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Contract

0x9a0D63911620f7fC15c3C020edBE4D7267ea3E4D
 

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$0.00

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From
To
Create Wallet214624932024-12-23 3:26:113 hrs ago1734924371IN
0x9a0D6391...267ea3E4D
0 ETH0.0016287510.01331282
Create Wallet214609442024-12-22 22:13:239 hrs ago1734905603IN
0x9a0D6391...267ea3E4D
0 ETH0.001409938.66803485
Create Wallet214600652024-12-22 19:16:1112 hrs ago1734894971IN
0x9a0D6391...267ea3E4D
0 ETH0.001094626.72954319
Create Wallet214599902024-12-22 19:01:1112 hrs ago1734894071IN
0x9a0D6391...267ea3E4D
0 ETH0.001174657.22158553
Create Wallet214597532024-12-22 18:13:4713 hrs ago1734891227IN
0x9a0D6391...267ea3E4D
0 ETH0.00137998.48406175
Create Wallet214595292024-12-22 17:28:3513 hrs ago1734888515IN
0x9a0D6391...267ea3E4D
0 ETH0.001385998.52083596
Create Wallet214594562024-12-22 17:13:5914 hrs ago1734887639IN
0x9a0D6391...267ea3E4D
0 ETH0.001264127.77163699
Create Wallet214594532024-12-22 17:13:2314 hrs ago1734887603IN
0x9a0D6391...267ea3E4D
0 ETH0.00113676.98826314
Create Wallet214587082024-12-22 14:43:3516 hrs ago1734878615IN
0x9a0D6391...267ea3E4D
0 ETH0.0016438610.10621676
Create Wallet214562572024-12-22 6:30:4724 hrs ago1734849047IN
0x9a0D6391...267ea3E4D
0 ETH0.000953855.86416418
Create Wallet214545312024-12-22 0:43:3530 hrs ago1734828215IN
0x9a0D6391...267ea3E4D
0 ETH0.001153817.09346623
Create Wallet214544862024-12-22 0:34:3530 hrs ago1734827675IN
0x9a0D6391...267ea3E4D
0 ETH0.001341728.24868808
Create Wallet214531942024-12-21 20:13:3535 hrs ago1734812015IN
0x9a0D6391...267ea3E4D
0 ETH0.001246317.66215257
Create Wallet214529002024-12-21 19:13:5936 hrs ago1734808439IN
0x9a0D6391...267ea3E4D
0 ETH0.001543279.48776881
Create Wallet214528982024-12-21 19:13:3536 hrs ago1734808415IN
0x9a0D6391...267ea3E4D
0 ETH0.001535669.4410169
Create Wallet214528252024-12-21 18:58:5936 hrs ago1734807539IN
0x9a0D6391...267ea3E4D
0 ETH0.0020976312.8959107
Create Wallet214526032024-12-21 18:13:5937 hrs ago1734804839IN
0x9a0D6391...267ea3E4D
0 ETH0.001257157.72936945
Create Wallet214526022024-12-21 18:13:4737 hrs ago1734804827IN
0x9a0D6391...267ea3E4D
0 ETH0.001275447.84120354
Create Wallet214517052024-12-21 15:13:2340 hrs ago1734794003IN
0x9a0D6391...267ea3E4D
0 ETH0.0017140110.53746804
Create Wallet214515112024-12-21 14:34:2340 hrs ago1734791663IN
0x9a0D6391...267ea3E4D
0 ETH0.0019392911.92247327
Create Wallet214508852024-12-21 12:28:2342 hrs ago1734784103IN
0x9a0D6391...267ea3E4D
0 ETH0.001463768.99899643
Create Wallet214508112024-12-21 12:13:3543 hrs ago1734783215IN
0x9a0D6391...267ea3E4D
0 ETH0.0017707110.88607651
Create Wallet214470942024-12-20 23:43:472 days ago1734738227IN
0x9a0D6391...267ea3E4D
0 ETH0.001565259.62360588
Create Wallet214463452024-12-20 21:13:352 days ago1734729215IN
0x9a0D6391...267ea3E4D
0 ETH0.0027837117.11383103
Create Wallet214462992024-12-20 21:04:232 days ago1734728663IN
0x9a0D6391...267ea3E4D
0 ETH0.0022929914.09693567
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214624932024-12-23 3:26:113 hrs ago1734924371
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 Contract Creation0 ETH
214609442024-12-22 22:13:239 hrs ago1734905603
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214600652024-12-22 19:16:1112 hrs ago1734894971
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214599902024-12-22 19:01:1112 hrs ago1734894071
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214597532024-12-22 18:13:4713 hrs ago1734891227
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 Contract Creation0 ETH
214595292024-12-22 17:28:3513 hrs ago1734888515
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214594562024-12-22 17:13:5914 hrs ago1734887639
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214594532024-12-22 17:13:2314 hrs ago1734887603
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214587082024-12-22 14:43:3516 hrs ago1734878615
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214562572024-12-22 6:30:4724 hrs ago1734849047
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214545312024-12-22 0:43:3530 hrs ago1734828215
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214544862024-12-22 0:34:3530 hrs ago1734827675
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 Contract Creation0 ETH
214531942024-12-21 20:13:3535 hrs ago1734812015
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214529002024-12-21 19:13:5936 hrs ago1734808439
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 Contract Creation0 ETH
214528982024-12-21 19:13:3536 hrs ago1734808415
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 Contract Creation0 ETH
214528252024-12-21 18:58:5936 hrs ago1734807539
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 Contract Creation0 ETH
214526032024-12-21 18:13:5937 hrs ago1734804839
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 Contract Creation0 ETH
214526022024-12-21 18:13:4737 hrs ago1734804827
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 Contract Creation0 ETH
214517052024-12-21 15:13:2340 hrs ago1734794003
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214515112024-12-21 14:34:2340 hrs ago1734791663
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 Contract Creation0 ETH
214508852024-12-21 12:28:2342 hrs ago1734784103
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214508112024-12-21 12:13:3543 hrs ago1734783215
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214470942024-12-20 23:43:472 days ago1734738227
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214463452024-12-20 21:13:352 days ago1734729215
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
214462992024-12-20 21:04:232 days ago1734728663
0x9a0D6391...267ea3E4D
 Contract Creation0 ETH
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Contract Source Code Verified (Exact Match)

