ETH Price: $2,421.87 (-0.85%)

Transaction Decoder

Block:
5166410 at Feb-27-2018 04:38:56 PM +UTC
Transaction Fee:
0.000177213 ETH $0.43
Gas Used:
59,071 Gas / 3 Gwei

Emitted Events:

52 NeuroToken.Transfer( from=[Sender] 0x992b737a279f6ce912514addc0337c0c455f7e42, to=[Receiver] Exchange, value=5000000000000000000000 )
53 Exchange.Deposit( token=NeuroToken, user=[Sender] 0x992b737a279f6ce912514addc0337c0c455f7e42, amount=5000000000000000000000, balance=5000000000000000000000 )

Account State Difference:

  Address   Before After State Difference Code
0x2a0c0DBE...44050c208
(IDEX)
(DwarfPool)
626.296432597905644847 Eth626.296609810905644847 Eth0.000177213
0x69BEaB40...849258263
0x992b737a...c455f7E42
0.472764926055153522 Eth
Nonce: 463
0.472587713055153522 Eth
Nonce: 464
0.000177213

Execution Trace

Exchange.depositToken( token=0x69BEaB403438253f13b6e92Db91F7FB849258263, amount=5000000000000000000000 )
  • NeuroToken.transferFrom( _from=0x992b737a279F6Ce912514addc0337C0c455f7E42, _to=0x2a0c0DBEcC7E4D658f48E01e3fA353F44050c208, _value=5000000000000000000000 ) => ( True )
    File 1 of 2: Exchange
    pragma solidity ^0.4.16;
    
    contract Token {
        bytes32 public standard;
        bytes32 public name;
        bytes32 public symbol;
        uint256 public totalSupply;
        uint8 public decimals;
        bool public allowTransactions;
        mapping (address => uint256) public balanceOf;
        mapping (address => mapping (address => uint256)) public allowance;
        function transfer(address _to, uint256 _value) returns (bool success);
        function approveAndCall(address _spender, uint256 _value, bytes _extraData) returns (bool success);
        function approve(address _spender, uint256 _value) returns (bool success);
        function transferFrom(address _from, address _to, uint256 _value) returns (bool success);
    }
    
    contract Exchange {
      function assert(bool assertion) {
        if (!assertion) throw;
      }
      function safeMul(uint a, uint b) returns (uint) {
        uint c = a * b;
        assert(a == 0 || c / a == b);
        return c;
      }
    
      function safeSub(uint a, uint b) returns (uint) {
        assert(b <= a);
        return a - b;
      }
    
      function safeAdd(uint a, uint b) returns (uint) {
        uint c = a + b;
        assert(c>=a && c>=b);
        return c;
      }
      address public owner;
      mapping (address => uint256) public invalidOrder;
      event SetOwner(address indexed previousOwner, address indexed newOwner);
      modifier onlyOwner {
        assert(msg.sender == owner);
        _;
      }
      function setOwner(address newOwner) onlyOwner {
        SetOwner(owner, newOwner);
        owner = newOwner;
      }
      function getOwner() returns (address out) {
        return owner;
      }
      function invalidateOrdersBefore(address user, uint256 nonce) onlyAdmin {
        if (nonce < invalidOrder[user]) throw;
        invalidOrder[user] = nonce;
      }
    
      mapping (address => mapping (address => uint256)) public tokens; //mapping of token addresses to mapping of account balances
    
      mapping (address => bool) public admins;
      mapping (address => uint256) public lastActiveTransaction;
      mapping (bytes32 => uint256) public orderFills;
      address public feeAccount;
      uint256 public inactivityReleasePeriod;
      mapping (bytes32 => bool) public traded;
      mapping (bytes32 => bool) public withdrawn;
      event Order(address tokenBuy, uint256 amountBuy, address tokenSell, uint256 amountSell, uint256 expires, uint256 nonce, address user, uint8 v, bytes32 r, bytes32 s);
      event Cancel(address tokenBuy, uint256 amountBuy, address tokenSell, uint256 amountSell, uint256 expires, uint256 nonce, address user, uint8 v, bytes32 r, bytes32 s);
      event Trade(address tokenBuy, uint256 amountBuy, address tokenSell, uint256 amountSell, address get, address give);
      event Deposit(address token, address user, uint256 amount, uint256 balance);
      event Withdraw(address token, address user, uint256 amount, uint256 balance);
    
      function setInactivityReleasePeriod(uint256 expiry) onlyAdmin returns (bool success) {
        if (expiry > 1000000) throw;
        inactivityReleasePeriod = expiry;
        return true;
      }
    
