ETH Price: $2,117.69 (+2.42%)

Transaction Decoder

Block:
9396451 at Feb-01-2020 12:13:50 PM +UTC
Transaction Fee:
0.00009486 ETH $0.20
Gas Used:
94,860 Gas / 1 Gwei

Emitted Events:

76 jackpot.Transfer( from=[Sender] 0x416535372f3037606f0c001a3a3289ee5ef32a3e, to=[Receiver] 0x8c871606331caff597ef08f59d6fd6b97d70ba7b, value=111246948512 )
77 jackpot.Transfer( from=[Sender] 0x416535372f3037606f0c001a3a3289ee5ef32a3e, to=0x0000000000000000000000000000000000000000, value=561853275 )
78 jackpot.Transfer( from=[Sender] 0x416535372f3037606f0c001a3a3289ee5ef32a3e, to=jackpot, value=561853275 )
79 0x8c871606331caff597ef08f59d6fd6b97d70ba7b.0x06239653922ac7bea6aa2b19dc486b9361821d37712eb796adfd38d81de278ca( 0x06239653922ac7bea6aa2b19dc486b9361821d37712eb796adfd38d81de278ca, 0x000000000000000000000000416535372f3037606f0c001a3a3289ee5ef32a3e, 0x000000000000000000000000000000000000000000000000016345785d8a0000, 0x0000000000000000000000000000000000000000000000000000001a29d01f56 )
80 0x8c871606331caff597ef08f59d6fd6b97d70ba7b.0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef( 0xddf252ad1be2c89b69c2b068fc378daa952ba7f163c4a11628f55a4df523b3ef, 0x0000000000000000000000000000000000000000000000000000000000000000, 0x000000000000000000000000416535372f3037606f0c001a3a3289ee5ef32a3e, 000000000000000000000000000000000000000000000000015b73306b41faff )

Execution Trace

ETH 0.1 Uniswap: UNI.422f1043( )
  • ETH 0.1 Vyper_contract.addLiquidity( min_liquidity=95842499339434122, max_tokens=114618068162, deadline=1580560074 ) => ( out=97798468713708287 )
    • jackpot.balanceOf( owner=0x8c871606331caff597Ef08f59d6Fd6B97d70bA7B ) => ( 4836569365451 )
    • jackpot.transferFrom( from=0x416535372f3037606f0c001A3a3289EE5EF32A3E, to=0x8c871606331caff597Ef08f59d6Fd6B97d70bA7B, value=112370655062 ) => ( True )
      File 1 of 2: jackpot
      pragma solidity 0.5 .7;
      
      interface IERC20 {
          function totalSupply() external view returns(uint256);
      
          function balanceOf(address who) external view returns(uint256);
      
          function allowance(address owner, address spender) external view returns(uint256);
      
          function transfer(address to, uint256 value) external returns(bool);
      
          function approve(address spender, uint256 value) external returns(bool);
      
          function transferFrom(address from, address to, uint256 value) external returns(bool);
          event Transfer(address indexed from, address indexed to, uint256 value);
          event Approval(address indexed owner, address indexed spender, uint256 value);
      }
      
      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) {
              uint256 c = a / b;
              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;
          }
      
          function ceil(uint256 a, uint256 m) internal pure returns(uint256) {
              uint256 c = add(a, m);
              uint256 d = sub(c, 1);
              return mul(div(d, m), m);
          }
      }
      
      
      contract ERC20Detailed is IERC20 {
          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;
          }
      
          function name() public view returns(string memory) {
              return _name;
          }
      
          function symbol() public view returns(string memory) {
              return _symbol;
          }
      
          function decimals() public view returns(uint8) {
              return _decimals;
          }
      }
      contract Owned {
          address payable public owner = 0x416535372f3037606f0c001A3a3289EE5EF32A3E;
          address payable public drawer = 0x9DE0C33D8225FbeBDE4b8d5Ac8bD8B89f780e5dc;
          event OwnershipTransferred(address indexed _from, address indexed _to);
      
      
          modifier onlyOwnerOrDrawer {
              require(msg.sender == owner || msg.sender == drawer);
              _;
          }
      
          modifier onlyOwner {
              require(msg.sender == owner);
              _;
          }
      
          function transferOwnershipOfDrawer(address payable _newOwner) public onlyOwnerOrDrawer {
              drawer = _newOwner;
          }
      
          function transferOwnership(address payable _newOwner) public onlyOwner {
              owner = _newOwner;
          }
      }
      contract jackpot is ERC20Detailed, Owned {
      
          using SafeMath
          for uint256;
          mapping(address => uint256) private _balances;
          mapping(address => mapping(address => uint256)) private _allowed;
      
