enc.aggregate;\n        if (op !== 'count' && !enc.field) continue; // nothing to reduce\n        const target = op === 'count' ? '_count' : `${enc.field}_${op}`;\n        specs.push({ field: enc.field, op, target });\n    }\n    if (specs.length === 0) return data;\n\n    // If every derived column already exists, the caller pre-aggregated — trust\n    // the supplied data and do nothing.\n    const firstRow = data[0];\n    const allPresent = specs.every(s =>\n        Object.prototype.hasOwnProperty.call(firstRow, s.target),\n    );\n    if (allPresent) return data;\n\n    // Group-by dimensions: every channel with a field and no aggregate.\n    const groupFields: string[] = [];\n    const seen = new Set<string>();\n    for (const enc of Object.values(encodings)) {\n        if (!enc || enc.aggregate || !enc.field) continue;\n        if (seen.has(enc.field)) continue;\n        seen.add(enc.field);\n        groupFields.push(enc.field);\n    }\n\n    // Bucket rows by the tuple of group-field values (insertion order preserved).\n    const groups = new Map<string, any[]>();\n    for (const row of data) {\n        const key = JSON.stringify(groupFields.map(f => row[f] ?? null));\n        let bucket = groups.get(key);\n        if (!bucket) {\n            bucket = [];\n            groups.set(key, bucket);\n        }\n        bucket.push(row);\n    }\n\n    const toNum = (v: any): number => (typeof v === 'number' ? v : Number(v));\n    const reduceOp = (rows: any[], spec: AggSpec): number => {\n        if (spec.op === 'count') return rows.length;\n        const nums = rows\n            .map(r => toNum(r[spec.field as string]))\n            .filter(v => Number.isFinite(v));\n        if (nums.length === 0) return 0;\n        const sum = nums.reduce((a, b) => a + b, 0);\n        // 'average' and 'mean' are synonyms (arithmetic mean); 'sum' totals.\n        return spec.op === 'sum' ? sum : sum / nums.length;\n    };\n\n    const out: any[] = [];\n    for (const rows of groups.values()) {\n        const head = rows[0];\n        const aggregated: Record<string, any> = {};\n        for (const f of groupFields) aggregated[f] = head[f];\n        for (const spec of specs) {\n            const val = reduceOp(rows, spec);\n            aggregated[spec.target] = val;\n            // Keep the source column populated so semantic/format inference for\n            // the measure channel still sees representative numeric values.\n            if (spec.op !== 'count' && spec.field) aggregated[spec.field] = val;\n        }\n        out.push(aggregated);\n    }\n    return out;\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Central chart-type **transition registry** — the θ graph.\n *\n * This is the single source of truth for which sibling chart types a given chart\n * can re-render as (Control B / `θ` in the two-control transform model). It\n * replaces the per-template, per-backend inline `transitions` arrays: a chart\n * template no longer declares what it can turn into — the compiler looks the\n * edges up here by chart-type display name.\n *\n * Design notes (design-docs/chart-transform-two-axes.md §4, and the \"registry\"\n * discussion):\n *   - Edges are keyed by the *authored* chart type's display name.\n *   - Each edge is a CANDIDATE. It is still gated at runtime against the live\n *     encoding + data (route feasibility + the declarative gates on\n *     `PivotTransition`: requireOrderedAxis / requireNonNegative /\n *     maxCategoryCardinality / requireNoSeries / requireDiscreteSource /\n *     maxSourceCardinality) AND against backend availability (an edge is hidden\n *     when the target template does not exist in the active backend's registry).\n *   - So \"not all mappings make sense\" is handled twice: only sensible edges are\n *     declared here (the §4 catalog), and even a declared edge is withheld when\n *     the data / backend does not support it.\n *   - Edges should be *reversible*: if A → B is declared, B → A generally should\n *     be too (verified by tests), so a transform round-trips home.\n *\n * Grouped by data-signature family (design doc §4).\n */\n\nimport { PivotTransition } from './types';\n\nexport const CHART_TRANSITIONS: Record<string, PivotTransition[]> = {\n    // ── Categorical comparison — D × M (§4.1) ──────────────────────────────\n    'Bar Chart': [\n        // Ordered-axis bridge into the trend family (§4.9). Only when the domain\n        // axis is temporal/ordinal — an unordered nominal bar never sprouts a line.\n        // orientDomainAxis:'x' re-orients a horizontal bar so time stays horizontal.\n        { to: 'Line Chart', label: 'Line', requireOrderedAxis: true, orientDomainAxis: 'x' },\n        { to: 'Area Chart', label: 'Area', requireOrderedAxis: true, requireNonNegative: true, orientDomainAxis: 'x' },\n        // Same D×M signature, lighter ink.\n        { to: 'Lollipop Chart', label: 'Lollipop' },\n    ],\n    'Lollipop Chart': [\n        { to: 'Bar Chart', label: 'Bar' },\n    ],\n    'Grouped Bar Chart': [\n        {\n            to: 'Stacked Bar Chart',\n            label: 'Stacked',\n            route: { from: 'group', to: 'color', mode: 'move' },\n            requireDiscreteSource: true,\n        },\n        // A 2-sided grouped bar reads as a population pyramid (mirrored).\n        {\n            to: 'Pyramid Chart',\n            label: 'Pyramid',\n            route: { from: 'group', to: 'color', mode: 'move' },\n            requireDiscreteSource: true,\n            maxSourceCardinality: 2,\n        },\n    ],\n    'Stacked Bar Chart': [\n        {\n            to: 'Grouped Bar Chart',\n            label: 'Grouped',\n            route: { from: 'color', to: 'group', mode: 'move' },\n            requireDiscreteSource: true,\n            maxSourceCardinality: 12,\n        },\n    ],\n    // Population pyramid = a 2-sided category × measure; its complement is the\n    // side-by-side grouped bar (the 2 sides dodged instead of mirrored).\n    'Pyramid Chart': [\n        {\n            to: 'Grouped Bar Chart',\n            label: 'Grouped',\n            route: { from: 'color', to: 'group', mode: 'move' },\n            requireDiscreteSource: true,\n        },\n    ],\n\n    // ── Trend over an ordered domain — T × M (§4.2) ────────────────────────\n    'Line Chart': [\n        { to: 'Area Chart', label: 'Area', requireNonNegative: true },\n        // Back to discrete-period comparison; only readable with few ticks.\n        { to: 'Bar Chart', label: 'Bar', maxCategoryCardinality: 30 },\n        // Small-multiple trend strips (one per series) — needs a series. Route\n        // the series onto `color` (from wherever it sits — color OR a column/row\n        // facet) so the Sparkline template picks it up as its row series.\n        { to: 'Sparkline', label: 'Sparklines', requireSeries: true, route: { from: 'series', to: 'color', mode: 'move' } },\n    ],\n    'Area Chart': [\n        { to: 'Line Chart', label: 'Line' },\n        { to: 'Bar Chart', label: 'Bar', maxCategoryCardinality: 30 },\n        { to: 'Streamgraph', label: 'Stream', requireSeries: true, requireNonNegative: true, route: { from: 'series', to: 'color', mode: 'move' } },\n    ],\n    // Small-multiple trend table → a single overlaid multi-series line.\n    'Sparkline': [\n        { to: 'Line Chart', label: 'Line' },\n    ],\n    // Flowing composition → back to baseline-anchored trend / area. Both reads\n    // are safe; note Streamgraph → Line is intentionally *one-directional* (there\n    // is no Line → Streamgraph — see the note above).\n    'Streamgraph': [\n        { to: 'Area Chart', label: 'Area' },\n        { to: 'Line Chart', label: 'Line' },\n    ],\n\n    // ── Two-measure relationship — M₁ × M₂ (§4.3) ──────────────────────────\n    'Scatter Plot': [\n        {\n            to: 'Strip Plot',\n            label: 'Jitter',\n            route: { from: 'series', to: 'x', mode: 'swap', spill: 'color' },\n        },\n        // Add a fitted trend layer over the same cloud — only a clean\n        // two-measure scatter (both axes quantitative, no size bubble).\n        { to: 'Regression', label: 'Trend', requireBiaxialMeasure: true, requireNoSize: true },\n    ],\n    'Regression': [\n        { to: 'Scatter Plot', label: 'Scatter' },\n    ],\n    'Strip Plot': [\n        {\n            to: 'Scatter Plot',\n            label: 'Scatter',\n            route: { from: 'color', to: 'x', mode: 'swap', spill: 'color' },\n        },\n        // A strip plot is a per-category distribution: box (summary) + violin\n        // (density) are the same {x:category, y:measure} layout, no route.\n        { to: 'Boxplot', label: 'Box' },\n        { to: 'Violin Plot', label: 'Violin' },\n    ],\n\n    // ── Univariate distribution — M (§4.4) ─────────────────────────────────\n    'Histogram': [\n        { to: 'Density Plot', label: 'Density' },\n        { to: 'ECDF Plot', label: 'ECDF' },\n    ],\n    'Density Plot': [\n        { to: 'Histogram', label: 'Histogram' },\n        { to: 'ECDF Plot', label: 'ECDF' },\n    ],\n    'ECDF Plot': [\n        { to: 'Histogram', label: 'Histogram' },\n        { to: 'Density Plot', label: 'Density' },\n    ],\n    'Boxplot': [\n        { to: 'Violin Plot', label: 'Violin' },\n        { to: 'Strip Plot', label: 'Strip' },\n    ],\n    'Violin Plot': [\n        { to: 'Boxplot', label: 'Box' },\n        { to: 'Strip Plot', label: 'Strip' },\n    ],\n};\n\n/**\n * Look up the candidate θ transitions for a chart type (by display name).\n * Returns an empty array when the chart declares none.\n */\nexport function getChartTransitions(chart: string | undefined): PivotTransition[] {\n    if (!chart) return [];\n    return CHART_TRANSITIONS[chart] ?? [];\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Chart pivot — a derived Category-B operator that re-routes encoding *fields*\n * across position/legend/facet *channels* to surface alternative views of the\n * same semantic spec (orientation swap, series↔axis role swap, facet split).\n *\n * The host stores the chosen pivot *state id* as a single override keyed by\n * `PivotDef.key` (default `'pivot'`) inside `chart_spec.chartProperties`, exactly\n * like any other encoding action. The compiler — not the host — owns the channel\n * permutation: at assemble time it enumerates the valid states for the current\n * encodings + data, picks the stored id (falling back to the identity state when\n * the id is stale or absent), and composes the resulting encoding map BEFORE the\n * rest of the pipeline runs (so sort/overflow/layout all resolve post-pivot).\n *\n * This module is intentionally backend-agnostic: it operates purely on the\n * abstract `ChartEncoding` map + the raw data table, so the same enumeration\n * drives Vega-Lite, ECharts and Chart.js.\n *\n * MVP linearization. The full design models the pivot states as the orbit of a\n * channel-permutation group, linearized by a Gray code so adjacent steps differ\n * by one generator. This first increment exposes a curated *star* of single-\n * generator views around the authored identity (identity → orientation → role →\n * facet), which is a valid finite cycle (Z/n over the ordered list) that always\n * returns to the authored view. Richer products land later.\n *\n * Role-swap has two type-preserving flavors: discrete↔color-hue (a category\n * moves between a banded axis and the legend — bars/lines) and, on position\n * marks only, measure↔(color-gradient | size) (a quantitative field moves\n * between a precise position axis and a demoted auxiliary channel — scatter).\n *\n * Two distinct group actions drive the channel moves, matching the design doc:\n *   - τ (transpose): flip two axis *slots* wholesale (`x↔y` orientation). Profile-\n *     agnostic, always occupancy-preserving — declared via `PivotDef.transpose`.\n *   - σ (permute): reassign a *field* to a same-profile channel (axis ↔ color/size)\n *     — declared via `PivotDef.permute`, admitted by the Young-block profile rule.\n * Keeping them separate is what lets the must-present guard drop out entirely.\n */\n\nimport { ChartEncoding, ChartTemplateDef, PivotDef, PivotTransition } from './types';\nimport { getChartTransitions } from './chart-transitions';\n\n/** Resolved pivot surface attached to the assembled spec as `_pivot`. */\nexport interface PivotSurface {\n    key: string;\n    label: string;\n    /** Number of states in the cycle (>= 2 when a control should show). */\n    length: number;\n    /** Index of the active state within `ids`. */\n    index: number;\n    /** Ordered state ids; `ids[0]` is always the identity (authored) view. */\n    ids: string[];\n    /** Parallel human labels for each state. */\n    labels: string[];\n}\n\n/** A redundant identity encoding added by a local Arrange operator. */\nexport interface EncodingAugmentation {\n    kind: 'facet-identity';\n    sourceChannel: 'color' | 'group';\n    facetChannel: 'column' | 'row';\n    colorEncoding: ChartEncoding;\n}\n\n/** Internal: a fully enumerated pivot for a given encoding map + data. */\nexport interface PivotComputation {\n    key: string;\n    label: string;\n    ids: string[];\n    labels: string[];\n    statesById: Record<string, Record<string, ChartEncoding>>;\n    augmentationById: Record<string, EncodingAugmentation | undefined>;\n    /**\n     * Chart-type override per state id, set only for chart-type *transition*\n     * states (§4.6). Absent/undefined entries render with the authored template.\n     */\n    chartTypeById: Record<string, string | undefined>;\n}\n\nconst DISCRETE_TYPES = new Set(['nominal', 'ordinal']);\n\nfunction isDiscrete(enc: ChartEncoding | undefined): boolean {\n    return !!enc?.field && !!enc.type && DISCRETE_TYPES.has(enc.type);\n}\n\nfunction isMeasure(enc: ChartEncoding | undefined): boolean {\n    return !!enc?.field && (enc.type === 'quantitative' || !!enc.aggregate);\n}\n\nfunction isTemporal(enc: ChartEncoding | undefined): boolean {\n    return enc?.type === 'temporal';\n}\n\n/**\n * Whether a temporal position axis is rendered as discrete *bands* (so it acts\n * as a category for pivot purposes) rather than a continuous time scale. Length\n * marks (bars/histograms) and color marks (heatmaps) band their categorical\n * axis; only position marks (line/area/scatter) lay time out continuously, where\n * \"time stays horizontal\" is the convention we preserve.\n */\nfunction temporalActsDiscrete(template: ChartTemplateDef): boolean {\n    return template.markCognitiveChannel !== 'position';\n}\n\nfunction clone(encodings: Record<string, ChartEncoding>): Record<string, ChartEncoding> {\n    const out: Record<string, ChartEncoding> = {};\n    for (const [ch, enc] of Object.entries(encodings)) {\n        out[ch] = { ...enc };\n    }\n    return out;\n}\n\nfunction distinctCount(data: any[], field: string | undefined): number {\n    if (!field || !Array.isArray(data)) return 0;\n    const seen = new Set<unknown>();\n    for (const row of data) {\n        if (row && row[field] != null) seen.add(row[field]);\n    }\n    return seen.size;\n}\n\n/** Build the standard cartesian pivot declaration from its permissible domains. */\nexport function makeCartesianPivot(opts: Partial<PivotDef> = {}): PivotDef {\n    return {\n        key: opts.key ?? 'pivot',\n        label: opts.label ?? 'View',\n        transpose: opts.transpose ?? [],\n        permute: opts.permute ?? [],\n        shift: opts.shift ?? [],\n        facetBudget: opts.facetBudget ?? 12,\n        transitions: opts.transitions,\n    };\n}\n\n/**\n * Canonical channel order so a swap pair has a stable id/label regardless of the\n * order it was declared in (e.g. `['color','x']` is normalized to `x ↔ color`).\n */\nconst CHANNEL_ORDER = ['x', 'y', 'color', 'size', 'group', 'column', 'row'];\nfunction orderPair(a: string, b: string): [string, string] {\n    const ia = CHANNEL_ORDER.indexOf(a);\n    const ib = CHANNEL_ORDER.indexOf(b);\n    return (ia <= ib ? [a, b] : [b, a]) as [string, string];\n}\n\n/**\n * Human-friendly channel names for the arrange labels shown in the UI (the\n * dropdown/switcher). Keeps the stored *ids* untouched — only the display text.\n */\nconst CHANNEL_DISPLAY: Record<string, string> = {\n    x: 'X',\n    y: 'Y',\n    color: 'Color',\n    size: 'Size',\n    group: 'Groups',\n    column: 'Columns',\n    row: 'Rows',\n    detail: 'Detail',\n    opacity: 'Opacity',\n};\nfunction chDisplay(ch: string): string {\n    return CHANNEL_DISPLAY[ch] ?? ch.charAt(0).toUpperCase() + ch.slice(1);\n}\n\n/** The set of channels whose bound field differs between two encodings. */\nfunction changedChannels(\n    a: Record<string, ChartEncoding>,\n    b: Record<string, ChartEncoding>,\n): Set<string> {\n    const out = new Set<string>();\n    for (const ch of new Set([...Object.keys(a), ...Object.keys(b)])) {\n        if (a[ch]?.field !== b[ch]?.field) out.add(ch);\n    }\n    return out;\n}\n\n/**\n * Transpose generator (τ): exchange two axis *slots* wholesale (`x↔y`). This is\n * the orientation/flip — it carries each channel's full encoding to the other,\n * so it is profile-agnostic (category↔measure on a bar, measure↔measure on a\n * scatter, dimension↔dimension on a heatmap). It is suppressed only when a\n * continuous-temporal position axis must stay horizontal (line/area keep time on\n * `x`). Because both slots stay occupied it can never drop a required channel.\n * Returns `null` when either slot is unbound or the temporal-horizontal rule\n * blocks the flip.\n */\nfunction transposeState(\n    base: Record<string, ChartEncoding>,\n    template: ChartTemplateDef,\n    pair: [string, string],\n): { id: string; label: string; enc: Record<string, ChartEncoding> } | null {\n    const [a, b] = orderPair(pair[0], pair[1]);\n    const ea = base[a];\n    const eb = base[b];\n    if (!ea?.field || !eb?.field) return null; // both slots must be bound\n    // Keep a continuous-temporal axis horizontal (no vertical time on position marks).\n    if (!temporalActsDiscrete(template) && (isTemporal(ea) || isTemporal(eb))) return null;\n    const next = clone(base);\n    next[a] = { ...eb };\n    next[b] = { ...ea };\n    return { id: `flip:${a}-${b}`, label: `${chDisplay(a)} ⇄ ${chDisplay(b)}`, enc: next };\n}\n\ntype ChannelProfile = 'measure' | 'category' | 'time';\n\n/**\n * The profile a bound field presents on a channel: `measure` (quantitative or\n * aggregated), `category` (discrete, or a temporal axis the chart bands), or\n * `time` (continuous temporal). Two channels may exchange fields under {@link\n * permuteSwapState} only when their profiles match — the Young-block rule.\n */\nfunction channelProfile(enc: ChartEncoding | undefined, template: ChartTemplateDef): ChannelProfile | null {\n    if (!enc?.field) return null;\n    if (isMeasure(enc)) return 'measure';\n    if (isDiscrete(enc) || (isTemporal(enc) && temporalActsDiscrete(template))) return 'category';\n    return 'time';\n}\n\n/**\n * Permute generator (σ): reassign a field between a position *axis* and an\n * *auxiliary* channel (`color`/`size`), admitting the swap only when both ends\n * share a {@link channelProfile} — the Young-block rule. This single predicate\n * subsumes the old measure↔measure and category↔color cases:\n *   - `measure` profile: position marks only (a bar's length-measure is privileged\n *     and never demotes to color/size); the peer quantities trade the precise axis.\n *   - `category` profile: the auxiliary must be `color` (only it carries a discrete\n *     series); the banded axis dimension and the legend series exchange places.\n * `x↔y` is handled by {@link transposeState}, not here, and pure auxiliary pairs\n * (`color↔size`) are never offered. No must-present guard is needed: both ends are\n * already bound, so the swap preserves occupancy by construction.\n * Returns `null` when no profile-preserving interpretation admits the pair.\n */\nfunction permuteSwapState(\n    base: Record<string, ChartEncoding>,\n    template: ChartTemplateDef,\n    pair: [string, string],\n): { id: string; label: string; enc: Record<string, ChartEncoding> } | null {\n    const [a, b] = orderPair(pair[0], pair[1]);\n    // Canonical ordering keeps a position axis as `a`; the auxiliary is `b`.\n    const posCh = a === 'x' || a === 'y' ? a : null;\n    const auxCh = b;\n    if (!posCh || (auxCh !== 'color' && auxCh !== 'size')) return null;\n    const posEnc = base[posCh];\n    const auxEnc = base[auxCh];\n    if (!posEnc?.field || !auxEnc?.field) return null; // both ends must be bound\n    if (posEnc.field === auxEnc.field) return null;\n\n    const profile = channelProfile(posEnc, template);\n    if (!profile || profile !== channelProfile(auxEnc, template)) return null; // different profile\n\n    const id = `swap:${a}-${b}`;\n    const label = `${chDisplay(a)} ⇄ ${chDisplay(b)}`;\n\n    if (profile === 'measure') {\n        // Demoting a measure to an aux channel only reads on position marks; on a\n        // length mark (bar) the value axis is privileged. Carry only the semantic\n        // core so downstream assembly re-derives scales/schemes per channel.\n        if (template.markCognitiveChannel !== 'position') return null;\n        const next = clone(base);\n        next[posCh] = measureCore(auxEnc);\n        next[auxCh] = measureCore(posEnc);\n        return { id, label, enc: next };\n    }\n\n    if (profile === 'category') {\n        // Only `color` carries a discrete series to exchange with a banded axis.\n        if (auxCh !== 'color') return null;\n        const next = clone(base);\n        next[posCh] = { ...auxEnc };\n        next.color = { ...posEnc };\n        return { id, label, enc: next };\n    }\n\n    return null; // continuous time does not demote to an auxiliary channel\n}\nfunction measureCore(enc: ChartEncoding): ChartEncoding {\n    const core: ChartEncoding = { field: enc.field, type: enc.type };\n    if (enc.aggregate) core.aggregate = enc.aggregate;\n    return core;\n}\n\n/**\n * Default grouping channels a discrete *series* field can occupy, used to locate\n * the current series when a transition references the `'series'` sentinel. The\n * shiftable domain offered to the user is the template's declared `shift` list\n * (filtered against these semantics); this constant is the resolution fallback.\n */\nconst GROUPING_CHANNELS = ['color', 'group', 'column', 'row'];\n\n/** Per-target budgets: facets allow more panels than a color/dodge legend. */\nfunction routeBudget(target: string, facetBudget: number): number {\n    if (target === 'column' || target === 'row') return facetBudget;\n    if (target === 'group') return 12; // dodged sub-bars get cramped past ~12\n    return 20; // color legend\n}\n\n/** Operator label for routing the series from its current channel onto another. */\nfunction routeLabel(from: string, to: string): string {\n    return `${chDisplay(from)} ⇄ ${chDisplay(to)}`;\n}\n\n/** Locate a discrete series for chart-type transition routing. */\nfunction findTransitionSeries(\n    base: Record<string, ChartEncoding>,\n    candidates: string[],\n    channels: string[],\n): { channel: string; enc: ChartEncoding } | null {\n    for (const channel of candidates) {\n        if (channels.includes(channel) && isDiscrete(base[channel])) {\n            return { channel, enc: base[channel]! };\n        }\n    }\n    return null;\n}\n\n/**\n * Identity channels augment onto empty facets; facet channels shift normally.\n * Keeping the sources independent avoids destructive color-to-facet moves and\n * lets a chart with both color and column offer two distinct row alternatives.\n */\nfunction seriesRoutingStates(\n    base: Record<string, ChartEncoding>,\n    template: ChartTemplateDef,\n    data: any[],\n    shiftChannels: string[],\n    facetBudget: number,\n    preferredFacet?: 'column' | 'row',\n): { id: string; enc: Record<string, ChartEncoding>; label: string; augmentation?: EncodingAugmentation }[] {\n    const channels = template.channels ?? [];\n    const out: { id: string; enc: Record<string, ChartEncoding>; label: string; augmentation?: EncodingAugmentation }[] = [];\n\n    const identitySource: 'color' | 'group' | undefined = isDiscrete(base.color)\n        ? 'color'\n        : (!base.color?.field && isDiscrete(base.group) ? 'group' : undefined);\n    if (identitySource && shiftChannels.includes(identitySource) && channels.includes(identitySource)) {\n        const identityEncoding = base[identitySource]!;\n        const card = distinctCount(data, identityEncoding.field);\n        const facetTargets = preferredFacet ? [preferredFacet] : ['column', 'row'] as const;\n        for (const target of facetTargets) {\n            if (!shiftChannels.includes(target) || !channels.includes(target)) continue;\n            if (base[target]?.field || card > routeBudget(target, facetBudget)) continue;\n            const next = clone(base);\n            delete next[identitySource];\n            next[target] = { ...identityEncoding };\n            out.push({\n                id: `augment:${target}`,\n                enc: next,\n                label: `Color + ${chDisplay(target)}`,\n                augmentation: {\n                    kind: 'facet-identity',\n                    sourceChannel: identitySource,\n                    facetChannel: target,\n                    colorEncoding: { ...identityEncoding },\n                },\n            });\n        }\n    }\n\n    const facetSource = (['column', 'row'] as const).find(channel =>\n        shiftChannels.includes(channel) && channels.includes(channel) && isDiscrete(base[channel]),\n    );\n    if (facetSource) {\n        const facetEncoding = base[facetSource]!;\n        const card = distinctCount(data, facetEncoding.field);\n        for (const target of shiftChannels) {\n            if (target === facetSource || target === 'group') continue;\n            if ((target === 'column' || target === 'row') && preferredFacet && target !== preferredFacet) continue;\n            if (!channels.includes(target) || base[target]?.field) continue;\n            if (card > routeBudget(target, facetBudget)) continue;\n            const next = clone(base);\n            delete next[facetSource];\n            next[target] = { ...facetEncoding };\n            out.push({ id: `series:${target}`, enc: next, label: routeLabel(facetSource, target) });\n        }\n    }\n    return out;\n}\n\n/** Preferred small-multiple direction for the compact dynamic Arrange surface. */\nfunction preferredFacetTarget(base: Record<string, ChartEncoding>): 'column' | 'row' {\n    const domain = domainAxisEnc(base);\n    return domain === base.y ? 'row' : 'column';\n}\n\n/** Facet channel newly targeted by a composed transformation, if any. */\nfunction changedFacetTarget(\n    authored: Record<string, ChartEncoding>,\n    transformed: Record<string, ChartEncoding>,\n): 'column' | 'row' | undefined {\n    for (const channel of ['column', 'row'] as const) {\n        if (transformed[channel]?.field && transformed[channel]?.field !== authored[channel]?.field) {\n            return channel;\n        }\n    }\n    return undefined;\n}\n\n/**\n * The *domain* position axis encoding — the non-measure x/y (a category/time\n * axis). Prefers whichever position channel is not a measure.\n */\nfunction domainAxisEnc(base: Record<string, ChartEncoding>): ChartEncoding | undefined {\n    if (base.x?.field && !isMeasure(base.x)) return base.x;\n    if (base.y?.field && !isMeasure(base.y)) return base.y;\n    return undefined;\n}\n\n/** The *measure* position axis encoding — the quantitative/aggregated x/y. */\nfunction measureAxisEnc(base: Record<string, ChartEncoding>): ChartEncoding | undefined {\n    if (base.x?.field && isMeasure(base.x)) return base.x;\n    if (base.y?.field && isMeasure(base.y)) return base.y;\n    return undefined;\n}\n\n/**\n * Evaluate a transition's declarative *data-characteristic* gates against the\n * authored encoding + data (design-docs/chart-transform-two-axes.md §4.9.3).\n * These are the \"not all mappings make sense\" guards: a candidate edge is only\n * offered when the shared fields actually support the sibling's reading.\n */\nfunction transitionGatesPass(\n    base: Record<string, ChartEncoding>,\n    data: any[],\n    t: PivotTransition,\n): boolean {\n    if (t.requireOrderedAxis) {\n        const domain = domainAxisEnc(base);\n        // Ordered = temporal or ordinal; plain nominal never qualifies.\n        if (!domain || !(domain.type === 'temporal' || domain.type === 'ordinal')) return false;\n    }\n    if (t.requireNonNegative) {\n        const measure = measureAxisEnc(base);\n        if (measure?.field) {\n            for (const row of data) {\n                const v = row?.[measure.field];\n                if (typeof v === 'number' && v < 0) return false;\n            }\n        }\n    }\n    if (t.maxCategoryCardinality != null) {\n        const domain = domainAxisEnc(base);\n        if (domain?.field && distinctCount(data, domain.field) > t.maxCategoryCardinality) return false;\n    }\n    if (t.requireNoSeries) {\n        for (const ch of GROUPING_CHANNELS) {\n            if (isDiscrete(base[ch])) return false;\n        }\n    }\n    if (t.requireSeries) {\n        const seriesChannels = ['color', 'group', 'detail', 'column', 'row'];\n        if (!seriesChannels.some((ch) => isDiscrete(base[ch]))) return false;\n    }\n    if (t.requireBiaxialMeasure) {\n        if (!isMeasure(base.x) || !isMeasure(base.y)) return false;\n    }\n    if (t.requireNoSize) {\n        if (base.size?.field) return false;\n    }\n    return true;\n}\n\n/**\n * Build the encoding map for a chart-type *transition* (§4.6). A transition\n * re-views the same data as a sibling chart type, optionally re-routing one\n * field across channels first. Returns `null` when the transition's constraints\n * (source presence, discreteness, cardinality budget, target occupancy) are not\n * met. The `chartType` it returns tells the compiler to re-select the sibling\n * template for rendering while the authored chartType / encodings stay intact.\n */\nfunction transitionState(\n    base: Record<string, ChartEncoding>,\n    data: any[],\n    template: ChartTemplateDef,\n    t: PivotTransition,\n): { enc: Record<string, ChartEncoding>; chartType: string; label: string } | null {\n    if (!transitionGatesPass(base, data, t)) return null;\n    const enc = clone(base);\n    const route = t.route;\n    if (route) {\n        // Resolve the source channel. `'series'` finds the discrete grouping\n        // field wherever it sits (color/column/row); a literal name is used as-is.\n        const fromCh = route.from === 'series'\n            ? findTransitionSeries(base, GROUPING_CHANNELS, template.channels ?? [])?.channel\n            : route.from;\n        if (!fromCh) return null;\n        const srcEnc = base[fromCh];\n        if (!srcEnc?.field) return null; // nothing to re-route\n        if (t.requireDiscreteSource && !isDiscrete(srcEnc)) return null;\n        if (t.maxSourceCardinality != null &&\n            distinctCount(data, srcEnc.field) > t.maxSourceCardinality) return null;\n        const mode = route.mode ?? 'move';\n        const dstEnc = base[route.to];\n        if (mode === 'swap') {\n            // The source field takes the target channel; the field displaced from\n            // the target spills to `spill` (default: the vacated source channel).\n            const spillCh = route.spill ?? fromCh;\n            // Don't clobber an unrelated field already sitting on the spill slot.\n            if (spillCh !== fromCh && base[spillCh]?.field) return null;\n            enc[route.to] = { ...srcEnc };\n            delete enc[fromCh];\n            if (dstEnc?.field) enc[spillCh] = { ...dstEnc };\n            else delete enc[spillCh];\n        } else {\n            // move: bring the source field onto the target channel. If it is\n            // already there (from === to, e.g. `series` resolved to the target),\n            // it's a no-op; otherwise the target must be empty so we don't clobber.\n            if (fromCh !== route.to) {\n                if (dstEnc?.field) return null;\n                delete enc[fromCh];\n                enc[route.to] = { ...srcEnc };\n            }\n        }\n    }\n    // Re-orient the domain axis for the sibling if requested (bar → line/area):\n    // a horizontal bar carries the ordered/temporal domain on `y`, but a line\n    // pins it to the horizontal — swap x/y wholesale so we never render a\n    // vertical line chart.\n    if (t.orientDomainAxis) {\n        const target = t.orientDomainAxis;\n        const other = target === 'x' ? 'y' : 'x';\n        const domainOnOther = !!enc[other]?.field && !isMeasure(enc[other]);\n        const targetFreeForDomain = !enc[target]?.field || isMeasure(enc[target]);\n        if (domainOnOther && targetFreeForDomain) {\n            const a = enc[target];\n            const b = enc[other];\n            if (b) enc[target] = { ...b }; else delete enc[target];\n            if (a) enc[other] = { ...a }; else delete enc[other];\n        }\n    }\n    return { enc, chartType: t.to, label: t.label };\n}\n\n/**\n * A single applied generator (one step / one \"delta\"): the abstract operator\n * δ ∈ {σ, γ, θ} re-expressed as a concrete neighbor of a given encoding under a\n * given template. `id` is the step token used to build composite path ids,\n * `label` is its operator notation, and `chartType` is set only for θ steps.\n */\ninterface PivotStep {\n    id: string;\n    label: string;\n    enc: Record<string, ChartEncoding>;\n    chartType?: string;\n    augmentation?: EncodingAugmentation;\n}\n\n/**\n * Enumerate the *one-step* neighbors of an encoding under a template's pivot\n * def — the generators δ applicable to `enc` right now. This is the building\n * block of the runtime orbit walk: the same enumerator runs on every reachable\n * state, so composing transforms is just \"apply one more δ\". The generators are\n * pure functions of the passed encoding (not the authored base), which is what\n * lets γ∘σ, σ∘θ, … fall out without any special-casing.\n */\nfunction pivotSteps(\n    template: ChartTemplateDef,\n    enc: Record<string, ChartEncoding>,\n    data: any[],\n    opts?: { local?: boolean; transitions?: boolean; preferFacetTarget?: boolean },\n    resolveTemplate?: (chartType: string) => ChartTemplateDef | undefined,\n): PivotStep[] {\n    const def = template.pivot;\n    if (!def) return [];\n    const includeLocal = opts?.local !== false;\n    const includeTransitions = opts?.transitions !== false;\n    const steps: PivotStep[] = [];\n    // τ: each declared axis-slot pair contributes its wholesale flip (orientation).\n    if (includeLocal) for (const pair of def.transpose ?? []) {\n        if (pair.length !== 2) continue;\n        const s = transposeState(enc, template, [pair[0], pair[1]]);\n        if (s) steps.push({ id: s.id, label: s.label, enc: s.enc });\n    }\n    // σ: each permutable block contributes its within-block axis↔aux field swaps as\n    // candidate one-step moves; the orbit BFS composes them to close the block's\n    // symmetric group. Profile-mismatched pairs return null and are dropped.\n    if (includeLocal) for (const block of def.permute ?? []) {\n        for (let i = 0; i < block.length; i++) {\n            for (let j = i + 1; j < block.length; j++) {\n                const s = permuteSwapState(enc, template, [block[i], block[j]]);\n                if (s) steps.push({ id: s.id, label: s.label, enc: s.enc });\n            }\n        }\n    }\n    if (includeLocal && def.shift && def.shift.length) {\n        const preferredFacet = opts?.preferFacetTarget ? preferredFacetTarget(enc) : undefined;\n        for (const s of seriesRoutingStates(enc, template, data, def.shift, def.facetBudget ?? 12, preferredFacet)) {\n            steps.push({ id: s.id, label: s.label, enc: s.enc, augmentation: s.augmentation });\n        }\n    }\n    // θ: chart-type transitions are sourced from the CENTRAL registry (keyed by\n    // the template's chart name), not the template itself — a template no longer\n    // declares what it can turn into. A candidate edge is emitted only when its\n    // target template exists in the active backend (via `resolveTemplate`, when\n    // supplied); the per-edge data gates run inside transitionState.\n    if (includeTransitions) {\n        for (const t of getChartTransitions(template.chart)) {\n            if (resolveTemplate && !resolveTemplate(t.to)) continue; // backend can't render it\n            const st = transitionState(enc, data, template, t);\n            // Operator notation: θ = chart-type transition, subscripted by the target view.\n            if (st) steps.push({ id: `type:${t.to}`, label: `θ_→${t.label.toLowerCase()}`, enc: st.enc, chartType: st.chartType });\n        }\n    }\n    return steps;\n}\n\n/**\n * Canonical fingerprint of an encoding map (+ effective chart type) used to\n * dedup orbit states. Two paths that land on the same channel→field assignment\n * collapse to one state — this is the group *stabilizer* quotient (e.g. σ∘σ = id\n * folds back onto `default`; faceting then jittering reaches the same strip plot\n * as jittering directly). Only the semantic core (field/type/aggregate) and the\n * occupied channel set matter; cosmetic encoding props are ignored.\n */\nfunction encodingKey(enc: Record<string, ChartEncoding>, chartType: string | undefined): string {\n    const cells = Object.keys(enc)\n        .filter((ch) => enc[ch]?.field)\n        .sort()\n        .map((ch) => {\n            const e = enc[ch];\n            return `${ch}=${e.field}/${e.type ?? ''}/${e.aggregate ?? ''}`;\n        });\n    return `${chartType ?? ''}::${cells.join(',')}`;\n}\n\n/**\n * Reject orbit states that would be structurally invalid for their (effective)\n * template — primarily the cartesian invariant that a chart with both `x` and\n * `y` channels must keep *both* position axes bound (a scatter/line/bar with a\n * missing x or y is not a renderable view). This guards composed paths from\n * walking into degenerate encodings even if an individual generator is locally\n * type-preserving.\n */\nfunction isRenderableState(template: ChartTemplateDef, enc: Record<string, ChartEncoding>): boolean {\n    const channels = template.channels ?? [];\n    if (channels.includes('x') && channels.includes('y')) {\n        if (!enc.x?.field || !enc.y?.field) return false;\n    }\n    return true;\n}\n\n/** Hard cap on orbit size so a rich generator set can't produce an unwieldy control. */\nconst MAX_PIVOT_STATES = 12;\n\n/**\n * Enumerate the pivot states for an encoding map + data under a template's\n * `PivotDef` by walking the *orbit* of the generators at runtime: start from the\n * authored identity and repeatedly apply one more δ (breadth-first), deduping by\n * {@link encodingKey} (the stabilizer quotient) and rejecting non-renderable\n * states (see {@link isRenderableState}). State ids are operator *paths* (e.g.\n * `orient|series:row`, `type:Strip Plot`); labels compose the per-step operator\n * notation with `·`. Returns `null` when no template pivot is declared. The\n * identity (authored) view is always state 0; a control should only render when\n * `ids.length > 1`.\n *\n * `resolveTemplate` lets the walk cross θ (chart-type) edges: after a transition\n * switches `chartType`, subsequent generators come from the *target* template's\n * pivot def. Backends that omit it leave θ states as leaves (no composition past\n * a chart-type change).\n */\nexport function computePivot(\n    template: ChartTemplateDef,\n    base: Record<string, ChartEncoding>,\n    data: any[],\n    resolveTemplate?: (chartType: string) => ChartTemplateDef | undefined,\n    opts?: { includeTransitions?: boolean; key?: string; label?: string; preferFacetTarget?: boolean },\n): PivotComputation | null {\n    const def = template.pivot;\n    if (!def) return null;\n    const key = opts?.key ?? def.key ?? 'pivot';\n    const label = opts?.label ?? def.label ?? 'View';\n    const includeTransitions = opts?.includeTransitions !== false;\n\n    const ids: string[] = ['default'];\n    const labels: string[] = ['Default'];\n    const statesById: Record<string, Record<string, ChartEncoding>> = {\n        default: clone(base),\n    };\n    const augmentationById: Record<string, EncodingAugmentation | undefined> = {\n        default: undefined,\n    };\n    const chartTypeById: Record<string, string | undefined> = {\n        default: undefined,\n    };\n\n    interface OrbitNode {\n        id: string;\n        label: string;\n        enc: Record<string, ChartEncoding>;\n        chartType: string | undefined;\n        template: ChartTemplateDef;\n        augmentation: EncodingAugmentation | undefined;\n    }\n\n    const seen = new Set<string>([encodingKey(base, undefined)]);\n    const queue: OrbitNode[] = [{ id: 'default', label: 'Default', enc: clone(base), chartType: undefined, template, augmentation: undefined }];\n    // The authored chart type *is* home: a θ path that lands back on it (e.g.\n    // Stacked → Grouped → Stacked) is not a new view, so we normalize its\n    // effective chartType to `undefined`. This lets the stabilizer dedup fold\n    // such round-trips onto the identity instead of showing them as extra states.\n    const authoredChart = template.chart;\n\n    while (queue.length > 0 && ids.length < MAX_PIVOT_STATES) {\n        const cur = queue.shift()!;\n        for (const step of pivotSteps(cur.template, cur.enc, data, {\n            local: true,\n            transitions: includeTransitions,\n            preferFacetTarget: opts?.preferFacetTarget,\n        }, resolveTemplate)) {\n            // A θ step switches the effective chart type (and thus the template\n            // whose generators apply next); σ/γ steps stay on the current one.\n            let nextChartType = step.chartType ?? cur.chartType;\n            if (nextChartType === authoredChart) nextChartType = undefined; // back home\n            // A θ step switches the effective template (and thus the generators\n            // that apply next). When no resolver is supplied — or it can't resolve\n            // the target — the θ state becomes a *leaf*: we strip its pivot so no\n            // further (wrong-template) generators compose past the chart-type\n            // change. σ/γ/τ steps stay on the current template.\n            const resolved = step.chartType ? resolveTemplate?.(step.chartType) : undefined;\n            const nextTemplate: ChartTemplateDef = step.chartType\n                ? (resolved ?? { ...cur.template, pivot: undefined })\n                : cur.template;\n            if (!isRenderableState(nextTemplate, step.enc)) continue; // avoid invalid combos\n            if (opts?.preferFacetTarget) {\n                const facetTarget = changedFacetTarget(base, step.enc);\n                if (facetTarget && facetTarget !== preferredFacetTarget(step.enc)) continue;\n            }\n            // Drop OVERLAPPING arrangement compositions. Composing two generators\n            // that touch a shared channel yields a confusing 3-cycle (flip X⇄Y then\n            // swap Y⇄Color rotates all three axes, not a clean pairwise swap). We\n            // only compose steps whose moved channels are DISJOINT from what the\n            // path already moved — so every state is a single generator or an\n            // INDEPENDENT combo. The generators themselves are unchanged (the\n            // overlapping states still exist in theory), we just don't enumerate them.\n            if (step.chartType === undefined && cur.id !== 'default') {\n                const already = changedChannels(base, cur.enc);\n                const now = changedChannels(cur.enc, step.enc);\n                let overlaps = false;\n                for (const ch of now) {\n                    if (already.has(ch)) { overlaps = true; break; }\n                }\n                if (overlaps) continue;\n            }\n            const fp = encodingKey(step.enc, nextChartType);\n            if (seen.has(fp)) continue; // dedup (stabilizer)\n            seen.add(fp);\n            const id = cur.id === 'default' ? step.id : `${cur.id}|${step.id}`;\n            // Compositions are now always DISJOINT (see the overlap guard above),\n            // so a plain operator join reads cleanly with no double-counted channel\n            // (e.g. `X ⇄ Y · Color ⇄ Columns`). θ states join the same way.\n            const stepLabel = cur.id === 'default' ? step.label : `${cur.label} · ${step.label}`;\n            ids.push(id);\n            labels.push(stepLabel);\n            statesById[id] = step.enc;\n            chartTypeById[id] = nextChartType;\n            const augmentation = step.chartType\n                ? undefined\n                : (step.augmentation ?? cur.augmentation);\n            augmentationById[id] = augmentation;\n            queue.push({ id, label: stepLabel, enc: step.enc, chartType: nextChartType, template: nextTemplate, augmentation });\n            if (ids.length >= MAX_PIVOT_STATES) break;\n        }\n    }\n\n    return { key, label, ids, labels, statesById, augmentationById, chartTypeById };\n}\n\n/**\n * Resolve the active pivot state for the stored override and return both the\n * transformed encodings and the serializable surface (or the untouched base\n * encodings + `undefined` surface when no multi-state pivot applies).\n */\nexport function applyPivot(\n    template: ChartTemplateDef,\n    base: Record<string, ChartEncoding>,\n    data: any[],\n    chartProperties: Record<string, any> | undefined,\n    resolveTemplate?: (chartType: string) => ChartTemplateDef | undefined,\n): { encodings: Record<string, ChartEncoding>; augmentation: EncodingAugmentation | undefined; chartType: string | undefined; surface: PivotSurface | undefined } {\n    const comp = computePivot(template, base, data, resolveTemplate);\n    if (!comp || comp.ids.length <= 1) {\n        return { encodings: base, augmentation: undefined, chartType: undefined, surface: undefined };\n    }\n    const stored = chartProperties?.[comp.key];\n    const id = typeof stored === 'string' && comp.ids.includes(stored) ? stored : comp.ids[0];\n    const index = comp.ids.indexOf(id);\n    return {\n        encodings: comp.statesById[id],\n        augmentation: comp.augmentationById[id],\n        chartType: comp.chartTypeById[id],\n        surface: {\n            key: comp.key,\n            label: comp.label,\n            length: comp.ids.length,\n            index,\n            ids: comp.ids,\n            labels: comp.labels,\n        },\n    };\n}\n\n// ─── Factored two-control model (design-docs/chart-transform-two-axes.md) ─────\n//\n// The single composed orbit above is re-exposed as TWO independent controls:\n//   - Control B (chart type, θ): a one-hop transition menu enumerated from the\n//     object's *identity* — no composition, independent of Control A.\n//   - Control A (arrange, τ/σ/γ): the local group of the *effective* chart type\n//     (authored, or the θ-selected sibling), BFS-composed and deduped.\n// The two are stored as separate override keys (`chartType`, `arrange`). A θ\n// switch resets `arrange` to identity and rebuilds Control A on the new object.\n\n/** Both control surfaces resolved for the current input. */\nexport interface TransformSurface {\n    /** Control B — chart-type transitions (dropdown). Absent when no siblings. */\n    chartType?: PivotSurface;\n    /** Control A — local rearrangement group (stepper). Absent when trivial. */\n    arrange?: PivotSurface;\n}\n\n/** Override keys the two controls read/write under `chartProperties`. */\nexport const TRANSFORM_CHART_TYPE_KEY = 'chartType';\nexport const TRANSFORM_ARRANGE_KEY = 'arrange';\n\n/** Build a PivotSurface for a chosen state id within a computation. */\nfunction buildSurface(comp: PivotComputation, id: string): PivotSurface {\n    const index = Math.max(0, comp.ids.indexOf(id));\n    return {\n        key: comp.key,\n        label: comp.label,\n        length: comp.ids.length,\n        index,\n        ids: comp.ids,\n        labels: comp.labels,\n    };\n}\n\n/**\n * Control A enumeration: the local rearrangement group (τ/σ/γ only, no θ) of a\n * template, BFS-composed and deduped exactly like {@link computePivot} but with\n * chart-type transitions excluded. Runs on the *effective* object's identity\n * encoding (post-θ), so it offers exactly the moves that make sense there.\n */\nexport function computeArrangeStates(\n    template: ChartTemplateDef,\n    base: Record<string, ChartEncoding>,\n    data: any[],\n): PivotComputation | null {\n    return computePivot(template, base, data, undefined, {\n        includeTransitions: false,\n        key: TRANSFORM_ARRANGE_KEY,\n        label: 'Arrange',\n        preferFacetTarget: true,\n    });\n}\n\n/**\n * Control B enumeration: the one-hop chart-type transitions (θ only) of a\n * template, enumerated from the object's *identity* encoding — no composition,\n * no τ/σ/γ. Each state re-routes fields for a sibling chart type and carries a\n * `chartType` override the compiler re-dispatches on. State 0 is the authored\n * type (`default`, no override); labels are the sibling chart-type display\n * names so the dropdown reads \"Bar Chart · Line Chart · …\". Returns `null` when\n * the template declares no transitions.\n */\nexport function computeChartTypeStates(\n    template: ChartTemplateDef,\n    base: Record<string, ChartEncoding>,\n    data: any[],\n    resolveTemplate?: (chartType: string) => ChartTemplateDef | undefined,\n): PivotComputation | null {\n    // Transitions come from the central registry (keyed by chart name), NOT from\n    // the template's pivot def — so a template with no local τ/σ/γ group (e.g. a\n    // Pyramid) can still offer chart-type siblings.\n    const transitions = getChartTransitions(template.chart);\n    if (transitions.length === 0) return null;\n\n    const ids: string[] = ['default'];\n    const labels: string[] = [template.chart];\n    const statesById: Record<string, Record<string, ChartEncoding>> = { default: clone(base) };\n    const augmentationById: Record<string, EncodingAugmentation | undefined> = { default: undefined };\n    const chartTypeById: Record<string, string | undefined> = { default: undefined };\n    const seenChartTypes = new Set<string>([template.chart]);\n\n    for (const t of transitions) {\n        // Backend gate: skip a target the active backend can't render.\n        if (resolveTemplate && !resolveTemplate(t.to)) continue;\n        const st = transitionState(base, data, template, t);\n        if (!st) continue;\n        // One sibling per target chart type; skip a hop back to the authored type.\n        if (seenChartTypes.has(st.chartType)) continue;\n        seenChartTypes.add(st.chartType);\n        const id = `type:${t.to}`;\n        ids.push(id);\n        labels.push(st.chartType);\n        statesById[id] = st.enc;\n        chartTypeById[id] = st.chartType;\n    }\n\n    if (ids.length <= 1) return null;\n    return { key: TRANSFORM_CHART_TYPE_KEY, label: 'Chart type', ids, labels, statesById, augmentationById, chartTypeById };\n}\n\n/**\n * Resolve the two transform override ids from `chartProperties`, with a\n * backward-compatible shim for the legacy single composed `pivot` id: a\n * `type:*` token routes to the chart-type override and the remaining τ/σ/γ\n * tokens (before it) route to arrange. Because a θ resets arrange in the new\n * model, tokens *after* a `type:*` token are dropped (best-effort migration).\n */\nfunction resolveTransformOverrides(\n    chartProperties: Record<string, any> | undefined,\n): { chartTypeId: string | undefined; arrangeId: string | undefined } {\n    let chartTypeId = chartProperties?.[TRANSFORM_CHART_TYPE_KEY];\n    let arrangeId = chartProperties?.[TRANSFORM_ARRANGE_KEY];\n    if (typeof chartTypeId !== 'string') chartTypeId = undefined;\n    if (typeof arrangeId !== 'string') arrangeId = undefined;\n\n    if (chartTypeId === undefined && arrangeId === undefined) {\n        const legacy = chartProperties?.pivot;\n        if (typeof legacy === 'string' && legacy.length > 0 && legacy !== 'default') {\n            const tokens = legacy.split('|');\n            const typeIdx = tokens.findIndex((t) => t.startsWith('type:'));\n            if (typeIdx >= 0) {\n                chartTypeId = tokens[typeIdx];\n                const local = tokens.slice(0, typeIdx);\n                arrangeId = local.length ? local.join('|') : undefined;\n            } else {\n                arrangeId = legacy;\n            }\n        }\n    }\n    return { chartTypeId, arrangeId };\n}\n\n/**\n * Resolve the active state for the two independent controls and return the\n * transformed encodings + both surfaces. Order (design §4.10.1): apply the\n * chart-type transition (Control B) from the authored identity FIRST, re-select\n * the sibling template, THEN enumerate + apply that object's local arrange group\n * (Control A). A stale/absent `arrange` id falls back to identity — which is the\n * reset-on-θ behavior for free (design §4.10.2).\n */\nexport function applyTransform(\n    template: ChartTemplateDef,\n    base: Record<string, ChartEncoding>,\n    data: any[],\n    chartProperties: Record<string, any> | undefined,\n    resolveTemplate?: (chartType: string) => ChartTemplateDef | undefined,\n): {\n    encodings: Record<string, ChartEncoding>;\n    augmentation: EncodingAugmentation | undefined;\n    chartType: string | undefined;\n    surface: TransformSurface;\n} {\n    const { chartTypeId, arrangeId } = resolveTransformOverrides(chartProperties);\n\n    // Control B — chart type (θ), from the authored identity.\n    let effectiveTemplate = template;\n    let effectiveEnc = base;\n    let chartType: string | undefined;\n    let chartTypeSurface: PivotSurface | undefined;\n    const ctComp = computeChartTypeStates(template, base, data, resolveTemplate);\n    if (ctComp && ctComp.ids.length > 1) {\n        const id = chartTypeId && ctComp.ids.includes(chartTypeId) ? chartTypeId : 'default';\n        effectiveEnc = ctComp.statesById[id];\n        chartType = ctComp.chartTypeById[id];\n        if (chartType) {\n            const resolved = resolveTemplate?.(chartType);\n            if (resolved) effectiveTemplate = resolved;\n        }\n        chartTypeSurface = buildSurface(ctComp, id);\n    }\n\n    // Control A — arrange (τ/σ/γ), on the effective object.\n    let encodings = effectiveEnc;\n    let augmentation: EncodingAugmentation | undefined;\n    let arrangeSurface: PivotSurface | undefined;\n    const arrComp = computeArrangeStates(effectiveTemplate, effectiveEnc, data);\n    if (arrComp && arrComp.ids.length > 1) {\n        const id = arrangeId && arrComp.ids.includes(arrangeId) ? arrangeId : arrComp.ids[0];\n        encodings = arrComp.statesById[id];\n        augmentation = arrComp.augmentationById[id];\n        arrangeSurface = buildSurface(arrComp, id);\n    }\n\n    return {\n        encodings,\n        augmentation,\n        chartType,\n        surface: { chartType: chartTypeSurface, arrange: arrangeSurface },\n    };\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n// Plotly 专用调色板定义。\n// 承接 core/color-decisions.ts 中的抽象 colormap 信息（schemeType / schemeId / categoryCount），\n// 但真正的颜色数组与选盘策略完全在 Plotly backend 本地实现，并尽量贴近 Plotly 默认配色。\n\nimport type { ColorDecision, ColorMapType } from '../core/color-decisions';\n\nexport type PlotlyPaletteId = 'plotly10' | 'light24' | 'viridis' | 'RdBu' | string;\n\nexport interface PlotlyColorMapDef {\n    id: PlotlyPaletteId;\n    type: ColorMapType;\n    supportsDiscrete: boolean;\n    supportsContinuous: boolean;\n    background: 'light' | 'dark' | 'any';\n    colorblindSafe?: boolean;\n    maxCategories?: number;\n    diverging?: boolean;\n    preferredMidpoint?: number;\n    colors: string[];\n}\n\n/**\n * Plotly 常用的基础配色。plotly10 即 plotly.js 默认 `layout.colorway`；\n * light24 对应 px.colors.qualitative.Light24 的前 20 色，用于高基数类别。\n */\nconst PLOTLY_COLOR_MAPS: PlotlyColorMapDef[] = [\n    {\n        id: 'plotly10',\n        type: 'categorical',\n        supportsDiscrete: true,\n        supportsContinuous: false,\n        background: 'any',\n        maxCategories: 10,\n        colorblindSafe: false,\n        colors: [\n            '#636efa', // blue-violet\n            '#EF553B', // red-orange\n            '#00cc96', // green\n            '#ab63fa', // purple\n            '#FFA15A', // orange\n            '#19d3f3', // cyan\n            '#FF6692', // pink\n            '#B6E880', // light green\n            '#FF97FF', // magenta\n            '#FECB52', // yellow\n        ],\n    },\n    {\n        id: 'light24',\n        type: 'categorical',\n        supportsDiscrete: true,\n        supportsContinuous: false,\n        background: 'light',\n        maxCategories: 24,\n        colorblindSafe: false,\n        colors: [\n            '#FD3216', '#00FE35', '#6A76FC', '#FED4C4', '#FE00CE',\n            '#0DF9FF', '#F6F926', '#FF9616', '#479B55', '#EEA6FB',\n            '#DC587D', '#D626FF', '#6E899C', '#00B5F7', '#B68E00',\n            '#C9FBE5', '#FF0092', '#22FFA7', '#E3EE9E', '#86CE00',\n            '#BC7196', '#7E7DCD', '#FC6955', '#E48F72',\n        ],\n    },\n    {\n        id: 'viridis',\n        type: 'sequential',\n        supportsDiscrete: true,\n        supportsContinuous: true,\n        background: 'any',\n        colorblindSafe: true,\n        colors: [\n            '#440154', '#46327e', '#365c8d', '#277f8e',\n            '#1fa187', '#4ac16d', '#a0da39', '#fde725',\n        ],\n    },\n    {\n        id: 'RdBu',\n        type: 'diverging',\n        supportsDiscrete: true,\n        supportsContinuous: true,\n        background: 'any',\n        diverging: true,\n        preferredMidpoint: 0,\n        colors: [\n            '#b2182b', '#d6604d', '#f4a582', '#fddbc7',\n            '#f7f7f7',\n            '#d1e5f0', '#92c5de', '#4393c3', '#2166ac',\n        ],\n    },\n];\n\nfunction getMapById(id: PlotlyPaletteId | undefined): PlotlyColorMapDef | undefined {\n    if (!id) return undefined;\n    const key = String(id).toLowerCase();\n    return PLOTLY_COLOR_MAPS.find(m => m.id.toLowerCase() === key);\n}\n\nexport function getPaletteForScheme(id: PlotlyPaletteId): string[] | undefined {\n    const entry = getMapById(id);\n    return entry?.colors;\n}\n\n/**\n * Plotly 侧的「选盘」函数：等价于 chartjs/colormap.ts 的 pickChartJsPalette。\n *\n * 策略：\n *   1）若用户显式指定了 schemeId，则优先按该 id 取 palette。\n *   2）否则根据 schemeType + categoryCount 自动挑选合适的盘：\n *        - categorical：按类别数量在 plotly10 / light24 之间选；\n *        - sequential：优先 viridis；\n *        - diverging ：优先 RdBu。\n *   3）若都无法命中，回退到 Plotly 默认 categorical palette（plotly10）。\n */\nexport function pickPlotlyPalette(decision: ColorDecision | undefined): string[] {\n    if (!decision) {\n        const fallback = getPaletteForScheme('plotly10');\n        return fallback && fallback.length ? fallback : [];\n    }\n\n    const { schemeType, schemeId, categoryCount } = decision;\n\n    if (schemeId) {\n        const fromId = getPaletteForScheme(schemeId);\n        if (fromId && fromId.length > 0) {\n            return fromId;\n        }\n    }\n\n    const mapsOfType = PLOTLY_COLOR_MAPS.filter(m => m.type === schemeType);\n\n    if (schemeType === 'categorical') {\n        const k = categoryCount ?? 0;\n        const candidates = mapsOfType.filter(m => m.supportsDiscrete);\n        if (candidates.length) {\n            const byCapacity = candidates\n                .filter(m => m.maxCategories == null || m.maxCategories >= k)\n                .sort((a, b) => (a.maxCategories ?? Infinity) - (b.maxCategories ?? Infinity));\n            const picked = byCapacity[0] ?? candidates[0];\n            if (picked.colors.length) {\n                return picked.colors;\n            }\n        }\n    } else if (schemeType === 'sequential') {\n        const seq = mapsOfType.find(m => m.supportsContinuous) ?? getMapById('viridis');\n        if (seq && seq.colors.length) {\n            return seq.colors;\n        }\n    } else if (schemeType === 'diverging') {\n        const divergingFirst = mapsOfType.find(m => m.diverging) ?? getMapById('RdBu');\n        if (divergingFirst && divergingFirst.colors.length) {\n            return divergingFirst.colors;\n        }\n    }\n\n    const fallback = getPaletteForScheme('plotly10');\n    return fallback && fallback.length ? fallback : [];\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Shared helper functions for Plotly template hooks.\n * Pure logic — no UI dependencies.\n */\n\nimport type { ChannelSemantics, InstantiateContext } from '../../core/types';\nimport { pickPlotlyPalette } from '../colormap';\n\nconst isDiscrete = (type: string | undefined) => type === 'nominal' || type === 'ordinal';\n\n/** Exported alias so templates can share the same discrete-type predicate. */\nexport const isDiscreteType = isDiscrete;\n\n/** True if every category label parses as a number (used to decide label rotation). */\nexport function areCategoriesNumeric(cats: string[]): boolean {\n    if (cats.length === 0) return true;\n    return cats.every((c) => {\n        const s = String(c).trim();\n        if (s === '') return false;\n        const n = Number(s);\n        return !isNaN(n) && isFinite(n);\n    });\n}\n\n/**\n * Extract unique category values from data for a given field, preserving order.\n * If `ordinalSortOrder` is provided, returns values sorted in that canonical order.\n */\nexport function extractCategories(data: any[], field: string, ordinalSortOrder?: string[]): string[] {\n    const seen = new Set<string>();\n    const result: string[] = [];\n    for (const row of data) {\n        const val = row[field];\n        if (val != null) {\n            const key = String(val);\n            if (!seen.has(key)) {\n                seen.add(key);\n                result.push(key);\n            }\n        }\n    }\n\n    if (ordinalSortOrder && ordinalSortOrder.length > 0) {\n        const orderMap = new Map(ordinalSortOrder.map((v, i) => [v, i]));\n        result.sort((a, b) => {\n            const ia = orderMap.get(a);\n            const ib = orderMap.get(b);\n            if (ia !== undefined && ib !== undefined) return ia - ib;\n            if (ia !== undefined) return -1;\n            if (ib !== undefined) return 1;\n            return 0;\n        });\n    }\n\n    return result;\n}\n\n/**\n * Resolve the display order of a categorical axis, honoring either a canonical\n * `ordinalSortOrder` (months, weekdays, …) or a sort-by-measure request\n * (`sortBy` + `sortOrder` from the shared \"Sort\" control). Plotly has no native\n * \"order a categorical axis by another field\" (Vega-Lite's `sort` op), so we\n * aggregate the measure per category (sum) and order ascending/descending here.\n */\nexport function resolveCategoryOrder(\n    data: any[],\n    catField: string,\n    opts?: { ordinalSortOrder?: string[]; sortBy?: string; sortOrder?: 'ascending' | 'descending' },\n): string[] {\n    const base = extractCategories(data, catField, opts?.ordinalSortOrder);\n    if (!opts?.sortBy) return base;\n    const agg = new Map<string, number>();\n    for (const row of data) {\n        const cat = String(row[catField] ?? '');\n        const v = Number(row[opts.sortBy]);\n        if (Number.isFinite(v)) agg.set(cat, (agg.get(cat) ?? 0) + v);\n    }\n    const dir = opts.sortOrder === 'ascending' ? 1 : -1;\n    return [...base].sort((a, b) => dir * ((agg.get(a) ?? 0) - (agg.get(b) ?? 0)));\n}\n\n/**\n * Group data by a categorical field.\n * Returns a map: seriesName → rows[].\n */\nexport function groupBy(data: any[], field: string): Map<string, any[]> {\n    const groups = new Map<string, any[]>();\n    for (const row of data) {\n        const key = String(row[field] ?? '');\n        if (!groups.has(key)) groups.set(key, []);\n        groups.get(key)!.push(row);\n    }\n    return groups;\n}\n\n/**\n * Build category-aligned value array for a subset of rows.\n * Returns values indexed by category position (null for missing).\n */\nexport function buildCategoryAlignedData(\n    rows: any[],\n    catField: string,\n    valField: string,\n    categories: string[],\n): (number | null)[] {\n    const map = new Map<string, number>();\n    for (const row of rows) {\n        const key = String(row[catField] ?? '');\n        const val = row[valField];\n        if (val != null && !isNaN(val)) {\n            map.set(key, (map.get(key) ?? 0) + Number(val));\n        }\n    }\n    return categories.map(cat => map.get(cat) ?? null);\n}\n\n/**\n * Detect which axis is the category (banded) axis and which is the value axis.\n *\n * A bar's length is encoded on the **quantitative** axis; the band axis is the\n * other one — which may be discrete (nominal/ordinal) *or* temporal (a bar over\n * time is banded per period). Checking only for discreteness misses the temporal\n * case and leaves dates on the value axis (→ empty bars).\n */\nexport function detectAxes(\n    channelSemantics: Record<string, ChannelSemantics>,\n): { categoryAxis: 'x' | 'y'; valueAxis: 'x' | 'y' } {\n    const xCS = channelSemantics.x;\n    const yCS = channelSemantics.y;\n    const xQuant = !!xCS && xCS.type === 'quantitative';\n    const yQuant = !!yCS && yCS.type === 'quantitative';\n\n    // Bar length lives on the quantitative axis; the band is the other axis.\n    if (yQuant && !xQuant) return { categoryAxis: 'x', valueAxis: 'y' }; // vertical\n    if (xQuant && !yQuant) return { categoryAxis: 'y', valueAxis: 'x' }; // horizontal\n\n    // Fallbacks (both discrete, both quantitative, or missing): discrete-first.\n    if (xCS && isDiscrete(xCS.type)) {\n        return { categoryAxis: 'x', valueAxis: 'y' };\n    }\n    if (yCS && isDiscrete(yCS.type)) {\n        return { categoryAxis: 'y', valueAxis: 'x' };\n    }\n    return { categoryAxis: 'x', valueAxis: 'y' };\n}\n\n/**\n * Coerce a temporal value to an ISO-8601 string for Plotly's native `date`\n * axis. Numbers below 1e12 are treated as Unix seconds; strings and Dates are\n * parsed directly. Returns null when unparseable.\n */\nexport function coerceIsoDateForPlotly(raw: unknown): string | null {\n    if (raw == null) return null;\n    let ms: number;\n    if (typeof raw === 'number' && Number.isFinite(raw)) {\n        ms = raw < 1e12 ? Math.round(raw * 1000) : raw;\n    } else if (raw instanceof Date) {\n        ms = raw.getTime();\n    } else {\n        ms = new Date(String(raw)).getTime();\n    }\n    return Number.isFinite(ms) ? new Date(ms).toISOString() : null;\n}\n\n/**\n * Plotly's default qualitative palette (plotly.js `layout.colorway` defaults).\n * Fallback when no color decision is available; the decision-aware path lives\n * in ../colormap.ts (mirroring chartjs/colormap.ts).\n */\nexport const PLOTLY_COLORS = [\n    '#636efa', // blue-violet\n    '#EF553B', // red-orange\n    '#00cc96', // green\n    '#ab63fa', // purple\n    '#FFA15A', // orange\n    '#19d3f3', // cyan\n    '#FF6692', // pink\n    '#B6E880', // light green\n    '#FF97FF', // magenta\n    '#FECB52', // yellow\n];\n\n/**\n * 从 color-decisions 解析调色板；若没有决策则回退到 Plotly 默认 plotly10。\n * (Mirror of chartjs/templates/utils.ts getChartJsPalette.)\n */\nexport function getPlotlyPalette(ctx: InstantiateContext, preferred: 'color' | 'group' = 'color'): string[] {\n    const decisions = ctx.colorDecisions;\n    const decision =\n        preferred === 'color'\n            ? decisions?.color ?? decisions?.group\n            : decisions?.group ?? decisions?.color;\n\n    const palette = pickPlotlyPalette(decision);\n    if (palette.length > 0) {\n        return palette;\n    }\n    return PLOTLY_COLORS;\n}\n\n/** Series color by index from a resolved palette. */\nexport function getSeriesColor(palette: string[], index: number): string {\n    if (!palette.length) {\n        return PLOTLY_COLORS[index % PLOTLY_COLORS.length];\n    }\n    return palette[index % palette.length];\n}\n\n/** Hex → rgba with alpha, for translucent fills (area/violin/density/range-area). */\nexport function fillColor(hex: string, alpha: number): string {\n    const m = /^#?([0-9a-f]{6})$/i.exec(String(hex ?? '').trim());\n    if (!m) return hex;\n    const v = parseInt(m[1], 16);\n    const a = Math.max(0, Math.min(1, alpha));\n    return `rgba(${(v >> 16) & 255}, ${(v >> 8) & 255}, ${v & 255}, ${a})`;\n}\n\n/**\n * Bandwidth for Gaussian KDE — matches vega-statistics (bandwidth.js), shared\n * with the equivalent Vega-Lite/ECharts density templates so curves line up.\n */\nexport function estimateBandwidth(values: number[]): number {\n    const n = values.length;\n    if (n < 2) return 1;\n    const sorted = [...values].sort((a, b) => a - b);\n    const mean = values.reduce((a, b) => a + b, 0) / n;\n    const variance = values.reduce((s, v) => s + (v - mean) ** 2, 0) / n;\n    const d = Math.sqrt(variance);\n    const q1 = sorted[Math.floor((n - 1) * 0.25)];\n    const q3 = sorted[Math.floor((n - 1) * 0.75)];\n    const iqr = (q3 != null && q1 != null) ? q3 - q1 : 0;\n    const h = iqr / 1.34;\n    const v = Math.min(d, h || d) || d || 1;\n    return 1.06 * v * Math.pow(n, -0.2);\n}\n\n/** One-dimensional Gaussian KDE over an extent. */\nexport function kde(\n    values: number[], steps: number, bandwidthMultiplier: number,\n    extent?: { min: number; max: number },\n): { x: number[]; y: number[] } {\n    if (values.length === 0) return { x: [], y: [] };\n    const lo = extent ? extent.min : Math.min(...values);\n    const hi = extent ? extent.max : Math.max(...values);\n    const range = hi - lo || 1;\n    const h = estimateBandwidth(values) * bandwidthMultiplier;\n    const n = values.length;\n    const x: number[] = [];\n    const y: number[] = [];\n    for (let i = 0; i <= steps; i++) {\n        const t = lo + (i / steps) * (hi - lo || range);\n        let sum = 0;\n        for (const v of values) {\n            const z = (t - v) / h;\n            sum += Math.exp(-0.5 * z * z);\n        }\n        const density = sum / (n * h * Math.sqrt(2 * Math.PI));\n        x.push(t);\n        y.push(density);\n    }\n    return { x, y };\n}\n\n/**\n * Sorted distinct (value, cumulative-proportion) pairs for an ECDF, using the\n * \"≤ x\" convention (ties collapse to the last occurrence's proportion).\n */\nexport function ecdfPairs(values: number[]): [number, number][] {\n    const sorted = values.filter(v => Number.isFinite(v)).sort((a, b) => a - b);\n    const n = sorted.length;\n    const pairs: [number, number][] = [];\n    if (n === 0) return pairs;\n    let i = 0;\n    while (i < n) {\n        let j = i;\n        while (j + 1 < n && sorted[j + 1] === sorted[i]) j++;\n        pairs.push([sorted[i], (j + 1) / n]);\n        i = j + 1;\n    }\n    return pairs;\n}\n\n/** Deterministic pseudo-random generator (LCG) for reproducible jitter. */\nexport function seededJitter(seed: number): () => number {\n    let s = seed;\n    return () => {\n        s = (s * 1103515245 + 12345) & 0x7fffffff;\n        return (s / 0x7fffffff) * 2 - 1;\n    };\n}\n\n/** Round up to a \"nice\" ceiling (radar/gauge axis maxima). */\nexport function niceMax(v: number): number {\n    if (v <= 0) return 1;\n    const pow = Math.pow(10, Math.floor(Math.log10(v)));\n    const mantissa = v / pow;\n    const nice = mantissa <= 1 ? 1\n        : mantissa <= 2 ? 2\n        : mantissa <= 2.5 ? 2.5\n        : mantissa <= 5 ? 5\n        : 10;\n    return nice * pow;\n}\n\n/**\n * Stable sort of `rows` by a sequence field: numeric when every present value\n * parses as a number, chronological when every value parses as a date,\n * lexical otherwise. Ties keep their original row order.\n */\nexport function sortByOrder(rows: any[], field: string | undefined): any[] {\n    if (!field) return rows;\n    const tagged = rows.map((row, idx) => ({ row, idx, key: row[field] }));\n    const present = tagged.filter(t => t.key != null && t.key !== '');\n    const allNumeric = present.length > 0 &&\n        present.every(t => typeof t.key === 'number' ||\n            (typeof t.key === 'string' && t.key.trim() !== '' && !isNaN(Number(t.key))));\n    const allDates = !allNumeric && present.length > 0 &&\n        present.every(t => !isNaN(Date.parse(String(t.key))));\n    const rank = (k: any): number | string => {\n        if (allNumeric) return Number(k);\n        if (allDates) return Date.parse(String(k));\n        return String(k);\n    };\n    return [...tagged].sort((a, b) => {\n        const ra = rank(a.key);\n        const rb = rank(b.key);\n        if (ra < rb) return -1;\n        if (ra > rb) return 1;\n        return a.idx - b.idx;\n    }).map(t => t.row);\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\nimport type { ChannelSemantics } from './types';\n\ntype EncodingType = 'nominal' | 'ordinal' | 'quantitative' | 'temporal';\n\ntype BandedAxisResult = {\n    axis: 'x' | 'y';\n    resolvedTypes?: Record<string, EncodingType>;\n};\n\nconst isDiscrete = (type: string | undefined): boolean =>\n    type === 'nominal' || type === 'ordinal';\n\nconst getFieldCardinality = (field: string, table: any[]): number =>\n    new Set(table.map((row: any) => row[field]).filter((value: any) => value != null)).size;\n\n/** Resolve a backend-neutral discrete encoding type for a field. */\nexport function resolveDiscreteType(\n    currentType: string,\n    field: string | undefined,\n    table: any[],\n): 'nominal' | 'ordinal' {\n    if (currentType === 'nominal') return 'nominal';\n    if (currentType === 'ordinal') return 'ordinal';\n    if (currentType === 'temporal') return 'ordinal';\n    if (currentType === 'quantitative' && field && table.length > 0) {\n        return getFieldCardinality(field, table) <= 20 ? 'ordinal' : 'nominal';\n    }\n    return 'nominal';\n}\n\n/** Choose the position axis that should use banded layout. */\nexport function detectBandedAxisFromSemantics(\n    channelSemantics: Record<string, ChannelSemantics>,\n    table: any[],\n    options: { preferAxis?: 'x' | 'y' } = {},\n): BandedAxisResult | null {\n    const xType = channelSemantics.x?.type;\n    const yType = channelSemantics.y?.type;\n\n    if (xType && isDiscrete(xType)) return { axis: 'x' };\n    if (yType && isDiscrete(yType)) return { axis: 'y' };\n\n    if (xType && yType) {\n        if (xType === 'quantitative' && yType !== 'quantitative') {\n            return { axis: 'y' };\n        }\n        if (yType === 'quantitative' && xType !== 'quantitative') {\n            return { axis: 'x' };\n        }\n        return { axis: options.preferAxis || 'x' };\n    }\n\n    if (xType) {\n        const newType = resolveDiscreteType(xType, channelSemantics.x?.field, table);\n        return { axis: 'x', resolvedTypes: { x: newType } };\n    }\n    if (yType) {\n        const newType = resolveDiscreteType(yType, channelSemantics.y?.field, table);\n        return { axis: 'y', resolvedTypes: { y: newType } };\n    }\n\n    return null;\n}\n\n/** Choose a banded axis and force its encoding type to be discrete. */\nexport function detectBandedAxisForceDiscrete(\n    channelSemantics: Record<string, ChannelSemantics>,\n    table: any[],\n    options: { preferAxis?: 'x' | 'y' } = {},\n): BandedAxisResult | null {\n    const result = detectBandedAxisFromSemantics(channelSemantics, table, options);\n    if (!result) return null;\n\n    const axis = result.axis;\n    const semantics = channelSemantics[axis];\n    if (!semantics) return result;\n\n    if (!isDiscrete(semantics.type)) {\n        const newType = resolveDiscreteType(semantics.type, semantics.field, table);\n        return {\n            axis,\n            resolvedTypes: { ...result.resolvedTypes, [axis]: newType },\n        };\n    }\n\n    return result;\n}","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Band-dodge decision: does a secondary discrete channel (`color`, or an explicit\n * `group` field) subdivide a categorical axis band into side-by-side sub-lanes\n * (\"dodge\"), or is it redundant/nested with the axis (render one full-width glyph\n * per band, \"nested\")?\n *\n * This is the single source of truth shared by the layout engine\n * (`compute-layout.ts`) and every backend template that dodges by color/group\n * (VL boxplot/violin/grouped-bar, ECharts, Chart.js). Keeping the decision here\n * prevents the layout and the templates from drifting apart (the class of bug\n * where the band is budgeted for a different lane count than the glyph is sized\n * for). See `design-docs/boxplot-color-dodge-heuristic.md`.\n *\n * Two independent quantities, deliberately NOT the same number:\n *   - the **gate** (`dodge`): keyed off the max per-band sub-cardinality — \"does\n *     any single band actually contain more than one sub-value?\"\n *   - the **lane count** (`laneCount`): the *global* distinct sub-value count,\n *     because that is what a global band-offset scale (VL `xOffset`, an ECharts\n *     series-per-group, a Chart.js dataset-per-group) physically reserves per\n *     band. Sizing a glyph by the max-per-band instead would overlap in sparse\n *     cross-products.\n */\n\n/** Default fraction of single-valued bands above which `auto` snaps to `none`\n *  (mostly-1:1 / dirty near-1:1 data). Tunable via `planBandDodge` options. */\nexport const DEFAULT_NESTED_SNAP_THRESHOLD = 0.9;\n\n/** Resolved dodge mode (what actually renders). */\nexport type DodgeMode = 'none' | 'local' | 'global';\n\n/** User-facing `dodge` chart-property values (`auto` defers to the compiler). */\nexport type DodgeOption = 'auto' | DodgeMode;\n\nexport interface BandDodgePlan {\n    /** Compiler's recommended default mode. */\n    mode: DodgeMode;\n    /** Back-compat: does the recommendation subdivide the band? (`mode !== 'none'`). */\n    dodge: boolean;\n    /** Lanes a *global* offset scale reserves per band = global distinct\n     *  sub-values (the `global` mode lane count). */\n    laneCount: number;\n    /** True when local and global dodge can produce different layouts. */\n    ambiguous: boolean;\n    /** Most distinct sub-values co-occurring within any single band. */\n    maxPerBand: number;\n    /** Global distinct sub-values. */\n    global: number;\n    /** Number of distinct axis bands. */\n    bandCount: number;\n}\n\nexport interface PlanBandDodgeOptions {\n    /** Fraction of single-valued bands above which `auto` snaps to `none`.\n     *  Defaults to {@link DEFAULT_NESTED_SNAP_THRESHOLD}. */\n    nestedSnapThreshold?: number;\n}\n\n/** Pure recommendation from the per-band statistics. */\nfunction recommendMode(\n    maxPerBand: number,\n    globalCount: number,\n    nestedFraction: number,\n    threshold: number,\n): DodgeMode {\n    // Nothing subdivides any band → full-width.\n    if (maxPerBand <= 1) return 'none';\n    // Mostly single-valued (a few dirty/outlier multi-color bands) → snap to\n    // full-width rather than dodge the whole chart for a couple of rows.\n    if (nestedFraction >= threshold) return 'none';\n    // Every occupied band spans the full sub-domain → uniform global grid.\n    if (maxPerBand >= globalCount) return 'global';\n    // Sparse / spiky → compact, centered per-band lanes.\n    return 'local';\n}\n\n/**\n * Decide whether `subField` dodges `axisField` for the given data.\n *\n * Confident zones (never ambiguous):\n *   - `maxPerBand <= 1`  → nested (redundant/nested with the axis; `color == x`\n *     or a 1:1 different-field pair).\n *   - `maxPerBand === global` → dodge (clean full cross-product).\n * Ambiguous zone (`1 < maxPerBand < global`, e.g. sparse cross-products or dirty\n * near-1:1 data): the `auto` lean is resolved by a configurable threshold on the\n * fraction of single-valued bands, and `ambiguous` is set so a host can surface\n * the toggle.