/* Copyright (c) 2013-2016 Jeffrey Pfau
 *
 * This Source Code Form is subject to the terms of the Mozilla Public
 * License, v. 2.0. If a copy of the MPL was not distributed with this
 * file, You can obtain one at http://mozilla.org/MPL/2.0/. */
#include <mgba/internal/gba/audio.h>

#include <mgba/internal/arm/macros.h>
#include <mgba/core/sync.h>
#include <mgba/internal/gba/dma.h>
#include <mgba/internal/gba/gba.h>
#include <mgba/internal/gba/io.h>
#include <mgba/internal/gba/serialize.h>
#include <mgba/internal/gba/video.h>

#define MP2K_LOCK_MAX 8

mLOG_DEFINE_CATEGORY(GBA_AUDIO, "GBA Audio", "gba.audio");

const unsigned GBA_AUDIO_SAMPLES = 2048;
const int GBA_AUDIO_VOLUME_MAX = 0x100;

static const int SAMPLE_INTERVAL = GBA_ARM7TDMI_FREQUENCY / 0x4000;

static int _applyBias(struct GBAAudio* audio, int sample);
static void _sample(struct mTiming* timing, void* user, uint32_t cyclesLate);

void GBAAudioInit(struct GBAAudio* audio, size_t samples) {
	audio->sampleEvent.context = audio;
	audio->sampleEvent.name = "GBA Audio Sample";
	audio->sampleEvent.callback = _sample;
	audio->sampleEvent.priority = 0x18;
	audio->psg.p = NULL;
	uint8_t* nr52 = (uint8_t*) &audio->p->memory.io[GBA_REG(SOUNDCNT_X)];
#ifdef __BIG_ENDIAN__
	++nr52;
#endif
	GBAudioInit(&audio->psg, samples, nr52, GB_AUDIO_GBA);
	audio->psg.timing = &audio->p->timing;
	audio->psg.frameEvent.context = audio;
	audio->samples = samples;

	audio->forceDisableChA = false;
	audio->forceDisableChB = false;
	audio->masterVolume = GBA_AUDIO_VOLUME_MAX;
	audio->sampleInterval = GBA_ARM7TDMI_FREQUENCY / 0x8000;
}

void GBAAudioReset(struct GBAAudio* audio) {
	GBAudioReset(&audio->psg);
	mTimingDeschedule(&audio->p->timing, &audio->psg.frameEvent);
	mTimingSchedule(&audio->p->timing, &audio->psg.frameEvent, 0);
	mTimingDeschedule(&audio->p->timing, &audio->sampleEvent);
	mTimingSchedule(&audio->p->timing, &audio->sampleEvent, 0);
	audio->chA.dmaSource = 1;
	audio->chB.dmaSource = 2;
	audio->chA.fifoWrite = 0;
	audio->chA.fifoRead = 0;
	audio->chA.internalSample = 0;
	audio->chA.internalRemaining = 0;
	memset(audio->chA.fifo, 0, sizeof(audio->chA.fifo));
	audio->chB.fifoWrite = 0;
	audio->chB.fifoRead = 0;
	audio->chB.internalSample = 0;
	audio->chB.internalRemaining = 0;
	memset(audio->chB.fifo, 0, sizeof(audio->chB.fifo));
	int i;
	for (i = 0; i < 8; ++i) {
		audio->chA.samples[i] = 0;
		audio->chB.samples[i] = 0;
	}
	audio->soundbias = 0x200;
	audio->volume = 0;
	audio->volumeChA = false;
	audio->volumeChB = false;
	audio->lastSample = 0;
	audio->sampleIndex = 0;
	audio->chARight = false;
	audio->chALeft = false;
	audio->chATimer = false;
	audio->chBRight = false;
	audio->chBLeft = false;
	audio->chBTimer = false;
	audio->enable = false;
	if (audio->sampleInterval != GBA_ARM7TDMI_FREQUENCY / 0x8000) {
		audio->sampleInterval = GBA_ARM7TDMI_FREQUENCY / 0x8000;
		if (audio->p->stream && audio->p->stream->audioRateChanged) {
			audio->p->stream->audioRateChanged(audio->p->stream, GBA_ARM7TDMI_FREQUENCY / audio->sampleInterval);
		}
	}
	audio->psg.sampleInterval = audio->sampleInterval;
}