Contract Name:
WalletFactory

Compiler Version
v0.7.5+commit.eb77ed08

Optimization Enabled:
No with 200 runs

Other Settings:
default evmVersion, Apache-2.0 license

Contract Source Code (Solidity Multiple files format)

File 1 of 8: WalletFactory.sol
// SPDX-License-Identifier: Apache-2.0
pragma solidity 0.7.5;
import './WalletSimple.sol';
import './CloneFactory.sol';

contract WalletFactory is CloneFactory {
  address public implementationAddress;

  event WalletCreated(address newWalletAddress, address[] allowedSigners);

  constructor(address _implementationAddress) {
    implementationAddress = _implementationAddress;
  }

  function createWallet(address[] calldata allowedSigners, bytes32 salt)
    external
  {
    // include the signers in the salt so any contract deployed to a given address must have the same signers
    bytes32 finalSalt = keccak256(abi.encodePacked(allowedSigners, salt));

    address payable clone = createClone(implementationAddress, finalSalt);
    WalletSimple(clone).init(allowedSigners);
    emit WalletCreated(clone, allowedSigners);
  }
}

File 2 of 8: Batcher.sol
pragma solidity 0.7.5;

// SPDX-License-Identifier: Apache-2.0

/**
 *
 * Batcher
 * =======
 *
 * Contract that can take a batch of transfers, presented in the form of a recipients array and a values array, and
 * funnel off those funds to the correct accounts in a single transaction. This is useful for saving on gas when a
 * bunch of funds need to be transferred to different accounts.
 *
 * If more ETH is sent to `batch` than it is instructed to transfer, contact the contract owner in order to recover the excess.
 * If any tokens are accidentally transferred to this account, contact the contract owner in order to recover them.
 *
 */

contract Batcher {
  event BatchTransfer(address sender, address recipient, uint256 value);
  event OwnerChange(address prevOwner, address newOwner);
  event TransferGasLimitChange(
    uint256 prevTransferGasLimit,
    uint256 newTransferGasLimit
  );

  address public owner;
  uint256 public lockCounter;
  uint256 public transferGasLimit;

  constructor() {
    lockCounter = 1;
    owner = msg.sender;
    emit OwnerChange(address(0), owner);
    transferGasLimit = 20000;
    emit TransferGasLimitChange(0, transferGasLimit);
  }

  modifier lockCall() {
    lockCounter++;
    uint256 localCounter = lockCounter;
    _;
    require(localCounter == lockCounter, 'Reentrancy attempt detected');
  }

  modifier onlyOwner() {
    require(msg.sender == owner, 'Not owner');
    _;
  }

  /**
   * Transfer funds in a batch to each of recipients
   * @param recipients The list of recipients to send to
   * @param values The list of values to send to recipients.
   *  The recipient with index i in recipients array will be sent values[i].
   *  Thus, recipients and values must be the same length
   */
  function batch(address[] calldata recipients, uint256[] calldata values)
    external
    payable
    lockCall
  {
    require(recipients.length != 0, 'Must send to at least one person');
    require(
      recipients.length == values.length,
      'Unequal recipients and values'
    );
    require(recipients.length < 256, 'Too many recipients');