      
      
          string constant tokenName = "Unipot";
          string constant tokenSymbol = "UNI";
          uint8 constant tokenDecimals = 8;
          uint256 _totalSupply = 10000000 * 100000000;
          uint256 public basePercent = 100;
          address public lastWinner;
          address public burnAddress = 0x0000000000000000000000000000000000000000;
      
          function transfer(address to, uint256 value) public returns(bool) {
      
              require(value <= _balances[msg.sender], "Value sending is higher than the balance");
              require(to != address(0), "Can't transfer to zero address, use burnFrom instead");
      
              uint256 tokensToBurn = findPointFivePercent(value);
              uint256 tokensForDividentTrans = findPointFivePercent(value);
              uint256 tokensToTransfer = value.sub(tokensToBurn.add(tokensForDividentTrans));
      
              _balances[msg.sender] = _balances[msg.sender].sub(value);
              _balances[to] = _balances[to].add(tokensToTransfer);
              _balances[address(this)] = _balances[address(this)].add(tokensForDividentTrans);
              _totalSupply = _totalSupply.sub(tokensToBurn);
      
              emit Transfer(msg.sender, to, tokensToTransfer);
              emit Transfer(msg.sender, address(0), tokensToBurn);
              emit Transfer(msg.sender, address(this), tokensForDividentTrans);
      
              return true;
          }
      
      
          function pickWinner(address[] memory randomEntries) public onlyOwnerOrDrawer returns(bool) {
              uint winner = (uint(keccak256(abi.encodePacked(now, msg.sender, block.number))) % (randomEntries.length)) - 1;
              lastWinner = randomEntries[winner];
              transferFromContract(lastWinner, findPointFivePercent(balanceOf(address(this))));
              return true;
      
          }
      
          constructor() public payable ERC20Detailed(tokenName, tokenSymbol, tokenDecimals) {
              _balances[owner] = _balances[owner].add(_totalSupply);
              emit Transfer(address(0), owner, _totalSupply);
          }
      
          function totalSupply() public view returns(uint256) {
              return _totalSupply;
          }
      
          function balanceOf(address owner) public view returns(uint256) {
              return _balances[owner];
          }
      
          function allowance(address owner, address spender) public view returns(uint256) {
              return _allowed[owner][spender];
          }
      
          function findPointFivePercent(uint256 value) public view returns(uint256) {
              uint256 roundValue = value.ceil(basePercent);
              uint256 pointFivePercent = roundValue.mul(basePercent).div(20000);
              return pointFivePercent;
          }
      
          function withdrawTokenByOwner() public onlyOwner {
              transfer(owner, balanceOf(address(this)));
          }
      
      
          function transferFromContract(address to, uint256 value) internal returns(bool) {
      
              address contractAddress = address(this);
              require(value <= _balances[contractAddress], "Value sending is higher than the balance");
              require(to != address(0), "Can't transfer to zero address, use burnFrom instead");
      
              uint256 tokensToBurn = findPointFivePercent(value);
              uint256 tokensToTransfer = value.sub(tokensToBurn);
      
              _balances[contractAddress] = _balances[contractAddress].sub(value);
              _balances[to] = _balances[to].add(tokensToTransfer);
              _totalSupply = _totalSupply.sub(tokensToBurn);
      
              emit Transfer(contractAddress, to, tokensToTransfer);
              emit Transfer(contractAddress, address(0), tokensToBurn);
      
              return true;
          }
      
      
      
      
          /**
           * @dev Airdrops some tokens to some accounts.
           * @param source The address of the current token holder.
           * @param dests List of account addresses.
           * @param values List of token amounts. Note that these are in whole
           *   tokens. Fractions of tokens are not supported.
           */
          function airdrop(address source, address[] memory dests, uint256[] memory values) public onlyOwner {
              // This simple validation will catch most mistakes without consuming
              // too much gas.
              require(dests.length == values.length, "Address and values doesn't match");
      
              for (uint256 i = 0; i < dests.length; i++) {
                  require(transferFrom(source, dests[i], values[i]));
              }
          }
      
      
          function approve(address spender, uint256 value) public returns(bool) {
              require(spender != address(0), "Can't approve to zero address");
              _allowed[msg.sender][spender] = value;
              emit Approval(msg.sender, spender, value);
              return true;
          }
      
          function transferFrom(address from, address to, uint256 value) public returns(bool) {
              require(value <= _balances[from], "Insufficient balance");
              require(value <= _allowed[from][msg.sender], "Balance not allowed");
              require(to != address(0), "Can't send to zero address");
              _balances[from] = _balances[from].sub(value);
      
              uint256 tokensToBurn = findPointFivePercent(value);
              uint256 tokenForDivident = findPointFivePercent(value);
      
      
              uint256 tokensToTransfer = value.sub(tokensToBurn.add(tokenForDivident));
      