void GBAAudioDeinit(struct GBAAudio* audio) {
	GBAudioDeinit(&audio->psg);
}

void GBAAudioResizeBuffer(struct GBAAudio* audio, size_t samples) {
	mCoreSyncLockAudio(audio->p->sync);
	audio->samples = samples;
	audio->psg.samples = samples;
	mCoreSyncConsumeAudio(audio->p->sync);
}

void GBAAudioScheduleFifoDma(struct GBAAudio* audio, int number, struct GBADMA* info) {
	info->reg = GBADMARegisterSetDestControl(info->reg, GBA_DMA_FIXED);
	info->reg = GBADMARegisterSetWidth(info->reg, 1);
	switch (info->dest) {
	case GBA_BASE_IO | GBA_REG_FIFO_A_LO:
		audio->chA.dmaSource = number;
		break;
	case GBA_BASE_IO | GBA_REG_FIFO_B_LO:
		audio->chB.dmaSource = number;
		break;
	default:
		mLOG(GBA_AUDIO, GAME_ERROR, "Invalid FIFO destination: 0x%08X", info->dest);
		return;
	}
}

void GBAAudioWriteSOUND1CNT_LO(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR10(&audio->psg, value);
}

void GBAAudioWriteSOUND1CNT_HI(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR11(&audio->psg, value);
	GBAudioWriteNR12(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUND1CNT_X(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR13(&audio->psg, value);
	GBAudioWriteNR14(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUND2CNT_LO(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR21(&audio->psg, value);
	GBAudioWriteNR22(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUND2CNT_HI(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR23(&audio->psg, value);
	GBAudioWriteNR24(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUND3CNT_LO(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	audio->psg.ch3.size = GBAudioRegisterBankGetSize(value);
	audio->psg.ch3.bank = GBAudioRegisterBankGetBank(value);
	GBAudioWriteNR30(&audio->psg, value);
}

void GBAAudioWriteSOUND3CNT_HI(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR31(&audio->psg, value);
	audio->psg.ch3.volume = GBAudioRegisterBankVolumeGetVolumeGBA(value >> 8);
}

void GBAAudioWriteSOUND3CNT_X(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR33(&audio->psg, value);
	GBAudioWriteNR34(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUND4CNT_LO(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR41(&audio->psg, value);
	GBAudioWriteNR42(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUND4CNT_HI(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR43(&audio->psg, value);
	GBAudioWriteNR44(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUNDCNT_LO(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	GBAudioWriteNR50(&audio->psg, value);
	GBAudioWriteNR51(&audio->psg, value >> 8);
}

void GBAAudioWriteSOUNDCNT_HI(struct GBAAudio* audio, uint16_t value) {
	audio->volume = GBARegisterSOUNDCNT_HIGetVolume(value);
	audio->volumeChA = GBARegisterSOUNDCNT_HIGetVolumeChA(value);
	audio->volumeChB = GBARegisterSOUNDCNT_HIGetVolumeChB(value);
	audio->chARight = GBARegisterSOUNDCNT_HIGetChARight(value);
	audio->chALeft = GBARegisterSOUNDCNT_HIGetChALeft(value);
	audio->chATimer = GBARegisterSOUNDCNT_HIGetChATimer(value);
	audio->chBRight = GBARegisterSOUNDCNT_HIGetChBRight(value);
	audio->chBLeft = GBARegisterSOUNDCNT_HIGetChBLeft(value);
	audio->chBTimer = GBARegisterSOUNDCNT_HIGetChBTimer(value);
	if (GBARegisterSOUNDCNT_HIIsChAReset(value)) {
		audio->chA.fifoWrite = 0;
		audio->chA.fifoRead = 0;
	}
	if (GBARegisterSOUNDCNT_HIIsChBReset(value)) {
		audio->chB.fifoWrite = 0;
		audio->chB.fifoRead = 0;
	}
}