    // Try to send all given amounts to all given recipients
    // Revert everything if any transfer fails
    for (uint8 i = 0; i < recipients.length; i++) {
      require(recipients[i] != address(0), 'Invalid recipient address');
      (bool success, ) = recipients[i].call{
        value: values[i],
        gas: transferGasLimit
      }('');
      require(success, 'Send failed');
      emit BatchTransfer(msg.sender, recipients[i], values[i]);
    }
  }

  /**
   * Recovery function for the contract owner to recover any ERC20 tokens or ETH that may get lost in the control of this contract.
   * @param to The recipient to send to
   * @param value The ETH value to send with the call
   * @param data The data to send along with the call
   */
  function recover(
    address to,
    uint256 value,
    bytes calldata data
  ) external onlyOwner returns (bytes memory) {
    (bool success, bytes memory returnData) = to.call{ value: value }(data);
    return returnData;
  }

  /**
   * Transfers ownership of the contract ot the new owner
   * @param newOwner The address to transfer ownership of the contract to
   */
  function transferOwnership(address newOwner) external onlyOwner {
    require(newOwner != address(0), 'Invalid new owner');
    emit OwnerChange(owner, newOwner);
    owner = newOwner;
  }

  /**
   * Change the gas limit that is sent along with batched transfers.
   * This is intended to protect against any EVM level changes that would require
   * a new amount of gas for an internal send to complete.
   * @param newTransferGasLimit The new gas limit to send along with batched transfers
   */
  function changeTransferGasLimit(uint256 newTransferGasLimit)
    external
    onlyOwner
  {
    require(newTransferGasLimit >= 2300, 'Transfer gas limit too low');
    emit TransferGasLimitChange(transferGasLimit, newTransferGasLimit);
    transferGasLimit = newTransferGasLimit;
  }

  fallback() external payable {
    revert('Invalid fallback');
  }

  receive() external payable {
    revert('Invalid receive');
  }
}

File 3 of 8: CloneFactory.sol
// SPDX-License-Identifier: MIT
// from https://github.com/optionality/clone-factory
pragma solidity 0.7.5;

/*
    The MIT License (MIT)
    Copyright (c) 2018 Murray Software, LLC.
    Permission is hereby granted, free of charge, to any person obtaining
    a copy of this software and associated documentation files (the
    "Software"), to deal in the Software without restriction, including
    without limitation the rights to use, copy, modify, merge, publish,
    distribute, sublicense, and/or sell copies of the Software, and to
    permit persons to whom the Software is furnished to do so, subject to
    the following conditions:
    The above copyright notice and this permission notice shall be included
    in all copies or substantial portions of the Software.
    THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS
    OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
    MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT.
    IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY
    CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION OF CONTRACT,
    TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION WITH THE
    SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
*/
//solhint-disable max-line-length
//solhint-disable no-inline-assembly

contract CloneFactory {
  function createClone(address target, bytes32 salt)
    internal
    returns (address payable result)
  {
    bytes20 targetBytes = bytes20(target);
    assembly {
      // load the next free memory slot as a place to store the clone contract data
      let clone := mload(0x40)

      // The bytecode block below is responsible for contract initialization
      // during deployment, it is worth noting the proxied contract constructor will not be called during
      // the cloning procedure and that is why an initialization function needs to be called after the
      // clone is created
      mstore(
        clone,
        0x3d602d80600a3d3981f3363d3d373d3d3d363d73000000000000000000000000
      )

      // This stores the address location of the implementation contract
      // so that the proxy knows where to delegate call logic to
      mstore(add(clone, 0x14), targetBytes)

      // The bytecode block is the actual code that is deployed for each clone created.
      // It forwards all calls to the already deployed implementation via a delegatecall
      mstore(
        add(clone, 0x28),
        0x5af43d82803e903d91602b57fd5bf30000000000000000000000000000000000
      )

      // deploy the contract using the CREATE2 opcode
      // this deploys the minimal proxy defined above, which will proxy all
      // calls to use the logic defined in the implementation contract `target`
      result := create2(0, clone, 0x37, salt)
    }
  }

  function isClone(address target, address query)
    internal
    view
    returns (bool result)
  {
    bytes20 targetBytes = bytes20(target);
    assembly {
      // load the next free memory slot as a place to store the comparison clone
      let clone := mload(0x40)

      // The next three lines store the expected bytecode for a miniml proxy
      // that targets `target` as its implementation contract
      mstore(
        clone,
        0x363d3d373d3d3d363d7300000000000000000000000000000000000000000000
      )
      mstore(add(clone, 0xa), targetBytes)
      mstore(
        add(clone, 0x1e),
        0x5af43d82803e903d91602b57fd5bf30000000000000000000000000000000000
      )

      // the next two lines store the bytecode of the contract that we are checking in memory
      let other := add(clone, 0x40)
      extcodecopy(query, other, 0, 0x2d)

