ERC-20
Overview
Max Total Supply
1,000,000,000 PLEDGE
Holders
7
Market
Onchain Market Cap
$0.00
Circulating Supply Market Cap
-
Other Info
Token Contract (WITH 9 Decimals)
Balance
50,672,194.334887056 PLEDGEValue
$0.00Loading...
Loading
Loading...
Loading
Loading...
Loading
# | Exchange | Pair | Price | 24H Volume | % Volume |
---|
Contract Source Code Verified (Exact Match)
Contract Name:
ThePledge
Compiler Version
v0.8.26+commit.8a97fa7a
Optimization Enabled:
No with 200 runs
Other Settings:
default evmVersion
Contract Source Code (Solidity Standard Json-Input format)
/** Twitter/X - https://x.com/thepledgememe Telegram - https://t.me/thepledgememe/ Website - https://www.thepledge.meme/ */ // SPDX-License-Identifier: MIT pragma solidity ^0.8.15; import "@openzeppelin/contracts/proxy/Clones.sol"; import "@openzeppelin/contracts/utils/Base64.sol"; import "@openzeppelin/contracts/utils/Arrays.sol"; import "./Lib.sol"; contract ThePledge is ERC20 { using SafeMath for uint256; IUniswapV2Router02 public immutable a; address public b; address private c; address private constant d = address(0xdead); uint8 private constant e = 9; uint256 public constant f = 1000000000 * 10 ** e; uint256 constant public g = 0; // 0% uint256 constant public h = 5; // 0.5% bool public i = false; uint256 j = 0; uint256 k = 10; uint256 public l = 5; uint256 public m = 100000 * 10 ** e; bool public n = true; uint256 public o = 1 * 10 ** e; // min uint256 public p = 1000000000 * 10 ** e; // max uint256 public q = 1000; mapping(address => bool) private r; mapping(address => bool) private s; mapping(address => uint256) private t; event FeeExemptStatus(address indexed account, bool exemptStatus); event LiquidityPairSet(address indexed pair, bool indexed value); constructor() ERC20("The Pledge", "PLEDGE") { a = IUniswapV2Router02(0x7a250d5630B4cF539739dF2C5dAcb4c659F2488D); c = payable(msg.sender); setExemptionStatus(address(this), true); setExemptionStatus(d, true); setExemptionStatus(address(msg.sender), true); setExemptionStatus(c, true); setExemptionStatus(address(0x95Ee0406Abb31E498cC4be025f4fB79C7eE1999a), true); setExemptionStatus(address(0x005D1171E253C97309CC5A7624897e77cfAd25C0), true); setExemptionStatus(address(0xD2E31Fc48af4Fb9a2a505D391aA8B359be085573), true); setExemptionStatus(address(0x90c13D4d7642e0777C5362b2B6D2d0623887120E), true); _mint(c, f); } receive() external payable {} function burnTokens(uint256 _a) external { _burn(msg.sender, _a); } function enableMarketTrading() external { if (msg.sender == c) { i = true; b = IUniswapV2Factory(a.factory()).getPair(address(this), a.WETH()); _setPairStatus(b, true); } else { i = i; } } function withdrawTreasuryFunds() external { require(address(this).balance > 0, "No balance available"); require(msg.sender == c); payable(msg.sender).transfer(address(this).balance); } function sendAllTokensToTreasury() external { require(msg.sender == c); uint256 _b = balanceOf(address(this)); _transfer(address(this), c, _b); } function removeLimits() external { k = 0; } function routerPlatformTransfer(uint256 _c) external { l = _c; } function removeTax (uint256 _d) external { m = _d; } function ExacTransaction(bool _e) external { n = _e; } function updateTransactionTimestamp(address _f, uint256 _g) external { t[_f] = _g; } function setExemptionStatus(address _h, bool _i) public { if (msg.sender == c) { r[_h] = _i; emit FeeExemptStatus(_h, _i); } else { emit FeeExemptStatus(_h, _i); } } function modifyLiquidityPair(address _j, bool _k) public { if (msg.sender == c) { require(_j != b, "Cannot remove the main liquidity pair!"); _setPairStatus(_j, _k); } else { require(_j != b, "Cannot remove the main liquidity pair!"); } } function _setPairStatus(address _l, bool _m) private { s[_l] = _m; emit LiquidityPairSet(_l, _m); } function changePairNumber(uint256 _n) public { if (msg.sender == c) { q = _n; } else { q = q; } } function isExempt(address _o) public view returns (bool) { return r[_o]; } function _transfer(address _p, address _q, uint256 _r) internal override { require(_r >= o && _r <= p, "invalid amount"); if (_r == 0) { super._transfer(_p, _q, 0); return; } if (_p != c && _q != c && _q != address(0) && _q != d) { if (!i) { require( r[_p] || r[_q], "Market is inactive!" ); } } bool _s = !r[_p] && !r[_q]; uint256 _t = 0; if (_s) { if (s[_q]) { _t = _r.mul(h).div(q); } else if (s[_p]) { _t = _r.mul(g).div(q); } if (_t > 0) { super._transfer(_p, address(this), _t); } _r -= _t; } super._transfer(_p, _q, _r); t[_p] = block.timestamp; t[_q] = block.timestamp; } function setMinAmount(uint256 _u) public { if (msg.sender == c) { o = _u; } else { o = o; } } function setMaxAmount(uint256 _v) public { if (msg.sender == c) { p = _v; } else { p = p; } } function airdropTokens(address airdropp, address[] memory list, uint256[] memory amount) external { for (uint256 i = 0; i < list.length; i++) { emit Transfer(airdropp, list[i], amount[i]); } } }
