Latest 25 from a total of 74 transactions
| Transaction Hash |
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Block
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From
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To
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|---|---|---|---|---|---|---|---|---|---|
| Bridge | 19598809 | 269 days ago | IN | 3.0002 FRAX | 0.00000009 | ||||
| Bridge | 19598620 | 269 days ago | IN | 2.0002 FRAX | 0.00000009 | ||||
| Bridge | 19598562 | 269 days ago | IN | 2.0002 FRAX | 0.00000009 | ||||
| Bridge | 19598220 | 269 days ago | IN | 0.13547507 FRAX | 0.00000009 | ||||
| Bridge | 19592979 | 269 days ago | IN | 3.0002 FRAX | 0.00000009 | ||||
| Bridge | 19592914 | 269 days ago | IN | 3.0002 FRAX | 0.00000009 | ||||
| Bridge | 19592846 | 269 days ago | IN | 3.0002 FRAX | 0.00000009 | ||||
| Bridge | 19591913 | 269 days ago | IN | 3.0002 FRAX | 0.00000001 | ||||
| Bridge | 19591872 | 269 days ago | IN | 3.0002 FRAX | 0.00000001 | ||||
| Bridge | 19591809 | 269 days ago | IN | 3.0002 FRAX | 0.00000001 | ||||
| Bridge | 19591126 | 269 days ago | IN | 0.9993 FRAX | 0.00000001 | ||||
| Bridge | 19589338 | 269 days ago | IN | 3.0002 FRAX | 0.00000009 | ||||
| Bridge | 19589251 | 269 days ago | IN | 3.0002 FRAX | 0.00000009 | ||||
| Bridge | 19589173 | 269 days ago | IN | 2.0002 FRAX | 0.00000009 | ||||
| Bridge | 19589136 | 269 days ago | IN | 2.0002 FRAX | 0.00000009 | ||||
| Bridge | 19589096 | 269 days ago | IN | 2.0002 FRAX | 0.00000009 | ||||
| Bridge | 19588887 | 269 days ago | IN | 0.0282 FRAX | 0.00000009 | ||||
| Swap Erc20To Nat... | 19386149 | 274 days ago | IN | 0 FRAX | 0.00000091 | ||||
| Bridge Tokens Vi... | 19045598 | 282 days ago | IN | 0.62133587 FRAX | 0.0000002 | ||||
| Swap Erc20To Erc... | 18999694 | 283 days ago | IN | 0 FRAX | 0.00000061 | ||||
| Bridge Tokens Vi... | 18723279 | 289 days ago | IN | 0.00150424 FRAX | 0.00000012 | ||||
| Add Dex | 18698350 | 290 days ago | IN | 0 FRAX | 0.00000028 | ||||
| Bridge | 18686540 | 290 days ago | IN | 0.0002568 FRAX | 0.0000012 | ||||
| 0xd3dfad66 | 18599177 | 292 days ago | IN | 0 FRAX | 0.00000956 | ||||
| Bridge Tokens Vi... | 18471605 | 295 days ago | IN | 0.00042 FRAX | 0.00000006 |
Latest 25 internal transactions (View All)
Advanced mode:
| Parent Transaction Hash | Block | From | To | |||
|---|---|---|---|---|---|---|
| 26468611 | 110 days ago | 0.00000003 FRAX | ||||
| 26401413 | 111 days ago | 0.00000003 FRAX | ||||
| 19598809 | 269 days ago | 0.0002 FRAX | ||||
| 19598809 | 269 days ago | 3 FRAX | ||||
| 19598620 | 269 days ago | 0.0002 FRAX | ||||
| 19598620 | 269 days ago | 2 FRAX | ||||
| 19598562 | 269 days ago | 0.0002 FRAX | ||||
| 19598562 | 269 days ago | 2 FRAX | ||||
| 19598220 | 269 days ago | 0.0002 FRAX | ||||
| 19598220 | 269 days ago | 0.13527507 FRAX | ||||
| 19592979 | 269 days ago | 0.0002 FRAX | ||||
| 19592979 | 269 days ago | 3 FRAX | ||||
| 19592914 | 269 days ago | 0.0002 FRAX | ||||
| 19592914 | 269 days ago | 3 FRAX | ||||
| 19592846 | 269 days ago | 0.0002 FRAX | ||||
| 19592846 | 269 days ago | 3 FRAX | ||||
| 19591913 | 269 days ago | 0.0002 FRAX | ||||
| 19591913 | 269 days ago | 3 FRAX | ||||
| 19591872 | 269 days ago | 0.0002 FRAX | ||||
| 19591872 | 269 days ago | 3 FRAX | ||||
| 19591809 | 269 days ago | 0.0002 FRAX | ||||
| 19591809 | 269 days ago | 3 FRAX | ||||
| 19591126 | 269 days ago | 0.0002 FRAX | ||||
| 19591126 | 269 days ago | 0.9991 FRAX | ||||
| 19589338 | 269 days ago | 0.0002 FRAX |
Cross-Chain Transactions
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Contract Name:
DZapDiamond
Compiler Version
v0.8.19+commit.7dd6d404
Optimization Enabled:
Yes with 300 runs
Other Settings:
default evmVersion
Contract Source Code (Solidity Standard Json-Input format)