      // Check if the expected bytecode equals the actual bytecode and return the result
      result := and(
        eq(mload(clone), mload(other)),
        eq(mload(add(clone, 0xd)), mload(add(other, 0xd)))
      )
    }
  }
}

File 4 of 8: ERC20Interface.sol
// SPDX-License-Identifier: UNLICENSED
pragma solidity 0.7.5;

/**
 * Contract that exposes the needed erc20 token functions
 */

abstract contract ERC20Interface {
  // Send _value amount of tokens to address _to
  function transfer(address _to, uint256 _value)
    public
    virtual
    returns (bool success);

  // Get the account balance of another account with address _owner
  function balanceOf(address _owner)
    public
    virtual
    view
    returns (uint256 balance);
}

File 5 of 8: Forwarder.sol
// SPDX-License-Identifier: Apache-2.0
pragma solidity 0.7.5;
import './TransferHelper.sol';
import './ERC20Interface.sol';

/**
 * Contract that will forward any incoming Ether to the creator of the contract
 *
 */
contract Forwarder {
  // Address to which any funds sent to this contract will be forwarded
  address public parentAddress;
  event ForwarderDeposited(address from, uint256 value, bytes data);

  /**
   * Initialize the contract, and sets the destination address to that of the creator
   */
  function init(address _parentAddress) external onlyUninitialized {
    parentAddress = _parentAddress;
    uint256 value = address(this).balance;

    if (value == 0) {
      return;
    }

    (bool success, ) = parentAddress.call{ value: value }('');
    require(success, 'Flush failed');
    // NOTE: since we are forwarding on initialization,
    // we don't have the context of the original sender.
    // We still emit an event about the forwarding but set
    // the sender to the forwarder itself
    emit ForwarderDeposited(address(this), value, msg.data);
  }

  /**
   * Modifier that will execute internal code block only if the sender is the parent address
   */
  modifier onlyParent {
    require(msg.sender == parentAddress, 'Only Parent');
    _;
  }

  /**
   * Modifier that will execute internal code block only if the contract has not been initialized yet
   */
  modifier onlyUninitialized {
    require(parentAddress == address(0x0), 'Already initialized');
    _;
  }

  /**
   * Default function; Gets called when data is sent but does not match any other function
   */
  fallback() external payable {
    flush();
  }

  /**
   * Default function; Gets called when Ether is deposited with no data, and forwards it to the parent address
   */
  receive() external payable {
    flush();
  }

  /**
   * Execute a token transfer of the full balance from the forwarder token to the parent address
   * @param tokenContractAddress the address of the erc20 token contract
   */
  function flushTokens(address tokenContractAddress) external onlyParent {
    ERC20Interface instance = ERC20Interface(tokenContractAddress);
    address forwarderAddress = address(this);
    uint256 forwarderBalance = instance.balanceOf(forwarderAddress);
    if (forwarderBalance == 0) {
      return;
    }

    TransferHelper.safeTransfer(
      tokenContractAddress,
      parentAddress,
      forwarderBalance
    );
  }

  /**
   * Flush the entire balance of the contract to the parent address.
   */
  function flush() public {
    uint256 value = address(this).balance;

    if (value == 0) {
      return;
    }

    (bool success, ) = parentAddress.call{ value: value }('');
    require(success, 'Flush failed');
    emit ForwarderDeposited(msg.sender, value, msg.data);
  }
}

File 6 of 8: ForwarderFactory.sol
// SPDX-License-Identifier: Apache-2.0
pragma solidity 0.7.5;
import './Forwarder.sol';
import './CloneFactory.sol';

contract ForwarderFactory is CloneFactory {
  address public implementationAddress;

  event ForwarderCreated(address newForwarderAddress, address parentAddress);

  constructor(address _implementationAddress) {
    implementationAddress = _implementationAddress;
  }

  function createForwarder(address parent, bytes32 salt) external {
    // include the signers in the salt so any contract deployed to a given address must have the same signers
    bytes32 finalSalt = keccak256(abi.encodePacked(parent, salt));

    address payable clone = createClone(implementationAddress, finalSalt);
    Forwarder(clone).init(parent);
    emit ForwarderCreated(clone, parent);
  }
}

File 7 of 8: TransferHelper.sol
// SPDX-License-Identifier: Apache-2.0

pragma solidity >=0.7.5;