\n */\nexport function planBandDodge(\n    table: ReadonlyArray<Record<string, unknown>>,\n    axisField: string,\n    subField: string,\n    options?: PlanBandDodgeOptions,\n): BandDodgePlan {\n    const perBand = new Map<unknown, Set<unknown>>();\n    const global = new Set<unknown>();\n    for (const row of table) {\n        global.add(row[subField]);\n        const key = row[axisField];\n        let bandSet = perBand.get(key);\n        if (!bandSet) perBand.set(key, (bandSet = new Set()));\n        bandSet.add(row[subField]);\n    }\n\n    const globalCount = Math.max(1, global.size);\n    const bandCount = perBand.size;\n    let maxPerBand = 0;\n    let singleValuedBands = 0;\n    let completeBands = 0;\n    for (const bandSet of perBand.values()) {\n        if (bandSet.size > maxPerBand) maxPerBand = bandSet.size;\n        if (bandSet.size <= 1) singleValuedBands++;\n        if (bandSet.size === globalCount) completeBands++;\n    }\n\n    const threshold = options?.nestedSnapThreshold ?? DEFAULT_NESTED_SNAP_THRESHOLD;\n    const nestedFraction = bandCount > 0 ? singleValuedBands / bandCount : 1;\n    const mode = recommendMode(maxPerBand, globalCount, nestedFraction, threshold);\n\n    return {\n        mode,\n        dodge: mode !== 'none',\n        laneCount: globalCount,\n        ambiguous: maxPerBand > 1 && completeBands < bandCount,\n        maxPerBand,\n        global: globalCount,\n        bandCount,\n    };\n}\n\n/** Number of sub-lanes a resolved mode reserves per band. */\nexport function laneCountForMode(plan: BandDodgePlan, mode: DodgeMode): number {\n    if (mode === 'global') return plan.global;\n    if (mode === 'local') return Math.max(1, plan.maxPerBand);\n    return 1;\n}\n\n/**\n * Apply a user `dodge` override on top of a plan. `none`/`local`/`global` are\n * hard overrides; `auto` (or unset) follows the compiler recommendation. A dodge\n * mode is downgraded to `none` when nothing actually subdivides a band\n * (`maxPerBand <= 1`), so forcing dodge on redundant color can't collapse it.\n */\nexport function resolveDodge(\n    plan: BandDodgePlan,\n    override?: string,\n): { mode: DodgeMode; laneCount: number } {\n    let mode: DodgeMode =\n        override === 'none' || override === 'local' || override === 'global'\n            ? override\n            : plan.mode;\n    if (mode !== 'none' && plan.maxPerBand <= 1) mode = 'none';\n    return { mode, laneCount: laneCountForMode(plan, mode) };\n}\n\n// ---------------------------------------------------------------------------\n// Back-compat shim (pre-`local` callers that only need a dodge boolean).\n// `local` currently renders via the global offset path, so its lane count is\n// the global one until the per-backend `local` renderer lands (Stage 2).\n// ---------------------------------------------------------------------------\n\n/** @deprecated user-facing values; prefer {@link DodgeOption}. */\nexport type ColorLayoutMode = DodgeOption;\n\n/** @deprecated prefer {@link resolveDodge}. Maps the mode to a dodge boolean and\n *  the global lane count (the only lane count the current renderers support). */\nexport function resolveBandDodge(\n    plan: BandDodgePlan,\n    override?: string,\n): { dodge: boolean; laneCount: number } {\n    // Legacy override spellings → new modes.\n    const normalized = override === 'dodge' ? 'global' : override === 'nested' ? 'none' : override;\n    const { mode } = resolveDodge(plan, normalized);\n    return { dodge: mode !== 'none', laneCount: plan.laneCount };\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\nimport type { ChartEncoding, EncodingActionDef } from './types';\n\n/**\n * Reusable factories for Category-B encoding actions (see EncodingActionDef).\n *\n * These are authored once and attached to many templates, so the per-chart\n * knowledge (which channel is the category axis, which carries the measure)\n * lives in one place instead of being re-implemented per template.\n */\n\n/** The semantic sort choices the Sort control exposes. */\nexport type SortChoice = 'value-asc' | 'value-desc';\n\n// A measure is a quantitative channel or any aggregated channel.\nconst isMeasureEnc = (e?: ChartEncoding): boolean =>\n    !!e?.field && (!!e.aggregate || e.type === 'quantitative');\n\n// A sortable category axis is discrete (nominal/ordinal). Temporal axes are\n// deliberately excluded: reordering a time axis by value scrambles the\n// chronology, so Sort should not apply to them.\nconst isDiscreteCategoryEnc = (e?: ChartEncoding): boolean =>\n    !!e?.field && !e.aggregate && e.type !== 'quantitative' && e.type !== 'temporal';\n\n/**\n * Identify the discrete category axis and the measure axis among a pair of\n * position channels, so Sort works under either orientation (vertical or\n * horizontal) and only when a discrete axis actually exists.\n *\n * Returns `null` when there is no discrete category + measure pair to sort —\n * e.g. a temporal-x time series, or two quantitative axes (scatter). Callers\n * use this both to gate visibility and to no-op safely.\n */\nfunction resolveSortChannels(\n    encodings: Record<string, ChartEncoding>,\n    candidates: [string, string],\n): { category: string; measure: string } | null {\n    const category = candidates.find(c => isDiscreteCategoryEnc(encodings[c]));\n    const measure = candidates.find(c => isMeasureEnc(encodings[c]));\n    if (!category || !measure || category === measure) return null;\n    return { category, measure };\n}\n\n/**\n * Sort the category axis of a bar-like chart by the measure value.\n *\n * Encoding model: a value sort writes `sortBy = <measure channel>` (one of\n * 'x' | 'y', which the assembler understands) on the category channel.\n * \"Default\" clears the sort so the field's canonical ordering wins — the\n * natural order for ordinal/temporal-like categories, or alphabetic otherwise,\n * as decided by semantic resolution. The action is only applicable — and only\n * visible — when one position channel is a discrete category and the other is\n * a measure.\n *\n * @param channels Position-channel pair (default ['x', 'y']); the orientation\n *                 (which one is the category) is resolved per-encoding at runtime.\n */\nexport function makeSortAction(options?: {\n    key?: string;\n    label?: string;\n    channels?: [string, string];\n}): EncodingActionDef {\n    const candidates = options?.channels ?? ['x', 'y'];\n    return {\n        key: options?.key ?? 'sort',\n        label: options?.label ?? 'Sort',\n        dependencies: candidates,\n        isApplicable: (ctx) => resolveSortChannels(ctx.encodings, candidates) !== null,\n        control: {\n            type: 'discrete',\n            options: [\n                { value: undefined, label: 'Default' },\n                { value: 'value-desc', label: 'Value ↓' },\n                { value: 'value-asc', label: 'Value ↑' },\n            ],\n        },\n        get: (encodings) => {\n            const resolved = resolveSortChannels(encodings, candidates);\n            if (!resolved) return undefined;\n            const { category, measure } = resolved;\n            const enc = encodings[category];\n            if (enc.sortBy === measure) {\n                return enc.sortOrder === 'descending' ? 'value-desc' : 'value-asc';\n            }\n            // Any other sort (label order, custom value order, sort-by-color)\n            // isn't representable by this control → show as Default.\n            return undefined;\n        },\n        set: (encodings, value: SortChoice | undefined) => {\n            const resolved = resolveSortChannels(encodings, candidates);\n            if (!resolved) return encodings;\n            const { category, measure } = resolved;\n            const base = encodings[category];\n            let next: ChartEncoding;\n            switch (value) {\n                case 'value-asc':\n                    next = { ...base, sortBy: measure, sortOrder: 'ascending' };\n                    break;\n                case 'value-desc':\n                    next = { ...base, sortBy: measure, sortOrder: 'descending' };\n                    break;\n                default:\n                    next = { ...base, sortBy: undefined, sortOrder: undefined };\n            }\n            return { ...encodings, [category]: next };\n        },\n    };\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Bar Chart template.\n *\n * Mirrors the Chart.js Bar template's decisions (category detection,\n * ordinal sort order, zero baseline, horizontal transposition), expressed\n * as a Plotly `bar` trace:\n *   CJS: { type: 'bar', data: { labels, datasets[] }, options: { indexAxis } }\n *   PL:  { data: [{ type: 'bar', x, y, orientation }], layout: { xaxis, yaxis } }\n */\n\nimport { ChartTemplateDef, ChartPropertyDef, EncodingActionDef } from '../../core/types';\nimport { extractCategories, resolveCategoryOrder, buildCategoryAlignedData, detectAxes, groupBy, getPlotlyPalette, getSeriesColor } from './utils';\nimport { detectBandedAxisFromSemantics, detectBandedAxisForceDiscrete } from '../../core/axis-detection';\nimport { planBandDodge } from '../../core/band-dodge';\nimport { makeSortAction } from '../../core/encoding-actions';\nimport { makeCartesianPivot } from '../../core/pivot';\n\n/** Corner-radius property shared by the Plotly bar templates (px, matches VL). */\nconst BAR_CORNER_RADIUS: ChartPropertyDef = {\n    key: 'cornerRadius', label: 'Corners', type: 'continuous',\n    min: 0, max: 15, step: 1, defaultValue: 0,\n};\n\nexport const plBarChartDef: ChartTemplateDef = {\n    chart: 'Bar Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['x', 'y', 'color', 'opacity', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    declareLayoutMode: (cs, table) => {\n        const result = detectBandedAxisFromSemantics(cs, table, { preferAxis: 'x' });\n        return {\n            axisFlags: result ? { [result.axis]: { banded: true } } : { x: { banded: true } },\n            resolvedTypes: result?.resolvedTypes,\n        };\n    },\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const { categoryAxis, valueAxis } = detectAxes(channelSemantics);\n\n        const catField = channelSemantics[categoryAxis]?.field;\n        const valField = channelSemantics[valueAxis]?.field;\n        if (!catField || !valField) return;\n\n        const catCS = channelSemantics[categoryAxis];\n        const catEnc = ctx.encodings?.[categoryAxis];\n        // `sortBy` from the Sort action is the measure CHANNEL ('x'|'y'); map it\n        // to its field so we can order categories by that measure.\n        const sortByField = catEnc?.sortBy ? channelSemantics[catEnc.sortBy]?.field : undefined;\n        const categories = resolveCategoryOrder(table, catField, {\n            ordinalSortOrder: catCS?.ordinalSortOrder,\n            sortBy: sortByField,\n            sortOrder: catEnc?.sortOrder,\n        });\n        const values = buildCategoryAlignedData(table, catField, valField, categories);\n\n        const isHorizontal = categoryAxis === 'y';\n        const palette = getPlotlyPalette(ctx);\n        const cornerRadius = Number(chartProperties?.cornerRadius ?? 0);\n\n        const catAxisSpec = {\n            type: 'category' as const,\n            categoryorder: 'array' as const,\n            categoryarray: categories,\n            title: { text: catField },\n        };\n        const valCS = channelSemantics[valueAxis];\n        // Bars encode length — include zero unless the semantic decision says otherwise.\n        const includeZero = valCS?.zero ? valCS.zero.zero !== false : true;\n        const valAxisSpec = {\n            title: { text: valField },\n            rangemode: (includeZero ? 'tozero' : 'normal') as 'tozero' | 'normal',\n        };\n\n        const figure: any = {\n            data: [{\n                type: 'bar',\n                name: valField,\n                ...(isHorizontal\n                    ? { x: values, y: categories, orientation: 'h' }\n                    : { x: categories, y: values }),\n                marker: {\n                    color: getSeriesColor(palette, 0),\n                    ...(cornerRadius > 0 ? { cornerradius: cornerRadius } : {}),\n                },\n            }],\n            layout: {\n                bargap: 0.2,\n                ...(isHorizontal\n                    ? { xaxis: valAxisSpec, yaxis: catAxisSpec }\n                    : { xaxis: catAxisSpec, yaxis: valAxisSpec }),\n                showlegend: false,\n            },\n        };\n\n        Object.assign(spec, figure);\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [BAR_CORNER_RADIUS],\n    encodingActions: [makeSortAction()] as EncodingActionDef[],\n    pivot: makeCartesianPivot({\n        transpose: [['x', 'y']],\n        permute: [['x', 'y', 'color']],\n        shift: ['color', 'column', 'row'],\n    }),\n};\n\n// ─── Stacked Bar Chart ──────────────────────────────────────────────────────\n\n/**\n * Plotly Stacked Bar Chart — one trace per `color` group, `layout.barmode:\n * 'stack'`. Plotly stacks traces natively by matching x/category positions,\n * so (unlike Chart.js/ECharts) no manual per-band accumulation is needed.\n */\nexport const plStackedBarChartDef: ChartTemplateDef = {\n    chart: 'Stacked Bar Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    declareLayoutMode: (cs, table) => {\n        const result = detectBandedAxisFromSemantics(cs, table, { preferAxis: 'x' });\n        return {\n            axisFlags: result ? { [result.axis]: { banded: true } } : { x: { banded: true } },\n            resolvedTypes: result?.resolvedTypes,\n            paramOverrides: { continuousMarkCrossSection: { x: 20, y: 20, seriesCountAxis: 'auto' } },\n        };\n    },\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const { categoryAxis, valueAxis } = detectAxes(channelSemantics);\n        const colorField = channelSemantics.color?.field;\n\n        const catField = channelSemantics[categoryAxis]?.field;\n        const valField = channelSemantics[valueAxis]?.field;\n        if (!catField || !valField) return;\n\n        const catCS = channelSemantics[categoryAxis];\n        const catEnc = ctx.encodings?.[categoryAxis];\n        const sortByField = catEnc?.sortBy ? channelSemantics[catEnc.sortBy]?.field : undefined;\n        const categories = resolveCategoryOrder(table, catField, {\n            ordinalSortOrder: catCS?.ordinalSortOrder, sortBy: sortByField, sortOrder: catEnc?.sortOrder,\n        });\n        const isHorizontal = categoryAxis === 'y';\n        const palette = getPlotlyPalette(ctx, 'color');\n        // 100%-stacked toggle (Stack property): Plotly normalizes each band to\n        // 100% via `barnorm: 'percent'`; the value-axis title then reflects %.\n        const normalize = colorField && chartProperties?.stackMode === 'normalize';\n\n        const traces: any[] = [];\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                const values = buildCategoryAlignedData(rows, catField, valField, categories);\n                traces.push({\n                    type: 'bar',\n                    name,\n                    ...(isHorizontal ? { x: values, y: categories, orientation: 'h' } : { x: categories, y: values }),\n                    marker: { color: getSeriesColor(palette, i) },\n                });\n                i++;\n            }\n        } else {\n            const values = buildCategoryAlignedData(table, catField, valField, categories);\n            traces.push({\n                type: 'bar',\n                name: valField,\n                ...(isHorizontal ? { x: values, y: categories, orientation: 'h' } : { x: categories, y: values }),\n                marker: { color: getSeriesColor(palette, 0) },\n            });\n        }\n\n        const catAxisSpec = { type: 'category' as const, categoryorder: 'array' as const, categoryarray: categories, title: { text: catField } };\n        const valCS = channelSemantics[valueAxis];\n        const includeZero = valCS?.zero ? valCS.zero.zero !== false : true;\n        const valAxisSpec = { title: { text: valField }, rangemode: (includeZero ? 'tozero' : 'normal') as 'tozero' | 'normal' };\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                barmode: 'stack',\n                ...(normalize ? { barnorm: 'percent' } : {}),\n                bargap: 0.2,\n                ...(isHorizontal ? { xaxis: valAxisSpec, yaxis: catAxisSpec } : { xaxis: catAxisSpec, yaxis: valAxisSpec }),\n                showlegend: !!colorField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'stackMode', label: 'Stack', type: 'discrete',\n          check: (ctx) => ({ applicable: !!ctx.encodings.color?.field }),\n          options: [\n            { value: undefined, label: 'Stacked (default)' },\n            { value: 'normalize', label: 'Normalize (100%)' },\n          ] } as ChartPropertyDef,\n    ],\n    encodingActions: [makeSortAction()] as EncodingActionDef[],\n    pivot: makeCartesianPivot({\n        transpose: [['x', 'y']],\n        permute: [['x', 'y', 'color']],\n        shift: ['color', 'group', 'column', 'row'],\n    }),\n};\n\n// ─── Grouped Bar Chart ──────────────────────────────────────────────────────\n\n/**\n * Plotly Grouped Bar Chart — one trace per `group`/`color` value,\n * `layout.barmode: 'group'`. Plotly dodges the bars natively within each\n * category band (equal-width lanes), the native equivalent of the Chart.js/\n * ECharts manual band-dodge planner.\n */\nexport const plGroupedBarChartDef: ChartTemplateDef = {\n    chart: 'Grouped Bar Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['x', 'y', 'group', 'color', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    declareLayoutMode: (cs, table) => {\n        const result = detectBandedAxisForceDiscrete(cs, table, { preferAxis: 'x' });\n        return {\n            axisFlags: result ? { [result.axis]: { banded: true } } : { x: { banded: true } },\n            resolvedTypes: result?.resolvedTypes,\n            paramOverrides: { continuousMarkCrossSection: { x: 20, y: 20, seriesCountAxis: 'auto' } },\n        };\n    },\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table } = ctx;\n        const { categoryAxis, valueAxis } = detectAxes(channelSemantics);\n        const groupField = channelSemantics.group?.field || channelSemantics.color?.field;\n\n        const catField = channelSemantics[categoryAxis]?.field;\n        const valField = channelSemantics[valueAxis]?.field;\n        if (!catField || !valField) return;\n\n        const catCS = channelSemantics[categoryAxis];\n        const catEnc = ctx.encodings?.[categoryAxis];\n        const sortByField = catEnc?.sortBy ? channelSemantics[catEnc.sortBy]?.field : undefined;\n        const categories = resolveCategoryOrder(table, catField, {\n            ordinalSortOrder: catCS?.ordinalSortOrder, sortBy: sortByField, sortOrder: catEnc?.sortOrder,\n        });\n        const isHorizontal = categoryAxis === 'y';\n        const palette = getPlotlyPalette(ctx, 'group');\n\n        // When the group is redundant/nested with the category axis (group == x,\n        // or a 1:1 pairing), no band holds more than one group value — there is\n        // nothing to dodge. Plotly's native `barmode: 'group'` would still\n        // reserve a lane per group and leave each real bar as a shifted sliver.\n        // Fall back to `barmode: 'overlay'` so each band shows one centered,\n        // full-width colored bar (like a colored bar chart), keeping the legend.\n        const degenerateGroup = !!groupField && planBandDodge(table, catField, groupField).maxPerBand <= 1;\n\n        const traces: any[] = [];\n        if (groupField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, groupField)) {\n                const values = buildCategoryAlignedData(rows, catField, valField, categories);\n                traces.push({\n                    type: 'bar',\n                    name,\n                    ...(isHorizontal ? { x: values, y: categories, orientation: 'h' } : { x: categories, y: values }),\n                    marker: { color: getSeriesColor(palette, i) },\n                });\n                i++;\n            }\n        } else {\n            const values = buildCategoryAlignedData(table, catField, valField, categories);\n            traces.push({\n                type: 'bar',\n                name: valField,\n                ...(isHorizontal ? { x: values, y: categories, orientation: 'h' } : { x: categories, y: values }),\n                marker: { color: getSeriesColor(palette, 0) },\n            });\n        }\n\n        const catAxisSpec = { type: 'category' as const, categoryorder: 'array' as const, categoryarray: categories, title: { text: catField } };\n        const valCS = channelSemantics[valueAxis];\n        const includeZero = valCS?.zero ? valCS.zero.zero !== false : true;\n        const valAxisSpec = { title: { text: valField }, rangemode: (includeZero ? 'tozero' : 'normal') as 'tozero' | 'normal' };\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                barmode: degenerateGroup ? 'overlay' : 'group',\n                bargap: 0.2,\n                ...(isHorizontal ? { xaxis: valAxisSpec, yaxis: catAxisSpec } : { xaxis: catAxisSpec, yaxis: valAxisSpec }),\n                showlegend: !!groupField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    encodingActions: [makeSortAction()] as EncodingActionDef[],\n    pivot: makeCartesianPivot({\n        transpose: [['x', 'y']],\n        permute: [['x', 'y', 'color']],\n        shift: ['color', 'group', 'column', 'row'],\n    }),\n};\n\n/**\n * Plotly Pyramid Chart (population pyramid) — two mirrored horizontal bar\n * traces sharing one category axis, one side negated so the bars extend left\n * and right from a shared zero (`barmode: 'overlay'`; `x` axis ticks show\n * absolute values via `tickformat`/hover text so negative bars still read as\n * positive magnitudes).\n */\nexport const plPyramidChartDef: ChartTemplateDef = {\n    chart: 'Pyramid Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['x', 'y', 'color'],\n    markCognitiveChannel: 'length',\n    declareLayoutMode: () => ({ axisFlags: { y: { banded: true } } }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const xField = xCS?.field;\n        const yField = yCS?.field;\n        if (!xField || !yField) return;\n\n        const yDiscrete = yCS?.type === 'nominal' || yCS?.type === 'ordinal';\n        const catField = yDiscrete ? yField : xField;\n        const valField = yDiscrete ? xField : yField;\n        const colorField = channelSemantics.color?.field || channelSemantics.group?.field;\n\n        const catCS = yDiscrete ? yCS : xCS;\n        const categories = extractCategories(table, catField!, catCS?.ordinalSortOrder);\n\n        const sumPerCategory = (predicate?: (row: any) => boolean): number[] => {\n            const valueMap = new Map<string, number>();\n            for (const row of table) {\n                if (predicate && !predicate(row)) continue;\n                const cat = String(row[catField!] ?? '');\n                const v = row[valField!];\n                if (v != null && !isNaN(Number(v))) valueMap.set(cat, (valueMap.get(cat) ?? 0) + Number(v));\n            }\n            return categories.map(cat => valueMap.get(cat) ?? 0);\n        };\n\n        let leftPos: number[];\n        let rightPos: number[];\n        let leftName: string | undefined;\n        let rightName: string | undefined;\n\n        if (colorField && table.length > 0) {\n            const groups = [...new Set(table.map(r => r[colorField]))];\n            const leftGroup = groups[0];\n            const rightGroup = groups.length > 1 ? groups[1] : groups[0];\n            leftPos = sumPerCategory(row => String(row[colorField] ?? '') === String(leftGroup ?? ''));\n            rightPos = sumPerCategory(row => String(row[colorField] ?? '') === String(rightGroup ?? ''));\n            leftName = String(leftGroup);\n            rightName = String(rightGroup);\n        } else {\n            const values = sumPerCategory();\n            leftPos = values;\n            rightPos = values;\n        }\n\n        const leftData = leftPos.map(v => -v);\n        const maxAbs = Math.max(0, ...leftPos, ...rightPos);\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        Object.assign(spec, {\n            data: [\n                {\n                    type: 'bar', orientation: 'h', name: leftName,\n                    x: leftData, y: categories,\n                    customdata: leftPos,\n                    hovertemplate: `%{y}<br />${leftName ?? catField}: %{customdata}<extra></extra>`,\n                    marker: { color: getSeriesColor(palette, 0) },\n                },\n                {\n                    type: 'bar', orientation: 'h', name: rightName,\n                    x: rightPos, y: categories,\n                    hovertemplate: `%{y}<br />${rightName ?? catField}: %{x}<extra></extra>`,\n                    marker: { color: getSeriesColor(palette, 1) },\n                },\n            ],\n            layout: {\n                barmode: 'overlay',\n                bargap: 0.15,\n                xaxis: {\n                    title: { text: valField },\n                    range: maxAbs > 0 ? [-maxAbs * 1.05, maxAbs * 1.05] : undefined,\n                    tickformat: undefined,\n                    // Show absolute values on the tick labels (both sides read as magnitude).\n                    tickvals: undefined,\n                },\n                yaxis: { type: 'category', categoryorder: 'array', categoryarray: categories, title: { text: catField } },\n                showlegend: leftName !== rightName,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    postProcess: (figure) => {\n        // Absolute-value tick labels: compute explicit tickvals/ticktext so the\n        // negated left side still reads as a positive magnitude.\n        const xaxis = figure.layout?.xaxis;\n        if (xaxis?.range) {\n            const maxAbs = Math.max(Math.abs(xaxis.range[0]), Math.abs(xaxis.range[1]));\n            const step = maxAbs > 0 ? niceStep(maxAbs) : 1;\n            const vals: number[] = [];\n            for (let v = -Math.floor(maxAbs / step) * step; v <= maxAbs + 1e-9; v += step) vals.push(Math.round(v * 1e6) / 1e6);\n            xaxis.tickvals = vals;\n            xaxis.ticktext = vals.map(v => String(Math.abs(v)));\n        }\n    },\n    properties: [] as ChartPropertyDef[],\n};\n\nfunction niceStep(maxAbs: number): number {\n    const target = maxAbs / 4;\n    const pow = Math.pow(10, Math.floor(Math.log10(Math.max(target, 1e-9))));\n    const frac = target / pow;\n    const nice = frac <= 1 ? 1 : frac <= 2 ? 2 : frac <= 5 ? 5 : 10;\n    return nice * pow;\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Line Chart template (single + multi-series).\n *\n * Mirrors the Chart.js Line template's decisions. Plotly differences:\n *   - temporal x uses Plotly's native `date` axis (ISO strings), no tick\n *     callback needed — figures stay pure JSON\n *   - one trace per series; the legend comes from trace `name`s\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport {\n    extractCategories,\n    groupBy,\n    buildCategoryAlignedData,\n    coerceIsoDateForPlotly,\n    getPlotlyPalette,\n    getSeriesColor,\n} from './utils';\nimport { makeCartesianPivot } from '../../core/pivot';\n\nconst isDiscrete = (type: string | undefined) => type === 'nominal' || type === 'ordinal';\n\n/** Map the shared `interpolate` property onto Plotly's `line.shape`. */\nfunction lineShape(interpolate: unknown): 'linear' | 'spline' | 'hv' | 'vh' | 'hvh' {\n    switch (interpolate) {\n        case 'monotone':\n        case 'basis':\n        case 'cardinal':\n        case 'catmull-rom':\n            return 'spline';\n        case 'step':\n            return 'hvh';\n        case 'step-before':\n            return 'vh';\n        case 'step-after':\n            return 'hv';\n        default:\n            return 'linear';\n    }\n}\n\nexport const plLineChartDef: ChartTemplateDef = {\n    chart: 'Line Chart',\n    template: { mark: 'line', encoding: {} },\n    channels: ['x', 'y', 'color', 'opacity', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    declareLayoutMode: () => ({\n        paramOverrides: { continuousMarkCrossSection: { x: 100, y: 20, seriesCountAxis: 'auto' }, facetAspectRatioResistance: 0.5 },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const colorField = channelSemantics.color?.field;\n\n        if (!xCS?.field || !yCS?.field) return;\n        const xField = xCS.field;\n        const yField = yCS.field;\n\n        const xIsDiscrete = isDiscrete(xCS.type);\n        const xIsTemporal = xCS.type === 'temporal';\n\n        const mapX = (raw: unknown) => (xIsTemporal ? coerceIsoDateForPlotly(raw) : raw);\n\n        const categories = xIsDiscrete\n            ? extractCategories(table, xField, xCS.ordinalSortOrder)\n            : undefined;\n\n        const shape = lineShape(chartProperties?.interpolate);\n        const showPoints = chartProperties?.showPoints === true;\n        const mode = showPoints ? 'lines+markers' : 'lines';\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        const traces: any[] = [];\n        const makeTrace = (name: string, rows: any[], colorIndex: number) => {\n            const xVals = xIsDiscrete\n                ? categories!\n                : rows.map(r => mapX(r[xField]));\n            const yVals = xIsDiscrete\n                ? buildCategoryAlignedData(rows, xField, yField, categories!)\n                : rows.map(r => (r[yField] == null ? null : r[yField]));\n            return {\n                type: 'scatter',\n                mode,\n                name,\n                x: xVals,\n                y: yVals,\n                line: { color: getSeriesColor(palette, colorIndex), shape },\n            };\n        };\n\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                traces.push(makeTrace(name, rows, i));\n                i++;\n            }\n        } else {\n            traces.push(makeTrace(yField, table, 0));\n        }\n\n        const xAxisSpec: any = { title: { text: xField } };\n        if (xIsDiscrete) {\n            xAxisSpec.type = 'category';\n            xAxisSpec.categoryorder = 'array';\n            xAxisSpec.categoryarray = categories;\n        } else if (xIsTemporal) {\n            xAxisSpec.type = 'date';\n        }\n\n        const yAxisSpec: any = { title: { text: yField } };\n        if (yCS.zero) {\n            yAxisSpec.rangemode = yCS.zero.zero !== false ? 'tozero' : 'normal';\n        }\n\n        const figure: any = {\n            data: traces,\n            layout: {\n                xaxis: xAxisSpec,\n                yaxis: yAxisSpec,\n                showlegend: !!colorField,\n            },\n        };\n\n        Object.assign(spec, figure);\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        {\n            key: 'interpolate', label: 'Curve', type: 'discrete', options: [\n                { value: undefined, label: 'Default (linear)' },\n                { value: 'linear', label: 'Linear' },\n                { value: 'monotone', label: 'Monotone (smooth)' },\n                { value: 'step', label: 'Step' },\n                { value: 'step-before', label: 'Step Before' },\n                { value: 'step-after', label: 'Step After' },\n                { value: 'basis', label: 'Basis (smooth)' },\n                { value: 'cardinal', label: 'Cardinal' },\n                { value: 'catmull-rom', label: 'Catmull-Rom' },\n            ],\n        } as ChartPropertyDef,\n        { key: 'showPoints', label: 'Show points', type: 'binary', defaultValue: false } as ChartPropertyDef,\n    ],\n    pivot: makeCartesianPivot({\n        permute: [['y', 'color']],\n        shift: ['color', 'group', 'column', 'row'],\n    }),\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Area Chart template (single + multi-series).\n *\n * Mirrors the Chart.js Area template's decisions. Plotly renders areas as\n * scatter traces with `fill`; multi-series stacking uses `stackgroup`\n * (the Plotly-native equivalent of Chart.js `fill: 'stack'`).\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport {\n    extractCategories,\n    groupBy,\n    buildCategoryAlignedData,\n    coerceIsoDateForPlotly,\n    getPlotlyPalette,\n    getSeriesColor,\n} from './utils';\nimport { makeCartesianPivot } from '../../core/pivot';\n\nconst isDiscrete = (type: string | undefined) => type === 'nominal' || type === 'ordinal';\n\n/** Map the shared `interpolate` property onto Plotly's `line.shape`. */\nfunction lineShape(interpolate: unknown): 'linear' | 'spline' | 'hv' | 'vh' | 'hvh' {\n    switch (interpolate) {\n        case 'monotone':\n        case 'basis':\n        case 'cardinal':\n        case 'catmull-rom':\n            return 'spline';\n        case 'step':\n            return 'hvh';\n        case 'step-before':\n            return 'vh';\n        case 'step-after':\n            return 'hv';\n        default:\n            return 'linear';\n    }\n}\n\n/** Hex → rgba with alpha, for translucent area fills. */\nfunction fillColor(hex: string, alpha: number): string {\n    const m = /^#?([0-9a-f]{6})$/i.exec(hex.trim());\n    if (!m) return hex;\n    const v = parseInt(m[1], 16);\n    const a = Math.max(0, Math.min(1, alpha));\n    return `rgba(${(v >> 16) & 255}, ${(v >> 8) & 255}, ${v & 255}, ${a})`;\n}\n\nexport const plAreaChartDef: ChartTemplateDef = {\n    chart: 'Area Chart',\n    template: { mark: 'area', encoding: {} },\n    channels: ['x', 'y', 'color', 'opacity', 'column', 'row'],\n    markCognitiveChannel: 'area',\n    declareLayoutMode: () => ({\n        paramOverrides: { continuousMarkCrossSection: { x: 100, y: 20, seriesCountAxis: 'auto' }, facetAspectRatioResistance: 0.5 },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const colorField = channelSemantics.color?.field;\n\n        if (!xCS?.field || !yCS?.field) return;\n        const xField = xCS.field;\n        const yField = yCS.field;\n\n        const xIsDiscrete = isDiscrete(xCS.type);\n        const xIsTemporal = xCS.type === 'temporal';\n        const mapX = (raw: unknown) => (xIsTemporal ? coerceIsoDateForPlotly(raw) : raw);\n\n        const categories = xIsDiscrete\n            ? extractCategories(table, xField, xCS.ordinalSortOrder)\n            : undefined;\n\n        const opacity = Number(chartProperties?.opacity ?? 0.4);\n        const stackMode = chartProperties?.stackMode;\n        const stacked = stackMode !== 'layered';\n        const shape = lineShape(chartProperties?.interpolate);\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        const traces: any[] = [];\n        const makeTrace = (name: string, rows: any[], colorIndex: number) => {\n            const xVals = xIsDiscrete ? categories! : rows.map(r => mapX(r[xField]));\n            const yVals = xIsDiscrete\n                ? buildCategoryAlignedData(rows, xField, yField, categories!)\n                : rows.map(r => (r[yField] == null ? null : r[yField]));\n            const color = getSeriesColor(palette, colorIndex);\n            const trace: any = {\n                type: 'scatter',\n                mode: 'lines',\n                name,\n                x: xVals,\n                y: yVals,\n                line: { color, shape },\n                fillcolor: fillColor(color, opacity),\n            };\n            if (colorField && stacked) {\n                trace.stackgroup = 'one';\n            } else {\n                trace.fill = 'tozeroy';\n            }\n            return trace;\n        };\n\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                traces.push(makeTrace(name, rows, i));\n                i++;\n            }\n        } else {\n            traces.push(makeTrace(yField, table, 0));\n        }\n\n        // 100%-stacked: Plotly normalizes a stackgroup when the FIRST trace in\n        // the group carries `groupnorm: 'percent'`.\n        if (colorField && stacked && stackMode === 'normalize' && traces.length > 0) {\n            traces[0].groupnorm = 'percent';\n        }\n\n        const xAxisSpec: any = { title: { text: xField } };\n        if (xIsDiscrete) {\n            xAxisSpec.type = 'category';\n            xAxisSpec.categoryorder = 'array';\n            xAxisSpec.categoryarray = categories;\n        } else if (xIsTemporal) {\n            xAxisSpec.type = 'date';\n        }\n\n        const yAxisSpec: any = { title: { text: yField } };\n        if (yCS.zero) {\n            yAxisSpec.rangemode = yCS.zero.zero !== false ? 'tozero' : 'normal';\n        }\n\n        const figure: any = {\n            data: traces,\n            layout: {\n                xaxis: xAxisSpec,\n                yaxis: yAxisSpec,\n                showlegend: !!colorField,\n            },\n        };\n\n        Object.assign(spec, figure);\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        {\n            key: 'interpolate', label: 'Curve', type: 'discrete', options: [\n                { value: undefined, label: 'Default (linear)' },\n                { value: 'linear', label: 'Linear' },\n                { value: 'monotone', label: 'Monotone (smooth)' },\n                { value: 'step', label: 'Step' },\n                { value: 'step-before', label: 'Step Before' },\n                { value: 'step-after', label: 'Step After' },\n                { value: 'basis', label: 'Basis (smooth)' },\n                { value: 'cardinal', label: 'Cardinal' },\n                { value: 'catmull-rom', label: 'Catmull-Rom' },\n            ],\n        } as ChartPropertyDef,\n        { key: 'opacity', label: 'Opacity', type: 'continuous', min: 0.1, max: 1, step: 0.05, defaultValue: 0.4 } as ChartPropertyDef,\n        {\n            key: 'stackMode', label: 'Stack', type: 'discrete',\n            check: (ctx) => ({ applicable: !!ctx.encodings.color?.field }),\n            options: [\n                { value: undefined, label: 'Stacked (default)' },\n                { value: 'normalize', label: 'Normalize (100%)' },\n                { value: 'layered', label: 'Layered (overlap)' },\n            ],\n        } as ChartPropertyDef,\n    ],\n    pivot: makeCartesianPivot({\n        permute: [['y', 'color']],\n        shift: ['color', 'group', 'column', 'row'],\n    }),\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Scatter Plot template.\n *\n * Mirrors the Chart.js Scatter template's decisions (color grouping, zero\n * baseline per axis, canvas-aware point radius) as Plotly `scatter` traces\n * in `markers` mode.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { groupBy, getPlotlyPalette, getSeriesColor } from './utils';\nimport { makeCartesianPivot } from '../../core/pivot';\n\n/** Compute a reasonable marker diameter based on canvas area and point count. */\nfunction computeMarkerSize(width: number, height: number, pointCount: number): number {\n    const canvasArea = width * height;\n    const areaPerPoint = canvasArea / Math.max(1, pointCount);\n    const idealRadius = Math.sqrt(areaPerPoint * 0.05) / 2;\n    const radius = Math.max(2, Math.min(6, Math.round(idealRadius)));\n    return radius * 2;\n}\n\nexport const plScatterPlotDef: ChartTemplateDef = {\n    chart: 'Scatter Plot',\n    template: { mark: 'circle', encoding: {} },\n    channels: ['x', 'y', 'color', 'size', 'opacity', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties, colorDecisions } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        const colorField = channelSemantics.color?.field;\n        const colorType = channelSemantics.color?.type;\n        const isTemporalColor = colorType === 'temporal';\n        const isContinuousColor = !!colorField && (colorType === 'quantitative' || isTemporalColor);\n\n        if (!xField || !yField) return;\n\n        const opacity = Number(chartProperties?.opacity ?? 1);\n        const traces: any[] = [];\n\n        if (isContinuousColor && colorField) {\n            // A quantitative/temporal color channel is a numeric scale, not a\n            // set of legend groups — one trace with `marker.color` as a\n            // per-point array plus a native colorscale/colorbar (Plotly's\n            // built-in continuous-color support), not a group-by split.\n            const toColorVal = isTemporalColor\n                ? (v: any) => (v != null ? new Date(v).getTime() : NaN)\n                : (v: any) => (v != null ? Number(v) : NaN);\n            const colorVals = table.map((r: any) => toColorVal(r[colorField])).filter((v: number) => !isNaN(v));\n            const cmin = colorVals.length ? Math.min(...colorVals) : 0;\n            const cmax = colorVals.length ? Math.max(...colorVals) : 1;\n            const decision = colorDecisions?.color ?? colorDecisions?.group;\n            const diverging = decision?.schemeType === 'diverging';\n            traces.push({\n                type: 'scatter',\n                mode: 'markers',\n                name: colorField,\n                x: table.map((r: any) => r[xField]),\n                y: table.map((r: any) => r[yField]),\n                marker: {\n                    color: table.map((r: any) => toColorVal(r[colorField])),\n                    colorscale: diverging ? 'RdBu' : 'Viridis',\n                    cmin, cmax,\n                    showscale: true,\n                    colorbar: { title: { text: colorField } },\n                    opacity,\n                    line: { color: '#ffffff', width: 0.5 },\n                },\n            });\n        } else {\n            const palette = getPlotlyPalette(ctx, 'color');\n            const makeTrace = (name: string | undefined, rows: any[], colorIndex: number) => ({\n                type: 'scatter',\n                mode: 'markers',\n                ...(name != null ? { name } : {}),\n                x: rows.map(r => r[xField]),\n                y: rows.map(r => r[yField]),\n                marker: {\n                    color: getSeriesColor(palette, colorIndex),\n                    opacity,\n                    line: { color: '#ffffff', width: 0.5 },\n                },\n            });\n\n            if (colorField) {\n                let i = 0;\n                for (const [name, rows] of groupBy(table, colorField)) {\n                    traces.push(makeTrace(name, rows, i));\n                    i++;\n                }\n            } else {\n                traces.push(makeTrace(undefined, table, 0));\n            }\n        }\n\n        const xAxisSpec: any = { title: { text: xField } };\n        const yAxisSpec: any = { title: { text: yField } };\n        if (channelSemantics.x?.zero) {\n            xAxisSpec.rangemode = channelSemantics.x.zero.zero !== false ? 'tozero' : 'normal';\n        }\n        if (channelSemantics.y?.zero) {\n            yAxisSpec.rangemode = channelSemantics.y.zero.zero !== false ? 'tozero' : 'normal';\n        }\n\n        const figure: any = {\n            data: traces,\n            layout: {\n                xaxis: xAxisSpec,\n                yaxis: yAxisSpec,\n                showlegend: !!colorField && !isContinuousColor,\n            },\n        };\n\n        Object.assign(spec, figure);\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'opacity', label: 'Opacity', type: 'continuous', min: 0.1, max: 1, step: 0.05, defaultValue: 1 } as ChartPropertyDef,\n    ],\n    pivot: makeCartesianPivot({\n        transpose: [['x', 'y']],\n        permute: [['x', 'y', 'color', 'size']],\n        shift: ['color', 'group', 'column', 'row'],\n    }),\n    postProcess: (figure, ctx) => {\n        if (!Array.isArray(figure.data)) return;\n        const w = figure._width || ctx.canvasSize.width;\n        const h = figure._height || ctx.canvasSize.height;\n        const size = computeMarkerSize(w, h, ctx.table.length);\n        for (const trace of figure.data) {\n            if (trace?.marker && trace.marker.size == null) {\n                trace.marker.size = size;\n            }\n        }\n    },\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Histogram template.\n *\n * Plotly has a native `histogram` trace: pass raw numeric values and\n * `nbinsx` and Plotly computes the bins client-side (matching Vega-Lite's\n * `bin: true` transform) — no manual bin-counting like Chart.js/ECharts need.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { groupBy, getPlotlyPalette, getSeriesColor } from './utils';\n\nexport const plHistogramDef: ChartTemplateDef = {\n    chart: 'Histogram',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['x', 'color', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xField = channelSemantics.x?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!xField) return;\n\n        const binCount = chartProperties?.binCount || 10;\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const traces: any[] = [];\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                traces.push({\n                    type: 'histogram',\n                    name,\n                    x: rows.map((r: any) => Number(r[xField])).filter((v: number) => isFinite(v)),\n                    nbinsx: binCount,\n                    marker: { color: getSeriesColor(palette, i) },\n                    opacity: 0.75,\n                });\n                i++;\n            }\n        } else {\n            traces.push({\n                type: 'histogram',\n                x: table.map((r: any) => Number(r[xField])).filter((v: number) => isFinite(v)),\n                nbinsx: binCount,\n                marker: { color: getSeriesColor(palette, 0) },\n            });\n        }\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                barmode: colorField ? 'stack' : undefined,\n                bargap: 0.02,\n                xaxis: { title: { text: xField } },\n                yaxis: { title: { text: 'Count' }, rangemode: 'tozero' },\n                showlegend: !!colorField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'binCount', label: 'Max Bins', type: 'continuous', min: 5, max: 50, step: 1, defaultValue: 10 } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * =============================================================================\n * TYPE REGISTRY — Single Source of Truth\n * =============================================================================\n *\n * Every recognized semantic type is registered here with its orthogonal\n * compilation dimensions. This is the ONLY place where per-type properties\n * are defined. All other files (field-semantics.ts, semantic-types.ts)\n * derive helper functions by querying this registry.\n *\n * To add a new semantic type: add an entry here.\n * To query a type's properties: use `getRegistryEntry()`.\n * =============================================================================\n */\n\n// ---------------------------------------------------------------------------\n// Visualization Categories\n// ---------------------------------------------------------------------------\n\nexport type VisCategory = 'quantitative' | 'ordinal' | 'nominal' | 'temporal' | 'geographic';\n\n// ---------------------------------------------------------------------------\n// Registry Dimension Types\n// ---------------------------------------------------------------------------\n\n/** Top-level type family */\nexport type T0Family = 'Temporal' | 'Measure' | 'Discrete' | 'Geographic' | 'Categorical' | 'Identifier';\n\n/** Mid-level category within a family */\nexport type T1Category =\n    | 'DateTime' | 'DateGranule' | 'Duration'\n    | 'Amount' | 'Physical' | 'Proportion' | 'SignedMeasure' | 'GenericMeasure'\n    | 'Rank' | 'Score'\n    | 'GeoCoordinate' | 'GeoPlace'\n    | 'Entity' | 'Coded' | 'Binned'\n    | 'ID';\n\nexport type DomainShape = 'open' | 'bounded' | 'fixed' | 'cyclic';\nexport type AggRole = 'additive' | 'intensive' | 'signed-additive' | 'dimension' | 'identifier';\nexport type DivergingClass = 'none' | 'inherent' | 'conditional';\nexport type FormatClass = 'currency' | 'percent'\n    | 'unit-suffix' | 'integer' | 'decimal' | 'plain';\n\n/**\n * Zero-baseline classification for quantitative axes.\n *\n * - `meaningful`: 0 = absence of the measured thing; axis should include 0 (Count, Revenue).\n * - `arbitrary`:  0 is arbitrary or nonexistent; data-fit the axis (Temperature, Year, Rank).\n * - `contextual`: 0 is meaningful but data-fitting may be better when data is far from 0 (Percentage, Score).\n * - `none`:       Not a quantitative type; zero question is irrelevant (all categorical/temporal types).\n */\nexport type ZeroBaseline = 'meaningful' | 'arbitrary' | 'contextual' | 'none';\n\nexport interface TypeRegistryEntry {\n    t0: T0Family;\n    t1: T1Category;\n    visEncodings: VisCategory[];\n    aggRole: AggRole;\n    domainShape: DomainShape;\n    diverging: DivergingClass;\n    formatClass: FormatClass;\n    /** Zero-baseline classification for quantitative axes */\n    zeroBaseline: ZeroBaseline;\n    /** Domain padding fraction for non-zero axes (0 = no padding) */\n    zeroPad: number;\n}\n\n// ---------------------------------------------------------------------------\n// The Registry\n// ---------------------------------------------------------------------------\n\n/**\n * Static registry mapping every recognized semantic type to its\n * tier membership and orthogonal compilation dimensions.\n *\n * Types not in this registry are treated as 'Unknown' → nominal/plain.\n */\nconst TYPE_REGISTRY: Record<string, TypeRegistryEntry> = {\n    // --- Temporal: DateTime ---\n    DateTime:      { t0: 'Temporal', t1: 'DateTime', visEncodings: ['temporal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none', formatClass: 'plain',           zeroBaseline: 'none', zeroPad: 0 },\n    Date:          { t0: 'Temporal', t1: 'DateTime', visEncodings: ['temporal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none', formatClass: 'plain',           zeroBaseline: 'none', zeroPad: 0 },\n    Time:          { t0: 'Temporal', t1: 'DateTime', visEncodings: ['temporal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none', formatClass: 'plain',           zeroBaseline: 'none', zeroPad: 0 },\n    Timestamp:     { t0: 'Temporal', t1: 'DateTime', visEncodings: ['temporal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none', formatClass: 'plain',           zeroBaseline: 'none', zeroPad: 0 },\n\n    // --- Temporal: DateGranule ---\n    Year:          { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['temporal', 'ordinal'], aggRole: 'dimension', domainShape: 'open',    diverging: 'none', formatClass: 'integer',        zeroBaseline: 'arbitrary', zeroPad: 0.03 },\n    Quarter:       { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['ordinal'],            aggRole: 'dimension', domainShape: 'cyclic',  diverging: 'none', formatClass: 'plain',          zeroBaseline: 'none', zeroPad: 0 },\n    Month:         { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['ordinal'],            aggRole: 'dimension', domainShape: 'cyclic',  diverging: 'none', formatClass: 'plain',          zeroBaseline: 'none', zeroPad: 0 },\n    Week:          { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['ordinal'],            aggRole: 'dimension', domainShape: 'cyclic',  diverging: 'none', formatClass: 'plain',          zeroBaseline: 'none', zeroPad: 0 },\n    Day:           { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['ordinal'],            aggRole: 'dimension', domainShape: 'cyclic',  diverging: 'none', formatClass: 'plain',          zeroBaseline: 'none', zeroPad: 0 },\n    Hour:          { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['ordinal'],            aggRole: 'dimension', domainShape: 'cyclic',  diverging: 'none', formatClass: 'integer',        zeroBaseline: 'arbitrary', zeroPad: 0 },\n    YearMonth:     { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['temporal', 'ordinal'], aggRole: 'dimension', domainShape: 'open',   diverging: 'none', formatClass: 'plain',          zeroBaseline: 'none', zeroPad: 0 },\n    YearQuarter:   { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['temporal', 'ordinal'], aggRole: 'dimension', domainShape: 'open',   diverging: 'none', formatClass: 'plain',          zeroBaseline: 'none', zeroPad: 0 },\n    YearWeek:      { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['temporal', 'ordinal'], aggRole: 'dimension', domainShape: 'open',   diverging: 'none', formatClass: 'plain',          zeroBaseline: 'none', zeroPad: 0 },\n    Decade:        { t0: 'Temporal', t1: 'DateGranule', visEncodings: ['temporal', 'ordinal'], aggRole: 'dimension', domainShape: 'open',   diverging: 'none', formatClass: 'integer',        zeroBaseline: 'arbitrary', zeroPad: 0.03 },\n\n    // --- Temporal: Duration ---\n    Duration:      { t0: 'Temporal', t1: 'Duration', visEncodings: ['quantitative'],       aggRole: 'additive',   domainShape: 'open',    diverging: 'none', formatClass: 'unit-suffix',     zeroBaseline: 'meaningful', zeroPad: 0 },\n\n    // --- Measure: Amount ---\n    Amount:        { t0: 'Measure', t1: 'Amount', visEncodings: ['quantitative'],          aggRole: 'additive',   domainShape: 'open',    diverging: 'none',        formatClass: 'currency',   zeroBaseline: 'meaningful', zeroPad: 0 },\n    Price:         { t0: 'Measure', t1: 'Amount', visEncodings: ['quantitative'],          aggRole: 'intensive',  domainShape: 'open',    diverging: 'none',        formatClass: 'currency',   zeroBaseline: 'meaningful', zeroPad: 0 },\n\n    // --- Measure: Physical ---\n    Quantity:      { t0: 'Measure', t1: 'Physical', visEncodings: ['quantitative'],        aggRole: 'additive',   domainShape: 'open',    diverging: 'none',        formatClass: 'unit-suffix', zeroBaseline: 'meaningful', zeroPad: 0 },\n    Temperature:   { t0: 'Measure', t1: 'Physical', visEncodings: ['quantitative'],        aggRole: 'intensive',  domainShape: 'open',    diverging: 'conditional', formatClass: 'unit-suffix', zeroBaseline: 'arbitrary', zeroPad: 0.05 },\n\n    // --- Measure: Proportion ---\n    Percentage:    { t0: 'Measure', t1: 'Proportion', visEncodings: ['quantitative'],      aggRole: 'intensive',  domainShape: 'bounded', diverging: 'none',        formatClass: 'percent',    zeroBaseline: 'contextual', zeroPad: 0 },\n\n    // --- Measure: SignedMeasure ---\n    Profit:             { t0: 'Measure', t1: 'SignedMeasure', visEncodings: ['quantitative'], aggRole: 'signed-additive', domainShape: 'open', diverging: 'conditional', formatClass: 'decimal',          zeroBaseline: 'meaningful', zeroPad: 0 },\n    PercentageChange:   { t0: 'Measure', t1: 'SignedMeasure', visEncodings: ['quantitative'], aggRole: 'intensive',       domainShape: 'open', diverging: 'conditional', formatClass: 'percent',          zeroBaseline: 'contextual', zeroPad: 0.05 },\n    Sentiment:          { t0: 'Measure', t1: 'SignedMeasure', visEncodings: ['quantitative'], aggRole: 'intensive',       domainShape: 'open', diverging: 'inherent',    formatClass: 'decimal',          zeroBaseline: 'meaningful', zeroPad: 0 },\n    Correlation:        { t0: 'Measure', t1: 'SignedMeasure', visEncodings: ['quantitative'], aggRole: 'intensive',       domainShape: 'bounded', diverging: 'inherent', formatClass: 'decimal',          zeroBaseline: 'meaningful', zeroPad: 0 },\n\n    // --- Measure: GenericMeasure ---\n    Count:         { t0: 'Measure', t1: 'GenericMeasure', visEncodings: ['quantitative'],  aggRole: 'additive',   domainShape: 'open',    diverging: 'none',        formatClass: 'integer',    zeroBaseline: 'meaningful', zeroPad: 0 },\n    Number:        { t0: 'Measure', t1: 'GenericMeasure', visEncodings: ['quantitative'],  aggRole: 'additive',   domainShape: 'open',    diverging: 'none',        formatClass: 'decimal',    zeroBaseline: 'meaningful', zeroPad: 0 },\n\n    // --- Discrete ---\n    Rank:          { t0: 'Discrete', t1: 'Rank',  visEncodings: ['ordinal'],               aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'integer',    zeroBaseline: 'arbitrary', zeroPad: 0.08 },\n    Score:         { t0: 'Discrete', t1: 'Score', visEncodings: ['quantitative', 'ordinal'], aggRole: 'intensive', domainShape: 'bounded', diverging: 'conditional', formatClass: 'decimal',    zeroBaseline: 'contextual', zeroPad: 0.05 },\n    ID:            { t0: 'Identifier', t1: 'ID',  visEncodings: ['nominal'],               aggRole: 'identifier', domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'arbitrary', zeroPad: 0 },\n\n    // --- Geographic ---\n    Latitude:      { t0: 'Geographic', t1: 'GeoCoordinate', visEncodings: ['quantitative', 'geographic'], aggRole: 'dimension', domainShape: 'fixed', diverging: 'none', formatClass: 'decimal',    zeroBaseline: 'arbitrary', zeroPad: 0.02 },\n    Longitude:     { t0: 'Geographic', t1: 'GeoCoordinate', visEncodings: ['quantitative', 'geographic'], aggRole: 'dimension', domainShape: 'fixed', diverging: 'none', formatClass: 'decimal',    zeroBaseline: 'arbitrary', zeroPad: 0.02 },\n    Country:       { t0: 'Geographic', t1: 'GeoPlace', visEncodings: ['nominal'],         aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    State:         { t0: 'Geographic', t1: 'GeoPlace', visEncodings: ['nominal'],         aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    City:          { t0: 'Geographic', t1: 'GeoPlace', visEncodings: ['nominal'],         aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    Region:        { t0: 'Geographic', t1: 'GeoPlace', visEncodings: ['nominal'],         aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    Address:       { t0: 'Geographic', t1: 'GeoPlace', visEncodings: ['nominal'],         aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    ZipCode:       { t0: 'Geographic', t1: 'GeoPlace', visEncodings: ['nominal'],         aggRole: 'identifier', domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    // --- Categorical: Entity ---\n    Category:      { t0: 'Categorical', t1: 'Entity', visEncodings: ['nominal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    Name:          { t0: 'Categorical', t1: 'Entity', visEncodings: ['nominal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n\n    // --- Categorical: Coded ---\n    Status:        { t0: 'Categorical', t1: 'Coded', visEncodings: ['nominal'],            aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    Boolean:       { t0: 'Categorical', t1: 'Coded', visEncodings: ['nominal'],            aggRole: 'dimension',  domainShape: 'fixed',   diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n    Direction:     { t0: 'Categorical', t1: 'Coded', visEncodings: ['ordinal', 'nominal'], aggRole: 'dimension',  domainShape: 'cyclic',  diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n\n    // --- Categorical: Binned ---\n    Range:         { t0: 'Categorical', t1: 'Binned', visEncodings: ['ordinal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n\n    // --- Fallbacks ---\n    Unknown:       { t0: 'Categorical', t1: 'Entity', visEncodings: ['nominal'],           aggRole: 'dimension',  domainShape: 'open',    diverging: 'none',        formatClass: 'plain',      zeroBaseline: 'none', zeroPad: 0 },\n};\n\n/** Default entry for unrecognized types */\nconst UNKNOWN_ENTRY: TypeRegistryEntry = {\n    t0: 'Categorical', t1: 'Entity',\n    visEncodings: ['nominal'],\n    aggRole: 'dimension',\n    domainShape: 'open',\n    diverging: 'none',\n    formatClass: 'plain',\n    zeroBaseline: 'none',\n    zeroPad: 0,\n};\n\n// ---------------------------------------------------------------------------\n// Public API\n// ---------------------------------------------------------------------------\n\n/** Look up a semantic type in the registry. Falls back to UNKNOWN_ENTRY. */\nexport function getRegistryEntry(semanticType: string): TypeRegistryEntry {\n    return TYPE_REGISTRY[semanticType] ?? UNKNOWN_ENTRY;\n}\n\n/** Check whether a semantic type string is explicitly registered. */\nexport function isRegistered(semanticType: string): boolean {\n    return semanticType in TYPE_REGISTRY;\n}\n\n/**\n * Get all registered type names.\n * Useful for validation or iterating over the type system.\n */\nexport function getRegisteredTypes(): string[] {\n    return Object.keys(TYPE_REGISTRY);\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\nimport { getRegistryEntry, getRegisteredTypes, isRegistered, type VisCategory } from './type-registry';\nexport type { VisCategory } from './type-registry';\n\n/**\n * =============================================================================\n * SEMANTIC TYPE SYSTEM\n * =============================================================================\n * \n * Semantic types classify data fields for intelligent chart recommendations.\n * Uses strings for flexibility and easy JSON serialization.\n * \n * DESIGN GOALS:\n * 1. Comprehensive: Cover common data types seen in real-world datasets\n * 2. Visualization-aware: Map to Vega-Lite encoding types (Q, O, N, T)\n * 3. Hierarchical: Support generalization via lattice structure\n * 4. Simple: Use strings with helper functions, no complex enums\n * \n * =============================================================================\n * SEMANTIC TYPE LATTICE\n * =============================================================================\n * \n *                           ┌─────────────┐\n *                           │   AnyType   │\n *                           └──────┬──────┘\n *            ┌────────────────────┼────────────────────┐\n *            ▼                    ▼                    ▼\n *     ┌──────────┐         ┌──────────┐         ┌───────-───┐\n *     │ Temporal │         │ Numeric  │         │Categorical│\n *     └────┬─────┘         └────┬─────┘         └─────┬────┘\n *          │                    │                     │\n *    ┌─────┴─────┐        ┌─────┴─────┐         ┌─────┴─────┐\n *    │           │        │           │         │           │\n *  DateTime     Granule    Measure   Discrete    Entity     Coded\n *    │           │        │           │         │           │\n * DateTime    Year     Quantity    Rank      Category   Status\n * Date        Month    Count       Score     Name       Boolean\n * Time        Day      Price       ID                   Direction\n *             Quarter  Percentage\n *             Decade   Amount\n *                      Temperature\n * \n * =============================================================================\n */\n\n// ---------------------------------------------------------------------------\n// All Semantic Types (as string constants)\n// ---------------------------------------------------------------------------\n\n/**\n * All recognized semantic types.\n * Use these constants when comparing or assigning types.\n */\nexport const SemanticTypes = {\n    // =========================================================================\n    // TEMPORAL TYPES - Time-related concepts\n    // =========================================================================\n    \n    // Point-in-time (full timestamp precision)\n    DateTime: 'DateTime',       // Full date and time: \"2024-01-15T14:30:00\"\n    Date: 'Date',               // Date only: \"2024-01-15\"\n    Time: 'Time',               // Time only: \"14:30:00\"\n    Timestamp: 'Timestamp',     // Unix timestamp (seconds or milliseconds since epoch)\n    \n    // Temporal granules (discrete time units, inherently ordered)\n    Year: 'Year',               // \"2024\" (as a time unit, not a measure)\n    Quarter: 'Quarter',         // \"Q1\", \"Q2\", \"2024-Q1\"\n    Month: 'Month',             // \"January\", \"Jan\", 1-12\n    Week: 'Week',               // \"Week 1\", 1-52\n    Day: 'Day',                 // \"Monday\", \"Mon\", 1-31\n    Hour: 'Hour',               // 0-23\n    \n    // Combined temporal\n    YearMonth: 'YearMonth',     // \"2024-01\", \"Jan 2024\"\n    YearQuarter: 'YearQuarter', // \"2024-Q1\"\n    YearWeek: 'YearWeek',       // \"2024-W01\"\n    Decade: 'Decade',           // \"1990s\", \"2000s\"\n    \n    // Temporal duration/span\n    Duration: 'Duration',       // Time span: \"2 hours\", \"3 days\", milliseconds\n    \n    // =========================================================================\n    // NUMERIC MEASURE TYPES - Continuous values for aggregation\n    // =========================================================================\n    \n    Quantity: 'Quantity',       // Generic continuous measure\n    Count: 'Count',             // Discrete count of items\n    Amount: 'Amount',           // Monetary or general amounts\n    Price: 'Price',             // Unit price\n    Percentage: 'Percentage',   // 0-100% or 0-1 ratio\n    Temperature: 'Temperature', // Degrees\n    \n    // Signed measures (can be positive or negative, zero has meaning)\n    Profit: 'Profit',             // Gain/loss, profit/deficit\n    PercentageChange: 'PercentageChange', // Growth rate, change %\n    Sentiment: 'Sentiment',       // Positive/negative sentiment score\n    Correlation: 'Correlation',   // Positive/negative correlation coefficient\n    \n    // =========================================================================\n    // NUMERIC DISCRETE TYPES - Numbers with ordinal/identifier meaning\n    // =========================================================================\n    \n    Rank: 'Rank',               // Position in ordered list: 1st, 2nd, 3rd\n    ID: 'ID',                   // Unique identifier (not for aggregation!)\n    Score: 'Score',             // Rating score: 1-5, 1-10, 0-100\n    \n    // =========================================================================\n    // GEOGRAPHIC TYPES - Location-based data\n    // =========================================================================\n    \n    Latitude: 'Latitude',       // -90 to 90\n    Longitude: 'Longitude',     // -180 to 180\n    Country: 'Country',         // Country name or code\n    State: 'State',             // State/Province\n    City: 'City',               // City name\n    Region: 'Region',           // Geographic region\n    Address: 'Address',         // Street address (geo lookup)\n    ZipCode: 'ZipCode',         // Postal code (geo lookup)\n    \n    // =========================================================================\n    // CATEGORICAL ENTITY TYPES - Named entities\n    // =========================================================================\n    \n    Category: 'Category',       // Discrete category / product / entity class\n    Name: 'Name',               // Generic named entity (person, company, product, etc.)\n    \n    // =========================================================================\n    // CATEGORICAL CODED TYPES - Discrete categories/statuses\n    // =========================================================================\n    \n    Status: 'Status',           // State: \"Active\", \"Pending\", \"Closed\"\n    Boolean: 'Boolean',         // True/False, Yes/No\n    Direction: 'Direction',     // Compass direction: \"N\", \"NE\", \"East\", etc.\n    \n    // =========================================================================\n    // BINNED/RANGE TYPES - Discretized continuous values\n    // =========================================================================\n    \n    Range: 'Range',             // Numeric range, age group, binned values\n    \n    // =========================================================================\n    // FALLBACK TYPES\n    // =========================================================================\n    \n    Number: 'Number',           // Generic number (measure fallback)\n    Unknown: 'Unknown',         // Cannot determine type\n} as const;\n\n// Type for any semantic type string\nexport type SemanticType = typeof SemanticTypes[keyof typeof SemanticTypes];\n\n// ---------------------------------------------------------------------------\n// Visualization Categories  →  defined in type-registry.ts (single source of truth)\n// ---------------------------------------------------------------------------\n\n// ---------------------------------------------------------------------------\n// Type Sets for Classification — derived from type-registry.ts\n// ---------------------------------------------------------------------------\n\n// timeseriesXTypes: REMOVED — derived from type-registry.ts via isTimeSeriesType()\n\n/**\n * Types suitable for quantitative encoding (true continuous measures).\n *\n * Derived from the registry: aggRole ∈ {additive, intensive, signed-additive},\n * excluding Score/Rating (t1='Score') which behave as bounded ordinal scales\n * for vis purposes (e.g., 1–5 star rating). This is an intentional vis-level\n * distinction, not a mathematical one.\n */\nexport const measureTypes = new Set<string>(\n    getRegisteredTypes().filter(t => {\n        const e = getRegistryEntry(t);\n        return ['additive', 'intensive', 'signed-additive'].includes(e.aggRole) && e.t1 !== 'Score';\n    })\n);\n\n/** Numeric types that should NOT be used as measures (don't aggregate) */\nexport const nonMeasureNumericTypes = new Set<string>([\n    'Rank', 'ID', 'Score',\n    'Year', 'Month', 'Day', 'Hour',\n    'Latitude', 'Longitude',\n]);\n\n/**\n * Types suitable for categorical color/grouping encoding.\n *\n * Derived from the registry: types that include 'nominal' in visEncodings\n * (at any position — Direction has ['ordinal','nominal']),\n * plus binned types (Range, AgeGroup) which also work as categorical for\n * color/grouping despite having 'ordinal' as their primary encoding.\n * Excludes identifiers (ID) which are nominal but not useful for grouping.\n */\nexport const categoricalTypes = new Set<string>(\n    getRegisteredTypes().filter(t => {\n        const e = getRegistryEntry(t);\n        return (e.visEncodings.includes('nominal') && e.aggRole !== 'identifier') || e.t1 === 'Binned';\n    })\n);\n\n/**\n * Types suitable for ordinal encoding (have inherent order).\n *\n * Derived from the registry: types whose visEncodings include 'ordinal'.\n */\nexport const ordinalTypes = new Set<string>(\n    getRegisteredTypes().filter(t => {\n        const e = getRegistryEntry(t);\n        return e.visEncodings.includes('ordinal');\n    })\n);\n\n// geoTypes, geoCoordinateTypes, geoLocationTypes: REMOVED — derived from type-registry.ts\n// via isGeoType(), isGeoCoordinateType(), isGeoLocationString()\n\n// ---------------------------------------------------------------------------\n// Type Hierarchy — REMOVED\n// ---------------------------------------------------------------------------\n// The typeHierarchy map and its helper functions (getParentType,\n// getAncestorTypes, isSubtypeOf) have been removed. They were unused\n// externally — no consumer ever imported them.\n//\n// The registry's t0/t1 dimensions capture family grouping (e.g., all\n// Amount types share t1='Amount'). If fine-grained parent-child lattice\n// traversal is ever needed in the future, it can be rebuilt from\n// type-registry.ts with an explicit `parent` field per entry.\n// ---------------------------------------------------------------------------\n\n// visCategoryMap: REMOVED — derived from type-registry.ts via getRegistryEntry().visEncodings[0]\n\n// ---------------------------------------------------------------------------\n// Helper Functions\n// ---------------------------------------------------------------------------\n\n/**\n * Get the Vega-Lite visualization category for a semantic type.\n * Derived from the registry's visEncodings[0] (primary encoding).\n * Returns null for unrecognised types so callers can fall back\n * to data-driven inference.\n */\nexport function getVisCategory(semanticType: string): VisCategory | null {\n    // Return null for empty, 'Unknown', or any unregistered type string\n    // so callers fall back to data-driven inference (inferVisCategory).\n    if (!semanticType || !isRegistered(semanticType)) return null;\n    return getRegistryEntry(semanticType).visEncodings[0] ?? null;\n}\n\n\n/**\n * Infer a VisCategory from raw data values when no semantic type is available.\n * Mirrors the DataType → VL encoding type mapping:\n *   number/integer → quantitative, boolean → nominal, date → temporal, string → nominal.\n */\nexport function inferVisCategory(values: any[]): VisCategory {\n    if (values.length === 0) return 'nominal';\n    const isBoolean = (v: any) => v === true || v === false || Object.prototype.toString.call(v) === '[object Boolean]';\n    const isNumber = (v: any) => !isNaN(+v) && !(Object.prototype.toString.call(v) === '[object Date]');\n    // Date.parse is too permissive in V8 — \"FY 2018\", \"hello world 2018\" all parse.\n    // Require the string to start with a digit or a known month-name prefix.\n    const looksLikeDate = (s: string) => /^\\d|^(jan|feb|mar|apr|may|jun|jul|aug|sep|oct|nov|dec)/i.test(s.trim());\n    const isDate = (v: any) => {\n        if (v instanceof Date) return !isNaN(v.getTime());\n        if (typeof v === 'string') return looksLikeDate(v) && !isNaN(Date.parse(v));\n        return !isNaN(Date.parse(v));\n    };\n    const nonNull = values.filter(v => v != null);\n    if (nonNull.length === 0) return 'nominal';\n    if (nonNull.every(isBoolean)) return 'nominal';\n    if (nonNull.every(isNumber)) return 'quantitative';\n    if (nonNull.every(isDate)) return 'temporal';\n    return 'nominal';\n}\n\n/**\n * Check if a semantic type is a true measure (suitable for quantitative encoding).\n */\nexport function isMeasureType(semanticType: string): boolean {\n    return measureTypes.has(semanticType);\n}\n\n/**\n * Check if a semantic type is suitable for time-series X axis.\n * Derived from type-registry: t0 === 'Temporal' but not Duration.\n */\nexport function isTimeSeriesType(semanticType: string): boolean {\n    const entry = getRegistryEntry(semanticType);\n    return entry.t0 === 'Temporal' && entry.t1 !== 'Duration';\n}\n\n/**\n * Check if a semantic type is categorical (suitable for color/grouping).\n */\nexport function isCategoricalType(semanticType: string): boolean {\n    return categoricalTypes.has(semanticType);\n}\n\n/**\n * Check if a semantic type is ordinal (has inherent order).\n */\nexport function isOrdinalType(semanticType: string): boolean {\n    return ordinalTypes.has(semanticType);\n}\n\n/**\n * Check if a semantic type is geographic.\n * Derived from type-registry: t0 === 'Geographic'.\n */\nexport function isGeoType(semanticType: string): boolean {\n    return getRegistryEntry(semanticType).t0 === 'Geographic';\n}\n\n/**\n * Check if a semantic type is a geographic coordinate (lat/lon).\n * Derived from type-registry: t1 === 'GeoCoordinate'.\n */\nexport function isGeoCoordinateType(semanticType: string): boolean {\n    return getRegistryEntry(semanticType).t1 === 'GeoCoordinate';\n}\n\n/**\n * Check if a semantic type is a named geographic location.\n * Derived from type-registry: t1 === 'GeoPlace'.\n */\nexport function isGeoLocationString(semanticType: string): boolean {\n    return getRegistryEntry(semanticType).t1 === 'GeoPlace';\n}\n\n/**\n * Check if a semantic type is numeric but should not be aggregated.\n */\nexport function isNonMeasureNumeric(semanticType: string): boolean {\n    return nonMeasureNumericTypes.has(semanticType);\n}\n\n// ---------------------------------------------------------------------------\n// Zero-Baseline Classification  →  data lives in type-registry.ts (zeroBaseline, zeroPad)\n// ---------------------------------------------------------------------------\n\n/**\n * Classification of whether zero is a meaningful baseline for a semantic type.\n *\n * - `meaningful`: 0 has a real-world interpretation (absence of the measured thing).\n *   Comparisons to zero and ratios between values are meaningful.\n *   Examples: Count, Revenue, Distance, Weight.\n *\n * - `arbitrary`: 0 is either meaningless, doesn't exist, or is an arbitrary\n *   reference point. The data's range is what matters.\n *   Examples: Temperature (0°F is arbitrary), Year (year 0 doesn't exist),\n *   Rank (0th place doesn't exist).\n *\n * - `contextual`: 0 is meaningful but data-fitting may be better when data\n *   is concentrated far from zero and the mark is not bar/area.\n *   Examples: Percentage (0–100% natural, but 48–52% benefits from zoom),\n *   Score (1–5 scale, but 4.2–4.8 benefits from zoom).\n */\nexport type ZeroClass = 'meaningful' | 'arbitrary' | 'contextual';\n\n/**\n * Result of the zero-baseline decision.\n * Encapsulates both the boolean decision and domain padding for non-zero axes.\n */\nexport interface ZeroDecision {\n    /** Whether the axis should include zero */\n    zero: boolean;\n    /**\n     * For non-zero axes: fraction of data range to pad on each side\n     * so edge values aren't crushed against the axis boundary.\n     * e.g. 0.05 = 5% padding on each side.\n     */\n    domainPadFraction: number;\n    /** The zero class that drove this decision */\n    zeroClass: ZeroClass | 'unknown';\n    /**\n     * Whether this is a *forced* (non-debatable) decision:\n     *   - `true`  → mandatory: a length/area mark, data that crosses zero, or a\n     *     zero-meaningful type on a length mark. Including zero is structural.\n     *   - `false` → the engine still has a recommended `zero`, but anchoring at\n     *     zero is at least conceptually a choice.\n     * `forced` records the structural side of the decision; it is NOT the gate\n     * for the UI toggle — see `uncertain` below.\n     */\n    forced: boolean;\n    /**\n     * Whether the zero-vs-fit choice is a *genuine toss-up worth surfacing* to\n     * the user. Hosts read this (via the property `check`) to decide whether to\n     * show the \"Zero X/Y\" toggle at all.\n     *\n     * We deliberately keep this narrow to avoid UI clutter: it is `true` ONLY\n     * for a zero-meaningful field on a position mark whose data sits far enough\n     * from zero that anchoring at zero would noticeably compress the view (a\n     * real zoom-in-vs-anchor tradeoff). Every other case — arbitrary types\n     * (zero is meaningless, just fit the data), contextual types (the engine's\n     * data-range call is confident enough), meaningful types whose data already\n     * spans most of the way to zero (the choice barely changes anything), and\n     * all forced/unknown cases — is `false`, so no toggle is shown and the\n     * engine's `zero` value simply applies. The engine's `zero` remains the\n     * recommended default when the toggle is shown.\n     */\n    uncertain: boolean;\n}\n\n// zeroMeaningfulTypes, zeroArbitraryTypes, zeroContextualTypes, zeroPadMap:\n// REMOVED — now stored as zeroBaseline/zeroPad in type-registry.ts\n\n/**\n * Classify a semantic type's relationship to zero.\n * Derived from the registry's zeroBaseline dimension.\n */\nexport function getZeroClass(semanticType: string): ZeroClass | 'unknown' {\n    const baseline = getRegistryEntry(semanticType).zeroBaseline;\n    if (baseline === 'none') return 'unknown';\n    return baseline;\n}\n\n/**\n * Compute whether a quantitative axis should start at zero, based on\n * semantic type, mark type, channel, and data values.\n *\n * Priority: semantic type > mark type > data range > VL default.\n *\n * This is a pure decision function — it returns a ZeroDecision object\n * without modifying any spec. The caller applies the decision to VL.\n *\n * @param semanticType  The semantic type of the field (e.g. 'Amount', 'Temperature')\n * @param channel       The VL channel ('x', 'y', 'size', etc.)\n * @param markType      The mark type ('bar', 'line', 'point', etc.)\n * @param values        Optional numeric data values for data-range analysis\n */\n/**\n * Above this ratio of dataMin/dataMax, the data band sits far enough above\n * zero that anchoring the axis at zero would leave at least half the axis\n * empty — a big enough gap that \"zoom into the data\" vs \"keep the zero\n * reference\" is a genuine toss-up worth offering as a toggle. Below it, the\n * data already spans most of the way to zero, so including zero barely changes\n * the view and we keep it on silently.\n */\nconst ZERO_BASELINE_GAP_THRESHOLD = 0.5;\n\n/**\n * True when strictly-positive data sits far enough from zero that anchoring at\n * zero would noticeably compress the view (see ZERO_BASELINE_GAP_THRESHOLD).\n * Returns false for empty data or any data that touches/crosses zero (there the\n * baseline is inside the data range, so it is not a debatable gap).