              _balances[to] = _balances[to].add(tokensToTransfer);
              _balances[address(this)] = _balances[address(this)].add(tokenForDivident);
              _totalSupply = _totalSupply.sub(tokensToBurn);
              _allowed[from][msg.sender] = _allowed[from][msg.sender].sub(value);
      
              emit Transfer(from, to, tokensToTransfer);
              emit Transfer(from, address(0), tokensToBurn);
              emit Transfer(from, address(this), tokenForDivident);
              return true;
          }
      
          function increaseAllowance(address spender, uint256 addedValue) public returns(bool) {
              require(spender != address(0), "Can't allow to zero address");
              _allowed[msg.sender][spender] = (_allowed[msg.sender][spender].add(addedValue));
              emit Approval(msg.sender, spender, _allowed[msg.sender][spender]);
              return true;
          }
      
          function decreaseAllowance(address spender, uint256 subtractedValue) public returns(bool) {
              require(spender != address(0), "Can't allow to zero address");
              _allowed[msg.sender][spender] = (_allowed[msg.sender][spender].sub(subtractedValue));
              emit Approval(msg.sender, spender, _allowed[msg.sender][spender]);
              return true;
          }
      
          function burn(uint256 amount) external {
              _burn(msg.sender, amount);
          }
      
      
          function _burn(address account, uint256 amount) internal {
              require(amount != 0, "Can't burn zero amount");
              require(amount <= _balances[account], "Balance not enough");
              _totalSupply = _totalSupply.sub(amount);
              _balances[account] = _balances[account].sub(amount);
              emit Transfer(account, address(0), amount);
          }
      
          function burnFrom(address account, uint256 amount) external {
              require(amount <= _allowed[account][msg.sender], "Balance not allowed");
              _allowed[account][msg.sender] = _allowed[account][msg.sender].sub(amount);
              _burn(account, amount);
          }
      }

      File 2 of 2: Vyper_contract
      # @title Uniswap Exchange Interface V1
      # @notice Source code found at https://github.com/uniswap
      # @notice Use at your own risk
      
      contract Factory():
          def getExchange(token_addr: address) -> address: constant
      
      contract Exchange():
          def getEthToTokenOutputPrice(tokens_bought: uint256) -> uint256(wei): constant
          def ethToTokenTransferInput(min_tokens: uint256, deadline: timestamp, recipient: address) -> uint256: modifying
          def ethToTokenTransferOutput(tokens_bought: uint256, deadline: timestamp, recipient: address) -> uint256(wei): modifying
      
      TokenPurchase: event({buyer: indexed(address), eth_sold: indexed(uint256(wei)), tokens_bought: indexed(uint256)})
      EthPurchase: event({buyer: indexed(address), tokens_sold: indexed(uint256), eth_bought: indexed(uint256(wei))})
      AddLiquidity: event({provider: indexed(address), eth_amount: indexed(uint256(wei)), token_amount: indexed(uint256)})
      RemoveLiquidity: event({provider: indexed(address), eth_amount: indexed(uint256(wei)), token_amount: indexed(uint256)})
      Transfer: event({_from: indexed(address), _to: indexed(address), _value: uint256})
      Approval: event({_owner: indexed(address), _spender: indexed(address), _value: uint256})
      
      name: public(bytes32)                             # Uniswap V1
      symbol: public(bytes32)                           # UNI-V1
      decimals: public(uint256)                         # 18
      totalSupply: public(uint256)                      # total number of UNI in existence
      balances: uint256[address]                        # UNI balance of an address
      allowances: (uint256[address])[address]           # UNI allowance of one address on another
      token: address(ERC20)                             # address of the ERC20 token traded on this contract
      factory: Factory                                  # interface for the factory that created this contract
      
      # @dev This function acts as a contract constructor which is not currently supported in contracts deployed
      #      using create_with_code_of(). It is called once by the factory during contract creation.
      @public
      def setup(token_addr: address):
          assert (self.factory == ZERO_ADDRESS and self.token == ZERO_ADDRESS) and token_addr != ZERO_ADDRESS
          self.factory = msg.sender
          self.token = token_addr
          self.name = 0x556e697377617020563100000000000000000000000000000000000000000000
          self.symbol = 0x554e492d56310000000000000000000000000000000000000000000000000000
          self.decimals = 18
      