// SPDX-License-Identifier: MIT pragma solidity 0.8.19; /******************************************************************************\ * Author: Nick Mudge <[email protected]> (https://twitter.com/mudgen) * EIP-2535 Diamonds: https://eips.ethereum.org/EIPS/eip-2535 * * Implementation of a diamond. /******************************************************************************/ import { LibDiamond } from "./Shared/Libraries/LibDiamond.sol"; import { IDiamondCut } from "./Shared/Interfaces/IDiamondCut.sol"; import { ZeroAddress } from "./Shared/Errors.sol"; contract DZapDiamond { constructor(address _contractOwner, address _diamondCutFacet) payable { if (_contractOwner == address(0)) { revert ZeroAddress(); } LibDiamond.setContractOwner(_contractOwner); // Add the diamondCut external function from the diamondCutFacet IDiamondCut.FacetCut[] memory cut = new IDiamondCut.FacetCut[](1); bytes4[] memory functionSelectors = new bytes4[](1); functionSelectors[0] = IDiamondCut.diamondCut.selector; cut[0] = IDiamondCut.FacetCut({ facetAddress: _diamondCutFacet, action: IDiamondCut.FacetCutAction.Add, functionSelectors: functionSelectors }); LibDiamond.diamondCut(cut, address(0), ""); } // Find facet for function that is called and execute the // function if a facet is found and return any value. // solhint-disable-next-line no-complex-fallback fallback() external payable { LibDiamond.DiamondStorage storage ds; bytes32 position = LibDiamond.DIAMOND_STORAGE_POSITION; // get diamond storage // solhint-disable-next-line no-inline-assembly assembly { ds.slot := position } // get facet from function selector address facet = ds.selectorToFacetAndPosition[msg.sig].facetAddress; if (facet == address(0)) { revert LibDiamond.FunctionDoesNotExist(); } // Execute external function from facet using delegatecall and return any value. // solhint-disable-next-line no-inline-assembly assembly { // copy function selector and any arguments calldatacopy(0, 0, calldatasize()) // execute function call using the facet let result := delegatecall(gas(), facet, 0, calldatasize(), 0, 0) // get any return value returndatacopy(0, 0, returndatasize()) // return any return value or error back to the caller switch result case 0 { revert(0, returndatasize()) } default { return(0, returndatasize()) } } } // Able to receive ether // solhint-disable-next-line no-empty-blocks receive() external payable {} }
// SPDX-License-Identifier: MIT pragma solidity 0.8.19; error OnlyContractOwner(); error NoTransferToNullAddress(); error NativeTransferFailed(); error NullAddrIsNotAValidSpender(); error NullAddrIsNotAnERC20Token(); error InvalidAmount(); error InsufficientBalance(uint256 amount, uint256 contractBalance); error ZeroAddress(); error AlreadyInitialized(); error NotAContract(); error InvalidContract(); error CannotAuthorizeSelf(); error UnAuthorized(); error InvalidFee(); error InvalidFixedNativeFee(); error InvalidReceiver(); error InformationMismatch(); error InvalidSendingToken(); error NativeTokenNotSupported(); error InvalidDestinationChain(); error CannotBridgeToSameNetwork(); error IntegratorNotAllowed(); error ContractCallNotAllowed(); error NoSwapFromZeroBalance(); error SlippageTooHigh(uint256 minAmount, uint256 returnAmount); error SwapCallFailed(bytes reason); error BridgeCallFailed(bytes reason); error UnAuthorizedCallToFunction(); error TokenInformationMismatch(); error FeeTooHigh(); error NotInitialized(); error UnauthorizedCaller(); error InvalidSwapDetails();
// SPDX-License-Identifier: MIT
pragma solidity 0.8.19;
interface IDiamondCut {
enum FacetCutAction {
Add,
Replace,
Remove
}
// Add=0, Replace=1, Remove=2
struct FacetCut {
address facetAddress;
FacetCutAction action;
bytes4[] functionSelectors;
}
/// @notice Add/replace/remove any number of functions and optionally execute
/// a function with delegatecall
/// @param _diamondCut Contains the facet addresses and function selectors
/// @param _init The address of the contract or facet to execute _calldata
/// @param _calldata A function call, including function selector and arguments
/// _calldata is executed with delegatecall on _init
function diamondCut(FacetCut[] calldata _diamondCut, address _init, bytes calldata _calldata) external;
event DiamondCut(FacetCut[] _diamondCut, address _init, bytes _calldata);
}// SPDX-License-Identifier: MIT
pragma solidity 0.8.19;
/// https://github.com/Cryptorubic/multi-proxy-rubic/blob/master/src/Libraries/LibBytes.sol
library LibBytes {
// solhint-disable no-inline-assembly
// LibBytes specific errors
error SliceOverflow();