\n */\nfunction dataFarFromZero(values?: number[]): boolean {\n    if (!values || values.length === 0) return false;\n    const dataMin = Math.min(...values);\n    const dataMax = Math.max(...values);\n    if (dataMin <= 0 || dataMax <= 0) return false;\n    return dataMin / dataMax >= ZERO_BASELINE_GAP_THRESHOLD;\n}\n\nexport function computeZeroDecision(\n    semanticType: string,\n    channel: string,\n    markType: string,\n    values?: number[],\n): ZeroDecision {\n    const isBarLike = ['bar', 'area', 'rect'].includes(markType);\n    const isScatterMark = markType === 'circle' || markType === 'point';\n    const isPositional = ['x', 'y'].includes(channel);\n    const entry = getRegistryEntry(semanticType);\n    const zeroClass = getZeroClass(semanticType);\n\n    // --- Zero-meaningful types: zero is the conventional baseline ---\n    if (zeroClass === 'meaningful') {\n        // Length marks (bar/area/rect): the baseline is structurally required —\n        // a bar's length is meaningless without zero. Not debatable.\n        if (isBarLike) {\n            return { zero: true, domainPadFraction: 0, zeroClass, forced: true, uncertain: false };\n        }\n        // Scatter (circle/point position): the read is correlation / cloud shape,\n        // not distance from zero — data-fit is the conventional default. Offer\n        // Zero X/Y as an opt-in toggle when the user wants a zero reference.\n        if (isPositional && isScatterMark) {\n            if (values && values.length > 0 && Math.min(...values) <= 0) {\n                return { zero: true, domainPadFraction: 0, zeroClass, forced: true, uncertain: false };\n            }\n            return {\n                zero: false,\n                domainPadFraction: entry.zeroPad || 0.05,\n                zeroClass,\n                forced: false,\n                uncertain: true,\n            };\n        }\n        // Position marks (line/strip): zero is the conventional reference,\n        // so the recommended default is ON. We only *offer* the toggle when the\n        // data sits far enough from zero that anchoring at zero would noticeably\n        // compress the view — a genuine zoom-in-vs-keep-the-reference toss-up.\n        // When the data already spans most of the way to zero, the choice barely\n        // changes anything, so we keep zero on silently and hide the toggle.\n        return {\n            zero: true,\n            domainPadFraction: 0,\n            zeroClass,\n            forced: false,\n            uncertain: dataFarFromZero(values),\n        };\n    }\n\n    // --- Zero-arbitrary types: never zero, apply padding ---\n    if (zeroClass === 'arbitrary') {\n        // Exception: bar/area marks with data that touches/crosses zero —\n        // the baseline is structurally required, so this is forced.\n        if (isBarLike && values && values.length > 0) {\n            const dataMin = Math.min(...values);\n            if (dataMin <= 0) {\n                return { zero: true, domainPadFraction: 0, zeroClass, forced: true, uncertain: false };\n            }\n        }\n        // Strictly away from zero on an arbitrary scale: zero is meaningless\n        // here, so data-fit is simply the right answer — there is nothing to\n        // debate and no toggle is offered.\n        return {\n            zero: false,\n            domainPadFraction: entry.zeroPad || 0.05,\n            zeroClass,\n            forced: false,\n            uncertain: false,\n        };\n    }\n\n    // --- Contextual types: use data range + mark to decide ---\n    if (zeroClass === 'contextual' && values && values.length > 0) {\n        const dataMin = Math.min(...values);\n        const dataMax = Math.max(...values);\n\n        // Data touches/crosses zero → include it (forced: the baseline is\n        // inside the data range).\n        if (dataMin <= 0) {\n            return { zero: true, domainPadFraction: 0, zeroClass, forced: true, uncertain: false };\n        }\n\n        // How far is data from zero?\n        const proximity = dataMax > 0 ? dataMin / dataMax : 0;\n\n        // Close to zero → include it. The engine's data-range call is confident\n        // enough here, so no toggle is offered.\n        if (proximity < 0.3) {\n            return { zero: true, domainPadFraction: 0, zeroClass, forced: false, uncertain: false };\n        }\n\n        // Far from zero + bar/area → still include (bar length integrity, forced).\n        if (isBarLike) {\n            return { zero: true, domainPadFraction: 0, zeroClass, forced: true, uncertain: false };\n        }\n\n        // Far from zero + non-bar → data-fit with padding (engine's call, no toggle).\n        return { zero: false, domainPadFraction: 0.05, zeroClass, forced: false, uncertain: false };\n    }\n\n    // --- No semantic type or unrecognized → no opinion, let VL decide ---\n    // Unknown class is never debatable: we have no basis for a toggle.\n    if (isBarLike && isPositional) {\n        return { zero: true, domainPadFraction: 0, zeroClass: 'unknown', forced: true, uncertain: false };\n    }\n    return { zero: false, domainPadFraction: 0.05, zeroClass: 'unknown', forced: true, uncertain: false };\n}\n\n/**\n * Compute padded domain bounds for a non-zero axis.\n * Pure computation — returns [paddedMin, paddedMax] without modifying any spec.\n *\n * @param values         Numeric data values\n * @param padFraction    Fraction of data range to pad on each side\n * @returns              [paddedMin, paddedMax] or null if padding is not applicable\n */\nexport function computePaddedDomain(\n    values: number[],\n    padFraction: number,\n): [number, number] | null {\n    if (padFraction <= 0 || values.length < 2) return null;\n\n    const dataMin = Math.min(...values);\n    const dataMax = Math.max(...values);\n    const span = dataMax - dataMin;\n    if (span <= 0) return null;\n\n    const padding = span * padFraction;\n    return [dataMin - padding, dataMax + padding];\n}\n\n// ---------------------------------------------------------------------------\n// Color Scheme Recommendations\n// ---------------------------------------------------------------------------\n\nexport type ColorSchemeType = 'categorical' | 'sequential' | 'diverging';\n\nexport interface ColorSchemeRecommendation {\n    scheme: string;\n    type: ColorSchemeType;\n    reason: string;\n    /** For diverging schemes, the recommended midpoint value */\n    domainMid?: number;\n}\n\n// getDivergingMidpoint: REMOVED — superseded by resolveDivergingInfo() in field-semantics.ts\n// which uses a priority chain (unit → type-intrinsic → domain → data) and\n// distinguishes inherent vs conditional diverging.\n\n/**\n * Vega-Lite color schemes organized by use case\n * See: https://vega.github.io/vega/docs/schemes/\n */\nconst colorSchemes = {\n    // Categorical (nominal) - good for distinct categories\n    categorical: {\n        default: 'category10',\n        large: 'category20',\n        pastel: 'pastel1',\n        accent: 'accent',\n        paired: 'paired',      // Good for paired comparisons\n        set1: 'set1',          // Distinct, saturated\n        set2: 'set2',          // Pastel\n        set3: 'set3',          // Larger set\n        tableau10: 'tableau10',\n        tableau20: 'tableau20',\n    },\n    // Sequential - good for ordered/quantitative data\n    sequential: {\n        blues: 'blues',\n        greens: 'greens',\n        oranges: 'oranges',\n        reds: 'reds',\n        purples: 'purples',\n        greys: 'greys',\n        // Multi-hue sequential\n        viridis: 'viridis',\n        inferno: 'inferno',\n        magma: 'magma',\n        plasma: 'plasma',\n        turbo: 'turbo',\n        // Domain-specific\n        yellowGreen: 'yellowgreen',\n        yellowOrangeBrown: 'yelloworangebrown',\n        goldGreen: 'goldgreen',\n        goldOrange: 'goldorange',\n        goldRed: 'goldred',\n    },\n    // Diverging - good for data with meaningful center point\n    diverging: {\n        redBlue: 'redblue',\n        redGrey: 'redgrey',\n        redYellowBlue: 'redyellowblue',\n        redYellowGreen: 'redyellowgreen',\n        pinkYellowGreen: 'pinkyellowgreen',\n        purpleGreen: 'purplegreen',\n        purpleOrange: 'purpleorange',\n        brownBlueGreen: 'brownbluegreen',\n    },\n};\n\n/**\n * Get recommended color scheme based on semantic type and encoding context.\n * \n * @param semanticType - The semantic type of the field\n * @param encodingType - The Vega-Lite encoding type ('nominal', 'ordinal', 'quantitative')\n * @param uniqueValueCount - Number of unique values (for categorical sizing)\n * @param fieldName - Field name (for consistent hashing)\n * @param values - Optional actual data values (for inspecting data range)\n * @param colorHint - Optional classification from resolveColorSchemeHint().\n *        When provided, the hint's type ('diverging'|'sequential'|'categorical')\n *        overrides inline detection, avoiding duplicate diverging logic.\n */\nexport function getRecommendedColorScheme(\n    semanticType: string | undefined,\n    encodingType: 'nominal' | 'ordinal' | 'quantitative' | 'temporal',\n    uniqueValueCount: number = 10,\n    fieldName: string = '',\n    values: any[] = [],\n    colorHint?: { type: 'categorical' | 'sequential' | 'diverging' },\n): ColorSchemeRecommendation {\n    \n    // Helper for consistent scheme selection from array\n    const pickScheme = (schemes: string[], name: string): string => {\n        let hash = 0;\n        for (let i = 0; i < name.length; i++) {\n            hash = ((hash << 5) - hash) + name.charCodeAt(i);\n            hash = hash & hash;\n        }\n        return schemes[Math.abs(hash) % schemes.length];\n    };\n\n    // If no semantic type, use defaults based on encoding type\n    if (!semanticType) {\n        if (encodingType === 'quantitative') {\n            return { scheme: 'viridis', type: 'sequential', reason: 'default for quantitative' };\n        }\n        if (encodingType === 'ordinal') {\n            return { scheme: 'blues', type: 'sequential', reason: 'default for ordinal' };\n        }\n        // nominal/temporal default to categorical — use saturated schemes for readability\n        return { \n            scheme: uniqueValueCount > 10 ? 'tableau20' : 'tableau10', \n            type: 'categorical', \n            reason: 'default for categorical' \n        };\n    }\n\n    // --- Diverging-capable types ---\n    // When a colorHint is provided (from resolveColorSchemeHint), it drives the\n    // diverging/sequential decision. Without a hint, fall back to sequential.\n    // This avoids duplicating the diverging detection logic from field-semantics.ts.\n\n    // Temperature\n    if (semanticType === 'Temperature') {\n        if (colorHint?.type === 'diverging') {\n            return { scheme: 'redblue', type: 'diverging', reason: 'temperature diverging around freezing point' };\n        }\n        return { scheme: 'reds', type: 'sequential', reason: 'temperature single-direction uses sequential' };\n    }\n\n    // Percentage\n    if (semanticType === 'Percentage') {\n        if (colorHint?.type === 'diverging') {\n            return { scheme: 'redblue', type: 'diverging', reason: 'percentage spans positive and negative' };\n        }\n        return { scheme: 'oranges', type: 'sequential', reason: 'percentage all same sign uses sequential' };\n    }\n\n    // Price/Amount\n    if (['Price', 'Amount'].includes(semanticType)) {\n        if (colorHint?.type === 'diverging') {\n            return { scheme: 'redblue', type: 'diverging', reason: 'financial data spans positive and negative' };\n        }\n        return { scheme: 'goldgreen', type: 'sequential', reason: 'financial data uses gold-green' };\n    }\n\n    // Score - evaluation metrics; diverging when hint says so (e.g., domain midpoint)\n    if (semanticType === 'Score') {\n        if (colorHint?.type === 'diverging') {\n            return { scheme: 'redblue', type: 'diverging', reason: 'score/rating diverging around midpoint' };\n        }\n        return { scheme: 'yelloworangebrown', type: 'sequential', reason: 'scores use warm sequential' };\n    }\n\n    // Rank - use single-hue sequential\n    if (semanticType === 'Rank') {\n        return { scheme: 'purples', type: 'sequential', reason: 'ranks use single-hue sequential' };\n    }\n\n    // Ranges - use sequential\n    if (semanticType === 'Range') {\n        return { scheme: 'blues', type: 'sequential', reason: 'range groups use sequential' };\n    }\n\n    // Temporal granules (Year, Month, Quarter, etc.) - sequential for continuity\n    if (ordinalTypes.has(semanticType) && ['Year', 'Quarter', 'Month', 'Week', 'Day', 'Hour', 'Decade'].includes(semanticType)) {\n        return { scheme: 'viridis', type: 'sequential', reason: 'temporal granules use perceptually uniform' };\n    }\n\n    // Geographic locations - use geographic-friendly palettes\n    if (getRegistryEntry(semanticType ?? '').t1 === 'GeoPlace') {\n        if (uniqueValueCount <= 10) {\n            return { scheme: 'set2', type: 'categorical', reason: 'geographic regions use distinct pastels' };\n        }\n        return { scheme: 'tableau20', type: 'categorical', reason: 'many regions use large categorical' };\n    }\n\n    // Status/Boolean - use accent colors for clear distinction\n    if (['Status', 'Boolean'].includes(semanticType)) {\n        return { scheme: 'set1', type: 'categorical', reason: 'status uses high-contrast categorical' };\n    }\n\n    // Categories - use standard categorical\n    if (semanticType === 'Category') {\n        return { \n            scheme: uniqueValueCount > 10 ? 'tableau20' : 'tableau10', \n            type: 'categorical', \n            reason: 'categories use standard categorical' \n        };\n    }\n\n    // Names (persons, companies, products) - use saturated schemes for readability\n    if (semanticType === 'Name') {\n        return { \n            scheme: uniqueValueCount > 8 ? 'tableau20' : 'set2', \n            type: 'categorical', \n            reason: 'names use readable categorical' \n        };\n    }\n\n    // Duration - use sequential (longer = more intense)\n    if (semanticType === 'Duration') {\n        return { scheme: 'oranges', type: 'sequential', reason: 'duration uses intensity-based sequential' };\n    }\n\n    // Quantity/Count/Distance/etc. - general measures\n    // Check colorHint first — signed measures (Profit, Sentiment, Correlation,\n    // PercentageChange) pass through here and should honor their diverging hint.\n    if (measureTypes.has(semanticType)) {\n        if (colorHint?.type === 'diverging') {\n            return { scheme: 'redblue', type: 'diverging', reason: 'measure with diverging nature' };\n        }\n        const sequentialSchemes = ['viridis', 'blues', 'greens', 'reds', 'yelloworangebrown', 'goldgreen'];\n        return { \n            scheme: pickScheme(sequentialSchemes, fieldName), \n            type: 'sequential', \n            reason: 'measures use perceptually uniform sequential' \n        };\n    }\n\n    // Ordinal types not already handled\n    if (ordinalTypes.has(semanticType) || encodingType === 'ordinal') {\n        const ordinalSchemes = ['blues', 'greens', 'purples', 'oranges'];\n        return { \n            scheme: pickScheme(ordinalSchemes, fieldName), \n            type: 'sequential', \n            reason: 'ordinal data uses sequential scheme' \n        };\n    }\n\n    // Default categorical for nominal\n    if (encodingType === 'nominal' || encodingType === 'temporal') {\n        return { \n            scheme: uniqueValueCount > 10 ? 'tableau20' : 'tableau10', \n            type: 'categorical', \n            reason: 'default categorical palette' \n        };\n    }\n\n    // Fallback\n    return { scheme: 'viridis', type: 'sequential', reason: 'universal fallback' };\n}\n\n// getRecommendedColorSchemeWithMidpoint: REMOVED — diverging midpoint is now\n// resolved via resolveDivergingInfo() in field-semantics.ts and applied directly\n// by the caller in resolve-semantics.ts. See resolveChannelSemantics().\n\n// ===========================================================================\n// Canonical Ordinal Sort Orders\n// ===========================================================================\n\n/**\n * Well-known canonical ordinal sequences.\n *\n * Used to detect when data values belong to a known ordinal domain\n * (months, days of the week, quarters, etc.) and sort them in their\n * natural order instead of alphabetically or by a quantitative axis.\n */\n\n/** Full and abbreviated English month names (case-insensitive lookup). */\nconst MONTH_FULL = ['January','February','March','April','May','June','July','August','September','October','November','December'];\nconst MONTH_ABBR3 = ['Jan','Feb','Mar','Apr','May','Jun','Jul','Aug','Sep','Oct','Nov','Dec'];\nconst MONTH_NUM = ['1','2','3','4','5','6','7','8','9','10','11','12'];\n\n/** Full and abbreviated English day-of-week names. */\nconst DOW_FULL = ['Monday','Tuesday','Wednesday','Thursday','Friday','Saturday','Sunday'];\nconst DOW_ABBR3 = ['Mon','Tue','Wed','Thu','Fri','Sat','Sun'];\nconst DOW_ABBR2 = ['Mo','Tu','We','Th','Fr','Sa','Su'];\n\n/** Sunday-first variant (US convention). */\nconst DOW_FULL_SUN = ['Sunday','Monday','Tuesday','Wednesday','Thursday','Friday','Saturday'];\nconst DOW_ABBR3_SUN = ['Sun','Mon','Tue','Wed','Thu','Fri','Sat'];\n\n/** Quarter labels. */\nconst QUARTER_LABELS = ['Q1','Q2','Q3','Q4'];\n\n/** Compass directions — clockwise from North (top of chart). */\nconst COMPASS_8 = ['N','NE','E','SE','S','SW','W','NW'];\nconst COMPASS_8_FULL = ['North','Northeast','East','Southeast','South','Southwest','West','Northwest'];\nconst COMPASS_4 = ['N','E','S','W'];\nconst COMPASS_4_FULL = ['North','East','South','West'];\n\ninterface OrdinalSequence {\n    /** Canonical labels in order */\n    labels: string[];\n    /** Case-insensitive matching */\n    caseInsensitive: boolean;\n}\n\n/** All known ordinal sequences, keyed by semantic type. */\nconst ORDINAL_SEQUENCES: Record<string, OrdinalSequence[]> = {\n    Month: [\n        { labels: MONTH_FULL, caseInsensitive: true },\n        { labels: MONTH_ABBR3, caseInsensitive: true },\n        { labels: MONTH_NUM, caseInsensitive: false },\n    ],\n    Day: [\n        { labels: DOW_FULL, caseInsensitive: true },\n        { labels: DOW_ABBR3, caseInsensitive: true },\n        { labels: DOW_ABBR2, caseInsensitive: true },\n        { labels: DOW_FULL_SUN, caseInsensitive: true },\n        { labels: DOW_ABBR3_SUN, caseInsensitive: true },\n    ],\n    Quarter: [\n        { labels: QUARTER_LABELS, caseInsensitive: true },\n    ],\n    Direction: [\n        { labels: COMPASS_8, caseInsensitive: true },\n        { labels: COMPASS_8_FULL, caseInsensitive: true },\n        { labels: COMPASS_4, caseInsensitive: true },\n        { labels: COMPASS_4_FULL, caseInsensitive: true },\n    ],\n};\n\n/**\n * Build a case-insensitive lookup map from a sequence's labels.\n * Returns map: lowercased label → index.\n */\nfunction buildLookup(seq: OrdinalSequence): Map<string, number> {\n    const m = new Map<string, number>();\n    for (let i = 0; i < seq.labels.length; i++) {\n        const key = seq.caseInsensitive ? seq.labels[i].toLowerCase() : seq.labels[i];\n        m.set(key, i);\n    }\n    return m;\n}\n\n/**\n * Try to match a set of data values against a well-known ordinal sequence.\n *\n * Returns the canonical sort order (subset of the sequence, in order) if\n * enough values match, or `undefined` if no match.\n *\n * Matching rules:\n * - At least 60% of unique data values must be found in the sequence\n * - All matched values are returned in canonical order\n * - Unmatched values are appended at the end (preserving data order)\n *\n * @param values     The data values (strings or numbers) on this channel\n * @param sequences  The candidate sequences for the semantic type\n */\nfunction matchSequence(values: any[], sequences: OrdinalSequence[]): string[] | undefined {\n    const uniqueValues = [...new Set(values.map(v => v != null ? String(v) : ''))].filter(v => v !== '');\n    if (uniqueValues.length === 0) return undefined;\n\n    for (const seq of sequences) {\n        const lookup = buildLookup(seq);\n        const matched: { value: string; index: number }[] = [];\n        const unmatched: string[] = [];\n\n        for (const val of uniqueValues) {\n            const key = seq.caseInsensitive ? val.toLowerCase() : val;\n            const idx = lookup.get(key);\n            if (idx !== undefined) {\n                matched.push({ value: val, index: idx });\n            } else {\n                unmatched.push(val);\n            }\n        }\n\n        // Require at least 60% match rate\n        if (matched.length >= uniqueValues.length * 0.6 && matched.length >= 2) {\n            // Sort matched values by canonical index\n            matched.sort((a, b) => a.index - b.index);\n            const result = matched.map(m => m.value);\n            // Append unmatched at the end\n            result.push(...unmatched);\n            return result;\n        }\n    }\n    return undefined;\n}\n\n/**\n * Infer a canonical ordinal sort order for a field based on its semantic type\n * and data values.\n *\n * Works for:\n * - Month names (full/abbreviated/numeric): Jan, Feb, ... or January, February, ...\n * - Day-of-week names (full/abbreviated): Mon, Tue, ... or Monday, Tuesday, ...\n * - Quarter labels: Q1, Q2, Q3, Q4\n *\n * Falls back to `undefined` if no known sequence is detected, letting the\n * caller use its own default sort logic.\n *\n * @param semanticType  The semantic type of the field (e.g. 'Month', 'Day')\n * @param values        The data values on this channel\n * @returns Sorted unique values in canonical order, or undefined\n */\nexport function inferOrdinalSortOrder(\n    semanticType: string,\n    values: any[],\n): string[] | undefined {\n    // 1. Check by explicit semantic type\n    const sequences = ORDINAL_SEQUENCES[semanticType];\n    if (sequences) {\n        return matchSequence(values, sequences);\n    }\n\n    // 2. Auto-detect: try all sequences if semantic type is generic\n    if (!semanticType || semanticType === 'Category' || semanticType === 'Unknown') {\n        for (const seqs of Object.values(ORDINAL_SEQUENCES)) {\n            const result = matchSequence(values, seqs);\n            if (result) return result;\n        }\n    }\n\n    return undefined;\n}\n\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * =============================================================================\n * REUSABLE DECISION LOGIC\n * =============================================================================\n *\n * Pure decision functions that determine chart layout behavior.\n * These functions take data/config inputs and return decision objects —\n * NO Vega-Lite spec mutation happens here.\n *\n * The separation ensures:\n * 1. Decision logic is testable in isolation\n * 2. Same decisions can drive different output formats (VL, SVG, etc.)\n * 3. Templates can call decision functions without coupling to VL\n *\n * Naming conventions:\n *   - `compute*()` — returns a decision/value from inputs\n *   - `resolve*()` — picks from alternatives (type resolution, etc.)\n *   - `classify*()` — categorizes an input\n * =============================================================================\n */\n\nimport {\n    inferVisCategory,\n    type VisCategory,\n} from './semantic-types';\nimport { getRegistryEntry, isRegistered } from './type-registry';\n\n// ---------------------------------------------------------------------------\n// Encoding Type Resolution\n// ---------------------------------------------------------------------------\n\n/**\n * Result of encoding type resolution.\n * Separates the decision from what gets written into VL.\n */\nexport interface EncodingTypeDecision {\n    /** The resolved VL encoding type */\n    vlType: 'quantitative' | 'ordinal' | 'nominal' | 'temporal';\n    /** The VisCategory that drove the decision */\n    visCategory: VisCategory;\n    /** Whether the type was overridden by channel rules */\n    channelOverride: boolean;\n    /** Whether the type was overridden by cardinality/fraction guard */\n    cardinalityGuard: boolean;\n}\n\n// ---------------------------------------------------------------------------\n// Helpers for encoding type resolution\n// ---------------------------------------------------------------------------\n\n/**\n * Map a VisCategory to the corresponding VL encoding type string.\n * Geographic maps to quantitative since VL uses quantitative for coordinates.\n */\nfunction visCategoryToVLType(vc: VisCategory): 'quantitative' | 'ordinal' | 'nominal' | 'temporal' {\n    switch (vc) {\n        case 'quantitative': return 'quantitative';\n        case 'ordinal': return 'ordinal';\n        case 'temporal': return 'temporal';\n        case 'geographic': return 'quantitative';\n        case 'nominal':\n        default: return 'nominal';\n    }\n}\n\n/**\n * Validate that field values actually parse as dates.\n *\n * @param fromRegistry  If true, uses a looser threshold (≥30%) since the\n *                      semantic type explicitly identified the field as temporal.\n *                      If false (data-inferred), requires ≥50%.\n */\nfunction validateTemporalParsing(\n    data: any[],\n    fieldName: string,\n    fromRegistry: boolean,\n): boolean {\n    const sampleValues = data.map(r => r[fieldName]).slice(0, 15).filter((v: any) => v != null);\n    if (sampleValues.length === 0) return false;\n\n    // Single unique value → not useful as temporal axis (would show a single point)\n    const uniqueValues = new Set(sampleValues.map(String));\n    if (uniqueValues.size <= 1) return false;\n\n    const looksTemporalValue = (val: any): boolean => {\n        if (val instanceof Date) return true;\n        if (typeof val === 'number') {\n            // Year-like integers (1500–2200)\n            if (val >= 1500 && val <= 2200 && val % 1 === 0) return true;\n            // Unix-ms timestamps: 86_400_000 (Jan 2, 1970) to ~year 2103\n            if (val > 86400000 && val < 4200000000000) return true;\n            return false;\n        }\n        if (typeof val === 'string') {\n            const trimmed = val.trim();\n            if (!trimmed) return false;\n            if (/^\\d{4}$/.test(trimmed)) return true;\n            return !Number.isNaN(Date.parse(trimmed));\n        }\n        return false;\n    };\n\n    const passingCount = sampleValues.filter(looksTemporalValue).length;\n    const minFraction = fromRegistry ? 0.3 : 0.5;\n    return passingCount / sampleValues.length >= minFraction;\n}\n\n/**\n * Apply temporal channel-compatibility adjustments, shared by both\n * registry-driven and data-inferred temporal paths.\n */\nfunction resolveTemporalEncoding(\n    visCategory: VisCategory,\n    channel: string,\n    data: any[],\n    fieldName: string,\n    fromRegistry: boolean,\n): EncodingTypeDecision {\n    // Temporal on facet/size channels → ordinal (VL limitation)\n    if (['size', 'column', 'row'].includes(channel)) {\n        return { vlType: 'ordinal', visCategory, channelOverride: true, cardinalityGuard: false };\n    }\n    // Temporal on color with low cardinality → ordinal for distinct colors\n    if (channel === 'color') {\n        const uniqueCount = new Set(data.map(r => r[fieldName])).size;\n        if (uniqueCount <= 12) {\n            return { vlType: 'ordinal', visCategory, channelOverride: true, cardinalityGuard: false };\n        }\n    }\n    // Validate temporal parsing\n    if (!validateTemporalParsing(data, fieldName, fromRegistry)) {\n        return { vlType: 'ordinal', visCategory, channelOverride: false, cardinalityGuard: false };\n    }\n    return { vlType: 'temporal', visCategory, channelOverride: false, cardinalityGuard: false };\n}\n\n/**\n * Apply channel-context guards to an ordinal encoding.\n *\n * Even when the registry says a field is ordinal, channel context may\n * require promoting to quantitative:\n *   - High cardinality on color/group → unreadable legend\n *   - High cardinality on x/y        → bars/lollipops need proportional\n *     spacing and baseline anchoring (y2/x2)\n *   - Fractional values + high cardinality → mis-classified continuous measure\n *\n * @param fromRegistry  Whether the ordinal type came from the registry\n *        (true) or was data-inferred (false). Data-inferred additionally\n *        checks for fractional values (Guard 1).\n */\nfunction applyOrdinalGuards(\n    visCategory: VisCategory,\n    channel: string,\n    data: any[],\n    fieldName: string,\n    fieldValues: any[],\n    fromRegistry: boolean,\n): EncodingTypeDecision {\n    const numericVals = fieldValues.filter(v => v != null && !isNaN(+v)).map(Number);\n    if (numericVals.length > 0) {\n        const uniqueCount = new Set(numericVals).size;\n        const hasFractions = numericVals.some(v => v % 1 !== 0);\n\n        // Guard 1 (data-inferred only): fractional + high-cardinality →\n        // mis-classified continuous measure. Registry types are explicit,\n        // so this guard only applies when the type was inferred from data.\n        if (!fromRegistry && hasFractions && uniqueCount > 20) {\n            return { vlType: 'quantitative', visCategory, channelOverride: false, cardinalityGuard: true };\n        }\n\n        // Guard 2: integer ordinal with high cardinality on color/group →\n        // a discrete legend with 12+ entries is unreadable; promote to\n        // quantitative so VL renders a continuous gradient instead.\n        if (!hasFractions && uniqueCount > 12 && ['color', 'group'].includes(channel)) {\n            return { vlType: 'quantitative', visCategory, channelOverride: true, cardinalityGuard: true };\n        }\n\n        // Guard 3: integer ordinal with high cardinality on position\n        // axes (x, y) → charts like bar/lollipop need a quantitative\n        // axis for proportional length; treating 12+ unique integers\n        // as discrete categories produces an unreadable axis and\n        // prevents baseline anchoring (y2/x2).\n        if (!hasFractions && uniqueCount > 12 && ['x', 'y'].includes(channel)) {\n            return { vlType: 'quantitative', visCategory, channelOverride: true, cardinalityGuard: true };\n        }\n    }\n    return { vlType: 'ordinal', visCategory, channelOverride: false, cardinalityGuard: false };\n}\n\n/**\n * Disambiguate when the registry lists multiple visEncodings for a type.\n *\n * Uses channel context and data characteristics to select the most\n * appropriate encoding from the candidates. Each combination of\n * candidate encodings has dedicated logic:\n *\n *   temporal + ordinal  (Year, YearMonth, Decade, …)\n *   quantitative + ordinal  (Score, Rating)\n *   quantitative + geographic  (Latitude, Longitude)\n *   ordinal + nominal  (Direction)\n */\nfunction disambiguateMultiEncoding(\n    candidates: VisCategory[],\n    channel: string,\n    data: any[],\n    fieldName: string,\n    fieldValues: any[],\n): EncodingTypeDecision {\n    const has = (vc: VisCategory) => candidates.includes(vc);\n\n    // ── Temporal + Ordinal (Year, YearMonth, Decade, etc.) ────────\n    // Time-unit granules. Temporal for continuous time axes (x/y);\n    // ordinal for grouping channels (color, facet, size).\n    if (has('temporal') && has('ordinal')) {\n        return resolveTemporalEncoding('temporal', channel, data, fieldName, true);\n    }\n\n    // ── Quantitative + Ordinal (Score, Rating) ────────────────────\n    // Bounded discrete numerics. Use ordinal for grouping channels\n    // with low cardinality (distinct colors/symbols); quantitative\n    // for position axes (proportional spacing, zero-baseline).\n    if (has('quantitative') && has('ordinal')) {\n        if (['color', 'group'].includes(channel)) {\n            const uniqueCount = new Set(data.map(r => r[fieldName])).size;\n            if (uniqueCount <= 12) {\n                return { vlType: 'ordinal', visCategory: 'ordinal', channelOverride: false, cardinalityGuard: false };\n            }\n            // High-cardinality Score/Rating on color → quantitative gradient\n            return { vlType: 'quantitative', visCategory: 'quantitative', channelOverride: false, cardinalityGuard: true };\n        }\n        if (['column', 'row'].includes(channel)) {\n            return { vlType: 'ordinal', visCategory: 'ordinal', channelOverride: false, cardinalityGuard: false };\n        }\n        // x, y, size → quantitative (proportional axis)\n        return { vlType: 'quantitative', visCategory: 'quantitative', channelOverride: false, cardinalityGuard: false };\n    }\n\n    // ── Quantitative + Geographic (Latitude, Longitude) ───────────\n    // Geographic is for map projections; standard encodings use quantitative.\n    if (has('quantitative') && has('geographic')) {\n        return { vlType: 'quantitative', visCategory: 'quantitative', channelOverride: false, cardinalityGuard: false };\n    }\n\n    // ── Ordinal + Nominal (Direction) ─────────────────────────────\n    // Inherently ordered, but nominal for grouping channels to get\n    // distinct (unordered) colors rather than a sequential scale.\n    if (has('ordinal') && has('nominal')) {\n        if (['color', 'group'].includes(channel)) {\n            return { vlType: 'nominal', visCategory: 'nominal', channelOverride: false, cardinalityGuard: false };\n        }\n        return { vlType: 'ordinal', visCategory: 'ordinal', channelOverride: false, cardinalityGuard: false };\n    }\n\n    // ── Fallback: first candidate ─────────────────────────────────\n    const fallback = candidates[0];\n    return { vlType: visCategoryToVLType(fallback), visCategory: fallback, channelOverride: false, cardinalityGuard: false };\n}\n\n// ---------------------------------------------------------------------------\n// Main API\n// ---------------------------------------------------------------------------\n\n/**\n * Resolve the VL encoding type for a field.\n *\n * Two-stage pipeline:\n *\n * **Stage 1 — Registry-driven** (when semanticType is registered):\n *   - Single visEncoding  → use it directly (with channel adjustments)\n *   - Multiple visEncodings → `disambiguateMultiEncoding()` selects best\n *     option using channel context + data characteristics\n *\n * **Stage 2 — Data-inferred fallback** (no registered semantic type):\n *   - `inferVisCategory()` inspects raw values → VisCategory\n *   - Heuristic guards catch common mis-classifications (e.g., dense\n *     fractional data inferred as ordinal)\n *\n * This is a pure decision — it does NOT mutate any spec.\n *\n * @param semanticType   Semantic type string (e.g. 'Quantity', 'Country')\n * @param fieldValues    Sampled values from the field\n * @param channel        VL channel name (e.g. 'x', 'y', 'color')\n * @param data           Full data table (for computing unique value counts)\n * @param fieldName      Field name (for data lookups)\n */\nexport function resolveEncodingType(\n    semanticType: string,\n    fieldValues: any[],\n    channel: string,\n    data: any[],\n    fieldName: string,\n): EncodingTypeDecision {\n    // ═══════════════════════════════════════════════════════════════════\n    // Stage 1: Registry-driven resolution\n    // ═══════════════════════════════════════════════════════════════════\n    // The registry's visEncodings array is the source of truth.\n    //   - Single encoding  → resolved directly\n    //   - Multiple encodings → disambiguated by channel + data\n    if (semanticType && isRegistered(semanticType)) {\n        const entry = getRegistryEntry(semanticType);\n        const candidates = entry.visEncodings;\n\n        if (candidates.length > 1) {\n            // Multiple encodings listed — disambiguate semantically\n            return disambiguateMultiEncoding(candidates, channel, data, fieldName, fieldValues);\n        }\n\n        // Single encoding — use it directly with channel adjustments\n        const baseType = candidates[0];\n\n        // Guard: if the registry says quantitative but the actual values\n        // are strings (e.g. semantic \"Quantity\" on a binned field like\n        // \"91-95\"), fall back to data-inferred type.  Numeric strings\n        // that parse as numbers (e.g. \"42\") still count as numeric.\n        if (baseType === 'quantitative') {\n            const nonNull = fieldValues.filter(v => v != null);\n            const allNumeric = nonNull.length > 0 &&\n                nonNull.every(v => typeof v === 'number' || (typeof v === 'string' && !isNaN(+v) && v.trim() !== ''));\n            if (!allNumeric) {\n                // Values aren't actually numeric — infer from data instead\n                const inferred = inferVisCategory(fieldValues);\n                return {\n                    vlType: visCategoryToVLType(inferred),\n                    visCategory: inferred,\n                    channelOverride: false,\n                    cardinalityGuard: false,\n                };\n            }\n        }\n\n        if (baseType === 'temporal') {\n            return resolveTemporalEncoding(baseType, channel, data, fieldName, true);\n        }\n        if (baseType === 'ordinal') {\n            return applyOrdinalGuards(baseType, channel, data, fieldName, fieldValues, true);\n        }\n        return {\n            vlType: visCategoryToVLType(baseType),\n            visCategory: baseType,\n            channelOverride: false,\n            cardinalityGuard: false,\n        };\n    }\n\n    // ═══════════════════════════════════════════════════════════════════\n    // Stage 2: Data-inferred fallback\n    // ═══════════════════════════════════════════════════════════════════\n    // No registered semantic type — infer from raw data values, then\n    // apply heuristic guards for common data-inference mis-classifications.\n    const visCategory: VisCategory = inferVisCategory(fieldValues);\n    const channelOverride = false;\n    const cardinalityGuard = false;\n\n    switch (visCategory) {\n        case 'temporal':\n            return resolveTemporalEncoding(visCategory, channel, data, fieldName, false);\n\n        case 'ordinal':\n            return applyOrdinalGuards(visCategory, channel, data, fieldName, fieldValues, false);\n\n        case 'quantitative':\n            return { vlType: 'quantitative', visCategory, channelOverride, cardinalityGuard };\n\n        case 'geographic':\n            return { vlType: 'quantitative', visCategory, channelOverride, cardinalityGuard };\n\n        case 'nominal':\n        default:\n            return { vlType: 'nominal', visCategory, channelOverride, cardinalityGuard };\n    }\n}\n\n// ---------------------------------------------------------------------------\n// Continuous Axis Gas Pressure Model (docs/design-stretch-model.md §2)\n// ---------------------------------------------------------------------------\n\n/**\n * Parameters for the per-axis stretch model (docs/design-stretch-model.md §2).\n *\n * Each axis is stretched independently based on how many distinguishable\n * positions (or series) compete for pixel space along that axis.\n */\nexport interface GasPressureParams {\n    /** Mark cross-section in px² — used as default σ for both axes (default: 30) */\n    markCrossSection: number;\n    /** Per-axis cross-section overrides. When set, the per-axis stretch\n     *  uses these instead of `markCrossSection`.\n     *  Useful for line charts where X needs more stretch than Y. */\n    markCrossSectionX?: number;\n    markCrossSectionY?: number;\n    /** Override X item count for stretch.\n     *  When set, X stretch uses this count (e.g. number of series)\n     *  instead of counting unique X pixel positions. */\n    xItemCountOverride?: number;\n    /** Override Y item count for stretch.\n     *  When set, Y stretch uses this count (e.g. number of series)\n     *  instead of counting unique Y pixel positions. */\n    yItemCountOverride?: number;\n    /** Power-law exponent for continuous stretch (default: 0.3) */\n    elasticity: number;\n    /** Maximum stretch multiplier cap (default: 1.5) */\n    maxStretch: number;\n}\n\n/** Default gas pressure parameters (§2 recommendations). */\nexport const DEFAULT_GAS_PRESSURE_PARAMS: GasPressureParams = {\n    markCrossSection: 30,\n    elasticity: 0.3,\n    maxStretch: 1.5,\n};\n\n/**\n * Result of the per-axis stretch decision.\n */\nexport interface GasPressureDecision {\n    /** Per-axis stretch: X axis (1 = no stretch, capped by maxStretch) */\n    stretchX: number;\n    /** Per-axis stretch: Y axis (1 = no stretch, capped by maxStretch) */\n    stretchY: number;\n    /** Uncapped stretch for X (raw pressure^elasticity, not clipped to maxStretch).\n     *  Used by the layout engine to compute ideal aspect ratio before squeezing. */\n    rawStretchX: number;\n    /** Uncapped stretch for Y (raw pressure^elasticity, not clipped to maxStretch). */\n    rawStretchY: number;\n}\n\n/**\n * Compute per-axis stretch for a continuous 2D axis region.\n *\n * Implements docs/design-stretch-model.md §2: each axis is stretched independently based\n * on how many distinguishable positions (or series) compete for pixel\n * space along that axis.\n *\n * Two modes per axis:\n *   - Positional: count unique pixel positions, σ_1d = √σ.\n *   - Series-count: when xItemCountOverride / yItemCountOverride is set,\n *     use that count directly with σ (not sqrt'd) since it's already 1D.\n *\n * @param xValues      Numeric x-coordinates of data points\n * @param yValues      Numeric y-coordinates of data points\n * @param xDomain      Scale domain [min, max] for x-axis\n * @param yDomain      Scale domain [min, max] for y-axis\n * @param canvasWidth  Base canvas width W₀\n * @param canvasHeight Base canvas height H₀\n * @param params       Gas pressure parameters (optional, uses defaults)\n */\nexport function computeGasPressure(\n    xValues: number[],\n    yValues: number[],\n    xDomain: [number, number],\n    yDomain: [number, number],\n    canvasWidth: number,\n    canvasHeight: number,\n    params: GasPressureParams = DEFAULT_GAS_PRESSURE_PARAMS,\n): GasPressureDecision {\n    const N = xValues.length;\n\n    if (N <= 1 || canvasWidth <= 0 || canvasHeight <= 0) {\n        return { stretchX: 1, stretchY: 1, rawStretchX: 1, rawStretchY: 1 };\n    }\n\n    // Per-axis stretch via unique-position linear packing.\n    // The question for each axis is: \"how many distinguishable positions\n    // compete for pixel space along this axis?\"\n    //\n    // Count unique positions (bucketed to ~1px resolution) along each\n    // axis. Each unique position needs σ_1d ≈ √σ pixels of space.\n    // 1D pressure = uniquePositions × σ_1d / axisDimension.\n    const sigma1dDefault = Math.sqrt(params.markCrossSection); // ~5 px\n\n    /** Returns [cappedStretch, rawStretch] for one axis. */\n    const computeAxisStretch = (values: number[], domain: [number, number], baseDim: number, sigma1d: number): [number, number] => {\n        if (baseDim <= 0 || values.length <= 1) return [1, 1];\n\n        const range = domain[1] - domain[0];\n        if (range <= 0) return [1, 1];\n\n        // Bucket values to ~1px resolution in pixel space\n        const pxPerUnit = baseDim / range;\n        const seen = new Set<number>();\n        for (const v of values) {\n            seen.add(Math.round((v - domain[0]) * pxPerUnit));\n        }\n        const uniquePositions = seen.size;\n\n        // 1D pressure: how many sigma-sized marks fight for baseDim pixels\n        const pressure = (uniquePositions * sigma1d) / baseDim;\n        if (pressure <= 1) return [1, 1];\n        const raw = Math.pow(pressure, params.elasticity);\n        return [Math.min(params.maxStretch, raw), raw];\n    };\n\n    const sigma1dX = params.markCrossSectionX != null ? Math.sqrt(params.markCrossSectionX) : sigma1dDefault;\n    const sigma1dY = params.markCrossSectionY != null ? Math.sqrt(params.markCrossSectionY) : sigma1dDefault;\n\n    // Helper: compute stretch for one axis, using series-count override if set.\n    // When a series override is provided, σ is used directly (not sqrt'd)\n    // because series count is already a 1D concept.\n    /** Returns [cappedStretch, rawStretch] for one axis, with series-count override support. */\n    const computeStretchForAxis = (\n        values: number[], domain: [number, number], baseDim: number,\n        sigma1d: number, sigmaRaw: number, itemCountOverride?: number,\n    ): [number, number] => {\n        if (itemCountOverride != null && sigmaRaw > 0) {\n            const pressure = (itemCountOverride * sigmaRaw) / baseDim;\n            if (pressure <= 1) return [1, 1];\n            const raw = Math.pow(pressure, params.elasticity);\n            return [Math.min(params.maxStretch, raw), raw];\n        }\n        return sigma1d > 0 ? computeAxisStretch(values, domain, baseDim, sigma1d) : [1, 1];\n    };\n\n    const sigmaRawX = params.markCrossSectionX ?? params.markCrossSection;\n    const sigmaRawY = params.markCrossSectionY ?? params.markCrossSection;\n    const [stretchX, rawStretchX] = computeStretchForAxis(xValues, xDomain, canvasWidth, sigma1dX, sigmaRawX, params.xItemCountOverride);\n    const [stretchY, rawStretchY] = computeStretchForAxis(yValues, yDomain, canvasHeight, sigma1dY, sigmaRawY, params.yItemCountOverride);\n\n    return { stretchX, stretchY, rawStretchX, rawStretchY };\n}\n\n// ---------------------------------------------------------------------------\n// Elastic Stretch Computation\n// ---------------------------------------------------------------------------\n\n/**\n * Parameters for elastic axis stretch computation.\n * These control the spring-model behavior from docs/design-stretch-model.md §1.\n */\nexport interface ElasticStretchParams {\n    /** Power-law exponent for stretch (default: 0.5) */\n    elasticity: number;\n    /** Maximum stretch multiplier cap (default: 2) */\n    maxStretch: number;\n    /** Default step size in px per discrete item */\n    defaultStepSize: number;\n    /** Minimum pixels per discrete item (default: 6) */\n    minStep: number;\n}\n\n/**\n * Result of elastic budget computation for a single axis.\n */\nexport interface ElasticBudget {\n    /** Elastic-stretched canvas budget in px */\n    budget: number;\n    /** Stretch multiplier applied (1 = no stretch) */\n    stretchFactor: number;\n}\n\n/**\n * Compute the elastic canvas budget for an axis with N discrete items.\n *\n * When N items at defaultStepSize exceed the base dimension, the axis\n * stretches using a power-law: stretch = min(maxStretch, pressure^elasticity).\n *\n * @param itemCount       Number of discrete items on the axis\n * @param baseDimension   Base canvas size (width or height) in px\n * @param params          Elastic stretch parameters\n */\nexport function computeElasticBudget(\n    itemCount: number,\n    baseDimension: number,\n    params: ElasticStretchParams,\n): ElasticBudget {\n    if (itemCount <= 0) {\n        return { budget: baseDimension, stretchFactor: 1 };\n    }\n    const pressure = (itemCount * params.defaultStepSize) / baseDimension;\n    if (pressure <= 1) {\n        return { budget: baseDimension, stretchFactor: 1 };\n    }\n    const stretchFactor = Math.min(params.maxStretch, Math.pow(pressure, params.elasticity));\n    return {\n        budget: baseDimension * stretchFactor,\n        stretchFactor,\n    };\n}\n\n/**\n * Result of per-axis step computation.\n */\nexport interface AxisStepDecision {\n    /** Computed step size in px per item */\n    step: number;\n    /** Total canvas budget in px */\n    budget: number;\n    /** Number of items this step was computed for */\n    itemCount: number;\n}\n\n/**\n * Compute the step size for a single axis, covering both discrete\n * and continuous-as-discrete (banded) cases.\n *\n * @param nominalCount       Number of discrete (nominal/ordinal) items\n * @param continuousCount    Number of continuous-as-discrete items (banded Q/T)\n * @param baseDimension      Base canvas size (width or height) in px\n * @param params             Elastic stretch parameters\n */\nexport function computeAxisStep(\n    nominalCount: number,\n    continuousCount: number,\n    baseDimension: number,\n    params: ElasticStretchParams,\n): AxisStepDecision {\n    if (nominalCount > 0) {\n        const { budget } = computeElasticBudget(nominalCount, baseDimension, params);\n        return { step: Math.floor(budget / nominalCount), budget, itemCount: nominalCount };\n    }\n    if (continuousCount > 0) {\n        const { budget } = computeElasticBudget(continuousCount, baseDimension, params);\n        return { step: Math.floor(budget / continuousCount), budget, itemCount: continuousCount };\n    }\n    return { step: params.defaultStepSize, budget: baseDimension, itemCount: 0 };\n}\n\n// ---------------------------------------------------------------------------\n// Facet Layout Decisions\n// ---------------------------------------------------------------------------\n\n/**\n * Result of facet layout computation.\n */\nexport interface FacetLayoutDecision {\n    /** Number of facet columns */\n    columns: number;\n    /** Number of facet rows */\n    rows: number;\n    /** Per-subplot width in px */\n    subplotWidth: number;\n    /** Per-subplot height in px */\n    subplotHeight: number;\n}\n\n/**\n * Parameters for facet layout computation.\n */\nexport interface FacetLayoutParams {\n    /** Power-law exponent for facet stretch (default: 0.3) */\n    facetElasticity: number;\n    /** Maximum total stretch multiplier cap (default: 2) */\n    maxStretch: number;\n    /** Minimum subplot size in px (default: 60) */\n    minSubplotSize: number;\n}\n\n/**\n * Compute facet subplot dimensions.\n *\n * @param facetCols       Number of facet columns\n * @param facetRows       Number of facet rows\n * @param baseWidth       Base canvas width in px\n * @param baseHeight      Base canvas height in px\n * @param params          Facet layout parameters\n */\nexport function computeFacetLayout(\n    facetCols: number,\n    facetRows: number,\n    baseWidth: number,\n    baseHeight: number,\n    params: FacetLayoutParams,\n): FacetLayoutDecision {\n    // Minimum subplot dimension — use the caller-supplied parameter\n    // (default 60px) so subplots remain readable.\n    const minContinuousSize = params.minSubplotSize;\n\n    let subplotWidth: number;\n    if (facetCols > 1) {\n        const stretch = Math.min(params.maxStretch, Math.pow(facetCols, params.facetElasticity));\n        subplotWidth = Math.round(Math.max(minContinuousSize, baseWidth * stretch / facetCols));\n    } else {\n        subplotWidth = baseWidth;\n    }\n\n    let subplotHeight: number;\n    if (facetRows > 1) {\n        const stretch = Math.min(params.maxStretch, Math.pow(facetRows, params.facetElasticity));\n        subplotHeight = Math.round(Math.max(minContinuousSize, baseHeight * stretch / facetRows));\n    } else {\n        subplotHeight = baseHeight;\n    }\n\n    return { columns: facetCols, rows: facetRows, subplotWidth, subplotHeight };\n}\n\n// ---------------------------------------------------------------------------\n// Label Sizing Decisions\n// ---------------------------------------------------------------------------\n\n/**\n * Result of label sizing computation for a discrete axis.\n */\nexport interface LabelSizingDecision {\n    /** Font size in px */\n    fontSize: number;\n    /** Max label width in px */\n    labelLimit: number;\n    /** Label rotation angle (undefined = no rotation) */\n    labelAngle?: number;\n    /** Label alignment (for rotated labels) */\n    labelAlign?: string;\n    /** Label baseline (for rotated labels) */\n    labelBaseline?: string;\n}\n\n/**\n * Compute label sizing for a discrete axis based on the effective step size.\n * Pure decision — returns sizing params without modifying any spec.\n *\n * The font descends the **shrink → rotate → cap** ladder from a backend-native\n * base font (`baseFont`), never exceeding it and never dropping below `minFont`:\n *   1. Wide band  → horizontal label at (up to) `baseFont`.\n *   2. Medium band → shrink a little and rotate -45°.\n *   3. Narrow band → shrink more and rotate -90°.\n * `labelLimit` caps the label width so long text is truncated (…) rather than\n * overflowing arbitrarily.\n *\n * @param effectiveStep      Pixels per discrete item\n * @param hasDiscreteItems   Whether the axis has discrete items\n * @param opts               `baseFont` (native ceiling) and `minFont` (floor)\n */\nexport function computeLabelSizing(\n    effectiveStep: number,\n    hasDiscreteItems: boolean,\n    opts?: { baseFont?: number; minFont?: number },\n): LabelSizingDecision {\n    const baseFont = opts?.baseFont ?? 10;\n    const minFont = opts?.minFont ?? 6;\n    const defaultLimit = 100;\n\n    if (!hasDiscreteItems) {\n        return { fontSize: baseFont, labelLimit: defaultLimit };\n    }\n\n    // Shrink lever: font tracks the band step but is bounded by [minFont, baseFont].\n    let fontSize = Math.max(minFont, Math.min(baseFont, effectiveStep - 1));\n    let labelLimit = Math.max(30, Math.min(100, effectiveStep * 8));\n    let labelAngle: number | undefined;\n    let labelAlign: string | undefined;\n    let labelBaseline: string | undefined;\n\n    if (effectiveStep < 10) {\n        // Narrow band → rotate vertical, shrink harder (but keep the ceiling\n        // one notch below base so a 12-native backend still reads ~10 here).\n        labelAngle = -90;\n        fontSize = Math.max(minFont, Math.min(baseFont - 2, effectiveStep));\n        labelLimit = 40;\n        labelAlign = 'right';\n        labelBaseline = 'middle';\n    } else if (effectiveStep < 16) {\n        // Medium band → rotate 45°, shrink slightly.\n        labelAngle = -45;\n        fontSize = Math.max(minFont, Math.min(baseFont - 1, effectiveStep));\n        labelLimit = 60;\n        labelAlign = 'right';\n        labelBaseline = 'top';\n    }\n\n    return { fontSize, labelLimit, labelAngle, labelAlign, labelBaseline };\n}\n\n/**\n * Canvas-adaptive font sizes for headers (axis titles, legend, chart title) and\n * the base for axis tick labels.\n *\n * The per-backend base fonts are the preferred (native) sizes. Fonts render at\n * that base and only **shrink** for genuinely small small-multiple subplots\n * (so dense facets don't overflow); they are never grown above native, matching\n * how the underlying renderers keep fonts constant across canvas sizes.\n *\n * @param minPlotDimension  The smaller of the (sub)plot width/height in px\n * @param opts              Backend-native base font sizes\n */\nexport interface FontSizingDecision {\n    /** Ceiling for axis tick labels (feeds computeLabelSizing `baseFont`). */\n    tickBase: number;\n    /** Header font for axis titles and chart title. */\n    titleFontSize: number;\n    /** Legend entry font (one notch below the title). */\n    legendFontSize: number;\n}\n\nexport function computeFontSizing(\n    minPlotDimension: number,\n    opts?: { baseLabelFontSize?: number; baseTitleFontSize?: number },\n): FontSizingDecision {\n    const baseLabel = opts?.baseLabelFontSize ?? 10;\n    const baseTitle = opts?.baseTitleFontSize ?? 11;\n    // The per-backend base fonts ARE the preferred (native) sizes: native\n    // renderers (Plotly/VL/ECharts) keep tick/title/legend fonts CONSTANT at\n    // every canvas size. So we do NOT grow above base — growth made large\n    // charts render heavy, oversized text. Fonts only SHRINK for genuinely\n    // small small-multiple subplots (minDim < 220) so dense facets don't\n    // overflow; otherwise they render at native base.\n    const minDim = minPlotDimension || 320;\n    const ratio = minDim >= 220 ? 1 : Math.max(0.7, minDim / 220);\n    const atMostNative = (base: number) =>\n        Math.round(Math.max(base - 2, Math.min(base, base * ratio)));\n    const tickBase = atMostNative(baseLabel);\n    const titleFontSize = atMostNative(baseTitle);\n    const legendFontSize = Math.max(baseTitle - 2, titleFontSize - 1);\n    return { tickBase, titleFontSize, legendFontSize };\n}\n\n// ---------------------------------------------------------------------------\n// Overflow Decision\n// ---------------------------------------------------------------------------\n\n/**\n * Result of overflow analysis for a discrete axis.\n */\nexport interface OverflowDecision {\n    /** Whether overflow occurred (more items than can fit) */\n    overflowed: boolean;\n    /** Maximum items to keep */\n    maxToKeep: number;\n    /** Number of items omitted */\n    omittedCount: number;\n}\n\n/**\n * Compute whether a discrete axis overflows and how many items to keep.\n *\n * @param uniqueCount    Number of unique values on the axis\n * @param maxDimension   Maximum canvas dimension (with stretch) in px\n * @param minStepSize    Minimum px per item\n */\nexport function computeOverflow(\n    uniqueCount: number,\n    maxDimension: number,\n    minStepSize: number,\n): OverflowDecision {\n    const maxToKeep = Math.floor(maxDimension / minStepSize);\n    const overflowed = uniqueCount > maxToKeep;\n    return {\n        overflowed,\n        maxToKeep,\n        omittedCount: overflowed ? uniqueCount - maxToKeep : 0,\n    };\n}\n\n// ---------------------------------------------------------------------------\n// Circumference-pressure model for radial charts (§3)\n// ---------------------------------------------------------------------------\n\n/**\n * Parameters for circumference-pressure scaling (spring model on polar axis).\n */\nexport interface CircumferencePressureParams {\n    /** Minimum arc-length (px) each \"effective bar\" needs on the\n     *  circumference — analogous to defaultStepSize in the spring model.\n     *  Default: 45 */\n    minArcPx?: number;\n    /** Minimum chart radius in px. Default: 60 */\n    minRadius?: number;\n    /** Maximum chart radius in px. Caps runaway growth. Default: 400 */\n    maxRadius?: number;\n    /** Power-law exponent for pressure → stretch (same as spring model).\n     *  0.5 = square-root growth. Default: 0.5 */\n    elasticity?: number;\n    /** Per-dimension maximum stretch multiplier cap (matches bar-chart\n     *  default of 2.0).  The effective max stretch on the radius is\n     *  derived from min(baseW, baseH) × maxStretch so that the chart\n     *  never exceeds the cap in either dimension.  Default: 2.0 */\n    maxStretch?: number;\n    /** Per-dimension cap for the width axis. Defaults to `maxStretch`.\n     *  Lets the radius ceiling honor an asymmetric canvas (canvasW/baseW). */\n    maxStretchX?: number;\n    /** Per-dimension cap for the height axis. Defaults to `maxStretch`.\n     *  Lets the radius ceiling honor an asymmetric canvas (canvasH/baseH). */\n    maxStretchY?: number;\n    /** Extra margin outside the chart circle (px) for labels, legend, etc.\n     *  Added to each side when computing canvas dimensions. Default: 20 */\n    margin?: number;\n}\n\n/**\n * Result of circumference pressure computation.\n */\nexport interface CircumferencePressureResult {\n    /** Computed chart radius in px */\n    radius: number;\n    /** Recommended canvas width (px) */\n    canvasW: number;\n    /** Recommended canvas height (px) */\n    canvasH: number;\n}\n\n/**\n * Compute radial chart sizing using the spring model mapped to a polar axis.\n *\n * Treats the circumference as a linear \"bar axis\":\n *   baseCircumference = 2π × baseRadius\n *   pressure = effectiveItemCount × minArcPx / baseCircumference\n *   if pressure > 1:  stretch = min(maxStretch, pressure ^ elasticity)\n *   radius = baseRadius × stretch\n *\n * **effectiveItemCount** varies by chart type:\n *   - Rose / Radar: N categories (uniform slices/spokes)\n *   - Pie: total / minValue — how many of the smallest slice fit in the\n *     full circle.  This captures the worst-case thin slice that needs\n *     minimum arc width.\n *   - Sunburst: same as pie but computed on the outer ring leaves only.\n *\n * Both canvas dimensions grow equally (maintains 1:1 circular aspect).\n *\n * @param effectiveItemCount  Effective number of uniform \"bars\" around\n *                            the circle (see above)\n * @param canvasSize          Base canvas dimensions (from context)\n * @param params              Optional tuning parameters\n */\nexport function computeCircumferencePressure(\n    effectiveItemCount: number,\n    canvasSize: { width: number; height: number },\n    params: CircumferencePressureParams = {},\n): CircumferencePressureResult {\n    const {\n        minArcPx = 45,\n        minRadius = 60,\n        maxRadius = 400,\n        elasticity = 0.5,\n        maxStretch = 2.0,\n        margin = 20,\n    } = params;\n\n    // Per-dimension caps default to the scalar maxStretch (symmetric canvas).\n    const maxStretchX = Math.max(1, params.maxStretchX ?? maxStretch);\n    const maxStretchY = Math.max(1, params.maxStretchY ?? maxStretch);\n\n    const baseW = canvasSize.width;\n    const baseH = canvasSize.height;\n\n    // Base radius: largest circle that fits in the base canvas\n    const baseRadius = Math.max(minRadius,\n        (Math.min(baseW, baseH) / 2) - margin);\n\n    // ── Effective max-stretch on the radius ──────────────────────────\n    // The radius stretch expands the canvas in BOTH x and y equally.\n    // Cap so that neither dimension exceeds its per-dimension budget.\n    const maxCanvasW = baseW * maxStretchX;\n    const maxCanvasH = baseH * maxStretchY;\n    const maxDiameter = Math.min(maxCanvasW, maxCanvasH);\n    const effectiveMaxRadius = Math.min(maxRadius,\n        (maxDiameter - 2 * margin) / 2);\n    const effectiveMaxStretch = Math.max(1, effectiveMaxRadius / baseRadius);\n\n    // Spring model: pressure = items × step / baseDimension\n    const baseCircumference = 2 * Math.PI * baseRadius;\n    const pressure = (effectiveItemCount * minArcPx) / baseCircumference;\n\n    let radius: number;\n    if (pressure <= 1) {\n        // No pressure — base radius is sufficient\n        radius = baseRadius;\n    } else {\n        // Elastic stretch (same power law as bar-chart spring model)\n        const stretch = Math.min(effectiveMaxStretch, Math.pow(pressure, elasticity));\n        radius = Math.round(baseRadius * stretch);\n    }\n\n    // Clamp\n    radius = Math.min(maxRadius, Math.max(minRadius, radius));\n\n    // Canvas = diameter + margins\n    const diameter = 2 * radius + 2 * margin;\n    const canvasW = Math.max(baseW, diameter);\n    const canvasH = Math.max(baseH, diameter);\n\n    return { radius, canvasW, canvasH };\n}\n\n/**\n * Compute effective bar count for variable-width slices (pie / sunburst).\n *\n * If all slices are equal, this returns N (number of slices).\n * If slices vary, this returns `total / minValue` — i.e., how many of the\n * thinnest slice would fill the whole circle.  This is the worst-case\n * pressure that determines whether the chart needs to grow.\n *\n * Capped at 100 to prevent degenerate cases (near-zero slices) from\n * blowing up the radius.\n *\n * @param values  Array of slice values (must be > 0)\n */\nexport function computeEffectiveBarCount(values: number[]): number {\n    if (values.length === 0) return 0;\n    const positiveValues = values.filter(v => v > 0);\n    if (positiveValues.length === 0) return values.length;\n\n    const total = positiveValues.reduce((s, v) => s + v, 0);\n    const minVal = Math.min(...positiveValues);\n\n    // effectiveCount = total / minVal → how many of the smallest slice fill the circle\n    const effective = total / minVal;\n\n    // Cap at 100 to prevent degenerate cases\n    return Math.min(100, effective);\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Pie Chart + Donut Chart templates.\n *\n * Native `pie` trace: `hole` produces a donut with no extra geometry.\n * Pie charts have no cartesian axes, so this template sets `figure._width` /\n * `_height` itself and `plApplyLayoutToSpec` (which only fills in unset\n * sizes) leaves them alone.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { extractCategories, getPlotlyPalette } from './utils';\nimport { computeCircumferencePressure, computeEffectiveBarCount } from '../../core/decisions';\n\nfunction buildPieOption(spec: any, ctx: any, hole: number): void {\n    const { channelSemantics, table, chartProperties } = ctx;\n    const colorField = channelSemantics.color?.field;\n    const sizeField = channelSemantics.size?.field;\n\n    const labels: string[] = [];\n    const values: number[] = [];\n\n    if (colorField && sizeField) {\n        const agg = new Map<string, number>();\n        for (const row of table) {\n            const cat = String(row[colorField] ?? '');\n            agg.set(cat, (agg.get(cat) ?? 0) + (Number(row[sizeField]) || 0));\n        }\n        const categories = extractCategories(table, colorField, channelSemantics.color?.ordinalSortOrder);\n        for (const cat of categories) { labels.push(cat); values.push(agg.get(cat) ?? 0); }\n    } else if (colorField) {\n        const counts = new Map<string, number>();\n        for (const row of table) {\n            const cat = String(row[colorField] ?? '');\n            counts.set(cat, (counts.get(cat) ?? 0) + 1);\n        }\n        const categories = extractCategories(table, colorField, channelSemantics.color?.ordinalSortOrder);\n        for (const cat of categories) { labels.push(cat); values.push(counts.get(cat) ?? 0); }\n    } else if (sizeField) {\n        for (const row of table) {\n            const v = Number(row[sizeField]) || 0;\n            labels.push(String(v));\n            values.push(v);\n        }\n    }\n    if (labels.length === 0) return;\n\n    const sortSlices = chartProperties?.sortSlices;\n    const order = labels.map((_l, i) => i);\n    if (sortSlices === 'descending') order.sort((a, b) => values[b] - values[a]);\n    else if (sortSlices === 'ascending') order.sort((a, b) => values[a] - values[b]);\n    const sortedLabels = order.map(i => labels[i]);\n    const sortedValues = order.map(i => values[i]);\n\n    const labelType = chartProperties?.labelType ?? 'categoryPercent';\n    const textinfo: Record<string, string> = {\n        none: 'none', category: 'label', value: 'value', percent: 'percent', categoryPercent: 'label+percent',\n    };\n\n    const palette = getPlotlyPalette(ctx, 'color');\n\n    // Canvas sizing: a native Plotly pie fills the largest circle that fits\n    // in the canvas AND auto-reserves horizontal room for the legend on the\n    // right — so we deliberately DON'T pin an explicit `domain`. The previous\n    // centered domain (with an 80px radius margin) shrank the circle to ~half\n    // its natural size and wasted matching space on the left. We keep only the\n    // circumference-pressure model to GROW the canvas when a dense pie (many\n    // thin slices) needs a bigger circle to give each slice its minimum arc.\n    const effectiveCount = computeEffectiveBarCount(sortedValues);\n    const { canvasW, canvasH } = computeCircumferencePressure(effectiveCount, ctx.canvasSize, {\n        minArcPx: 45,\n        minRadius: 60,\n        maxStretch: ctx.assembleOptions?.maxStretch,\n        maxStretchX: ctx.assembleOptions?.maxStretchX,\n        maxStretchY: ctx.assembleOptions?.maxStretchY,\n        margin: 24,\n    });\n\n    // Symmetric margin leaves room for the outside slice callouts (thin slices\n    // draw their label + connector just beyond the ring); Plotly grows the\n    // legend within its own reserved right gutter, so no vertical padding hack\n    // is needed.\n    const n = sortedLabels.length;\n    const hasOutsideLabels = labelType !== 'none';\n    const labelMargin = hasOutsideLabels ? Math.min(48, 20 + n) : 12;\n\n    Object.assign(spec, {\n        data: [{\n            type: 'pie',\n            labels: sortedLabels,\n            values: sortedValues,\n            hole,\n            textinfo: textinfo[labelType] ?? 'label+percent',\n            // Let outside slice labels push the margins so a cluster of thin\n            // slices (many tiny wedges crowded together) doesn't clip its\n            // stacked callouts against the canvas edge.\n            automargin: true,\n            marker: { colors: palette, line: { color: '#ffffff', width: 1 } },\n        }],\n        layout: {\n            showlegend: true,\n            margin: { t: labelMargin, b: labelMargin, l: 12, r: 12 },\n        },\n        _width: canvasW,\n        _height: canvasH,\n    });\n    delete spec.mark;\n    delete spec.encoding;\n}\n\nconst PIE_PROPERTIES: ChartPropertyDef[] = [\n    {\n        key: 'sortSlices', label: 'Sort slices', type: 'discrete',\n        options: [\n            { value: 'none', label: 'Data order' },\n            { value: 'descending', label: 'Largest first' },\n            { value: 'ascending', label: 'Smallest first' },\n        ],\n        defaultValue: 'none',\n    },\n    {\n        key: 'labelType', label: 'Labels', type: 'discrete',\n        options: [\n            { value: 'categoryPercent', label: 'Name + %' },\n            { value: 'category', label: 'Name' },\n            { value: 'value', label: 'Value' },\n            { value: 'percent', label: 'Percent' },\n            { value: 'none', label: 'None' },\n        ],\n        defaultValue: 'categoryPercent',\n    },\n];\n\nexport const plPieChartDef: ChartTemplateDef = {\n    chart: 'Pie Chart',\n    template: { mark: 'arc', encoding: {} },\n    channels: ['size', 'color'],\n    markCognitiveChannel: 'area',\n    instantiate: (spec, ctx) => buildPieOption(spec, ctx, 0),\n    properties: PIE_PROPERTIES,\n};\n\nexport const plDonutChartDef: ChartTemplateDef = {\n    chart: 'Donut Chart',\n    template: { mark: 'arc', encoding: {} },\n    channels: ['size', 'color'],\n    markCognitiveChannel: 'area',\n    instantiate: (spec, ctx) => buildPieOption(spec, ctx, (ctx.chartProperties?.innerRadius ?? 55) / 100),\n    properties: [\n        { key: 'innerRadius', label: 'Donut', type: 'continuous', min: 20, max: 80, step: 5, defaultValue: 55 } as ChartPropertyDef,\n        ...PIE_PROPERTIES,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Radar Chart template.\n *\n * Native `scatterpolar` trace with `fill: 'toself'` — Plotly handles the\n * polar projection, axis spokes, and grid rings natively (no manual trig\n * like the Vega-Lite template needs).\n *\n * Data model (long format): x = metric name, y = value, color = entity/group.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { extractCategories, groupBy, getPlotlyPalette, getSeriesColor, fillColor, niceMax } from './utils';\nimport { computeCircumferencePressure } from '../../core/decisions';\n\nexport const plRadarChartDef: ChartTemplateDef = {\n    chart: 'Radar Chart',\n    template: { mark: 'point', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    // Radar is POLAR, not cartesian. The generic facet combiner (facet.ts)\n    // only stitches cartesian xaxis/yaxis panels, so it collapses every\n    // facet's `scatterpolar` traces into the single default `polar` subplot\n    // (all regions overlaid in one radar). Opt out and lay one polar subplot\n    // per facet cell out internally — mirrors the Gauge template.\n    selfManagesFacets: true,\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const axisField = channelSemantics.x?.field;\n        const valueField = channelSemantics.y?.field;\n        const groupField = channelSemantics.color?.field;\n        const columnField = channelSemantics.column?.field;\n        const rowField = channelSemantics.row?.field;\n        if (!axisField || !valueField) return;\n\n        const metrics = extractCategories(table, axisField, channelSemantics.x?.ordinalSortOrder);\n        if (metrics.length < 2) return;\n\n        // Close the loop: repeat the first metric at the end so the polygon closes.\n        const closedMetrics = [...metrics, metrics[0]];\n\n        const meanPerMetric = (rows: any[]) => {\n            const sums = new Map<string, { sum: number; count: number }>();\n            for (const row of rows) {\n                const m = String(row[axisField] ?? '');\n                const v = Number(row[valueField]) || 0;\n                const e = sums.get(m) ?? { sum: 0, count: 0 };\n                e.sum += v; e.count++;\n                sums.set(m, e);\n            }\n            return metrics.map(m => {\n                const e = sums.get(m);\n                return e ? Math.round((e.sum / e.count) * 100) / 100 : 0;\n            });\n        };\n\n        const filled = chartProperties?.filled !== false;\n        const fillOpacity = Number(chartProperties?.fillOpacity ?? 0.3);\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        // Global radial max across ALL data so facets share one comparable\n        // scale (a per-facet max would make regions visually incomparable).\n        const allVals = table.map((r: any) => Number(r[valueField])).filter((v: number) => isFinite(v));\n        const radialMax = niceMax(allVals.length > 0 ? Math.max(...allVals) : 1);\n\n        // Consistent color per group across every facet cell.\n        const groupOrder = groupField\n            ? extractCategories(table, groupField, channelSemantics.color?.ordinalSortOrder)\n            : [];\n        const groupIdx = (name: string) => {\n            const k = groupOrder.indexOf(name);\n            return k >= 0 ? k : 0;\n        };\n\n        const makeTrace = (\n            name: string | undefined, rows: any[], idx: number,\n            polarKey: string, showlegend: boolean,\n        ) => {\n            const values = meanPerMetric(rows);\n            const closedValues = [...values, values[0]];\n            const color = getSeriesColor(palette, idx);\n            return {\n                type: 'scatterpolar',\n                mode: 'lines+markers',\n                ...(name != null ? { name, legendgroup: name } : {}),\n                showlegend,\n                r: closedValues,\n                theta: closedMetrics,\n                subplot: polarKey,\n                line: { color },\n                marker: { color },\n                fill: filled ? ('toself' as const) : undefined,\n                fillcolor: filled ? fillColor(color, fillOpacity) : undefined,\n            };\n        };\n\n        // ── Facet grid ────────────────────────────────────────────────\n        const colCats = columnField\n            ? extractCategories(table, columnField, channelSemantics.column?.ordinalSortOrder)\n            : [''];\n        const rowCats = rowField\n            ? extractCategories(table, rowField, channelSemantics.row?.ordinalSortOrder)\n            : [''];\n        const faceted = !!(columnField || rowField);\n        const cols = Math.max(1, colCats.length);\n        const gridRows = Math.max(1, rowCats.length);\n\n        const traces: any[] = [];\n        const annotations: any[] = [];\n        const layout: any = { showlegend: !!groupField };\n\n        // Canvas size first — needed to convert fixed-px label margins into\n        // domain fractions below.\n        let width: number;\n        let height: number;\n        if (faceted) {\n            // One radar per cell; grow the canvas so each stays legible.\n            width = Math.max(ctx.canvasSize.width, cols * 240);\n            height = Math.max(ctx.canvasSize.height, gridRows * 250);\n        } else {\n            const p = computeCircumferencePressure(metrics.length, ctx.canvasSize, {\n                minArcPx: 60,\n                minRadius: 80,\n                maxStretch: ctx.assembleOptions?.maxStretch,\n                maxStretchX: ctx.assembleOptions?.maxStretchX,\n                maxStretchY: ctx.assembleOptions?.maxStretchY,\n            });\n            width = p.canvasW;\n            height = p.canvasH;\n        }\n\n        const gapFrac = faceted ? 0.05 : 0;\n        const cellW = (1 - gapFrac * (cols - 1)) / cols;\n        const cellH = (1 - gapFrac * (gridRows - 1)) / gridRows;\n        const titlePad = faceted ? 26 / height : 0;\n        // The angular (metric) labels sit just outside the circle on all four\n        // sides. Inset the polar domain inside each cell so a side label\n        // (\"Retention\"/\"Profit\") stays within its OWN cell instead of colliding\n        // with the neighbouring radar's label across the gap.\n        const insetXFrac = faceted ? 40 / width : 0;\n        const insetYFrac = faceted ? 16 / height : 0;\n\n        const legendShown = new Set<string>();\n        let cellIndex = 0;\n        for (let r = 0; r < gridRows; r++) {\n            for (let c = 0; c < cols; c++) {\n                const x0 = c * (cellW + gapFrac);\n                const x1 = x0 + cellW;\n                const yTop = 1 - r * (cellH + gapFrac);\n                const y0 = yTop - cellH;\n                const polarKey = cellIndex === 0 ? 'polar' : `polar${cellIndex + 1}`;\n\n                const cellRows = table.filter((row: any) => {\n                    if (columnField && String(row[columnField] ?? '') !== colCats[c]) return false;\n                    if (rowField && String(row[rowField] ?? '') !== rowCats[r]) return false;\n                    return true;\n                });\n\n                if (faceted) {\n                    const label = [columnField ? colCats[c] : null, rowField ? rowCats[r] : null]\n                        .filter(Boolean).join(' · ');\n                    annotations.push({\n                        text: label, xref: 'paper', yref: 'paper',\n                        x: (x0 + x1) / 2, y: yTop, xanchor: 'center', yanchor: 'top',\n                        showarrow: false, font: { size: 12, color: '#374151' },\n                    });\n                }\n\n                layout[polarKey] = {\n                    domain: {\n                        x: [x0 + insetXFrac, x1 - insetXFrac],\n                        y: [y0 + insetYFrac, yTop - titlePad - insetYFrac],\n                    },\n                    radialaxis: {\n                        visible: true, range: [0, radialMax],\n                        showticklabels: !faceted, tickfont: { size: 9 },\n                    },\n                    angularaxis: {\n                        rotation: 90, direction: 'clockwise',\n                        tickfont: { size: faceted ? 10 : 12 },\n                    },\n                };\n\n                if (groupField) {\n                    for (const [name, rows] of groupBy(cellRows, groupField)) {\n                        const show = !legendShown.has(name);\n                        legendShown.add(name);\n                        traces.push(makeTrace(name, rows, groupIdx(name), polarKey, show));\n                    }\n                } else {\n                    traces.push(makeTrace(undefined, cellRows, 0, polarKey, false));\n                }\n                cellIndex++;\n            }\n        }\n\n        if (faceted) layout.annotations = annotations;\n\n        Object.assign(spec, {\n            data: traces,\n            layout,\n            _width: width,\n            _height: height,\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        {\n            key: 'filled', label: 'Fill', type: 'discrete', options: [\n                { value: true, label: 'Filled (default)' },\n                { value: false, label: 'Outline only' },\n            ],\n        } as ChartPropertyDef,\n        { key: 'fillOpacity', label: 'Opacity', type: 'continuous', min: 0.05, max: 0.8, step: 0.05, defaultValue: 0.3 } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Rose Chart (Nightingale / Coxcomb) template.\n *\n * Native `barpolar` trace: bars in polar coordinates, one wedge per angular\n * category. `layout.barmode: 'stack'` stacks color groups radially — Plotly\n * handles the polar stacking natively.