Contract 0x4Ae8CEBcCD7027820ba83188DFD73CCAD0A92806 12

 

Contract Overview

Balance:
0.153087519688170641 ETH

ETH Value:
$523.80 (@ $3,421.60/ETH)

Token:
Txn Hash Method
Block
From
To
Value [Txn Fee]
0x6787e91a8b56f0c0c6d950198bb2acb33f132b70910c541a48d8ba5830ca5ce7Bridge Gas1855620142024-02-29 4:31:3412 secs ago0x0e7e679c659ee55b8cfa9b6d855fafe68b2f79ab IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000592911323972 ETH0.00022662 0.1
0x3037dfa8981cb629c7b67a736460e3d1dc0735319ba42f2ffc383b120343510eBridge Gas1855618162024-02-29 4:30:431 min ago0x8f41231a070fbfcdc52abb83592ae25fff72c3c8 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000015261921545 ETH0.00022189 0.1
0x14a54b6f602470904bb78e569367c591cddc8f2db1473ef0bdd3edc52d2e85c6Bridge Gas1855616572024-02-29 4:30:031 min ago0x073449db42387f076c975e86e15107fefb298cbc IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000920250462323 ETH0.00021478 0.1
0x5b75d50ecdd00a987870d53a48d236df78a18b65d0da2b42b1ee59a3ec9271c0Bridge Gas1855615782024-02-29 4:29:432 mins ago0xa97e0f4b88cd6c6c5d46747de761fabf2caaf740 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000386415732388 ETH0.000215870.1
0x90163cfc0ecad4d3f8d25632b55b5e35b87fe54dbd4b88dab85cafa813abcafaBridge Gas1855615042024-02-29 4:29:242 mins ago0xa97e0f4b88cd6c6c5d46747de761fabf2caaf740 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000392965541251 ETH0.000213040.1
0x01c06d9d5a8b24530b5bbfdb71fc0221ffeb1aeaecc4c03168a162792b8e8e89Bridge Gas1855614822024-02-29 4:29:182 mins ago0x1f66a1adbf31a6a8d2cbe7faa31080ff1432bf06 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000039409974659 ETH0.00020746 0.1
0x02776416199737f0084cb75a306ed2209fcc739d247ba9325e8e5f9877076571Bridge Gas1855614032024-02-29 4:28:572 mins ago0x1f66a1adbf31a6a8d2cbe7faa31080ff1432bf06 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000015204903897 ETH0.00021133 0.1
0x022bea85d9b65b08e9646f316467b3cad4a2f6dd7ce81cc0990aab94e4c4b5f9Bridge Gas1855613332024-02-29 4:28:393 mins ago0xd5d59ed8aea3ed9b940e8601abf4f6359c0098ca IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.001203749203621 ETH0.00021417 0.1
0xa9a7a6a0ec238973b3299fa8db301f988b8b1f851ba58d4e3106cffd3817d3ccBridge Gas1855613112024-02-29 4:28:333 mins ago0x1f66a1adbf31a6a8d2cbe7faa31080ff1432bf06 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000083757168105 ETH0.00021303 0.1
0x322da38d3e9abdf9d790b78b2ef448d70c511893e591f3b235362493283072afBridge Gas1855612362024-02-29 4:28:133 mins ago0x1f66a1adbf31a6a8d2cbe7faa31080ff1432bf06 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000014959373579 ETH0.00021591 0.1
0x641faae14011ad1e581bca628f11ced36ade3e12c1695eaab0595579ab266c39Bridge Gas1855611492024-02-29 4:27:523 mins ago0xe0f43d00227eca933350fa34507323c510e12f92 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000047046806605 ETH0.0002136 0.1
0xb5a4cec6ae795c2d52f93194b8811f66471aaf3e034507fd8ef43544c745fa5cBridge Gas1855611392024-02-29 4:27:493 mins ago0x1f66a1adbf31a6a8d2cbe7faa31080ff1432bf06 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000114200950989 ETH0.00021076 0.1
0xfbade12e9dce0ee82ed40a08b809d48d90325e0d956a43a460b0b367b79ad83fBridge Gas1855611212024-02-29 4:27:454 mins ago0xbd98363d4c9a96ba7f098349fba6a1d8559eb4a8 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000022232935888 ETH0.00021081 0.1
0xe66313e6e5d84528148a28aeec91a53899ed8beed36dc5b0f2323f2800c72d1dBridge Gas1855610342024-02-29 4:27:224 mins ago0x1f66a1adbf31a6a8d2cbe7faa31080ff1432bf06 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000064920461475 ETH0.00021247 0.1
0x62f84a40553c9edb8833be9bc699358be7e9f9ba4f6a33aa254b70fc97bb4a75Bridge Gas1855608152024-02-29 4:26:255 mins ago0x82ee31ab9ca4672a5a5fc3649052fabb38f99e7d IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000158759882065 ETH0.0002153 0.1
0xa940342791be935cb044e2f6dc1db788fea5907c5a7ecb133f462d68dd7eb5deBridge Gas1855607462024-02-29 4:26:075 mins ago0x59fea6534455ca1d98b5feff7fdb9107c2a779dd IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.001227749203621 ETH0.00021757 0.1
0x6113ab977a59160543939230fa65c54d9b9c8a052700412184429c5f06ddd7c2Bridge Gas1855601472024-02-29 4:23:368 mins ago0xb6a6922485a57caa859bad50eebf255db280c136 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000081750299679 ETH0.00017516 0.1
0x54d13f7307c1408952f8ade08ceaf3f4a645fe4c2d44e96ea0daaba1a077cba2Bridge Gas1855601092024-02-29 4:23:278 mins ago0x598ec957c20fdfbc06567473224c85585103dfd6 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.001239749203621 ETH0.0001708 0.1
0xfa099c824e04266cb5813d332e362133451acd40599cf4fe3fafc2eabdc4f032Bridge Gas1855600442024-02-29 4:23:108 mins ago0xaa74eda533264e91543bb03007e752cddd44e3b0 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000012802209222 ETH0.00017036 0.1
0x4cbf8d0d9b1352e8c502566969edd337decaff0924ec0cf081c58b99781fd115Bridge Gas1855597282024-02-29 4:21:499 mins ago0x590c55dfd9995a2db6fe9131ddc6159317b99d7e IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000015544851815 ETH0.00017115 0.1
0xdc538eecae57caf230934206b9f7733839aeb0b5ba75c7ca5d8ef1c10da3ce03Bridge Gas1855596102024-02-29 4:21:2010 mins ago0xf4fa33c91c625438a8d386004f0f3aed2f64e971 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000032006806084 ETH0.00016984 0.1
0x5fc69cca1c730f7063233787cb5e3ecbdf1d56c81d726f9b7925e3a464b2a52cBridge Gas1855594282024-02-29 4:20:3311 mins ago0x82307bc0e567f68bfb65571478c40dd941d40534 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.001227749203621 ETH0.00017167 0.1
0x462c83059ff14bfd8746da51dce66c140f95f2180e00667f9ac17a10cf8c779cBridge Gas1855593272024-02-29 4:20:0711 mins ago0xab7b8088160e3d7806737806427b32e068e6da33 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000306784842534 ETH0.00017472 0.1
0x22d80593b4f3a97c58f1eea5fdb8af872a06cd4bc5a1f7497b114fadeabec95cBridge Gas1855588442024-02-29 4:18:0113 mins ago0x1d9339634165c1dad2096dd737d2bc48a03ff0a4 IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.000012820426119 ETH0.00017036 0.1
0xcdd5e8511acdef7f97e91fb781c14c51d20160444c991e1a053930f7f60acb3aBridge Gas1855583882024-02-29 4:16:0715 mins ago0x0ab671784e6918bf0910328db29114e57cdda9fb IN  0x4ae8cebccd7027820ba83188dfd73ccad0a928060.001227749203621 ETH0.00013819 0.1
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Latest 25 internal transaction
Parent Txn Hash Block From To Value
0x6787e91a8b56f0c0c6d950198bb2acb33f132b70910c541a48d8ba5830ca5ce71855620142024-02-29 4:31:3413 secs ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000572911323972844 ETH
0x3037dfa8981cb629c7b67a736460e3d1dc0735319ba42f2ffc383b120343510e1855618162024-02-29 4:30:431 min ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000013876376175148 ETH
0x14a54b6f602470904bb78e569367c591cddc8f2db1473ef0bdd3edc52d2e85c61855616572024-02-29 4:30:031 min ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000900250462323957 ETH
0x5b75d50ecdd00a987870d53a48d236df78a18b65d0da2b42b1ee59a3ec9271c01855615782024-02-29 4:29:432 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.00038258991206022 ETH
0x90163cfc0ecad4d3f8d25632b55b5e35b87fe54dbd4b88dab85cafa813abcafa1855615042024-02-29 4:29:242 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.00038907487133109 ETH
0x01c06d9d5a8b24530b5bbfdb71fc0221ffeb1aeaecc4c03168a162792b8e8e891855614822024-02-29 4:29:182 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000036909974659584 ETH
0x02776416199737f0084cb75a306ed2209fcc739d247ba9325e8e5f98770765711855614032024-02-29 4:28:572 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.00001437157056371 ETH
0x022bea85d9b65b08e9646f316467b3cad4a2f6dd7ce81cc0990aab94e4c4b5f91855613332024-02-29 4:28:393 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.001183749203621502 ETH
0xa9a7a6a0ec238973b3299fa8db301f988b8b1f851ba58d4e3106cffd3817d3cc1855613112024-02-29 4:28:333 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.00006375716810532 ETH
0x322da38d3e9abdf9d790b78b2ef448d70c511893e591f3b235362493283072af1855612362024-02-29 4:28:133 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000014126040245886 ETH
0x641faae14011ad1e581bca628f11ced36ade3e12c1695eaab0595579ab266c391855611492024-02-29 4:27:523 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000042781161339083 ETH
0xb5a4cec6ae795c2d52f93194b8811f66471aaf3e034507fd8ef43544c745fa5c1855611392024-02-29 4:27:493 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000094200950989868 ETH
0xfbade12e9dce0ee82ed40a08b809d48d90325e0d956a43a460b0b367b79ad83f1855611212024-02-29 4:27:454 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000021181932057739 ETH
0xe66313e6e5d84528148a28aeec91a53899ed8beed36dc5b0f2323f2800c72d1d1855610342024-02-29 4:27:224 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000057420461475548 ETH
0x62f84a40553c9edb8833be9bc699358be7e9f9ba4f6a33aa254b70fc97bb4a751855608152024-02-29 4:26:255 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000144327243526709 ETH
0xa940342791be935cb044e2f6dc1db788fea5907c5a7ecb133f462d68dd7eb5de1855607462024-02-29 4:26:075 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.001207749203621502 ETH
0x6113ab977a59160543939230fa65c54d9b9c8a052700412184429c5f06ddd7c21855601472024-02-29 4:23:368 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000074321159226454 ETH
0x54d13f7307c1408952f8ade08ceaf3f4a645fe4c2d44e96ea0daaba1a077cba21855601092024-02-29 4:23:278 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.001219749203621502 ETH
0xfa099c824e04266cb5813d332e362133451acd40599cf4fe3fafc2eabdc4f0321855600442024-02-29 4:23:108 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000011638453333976 ETH
0x4cbf8d0d9b1352e8c502566969edd337decaff0924ec0cf081c58b99781fd1151855597282024-02-29 4:21:499 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000014132614911741 ETH
0xdc538eecae57caf230934206b9f7733839aeb0b5ba75c7ca5d8ef1c10da3ce031855596102024-02-29 4:21:2010 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000029097300673563 ETH
0x5fc69cca1c730f7063233787cb5e3ecbdf1d56c81d726f9b7925e3a464b2a52c1855594282024-02-29 4:20:3311 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.001207749203621502 ETH
0x462c83059ff14bfd8746da51dce66c140f95f2180e00667f9ac17a10cf8c779c1855593272024-02-29 4:20:0711 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000286784842534508 ETH
0x22d80593b4f3a97c58f1eea5fdb8af872a06cd4bc5a1f7497b114fadeabec95c1855588442024-02-29 4:18:0113 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.000011655014149173 ETH
0xcdd5e8511acdef7f97e91fb781c14c51d20160444c991e1a053930f7f60acb3a1855583882024-02-29 4:16:0715 mins ago 0x4ae8cebccd7027820ba83188dfd73ccad0a92806 LayerZero: Arbitrum Endpoint0.001207749203621502 ETH
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Contract Source Code Verified (Exact Match)