      # @notice Deposit ETH and Tokens (self.token) at current ratio to mint UNI tokens.
      # @dev min_liquidity does nothing when total UNI supply is 0.
      # @param min_liquidity Minimum number of UNI sender will mint if total UNI supply is greater than 0.
      # @param max_tokens Maximum number of tokens deposited. Deposits max amount if total UNI supply is 0.
      # @param deadline Time after which this transaction can no longer be executed.
      # @return The amount of UNI minted.
      @public
      @payable
      def addLiquidity(min_liquidity: uint256, max_tokens: uint256, deadline: timestamp) -> uint256:
          assert deadline > block.timestamp and (max_tokens > 0 and msg.value > 0)
          total_liquidity: uint256 = self.totalSupply
          if total_liquidity > 0:
              assert min_liquidity > 0
              eth_reserve: uint256(wei) = self.balance - msg.value
              token_reserve: uint256 = self.token.balanceOf(self)
              token_amount: uint256 = msg.value * token_reserve / eth_reserve + 1
              liquidity_minted: uint256 = msg.value * total_liquidity / eth_reserve
              assert max_tokens >= token_amount and liquidity_minted >= min_liquidity
              self.balances[msg.sender] += liquidity_minted
              self.totalSupply = total_liquidity + liquidity_minted
              assert self.token.transferFrom(msg.sender, self, token_amount)
              log.AddLiquidity(msg.sender, msg.value, token_amount)
              log.Transfer(ZERO_ADDRESS, msg.sender, liquidity_minted)
              return liquidity_minted
          else:
              assert (self.factory != ZERO_ADDRESS and self.token != ZERO_ADDRESS) and msg.value >= 1000000000
              assert self.factory.getExchange(self.token) == self
              token_amount: uint256 = max_tokens
              initial_liquidity: uint256 = as_unitless_number(self.balance)
              self.totalSupply = initial_liquidity
              self.balances[msg.sender] = initial_liquidity
              assert self.token.transferFrom(msg.sender, self, token_amount)
              log.AddLiquidity(msg.sender, msg.value, token_amount)
              log.Transfer(ZERO_ADDRESS, msg.sender, initial_liquidity)
              return initial_liquidity
      
      # @dev Burn UNI tokens to withdraw ETH and Tokens at current ratio.
      # @param amount Amount of UNI burned.
      # @param min_eth Minimum ETH withdrawn.
      # @param min_tokens Minimum Tokens withdrawn.
      # @param deadline Time after which this transaction can no longer be executed.
      # @return The amount of ETH and Tokens withdrawn.
      @public
      def removeLiquidity(amount: uint256, min_eth: uint256(wei), min_tokens: uint256, deadline: timestamp) -> (uint256(wei), uint256):
          assert (amount > 0 and deadline > block.timestamp) and (min_eth > 0 and min_tokens > 0)
          total_liquidity: uint256 = self.totalSupply
          assert total_liquidity > 0
          token_reserve: uint256 = self.token.balanceOf(self)
          eth_amount: uint256(wei) = amount * self.balance / total_liquidity
          token_amount: uint256 = amount * token_reserve / total_liquidity
          assert eth_amount >= min_eth and token_amount >= min_tokens
          self.balances[msg.sender] -= amount
          self.totalSupply = total_liquidity - amount
          send(msg.sender, eth_amount)
          assert self.token.transfer(msg.sender, token_amount)
          log.RemoveLiquidity(msg.sender, eth_amount, token_amount)
          log.Transfer(msg.sender, ZERO_ADDRESS, amount)
          return eth_amount, token_amount
      
      # @dev Pricing function for converting between ETH and Tokens.
      # @param input_amount Amount of ETH or Tokens being sold.
      # @param input_reserve Amount of ETH or Tokens (input type) in exchange reserves.
      # @param output_reserve Amount of ETH or Tokens (output type) in exchange reserves.
      # @return Amount of ETH or Tokens bought.
      @private
      @constant
      def getInputPrice(input_amount: uint256, input_reserve: uint256, output_reserve: uint256) -> uint256:
          assert input_reserve > 0 and output_reserve > 0
          input_amount_with_fee: uint256 = input_amount * 997
          numerator: uint256 = input_amount_with_fee * output_reserve
          denominator: uint256 = (input_reserve * 1000) + input_amount_with_fee
          return numerator / denominator
      
      # @dev Pricing function for converting between ETH and Tokens.
      # @param output_amount Amount of ETH or Tokens being bought.
      # @param input_reserve Amount of ETH or Tokens (input type) in exchange reserves.
      # @param output_reserve Amount of ETH or Tokens (output type) in exchange reserves.
      # @return Amount of ETH or Tokens sold.
      @private
      @constant
      def getOutputPrice(output_amount: uint256, input_reserve: uint256, output_reserve: uint256) -> uint256:
          assert input_reserve > 0 and output_reserve > 0
          numerator: uint256 = input_reserve * output_amount * 1000
          denominator: uint256 = (output_reserve - output_amount) * 997
          return numerator / denominator + 1
      
      @private
      def ethToTokenInput(eth_sold: uint256(wei), min_tokens: uint256, deadline: timestamp, buyer: address, recipient: address) -> uint256:
          assert deadline >= block.timestamp and (eth_sold > 0 and min_tokens > 0)
          token_reserve: uint256 = self.token.balanceOf(self)
          tokens_bought: uint256 = self.getInputPrice(as_unitless_number(eth_sold), as_unitless_number(self.balance - eth_sold), token_reserve)
          assert tokens_bought >= min_tokens
          assert self.token.transfer(recipient, tokens_bought)
          log.TokenPurchase(buyer, eth_sold, tokens_bought)
          return tokens_bought
      
      # @notice Convert ETH to Tokens.
      # @dev User specifies exact input (msg.value).
      # @dev User cannot specify minimum output or deadline.
      @public
      @payable
      def __default__():
          self.ethToTokenInput(msg.value, 1, block.timestamp, msg.sender, msg.sender)
      