\n *\n * NOTE on area-truth: the Vega-Lite/ECharts Rose templates map value → sqrt(value)\n * so wedge AREA is proportional to value (matching a true rose/Nightingale\n * chart). Plotly's native polar bar stacking sums raw `r` values, and undoing\n * that to preserve sqrt-area-truth under stacking would require reimplementing\n * the stacking arithmetic by hand. This template uses linear radius (radius ∝\n * value, area not strictly ∝ value) to keep Plotly's native stacking — a\n * documented behavioral difference from the other backends, flagged here for\n * anyone who needs strict area-truth parity.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { extractCategories, groupBy, getPlotlyPalette, getSeriesColor } from './utils';\nimport { computeCircumferencePressure } from '../../core/decisions';\n\nexport const plRoseChartDef: ChartTemplateDef = {\n    chart: 'Rose Chart',\n    template: { mark: 'arc', encoding: {} },\n    channels: ['x', 'y', 'color'],\n    markCognitiveChannel: 'area',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const catField = channelSemantics.x?.field;\n        const valField = channelSemantics.y?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!catField || !valField) return;\n\n        let categories = extractCategories(table, catField, channelSemantics.x?.ordinalSortOrder);\n        if (categories.length === 0) return;\n\n        const sortSlices = chartProperties?.sortSlices;\n        if (sortSlices === 'descending' || sortSlices === 'ascending') {\n            const totals = new Map<string, number>();\n            for (const c of categories) totals.set(c, 0);\n            for (const row of table) {\n                const c = String(row[catField] ?? '');\n                if (totals.has(c)) totals.set(c, totals.get(c)! + (Number(row[valField]) || 0));\n            }\n            categories = [...categories].sort((a, b) =>\n                sortSlices === 'descending' ? (totals.get(b) ?? 0) - (totals.get(a) ?? 0) : (totals.get(a) ?? 0) - (totals.get(b) ?? 0));\n        }\n\n        const sumPerCategory = (rows: any[]) => {\n            const agg = new Map<string, number>();\n            for (const row of rows) {\n                const c = String(row[catField] ?? '');\n                agg.set(c, (agg.get(c) ?? 0) + (Number(row[valField]) || 0));\n            }\n            return categories.map(c => agg.get(c) ?? 0);\n        };\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        const traces: any[] = [];\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                traces.push({\n                    type: 'barpolar',\n                    name,\n                    r: sumPerCategory(rows),\n                    theta: categories,\n                    marker: { color: getSeriesColor(palette, i) },\n                });\n                i++;\n            }\n        } else {\n            traces.push({\n                type: 'barpolar',\n                r: sumPerCategory(table),\n                theta: categories,\n                marker: { color: categories.map((_c, i) => getSeriesColor(palette, i)) },\n                showlegend: false,\n            });\n        }\n\n        const { canvasW, canvasH } = computeCircumferencePressure(categories.length, ctx.canvasSize, {\n            minArcPx: 45,\n            minRadius: 80,\n            maxStretch: ctx.assembleOptions?.maxStretch,\n            maxStretchX: ctx.assembleOptions?.maxStretchX,\n            maxStretchY: ctx.assembleOptions?.maxStretchY,\n        });\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                barmode: colorField ? 'stack' : undefined,\n                polar: { angularaxis: { rotation: 90, direction: 'clockwise' }, radialaxis: { rangemode: 'tozero' } },\n                showlegend: !!colorField,\n            },\n            _width: canvasW,\n            _height: canvasH,\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        {\n            key: 'sortSlices', label: 'Sort slices', type: 'discrete', options: [\n                { value: 'none', label: 'Data order' },\n                { value: 'descending', label: 'Largest first' },\n                { value: 'ascending', label: 'Smallest first' },\n            ],\n            defaultValue: 'none',\n        } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Boxplot template.\n *\n * Native `box` trace: pass raw y-values with a matching category `x` array\n * and Plotly computes the five-number summary (quartiles, whiskers, outliers)\n * itself — like Vega-Lite's `mark: \"boxplot\"`, unlike ECharts/Chart.js which\n * must precompute the summary client-side.\n *\n * Grouped boxplots (a `color` field subdividing the category axis) use\n * `layout.boxmode: 'group'` — Plotly's native per-category dodge, the\n * equivalent of the other backends' manual band-dodge planner.\n *\n * NOTE: Plotly's box trace does not expose a native \"extend whiskers to\n * min/max\" mode (only its quartile-computation algorithm is configurable);\n * unlike the Vega-Lite/ECharts boxplot templates this template always uses\n * Tukey (1.5×IQR) whiskers. `showOutliers` toggles the outlier points.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { isDiscreteType, extractCategories, groupBy, getPlotlyPalette, getSeriesColor } from './utils';\nimport { detectBandedAxisForceDiscrete } from '../../core/axis-detection';\nimport { planBandDodge } from '../../core/band-dodge';\n\nexport const plBoxplotDef: ChartTemplateDef = {\n    chart: 'Boxplot',\n    template: { mark: 'boxplot', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    declareLayoutMode: (cs, table) => {\n        if (!cs.x?.field || !cs.y?.field) return {};\n        const result = detectBandedAxisForceDiscrete(cs, table, { preferAxis: 'x' });\n        if (!result) return {};\n        return {\n            axisFlags: { [result.axis]: { banded: true } },\n            resolvedTypes: result.resolvedTypes,\n            paramOverrides: { defaultBandSize: 28 },\n        };\n    },\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const colorField = channelSemantics.color?.field;\n        if (!xCS?.field || !yCS?.field) return;\n\n        const xIsDiscrete = isDiscreteType(xCS.type);\n        const yIsDiscrete = isDiscreteType(yCS.type);\n        const catAxis: 'x' | 'y' = (yIsDiscrete && !xIsDiscrete) ? 'y' : 'x';\n        const valAxis: 'x' | 'y' = catAxis === 'x' ? 'y' : 'x';\n        const catField = channelSemantics[catAxis]!.field!;\n        const valField = channelSemantics[valAxis]!.field!;\n        const isHorizontal = catAxis === 'y';\n\n        const categories = extractCategories(table, catField, channelSemantics[catAxis]?.ordinalSortOrder);\n        const showOutliers = chartProperties?.showOutliers !== false;\n        const boxpoints = showOutliers ? 'outliers' : false;\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const makeTrace = (name: string | undefined, rows: any[], colorIdx: number) => {\n            const cats = rows.map((r: any) => String(r[catField] ?? ''));\n            const vals = rows.map((r: any) => Number(r[valField]));\n            return {\n                type: 'box',\n                ...(name != null ? { name } : {}),\n                ...(isHorizontal ? { y: cats, x: vals } : { x: cats, y: vals }),\n                boxpoints,\n                marker: { color: getSeriesColor(palette, colorIdx), size: 3 },\n                line: { color: getSeriesColor(palette, colorIdx) },\n            };\n        };\n\n        const traces: any[] = [];\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) { traces.push(makeTrace(name, rows, i)); i++; }\n        } else {\n            traces.push(makeTrace(undefined, table, 0));\n        }\n\n        // Degenerate color (color re-encodes the category axis, or a 1:1 /\n        // sparse mapping where every band holds at most one colour) must NOT\n        // dodge into per-lane slivers with a redundant legend — collapse to\n        // one full-width box per band. `boxmode: 'group'` reserves a lane per\n        // trace, so drop it (default overlay) and hide the redundant legend;\n        // the boxes stay colour-coded but sit one per band. Genuine sub-group\n        // colour (maxPerBand > 1) keeps the native grouped dodge.\n        const redundantColor = !!colorField\n            && planBandDodge(table, catField, colorField).maxPerBand <= 1;\n        // Collapsed boxes sit one per band, so widen them to fill the band\n        // (Plotly's default overlay box is only ~40% of the band).\n        if (redundantColor) for (const t of traces) t.width = 0.8;\n\n        const catAxisSpec = { type: 'category' as const, categoryorder: 'array' as const, categoryarray: categories, title: { text: catField } };\n        const valAxisSpec = { title: { text: valField }, zeroline: false };\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                boxmode: (colorField && !redundantColor) ? 'group' : undefined,\n                ...(isHorizontal ? { yaxis: catAxisSpec, xaxis: valAxisSpec } : { xaxis: catAxisSpec, yaxis: valAxisSpec }),\n                showlegend: !!colorField && !redundantColor,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'showOutliers', label: 'Outliers', type: 'binary', defaultValue: true } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Violin Plot template.\n *\n * Native `violin` trace: pass raw y-values per category and Plotly computes\n * the KDE + box overlay itself (matching Vega-Lite's `mark: \"violin\"` /\n * density transform, unlike ECharts which has no native violin and needs a\n * custom render item).\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { isDiscreteType, extractCategories, groupBy, getPlotlyPalette, getSeriesColor } from './utils';\nimport { detectBandedAxisForceDiscrete } from '../../core/axis-detection';\n\nexport const plViolinPlotDef: ChartTemplateDef = {\n    chart: 'Violin Plot',\n    template: { mark: 'violin', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'area',\n    declareLayoutMode: (cs, table) => {\n        if (!cs.x?.field || !cs.y?.field) return {};\n        const result = detectBandedAxisForceDiscrete(cs, table, { preferAxis: 'x' });\n        if (!result) return {};\n        return {\n            axisFlags: { [result.axis]: { banded: true } },\n            resolvedTypes: result.resolvedTypes,\n            paramOverrides: { defaultBandSize: 40 },\n        };\n    },\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const colorField = channelSemantics.color?.field;\n        if (!xCS?.field || !yCS?.field) return;\n\n        const xIsDiscrete = isDiscreteType(xCS.type);\n        const yIsDiscrete = isDiscreteType(yCS.type);\n        const catAxis: 'x' | 'y' = (yIsDiscrete && !xIsDiscrete) ? 'y' : 'x';\n        const valAxis: 'x' | 'y' = catAxis === 'x' ? 'y' : 'x';\n        const catField = channelSemantics[catAxis]!.field!;\n        const valField = channelSemantics[valAxis]!.field!;\n        const isHorizontal = catAxis === 'y';\n\n        const categories = extractCategories(table, catField, channelSemantics[catAxis]?.ordinalSortOrder);\n        const showBox = chartProperties?.showBox !== false;\n        const showPoints = chartProperties?.showPoints === true;\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const makeTrace = (name: string | undefined, rows: any[], colorIdx: number) => {\n            const cats = rows.map((r: any) => String(r[catField] ?? ''));\n            const vals = rows.map((r: any) => Number(r[valField]));\n            const color = getSeriesColor(palette, colorIdx);\n            return {\n                type: 'violin',\n                ...(name != null ? { name } : {}),\n                ...(isHorizontal ? { y: cats, x: vals } : { x: cats, y: vals }),\n                orientation: isHorizontal ? 'h' as const : 'v' as const,\n                box: { visible: showBox },\n                meanline: { visible: true },\n                points: showPoints ? 'all' as const : false,\n                line: { color },\n                fillcolor: color,\n                opacity: 0.6,\n            };\n        };\n\n        const traces: any[] = [];\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) { traces.push(makeTrace(name, rows, i)); i++; }\n        } else {\n            traces.push(makeTrace(undefined, table, 0));\n        }\n\n        const catAxisSpec = { type: 'category' as const, categoryorder: 'array' as const, categoryarray: categories, title: { text: catField } };\n        const valAxisSpec = { title: { text: valField }, zeroline: false };\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                violinmode: colorField ? 'group' : undefined,\n                ...(isHorizontal ? { yaxis: catAxisSpec, xaxis: valAxisSpec } : { xaxis: catAxisSpec, yaxis: valAxisSpec }),\n                showlegend: !!colorField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'showBox', label: 'Inner box', type: 'binary', defaultValue: true } as ChartPropertyDef,\n        { key: 'showPoints', label: 'Points', type: 'binary', defaultValue: false } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Density Plot template (KDE area).\n *\n * Plotly has no native density transform; the curve is computed here\n * (Gaussian KDE, same bandwidth rule as the Vega-Lite/ECharts templates) and\n * drawn as a filled `scatter` line — mirroring `ecDensityPlotDef`.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { groupBy, getPlotlyPalette, getSeriesColor, fillColor, kde } from './utils';\n\nexport const plDensityPlotDef: ChartTemplateDef = {\n    chart: 'Density Plot',\n    template: { mark: 'area', encoding: {} },\n    channels: ['x', 'color', 'column', 'row'],\n    markCognitiveChannel: 'area',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xField = channelSemantics.x?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!xField) return;\n\n        const steps = 200;\n        const bandwidthMultiplier = (chartProperties?.bandwidth != null && chartProperties.bandwidth > 0)\n            ? chartProperties.bandwidth : 1;\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const traces: any[] = [];\n        if (colorField) {\n            const allValues = table.map((r: any) => Number(r[xField])).filter((v: number) => !isNaN(v));\n            const sharedExtent = allValues.length > 0\n                ? { min: Math.min(...allValues), max: Math.max(...allValues) } : undefined;\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                const values = rows.map((r: any) => Number(r[xField])).filter((v: number) => !isNaN(v));\n                const { x, y } = kde(values, steps, bandwidthMultiplier, sharedExtent);\n                const color = getSeriesColor(palette, i);\n                traces.push({\n                    type: 'scatter', mode: 'lines', name, x, y,\n                    line: { color }, fill: 'tozeroy', fillcolor: fillColor(color, 0.4),\n                });\n                i++;\n            }\n        } else {\n            const values = table.map((r: any) => Number(r[xField])).filter((v: number) => !isNaN(v));\n            const { x, y } = kde(values, steps, bandwidthMultiplier);\n            const color = getSeriesColor(palette, 0);\n            traces.push({\n                type: 'scatter', mode: 'lines', x, y,\n                line: { color }, fill: 'tozeroy', fillcolor: fillColor(color, 0.4),\n            });\n        }\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                xaxis: { title: { text: xField } },\n                yaxis: { title: { text: 'Density' }, rangemode: 'tozero' },\n                showlegend: !!colorField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'bandwidth', label: 'Bandwidth', type: 'continuous', min: 0.05, max: 2, step: 0.05, defaultValue: 0 } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly ECDF Plot template.\n *\n * Plotly has no cumulative-distribution transform; the step curve is\n * precomputed (mirroring `ecEcdfPlotDef`) and drawn as a `scatter` trace with\n * `line.shape: 'hv'` (step-after — Plotly's equivalent of ECharts' `step:\n * 'end'`).\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { groupBy, getPlotlyPalette, getSeriesColor, ecdfPairs } from './utils';\n\nexport const plEcdfPlotDef: ChartTemplateDef = {\n    chart: 'ECDF Plot',\n    template: { mark: 'line', encoding: {} },\n    channels: ['x', 'color', 'detail', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xField = channelSemantics.x?.field;\n        const groupField = channelSemantics.color?.field ?? channelSemantics.detail?.field;\n        if (!xField) return;\n\n        const showPoints = !!chartProperties?.showPoints;\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const makeTrace = (name: string | undefined, values: number[], idx: number) => {\n            const pairs = ecdfPairs(values);\n            return {\n                type: 'scatter',\n                mode: showPoints ? 'lines+markers' as const : 'lines' as const,\n                ...(name != null ? { name } : {}),\n                x: pairs.map(p => p[0]),\n                y: pairs.map(p => p[1]),\n                line: { shape: 'hv' as const, color: getSeriesColor(palette, idx), width: 2 },\n                marker: { size: 6 },\n            };\n        };\n\n        const traces: any[] = [];\n        if (groupField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, groupField)) {\n                traces.push(makeTrace(name, rows.map((r: any) => Number(r[xField])).filter((v: number) => !isNaN(v)), i));\n                i++;\n            }\n        } else {\n            traces.push(makeTrace(undefined, table.map((r: any) => Number(r[xField])).filter((v: number) => !isNaN(v)), 0));\n        }\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                xaxis: { title: { text: xField } },\n                yaxis: { title: { text: 'Cumulative proportion' }, range: [0, 1] },\n                showlegend: !!groupField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'showPoints', label: 'Points', type: 'binary', defaultValue: false } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Strip Plot (categorical scatter with jitter) template.\n *\n * The jittered category axis is a numeric axis with explicit `tickvals` /\n * `ticktext` at integer positions (Plotly has no native \"jittered category\"\n * axis), so fractional jitter offsets can be plotted directly — mirroring\n * `ecStripPlotDef`'s hidden-value-axis trick.\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport { isDiscreteType, extractCategories, groupBy, getPlotlyPalette, getSeriesColor, seededJitter } from './utils';\nimport { makeCartesianPivot } from '../../core/pivot';\n\nexport const plStripPlotDef: ChartTemplateDef = {\n    chart: 'Strip Plot',\n    template: { mark: 'circle', encoding: {} },\n    channels: ['x', 'y', 'color', 'size', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    declareLayoutMode: () => ({\n        paramOverrides: { defaultBandSize: 50, minStep: 16 },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, colorDecisions } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const xField = xCS?.field;\n        const yField = yCS?.field;\n        const colorField = channelSemantics.color?.field;\n        const colorType = channelSemantics.color?.type;\n        const isContinuousColor = !!colorField && (colorType === 'quantitative' || colorType === 'temporal');\n        if (!xField || !yField) return;\n\n        const xIsDiscrete = isDiscreteType(xCS?.type);\n        const yIsDiscrete = isDiscreteType(yCS?.type);\n        const catAxis: 'x' | 'y' = xIsDiscrete ? 'x' : yIsDiscrete ? 'y' : 'x';\n        const catField = catAxis === 'x' ? xField : yField;\n        const contField = catAxis === 'x' ? yField : xField;\n\n        const categories = extractCategories(table, catField!, channelSemantics[catAxis]?.ordinalSortOrder);\n        const catIndex = new Map(categories.map((c, i) => [c, i]));\n        const rand = seededJitter(42);\n        const jitterHalfWidth = 0.3;\n\n        const catCoord = (row: any) => {\n            const idx = catIndex.get(String(row[catField!] ?? '')) ?? 0;\n            return idx + rand() * jitterHalfWidth;\n        };\n\n        const catAxisSpec = {\n            tickmode: 'array' as const,\n            tickvals: categories.map((_c, i) => i),\n            ticktext: categories,\n            range: [-0.5, categories.length - 0.5],\n            title: { text: catField },\n            zeroline: false,\n        };\n        const contAxisSpec = { title: { text: contField } };\n\n        const traces: any[] = [];\n        const buildXY = (row: any) => {\n            const cv = catCoord(row);\n            return catAxis === 'x' ? [cv, row[contField!]] : [row[contField!], cv];\n        };\n\n        if (isContinuousColor && colorField) {\n            const colorVals = table.map((r: any) => Number(r[colorField])).filter((v: number) => isFinite(v));\n            const cmin = colorVals.length ? Math.min(...colorVals) : 0;\n            const cmax = colorVals.length ? Math.max(...colorVals) : 1;\n            traces.push({\n                type: 'scatter',\n                mode: 'markers',\n                name: colorField,\n                x: table.map((r: any) => buildXY(r)[0]),\n                y: table.map((r: any) => buildXY(r)[1]),\n                marker: {\n                    color: table.map((r: any) => Number(r[colorField])),\n                    colorscale: 'Viridis',\n                    cmin, cmax,\n                    showscale: true,\n                    colorbar: { title: { text: colorField } },\n                    opacity: 0.75,\n                    size: 8,\n                },\n            });\n        } else if (colorField) {\n            const palette = getPlotlyPalette(ctx, 'color');\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                traces.push({\n                    type: 'scatter',\n                    mode: 'markers',\n                    name,\n                    x: rows.map((r: any) => buildXY(r)[0]),\n                    y: rows.map((r: any) => buildXY(r)[1]),\n                    marker: { color: getSeriesColor(palette, i), opacity: 0.75, size: 8 },\n                });\n                i++;\n            }\n        } else {\n            const palette = getPlotlyPalette(ctx, 'color');\n            traces.push({\n                type: 'scatter',\n                mode: 'markers',\n                x: table.map((r: any) => buildXY(r)[0]),\n                y: table.map((r: any) => buildXY(r)[1]),\n                marker: { color: getSeriesColor(palette, 0), opacity: 0.75, size: 8 },\n            });\n        }\n        void colorDecisions;\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                ...(catAxis === 'x' ? { xaxis: catAxisSpec, yaxis: contAxisSpec } : { xaxis: contAxisSpec, yaxis: catAxisSpec }),\n                showlegend: !!colorField && !isContinuousColor,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    pivot: makeCartesianPivot({}),\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Connected Scatter Plot template.\n *\n * Points in 2-D (x, y both quantitative) connected by a straight line in a\n * defined `order` — a trajectory, not a trend line. Mirrors\n * `ecConnectedScatterDef`: one `scatter` trace per group, `mode:\n * 'lines+markers'`, straight segments (never smoothed).\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport { groupBy, getPlotlyPalette, getSeriesColor, sortByOrder } from './utils';\n\nexport const plConnectedScatterDef: ChartTemplateDef = {\n    chart: 'Connected Scatter Plot',\n    template: { mark: 'line', encoding: {} },\n    channels: ['x', 'y', 'order', 'color', 'detail', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        const orderField = channelSemantics.order?.field;\n        const groupField = channelSemantics.color?.field ?? channelSemantics.detail?.field;\n        if (!xField || !yField) return;\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        const makeTrace = (name: string | undefined, rows: any[], idx: number) => {\n            const sorted = sortByOrder(rows, orderField);\n            const color = getSeriesColor(palette, idx);\n            return {\n                type: 'scatter',\n                mode: 'lines+markers',\n                ...(name != null ? { name } : {}),\n                x: sorted.map((r: any) => r[xField]),\n                y: sorted.map((r: any) => r[yField]),\n                line: { color, shape: 'linear' as const },\n                marker: { color, size: 7 },\n            };\n        };\n\n        const traces: any[] = [];\n        if (groupField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, groupField)) { traces.push(makeTrace(name, rows, i)); i++; }\n        } else {\n            traces.push(makeTrace(undefined, table, 0));\n        }\n\n        const xAxisSpec: any = { title: { text: xField } };\n        const yAxisSpec: any = { title: { text: yField } };\n        // A trajectory reads its shape, not its distance from zero.\n        if (channelSemantics.x?.zero) xAxisSpec.rangemode = channelSemantics.x.zero.zero !== false ? 'tozero' : 'normal';\n        if (channelSemantics.y?.zero) yAxisSpec.rangemode = channelSemantics.y.zero.zero !== false ? 'tozero' : 'normal';\n\n        Object.assign(spec, {\n            data: traces,\n            layout: { xaxis: xAxisSpec, yaxis: yAxisSpec, showlegend: !!groupField },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Range Area Chart (band / high–low ribbon) template.\n *\n * A filled band between a lower (`y`) and upper (`y2`) bound at each x.\n * Plotly's native `fill: 'tonexty'` fills the region between two\n * consecutive traces sharing the same x — the idiomatic Plotly ribbon,\n * simpler than the other backends' transparent-base + delta-stack trick.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { isDiscreteType, extractCategories, groupBy, coerceIsoDateForPlotly, getPlotlyPalette, getSeriesColor, fillColor } from './utils';\n\nexport const plRangeAreaChartDef: ChartTemplateDef = {\n    chart: 'Range Area Chart',\n    template: { mark: 'area', encoding: {} },\n    channels: ['x', 'y', 'y2', 'color', 'column', 'row'],\n    markCognitiveChannel: 'area',\n    declareLayoutMode: () => ({\n        paramOverrides: { continuousMarkCrossSection: { x: 100, y: 20, seriesCountAxis: 'auto' } },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const y2CS = channelSemantics.y2;\n        const colorField = channelSemantics.color?.field;\n        if (!xCS?.field || !yCS?.field || !y2CS?.field) return;\n\n        const xField = xCS.field;\n        const lowField = yCS.field;\n        const highField = y2CS.field;\n        const xIsDiscrete = isDiscreteType(xCS.type);\n        const xIsTemporal = xCS.type === 'temporal';\n        const mapX = (raw: unknown) => (xIsTemporal ? coerceIsoDateForPlotly(raw) : raw);\n\n        const opacity = Number(chartProperties?.opacity ?? 0.35);\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        // Sort each group by x so the polygon traces a clean band (unsorted\n        // data would zig-zag the fill).\n        const sortRows = (rows: any[]) => xIsDiscrete ? rows : [...rows].sort((a, b) => {\n            const av = xIsTemporal ? new Date(a[xField]).getTime() : Number(a[xField]);\n            const bv = xIsTemporal ? new Date(b[xField]).getTime() : Number(b[xField]);\n            return av - bv;\n        });\n\n        const makeBand = (name: string | undefined, rows: any[], idx: number) => {\n            const sorted = sortRows(rows);\n            const xs = xIsDiscrete ? sorted.map((r: any) => r[xField]) : sorted.map((r: any) => mapX(r[xField]));\n            const color = getSeriesColor(palette, idx);\n            return [\n                {\n                    type: 'scatter', mode: 'lines', showlegend: false,\n                    name: name != null ? `${name} (low)` : 'low',\n                    x: xs, y: sorted.map((r: any) => r[lowField]),\n                    line: { width: 0, color },\n                    hoverinfo: 'skip' as const,\n                },\n                {\n                    type: 'scatter', mode: 'lines',\n                    ...(name != null ? { name } : {}),\n                    x: xs, y: sorted.map((r: any) => r[highField]),\n                    line: { width: 1.5, color },\n                    fill: 'tonexty' as const,\n                    fillcolor: fillColor(color, opacity),\n                },\n            ];\n        };\n\n        const traces: any[] = [];\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) { traces.push(...makeBand(name, rows, i)); i++; }\n        } else {\n            traces.push(...makeBand(undefined, table, 0));\n        }\n\n        const xAxisSpec: any = { title: { text: xField } };\n        if (xIsDiscrete) {\n            xAxisSpec.type = 'category';\n            xAxisSpec.categoryorder = 'array';\n            xAxisSpec.categoryarray = extractCategories(table, xField, xCS.ordinalSortOrder);\n        } else if (xIsTemporal) {\n            xAxisSpec.type = 'date';\n        }\n        const valueTitle = lowField === highField ? lowField : `${lowField}, ${highField}`;\n\n        Object.assign(spec, {\n            data: traces,\n            layout: { xaxis: xAxisSpec, yaxis: { title: { text: valueTitle } }, showlegend: !!colorField },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'opacity', label: 'Opacity', type: 'continuous', min: 0.1, max: 1, step: 0.05, defaultValue: 0.35 } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Streamgraph template.\n *\n * A \"center-offset\" stacked area (Vega-Lite's `y.stack: 'center'` / ECharts'\n * native `themeRiver`). Plotly has no native wiggle/center stacking, so the\n * baseline is precomputed here (silhouette offset: `-totalAtX / 2`) and each\n * series is drawn as a cumulative line with `fill: 'tonexty'` against the\n * previous series' cumulative line — the same successive-ribbon technique\n * `plRangeAreaChartDef` uses for a single band, chained across N series.\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport { extractCategories, coerceIsoDateForPlotly, getPlotlyPalette, getSeriesColor } from './utils';\n\nexport const plStreamgraphDef: ChartTemplateDef = {\n    chart: 'Streamgraph',\n    template: { mark: 'area', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'area',\n    declareLayoutMode: () => ({\n        paramOverrides: { continuousMarkCrossSection: { x: 100, y: 20, seriesCountAxis: 'auto' } },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const colorField = channelSemantics.color?.field;\n        if (!xCS?.field || !yCS?.field) return;\n        const xField = xCS.field;\n        const yField = yCS.field;\n        const xIsTemporal = xCS.type === 'temporal';\n        const mapX = (raw: unknown) => (xIsTemporal ? coerceIsoDateForPlotly(raw) : raw);\n\n        // Shared x categories across all series (temporal/ordinal x, sorted).\n        const xKeys = extractCategories(table, xField, xCS.ordinalSortOrder);\n        const orderedKeys = xIsTemporal\n            ? [...xKeys].sort((a, b) => new Date(a).getTime() - new Date(b).getTime())\n            : (xCS.type === 'quantitative' ? [...xKeys].sort((a, b) => Number(a) - Number(b)) : xKeys);\n\n        const seriesNames = colorField\n            ? [...new Set(table.map((r: any) => String(r[colorField] ?? '')))]\n            : [yField];\n\n        // value(seriesName, xKey)\n        const valMap = new Map<string, number>();\n        for (const row of table) {\n            const xk = String(row[xField]);\n            const sn = colorField ? String(row[colorField] ?? '') : yField;\n            const v = Number(row[yField]);\n            valMap.set(`${xk}\\u0000${sn}`, (Number.isFinite(v) ? v : 0));\n        }\n\n        // Per-x total → silhouette baseline (centers the stack around zero).\n        const totals = orderedKeys.map(xk =>\n            seriesNames.reduce((sum, sn) => sum + (valMap.get(`${xk}\\u0000${sn}`) ?? 0), 0));\n        const baseline = totals.map(t => -t / 2);\n\n        const xVals = orderedKeys.map(k => (xIsTemporal ? mapX(k) : (xCS.type === 'quantitative' ? Number(k) : k)));\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const traces: any[] = [{\n            type: 'scatter', mode: 'lines', showlegend: false,\n            x: xVals, y: baseline,\n            line: { width: 0 }, hoverinfo: 'skip',\n        }];\n        let cumulative = [...baseline];\n        seriesNames.forEach((sn, i) => {\n            cumulative = cumulative.map((c, xi) => c + (valMap.get(`${orderedKeys[xi]}\\u0000${sn}`) ?? 0));\n            const color = getSeriesColor(palette, i);\n            traces.push({\n                type: 'scatter', mode: 'lines',\n                name: sn,\n                x: xVals, y: [...cumulative],\n                line: { width: 0.5, color },\n                fill: 'tonexty',\n                fillcolor: color,\n            });\n        });\n\n        const xAxisSpec: any = { title: { text: xField } };\n        if (xIsTemporal) xAxisSpec.type = 'date';\n        else if (xCS.type !== 'quantitative') {\n            xAxisSpec.type = 'category';\n            xAxisSpec.categoryorder = 'array';\n            xAxisSpec.categoryarray = orderedKeys;\n        }\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                xaxis: xAxisSpec,\n                yaxis: { title: { text: yField }, showticklabels: false, zeroline: false },\n                showlegend: !!colorField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Slope Chart (slopegraph) template.\n *\n * One straight line per category connecting its value at two periods, with\n * markers at both ends. Mirrors `ecSlopeChartDef`: the period axis is always\n * a two-band category axis; the value axis fits the data (a slope chart\n * reads the *change*, not the distance from zero) unless the zero decision\n * says otherwise.\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport { extractCategories, groupBy, buildCategoryAlignedData, getPlotlyPalette, getSeriesColor } from './utils';\n\n/** Order period categories naturally: numeric, then chronological, else data order. */\nfunction orderPeriods(categories: string[]): string[] {\n    if (categories.length <= 1) return categories;\n    if (categories.every(c => c.trim() !== '' && !isNaN(Number(c)))) {\n        return [...categories].sort((a, b) => Number(a) - Number(b));\n    }\n    if (categories.every(c => !isNaN(Date.parse(c)))) {\n        return [...categories].sort((a, b) => Date.parse(a) - Date.parse(b));\n    }\n    return categories;\n}\n\nexport const plSlopeChartDef: ChartTemplateDef = {\n    chart: 'Slope Chart',\n    template: { mark: 'line', encoding: {} },\n    channels: ['x', 'y', 'color', 'detail', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    declareLayoutMode: () => ({\n        axisFlags: { x: { banded: true } },\n        paramOverrides: { defaultBandSize: 120, continuousMarkCrossSection: { x: 0, y: 0, seriesCountAxis: 'auto' } },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        const groupField = channelSemantics.color?.field ?? channelSemantics.detail?.field;\n        if (!xField || !yField) return;\n\n        const categories = orderPeriods(extractCategories(table, xField, undefined));\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const makeTrace = (name: string | undefined, rows: any[], idx: number) => {\n            const values = buildCategoryAlignedData(rows, xField, yField, categories);\n            const color = getSeriesColor(palette, idx);\n            return {\n                type: 'scatter',\n                mode: 'lines+markers',\n                ...(name != null ? { name } : {}),\n                x: categories, y: values,\n                line: { color, shape: 'linear' as const },\n                marker: { color, size: 7 },\n                connectgaps: false,\n            };\n        };\n\n        const traces: any[] = [];\n        if (groupField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, groupField)) { traces.push(makeTrace(name, rows, i)); i++; }\n        } else {\n            traces.push(makeTrace(undefined, table, 0));\n        }\n\n        const yAxisSpec: any = { title: { text: yField } };\n        if (channelSemantics.y?.zero) yAxisSpec.rangemode = channelSemantics.y.zero.zero !== false ? 'tozero' : 'normal';\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                xaxis: { type: 'category', categoryorder: 'array', categoryarray: categories, title: { text: xField } },\n                yaxis: yAxisSpec,\n                showlegend: !!groupField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * =============================================================================\n * FIELD SEMANTICS\n * =============================================================================\n *\n * Resolves what a data field *is* by combining its semantic annotation\n * (from LLM or user) with the actual data values. This resolves the\n * one-to-many ambiguities in the type registry (e.g., Score can be\n * quantitative or ordinal depending on cardinality).\n *\n * The entry point is `resolveFieldSemantics()`. It produces a\n * `FieldSemantics` object that captures the field's identity, format,\n * aggregation role, domain, scale hint, and ordering — everything\n * about *what the data represents*, independent of how it will be\n * visualized on any particular channel.\n *\n * Design doc: docs/design-compilation-context.md\n *\n * VL dependency: **None** — pure TypeScript, no rendering library imports.\n * =============================================================================\n */\n\nimport {\n    type VisCategory,\n    getRegistryEntry,\n    isRegistered,\n} from './type-registry';\n\nimport {\n    getZeroClass,\n    inferOrdinalSortOrder,\n    inferVisCategory,\n    type ZeroClass,\n} from './semantic-types';\n\n// Re-export for backward compatibility — consumers can import from here or type-registry\nexport { getRegistryEntry } from './type-registry';\nexport type { TypeRegistryEntry } from './type-registry';\n\n// =============================================================================\n// §1  PUBLIC TYPES\n// =============================================================================\n\n/**\n * Enriched semantic annotation from LLM or user.\n */\nexport interface SemanticAnnotation {\n    /** The T2 semantic type string (e.g., \"Amount\", \"Score\", \"Month\") */\n    semanticType: string;\n\n    /**\n     * Intrinsic domain (value range) of this field's scale.\n     * Only for bounded/scaled types — NOT for open-ended measures.\n     * E.g., [1, 5] for 5-star rating, [0, 100] for score, [-90, 90] for latitude.\n     */\n    intrinsicDomain?: [number, number];\n\n    /** Unit or currency code. E.g., \"USD\", \"°C\", \"kg\" */\n    unit?: string;\n\n    /** Explicit ordinal ordering. E.g., [\"Low\", \"Medium\", \"High\"] */\n    sortOrder?: string[];\n}\n\n/** d3-compatible format specification */\nexport interface FormatSpec {\n    /** d3-format pattern: \",.2f\", \".1%\", \"+.2f\", etc. */\n    pattern?: string;\n    /** Prefix before the number: \"$\", \"€\", \"£\" */\n    prefix?: string;\n    /** Suffix after the number: \"°C\", \"%\", \" kg\" */\n    suffix?: string;\n    /** Whether large values should be abbreviated (1K, 1M, 1B) */\n    abbreviate?: boolean;\n}\n\n/** Domain bounds constraint */\nexport interface DomainConstraint {\n    min?: number;\n    max?: number;\n    /** Whether to hard-clamp values outside the domain */\n    clamp?: boolean;\n}\n\n/** Tick mark constraint */\nexport interface TickConstraint {\n    /** Only show integer tick values */\n    integersOnly?: boolean;\n    /** Exact tick values to show (for small domains like 1–5 rating) */\n    exactTicks?: number[];\n    /** Minimum step between ticks */\n    minStep?: number;\n}\n\n/** Color scheme recommendation from semantic analysis */\nexport interface ColorSchemeHint {\n    /** Whether the field is best shown with sequential, diverging, or categorical colors */\n    type: 'sequential' | 'diverging' | 'categorical';\n    /** For diverging: the midpoint value */\n    divergingMidpoint?: number;\n    /** Whether the field is inherently diverging (always show diverging) vs conditional */\n    inherentlyDiverging?: boolean;\n}\n\n/** Result of diverging midpoint analysis */\nexport interface DivergingInfo {\n    /** The midpoint value where the diverging center sits */\n    midpoint: number;\n    /** Whether this type is always diverging or only when data spans both sides */\n    inherent: boolean;\n    /** Source of the midpoint determination */\n    source: 'unit' | 'type-intrinsic' | 'domain' | 'data';\n}\n\n/**\n * Resolved field semantics — what the data field *is*.\n *\n * Derived from a `SemanticAnnotation` (semantic type + optional metadata)\n * plus actual data values. Resolves the one-to-many ambiguities in the\n * type registry by inspecting the concrete data representation.\n *\n * This is purely about the field’s identity and intrinsic properties —\n * NOT about how it will be visualized on a particular channel.\n * Channel-specific decisions (color scheme, axis reversal, interpolation,\n * tick strategy, stacking, etc.) belong in `ChannelSemantics`.\n *\n * Built once per field per dataset by `resolveFieldSemantics()`.\n */\nexport interface FieldSemantics {\n    // --- Identity ---\n    /** The semantic annotation (normalized from string or object input) */\n    semanticAnnotation: SemanticAnnotation;\n\n    // --- Encoding ---\n    /** Preferred encoding type, disambiguated from registry using data */\n    defaultVisType: VisCategory;\n\n    // --- Formatting ---\n    /** Number format derived from data type and unit (only set when confident) */\n    format?: FormatSpec;\n    /** Tooltip format (typically higher precision than axis format) */\n    tooltipFormat?: FormatSpec;\n\n    // --- Aggregation ---\n    /** Default aggregate function — intrinsic to the field (additive vs intensive) */\n    aggregationDefault?: 'sum' | 'average';\n\n    // --- Scale ---\n    /** Zero-baseline classification (meaningful / arbitrary / bipolar) */\n    zeroClass: ZeroClass | 'unknown';\n    /** Recommended scale type based on data distribution */\n    scaleType?: 'linear' | 'log' | 'sqrt' | 'symlog';\n\n    // --- Domain ---\n    /** Intrinsic domain bounds (from annotation, type-intrinsic, or data-inferred) */\n    domainConstraint?: DomainConstraint;\n\n    // --- Ordering ---\n    /** Canonical ordinal sort order (months, days, etc.) */\n    canonicalOrder?: string[];\n    /** Whether the canonical order is cyclic (wraps around) */\n    cyclic: boolean;\n    /** Default sort direction */\n    sortDirection: 'ascending' | 'descending';\n\n    // --- Histogram ---\n    /** Whether this field’s data distribution benefits from binning */\n    binningSuggested: boolean;\n}\n\n// =============================================================================\n// §2  TYPE REGISTRY  →  see ./type-registry.ts (single source of truth)\n// =============================================================================\n\n/**\n * Extract the semantic type string from a bare string or annotation object.\n * Used when downstream code only needs the type string, not the full annotation.\n */\nexport function toTypeString(input: string | SemanticAnnotation | undefined): string {\n    if (!input) return '';\n    if (typeof input === 'string') return input;\n    return input.semanticType || '';\n}\n\n// =============================================================================\n// §3  ANNOTATION NORMALIZATION\n// =============================================================================\n\n/**\n * Normalize a bare string or enriched annotation object into a\n * consistent SemanticAnnotation.\n *\n * Accepts:\n *   \"Amount\"                                          → { semanticType: \"Amount\" }\n *   { semanticType: \"Score\", intrinsicDomain: [1,5] }  → as-is\n *   undefined / \"\"                                     → { semanticType: \"Unknown\" }\n */\nexport function normalizeAnnotation(\n    input: string | SemanticAnnotation | undefined,\n): SemanticAnnotation {\n    if (!input) return { semanticType: 'Unknown' };\n    if (typeof input === 'string') return { semanticType: input || 'Unknown' };\n    return { ...input, semanticType: input.semanticType || 'Unknown' };\n}\n\n// =============================================================================\n// §4  FORMAT RESOLUTION\n// =============================================================================\n\n/** Map currency codes to display symbols */\nconst CURRENCY_MAP: Record<string, string> = {\n    USD: '$', EUR: '€', GBP: '£', JPY: '¥', CNY: '¥',\n    KRW: '₩', INR: '₹', BRL: 'R$', CAD: 'CA$', AUD: 'A$',\n    CHF: 'CHF', SEK: 'kr', NOK: 'kr', DKK: 'kr',\n};\n\n/**\n * Map common unit strings to suffix display.\n *\n * Limited to a small set of well-known, universally understood units.\n * Unknown/arbitrary annotation.unit values are intentionally excluded\n * to keep axis labels clean and avoid displaying obscure or verbose\n * unit strings on tick marks.\n */\nconst UNIT_SUFFIX_MAP: Record<string, string> = {\n    // Temperature\n    '°C': '°C', '°F': '°F', C: '°C', F: '°F',\n    // Mass\n    kg: ' kg', lb: ' lb',\n    // Distance\n    km: ' km', mi: ' mi', m: ' m', ft: ' ft',\n    // Speed\n    'km/h': ' km/h', mph: ' mph',\n    // Time\n    sec: ' s', min: ' min', hr: ' hr',\n    seconds: ' s', minutes: ' min', hours: ' hr',\n    // Percentage (handled by formatClass, but allow explicit suffix)\n    '%': '%',\n};\n\n/**\n * Detect whether percentage data uses 0–1 (fractional) or 0–100 (whole-number)\n * representation.\n *\n * Values can exceed the intrinsic range (e.g., 155 % growth), so we look at\n * the *majority* of absolute values rather than just the max.\n */\nfunction detectPercentageRepresentation(values: number[]): '0-1' | '0-100' {\n    if (values.length === 0) return '0-100';\n    const abs = values.map(Math.abs);\n    // If the majority of values are ≤ 1, treat as fractional 0–1 representation\n    const countBelow1 = abs.filter(v => v <= 1).length;\n    if (countBelow1 / abs.length >= 0.8) return '0-1';\n    return '0-100';\n}\n\n/**\n * Detect the maximum number of meaningful decimal places in a set of values.\n *\n * Returns 0 for all-integer data, 1 for data like [3.7, 4.2], 2 for [1.25, 3.50], etc.\n * Caps at 4 to avoid floating-point noise (e.g., 0.1 + 0.2 = 0.30000000000000004).\n */\nfunction detectPrecision(values: number[]): number {\n    let maxDecimals = 0;\n    for (const v of values) {\n        if (!Number.isFinite(v)) continue;\n        // Convert to string, trim trailing zeros, count decimal places\n        const s = v.toFixed(10);  // enough digits to detect real precision\n        const dot = s.indexOf('.');\n        if (dot === -1) continue;\n        // Trim trailing zeros\n        let end = s.length - 1;\n        while (end > dot && s[end] === '0') end--;\n        const decimals = end > dot ? end - dot : 0;\n        if (decimals > maxDecimals) maxDecimals = decimals;\n    }\n    return Math.min(maxDecimals, 4);\n}\n\n/**\n * Build a d3-format pattern that matches the detected data precision.\n *\n * @param values  Numeric data values\n * @param useGrouping  Whether to include thousands separator (,)\n * @param signMode  '' = default, '+' = always show sign\n * @returns  Format pattern string like ',d', ',.1f', ',.2f'\n */\nfunction precisionFormat(values: number[], useGrouping = true, signMode: '' | '+' = ''): string {\n    const p = detectPrecision(values);\n    const group = useGrouping ? ',' : '';\n    if (p === 0) return `${signMode}${group}d`;\n    return `${signMode}${group}.${p}f`;\n}\n\n/**\n * Resolve the format specification for a field based on its semantic type,\n * annotation metadata, and data values.\n *\n * Priority: annotation.unit > type-specific defaults\n */\nexport function resolveFormat(\n    semanticType: string,\n    annotation: SemanticAnnotation,\n    values: any[],\n): { format?: FormatSpec; tooltipFormat?: FormatSpec } {\n    const entry = getRegistryEntry(semanticType);\n    const unit = annotation.unit;\n\n    // Resolve currency prefix from annotation.unit\n    const currencyPrefix = unit ? CURRENCY_MAP[unit.toUpperCase()] ?? CURRENCY_MAP[unit] : undefined;\n    // Resolve unit suffix from annotation.unit — only use known units;\n    // unknown units are dropped to avoid polluting tick labels with\n    // obscure or verbose strings.\n    const unitSuffix = unit ? UNIT_SUFFIX_MAP[unit] : undefined;\n\n    const nums = values.filter((v: any) => typeof v === 'number' && !isNaN(v));\n\n    // ─── Policy: only override axis format when the raw number would be\n    // genuinely misleading.  Two cases qualify:\n    //   1. Percent with 0–1 data + intrinsicDomain → representation transform\n    //   2. Currency with a known unit → add currency symbol\n    // Everything else: let VL handle axis formatting natively.\n    // Tooltip format is lower-stakes (transient hover) so we're more liberal.\n\n    switch (entry.formatClass) {\n        case 'currency': {\n            const pfx = currencyPrefix;\n            // Only override axis when we have a known currency symbol;\n            // without it the axis is better left to VL defaults.\n            if (pfx) {\n                const axisPattern = semanticType === 'Price' ? ',.2f' : precisionFormat(nums);\n                return {\n                    format: { pattern: axisPattern, prefix: pfx },\n                    tooltipFormat: { pattern: ',.2f', prefix: pfx },\n                };\n            }\n            return { tooltipFormat: { pattern: ',.2f' } };\n        }\n\n        case 'percent': {\n            // Without intrinsicDomain we can't reliably distinguish 0–1\n            // from 0–100, so defer to VL.\n            if (!annotation.intrinsicDomain) {\n                return { tooltipFormat: { pattern: precisionFormat(nums) } };\n            }\n            const rep = detectPercentageRepresentation(nums);\n            if (rep === '0-1') {\n                // 0–1 fractional → axis must transform (0.45 → \"45%\")\n                const p = detectPrecision(nums);\n                const axisP = Math.max(0, p - 2);\n                const tipP  = Math.min(axisP + 1, 4);\n                return {\n                    format: { pattern: `.${axisP}~%` },\n                    tooltipFormat: { pattern: `.${tipP}%` },\n                };\n            }\n            // Whole-number 0–100: raw numbers are readable as-is.\n            // Axis title conveys \"percentage\"; tooltip adds suffix for clarity.\n            return {\n                tooltipFormat: { pattern: precisionFormat(nums, false), suffix: '%' },\n            };\n        }\n\n        case 'unit-suffix':\n            return {\n                tooltipFormat: unitSuffix\n                    ? { pattern: precisionFormat(nums), suffix: unitSuffix }\n                    : { pattern: precisionFormat(nums) },\n            };\n\n        case 'integer':\n            // Year/Decade: no comma — '2,024' is wrong for a year.\n            // Other integers (Count, Rank, Hour): comma separator aids readability.\n            if (semanticType === 'Year' || semanticType === 'Decade') {\n                return {};\n            }\n            return { tooltipFormat: { pattern: ',d' } };\n\n        case 'decimal':\n            return { tooltipFormat: { pattern: precisionFormat(nums) } };\n\n        case 'plain':\n        default:\n            return {};\n    }\n}\n\n// =============================================================================\n// §5  DEFAULT VIS TYPE\n// =============================================================================\n\n/**\n * Resolve the default Vega-Lite encoding type for a field.\n *\n * When the registry lists multiple candidates (e.g., Score → ['quantitative', 'ordinal']),\n * disambiguate using data statistics (distinct value count).\n */\nexport function resolveDefaultVisType(\n    semanticType: string,\n    values: any[],\n): VisCategory {\n    // For unregistered types, defer entirely to data characteristics\n    if (!isRegistered(semanticType)) {\n        return inferVisCategory(values);\n    }\n\n    const entry = getRegistryEntry(semanticType);\n    const candidates = entry.visEncodings;\n    if (candidates.length === 1) {\n        // Guard: if registry says quantitative but actual values are\n        // strings (e.g. binned ranges like \"91-95\"), defer to data inference.\n        if (candidates[0] === 'quantitative') {\n            const nonNull = values.filter(v => v != null);\n            const allNumeric = nonNull.length > 0 &&\n                nonNull.every(v => typeof v === 'number' || (typeof v === 'string' && !isNaN(+v) && v.trim() !== ''));\n            if (!allNumeric) {\n                return inferVisCategory(values);\n            }\n        }\n        return candidates[0];\n    }\n\n    // Disambiguate between quantitative and ordinal based on distinct count\n    if (candidates.includes('quantitative') && candidates.includes('ordinal')) {\n        const distinct = new Set(values.filter(v => v != null)).size;\n        // Small number of distinct values → ordinal feels more natural\n        return distinct <= 12 ? 'ordinal' : 'quantitative';\n    }\n\n    // Disambiguate between temporal and ordinal\n    if (candidates.includes('temporal') && candidates.includes('ordinal')) {\n        const distinct = new Set(values.filter(v => v != null)).size;\n        // Few values → ordinal (e.g., only 3 years: 2022, 2023, 2024)\n        return distinct <= 6 ? 'ordinal' : 'temporal';\n    }\n\n    // If geographic + quantitative (lat/lon), prefer quantitative for standard charts\n    if (candidates.includes('geographic') && candidates.includes('quantitative')) {\n        return 'quantitative';\n    }\n\n    return candidates[0];\n}\n\n// =============================================================================\n// §6  AGGREGATION DEFAULT\n// =============================================================================\n\n/**\n * Resolve the default aggregation function based on the field's role.\n *\n * - Additive measures → sum (parts sum to a meaningful total)\n * - Intensive measures → average (rates/averages shouldn't be summed)\n * - Signed-additive    → sum (preserves sign semantics)\n * - Dimensions/IDs     → undefined (aggregation not meaningful)\n */\nexport function resolveAggregationDefault(\n    semanticType: string,\n): 'sum' | 'average' | undefined {\n    const entry = getRegistryEntry(semanticType);\n    switch (entry.aggRole) {\n        case 'additive':        return 'sum';\n        case 'signed-additive': return 'sum';\n        case 'intensive':       return 'average';\n        case 'dimension':       return undefined;\n        case 'identifier':      return undefined;\n        default:                return undefined;\n    }\n}\n\n// =============================================================================\n// §7  ZERO-BASELINE CLASSIFICATION\n// =============================================================================\n\n/**\n * Resolve zero-baseline class, enhanced with annotation domain.\n *\n * If annotation provides a domain starting above 0 (e.g., Rating [1, 5]),\n * zero is arbitrary regardless of what the base type says.\n */\nexport function resolveZeroClassFromAnnotation(\n    semanticType: string,\n    domain?: [number, number],\n): ZeroClass | 'unknown' {\n    // If domain starts above zero (e.g., Rating [1,5]), zero is arbitrary\n    if (domain && domain[0] > 0) return 'arbitrary';\n\n    // Delegate to existing classification\n    return getZeroClass(semanticType);\n}\n\n// =============================================================================\n// §8  SCALE TYPE\n// =============================================================================\n\n/**\n * Recommend a scale type based on semantic type and data distribution.\n *\n * Conservative policy — only triggers when ALL of these hold:\n *   1. The semantic type is an additive measure with an open domain and is\n *      not a generic fallback (i.e. Amount, Quantity, Duration — types whose\n *      magnitude is meaningful and can legitimately span many decades).\n *   2. Data spans ≥ 6 orders of magnitude (1,000,000×).\n *   3. At least 10 data points, all non-negative.\n *\n * This intentionally almost never fires on everyday data; it only helps with\n * genuinely wide-range additive measures. When it does not fire the axis stays\n * linear, and the user can still opt into log via the per-axis quick control.\n */\nexport function resolveScaleType(\n    semanticType: string,\n    values: number[],\n): 'linear' | 'log' | 'sqrt' | 'symlog' | undefined {\n    // Only consider log for additive measures with open domains —\n    // these are the types that can legitimately span many orders of magnitude.\n    // (E.g., revenue, population, quantities across different scales.)\n    // Exclude generic fallback types (Number, Unknown) — they just mean\n    // \"we know it's numeric but not what it measures\", so applying\n    // log/symlog would be presumptuous.\n    const entry = getRegistryEntry(semanticType);\n    const eligible = entry.aggRole === 'additive' && entry.domainShape === 'open'\n        && entry.t1 !== 'GenericMeasure';\n    if (!eligible) return undefined;\n\n    if (values.length < 10) return undefined;\n\n    const filtered = values.filter(v => typeof v === 'number' && !isNaN(v) && isFinite(v));\n    if (filtered.length < 10) return undefined;\n\n    const min = Math.min(...filtered);\n    const max = Math.max(...filtered);\n    if (max <= 0 || min === max) return undefined;\n\n    // Only all-positive data — don't auto-log mixed-sign\n    if (min < 0) return undefined;\n\n    // Require ≥ 6 orders of magnitude (1000 000×) — very conservative\n    const positiveMin = Math.min(...filtered.filter(v => v > 0));\n    if (positiveMin > 0 && max / positiveMin >= 1000000) {\n        // If data contains zeros, log(0) = -∞ breaks the scale.\n        // Use symlog (linear near zero, logarithmic for large values)\n        // so zeros remain representable.\n        const hasZeros = filtered.some(v => v === 0);\n        return hasZeros ? 'symlog' : 'log';\n    }\n\n    return undefined;\n}\n\n// =============================================================================\n// §9  DOMAIN CONSTRAINTS\n// =============================================================================\n\n/**\n * Merge an intrinsic (semantic) domain with the actual data range.\n *\n * For **hard** domains (Latitude, Correlation) the intrinsic bounds are\n * physically absolute — data cannot exceed them, so we clamp.\n *\n * For **soft** domains (Percentage, Score, Rating, annotation-supplied)\n * the intrinsic bounds describe the *typical* range but real data can\n * legitimately exceed them (e.g., 155 % growth).  The effective domain\n * is the union: min(intrinsic[0], dataMin) … max(intrinsic[1], dataMax).\n */\nfunction mergeIntrinsicWithData(\n    intrinsic: [number, number],\n    values: any[],\n    hard: boolean,\n): DomainConstraint {\n    if (hard) {\n        return { min: intrinsic[0], max: intrinsic[1], clamp: true };\n    }\n    const nums = values.filter((v: any) => typeof v === 'number' && !isNaN(v));\n    if (nums.length === 0) {\n        return { min: intrinsic[0], max: intrinsic[1], clamp: false };\n    }\n    const dataMin = Math.min(...nums);\n    const dataMax = Math.max(...nums);\n    return {\n        min: Math.min(intrinsic[0], dataMin),\n        max: Math.max(intrinsic[1], dataMax),\n        clamp: false,\n    };\n}\n\n/**\n * Snap-to-bound heuristic for bounded types like Percentage / PercentageChange.\n *\n * Each bound is snapped independently:\n * - If data approaches the intrinsic lower bound → snap min\n * - If data approaches the intrinsic upper bound → snap max\n * - If data exceeds a bound → don't snap that side (let VL auto-extend)\n *\n * Threshold: 25% of the *effective side range*.\n *\n * We err on the side of snapping, because:\n * - Semantic types are opt-in — the bound carries meaning by definition.\n * - A wrong snap (extra white space) is less harmful than a wrong\n *   no-snap (viewer loses semantic reference, differences are\n *   exaggerated and proximity to the bound is hidden).\n * - Only when data is clearly in the interior (> 25% away from each\n *   bound) does the bound stop being a useful reference.\n *\n * When the intrinsic domain straddles zero (lo < 0 < hi), zero acts as a\n * visual baseline (bar charts, contextual zero).  Each bound's threshold\n * is computed relative to its distance from zero — not the full range —\n * so that snapping one side doesn't make values on the other side of zero\n * invisible (e.g., snapping to -100% when data has a tiny +0.2% bar).\n *\n * When the domain doesn't straddle zero (e.g., [0, 100]), the full range\n * is used as the reference.\n *\n * Examples for Percentage [0, 100] (threshold = 25, full range):\n *   20–45%   → snap min=0 only     (20 within 25 of 0; 45 far from 100)\n *   35–65%   → no snap             (both far from edges, in interior)\n *   55–82%   → snap max=100 only   (82 within 25 of 100; 55 far from 0)\n *   15–80%   → snap both [0, 100]  (15 near 0, 80 near 100)\n *   30–130%  → no snap             (130 exceeds 100 → no snap; 30 far from 0)\n *\n * Examples for PercentageChange [-1, 1] (threshold = 0.25 per side):\n *   -0.03 to +0.05 → no snap       (both far from ±0.75)\n *   -0.70 to +0.30 → no snap       (-0.70 > -0.75, not close enough)\n *   -0.80 to +0.30 → snap min=-1   (-0.80 ≤ -0.75; +0.30 < 0.75)\n *   -0.80 to +0.78 → snap both     (both within 0.25 of edges)\n */\nexport function snapToBoundHeuristic(\n    intrinsic: [number, number],\n    values: any[],\n): DomainConstraint | undefined {\n    const nums = values.filter((v: any) => typeof v === 'number' && !isNaN(v));\n    if (nums.length === 0) return undefined;\n\n    const [lo, hi] = intrinsic;\n    const range = hi - lo;\n    if (range <= 0) return undefined;\n\n    const dataMin = Math.min(...nums);\n    const dataMax = Math.max(...nums);\n\n    // When the domain straddles zero, compute each side's threshold relative\n    // to its distance from zero.  This prevents snapping one side from\n    // stretching the axis so wide that values near zero on the other side\n    // become invisible (sub-pixel bars).\n    const zeroInside = lo < 0 && hi > 0;\n    const thresholdLo = 0.25 * (zeroInside ? (0 - lo) : range);\n    const thresholdHi = 0.25 * (zeroInside ? hi       : range);\n\n    let snapMin: number | undefined;\n    let snapMax: number | undefined;\n\n    // Snap lower bound: data min is close to intrinsic lower bound\n    // AND data doesn't go below it (if it does, VL auto-extends)\n    if (dataMin >= lo && dataMin <= lo + thresholdLo) {\n        snapMin = lo;\n    }\n\n    // Snap upper bound: data max is close to intrinsic upper bound\n    // AND data doesn't exceed it\n    if (dataMax <= hi && dataMax >= hi - thresholdHi) {\n        snapMax = hi;\n    }\n\n    if (snapMin === undefined && snapMax === undefined) return undefined;\n\n    return { min: snapMin, max: snapMax, clamp: false };\n}\n\n/**\n * Resolve domain constraints from annotation, type-intrinsic rules, or data.\n *\n * Only truly fixed physical domains (Latitude, Longitude, Correlation)\n * use hard clamping. Bounded types like Percentage use a snap-to-bound\n * heuristic: the axis extends to the theoretical endpoint (e.g., 100%)\n * only when data is close to it, avoiding wasted space when data is\n * concentrated in a small region.\n *\n * Priority: annotation.intrinsicDomain > type-intrinsic > data-inferred\n */\nexport function resolveDomainConstraint(\n    semanticType: string,\n    annotation: SemanticAnnotation,\n    values: any[],\n): DomainConstraint | undefined {\n    const entry = getRegistryEntry(semanticType);\n\n    // 1. Explicit annotation intrinsicDomain\n    if (annotation.intrinsicDomain) {\n        // Proportion (Percentage) and SignedMeasure (PercentageChange, Profit):\n        // use snap-to-bound heuristic on both ends independently.\n        // Don't force the full theoretical range — only snap to a bound\n        // when data approaches it (e.g., 97% → snap to 100%, -0.95 → snap to -1).\n        if (entry.t1 === 'Proportion' || entry.t1 === 'SignedMeasure') {\n            return snapToBoundHeuristic(annotation.intrinsicDomain, values);\n        }\n        // All other types: soft merge (union of intrinsic + data)\n        return mergeIntrinsicWithData(annotation.intrinsicDomain, values, false);\n    }\n\n    // 2. Type-intrinsic hard domains (physically impossible to exceed)\n    if (semanticType === 'Latitude')    return mergeIntrinsicWithData([-90, 90], values, true);\n    if (semanticType === 'Longitude')   return mergeIntrinsicWithData([-180, 180], values, true);\n    if (semanticType === 'Correlation') return mergeIntrinsicWithData([-1, 1], values, true);\n\n    // 3. Percentage without explicit annotation — detect scale and apply snap\n    if (semanticType === 'Percentage') {\n        const nums = values.filter((v: any) => typeof v === 'number' && !isNaN(v));\n        if (nums.length > 0) {\n            const rep = detectPercentageRepresentation(nums);\n            const M = rep === '0-1' ? 1 : 100;\n            return snapToBoundHeuristic([0, M], values);\n        }\n    }\n\n    return undefined;\n}\n\n// =============================================================================\n// §10  TICK CONSTRAINTS\n// =============================================================================\n\n/**\n * Resolve tick constraints based on semantic type and domain.\n *\n * For bounded integer domains (e.g., Rating [1, 5]), generates exact ticks.\n * For integer types (Count, Rank, Year), enforces integer-only ticks.\n */\nexport function resolveTickConstraint(\n    semanticType: string,\n    domain?: [number, number],\n): TickConstraint | undefined {\n    const entry = getRegistryEntry(semanticType);\n\n    if (entry.formatClass === 'integer') {\n        const tc: TickConstraint = { integersOnly: true, minStep: 1 };\n        // If domain provided and span is small, generate exact ticks\n        if (domain) {\n            const span = domain[1] - domain[0];\n            if (span <= 20 && span > 0) {\n                tc.exactTicks = [];\n                for (let i = domain[0]; i <= domain[1]; i++) {\n                    tc.exactTicks.push(i);\n                }\n            }\n        }\n        return tc;\n    }\n\n    // Score with bounded domain → integer ticks ONLY when domain span\n    // indicates meaningful integer steps.  For small spans like [0, 1],\n    // the values are continuous (e.g., outlier_score 0–1) and forcing\n    // integer ticks would remove all intermediate tick marks.\n    if (semanticType === 'Score' && domain) {\n        const span = domain[1] - domain[0];\n        if (span >= 2) {\n            const tc: TickConstraint = { integersOnly: true, minStep: 1 };\n            if (span <= 20) {\n                tc.exactTicks = [];\n                for (let i = domain[0]; i <= domain[1]; i++) {\n                    tc.exactTicks.push(i);\n                }\n            }\n            return tc;\n        }\n    }\n\n    return undefined;\n}\n\n// =============================================================================\n// §11  CANONICAL ORDERING & CYCLIC\n// =============================================================================\n\n/**\n * Resolve the canonical sort order for a field.\n *\n * Priority: annotation.sortOrder > well-known type sequence > auto-detect from data\n */\nexport function resolveCanonicalOrder(\n    semanticType: string,\n    annotation: SemanticAnnotation,\n    values: any[],\n): string[] | undefined {\n    // 1. Explicit annotation sortOrder\n    if (annotation.sortOrder && annotation.sortOrder.length > 0) {\n        return annotation.sortOrder;\n    }\n\n    // 2. Delegate to existing well-known sequence detection\n    return inferOrdinalSortOrder(semanticType, values);\n}\n\n/**\n * Determine whether a field's values form a cyclic (wrap-around) sequence.\n *\n * Derived purely from semantic type — NOT an LLM annotation.\n * Types with domainShape='cyclic' in the registry are cyclic.\n */\nexport function resolveCyclic(semanticType: string): boolean {\n    const entry = getRegistryEntry(semanticType);\n    return entry.domainShape === 'cyclic';\n}\n\n// =============================================================================\n// §12  REVERSED AXIS\n// =============================================================================\n\n/**\n * Whether the axis should be reversed for this field.\n *\n * Rank is the primary case: 1st place should appear at the top of the\n * y-axis.  On the x-axis, rank 1 should stay on the left (no reversal).\n */\nexport function resolveReversed(semanticType: string, channel?: string): boolean {\n    if (semanticType === 'Rank') {\n        // Only reverse on the y-axis (rank 1 at top).\n        // On x-axis, natural left-to-right order is correct.\n        return channel !== 'x';\n    }\n    return false;\n}\n\n// =============================================================================\n// §13  NICE (domain rounding)\n// =============================================================================\n\n/**\n * Whether to apply \"nice\" rounding to scale domain endpoints.\n *\n * Nice is false when:\n * - There's a fixed domain constraint (Rating [1, 5] → axis should show exactly 1–5)\n * - The type has a fixed domain shape (Latitude, Correlation)\n */\nexport function resolveNice(\n    semanticType: string,\n    domainConstraint?: DomainConstraint,\n): boolean {\n    if (domainConstraint?.clamp) return false;\n    if (domainConstraint && domainConstraint.min !== undefined && domainConstraint.max !== undefined) {\n        return false;\n    }\n    const entry = getRegistryEntry(semanticType);\n    if (entry.domainShape === 'fixed') return false;\n    return true;\n}\n\n// =============================================================================\n// §14  DIVERGING & COLOR SCHEME HINT\n// =============================================================================\n\n/**\n * Resolve diverging midpoint information for a field.\n *\n * Priority chain:\n *   1. annotation.unit → type lookup (°C → 0, °F → 32)\n *   2. type-intrinsic midpoint (Sentiment → 0, Correlation → 0)\n *   3. annotation.intrinsicDomain midpoint (Rating [1,5] → 3)\n *   4. data-driven: data spans 0 → midpoint 0\n *\n * Returns undefined if no diverging treatment applies.\n */\nexport function resolveDivergingInfo(\n    semanticType: string,\n    annotation: SemanticAnnotation,\n    values: number[],\n): DivergingInfo | undefined {\n    const entry = getRegistryEntry(semanticType);\n    // Types with diverging='none' don't get diverging treatment\n\n    // 1. Unit-derived (Temperature)\n    if (semanticType === 'Temperature' && annotation.unit) {\n        const unitMidpoints: Record<string, number> = {\n            '°C': 0, '°F': 32, 'K': 273.15, C: 0, F: 32,\n        };\n        const mid = unitMidpoints[annotation.unit];\n        if (mid !== undefined) {\n            return { midpoint: mid, inherent: false, source: 'unit' };\n        }\n    }\n\n    // 3. Type-intrinsic\n    if (entry.diverging === 'inherent') {\n        return { midpoint: 0, inherent: true, source: 'type-intrinsic' };\n    }\n    if (entry.diverging === 'conditional') {\n        return { midpoint: 0, inherent: false, source: 'type-intrinsic' };\n    }\n\n    // 3. Domain-derived midpoint (e.g., Rating [1,5] → 3)\n    if (annotation.intrinsicDomain) {\n        return {\n            midpoint: (annotation.intrinsicDomain[0] + annotation.intrinsicDomain[1]) / 2,\n            inherent: false,\n            source: 'domain',\n        };\n    }\n\n    // 4. Data-driven: if data spans 0, use 0 as midpoint\n    if (values.length > 0) {\n        const min = Math.min(...values);\n        const max = Math.max(...values);\n        if (min < 0 && max > 0) {\n            return { midpoint: 0, inherent: false, source: 'data' };\n        }\n    }\n\n    return undefined;\n}\n\n/**\n * Resolve color scheme hint based on semantic type, diverging analysis,\n * and data values.\n */\nexport function resolveColorSchemeHint(\n    semanticType: string,\n    annotation: SemanticAnnotation,\n    values: any[],\n): ColorSchemeHint {\n    const entry = getRegistryEntry(semanticType);\n    const nums = values.filter((v: any) => typeof v === 'number' && !isNaN(v));\n\n    // Try diverging analysis\n    const divInfo = resolveDivergingInfo(semanticType, annotation, nums);\n    if (divInfo) {\n        const min = nums.length > 0 ? Math.min(...nums) : 0;\n        const max = nums.length > 0 ? Math.max(...nums) : 0;\n        const spansBothSides = min < divInfo.midpoint && max > divInfo.midpoint;\n\n        if (divInfo.inherent || spansBothSides) {\n            return {\n                type: 'diverging',\n                divergingMidpoint: divInfo.midpoint,\n                inherentlyDiverging: divInfo.inherent,\n            };\n        }\n    }\n\n    // Sequential for quantitative, categorical for nominal/ordinal\n    if (entry.visEncodings.includes('quantitative')) {\n        return { type: 'sequential' };\n    }\n    return { type: 'categorical' };\n}\n\n// =============================================================================\n// §15  BINNING SUITABILITY\n// =============================================================================\n\n/**\n * Whether this field benefits from histogram-style binning.\n *\n * False for small bounded domains (Rating 1–5), non-numeric types,\n * and identifiers.\n */\nexport function resolveBinningSuggested(\n    semanticType: string,\n    domain?: [number, number],\n): boolean {\n    const entry = getRegistryEntry(semanticType);\n\n    // Non-quantitative types don't get binned\n    if (!entry.visEncodings.includes('quantitative')) return false;\n\n    // Identifiers/dimensions don't get binned\n    if (entry.aggRole === 'identifier' || entry.aggRole === 'dimension') return false;\n\n    // Year should use temporal axis, not bins\n    if (semanticType === 'Year' || semanticType === 'Decade') return false;\n\n    // Small bounded domains have too few values to bin\n    if (domain && (domain[1] - domain[0]) <= 20) return false;\n\n    // Score with known small range\n    if (semanticType === 'Score' && !domain) return false;\n\n    return true;\n}\n\n// =============================================================================\n// §17  STACKING COMPATIBILITY\n// =============================================================================\n\n/**\n * Whether values of this type can be stacked in a bar/area chart, and how.\n *\n * - 'sum':       Additive measures (parts sum to whole)\n * - 'normalize': Proportions (show 100% breakdown)\n * - false:       Stacking is meaningless (rates, scores, identifiers)\n */\nexport function resolveStackable(\n    semanticType: string,\n): 'sum' | 'normalize' | false {\n    const entry = getRegistryEntry(semanticType);\n\n    switch (entry.aggRole) {\n        case 'additive':        return 'sum';\n        case 'signed-additive': return 'sum';\n        case 'intensive':\n            // Percentage is the exception — normalizable\n            if (semanticType === 'Percentage') return 'normalize';\n            return false;\n        case 'dimension':       return false;\n        case 'identifier':      return false;\n        default:                return false;\n    }\n}\n\n// =============================================================================\n// §18  SORT DIRECTION\n// =============================================================================\n\n/**\n * Default sort direction for this field when used on an axis.\n */\nexport function resolveSortDirection(\n    semanticType: string,\n): 'ascending' | 'descending' {\n    // Rank: show best first\n    if (semanticType === 'Rank') return 'descending';\n    return 'ascending';\n}\n\n// =============================================================================\n// §19  BUILDER: resolveFieldSemantics()\n// =============================================================================\n\n/**\n * Resolve field semantics from annotation + data.\n *\n * This is the sole entry point for data-identity decisions. It resolves\n * the one-to-many ambiguities in the type registry by inspecting the\n * concrete data representation.\n *\n * Visualization-specific decisions (color scheme, axis reversal,\n * interpolation, tick strategy, nice rounding, stacking) are NOT\n * computed here — those belong in `resolveChannelSemantics()`.\n *\n * @param input       The semantic type annotation (string or enriched object)\n * @param fieldName   Column name (used for unit detection heuristics)\n * @param values      Sampled data values from this field\n * @returns           Resolved field semantics\n */\nexport function resolveFieldSemantics(\n    input: string | SemanticAnnotation | undefined,\n    fieldName: string,\n    values: any[],\n): FieldSemantics {\n    // 1. Normalize annotation\n    const annotation = normalizeAnnotation(input);\n    const semanticType = annotation.semanticType;\n\n    // 2. Numeric values (filtered once, reused across resolvers)\n    const numericValues = values\n        .filter((v: any) => typeof v === 'number' && !isNaN(v) && isFinite(v));\n\n    // 3. Resolve field-intrinsic properties\n    const defaultVisType = resolveDefaultVisType(semanticType, values);\n    const { format, tooltipFormat } = resolveFormat(semanticType, annotation, values);\n    let aggregationDefault = resolveAggregationDefault(semanticType);\n    let zeroClass = resolveZeroClassFromAnnotation(semanticType, annotation.intrinsicDomain);\n    const scaleType = resolveScaleType(semanticType, numericValues);\n    const domainConstraint = resolveDomainConstraint(semanticType, annotation, values);\n    const canonicalOrder = resolveCanonicalOrder(semanticType, annotation, values);\n    const cyclic = resolveCyclic(semanticType);\n    let binningSuggested = resolveBinningSuggested(semanticType, annotation.intrinsicDomain);\n    const sortDirection = resolveSortDirection(semanticType);\n\n    // 4. For unregistered types, provide data-driven fallbacks.\n    //    The registry treats unknown types as categorical, but if the data\n    //    is actually numeric, we should behave like a generic measure.\n    if (!isRegistered(semanticType) && defaultVisType === 'quantitative') {\n        // Data looks numeric → treat like Number (GenericMeasure)\n        if (!aggregationDefault) aggregationDefault = 'sum';\n        if (zeroClass === 'unknown') zeroClass = 'meaningful';\n        binningSuggested = true;\n    }\n\n    return {\n        semanticAnnotation: annotation,\n        defaultVisType,\n        format,\n        tooltipFormat,\n        aggregationDefault,\n        zeroClass,\n        scaleType: scaleType ?? undefined,\n        domainConstraint,\n        canonicalOrder,\n        cyclic,\n        sortDirection,\n        binningSuggested,\n    };\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Bump Chart template.\n *\n * A rank-over-time line chart: one line per entity, y = rank (reversed so\n * rank 1 sits at the top). Reuses the same trace-building shape as\n * `plLineChartDef`; the only structural difference is the reversed rank axis.\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport {\n    isDiscreteType, extractCategories, groupBy, buildCategoryAlignedData,\n    coerceIsoDateForPlotly, getPlotlyPalette, getSeriesColor, sortByOrder,\n} from './utils';\nimport { toTypeString } from '../../core/field-semantics';\n\nconst RANK_SEMANTIC_TYPES = new Set(['Rank', 'Score', 'Level']);\n\nexport const plBumpChartDef: ChartTemplateDef = {\n    chart: 'Bump Chart',\n    template: { mark: 'line', encoding: {} },\n    channels: ['x', 'y', 'color', 'detail', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    declareLayoutMode: () => ({\n        paramOverrides: { continuousMarkCrossSection: { x: 80, y: 20, seriesCountAxis: 'auto' }, facetAspectRatioResistance: 0.4 },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, semanticTypes } = ctx;\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        const groupField = channelSemantics.color?.field ?? channelSemantics.detail?.field;\n        if (!xCS?.field || !yCS?.field) return;\n        const xField = xCS.field;\n        const yField = yCS.field;\n\n        const xSemType = (xField && toTypeString(semanticTypes?.