Contract Name:
MerklyRefuel

Compiler Version
v0.8.19+commit.7dd6d404

Optimization Enabled:
Yes with 200 runs

Other Settings:
default evmVersion, MIT license

Contract Source Code (Solidity Multiple files format)

File 1 of 10: MerklyRefuel.sol
// SPDX-License-Identifier: MIT

pragma solidity ^0.8.0;

import "./NonblockingLzApp.sol";


contract MerklyRefuel is NonblockingLzApp {
    using BytesLib for bytes;

    uint public constant NO_EXTRA_GAS = 0;
 
    // packet type
    uint16 public constant PT_SEND = 0;

    bool public useCustomAdapterParams = true;

    constructor(address _lzEndpoint) NonblockingLzApp(_lzEndpoint) {}

    function estimateSendFee(uint16 _dstChainId, bytes memory payload, bytes memory _adapterParams) public view virtual returns (uint nativeFee, uint zroFee) {
        return lzEndpoint.estimateFees(_dstChainId, address(this), payload, false, _adapterParams);
    }

    function _nonblockingLzReceive(uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload) internal virtual override {
        // empty
    }

    function bridgeGas(uint16 _dstChainId, bytes memory _toAddress, bytes memory _adapterParams) public payable virtual {
        _checkAdapterParams(_dstChainId, PT_SEND, _adapterParams, NO_EXTRA_GAS);