// helper methods for interacting with ERC20 tokens and sending ETH that do not consistently return true/false
library TransferHelper {
    function safeApprove(
        address token,
        address to,
        uint256 value
    ) internal {
        // bytes4(keccak256(bytes('approve(address,uint256)')));
        (bool success, bytes memory data) = token.call(abi.encodeWithSelector(0x095ea7b3, to, value));
        require(
            success && (data.length == 0 || abi.decode(data, (bool))),
            'TransferHelper::safeApprove: approve failed'
        );
    }

    function safeTransfer(
        address token,
        address to,
        uint256 value
    ) internal {
        // bytes4(keccak256(bytes('transfer(address,uint256)')));
        (bool success, bytes memory data) = token.call(abi.encodeWithSelector(0xa9059cbb, to, value));
        require(
            success && (data.length == 0 || abi.decode(data, (bool))),
            'TransferHelper::safeTransfer: transfer failed'
        );
    }

    function safeTransferFrom(
        address token,
        address from,
        address to,
        uint256 value
    ) internal {
        // bytes4(keccak256(bytes('transferFrom(address,address,uint256)')));
        (bool success, bytes memory data) = token.call(abi.encodeWithSelector(0x23b872dd, from, to, value));
        require(
            success && (data.length == 0 || abi.decode(data, (bool))),
            'TransferHelper::transferFrom: transferFrom failed'
        );
    }

    function safeTransferETH(address to, uint256 value) internal {
        (bool success, ) = to.call{value: value}(new bytes(0));
        require(success, 'TransferHelper::safeTransferETH: ETH transfer failed');
    }
}

File 8 of 8: WalletSimple.sol
// SPDX-License-Identifier: Apache-2.0
pragma solidity 0.7.5;
import './TransferHelper.sol';
import './Forwarder.sol';
import './ERC20Interface.sol';

/**
 *
 * WalletSimple
 * ============
 *
 * Basic multi-signer wallet designed for use in a co-signing environment where 2 signatures are required to move funds.
 * Typically used in a 2-of-3 signing configuration. Uses ecrecover to allow for 2 signatures in a single transaction.
 *
 * The first signature is created on the operation hash (see Data Formats) and passed to sendMultiSig/sendMultiSigToken
 * The signer is determined by verifyMultiSig().
 *
 * The second signature is created by the submitter of the transaction and determined by msg.signer.
 *
 * Data Formats
 * ============
 *
 * The signature is created with ethereumjs-util.ecsign(operationHash).
 * Like the eth_sign RPC call, it packs the values as a 65-byte array of [r, s, v].
 * Unlike eth_sign, the message is not prefixed.
 *
 * The operationHash the result of keccak256(prefix, toAddress, value, data, expireTime).
 * For ether transactions, `prefix` is "ETHER".
 * For token transaction, `prefix` is "ERC20" and `data` is the tokenContractAddress.
 *
 *
 */
contract WalletSimple {
  // Events
  event Deposited(address from, uint256 value, bytes data);
  event SafeModeActivated(address msgSender);
  event Transacted(
    address msgSender, // Address of the sender of the message initiating the transaction
    address otherSigner, // Address of the signer (second signature) used to initiate the transaction
    bytes32 operation, // Operation hash (see Data Formats)
    address toAddress, // The address the transaction was sent to
    uint256 value, // Amount of Wei sent to the address
    bytes data // Data sent when invoking the transaction
  );

  event BatchTransfer(address sender, address recipient, uint256 value);
  // this event shows the other signer and the operation hash that they signed
  // specific batch transfer events are emitted in Batcher
  event BatchTransacted(
    address msgSender, // Address of the sender of the message initiating the transaction
    address otherSigner, // Address of the signer (second signature) used to initiate the transaction
    bytes32 operation // Operation hash (see Data Formats)
  );

  // Public fields
  mapping(address => bool) public signers; // The addresses that can co-sign transactions on the wallet
  bool public safeMode = false; // When active, wallet may only send to signer addresses
  bool public initialized = false; // True if the contract has been initialized

  // Internal fields
  uint256 private constant MAX_SEQUENCE_ID_INCREASE = 10000;
  uint256 constant SEQUENCE_ID_WINDOW_SIZE = 10;
  uint256[SEQUENCE_ID_WINDOW_SIZE] recentSequenceIds;

  /**
   * Set up a simple multi-sig wallet by specifying the signers allowed to be used on this wallet.
   * 2 signers will be required to send a transaction from this wallet.
   * Note: The sender is NOT automatically added to the list of signers.
   * Signers CANNOT be changed once they are set
   *
   * @param allowedSigners An array of signers on the wallet
   */
  function init(address[] calldata allowedSigners) external onlyUninitialized {
    require(allowedSigners.length == 3, 'Invalid number of signers');

    for (uint8 i = 0; i < allowedSigners.length; i++) {
      require(allowedSigners[i] != address(0), 'Invalid signer');
      signers[allowedSigners[i]] = true;
    }
    initialized = true;
  }

  /**
   * Get the network identifier that signers must sign over
   * This provides protection signatures being replayed on other chains
   * This must be a virtual function because chain-specific contracts will need
   *    to override with their own network ids. It also can't be a field
   *    to allow this contract to be used by proxy with delegatecall, which will
   *    not pick up on state variables
   */
  function getNetworkId() internal virtual pure returns (string memory) {
    return 'ETHER';
  }