void GBAAudioWriteSOUNDCNT_X(struct GBAAudio* audio, uint16_t value) {
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing));
	audio->enable = GBAudioEnableGetEnable(value);
	GBAudioWriteNR52(&audio->psg, value);
	if (!audio->enable) {
		int i;
		for (i = GBA_REG_SOUND1CNT_LO; i < GBA_REG_SOUNDCNT_HI; i += 2) {
			audio->p->memory.io[i >> 1] = 0;
		}
		audio->psg.ch3.size = 0;
		audio->psg.ch3.bank = 0;
		audio->psg.ch3.volume = 0;
		audio->volume = 0;
		audio->volumeChA = 0;
		audio->volumeChB = 0;
		audio->p->memory.io[GBA_REG(SOUNDCNT_HI)] &= 0xFF00;
	}
}

void GBAAudioWriteSOUNDBIAS(struct GBAAudio* audio, uint16_t value) {
	int32_t timestamp = mTimingCurrentTime(&audio->p->timing);
	GBAAudioSample(audio, timestamp);
	audio->soundbias = value;
	int32_t oldSampleInterval = audio->sampleInterval;
	audio->sampleInterval = 0x200 >> GBARegisterSOUNDBIASGetResolution(value);
	if (oldSampleInterval != audio->sampleInterval) {
		timestamp -= audio->lastSample;
		audio->sampleIndex = timestamp >> (9 - GBARegisterSOUNDBIASGetResolution(value));
		if (audio->sampleIndex >= GBA_MAX_SAMPLES) {
			audio->sampleIndex = 0;
		}
		if (audio->p->stream && audio->p->stream->audioRateChanged) {
			audio->p->stream->audioRateChanged(audio->p->stream, GBA_ARM7TDMI_FREQUENCY / audio->sampleInterval);
		}
	}
}

void GBAAudioWriteWaveRAM(struct GBAAudio* audio, int address, uint32_t value) {
	int bank = !audio->psg.ch3.bank;

	// When the audio hardware is turned off, it acts like bank 0 has been
	// selected in SOUND3CNT_L, so any read comes from bank 1.
	if (!audio->enable) {
		bank = 1;
	}

	GBAudioRun(&audio->psg, mTimingCurrentTime(audio->psg.timing), 0x4);
	audio->psg.ch3.wavedata32[address | (bank * 4)] = value;
}

uint32_t GBAAudioReadWaveRAM(struct GBAAudio* audio, int address) {
	int bank = !audio->psg.ch3.bank;

	// When the audio hardware is turned off, it acts like bank 0 has been
	// selected in SOUND3CNT_L, so any read comes from bank 1.
	if (!audio->enable) {
		bank = 1;
	}

	GBAudioRun(&audio->psg, mTimingCurrentTime(audio->psg.timing), 0x4);
	return audio->psg.ch3.wavedata32[address | (bank * 4)];
}

uint32_t GBAAudioWriteFIFO(struct GBAAudio* audio, int address, uint32_t value) {
	struct GBAAudioFIFO* channel;
	switch (address) {
	case GBA_REG_FIFO_A_LO:
		channel = &audio->chA;
		break;
	case GBA_REG_FIFO_B_LO:
		channel = &audio->chB;
		break;
	default:
		mLOG(GBA_AUDIO, ERROR, "Bad FIFO write to address 0x%03x", address);
		return value;
	}
	channel->fifo[channel->fifoWrite] = value;
	++channel->fifoWrite;
	if (channel->fifoWrite == GBA_AUDIO_FIFO_SIZE) {
		channel->fifoWrite = 0;
	}
	return channel->fifo[channel->fifoWrite];
}