        (uint nativeFee,) = estimateSendFee(_dstChainId, _toAddress, _adapterParams);
        require(msg.value >= nativeFee, "Not enough gas to send");
        
        _lzSend(_dstChainId, _toAddress, payable(0x0), address(0x0), _adapterParams, nativeFee);
    }

    function _checkAdapterParams(uint16 _dstChainId, uint16 _pkType, bytes memory _adapterParams, uint _extraGas) internal virtual {
        if (useCustomAdapterParams) {
            _checkGasLimit(_dstChainId, _pkType, _adapterParams, _extraGas);
        } else {
            require(_adapterParams.length == 0, "OFTCore: _adapterParams must be empty.");
        }
    }

    function withdraw() public payable onlyOwner {
        (bool success, ) = payable(msg.sender).call{value: address(this).balance}("");
        require(success);
    }
}


File 2 of 10: BytesLib.sol
// SPDX-License-Identifier: Unlicense
/*
 * @title Solidity Bytes Arrays Utils
 * @author Gonçalo Sá <[email protected]>
 *
 * @dev Bytes tightly packed arrays utility library for ethereum contracts written in Solidity.
 *      The library lets you concatenate, slice and type cast bytes arrays both in memory and storage.
 */
pragma solidity >=0.8.0 <0.9.0;


library BytesLib {
    function concat(
        bytes memory _preBytes,
        bytes memory _postBytes
    )
    internal
    pure
    returns (bytes memory)
    {
        bytes memory tempBytes;

        assembly {
        // Get a location of some free memory and store it in tempBytes as
        // Solidity does for memory variables.
            tempBytes := mload(0x40)

        // Store the length of the first bytes array at the beginning of
        // the memory for tempBytes.
            let length := mload(_preBytes)
            mstore(tempBytes, length)

        // Maintain a memory counter for the current write location in the
        // temp bytes array by adding the 32 bytes for the array length to
        // the starting location.
            let mc := add(tempBytes, 0x20)
        // Stop copying when the memory counter reaches the length of the
        // first bytes array.
            let end := add(mc, length)

            for {
            // Initialize a copy counter to the start of the _preBytes data,
            // 32 bytes into its memory.
                let cc := add(_preBytes, 0x20)
            } lt(mc, end) {
            // Increase both counters by 32 bytes each iteration.
                mc := add(mc, 0x20)
                cc := add(cc, 0x20)
            } {
            // Write the _preBytes data into the tempBytes memory 32 bytes
            // at a time.
                mstore(mc, mload(cc))
            }

        // Add the length of _postBytes to the current length of tempBytes
        // and store it as the new length in the first 32 bytes of the
        // tempBytes memory.
            length := mload(_postBytes)
            mstore(tempBytes, add(length, mload(tempBytes)))

        // Move the memory counter back from a multiple of 0x20 to the
        // actual end of the _preBytes data.
            mc := end
        // Stop copying when the memory counter reaches the new combined
        // length of the arrays.
            end := add(mc, length)

            for {
                let cc := add(_postBytes, 0x20)
            } lt(mc, end) {
                mc := add(mc, 0x20)
                cc := add(cc, 0x20)
            } {
                mstore(mc, mload(cc))
            }

        // Update the free-memory pointer by padding our last write location
        // to 32 bytes: add 31 bytes to the end of tempBytes to move to the
        // next 32 byte block, then round down to the nearest multiple of
        // 32. If the sum of the length of the two arrays is zero then add
        // one before rounding down to leave a blank 32 bytes (the length block with 0).
            mstore(0x40, and(
            add(add(end, iszero(add(length, mload(_preBytes)))), 31),
            not(31) // Round down to the nearest 32 bytes.
            ))
        }

        return tempBytes;
    }

    function concatStorage(bytes storage _preBytes, bytes memory _postBytes) internal {
        assembly {
        // Read the first 32 bytes of _preBytes storage, which is the length
        // of the array. (We don't need to use the offset into the slot
        // because arrays use the entire slot.)
            let fslot := sload(_preBytes.slot)
        // Arrays of 31 bytes or less have an even value in their slot,
        // while longer arrays have an odd value. The actual length is
        // the slot divided by two for odd values, and the lowest order
        // byte divided by two for even values.
        // If the slot is even, bitwise and the slot with 255 and divide by
        // two to get the length. If the slot is odd, bitwise and the slot
        // with -1 and divide by two.
            let slength := div(and(fslot, sub(mul(0x100, iszero(and(fslot, 1))), 1)), 2)
            let mlength := mload(_postBytes)
            let newlength := add(slength, mlength)
        // slength can contain both the length and contents of the array
        // if length < 32 bytes so let's prepare for that
        // v. http://solidity.readthedocs.io/en/latest/miscellaneous.html#layout-of-state-variables-in-storage
            switch add(lt(slength, 32), lt(newlength, 32))
            case 2 {
            // Since the new array still fits in the slot, we just need to
            // update the contents of the slot.
            // uint256(bytes_storage) = uint256(bytes_storage) + uint256(bytes_memory) + new_length
                sstore(
                _preBytes.slot,
                // all the modifications to the slot are inside this
                // next block
                add(
                // we can just add to the slot contents because the
                // bytes we want to change are the LSBs
                fslot,
                add(
                mul(
                div(
                // load the bytes from memory
                mload(add(_postBytes, 0x20)),
                // zero all bytes to the right
                exp(0x100, sub(32, mlength))
                ),
                // and now shift left the number of bytes to
                // leave space for the length in the slot
                exp(0x100, sub(32, newlength))
                ),
                // increase length by the double of the memory
                // bytes length
                mul(mlength, 2)
                )
                )
                )
            }
            case 1 {
            // The stored value fits in the slot, but the combined value
            // will exceed it.
            // get the keccak hash to get the contents of the array
                mstore(0x0, _preBytes.slot)
                let sc := add(keccak256(0x0, 0x20), div(slength, 32))

            // save new length
                sstore(_preBytes.slot, add(mul(newlength, 2), 1))

            // The contents of the _postBytes array start 32 bytes into
            // the structure. Our first read should obtain the `submod`
            // bytes that can fit into the unused space in the last word
            // of the stored array. To get this, we read 32 bytes starting
            // from `submod`, so the data we read overlaps with the array
            // contents by `submod` bytes. Masking the lowest-order
            // `submod` bytes allows us to add that value directly to the
            // stored value.

                let submod := sub(32, slength)
                let mc := add(_postBytes, submod)
                let end := add(_postBytes, mlength)
                let mask := sub(exp(0x100, submod), 1)

                sstore(
                sc,
                add(
                and(
                fslot,
                0xffffffffffffffffffffffffffffffffffffffffffffffffffffffffffffff00
                ),
                and(mload(mc), mask)
                )
                )

                for {
                    mc := add(mc, 0x20)
                    sc := add(sc, 1)
                } lt(mc, end) {
                    sc := add(sc, 1)
                    mc := add(mc, 0x20)
                } {
                    sstore(sc, mload(mc))
                }

                mask := exp(0x100, sub(mc, end))

                sstore(sc, mul(div(mload(mc), mask), mask))
            }
            default {
            // get the keccak hash to get the contents of the array
                mstore(0x0, _preBytes.slot)
            // Start copying to the last used word of the stored array.
                let sc := add(keccak256(0x0, 0x20), div(slength, 32))