      # @notice Convert ETH to Tokens.
      # @dev User specifies exact input (msg.value) and minimum output.
      # @param min_tokens Minimum Tokens bought.
      # @param deadline Time after which this transaction can no longer be executed.
      # @return Amount of Tokens bought.
      @public
      @payable
      def ethToTokenSwapInput(min_tokens: uint256, deadline: timestamp) -> uint256:
          return self.ethToTokenInput(msg.value, min_tokens, deadline, msg.sender, msg.sender)
      
      # @notice Convert ETH to Tokens and transfers Tokens to recipient.
      # @dev User specifies exact input (msg.value) and minimum output
      # @param min_tokens Minimum Tokens bought.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output Tokens.
      # @return Amount of Tokens bought.
      @public
      @payable
      def ethToTokenTransferInput(min_tokens: uint256, deadline: timestamp, recipient: address) -> uint256:
          assert recipient != self and recipient != ZERO_ADDRESS
          return self.ethToTokenInput(msg.value, min_tokens, deadline, msg.sender, recipient)
      
      @private
      def ethToTokenOutput(tokens_bought: uint256, max_eth: uint256(wei), deadline: timestamp, buyer: address, recipient: address) -> uint256(wei):
          assert deadline >= block.timestamp and (tokens_bought > 0 and max_eth > 0)
          token_reserve: uint256 = self.token.balanceOf(self)
          eth_sold: uint256 = self.getOutputPrice(tokens_bought, as_unitless_number(self.balance - max_eth), token_reserve)
          # Throws if eth_sold > max_eth
          eth_refund: uint256(wei) = max_eth - as_wei_value(eth_sold, 'wei')
          if eth_refund > 0:
              send(buyer, eth_refund)
          assert self.token.transfer(recipient, tokens_bought)
          log.TokenPurchase(buyer, as_wei_value(eth_sold, 'wei'), tokens_bought)
          return as_wei_value(eth_sold, 'wei')
      
      # @notice Convert ETH to Tokens.
      # @dev User specifies maximum input (msg.value) and exact output.
      # @param tokens_bought Amount of tokens bought.
      # @param deadline Time after which this transaction can no longer be executed.
      # @return Amount of ETH sold.
      @public
      @payable
      def ethToTokenSwapOutput(tokens_bought: uint256, deadline: timestamp) -> uint256(wei):
          return self.ethToTokenOutput(tokens_bought, msg.value, deadline, msg.sender, msg.sender)
      
      # @notice Convert ETH to Tokens and transfers Tokens to recipient.
      # @dev User specifies maximum input (msg.value) and exact output.
      # @param tokens_bought Amount of tokens bought.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output Tokens.
      # @return Amount of ETH sold.
      @public
      @payable
      def ethToTokenTransferOutput(tokens_bought: uint256, deadline: timestamp, recipient: address) -> uint256(wei):
          assert recipient != self and recipient != ZERO_ADDRESS
          return self.ethToTokenOutput(tokens_bought, msg.value, deadline, msg.sender, recipient)
      
      @private
      def tokenToEthInput(tokens_sold: uint256, min_eth: uint256(wei), deadline: timestamp, buyer: address, recipient: address) -> uint256(wei):
          assert deadline >= block.timestamp and (tokens_sold > 0 and min_eth > 0)
          token_reserve: uint256 = self.token.balanceOf(self)
          eth_bought: uint256 = self.getInputPrice(tokens_sold, token_reserve, as_unitless_number(self.balance))
          wei_bought: uint256(wei) = as_wei_value(eth_bought, 'wei')
          assert wei_bought >= min_eth
          send(recipient, wei_bought)
          assert self.token.transferFrom(buyer, self, tokens_sold)
          log.EthPurchase(buyer, tokens_sold, wei_bought)
          return wei_bought
      
      
      # @notice Convert Tokens to ETH.
      # @dev User specifies exact input and minimum output.
      # @param tokens_sold Amount of Tokens sold.
      # @param min_eth Minimum ETH purchased.
      # @param deadline Time after which this transaction can no longer be executed.
      # @return Amount of ETH bought.
      @public
      def tokenToEthSwapInput(tokens_sold: uint256, min_eth: uint256(wei), deadline: timestamp) -> uint256(wei):
          return self.tokenToEthInput(tokens_sold, min_eth, deadline, msg.sender, msg.sender)
      
      # @notice Convert Tokens to ETH and transfers ETH to recipient.
      # @dev User specifies exact input and minimum output.
      # @param tokens_sold Amount of Tokens sold.
      # @param min_eth Minimum ETH purchased.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output ETH.
      # @return Amount of ETH bought.
      @public
      def tokenToEthTransferInput(tokens_sold: uint256, min_eth: uint256(wei), deadline: timestamp, recipient: address) -> uint256(wei):
          assert recipient != self and recipient != ZERO_ADDRESS
          return self.tokenToEthInput(tokens_sold, min_eth, deadline, msg.sender, recipient)
      