      function Exchange(address feeAccount_) {
        owner = msg.sender;
        feeAccount = feeAccount_;
        inactivityReleasePeriod = 100000;
      }
    
      function setAdmin(address admin, bool isAdmin) onlyOwner {
        admins[admin] = isAdmin;
      }
    
      modifier onlyAdmin {
        if (msg.sender != owner && !admins[msg.sender]) throw;
        _;
      }
    
      function() external {
        throw;
      }
    
      function depositToken(address token, uint256 amount) {
        tokens[token][msg.sender] = safeAdd(tokens[token][msg.sender], amount);
        lastActiveTransaction[msg.sender] = block.number;
        if (!Token(token).transferFrom(msg.sender, this, amount)) throw;
        Deposit(token, msg.sender, amount, tokens[token][msg.sender]);
      }
    
      function deposit() payable {
        tokens[address(0)][msg.sender] = safeAdd(tokens[address(0)][msg.sender], msg.value);
        lastActiveTransaction[msg.sender] = block.number;
        Deposit(address(0), msg.sender, msg.value, tokens[address(0)][msg.sender]);
      }
    
      function withdraw(address token, uint256 amount) returns (bool success) {
        if (safeSub(block.number, lastActiveTransaction[msg.sender]) < inactivityReleasePeriod) throw;
        if (tokens[token][msg.sender] < amount) throw;
        tokens[token][msg.sender] = safeSub(tokens[token][msg.sender], amount);
        if (token == address(0)) {
          if (!msg.sender.send(amount)) throw;
        } else {
          if (!Token(token).transfer(msg.sender, amount)) throw;
        }
        Withdraw(token, msg.sender, amount, tokens[token][msg.sender]);
      }
    
      function adminWithdraw(address token, uint256 amount, address user, uint256 nonce, uint8 v, bytes32 r, bytes32 s, uint256 feeWithdrawal) onlyAdmin returns (bool success) {
        bytes32 hash = keccak256(this, token, amount, user, nonce);
        if (withdrawn[hash]) throw;
        withdrawn[hash] = true;
        if (ecrecover(keccak256("\x19Ethereum Signed Message:\n32", hash), v, r, s) != user) throw;
        if (feeWithdrawal > 50 finney) feeWithdrawal = 50 finney;
        if (tokens[token][user] < amount) throw;
        tokens[token][user] = safeSub(tokens[token][user], amount);
        tokens[token][feeAccount] = safeAdd(tokens[token][feeAccount], safeMul(feeWithdrawal, amount) / 1 ether);
        amount = safeMul((1 ether - feeWithdrawal), amount) / 1 ether;
        if (token == address(0)) {
          if (!user.send(amount)) throw;
        } else {
          if (!Token(token).transfer(user, amount)) throw;
        }
        lastActiveTransaction[user] = block.number;
        Withdraw(token, user, amount, tokens[token][user]);
      }
    
      function balanceOf(address token, address user) constant returns (uint256) {
        return tokens[token][user];
      }
    