[xField])) || '';\n        const ySemType = (yField && toTypeString(semanticTypes?.[yField])) || '';\n        const xIsRank = RANK_SEMANTIC_TYPES.has(xSemType);\n        const yIsRank = RANK_SEMANTIC_TYPES.has(ySemType);\n        let rankAxis: 'x' | 'y';\n        if (yIsRank && !xIsRank) rankAxis = 'y';\n        else if (xIsRank && !yIsRank) rankAxis = 'x';\n        else if (isDiscreteType(xCS.type) && !isDiscreteType(yCS.type)) rankAxis = 'y';\n        else if (isDiscreteType(yCS.type) && !isDiscreteType(xCS.type)) rankAxis = 'x';\n        else rankAxis = 'y';\n\n        const xIsDiscrete = isDiscreteType(xCS.type);\n        const xIsTemporal = xCS.type === 'temporal';\n        const mapX = (raw: unknown) => (xIsTemporal ? coerceIsoDateForPlotly(raw) : raw);\n        const categories = xIsDiscrete ? extractCategories(table, xField, xCS.ordinalSortOrder) : undefined;\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        const traces: any[] = [];\n        const makeTrace = (name: string, rows: any[], idx: number) => {\n            // x is rank → the line must follow y's order, not x's raw order.\n            const orderedRows = (rankAxis === 'x') ? sortByOrder(rows, yField) : rows;\n            const xVals = xIsDiscrete ? categories! : orderedRows.map(r => mapX(r[xField]));\n            const yVals = xIsDiscrete\n                ? buildCategoryAlignedData(rows, xField, yField, categories!)\n                : orderedRows.map(r => (r[yField] == null ? null : r[yField]));\n            const color = getSeriesColor(palette, idx);\n            return {\n                type: 'scatter',\n                mode: 'lines+markers',\n                name,\n                x: xVals, y: yVals,\n                line: { color, shape: 'spline' as const, smoothing: 0.4 },\n                marker: { color, size: 7 },\n            };\n        };\n\n        if (groupField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, groupField)) { traces.push(makeTrace(name, rows, i)); i++; }\n        } else {\n            traces.push(makeTrace(yField, table, 0));\n        }\n\n        const xAxisSpec: any = { title: { text: xField } };\n        if (xIsDiscrete) { xAxisSpec.type = 'category'; xAxisSpec.categoryorder = 'array'; xAxisSpec.categoryarray = categories; }\n        else if (xIsTemporal) xAxisSpec.type = 'date';\n\n        const yAxisSpec: any = { title: { text: yField } };\n        if (rankAxis === 'y') yAxisSpec.autorange = 'reversed';\n\n        const figXAxis = rankAxis === 'x' ? { ...xAxisSpec, autorange: 'reversed' } : xAxisSpec;\n\n        Object.assign(spec, {\n            data: traces,\n            layout: { xaxis: figXAxis, yaxis: yAxisSpec, showlegend: !!groupField },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Shared waterfall \"totals\" semantics, used by every backend template\n * (Vega-Lite / ECharts / Chart.js) and by the `totals` property `check` so the\n * options UI and the rendered chart never disagree on the default.\n *\n * A waterfall bar is either a *delta* (floats off the running cumulative) or a\n * *total* (anchored at zero, \"touches down\" to the running cumulative). When\n * the data has no explicit type column, Flint infers which ends are totals.\n * The user's `totals` property is purely an *override* of that inference.\n */\n\nexport type WaterfallTotalsMode = 'none' | 'first' | 'last' | 'both';\n\n/**\n * True when the final value reconciles with the running cumulative of every\n * prior row — i.e. the last row reads like a genuine grand-total restatement\n * (`last ≈ Σ prior`). Tolerance is relative (0.5% of the cumulative) with a\n * tiny absolute floor for near-zero totals. Non-finite values never reconcile.\n */\nexport function waterfallLastReconciles(values: number[]): boolean {\n    if (values.length < 2) return false;\n    let cumPrev = 0;\n    for (let i = 0; i < values.length - 1; i++) {\n        if (!Number.isFinite(values[i])) return false;\n        cumPrev += values[i];\n    }\n    const last = values[values.length - 1];\n    if (!Number.isFinite(last)) return false;\n    const tol = Math.max(1e-6, 0.005 * Math.abs(cumPrev));\n    return Math.abs(last - cumPrev) <= tol;\n}\n\n/**\n * The compiler's inferred default when the user hasn't set `totals` and there\n * is no explicit type column. The first bar is always a reasonable start total;\n * the last bar is only treated as a total when it reconciles with the prior\n * cumulative — otherwise it stays a floating delta.\n */\nexport function recommendedTotalsMode(values: number[]): 'first' | 'both' {\n    return waterfallLastReconciles(values) ? 'both' : 'first';\n}\n\n/**\n * Resolve the effective totals mode: a valid explicit user value wins;\n * anything else (undefined, or the UI default 'auto') falls back to the\n * data-aware recommendation.\n */\nexport function resolveTotalsMode(values: number[], explicit?: unknown): WaterfallTotalsMode {\n    if (explicit === 'none' || explicit === 'first' || explicit === 'last' || explicit === 'both') {\n        return explicit;\n    }\n    return recommendedTotalsMode(values);\n}","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Waterfall Chart template.\n *\n * Native `waterfall` trace: pass `x`, `y` (signed deltas) and a `measure`\n * array (`'relative'` | `'total'`) and Plotly computes the floating bars,\n * connector lines, and running totals itself — no manual cumulative-sum /\n * custom-render-item bookkeeping like the ECharts template needs.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { extractCategories } from './utils';\nimport { resolveTotalsMode } from '../../chart-types/waterfall';\n\nexport const plWaterfallChartDef: ChartTemplateDef = {\n    chart: 'Waterfall Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    declareLayoutMode: () => ({ axisFlags: { x: { banded: true } } }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xField = channelSemantics.x?.field || 'Category';\n        const yField = channelSemantics.y?.field || 'Amount';\n        const colorField = channelSemantics.color?.field;\n\n        const categories = extractCategories(table, xField, undefined);\n        const rows = categories.map(cat => table.find((r: any) => String(r[xField]) === cat)).filter(Boolean);\n        const values = rows.map((r: any) => Number(r[yField]) || 0);\n\n        const hasTypeCol = !!colorField;\n        const totalsMode = resolveTotalsMode(values, chartProperties?.totals);\n        const wantFirst = totalsMode === 'first' || totalsMode === 'both';\n        const wantLast = totalsMode === 'last' || totalsMode === 'both';\n        const types: string[] = hasTypeCol\n            ? rows.map((r: any) => String(r[colorField] ?? 'delta'))\n            : values.map((_v, i) =>\n                wantFirst && i === 0 ? 'start' : wantLast && i === values.length - 1 ? 'end' : 'delta');\n        // Plotly's native `measure: 'total'` does NOT anchor the bar at the\n        // row's own value — it re-derives the bar height as the cumulative\n        // sum of every 'relative' row since the previous checkpoint (or since\n        // the start, for the first checkpoint), ignoring the supplied `y`.\n        // That is exactly right for a genuine reconciling subtotal/end-total\n        // (its value was chosen — via `resolveTotalsMode`/`waterfallLastReconciles`\n        // — BECAUSE it already equals that running sum). But at row 0 there is\n        // no preceding cumulative to show (Plotly renders a zero-height bar),\n        // so a \"start\" anchor MUST be a 'relative' delta from the implicit\n        // zero baseline instead — numerically identical to the value the\n        // other backends draw, just colored increase/decrease rather than the\n        // dedicated \"total\" hue.\n        const measure = types.map((t, i) => {\n            if (i === 0) return 'relative';\n            return (t === 'start' || t === 'end') ? 'total' : 'relative';\n        }) as Array<'total' | 'relative'>;\n\n        const showLabels = !!chartProperties?.showTextLabels;\n\n        // Value labels sit OUTSIDE the bars (above a rise, below a fall). Plotly's\n        // auto-range only fits the bar extents, not the outside text, so the\n        // labels on the tallest/deepest bars get clipped at the plot edge. When\n        // labels are on, pad the y-range past the running-total envelope so the\n        // callouts have room, and set `cliponaxis: false` so a label that still\n        // reaches the edge is drawn into the margin rather than cut off.\n        let yRange: [number, number] | undefined;\n        if (showLabels) {\n            const extents = [0];\n            let run = 0;\n            for (const v of values) { run += v; extents.push(run); }\n            const lo = Math.min(...extents);\n            const hi = Math.max(...extents);\n            const pad = (hi - lo || Math.abs(hi) || 1) * 0.15;\n            yRange = [lo - pad, hi + pad];\n        }\n\n        Object.assign(spec, {\n            data: [{\n                type: 'waterfall',\n                x: categories,\n                y: values,\n                measure,\n                // Plotly's native waterfall palette (its default template):\n                // teal-green rises, red falls, blue totals, dark-grey\n                // connectors — rather than borrowing the ECharts hues, so the\n                // Plotly output looks native.\n                connector: { line: { color: '#444', width: 1 } },\n                increasing: { marker: { color: '#3D9970' } },\n                decreasing: { marker: { color: '#FF4136' } },\n                totals: { marker: { color: '#4499FF' } },\n                text: showLabels ? values.map(v => (v > 0 ? '+' : '') + v) : undefined,\n                textposition: showLabels ? 'outside' as const : undefined,\n                ...(showLabels ? { cliponaxis: false } : {}),\n            }],\n            layout: {\n                xaxis: { type: 'category', categoryorder: 'array', categoryarray: categories, title: { text: xField } },\n                yaxis: { title: { text: yField }, ...(yRange ? { range: yRange } : {}) },\n                showlegend: false,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        {\n            key: 'totals', label: 'Totals', type: 'discrete', defaultValue: 'auto',\n            options: [\n                { value: 'auto', label: 'Auto' },\n                { value: 'none', label: 'None' },\n                { value: 'first', label: 'First only' },\n                { value: 'last', label: 'Last only' },\n                { value: 'both', label: 'First and last' },\n            ],\n        } as ChartPropertyDef,\n        { key: 'showTextLabels', label: 'Value labels', type: 'binary', defaultValue: false } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Candlestick Chart template.\n *\n * Native `candlestick` trace: pass `x`, `open`, `high`, `low`, `close` and\n * Plotly draws the OHLC bars with built-in up/down coloring — one of\n * Plotly's strongest native chart types (the Vega-Lite equivalent is a\n * layered rule+bar spec; ECharts needs a manual `[open, close, low, high]`\n * reordering).\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { isDiscreteType } from './utils';\n\nexport const plCandlestickChartDef: ChartTemplateDef = {\n    chart: 'Candlestick Chart',\n    template: { mark: 'candlestick', encoding: {} },\n    channels: ['x', 'open', 'high', 'low', 'close', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    declareLayoutMode: () => ({ axisFlags: { x: { banded: true } } }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xCS = channelSemantics.x;\n        const openField = channelSemantics.open?.field;\n        const highField = channelSemantics.high?.field;\n        const lowField = channelSemantics.low?.field;\n        const closeField = channelSemantics.close?.field;\n        if (!xCS?.field || !openField || !closeField) return;\n        const xField = xCS.field;\n        const xIsTemporal = xCS.type === 'temporal';\n        const xIsDiscrete = isDiscreteType(xCS.type);\n\n        const xVals = table.map((r: any) => r[xField]);\n        const open = table.map((r: any) => Number(r[openField]));\n        const close = table.map((r: any) => Number(r[closeField]));\n        const high = highField ? table.map((r: any) => Number(r[highField])) : open.map((o, i) => Math.max(o, close[i]));\n        const low = lowField ? table.map((r: any) => Number(r[lowField])) : open.map((o, i) => Math.min(o, close[i]));\n\n        const traces: any[] = [{\n            type: 'candlestick',\n            x: xVals, open, high, low, close,\n            increasing: { line: { color: '#06982d' } },\n            decreasing: { line: { color: '#ae1325' } },\n        }];\n\n        if (chartProperties?.showMA) {\n            const maWindow = Number(chartProperties.maWindow) || 5;\n            const ma = computeMA(close, maWindow);\n            traces.push({\n                type: 'scatter', mode: 'lines', name: `MA${maWindow}`,\n                x: xVals, y: ma,\n                line: { width: 1.5, shape: 'spline' as const },\n            });\n        }\n\n        const xAxisSpec: any = { title: { text: xField }, rangeslider: { visible: table.length > 60 } };\n        if (xIsTemporal) xAxisSpec.type = 'date';\n        else if (xIsDiscrete) { xAxisSpec.type = 'category'; }\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                xaxis: xAxisSpec,\n                yaxis: { title: { text: 'Price' } },\n                showlegend: !!chartProperties?.showMA,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'showMA', label: 'Moving average', type: 'binary', defaultValue: false } as ChartPropertyDef,\n        { key: 'maWindow', label: 'Average window', type: 'continuous', min: 3, max: 30, step: 1, defaultValue: 5 } as ChartPropertyDef,\n    ],\n};\n\nfunction computeMA(prices: number[], window: number): (number | null)[] {\n    const result: (number | null)[] = [];\n    for (let i = 0; i < prices.length; i++) {\n        if (i < window - 1) { result.push(null); continue; }\n        let sum = 0;\n        for (let j = i - window + 1; j <= i; j++) sum += prices[j];\n        result.push(Math.round((sum / window) * 100) / 100);\n    }\n    return result;\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Heatmap template.\n *\n * Native `heatmap` trace: pass `x`, `y` category arrays and a `z` matrix and\n * Plotly draws the grid + colorbar itself — no manual index-mapping like the\n * ECharts template (`data: [[xIdx, yIdx, value], ...]`) needs.\n */\n\nimport { ChartTemplateDef, EncodingActionDef } from '../../core/types';\nimport { extractCategories } from './utils';\nimport { makeCartesianPivot } from '../../core/pivot';\n\nconst SCHEME_COLORSCALES: Record<string, string> = {\n    viridis: 'Viridis', inferno: 'Hot', magma: 'Magma', plasma: 'Plasma', turbo: 'Turbo',\n    blues: 'Blues', reds: 'Reds', greens: 'Greens', oranges: 'Oranges', purples: 'Purples', greys: 'Greys',\n    blueorange: 'RdBu', redblue: 'RdBu',\n};\nconst DEFAULT_SCHEME = 'Blues';\n\nexport const plHeatmapDef: ChartTemplateDef = {\n    chart: 'Heatmap',\n    template: { mark: 'rect', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'color',\n    declareLayoutMode: () => ({ axisFlags: { x: { banded: true }, y: { banded: true } } }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, colorDecisions, encodings } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!xField || !yField) return;\n\n        const xCategories = extractCategories(table, xField, channelSemantics.x?.ordinalSortOrder);\n        const yCategories = extractCategories(table, yField, channelSemantics.y?.ordinalSortOrder);\n\n        const cellMap = new Map<string, number>();\n        for (const row of table) {\n            const key = `${row[xField]}\\u0000${row[yField]}`;\n            const val = colorField ? (Number(row[colorField]) || 0) : 1;\n            cellMap.set(key, (cellMap.get(key) ?? 0) + val);\n        }\n        const z = yCategories.map(yc => xCategories.map(xc => {\n            const v = cellMap.get(`${xc}\\u0000${yc}`);\n            return v ?? null;\n        }));\n\n        const encScheme = (encodings?.color as any)?.scheme;\n        const userScheme = (encScheme && encScheme !== 'default') ? encScheme : undefined;\n        const decision = colorDecisions?.color ?? colorDecisions?.group;\n        const semanticIsDiverging = decision?.schemeType === 'diverging';\n        const schemeName = userScheme || (semanticIsDiverging ? 'redblue' : DEFAULT_SCHEME.toLowerCase());\n        const colorscale = SCHEME_COLORSCALES[schemeName] ?? DEFAULT_SCHEME;\n\n        Object.assign(spec, {\n            data: [{\n                type: 'heatmap',\n                x: xCategories, y: yCategories, z,\n                colorscale,\n                hoverongaps: false,\n                colorbar: { title: { text: colorField ?? 'Value' } },\n            }],\n            layout: {\n                xaxis: { type: 'category', categoryorder: 'array', categoryarray: xCategories, title: { text: xField } },\n                yaxis: { type: 'category', categoryorder: 'array', categoryarray: yCategories, title: { text: yField } },\n                showlegend: false,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    encodingActions: [\n        {\n            key: 'colorScheme',\n            label: 'Scheme',\n            isApplicable: (c) => !!c.encodings.color?.field,\n            dependencies: ['color'],\n            control: {\n                type: 'discrete', options: [\n                    { value: undefined, label: 'Default (Blues)' },\n                    { value: 'viridis', label: 'Viridis' },\n                    { value: 'inferno', label: 'Inferno' },\n                    { value: 'magma', label: 'Magma' },\n                    { value: 'plasma', label: 'Plasma' },\n                    { value: 'turbo', label: 'Turbo' },\n                    { value: 'blues', label: 'Blues' },\n                    { value: 'reds', label: 'Reds' },\n                    { value: 'greens', label: 'Greens' },\n                    { value: 'oranges', label: 'Oranges' },\n                    { value: 'purples', label: 'Purples' },\n                    { value: 'greys', label: 'Greys' },\n                    { value: 'blueorange', label: 'Blue-Orange (diverging)' },\n                    { value: 'redblue', label: 'Red-Blue (diverging)' },\n                ],\n            },\n            get: (enc) => (enc.color as any)?.scheme,\n            set: (enc, value) => ({ ...enc, color: { ...(enc.color as any), scheme: value } }),\n        },\n    ] as EncodingActionDef[],\n    pivot: makeCartesianPivot({ transpose: [['x', 'y']] }),\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Lollipop Chart template.\n *\n * A thin `bar` trace (the stem, zero → value) plus a `scatter` marker trace\n * (the dot) sharing the same category axis — mirrors `ecLollipopChartDef`.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef, EncodingActionDef } from '../../core/types';\nimport { resolveCategoryOrder, buildCategoryAlignedData, detectAxes, groupBy, getPlotlyPalette, getSeriesColor } from './utils';\nimport { detectBandedAxisFromSemantics } from '../../core/axis-detection';\nimport { makeSortAction } from '../../core/encoding-actions';\n\nconst STEM_COLOR = '#9aa0a6';\n\nexport const plLollipopChartDef: ChartTemplateDef = {\n    chart: 'Lollipop Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['x', 'y', 'color', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    declareLayoutMode: (cs, table) => {\n        const result = detectBandedAxisFromSemantics(cs, table, { preferAxis: 'x' });\n        return {\n            axisFlags: result ? { [result.axis]: { banded: true } } : { x: { banded: true } },\n            resolvedTypes: result?.resolvedTypes,\n        };\n    },\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const { categoryAxis, valueAxis } = detectAxes(channelSemantics);\n        const catField = channelSemantics[categoryAxis]?.field;\n        const valField = channelSemantics[valueAxis]?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!catField || !valField) return;\n\n        const catEnc = ctx.encodings?.[categoryAxis];\n        const sortByField = catEnc?.sortBy ? channelSemantics[catEnc.sortBy]?.field : undefined;\n        const categories = resolveCategoryOrder(table, catField, {\n            ordinalSortOrder: channelSemantics[categoryAxis]?.ordinalSortOrder,\n            sortBy: sortByField, sortOrder: catEnc?.sortOrder,\n        });\n        const values = buildCategoryAlignedData(table, catField, valField, categories);\n        const isHorizontal = categoryAxis === 'y';\n        const dotSize = Number(chartProperties?.dotSize ?? 80);\n        const symbolSizePx = Math.max(6, Math.min(10 + (dotSize - 80) / 40, 16));\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const stemTrace: any = {\n            type: 'bar',\n            name: '__stem',\n            showlegend: false,\n            hoverinfo: 'skip',\n            width: 0.06,\n            ...(isHorizontal ? { x: values, y: categories, orientation: 'h' } : { x: categories, y: values }),\n            marker: { color: STEM_COLOR },\n        };\n\n        const dotTraces: any[] = [];\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                const pts = categories.map(cat => rows.find((r: any) => String(r[catField] ?? '') === cat));\n                dotTraces.push({\n                    type: 'scatter', mode: 'markers', name,\n                    ...(isHorizontal\n                        ? { x: pts.map(r => r?.[valField] ?? null), y: categories }\n                        : { x: categories, y: pts.map(r => r?.[valField] ?? null) }),\n                    marker: { color: getSeriesColor(palette, i), size: symbolSizePx, line: { color: '#fff', width: 1 } },\n                });\n                i++;\n            }\n        } else {\n            dotTraces.push({\n                type: 'scatter', mode: 'markers', showlegend: false,\n                ...(isHorizontal ? { x: values, y: categories } : { x: categories, y: values }),\n                marker: { color: getSeriesColor(palette, 0), size: symbolSizePx, line: { color: '#fff', width: 1 } },\n            });\n        }\n\n        const catAxisSpec = { type: 'category' as const, categoryorder: 'array' as const, categoryarray: categories, title: { text: catField } };\n        const valCS = channelSemantics[valueAxis];\n        const includeZero = valCS?.zero ? valCS.zero.zero !== false : true;\n        const valAxisSpec = { title: { text: valField }, rangemode: (includeZero ? 'tozero' : 'normal') as 'tozero' | 'normal' };\n\n        Object.assign(spec, {\n            data: [stemTrace, ...dotTraces],\n            layout: {\n                ...(isHorizontal ? { xaxis: valAxisSpec, yaxis: catAxisSpec } : { xaxis: catAxisSpec, yaxis: valAxisSpec }),\n                showlegend: !!colorField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'dotSize', label: 'Dot Size', type: 'continuous', min: 20, max: 300, step: 10, defaultValue: 80 } as ChartPropertyDef,\n    ],\n    encodingActions: [makeSortAction()] as EncodingActionDef[],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Bullet Chart template.\n *\n * One row per KPI: qualitative gray zones (quarters of that row's own goal),\n * a value bar colored by goal attainment, and a target tick. Plotly has no\n * native bullet mark, so each element is drawn with an explicit `base` (the\n * bar's start offset, independent of any stacking mode) and\n * `layout.barmode: 'overlay'` so the zones and the value bar sit concentric\n * rather than dodged — the target tick is a `scatter` trace with\n * `marker.symbol: 'line-ns'`, Plotly's built-in vertical-tick glyph.\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport { extractCategories } from './utils';\n\nconst ZONE_GRAYS = ['#e2e2e2', '#ececec', '#f5f5f5'];\n// Plotly's native \"good/bad\" semantics: the indicator delta uses #3D9970\n// (positive) and #FF4136 (negative). Reusing that pair for bullet attainment\n// keeps the value bar consistent with Plotly's own palette (and the waterfall).\nconst STATUS_COLORS = { below: '#FF4136', met: '#3D9970' };\n\nexport const plBulletChartDef: ChartTemplateDef = {\n    chart: 'Bullet Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['y', 'x', 'goal', 'color', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    declareLayoutMode: () => ({ axisFlags: { y: { banded: true } } }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table } = ctx;\n        const labelField = channelSemantics.y?.field;\n        const valueField = channelSemantics.x?.field;\n        const goalField = channelSemantics.goal?.field;\n        if (!labelField || !valueField || table.length === 0) return;\n\n        const categories = extractCategories(table, labelField, channelSemantics.y?.ordinalSortOrder);\n        const byCat = new Map<string, any>();\n        for (const r of table) byCat.set(String(r[labelField] ?? ''), r);\n        const valueOf = (cat: string) => Number(byCat.get(cat)?.[valueField]);\n        const goalOf = (cat: string) => goalField != null ? Number(byCat.get(cat)?.[goalField]) : NaN;\n\n        const quarter = categories.map(cat => {\n            const g = goalOf(cat);\n            return Number.isFinite(g) && g > 0 ? g / 4 : 0;\n        });\n\n        const zoneTraces = [0, 1, 2].map(i => ({\n            type: 'bar',\n            name: `__zone${i}`,\n            orientation: 'h' as const,\n            showlegend: false,\n            hoverinfo: 'skip' as const,\n            base: quarter.map(q => q * i),\n            x: quarter,\n            y: categories,\n            width: 0.62,\n            marker: { color: ZONE_GRAYS[i] },\n        }));\n\n        const valueTrace = {\n            type: 'bar',\n            name: 'value',\n            orientation: 'h' as const,\n            showlegend: false,\n            base: categories.map(() => 0),\n            x: categories.map(cat => { const v = valueOf(cat); return Number.isFinite(v) ? v : 0; }),\n            y: categories,\n            width: 0.32,\n            marker: {\n                color: categories.map(cat => {\n                    const v = valueOf(cat); const g = goalOf(cat);\n                    const met = Number.isFinite(g) ? v >= g : true;\n                    return met ? STATUS_COLORS.met : STATUS_COLORS.below;\n                }),\n            },\n            hovertemplate: `%{y}<br />${valueField}: %{x}<extra></extra>`,\n        };\n\n        const traces: any[] = [...zoneTraces, valueTrace];\n\n        if (goalField) {\n            // Target tick scales with the band height (yStep) so it stays\n            // proportional to the bars across canvas sizes, instead of a fixed\n            // 22px that looks tiny on a tall chart and huge on a short one.\n            const bandPx = ctx.layout.yStep || 30;\n            const tickSize = Math.max(14, Math.min(48, Math.round(bandPx * 0.4)));\n            traces.push({\n                type: 'scatter',\n                mode: 'markers',\n                name: 'Target',\n                x: categories.map(cat => goalOf(cat)),\n                y: categories,\n                showlegend: false,\n                marker: { symbol: 'line-ns', size: tickSize, line: { color: '#1a1a1a', width: 2.5 } },\n                hovertemplate: `%{y}<br />${goalField}: %{x}<extra></extra>`,\n            });\n            // No legend entry for the target tick: the mark itself is the\n            // universally understood bullet-chart target line, and its\n            // `line-ns` glyph renders as an oversized black bar in the legend\n            // regardless of marker size. Only the attainment colors below\n            // need explaining.\n            // Legend-only swatches for the value bar's attainment colors\n            // (the bar itself carries a per-point color array, which Plotly's\n            // legend cannot summarize on its own). A single zero-width,\n            // zero-opacity bar at an existing category — a truly empty trace\n            // (`x: []`) does not render a legend entry at all.\n            traces.push(\n                { type: 'bar', name: 'Meets target', x: [0], y: [categories[0]], width: 0, hoverinfo: 'skip', marker: { color: STATUS_COLORS.met } },\n                { type: 'bar', name: 'Below target', x: [0], y: [categories[0]], width: 0, hoverinfo: 'skip', marker: { color: STATUS_COLORS.below } },\n            );\n        }\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                barmode: 'overlay',\n                xaxis: { title: { text: valueField }, rangemode: 'tozero' },\n                yaxis: { type: 'category', categoryorder: 'array', categoryarray: categories, title: { text: labelField } },\n                showlegend: !!goalField,\n                // Vertical (default) legend layout needs plot-height room per\n                // entry; a bullet chart is often short and wide (few rows), so\n                // a horizontal legend below the plot fits these 3 longer\n                // labels (\"Target\" / \"Meets target\" / \"Below target\") more\n                // reliably than trying to widen a narrow side gutter.\n                legend: { orientation: 'h', font: { size: 11 }, x: 0.5, xanchor: 'center', y: -0.32, yanchor: 'top' },\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    postProcess: (figure) => {\n        // Reserve room below the plot for the horizontal legend row instead of\n        // the shared side gutter (sized for a typical short color legend,\n        // too narrow for these longer labels).\n        if (figure.layout?.showlegend) {\n            if (typeof figure._width === 'number') {\n                figure._width = Math.max(figure._width - 60, 320);\n                figure.layout.width = figure._width;\n            }\n            if (typeof figure._height === 'number') {\n                figure._height += 72;\n                figure.layout.height = figure._height;\n            }\n            if (figure.layout.margin) figure.layout.margin.b = (figure.layout.margin.b ?? 0) + 72;\n        }\n    },\n};\n","import { SemanticAnnotation, toTypeString } from '../core/field-semantics';\nimport { isTimeSeriesType } from '../core/semantic-types';\nimport { ChartPropertyDef } from '../core/types';\n\nexport interface GanttRow {\n    task: string;\n    start: number;\n    end: number;\n    inputIndex: number;\n}\n\nexport const GANTT_PROPERTIES: ChartPropertyDef[] = [\n    { key: 'taskHeight', label: 'Task height', type: 'continuous', min: 40, max: 90, step: 5, defaultValue: 70 },\n    { key: 'cornerRadius', label: 'Corners', type: 'continuous', min: 0, max: 8, step: 1, defaultValue: 2 },\n    { key: 'intervalLabels', label: 'Labels', type: 'binary', defaultValue: false },\n];\n\nexport function sortGanttRows<T extends GanttRow>(rows: T[]): T[] {\n    return [...rows].sort((a, b) => (a.start - b.start) || (a.inputIndex - b.inputIndex));\n}\n\nexport function coerceGanttEndpoint(value: unknown, temporal: boolean): number {\n    if (value == null) return NaN;\n    if (!temporal) return Number(value);\n    if (value instanceof Date) return value.getTime();\n    if (typeof value === 'number') return Math.abs(value) < 1e11 ? value * 1000 : value;\n    return Date.parse(String(value));\n}\n\nexport function isGanttTemporal(\n    resolvedType: unknown,\n    semanticType: string | SemanticAnnotation | undefined,\n): boolean {\n    if (resolvedType === 'temporal') return true;\n    const typeName = toTypeString(semanticType);\n    return typeName ? isTimeSeriesType(typeName) : false;\n}\n\nfunction compactNumber(value: number): string {\n    return Number.isInteger(value) ? String(value) : String(Number(value.toFixed(2)));\n}\n\nconst GANTT_DURATION_UNITS = [\n    { minimumMs: 86_400_000, divisorMs: 86_400_000, suffix: 'd' },\n    { minimumMs: 3_600_000, divisorMs: 3_600_000, suffix: 'h' },\n    { minimumMs: 60_000, divisorMs: 60_000, suffix: 'min' },\n    { minimumMs: 1_000, divisorMs: 1_000, suffix: 's' },\n    { minimumMs: 0, divisorMs: 1, suffix: 'ms' },\n] as const;\n\nexport function formatGanttDuration(durationMs: number): string {\n    const unit = GANTT_DURATION_UNITS.find(({ minimumMs }) => Math.abs(durationMs) >= minimumMs)!;\n    return `${compactNumber(durationMs / unit.divisorMs)}${unit.suffix}`;\n}\n\nexport function ganttDurationLabelExpression(start: string, end: string, temporal: boolean): string {\n    const startValue = `datum[${JSON.stringify(start)}]`;\n    const endValue = `datum[${JSON.stringify(end)}]`;\n    if (!temporal) return `format(${endValue} - ${startValue}, ',.2~f')`;\n\n    const duration = `(toDate(${endValue}) - toDate(${startValue}))`;\n    return GANTT_DURATION_UNITS.reduceRight((fallback, unit, index) => {\n        const label = `format(${duration} / ${unit.divisorMs}, '.2~f') + '${unit.suffix}'`;\n        return index === GANTT_DURATION_UNITS.length - 1\n            ? label\n            : `(abs(${duration}) >= ${unit.minimumMs} ? ${label} : ${fallback})`;\n    }, '');\n}\n\nexport function formatGanttLabel(\n    start: number,\n    end: number,\n    temporal: boolean,\n): string {\n    const duration = end - start;\n    if (!temporal) return compactNumber(duration);\n    return formatGanttDuration(duration);\n}\n\nexport function ganttLabelReservePx(rows: Pick<GanttRow, 'start' | 'end'>[], temporal: boolean): number {\n    const maxCharacters = rows.reduce((max, row) => (\n        Math.max(max, formatGanttLabel(row.start, row.end, temporal).length)\n    ), 0);\n    return Math.max(40, maxCharacters * 7 + 10);\n}","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Gantt Chart template.\n *\n * One horizontal bar per task, `base: start`, `x: end − start` — Plotly's\n * `base` property natively floats a bar off zero, so no transparent-base\n * trick (unlike the ECharts template, which must stack a silent base series\n * to fake a floating interval bar).\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport {\n    coerceGanttEndpoint, formatGanttLabel, GANTT_PROPERTIES, isGanttTemporal, sortGanttRows,\n} from '../../chart-types/gantt';\nimport { getPlotlyPalette, getSeriesColor } from './utils';\n\nexport const plGanttChartDef: ChartTemplateDef = {\n    chart: 'Gantt Chart',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['y', 'x', 'x2', 'color', 'detail', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    declareLayoutMode: () => ({ axisFlags: { y: { banded: true } } }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties, semanticTypes } = ctx;\n        const taskField = channelSemantics.y?.field;\n        const startField = channelSemantics.x?.field;\n        const endField = channelSemantics.x2?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!taskField || !startField || !endField || table.length === 0) return;\n\n        const temporal = isGanttTemporal(channelSemantics.x?.type, semanticTypes[startField]);\n        const rows = sortGanttRows(table\n            .map((r: any, inputIndex: number) => ({\n                task: String(r[taskField] ?? ''),\n                start: coerceGanttEndpoint(r[startField], temporal),\n                end: coerceGanttEndpoint(r[endField], temporal),\n                group: colorField != null ? String(r[colorField] ?? '') : undefined,\n                inputIndex,\n            }))\n            .filter((r) => r.task && Number.isFinite(r.start) && Number.isFinite(r.end)));\n        if (rows.length === 0) return;\n\n        const taskHeight = Number(chartProperties?.taskHeight ?? 70) / 100;\n        const cornerRadius = Number(chartProperties?.cornerRadius ?? 2);\n        const intervalLabels = chartProperties?.intervalLabels === true;\n        const tasks = rows.map(r => r.task);\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        const groups = colorField ? Array.from(new Set(rows.map(r => r.group ?? ''))) : [];\n        const groupColorIdx = new Map(groups.map((g, i) => [g, i]));\n\n        const dateLabel = (ms: number) => temporal ? new Date(ms).toISOString().slice(0, 10) : String(ms);\n\n        const traces: any[] = [];\n        if (colorField && groups.length > 0) {\n            for (const g of groups) {\n                const groupRows = rows.filter(r => (r.group ?? '') === g);\n                traces.push({\n                    type: 'bar',\n                    name: g,\n                    orientation: 'h',\n                    base: groupRows.map(r => r.start),\n                    x: groupRows.map(r => r.end - r.start),\n                    y: groupRows.map(r => r.task),\n                    width: taskHeight,\n                    marker: { color: getSeriesColor(palette, groupColorIdx.get(g) ?? 0) },\n                    text: intervalLabels ? groupRows.map(r => formatGanttLabel(r.start, r.end, temporal)) : undefined,\n                    textposition: intervalLabels ? 'outside' as const : undefined,\n                    customdata: groupRows.map(r => [dateLabel(r.start), dateLabel(r.end)]),\n                });\n            }\n        } else {\n            traces.push({\n                type: 'bar',\n                orientation: 'h',\n                showlegend: false,\n                base: rows.map(r => r.start),\n                x: rows.map(r => r.end - r.start),\n                y: tasks,\n                width: taskHeight,\n                marker: { color: getSeriesColor(palette, 0) },\n                text: intervalLabels ? rows.map(r => formatGanttLabel(r.start, r.end, temporal)) : undefined,\n                textposition: intervalLabels ? 'outside' as const : undefined,\n                customdata: rows.map(r => [dateLabel(r.start), dateLabel(r.end)]),\n            });\n        }\n        for (const t of traces) {\n            t.hovertemplate = `%{y}<br />${startField}: %{customdata[0]}<br />${endField}: %{customdata[1]}<extra></extra>`;\n            t.marker.line = { width: 0 };\n            if (cornerRadius) t.marker.cornerradius = cornerRadius;\n        }\n\n        const xAxisSpec: any = { title: { text: temporal ? '' : startField } };\n        if (temporal) xAxisSpec.type = 'date';\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                xaxis: xAxisSpec,\n                yaxis: { type: 'category', categoryorder: 'array', categoryarray: tasks, autorange: 'reversed', title: { text: taskField } },\n                showlegend: !!colorField && groups.length > 1,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: GANTT_PROPERTIES,\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Ranged Dot Plot template.\n *\n * A thin connector line per category plus colored point markers — typically\n * used for min/max-style ranges (e.g. one line per country spanning its\n * lowest to highest reading, with markers colored by reading type). Mirrors\n * `ecRangedDotPlotDef`.\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport { isDiscreteType, extractCategories, groupBy, getPlotlyPalette, getSeriesColor } from './utils';\n\nexport const plRangedDotPlotDef: ChartTemplateDef = {\n    chart: 'Ranged Dot Plot',\n    template: { mark: 'line', encoding: {} },\n    channels: ['x', 'y', 'color'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!xField || !yField) return;\n\n        const xIsDiscrete = isDiscreteType(channelSemantics.x?.type);\n        const yIsDiscrete = isDiscreteType(channelSemantics.y?.type);\n        // The categorical axis carries one connector segment; the continuous\n        // axis carries the range extent.\n        const catAxis: 'x' | 'y' = yIsDiscrete ? 'y' : xIsDiscrete ? 'x' : 'y';\n        const catField = catAxis === 'y' ? yField : xField;\n        const contField = catAxis === 'y' ? xField : yField;\n\n        const categories = extractCategories(table, catField, channelSemantics[catAxis]?.ordinalSortOrder);\n        const byCat = groupBy(table, catField);\n\n        // Connector segments: one [min, max] line per category, drawn behind the points.\n        const segX: (number | string | null)[] = [];\n        const segY: (number | string | null)[] = [];\n        for (const cat of categories) {\n            const rows = byCat.get(cat) ?? [];\n            const vals = rows.map((r: any) => Number(r[contField])).filter((v: number) => isFinite(v));\n            if (vals.length === 0) continue;\n            const lo = Math.min(...vals);\n            const hi = Math.max(...vals);\n            if (catAxis === 'y') { segX.push(lo, hi, null); segY.push(cat, cat, null); }\n            else { segX.push(cat, cat, null); segY.push(lo, hi, null); }\n        }\n\n        const traces: any[] = [{\n            type: 'scatter', mode: 'lines', name: '', showlegend: false,\n            x: segX, y: segY,\n            line: { color: '#999', width: 2 },\n            hoverinfo: 'skip',\n        }];\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) {\n                traces.push({\n                    type: 'scatter', mode: 'markers', name,\n                    x: catAxis === 'y' ? rows.map((r: any) => r[contField]) : rows.map((r: any) => r[catField]),\n                    y: catAxis === 'y' ? rows.map((r: any) => r[catField]) : rows.map((r: any) => r[contField]),\n                    marker: { color: getSeriesColor(palette, i), size: 9 },\n                });\n                i++;\n            }\n        } else {\n            traces.push({\n                type: 'scatter', mode: 'markers', showlegend: false,\n                x: catAxis === 'y' ? table.map((r: any) => r[contField]) : table.map((r: any) => r[catField]),\n                y: catAxis === 'y' ? table.map((r: any) => r[catField]) : table.map((r: any) => r[contField]),\n                marker: { color: getSeriesColor(palette, 0), size: 9 },\n            });\n        }\n\n        const catAxisSpec = { type: 'category' as const, categoryorder: 'array' as const, categoryarray: categories, title: { text: catField } };\n        const contAxisSpec = { title: { text: contField } };\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                ...(catAxis === 'y' ? { yaxis: catAxisSpec, xaxis: contAxisSpec } : { xaxis: catAxisSpec, yaxis: contAxisSpec }),\n                showlegend: !!colorField,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Regression template — scatter + fitted trend line.\n *\n * Plotly has no built-in regression transform (Vega-Lite's `transform:\n * [{regression}]` runs in the Vega runtime); the fit is computed here,\n * mirroring `ecRegressionDef`.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { groupBy, getPlotlyPalette, getSeriesColor } from './utils';\n\n/** Simple linear regression: slope and intercept. */\nfunction linearRegression(data: number[][]): { slope: number; intercept: number; xMin: number; xMax: number } {\n    const n = data.length;\n    if (n === 0) return { slope: 0, intercept: 0, xMin: 0, xMax: 0 };\n    let sumX = 0, sumY = 0, sumXY = 0, sumXX = 0;\n    let xMin = data[0][0], xMax = data[0][0];\n    for (const [x, y] of data) {\n        sumX += x; sumY += y; sumXY += x * y; sumXX += x * x;\n        if (x < xMin) xMin = x;\n        if (x > xMax) xMax = x;\n    }\n    const slope = (n * sumXY - sumX * sumY) / (n * sumXX - sumX * sumX) || 0;\n    const intercept = (sumY - slope * sumX) / n;\n    return { slope, intercept, xMin, xMax };\n}\n\n/** Polynomial regression via least-squares normal equations. */\nfunction polyRegression(data: number[][], order: number): { coeffs: number[]; xMin: number; xMax: number } {\n    const n = data.length;\n    if (n === 0) return { coeffs: [0], xMin: 0, xMax: 0 };\n    let xMin = data[0][0], xMax = data[0][0];\n    for (const [x] of data) { if (x < xMin) xMin = x; if (x > xMax) xMax = x; }\n    const k = order + 1;\n    const xtx: number[][] = Array.from({ length: k }, () => new Array(k).fill(0));\n    const xty: number[] = new Array(k).fill(0);\n    for (const [x, y] of data) {\n        const xp: number[] = new Array(2 * order + 1);\n        xp[0] = 1;\n        for (let p = 1; p < xp.length; p++) xp[p] = xp[p - 1] * x;\n        for (let i = 0; i < k; i++) {\n            xty[i] += y * xp[i];\n            for (let j = 0; j < k; j++) xtx[i][j] += xp[i + j];\n        }\n    }\n    const aug: number[][] = xtx.map((row, i) => [...row, xty[i]]);\n    for (let col = 0; col < k; col++) {\n        let maxRow = col;\n        for (let row = col + 1; row < k; row++) if (Math.abs(aug[row][col]) > Math.abs(aug[maxRow][col])) maxRow = row;\n        if (maxRow !== col) [aug[col], aug[maxRow]] = [aug[maxRow], aug[col]];\n        const pivot = aug[col][col];\n        if (Math.abs(pivot) < 1e-12) continue;\n        for (let j = col; j <= k; j++) aug[col][j] /= pivot;\n        for (let row = 0; row < k; row++) {\n            if (row === col) continue;\n            const factor = aug[row][col];\n            for (let j = col; j <= k; j++) aug[row][j] -= factor * aug[col][j];\n        }\n    }\n    return { coeffs: aug.map(row => row[k]), xMin, xMax };\n}\n\nfunction polyEval(coeffs: number[], x: number): number {\n    let result = 0, xp = 1;\n    for (const c of coeffs) { result += c * xp; xp *= x; }\n    return result;\n}\n\n/** Generate regression curve points for a given method. */\nfunction regressionCurvePoints(data: number[][], method: string, order: number, numPoints = 50): number[][] {\n    if (data.length === 0) return [];\n    if (method === 'linear' || !method) {\n        const reg = linearRegression(data);\n        return [[reg.xMin, reg.slope * reg.xMin + reg.intercept], [reg.xMax, reg.slope * reg.xMax + reg.intercept]];\n    }\n    if (method === 'log') {\n        const filtered = data.filter(([x]) => x > 0);\n        if (filtered.length < 2) return [];\n        const reg = linearRegression(filtered.map(([x, y]) => [Math.log(x), y]));\n        let xMin = Infinity, xMax = -Infinity;\n        for (const [x] of filtered) { if (x < xMin) xMin = x; if (x > xMax) xMax = x; }\n        return Array.from({ length: numPoints }, (_v, i) => {\n            const x = xMin + (xMax - xMin) * i / (numPoints - 1);\n            return [x, reg.intercept + reg.slope * Math.log(x)];\n        });\n    }\n    if (method === 'exp') {\n        const filtered = data.filter(([, y]) => y > 0);\n        if (filtered.length < 2) return [];\n        const reg = linearRegression(filtered.map(([x, y]) => [x, Math.log(y)]));\n        let xMin = Infinity, xMax = -Infinity;\n        for (const [x] of filtered) { if (x < xMin) xMin = x; if (x > xMax) xMax = x; }\n        return Array.from({ length: numPoints }, (_v, i) => {\n            const x = xMin + (xMax - xMin) * i / (numPoints - 1);\n            return [x, Math.exp(reg.intercept + reg.slope * x)];\n        });\n    }\n    if (method === 'pow') {\n        const filtered = data.filter(([x, y]) => x > 0 && y > 0);\n        if (filtered.length < 2) return [];\n        const reg = linearRegression(filtered.map(([x, y]) => [Math.log(x), Math.log(y)]));\n        let xMin = Infinity, xMax = -Infinity;\n        for (const [x] of filtered) { if (x < xMin) xMin = x; if (x > xMax) xMax = x; }\n        return Array.from({ length: numPoints }, (_v, i) => {\n            const x = xMin + (xMax - xMin) * i / (numPoints - 1);\n            return [x, Math.exp(reg.intercept) * Math.pow(x, reg.slope)];\n        });\n    }\n    if (method === 'quad' || method === 'poly') {\n        const reg = polyRegression(data, method === 'quad' ? 2 : order);\n        return Array.from({ length: numPoints }, (_v, i) => {\n            const x = reg.xMin + (reg.xMax - reg.xMin) * i / (numPoints - 1);\n            return [x, polyEval(reg.coeffs, x)];\n        });\n    }\n    const reg = linearRegression(data);\n    return [[reg.xMin, reg.slope * reg.xMin + reg.intercept], [reg.xMax, reg.slope * reg.xMax + reg.intercept]];\n}\n\nexport const plRegressionDef: ChartTemplateDef = {\n    chart: 'Regression',\n    template: { mark: 'circle', encoding: {} },\n    channels: ['x', 'y', 'size', 'color', 'column', 'row'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        const colorField = channelSemantics.color?.field;\n        if (!xField || !yField) return;\n\n        const method = String(chartProperties?.regressionMethod ?? 'linear');\n        const polyOrder = Number(chartProperties?.polyOrder ?? 3);\n        const opacity = Number(chartProperties?.opacity ?? 1);\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const traces: any[] = [];\n        const pushGroup = (name: string | undefined, rows: any[], idx: number) => {\n            const data = rows.map((r: any) => [Number(r[xField]), Number(r[yField])]).filter(([x, y]) => isFinite(x) && isFinite(y));\n            const lineData = regressionCurvePoints(data, method, polyOrder);\n            const color = getSeriesColor(palette, idx);\n            traces.push({\n                type: 'scatter', mode: 'markers',\n                ...(name != null ? { name } : {}),\n                x: data.map(d => d[0]), y: data.map(d => d[1]),\n                marker: { color, opacity },\n            });\n            traces.push({\n                type: 'scatter', mode: 'lines',\n                name: name != null ? `${name} (trend)` : 'Trend',\n                x: lineData.map(d => d[0]), y: lineData.map(d => d[1]),\n                line: { color: name != null ? color : '#ee6666', width: 2, shape: method !== 'linear' ? 'spline' : 'linear' },\n            });\n        };\n\n        if (colorField) {\n            let i = 0;\n            for (const [name, rows] of groupBy(table, colorField)) { pushGroup(name, rows, i); i++; }\n        } else {\n            pushGroup(undefined, table, 0);\n        }\n\n        const xAxisSpec: any = { title: { text: xField } };\n        const yAxisSpec: any = { title: { text: yField } };\n        if (channelSemantics.x?.zero) xAxisSpec.rangemode = channelSemantics.x.zero.zero !== false ? 'tozero' : 'normal';\n        if (channelSemantics.y?.zero) yAxisSpec.rangemode = channelSemantics.y.zero.zero !== false ? 'tozero' : 'normal';\n\n        Object.assign(spec, { data: traces, layout: { xaxis: xAxisSpec, yaxis: yAxisSpec, showlegend: !!colorField } });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        {\n            key: 'regressionMethod', label: 'Method', type: 'discrete',\n            options: [\n                { value: 'linear', label: 'Linear' },\n                { value: 'log', label: 'Logarithmic' },\n                { value: 'exp', label: 'Exponential' },\n                { value: 'pow', label: 'Power' },\n                { value: 'quad', label: 'Quadratic' },\n                { value: 'poly', label: 'Polynomial' },\n            ],\n            defaultValue: 'linear',\n        } as ChartPropertyDef,\n        { key: 'polyOrder', label: 'Poly Order', type: 'continuous', min: 2, max: 10, step: 1, defaultValue: 3 } as ChartPropertyDef,\n        { key: 'opacity', label: 'Opacity', type: 'continuous', min: 0.1, max: 1, step: 0.05, defaultValue: 1 } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly KPI Card template.\n *\n * Native `indicator` trace (`mode: 'number+delta'`): Plotly renders the big\n * number, the caption (`title`), and — when a `goal` is bound — a delta\n * arrow/percentage against it, all natively. This is a much simpler mapping\n * than the Vega-Lite template, which hand-draws each card (rect + text marks)\n * because Vega-Lite has no indicator primitive.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\n\ntype Layout = 'horizontal' | 'vertical' | 'grid';\n\nexport const plKpiCardDef: ChartTemplateDef = {\n    chart: 'KPI Card',\n    template: { layer: [] },\n    channels: ['metric', 'value', 'goal'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const metricField = channelSemantics.metric?.field;\n        const valueField = channelSemantics.value?.field;\n        const goalField = channelSemantics.goal?.field;\n        if (!valueField) return;\n\n        const rows = (ctx.fullTable ?? table ?? []).filter((r: any) => r && r[valueField] != null);\n        if (rows.length === 0) return;\n\n        const layout: Layout = (chartProperties?.layout as Layout) ?? (rows.length > 4 ? 'grid' : 'horizontal');\n        const n = rows.length;\n        let cols: number, gridRows: number;\n        if (layout === 'vertical') { cols = 1; gridRows = n; }\n        else if (layout === 'horizontal') { cols = n; gridRows = 1; }\n        else { cols = Math.ceil(Math.sqrt(n)); gridRows = Math.ceil(n / cols); }\n\n        const gapFrac = 0.02;\n        const cellW = (1 - gapFrac * (cols - 1)) / cols;\n        const cellH = (1 - gapFrac * (gridRows - 1)) / gridRows;\n\n        // KPI cards are content-sized tiles, NOT full-canvas charts — stretching\n        // a single card to the whole requested canvas width (e.g. 480px) strands\n        // the caption + number in a sea of whitespace. Size each tile to a\n        // compact fixed footprint and let the grid grow with the tile COUNT\n        // instead of filling the canvas.\n        const TILE_W = 220;\n        const TILE_H = 150;\n        const figWidth = Math.round(cols * TILE_W + gapFrac * (cols - 1) * TILE_W);\n        const figHeight = Math.round(gridRows * TILE_H + gapFrac * (gridRows - 1) * TILE_H);\n        // Font sizes scale with each cell's actual pixel height so a dense\n        // grid of many tiles doesn't overflow its row with fixed-size text.\n        const captionFontPx = Math.max(10, Math.min(14, cellH * figHeight * 0.16));\n        const valueFontPx = Math.max(16, Math.min(30, cellH * figHeight * 0.32));\n        const goalFontPx = Math.max(9, Math.min(12, cellH * figHeight * 0.12));\n\n        const traces: any[] = [];\n        const annotations: any[] = [];\n        rows.forEach((row: any, i: number) => {\n            const col = i % cols;\n            const gridRow = Math.floor(i / cols);\n            const x0 = col * (cellW + gapFrac);\n            const y1 = 1 - gridRow * (cellH + gapFrac);\n            const y0 = y1 - cellH;\n            const rawValue = row[valueField];\n            const value = Number(rawValue);\n            const isNumeric = rawValue != null && rawValue !== '' && Number.isFinite(value);\n            const goal = goalField != null ? Number(row[goalField]) : undefined;\n            const hasGoal = goal != null && Number.isFinite(goal);\n            const caption = metricField ? String(row[metricField] ?? '') : valueField;\n\n            if (isNumeric) {\n                const indicator: any = {\n                    type: 'indicator',\n                    mode: hasGoal ? 'number+delta' : 'number',\n                    value,\n                    title: { text: caption, font: { size: captionFontPx } },\n                    number: { font: { size: valueFontPx } },\n                    domain: { x: [x0, x0 + cellW], y: [y0, y1] },\n                };\n                if (hasGoal) {\n                    indicator.delta = { reference: goal, relative: false, increasing: { color: '#2f855a' }, decreasing: { color: '#c44e52' } };\n                }\n                traces.push(indicator);\n            } else {\n                // Plotly's `indicator` trace requires a numeric `value` — it has\n                // no text-display mode. A pre-formatted display string (e.g.\n                // \"$1.2M\", a unit already baked in upstream) is rendered as a\n                // plain annotation pair instead, positioned at the same\n                // fractional domain the numeric tiles use (offsets scaled by\n                // this cell's own height) so every tile still lines up in the\n                // grid regardless of row count.\n                const cx = (x0 + x0 + cellW) / 2;\n                const cy = (y0 + y1) / 2;\n                annotations.push(\n                    { text: caption, x: cx, y: cy + cellH * 0.32, xref: 'paper', yref: 'paper', xanchor: 'center', yanchor: 'middle', showarrow: false, font: { size: captionFontPx, color: '#6b7280' } },\n                    { text: String(rawValue ?? ''), x: cx, y: cy - cellH * 0.06, xref: 'paper', yref: 'paper', xanchor: 'center', yanchor: 'middle', showarrow: false, font: { size: valueFontPx, color: '#111827' } },\n                    ...(hasGoal\n                        ? [{ text: `Goal: ${goal}`, x: cx, y: cy - cellH * 0.36, xref: 'paper' as const, yref: 'paper' as const, xanchor: 'center' as const, yanchor: 'middle' as const, showarrow: false, font: { size: goalFontPx, color: '#9ca3af' } }]\n                        : []),\n                );\n            }\n        });\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                annotations,\n                // Indicator traces suppress Plotly's default cartesian axes on\n                // their own; a card row with only text annotations (a\n                // pre-formatted string value) has no trace to do that, so the\n                // axes must be hidden explicitly or a stray 0–1 grid shows\n                // through behind the text.\n                xaxis: { visible: false },\n                yaxis: { visible: false },\n            },\n            _width: figWidth,\n            _height: figHeight,\n        });\n        delete spec.layer;\n    },\n    properties: [\n        {\n            key: 'layout', label: 'Layout', type: 'discrete',\n            options: [\n                { value: 'horizontal', label: 'Horizontal (default)' },\n                { value: 'vertical', label: 'Vertical' },\n                { value: 'grid', label: 'Grid' },\n            ],\n        } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Funnel Chart template — Plotly opportunity chart.\n *\n * Native `funnel` trace: Plotly draws the descending trapezoids, stage\n * labels, and percent-of-initial/-previous annotations itself. Matches the\n * ECharts-only `Funnel Chart` chart type (no Vega-Lite equivalent).\n *\n * Data model:\n *   y    (nominal): stage name\n *   size (quantitative): value for each stage (rows aggregated by sum)\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { extractCategories, getPlotlyPalette } from './utils';\n\nexport const plFunnelChartDef: ChartTemplateDef = {\n    chart: 'Funnel Chart',\n    template: { mark: 'rect', encoding: {} },\n    channels: ['y', 'size'],\n    markCognitiveChannel: 'area',\n    declareLayoutMode: () => ({\n        axisFlags: { y: { banded: true } },\n        paramOverrides: { defaultBandSize: 50 },\n    }),\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const stageField = channelSemantics.y?.field;\n        const valField = channelSemantics.size?.field;\n        if (!stageField) return;\n\n        const stages = extractCategories(table, stageField, channelSemantics.y?.ordinalSortOrder);\n        if (stages.length === 0) return;\n\n        const values: number[] = [];\n        if (valField) {\n            const agg = new Map<string, number>();\n            for (const row of table) {\n                const s = String(row[stageField] ?? '');\n                agg.set(s, (agg.get(s) ?? 0) + (Number(row[valField]) || 0));\n            }\n            for (const s of stages) values.push(agg.get(s) ?? 0);\n        } else {\n            const counts = new Map<string, number>();\n            for (const row of table) {\n                const s = String(row[stageField] ?? '');\n                counts.set(s, (counts.get(s) ?? 0) + 1);\n            }\n            for (const s of stages) values.push(counts.get(s) ?? 0);\n        }\n\n        // Sort stages largest-first by default (a funnel reads top-down as a\n        // narrowing pipeline).\n        const sortOrder = chartProperties?.sort ?? 'descending';\n        const order = stages.map((_s, i) => i);\n        if (sortOrder === 'descending') order.sort((a, b) => values[b] - values[a]);\n        else if (sortOrder === 'ascending') order.sort((a, b) => values[a] - values[b]);\n        const sortedStages = order.map(i => stages[i]);\n        const sortedValues = order.map(i => values[i]);\n\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        Object.assign(spec, {\n            data: [{\n                type: 'funnel',\n                y: sortedStages,\n                x: sortedValues,\n                textinfo: 'value+percent initial',\n                marker: { color: palette.slice(0, sortedStages.length) },\n                connector: { line: { color: '#e5e7eb', width: 1 } },\n            }],\n            layout: { showlegend: false },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        {\n            key: 'sort', label: 'Sort', type: 'discrete', defaultValue: 'descending',\n            options: [\n                { value: 'descending', label: 'Descending (default)' },\n                { value: 'ascending', label: 'Ascending' },\n                { value: 'none', label: 'Original order' },\n            ],\n        } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Gauge Chart template — Plotly opportunity chart.\n *\n * Native `indicator` trace with `mode: 'gauge+number'`: Plotly draws the\n * dial, needle, and colored range bands itself. Matches the ECharts-only\n * `Gauge Chart` chart type (no Vega-Lite equivalent) with a genuinely\n * native, purpose-built primitive (ECharts hand-computes dial geometry).\n *\n * Data model:\n *   size   (quantitative): the value to display\n *   column (nominal, optional): one gauge per distinct value (grid layout)\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { extractCategories, groupBy, getPlotlyPalette, getSeriesColor, niceMax } from './utils';\n\nexport const plGaugeChartDef: ChartTemplateDef = {\n    chart: 'Gauge Chart',\n    template: { mark: 'point', encoding: {} },\n    channels: ['size', 'column'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties } = ctx;\n        const valueField = channelSemantics.size?.field;\n        const columnField = channelSemantics.column?.field;\n        if (!valueField) return;\n\n        const allValues = table.map((r: any) => Number(r[valueField])).filter((v: number) => isFinite(v));\n        const dataMax = allValues.length > 0 ? Math.max(...allValues) : 100;\n        const scaleMin = Number(chartProperties?.min ?? 0);\n        const scaleMax = Number(chartProperties?.max ?? niceMax(dataMax));\n        const palette = getPlotlyPalette(ctx, 'color');\n\n        const items: { name: string; value: number }[] = [];\n        if (columnField) {\n            const categories = extractCategories(table, columnField, channelSemantics.column?.ordinalSortOrder);\n            const groups = groupBy(table, columnField);\n            for (const cat of categories) {\n                const vals = (groups.get(cat) ?? []).map((r: any) => Number(r[valueField])).filter((v: number) => isFinite(v));\n                items.push({ name: cat, value: vals.length ? vals.reduce((a, b) => a + b, 0) / vals.length : 0 });\n            }\n        } else {\n            const avg = allValues.length ? allValues.reduce((a, b) => a + b, 0) / allValues.length : 0;\n            items.push({ name: valueField, value: avg });\n        }\n\n        const n = items.length;\n        const cols = Math.ceil(Math.sqrt(n));\n        const gridRows = Math.ceil(n / cols);\n        // A gauge's semicircular dial carries axis end-labels (\"0\"/\"max\") just\n        // beyond its left/right tips and a title above it. With a tiny gap the\n        // neighbouring dials' end-labels collide horizontally and a lower row's\n        // title crowds the row above. Reserve a generous gap on each axis —\n        // wider horizontally (end-labels) and taller vertically (title band).\n        const gapX = cols > 1 ? 0.14 : 0;\n        const gapY = gridRows > 1 ? 0.18 : 0;\n        const cellW = (1 - gapX * (cols - 1)) / cols;\n        const cellH = (1 - gapY * (gridRows - 1)) / gridRows;\n\n        const traces = items.map((item, i) => {\n            const col = i % cols;\n            const row = Math.floor(i / cols);\n            const x0 = col * (cellW + gapX);\n            const y1 = 1 - row * (cellH + gapY);\n            const y0 = y1 - cellH;\n            const color = getSeriesColor(palette, i);\n            return {\n                type: 'indicator',\n                mode: 'gauge+number',\n                value: Math.round(item.value * 100) / 100,\n                title: { text: item.name, font: { size: 13 } },\n                domain: { x: [x0, x0 + cellW], y: [y0, y1] },\n                gauge: {\n                    axis: { range: [scaleMin, scaleMax] },\n                    bar: { color },\n                    bgcolor: 'white',\n                    borderwidth: 1,\n                    bordercolor: '#d1d5db',\n                },\n            };\n        });\n\n        const canvas = ctx.canvasSize ?? { width: 400, height: 300 };\n        Object.assign(spec, {\n            data: traces,\n            layout: {},\n            _width: Math.max(canvas.width, cols * 240),\n            _height: Math.max(canvas.height, gridRows * 230),\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'min', label: 'Min', type: 'continuous', min: 0, max: 1000, step: 10, defaultValue: 0 } as ChartPropertyDef,\n        { key: 'max', label: 'Max', type: 'continuous', min: 0, max: 10000, step: 100, defaultValue: 100 } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Geographic gazetteer for choropleth maps — shared across backends.\n *\n * Real-world datasets identify regions by *name* (\"California\", \"United\n * States\") or by a familiar short code (USPS \"CA\", ISO alpha-2 \"US\", alpha-3\n * \"USA\") — almost never by the numeric ids that TopoJSON feature geometries\n * actually carry (FIPS state codes, ISO 3166-1 *numeric* country codes). This\n * module crosswalks any of those user-facing forms to whatever key a given\n * backend's geo rendering needs:\n *\n *   - `resolveUsState` / `resolveCountry` — numeric feature id, for the\n *     Vega-Lite backend's TopoJSON join (`us-10m.json` / `world-110m.json`).\n *   - `resolveUsStateCode` / `resolveCountryCode` — USPS / ISO alpha-3 code,\n *     for the Plotly backend's native `choropleth`/`scattergeo` `locations`.\n *\n * Living in `chart-types/` (rather than under one backend's `templates/`)\n * follows the same cross-backend-shared-logic convention as\n * `chart-types/gantt.ts` / `chart-types/waterfall.ts`.\n *\n * Lookups are case- and punctuation-insensitive. A value that is already the\n * numeric id passes through unchanged.\n */\n\n/**\n * Normalise a label for matching: accent-folded, lowercased, alphanumerics\n * only. Accent folding (NFD + strip combining marks) lets \"Côte d'Ivoire\" and\n * \"São Tomé\" match their plain-ASCII gazetteer keys.\n */\nfunction norm(s: string): string {\n    return s\n        .normalize('NFD')\n        .replace(/[\\u0300-\\u036f]/g, '')\n        .toLowerCase()\n        .replace(/[^a-z0-9]/g, '');\n}\n\n// ---------------------------------------------------------------------------\n// US states — [FIPS, name, USPS code]\n// ---------------------------------------------------------------------------\n\nconst US_STATES: Array<[number, string, string]> = [\n    [1, 'Alabama', 'AL'], [2, 'Alaska', 'AK'], [4, 'Arizona', 'AZ'], [5, 'Arkansas', 'AR'],\n    [6, 'California', 'CA'], [8, 'Colorado', 'CO'], [9, 'Connecticut', 'CT'], [10, 'Delaware', 'DE'],\n    [11, 'District of Columbia', 'DC'], [12, 'Florida', 'FL'], [13, 'Georgia', 'GA'], [15, 'Hawaii', 'HI'],\n    [16, 'Idaho', 'ID'], [17, 'Illinois', 'IL'], [18, 'Indiana', 'IN'], [19, 'Iowa', 'IA'],\n    [20, 'Kansas', 'KS'], [21, 'Kentucky', 'KY'], [22, 'Louisiana', 'LA'], [23, 'Maine', 'ME'],\n    [24, 'Maryland', 'MD'], [25, 'Massachusetts', 'MA'], [26, 'Michigan', 'MI'], [27, 'Minnesota', 'MN'],\n    [28, 'Mississippi', 'MS'], [29, 'Missouri', 'MO'], [30, 'Montana', 'MT'], [31, 'Nebraska', 'NE'],\n    [32, 'Nevada', 'NV'], [33, 'New Hampshire', 'NH'], [34, 'New Jersey', 'NJ'], [35, 'New Mexico', 'NM'],\n    [36, 'New York', 'NY'], [37, 'North Carolina', 'NC'], [38, 'North Dakota', 'ND'], [39, 'Ohio', 'OH'],\n    [40, 'Oklahoma', 'OK'], [41, 'Oregon', 'OR'], [42, 'Pennsylvania', 'PA'], [44, 'Rhode Island', 'RI'],\n    [45, 'South Carolina', 'SC'], [46, 'South Dakota', 'SD'], [47, 'Tennessee', 'TN'], [48, 'Texas', 'TX'],\n    [49, 'Utah', 'UT'], [50, 'Vermont', 'VT'], [51, 'Virginia', 'VA'], [53, 'Washington', 'WA'],\n    [54, 'West Virginia', 'WV'], [55, 'Wisconsin', 'WI'], [56, 'Wyoming', 'WY'],\n];\n\n/**\n * Extra US-state forms: AP-style newspaper abbreviations (\"Calif.\", \"Wash.\"),\n * directional shorthand (\"N. Carolina\", \"S. Dakota\") and common variants. Keys\n * are already `norm`-ed (punctuation/spacing removed), so \"N. Carolina\" arrives\n * as \"ncarolina\". None collide with a two-letter USPS code.\n */\nconst US_STATE_ALIASES: Record<string, number> = {\n    // AP-style abbreviations\n    ala: 1, ariz: 4, ark: 5, calif: 6, colo: 8, conn: 9, del: 10, fla: 12,\n    ill: 17, ind: 18, kan: 20, kans: 20, mass: 25, mich: 26, minn: 27,\n    miss: 28, mont: 30, neb: 31, nebr: 31, nev: 32, okla: 40, ore: 41,\n    oreg: 41, penn: 42, penna: 42, tenn: 47, tex: 48, wash: 53, wis: 55,\n    wisc: 55, wyo: 56,\n    // Directional shorthand\n    ncarolina: 37, scarolina: 45, ndakota: 38, sdakota: 46, wvirginia: 54,\n    nhampshire: 33, njersey: 34, nmexico: 35, nyork: 36,\n    // District of Columbia variants\n    washingtondc: 11, dcusa: 11,\n};\n\n// ---------------------------------------------------------------------------\n// Countries — [ISO numeric, name, alpha-2, alpha-3]\n// Numeric ids match Vega's world-110m.json `countries` feature ids.\n// ---------------------------------------------------------------------------\n\nconst COUNTRIES: Array<[number, string, string, string]> = [\n    [156, 'China', 'CN', 'CHN'], [356, 'India', 'IN', 'IND'], [840, 'United States', 'US', 'USA'],\n    [360, 'Indonesia', 'ID', 'IDN'], [586, 'Pakistan', 'PK', 'PAK'], [566, 'Nigeria', 'NG', 'NGA'],\n    [76, 'Brazil', 'BR', 'BRA'], [50, 'Bangladesh', 'BD', 'BGD'], [643, 'Russia', 'RU', 'RUS'],\n    [484, 'Mexico', 'MX', 'MEX'], [231, 'Ethiopia', 'ET', 'ETH'], [392, 'Japan', 'JP', 'JPN'],\n    [608, 'Philippines', 'PH', 'PHL'], [818, 'Egypt', 'EG', 'EGY'], [180, 'DR Congo', 'CD', 'COD'],\n    [704, 'Vietnam', 'VN', 'VNM'], [364, 'Iran', 'IR', 'IRN'], [792, 'Turkey', 'TR', 'TUR'],\n    [276, 'Germany', 'DE', 'DEU'], [764, 'Thailand', 'TH', 'THA'], [826, 'United Kingdom', 'GB', 'GBR'],\n    [250, 'France', 'FR', 'FRA'], [710, 'South Africa', 'ZA', 'ZAF'], [380, 'Italy', 'IT', 'ITA'],\n    [404, 'Kenya', 'KE', 'KEN'], [170, 'Colombia', 'CO', 'COL'], [724, 'Spain', 'ES', 'ESP'],\n    [32, 'Argentina', 'AR', 'ARG'], [12, 'Algeria', 'DZ', 'DZA'], [124, 'Canada', 'CA', 'CAN'],\n    [616, 'Poland', 'PL', 'POL'], [804, 'Ukraine', 'UA', 'UKR'], [682, 'Saudi Arabia', 'SA', 'SAU'],\n    [504, 'Morocco', 'MA', 'MAR'], [604, 'Peru', 'PE', 'PER'], [36, 'Australia', 'AU', 'AUS'],\n    [398, 'Kazakhstan', 'KZ', 'KAZ'], [152, 'Chile', 'CL', 'CHL'], [752, 'Sweden', 'SE', 'SWE'],\n    [578, 'Norway', 'NO', 'NOR'], [528, 'Netherlands', 'NL', 'NLD'], [56, 'Belgium', 'BE', 'BEL'],\n    [756, 'Switzerland', 'CH', 'CHE'], [40, 'Austria', 'AT', 'AUT'], [620, 'Portugal', 'PT', 'PRT'],\n    [300, 'Greece', 'GR', 'GRC'], [372, 'Ireland', 'IE', 'IRL'], [246, 'Finland', 'FI', 'FIN'],\n    [208, 'Denmark', 'DK', 'DNK'], [554, 'New Zealand', 'NZ', 'NZL'], [410, 'South Korea', 'KR', 'KOR'],\n    [458, 'Malaysia', 'MY', 'MYS'], [862, 'Venezuela', 'VE', 'VEN'], [218, 'Ecuador', 'EC', 'ECU'],\n    [4, 'Afghanistan', 'AF', 'AFG'], [368, 'Iraq', 'IQ', 'IRQ'], [887, 'Yemen', 'YE', 'YEM'],\n    [144, 'Sri Lanka', 'LK', 'LKA'], [104, 'Myanmar', 'MM', 'MMR'], [116, 'Cambodia', 'KH', 'KHM'],\n    [24, 'Angola', 'AO', 'AGO'], [834, 'Tanzania', 'TZ', 'TZA'], [800, 'Uganda', 'UG', 'UGA'],\n    [716, 'Zimbabwe', 'ZW', 'ZWE'], [288, 'Ghana', 'GH', 'GHA'], [384, 'Ivory Coast', 'CI', 'CIV'],\n    [686, 'Senegal', 'SN', 'SEN'],\n    // Additional countries — numeric ids verified present in world-110m.json.\n    [268, 'Georgia', 'GE', 'GEO'], [524, 'Nepal', 'NP', 'NPL'], [192, 'Cuba', 'CU', 'CUB'],\n    [634, 'Qatar', 'QA', 'QAT'], [400, 'Jordan', 'JO', 'JOR'], [422, 'Lebanon', 'LB', 'LBN'],\n    [376, 'Israel', 'IL', 'ISR'], [414, 'Kuwait', 'KW', 'KWT'], [512, 'Oman', 'OM', 'OMN'],\n    [784, 'United Arab Emirates', 'AE', 'ARE'], [788, 'Tunisia', 'TN', 'TUN'], [434, 'Libya', 'LY', 'LBY'],\n    [729, 'Sudan', 'SD', 'SDN'], [120, 'Cameroon', 'CM', 'CMR'], [508, 'Mozambique', 'MZ', 'MOZ'],\n    [450, 'Madagascar', 'MG', 'MDG'], [894, 'Zambia', 'ZM', 'ZMB'], [466, 'Mali', 'ML', 'MLI'],\n    [854, 'Burkina Faso', 'BF', 'BFA'], [562, 'Niger', 'NE', 'NER'], [148, 'Chad', 'TD', 'TCD'],\n    [706, 'Somalia', 'SO', 'SOM'], [68, 'Bolivia', 'BO', 'BOL'], [600, 'Paraguay', 'PY', 'PRY'],\n    [858, 'Uruguay', 'UY', 'URY'], [320, 'Guatemala', 'GT', 'GTM'], [340, 'Honduras', 'HN', 'HND'],\n    [214, 'Dominican Republic', 'DO', 'DOM'], [591, 'Panama', 'PA', 'PAN'], [188, 'Costa Rica', 'CR', 'CRI'],\n    [191, 'Croatia', 'HR', 'HRV'], [688, 'Serbia', 'RS', 'SRB'], [703, 'Slovakia', 'SK', 'SVK'],\n    [705, 'Slovenia', 'SI', 'SVN'], [100, 'Bulgaria', 'BG', 'BGR'], [642, 'Romania', 'RO', 'ROU'],\n    [348, 'Hungary', 'HU', 'HUN'], [112, 'Belarus', 'BY', 'BLR'], [440, 'Lithuania', 'LT', 'LTU'],\n    [428, 'Latvia', 'LV', 'LVA'], [233, 'Estonia', 'EE', 'EST'], [352, 'Iceland', 'IS', 'ISL'],\n    [418, 'Laos', 'LA', 'LAO'], [496, 'Mongolia', 'MN', 'MNG'], [408, 'North Korea', 'KP', 'PRK'],\n    [158, 'Taiwan', 'TW', 'TWN'], [64, 'Bhutan', 'BT', 'BTN'], [760, 'Syria', 'SY', 'SYR'],\n    [203, 'Czechia', 'CZ', 'CZE'], [795, 'Turkmenistan', 'TM', 'TKM'], [860, 'Uzbekistan', 'UZ', 'UZB'],\n    [31, 'Azerbaijan', 'AZ', 'AZE'], [51, 'Armenia', 'AM', 'ARM'], [558, 'Nicaragua', 'NI', 'NIC'],\n];\n\n/** Extra colloquial names that should resolve to a country numeric id. */\nconst COUNTRY_ALIASES: Record<string, number> = {\n    usa: 840, us: 840, unitedstatesofamerica: 840, america: 840,\n    uk: 826, greatbritain: 826, britain: 826, england: 826,\n    russianfederation: 643, southkorea: 410, korea: 410, republicofkorea: 410,\n    skorea: 410, korearep: 410, koreasouth: 410, koreasouthrepublicof: 410,\n    nkorea: 408, koreanorth: 408, koreademrep: 408, dprk: 408,\n    democraticpeoplesrepublicofkorea: 408,\n    democraticrepublicofthecongo: 180, congokinshasa: 180, drc: 180,\n    vietnam: 704, vietnamsocialistrepublic: 704, ivorycoast: 384, cotedivoire: 384,\n    iranislamicrepublicof: 364, syrianarabrepublic: 760, tanzaniaunitedrepublicof: 834,\n    burma: 104, czechrepublic: 203, czechia: 203, uae: 784, unitedarabemirates: 784,\n    holland: 528, thenetherlands: 528, turkiye: 792,\n    laopdr: 418, laopeoplesdemocraticrepublic: 418,\n};\n\n// ---------------------------------------------------------------------------\n// Lookup maps (built once)\n// ---------------------------------------------------------------------------\n\nfunction buildMap(entries: Array<[number, string[]]>): Map<string, number> {\n    const m = new Map<string, number>();\n    for (const [id, keys] of entries) {\n        for (const k of keys) {\n            const nk = norm(k);\n            if (nk && !m.has(nk)) m.set(nk, id);\n        }\n    }\n    return m;\n}\n\nconst US_STATE_LOOKUP = (() => {\n    const m = buildMap(US_STATES.map(([id, name, usps]) => [id, [name, usps]]));\n    for (const [alias, id] of Object.entries(US_STATE_ALIASES)) {\n        if (!m.has(alias)) m.set(alias, id);\n    }\n    return m;\n})();\n\nconst COUNTRY_LOOKUP = (() => {\n    const m = buildMap(COUNTRIES.map(([id, name, a2, a3]) => [id, [name, a2, a3]]));\n    for (const [alias, id] of Object.entries(COUNTRY_ALIASES)) {\n        if (!m.has(alias)) m.set(alias, id);\n    }\n    return m;\n})();\n\n// ---------------------------------------------------------------------------\n// Public resolvers\n// ---------------------------------------------------------------------------\n\n/** A choropleth region resolver: user value → TopoJSON numeric feature id. */\nexport type GeoResolver = (value: unknown) => number | undefined;\n\nfunction resolveWith(lookup: Map<string, number>, value: unknown): number | undefined {\n    if (value == null) return undefined;\n    // Already a numeric feature id (or a numeric string like \"6\" / \"06\").\n    if (typeof value === 'number' && Number.isFinite(value)) return value;\n    const s = String(value).trim();\n    if (/^\\d+$/.test(s)) return parseInt(s, 10);\n    const nk = norm(s);\n    if (!nk) return undefined;\n    const direct = lookup.get(nk);\n    if (direct !== undefined) return direct;\n    // Fallback: strip common qualifiers — \"State of California\", \"California,\n    // USA\", \"Washington State\" — and retry. Only runs after a direct miss, so\n    // legitimate names that happen to end in these tokens still match first.\n    let r = nk;\n    if (r.startsWith('stateof')) r = r.slice(7);\n    if (r.endsWith('usa')) r = r.slice(0, -3);\n    else if (r.endsWith('state')) r = r.slice(0, -5);\n    if (r !== nk && r) return lookup.get(r);\n    return undefined;\n}\n\n/** Resolve a US state name / USPS code / FIPS id to its FIPS numeric id. */\nexport const resolveUsState: GeoResolver = (value) => resolveWith(US_STATE_LOOKUP, value);\n\n/** Resolve a country name / ISO alpha-2 / alpha-3 / numeric to its ISO numeric id. */\nexport const resolveCountry: GeoResolver = (value) => resolveWith(COUNTRY_LOOKUP, value);\n\n// ---------------------------------------------------------------------------\n// Code resolvers — for backends (Plotly) whose native geo traces key on a\n// short code rather than a TopoJSON numeric feature id.\n//\n// Plotly's `choropleth`/`scattergeo` traces resolve `locations` through a\n// built-in atlas (no user-supplied TopoJSON needed) keyed on:\n//   - `locationmode: 'USA-states'`  → 2-letter USPS codes (\"CA\")\n//   - default (`locationmode: 'ISO-3'`) → 3-letter ISO alpha-3 codes (\"USA\")\n//\n// These resolvers share the same gazetteer/alias tables as the numeric-id\n// resolvers above (`resolveUsState` / `resolveCountry`), so a value that\n// resolves for the Vega-Lite choropleth (name, USPS/ISO code, or a bare\n// numeric id) resolves the same way here — same data contract, different\n// output shape.\n// ---------------------------------------------------------------------------\n\n/** A code resolver: user value → the short code a native geo trace expects. */\nexport type GeoCodeResolver = (value: unknown) => string | undefined;\n\nfunction resolveCodeWith(\n    lookup: Map<string, number>, codeById: Map<number, string>, value: unknown,\n): string | undefined {\n    if (value == null) return undefined;\n    // A bare numeric id (or numeric string) is resolved through the same\n    // id → code table used to build the gazetteer.\n    if (typeof value === 'number' && Number.isFinite(value)) return codeById.get(value);\n    const s = String(value).trim();\n    if (/^\\d+$/.test(s)) return codeById.get(parseInt(s, 10));\n    const id = resolveWith(lookup, value);\n    return id !== undefined ? codeById.get(id) : undefined;\n}\n\nconst US_STATE_USPS_BY_ID = new Map(US_STATES.map(([id, , usps]) => [id, usps]));\nconst COUNTRY_ALPHA3_BY_ID = new Map(COUNTRIES.map(([id, , , a3]) => [id, a3]));\n\n/** Resolve a US state name / USPS code / FIPS id to its 2-letter USPS code. */\nexport const resolveUsStateCode: GeoCodeResolver = (value) =>\n    resolveCodeWith(US_STATE_LOOKUP, US_STATE_USPS_BY_ID, value);\n\n/** Resolve a country name / ISO alpha-2 / alpha-3 / numeric to its ISO alpha-3 code. */\nexport const resolveCountryCode: GeoCodeResolver = (value) =>\n    resolveCodeWith(COUNTRY_LOOKUP, COUNTRY_ALPHA3_BY_ID, value);\n\n// ---------------------------------------------------------------------------\n// Map scope inference (US vs World) — shared by every backend's Map /\n// Choropleth templates so \"which base geography do we draw\" is decided the\n// same way regardless of which renderer draws it.