void GBAAudioSampleFIFO(struct GBAAudio* audio, int fifoId, int32_t cycles) {
	struct GBAAudioFIFO* channel;
	if (fifoId == 0) {
		channel = &audio->chA;
	} else if (fifoId == 1) {
		channel = &audio->chB;
	} else {
		mLOG(GBA_AUDIO, ERROR, "Bad FIFO write to address 0x%03x", fifoId);
		return;
	}
	int fifoSize;
	if (channel->fifoWrite >= channel->fifoRead) {
		fifoSize = channel->fifoWrite - channel->fifoRead;
	} else {
		fifoSize = GBA_AUDIO_FIFO_SIZE - channel->fifoRead + channel->fifoWrite;
	}
	if (GBA_AUDIO_FIFO_SIZE - fifoSize > 4 && channel->dmaSource > 0) {
		struct GBADMA* dma = &audio->p->memory.dma[channel->dmaSource];
		if (GBADMARegisterGetTiming(dma->reg) == GBA_DMA_TIMING_CUSTOM) {
			dma->when = mTimingCurrentTime(&audio->p->timing) - cycles;
			dma->nextCount = 4;
			GBADMARecalculateCycles(audio->p);
			GBADMASchedule(audio->p, channel->dmaSource, dma);
		}
	}
	if (!channel->internalRemaining && fifoSize) {
		channel->internalSample = channel->fifo[channel->fifoRead];
		channel->internalRemaining = 4;
		++channel->fifoRead;
		if (channel->fifoRead == GBA_AUDIO_FIFO_SIZE) {
			channel->fifoRead = 0;
		}
	}
	int32_t until = mTimingUntil(&audio->p->timing, &audio->sampleEvent) - 1;
	int bits = 2 << GBARegisterSOUNDBIASGetResolution(audio->soundbias);
	until += 1 << (9 - GBARegisterSOUNDBIASGetResolution(audio->soundbias));
	until >>= 9 - GBARegisterSOUNDBIASGetResolution(audio->soundbias);
	if (UNLIKELY(bits < until)) {
		until = bits;
	}
	int i;
	for (i = bits - until; i < bits; ++i) {
		channel->samples[i] = channel->internalSample;
	}
	if (channel->internalRemaining) {
		channel->internalSample >>= 8;
		--channel->internalRemaining;
	}
}

static int _applyBias(struct GBAAudio* audio, int sample) {
	sample += GBARegisterSOUNDBIASGetBias(audio->soundbias);
	if (sample >= 0x400) {
		sample = 0x3FF;
	} else if (sample < 0) {
		sample = 0;
	}
	return ((sample - GBARegisterSOUNDBIASGetBias(audio->soundbias)) * audio->masterVolume * 3) >> 4;
}

void GBAAudioSample(struct GBAAudio* audio, int32_t timestamp) {
	timestamp -= audio->lastSample;
	timestamp -= audio->sampleIndex * audio->sampleInterval; // TODO: This can break if the interval changes between samples

	int maxSample = 2 << GBARegisterSOUNDBIASGetResolution(audio->soundbias);
	int sample;
	for (sample = audio->sampleIndex; timestamp >= audio->sampleInterval && sample < maxSample; ++sample, timestamp -= audio->sampleInterval) {
		int16_t sampleLeft = 0;
		int16_t sampleRight = 0;
		int psgShift = 4 - audio->volume;
		GBAudioRun(&audio->psg, sample * audio->sampleInterval + audio->lastSample, 0xF);
		GBAudioSamplePSG(&audio->psg, &sampleLeft, &sampleRight);
		sampleLeft >>= psgShift;
		sampleRight >>= psgShift;

		if (!audio->forceDisableChA) {
			if (audio->chALeft) {
				sampleLeft += (audio->chA.samples[sample] << 2) >> !audio->volumeChA;
			}

			if (audio->chARight) {
				sampleRight += (audio->chA.samples[sample] << 2) >> !audio->volumeChA;
			}
		}

		if (!audio->forceDisableChB) {
			if (audio->chBLeft) {
				sampleLeft += (audio->chB.samples[sample] << 2) >> !audio->volumeChB;
			}

			if (audio->chBRight) {
				sampleRight += (audio->chB.samples[sample] << 2) >> !audio->volumeChB;
			}
		}

		sampleLeft = _applyBias(audio, sampleLeft);
		sampleRight = _applyBias(audio, sampleRight);
		audio->currentSamples[sample].left = sampleLeft;
		audio->currentSamples[sample].right = sampleRight;
	}

	audio->sampleIndex = sample;
	if (sample == maxSample) {
		audio->lastSample += SAMPLE_INTERVAL;
		audio->sampleIndex = 0;
	}
}

static void _sample(struct mTiming* timing, void* user, uint32_t cyclesLate) {
	struct GBAAudio* audio = user;
	GBAAudioSample(audio, mTimingCurrentTime(&audio->p->timing) - cyclesLate);

	int samples = 2 << GBARegisterSOUNDBIASGetResolution(audio->soundbias);
	memset(audio->chA.samples, audio->chA.samples[samples - 1], sizeof(audio->chA.samples));
	memset(audio->chB.samples, audio->chB.samples[samples - 1], sizeof(audio->chB.samples));