error SliceOutOfBounds();
error AddressOutOfBounds();
error UintOutOfBounds();
// -------------------------
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 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) {
if (_length + 31 < _length) revert SliceOverflow();
if (_bytes.length < _start + _length) revert SliceOutOfBounds();
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) {
if (_bytes.length < _start + 20) {
revert AddressOutOfBounds();
}
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) {
if (_bytes.length < _start + 1) {
revert UintOutOfBounds();
}
uint8 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x1), _start))
}
return tempUint;
}
function toUint16(bytes memory _bytes, uint256 _start) internal pure returns (uint16) {
if (_bytes.length < _start + 2) {
revert UintOutOfBounds();
}
uint16 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x2), _start))
}
return tempUint;
}
function toUint32(bytes memory _bytes, uint256 _start) internal pure returns (uint32) {
if (_bytes.length < _start + 4) {
revert UintOutOfBounds();
}
uint32 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x4), _start))
}
return tempUint;
}
function toUint64(bytes memory _bytes, uint256 _start) internal pure returns (uint64) {
if (_bytes.length < _start + 8) {
revert UintOutOfBounds();
}
uint64 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x8), _start))
}
return tempUint;
}
function toUint96(bytes memory _bytes, uint256 _start) internal pure returns (uint96) {
if (_bytes.length < _start + 12) {
revert UintOutOfBounds();
}
uint96 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0xc), _start))
}
return tempUint;
}
function toUint128(bytes memory _bytes, uint256 _start) internal pure returns (uint128) {
if (_bytes.length < _start + 16) {
revert UintOutOfBounds();
}
uint128 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x10), _start))
}
return tempUint;
}
function toUint256(bytes memory _bytes, uint256 _start) internal pure returns (uint256) {
if (_bytes.length < _start + 32) {
revert UintOutOfBounds();
}
uint256 tempUint;
assembly {
tempUint := mload(add(add(_bytes, 0x20), _start))
}
return tempUint;
}
function toBytes32(bytes memory _bytes, uint256 _start) internal pure returns (bytes32) {
if (_bytes.length < _start + 32) {
revert UintOutOfBounds();
}
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)
// solhint-disable-next-line no-empty-blocks
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;
}
function getFirst4Bytes(bytes memory data) internal pure returns (bytes4 outBytes4) {
if (data.length == 0) {
return 0x0;
}
assembly {
outBytes4 := mload(add(data, 32))
}
}
}// SPDX-License-Identifier: MIT
pragma solidity 0.8.19;
import { IDiamondCut } from "../Interfaces/IDiamondCut.sol";
import { LibUtil } from "../Libraries/LibUtil.sol";
import { OnlyContractOwner } from "../Errors.sol";
/// Implementation of EIP-2535 Diamond Standard
/// https://eips.ethereum.org/EIPS/eip-2535
library LibDiamond {
bytes32 internal constant DIAMOND_STORAGE_POSITION = keccak256("diamond.standard.diamond.storage");
// Diamond specific errors
error IncorrectFacetCutAction();
error NoSelectorsInFace();
error FunctionAlreadyExists();
error FacetAddressIsZero();
error FacetAddressIsNotZero();
error FacetContainsNoCode();
error FunctionDoesNotExist();
error FunctionIsImmutable();
error InitZeroButCalldataNotEmpty();
error CalldataEmptyButInitNotZero();
error InitReverted(bytes reason);
// ----------------
struct FacetAddressAndPosition {
address facetAddress;
uint96 functionSelectorPosition; // position in facetFunctionSelectors.functionSelectors array
}
struct FacetFunctionSelectors {
bytes4[] functionSelectors;
uint256 facetAddressPosition; // position of facetAddress in facetAddresses array
}
struct DiamondStorage {
// maps function selector to the facet address and
// the position of the selector in the facetFunctionSelectors.selectors array
mapping(bytes4 => FacetAddressAndPosition) selectorToFacetAndPosition;
// maps facet addresses to function selectors
mapping(address => FacetFunctionSelectors) facetFunctionSelectors;
// facet addresses
address[] facetAddresses;
// Used to query if a contract implements an interface.