  /**
   * Get the network identifier that signers must sign over for token transfers
   * This provides protection signatures being replayed on other chains
   * This must be a virtual function because chain-specific contracts will need
   *    to override with their own network ids. It also can't be a field
   *    to allow this contract to be used by proxy with delegatecall, which will
   *    not pick up on state variables
   */
  function getTokenNetworkId() internal virtual pure returns (string memory) {
    return 'ERC20';
  }

  /**
   * Get the network identifier that signers must sign over for batch transfers
   * This provides protection signatures being replayed on other chains
   * This must be a virtual function because chain-specific contracts will need
   *    to override with their own network ids. It also can't be a field
   *    to allow this contract to be used by proxy with delegatecall, which will
   *    not pick up on state variables
   */
  function getBatchNetworkId() internal virtual pure returns (string memory) {
    return 'ETHER-Batch';
  }

  /**
   * Determine if an address is a signer on this wallet
   * @param signer address to check
   * returns boolean indicating whether address is signer or not
   */
  function isSigner(address signer) public view returns (bool) {
    return signers[signer];
  }

  /**
   * Modifier that will execute internal code block only if the sender is an authorized signer on this wallet
   */
  modifier onlySigner {
    require(isSigner(msg.sender), 'Non-signer in onlySigner method');
    _;
  }

  /**
   * Modifier that will execute internal code block only if the contract has not been initialized yet
   */
  modifier onlyUninitialized {
    require(!initialized, 'Contract already initialized');
    _;
  }

  /**
   * Gets called when a transaction is received with data that does not match any other method
   */
  fallback() external payable {
    if (msg.value > 0) {
      // Fire deposited event if we are receiving funds
      Deposited(msg.sender, msg.value, msg.data);
    }
  }

  /**
   * Gets called when a transaction is received with ether and no data
   */
  receive() external payable {
    if (msg.value > 0) {
      // Fire deposited event if we are receiving funds
      Deposited(msg.sender, msg.value, msg.data);
    }
  }

  /**
   * Execute a multi-signature transaction from this wallet using 2 signers: one from msg.sender and the other from ecrecover.
   * Sequence IDs are numbers starting from 1. They are used to prevent replay attacks and may not be repeated.
   *
   * @param toAddress the destination address to send an outgoing transaction
   * @param value the amount in Wei to be sent
   * @param data the data to send to the toAddress when invoking the transaction
   * @param expireTime the number of seconds since 1970 for which this transaction is valid
   * @param sequenceId the unique sequence id obtainable from getNextSequenceId
   * @param signature see Data Formats
   */
  function sendMultiSig(
    address toAddress,
    uint256 value,
    bytes calldata data,
    uint256 expireTime,
    uint256 sequenceId,
    bytes calldata signature
  ) external onlySigner {
    // Verify the other signer
    bytes32 operationHash = keccak256(
      abi.encodePacked(
        getNetworkId(),
        toAddress,
        value,
        data,
        expireTime,
        sequenceId
      )
    );

    address otherSigner = verifyMultiSig(
      toAddress,
      operationHash,
      signature,
      expireTime,
      sequenceId
    );

    // Success, send the transaction
    (bool success, ) = toAddress.call{ value: value }(data);
    require(success, 'Call execution failed');

    emit Transacted(
      msg.sender,
      otherSigner,
      operationHash,
      toAddress,
      value,
      data
    );
  }

  /**
   * Execute a batched multi-signature transaction from this wallet using 2 signers: one from msg.sender and the other from ecrecover.
   * Sequence IDs are numbers starting from 1. They are used to prevent replay attacks and may not be repeated.
   * The recipients and values to send are encoded in two arrays, where for index i, recipients[i] will be sent values[i].
   *
   * @param recipients The list of recipients to send to
   * @param values The list of values to send to
   * @param expireTime the number of seconds since 1970 for which this transaction is valid
   * @param sequenceId the unique sequence id obtainable from getNextSequenceId
   * @param signature see Data Formats
   */
  function sendMultiSigBatch(
    address[] calldata recipients,
    uint256[] calldata values,
    uint256 expireTime,
    uint256 sequenceId,
    bytes calldata signature
  ) external onlySigner {
    require(recipients.length != 0, 'Not enough recipients');
    require(
      recipients.length == values.length,
      'Unequal recipients and values'
    );
    require(recipients.length < 256, 'Too many recipients, max 255');

    // Verify the other signer
    bytes32 operationHash = keccak256(
      abi.encodePacked(
        getBatchNetworkId(),
        recipients,
        values,
        expireTime,
        sequenceId
      )
    );