      function trade(uint256[8] tradeValues, address[4] tradeAddresses, uint8[2] v, bytes32[4] rs) onlyAdmin returns (bool success) {
        /* amount is in amountBuy terms */
        /* tradeValues
           [0] amountBuy
           [1] amountSell
           [2] expires
           [3] nonce
           [4] amount
           [5] tradeNonce
           [6] feeMake
           [7] feeTake
         tradeAddressses
           [0] tokenBuy
           [1] tokenSell
           [2] maker
           [3] taker
         */
        if (invalidOrder[tradeAddresses[2]] > tradeValues[3]) throw;
        bytes32 orderHash = keccak256(this, tradeAddresses[0], tradeValues[0], tradeAddresses[1], tradeValues[1], tradeValues[2], tradeValues[3], tradeAddresses[2]);
        if (ecrecover(keccak256("\x19Ethereum Signed Message:\n32", orderHash), v[0], rs[0], rs[1]) != tradeAddresses[2]) throw;
        bytes32 tradeHash = keccak256(orderHash, tradeValues[4], tradeAddresses[3], tradeValues[5]); 
        if (ecrecover(keccak256("\x19Ethereum Signed Message:\n32", tradeHash), v[1], rs[2], rs[3]) != tradeAddresses[3]) throw;
        if (traded[tradeHash]) throw;
        traded[tradeHash] = true;
        if (tradeValues[6] > 100 finney) tradeValues[6] = 100 finney;
        if (tradeValues[7] > 100 finney) tradeValues[7] = 100 finney;
        if (safeAdd(orderFills[orderHash], tradeValues[4]) > tradeValues[0]) throw;
        if (tokens[tradeAddresses[0]][tradeAddresses[3]] < tradeValues[4]) throw;
        if (tokens[tradeAddresses[1]][tradeAddresses[2]] < (safeMul(tradeValues[1], tradeValues[4]) / tradeValues[0])) throw;
        tokens[tradeAddresses[0]][tradeAddresses[3]] = safeSub(tokens[tradeAddresses[0]][tradeAddresses[3]], tradeValues[4]);
        tokens[tradeAddresses[0]][tradeAddresses[2]] = safeAdd(tokens[tradeAddresses[0]][tradeAddresses[2]], safeMul(tradeValues[4], ((1 ether) - tradeValues[6])) / (1 ether));
        tokens[tradeAddresses[0]][feeAccount] = safeAdd(tokens[tradeAddresses[0]][feeAccount], safeMul(tradeValues[4], tradeValues[6]) / (1 ether));
        tokens[tradeAddresses[1]][tradeAddresses[2]] = safeSub(tokens[tradeAddresses[1]][tradeAddresses[2]], safeMul(tradeValues[1], tradeValues[4]) / tradeValues[0]);
        tokens[tradeAddresses[1]][tradeAddresses[3]] = safeAdd(tokens[tradeAddresses[1]][tradeAddresses[3]], safeMul(safeMul(((1 ether) - tradeValues[7]), tradeValues[1]), tradeValues[4]) / tradeValues[0] / (1 ether));
        tokens[tradeAddresses[1]][feeAccount] = safeAdd(tokens[tradeAddresses[1]][feeAccount], safeMul(safeMul(tradeValues[7], tradeValues[1]), tradeValues[4]) / tradeValues[0] / (1 ether));
        orderFills[orderHash] = safeAdd(orderFills[orderHash], tradeValues[4]);
        lastActiveTransaction[tradeAddresses[2]] = block.number;
        lastActiveTransaction[tradeAddresses[3]] = block.number;
      }
    }

    File 2 of 2: NeuroToken
    pragma solidity ^0.4.18;
    
    library SafeMath {
      function mul(uint256 a, uint256 b) internal pure returns (uint256) {
        if (a == 0) {
          return 0;
        }
        uint256 c = a * b;
        assert(c / a == b);
        return c;
      }
    
      function div(uint256 a, uint256 b) internal pure returns (uint256) {
        // assert(b > 0); // Solidity automatically throws 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;
      }
    
      function sub(uint256 a, uint256 b) internal pure returns (uint256) {
        assert(b <= a);
        return a - b;
      }
    
      function add(uint256 a, uint256 b) internal pure returns (uint256) {
        uint256 c = a + b;
        assert(c >= a);
        return c;
      }
    }
    
    contract Ownable {
      address public owner;
    
    
      event OwnershipTransferred(address indexed previousOwner, address indexed newOwner);
    
    
      /**
       * @dev The Ownable constructor sets the original `owner` of the contract to the sender
       * account.
       */
      function Ownable() public {
        owner = msg.sender;
      }
    
    
      /**
       * @dev Throws if called by any account other than the owner.
       */
      modifier onlyOwner() {
        require(msg.sender == owner);
        _;
      }
    
    
      /**
       * @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 {
        require(newOwner != address(0));
        OwnershipTransferred(owner, newOwner);
        owner = newOwner;
      }
    
    }
    
    contract HasNoEther is Ownable {
    
      /**
      * @dev Constructor that rejects incoming Ether
      * @dev The `payable` flag is added so we can access `msg.value` without compiler warning. If we
      * leave out payable, then Solidity will allow inheriting contracts to implement a payable
      * constructor. By doing it this way we prevent a payable constructor from working. Alternatively
      * we could use assembly to access msg.value.
      */
      function HasNoEther() public payable {
        require(msg.value == 0);
      }
    
      /**
       * @dev Disallows direct send by settings a default function without the `payable` flag.
       */
      function() external {
      }
    
      /**
       * @dev Transfer all Ether held by the contract to the owner.
       */
      function reclaimEther() external onlyOwner {
        assert(owner.send(this.balance));
      }
    }
    
    contract ERC20Basic {
      uint256 public totalSupply;
      function balanceOf(address who) public view returns (uint256);
      function transfer(address to, uint256 value) public returns (bool);
      event Transfer(address indexed from, address indexed to, uint256 value);
    }
    
    contract BasicToken is ERC20Basic {
      using SafeMath for uint256;
    
      mapping(address => uint256) balances;
    