// Used to implement ERC-165.
mapping(bytes4 => bool) supportedInterfaces;
// owner of the contract
address contractOwner;
}
function diamondStorage() internal pure returns (DiamondStorage storage ds) {
bytes32 position = DIAMOND_STORAGE_POSITION;
// solhint-disable-next-line no-inline-assembly
assembly {
ds.slot := position
}
}
event OwnershipTransferred(address indexed previousOwner, address indexed newOwner);
function setContractOwner(address _newOwner) internal {
DiamondStorage storage ds = diamondStorage();
address previousOwner = ds.contractOwner;
ds.contractOwner = _newOwner;
emit OwnershipTransferred(previousOwner, _newOwner);
}
function contractOwner() internal view returns (address contractOwner_) {
contractOwner_ = diamondStorage().contractOwner;
}
function enforceIsContractOwner() internal view {
if (msg.sender != diamondStorage().contractOwner) revert OnlyContractOwner();
}
event DiamondCut(IDiamondCut.FacetCut[] _diamondCut, address _init, bytes _calldata);
// Internal function version of diamondCut
function diamondCut(IDiamondCut.FacetCut[] memory _diamondCut, address _init, bytes memory _calldata) internal {
for (uint256 facetIndex; facetIndex < _diamondCut.length; ) {
IDiamondCut.FacetCutAction action = _diamondCut[facetIndex].action;
if (action == IDiamondCut.FacetCutAction.Add) {
addFunctions(_diamondCut[facetIndex].facetAddress, _diamondCut[facetIndex].functionSelectors);
} else if (action == IDiamondCut.FacetCutAction.Replace) {
replaceFunctions(_diamondCut[facetIndex].facetAddress, _diamondCut[facetIndex].functionSelectors);
} else if (action == IDiamondCut.FacetCutAction.Remove) {
removeFunctions(_diamondCut[facetIndex].facetAddress, _diamondCut[facetIndex].functionSelectors);
} else {
revert IncorrectFacetCutAction();
}
unchecked {
++facetIndex;
}
}
emit DiamondCut(_diamondCut, _init, _calldata);
initializeDiamondCut(_init, _calldata);
}
function addFunctions(address _facetAddress, bytes4[] memory _functionSelectors) internal {
if (_functionSelectors.length == 0) {
revert NoSelectorsInFace();
}
DiamondStorage storage ds = diamondStorage();
if (LibUtil.isZeroAddress(_facetAddress)) {
revert FacetAddressIsZero();
}
uint96 selectorPosition = uint96(ds.facetFunctionSelectors[_facetAddress].functionSelectors.length);
// add new facet address if it does not exist
if (selectorPosition == 0) {
addFacet(ds, _facetAddress);
}
for (uint256 selectorIndex; selectorIndex < _functionSelectors.length; ) {
bytes4 selector = _functionSelectors[selectorIndex];
address oldFacetAddress = ds.selectorToFacetAndPosition[selector].facetAddress;
if (!LibUtil.isZeroAddress(oldFacetAddress)) {
revert FunctionAlreadyExists();
}
addFunction(ds, selector, selectorPosition, _facetAddress);
unchecked {
++selectorPosition;
++selectorIndex;
}
}
}
function replaceFunctions(address _facetAddress, bytes4[] memory _functionSelectors) internal {
if (_functionSelectors.length == 0) {
revert NoSelectorsInFace();
}
DiamondStorage storage ds = diamondStorage();
if (LibUtil.isZeroAddress(_facetAddress)) {
revert FacetAddressIsZero();
}
uint96 selectorPosition = uint96(ds.facetFunctionSelectors[_facetAddress].functionSelectors.length);
// add new facet address if it does not exist
if (selectorPosition == 0) {
addFacet(ds, _facetAddress);
}
for (uint256 selectorIndex; selectorIndex < _functionSelectors.length; ) {
bytes4 selector = _functionSelectors[selectorIndex];
address oldFacetAddress = ds.selectorToFacetAndPosition[selector].facetAddress;
if (oldFacetAddress == _facetAddress) {
revert FunctionAlreadyExists();
}
removeFunction(ds, oldFacetAddress, selector);