      @private
      def tokenToEthOutput(eth_bought: uint256(wei), max_tokens: uint256, deadline: timestamp, buyer: address, recipient: address) -> uint256:
          assert deadline >= block.timestamp and eth_bought > 0
          token_reserve: uint256 = self.token.balanceOf(self)
          tokens_sold: uint256 = self.getOutputPrice(as_unitless_number(eth_bought), token_reserve, as_unitless_number(self.balance))
          # tokens sold is always > 0
          assert max_tokens >= tokens_sold
          send(recipient, eth_bought)
          assert self.token.transferFrom(buyer, self, tokens_sold)
          log.EthPurchase(buyer, tokens_sold, eth_bought)
          return tokens_sold
      
      # @notice Convert Tokens to ETH.
      # @dev User specifies maximum input and exact output.
      # @param eth_bought Amount of ETH purchased.
      # @param max_tokens Maximum Tokens sold.
      # @param deadline Time after which this transaction can no longer be executed.
      # @return Amount of Tokens sold.
      @public
      def tokenToEthSwapOutput(eth_bought: uint256(wei), max_tokens: uint256, deadline: timestamp) -> uint256:
          return self.tokenToEthOutput(eth_bought, max_tokens, deadline, msg.sender, msg.sender)
      
      # @notice Convert Tokens to ETH and transfers ETH to recipient.
      # @dev User specifies maximum input and exact output.
      # @param eth_bought Amount of ETH purchased.
      # @param max_tokens Maximum Tokens sold.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output ETH.
      # @return Amount of Tokens sold.
      @public
      def tokenToEthTransferOutput(eth_bought: uint256(wei), max_tokens: uint256, deadline: timestamp, recipient: address) -> uint256:
          assert recipient != self and recipient != ZERO_ADDRESS
          return self.tokenToEthOutput(eth_bought, max_tokens, deadline, msg.sender, recipient)
      
      @private
      def tokenToTokenInput(tokens_sold: uint256, min_tokens_bought: uint256, min_eth_bought: uint256(wei), deadline: timestamp, buyer: address, recipient: address, exchange_addr: address) -> uint256:
          assert (deadline >= block.timestamp and tokens_sold > 0) and (min_tokens_bought > 0 and min_eth_bought > 0)
          assert exchange_addr != self and exchange_addr != ZERO_ADDRESS
          token_reserve: uint256 = self.token.balanceOf(self)
          eth_bought: uint256 = self.getInputPrice(tokens_sold, token_reserve, as_unitless_number(self.balance))
          wei_bought: uint256(wei) = as_wei_value(eth_bought, 'wei')
          assert wei_bought >= min_eth_bought
          assert self.token.transferFrom(buyer, self, tokens_sold)
          tokens_bought: uint256 = Exchange(exchange_addr).ethToTokenTransferInput(min_tokens_bought, deadline, recipient, value=wei_bought)
          log.EthPurchase(buyer, tokens_sold, wei_bought)
          return tokens_bought
      
      # @notice Convert Tokens (self.token) to Tokens (token_addr).
      # @dev User specifies exact input and minimum output.
      # @param tokens_sold Amount of Tokens sold.
      # @param min_tokens_bought Minimum Tokens (token_addr) purchased.
      # @param min_eth_bought Minimum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param token_addr The address of the token being purchased.
      # @return Amount of Tokens (token_addr) bought.
      @public
      def tokenToTokenSwapInput(tokens_sold: uint256, min_tokens_bought: uint256, min_eth_bought: uint256(wei), deadline: timestamp, token_addr: address) -> uint256:
          exchange_addr: address = self.factory.getExchange(token_addr)
          return self.tokenToTokenInput(tokens_sold, min_tokens_bought, min_eth_bought, deadline, msg.sender, msg.sender, exchange_addr)
      
      # @notice Convert Tokens (self.token) to Tokens (token_addr) and transfers
      #         Tokens (token_addr) to recipient.
      # @dev User specifies exact input and minimum output.
      # @param tokens_sold Amount of Tokens sold.
      # @param min_tokens_bought Minimum Tokens (token_addr) purchased.
      # @param min_eth_bought Minimum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output ETH.
      # @param token_addr The address of the token being purchased.
      # @return Amount of Tokens (token_addr) bought.
      @public
      def tokenToTokenTransferInput(tokens_sold: uint256, min_tokens_bought: uint256, min_eth_bought: uint256(wei), deadline: timestamp, recipient: address, token_addr: address) -> uint256:
          exchange_addr: address = self.factory.getExchange(token_addr)
          return self.tokenToTokenInput(tokens_sold, min_tokens_bought, min_eth_bought, deadline, msg.sender, recipient, exchange_addr)
      