      /**
      * @dev transfer token for 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) {
        require(_to != address(0));
        require(_value <= balances[msg.sender]);
    
        // SafeMath.sub will throw if there is not enough balance.
        balances[msg.sender] = balances[msg.sender].sub(_value);
        balances[_to] = balances[_to].add(_value);
        Transfer(msg.sender, _to, _value);
        return true;
      }
    
      /**
      * @dev Gets the balance of the specified address.
      * @param _owner The address to query the the balance of.
      * @return An uint256 representing the amount owned by the passed address.
      */
      function balanceOf(address _owner) public view returns (uint256 balance) {
        return balances[_owner];
      }
    
    }
    
    contract ERC20 is ERC20Basic {
      function allowance(address owner, address spender) public view returns (uint256);
      function transferFrom(address from, address to, uint256 value) public returns (bool);
      function approve(address spender, uint256 value) public returns (bool);
      event Approval(address indexed owner, address indexed spender, uint256 value);
    }
    
    contract StandardToken is ERC20, BasicToken {
    
      mapping (address => mapping (address => uint256)) internal allowed;
    
    
      /**
       * @dev Transfer tokens from one address to another
       * @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) {
        require(_to != address(0));
        require(_value <= balances[_from]);
        require(_value <= allowed[_from][msg.sender]);
    
        balances[_from] = balances[_from].sub(_value);
        balances[_to] = balances[_to].add(_value);
        allowed[_from][msg.sender] = allowed[_from][msg.sender].sub(_value);
        Transfer(_from, _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) {
        allowed[msg.sender][_spender] = _value;
        Approval(msg.sender, _spender, _value);
        return true;
      }
    
      /**
       * @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];
      }
    
      /**
       * approve should be called when allowed[_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
       */
      function increaseApproval(address _spender, uint _addedValue) public returns (bool) {
        allowed[msg.sender][_spender] = allowed[msg.sender][_spender].add(_addedValue);
        Approval(msg.sender, _spender, allowed[msg.sender][_spender]);
        return true;
      }
    
      function decreaseApproval(address _spender, uint _subtractedValue) public returns (bool) {
        uint oldValue = allowed[msg.sender][_spender];
        if (_subtractedValue > oldValue) {
          allowed[msg.sender][_spender] = 0;
        } else {
          allowed[msg.sender][_spender] = oldValue.sub(_subtractedValue);
        }
        Approval(msg.sender, _spender, allowed[msg.sender][_spender]);
        return true;
      }
    
    }
    
    contract BurnableToken is StandardToken {
    
        event Burn(address indexed burner, uint256 value);
    
        /**
         * @dev Burns a specific amount of tokens.
         * @param _value The amount of token to be burned.
         */
        function burn(uint256 _value) public {
            require(_value > 0);
            require(_value <= balances[msg.sender]);
            // no need to require value <= totalSupply, since that would imply the
            // sender's balance is greater than the totalSupply, which *should* be an assertion failure
    
            address burner = msg.sender;
            balances[burner] = balances[burner].sub(_value);
            totalSupply = totalSupply.sub(_value);
            Burn(burner, _value);
        }
    }
    
    contract NeuroToken is BurnableToken, HasNoEther {
    
        string public constant name = "NeuroToken";
    
        string public constant symbol = "NTK";
    
        uint8 public constant decimals = 18;
    
        uint256 constant INITIAL_SUPPLY = 100000000 * (10 ** uint256(decimals));
    
        //February 15, 2018 11:59:59 PM
        uint256 constant FREEZE_END = 1518739199;
    
        /**
        * @dev Constructor that gives msg.sender all of existing tokens.
        */
        function NeuroToken() public {
            totalSupply = INITIAL_SUPPLY;
            balances[msg.sender] = INITIAL_SUPPLY;
            Transfer(address(0), msg.sender, totalSupply);
        }
    
        /**
        * @dev transfer token for 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) {
            require(msg.sender == owner || now >= FREEZE_END);
            return super.transfer(_to, _value);
        }
    
        /**
        * @dev Transfer tokens from one address to another
        * @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) {
            require(msg.sender == owner || now >= FREEZE_END);
            return super.transferFrom(_from, _to, _value);
        }
    
        function multiTransfer(address[] recipients, uint256[] amounts) public {
            require(recipients.length == amounts.length);
            for (uint i = 0; i < recipients.length; i++) {
                transfer(recipients[i], amounts[i]);
            }
        }
    }