            // save new length
                sstore(_preBytes.slot, add(mul(newlength, 2), 1))

            // Copy over the first `submod` bytes of the new data as in
            // case 1 above.
                let slengthmod := mod(slength, 32)
                let mlengthmod := mod(mlength, 32)
                let submod := sub(32, slengthmod)
                let mc := add(_postBytes, submod)
                let end := add(_postBytes, mlength)
                let mask := sub(exp(0x100, submod), 1)

                sstore(sc, add(sload(sc), and(mload(mc), mask)))

                for {
                    sc := add(sc, 1)
                    mc := add(mc, 0x20)
                } lt(mc, end) {
                    sc := add(sc, 1)
                    mc := add(mc, 0x20)
                } {
                    sstore(sc, mload(mc))
                }

                mask := exp(0x100, sub(mc, end))

                sstore(sc, mul(div(mload(mc), mask), mask))
            }
        }
    }

    function slice(
        bytes memory _bytes,
        uint256 _start,
        uint256 _length
    )
    internal
    pure
    returns (bytes memory)
    {
        require(_length + 31 >= _length, "slice_overflow");
        require(_bytes.length >= _start + _length, "slice_outOfBounds");

        bytes memory tempBytes;

        assembly {
            switch iszero(_length)
            case 0 {
            // Get a location of some free memory and store it in tempBytes as
            // Solidity does for memory variables.
                tempBytes := mload(0x40)

            // The first word of the slice result is potentially a partial
            // word read from the original array. To read it, we calculate
            // the length of that partial word and start copying that many
            // bytes into the array. The first word we copy will start with
            // data we don't care about, but the last `lengthmod` bytes will
            // land at the beginning of the contents of the new array. When
            // we're done copying, we overwrite the full first word with
            // the actual length of the slice.
                let lengthmod := and(_length, 31)

            // The multiplication in the next line is necessary
            // because when slicing multiples of 32 bytes (lengthmod == 0)
            // the following copy loop was copying the origin's length
            // and then ending prematurely not copying everything it should.
                let mc := add(add(tempBytes, lengthmod), mul(0x20, iszero(lengthmod)))
                let end := add(mc, _length)

                for {
                // The multiplication in the next line has the same exact purpose
                // as the one above.
                    let cc := add(add(add(_bytes, lengthmod), mul(0x20, iszero(lengthmod))), _start)
                } lt(mc, end) {
                    mc := add(mc, 0x20)
                    cc := add(cc, 0x20)
                } {
                    mstore(mc, mload(cc))
                }

                mstore(tempBytes, _length)

            //update free-memory pointer
            //allocating the array padded to 32 bytes like the compiler does now
                mstore(0x40, and(add(mc, 31), not(31)))
            }
            //if we want a zero-length slice let's just return a zero-length array
            default {
                tempBytes := mload(0x40)
            //zero out the 32 bytes slice we are about to return
            //we need to do it because Solidity does not garbage collect
                mstore(tempBytes, 0)

                mstore(0x40, add(tempBytes, 0x20))
            }
        }

        return tempBytes;
    }

    function toAddress(bytes memory _bytes, uint256 _start) internal pure returns (address) {
        require(_bytes.length >= _start + 20, "toAddress_outOfBounds");
        address tempAddress;

        assembly {
            tempAddress := div(mload(add(add(_bytes, 0x20), _start)), 0x1000000000000000000000000)
        }

        return tempAddress;
    }

    function toUint8(bytes memory _bytes, uint256 _start) internal pure returns (uint8) {
        require(_bytes.length >= _start + 1 , "toUint8_outOfBounds");
        uint8 tempUint;

        assembly {
            tempUint := mload(add(add(_bytes, 0x1), _start))
        }

        return tempUint;
    }

    function toUint16(bytes memory _bytes, uint256 _start) internal pure returns (uint16) {
        require(_bytes.length >= _start + 2, "toUint16_outOfBounds");
        uint16 tempUint;

        assembly {
            tempUint := mload(add(add(_bytes, 0x2), _start))
        }

        return tempUint;
    }

    function toUint32(bytes memory _bytes, uint256 _start) internal pure returns (uint32) {
        require(_bytes.length >= _start + 4, "toUint32_outOfBounds");
        uint32 tempUint;

        assembly {
            tempUint := mload(add(add(_bytes, 0x4), _start))
        }

        return tempUint;
    }

    function toUint64(bytes memory _bytes, uint256 _start) internal pure returns (uint64) {
        require(_bytes.length >= _start + 8, "toUint64_outOfBounds");
        uint64 tempUint;

        assembly {
            tempUint := mload(add(add(_bytes, 0x8), _start))
        }

        return tempUint;
    }

    function toUint96(bytes memory _bytes, uint256 _start) internal pure returns (uint96) {
        require(_bytes.length >= _start + 12, "toUint96_outOfBounds");
        uint96 tempUint;

        assembly {
            tempUint := mload(add(add(_bytes, 0xc), _start))
        }

        return tempUint;
    }

    function toUint128(bytes memory _bytes, uint256 _start) internal pure returns (uint128) {
        require(_bytes.length >= _start + 16, "toUint128_outOfBounds");
        uint128 tempUint;

        assembly {
            tempUint := mload(add(add(_bytes, 0x10), _start))
        }

        return tempUint;
    }

    function toUint256(bytes memory _bytes, uint256 _start) internal pure returns (uint256) {
        require(_bytes.length >= _start + 32, "toUint256_outOfBounds");
        uint256 tempUint;

        assembly {
            tempUint := mload(add(add(_bytes, 0x20), _start))
        }

        return tempUint;
    }

    function toBytes32(bytes memory _bytes, uint256 _start) internal pure returns (bytes32) {
        require(_bytes.length >= _start + 32, "toBytes32_outOfBounds");
        bytes32 tempBytes32;

        assembly {
            tempBytes32 := mload(add(add(_bytes, 0x20), _start))
        }

        return tempBytes32;
    }

    function equal(bytes memory _preBytes, bytes memory _postBytes) internal pure returns (bool) {
        bool success = true;

        assembly {
            let length := mload(_preBytes)