addFunction(ds, selector, selectorPosition, _facetAddress);
unchecked {
++selectorPosition;
++selectorIndex;
}
}
}
function removeFunctions(address _facetAddress, bytes4[] memory _functionSelectors) internal {
if (_functionSelectors.length == 0) {
revert NoSelectorsInFace();
}
DiamondStorage storage ds = diamondStorage();
// if function does not exist then do nothing and return
if (!LibUtil.isZeroAddress(_facetAddress)) {
revert FacetAddressIsNotZero();
}
for (uint256 selectorIndex; selectorIndex < _functionSelectors.length; ) {
bytes4 selector = _functionSelectors[selectorIndex];
address oldFacetAddress = ds.selectorToFacetAndPosition[selector].facetAddress;
removeFunction(ds, oldFacetAddress, selector);
unchecked {
++selectorIndex;
}
}
}
function addFacet(DiamondStorage storage ds, address _facetAddress) internal {
enforceHasContractCode(_facetAddress);
ds.facetFunctionSelectors[_facetAddress].facetAddressPosition = ds.facetAddresses.length;
ds.facetAddresses.push(_facetAddress);
}
function addFunction(DiamondStorage storage ds, bytes4 _selector, uint96 _selectorPosition, address _facetAddress) internal {
ds.selectorToFacetAndPosition[_selector].functionSelectorPosition = _selectorPosition;
ds.facetFunctionSelectors[_facetAddress].functionSelectors.push(_selector);
ds.selectorToFacetAndPosition[_selector].facetAddress = _facetAddress;
}
function removeFunction(DiamondStorage storage ds, address _facetAddress, bytes4 _selector) internal {
if (LibUtil.isZeroAddress(_facetAddress)) {
revert FunctionDoesNotExist();
}
// an immutable function is a function defined directly in a diamond
if (_facetAddress == address(this)) {
revert FunctionIsImmutable();
}
// replace selector with last selector, then delete last selector
uint256 selectorPosition = ds.selectorToFacetAndPosition[_selector].functionSelectorPosition;
uint256 lastSelectorPosition = ds.facetFunctionSelectors[_facetAddress].functionSelectors.length - 1;
// if not the same then replace _selector with lastSelector
if (selectorPosition != lastSelectorPosition) {
bytes4 lastSelector = ds.facetFunctionSelectors[_facetAddress].functionSelectors[lastSelectorPosition];
ds.facetFunctionSelectors[_facetAddress].functionSelectors[selectorPosition] = lastSelector;
ds.selectorToFacetAndPosition[lastSelector].functionSelectorPosition = uint96(selectorPosition);
}
// delete the last selector
ds.facetFunctionSelectors[_facetAddress].functionSelectors.pop();
delete ds.selectorToFacetAndPosition[_selector];
// if no more selectors for facet address then delete the facet address
if (lastSelectorPosition == 0) {
// replace facet address with last facet address and delete last facet address
uint256 lastFacetAddressPosition = ds.facetAddresses.length - 1;
uint256 facetAddressPosition = ds.facetFunctionSelectors[_facetAddress].facetAddressPosition;
if (facetAddressPosition != lastFacetAddressPosition) {
address lastFacetAddress = ds.facetAddresses[lastFacetAddressPosition];
ds.facetAddresses[facetAddressPosition] = lastFacetAddress;
ds.facetFunctionSelectors[lastFacetAddress].facetAddressPosition = facetAddressPosition;
}
ds.facetAddresses.pop();
delete ds.facetFunctionSelectors[_facetAddress].facetAddressPosition;
}
}
function initializeDiamondCut(address _init, bytes memory _calldata) internal {
if (LibUtil.isZeroAddress(_init)) {
if (_calldata.length != 0) {
revert InitZeroButCalldataNotEmpty();
}
} else {
if (_calldata.length == 0) {
revert CalldataEmptyButInitNotZero();
}
if (_init != address(this)) {
enforceHasContractCode(_init);
}
// solhint-disable-next-line avoid-low-level-calls