    // the first parameter (toAddress) is used to ensure transactions in safe mode only go to a signer
    // if in safe mode, we should use normal sendMultiSig to recover, so this check will always fail if in safe mode
    require(!safeMode, 'Batch in safe mode');
    address otherSigner = verifyMultiSig(
      address(0x0),
      operationHash,
      signature,
      expireTime,
      sequenceId
    );

    batchTransfer(recipients, values);
    emit BatchTransacted(msg.sender, otherSigner, operationHash);
  }

  /**
   * Transfer funds in a batch to each of recipients
   * @param recipients The list of recipients to send to
   * @param values The list of values to send to recipients.
   *  The recipient with index i in recipients array will be sent values[i].
   *  Thus, recipients and values must be the same length
   */
  function batchTransfer(
    address[] calldata recipients,
    uint256[] calldata values
  ) internal {
    for (uint256 i = 0; i < recipients.length; i++) {
      require(address(this).balance >= values[i], 'Insufficient funds');

      (bool success, ) = recipients[i].call{ value: values[i] }('');
      require(success, 'Call failed');

      emit BatchTransfer(msg.sender, recipients[i], values[i]);
    }
  }

  /**
   * Execute a multi-signature token transfer from this wallet using 2 signers: one from msg.sender and the other from ecrecover.
   * Sequence IDs are numbers starting from 1. They are used to prevent replay attacks and may not be repeated.
   *
   * @param toAddress the destination address to send an outgoing transaction
   * @param value the amount in tokens to be sent
   * @param tokenContractAddress the address of the erc20 token contract
   * @param expireTime the number of seconds since 1970 for which this transaction is valid
   * @param sequenceId the unique sequence id obtainable from getNextSequenceId
   * @param signature see Data Formats
   */
  function sendMultiSigToken(
    address toAddress,
    uint256 value,
    address tokenContractAddress,
    uint256 expireTime,
    uint256 sequenceId,
    bytes calldata signature
  ) external onlySigner {
    // Verify the other signer
    bytes32 operationHash = keccak256(
      abi.encodePacked(
        getTokenNetworkId(),
        toAddress,
        value,
        tokenContractAddress,
        expireTime,
        sequenceId
      )
    );

    verifyMultiSig(toAddress, operationHash, signature, expireTime, sequenceId);

    TransferHelper.safeTransfer(tokenContractAddress, toAddress, value);
  }

  /**
   * Execute a token flush from one of the forwarder addresses. This transfer needs only a single signature and can be done by any signer
   *
   * @param forwarderAddress the address of the forwarder address to flush the tokens from
   * @param tokenContractAddress the address of the erc20 token contract
   */
  function flushForwarderTokens(
    address payable forwarderAddress,
    address tokenContractAddress
  ) external onlySigner {
    Forwarder forwarder = Forwarder(forwarderAddress);
    forwarder.flushTokens(tokenContractAddress);
  }

  /**
   * Do common multisig verification for both eth sends and erc20token transfers
   *
   * @param toAddress the destination address to send an outgoing transaction
   * @param operationHash see Data Formats
   * @param signature see Data Formats
   * @param expireTime the number of seconds since 1970 for which this transaction is valid
   * @param sequenceId the unique sequence id obtainable from getNextSequenceId
   * returns address that has created the signature
   */
  function verifyMultiSig(
    address toAddress,
    bytes32 operationHash,
    bytes calldata signature,
    uint256 expireTime,
    uint256 sequenceId
  ) private returns (address) {
    address otherSigner = recoverAddressFromSignature(operationHash, signature);

    // Verify if we are in safe mode. In safe mode, the wallet can only send to signers
    require(!safeMode || isSigner(toAddress), 'External transfer in safe mode');

    // Verify that the transaction has not expired
    require(expireTime >= block.timestamp, 'Transaction expired');

    // Try to insert the sequence ID. Will revert if the sequence id was invalid
    tryInsertSequenceId(sequenceId);

    require(isSigner(otherSigner), 'Invalid signer');

    require(otherSigner != msg.sender, 'Signers cannot be equal');

    return otherSigner;
  }

  /**
   * Irrevocably puts contract into safe mode. When in this mode, transactions may only be sent to signing addresses.
   */
  function activateSafeMode() external onlySigner {
    safeMode = true;
    SafeModeActivated(msg.sender);
  }

  /**
   * Gets signer's address using ecrecover
   * @param operationHash see Data Formats
   * @param signature see Data Formats
   * returns address recovered from the signature
   */
  function recoverAddressFromSignature(
    bytes32 operationHash,
    bytes memory signature
  ) private pure returns (address) {
    require(signature.length == 65, 'Invalid signature - wrong length');

    // We need to unpack the signature, which is given as an array of 65 bytes (like eth.sign)
    bytes32 r;
    bytes32 s;
    uint8 v;