        // if lengths don't match the arrays are not equal
            switch eq(length, mload(_postBytes))
            case 1 {
            // cb is a circuit breaker in the for loop since there's
            //  no said feature for inline assembly loops
            // cb = 1 - don't breaker
            // cb = 0 - break
                let cb := 1

                let mc := add(_preBytes, 0x20)
                let end := add(mc, length)

                for {
                    let cc := add(_postBytes, 0x20)
                // the next line is the loop condition:
                // while(uint256(mc < end) + cb == 2)
                } eq(add(lt(mc, end), cb), 2) {
                    mc := add(mc, 0x20)
                    cc := add(cc, 0x20)
                } {
                // if any of these checks fails then arrays are not equal
                    if iszero(eq(mload(mc), mload(cc))) {
                    // unsuccess:
                        success := 0
                        cb := 0
                    }
                }
            }
            default {
            // unsuccess:
                success := 0
            }
        }

        return success;
    }

    function equalStorage(
        bytes storage _preBytes,
        bytes memory _postBytes
    )
    internal
    view
    returns (bool)
    {
        bool success = true;

        assembly {
        // we know _preBytes_offset is 0
            let fslot := sload(_preBytes.slot)
        // Decode the length of the stored array like in concatStorage().
            let slength := div(and(fslot, sub(mul(0x100, iszero(and(fslot, 1))), 1)), 2)
            let mlength := mload(_postBytes)

        // if lengths don't match the arrays are not equal
            switch eq(slength, mlength)
            case 1 {
            // slength can contain both the length and contents of the array
            // if length < 32 bytes so let's prepare for that
            // v. http://solidity.readthedocs.io/en/latest/miscellaneous.html#layout-of-state-variables-in-storage
                if iszero(iszero(slength)) {
                    switch lt(slength, 32)
                    case 1 {
                    // blank the last byte which is the length
                        fslot := mul(div(fslot, 0x100), 0x100)

                        if iszero(eq(fslot, mload(add(_postBytes, 0x20)))) {
                        // unsuccess:
                            success := 0
                        }
                    }
                    default {
                    // cb is a circuit breaker in the for loop since there's
                    //  no said feature for inline assembly loops
                    // cb = 1 - don't breaker
                    // cb = 0 - break
                        let cb := 1

                    // get the keccak hash to get the contents of the array
                        mstore(0x0, _preBytes.slot)
                        let sc := keccak256(0x0, 0x20)

                        let mc := add(_postBytes, 0x20)
                        let end := add(mc, mlength)

                    // the next line is the loop condition:
                    // while(uint256(mc < end) + cb == 2)
                        for {} eq(add(lt(mc, end), cb), 2) {
                            sc := add(sc, 1)
                            mc := add(mc, 0x20)
                        } {
                            if iszero(eq(sload(sc), mload(mc))) {
                            // unsuccess:
                                success := 0
                                cb := 0
                            }
                        }
                    }
                }
            }
            default {
            // unsuccess:
                success := 0
            }
        }

        return success;
    }
}

File 3 of 10: Context.sol
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts v4.4.1 (utils/Context.sol)

pragma solidity ^0.8.19;

/**
 * @dev Provides information about the current execution context, including the
 * sender of the transaction and its data. While these are generally available
 * via msg.sender and msg.data, they should not be accessed in such a direct
 * manner, since when dealing with meta-transactions the account sending and
 * paying for execution may not be the actual sender (as far as an application
 * is concerned).
 *
 * This contract is only required for intermediate, library-like contracts.
 */
abstract contract Context {
    function _msgSender() internal view virtual returns (address) {
        return msg.sender;
    }

    function _msgData() internal view virtual returns (bytes calldata) {
        return msg.data;
    }
}

File 4 of 10: ExcessivelySafeCall.sol
// SPDX-License-Identifier: MIT OR Apache-2.0
pragma solidity >=0.7.6;

library ExcessivelySafeCall {
    uint256 constant LOW_28_MASK =
    0x00000000ffffffffffffffffffffffffffffffffffffffffffffffffffffffff;

    /// @notice Use when you _really_ really _really_ don't trust the called
    /// contract. This prevents the called contract from causing reversion of
    /// the caller in as many ways as we can.
    /// @dev The main difference between this and a solidity low-level call is
    /// that we limit the number of bytes that the callee can cause to be
    /// copied to caller memory. This prevents stupid things like malicious
    /// contracts returning 10,000,000 bytes causing a local OOG when copying
    /// to memory.
    /// @param _target The address to call
    /// @param _gas The amount of gas to forward to the remote contract
    /// @param _maxCopy The maximum number of bytes of returndata to copy
    /// to memory.
    /// @param _calldata The data to send to the remote contract
    /// @return success and returndata, as `.call()`. Returndata is capped to
    /// `_maxCopy` bytes.
    function excessivelySafeCall(
        address _target,
        uint256 _gas,
        uint16 _maxCopy,
        bytes memory _calldata
    ) internal returns (bool, bytes memory) {
        // set up for assembly call
        uint256 _toCopy;
        bool _success;
        bytes memory _returnData = new bytes(_maxCopy);
        // dispatch message to recipient
        // by assembly calling "handle" function
        // we call via assembly to avoid memcopying a very large returndata
        // returned by a malicious contract
        assembly {
            _success := call(
            _gas, // gas
            _target, // recipient
            0, // ether value
            add(_calldata, 0x20), // inloc
            mload(_calldata), // inlen
            0, // outloc
            0 // outlen
            )
        // limit our copy to 256 bytes
            _toCopy := returndatasize()
            if gt(_toCopy, _maxCopy) {
                _toCopy := _maxCopy
            }
        // Store the length of the copied bytes
            mstore(_returnData, _toCopy)
        // copy the bytes from returndata[0:_toCopy]
            returndatacopy(add(_returnData, 0x20), 0, _toCopy)
        }
        return (_success, _returnData);
    }

    /// @notice Use when you _really_ really _really_ don't trust the called
    /// contract. This prevents the called contract from causing reversion of
    /// the caller in as many ways as we can.
    /// @dev The main difference between this and a solidity low-level call is
    /// that we limit the number of bytes that the callee can cause to be
    /// copied to caller memory. This prevents stupid things like malicious
    /// contracts returning 10,000,000 bytes causing a local OOG when copying
    /// to memory.
    /// @param _target The address to call
    /// @param _gas The amount of gas to forward to the remote contract
    /// @param _maxCopy The maximum number of bytes of returndata to copy
    /// to memory.
    /// @param _calldata The data to send to the remote contract
    /// @return success and returndata, as `.call()`. Returndata is capped to
    /// `_maxCopy` bytes.
    function excessivelySafeStaticCall(
        address _target,
        uint256 _gas,
        uint16 _maxCopy,
        bytes memory _calldata
    ) internal view returns (bool, bytes memory) {
        // set up for assembly call
        uint256 _toCopy;
        bool _success;
        bytes memory _returnData = new bytes(_maxCopy);
        // dispatch message to recipient
        // by assembly calling "handle" function
        // we call via assembly to avoid memcopying a very large returndata
        // returned by a malicious contract
        assembly {
            _success := staticcall(
            _gas, // gas
            _target, // recipient
            add(_calldata, 0x20), // inloc
            mload(_calldata), // inlen
            0, // outloc
            0 // outlen
            )
        // limit our copy to 256 bytes
            _toCopy := returndatasize()
            if gt(_toCopy, _maxCopy) {
                _toCopy := _maxCopy
            }
        // Store the length of the copied bytes
            mstore(_returnData, _toCopy)
        // copy the bytes from returndata[0:_toCopy]
            returndatacopy(add(_returnData, 0x20), 0, _toCopy)
        }
        return (_success, _returnData);
    }