	mCoreSyncLockAudio(audio->p->sync);
	mAudioBufferWrite(&audio->psg.buffer, (int16_t*) audio->currentSamples, samples);
	if (audio->p->stream) {
		if (audio->p->stream->postAudioFrame) {
			int i;
			for (i = 0; i < samples; ++i) {
				audio->p->stream->postAudioFrame(audio->p->stream, audio->currentSamples[i].left,audio->currentSamples[i].right);
			}
		}
		if (audio->p->stream->postAudioBuffer) {
			unsigned produced = mAudioBufferAvailable(&audio->psg.buffer);
			bool wait = produced >= audio->samples;
			if (wait) {
				audio->p->stream->postAudioBuffer(audio->p->stream, &audio->psg.buffer);
			}
		}
	}
	if (!mCoreSyncProduceAudio(audio->p->sync, &audio->psg.buffer)) {
		// Interrupted
		audio->p->earlyExit = true;
	}

	mTimingSchedule(timing, &audio->sampleEvent, SAMPLE_INTERVAL - cyclesLate);
}

void GBAAudioSerialize(const struct GBAAudio* audio, struct GBASerializedState* state) {
	GBAudioPSGSerialize(&audio->psg, &state->audio.psg, &state->audio.flags);

	STORE_32(audio->chA.internalSample, 0, &state->audio.internalA);
	STORE_32(audio->chB.internalSample, 0, &state->audio.internalB);
	memcpy(state->samples.chA, audio->chA.samples, sizeof(audio->chA.samples));
	memcpy(state->samples.chB, audio->chB.samples, sizeof(audio->chB.samples));

	size_t i;
	for (i = 0; i < GBA_MAX_SAMPLES; ++i) {
		STORE_16(audio->currentSamples[i].left, 0, &state->currentSamples[i].left);
		STORE_16(audio->currentSamples[i].right, 0, &state->currentSamples[i].right);
	}
	STORE_32(audio->lastSample, 0, &state->audio.lastSample);

	int readA = audio->chA.fifoRead;
	int readB = audio->chB.fifoRead;
	for (i = 0; i < GBA_AUDIO_FIFO_SIZE; ++i) {
		STORE_32(audio->chA.fifo[readA], i << 2, state->audio.fifoA);
		STORE_32(audio->chB.fifo[readB], i << 2, state->audio.fifoB);
		++readA;
		if (readA == GBA_AUDIO_FIFO_SIZE) {
			readA = 0;
		}
		++readB;
		if (readB == GBA_AUDIO_FIFO_SIZE) {
			readB = 0;
		}
	}

	int fifoSizeA;
	if (audio->chA.fifoWrite >= audio->chA.fifoRead) {
		fifoSizeA = audio->chA.fifoWrite - audio->chA.fifoRead;
	} else {
		fifoSizeA = GBA_AUDIO_FIFO_SIZE - audio->chA.fifoRead + audio->chA.fifoWrite;
	}

	int fifoSizeB;
	if (audio->chB.fifoWrite >= audio->chB.fifoRead) {
		fifoSizeB = audio->chB.fifoWrite - audio->chB.fifoRead;
	} else {
		fifoSizeB = GBA_AUDIO_FIFO_SIZE - audio->chB.fifoRead + audio->chB.fifoWrite;
	}

	GBASerializedAudioFlags flags = 0;
	flags = GBASerializedAudioFlagsSetFIFOSamplesA(flags, fifoSizeA);
	flags = GBASerializedAudioFlagsSetFIFOSamplesB(flags, fifoSizeB);
	flags = GBASerializedAudioFlagsSetFIFOInternalSamplesA(flags, audio->chA.internalRemaining);
	flags = GBASerializedAudioFlagsSetFIFOInternalSamplesB(flags, audio->chB.internalRemaining);
	STORE_16(flags, 0, &state->audio.gbaFlags);

	GBASerializedAudioFlags2 flags2 = 0;
	flags2 = GBASerializedAudioFlags2SetSampleIndex(flags2, audio->sampleIndex);
	// This flag was introduced in 0.11 and will only ever be 0, 1 or 2, so we
	// add 1 and use a non-zero value to mark its presence in the state file
	flags2 = GBASerializedAudioFlags2SetChASource(flags2, audio->chA.dmaSource + 1);
	flags2 = GBASerializedAudioFlags2SetChBSource(flags2, audio->chB.dmaSource + 1);
	STORE_32(flags2, 0, &state->audio.gbaFlags2);