    // solhint-disable-next-line
    assembly {
      r := mload(add(signature, 32))
      s := mload(add(signature, 64))
      v := and(mload(add(signature, 65)), 255)
    }
    if (v < 27) {
      v += 27; // Ethereum versions are 27 or 28 as opposed to 0 or 1 which is submitted by some signing libs
    }

    // protect against signature malleability
    // S value must be in the lower half orader
    // reference: https://github.com/OpenZeppelin/openzeppelin-contracts/blob/051d340171a93a3d401aaaea46b4b62fa81e5d7c/contracts/cryptography/ECDSA.sol#L53
    require(
      uint256(s) <=
        0x7FFFFFFFFFFFFFFFFFFFFFFFFFFFFFFF5D576E7357A4501DDFE92F46681B20A0,
      "ECDSA: invalid signature 's' value"
    );

    // note that this returns 0 if the signature is invalid
    // Since 0x0 can never be a signer, when the recovered signer address
    // is checked against our signer list, that 0x0 will cause an invalid signer failure
    return ecrecover(operationHash, v, r, s);
  }

  /**
   * Verify that the sequence id has not been used before and inserts it. Throws if the sequence ID was not accepted.
   * We collect a window of up to 10 recent sequence ids, and allow any sequence id that is not in the window and
   * greater than the minimum element in the window.
   * @param sequenceId to insert into array of stored ids
   */
  function tryInsertSequenceId(uint256 sequenceId) private onlySigner {
    // Keep a pointer to the lowest value element in the window
    uint256 lowestValueIndex = 0;
    // fetch recentSequenceIds into memory for function context to avoid unnecessary sloads
    uint256[SEQUENCE_ID_WINDOW_SIZE] memory _recentSequenceIds = recentSequenceIds;
    for (uint256 i = 0; i < SEQUENCE_ID_WINDOW_SIZE; i++) {
      require(_recentSequenceIds[i] != sequenceId, 'Sequence ID already used');

      if (_recentSequenceIds[i] < _recentSequenceIds[lowestValueIndex]) {
        lowestValueIndex = i;
      }
    }

    // The sequence ID being used is lower than the lowest value in the window
    // so we cannot accept it as it may have been used before
    require(
      sequenceId > _recentSequenceIds[lowestValueIndex],
      'Sequence ID below window'
    );

    // Block sequence IDs which are much higher than the lowest value
    // This prevents people blocking the contract by using very large sequence IDs quickly
    require(
      sequenceId <=
        (_recentSequenceIds[lowestValueIndex] + MAX_SEQUENCE_ID_INCREASE),
      'Sequence ID above maximum'
    );

    recentSequenceIds[lowestValueIndex] = sequenceId;
  }

  /**
   * Gets the next available sequence ID for signing when using executeAndConfirm
   * returns the sequenceId one higher than the highest currently stored
   */
  function getNextSequenceId() public view returns (uint256) {
    uint256 highestSequenceId = 0;
    for (uint256 i = 0; i < SEQUENCE_ID_WINDOW_SIZE; i++) {
      if (recentSequenceIds[i] > highestSequenceId) {
        highestSequenceId = recentSequenceIds[i];
      }
    }
    return highestSequenceId + 1;
  }
}

Contract Security Audit

Contract ABI

[{"inputs":[{"internalType":"address","name":"_implementationAddress","type":"address"}],"stateMutability":"nonpayable","type":"constructor"},{"anonymous":false,"inputs":[{"indexed":false,"internalType":"address","name":"newWalletAddress","type":"address"},{"indexed":false,"internalType":"address[]","name":"allowedSigners","type":"address[]"}],"name":"WalletCreated","type":"event"},{"inputs":[{"internalType":"address[]","name":"allowedSigners","type":"address[]"},{"internalType":"bytes32","name":"salt","type":"bytes32"}],"name":"createWallet","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"implementationAddress","outputs":[{"internalType":"address","name":"","type":"address"}],"stateMutability":"view","type":"function"}]

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Deployed Bytecode

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

Constructor Arguments (ABI-Encoded and is the last bytes of the Contract Creation Code above)

000000000000000000000000e8e847cf573fc8ed75621660a36affd18c543d7e

-----Decoded View---------------
Arg [0] : _implementationAddress (address): 0xE8E847cf573Fc8ed75621660A36AffD18c543d7E

-----Encoded View---------------
1 Constructor Arguments found :
Arg [0] : 000000000000000000000000e8e847cf573fc8ed75621660a36affd18c543d7e


Deployed Bytecode Sourcemap

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Swarm Source

ipfs://5b299153049d0f7e744a5183696f004b580f9ccfd93c51532f5820f404c7d12a

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A contract address hosts a smart contract, which is a set of code stored on the blockchain that runs when predetermined conditions are met. Learn more about addresses in our Knowledge Base.