    /**
     * @notice Swaps function selectors in encoded contract calls
     * @dev Allows reuse of encoded calldata for functions with identical
     * argument types but different names. It simply swaps out the first 4 bytes
     * for the new selector. This function modifies memory in place, and should
     * only be used with caution.
     * @param _newSelector The new 4-byte selector
     * @param _buf The encoded contract args
     */
    function swapSelector(bytes4 _newSelector, bytes memory _buf)
    internal
    pure
    {
        require(_buf.length >= 4);
        uint256 _mask = LOW_28_MASK;
        assembly {
        // load the first word of
            let _word := mload(add(_buf, 0x20))
        // mask out the top 4 bytes
        // /x
            _word := and(_word, _mask)
            _word := or(_newSelector, _word)
            mstore(add(_buf, 0x20), _word)
        }
    }
}

File 5 of 10: ILayerZeroEndpoint.sol
// SPDX-License-Identifier: MIT

pragma solidity >=0.5.0;

import "./ILayerZeroUserApplicationConfig.sol";

interface ILayerZeroEndpoint is ILayerZeroUserApplicationConfig {
    // @notice send a LayerZero message to the specified address at a LayerZero endpoint.
    // @param _dstChainId - the destination chain identifier
    // @param _destination - the address on destination chain (in bytes). address length/format may vary by chains
    // @param _payload - a custom bytes payload to send to the destination contract
    // @param _refundAddress - if the source transaction is cheaper than the amount of value passed, refund the additional amount to this address
    // @param _zroPaymentAddress - the address of the ZRO token holder who would pay for the transaction
    // @param _adapterParams - parameters for custom functionality. e.g. receive airdropped native gas from the relayer on destination
    function send(uint16 _dstChainId, bytes calldata _destination, bytes calldata _payload, address payable _refundAddress, address _zroPaymentAddress, bytes calldata _adapterParams) external payable;

    // @notice used by the messaging library to publish verified payload
    // @param _srcChainId - the source chain identifier
    // @param _srcAddress - the source contract (as bytes) at the source chain
    // @param _dstAddress - the address on destination chain
    // @param _nonce - the unbound message ordering nonce
    // @param _gasLimit - the gas limit for external contract execution
    // @param _payload - verified payload to send to the destination contract
    function receivePayload(uint16 _srcChainId, bytes calldata _srcAddress, address _dstAddress, uint64 _nonce, uint _gasLimit, bytes calldata _payload) external;

    // @notice get the inboundNonce of a lzApp from a source chain which could be EVM or non-EVM chain
    // @param _srcChainId - the source chain identifier
    // @param _srcAddress - the source chain contract address
    function getInboundNonce(uint16 _srcChainId, bytes calldata _srcAddress) external view returns (uint64);

    // @notice get the outboundNonce from this source chain which, consequently, is always an EVM
    // @param _srcAddress - the source chain contract address
    function getOutboundNonce(uint16 _dstChainId, address _srcAddress) external view returns (uint64);

    // @notice gets a quote in source native gas, for the amount that send() requires to pay for message delivery
    // @param _dstChainId - the destination chain identifier
    // @param _userApplication - the user app address on this EVM chain
    // @param _payload - the custom message to send over LayerZero
    // @param _payInZRO - if false, user app pays the protocol fee in native token
    // @param _adapterParam - parameters for the adapter service, e.g. send some dust native token to dstChain
    function estimateFees(uint16 _dstChainId, address _userApplication, bytes calldata _payload, bool _payInZRO, bytes calldata _adapterParam) external view returns (uint nativeFee, uint zroFee);

    // @notice get this Endpoint's immutable source identifier
    function getChainId() external view returns (uint16);

    // @notice the interface to retry failed message on this Endpoint destination
    // @param _srcChainId - the source chain identifier
    // @param _srcAddress - the source chain contract address
    // @param _payload - the payload to be retried
    function retryPayload(uint16 _srcChainId, bytes calldata _srcAddress, bytes calldata _payload) external;

    // @notice query if any STORED payload (message blocking) at the endpoint.
    // @param _srcChainId - the source chain identifier
    // @param _srcAddress - the source chain contract address
    function hasStoredPayload(uint16 _srcChainId, bytes calldata _srcAddress) external view returns (bool);

    // @notice query if the _libraryAddress is valid for sending msgs.
    // @param _userApplication - the user app address on this EVM chain
    function getSendLibraryAddress(address _userApplication) external view returns (address);

    // @notice query if the _libraryAddress is valid for receiving msgs.
    // @param _userApplication - the user app address on this EVM chain
    function getReceiveLibraryAddress(address _userApplication) external view returns (address);

    // @notice query if the non-reentrancy guard for send() is on
    // @return true if the guard is on. false otherwise
    function isSendingPayload() external view returns (bool);

    // @notice query if the non-reentrancy guard for receive() is on
    // @return true if the guard is on. false otherwise
    function isReceivingPayload() external view returns (bool);

    // @notice get the configuration of the LayerZero messaging library of the specified version
    // @param _version - messaging library version
    // @param _chainId - the chainId for the pending config change
    // @param _userApplication - the contract address of the user application
    // @param _configType - type of configuration. every messaging library has its own convention.
    function getConfig(uint16 _version, uint16 _chainId, address _userApplication, uint _configType) external view returns (bytes memory);

    // @notice get the send() LayerZero messaging library version
    // @param _userApplication - the contract address of the user application
    function getSendVersion(address _userApplication) external view returns (uint16);

    // @notice get the lzReceive() LayerZero messaging library version
    // @param _userApplication - the contract address of the user application
    function getReceiveVersion(address _userApplication) external view returns (uint16);
}

File 6 of 10: ILayerZeroReceiver.sol
// SPDX-License-Identifier: MIT

pragma solidity >=0.5.0;

interface ILayerZeroReceiver {
    // @notice LayerZero endpoint will invoke this function to deliver the message on the destination
    // @param _srcChainId - the source endpoint identifier
    // @param _srcAddress - the source sending contract address from the source chain
    // @param _nonce - the ordered message nonce
    // @param _payload - the signed payload is the UA bytes has encoded to be sent
    function lzReceive(uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload) external;
}

File 7 of 10: ILayerZeroUserApplicationConfig.sol
// SPDX-License-Identifier: MIT

pragma solidity >=0.5.0;

interface ILayerZeroUserApplicationConfig {
    // @notice set the configuration of the LayerZero messaging library of the specified version
    // @param _version - messaging library version
    // @param _chainId - the chainId for the pending config change
    // @param _configType - type of configuration. every messaging library has its own convention.
    // @param _config - configuration in the bytes. can encode arbitrary content.
    function setConfig(uint16 _version, uint16 _chainId, uint _configType, bytes calldata _config) external;

    // @notice set the send() LayerZero messaging library version to _version
    // @param _version - new messaging library version
    function setSendVersion(uint16 _version) external;