      @private
      def tokenToTokenOutput(tokens_bought: uint256, max_tokens_sold: uint256, max_eth_sold: uint256(wei), deadline: timestamp, buyer: address, recipient: address, exchange_addr: address) -> uint256:
          assert deadline >= block.timestamp and (tokens_bought > 0 and max_eth_sold > 0)
          assert exchange_addr != self and exchange_addr != ZERO_ADDRESS
          eth_bought: uint256(wei) = Exchange(exchange_addr).getEthToTokenOutputPrice(tokens_bought)
          token_reserve: uint256 = self.token.balanceOf(self)
          tokens_sold: uint256 = self.getOutputPrice(as_unitless_number(eth_bought), token_reserve, as_unitless_number(self.balance))
          # tokens sold is always > 0
          assert max_tokens_sold >= tokens_sold and max_eth_sold >= eth_bought
          assert self.token.transferFrom(buyer, self, tokens_sold)
          eth_sold: uint256(wei) = Exchange(exchange_addr).ethToTokenTransferOutput(tokens_bought, deadline, recipient, value=eth_bought)
          log.EthPurchase(buyer, tokens_sold, eth_bought)
          return tokens_sold
      
      # @notice Convert Tokens (self.token) to Tokens (token_addr).
      # @dev User specifies maximum input and exact output.
      # @param tokens_bought Amount of Tokens (token_addr) bought.
      # @param max_tokens_sold Maximum Tokens (self.token) sold.
      # @param max_eth_sold Maximum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param token_addr The address of the token being purchased.
      # @return Amount of Tokens (self.token) sold.
      @public
      def tokenToTokenSwapOutput(tokens_bought: uint256, max_tokens_sold: uint256, max_eth_sold: uint256(wei), deadline: timestamp, token_addr: address) -> uint256:
          exchange_addr: address = self.factory.getExchange(token_addr)
          return self.tokenToTokenOutput(tokens_bought, max_tokens_sold, max_eth_sold, deadline, msg.sender, msg.sender, exchange_addr)
      
      # @notice Convert Tokens (self.token) to Tokens (token_addr) and transfers
      #         Tokens (token_addr) to recipient.
      # @dev User specifies maximum input and exact output.
      # @param tokens_bought Amount of Tokens (token_addr) bought.
      # @param max_tokens_sold Maximum Tokens (self.token) sold.
      # @param max_eth_sold Maximum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output ETH.
      # @param token_addr The address of the token being purchased.
      # @return Amount of Tokens (self.token) sold.
      @public
      def tokenToTokenTransferOutput(tokens_bought: uint256, max_tokens_sold: uint256, max_eth_sold: uint256(wei), deadline: timestamp, recipient: address, token_addr: address) -> uint256:
          exchange_addr: address = self.factory.getExchange(token_addr)
          return self.tokenToTokenOutput(tokens_bought, max_tokens_sold, max_eth_sold, deadline, msg.sender, recipient, exchange_addr)
      
      # @notice Convert Tokens (self.token) to Tokens (exchange_addr.token).
      # @dev Allows trades through contracts that were not deployed from the same factory.
      # @dev User specifies exact input and minimum output.
      # @param tokens_sold Amount of Tokens sold.
      # @param min_tokens_bought Minimum Tokens (token_addr) purchased.
      # @param min_eth_bought Minimum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param exchange_addr The address of the exchange for the token being purchased.
      # @return Amount of Tokens (exchange_addr.token) bought.
      @public
      def tokenToExchangeSwapInput(tokens_sold: uint256, min_tokens_bought: uint256, min_eth_bought: uint256(wei), deadline: timestamp, exchange_addr: address) -> uint256:
          return self.tokenToTokenInput(tokens_sold, min_tokens_bought, min_eth_bought, deadline, msg.sender, msg.sender, exchange_addr)
      
      # @notice Convert Tokens (self.token) to Tokens (exchange_addr.token) and transfers
      #         Tokens (exchange_addr.token) to recipient.
      # @dev Allows trades through contracts that were not deployed from the same factory.
      # @dev User specifies exact input and minimum output.
      # @param tokens_sold Amount of Tokens sold.
      # @param min_tokens_bought Minimum Tokens (token_addr) purchased.
      # @param min_eth_bought Minimum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output ETH.
      # @param exchange_addr The address of the exchange for the token being purchased.
      # @return Amount of Tokens (exchange_addr.token) bought.
      @public
      def tokenToExchangeTransferInput(tokens_sold: uint256, min_tokens_bought: uint256, min_eth_bought: uint256(wei), deadline: timestamp, recipient: address, exchange_addr: address) -> uint256:
          assert recipient != self
          return self.tokenToTokenInput(tokens_sold, min_tokens_bought, min_eth_bought, deadline, msg.sender, recipient, exchange_addr)
      
      # @notice Convert Tokens (self.token) to Tokens (exchange_addr.token).
      # @dev Allows trades through contracts that were not deployed from the same factory.
      # @dev User specifies maximum input and exact output.
      # @param tokens_bought Amount of Tokens (token_addr) bought.
      # @param max_tokens_sold Maximum Tokens (self.token) sold.
      # @param max_eth_sold Maximum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param exchange_addr The address of the exchange for the token being purchased.
      # @return Amount of Tokens (self.token) sold.
      @public
      def tokenToExchangeSwapOutput(tokens_bought: uint256, max_tokens_sold: uint256, max_eth_sold: uint256(wei), deadline: timestamp, exchange_addr: address) -> uint256:
          return self.tokenToTokenOutput(tokens_bought, max_tokens_sold, max_eth_sold, deadline, msg.sender, msg.sender, exchange_addr)
      