	STORE_32(audio->sampleEvent.when - mTimingCurrentTime(&audio->p->timing), 0, &state->audio.nextSample);
}

void GBAAudioDeserialize(struct GBAAudio* audio, const struct GBASerializedState* state) {
	GBAudioPSGDeserialize(&audio->psg, &state->audio.psg, &state->audio.flags);

	uint16_t reg;
	LOAD_16(reg, GBA_REG_SOUND1CNT_X, state->io);
	GBAIOWrite(audio->p, GBA_REG_SOUND1CNT_X, reg & 0x7FFF);
	LOAD_16(reg, GBA_REG_SOUND2CNT_HI, state->io);
	GBAIOWrite(audio->p, GBA_REG_SOUND2CNT_HI, reg & 0x7FFF);
	LOAD_16(reg, GBA_REG_SOUND3CNT_X, state->io);
	GBAIOWrite(audio->p, GBA_REG_SOUND3CNT_X, reg & 0x7FFF);
	LOAD_16(reg, GBA_REG_SOUND4CNT_HI, state->io);
	GBAIOWrite(audio->p, GBA_REG_SOUND4CNT_HI, reg & 0x7FFF);

	LOAD_32(audio->chA.internalSample, 0, &state->audio.internalA);
	LOAD_32(audio->chB.internalSample, 0, &state->audio.internalB);
	memcpy(audio->chA.samples, state->samples.chA, sizeof(audio->chA.samples));
	memcpy(audio->chB.samples, state->samples.chB, sizeof(audio->chB.samples));

	size_t i;
	for (i = 0; i < GBA_MAX_SAMPLES; ++i) {
		LOAD_16(audio->currentSamples[i].left, 0, &state->currentSamples[i].left);
		LOAD_16(audio->currentSamples[i].right, 0, &state->currentSamples[i].right);
	}
	LOAD_32(audio->lastSample, 0, &state->audio.lastSample);

	int readA = 0;
	int readB = 0;
	for (i = 0; i < GBA_AUDIO_FIFO_SIZE; ++i) {
		LOAD_32(audio->chA.fifo[readA], i << 2, state->audio.fifoA);
		LOAD_32(audio->chB.fifo[readB], i << 2, state->audio.fifoB);
		++readA;
		++readB;
	}
	audio->chA.fifoRead = 0;
	audio->chB.fifoRead = 0;

	GBASerializedAudioFlags flags;
	LOAD_16(flags, 0, &state->audio.gbaFlags);
	audio->chA.fifoWrite = GBASerializedAudioFlagsGetFIFOSamplesA(flags);
	audio->chB.fifoWrite = GBASerializedAudioFlagsGetFIFOSamplesB(flags);
	audio->chA.internalRemaining = GBASerializedAudioFlagsGetFIFOInternalSamplesA(flags);
	audio->chB.internalRemaining = GBASerializedAudioFlagsGetFIFOInternalSamplesB(flags);

	GBASerializedAudioFlags2 flags2;
	LOAD_32(flags2, 0, &state->audio.gbaFlags2);
	audio->sampleIndex = GBASerializedAudioFlags2GetSampleIndex(flags2);
	// This flag was introduced in 0.11 and will only ever be 0, 1 or 2, so we
	// add 1 and use a non-zero value to mark its presence in the state file
	if (GBASerializedAudioFlags2GetChASource(flags2) > 0) {
		audio->chA.dmaSource = GBASerializedAudioFlags2GetChASource(flags2) - 1;
	}
	if (GBASerializedAudioFlags2GetChBSource(flags2) > 0) {
		audio->chB.dmaSource = GBASerializedAudioFlags2GetChBSource(flags2) - 1;
	}

	uint32_t when;
	LOAD_32(when, 0, &state->audio.nextSample);
	if (state->versionMagic < 0x01000007) {
		audio->lastSample = when - SAMPLE_INTERVAL;
	}
	mTimingSchedule(&audio->p->timing, &audio->sampleEvent, when);
}