    // @notice set the lzReceive() LayerZero messaging library version to _version
    // @param _version - new messaging library version
    function setReceiveVersion(uint16 _version) external;

    // @notice Only when the UA needs to resume the message flow in blocking mode and clear the stored payload
    // @param _srcChainId - the chainId of the source chain
    // @param _srcAddress - the contract address of the source contract at the source chain
    function forceResumeReceive(uint16 _srcChainId, bytes calldata _srcAddress) external;
}

File 8 of 10: LzApp.sol
// SPDX-License-Identifier: MIT

pragma solidity ^0.8.0;

import "./Ownable.sol";
import "./ILayerZeroReceiver.sol";
import "./ILayerZeroUserApplicationConfig.sol";
import "./ILayerZeroEndpoint.sol";
import "./BytesLib.sol";

/*
 * a generic LzReceiver implementation
 */
abstract contract LzApp is Ownable, ILayerZeroReceiver, ILayerZeroUserApplicationConfig {
    using BytesLib for bytes;

    // ua can not send payload larger than this by default, but it can be changed by the ua owner
    uint constant public DEFAULT_PAYLOAD_SIZE_LIMIT = 10000;

    ILayerZeroEndpoint public immutable lzEndpoint;
    mapping(uint16 => bytes) public trustedRemoteLookup;
    mapping(uint16 => mapping(uint16 => uint)) public minDstGasLookup;
    mapping(uint16 => uint) public payloadSizeLimitLookup;
    address public precrime;

    event SetPrecrime(address precrime);
    event SetTrustedRemote(uint16 _remoteChainId, bytes _path);
    event SetTrustedRemoteAddress(uint16 _remoteChainId, bytes _remoteAddress);
    event SetMinDstGas(uint16 _dstChainId, uint16 _type, uint _minDstGas);

    constructor(address _endpoint) Ownable(msg.sender) {
        lzEndpoint = ILayerZeroEndpoint(_endpoint);
    }

    function lzReceive(uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload) public virtual override {
        // lzReceive must be called by the endpoint for security
        require(_msgSender() == address(lzEndpoint), "LzApp: invalid endpoint caller");

        bytes memory trustedRemote = trustedRemoteLookup[_srcChainId];
        // if will still block the message pathway from (srcChainId, srcAddress). should not receive message from untrusted remote.
        require(_srcAddress.length == trustedRemote.length && trustedRemote.length > 0 && keccak256(_srcAddress) == keccak256(trustedRemote), "LzApp: invalid source sending contract");

        _blockingLzReceive(_srcChainId, _srcAddress, _nonce, _payload);
    }

    // abstract function - the default behaviour of LayerZero is blocking. See: NonblockingLzApp if you dont need to enforce ordered messaging
    function _blockingLzReceive(uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload) internal virtual;

    function _lzSend(uint16 _dstChainId, bytes memory _payload, address payable _refundAddress, address _zroPaymentAddress, bytes memory _adapterParams, uint _nativeFee) internal virtual {
        bytes memory trustedRemote = trustedRemoteLookup[_dstChainId];
        require(trustedRemote.length != 0, "LzApp: destination chain is not a trusted source");
        _checkPayloadSize(_dstChainId, _payload.length);
        lzEndpoint.send{value: _nativeFee}(_dstChainId, trustedRemote, _payload, _refundAddress, _zroPaymentAddress, _adapterParams);
    }

    function _checkGasLimit(uint16 _dstChainId, uint16 _type, bytes memory _adapterParams, uint _extraGas) internal view virtual {
        uint providedGasLimit = _getGasLimit(_adapterParams);
        uint minGasLimit = minDstGasLookup[_dstChainId][_type] + _extraGas;
        require(minGasLimit > 0, "LzApp: minGasLimit not set");
        require(providedGasLimit >= minGasLimit, "LzApp: gas limit is too low");
    }

    function _getGasLimit(bytes memory _adapterParams) internal pure virtual returns (uint gasLimit) {
        require(_adapterParams.length >= 34, "LzApp: invalid adapterParams");
        assembly {
            gasLimit := mload(add(_adapterParams, 34))
        }
    }

    function _checkPayloadSize(uint16 _dstChainId, uint _payloadSize) internal view virtual {
        uint payloadSizeLimit = payloadSizeLimitLookup[_dstChainId];
        if (payloadSizeLimit == 0) { // use default if not set
            payloadSizeLimit = DEFAULT_PAYLOAD_SIZE_LIMIT;
        }
        require(_payloadSize <= payloadSizeLimit, "LzApp: payload size is too large");
    }

    //---------------------------UserApplication config----------------------------------------
    function getConfig(uint16 _version, uint16 _chainId, address, uint _configType) external view returns (bytes memory) {
        return lzEndpoint.getConfig(_version, _chainId, address(this), _configType);
    }

    // generic config for LayerZero user Application
    function setConfig(uint16 _version, uint16 _chainId, uint _configType, bytes calldata _config) external override onlyOwner {
        lzEndpoint.setConfig(_version, _chainId, _configType, _config);
    }

    function setSendVersion(uint16 _version) external override onlyOwner {
        lzEndpoint.setSendVersion(_version);
    }

    function setReceiveVersion(uint16 _version) external override onlyOwner {
        lzEndpoint.setReceiveVersion(_version);
    }

    function forceResumeReceive(uint16 _srcChainId, bytes calldata _srcAddress) external override onlyOwner {
        lzEndpoint.forceResumeReceive(_srcChainId, _srcAddress);
    }

    // _path = abi.encodePacked(remoteAddress, localAddress)
    // this function set the trusted path for the cross-chain communication
    function setTrustedRemote(uint16 _remoteChainId, bytes calldata _path) external onlyOwner {
        trustedRemoteLookup[_remoteChainId] = _path;
        emit SetTrustedRemote(_remoteChainId, _path);
    }

    function setTrustedRemoteAddress(uint16 _remoteChainId, bytes calldata _remoteAddress) external onlyOwner {
        trustedRemoteLookup[_remoteChainId] = abi.encodePacked(_remoteAddress, address(this));
        emit SetTrustedRemoteAddress(_remoteChainId, _remoteAddress);
    }

    function getTrustedRemoteAddress(uint16 _remoteChainId) external view returns (bytes memory) {
        bytes memory path = trustedRemoteLookup[_remoteChainId];
        require(path.length != 0, "LzApp: no trusted path record");
        return path.slice(0, path.length - 20); // the last 20 bytes should be address(this)
    }

    function setPrecrime(address _precrime) external onlyOwner {
        precrime = _precrime;
        emit SetPrecrime(_precrime);
    }

    function setMinDstGas(uint16 _dstChainId, uint16 _packetType, uint _minGas) external onlyOwner {
        require(_minGas > 0, "LzApp: invalid minGas");
        minDstGasLookup[_dstChainId][_packetType] = _minGas;
        emit SetMinDstGas(_dstChainId, _packetType, _minGas);
    }