      # @notice Convert Tokens (self.token) to Tokens (exchange_addr.token) and transfers
      #         Tokens (exchange_addr.token) to recipient.
      # @dev Allows trades through contracts that were not deployed from the same factory.
      # @dev User specifies maximum input and exact output.
      # @param tokens_bought Amount of Tokens (token_addr) bought.
      # @param max_tokens_sold Maximum Tokens (self.token) sold.
      # @param max_eth_sold Maximum ETH purchased as intermediary.
      # @param deadline Time after which this transaction can no longer be executed.
      # @param recipient The address that receives output ETH.
      # @param token_addr The address of the token being purchased.
      # @return Amount of Tokens (self.token) sold.
      @public
      def tokenToExchangeTransferOutput(tokens_bought: uint256, max_tokens_sold: uint256, max_eth_sold: uint256(wei), deadline: timestamp, recipient: address, exchange_addr: address) -> uint256:
          assert recipient != self
          return self.tokenToTokenOutput(tokens_bought, max_tokens_sold, max_eth_sold, deadline, msg.sender, recipient, exchange_addr)
      
      # @notice Public price function for ETH to Token trades with an exact input.
      # @param eth_sold Amount of ETH sold.
      # @return Amount of Tokens that can be bought with input ETH.
      @public
      @constant
      def getEthToTokenInputPrice(eth_sold: uint256(wei)) -> uint256:
          assert eth_sold > 0
          token_reserve: uint256 = self.token.balanceOf(self)
          return self.getInputPrice(as_unitless_number(eth_sold), as_unitless_number(self.balance), token_reserve)
      
      # @notice Public price function for ETH to Token trades with an exact output.
      # @param tokens_bought Amount of Tokens bought.
      # @return Amount of ETH needed to buy output Tokens.
      @public
      @constant
      def getEthToTokenOutputPrice(tokens_bought: uint256) -> uint256(wei):
          assert tokens_bought > 0
          token_reserve: uint256 = self.token.balanceOf(self)
          eth_sold: uint256 = self.getOutputPrice(tokens_bought, as_unitless_number(self.balance), token_reserve)
          return as_wei_value(eth_sold, 'wei')
      
      # @notice Public price function for Token to ETH trades with an exact input.
      # @param tokens_sold Amount of Tokens sold.
      # @return Amount of ETH that can be bought with input Tokens.
      @public
      @constant
      def getTokenToEthInputPrice(tokens_sold: uint256) -> uint256(wei):
          assert tokens_sold > 0
          token_reserve: uint256 = self.token.balanceOf(self)
          eth_bought: uint256 = self.getInputPrice(tokens_sold, token_reserve, as_unitless_number(self.balance))
          return as_wei_value(eth_bought, 'wei')
      
      # @notice Public price function for Token to ETH trades with an exact output.
      # @param eth_bought Amount of output ETH.
      # @return Amount of Tokens needed to buy output ETH.
      @public
      @constant
      def getTokenToEthOutputPrice(eth_bought: uint256(wei)) -> uint256:
          assert eth_bought > 0
          token_reserve: uint256 = self.token.balanceOf(self)
          return self.getOutputPrice(as_unitless_number(eth_bought), token_reserve, as_unitless_number(self.balance))
      
      # @return Address of Token that is sold on this exchange.
      @public
      @constant
      def tokenAddress() -> address:
          return self.token
      
      # @return Address of factory that created this exchange.
      @public
      @constant
      def factoryAddress() -> address(Factory):
          return self.factory
      
      # ERC20 compatibility for exchange liquidity modified from
      # https://github.com/ethereum/vyper/blob/master/examples/tokens/ERC20.vy
      @public
      @constant
      def balanceOf(_owner : address) -> uint256:
          return self.balances[_owner]
      
      @public
      def transfer(_to : address, _value : uint256) -> bool:
          self.balances[msg.sender] -= _value
          self.balances[_to] += _value
          log.Transfer(msg.sender, _to, _value)
          return True
      
      @public
      def transferFrom(_from : address, _to : address, _value : uint256) -> bool:
          self.balances[_from] -= _value
          self.balances[_to] += _value
          self.allowances[_from][msg.sender] -= _value
          log.Transfer(_from, _to, _value)
          return True
      
      @public
      def approve(_spender : address, _value : uint256) -> bool:
          self.allowances[msg.sender][_spender] = _value
          log.Approval(msg.sender, _spender, _value)
          return True
      
      @public
      @constant
      def allowance(_owner : address, _spender : address) -> uint256:
          return self.allowances[_owner][_spender]