\n// ---------------------------------------------------------------------------\n\nexport type MapScope = 'us' | 'world';\n\n// Generous bounding box for the United States (contiguous states + Alaska +\n// Hawaii). Used only to *infer* scope: a dataset whose every point falls\n// inside is treated as a US map; anything outside flips the whole map to world.\nconst US_LON: readonly [number, number] = [-170, -66];\nconst US_LAT: readonly [number, number] = [18, 72];\n\nfunction inUsBox(lon: number, lat: number): boolean {\n    return lon >= US_LON[0] && lon <= US_LON[1] && lat >= US_LAT[0] && lat <= US_LAT[1];\n}\n\n/** Infer scope for a bubble map from its longitude/latitude points. */\nexport function inferBubbleScope(rows: any[], lonField?: string, latField?: string): MapScope {\n    if (!lonField || !latField) return 'us';\n    for (const r of rows) {\n        const lon = Number(r[lonField]);\n        const lat = Number(r[latField]);\n        if (!Number.isFinite(lon) || !Number.isFinite(lat)) continue;\n        if (!inUsBox(lon, lat)) return 'world';\n    }\n    return 'us';\n}\n\n/** Infer scope for a choropleth from its region keys (names / codes / ids). */\nexport function inferChoroplethScope(rows: any[], idField?: string): MapScope {\n    if (!idField) return 'us';\n    for (const r of rows) {\n        const v = r[idField];\n        if (v == null || v === '') continue;\n        // A value that resolves as a US state (by name, USPS code, FIPS id, or a\n        // bare numeric that passes straight through) keeps us in the US; the\n        // first value that doesn't flips the whole map to world.\n        if (resolveUsState(v) === undefined) return 'world';\n    }\n    return 'us';\n}\n\n/**\n * Map the id field's *semantic type* to a map scope. This is the most reliable\n * signal we have: a field declared 'State' should use the US states map and the\n * US-state resolver, a field declared 'Country' the world map and country\n * resolver. It disambiguates the codes that collide between the two namespaces\n * — \"CA\" (California vs Canada), \"IN\" (Indiana vs India), \"Georgia\" (US state\n * vs the country) — which value inference alone cannot. Geographic types that\n * neither base layer can render (City, Region, Address, ZipCode) return\n * undefined so callers fall back to value inference.\n */\nconst SEMANTIC_SCOPE: Record<string, MapScope> = { State: 'us', Country: 'world' };\n\nexport function semanticScope(semType: string | undefined): MapScope | undefined {\n    if (!semType) return undefined;\n    return Object.prototype.hasOwnProperty.call(SEMANTIC_SCOPE, semType)\n        ? SEMANTIC_SCOPE[semType]\n        : undefined;\n}\n\n/** Honor an explicit `region` choice, else the id field's semantic type, else inference. */\nexport function pickMapScope(\n    chartProperties: any,\n    semScope: MapScope | undefined,\n    infer: () => MapScope,\n): MapScope {\n    const choice = chartProperties?.region;\n    if (choice === 'us' || choice === 'world') return choice;\n    if (semScope) return semScope;\n    return infer();\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Map (bubble) template.\n *\n * Native `scattergeo` trace + `layout.geo`: Plotly ships its own built-in\n * world/US basemap (land, country/state borders, oceans) so — unlike the\n * Vega-Lite template, which layers a `geoshape` TopoJSON base under a\n * `circle` mark — no external topology needs to be fetched or joined.\n *\n * Data contract (unchanged from Vega-Lite): `longitude`/`latitude` place each\n * point; `size`/`color` optionally scale/hue it. Scope (US vs World) is\n * decided the same way as the Vega-Lite Map — `region` property, else infer\n * from whether every point falls inside the US bounding box\n * (`chart-types/geo.ts`, shared by both backends so the same dataset picks\n * the same base map regardless of backend).\n */\n\nimport { ChartTemplateDef, ChartPropertyDef, OptionEvalContext } from '../../core/types';\nimport { inferBubbleScope, pickMapScope } from '../../chart-types/geo';\nimport { getPlotlyPalette, getSeriesColor, groupBy } from './utils';\n\n// ---------------------------------------------------------------------------\n// Projection mapping (Vega-Lite d3 projection name → Plotly geo projection type)\n// ---------------------------------------------------------------------------\n\nconst mapProjections = [\n    { value: 'mercator', label: 'Mercator' },\n    { value: 'equalEarth', label: 'Equal Earth' },\n    { value: 'orthographic', label: 'Orthographic (Globe)' },\n    { value: 'stereographic', label: 'Stereographic' },\n    { value: 'conicEqualArea', label: 'Conic Equal Area' },\n    { value: 'conicEquidistant', label: 'Conic Equidistant' },\n    { value: 'azimuthalEquidistant', label: 'Azimuthal Equidistant' },\n    { value: 'mollweide', label: 'Mollweide' },\n] as const;\n\n// Plotly has no exact \"Equal Earth\" projection; \"natural earth\" is the\n// closest available compromise pseudo-cylindrical projection.\nconst PROJECTION_TYPE_MAP: Record<string, string> = {\n    mercator: 'mercator',\n    equalEarth: 'natural earth',\n    orthographic: 'orthographic',\n    stereographic: 'stereographic',\n    conicEqualArea: 'conic equal area',\n    conicEquidistant: 'conic equidistant',\n    azimuthalEquidistant: 'azimuthal equidistant',\n    mollweide: 'mollweide',\n};\n\nfunction plotlyProjectionType(vlProjection: unknown): string {\n    if (typeof vlProjection === 'string' && PROJECTION_TYPE_MAP[vlProjection]) {\n        return PROJECTION_TYPE_MAP[vlProjection];\n    }\n    return 'natural earth'; // default world projection (mirrors VL's equalEarth default)\n}\n\nconst projectionCenterPresets: { label: string; center: [number, number] }[] = [\n    { label: 'World (Atlantic)', center: [0, 0] },\n    { label: 'World (Pacific)', center: [150, 0] },\n    { label: 'China', center: [105, 35] },\n    { label: 'USA', center: [-98, 39] },\n    { label: 'Europe', center: [10, 50] },\n    { label: 'Japan', center: [138, 36] },\n    { label: 'India', center: [78, 22] },\n    { label: 'Brazil', center: [-52, -14] },\n    { label: 'Australia', center: [134, -25] },\n    { label: 'Russia', center: [100, 60] },\n    { label: 'Africa', center: [20, 0] },\n    { label: 'Middle East', center: [45, 28] },\n    { label: 'Southeast Asia', center: [115, 5] },\n    { label: 'South America', center: [-60, -15] },\n    { label: 'North America', center: [-100, 45] },\n    { label: 'UK', center: [-2, 54] },\n    { label: 'Germany', center: [10, 51] },\n    { label: 'France', center: [2, 47] },\n    { label: 'Korea', center: [128, 36] },\n];\n\n/** Would this spec render as a world map? (Drives world-only property gating.) */\nfunction wouldBeWorld(ctx: OptionEvalContext): boolean {\n    const choice = ctx.chartProperties?.region;\n    if (choice === 'us') return false;\n    if (choice === 'world') return true;\n    const rows = ctx.data ?? [];\n    const lonField = ctx.encodings?.longitude?.field;\n    const latField = ctx.encodings?.latitude?.field;\n    return inferBubbleScope(rows, lonField, latField) === 'world';\n}\n\nconst regionProperty: ChartPropertyDef = {\n    key: 'region',\n    label: 'Region',\n    type: 'discrete',\n    options: [\n        { value: 'auto', label: 'Auto-detect' },\n        { value: 'us', label: 'United States' },\n        { value: 'world', label: 'World' },\n    ],\n    defaultValue: 'auto',\n};\n\nconst projectionProperty: ChartPropertyDef = {\n    key: 'projection',\n    label: 'Projection',\n    type: 'discrete',\n    options: [\n        { value: 'default', label: 'Default' },\n        ...mapProjections.map(p => ({ value: p.value, label: p.label })),\n    ],\n    defaultValue: 'default',\n    check: (ctx) => ({ applicable: wouldBeWorld(ctx) }),\n};\n\nconst projectionCenterProperty: ChartPropertyDef = {\n    key: 'projectionCenter',\n    label: 'Center',\n    type: 'discrete',\n    options: [\n        { value: undefined, label: 'Default' },\n        ...projectionCenterPresets.map(p => ({\n            value: p.center,\n            label: `${p.label} [${p.center[0]}, ${p.center[1]}]`,\n        })),\n    ],\n    defaultValue: undefined,\n    check: (ctx) => ({ applicable: wouldBeWorld(ctx) }),\n};\n\n/** Configure `layout.geo` for the chosen scope + (world-only) projection/center. */\nfunction buildGeoLayout(scope: 'us' | 'world', chartProperties: any): any {\n    if (scope === 'us') {\n        return {\n            scope: 'usa',\n            projection: { type: 'albers usa' },\n            showland: true, landcolor: '#eef0f2',\n            showlakes: true, lakecolor: '#ffffff',\n            subunitcolor: '#ffffff',\n            countrycolor: '#ffffff',\n        };\n    }\n    const geo: any = {\n        scope: 'world',\n        projection: { type: plotlyProjectionType(chartProperties?.projection) },\n        showland: true, landcolor: '#eef0f2',\n        showocean: true, oceancolor: '#ffffff',\n        showcountries: true, countrycolor: '#c7ccd1',\n        showcoastlines: false,\n    };\n    const center = chartProperties?.projectionCenter;\n    if (Array.isArray(center) && center.length === 2) {\n        geo.projection.rotation = { lon: -Number(center[0]), lat: -Number(center[1]) };\n    }\n    return geo;\n}\n\n/** Sqrt (area-truth) scale from data values to marker pixel diameters. */\nfunction bubbleDiameters(values: number[], minPx = 6, maxPx = 34): number[] {\n    const finite = values.filter(v => Number.isFinite(v));\n    const lo = finite.length ? Math.min(...finite, 0) : 0;\n    const hi = finite.length ? Math.max(...finite) : 1;\n    const sLo = Math.sqrt(Math.max(0, lo));\n    const sHi = Math.sqrt(Math.max(sLo + 1e-9, hi));\n    return values.map(v => {\n        if (!Number.isFinite(v)) return minPx;\n        const s = Math.sqrt(Math.max(0, v));\n        const t = (s - sLo) / (sHi - sLo || 1);\n        return minPx + t * (maxPx - minPx);\n    });\n}\n\nexport const plMapDef: ChartTemplateDef = {\n    chart: 'Map',\n    template: { mark: 'circle', encoding: {} },\n    channels: ['longitude', 'latitude', 'color', 'size', 'opacity'],\n    markCognitiveChannel: 'position',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, chartProperties, colorDecisions } = ctx;\n        const lonField = channelSemantics.longitude?.field;\n        const latField = channelSemantics.latitude?.field;\n        const sizeField = channelSemantics.size?.field;\n        const colorField = channelSemantics.color?.field;\n        const colorType = channelSemantics.color?.type;\n        if (!lonField || !latField) return;\n\n        const rows = (ctx.fullTable ?? ctx.table ?? []).filter((r: any) =>\n            Number.isFinite(Number(r[lonField])) && Number.isFinite(Number(r[latField])));\n        if (rows.length === 0) return;\n\n        const scope = pickMapScope(chartProperties, undefined, () => inferBubbleScope(rows, lonField, latField));\n        const geo = buildGeoLayout(scope, chartProperties);\n\n        const isContinuousColor = !!colorField && (colorType === 'quantitative' || colorType === 'temporal');\n        const sizeValues = sizeField ? rows.map((r: any) => Number(r[sizeField])) : undefined;\n        const diameters = sizeValues ? bubbleDiameters(sizeValues) : rows.map(() => 10);\n\n        const opacity = 0.85;\n        const traces: any[] = [];\n\n        if (isContinuousColor && colorField) {\n            const toColorVal = colorType === 'temporal'\n                ? (v: any) => (v != null ? new Date(v).getTime() : NaN)\n                : (v: any) => (v != null ? Number(v) : NaN);\n            const colorVals = rows.map((r: any) => toColorVal(r[colorField])).filter((v: number) => !isNaN(v));\n            const cmin = colorVals.length ? Math.min(...colorVals) : 0;\n            const cmax = colorVals.length ? Math.max(...colorVals) : 1;\n            const decision = colorDecisions?.color ?? colorDecisions?.group;\n            const diverging = decision?.schemeType === 'diverging';\n            traces.push({\n                type: 'scattergeo',\n                mode: 'markers',\n                name: colorField,\n                lon: rows.map((r: any) => Number(r[lonField])),\n                lat: rows.map((r: any) => Number(r[latField])),\n                marker: {\n                    size: diameters,\n                    color: rows.map((r: any) => toColorVal(r[colorField])),\n                    colorscale: diverging ? 'RdBu' : 'Viridis',\n                    cmin, cmax,\n                    showscale: true,\n                    colorbar: { title: { text: colorField } },\n                    opacity,\n                    line: { color: '#ffffff', width: 0.5 },\n                },\n                hovertemplate: `Lon: %{lon}<br>Lat: %{lat}<br>${colorField}: %{marker.color}`\n                    + (sizeField ? `<br>${sizeField}: %{customdata}` : '') + '<extra></extra>',\n                customdata: sizeField ? sizeValues : undefined,\n            });\n        } else if (colorField) {\n            // Nominal/ordinal color: one trace per group (legend by group name).\n            // Bubble diameters come from the SAME global sqrt scale computed\n            // above (over every row) so sizes stay comparable across groups —\n            // index into `diameters` by each row's position in `rows`.\n            const palette = getPlotlyPalette(ctx, 'color');\n            const idxByRow = new Map(rows.map((r: any, idx: number) => [r, idx]));\n            let i = 0;\n            for (const [name, groupRows] of groupBy(rows, colorField)) {\n                const groupSizes = sizeField ? groupRows.map((r: any) => Number(r[sizeField])) : undefined;\n                const sizesForGroup = groupRows.map((r: any) => diameters[idxByRow.get(r) ?? 0]);\n                traces.push({\n                    type: 'scattergeo',\n                    mode: 'markers',\n                    name,\n                    lon: groupRows.map((r: any) => Number(r[lonField])),\n                    lat: groupRows.map((r: any) => Number(r[latField])),\n                    marker: {\n                        size: sizesForGroup,\n                        color: getSeriesColor(palette, i),\n                        opacity,\n                        line: { color: '#ffffff', width: 0.5 },\n                    },\n                    hovertemplate: `Lon: %{lon}<br>Lat: %{lat}<br>${colorField}: ${name}`\n                        + (sizeField ? `<br>${sizeField}: %{customdata}` : '') + '<extra></extra>',\n                    customdata: groupSizes,\n                });\n                i++;\n            }\n        } else {\n            traces.push({\n                type: 'scattergeo',\n                mode: 'markers',\n                showlegend: false,\n                lon: rows.map((r: any) => Number(r[lonField])),\n                lat: rows.map((r: any) => Number(r[latField])),\n                marker: {\n                    size: diameters,\n                    color: getSeriesColor(getPlotlyPalette(ctx, 'color'), 0),\n                    opacity,\n                    line: { color: '#ffffff', width: 0.5 },\n                },\n                hovertemplate: 'Lon: %{lon}<br>Lat: %{lat}'\n                    + (sizeField ? `<br>${sizeField}: %{customdata}` : '') + '<extra></extra>',\n                customdata: sizeValues,\n            });\n        }\n\n        const width = scope === 'us' ? 520 : 620;\n        const height = scope === 'us' ? 320 : 360;\n\n        Object.assign(spec, {\n            data: traces,\n            layout: {\n                geo,\n                showlegend: !!colorField && !isContinuousColor,\n                margin: { t: 24, b: 24, l: 8, r: 8 },\n            },\n            _width: width + (colorField ? 120 : 0),\n            _height: height,\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [regionProperty, projectionProperty, projectionCenterProperty],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Choropleth template.\n *\n * Native `choropleth` trace: Plotly resolves `locations` through its own\n * built-in atlas (US states / world countries) keyed by a short code\n * (`locationmode`), so — unlike the Vega-Lite template, which joins the\n * user's rows into a fetched TopoJSON via a `lookup` transform — no external\n * geometry needs to be fetched or joined here.\n *\n * Data contract (unchanged from Vega-Lite): `id` carries the region name/\n * code, `color` the measure, optional `detail` a display label. Values are\n * resolved through the SAME gazetteer as the Vega-Lite choropleth\n * (`chart-types/geo.ts`) — just to a USPS/ISO-3 code instead of a numeric\n * TopoJSON feature id — so a dataset that renders as a US or World map on\n * one backend renders the same way on the other.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport {\n    resolveUsStateCode, resolveCountryCode, GeoCodeResolver,\n    inferChoroplethScope, semanticScope, pickMapScope,\n} from '../../chart-types/geo';\nimport { toTypeString } from '../../core/field-semantics';\n\n// Plotly's own built-in named `'Blues'` colorscale runs dark→light as the\n// value increases (z=0 → \"rgb(5,10,172)\" dark blue, z=1 → \"rgb(220,220,220)\"\n// light gray) — the OPPOSITE of the light→dark sequential convention used\n// everywhere else in this codebase (and by every other backend's default\n// choropleth/heatmap ramp). For a choropleth that's actively misleading (the\n// highest-value region reads as the *palest*), so this template uses an\n// explicit ColorBrewer-style light→dark stop array instead of the `'Blues'`\n// string. Plotly's stock `'RdBu'` (used for the diverging case below) is NOT\n// affected — its low→mid→high stops already run blue→gray→red, matching the\n// diverging convention — so it's used as-is.\nconst SEQUENTIAL_BLUES: Array<[number, string]> = [\n    [0, '#eff3ff'], [0.25, '#bdd7e7'], [0.5, '#6baed6'], [0.75, '#3182bd'], [1, '#08519c'],\n];\n\nconst regionProperty: ChartPropertyDef = {\n    key: 'region',\n    label: 'Region',\n    type: 'discrete',\n    options: [\n        { value: 'auto', label: 'Auto-detect' },\n        { value: 'us', label: 'United States' },\n        { value: 'world', label: 'World' },\n    ],\n    defaultValue: 'auto',\n};\n\n/** Configure `layout.geo` for the chosen scope (no projection controls — mirrors the VL Choropleth). */\nfunction buildGeoLayout(scope: 'us' | 'world'): any {\n    if (scope === 'us') {\n        return {\n            scope: 'usa',\n            projection: { type: 'albers usa' },\n            showlakes: true, lakecolor: '#ffffff',\n        };\n    }\n    return {\n        scope: 'world',\n        projection: { type: 'natural earth' },\n        showframe: false,\n        showcoastlines: false,\n        showcountries: false, // borders drawn by the choropleth fill itself\n    };\n}\n\nexport const plChoroplethDef: ChartTemplateDef = {\n    chart: 'Choropleth',\n    template: { mark: 'geoshape', encoding: {} },\n    channels: ['id', 'color', 'detail'],\n    markCognitiveChannel: 'color',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, chartProperties, colorDecisions } = ctx;\n        const idField = channelSemantics.id?.field;\n        const colorField = channelSemantics.color?.field;\n        const labelField = channelSemantics.detail?.field ?? idField;\n        if (!idField) return;\n\n        const rows = ctx.fullTable ?? ctx.table ?? [];\n        const semType = toTypeString(ctx.semanticTypes?.[idField]);\n        const semScope = semanticScope(semType);\n        const scope = pickMapScope(chartProperties, semScope, () => inferChoroplethScope(rows, idField));\n        const codeResolver: GeoCodeResolver = scope === 'us' ? resolveUsStateCode : resolveCountryCode;\n        const locationmode = scope === 'us' ? 'USA-states' : 'ISO-3';\n\n        const locations: string[] = [];\n        const z: number[] = [];\n        const labels: string[] = [];\n        for (const r of rows) {\n            const code = codeResolver(r[idField]);\n            if (!code) continue;\n            const raw = colorField ? Number(r[colorField]) : undefined;\n            if (colorField && !Number.isFinite(raw)) continue;\n            locations.push(code);\n            z.push(colorField ? (raw as number) : 1);\n            labels.push(labelField ? String(r[labelField] ?? r[idField]) : String(r[idField]));\n        }\n        if (locations.length === 0) return;\n\n        const decision = colorDecisions?.color ?? colorDecisions?.group;\n        const diverging = decision?.schemeType === 'diverging';\n\n        const geo = buildGeoLayout(scope);\n        const valueLabel = colorField ?? 'Value';\n\n        Object.assign(spec, {\n            data: [{\n                type: 'choropleth',\n                locations,\n                locationmode,\n                z,\n                text: labels,\n                colorscale: diverging ? 'RdBu' : SEQUENTIAL_BLUES,\n                colorbar: { title: { text: valueLabel } },\n                marker: { line: { color: '#ffffff', width: 0.5 } },\n                hovertemplate: `%{text}<br>${valueLabel}: %{z}<extra></extra>`,\n            }],\n            layout: {\n                geo,\n                showlegend: false,\n                margin: { t: 24, b: 24, l: 8, r: 8 },\n            },\n            _width: scope === 'us' ? 520 : 620,\n            _height: scope === 'us' ? 320 : 360,\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [regionProperty],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Sparkline template.\n *\n * A compact \"sparkline table\" — one row per series: its name, a small trend\n * line with a dashed reference rule, and an aggregate value — mirroring the\n * Vega-Lite Sparkline's visual pattern (Tufte's \"dataword\": drop the precise\n * scale, keep shape-at-a-glance so dozens of series fit in one Line Chart's\n * footprint).\n *\n * Composite layout, built directly on the Plotly figure rather than forced\n * through the generic column/row facet combiner (`../facet.ts`, which only\n * supports one cartesian axis pair per panel): each row gets its OWN hidden\n * axis pair (`xaxis{n}`/`yaxis{n}`) domain-positioned as a horizontal strip,\n * hosting the trend line + reference-rule traces; the category name and\n * aggregate value are `layout.annotations` in paper coordinates alongside it\n * — the same domain-grid + annotation technique `kpi-card.ts` uses for its\n * own per-tile grid. `selfManagesFacets` keeps the assembler from pre-\n * splitting this template by `column`/`row` (see `../assemble.ts`).\n *\n * The series field is the bound `color` (kept as the trend/value hue) or,\n * failing that, `detail` (monochrome) — same remap rule as the Vega-Lite\n * template's `normalizeEncodings`, applied here directly inside `instantiate`\n * since Plotly doesn't yet wire that hook (see `ChartTemplateDef.normalizeEncodings`).\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { getPlotlyPalette, getSeriesColor } from './utils';\n\nconst DEFAULT_TREND_W = 240;\n\nconst baselineProperty: ChartPropertyDef = {\n    key: 'baseline', label: 'Reference line', type: 'discrete',\n    defaultValue: 'mean',\n    options: [\n        { value: 'mean', label: 'Average' },\n        { value: 'zero', label: 'Zero' },\n        { value: 'median', label: 'Median' },\n        { value: 'none', label: 'None' },\n    ],\n};\n\nconst trendWidthProperty: ChartPropertyDef = {\n    key: 'trendWidth', label: 'Sparkline width', type: 'continuous',\n    min: 80, max: 600, step: 10, defaultValue: DEFAULT_TREND_W,\n};\n\nconst isCJK = (ch: string): boolean =>\n    /[\\u3000-\\u303F\\u3400-\\u9FFF\\uF900-\\uFAFF\\uFF00-\\uFFEF]/.test(ch);\nconst textWidth = (s: unknown): number =>\n    [...String(s ?? '')].reduce((a, ch) => a + (isCJK(ch) ? 2 : 1), 0);\nconst mean = (a: number[]): number => (a.length ? a.reduce((s, x) => s + x, 0) / a.length : NaN);\nconst median = (a: number[]): number => {\n    if (!a.length) return NaN;\n    const s = [...a].sort((x, y) => x - y);\n    const n = s.length;\n    return n % 2 ? s[(n - 1) / 2] : (s[n / 2 - 1] + s[n / 2]) / 2;\n};\n/** Compact \"$1.2M\"-style approximation — the display value AND the width budget. */\nfunction approxNum(v: number): string {\n    if (!Number.isFinite(v)) return '';\n    const a = Math.abs(v);\n    if (a >= 1e9) return (v / 1e9).toFixed(1) + 'B';\n    if (a >= 1e6) return (v / 1e6).toFixed(1) + 'M';\n    if (a >= 1e3) return (v / 1e3).toFixed(1) + 'k';\n    return String(Math.round(v * 10) / 10);\n}\n\nexport const plSparklineDef: ChartTemplateDef = {\n    chart: 'Sparkline',\n    template: { mark: 'line', encoding: {} },\n    channels: ['x', 'y', 'color', 'detail'],\n    markCognitiveChannel: 'position',\n    // See file docstring — a hand-built multi-axis-pair grid, not a single\n    // cartesian panel the generic facet combiner could safely split/recombine.\n    selfManagesFacets: true,\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, chartProperties, canvasSize } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        const hasColor = !!channelSemantics.color?.field;\n        const seriesField = channelSemantics.color?.field ?? channelSemantics.detail?.field;\n        if (!xField || !yField) return;\n\n        const baseline = (chartProperties?.baseline as string) ?? 'mean';\n        const useMedian = baseline === 'median';\n\n        const table = (ctx.fullTable ?? ctx.table ?? []) as Array<Record<string, any>>;\n        const facetField = seriesField ?? '__pl_spark_series';\n        const rows = seriesField ? table : table.map(r => ({ ...r, [facetField]: '' }));\n\n        // Row order = first appearance, stable.\n        const series: any[] = [];\n        const seen = new Set<any>();\n        for (const r of rows) {\n            const v = r[facetField];\n            if (!seen.has(v)) { seen.add(v); series.push(v); }\n        }\n        if (series.length === 0) return;\n\n        const bySeries = new Map<any, Array<Record<string, any>>>();\n        for (const r of rows) {\n            const k = r[facetField];\n            const arr = bySeries.get(k);\n            if (arr) arr.push(r); else bySeries.set(k, [r]);\n        }\n\n        const aggOf = (vals: number[]) => useMedian ? median(vals) : mean(vals);\n\n        const categoryTitle = String(seriesField ?? '');\n        const trendTitle = String(yField ?? '');\n        const avgTitle = useMedian ? 'Median' : 'Average';\n\n        // ── Sizing (manual — mirrors the Vega-Lite template's hand-rolled\n        // hconcat sizing; the shared layout engine's faceted sizing doesn't\n        // apply to a hand-built multi-axis grid). ─────────────────────────\n        const canvas = canvasSize ?? { width: 480, height: 320 };\n        const N = series.length;\n        const HEADER_H = 20;\n        const STRIP_GAP = 6;\n        const INTER_GAP = 10;\n        const CHAR_PX = 6.6;\n        const fontSize = N > 12 ? 10 : 11;\n        const stripH = Math.min(64, Math.max(16,\n            Math.floor((canvas.height - HEADER_H - (N - 1) * STRIP_GAP) / N)));\n\n        const seriesAgg = new Map<any, number>();\n        for (const s of series) {\n            const vals = (bySeries.get(s) ?? [])\n                .map(r => Number(r[yField])).filter(v => Number.isFinite(v));\n            seriesAgg.set(s, aggOf(vals));\n        }\n\n        const maxCatChars = Math.max(textWidth(categoryTitle), 4, ...series.map(s => textWidth(s)));\n        const maxAvgChars = Math.max(textWidth(avgTitle), 4,\n            ...Array.from(seriesAgg.values()).map(v => textWidth(approxNum(v))));\n        const catW = Math.min(200, Math.max(40, Math.round(maxCatChars * CHAR_PX) + 10));\n        const avgW = Math.min(96, Math.max(34, Math.round(maxAvgChars * CHAR_PX) + 8));\n        const avail = canvas.width - catW - avgW - 2 * INTER_GAP;\n        const tunedTrendW = Number(chartProperties?.trendWidth) || DEFAULT_TREND_W;\n        const trendW = Math.max(90, Math.min(tunedTrendW, avail));\n\n        const totalW = catW + INTER_GAP + trendW + INTER_GAP + avgW;\n        const totalH = HEADER_H + N * stripH + (N - 1) * STRIP_GAP;\n\n        const palette = getPlotlyPalette(ctx, 'color');\n        const seriesColorIdx = new Map(series.map((s, i) => [s, i]));\n\n        const traces: any[] = [];\n        const annotations: any[] = [];\n        const layout: any = { showlegend: false, margin: { t: 4, b: 4, l: 4, r: 4 } };\n\n        // Column headers. Anchored `yanchor: 'top'` at paper y=1 so the text\n        // renders DOWNWARD into the reserved `HEADER_H` band at the very top\n        // of the figure — an `yanchor: 'bottom'` anchor at y=1 needs headroom\n        // ABOVE the plot area (the figure's own top margin), which is too\n        // thin here to avoid clipping the label against the image edge.\n        const headerStyle = { size: 11, color: '#999' };\n        annotations.push(\n            { text: categoryTitle, x: 0, y: 1, xref: 'paper', yref: 'paper', xanchor: 'left', yanchor: 'top', showarrow: false, font: headerStyle },\n            { text: trendTitle, x: (catW + INTER_GAP + trendW / 2) / totalW, y: 1, xref: 'paper', yref: 'paper', xanchor: 'center', yanchor: 'top', showarrow: false, font: headerStyle },\n            { text: avgTitle, x: 1, y: 1, xref: 'paper', yref: 'paper', xanchor: 'right', yanchor: 'top', showarrow: false, font: headerStyle },\n        );\n\n        series.forEach((s, i) => {\n            const seriesRows = (bySeries.get(s) ?? [])\n                .map(r => ({ x: r[xField], y: Number(r[yField]) }))\n                .filter(p => p.y != null && Number.isFinite(p.y));\n            const yVals = seriesRows.map(p => p.y);\n            const agg = seriesAgg.get(s);\n\n            const rowTop = HEADER_H + i * (stripH + STRIP_GAP);\n            const rowMidYFrac = 1 - (rowTop + stripH / 2) / totalH;\n\n            annotations.push(\n                { text: String(s), x: 0, y: rowMidYFrac, xref: 'paper', yref: 'paper', xanchor: 'left', yanchor: 'middle', showarrow: false, font: { size: fontSize, color: '#333' } },\n                {\n                    text: Number.isFinite(agg) ? approxNum(agg as number) : '',\n                    x: 1, y: rowMidYFrac, xref: 'paper', yref: 'paper', xanchor: 'right', yanchor: 'middle', showarrow: false,\n                    font: { size: fontSize, color: hasColor ? getSeriesColor(palette, seriesColorIdx.get(s) ?? 0) : '#333' },\n                },\n            );\n\n            if (yVals.length === 0) return;\n\n            const n = i + 1;\n            const xName = n === 1 ? 'xaxis' : `xaxis${n}`;\n            const yName = n === 1 ? 'yaxis' : `yaxis${n}`;\n            const xRef = n === 1 ? 'x' : `x${n}`;\n            const yRef = n === 1 ? 'y' : `y${n}`;\n\n            const x0 = (catW + INTER_GAP) / totalW;\n            const x1 = (catW + INTER_GAP + trendW) / totalW;\n            const y1 = 1 - rowTop / totalH;\n            const y0 = 1 - (rowTop + stripH) / totalH;\n            layout[xName] = { domain: [x0, x1], anchor: yRef, visible: false, showgrid: false, zeroline: false };\n            layout[yName] = { domain: [y0, y1], anchor: xRef, visible: false, showgrid: false, zeroline: false };\n\n            traces.push({\n                type: 'scatter', mode: 'lines',\n                xaxis: xRef, yaxis: yRef,\n                x: seriesRows.map(p => p.x), y: yVals,\n                line: { width: 1.5, color: hasColor ? getSeriesColor(palette, i) : '#555' },\n                hoverinfo: 'x+y',\n                showlegend: false,\n            });\n\n            if (baseline !== 'none') {\n                const refY = baseline === 'zero' ? 0 : (Number.isFinite(agg) ? agg : undefined);\n                if (refY != null) {\n                    traces.push({\n                        type: 'scatter', mode: 'lines',\n                        xaxis: xRef, yaxis: yRef,\n                        x: [seriesRows[0].x, seriesRows[seriesRows.length - 1].x],\n                        y: [refY, refY],\n                        line: { width: 1, color: '#9a9a9a', dash: 'dot' },\n                        hoverinfo: 'skip',\n                        showlegend: false,\n                    });\n                }\n            }\n        });\n\n        Object.assign(spec, {\n            data: traces,\n            layout: { ...layout, annotations },\n            _width: Math.round(totalW),\n            _height: Math.round(totalH),\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [baselineProperty, trendWidthProperty],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Bar Table template.\n *\n * A ranked horizontal \"data bar table\" (category | gradient bar | % share |\n * value), matching the Vega-Lite Bar Table's visual pattern — common in\n * Chinese BI dashboards (FineBI, Quick BI) and Excel/Power BI conditional-\n * formatting \"Data Bars\".\n *\n * Composite layout, built directly on the Plotly figure rather than forced\n * through the generic column/row facet combiner (`../facet.ts`, which only\n * supports one cartesian axis pair per panel): each facet cell (or the whole\n * table, when unfaceted) gets its own hidden-margin axis pair whose `xaxis`\n * domain is narrowed to just the bar column; the category name comes for\n * free from the axis's own (native) y tick labels, and the %/value columns\n * are `layout.annotations` anchored to that SAME y-axis (so they line up\n * with each bar's row) at a fixed paper-x position — the same domain-grid +\n * mixed paper/data-axis annotation technique `sparkline.ts` and `kpi-card.ts`\n * use for their own composite grids. `selfManagesFacets` keeps the assembler\n * from pre-splitting this template by `column`/`row` (see `../assemble.ts`);\n * facets are instead built as additional cells in the same hand-rolled grid.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef } from '../../core/types';\nimport { getRegistryEntry } from '../../core/type-registry';\n\nconst HEADER_H = 16;\nconst FACET_HEADER_H = 20;\nconst INTER_GAP = 8;\nconst CELL_GAP_X = 28;\nconst CELL_GAP_Y = 20;\nconst OTHERS_GRAY = '#bdbdbd';\n\nconst isCJK = (ch: string): boolean =>\n    /[\\u3000-\\u303F\\u3400-\\u9FFF\\uF900-\\uFAFF\\uFF00-\\uFFEF]/.test(ch);\nconst textWidth = (s: unknown): number =>\n    [...String(s ?? '')].reduce((a, ch) => a + (isCJK(ch) ? 2 : 1), 0);\n\n/**\n * Truncate to an ellipsis so the text fits within `maxUnits` character-width\n * units (see `textWidth` — a CJK character counts as 2). Mirrors the effect\n * of the Vega-Lite template's `axis.labelLimit`, which Plotly's category axis\n * has no equivalent for — an over-length native tick label would otherwise\n * overflow past the figure's own left edge instead of ellipsizing.\n */\nfunction truncateToWidth(s: string, maxUnits: number): string {\n    if (textWidth(s) <= maxUnits) return s;\n    const chars = [...s];\n    let out = '';\n    let w = 1; // reserve 1 unit for the ellipsis\n    for (const ch of chars) {\n        const cw = isCJK(ch) ? 2 : 1;\n        if (w + cw > maxUnits) break;\n        out += ch;\n        w += cw;\n    }\n    return out.replace(/\\s+$/, '') + '…';\n}\n\n/** Compact approximate number format — mirrors the Vega-Lite template's sizing/display helper. */\nfunction approxFormat(v: number, pctPattern?: string): string {\n    if (!Number.isFinite(v)) return '';\n    if (pctPattern) return `${(v * 100).toFixed(1)}%`;\n    const a = Math.abs(v);\n    if (a >= 1e9) return (v / 1e9).toFixed(1) + 'B';\n    if (a >= 1e6) return (v / 1e6).toFixed(1) + 'M';\n    if (a >= 1e3) return (v / 1e3).toFixed(1) + 'K';\n    if (Number.isInteger(v)) return String(v);\n    if (a > 0 && a < 1) {\n        // Adaptive precision for sub-1 magnitudes — a fixed 2-decimal round\n        // (e.g. toward \"0.00\") would silently collapse a genuinely tiny but\n        // meaningful value (0.0004) down to \"0\". Show enough significant\n        // digits to keep the value distinguishable from zero.\n        const decimals = Math.min(6, Math.max(2, -Math.floor(Math.log10(a)) + 1));\n        return v.toFixed(decimals).replace(/0+$/, '').replace(/\\.$/, '');\n    }\n    return (Math.round(v * 100) / 100).toLocaleString('en-US');\n}\n\n/** Linear interpolation between two hex colors (sequential gradient-by-value). */\nfunction lerpHex(c0: string, c1: string, t: number): string {\n    const hex = (h: string) => {\n        const m = /^#?([0-9a-f]{6})$/i.exec(h.trim());\n        const v = m ? parseInt(m[1], 16) : 0;\n        return [(v >> 16) & 255, (v >> 8) & 255, v & 255];\n    };\n    const [r0, g0, b0] = hex(c0);\n    const [r1, g1, b1] = hex(c1);\n    const clamp = Math.max(0, Math.min(1, t));\n    const r = Math.round(r0 + (r1 - r0) * clamp);\n    const g = Math.round(g0 + (g1 - g0) * clamp);\n    const b = Math.round(b0 + (b1 - b0) * clamp);\n    return `rgb(${r}, ${g}, ${b})`;\n}\nconst SEQ_LOW = '#cdebd3', SEQ_HIGH = '#41a25f';\nconst DIV_LOW = '#c0392b', DIV_MID = '#f2f2f2', DIV_HIGH = '#2e7d46';\n\n/** One aggregated row: category, its ranked value, and (optional) per-color-group breakdown. */\ninterface AggRow {\n    cat: string;\n    value: number;\n    isOthers: boolean;\n    byColor?: Map<string, number>;\n}\n\n/** Aggregate raw rows into ranked-and-topN'd category rows for one facet scope. */\nfunction buildScopeRows(\n    rows: any[], yField: string, xField: string, colorField: string | undefined,\n    useMean: boolean, maxRows: number, reversed: boolean,\n): AggRow[] {\n    const byCat = new Map<string, { sum: number; n: number; byColor: Map<string, number> }>();\n    for (const r of rows) {\n        const v = Number(r[xField]);\n        if (!Number.isFinite(v)) continue;\n        const cat = String(r[yField] ?? '');\n        const g = byCat.get(cat) ?? { sum: 0, n: 0, byColor: new Map() };\n        g.sum += v; g.n += 1;\n        if (colorField) {\n            const cv = String(r[colorField] ?? '');\n            g.byColor.set(cv, (g.byColor.get(cv) ?? 0) + v);\n        }\n        byCat.set(cat, g);\n    }\n    const agg = (g: { sum: number; n: number }) => useMean ? g.sum / Math.max(1, g.n) : g.sum;\n    const ranked = Array.from(byCat.entries())\n        .map(([cat, g]) => ({ cat, value: agg(g), byColor: colorField ? g.byColor : undefined }))\n        .sort((a, b) => reversed ? a.value - b.value : b.value - a.value);\n\n    if (maxRows <= 0 || ranked.length <= maxRows) {\n        return ranked.map(r => ({ ...r, isOthers: false }));\n    }\n    const keepN = Math.max(1, maxRows - 1);\n    const kept = ranked.slice(0, keepN).map(r => ({ ...r, isOthers: false }));\n    const rest = ranked.slice(keepN);\n    const restSum = rest.reduce((s, r) => s + r.value, 0);\n    const restValue = useMean && rest.length > 0 ? restSum / rest.length : restSum;\n    const restByColor = new Map<string, number>();\n    if (colorField) {\n        for (const r of rest) {\n            for (const [cv, v] of (r.byColor ?? new Map())) {\n                restByColor.set(cv, (restByColor.get(cv) ?? 0) + v);\n            }\n        }\n    }\n    kept.push({\n        cat: `Others (+${rest.length})`, value: restValue, isOthers: true,\n        byColor: colorField ? restByColor : undefined,\n    });\n    return kept;\n}\n\nexport const plBarTableDef: ChartTemplateDef = {\n    chart: 'Bar Table',\n    template: { mark: 'bar', encoding: {} },\n    channels: ['y', 'x', 'color', 'column', 'row'],\n    markCognitiveChannel: 'length',\n    // See file docstring — a hand-built per-cell axis-pair grid (bar + %/value\n    // annotation columns), not a single cartesian panel the generic facet\n    // combiner could safely split/recombine; column/row facets are built as\n    // additional cells in this template's own grid instead.\n    selfManagesFacets: true,\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, chartProperties, canvasSize } = ctx;\n        const yField = channelSemantics.y?.field;\n        const xField = channelSemantics.x?.field;\n        const colorField = channelSemantics.color?.field;\n        const colField = channelSemantics.column?.field;\n        const rowField = channelSemantics.row?.field;\n        if (!yField || !xField) return;\n\n        const table = (ctx.fullTable ?? ctx.table ?? []) as any[];\n        if (table.length === 0) return;\n\n        const maxRows = Math.max(0, Number(chartProperties?.maxRows ?? 20));\n        const showPercent = chartProperties?.showPercent === true;\n        const useMean = channelSemantics.x?.aggregationDefault === 'average';\n        const reversed = !!channelSemantics.y?.reversed;\n\n        const xEntry = getRegistryEntry(channelSemantics.x?.semanticAnnotation?.semanticType ?? 'Unknown');\n        let hasNegative = false, hasPositive = false;\n        for (const r of table) {\n            const v = Number(r[xField]);\n            if (Number.isFinite(v)) { if (v < 0) hasNegative = true; else if (v > 0) hasPositive = true; }\n        }\n        const isDiverging = !colorField && (\n            xEntry.diverging === 'inherent'\n            || (xEntry.diverging === 'conditional' && hasNegative && hasPositive)\n        );\n\n        // ── Facet grid: column/row values in first-appearance order. ─────\n        //\n        // Column-only facets wrap into a 2D grid when there are more panels\n        // than comfortably fit at this template's own (wider-than-usual,\n        // 3-sub-column) minimum panel width — the shared layout engine's\n        // facet-grid decision assumes a much narrower single-axis panel, so\n        // it under-wraps for this template; we make the wrap call ourselves\n        // from our own minimum-width estimate instead.\n        const colValues = colField ? [...new Set(table.map(r => String(r[colField])))] : [''];\n        const rowValues = rowField ? [...new Set(table.map(r => String(r[rowField])))] : [''];\n        const MIN_CELL_W = showPercent ? 280 : 230;\n        const maxStretchW = (canvasSize ?? { width: 480 }).width * 3;\n        const maxColsFit = Math.max(1, Math.floor(maxStretchW / MIN_CELL_W));\n        const gridColsWanted = colField\n            ? (colValues.length <= maxColsFit\n                ? colValues.length\n                : Math.ceil(colValues.length / Math.ceil(colValues.length / maxColsFit)))\n            : 1;\n        const wrapColumnOnly = !!colField && !rowField && gridColsWanted < colValues.length;\n\n        type Cell = { colVal: string; rowVal: string; rows: any[] };\n        const cells: Cell[][] = [];\n        if (wrapColumnOnly) {\n            for (let i = 0; i < colValues.length; i += gridColsWanted) {\n                cells.push(colValues.slice(i, i + gridColsWanted).map(cv => ({\n                    colVal: cv, rowVal: '',\n                    rows: table.filter(r => String(r[colField!]) === cv),\n                })));\n            }\n        } else {\n            for (const rv of rowValues) {\n                cells.push(colValues.map(cv => ({\n                    colVal: cv, rowVal: rv,\n                    rows: table.filter(r =>\n                        (!colField || String(r[colField]) === cv) && (!rowField || String(r[rowField]) === rv)),\n                })));\n            }\n        }\n        const gridRows = cells.length;\n        const gridCols = Math.max(1, ...cells.map(r => r.length));\n        const hasFacet = gridRows > 1 || gridCols > 1;\n\n        // ── Per-cell aggregation (Top-N rollup within each facet scope). ──\n        const scoped = cells.map(row => row.map(cell =>\n            buildScopeRows(cell.rows, yField, xField, colorField, useMean, maxRows, reversed)));\n\n        const allColorValues = colorField\n            ? [...new Set(scoped.flat().flatMap(sr => sr.filter(r => !r.isOthers).flatMap(r => [...(r.byColor?.keys() ?? [])])))]\n            : [];\n\n        // ── Sizing (manual — mirrors the Vega-Lite template's hand-rolled\n        // panel sizing; the shared layout engine's faceted sizing doesn't\n        // apply to a hand-built multi-axis grid). ─────────────────────────\n        const canvas = canvasSize ?? { width: 480, height: 320 };\n        const maxRowsPerCell = Math.max(1, ...scoped.flat().map(sr => sr.length));\n        const density = Math.min(1, Math.max(0, (maxRowsPerCell - 12) / 40));\n        const lerp = (a: number, b: number) => Math.round(a + (b - a) * density);\n        const fontSize = Math.max(9, lerp(12, 10) - (hasFacet ? 2 : 0));\n        const barPx = Math.max(6, lerp(16, 8));\n        const gapPx = Math.max(2, Math.round(barPx * 0.2));\n        const rowStep = barPx + gapPx;\n\n        const allAggValues = scoped.flat().flatMap(sr => sr.map(r => r.value));\n        const pctValuesForSizing = scoped.flat().flatMap(sr => {\n            const total = sr.reduce((s, r) => s + r.value, 0);\n            return Math.abs(total) > 1e-9 ? sr.map(r => r.value / total) : [];\n        });\n        const pctPattern = showPercent ? '%' : undefined;\n        const measure = (strs: string[], minPx: number, maxPx: number) => {\n            const maxChars = strs.reduce((m, s) => Math.max(m, s.length), 0);\n            return Math.min(maxPx, Math.max(minPx, Math.round(maxChars * fontSize * 0.62 + 12)));\n        };\n        const catW = Math.min(180, Math.max(50, Math.round(\n            Math.max(4, textWidth(yField), ...scoped.flat().flatMap(sr => sr.map(r => textWidth(r.cat)))) * fontSize * 0.6 + 12)));\n        const catMaxUnits = Math.max(4, Math.floor((catW - 12) / (fontSize * 0.6)));\n        const valW = measure([...allAggValues.map(v => approxFormat(v)), xField], 40, 110);\n        const pctW = showPercent ? measure([...pctValuesForSizing.map(v => approxFormat(v, pctPattern)), '%'], 40, 70) : 0;\n        const barMinW = 90;\n        const cellContentW = Math.max(\n            catW + barMinW + INTER_GAP + valW + (showPercent ? pctW + INTER_GAP : 0),\n            Math.round((canvas.width - (gridCols - 1) * CELL_GAP_X) / gridCols),\n        );\n        const cellW = cellContentW;\n        const barW = Math.max(barMinW, cellW - catW - valW - (showPercent ? pctW + INTER_GAP : 0) - INTER_GAP);\n\n        const facetColHeaderBand = colField ? FACET_HEADER_H : 0;\n        const facetRowHeaderW = rowField ? 18 : 0;\n        const cellHeights = cells.map((row, ri) => Math.max(1, ...row.map((_, ci) => {\n            const sr = scoped[ri][ci];\n            return HEADER_H + (sr?.length ?? 1) * rowStep;\n        })));\n        const rowTotalHeights = cellHeights.map(h => h + facetColHeaderBand);\n        const totalW = gridCols * cellW + (gridCols - 1) * CELL_GAP_X + facetRowHeaderW;\n        // Floor the figure height so a very small row count (e.g. a single\n        // row) still leaves enough vertical room for the header band and the\n        // row to render legibly — otherwise the (fixed-size) header/row text\n        // can visually collide in an unrealistically short image.\n        const MIN_TOTAL_H = 70;\n        const totalH = Math.max(\n            MIN_TOTAL_H,\n            rowTotalHeights.reduce((s, h) => s + h, 0) + (gridRows - 1) * CELL_GAP_Y,\n        );\n\n        const palette: string[] = ['#4C78A8', '#F58518', '#54A24B', '#B279A2', '#E45756', '#72B7B2', '#EECA3B', '#9D755D'];\n        const colorIdx = new Map(allColorValues.map((v, i) => [v, i]));\n\n        const traces: any[] = [];\n        const annotations: any[] = [];\n        const layout: any = { showlegend: !!colorField, margin: { t: 8, b: 8, l: 8, r: 8 } };\n        const legendSeen = new Set<string>();\n\n        let yTop = 0;\n        for (let ri = 0; ri < gridRows; ri++) {\n            const row = cells[ri];\n            const cellTop = yTop + facetColHeaderBand;\n            for (let ci = 0; ci < row.length; ci++) {\n                const cell = row[ci];\n                const sr = scoped[ri][ci];\n                const n = ri * gridCols + ci + 1;\n                const xName = n === 1 ? 'xaxis' : `xaxis${n}`;\n                const yName = n === 1 ? 'yaxis' : `yaxis${n}`;\n                const xRef = n === 1 ? 'x' : `x${n}`;\n                const yRef = n === 1 ? 'y' : `y${n}`;\n\n                const cellLeft = ci * (cellW + CELL_GAP_X);\n                const barX0 = cellLeft + catW;\n                const barX1 = barX0 + barW;\n                const catNames = sr.map(r => r.cat);\n                const yDomainTop = cellTop + HEADER_H;\n                const yDomainBottom = yDomainTop + sr.length * rowStep;\n\n                layout[xName] = {\n                    domain: [barX0 / totalW, barX1 / totalW],\n                    anchor: yRef,\n                    rangemode: isDiverging ? 'normal' : 'tozero',\n                    zeroline: true, zerolinecolor: '#ddd',\n                    showgrid: false, showticklabels: false,\n                };\n                layout[yName] = {\n                    domain: [1 - yDomainBottom / totalH, 1 - yDomainTop / totalH],\n                    anchor: xRef,\n                    type: 'category',\n                    categoryorder: 'array', categoryarray: catNames,\n                    autorange: 'reversed',\n                    showgrid: false,\n                    tickfont: { size: fontSize },\n                    // Category names render as our OWN annotations (below),\n                    // not native tick labels: Plotly's category axis has no\n                    // `labelLimit`-style truncation, so a name longer than\n                    // `catW` would just overflow past the figure's own left\n                    // edge (clipped by the canvas) instead of ellipsizing —\n                    // annotations let us truncate deterministically to fit.\n                    showticklabels: false,\n                    automargin: false,\n                    ticklen: 0,\n                };\n\n                if (colorField && allColorValues.length > 0) {\n                    for (const cv of allColorValues) {\n                        const xs = sr.map(r => r.isOthers ? 0 : (r.byColor?.get(cv) ?? 0));\n                        if (xs.every(v => v === 0)) continue;\n                        traces.push({\n                            type: 'bar', orientation: 'h',\n                            xaxis: xRef, yaxis: yRef,\n                            name: cv,\n                            legendgroup: cv,\n                            showlegend: !legendSeen.has(cv),\n                            x: xs, y: catNames,\n                            marker: { color: palette[(colorIdx.get(cv) ?? 0) % palette.length] },\n                            hovertemplate: `%{y}<br>${cv}: %{x}<extra></extra>`,\n                        });\n                        legendSeen.add(cv);\n                    }\n                    const othersXs = sr.map(r => r.isOthers ? r.value : 0);\n                    if (othersXs.some(v => v !== 0)) {\n                        traces.push({\n                            type: 'bar', orientation: 'h',\n                            xaxis: xRef, yaxis: yRef,\n                            name: 'Others', legendgroup: 'Others', showlegend: false,\n                            x: othersXs, y: catNames,\n                            marker: { color: OTHERS_GRAY },\n                            hoverinfo: 'skip',\n                        });\n                    }\n                } else {\n                    const vals = sr.map(r => r.value);\n                    const finite = vals.filter(Number.isFinite);\n                    const vmin = finite.length ? Math.min(...finite, 0) : 0;\n                    const vmax = finite.length ? Math.max(...finite) : 1;\n                    const colors = sr.map(r => {\n                        if (r.isOthers) return OTHERS_GRAY;\n                        if (isDiverging) {\n                            const span = Math.max(Math.abs(vmin), Math.abs(vmax)) || 1;\n                            const t = r.value / span; // -1..1\n                            return t >= 0 ? lerpHex(DIV_MID, DIV_HIGH, t) : lerpHex(DIV_MID, DIV_LOW, -t);\n                        }\n                        const t = (r.value - vmin) / ((vmax - vmin) || 1);\n                        return lerpHex(SEQ_LOW, SEQ_HIGH, t);\n                    });\n                    traces.push({\n                        type: 'bar', orientation: 'h',\n                        xaxis: xRef, yaxis: yRef,\n                        showlegend: false,\n                        x: vals, y: catNames,\n                        marker: { color: colors },\n                        hovertemplate: `%{y}<br>${xField}: %{x}<extra></extra>`,\n                    });\n                }\n\n                // ── Category / %/value text columns (annotations anchored\n                // to this cell's own category axis so each row lines up with\n                // its bar; see the `showticklabels: false` note above for\n                // why the category name is an annotation too). ──\n                const total = sr.reduce((s, r) => s + r.value, 0);\n                sr.forEach((r) => {\n                    const color = r.isOthers ? OTHERS_GRAY : '#666';\n                    annotations.push({\n                        text: truncateToWidth(r.cat, catMaxUnits),\n                        x: cellLeft / totalW, y: r.cat,\n                        xref: 'paper', yref: yRef,\n                        xanchor: 'left', yanchor: 'middle', showarrow: false,\n                        font: { size: fontSize, color: r.isOthers ? OTHERS_GRAY : '#333' },\n                    });\n                    if (showPercent) {\n                        const pct = Math.abs(total) > 1e-9 ? r.value / total : NaN;\n                        annotations.push({\n                            text: Number.isFinite(pct) ? approxFormat(pct, '%') : '',\n                            x: (barX1 + INTER_GAP + pctW) / totalW, y: r.cat,\n                            xref: 'paper', yref: yRef,\n                            xanchor: 'right', yanchor: 'middle', showarrow: false,\n                            font: { size: fontSize, color: r.isOthers ? OTHERS_GRAY : '#41a25f' },\n                        });\n                    }\n                    const valueX = showPercent ? barX1 + INTER_GAP + pctW + INTER_GAP + valW : barX1 + INTER_GAP + valW;\n                    annotations.push({\n                        text: approxFormat(r.value),\n                        x: valueX / totalW, y: r.cat,\n                        xref: 'paper', yref: yRef,\n                        xanchor: 'right', yanchor: 'middle', showarrow: false,\n                        font: { size: fontSize, color },\n                    });\n                });\n\n                // Sub-column headers (Category / % / Value), repeated per\n                // cell. `yanchor: 'top'` renders the label DOWNWARD from the\n                // cell's own top edge (into the reserved `HEADER_H` band) —\n                // `yanchor: 'bottom'` at the same y would need headroom above\n                // the plot area itself, clipping the very first row's headers\n                // against the image's top edge.\n                const headerY = 1 - cellTop / totalH;\n                annotations.push({\n                    text: yField, x: cellLeft / totalW, y: headerY,\n                    xref: 'paper', yref: 'paper', xanchor: 'left', yanchor: 'top', showarrow: false,\n                    font: { size: 10, color: '#999' },\n                });\n                if (showPercent) {\n                    annotations.push({\n                        text: '%', x: (barX1 + INTER_GAP + pctW) / totalW, y: headerY,\n                        xref: 'paper', yref: 'paper', xanchor: 'right', yanchor: 'top', showarrow: false,\n                        font: { size: 10, color: '#999' },\n                    });\n                }\n                annotations.push({\n                    text: xField,\n                    x: (showPercent ? barX1 + INTER_GAP + pctW + INTER_GAP + valW : barX1 + INTER_GAP + valW) / totalW,\n                    y: headerY,\n                    xref: 'paper', yref: 'paper', xanchor: 'right', yanchor: 'top', showarrow: false,\n                    font: { size: 10, color: '#999' },\n                });\n\n                // Facet column header (top row of each grid row only).\n                if (colField && cell.colVal !== '') {\n                    annotations.push({\n                        text: cell.colVal,\n                        x: (cellLeft + cellW / 2) / totalW, y: 1 - yTop / totalH,\n                        xref: 'paper', yref: 'paper', xanchor: 'center', yanchor: 'top', showarrow: false,\n                        font: { size: 12, color: '#333' },\n                    });\n                }\n                // Facet row header (rightmost cell in the row).\n                if (rowField && ci === row.length - 1 && cell.rowVal !== '') {\n                    annotations.push({\n                        text: cell.rowVal,\n                        x: (totalW - facetRowHeaderW / 2) / totalW, y: 1 - (cellTop + (yDomainBottom - yDomainTop) / 2) / totalH,\n                        xref: 'paper', yref: 'paper', xanchor: 'center', yanchor: 'middle', textangle: 90, showarrow: false,\n                        font: { size: 12, color: '#333' },\n                    });\n                }\n            }\n            yTop += rowTotalHeights[ri] + CELL_GAP_Y;\n        }\n\n        Object.assign(spec, {\n            data: traces,\n            layout: { ...layout, annotations, barmode: colorField ? 'stack' : undefined },\n            _width: Math.round(totalW),\n            _height: Math.round(totalH),\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'maxRows', label: 'Max Rows', type: 'continuous', min: 5, max: 100, step: 1, defaultValue: 20 } as ChartPropertyDef,\n        {\n            key: 'showPercent', label: '% of total', type: 'binary', defaultValue: false,\n            check: (ctx) => {\n                const mcs = ctx.channelSemantics?.x;\n                if (!mcs?.field || mcs.type !== 'quantitative' || mcs.aggregationDefault === 'average') {\n                    return { applicable: false };\n                }\n                let sum = 0, hasNeg = false, hasPos = false, count = 0;\n                for (const row of ctx.data ?? []) {\n                    const v = row[mcs.field];\n                    if (typeof v !== 'number' || !isFinite(v)) continue;\n                    count++;\n                    if (v < 0) hasNeg = true; else if (v > 0) hasPos = true;\n                    sum += v;\n                }\n                return { applicable: count > 0 && !(hasNeg && hasPos) && Math.abs(sum) > 0 };\n            },\n        } as ChartPropertyDef,\n    ],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly Density Contour (2D density) template.\n *\n * Native `histogram2dcontour` trace: bins two raw numeric arrays (`x`, `y`) and\n * draws smoothed density contour lines. Vega-Lite has **no** contour mark, so\n * this is a Plotly-only statistical chart. See design-docs/plotly-stats-charts.md.\n */\n\nimport { ChartTemplateDef, ChartPropertyDef, EncodingActionDef } from '../../core/types';\n\nconst SCHEME_COLORSCALES: Record<string, string> = {\n    viridis: 'Viridis', inferno: 'Hot', magma: 'Magma', plasma: 'Plasma', turbo: 'Turbo',\n    blues: 'Blues', reds: 'Reds', greens: 'Greens', oranges: 'Oranges', purples: 'Purples', greys: 'Greys',\n};\nconst DEFAULT_SCHEME = 'Blues';\n\nexport const plDensityContourDef: ChartTemplateDef = {\n    chart: 'Density Contour',\n    template: { mark: 'rect', encoding: {} },\n    channels: ['x', 'y', 'column', 'row'],\n    markCognitiveChannel: 'color',\n    instantiate: (spec, ctx) => {\n        const { channelSemantics, table, chartProperties, encodings } = ctx;\n        const xField = channelSemantics.x?.field;\n        const yField = channelSemantics.y?.field;\n        if (!xField || !yField) return;\n\n        const binCount = (chartProperties?.binCount as number) || 20;\n        const showPoints = chartProperties?.showPoints !== false;\n        const encScheme = (encodings?.color as any)?.scheme;\n        const userScheme = (encScheme && encScheme !== 'default') ? encScheme : undefined;\n        const colorscale = SCHEME_COLORSCALES[userScheme ?? DEFAULT_SCHEME.toLowerCase()] ?? DEFAULT_SCHEME;\n\n        const xs: number[] = [];\n        const ys: number[] = [];\n        for (const r of table) {\n            const xv = Number(r[xField]);\n            const yv = Number(r[yField]);\n            if (isFinite(xv) && isFinite(yv)) { xs.push(xv); ys.push(yv); }\n        }\n\n        const data: any[] = [{\n            type: 'histogram2dcontour',\n            x: xs, y: ys,\n            nbinsx: binCount, nbinsy: binCount,\n            colorscale,\n            contours: { coloring: 'fill' },\n            colorbar: { title: { text: 'Density' } },\n            line: { width: 0.5 },\n        }];\n        if (showPoints) {\n            data.push({\n                type: 'scatter', mode: 'markers',\n                x: xs, y: ys,\n                marker: { color: 'rgba(0,0,0,0.35)', size: 3 },\n                hoverinfo: 'skip', showlegend: false,\n            });\n        }\n\n        Object.assign(spec, {\n            data,\n            layout: {\n                xaxis: { title: { text: xField } },\n                yaxis: { title: { text: yField } },\n                showlegend: false,\n            },\n        });\n        delete spec.mark;\n        delete spec.encoding;\n    },\n    properties: [\n        { key: 'binCount', label: 'Bins', type: 'continuous', min: 5, max: 50, step: 1, defaultValue: 20 } as ChartPropertyDef,\n        { key: 'showPoints', label: 'Show points', type: 'binary', defaultValue: true } as ChartPropertyDef,\n    ],\n    encodingActions: [\n        {\n            key: 'colorScheme',\n            label: 'Scheme',\n            isApplicable: () => true,\n            dependencies: [],\n            control: {\n                type: 'discrete', options: [\n                    { value: undefined, label: 'Default (Blues)' },\n                    { value: 'viridis', label: 'Viridis' },\n                    { value: 'inferno', label: 'Inferno' },\n                    { value: 'magma', label: 'Magma' },\n                    { value: 'plasma', label: 'Plasma' },\n                    { value: 'turbo', label: 'Turbo' },\n                    { value: 'greens', label: 'Greens' },\n                    { value: 'reds', label: 'Reds' },\n                ],\n            },\n            get: (enc) => (enc.color as any)?.scheme,\n            set: (enc, value) => ({ ...enc, color: { ...(enc.color as any), scheme: value } }),\n        },\n    ] as EncodingActionDef[],\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly template registry.\n *\n * Mirrors the structure of chartjs/templates/index.ts, echarts/templates/index.ts\n * and vegalite/templates/index.ts but with Plotly template definitions.\n *\n * Coverage: the four original acceptance templates (Bar, Line, Area, Scatter)\n * plus an expressive tranche mirroring most of the Vega-Lite catalog (grouped/\n * stacked bar, distributions, circular charts, specialized native-trace charts),\n * two Plotly opportunity charts (Funnel, Gauge) that showcase native\n * `indicator`/`funnel` traces ECharts otherwise hand-builds, native geo charts\n * (Map, Choropleth — Plotly's own `scattergeo`/`choropleth` built-in atlas, no\n * TopoJSON fetch/join needed), and two composite table/strip layouts\n * (Sparkline, Bar Table) built as self-contained Plotly figures (own axis\n * grid + paper-anchored annotations) rather than forced through the generic\n * cartesian column/row facet combiner (`facet.ts`), which only supports one\n * axis pair per panel. See `sparkline.ts` / `bar-table.ts` for the composite\n * layout technique and `selfManagesFacets` in `../assemble.ts`.\n */\n\nimport { ChartTemplateDef } from '../../core/types';\nimport { plBarChartDef, plGroupedBarChartDef, plStackedBarChartDef, plPyramidChartDef } from './bar';\nimport { plLineChartDef } from './line';\nimport { plAreaChartDef } from './area';\nimport { plScatterPlotDef } from './scatter';\nimport { plHistogramDef } from './histogram';\nimport { plPieChartDef, plDonutChartDef } from './pie';\nimport { plRadarChartDef } from './radar';\nimport { plRoseChartDef } from './rose';\nimport { plBoxplotDef } from './boxplot';\nimport { plViolinPlotDef } from './violin';\nimport { plDensityPlotDef } from './density';\nimport { plEcdfPlotDef } from './ecdf';\nimport { plStripPlotDef } from './jitter';\nimport { plConnectedScatterDef } from './connected-scatter';\nimport { plRangeAreaChartDef } from './range-area';\nimport { plStreamgraphDef } from './streamgraph';\nimport { plSlopeChartDef } from './slope';\nimport { plBumpChartDef } from './bump';\nimport { plWaterfallChartDef } from './waterfall';\nimport { plCandlestickChartDef } from './candlestick';\nimport { plHeatmapDef } from './heatmap';\nimport { plLollipopChartDef } from './lollipop';\nimport { plBulletChartDef } from './bullet';\nimport { plGanttChartDef } from './gantt';\nimport { plRangedDotPlotDef } from './ranged-dot';\nimport { plRegressionDef } from './regression';\nimport { plKpiCardDef } from './kpi-card';\nimport { plFunnelChartDef } from './funnel';\nimport { plGaugeChartDef } from './gauge';\nimport { plMapDef } from './map';\nimport { plChoroplethDef } from './choropleth';\nimport { plSparklineDef } from './sparkline';\nimport { plBarTableDef } from './bar-table';\nimport { plDensityContourDef } from './density-contour';\n\n/**\n * Plotly chart template definitions, grouped by category.\n */\nexport const plTemplateDefs: { [key: string]: ChartTemplateDef[] } = {\n    'Scatter & Point': [plScatterPlotDef, plRegressionDef, plConnectedScatterDef, plRangedDotPlotDef, plStripPlotDef],\n    'Bar':             [plBarChartDef, plGroupedBarChartDef, plStackedBarChartDef, plLollipopChartDef, plWaterfallChartDef, plPyramidChartDef],\n    'Distributions':   [plHistogramDef, plBoxplotDef, plViolinPlotDef, plDensityPlotDef, plEcdfPlotDef, plCandlestickChartDef, plDensityContourDef],\n    'Line & Area':     [plLineChartDef, plAreaChartDef, plBumpChartDef, plSlopeChartDef, plStreamgraphDef, plRangeAreaChartDef],\n    'Circular':        [plPieChartDef, plDonutChartDef, plRadarChartDef, plRoseChartDef],\n    'Tables & KPIs':   [plHeatmapDef, plGanttChartDef, plBulletChartDef, plKpiCardDef, plSparklineDef, plBarTableDef],\n    'Maps':            [plMapDef, plChoroplethDef],\n    'Opportunity':     [plFunnelChartDef, plGaugeChartDef],\n};\n\n/**\n * Flat list of all Plotly chart template definitions.\n */\nexport const plAllTemplateDefs: ChartTemplateDef[] = Object.values(plTemplateDefs).flat();\n\n/**\n * Look up a Plotly chart template definition by chart type name.\n */\nexport function plGetTemplateDef(chartType: string): ChartTemplateDef | undefined {\n    return plAllTemplateDefs.find(t => t.chart === chartType);\n}\n\n/**\n * Get the available channels for a Plotly chart type.\n */\nexport function plGetTemplateChannels(chartType: string): string[] {\n    return plGetTemplateDef(chartType)?.channels || [];\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * =============================================================================\n * CHANNEL SEMANTICS RESOLVER\n * =============================================================================\n *\n * Stage 2 of the semantic pipeline:\n *   SemanticAnnotation + data → FieldSemantics → **ChannelSemantics**\n *\n * Takes each channel’s field, builds FieldSemantics (stage 1), then adds\n * channel-specific visualization decisions: encoding type, color scheme,\n * temporal format, ordinal sort, tick constraints, axis reversal, nice\n * rounding, interpolation, and stacking.\n *\n * Zero-baseline is NOT resolved here — it requires template mark knowledge\n * and is finalized by the assembler after this function returns.\n *\n * VL dependency: **None**\n * =============================================================================\n */\n\nimport type {\n    ChartEncoding,\n    ChannelSemantics,\n    SemanticResult,\n} from './types';\nimport {\n    getVisCategory,\n    inferVisCategory,\n    getRecommendedColorScheme,\n    inferOrdinalSortOrder,\n} from './semantic-types';\nimport {\n    resolveEncodingType as resolveEncodingTypeDecision,\n} from './decisions';\nimport {\n    resolveFieldSemantics,\n    toTypeString,\n    resolveNice,\n    resolveTickConstraint,\n    resolveReversed,\n    resolveStackable,\n    resolveColorSchemeHint,\n    resolveDivergingInfo,\n    type SemanticAnnotation,\n} from './field-semantics';\n\n// ---------------------------------------------------------------------------\n// Internal helpers (moved from assemble.ts)\n// ---------------------------------------------------------------------------\n\n/** Upper bounds for plausible timestamps (~2099-12-31). */\nconst MAX_TIMESTAMP_SEC = 4102444800;\nconst MAX_TIMESTAMP_MS = 4102444800000;\n\nfunction isLikelyTimestamp(val: number): boolean {\n    if (val >= 1e9 && val <= MAX_TIMESTAMP_SEC) return true;\n    if (val > MAX_TIMESTAMP_SEC && val <= MAX_TIMESTAMP_MS) return true;\n    return false;\n}\n\nfunction timestampToMs(val: number): number {\n    return val <= MAX_TIMESTAMP_SEC ? val * 1000 : val;\n}\n\nfunction looksLikeDateString(s: string): boolean {\n    const t = s.trim();\n    return /^\\d|^(jan|feb|mar|apr|may|jun|jul|aug|sep|oct|nov|dec)/i.test(t);\n}\n\n// ---------------------------------------------------------------------------\n// Temporal field analysis\n// ---------------------------------------------------------------------------\n\ninterface TemporalAnalysis {\n    dates: Date[];\n    same: {\n        month: boolean;\n        day: boolean;\n        hour: boolean;\n        minute: boolean;\n        second: boolean;\n    };\n    sameYear: boolean;\n    sameMonth: boolean;\n    sameDay: boolean;\n}\n\nfunction analyzeTemporalField(fieldValues: any[]): TemporalAnalysis | null {\n    const dates: Date[] = [];\n    let nonNull = 0;\n    for (const v of fieldValues.slice(0, 100)) {\n        if (v == null) continue;\n        nonNull++;\n        const d = v instanceof Date ? v : new Date(v);\n        if (!isNaN(d.getTime())) dates.push(d);\n    }\n    if (dates.length < 2 || dates.length < nonNull * 0.5) return null;\n\n    const monthSet  = new Set(dates.map(d => d.getUTCMonth()));\n    const daySet    = new Set(dates.map(d => d.getUTCDate()));\n    const hourSet   = new Set(dates.map(d => d.getUTCHours()));\n    const minuteSet = new Set(dates.map(d => d.getUTCMinutes()));\n    const secondSet = new Set(dates.map(d => d.getUTCSeconds()));\n    const yearSet   = new Set(dates.map(d => d.getUTCFullYear()));\n\n    const isSmallSpread = (s: Set<number>, maxSpread: number = 1) => {\n        if (s.size <= 1) return true;\n        const arr = [...s];\n        return Math.max(...arr) - Math.min(...arr) <= maxSpread;\n    };\n\n    const same = {\n        month:  monthSet.size  === 1,\n        day:    daySet.size    === 1,\n        hour:   isSmallSpread(hourSet, 1),\n        minute: minuteSet.size === 1,\n        second: secondSet.size === 1,\n    };\n\n    const sameYear  = yearSet.size === 1;\n    const sameMonth = sameYear && same.month;\n    const sameDay   = sameMonth && same.day;\n\n    return { dates, same, sameYear, sameMonth, sameDay };\n}\n\nfunction computeDataVotes(same: TemporalAnalysis['same']): number[] {\n    const votes = [0, 0, 0, 0, 0, 0];\n\n    if (same.second)                                                           votes[5] += 1;\n    if (same.minute && same.second)                                            votes[5] += 1;\n    if (same.hour   && same.minute && same.second)                             votes[5] += 1;\n    if (same.day    && same.hour   && same.minute && same.second)              votes[5] += 2;\n    if (same.month  && same.day    && same.hour   && same.minute && same.second) votes[5] += 3;\n\n    if (same.second)                                                           votes[4] += 1;\n    if (same.minute && same.second)                                            votes[4] += 1;\n    if (same.hour   && same.minute && same.second)                             votes[4] += 1;\n    if (same.day    && same.hour   && same.minute && same.second)              votes[4] += 2;\n    if (!same.month && same.day && same.hour && same.minute && same.second)    votes[4] += 3;\n\n    if (same.second)                                                           votes[3] += 1;\n    if (same.minute && same.second)                                            votes[3] += 1;\n    if (same.hour   && same.minute && same.second)                             votes[3] += 1;\n    if (!same.day && same.hour && same.minute && same.second)                  votes[3] += 3;\n\n    if (same.second)                               votes[2] += 1;\n    if (same.minute && same.second)                votes[2] += 1;\n    if (!same.hour && same.minute && same.second)  votes[2] += 3;\n\n    if (same.second)                    votes[1] += 1;\n    if (!same.minute && same.second)    votes[1] += 3;\n\n    if (!same.second) votes[0] += 4;\n\n    return votes;\n}\n\nconst SEMANTIC_LEVEL: Record<string, number> = {\n    Year:        5, Decade:      5,\n    YearMonth:   4, Month:       4, YearQuarter: 4, Quarter: 4,\n    Date:        3, Day:         3,\n    Hour:        2,\n    DateTime:    1,\n    Timestamp:   0,\n};\n\nfunction pickBestLevel(votes: number[]): { level: number; score: number } {\n    let bestLevel = 0;\n    let bestScore = votes[0];\n    for (let i = 1; i <= 5; i++) {\n        if (votes[i] >= bestScore) {\n            bestScore = votes[i];\n            bestLevel = i;\n        }\n    }\n    return { level: bestLevel, score: bestScore };\n}\n\nfunction levelToFormat(level: number, analysis: TemporalAnalysis): string | null {\n    switch (level) {\n        case 5: return '%Y';\n        case 4: return analysis.sameYear ? '%b' : '%b %Y';\n        case 3: return analysis.sameYear ? '%b %d' : '%b %d, %Y';\n        case 2: return analysis.sameDay  ? '%H:00' : '%b %d %H:00';\n        case 1: return analysis.sameDay  ? '%H:%M' : '%b %d %H:%M';\n        case 0: return analysis.sameDay  ? '%H:%M:%S' : '%b %d %H:%M:%S';\n        default: return null;\n    }\n}\n\n/**\n * Resolve temporal format for a field.\n * Used for both temporal and ordinal-temporal fields.\n */\nfunction resolveTemporalFormat(\n    fieldValues: any[],\n    semanticType: string,\n): string | null {\n    const analysis = analyzeTemporalField(fieldValues);\n    if (!analysis) return null;\n\n    const votes = computeDataVotes(analysis.same);\n    const semLevel = SEMANTIC_LEVEL[semanticType];\n    if (semLevel !== undefined) votes[semLevel] += 3;\n    const { level } = pickBestLevel(votes);\n    return levelToFormat(level, analysis);\n}\n\n// ---------------------------------------------------------------------------\n// Temporal data conversion\n// ---------------------------------------------------------------------------\n\n/**\n * Expand a year string to an unambiguous 4-digit representation.\n *\n * - \"98\" → \"1998\",  \"07\" → \"2007\",  \"00\" → \"2000\"\n * - \"1998\" → \"1998\" (already 4+ digits, pass through)\n * - \"FY 2018\" → \"FY 2018\" (non-numeric, pass through)\n *\n * Two-digit cutoff: 0–49 → 2000s, 50–99 → 1900s (same heuristic JS Date uses).\n */\nfunction expandToFullYear(val: string): string {\n    const trimmed = val.trim();\n    if (/^\\d{2}$/.test(trimmed)) {\n        const n = parseInt(trimmed, 10);\n        return String(n <= 49 ? 2000 + n : 1900 + n);\n    }\n    return val;\n}\n\n/**\n * Convert temporal field values in the data table to canonical string\n * representations for Vega-Lite consumption.\n *\n * This is a data-level concern (not VL-specific) — it ensures consistent\n * date parsing across backends.\n */\nexport function convertTemporalData(\n    data: any[],\n    semanticTypes: Record<string, string | SemanticAnnotation>,\n): any[] {\n    if (data.length === 0) return data;\n\n    const keys = Object.keys(data[0]);\n    const temporalKeys = keys.filter((k: string) => {\n        const st = toTypeString(semanticTypes[k]);\n        const vc = inferVisCategory(data.map(r => r[k]));\n        const stCategory = st ? getVisCategory(st) : null;\n        return vc === 'temporal' || stCategory === 'temporal' || st === 'Decade';\n    });\n\n    if (temporalKeys.length === 0) return data;\n\n    const values = structuredClone(data);\n    return values.map((r: any) => {\n        for (const temporalKey of temporalKeys) {\n            const val = r[temporalKey];\n            const st = toTypeString(semanticTypes[temporalKey]);\n\n            if (typeof val === 'number') {\n                if (st === 'Year' || st === 'Decade') {\n                    r[temporalKey] = `${Math.floor(val)}`;\n                } else if (isLikelyTimestamp(val)) {\n                    r[temporalKey] = new Date(timestampToMs(val)).toISOString();\n                } else {\n                    r[temporalKey] = String(val);\n                }\n            } else if (val instanceof Date) {\n                r[temporalKey] = val.toISOString();\n            } else {\n                // For Year/Decade strings, normalise to 4-digit years so\n                // Vega-Lite parses them unambiguously and doesn't auto-tick\n                // at sub-year intervals (e.g. \"98\" → \"1998\").\n                if ((st === 'Year' || st === 'Decade') && typeof val === 'string') {\n                    r[temporalKey] = expandToFullYear(val);\n                } else {\n                    r[temporalKey] = String(val);\n                }\n            }\n        }\n        return r;\n    });\n}\n\n// ---------------------------------------------------------------------------\n// Public API: resolveChannelSemantics\n// ---------------------------------------------------------------------------\n\n/**\n * Resolve all channel-level semantic decisions.\n *\n * For each channel, builds FieldSemantics (data identity) then layers on\n * channel-specific visualization decisions (color scheme, temporal format,\n * tick constraints, axis reversal, interpolation, etc.).\n *\n * Zero-baseline (cs.zero) is NOT resolved here -- it requires template\n * mark knowledge (bar vs point) that belongs to the assembler.\n * The assembler finalizes zero after calling this function.\n *\n * @param encodings       Channel -> ChartEncoding from user / AI agent\n * @param data            Array of data rows (original, unconverted)\n * @param semanticTypes   Field name -> semantic type string\n * @param convertedData   Pre-converted temporal data (from convertTemporalData).\n *                        If omitted, falls back to data for temporal format detection.\n */\nexport function resolveChannelSemantics(\n    encodings: Record<string, ChartEncoding>,\n    data: any[],\n    semanticTypes: Record<string, string | SemanticAnnotation>,\n    convertedData?: any[],\n): SemanticResult {\n    const result: SemanticResult = {};\n\n    // Use pre-converted temporal data for format detection, or fall back to raw data\n    const temporalData = convertedData ?? data;\n\n    for (const [channel, encoding] of Object.entries(encodings)) {\n        const fieldName = encoding.field;\n        if (!fieldName && encoding.aggregate !