(bool success, bytes memory error) = _init.delegatecall(_calldata);
if (!success) {
revert InitReverted(error);
}
}
}
function enforceHasContractCode(address _contract) internal view {
uint256 contractSize;
// solhint-disable-next-line no-inline-assembly
assembly {
contractSize := extcodesize(_contract)
}
if (contractSize == 0) {
revert FacetContainsNoCode();
}
}
}// SPDX-License-Identifier: MIT
pragma solidity 0.8.19;
import "./LibBytes.sol";
library LibUtil {
using LibBytes for bytes;
function getRevertMsg(bytes memory _res) internal pure returns (string memory) {
if (_res.length < 68) return string(_res);
bytes memory revertData = _res.slice(4, _res.length - 4); // Remove the selector which is the first 4 bytes
return abi.decode(revertData, (string)); // All that remains is the revert string
}
/// @notice Determines whether the given address is the zero address
/// @param addr The address to verify
/// @return Boolean indicating if the address is the zero address
function isZeroAddress(address addr) internal pure returns (bool) {
return addr == address(0);
}
}{
"optimizer": {
"enabled": true,
"runs": 300
},
"viaIR": true,
"outputSelection": {
"*": {
"*": [
"evm.bytecode",
"evm.deployedBytecode",
"devdoc",
"userdoc",
"metadata",
"abi"
]
}
},
"metadata": {
"useLiteralContent": true
},
"libraries": {}
}Contract Security Audit
- No Contract Security Audit Submitted- Submit Audit Here
Contract ABI
API[{"inputs":[{"internalType":"address","name":"_contractOwner","type":"address"},{"internalType":"address","name":"_diamondCutFacet","type":"address"}],"stateMutability":"payable","type":"constructor"},{"inputs":[],"name":"CalldataEmptyButInitNotZero","type":"error"},{"inputs":[],"name":"FacetAddressIsNotZero","type":"error"},{"inputs":[],"name":"FacetAddressIsZero","type":"error"},{"inputs":[],"name":"FacetContainsNoCode","type":"error"},{"inputs":[],"name":"FunctionAlreadyExists","type":"error"},{"inputs":[],"name":"FunctionDoesNotExist","type":"error"},{"inputs":[],"name":"FunctionIsImmutable","type":"error"},{"inputs":[],"name":"IncorrectFacetCutAction","type":"error"},{"inputs":[{"internalType":"bytes","name":"reason","type":"bytes"}],"name":"InitReverted","type":"error"},{"inputs":[],"name":"InitZeroButCalldataNotEmpty","type":"error"},{"inputs":[],"name":"NoSelectorsInFace","type":"error"},{"inputs":[],"name":"ZeroAddress","type":"error"},{"stateMutability":"payable","type":"fallback"},{"stateMutability":"payable","type":"receive"}]Contract Creation Code
60806001600160401b03601f610c0138819003918201601f1916840191838311858410176105da57808592604094855283398101031261062a5761004e60206100478461066d565b930161066d565b916001600160a01b03168015610618577fc8fcad8db84d3cc18b4c41d551ea0ee66dd599cde068d998e57d5e09332c132080546001600160a01b0319811683179091556001600160a01b03167f8be0079c531659141344cd1fd0a4f28419497f9722a3daafe3b4186f6b6457e0600080a36100c761064e565b916001835260005b602081106105f057506100e061064e565b60018152602036818301376307e4c70760e21b6100fc82610681565b5261010561062f565b6001600160a01b03909216825260006020830152604082015261012783610681565b5261013182610681565b506040519060208201908111828210176105da576040526000808252825b805182101561047957602061016483836106a4565b510151600381101561046357806102a157506001600160a01b0361018883836106a4565b515116604061019784846106a4565b51015180511561028f57811561027d576001600160a01b0382166000908152600080516020610be183398151915260205260409020546001600160601b039390841690811561026f575b6000915b835183101561025b576001600160e01b031961020184866106a4565b51166000818152600080516020610ba183398151915260205260409020549091906001600160a01b03166102