    // if the size is 0, it means default size limit
    function setPayloadSizeLimit(uint16 _dstChainId, uint _size) external onlyOwner {
        payloadSizeLimitLookup[_dstChainId] = _size;
    }

    //--------------------------- VIEW FUNCTION ----------------------------------------
    function isTrustedRemote(uint16 _srcChainId, bytes calldata _srcAddress) external view returns (bool) {
        bytes memory trustedSource = trustedRemoteLookup[_srcChainId];
        return keccak256(trustedSource) == keccak256(_srcAddress);
    }
}

File 9 of 10: NonblockingLzApp.sol
// SPDX-License-Identifier: MIT

pragma solidity ^0.8.0;

import "./LzApp.sol";
import "./ExcessivelySafeCall.sol";

/*
 * the default LayerZero messaging behaviour is blocking, i.e. any failed message will block the channel
 * this abstract class try-catch all fail messages and store locally for future retry. hence, non-blocking
 * NOTE: if the srcAddress is not configured properly, it will still block the message pathway from (srcChainId, srcAddress)
 */
abstract contract NonblockingLzApp is LzApp {
    using ExcessivelySafeCall for address;

    constructor(address _endpoint) LzApp(_endpoint) {}

    mapping(uint16 => mapping(bytes => mapping(uint64 => bytes32))) public failedMessages;

    event MessageFailed(uint16 _srcChainId, bytes _srcAddress, uint64 _nonce, bytes _payload, bytes _reason);
    event RetryMessageSuccess(uint16 _srcChainId, bytes _srcAddress, uint64 _nonce, bytes32 _payloadHash);

    // overriding the virtual function in LzReceiver
    function _blockingLzReceive(uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload) internal virtual override {
        (bool success, bytes memory reason) = address(this).excessivelySafeCall(gasleft(), 150, abi.encodeWithSelector(this.nonblockingLzReceive.selector, _srcChainId, _srcAddress, _nonce, _payload));
        // try-catch all errors/exceptions
        if (!success) {
            _storeFailedMessage(_srcChainId, _srcAddress, _nonce, _payload, reason);
        }
    }

    function _storeFailedMessage(uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload, bytes memory _reason) internal virtual {
        failedMessages[_srcChainId][_srcAddress][_nonce] = keccak256(_payload);
        emit MessageFailed(_srcChainId, _srcAddress, _nonce, _payload, _reason);
    }

    function nonblockingLzReceive(uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload) public virtual {
        // only internal transaction
        require(_msgSender() == address(this), "NonblockingLzApp: caller must be LzApp");
        _nonblockingLzReceive(_srcChainId, _srcAddress, _nonce, _payload);
    }

    //@notice override this function
    function _nonblockingLzReceive(uint16 _srcChainId, bytes memory _srcAddress, uint64 _nonce, bytes memory _payload) internal virtual;

    function retryMessage(uint16 _srcChainId, bytes calldata _srcAddress, uint64 _nonce, bytes calldata _payload) public payable virtual {
        // assert there is message to retry
        bytes32 payloadHash = failedMessages[_srcChainId][_srcAddress][_nonce];
        require(payloadHash != bytes32(0), "NonblockingLzApp: no stored message");
        require(keccak256(_payload) == payloadHash, "NonblockingLzApp: invalid payload");
        // clear the stored message
        failedMessages[_srcChainId][_srcAddress][_nonce] = bytes32(0);
        // execute the message. revert if it fails again
        _nonblockingLzReceive(_srcChainId, _srcAddress, _nonce, _payload);
        emit RetryMessageSuccess(_srcChainId, _srcAddress, _nonce, payloadHash);
    }
}

File 10 of 10: Ownable.sol
// SPDX-License-Identifier: MIT
// OpenZeppelin Contracts (last updated v4.9.0) (access/Ownable.sol)

pragma solidity ^0.8.19;

import {Context} from "./Context.sol";

/**
 * @dev Contract module which provides a basic access control mechanism, where
 * there is an account (an owner) that can be granted exclusive access to
 * specific functions.
 *
 * The initial owner is set to the address provided by the deployer. This can
 * later be changed with {transferOwnership}.
 *
 * This module is used through inheritance. It will make available the modifier
 * `onlyOwner`, which can be applied to your functions to restrict their use to
 * the owner.
 */
abstract contract Ownable is Context {
    address private _owner;

    /**
     * @dev The caller account is not authorized to perform an operation.
     */
    error OwnableUnauthorizedAccount(address account);

    /**
     * @dev The owner is not a valid owner account. (eg. `address(0)`)
     */
    error OwnableInvalidOwner(address owner);

    event OwnershipTransferred(address indexed previousOwner, address indexed newOwner);

    /**
     * @dev Initializes the contract setting the address provided by the deployer as the initial owner.
     */
    constructor(address initialOwner) {
        _transferOwnership(initialOwner);
    }

    /**
     * @dev Throws if called by any account other than the owner.
     */
    modifier onlyOwner() {
        _checkOwner();
        _;
    }

    /**
     * @dev Returns the address of the current owner.
     */
    function owner() public view virtual returns (address) {
        return _owner;
    }

    /**
     * @dev Throws if the sender is not the owner.
     */
    function _checkOwner() internal view virtual {
        if (owner() != _msgSender()) {
            revert OwnableUnauthorizedAccount(_msgSender());
        }
    }

    /**
     * @dev Leaves the contract without owner. It will not be possible to call
     * `onlyOwner` functions. Can only be called by the current owner.
     *
     * NOTE: Renouncing ownership will leave the contract without an owner,
     * thereby disabling any functionality that is only available to the owner.
     */
    function renounceOwnership() public virtual onlyOwner {
        _transferOwnership(address(0));
    }

    /**
     * @dev Transfers ownership of the contract to a new account (`newOwner`).
     * Can only be called by the current owner.
     */
    function transferOwnership(address newOwner) public virtual onlyOwner {
        if (newOwner == address(0)) {
            revert OwnableInvalidOwner(address(0));
        }
        _transferOwnership(newOwner);
    }

    /**
     * @dev Transfers ownership of the contract to a new account (`newOwner`).
     * Internal function without access restriction.
     */
    function _transferOwnership(address newOwner) internal virtual {
        address oldOwner = _owner;
        _owner = newOwner;
        emit OwnershipTransferred(oldOwner, newOwner);
    }
}

Contract ABI

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

0000000000000000000000003c2269811836af69497e5f486a85d7316753cf62

-----Decoded View---------------
Arg [0] : _lzEndpoint (address): 0x3c2269811836af69497E5F486A85D7316753cf62

-----Encoded View---------------
1 Constructor Arguments found :
Arg [0] : 0000000000000000000000003c2269811836af69497e5f486a85d7316753cf62


Deployed ByteCode Sourcemap

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Metadata Hash

c15ae3e07c9076d2ead89c0944b611aa1539b4912f2dedee208baff931f051e5
Block Transaction Gas Used Reward
Age Block Fee Address BC Fee Address Voting Power Jailed Incoming
Block Uncle Number Difficulty Gas Used Reward
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