== 'count') continue;\n\n        // Handle count aggregate without a field\n        if (!fieldName && encoding.aggregate === 'count') {\n            result[channel] = {\n                field: '_count',\n                semanticAnnotation: { semanticType: 'Count' },\n                type: 'quantitative',\n                aggregationDefault: 'sum',\n            };\n            continue;\n        }\n\n        if (!fieldName) continue;\n\n        const rawAnnotation = semanticTypes[fieldName];\n        const semanticType = typeof rawAnnotation === 'string'\n            ? (rawAnnotation || '')\n            : (rawAnnotation?.semanticType ?? '');\n        const fieldValues = data.map(r => r[fieldName]);\n\n        // Resolve encoding type\n        const typeDecision = resolveEncodingTypeDecision(\n            semanticType, fieldValues, channel, data, fieldName,\n        );\n\n        // Apply explicit type override\n        let resolvedType = typeDecision.vlType;\n        if (encoding.type) {\n            resolvedType = encoding.type;\n        } else if (channel === 'column' || channel === 'row') {\n            if (resolvedType !== 'nominal' && resolvedType !== 'ordinal') {\n                resolvedType = 'nominal';\n            }\n        }\n\n        // ISO date hack\n        if (resolvedType === 'quantitative') {\n            const sampleValues = data.slice(0, 15).filter(r => r[fieldName] != undefined).map(r => r[fieldName]);\n            const isoDateRegex = /^\\d{4}-\\d{2}-\\d{2}T\\d{2}:\\d{2}:\\d{2}(\\.\\d+)?(Z|[+-]\\d{2}:\\d{2})?$/;\n            if (sampleValues.length > 0 && sampleValues.every((val: any) => isoDateRegex.test(`${val}`.trim()))) {\n                resolvedType = 'temporal';\n            }\n        }\n\n        // Build ChannelSemantics entry\n        // Stage 1: resolve field-level semantics (data identity)\n        const fc = resolveFieldSemantics(rawAnnotation, fieldName, fieldValues);\n        const annotation = fc.semanticAnnotation;\n\n        // Stage 2: layer on channel-specific visualization decisions\n        const tickConstraint = resolveTickConstraint(annotation.semanticType, annotation.intrinsicDomain);\n        const reversed = resolveReversed(annotation.semanticType, channel);\n        const nice = resolveNice(annotation.semanticType, fc.domainConstraint);\n        const stackable = resolveStackable(annotation.semanticType);\n\n        const cs: ChannelSemantics = {\n            field: fieldName,\n            semanticAnnotation: annotation,\n            type: resolvedType,\n\n            // From FieldSemantics (data identity)\n            format: fc.format,\n            tooltipFormat: fc.tooltipFormat,\n            aggregationDefault: fc.aggregationDefault,\n            scaleType: fc.scaleType,\n            domainConstraint: fc.domainConstraint,\n            cyclic: fc.cyclic || undefined,\n            sortDirection: fc.sortDirection,\n            binningSuggested: fc.binningSuggested || undefined,\n\n            // Channel-specific visualization decisions\n            nice,\n            tickConstraint,\n            reversed: reversed || undefined,\n            stackable,\n        };\n\n        // Adjust field name for aggregated fields (the derived column is either\n        // computed by applyAggregation or supplied pre-aggregated by the caller)\n        if (encoding.aggregate) {\n            if (encoding.aggregate === 'count') {\n                cs.field = '_count';\n                cs.type = 'quantitative';\n            } else {\n                cs.field = `${fieldName}_${encoding.aggregate}`;\n                cs.type = 'quantitative';\n            }\n        }\n\n        // --- Channel-specific semantic decisions ---\n\n        // Color scheme (color and group channels)\n        if ((channel === 'color' || channel === 'group') && fieldName) {\n            if (encoding.scheme && encoding.scheme !== 'default') {\n                cs.colorScheme = {\n                    scheme: encoding.scheme,\n                    type: 'categorical',\n                    reason: 'explicit user scheme',\n                };\n            } else {\n                const encodingVLType = cs.type as 'nominal' | 'ordinal' | 'quantitative' | 'temporal';\n                // Use design-aligned classification from field-semantics.ts\n                const colorHint = resolveColorSchemeHint(semanticType, annotation, fieldValues);\n                const uniqueValues = [...new Set(fieldValues)];\n                cs.colorScheme = getRecommendedColorScheme(\n                    semanticType, encodingVLType, uniqueValues.length, fieldName,\n                    fieldValues, { type: colorHint.type },\n                );\n                // Apply midpoint from design-aligned diverging analysis\n                if (cs.colorScheme.type === 'diverging' && encodingVLType === 'quantitative') {\n                    const nums = fieldValues.filter((v: any) => typeof v === 'number' && !isNaN(v));\n                    const divInfo = resolveDivergingInfo(semanticType, annotation, nums);\n                    if (divInfo) {\n                        cs.colorScheme.domainMid = divInfo.midpoint;\n                    }\n                }\n            }\n        }\n\n        // Temporal format\n        if (cs.type === 'temporal' || (semanticType && getVisCategory(semanticType) === 'temporal')) {\n            const convertedFieldValues = temporalData.map(r => r[fieldName]);\n            const fmt = resolveTemporalFormat(convertedFieldValues, semanticType);\n            if (fmt) cs.temporalFormat = fmt;\n        }\n\n        // Ordinal sort order (canonical ordering for months, days, quarters, etc.)\n        if (cs.type === 'ordinal' || cs.type === 'nominal') {\n            if (!encoding.sortOrder && !encoding.sortBy) {\n                const ordinalSort = inferOrdinalSortOrder(semanticType, fieldValues);\n                if (ordinalSort) {\n                    cs.ordinalSortOrder = ordinalSort;\n                }\n            }\n        }\n\n        result[channel] = cs;\n    }\n\n    return result;\n}\n\n// Re-export helpers needed by other modules\nexport {\n    analyzeTemporalField,\n    computeDataVotes,\n    pickBestLevel,\n    levelToFormat,\n    looksLikeDateString,\n    SEMANTIC_LEVEL,\n    type TemporalAnalysis,\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * =============================================================================\n * OVERFLOW FILTERING\n * =============================================================================\n *\n * Decides *which* discrete values to keep when there are too many for\n * the available canvas space, then filters the data accordingly.\n *\n * This module does **no layout math**.  Per-channel capacity budgets\n * are computed upstream by `computeChannelBudgets` and passed in as\n * a `ChannelBudgets` object.  This module focuses on:\n *   1. Iterating each discrete channel\n *   2. Applying the overflow strategy (which values to keep)\n *   3. Filtering data rows\n *   4. Producing truncation warnings\n *\n * Runs AFTER computeChannelBudgets and BEFORE computeLayout.\n *\n * VL dependency: **None**\n * =============================================================================\n */\n\nimport type {\n    ChannelSemantics,\n    ChartEncoding,\n    LayoutDeclaration,\n    TruncationWarning,\n    OverflowResult,\n    OverflowStrategy,\n    OverflowStrategyContext,\n    ChannelBudgets,\n} from './types';\nimport type { ChartWarning } from './types';\nimport { inferVisCategory } from './semantic-types';\n\n// ---------------------------------------------------------------------------\n// Public API\n// ---------------------------------------------------------------------------\n\n/**\n * Filter data to keep only the values that fit within the canvas.\n *\n * @param channelSemantics  Phase 0 output (field, type per channel)\n * @param declaration       Template layout declaration (resolvedTypes, overflowStrategy)\n * @param encodings         Original user-level encodings (for sort info)\n * @param data              Full data table\n * @param budgets           Per-channel capacity budgets from computeChannelBudgets\n * @param allMarkTypes      Set of all mark types in the template (for connected-mark detection)\n * @returns                 OverflowResult with filtered data, nominal counts, truncations, and warnings\n */\nexport function filterOverflow(\n    channelSemantics: Record<string, ChannelSemantics>,\n    declaration: LayoutDeclaration,\n    encodings: Record<string, ChartEncoding>,\n    data: any[],\n    budgets: ChannelBudgets,\n    allMarkTypes: Set<string>,\n): OverflowResult {\n\n    // --- Build effective channel info from semantics + declaration ---\n\n    const effectiveType = (ch: string): string | undefined =>\n        declaration.resolvedTypes?.[ch] ?? channelSemantics[ch]?.type;\n\n    const effectiveField = (ch: string): string | undefined => {\n        if (channelSemantics[ch]?.field) return channelSemantics[ch].field;\n        return undefined;\n    };\n\n    const isDiscreteType = (t: string | undefined) => t === 'nominal' || t === 'ordinal';\n\n    // --- Filter data ---\n\n    const nominalCounts: Record<string, number> = {\n        x: 0, y: 0, column: 0, row: 0, group: 0,\n    };\n    const truncations: TruncationWarning[] = [];\n    const warnings: ChartWarning[] = [];\n    let filteredData = data;\n\n    // Compute group nominal count\n    const groupField = channelSemantics.group?.field;\n    if (groupField) {\n        nominalCounts.group = new Set(data.map(r => r[groupField])).size;\n    }\n\n    // Strategy context for custom or default overflow\n    const strategyContext: OverflowStrategyContext = {\n        data,\n        channelSemantics,\n        encodings,\n        allMarkTypes,\n    };\n\n    const strategy = declaration.overflowStrategy ?? defaultOverflowStrategy;\n\n    for (const channel of ['x', 'y', 'column', 'row', 'color'] as const) {\n        const fieldName = effectiveField(channel);\n        const type = effectiveType(channel);\n        if (!fieldName) continue;\n\n        // Budget for this channel (Infinity if uncapped)\n        const maxToKeep = budgets.maxValues[channel] ?? Infinity;\n\n        // For non-discrete types on column/row, apply overflow cap —\n        // every unique value becomes a facet panel.\n        if (!isDiscreteType(type)) {\n            if (channel === 'column' || channel === 'row') {\n                const uniqueValues = [...new Set(filteredData.map(r => r[fieldName]))];\n                nominalCounts[channel] = Math.min(uniqueValues.length, maxToKeep);\n\n                if (uniqueValues.length > maxToKeep) {\n                    // For non-discrete facets, keep the first N values (sorted)\n                    const sorted = [...uniqueValues].sort();\n                    const valuesToKeep = sorted.slice(0, maxToKeep);\n\n                    const omittedCount = uniqueValues.length - valuesToKeep.length;\n                    warnings.push({\n                        severity: 'warning',\n                        code: 'overflow',\n                        message: `${omittedCount} of ${uniqueValues.length} values in '${fieldName}' were omitted (showing first ${valuesToKeep.length}).`,\n                        channel,\n                        field: fieldName,\n                    });\n\n                    const keepSet = new Set(valuesToKeep);\n                    filteredData = filteredData.filter(row => keepSet.has(row[fieldName]));\n                }\n            }\n            continue;\n        }\n\n        const uniqueValues = [...new Set(filteredData.map(r => r[fieldName]))];\n        nominalCounts[channel] = Math.min(uniqueValues.length, maxToKeep);\n\n        if (uniqueValues.length > maxToKeep) {\n            const valuesToKeep = strategy(channel, fieldName, uniqueValues, maxToKeep, strategyContext);\n\n            const omittedCount = uniqueValues.length - valuesToKeep.length;\n            const placeholder = `...${omittedCount} items omitted`;\n\n            warnings.push({\n                severity: 'warning',\n                code: 'overflow',\n                message: `${omittedCount} of ${uniqueValues.length} values in '${fieldName}' were omitted (showing first ${valuesToKeep.length} in sort order).`,\n                channel,\n                field: fieldName,\n            });\n\n            truncations.push({\n                severity: 'warning',\n                code: 'overflow',\n                message: `${omittedCount} of ${uniqueValues.length} values in '${fieldName}' were omitted (showing first ${valuesToKeep.length} in sort order).`,\n                channel,\n                field: fieldName,\n                keptValues: valuesToKeep,\n                omittedCount,\n                placeholder,\n            });\n\n            // Filter data rows (except for color — we keep all rows but style the legend)\n            if (channel !== 'color') {\n                filteredData = filteredData.filter(row => valuesToKeep.includes(row[fieldName]));\n            }\n        }\n    }\n\n    return { filteredData, nominalCounts, truncations, warnings };\n}\n\n// ---------------------------------------------------------------------------\n// Default overflow strategy\n// ---------------------------------------------------------------------------\n\n/**\n * Default overflow strategy: decides which discrete values to keep.\n *\n * - User-specified sort: respect it\n * - Canonical semantic order (months, ranks, etc.): keep the first N\n * - Numeric categories: keep the first N numerically\n * - Otherwise preserve data encounter order\n */\nconst defaultOverflowStrategy: OverflowStrategy = (\n    channel, fieldName, uniqueValues, maxToKeep, context,\n) => {\n    const { data, channelSemantics, encodings, allMarkTypes } = context;\n\n    // Determine sort intent from user encodings\n    const encoding = encodings[channel];\n    const sortBy = encoding?.sortBy;\n    const sortOrder = encoding?.sortOrder;\n\n    // Infer sort field and direction\n    let sortField: string | undefined;\n    let sortFieldType: string | undefined;\n    let isDescending = false;\n\n    if (sortBy) {\n        // User explicitly specified sort\n        if (sortBy === 'x' || sortBy === 'y' || sortBy === 'color') {\n            const sortCS = channelSemantics[sortBy];\n            sortField = sortCS?.field;\n            sortFieldType = sortCS?.type;\n            isDescending = sortOrder === 'descending' || (sortOrder !== 'ascending' && sortBy !== channel);\n        } else {\n            // Custom sort list — respect insertion order\n            try {\n                const sortedList = JSON.parse(sortBy);\n                if (Array.isArray(sortedList)) {\n                    const orderedValues = (sortOrder === 'descending') ? sortedList.reverse() : sortedList;\n                    return orderedValues.filter((v: any) => uniqueValues.includes(v)).slice(0, maxToKeep);\n                }\n            } catch {\n                // not a JSON list, fall through\n            }\n            isDescending = sortOrder === 'descending';\n        }\n    }\n\n    // Explicit value sort takes precedence over the category field's own type.\n    if (sortField && sortFieldType === 'quantitative') {\n        let aggregateOp = Math.max;\n        let initialValue = -Infinity;\n        if (allMarkTypes.has('bar') && sortField !== channelSemantics.color?.field) {\n            aggregateOp = (x: number, y: number) => x + y;\n            initialValue = 0;\n        }\n\n        const valueAggregates = new Map<any, number>();\n        for (const row of data) {\n            const fieldValue = row[fieldName];\n            const sortValue = Number(row[sortField] ?? 0);\n            if (valueAggregates.has(fieldValue)) {\n                valueAggregates.set(fieldValue, aggregateOp(valueAggregates.get(fieldValue)!, sortValue));\n            } else {\n                valueAggregates.set(fieldValue, aggregateOp(initialValue, sortValue));\n            }\n        }\n\n        return Array.from(valueAggregates.entries())\n            .map(([value, agg]) => ({ value, agg }))\n            .sort((a, b) => isDescending ? b.agg - a.agg : a.agg - b.agg)\n            .slice(0, maxToKeep)\n            .map(v => v.value);\n    }\n\n    const canonicalOrder = channelSemantics[channel]?.ordinalSortOrder;\n    if (!sortBy && !sortOrder && canonicalOrder?.length) {\n        const present = new Set(uniqueValues);\n        const ordered = canonicalOrder.filter(value => present.has(value));\n        const canonicalValues = new Set(ordered);\n        ordered.push(...uniqueValues.filter(value => !canonicalValues.has(value)));\n        return ordered.slice(0, maxToKeep);\n    }\n\n    // Match the display default for quantitative values treated as discrete.\n    const fieldOriginalType = inferVisCategory(data.map(r => r[fieldName]));\n    if (fieldOriginalType === 'quantitative' || channel === 'color') {\n        return [...uniqueValues].sort((a, b) => Number(a) - Number(b))\n            .slice(0, maxToKeep);\n    }\n\n    // Facet channels: first N\n    if (channel === 'column' || channel === 'row') {\n        return uniqueValues.slice(0, maxToKeep);\n    }\n\n    // Explicit field-order sort follows the displayed label order.\n    if (sortOrder === 'descending') {\n        return [...uniqueValues].sort((a, b) => String(b).localeCompare(String(a), undefined, { numeric: true })).slice(0, maxToKeep);\n    }\n    if (sortOrder === 'ascending') {\n        return [...uniqueValues].sort((a, b) => String(a).localeCompare(String(b), undefined, { numeric: true })).slice(0, maxToKeep);\n    }\n\n    // Default: first N values\n    return uniqueValues.slice(0, maxToKeep);\n};\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * =============================================================================\n * PHASE 1: COMPUTE LAYOUT\n * =============================================================================\n *\n * Determine how big things should be — axis lengths, step sizes,\n * subplot dimensions, label sizing, and overflow truncation — from data\n * density, axis classification, and template-provided tuning knobs.\n *\n * VL dependency: **None**\n *\n * This module reads abstract axis descriptors (AxisLayoutInput) and\n * produces abstract layout numbers (LayoutResult). The same layout\n * engine works regardless of output format.\n *\n * ── Backend Responsibility ──────────────────────────────────────────\n * The LayoutResult is a target-agnostic description of \"how big things\n * should be\".  Each rendering backend (Vega-Lite, ECharts, etc.) MUST:\n *\n *   1. Call computeLayout() once per chart (facet-aware — it already\n *      divides subplot sizes for the facet grid).\n *\n *   2. Translate the LayoutResult into its own rendering format:\n *      - subplotWidth / subplotHeight → plot area size (before margins)\n *      - xStep / yStep → bar widths, band sizes, category spacing\n *      - stepPadding → inter-category gap (barCategoryGap, paddingInner)\n *      - label sizing → font size, rotation, truncation\n *\n *   3. Add its own margins, padding, and chrome (axis labels, titles,\n *      legends, CANVAS_BUFFER) around the subplot area.\n *\n *   4. Handle facet-specific concerns itself:\n *      - Column wrapping (when user specifies column-only, the backend\n *        decides how many columns per visual row and restructures the\n *        panel grid accordingly).\n *      - Per-panel vs shared axis titles.\n *      - Panel positioning and header labels.\n *\n * The layout engine does NOT know about VL encodings, ECharts grid\n * objects, or any rendering-specific structure.\n * =============================================================================\n */\n\nimport type {\n    ChannelSemantics,\n    LayoutDeclaration,\n    LayoutResult,\n    AssembleOptions,\n    ChannelBudgets,\n} from './types';\nimport {\n    computeAxisStep,\n    computeGasPressure,\n    computeLabelSizing,\n    computeFontSizing,\n    DEFAULT_GAS_PRESSURE_PARAMS,\n    type ElasticStretchParams,\n    type GasPressureParams,\n} from './decisions';\nimport { planBandDodge } from './band-dodge';\n\n// ---------------------------------------------------------------------------\n// Short discrete axis labels (align with echarts/templates/bar.ts)\n// ---------------------------------------------------------------------------\n\nconst VL_SHORT_DISCRETE_CATEGORY_COUNT = 4;\nconst VL_SHORT_DISCRETE_LABEL_MAX_LEN = 8;\n\n/** Approximate width (px) of one label character at the given font size. */\nconst APPROX_CHAR_WIDTH_RATIO = 0.62;\n\n/** Distinct label strings for a discrete axis field, plus derived stats. */\ninterface DiscreteLabelStats {\n    count: number;\n    maxLen: number;\n    /** True when every label parses as a finite number (e.g. years, bins, IDs). */\n    allNumeric: boolean;\n}\n\nfunction computeDiscreteLabelStats(\n    field: string | undefined,\n    table: any[],\n): DiscreteLabelStats | null {\n    if (!field) return null;\n    const uniques = new Set<string>();\n    for (const row of table) {\n        const v = row[field];\n        if (v == null || v === '') continue;\n        uniques.add(String(v));\n    }\n    if (uniques.size === 0) return null;\n    const labels = [...uniques];\n    return {\n        count: labels.length,\n        maxLen: Math.max(...labels.map(s => s.length)),\n        allNumeric: labels.every(s => s.trim() !== '' && isFinite(Number(s))),\n    };\n}\n\n/**\n * Few, short category strings → keep axis labels horizontal in Vega-Lite. Used\n * for the Y axis, where banded labels read horizontally in the left margin\n * regardless of band height (so quantitative/numeric labels stay horizontal).\n */\nfunction discreteYAxisShouldUseHorizontalLabels(\n    field: string | undefined,\n    channelType: string | undefined,\n    table: any[],\n): boolean {\n    if (!field) return false;\n    if (channelType === 'quantitative') return true;\n    const stats = computeDiscreteLabelStats(field, table);\n    if (!stats) return false;\n    if (stats.count > VL_SHORT_DISCRETE_CATEGORY_COUNT) return false;\n    return stats.maxLen <= VL_SHORT_DISCRETE_LABEL_MAX_LEN;\n}\n\n// ---------------------------------------------------------------------------\n// Internal types\n// ---------------------------------------------------------------------------\n\ninterface AxisLayoutInput {\n    /** Spring model (banded) or gas pressure (non-banded) */\n    mode: 'banded' | 'non-banded';\n    /** Number of discrete positions (for banded) */\n    itemCount: number;\n    /** Number of sub-items per group (for grouped bars) */\n    subItemsPerGroup?: number;\n    /** Numeric values along this axis (for gas pressure) */\n    values?: number[];\n    /** Data extent [min, max] */\n    domain?: [number, number];\n    /** Number of distinct series (for series-based pressure) */\n    seriesCount?: number;\n}\n\n// ---------------------------------------------------------------------------\n// Stretch caps\n// ---------------------------------------------------------------------------\n\n/**\n * Resolve the per-dimension maximum stretch caps (βx, βy) from options.\n *\n * The assembler derives `maxStretchX`/`maxStretchY` from the spec's\n * `canvasSize / baseSize` ratio (the hard ceiling). When neither is set,\n * both fall back to the scalar `maxStretch` (default {@link DEFAULT_MAX_STRETCH})\n * — the symmetric budget used when the spec pins no `canvasSize`. Each cap is\n * clamped to ≥ 1 (a chart never shrinks below its base under \"stretch\").\n */\nexport function resolveStretchCaps(options: AssembleOptions): { x: number; y: number } {\n    const def = options.maxStretch ?? DEFAULT_MAX_STRETCH;\n    return {\n        x: Math.max(1, options.maxStretchX ?? def),\n        y: Math.max(1, options.maxStretchY ?? def),\n    };\n}\n\n/** Default base (target) chart size in pixels when the spec omits `baseSize`. */\nexport const DEFAULT_BASE_SIZE = { width: 400, height: 320 } as const;\n\n/**\n * Default axis stretch cap used when the spec pins no `canvasSize` ceiling.\n *\n * Bounds how far a chart may grow past its base size (per dimension) under\n * layout pressure. 1.5 keeps growth modest; 2× was found to over-stretch\n * charts in the general (no-ceiling) case.\n */\nexport const DEFAULT_MAX_STRETCH = 1.5;\n\n/**\n * Resolve the effective base (target) size the layout pipeline aims for.\n *\n * Defaults to {@link DEFAULT_BASE_SIZE} when the spec omits `baseSize`, then\n * clamps each dimension to the optional `canvasSize` ceiling. This guarantees\n * the target never exceeds the hard maximum: when a user sets only a (small)\n * `canvasSize` and leaves `baseSize` defaulted — or sets a `baseSize` larger\n * than the ceiling — the chart shrinks to fit the box instead of overflowing\n * it. After clamping, `deriveStretchCaps` yields βx/βy = 1 in any clamped\n * dimension (pure fit-to-box, no growth past the ceiling).\n */\nexport function resolveBaseSize(\n    specBaseSize: { width: number; height: number } | undefined,\n    ceiling: { width: number; height: number } | undefined,\n): { width: number; height: number } {\n    const base = specBaseSize ?? { ...DEFAULT_BASE_SIZE };\n    if (!ceiling) return { width: base.width, height: base.height };\n    return {\n        width: Math.min(base.width, ceiling.width),\n        height: Math.min(base.height, ceiling.height),\n    };\n}\n\n/**\n * Read the user's `facetColumns` chart property (the interactive facet-wrap\n * control) off the RAW chart_spec.chartProperties, returning a clamped integer\n * column count or undefined for auto. Read raw (pre-normalization) because\n * `facetColumns` is a layout-level option, not a per-template mark property, so\n * `normalizeChartProperties` would otherwise drop it as an unknown key.\n */\nexport function resolveFacetColumnsOption(\n    chartProperties: Record<string, any> | undefined,\n): number | undefined {\n    const raw = chartProperties?.facetColumns;\n    if (raw == null) return undefined;\n    const n = Number(raw);\n    return Number.isFinite(n) && n >= 1 ? Math.floor(n) : undefined;\n}\n\n/**\n * Derive per-dimension stretch ceilings (βx, βy) for an assembler.\n *\n * When the spec supplies a hard `canvasSize` ceiling, the caps are the ratio\n * of ceiling to base in each dimension (clamped to ≥ 1). The base passed here\n * is expected to already be clamped to the ceiling (see {@link resolveBaseSize}),\n * so a ceiling smaller than the spec's base resolves to β = 1 (fit-to-box)\n * rather than an overflow. When no ceiling is given, both caps fall back to\n * `options.maxStretch` (or {@link DEFAULT_MAX_STRETCH} when that is unset too),\n * which already reflects any template `paramOverrides`.\n *\n * Assemblers inject the result into `effectiveOptions.maxStretchX/Y` so the\n * whole layout pipeline shares one budget — including faceted grids, whose\n * total size is bounded by the same ceiling.\n */\nexport function deriveStretchCaps(\n    baseSize: { width: number; height: number },\n    ceiling: { width: number; height: number } | undefined,\n    options: AssembleOptions,\n): { maxStretchX: number; maxStretchY: number } {\n    const def = options.maxStretch ?? DEFAULT_MAX_STRETCH;\n    return {\n        maxStretchX: ceiling ? Math.max(1, ceiling.width / baseSize.width) : def,\n        maxStretchY: ceiling ? Math.max(1, ceiling.height / baseSize.height) : def,\n    };\n}\n\n// ---------------------------------------------------------------------------\n// Public API: computeLayout\n// ---------------------------------------------------------------------------\n\n/**\n * Phase 1: Compute layout decisions.\n *\n * Takes channel semantics, template layout declaration, data, canvas size,\n * and assembly options to produce a LayoutResult with step sizes, subplot\n * dimensions, label sizing, and truncation warnings.\n *\n * VL dependency: **None**\n *\n * @param channelSemantics   Phase 0 output\n * @param declaration        Template's layout declaration (axisFlags, resolvedTypes,\n *                           grouping, binnedAxes)\n * @param table              Data rows (post-overflow filtered)\n * @param canvasSize         Target canvas dimensions\n * @param options            Assembly options (merged with template overrides)\n * @param facetGrid          Optional pre-decided facet grid from computeFacetGrid.\n *                           When provided, computeLayout uses these column/row\n *                           counts instead of counting from data — this\n *                           eliminates the circularity between wrapping and\n *                           banded axis sizing.\n */\nexport function computeLayout(\n    channelSemantics: Record<string, ChannelSemantics>,\n    declaration: LayoutDeclaration,\n    table: any[],\n    canvasSize: { width: number; height: number },\n    options: AssembleOptions = {},\n    facetGrid?: { columns: number; rows: number },\n): LayoutResult {\n    const {\n        elasticity: elasticityVal = 0.5,\n        facetElasticity: facetElasticityVal = 0.3,\n        minStep: minStepVal = 6,\n        minSubplotSize: minSubplotVal = 60,\n        stepPadding: stepPaddingVal = 0.1,\n        maintainContinuousAxisRatio = false,\n        continuousMarkCrossSection,\n        facetAspectRatioResistance = 0,\n    } = options;\n\n    // Per-dimension stretch ceilings: βx bounds width-related growth,\n    // βy bounds height-related growth. Both reduce to `maxStretch`\n    // (default 1.5) when the spec sets no explicit `canvasSize` ceiling.\n    const { x: maxStretchX, y: maxStretchY } = resolveStretchCaps(options);\n\n    const defaultChartWidth = canvasSize.width;\n    const defaultChartHeight = canvasSize.height;\n\n    // Facet overhead: fixed (axis labels, titles) + per-panel gap (spacing).\n    const fixW = options.facetFixedPadding?.width ?? 0;\n    const fixH = options.facetFixedPadding?.height ?? 0;\n    const gap = options.facetGap ?? 0;\n\n    const baseRefSize = 300;\n    const sizeRatio = Math.max(defaultChartWidth, defaultChartHeight) / baseRefSize;\n    const baseBandSize = options.defaultBandSize ?? 20;\n    const defaultStepSize = Math.round(baseBandSize * Math.max(1, sizeRatio));\n    // Sparse-expansion ceiling: a band may grow past its base size to fill a\n    // wide plot, but never past maxStepSize. Defaults to the base band, so a\n    // backend that doesn't opt in keeps the old \"cap at base\" behavior.\n    const maxBandSize = Math.max(baseBandSize, options.maxBandSize ?? baseBandSize);\n    const maxStepSize = Math.round(maxBandSize * Math.max(1, sizeRatio));\n\n    const isDiscreteType = (t: string | undefined) => t === 'nominal' || t === 'ordinal';\n\n    // Apply resolved types from template declaration\n    const effectiveTypes: Record<string, string> = {};\n    for (const [ch, cs] of Object.entries(channelSemantics)) {\n        effectiveTypes[ch] = declaration.resolvedTypes?.[ch] || cs.type;\n    }\n\n    // --- Classify axes and count items ---\n    const axisFlags = declaration.axisFlags || {};\n    const xBanded = axisFlags.x?.banded ?? false;\n    const yBanded = axisFlags.y?.banded ?? false;\n\n    const nominalCount: Record<string, number> = {\n        x: 0, y: 0, column: 0, row: 0, group: 0,\n    };\n\n    // Count discrete values per channel\n    for (const channel of ['x', 'y', 'column', 'row', 'color'] as const) {\n        const cs = channelSemantics[channel];\n        if (!cs?.field) continue;\n        const effectiveType = effectiveTypes[channel] || cs.type;\n        if (!isDiscreteType(effectiveType)) continue;\n        const uniqueValues = [...new Set(table.map((r: any) => r[cs.field]))];\n        nominalCount[channel] = uniqueValues.length;\n    }\n\n    // Detect grouping from 'group' channel + discrete axis\n    let groupField: string | undefined = channelSemantics.group?.field;\n    // Some templates (e.g. boxplot) subdivide a band by the COLOR field via an\n    // explicit offset rather than a dedicated 'group' channel. When they opt in,\n    // size the band as a group so total width is budgeted across categories and\n    // each sub-lane shrinks as the subgroup count grows.\n    if (!groupField && declaration.colorActsAsGroup) {\n        const colorCS = channelSemantics.color;\n        const colorType = effectiveTypes.color ?? colorCS?.type;\n        const axisField = isDiscreteType(effectiveTypes.x ?? channelSemantics.x?.type)\n            ? channelSemantics.x?.field\n            : channelSemantics.y?.field;\n        if (colorCS?.field && isDiscreteType(colorType) && colorCS.field !== axisField) {\n            groupField = colorCS.field;\n        }\n    }\n    // Guard: a grouping field that is redundant/nested with the categorical axis\n    // (group == x, or a 1:1 field pair) doesn't actually subdivide any band, so\n    // grouping it would collapse each bar/box to ~1/N of its band. When no band\n    // holds more than one distinct group value (confident-nested; threshold-\n    // independent), suppress grouping so glyphs fill their whole band. Genuine\n    // grouped charts (any band with >1 group value) are untouched.\n    if (groupField) {\n        const groupAxisField = isDiscreteType(effectiveTypes.x ?? channelSemantics.x?.type)\n            ? channelSemantics.x?.field\n            : channelSemantics.y?.field;\n        if (groupAxisField === groupField) {\n            groupField = undefined;  // group == axis: nothing to dodge\n        } else if (groupAxisField && planBandDodge(table, groupAxisField, groupField).maxPerBand <= 1) {\n            groupField = undefined;  // 1:1 / nested with the axis\n        }\n    }\n    let groupAxis: 'x' | 'y' | undefined;\n    if (groupField) {\n        // `local` dodge budgets only `maxPerBand` lanes (declaration.groupLaneCount);\n        // otherwise reserve one lane per global distinct group value.\n        nominalCount.group = declaration.groupLaneCount\n            ?? new Set(table.map((r: any) => r[groupField])).size;\n        if (isDiscreteType(effectiveTypes.x ?? channelSemantics.x?.type)) groupAxis = 'x';\n        else if (isDiscreteType(effectiveTypes.y ?? channelSemantics.y?.type)) groupAxis = 'y';\n    }\n\n    // Total discrete items per axis (grouping multiplies the grouped axis)\n    const xGroupMultiplier = (groupAxis === 'x' && nominalCount.group > 1) ? nominalCount.group : 1;\n    const yGroupMultiplier = (groupAxis === 'y' && nominalCount.group > 1) ? nominalCount.group : 1;\n    const xTotalNominalCount = nominalCount.x * xGroupMultiplier;\n    const yTotalNominalCount = nominalCount.y * yGroupMultiplier;\n\n    // --- Step size hints ---\n    // Minimum group step: the inter-group gap (stepPadding × step) must be\n    // at least MIN_GROUP_GAP_PX pixels so groups are visually separated.\n    const MIN_GROUP_GAP_PX = 3;\n    const xMinGroupStep = xGroupMultiplier > 1 ? Math.max(Math.ceil(MIN_GROUP_GAP_PX / stepPaddingVal), 2 * xGroupMultiplier) : minStepVal;\n    const yMinGroupStep = yGroupMultiplier > 1 ? Math.max(Math.ceil(MIN_GROUP_GAP_PX / stepPaddingVal), 2 * yGroupMultiplier) : minStepVal;\n\n    // (Overflow filtering is now handled by filterOverflow() before\n    //  computeLayout is called. The data passed here is already filtered.)\n\n    // --- Count banded continuous axes ---\n    let xContinuousAsDiscrete = 0;\n    let yContinuousAsDiscrete = 0;\n    for (const axis of ['x', 'y'] as const) {\n        const cs = channelSemantics[axis];\n        if (!cs?.field) continue;\n        const effectiveType = effectiveTypes[axis] || cs.type;\n        if (isDiscreteType(effectiveType)) continue;\n\n        const isBanded = (axis === 'x' ? xBanded : yBanded);\n        // Check for binned from declaration\n        const isBinned = declaration.binnedAxes?.[axis];\n        if (!isBanded && !isBinned) continue;\n\n        let count: number;\n        if (isBinned) {\n            const binDef = declaration.binnedAxes![axis];\n            // Default to 10 bins (Vega-Lite's default maxbins)\n            count = typeof binDef === 'object' && binDef.maxbins\n                ? binDef.maxbins : 10;\n        } else {\n            count = new Set(table.map((r: any) => r[cs.field])).size;\n        }\n        if (count <= 1) continue;\n\n        if (axis === 'x') {\n            xContinuousAsDiscrete = count;\n        } else {\n            yContinuousAsDiscrete = count;\n        }\n    }\n\n    // --- Facet layout ---\n    // Use pre-decided grid from filterOverflow when available.\n    // This avoids the circularity where wrapping depends on subplot\n    // width which depends on facet count which depends on wrapping.\n    let facetCols = 1;\n    let facetRows = 1;\n    if (facetGrid) {\n        facetCols = facetGrid.columns;\n        facetRows = facetGrid.rows;\n    } else {\n        if (nominalCount.column > 0) facetCols = nominalCount.column;\n        if (nominalCount.row > 0) facetRows = nominalCount.row;\n    }\n\n    // --- Facet subplot sizing ---\n    // Log-scale axes need more room so the minor grid lines (1,2,3…9 per\n    // decade) remain legible and act as the visual cue that it's log scale.\n    // Compute the number of orders of magnitude each axis spans; each\n    // decade needs ~40px minimum to avoid a dense wall of grid lines.\n    const LOG_PX_PER_DECADE = 40;\n    let logBoostX = 0;\n    let logBoostY = 0;\n    for (const axis of ['x', 'y'] as const) {\n        const cs = channelSemantics[axis];\n        if (!cs?.field || !cs.scaleType) continue;\n        if (cs.scaleType !== 'log' && cs.scaleType !== 'symlog') continue;\n        const vals = table\n            .map((r: any) => r[cs.field])\n            .filter((v: any) => typeof v === 'number' && v > 0 && isFinite(v));\n        if (vals.length < 2) continue;\n        const decades = Math.log10(Math.max(...vals)) - Math.log10(Math.min(...vals));\n        const needed = Math.ceil(Math.max(1, decades)) * LOG_PX_PER_DECADE;\n        if (axis === 'x') logBoostX = needed;\n        else logBoostY = needed;\n    }\n    const minContinuousSize = Math.max(10, minStepVal);\n    const minContinuousSizeX = Math.max(minContinuousSize, logBoostX);\n    const minContinuousSizeY = Math.max(minContinuousSize, logBoostY);\n\n    let subplotWidth: number;\n    if (facetCols > 1) {\n        const stretch = Math.min(maxStretchX, Math.pow(facetCols, facetElasticityVal));\n        subplotWidth = Math.round(Math.max(minContinuousSizeX,\n            (defaultChartWidth * stretch - fixW) / facetCols - gap));\n    } else {\n        subplotWidth = defaultChartWidth;\n    }\n\n    let subplotHeight: number;\n    if (facetRows > 1) {\n        const stretch = Math.min(maxStretchY, Math.pow(facetRows, facetElasticityVal));\n        subplotHeight = Math.round(Math.max(minContinuousSizeY,\n            (defaultChartHeight * stretch - fixH) / facetRows - gap));\n    } else {\n        subplotHeight = defaultChartHeight;\n    }\n\n    // --- Facet aspect-ratio resistance (non-gas-pressure charts) ---\n    // When faceting compresses one dimension (e.g. width ÷ columns), the\n    // aspect ratio drifts.  Line/area charts are very sensitive to this.\n    // For charts entering the 2D gas pressure path, AR resistance is\n    // handled inside the ideal-then-squeeze logic below. This block\n    // only applies when both axes are NOT continuous-non-banded.\n    const xIsContinuousNonBanded = xTotalNominalCount === 0 && xContinuousAsDiscrete === 0;\n    const yIsContinuousNonBanded = yTotalNominalCount === 0 && yContinuousAsDiscrete === 0;\n    const bothContinuousNonBanded = xIsContinuousNonBanded && yIsContinuousNonBanded;\n\n    if (facetAspectRatioResistance > 0 && !bothContinuousNonBanded\n        && (facetCols > 1 || facetRows > 1)) {\n        const baseAR = defaultChartWidth / defaultChartHeight;\n        const facetAR = subplotWidth / subplotHeight;\n        const arDrift = facetAR / baseAR; // <1 when panel got relatively narrower\n\n        if (arDrift < 1) {\n            // Panel is narrower than base → shrink height to compensate\n            subplotHeight = Math.round(\n                Math.max(minContinuousSizeY, subplotHeight * Math.pow(arDrift, facetAspectRatioResistance)),\n            );\n        } else if (arDrift > 1) {\n            // Panel is wider than base → shrink width to compensate\n            subplotWidth = Math.round(\n                Math.max(minContinuousSizeX, subplotWidth * Math.pow(1 / arDrift, facetAspectRatioResistance)),\n            );\n        }\n    }\n\n    // --- Gas pressure stretch for continuous non-banded axes ---\n    //\n    // Design: per-subplot baseline → pressure → AR blend → fit.\n    //\n    //   Baseline: each subplot gets a fair share of the canvas with\n    //             facet elasticity applied (cols^e / cols).\n    //   Step 1 — Gas pressure measures crowding against the per-subplot\n    //            baseline and produces per-axis raw stretches.\n    //   Step 2 — Decide AR: blend gas-pressure AR (density asymmetry)\n    //            with banking AR (perceptual slope optimization) in\n    //            log space.  Distribute gas-pressure area into the\n    //            blended AR.\n    //   Step 3 — Fit into budget: uniform scale-down so neither axis\n    //            exceeds maxStretch, preserving the AR.\n\n    if (bothContinuousNonBanded) {\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n\n        if (xCS?.field && yCS?.field) {\n            const isTempX = (effectiveTypes.x || xCS.type) === 'temporal';\n            const isTempY = (effectiveTypes.y || yCS.type) === 'temporal';\n\n            const xNumeric: number[] = [];\n            const yNumeric: number[] = [];\n            for (const row of table) {\n                let xv = row[xCS.field];\n                let yv = row[yCS.field];\n                if (xv == null || yv == null) continue;\n                if (isTempX) xv = +new Date(xv);\n                else xv = +xv;\n                if (isTempY) yv = +new Date(yv);\n                else yv = +yv;\n                if (isNaN(xv) || isNaN(yv)) continue;\n                xNumeric.push(xv);\n                yNumeric.push(yv);\n            }\n\n            if (xNumeric.length > 1) {\n                const xMin = Math.min(...xNumeric);\n                const xMax = Math.max(...xNumeric);\n                const yMin = Math.min(...yNumeric);\n                const yMax = Math.max(...yNumeric);\n\n                // Expand to visual domain (include zero when axis starts at zero).\n                const xDomain: [number, number] = [xMin, xMax];\n                const yDomain: [number, number] = [yMin, yMax];\n                if (xCS.zero?.zero) {\n                    if (xDomain[0] > 0) xDomain[0] = 0;\n                    if (xDomain[1] < 0) xDomain[1] = 0;\n                }\n                if (yCS.zero?.zero) {\n                    if (yDomain[0] > 0) yDomain[0] = 0;\n                    if (yDomain[1] < 0) yDomain[1] = 0;\n                }\n\n                // Data-coverage guard: skip banking when zero dominates.\n                const xDataCoverage = (xDomain[1] - xDomain[0]) > 0\n                    ? (xMax - xMin) / (xDomain[1] - xDomain[0]) : 1;\n                const yDataCoverage = (yDomain[1] - yDomain[0]) > 0\n                    ? (yMax - yMin) / (yDomain[1] - yDomain[0]) : 1;\n                const BANKING_COVERAGE_THRESHOLD = 0.2;\n\n                // --- Gas pressure params ---\n                let gasPressureParams: GasPressureParams = DEFAULT_GAS_PRESSURE_PARAMS;\n                if (continuousMarkCrossSection != null) {\n                    if (typeof continuousMarkCrossSection === 'number') {\n                        gasPressureParams = { ...DEFAULT_GAS_PRESSURE_PARAMS, markCrossSection: continuousMarkCrossSection };\n                    } else {\n                        const maxCS = Math.max(continuousMarkCrossSection.x, continuousMarkCrossSection.y);\n                        gasPressureParams = {\n                            ...DEFAULT_GAS_PRESSURE_PARAMS,\n                            markCrossSection: maxCS,\n                            markCrossSectionX: continuousMarkCrossSection.x,\n                            markCrossSectionY: continuousMarkCrossSection.y,\n                            ...(continuousMarkCrossSection.elasticity != null && { elasticity: continuousMarkCrossSection.elasticity }),\n                            ...(continuousMarkCrossSection.maxStretch != null && { maxStretch: continuousMarkCrossSection.maxStretch }),\n                        };\n\n                        if (continuousMarkCrossSection.seriesCountAxis) {\n                            const resolvedAxis = continuousMarkCrossSection.seriesCountAxis === 'auto'\n                                ? 'y' : continuousMarkCrossSection.seriesCountAxis;\n                            const nSeries = countDistinctSeries(channelSemantics, table);\n                            if (resolvedAxis === 'y') {\n                                gasPressureParams.yItemCountOverride = nSeries;\n                            } else {\n                                gasPressureParams.xItemCountOverride = nSeries;\n                            }\n                        }\n                    }\n                }\n\n                // --- Per-subplot baseline canvas ---\n                // Gas pressure must measure crowding against the actual\n                // per-subplot space, not the full canvas.  When faceted,\n                // each subplot gets a share of the canvas that includes\n                // facet elasticity (the same formula used for discrete\n                // axes): `canvas × cols^elasticity / cols`.  This way\n                // 2 columns don't naively halve the space — some stretch\n                // is assumed before gas pressure even kicks in.\n                const perSubplotCanvasW = facetCols > 1\n                    ? Math.max(minContinuousSizeX,\n                        (defaultChartWidth * Math.min(maxStretchX, Math.pow(facetCols, facetElasticityVal)) - fixW)\n                        / facetCols - gap)\n                    : defaultChartWidth;\n                const perSubplotCanvasH = facetRows > 1\n                    ? Math.max(minContinuousSizeY,\n                        (defaultChartHeight * Math.min(maxStretchY, Math.pow(facetRows, facetElasticityVal)) - fixH)\n                        / facetRows - gap)\n                    : defaultChartHeight;\n\n                // --- Gas pressure: per-axis raw stretches ---\n                const idealResult = computeGasPressure(\n                    xNumeric, yNumeric, xDomain, yDomain,\n                    perSubplotCanvasW, perSubplotCanvasH, gasPressureParams,\n                );\n\n                const isConnected = typeof continuousMarkCrossSection === 'object'\n                    && !!continuousMarkCrossSection.seriesCountAxis;\n                const useBanking = xDataCoverage >= BANKING_COVERAGE_THRESHOLD\n                    && yDataCoverage >= BANKING_COVERAGE_THRESHOLD;\n\n                let idealW: number;\n                let idealH: number;\n\n                // Gas pressure's native per-axis dimensions (uncapped).\n                const rawW = perSubplotCanvasW * idealResult.rawStretchX;\n                const rawH = perSubplotCanvasH * idealResult.rawStretchY;\n\n                if (useBanking) {\n                    // ── Step 1: Decide AR ──────────────────────────────\n                    // Blend gas-pressure AR (which axis is more crowded)\n                    // with banking AR (perceptual slope optimization).\n                    const seriesFields: string[] = [];\n                    const colorField = channelSemantics.color?.field;\n                    const detailField = channelSemantics.detail?.field;\n                    if (colorField) seriesFields.push(colorField);\n                    if (detailField && detailField !== colorField) seriesFields.push(detailField);\n\n                    const perPointSeriesKeys: string[] = new Array(xNumeric.length);\n                    if (seriesFields.length === 0) {\n                        perPointSeriesKeys.fill('');\n                    } else {\n                        let idx = 0;\n                        for (const row of table) {\n                            const xv = xCS?.field ? row[xCS.field] : undefined;\n                            const yv = yCS?.field ? row[yCS.field] : undefined;\n                            if (xv == null || yv == null) continue;\n                            const xn = isTempX ? +new Date(xv) : +xv;\n                            const yn = isTempY ? +new Date(yv) : +yv;\n                            if (isNaN(xn) || isNaN(yn)) continue;\n                            perPointSeriesKeys[idx++] = seriesFields\n                                .map(f => String(row[f] ?? '')).join('\\x00');\n                        }\n                    }\n\n                    const bankingAR = computeBankingAR(\n                        xNumeric, yNumeric, xDomain, yDomain,\n                        perPointSeriesKeys, isConnected,\n                    );\n\n                    // ── Step 2: Blend AR + distribute area ────────────\n                    // Gas pressure knows which axis is crowded (per-axis\n                    // stretch).  Banking knows the perceptual ideal AR.\n                    // Blend in log space so both signals contribute:\n                    //   gasAR reflects density asymmetry (X crowded → landscape)\n                    //   bankingAR reflects slope perception\n                    const BANKING_BLEND = 0.5;\n                    const gasAR = rawW / rawH;\n                    const blendedAR = gasAR > 0 && bankingAR > 0\n                        ? Math.exp((1 - BANKING_BLEND) * Math.log(gasAR)\n                            + BANKING_BLEND * Math.log(bankingAR))\n                        : bankingAR;\n\n                    // Total area from gas pressure (capped so subplot\n                    // doesn't blow past per-subplot budget before fit).\n                    const rawArea = rawW * rawH;\n                    const maxArea = perSubplotCanvasW * perSubplotCanvasH * Math.max(maxStretchX, maxStretchY);\n                    const area = Math.min(rawArea, maxArea);\n\n                    idealW = Math.sqrt(area * blendedAR);\n                    idealH = Math.sqrt(area / blendedAR);\n                } else {\n                    // Banking skipped (zero dominates): gas pressure shape.\n                    idealW = rawW;\n                    idealH = rawH;\n                }\n\n                // ── Step 3: Fit into budget, preserving AR ───────────\n                // Hard ceiling per subplot: canvas × maxStretch shared\n                // across facet panels.\n                const availW = facetCols > 1\n                    ? Math.max(minContinuousSizeX, (defaultChartWidth * maxStretchX - fixW) / facetCols - gap)\n                    : defaultChartWidth * maxStretchX;\n                const availH = facetRows > 1\n                    ? Math.max(minContinuousSizeY, (defaultChartHeight * maxStretchY - fixH) / facetRows - gap)\n                    : defaultChartHeight * maxStretchY;\n\n                // Scale down to fit: if either axis exceeds its budget,\n                // shrink both axes by the tighter ratio so neither\n                // exceeds AND the AR is preserved.\n                const scaleX = idealW > availW ? availW / idealW : 1;\n                const scaleY = idealH > availH ? availH / idealH : 1;\n                const fitScale = Math.min(scaleX, scaleY);\n\n                let finalW = idealW * fitScale;\n                let finalH = idealH * fitScale;\n\n                // Enforce minimums (may slightly distort AR at extremes).\n                finalW = Math.max(finalW, minContinuousSizeX);\n                finalH = Math.max(finalH, minContinuousSizeY);\n\n                subplotWidth = Math.round(finalW);\n                subplotHeight = Math.round(finalH);\n            }\n        }\n    } else if (xIsContinuousNonBanded || yIsContinuousNonBanded) {\n        const contAxis = xIsContinuousNonBanded ? 'x' : 'y';\n        const otherAxisHasDiscreteItems = contAxis === 'x'\n            ? (yTotalNominalCount > 0 || yContinuousAsDiscrete > 0)\n            : (xTotalNominalCount > 0 || xContinuousAsDiscrete > 0);\n\n        let seriesStretchApplied = false;\n        if (typeof continuousMarkCrossSection === 'object' && continuousMarkCrossSection.seriesCountAxis) {\n            const resolvedAxis = continuousMarkCrossSection.seriesCountAxis === 'auto'\n                ? contAxis : continuousMarkCrossSection.seriesCountAxis;\n\n            if (resolvedAxis === contAxis) {\n                const sigmaPerSeries = contAxis === 'x'\n                    ? continuousMarkCrossSection.x\n                    : continuousMarkCrossSection.y;\n                const baseDim = contAxis === 'x' ? subplotWidth : subplotHeight;\n                const nSeries = countDistinctSeries(channelSemantics, table);\n                const pressure = (nSeries * sigmaPerSeries) / baseDim;\n\n                const elast = continuousMarkCrossSection.elasticity ?? DEFAULT_GAS_PRESSURE_PARAMS.elasticity;\n                const maxS = continuousMarkCrossSection.maxStretch ?? DEFAULT_GAS_PRESSURE_PARAMS.maxStretch;\n\n                if (pressure > 1) {\n                    const stretch = Math.min(maxS, Math.pow(pressure, elast));\n                    if (contAxis === 'x') {\n                        subplotWidth = Math.round(subplotWidth * stretch);\n                    } else {\n                        subplotHeight = Math.round(subplotHeight * stretch);\n                    }\n                }\n                seriesStretchApplied = true;\n            }\n        }\n\n        if (!seriesStretchApplied && !otherAxisHasDiscreteItems) {\n            const contCS = channelSemantics[contAxis];\n            if (contCS?.field) {\n                const isTemporal = (effectiveTypes[contAxis] || contCS.type) === 'temporal';\n                const contValues: number[] = [];\n                for (const row of table) {\n                    let v = row[contCS.field];\n                    if (v == null) continue;\n                    if (isTemporal) v = +new Date(v);\n                    else v = +v;\n                    if (!isNaN(v)) contValues.push(v);\n                }\n                const sigma1d = Math.sqrt(DEFAULT_GAS_PRESSURE_PARAMS.markCrossSection);\n                const baseDim = contAxis === 'x' ? subplotWidth : subplotHeight;\n                const pressure1d = (contValues.length * sigma1d) / baseDim;\n                if (pressure1d > 1) {\n                    const stretch1d = Math.min(\n                        DEFAULT_GAS_PRESSURE_PARAMS.maxStretch,\n                        Math.pow(pressure1d, DEFAULT_GAS_PRESSURE_PARAMS.elasticity),\n                    );\n                    if (contAxis === 'x') {\n                        subplotWidth = Math.round(subplotWidth * stretch1d);\n                    } else {\n                        subplotHeight = Math.round(subplotHeight * stretch1d);\n                    }\n                }\n            }\n        }\n    }\n\n    // --- Elastic stretch for discrete axes ---\n    // X axis grows under its width budget (βx); Y under its height budget (βy).\n    const elasticParamsX: ElasticStretchParams = {\n        elasticity: elasticityVal,\n        maxStretch: maxStretchX,\n        defaultStepSize,\n        minStep: minStepVal,\n    };\n    const elasticParamsY: ElasticStretchParams = {\n        elasticity: elasticityVal,\n        maxStretch: maxStretchY,\n        defaultStepSize,\n        minStep: minStepVal,\n    };\n\n    const xAxis = computeAxisStep(xTotalNominalCount, xContinuousAsDiscrete, subplotWidth, elasticParamsX);\n    const yAxis = computeAxisStep(yTotalNominalCount, yContinuousAsDiscrete, subplotHeight, elasticParamsY);\n\n    const xIsDiscrete = xTotalNominalCount > 0;\n    const yIsDiscrete = yTotalNominalCount > 0;\n\n    const xHasGrouping = groupAxis === 'x' && nominalCount.group > 0;\n    const yHasGrouping = groupAxis === 'y' && nominalCount.group > 0;\n\n    let xStepSize: number;\n    let yStepSize: number;\n    let xStepUnit: 'item' | 'group' | undefined;\n    let yStepUnit: 'item' | 'group' | undefined;\n\n    if (xIsDiscrete && xHasGrouping) {\n        const itemsPerGroup = nominalCount.group;\n        const defaultGroupStep = itemsPerGroup * maxStepSize;\n        const minGroupStep = Math.max(Math.ceil(MIN_GROUP_GAP_PX / stepPaddingVal), 2 * itemsPerGroup);\n        const groupAxis = computeAxisStep(nominalCount.x, 0, subplotWidth, elasticParamsX);\n        const groupStep = Math.max(minGroupStep, Math.min(defaultGroupStep, groupAxis.step));\n        xStepSize = groupStep;\n        xStepUnit = 'group';\n    } else if (xIsDiscrete) {\n        xStepSize = Math.max(minStepVal, Math.min(maxStepSize, xAxis.step));\n    } else if (xContinuousAsDiscrete > 0) {\n        xStepSize = Math.max(minStepVal, Math.min(maxStepSize, xAxis.step));\n    } else {\n        xStepSize = defaultStepSize;\n    }\n\n    if (yIsDiscrete && yHasGrouping) {\n        const itemsPerGroup = nominalCount.group;\n        const defaultGroupStep = itemsPerGroup * maxStepSize;\n        const minGroupStep = Math.max(Math.ceil(MIN_GROUP_GAP_PX / stepPaddingVal), 2 * itemsPerGroup);\n        const groupAxis = computeAxisStep(nominalCount.y, 0, subplotHeight, elasticParamsY);\n        const groupStep = Math.max(minGroupStep, Math.min(defaultGroupStep, groupAxis.step));\n        yStepSize = groupStep;\n        yStepUnit = 'group';\n    } else if (yIsDiscrete) {\n        yStepSize = Math.max(minStepVal, Math.min(maxStepSize, yAxis.step));\n    } else if (yContinuousAsDiscrete > 0) {\n        yStepSize = Math.max(minStepVal, Math.min(maxStepSize, yAxis.step));\n    } else {\n        yStepSize = defaultStepSize;\n    }\n\n    // --- Banded continuous canvas size ---\n    for (const axis of ['x', 'y'] as const) {\n        const count = axis === 'x' ? xContinuousAsDiscrete : yContinuousAsDiscrete;\n        if (count <= 0) continue;\n        const stepSize = axis === 'x' ? xStepSize : yStepSize;\n        const continuousSize = Math.round(stepSize * (count + 1));\n        if (axis === 'x') {\n            subplotWidth = continuousSize;\n        } else {\n            subplotHeight = continuousSize;\n        }\n    }\n\n    // --- Unified stretch budget ------------------------------------------------\n    // Cap the per-subplot dimensions so total canvas never exceeds\n    // canvasWidth × maxStretch (and canvasHeight × maxStretch).\n    // Formula: effectiveW = W × maxStretch − fixedPad; each panel costs subplot + gap.\n    const maxSubplotW = (defaultChartWidth * maxStretchX - fixW) / facetCols - gap;\n    const maxSubplotH = (defaultChartHeight * maxStretchY - fixH) / facetRows - gap;\n\n    // Clamp step sizes for discrete/banded axes so VL step-based\n    // sizing respects the same budget.\n    // When step unit is 'group', divide by the number of groups (nominalCount)\n    // rather than the total item count (groups × items-per-group).\n    if (xTotalNominalCount > 0) {\n        const divisor = xStepUnit === 'group' ? nominalCount.x : xTotalNominalCount;\n        const cap = Math.max(minStepVal, Math.floor(maxSubplotW / divisor));\n        if (xStepSize > cap) xStepSize = cap;\n    }\n    if (xContinuousAsDiscrete > 0) {\n        const cap = Math.max(minStepVal, Math.floor(maxSubplotW / (xContinuousAsDiscrete + 1)));\n        if (xStepSize > cap) xStepSize = cap;\n    }\n    if (yTotalNominalCount > 0) {\n        const divisor = yStepUnit === 'group' ? nominalCount.y : yTotalNominalCount;\n        const cap = Math.max(minStepVal, Math.floor(maxSubplotH / divisor));\n        if (yStepSize > cap) yStepSize = cap;\n    }\n    if (yContinuousAsDiscrete > 0) {\n        const cap = Math.max(minStepVal, Math.floor(maxSubplotH / (yContinuousAsDiscrete + 1)));\n        if (yStepSize > cap) yStepSize = cap;\n    }\n\n    // Recompute banded subplot size after step clamping.\n    for (const axis of ['x', 'y'] as const) {\n        const count = axis === 'x' ? xContinuousAsDiscrete : yContinuousAsDiscrete;\n        if (count <= 0) continue;\n        const stepSize = axis === 'x' ? xStepSize : yStepSize;\n        if (axis === 'x') subplotWidth = Math.round(stepSize * (count + 1));\n        else subplotHeight = Math.round(stepSize * (count + 1));\n    }\n\n    // --- Nominal discrete subplot sizing ---\n    // For nominal discrete axes, one backend (VL) overrides subplotWidth\n    // with step-based sizing (width:{step:N}), so the subplot dimension\n    // doesn't matter.  Other backends (Chart.js, ECharts) fill the canvas\n    // and divide evenly among categories — for them, the subplot dimension\n    // IS the canvas width.\n    //\n    // Ensure the subplot is at least as wide as canvasSize (the user's\n    // requested chart size) so backends that fill the canvas get generous\n    // bars when there are few categories.  The subplot only exceeds\n    // canvasSize when faceting shrinks it, which is already handled above.\n\n    // Clamp continuous subplot dimensions.\n    subplotWidth = Math.min(subplotWidth, Math.round(maxSubplotW));\n    subplotHeight = Math.min(subplotHeight, Math.round(maxSubplotH));\n\n    // --- Band AR blending ---\n    // When one axis is banded (discrete) and the other is continuous,\n    // each band has a natural AR = continuousSize / stepSize.  If the\n    // actual band AR exceeds the target, blend the subplot AR toward\n    // the target (in log space) to avoid excessively tall/wide bands.\n    const targetBandAR = options.targetBandAR;\n    if (targetBandAR && targetBandAR > 0) {\n        const xIsBanded = xTotalNominalCount > 0 || xContinuousAsDiscrete > 0;\n        const yIsBanded = yTotalNominalCount > 0 || yContinuousAsDiscrete > 0;\n\n        if (xIsBanded && !yIsBanded) {\n            // X is banded, Y is continuous → band AR = subplotHeight / xStepSize\n            const actualBandAR = subplotHeight / xStepSize;\n            if (actualBandAR > targetBandAR) {\n                const idealH = xStepSize * targetBandAR;\n                // Blend: 50/50 between actual and target in log space.\n                const blendedH = Math.exp(\n                    0.5 * Math.log(subplotHeight) + 0.5 * Math.log(idealH));\n                subplotHeight = Math.round(\n                    Math.max(minContinuousSizeY, Math.min(blendedH, subplotHeight)));\n            }\n        } else if (yIsBanded && !xIsBanded) {\n            // Y is banded, X is continuous → band AR = subplotWidth / yStepSize\n            const actualBandAR = subplotWidth / yStepSize;\n            if (actualBandAR > targetBandAR) {\n                const idealW = yStepSize * targetBandAR;\n                const blendedW = Math.exp(\n                    0.5 * Math.log(subplotWidth) + 0.5 * Math.log(idealW));\n                subplotWidth = Math.round(\n                    Math.max(minContinuousSizeX, Math.min(blendedW, subplotWidth)));\n            }\n        }\n    }\n\n    // --- Label sizing ---\n    // A temporal/numeric field used as a BANDED axis (one bar per value) is\n    // \"continuous-as-discrete\": its tick labels sit one-per-band exactly like a\n    // nominal axis, so they must follow the same discrete sizing ladder (shrink\n    // — and rotate when bands are narrow) rather than staying at the full\n    // continuous base font. Otherwise dense date/number bands render oversized\n    // labels that feel too large for their band and crowd together.\n    const xHasDiscreteItems = xTotalNominalCount > 0 || xContinuousAsDiscrete > 0;\n    const yHasDiscreteItems = yTotalNominalCount > 0 || yContinuousAsDiscrete > 0;\n    // Canvas-adaptive fonts: descend the tick ladder from the backend's native\n    // base, and derive header/legend sizes. Scaled by the (sub)plot's smaller\n    // dimension so small multiples shrink and large single views grow subtly.\n    const fontSizing = computeFontSizing(Math.min(subplotWidth, subplotHeight), {\n        baseLabelFontSize: options.baseLabelFontSize,\n        baseTitleFontSize: options.baseTitleFontSize,\n    });\n    const labelOpts = { baseFont: fontSizing.tickBase, minFont: 6 };\n    let xLabel = computeLabelSizing(xStepSize, xHasDiscreteItems, labelOpts);\n    let yLabel = computeLabelSizing(yStepSize, yHasDiscreteItems, labelOpts);\n\n    if (xHasDiscreteItems) {\n        const xf = channelSemantics.x?.field;\n        const xt = effectiveTypes.x || channelSemantics.x?.type;\n        const stats = computeDiscreteLabelStats(xf, table);\n        if (stats) {\n            // Numeric-like labels (declared quantitative, or all values parse as\n            // numbers — years, bins, IDs) compete for the band's width when laid\n            // out horizontally. A continuous field split into many narrow bands\n            // yields many/wide numbers that crowd. Decide horizontal vs. angled\n            // by whether the widest label fits within one band.\n            const numericLike = xt === 'quantitative' || stats.allNumeric;\n            let labelPx = stats.maxLen * xLabel.fontSize * APPROX_CHAR_WIDTH_RATIO;\n            const fewShortStrings = !numericLike\n                && stats.count <= VL_SHORT_DISCRETE_CATEGORY_COUNT\n                && stats.maxLen <= VL_SHORT_DISCRETE_LABEL_MAX_LEN;\n\n            if (fewShortStrings || (numericLike && labelPx <= xStepSize)) {\n                // We want horizontal labels here. But a small number of short\n                // string categories can still collide when the band step is\n                // narrower than the widest label (e.g. box marks declare a tiny\n                // defaultBandSize). Before committing to horizontal, make sure\n                // the label actually fits — widen the band within the stretch\n                // budget if it can, otherwise angle the labels instead of\n                // letting them overlap. (xStepSize is the per-label band width:\n                // the item step when ungrouped, the group step when grouped.)\n                if (labelPx > xStepSize) {\n                    const desiredStep = Math.ceil(labelPx) + 6; // label width + inter-label gap\n                    const cap = Math.max(minStepVal, Math.floor(maxSubplotW / stats.count));\n                    if (desiredStep <= cap) {\n                        xStepSize = Math.max(xStepSize, desiredStep);\n                        xLabel = computeLabelSizing(xStepSize, xHasDiscreteItems, labelOpts);\n                        labelPx = stats.maxLen * xLabel.fontSize * APPROX_CHAR_WIDTH_RATIO;\n                    }\n                }\n\n                if (labelPx <= xStepSize) {\n                    // Fits horizontally (already, or after widening the band).\n                    // Must be explicit: omitting labelAngle leaves VL defaults (e.g. -45° on ordinal).\n                    xLabel = {\n                        ...xLabel,\n                        labelAngle: 0,\n                        labelAlign: 'center',\n                        labelBaseline: 'top',\n                    };\n                } else {\n                    // Even the stretch budget can't fit a wide-enough band →\n                    // angle the labels rather than let them run together.\n                    xLabel = {\n                        ...xLabel,\n                        labelAngle: -45,\n                        labelAlign: 'right',\n                        labelBaseline: 'top',\n                    };\n                }\n            } else if (numericLike && labelPx > xStepSize && xLabel.labelAngle === undefined) {\n                // Numeric labels that don't fit horizontally and weren't already\n                // rotated by step-based sizing (which only rotates at narrow\n                // steps). Without this, VL keeps them horizontal and the numbers\n                // overlap. Rotate to -45°.\n                xLabel = {\n                    ...xLabel,\n                    labelAngle: -45,\n                    labelAlign: 'right',\n                    labelBaseline: 'top',\n                };\n            }\n        }\n    }\n    if (yHasDiscreteItems) {\n        const yf = channelSemantics.y?.field;\n        const yt = effectiveTypes.y || channelSemantics.y?.type;\n        if (discreteYAxisShouldUseHorizontalLabels(yf, yt, table)) {\n            yLabel = {\n                ...yLabel,\n                labelAngle: 0,\n                labelAlign: 'right',\n                labelBaseline: 'middle',\n            };\n        }\n    }\n\n    // Keep tick labels consistent across axes. A continuous value axis stays at\n    // the base font, but a banded axis shrinks its labels as bands tighten — so\n    // the value \"numbers\" can end up visibly larger than the category \"text\".\n    // Unify both tick fonts to the smaller of the two so they read as one size.\n    const unifiedTickFont = Math.min(xLabel.fontSize, yLabel.fontSize);\n    if (xLabel.fontSize !== unifiedTickFont) xLabel = { ...xLabel, fontSize: unifiedTickFont };\n    if (yLabel.fontSize !== unifiedTickFont) yLabel = { ...yLabel, fontSize: unifiedTickFont };\n\n    return {\n        subplotWidth,\n        subplotHeight,\n        xStep: xStepSize,\n        yStep: yStepSize,\n        xStepUnit,\n        yStepUnit,\n        xContinuousAsDiscrete,\n        yContinuousAsDiscrete,\n        xNominalCount: xTotalNominalCount,\n        yNominalCount: yTotalNominalCount,\n        xLabel,\n        yLabel,\n        titleFontSize: fontSizing.titleFontSize,\n        legendFontSize: fontSizing.legendFontSize,\n        stepPadding: stepPaddingVal,\n        facet: (facetCols > 1 || facetRows > 1) ? {\n            columns: facetCols,\n            rows: facetRows,\n            subplotWidth,\n            subplotHeight,\n        } : undefined,\n        effectiveFacetGap: gap,\n        truncations: [],  // Overflow truncations are handled by filterOverflow\n    };\n}\n\n// ---------------------------------------------------------------------------\n// Helpers\n// ---------------------------------------------------------------------------\n\n/**\n * Count distinct series (color/detail categories) from channel semantics.\n */\nfunction countDistinctSeries(\n    channelSemantics: Record<string, ChannelSemantics>,\n    data: any[],\n): number {\n    const seriesFields: string[] = [];\n    const colorField = channelSemantics.color?.field;\n    const detailField = channelSemantics.detail?.field;\n    if (colorField) seriesFields.push(colorField);\n    if (detailField && detailField !== colorField) seriesFields.push(detailField);\n\n    if (seriesFields.length === 0) return 1;\n\n    const seriesKeys = new Set<string>();\n    for (const row of data) {\n        const key = seriesFields.map(f => String(row[f] ?? '')).join('\\x00');\n        seriesKeys.add(key);\n    }\n    return seriesKeys.size;\n}\n\n/**\n * Compute the ideal aspect ratio for a both-continuous chart.\n *\n * Dispatches to two strategies depending on mark type:\n *\n * - **Scatter / point** (`isConnected = false`): Uses the normalized\n *   standard-deviation ratio of the point cloud — a unit-independent\n *   shape measure.  Dampened 0.3× toward 1.0 so scatter stays near\n *   square.\n *\n * - **Connected marks** (line/area/bump, `isConnected = true`): Uses\n *   multi-scale banking to 45° (Heer & Agrawala 2006).  Slopes are\n *   computed at multiple octave-band smoothing levels and combined via\n *   geometric mean so that trend, periodicity, and noise each\n *   contribute proportionally — avoiding the dense-data failure mode\n *   of Cleveland's single-scale median.\n *\n * @param xValues     Numeric X values\n * @param yValues     Numeric Y values (parallel array)\n * @param xDomain     [min, max] of the visual X axis\n * @param yDomain     [min, max] of the visual Y axis\n * @param seriesKeys  Per-point series key ('' if no series)\n * @param isConnected Whether the mark connects points (line/area vs scatter)\n * @returns Ideal AR (width/height). Clamped to [0.5, 3.0].\n */\nfunction computeBankingAR(\n    xValues: number[],\n    yValues: number[],\n    xDomain: [number, number],\n    yDomain: [number, number],\n    seriesKeys: string[],\n    isConnected: boolean,\n): number {\n    const MIN_AR = 0.5;\n    const MAX_AR = 3.0;\n\n    const xRange = xDomain[1] - xDomain[0];\n    const yRange = yDomain[1] - yDomain[0];\n    if (xRange <= 0 || yRange <= 0) return 1;\n\n    // ── Scatter: σ-ratio ──────────────────────────────────────────────\n    if (!isConnected) {\n        const n = xValues.length;\n        let sumX = 0, sumY = 0;\n        for (let i = 0; i < n; i++) {\n            sumX += (xValues[i] - xDomain[0]) / xRange;\n            sumY += (yValues[i] - yDomain[0]) / yRange;\n        }\n        const meanX = sumX / n;\n        const meanY = sumY / n;\n        let varX = 0, varY = 0;\n        for (let i = 0; i < n; i++) {\n            const dx = (xValues[i] - xDomain[0]) / xRange - meanX;\n            const dy = (yValues[i] - yDomain[0]) / yRange - meanY;\n            varX += dx * dx;\n            varY += dy * dy;\n        }\n        const sdX = Math.sqrt(varX / n);\n        const sdY = Math.sqrt(varY / n);\n        if (sdY <= 0) return MAX_AR;\n        if (sdX <= 0) return MIN_AR;\n\n        const sdRatio = sdX / sdY;\n        const ar = sdRatio > 1\n            ? 1 + (sdRatio - 1) * 0.3\n            : 1 - (1 - sdRatio) * 0.3;\n        return Math.min(MAX_AR, Math.max(MIN_AR, ar));\n    }\n\n    // ── Connected marks: multi-scale banking (Heer & Agrawala 2006) ──\n\n    // Group by series and sort by X.\n    const seriesMap = new Map<string, { x: number; y: number }[]>();\n    for (let i = 0; i < xValues.length; i++) {\n        const key = seriesKeys[i];\n        let arr = seriesMap.get(key);\n        if (!arr) { arr = []; seriesMap.set(key, arr); }\n        arr.push({ x: xValues[i], y: yValues[i] });\n    }\n    for (const pts of seriesMap.values()) {\n        pts.sort((a, b) => a.x - b.x);\n    }\n\n    // Collect per-scale median absolute slopes, then combine with\n    // geometric mean across scales.  Each scale is a box-filter\n    // smoothing at window width 2^k (k = 0, 1, 2, …).\n    // Scale 0 = raw data (Cleveland's original).\n    const scaleMedians: number[] = [];\n\n    // Determine max scale: largest power of 2 that still leaves ≥ 3\n    // points in the longest series after smoothing.\n    let maxSeriesLen = 0;\n    for (const pts of seriesMap.values()) {\n        if (pts.length > maxSeriesLen) maxSeriesLen = pts.length;\n    }\n    const maxScale = Math.max(0, Math.floor(Math.log2(maxSeriesLen)) - 1);\n\n    for (let scale = 0; scale <= maxScale; scale++) {\n        const windowSize = 1 << scale;  // 1, 2, 4, 8, …\n        const absSlopes: number[] = [];\n\n        for (const pts of seriesMap.values()) {\n            // Smooth: non-overlapping bucket averages of `windowSize` points.\n            // The last bucket may be smaller — included as-is.\n            const n = pts.length;\n            if (n < 2) continue;\n\n            const smoothed: { x: number; y: number }[] = [];\n            for (let i = 0; i < n; i += windowSize) {\n                const end = Math.min(i + windowSize, n);\n                let sx = 0, sy = 0;\n                for (let j = i; j < end; j++) {\n                    sx += pts[j].x;\n                    sy += pts[j].y;\n                }\n                const cnt = end - i;\n                smoothed.push({ x: sx / cnt, y: sy / cnt });\n            }\n\n            // Compute slopes between consecutive smoothed points.\n            for (let i = 1; i < smoothed.length; i++) {\n                const dx = (smoothed[i].x - smoothed[i - 1].x) / xRange;\n                const dy = (smoothed[i].y - smoothed[i - 1].y) / yRange;\n                if (dx === 0) continue;\n                absSlopes.push(Math.abs(dy / dx));\n            }\n        }\n\n        if (absSlopes.length === 0) continue;\n\n        // Median absolute slope at this scale.\n        absSlopes.sort((a, b) => a - b);\n        const mid = absSlopes.length >> 1;\n        const median = absSlopes.length % 2 === 1\n            ? absSlopes[mid]\n            : (absSlopes[mid - 1] + absSlopes[mid]) / 2;\n        if (median > 0) {\n            scaleMedians.push(median);\n        }\n    }\n\n    if (scaleMedians.length === 0) return 1;\n\n    // Geometric mean of per-scale median slopes.\n    // This gives equal weight to each octave band: trend (coarse),\n    // periodicity (middle), and noise (fine) all contribute.\n    let logSum = 0;\n    for (const m of scaleMedians) {\n        logSum += Math.log(m);\n    }\n    const combinedSlope = Math.exp(logSum / scaleMedians.length);\n\n    if (combinedSlope <= 0) return MAX_AR;\n\n    // Banking to 45°: display_slope = s_norm × (H/W).\n    // For median |display_slope| = 1:  H/W = 1/median(|s_norm|),\n    // so W/H = median(|s_norm|) = combinedSlope.\n    //\n    // No dampening here — the caller (computeLayout) blends banking AR\n    // with gas-pressure AR at 50/50, which already moderates it.\n    // Applying dampening on top of the blend would double-moderate.\n\n    // Landscape floor for connected marks: time series, line charts,\n    // and area charts are conventionally landscape.  Banking can push\n    // wider (when slopes are steep) but never portrait — the gentle-\n    // slope majority in typical time series would otherwise dominate\n    // the median and produce portrait, compressing the time axis.\n    const ar = Math.max(1.0, combinedSlope);\n    return Math.min(MAX_AR, Math.max(MIN_AR, ar));\n}\n\n// ---------------------------------------------------------------------------\n// Public: computeChannelBudgets\n// ---------------------------------------------------------------------------\n\n/**\n * Compute per-channel maximum values that can fit on the canvas.\n *\n * Uses the **most conservative** assumptions:\n *   - minStep  (smallest px per discrete item)\n *   - minSubplotSize (smallest subplot for continuous axes)\n *   - maxStretch (maximum canvas stretching)\n *\n * This is Step 0c-a in the pipeline — it runs before filterOverflow\n * and produces the budgets that filterOverflow consumes.\n *\n * Pipeline:  computeChannelBudgets → filterOverflow → computeLayout\n *\n * @param channelSemantics  Phase 0 output (field, type per channel)\n * @param declaration       Template layout declaration\n * @param data              Full data table (pre-overflow)\n * @param canvasSize        Target canvas dimensions\n * @param options           Assembly options\n * @returns                 ChannelBudgets with per-channel max-to-keep\n */\nexport function computeChannelBudgets(\n    channelSemantics: Record<string, ChannelSemantics>,\n    declaration: LayoutDeclaration,\n    data: any[],\n    canvasSize: { width: number; height: number },\n    options: AssembleOptions,\n): ChannelBudgets {\n    const {\n        minStep: minStepVal = 6,\n        stepPadding: stepPaddingVal = 0.1,\n        maxColorValues: maxColorVal = 24,\n    } = options;\n\n    const { x: maxStretchX, y: maxStretchY } = resolveStretchCaps(options);\n\n    const fixW = options.facetFixedPadding?.width ?? 0;\n    const fixH = options.facetFixedPadding?.height ?? 0;\n    const gap = options.facetGap ?? 0;\n\n    const isDiscreteType = (t: string | undefined) => t === 'nominal' || t === 'ordinal';\n    const effectiveType = (ch: string): string | undefined =>\n        declaration.resolvedTypes?.[ch] ?? channelSemantics[ch]?.type;\n\n    // --- 1. Facet grid (delegates to computeFacetGrid) ---\n    const facetGrid = computeFacetGrid(\n        channelSemantics, declaration, data, canvasSize, options,\n    );\n    const facetCols = facetGrid?.columns ?? 1;\n    const facetRows = facetGrid?.rows ?? 1;\n\n    // --- 2. Per-subplot budget at maximum stretch ---\n    const maxSubplotW = Math.max(\n        options.minSubplotSize ?? 60,\n        (canvasSize.width * maxStretchX - fixW) / facetCols - gap,\n    );\n    const maxSubplotH = Math.max(\n        options.minSubplotSize ?? 