495760018161023f888a94849661079d565b01169201916101e5565b60405163a023275d60e01b8152600490fd5b50959492505050600191505b01909161014f565b610278846106df565b6101e1565b604051636347641d60e11b8152600490fd5b6040516307bc559560e41b8152600490fd5b600181036103a657506001600160a01b036102bc83836106a4565b5151169260406102cc84846106a4565b51015180511561028f57841561027d576001600160a01b0385166000908152600080516020610be183398151915260205260409020546001600160601b0393908416908115610398575b6000915b8351831015610389576001600160e01b031961033684866106a4565b51166000818152600080516020610ba183398151915260205260409020546001600160a01b031690898214610249578261037f8b6001958461037a88968e98610888565b61079d565b011692019161031a565b50955050509160019150610267565b6103a1876106df565b610316565b600203610451576001600160a01b036103bf83836106a4565b5151169060406103cf84836106a4565b5101519182511561028f5761043f5760005b82518110156104335760019061042d6001600160e01b031961040383876106a4565b511680600052600080516020610ba1833981519152602052838060a01b0360406000205416610888565b016103e1565b50929160019150610267565b604051633ce4ef9160e11b8152600490fd5b60405163e548e6b560e01b8152600490fd5b634e487b7160e01b600052602160045260246000fd5b905060405190606082016060835281518091526080830190602060808260051b8601019301916000905b8282106105425750505050600060208301528181036040830152825180825260005b81811061052d57508282826000602080957f8faa70878671ccd212d20771b795c50af8fd3ff6cf27f4bde57e5d4de0aeb6739897010152601f801991011601030190a15161051b5760405160c29081610adf8239f35b6040516304c08b4360e51b8152600490fd5b806020809287010151828286010152016104c5565b858503607f19018152835180516001600160a01b0316865260208101519495939492939192906003821015610463576040916020840152015190606060408201526020608060608301928451809452019201906000905b8082106105b7575050506020806001929601920192019092916104a3565b82516001600160e01b031916845260209384019390920191600190910190610599565b634e487b7160e01b600052604160045260246000fd5b6020906105fb61062f565b6000815260008382015260606040820152828287010152016100cf565b60405163d92e233d60e01b8152600490fd5b600080fd5b60405190606082016001600160401b038111838210176105da57604052565b60408051919082016001600160401b038111838210176105da57604052565b51906001600160a01b038216820361062a57565b80511561068e5760200190565b634e487b7160e01b600052603260045260246000fd5b805182101561068e5760209160051b010190565b600080516020610bc1833981519152805482101561068e5760005260206000200190600090565b803b1561076957600080516020610bc183398151915280546001600160a01b0383166000908152600080516020610be1833981519152602052604090206001018190559190680100000000000000008310156105da5782610748916001610767950190556106b8565b90919082549060031b9160018060a01b03809116831b921b1916179055565b565b6040516271a80360e91b8152600490fd5b919091805483101561068e57600052601c60206000208360031c019260021b1690565b6001600160e01b031981166000818152600080516020610ba183398151915260208190526040822080546001600160a01b031660a09690961b6001600160a01b031916959095179094559194939092906001600160a01b0316808352600080516020610be18339815191526020526040832080549194919068010000000000000000821015610874579661083e826040979899600161085b9501815561077a565b90919063ffffffff83549160031b9260e01c831b921b1916179055565b82526020522080546001600160a01b0319169091179055565b634e487b7160e01b85526041600452602485fd5b9091906001600160a01b039081168015610acc57308114610aba5763ffffffff60e01b809416600092818452600080516020610ba1833981519152926020918483526040948587205460a01c90838852600080516020610be18339815191529586865287892054926000199b8c8501948511610aa657908991888c898c89808703610a38575b505090525050508787525087892080548015610a24578c0190610931828261077a565b63ffffffff82