60,\n        (canvasSize.height * maxStretchY - fixH) / facetRows - gap,\n    );\n\n    // --- 3. Grouping detection ---\n    const groupField = channelSemantics.group?.field;\n    let groupCount = 0;\n    let groupAxis: 'x' | 'y' | undefined;\n    if (groupField) {\n        groupCount = new Set(data.map(r => r[groupField])).size;\n        if (isDiscreteType(effectiveType('x'))) groupAxis = 'x';\n        else if (isDiscreteType(effectiveType('y'))) groupAxis = 'y';\n    }\n\n    const xGroupMultiplier = (groupAxis === 'x' && groupCount > 1) ? groupCount : 1;\n    const yGroupMultiplier = (groupAxis === 'y' && groupCount > 1) ? groupCount : 1;\n\n    const MIN_GROUP_GAP_PX = 3;\n    const xMinGroupStep = xGroupMultiplier > 1\n        ? Math.max(Math.ceil(MIN_GROUP_GAP_PX / stepPaddingVal), 2 * xGroupMultiplier)\n        : minStepVal;\n    const yMinGroupStep = yGroupMultiplier > 1\n        ? Math.max(Math.ceil(MIN_GROUP_GAP_PX / stepPaddingVal), 2 * yGroupMultiplier)\n        : minStepVal;\n\n    // --- 4. Per-channel budgets ---\n    let maxXToKeep = Math.floor(maxSubplotW / xMinGroupStep);\n    let maxYToKeep = Math.floor(maxSubplotH / yMinGroupStep);\n\n    // --- 5. Faceted-chart canvas cap ---\n    // When a busy discrete axis makes each subplot wider than the\n    // un-stretched canvas, cap axis items to fit within one canvas\n    // width/height.  This lets subplots be narrower, potentially fitting\n    // more facet columns — reducing overall chart height.\n    //\n    // Example: 70 counties on X × 20 states on column.  Without the cap,\n    // minSubplotWidth = 70 × 6 = 420 → only 1 facet column fits → each\n    // state stacks vertically → excessively tall chart.  With the cap,\n    // X is truncated to floor(400/6) = 66 items, and the facet grid is\n    // re-derived with narrower subplots so more columns fit.\n    if (facetGrid) {\n        const canvasXCap = Math.max(1, Math.floor(canvasSize.width / xMinGroupStep));\n        const canvasYCap = Math.max(1, Math.floor(canvasSize.height / yMinGroupStep));\n\n        if (maxXToKeep > canvasXCap || maxYToKeep > canvasYCap) {\n            maxXToKeep = Math.min(maxXToKeep, canvasXCap);\n            maxYToKeep = Math.min(maxYToKeep, canvasYCap);\n\n            // With tighter axis items, subplots can be narrower, so more\n            // facet columns may fit.  Re-derive the grid for column-only\n            // wrapping (the most affected case).\n            const colField = channelSemantics.column?.field;\n            const rowField = channelSemantics.row?.field;\n            const colCount = colField\n                ? new Set(data.map(r => r[colField])).size : 0;\n\n            if (colCount > 1 && !rowField) {\n                const tighterW = Math.max(\n                    options.minSubplotSize ?? 60,\n                    maxXToKeep * xMinGroupStep,\n                );\n                const totalW = canvasSize.width * maxStretchX - fixW;\n                const totalH = canvasSize.height * maxStretchY - fixH;\n                const revisedMaxCols = Math.max(1, Math.floor(\n                    totalW / (tighterW + gap),\n                ));\n                const revisedMaxRows = Math.max(1, Math.floor(\n                    totalH / ((options.minSubplotSize ?? 60) + gap),\n                ));\n                const maxTotal = revisedMaxCols * revisedMaxRows;\n                const effectiveCount = Math.min(colCount, maxTotal);\n                const visRows = Math.ceil(effectiveCount / revisedMaxCols);\n                const visCols = Math.ceil(effectiveCount / visRows);\n\n                facetGrid.columns = visCols;\n                facetGrid.rows = visRows;\n                facetGrid.maxColumnValues = maxTotal;\n            }\n        }\n    }\n\n    // maxColumnValues already carries the correct semantics for both\n    // column+row (per-dimension cap) and column-only wrapping (total\n    // panel count = grid cols × grid rows).  No multiplication needed.\n    const maxValues: Record<string, number> = {\n        x: maxXToKeep,\n        y: maxYToKeep,\n        column: facetGrid?.maxColumnValues ?? Infinity,\n        row: facetGrid?.maxRowValues ?? Infinity,\n        color: maxColorVal,\n    };\n\n    return { maxValues, facetGrid };\n}\n\n// ---------------------------------------------------------------------------\n// Public: computeFacetGrid\n// ---------------------------------------------------------------------------\n\n/**\n * Decide the facet grid layout (including column-only wrapping).\n *\n * This runs BEFORE filterOverflow and computeLayout.  It:\n *   1. Counts unique column/row values from data.\n *   2. Computes banded-aware minimum subplot dimensions.\n *   3. Computes max columns/rows that fit in the canvas budget.\n *   4. For column-only: wraps into a 2D grid (total panels = cols × rows).\n *   5. For column+row: caps each dimension independently.\n *\n * Returns `undefined` when there are no facet channels.\n *\n * @param channelSemantics  Phase 0 output\n * @param declaration       Template layout declaration\n * @param data              Data rows (pre-overflow — possibly after temporal conversion)\n * @param canvasSize        Target canvas dimensions\n * @param options           Assembly options\n */\nexport function computeFacetGrid(\n    channelSemantics: Record<string, ChannelSemantics>,\n    declaration: LayoutDeclaration,\n    data: any[],\n    canvasSize: { width: number; height: number },\n    options: AssembleOptions,\n): import('./types').FacetGridResult | undefined {\n    const { x: msX, y: msY } = resolveStretchCaps(options);\n    const fixW = options.facetFixedPadding?.width ?? 0;\n    const fixH = options.facetFixedPadding?.height ?? 0;\n    const gap = options.facetGap ?? 0;\n    const minStep = options.minStep ?? 6;\n    const stepPadding = options.stepPadding ?? 0.1;\n    const baseMinSubplot = options.minSubplotSize ?? 60;\n\n    const isDiscreteType = (t: string | undefined) => t === 'nominal' || t === 'ordinal';\n\n    // --- Compute min subplot size per axis ---\n    //\n    // Continuous:  baseMinSubplot (e.g. 60px).\n    //\n    // Discrete (not grouped):\n    //   min(minStep × valueCount, maxDim)\n    //\n    // Discrete (grouped):\n    //   perCategoryStep = max(minStep × groupCount, minGroupStep)\n    //   min(perCategoryStep × valueCount, maxDim)\n    //\n    //   where minGroupStep accounts for the inter-group gap:\n    //     the gap = stepPadding × step, which must be ≥ MIN_GROUP_GAP_PX.\n    //\n    // Always capped at maxDim (full stretched canvas minus fixed overhead)\n    // to guarantee at least 1 facet column/row.\n\n    const maxW = canvasSize.width * msX - fixW;\n    const maxH = canvasSize.height * msY - fixH;\n    const MIN_GROUP_GAP_PX = 3;\n\n    // Grouping detection\n    const groupField = channelSemantics.group?.field;\n    let groupCount = 0;\n    let groupAxis: 'x' | 'y' | undefined;\n    if (groupField) {\n        groupCount = new Set(data.map((r: any) => r[groupField])).size;\n        const xType = declaration.resolvedTypes?.x ?? channelSemantics.x?.type;\n        const yType = declaration.resolvedTypes?.y ?? channelSemantics.y?.type;\n        if (isDiscreteType(xType)) groupAxis = 'x';\n        else if (isDiscreteType(yType)) groupAxis = 'y';\n    }\n\n    let minSubplotWidth = baseMinSubplot;\n    let minSubplotHeight = baseMinSubplot;\n\n    // Log-scale axes need more space for minor grid lines to be legible.\n    const LOG_PX_PER_DECADE_FACET = 40;\n    for (const axis of ['x', 'y'] as const) {\n        const cs = channelSemantics[axis];\n        if (!cs?.field || !cs.scaleType) continue;\n        if (cs.scaleType !== 'log' && cs.scaleType !== 'symlog') continue;\n        const vals = data\n            .map((r: any) => r[cs.field])\n            .filter((v: any) => typeof v === 'number' && v > 0 && isFinite(v));\n        if (vals.length < 2) continue;\n        const decades = Math.log10(Math.max(...vals)) - Math.log10(Math.min(...vals));\n        const needed = Math.ceil(Math.max(1, decades)) * LOG_PX_PER_DECADE_FACET;\n        if (axis === 'x') minSubplotWidth = Math.max(minSubplotWidth, needed);\n        else minSubplotHeight = Math.max(minSubplotHeight, needed);\n    }\n\n    for (const axis of ['x', 'y'] as const) {\n        const cs = channelSemantics[axis];\n        if (!cs?.field) continue;\n\n        const effectiveType = declaration.resolvedTypes?.[axis] ?? cs.type;\n        const isBanded = declaration.axisFlags?.[axis]?.banded === true;\n        if (!isDiscreteType(effectiveType) && !isBanded) continue;\n\n        const valueCount = new Set(data.map((r: any) => r[cs.field])).size;\n        const axisGroupCount = (groupAxis === axis && groupCount > 1) ? groupCount : 1;\n        const maxDim = axis === 'x' ? maxW : maxH;\n\n        let perCategoryStep: number;\n        if (axisGroupCount > 1) {\n            // Grouped: each category needs room for groupCount sub-items\n            // PLUS enough inter-group gap (stepPadding × step ≥ MIN_GROUP_GAP_PX).\n            const minGroupStep = Math.max(\n                Math.ceil(MIN_GROUP_GAP_PX / stepPadding),\n                2 * axisGroupCount,\n            );\n            perCategoryStep = Math.max(minStep * axisGroupCount, minGroupStep);\n        } else {\n            // Ungrouped: one item per category\n            perCategoryStep = minStep;\n        }\n\n        const dataDrivenMin = Math.min(perCategoryStep * valueCount, maxDim);\n        const minDim = Math.max(baseMinSubplot, dataDrivenMin);\n\n        if (axis === 'x') {\n            minSubplotWidth = minDim;\n        } else {\n            minSubplotHeight = minDim;\n        }\n    }\n\n    // --- Continuous axes: AR-based min subplot size ---\n    // When both axes are continuous (non-banded), the expected aspect\n    // ratio tells us which axis needs more room.  The shorter dimension\n    // stays at baseMinSubplot; the longer gets up to ms× (maxStretch)\n    // of the base.  This ensures line charts (landscape AR) get wider\n    // min subplots, so maxFacetColumns is lower → fewer, wider panels.\n    const xIsCont = (() => {\n        const cs = channelSemantics.x;\n        if (!cs?.field) return false;\n        const t = declaration.resolvedTypes?.x ?? cs.type;\n        return !isDiscreteType(t) && !(declaration.axisFlags?.x?.banded === true);\n    })();\n    const yIsCont = (() => {\n        const cs = channelSemantics.y;\n        if (!cs?.field) return false;\n        const t = declaration.resolvedTypes?.y ?? cs.type;\n        return !isDiscreteType(t) && !(declaration.axisFlags?.y?.banded === true);\n    })();\n\n    if (xIsCont && yIsCont) {\n        const xCS = channelSemantics.x;\n        const yCS = channelSemantics.y;\n        if (xCS?.field && yCS?.field) {\n            const isTempX = (declaration.resolvedTypes?.x ?? xCS.type) === 'temporal';\n            const isTempY = (declaration.resolvedTypes?.y ?? yCS.type) === 'temporal';\n            const cmcs = options.continuousMarkCrossSection;\n            const isConn = typeof cmcs === 'object' && !!cmcs.seriesCountAxis;\n\n            const xNum: number[] = [];\n            const yNum: number[] = [];\n            const sKeys: string[] = [];\n            const sFields: string[] = [];\n            // Include facet fields in series keys so banking computes\n            // slopes within each panel, not across panel boundaries.\n            const colF = channelSemantics.column?.field;\n            const rowF = channelSemantics.row?.field;\n            if (colF) sFields.push(colF);\n            if (rowF) sFields.push(rowF);\n            const cf = channelSemantics.color?.field;\n            const df = channelSemantics.detail?.field;\n            if (cf) sFields.push(cf);\n            if (df && df !== cf) sFields.push(df);\n\n            for (const row of data) {\n                const xv = row[xCS.field];\n                const yv = row[yCS.field];\n                if (xv == null || yv == null) continue;\n                const xn = isTempX ? +new Date(xv) : +xv;\n                const yn = isTempY ? +new Date(yv) : +yv;\n                if (isNaN(xn) || isNaN(yn)) continue;\n                xNum.push(xn);\n                yNum.push(yn);\n                sKeys.push(sFields.length > 0\n                    ? sFields.map(f => String(row[f] ?? '')).join('\\x00')\n                    : '');\n            }\n\n            if (xNum.length > 1) {\n                const xMin = Math.min(...xNum);\n                const xMax = Math.max(...xNum);\n                const yMin = Math.min(...yNum);\n                const yMax = Math.max(...yNum);\n                const xDom: [number, number] = [xMin, xMax];\n                const yDom: [number, number] = [yMin, yMax];\n                if (xCS.zero?.zero) {\n                    if (xDom[0] > 0) xDom[0] = 0;\n                    if (xDom[1] < 0) xDom[1] = 0;\n                }\n                if (yCS.zero?.zero) {\n                    if (yDom[0] > 0) yDom[0] = 0;\n                    if (yDom[1] < 0) yDom[1] = 0;\n                }\n\n                const ar = computeBankingAR(xNum, yNum, xDom, yDom, sKeys, isConn);\n\n                // Distribute: shorter side = base, longer side = base × min(ar, ms).\n                if (ar >= 1) {\n                    minSubplotWidth = Math.max(minSubplotWidth,\n                        Math.round(baseMinSubplot * Math.min(ar, msX)));\n                    minSubplotHeight = Math.max(minSubplotHeight, baseMinSubplot);\n                } else {\n                    minSubplotWidth = Math.max(minSubplotWidth, baseMinSubplot);\n                    minSubplotHeight = Math.max(minSubplotHeight,\n                        Math.round(baseMinSubplot * Math.min(1 / ar, msY)));\n                }\n            }\n        }\n    }\n\n    // effectiveW = totalBudget - fixedOverhead; each panel costs (subplot + gap).\n    const effectiveW = maxW;\n    const effectiveH = maxH;\n    const maxFacetColumns = Math.max(1, Math.floor(\n        effectiveW / (minSubplotWidth + gap),\n    ));\n    const maxFacetRows = Math.max(1, Math.floor(\n        effectiveH / (minSubplotHeight + gap),\n    ));\n\n    // Identify column/row fields\n    const colField = channelSemantics.column?.field;\n    const rowField = channelSemantics.row?.field;\n    if (!colField && !rowField) return undefined;\n\n    const colCount = colField\n        ? new Set(data.map((r: any) => r[colField])).size : 0;\n    const rowCount = rowField\n        ? new Set(data.map((r: any) => r[rowField])).size : 0;\n\n    if (colCount === 0 && rowCount === 0) return undefined;\n\n    // Explicit user override: force a specific column count for a column-wrapped\n    // facet (the `facetColumns` chart property). Clamped to [1, colCount]; the\n    // remaining panels wrap into as many rows as needed (all kept, canvas grows).\n    const forcedCols = options.facetColumns != null && options.facetColumns >= 1\n        ? Math.min(Math.max(1, Math.floor(options.facetColumns)), Math.max(1, colCount))\n        : undefined;\n\n    if (colCount > 0 && rowCount === 0) {\n        if (forcedCols != null) {\n            const nRows = Math.ceil(colCount / forcedCols);\n            return {\n                columns: forcedCols,\n                rows: nRows,\n                maxColumnValues: forcedCols * nRows,\n                maxRowValues: Math.max(maxFacetRows, nRows),\n            };\n        }\n        // Column-only.  If all panels fit in one row, use a single row.\n        // Otherwise wrap into a balanced grid: pick the number of rows\n        // that makes the grid as square as possible (cols ≈ rows) while\n        // staying within the max budget per dimension.\n        if (colCount <= maxFacetColumns) {\n            return {\n                columns: colCount,\n                rows: 1,\n                maxColumnValues: colCount,\n                maxRowValues: maxFacetRows,\n            };\n        }\n\n        // Need to wrap.  Use maxFacetColumns as the column count\n        // (fill the width), but reduce columns slightly if it would\n        // produce a widow row (a single orphan panel on the last row).\n        let nCols = maxFacetColumns;\n        let nRows = Math.ceil(colCount / nCols);\n\n        // Check for widow: if last row has only 1 panel, try nCols-1\n        // to redistribute more evenly.  Keep reducing while widow\n        // exists and nCols > 2.\n        while (nCols > 2 && (colCount % nCols) === 1) {\n            nCols--;\n            nRows = Math.ceil(colCount / nCols);\n        }\n\n        const visRows = Math.min(nRows, maxFacetRows);\n        const maxTotal = nCols * visRows;\n\n        return {\n            columns: nCols,\n            rows: visRows,\n            maxColumnValues: maxTotal,\n            maxRowValues: maxFacetRows,\n        };\n    }\n\n    // Column+row or row-only: cap each dimension independently.\n    return {\n        columns: Math.max(1, Math.min(colCount, maxFacetColumns)),\n        rows: Math.max(1, Math.min(rowCount, maxFacetRows)),\n        maxColumnValues: maxFacetColumns,\n        maxRowValues: maxFacetRows,\n    };\n}\n\n// ---------------------------------------------------------------------------\n// Public: computeMinSubplotDimensions\n// ---------------------------------------------------------------------------\n\n/**\n * Compute minimum subplot dimensions considering banded and discrete axes.\n *\n * For banded axes (e.g. temporal x on candlestick), each data point needs\n * `minStep` px, so the subplot minimum can be much larger than the generic\n * `minSubplotSize` (60px).  For discrete axes, the count of unique values\n * drives the minimum similarly.\n *\n * This is used by both filterOverflow (pre-layout) and the assemblers\n * (post-layout) to consistently compute facet column/row caps.\n *\n * @param channelSemantics  Phase 0 output (field, type per channel)\n * @param declaration       Template layout declaration (axisFlags, resolvedTypes)\n * @param data              Data rows\n * @param options           Assembly options ({ minStep, minSubplotSize })\n * @returns                 { minSubplotWidth, minSubplotHeight }\n */\nexport function computeMinSubplotDimensions(\n    channelSemantics: Record<string, ChannelSemantics>,\n    declaration: LayoutDeclaration,\n    data: any[],\n    options: { minStep?: number; minSubplotSize?: number },\n): { minSubplotWidth: number; minSubplotHeight: number } {\n    const minStep = options.minStep ?? 6;\n    const minSubplot = options.minSubplotSize ?? 60;\n\n    let minSubplotWidth = minSubplot;\n    let minSubplotHeight = minSubplot;\n\n    // Log-scale axes need more space so minor grid lines stay legible.\n    const LOG_PX_PER_DECADE_MIN = 40;\n    for (const axis of ['x', 'y'] as const) {\n        const cs = channelSemantics[axis];\n        if (!cs?.field || !cs.scaleType) continue;\n        if (cs.scaleType !== 'log' && cs.scaleType !== 'symlog') continue;\n        const vals = data\n            .map((r: any) => r[cs.field])\n            .filter((v: any) => typeof v === 'number' && v > 0 && isFinite(v));\n        if (vals.length < 2) continue;\n        const decades = Math.log10(Math.max(...vals)) - Math.log10(Math.min(...vals));\n        const needed = Math.ceil(Math.max(1, decades)) * LOG_PX_PER_DECADE_MIN;\n        if (axis === 'x') minSubplotWidth = Math.max(minSubplotWidth, needed);\n        else minSubplotHeight = Math.max(minSubplotHeight, needed);\n    }\n\n    const isDiscreteType = (t: string | undefined) =>\n        t === 'nominal' || t === 'ordinal';\n\n    for (const axis of ['x', 'y'] as const) {\n        const cs = channelSemantics[axis];\n        if (!cs?.field) continue;\n\n        const effectiveType = declaration.resolvedTypes?.[axis] ?? cs.type;\n        const isBanded = declaration.axisFlags?.[axis]?.banded === true;\n        const isDiscrete = isDiscreteType(effectiveType);\n\n        let itemCount = 0;\n        if (isBanded || isDiscrete) {\n            itemCount = new Set(data.map((r: any) => r[cs.field])).size;\n        }\n\n        if (itemCount > 0) {\n            const minDim = Math.max(minSubplot, itemCount * minStep);\n            if (axis === 'x') {\n                minSubplotWidth = Math.max(minSubplotWidth, minDim);\n            } else {\n                minSubplotHeight = Math.max(minSubplotHeight, minDim);\n            }\n        }\n    }\n\n    return { minSubplotWidth, minSubplotHeight };\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n+ * =============================================================================\n+ * COLOR DECISIONS (backend-agnostic)\n+ * =============================================================================\n+ *\n+ * Pure decision layer for choosing colormaps based on:\n+ *   - Field semantics (FieldSemantics / ColorSchemeHint)\n+ *   - Channel semantics (ChannelSemantics)\n+ *   - Chart type & encodings\n+ *   - Data statistics (distinct count, numeric range)\n+ *\n+ * This module does NOT know about Vega-Lite / ECharts syntax.\n+ * It only returns abstract colormap identifiers and palette needs.\n+ * Backends translate these decisions into concrete scale/option config.\n+ * =============================================================================\n+ */\n\nimport type { ChartEncoding, ChannelSemantics } from './types';\n\n// -----------------------------------------------------------------------------\n// 公共类型\n// -----------------------------------------------------------------------------\n\nexport type ColorMapType = 'categorical' | 'sequential' | 'diverging';\n\nexport type ColorChannel = 'color' | 'group' | 'fill' | 'stroke';\n\nexport interface ColorDecision {\n    channel: ColorChannel;\n    schemeType: ColorMapType;\n    /**\n     * 具体 colormap 标识：\n     *   - 当用户在 encoding.scheme 中显式指定时，这里会带上该 id（如 'viridis'）。\n     *   - 自动决策路径下，core 不再选择具体 id，schemeId 留空，由各后端的 colormap\n     *     模块根据 schemeType / categoryCount / backend 主题自行挑选合适的 palette。\n     */\n    schemeId?: string;\n    divergingMidpoint?: number;\n    categoryCount?: number;\n    /** 是否是主编码（影响后续主题/对比度策略） */\n    primary: boolean;\n    /** 是否是数据驱动的颜色（而非常量色） */\n    dataDriven: boolean;\n}\n\n/**\n * 一个后端无关的颜色决策结果：按 channel 存一份。\n */\nexport interface ColorDecisionResult {\n    color?: ColorDecision;\n    group?: ColorDecision;\n    fill?: ColorDecision;\n    stroke?: ColorDecision;\n}\n\n// -----------------------------------------------------------------------------\n// 通道级颜色决策\n// -----------------------------------------------------------------------------\n\ninterface DecideColorMapsContext {\n    chartType: string;\n    encodings: Record<string, ChartEncoding>;\n    channelSemantics: Record<string, ChannelSemantics>;\n    table: any[];\n    // backend: 'vegalite' | 'echarts' | 'chartjs';\n    background?: 'light' | 'dark';\n}\n\nfunction inferColorChannelPrimary(channel: ColorChannel, chartType: string): boolean {\n    // 目前简单：color / group 视为主色通道\n    if (channel === 'color' || channel === 'group') return true;\n    return false;\n}\n\n/**\n * 从 ChannelSemantics 推断需要的 scheme 类型（categorical / sequential / diverging）。\n */\nfunction decideSchemeTypeFromChannel(\n    channel: ColorChannel,\n    cs: ChannelSemantics | undefined,\n): { schemeType: ColorMapType; divergingMidpoint?: number } {\n    const hint = cs?.colorScheme;\n    if (hint) {\n        // 若语义推荐是 diverging，则直接按发散处理。\n        if (hint.type === 'diverging') {\n            return {\n                schemeType: 'diverging',\n                // resolve-semantics 里用 domainMid 表示 diverging 中点\n                divergingMidpoint: (hint as any).domainMid,\n            };\n        }\n        // 若推荐为 sequential，则直接按顺序色带处理。\n        if (hint.type === 'sequential') {\n            return { schemeType: 'sequential' };\n        }\n        // 语义推荐为 categorical，但编码类型实际是 temporal 时，\n        // 对 color 通道优先按连续时间轴处理，使用 sequential colormap，\n        // 而不是一条一条离散颜色（防止 Date/Time 被当成类别色盘）。\n        if (hint.type === 'categorical') {\n            // 若语义为 Rank，则更适合作为连续数轴上的等级映射，\n            // 使用 continuous colormap（sequential），否则按普通类别处理。\n            const semType = cs?.semanticAnnotation?.semanticType;\n            const isRankLike = semType === 'Rank';\n            if (isRankLike) {\n                return { schemeType: 'sequential' };\n            }\n\n            if (cs?.type === 'temporal' && channel === 'color') {\n                return { schemeType: 'sequential' };\n            }\n            return { schemeType: 'categorical' };\n        }\n    }\n\n    // 没 hint 时，用语义 + encoding type 兜底\n    const encType = cs?.type;\n    const semType = cs?.semanticAnnotation?.semanticType;\n\n    // 相关系数 [-1,1] 等「双向度量」优先使用发散色带，以 0 为中点。\n    if (semType === 'Correlation') {\n        return { schemeType: 'diverging', divergingMidpoint: 0 };\n    }\n\n    if (encType === 'quantitative' || encType === 'temporal') {\n        return { schemeType: 'sequential' };\n    }\n\n    return { schemeType: 'categorical' };\n}\n\nfunction countDistinctValues(table: any[], field: string | undefined): number | undefined {\n    if (!field) return undefined;\n    const set = new Set<any>();\n    for (const row of table) {\n        if (row == null) continue;\n        set.add(row[field]);\n    }\n    return set.size;\n}\n\nfunction decideColorForChannel(\n    channel: ColorChannel,\n    ctx: DecideColorMapsContext,\n): ColorDecision | undefined {\n    const encoding = ctx.encodings[channel as string];\n    const cs = ctx.channelSemantics[channel as string];\n\n    // 没字段就不是数据驱动色，不做决策\n    if (!encoding || !cs?.field) return undefined;\n\n    const dataDriven = true;\n    const primary = inferColorChannelPrimary(channel, ctx.chartType);\n\n    // 1. 显式 scheme 优先\n    if (encoding.scheme && encoding.scheme !== 'default') {\n        const distinct = countDistinctValues(ctx.table, cs.field);\n        // 用户显式指定 scheme 时，core 只透传 id，并根据 ChannelSemantics 推断类型；\n        // 真正选择调色板由各后端的 colormap 模块完成。\n        const { schemeType } = decideSchemeTypeFromChannel(channel, cs);\n        return {\n            channel,\n            schemeType,\n            schemeId: encoding.scheme,\n            categoryCount: distinct,\n            primary,\n            dataDriven,\n        };\n    }\n\n    // 2. 基于 ChannelSemantics.colorScheme 的 family 决策\n    const { schemeType, divergingMidpoint } = decideSchemeTypeFromChannel(channel, cs);\n    const distinct = countDistinctValues(ctx.table, cs.field);\n\n    return {\n        channel,\n        schemeType,\n        divergingMidpoint,\n        categoryCount: distinct,\n        primary,\n        dataDriven,\n    };\n}\n\n/**\n * 主入口：根据 chart / encodings / channelSemantics / data 计算颜色决策。\n */\nexport function decideColorMaps(ctx: DecideColorMapsContext): ColorDecisionResult {\n    const result: ColorDecisionResult = {\n        color: undefined,\n        group: undefined,\n        fill: undefined,\n        stroke: undefined,\n    };\n\n    // 目前只对 color / group 做决策，fill / stroke 预留\n    const channels: ColorChannel[] = ['color', 'group'];\n    for (const ch of channels) {\n        const decision = decideColorForChannel(ch, ctx);\n        if (decision) {\n            result[ch] = decision;\n        }\n    }\n\n    return result;\n}","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * =============================================================================\n * PHASE 2: INSTANTIATE SPEC — Plotly backend\n * =============================================================================\n *\n * Translates semantic decisions (Phase 0) and layout dimensions (Phase 1)\n * into Plotly-specific figure properties.\n *\n * Key differences from the other backends:\n *   - PL figures are `{ data: traces[], layout }` and stay pure JSON — axis\n *     tick formatting uses declarative `tickformat`/axis types, never\n *     callback functions\n *   - PL sizing via `layout.width` / `layout.height`\n *   - PL label rotation via `layout.xaxis.tickangle`\n *\n * PL dependency: **Yes — this is where Plotly-specific syntax lives**\n * =============================================================================\n */\n\nimport type {\n    InstantiateContext,\n    ChartWarning,\n} from '../core/types';\n\nconst AXIS_TITLE_STANDOFF = 16;\n// Plotly places tick labels ~1px from the axis by default — much tighter than\n// the other renderers (ECharts axisLabel.margin 8, Vega-Lite labelPadding+tick\n// ~7). Nudge them out to a comparable, comfortable gap. `ticklabelstandoff` is\n// the purpose-built property (Plotly ≥ 2.34 / 3.x); harmlessly ignored on older\n// builds, which keeps the current behavior rather than regressing.\nconst TICK_LABEL_STANDOFF = 7;\n\nfunction reserveCartesianMargins(figure: any, context: InstantiateContext): void {\n    const { layout } = context;\n    const hasXAxis = !!figure.layout.xaxis;\n    const hasYAxis = !!figure.layout.yaxis;\n    if (!hasXAxis && !hasYAxis) return;\n\n    const xCategories = figure.layout.xaxis?.categoryarray;\n    const xFontSize = layout.xLabel?.fontSize ?? 10;\n    const maxXLabelWidth = Array.isArray(xCategories)\n        ? Math.min(layout.xLabel?.labelLimit ?? 100, Math.max(0, ...xCategories.map((value: unknown) => String(value).length * xFontSize * 0.6)))\n        : 0;\n    const xBandWidth = Array.isArray(xCategories) && xCategories.length > 0\n        ? layout.subplotWidth / xCategories.length\n        : Number.POSITIVE_INFINITY;\n    if (figure.layout.xaxis && Array.isArray(xCategories) && xCategories.length <= 6) {\n        figure.layout.xaxis.tickangle = 0;\n        const desiredPlotWidth = xCategories.length * Math.max(48, maxXLabelWidth + 16);\n        figure._width += Math.max(0, desiredPlotWidth - layout.subplotWidth);\n    } else if (figure.layout.xaxis && figure.layout.xaxis.tickangle == null && maxXLabelWidth > xBandWidth) {\n        figure.layout.xaxis.tickangle = 45;\n    }\n    const xAngle = Math.abs(figure.layout.xaxis?.tickangle ?? layout.xLabel?.labelAngle ?? 0) * Math.PI / 180;\n    const rotatedXDepth = Math.ceil(maxXLabelWidth * Math.sin(xAngle));\n    const bottom = hasXAxis ? Math.max(xAngle > 0 ? 96 : 56, 40 + rotatedXDepth) : 24;\n\n    const yCategories = figure.layout.yaxis?.categoryarray;\n    const yFontSize = layout.yLabel?.fontSize ?? 10;\n    const maxYLabelWidth = Array.isArray(yCategories)\n        ? Math.min(layout.yLabel?.labelLimit ?? 100, Math.max(0, ...yCategories.map((value: unknown) => String(value).length * yFontSize * 0.6)))\n        : 28;\n    const left = hasYAxis ? Math.max(64, 36 + maxYLabelWidth) : 24;\n    const hasColorbar = (figure.data ?? []).some((trace: any) => trace.colorbar || trace.marker?.colorbar);\n    const right = hasColorbar ? 96 : 32;\n\n    figure.layout.margin = { t: 24, r: right, b: bottom, l: left };\n}\n\nexport function plApplyCartesianAxisSpacing(figure: any): void {\n    for (const [key, axis] of Object.entries(figure.layout ?? {})) {\n        if (!/^[xy]axis\\d*$/.test(key) || !axis || typeof axis !== 'object') continue;\n        const cartesianAxis = axis as any;\n        cartesianAxis.automargin = true;\n        if (cartesianAxis.ticklabelstandoff == null) {\n            cartesianAxis.ticklabelstandoff = TICK_LABEL_STANDOFF;\n        }\n        if (cartesianAxis.title?.text) {\n            cartesianAxis.title = { ...cartesianAxis.title, standoff: AXIS_TITLE_STANDOFF };\n        }\n    }\n}\n\n/**\n * Apply the cross-cutting per-axis chart properties (`logScale_x/y`,\n * `includeZero_x/y`) to every cartesian axis of the figure. These are surfaced\n * on many charts by the shared VL option set; implementing them here lets ALL\n * Plotly cartesian charts honor them natively (`axis.type: 'log'`,\n * `axis.rangemode: 'tozero'`). A category axis is skipped (log/zero are\n * meaningless there); a log axis never also forces zero (log 0 is undefined).\n */\nexport function plApplyAxisProperties(figure: any, context: InstantiateContext): void {\n    const cp = context.chartProperties;\n    if (!cp || !figure.layout) return;\n    const applyAxis = (re: RegExp, logKey: string, zeroKey: string) => {\n        const log = cp[logKey];\n        const zero = cp[zeroKey];\n        if (log == null && zero == null) return;\n        for (const [k, ax] of Object.entries(figure.layout)) {\n            if (!re.test(k) || !ax || typeof ax !== 'object') continue;\n            const a = ax as any;\n            if (a.type === 'category') continue;\n            if (log === true) {\n                a.type = 'log';\n                if (a.rangemode === 'tozero') delete a.rangemode;\n            } else if (log === false && a.type === 'log') {\n                delete a.type;\n            }\n            if (a.type !== 'log') {\n                if (zero === true) a.rangemode = 'tozero';\n                else if (zero === false && a.rangemode === 'tozero') a.rangemode = 'normal';\n            }\n        }\n    };\n    applyAxis(/^xaxis\\d*$/, 'logScale_x', 'includeZero_x');\n    applyAxis(/^yaxis\\d*$/, 'logScale_y', 'includeZero_y');\n}\n\n/**\n * Phase 2: Apply layout and semantic decisions to the Plotly figure.\n *\n * Handles common Plotly plumbing across all templates:\n *   - Figure sizing (_width, _height + layout.width/height)\n *   - Axis label rotation and font sizing\n *   - Overflow truncation warnings\n */\nexport function plApplyLayoutToSpec(\n    figure: any,\n    context: InstantiateContext,\n    warnings: ChartWarning[],\n): void {\n    const { layout, canvasSize } = context;\n\n    if (!figure.layout) figure.layout = {};\n\n    // ── Figure dimensions ────────────────────────────────────────────────\n    let usedDefaultDimensions = false;\n    if (!figure._width) {\n        usedDefaultDimensions = true;\n        const PADDING = 80; // approximate space for axes, labels\n\n        const xIsDiscrete = layout.xNominalCount > 0 || layout.xContinuousAsDiscrete > 0;\n        const yIsDiscrete = layout.yNominalCount > 0 || layout.yContinuousAsDiscrete > 0;\n\n        let plotWidth: number;\n        let plotHeight: number;\n\n        if (xIsDiscrete && layout.xStepUnit !== 'group') {\n            const xItemCount = layout.xNominalCount || layout.xContinuousAsDiscrete || 0;\n            plotWidth = xItemCount > 0 ? layout.xStep * xItemCount : (layout.subplotWidth || canvasSize.width);\n        } else {\n            plotWidth = layout.subplotWidth || canvasSize.width;\n        }\n\n        if (yIsDiscrete && layout.yStepUnit !== 'group') {\n            const yItemCount = layout.yNominalCount || layout.yContinuousAsDiscrete || 0;\n            plotHeight = yItemCount > 0 ? layout.yStep * yItemCount : (layout.subplotHeight || canvasSize.height);\n        } else {\n            plotHeight = layout.subplotHeight || canvasSize.height;\n        }\n\n        const legendGutter = figure.layout.showlegend ? 96 : 0;\n        figure._width = plotWidth + PADDING + legendGutter;\n        figure._height = plotHeight + PADDING;\n    }\n\n    // ── X-axis label rotation and font sizing ────────────────────────────\n    if (layout.xLabel) {\n        if (!figure.layout.xaxis) figure.layout.xaxis = {};\n        if (layout.xLabel.labelAngle && layout.xLabel.labelAngle !== 0) {\n            figure.layout.xaxis.tickangle = Math.abs(layout.xLabel.labelAngle);\n        }\n        if (layout.xLabel.fontSize) {\n            figure.layout.xaxis.tickfont = {\n                ...(figure.layout.xaxis.tickfont || {}),\n                size: layout.xLabel.fontSize,\n            };\n        }\n    }\n\n    // ── Y-axis label font sizing ─────────────────────────────────────────\n    if (layout.yLabel?.fontSize) {\n        if (!figure.layout.yaxis) figure.layout.yaxis = {};\n        figure.layout.yaxis.tickfont = {\n            ...(figure.layout.yaxis.tickfont || {}),\n            size: layout.yLabel.fontSize,\n        };\n    }\n\n    // ── Axis title + legend fonts — canvas-adaptive header sizes ─────────\n    for (const key of Object.keys(figure.layout)) {\n        if (!/^[xy]axis\\d*$/.test(key)) continue;\n        const axis = figure.layout[key];\n        if (axis?.title) {\n            axis.title = typeof axis.title === 'string' ? { text: axis.title } : axis.title;\n            axis.title.font = { ...(axis.title.font || {}), size: layout.titleFontSize };\n        }\n    }\n    if (figure.layout.legend) {\n        figure.layout.legend.font = {\n            ...(figure.layout.legend.font || {}),\n            size: layout.legendFontSize,\n        };\n    }\n\n    if (figure.layout.margin == null) {\n        reserveCartesianMargins(figure, context);\n        if (usedDefaultDimensions) {\n            const margin = figure.layout.margin;\n            figure._width += Math.max(0, margin.l + margin.r - 80);\n            figure._height += Math.max(0, margin.t + margin.b - 80);\n        }\n    }\n    plApplyCartesianAxisSpacing(figure);\n    figure.layout.width = figure._width;\n    figure.layout.height = figure._height;\n\n    // ── Overflow truncation warnings ─────────────────────────────────────\n    if (layout.truncations && layout.truncations.length > 0) {\n        for (const trunc of layout.truncations) {\n            warnings.push({\n                severity: 'warning',\n                code: 'overflow',\n                message: trunc.message,\n                channel: trunc.channel,\n                field: trunc.field,\n            });\n        }\n    }\n}\n\n/**\n * Apply tooltips to a Plotly figure. Plotly hover is on by default; this\n * pins an explicit unified hover mode so tooltips read across series.\n */\nexport function plApplyTooltips(figure: any): void {\n    if (!figure.layout) figure.layout = {};\n    if (figure.layout.hovermode == null) {\n        figure.layout.hovermode = 'closest';\n    }\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly facet grid assembly.\n *\n * Combines per-panel figures (one template instantiation per column/row cell)\n * into a single Plotly figure using per-panel axis pairs (`xaxis`/`xaxis2`/…)\n * with explicit domains — the Plotly-native equivalent of the Chart.js\n * backend's facet panel grid (chartjs/assemble.ts), mirroring its decisions:\n *   - shared, nice-rounded y-domain across all panels\n *   - only the leftmost column draws y tick labels and the y-axis title\n *   - column-only facets wrap into a 2D grid using the shared facet budget\n *   - column headers above panels, row headers rotated on the left\n *   - one legend entry per series (deduped across panels via legendgroup)\n */\n\n/** One instantiated facet cell. */\nexport interface PlotlyFacetPanel {\n    rowIndex: number;\n    colIndex: number;\n    rowHeader?: string;\n    colHeader?: string;\n    /** The per-panel figure produced by template.instantiate ({ data, layout }). */\n    figure: any;\n}\n\n/**\n * Round a [min, max] interval outward to \"nice\" round numbers so the shared\n * facet axis lands its endpoints on clean tick values (same rule as the\n * Chart.js backend / Vega-Lite `nice: true`).\n */\nexport function niceBounds(min: number, max: number, targetTicks = 5): { min: number; max: number } {\n    if (!(Number.isFinite(min) && Number.isFinite(max)) || max <= min) {\n        return { min, max };\n    }\n    const niceNum = (range: number, round: boolean): number => {\n        const exp = Math.floor(Math.log10(range));\n        const frac = range / 10 ** exp;\n        let niceFrac: number;\n        if (round) {\n            niceFrac = frac < 1.5 ? 1 : frac < 3 ? 2 : frac < 7 ? 5 : 10;\n        } else {\n            niceFrac = frac <= 1 ? 1 : frac <= 2 ? 2 : frac <= 5 ? 5 : 10;\n        }\n        return niceFrac * 10 ** exp;\n    };\n    const step = niceNum(niceNum(max - min, false) / Math.max(1, targetTicks - 1), true);\n    return {\n        min: Math.floor(min / step) * step,\n        max: Math.ceil(max / step) * step,\n    };\n}\n\nconst FACET_GAP_PX = 16;\nconst COL_HEADER_H = 22;\nconst ROW_HEADER_W = 28;\nconst MARGIN = { l: 64, r: 24, t: 16, b: 48 };\nconst LEGEND_GUTTER = 96;\n\n/**\n * Combine instantiated facet panels into one Plotly figure.\n *\n * Each panel's own `layout.xaxis` / `layout.yaxis` (category arrays, titles,\n * range modes) is copied onto that panel's axis pair; traces are re-pointed at\n * the pair. Domains are computed from the designed pixel grid so the figure\n * scales exactly like the other backends' facet output.\n */\nexport function plCombineFacetPanels(\n    panels: PlotlyFacetPanel[],\n    opts: {\n        rows: number;\n        cols: number;\n        panelWidth: number;\n        panelHeight: number;\n        sharedYDomain?: { min: number; max: number };\n        hasColHeader: boolean;\n        hasRowHeader: boolean;\n        /** Wrapped column-only facets repeat the header band above every row. */\n        colHeaderPerRow: boolean;\n        showLegend: boolean;\n    },\n): any {\n    const {\n        rows, cols, panelWidth, panelHeight, sharedYDomain,\n        hasColHeader, hasRowHeader, colHeaderPerRow, showLegend,\n    } = opts;\n\n    // Row headers sit on the RIGHT (Vega-Lite style): the left edge is already\n    // occupied by y tick labels + the y-axis title, so a left-side header would\n    // collide with them in a single combined figure.\n    const rowHeaderW = hasRowHeader ? ROW_HEADER_W : 0;\n    const headerBands = colHeaderPerRow ? rows : (hasColHeader ? 1 : 0);\n\n    const plotW = cols * panelWidth + (cols - 1) * FACET_GAP_PX;\n    const plotH = rows * panelHeight + (rows - 1) * FACET_GAP_PX\n        + headerBands * COL_HEADER_H;\n    const totalW = MARGIN.l + plotW + rowHeaderW + MARGIN.r + (showLegend ? LEGEND_GUTTER : 0);\n    const totalH = MARGIN.t + plotH + MARGIN.b;\n\n    // Paper-fraction geometry (Plotly domains live inside the margins).\n    const paperW = plotW + rowHeaderW;\n    const paperH = plotH;\n    const xFrac = (px: number) => px / paperW;\n    const yFrac = (px: number) => px / paperH;\n\n    const colX0 = (ci: number) => ci * (panelWidth + FACET_GAP_PX);\n    // Row band top (px from paper top), accounting for header bands.\n    const rowY0 = (ri: number) => (colHeaderPerRow\n        ? ri * (COL_HEADER_H + panelHeight + FACET_GAP_PX) + COL_HEADER_H\n        : (hasColHeader ? COL_HEADER_H : 0) + ri * (panelHeight + FACET_GAP_PX));\n\n    const figure: any = {\n        data: [],\n        layout: {\n            margin: { ...MARGIN },\n            showlegend: showLegend,\n            annotations: [],\n        },\n        _facet: true,\n        _facetRows: rows,\n        _facetCols: cols,\n        _width: totalW,\n        _height: totalH,\n    };\n    figure.layout.width = totalW;\n    figure.layout.height = totalH;\n\n    const seenLegend = new Set<string>();\n\n    for (const panel of panels) {\n        const { rowIndex: ri, colIndex: ci } = panel;\n        const n = ri * cols + ci + 1;\n        const xName = n === 1 ? 'xaxis' : `xaxis${n}`;\n        const yName = n === 1 ? 'yaxis' : `yaxis${n}`;\n        const xRef = n === 1 ? 'x' : `x${n}`;\n        const yRef = n === 1 ? 'y' : `y${n}`;\n\n        const x0 = xFrac(colX0(ci));\n        const x1 = xFrac(colX0(ci) + panelWidth);\n        // Plotly y-domain runs bottom-up; our rows run top-down.\n        const yTopPx = rowY0(ri);\n        const y1 = 1 - yFrac(yTopPx);\n        const y0 = 1 - yFrac(yTopPx + panelHeight);\n\n        const panelLayout = panel.figure?.layout ?? {};\n        const xAxis: any = { ...(panelLayout.xaxis ?? {}), domain: [x0, x1], anchor: yRef };\n        const yAxis: any = { ...(panelLayout.yaxis ?? {}), domain: [y0, y1], anchor: xRef };\n\n        // Shared y-domain across panels (mirror CJS: fixed nice range, no\n        // per-panel autorange). Rangemode would fight an explicit range.\n        if (sharedYDomain) {\n            yAxis.range = [sharedYDomain.min, sharedYDomain.max];\n            delete yAxis.rangemode;\n        }\n        // Only the leftmost column shows y tick labels + title.\n        if (ci > 0) {\n            yAxis.showticklabels = false;\n            delete yAxis.title;\n        }\n        // X-axis titles only on the bottom row (a per-panel title would\n        // collide with the next row's column headers in a single figure).\n        if (ri < rows - 1) {\n            delete xAxis.title;\n        }\n\n        figure.layout[xName] = xAxis;\n        figure.layout[yName] = yAxis;\n\n        for (const trace of panel.figure?.data ?? []) {\n            const placed: any = { ...trace, xaxis: xRef, yaxis: yRef };\n            const legendKey = String(placed.name ?? '');\n            if (legendKey) {\n                placed.legendgroup = legendKey;\n                placed.showlegend = !seenLegend.has(legendKey);\n                seenLegend.add(legendKey);\n            } else {\n                placed.showlegend = false;\n            }\n            figure.data.push(placed);\n        }\n\n        // Column header annotation (per wrapped row, or once on the top row).\n        if (panel.colHeader != null && (colHeaderPerRow || ri === 0)) {\n            figure.layout.annotations.push({\n                text: String(panel.colHeader),\n                showarrow: false,\n                xref: 'paper', yref: 'paper',\n                x: (x0 + x1) / 2,\n                y: 1 - yFrac(yTopPx - COL_HEADER_H / 2),\n                xanchor: 'center', yanchor: 'middle',\n                font: { size: 12 },\n            });\n        }\n\n        // Row header annotation (rightmost side, Vega-Lite style), rotated.\n        if (panel.rowHeader != null && ci === cols - 1) {\n            figure.layout.annotations.push({\n                text: String(panel.rowHeader),\n                showarrow: false,\n                textangle: 90,\n                xref: 'paper', yref: 'paper',\n                x: xFrac(plotW + rowHeaderW / 2),\n                y: (y0 + y1) / 2,\n                xanchor: 'center', yanchor: 'middle',\n                font: { size: 12 },\n            });\n        }\n    }\n\n    if (!showLegend) {\n        figure.layout.showlegend = false;\n    }\n\n    return figure;\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Static Series Normalization\n *\n * Detects array-valued encodings (static series) in the input spec,\n * validates them, and folds (unpivots) the data into long form so\n * the rest of the pipeline can process it as a standard single-field\n * encoding with a color discriminator.\n *\n * This runs BEFORE Phase 0 (resolveChannelSemantics).\n */\n\nimport type { ChartEncoding, EncodingValue, RawEncodingValue, StaticSeriesMetadata } from './types';\nimport type { SemanticAnnotation } from './field-semantics';\nimport { getVisCategory, inferVisCategory } from './semantic-types';\n\n// ---------------------------------------------------------------------------\n// Constants\n// ---------------------------------------------------------------------------\n\n/** Synthetic column names injected by the fold transform */\nexport const STATIC_SERIES_KEY_COLUMN = '__flint_series_key';\nexport const STATIC_SERIES_VALUE_COLUMN = '__flint_series_value';\n\n/** Channels that may accept array-valued (multi-field) encodings */\nconst MEASURE_CHANNELS = new Set(['x', 'y']);\n\n// ---------------------------------------------------------------------------\n// Shorthand normalization\n// ---------------------------------------------------------------------------\n\n/**\n * Expand the bare-string channel shorthand into a full encoding object.\n *\n * `\"weight\"` → `{ field: \"weight\" }`. Array entries (static series) are\n * expanded element-by-element, so `[\"a\", \"b\"]` → `[{ field: \"a\" }, { field: \"b\" }]`.\n * Non-string values pass through unchanged.\n */\nexport function coerceEncodingValue(value: RawEncodingValue): EncodingValue {\n    if (typeof value === 'string') {\n        return { field: value };\n    }\n    if (Array.isArray(value)) {\n        return value.map((entry) => (typeof entry === 'string' ? { field: entry } : entry));\n    }\n    return value;\n}\n\n/** Normalize a raw channel→value map, expanding any bare-string shorthands. */\nexport function normalizeEncodingShorthand(\n    encodings: Record<string, RawEncodingValue>,\n): Record<string, EncodingValue> {\n    const out: Record<string, EncodingValue> = {};\n    for (const [channel, value] of Object.entries(encodings)) {\n        out[channel] = coerceEncodingValue(value);\n    }\n    return out;\n}\n\n// ---------------------------------------------------------------------------\n// Public API\n// ---------------------------------------------------------------------------\n\n/**\n * Result of normalizing static series from the input spec.\n */\nexport interface NormalizeStaticSeriesResult {\n    /** Normalized encodings (all single-valued) */\n    encodings: Record<string, ChartEncoding>;\n    /** Folded data (or original if no static series detected) */\n    data: any[];\n    /** Static series metadata (present only when fold was applied) */\n    staticSeries?: StaticSeriesMetadata;\n}\n\n/**\n * Detect, validate, and normalize static series (array-valued encodings).\n *\n * If no array-valued encodings are present, returns the input unchanged.\n * If one is found, validates constraints and returns folded data +\n * rewritten encodings.\n *\n * @throws Error if validation fails (non-quantitative field, conflicting\n *         color binding, multiple array channels, etc.)\n */\nexport function normalizeStaticSeries(\n    rawEncodings: Record<string, RawEncodingValue>,\n    data: any[],\n    semanticTypes: Record<string, string | SemanticAnnotation>,\n): NormalizeStaticSeriesResult {\n    // Expand bare-string channel shorthands (e.g. `{ x: \"weight\" }`) first so\n    // the rest of the pipeline only ever sees full encoding objects.\n    const encodings = normalizeEncodingShorthand(rawEncodings);\n\n    // Find array-valued channels\n    const arrayChannels: { channel: string; entries: ChartEncoding[] }[] = [];\n    for (const [channel, enc] of Object.entries(encodings)) {\n        if (Array.isArray(enc)) {\n            arrayChannels.push({ channel, entries: enc });\n        }\n    }\n\n    // No static series — pass through unchanged\n    if (arrayChannels.length === 0) {\n        return {\n            encodings: encodings as Record<string, ChartEncoding>,\n            data,\n        };\n    }\n\n    // --- Validation ---\n\n    // Only one channel may have an array encoding\n    if (arrayChannels.length > 1) {\n        const channelNames = arrayChannels.map(c => c.channel).join(', ');\n        throw new Error(\n            `Static series (array encoding) found on multiple channels: ${channelNames}. ` +\n            `Only one channel may use array encoding at a time.`\n        );\n    }\n\n    const { channel, entries } = arrayChannels[0];\n\n    // Must be a measure channel\n    if (!MEASURE_CHANNELS.has(channel)) {\n        throw new Error(\n            `Static series (array encoding) is only allowed on measure channels (${[...MEASURE_CHANNELS].join(', ')}), ` +\n            `not \"${channel}\".`\n        );\n    }\n\n    // Must have at least 2 entries\n    if (entries.length < 2) {\n        throw new Error(\n            `Static series requires at least 2 fields, got ${entries.length} on channel \"${channel}\".`\n        );\n    }\n\n    // Each entry must specify a field\n    const fields: string[] = [];\n    for (const entry of entries) {\n        if (!entry.field) {\n            throw new Error(\n                `Each static series entry must have a \"field\" property.`\n            );\n        }\n        fields.push(entry.field);\n    }\n\n    // Duplicate field check\n    const fieldSet = new Set(fields);\n    if (fieldSet.size !== fields.length) {\n        throw new Error(\n            `Static series contains duplicate fields. Each field must be unique.`\n        );\n    }\n\n    // Fields must exist in data columns (if data is available)\n    if (data.length > 0) {\n        const dataColumns = new Set(Object.keys(data[0]));\n        for (const field of fields) {\n            if (!dataColumns.has(field)) {\n                throw new Error(\n                    `Static series field \"${field}\" not found in data columns. ` +\n                    `Available columns: ${[...dataColumns].join(', ')}`\n                );\n            }\n        }\n    }\n\n    // Fields must resolve to quantitative (not nominal/ordinal)\n    for (const entry of entries) {\n        const field = entry.field!;\n        const explicitType = entry.type;\n        if (explicitType === 'nominal' || explicitType === 'ordinal') {\n            throw new Error(\n                `Static series field \"${field}\" has type \"${explicitType}\" — ` +\n                `only quantitative or temporal fields are allowed in static series.`\n            );\n        }\n        // Infer if no explicit type\n        if (!explicitType && data.length > 0) {\n            const semType = semanticTypes[field];\n            const semTypeStr = typeof semType === 'string' ? semType : semType?.semanticType || '';\n            // Try semantic type registry first, then infer from data values\n            const fromRegistry = semTypeStr ? getVisCategory(semTypeStr) : null;\n            const inferred = fromRegistry ?? inferVisCategory(data.map(r => r[field]));\n            if (inferred === 'nominal' || inferred === 'ordinal') {\n                throw new Error(\n                    `Static series field \"${field}\" infers as \"${inferred}\" from data — ` +\n                    `only quantitative or temporal fields are allowed in static series.`\n                );\n            }\n        }\n    }\n\n    // Cannot combine with explicit color field binding\n    const colorEnc = encodings.color;\n    if (colorEnc && !Array.isArray(colorEnc) && colorEnc.field) {\n        throw new Error(\n            `Cannot use static series on \"${channel}\" when the color channel is already bound to ` +\n            `field \"${colorEnc.field}\". Static series implicitly uses the color channel for ` +\n            `series discrimination.`\n        );\n    }\n\n    // --- Fold (unpivot) the data ---\n    const foldedData = foldData(data, fields);\n\n    // --- Rewrite encodings ---\n    const normalizedEncodings: Record<string, ChartEncoding> = {};\n    for (const [ch, enc] of Object.entries(encodings)) {\n        if (ch === channel) {\n            // Replace array with single encoding on the synthetic value column\n            normalizedEncodings[ch] = { field: STATIC_SERIES_VALUE_COLUMN, type: 'quantitative' };\n        } else if (Array.isArray(enc)) {\n            // Shouldn't reach here (validated above), but handle gracefully\n            normalizedEncodings[ch] = enc[0];\n        } else {\n            normalizedEncodings[ch] = enc;\n        }\n    }\n\n    // Add color encoding for the synthetic key column (preserving any user-specified scheme)\n    const colorScheme = (!Array.isArray(colorEnc) && colorEnc?.scheme) ? colorEnc.scheme : undefined;\n    normalizedEncodings.color = {\n        field: STATIC_SERIES_KEY_COLUMN,\n        type: 'nominal',\n        ...(colorScheme ? { scheme: colorScheme } : {}),\n    };\n\n    const metadata: StaticSeriesMetadata = {\n        channel,\n        fields,\n        keyColumn: STATIC_SERIES_KEY_COLUMN,\n        valueColumn: STATIC_SERIES_VALUE_COLUMN,\n    };\n\n    return {\n        encodings: normalizedEncodings,\n        data: foldedData,\n        staticSeries: metadata,\n    };\n}\n\n// ---------------------------------------------------------------------------\n// Internal: fold/unpivot\n// ---------------------------------------------------------------------------\n\n/**\n * Unpivot (fold) wide-format data into long form.\n *\n * Each input row produces N output rows (one per field in `fields`).\n * Non-measure columns are preserved. Two synthetic columns are added:\n * - `__flint_series_key`: the field name (series identifier)\n * - `__flint_series_value`: the value from that field\n *\n * Rows where all fold values are null/undefined are skipped.\n */\nfunction foldData(data: any[], fields: string[]): any[] {\n    const fieldSet = new Set(fields);\n    const result: any[] = [];\n\n    for (const row of data) {\n        // Collect non-fold columns\n        const baseRow: Record<string, any> = {};\n        for (const [key, value] of Object.entries(row)) {\n            if (!fieldSet.has(key)) {\n                baseRow[key] = value;\n            }\n        }\n\n        // Create one row per fold field\n        for (const field of fields) {\n            const value = row[field];\n            // Skip null/undefined values to avoid phantom data points\n            if (value == null) continue;\n            result.push({\n                ...baseRow,\n                [STATIC_SERIES_KEY_COLUMN]: field,\n                [STATIC_SERIES_VALUE_COLUMN]: value,\n            });\n        }\n    }\n\n    return result;\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Normalize user-supplied `chart_spec.chartProperties` against a template's\n * declared `properties`, so an invalid *value* never reaches the backend spec.\n *\n * The reference docs (see `scripts/gen-chart-reference.ts`) list the accepted\n * `value` for each discrete property, but a caller may still pass a human label\n * (e.g. `\"Logarithmic\"` instead of `\"log\"`) or an outright unknown value. Left\n * unchecked, the template's `instantiate` copies that string verbatim into the\n * backend transform (e.g. Vega-Lite's `regression` `method`), which the renderer\n * silently rejects — producing a blank chart with no error.\n *\n * For every discrete property present in `chartProperties` this helper:\n *   - keeps the value untouched when it already matches an option `value`;\n *   - maps a known option `label` (case-insensitive) to its `value`, emitting an\n *     `info` warning so the caller learns the canonical value;\n *   - drops an unrecognized value (falling back to the property default) and\n *     emits a `warning`, keeping the \"safe to pass\" contract that a bad input\n *     degrades gracefully rather than rendering nothing.\n *\n * Non-discrete properties and keys not declared by the template (pivot state,\n * axis overrides, encoding overrides, …) are passed through unchanged.\n */\n\nimport type { ChartPropertyDef, ChartWarning } from './types';\n\nexport interface NormalizePropertiesResult {\n    chartProperties: Record<string, any> | undefined;\n    warnings: ChartWarning[];\n}\n\nexport function normalizeChartProperties(\n    properties: ChartPropertyDef[] | undefined,\n    chartProperties: Record<string, any> | undefined,\n): NormalizePropertiesResult {\n    const warnings: ChartWarning[] = [];\n    if (!properties || !chartProperties) {\n        return { chartProperties, warnings };\n    }\n\n    let result: Record<string, any> | undefined;\n    const ensureCopy = (): Record<string, any> => {\n        if (!result) result = { ...chartProperties };\n        return result;\n    };\n\n    for (const def of properties) {\n        if (def.type !== 'discrete') continue;\n        if (!(def.key in chartProperties)) continue;\n        const value = chartProperties[def.key];\n        if (value == null) continue;\n\n        // Already a valid accepted value — nothing to do.\n        if (def.options.some((o) => o.value === value)) continue;\n\n        // Known label (case-insensitive) → coerce to the canonical value.\n        const byLabel =\n            typeof value === 'string'\n                ? def.options.find(\n                      (o) =>\n                          o.label != null &&\n                          o.label.toLowerCase() === value.trim().toLowerCase(),\n                  )\n                : undefined;\n        if (byLabel) {\n            ensureCopy()[def.key] = byLabel.value;\n            warnings.push({\n                severity: 'info',\n                code: 'coerced-option-label',\n                message: `chartProperties.${def.key}: '${value}' is a display label; using the accepted value '${byLabel.value}' instead.`,\n            });\n            continue;\n        }\n\n        // Unrecognized value → drop it so the property falls back to its default,\n        // instead of emitting an invalid backend spec that renders blank.\n        const accepted = def.options\n            .map((o) => (o.value == null ? '(default)' : `'${o.value}'`))\n            .join(', ');\n        const copy = ensureCopy();\n        delete copy[def.key];\n        warnings.push({\n            severity: 'warning',\n            code: 'invalid-option-value',\n            message: `chartProperties.${def.key}: '${value}' is not a valid option (accepted: ${accepted}). Falling back to the default.`,\n        });\n    }\n\n    return { chartProperties: result ?? chartProperties, warnings };\n}\n","// Copyright (c) Microsoft Corporation.\n// Licensed under the MIT License.\n\n/**\n * Plotly chart assembly — Two-Stage Pipeline Coordinator.\n *\n * Reuses the **same core analysis pipeline** as the other backends:\n *   Phase 0:  resolveChannelSemantics  → ChannelSemantics\n *   Step 0a:  declareLayoutMode    → LayoutDeclaration\n *   Step 0b:  convertTemporalData  → converted data\n *   Step 0c:  filterOverflow       → filtered data, nominalCounts\n *   Phase 1:  computeLayout        → LayoutResult\n *\n * Then diverges for Phase 2 (Plotly-specific):\n *   template.instantiate → builds the Plotly figure structure\n *   plApplyLayoutToSpec  → applies layout decisions to the figure\n *\n * Key structural difference from the other backends' output:\n *   PL: { data: [{ type, x, y, … }], layout: { xaxis, yaxis, … } }\n *   Figures are pure JSON — no callback functions anywhere — so compiled\n *   specs survive serialization across process boundaries.\n *\n * column/row facets render as a subplot grid (see facet.ts), mirroring the\n * Chart.js backend's facet decisions (shared nice y-domain, leftmost-only\n * y labels, column wrapping).\n *\n * This module has NO React, Redux, or UI framework dependencies.\n */\n\nimport {\n    ChartTemplateDef,\n    ChartAssemblyInput,\n    AssembleOptions,\n    LayoutDeclaration,\n    InstantiateContext,\n} from '../core/types';\nimport type { ChartWarning, ChartEncoding } from '../core/types';\nimport { applyEncodingOverrides } from '../core/encoding-overrides';\nimport { applyAggregation } from '../core/aggregate';\nimport { applyPivot, applyTransform, type PivotSurface, type TransformSurface } from '../core/pivot';\nimport { plGetTemplateDef } from './templates';\nimport { resolveChannelSemantics, convertTemporalData } from '../core/resolve-semantics';\nimport { computeZeroDecision } from '../core/semantic-types';\nimport { filterOverflow } from '../core/filter-overflow';\nimport { computeLayout, computeChannelBudgets, deriveStretchCaps, resolveBaseSize, resolveFacetColumnsOption } from '../core/compute-layout';\nimport { decideColorMaps } from '../core/color-decisions';\nimport { plApplyCartesianAxisSpacing, plApplyLayoutToSpec, plApplyTooltips, plApplyAxisProperties } from './instantiate-spec';\nimport { plCombineFacetPanels, niceBounds, type PlotlyFacetPanel } from './facet';\nimport { normalizeStaticSeries } from '../core/static-series';\nimport { normalizeChartProperties } from '../core/normalize-properties';\n\n// ---------------------------------------------------------------------------\n// Public API\n// ---------------------------------------------------------------------------\n/**\n * Assemble a Plotly figure object (`{ data, layout }`).\n *\n * ```ts\n * const figure = assemblePlotly({\n *   data: { values: myRows },\n *   semantic_types: { weight: 'Quantity' },\n *   chart_spec: { chartType: 'Bar Chart', encodings: { x: { field: 'category' }, y: { field: 'value' } } },\n * });\n * ```\n *\n * @returns A Plotly figure with optional `_warnings` and `_width`/`_height` hints\n */\nexport function assemblePlotly(input: ChartAssemblyInput): any {\n    const chartType = input.chart_spec.chartType;\n    const semanticTypes = input.semantic_types ?? {};\n    const sizeCeiling = input.chart_spec.canvasSize;\n    const baseSize = resolveBaseSize(input.chart_spec.baseSize, sizeCeiling);\n    const canvasSize = baseSize;\n    const options = input.options ?? {};\n    let chartTemplate = plGetTemplateDef(chartType) as ChartTemplateDef;\n    if (!chartTemplate) {\n        throw new Error(`Unknown Plotly chart type: ${chartType}. Use plAllTemplateDefs to see available types.`);\n    }\n\n    const warnings: ChartWarning[] = [];\n\n    const normalizedProps = normalizeChartProperties(\n        chartTemplate.properties, input.chart_spec.chartProperties,\n    );\n    const chartProperties = normalizedProps.chartProperties;\n    warnings.push(...normalizedProps.warnings);\n\n    // ═══════════════════════════════════════════════════════════════════════\n    // PRE-PHASE: Static Series Normalization\n    // ═══════════════════════════════════════════════════════════════════════\n    const rawData = input.data.values ?? [];\n    const normalized = normalizeStaticSeries(\n        input.chart_spec.encodings, rawData, semanticTypes,\n    );\n    let data = normalized.data;\n    const staticSeries = normalized.staticSeries;\n\n    // Enrich raw encodings with their resolved semantic `type` BEFORE applying\n    // encoding actions (Sort, …) — an action like Sort must know which position\n    // channel is the measure (quantitative), which lives in the resolved\n    // semantics, not the bare field binding. Mirrors the VL assembler's\n    // `typedRawEncodings` step (a cheap preliminary semantics pass).\n    const prelimConverted = convertTemporalData(data, semanticTypes);\n    const prelimSemantics = resolveChannelSemantics(\n        normalized.encodings, data, semanticTypes, prelimConverted,\n    );\n    const typedRawEncodings: Record<string, ChartEncoding> = {};\n    for (const [ch, enc] of Object.entries(normalized.encodings)) {\n        typedRawEncodings[ch] = enc.type ? enc : { ...enc, type: prelimSemantics[ch]?.type };\n    }\n\n    // Transform (derived Category-B operator): same two-control model as VL —\n    // chartProperties.chartType (θ) + chartProperties.arrange (τ/σ/γ). Legacy\n    // composed `pivot` ids are migrated inside applyTransform. See\n    // design-docs/chart-transform-two-axes.md.\n    const authoredTemplate = chartTemplate;\n    const transformed = applyTransform(chartTemplate, typedRawEncodings, data, chartProperties, plGetTemplateDef);\n    if (transformed.chartType && transformed.chartType !== chartType) {\n        const swapped = plGetTemplateDef(transformed.chartType) as ChartTemplateDef | undefined;\n        if (swapped) chartTemplate = swapped;\n    }\n    const encodings = applyEncodingOverrides(chartTemplate, transformed.encodings, chartProperties);\n\n    // Optional aggregation transform — see vegalite/assemble for rationale.\n    data = applyAggregation(encodings, data);\n\n    // ═══════════════════════════════════════════════════════════════════════\n    // PHASE 0: Resolve Semantics (shared — completely target-agnostic)\n    // ═══════════════════════════════════════════════════════════════════════\n\n    const tplMark = chartTemplate.template?.mark;\n    const templateMarkType = typeof tplMark === 'string' ? tplMark : tplMark?.type;\n\n    const convertedData = convertTemporalData(data, semanticTypes);\n\n    const channelSemantics = resolveChannelSemantics(\n        encodings, data, semanticTypes, convertedData,\n    );\n\n    // Finalize zero-baseline (requires template mark knowledge)\n    const effectiveMarkType = templateMarkType || 'point';\n    for (const [channel, cs] of Object.entries(channelSemantics)) {\n        if ((channel === 'x' || channel === 'y') && cs.type === 'quantitative') {\n            const numericValues = data\n                .map(r => r[cs.field])\n                .filter((v: any) => v != null && typeof v === 'number' && !isNaN(v));\n            cs.zero = computeZeroDecision(\n                cs.semanticAnnotation.semanticType, channel, effectiveMarkType, numericValues,\n            );\n        }\n    }\n\n    // ═══════════════════════════════════════════════════════════════════════\n    // STEP 0a: declareLayoutMode (shared hook)\n    // ═══════════════════════════════════════════════════════════════════════\n\n    const declaration: LayoutDeclaration = chartTemplate.declareLayoutMode\n        ? chartTemplate.declareLayoutMode(channelSemantics, data, chartProperties)\n        : {};\n\n    const effectiveOptions: AssembleOptions = {\n        // Plotly fills its plot area natively (bars sized by `bargap`), so sparse\n        // categories spread out. Allow bands to expand well past the base size,\n        // matching Plotly's official low-cardinality bar style, but cap it so one\n        // or two bars don't span the whole canvas.\n        maxBandSize: 100,\n        // Plotly native font defaults (ticks/legend 12, axis titles 14).\n        baseLabelFontSize: 12,\n        baseTitleFontSize: 14,\n        ...options,\n        ...(declaration.paramOverrides || {}),\n    };\n\n    Object.assign(effectiveOptions, deriveStretchCaps(baseSize, sizeCeiling, effectiveOptions));\n    effectiveOptions.facetColumns = resolveFacetColumnsOption(input.chart_spec.chartProperties);\n\n    const {\n        addTooltips: addTooltipsOpt = false,\n    } = effectiveOptions;\n\n    // ═══════════════════════════════════════════════════════════════════════\n    // STEP 0b: filterOverflow (shared)\n    // ═══════════════════════════════════════════════════════════════════════\n\n    const allMarkTypes = new Set<string>();\n    if (templateMarkType) allMarkTypes.add(templateMarkType);\n\n    const budgets = computeChannelBudgets(\n        channelSemantics, declaration, convertedData, canvasSize, effectiveOptions,\n    );\n    const facetGridResult = budgets.facetGrid;\n\n    const overflowResult = filterOverflow(\n        channelSemantics, declaration, encodings, convertedData,\n        budgets, allMarkTypes,\n    );\n\n    const values = overflowResult.filteredData;\n    warnings.push(...overflowResult.warnings);\n\n    // ═══════════════════════════════════════════════════════════════════════\n    // PHASE 1: Compute Layout (shared — completely target-agnostic)\n    // ═══════════════════════════════════════════════════════════════════════\n\n    const layoutResult = computeLayout(\n        channelSemantics,\n        declaration,\n        values,\n        canvasSize,\n        effectiveOptions,\n        facetGridResult,\n    );\n\n    layoutResult.truncations = overflowResult.truncations;\n\n    // ═══════════════════════════════════════════════════════════════════════\n    // PHASE 2: Instantiate Plotly Figure (PL-specific)\n    // ═══════════════════════════════════════════════════════════════════════\n\n    const resolvedEncodings: Record<string, any> = {};\n    for (const [channel, encoding] of Object.entries(encodings)) {\n        const cs = channelSemantics[channel];\n        if (cs) {\n            resolvedEncodings[channel] = {\n                field: cs.field,\n                type: cs.type,\n                aggregate: encoding.aggregate,\n            };\n        }\n    }\n\n    const instantiateContext: InstantiateContext = {\n        channelSemantics,\n        layout: layoutResult,\n        table: values,\n        fullTable: convertedData,\n        resolvedEncodings,\n        encodings,\n        chartProperties,\n        staticSeries,\n        canvasSize,\n        semanticTypes,\n        chartType,\n        assembleOptions: effectiveOptions,\n        colorDecisions: decideColorMaps({\n            chartType,\n            encodings,\n            channelSemantics,\n            table: values,\n            background: 'light',\n        }),\n    };\n\n    const colField = channelSemantics.column?.field;\n    const rowField = channelSemantics.row?.field;\n    // Multi-panel faceting only applies to axis-based (cartesian) templates.\n    // Axis-less charts (Pie, Donut, Radar, Rose, Gauge, Funnel, KPI Card) use\n    // `column` (when they declare it at all) for their own internal grouping\n    // — e.g. one gauge dial per column value — and lay that out themselves,\n    // exactly mirroring the ECharts backend's `hasAxes` gate.\n    const hasAxes = chartTemplate.channels.includes('x') || chartTemplate.channels.includes('y');\n    // A template can also opt out explicitly (`selfManagesFacets`) even though\n    // it DOES declare x/y — composite multi-panel layouts (Sparkline, Bar\n    // Table) already span several internal axis pairs of their own, so the\n    // generic single-axis-pair-per-panel combiner (`facet.ts`) cannot safely\n    // recombine N pre-split instantiations of them. These templates read\n    // `column`/`row` straight off `channelSemantics` themselves instead.\n    const hasFacet = !!(colField || rowField) && hasAxes && !chartTemplate.selfManagesFacets;\n\n    let figure: any;\n    if (hasFacet) {\n        const colValues = colField ? [...new Set(values.map((r: any) => String(r[colField])))] : [''];\n        const rowValues = rowField ? [...new Set(values.map((r: any) => String(r[rowField])))] : [''];\n\n        // Shared y-domain across panels (mirror the Chart.js backend): nice\n        // bounds so the shared top/bottom land on round tick values.\n        const yField = channelSemantics.y?.field;\n        let sharedYDomain: { min: number; max: number } | undefined;\n        if (yField) {\n            const nums = values\n                .map((r: any) => r[yField])\n                .filter((v: any) => typeof v === 'number' && Number.isFinite(v)) as number[];\n            if (nums.length > 0) {\n                const rawMin = Math.min(...nums);\n                const rawMax = Math.max(...nums);\n                const forceZero = !!channelSemantics.y?.zero?.zero;\n                const min = forceZero ? Math.min(0, rawMin) : rawMin;\n                const max = forceZero ? Math.max(0, rawMax) : rawMax;\n                sharedYDomain = niceBounds(min, max);\n            }\n        }\n\n        // Column wrapping: a column-only facet with more categories than fit\n        // in one row wraps into a 2D grid (matching the other backends). The\n        // wrap width comes from the shared facet-grid budget.\n        const maxColsPerRow = (colField && !rowField)\n            ? (facetGridResult?.columns ?? colValues.length)\n            : colValues.length;\n        const wrapColumnOnly = !!colField && !rowField && maxColsPerRow < colValues.length;\n\n        const gridRows: Array<Array<{ colVal: string; rowVal: string }>> = [];\n        if (wrapColumnOnly) {\n            for (let i = 0; i < colValues.length; i += maxColsPerRow) {\n                gridRows.push(\n                    colValues.slice(i, i + maxColsPerRow).map((cv) => ({ colVal: cv, rowVal: '' })),\n                );\n            }\n        } else {\n            for (let ri = 0; ri < rowValues.length; ri++) {\n                gridRows.push(colValues.map((cv) => ({ colVal: cv, rowVal: rowValues[ri] })));\n            }\n        }\n        const gridCols = Math.max(1, ...gridRows.map(r => r.length));\n\n        // Panel plot size — same discrete/continuous rules as plApplyLayoutToSpec.\n        const xIsDiscrete = layoutResult.xNominalCount > 0 || layoutResult.xContinuousAsDiscrete > 0;\n        const yIsDiscrete = layoutResult.yNominalCount > 0 || layoutResult.yContinuousAsDiscrete > 0;\n        let panelWidth: number;\n        let panelHeight: number;\n        if (xIsDiscrete && layoutResult.xStepUnit !== 'group') {\n            const n = layoutResult.xNominalCount || layoutResult.xContinuousAsDiscrete || 0;\n            panelWidth = n > 0 ? layoutResult.xStep * n : (layoutResult.subplotWidth || canvasSize.width);\n        } else {\n            panelWidth = layoutResult.subplotWidth || canvasSize.width;\n        }\n        if (yIsDiscrete && layoutResult.yStepUnit !== 'group') {\n            const n = layoutResult.yNominalCount || layoutResult.yContinuousAsDiscrete || 0;\n            panelHeight = n > 0 ? layoutResult.yStep * n : (layoutResult.subplotHeight || canvasSize.height);\n        } else {\n            panelHeight = layoutResult.subplotHeight || canvasSize.height;\n        }\n\n        const panels: PlotlyFacetPanel[] = [];\n        for (let ri = 0; ri < gridRows.length; ri++) {\n            const cells = gridRows[ri];\n            for (let ci = 0; ci < cells.length; ci++) {\n                const { colVal, rowVal } = cells[ci];\n                const panelData = values.filter((r: any) => {\n                    if (colField && String(r[colField]) !== colVal) return false;\n                    if (rowField && String(r[rowField]) !== rowVal) return false;\n                    return true;\n                });\n\n                const panelFigure: any = structuredClone(chartTemplate.template);\n                const panelContext: InstantiateContext = {\n                    ...instantiateContext,\n                    table: panelData,\n                };\n                chartTemplate.instantiate(panelFigure, panelContext);\n                if (chartTemplate.postProcess) chartTemplate.postProcess(panelFigure, panelContext);\n\n                panels.push({\n                    rowIndex: ri,\n                    colIndex: ci,\n                    rowHeader: rowField ? rowVal : undefined,\n                    colHeader: colField ? colVal : undefined,\n                    figure: panelFigure,\n                });\n            }\n        }\n\n        figure = plCombineFacetPanels(panels, {\n            rows: gridRows.length,\n            cols: gridCols,\n            panelWidth,\n            panelHeight,\n            sharedYDomain,\n            hasColHeader: !!colField,\n            hasRowHeader: !!rowField,\n            colHeaderPerRow: wrapColumnOnly,\n            showLegend: !!channelSemantics.color?.field,\n        });\n\n        // Apply the shared x-label rotation / font decisions to every panel axis.\n        if (layoutResult.xLabel) {\n            for (const key of Object.keys(figure.layout)) {\n                if (!/^xaxis\\d*$/.test(key)) continue;\n                const ax = figure.layout[key];\n                if (layoutResult.xLabel.labelAngle) {\n                    ax.tickangle = Math.abs(layoutResult.xLabel.labelAngle);\n                }\n                if (layoutResult.xLabel.fontSize) {\n                    ax.tickfont = { ...(ax.tickfont || {}), size: layoutResult.xLabel.fontSize };\n                }\n            }\n        }\n        plApplyCartesianAxisSpacing(figure);\n        plApplyAxisProperties(figure, instantiateContext);\n        if (addTooltipsOpt) plApplyTooltips(figure);\n    } else {\n        figure = structuredClone(chartTemplate.template);\n        chartTemplate.instantiate(figure, instantiateContext);\n        plApplyLayoutToSpec(figure, instantiateContext, warnings);\n        plApplyAxisProperties(figure, instantiateContext);\n        if (addTooltipsOpt) plApplyTooltips(figure);\n        if (chartTemplate.postProcess) chartTemplate.postProcess(figure, instantiateContext);\n    }\n\n    // ═══════════════════════════════════════════════════════════════════════\n    // RESULT\n    // ═══════════════════════════════════════════════════════════════════════\n\n    if (warnings.length > 0) {\n        figure._warnings = warnings;\n    }\n\n    figure._dataLength = values.length;\n\n    if (transformed.surface) {\n        figure._transform = transformed.surface;\n    }\n    // Legacy single-control surface for getPlotlyPivot — enumerated from the\n    // authored template so ids/labels match the pre-split contract.\n    const legacyPivot = applyPivot(authoredTemplate, typedRawEncodings, data, chartProperties, plGetTemplateDef);\n    if (legacyPivot.surface) {\n        figure._pivot = legacyPivot.surface;\n    }\n\n    return figure;\n}\n\n/** Inspect the Plotly legacy (composed) view transformation surface for an input. */\nexport function getPlotlyPivot(input: ChartAssemblyInput): PivotSurface | undefined {\n    const spec = assemblePlotly(input);\n    return spec && spec._pivot ? (spec._pivot as PivotSurface) : undefined;\n}\n\n/** Inspect the Plotly two-control transform surface for an input. */\nexport function getPlotlyTransform(input: ChartAssemblyInput): TransformSurface | undefined {\n    const spec = assemblePlotly(input);\n    return spec && spec._transform ? (spec._transform as TransformSurface) : undefined;\n}\n"]}