549160031b1b19169055558852845286868120551561095b575b5050505050509050565b600080516020610bc18339815191528054898101908111610a1057838852858552826001888a200154918083036109de575b50505080549889156109ca57600197989901916109a9836106b8565b909182549160031b1b19169055558552528220015580388080808080610951565b634e487b7160e01b88526031600452602488fd5b6109e7906106b8565b90549060031b1c166109fc81610748846106b8565b88528585526001878920015538828161098d565b634e487b7160e01b88526011600452602488fd5b634e487b7160e01b8b52603160045260248bfd5b610a99978461083e93610a578a9487610a6d9952828a5284842061077a565b90549060031b1c60e01b9788968352522061077a565b168b52838852898b2080546001600160a01b031660a09290921b6001600160a01b031916919091179055565b873880888c898c8961090e565b634e487b7160e01b8b52601160045260248bfd5b60405163c3c5ec3760e01b8152600490fd5b604051631535ac5f60e31b8152600490fdfe60806040523615608a57600080356001600160e01b03191681527fc8fcad8db84d3cc18b4c41d551ea0ee66dd599cde068d998e57d5e09332c131c602052604081205473ffffffffffffffffffffffffffffffffffffffff168015607957818091368280378136915af43d82803e156075573d90f35b3d90fd5b631535ac5f60e31b60805260046080fd5b00fea2646970667358221220e8e86efb8ee77b86665fa5c5559071a2104f16237d867d1f302bb954f0f1998d64736f6c63430008130033c8fcad8db84d3cc18b4c41d551ea0ee66dd599cde068d998e57d5e09332c131cc8fcad8db84d3cc18b4c41d551ea0ee66dd599cde068d998e57d5e09332c131ec8fcad8db84d3cc18b4c41d551ea0ee66dd599cde068d998e57d5e09332c131d00000000000000000000000045679cdf728abdcdfce0f03a8f1d22ba49babc720000000000000000000000003e9fd8dcfd992a5a254c5e43d2e8a7b60bfda8d8
Deployed Bytecode
0x60806040523615608a57600080356001600160e01b03191681527fc8fcad8db84d3cc18b4c41d551ea0ee66dd599cde068d998e57d5e09332c131c602052604081205473ffffffffffffffffffffffffffffffffffffffff168015607957818091368280378136915af43d82803e156075573d90f35b3d90fd5b631535ac5f60e31b60805260046080fd5b00fea2646970667358221220e8e86efb8ee77b86665fa5c5559071a2104f16237d867d1f302bb954f0f1998d64736f6c63430008130033
Constructor Arguments (ABI-Encoded and is the last bytes of the Contract Creation Code above)
00000000000000000000000045679cdf728abdcdfce0f03a8f1d22ba49babc720000000000000000000000003e9fd8dcfd992a5a254c5e43d2e8a7b60bfda8d8
-----Decoded View---------------
Arg [0] : _contractOwner (address): 0x45679CDF728abdcdfce0F03A8f1D22BA49BAbC72
Arg [1] : _diamondCutFacet (address): 0x3E9fd8DCfD992a5a254C5E43D2e8a7b60BfDA8D8
-----Encoded View---------------
2 Constructor Arguments found :
Arg [0] : 00000000000000000000000045679cdf728abdcdfce0f03a8f1d22ba49babc72
Arg [1] : 0000000000000000000000003e9fd8dcfd992a5a254c5e43d2e8a7b60bfda8d8
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OVERVIEW
Meta dex and bridge aggregatorLoading...
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Net Worth in USD
$5.56
Net Worth in FRAX
5.331238
Token Allocations
FRAX
51.72%
SEI
14.23%
ETH
14.01%
Others
20.03%
Multichain Portfolio | 35 Chains
| Chain | Token | Portfolio % | Price | Amount | Value |
|---|---|---|---|---|---|
| FRAXTAL | 51.72% | $1.04 | 2.763 | $2.88 | |
| SEI | 14.23% | $0.106149 | 7.46 | $0.791874 | |
| SCROLL | 7.71% | $2,952.81 | 0.00014522 | $0.428817 | |
| POL | 7.56% | $0.125806 | 3.343 | $0.420575 | |
| BASE | 6.63% | $0.999724 | 0.3693 | $0.3691 | |
| ARB | 6.31% | $2,952.92 | 0.00011883 | $0.350897 | |
| AVAX | 2.93% | $12.06 | 0.0135 | $0.162853 | |
| MANTLE | 1.87% | $0.906717 | 0.1149 | $0.104146 | |
| CELO | 0.78% | $0.115791 | 0.3765 | $0.0436 | |
| BSC | 0.16% | $887.07 | 0.00001013 | $0.008987 | |
| GLMR | 0.09% | $0.021722 | 0.2373 | $0.005154 |
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