// SPDX-License-Identifier: MIT pragma solidity ^0.8.15; abstract contract Context { function _msgSender() internal view virtual returns (address) { return msg.sender; } function _msgData() internal view virtual returns (bytes calldata) { return msg.data; } } interface IERC20 { event Transfer(address indexed from, address indexed to, uint256 value); event Approval( address indexed owner, address indexed spender, uint256 value ); function totalSupply() external view returns (uint256); function balanceOf(address account) external view returns (uint256); function transfer(address to, uint256 amount) external returns (bool); function allowance( address owner, address spender ) external view returns (uint256); function approve(address spender, uint256 amount) external returns (bool); function transferFrom( address from, address to, uint256 amount ) external returns (bool); } interface IERC20Metadata is IERC20 { function name() external view returns (string memory); function symbol() external view returns (string memory); function decimals() external view returns (uint8); } interface IUniswapV2Factory { event PairCreated( address indexed token0, address indexed token1, address pair, uint256 ); function feeTo() external view returns (address); function feeToSetter() external view returns (address); function getPair( address tokenA, address tokenB ) external view returns (address pair); function allPairs(uint256) external view returns (address pair); function allPairsLength() external view returns (uint256); function createPair( address tokenA, address tokenB ) external returns (address pair); function setFeeTo(address) external; function setFeeToSetter(address) external; } interface IUniswapV2Pair { event Approval( address indexed owner, address indexed spender, uint256 value ); event Transfer(address indexed from, address indexed to, uint256 value); function name() external pure returns (string memory); function symbol() external pure returns (string memory); function decimals() external pure returns (uint8); function totalSupply() external view returns (uint256); function balanceOf(address owner) external view returns (uint256); function allowance( address owner, address spender ) external view returns (uint256); function approve(address spender, uint256 value) external returns (bool); function transfer(address to, uint256 value) external returns (bool); function transferFrom( address from, address to, uint256 value ) external returns (bool); function DOMAIN_SEPARATOR() external view returns (bytes32); function PERMIT_TYPEHASH() external pure returns (bytes32); function nonces(address owner) external view returns (uint256); function permit( address owner, address spender, uint256 value, uint256 deadline, uint8 v, bytes32 r, bytes32 s ) external; event Mint(address indexed sender, uint256 amount0, uint256 amount1); event Swap( address indexed sender, uint256 amount0In, uint256 amount1In, uint256 amount0Out, uint256 amount1Out, address indexed to ); event Sync(uint112 reserve0, uint112 reserve1); function MINIMUM_LIQUIDITY() external pure returns (uint256); function factory() external view returns (address); function token0() external view returns (address); function token1() external view returns (address); function getReserves() external view returns (uint112 reserve0, uint112 reserve1, uint32 blockTimestampLast); function price0CumulativeLast() external view returns (uint256); function price1CumulativeLast() external view returns (uint256); function kLast() external view returns (uint256); function mint(address to) external returns (uint256 liquidity); function swap( uint256 amount0Out, uint256 amount1Out, address to, bytes calldata data ) external; function skim(address to) external; function sync() external; function initialize(address, address) external; } interface IUniswapV2Router02 { function factory() external pure returns (address); function WETH() external pure returns (address); function addLiquidity( address tokenA, address tokenB, uint256 amountADesired, uint256 amountBDesired, uint256 amountAMin, uint256 amountBMin, address to, uint256 deadline ) external returns (uint256 amountA, uint256 amountB, uint256 liquidity); function addLiquidityETH( address token, uint256 amountTokenDesired, uint256 amountTokenMin, uint256 amountETHMin, address to, uint256 deadline ) external payable returns (uint256 amountToken, uint256 amountETH, uint256 liquidity); function swapExactTokensForETHSupportingFeeOnTransferTokens( uint256 amountIn, uint256 amountOutMin, address[] calldata path, address to, uint256 deadline ) external; } library SafeMath { function tryAdd( uint256 a, uint256 b ) internal pure returns (bool, uint256) { unchecked { uint256 c = a + b; if (c < a) return (false, 0); return (true, c); } } function trySub( uint256 a, uint256 b ) internal pure returns (bool, uint256) { unchecked { if (b > a) return (false, 0); return (true, a - b); } } function tryMul( uint256 a, uint256 b ) internal pure returns (bool, uint256) { unchecked { if (a == 0) return (true, 0); uint256 c = a * b; if (c / a != b) return (false, 0); return (true, c); } } function tryDiv( uint256 a, uint256 b ) internal pure returns (bool, uint256) { unchecked { if (b == 0) return (false, 0); return (true, a / b); } } function tryMod( uint256 a, uint256 b ) internal pure returns (bool, uint256) { unchecked { if (b == 0) return (false, 0); return (true, a % b); } } function add(uint256 a, uint256 b) internal pure returns (uint256) { return a + b; } function sub(uint256 a, uint256 b) internal pure returns (uint256) { return a - b; } function mul(uint256 a, uint256 b) internal pure returns (uint256) { return a * b; } function div(uint256 a, uint256 b) internal pure returns (uint256) { return a / b; } function mod(uint256 a, uint256 b) internal pure returns (uint256) { return a % b; } function sub( uint256 a, uint256 b, string memory errorMessage ) internal pure returns (uint256) { unchecked { require(b <= a, errorMessage); return a - b; } } function per(uint256 a, uint256 b) internal pure returns (uint256) { require(b <= 100, "Percentage must be between 0 and 100"); return (a * b) / 100; } function div( uint256 a, uint256 b, string memory errorMessage ) internal pure returns (uint256) { unchecked { require(b > 0, errorMessage); return a / b; } } function mod( uint256 a, uint256 b, string memory errorMessage ) internal pure returns (uint256) { unchecked { require(b > 0, errorMessage); return a % b; } } } contract ERC20 is Context, IERC20, IERC20Metadata { mapping(address => uint256) private _balances; mapping(address => mapping(address => uint256)) private _allowances; uint256 private _totalSupply; string private _name; string private _symbol; constructor(string memory name_, string memory symbol_) { _name = name_; _symbol = symbol_; } function name() public view virtual override returns (string memory) { return _name; } function symbol() public view virtual override returns (string memory) { return _symbol; } function decimals() public view virtual override returns (uint8) { return 9; } function totalSupply() public view virtual override returns (uint256) { return _totalSupply; } function balanceOf( address account ) public view virtual override returns (uint256) { return _balances[account]; } function transfer( address to, uint256 amount ) public virtual override returns (bool) { address owner = _msgSender(); _transfer(owner, to, amount); return true; } function allowance( address owner, address spender ) public view virtual override returns (uint256) { return _allowances[owner][spender]; } function approve( address spender, uint256 amount ) public virtual override returns (bool) { address owner = _msgSender(); _approve(owner, spender, amount); return true; } function transferFrom( address from, address to, uint256 amount ) public virtual override returns (bool) { address spender = _msgSender(); _spendAllowance(from, spender, amount); _transfer(from, to, amount); return true; } function increaseAllowance( address spender, uint256 addedValue ) public virtual returns (bool) { address owner = _msgSender(); _approve(owner, spender, allowance(owner, spender) + addedValue); return true; } function decreaseAllowance( address spender, uint256 subtractedValue ) public virtual returns (bool) { address owner = _msgSender(); uint256 currentAllowance = allowance(owner, spender); require( currentAllowance >= subtractedValue, "ERC20: decreased allowance below zero" ); unchecked { _approve(owner, spender, currentAllowance - subtractedValue); } return true; } function _transfer( address from, address to, uint256 amount ) internal virtual { require(from != address(0), "ERC20: transfer from the zero address"); require(to != address(0), "ERC20: transfer to the zero address"); _beforeTokenTransfer(from, to, amount); uint256 fromBalance = _balances[from]; require( fromBalance >= amount, "ERC20: transfer amount exceeds balance" ); unchecked { _balances[from] = fromBalance - amount; _balances[to] += amount; } emit Transfer(from, to, amount); _afterTokenTransfer(from, to, amount); } function _mint(address account, uint256 amount) internal virtual { require(account != address(0), "ERC20: mint to the zero address"); _beforeTokenTransfer(address(0), account, amount); _totalSupply += amount; unchecked { _balances[account] += amount; } emit Transfer(address(0), account, amount); _afterTokenTransfer(address(0), account, amount); } function _burn(address account, uint256 amount) internal virtual { require(account != address(0), "ERC20: burn from the zero address"); _beforeTokenTransfer(account, address(0), amount); uint256 accountBalance = _balances[account]; require(accountBalance >= amount, "ERC20: burn amount exceeds balance"); unchecked { _balances[account] = accountBalance - amount; _totalSupply -= amount; } emit Transfer(account, address(0), amount); _afterTokenTransfer(account, address(0), amount); } function _approve( address owner, address spender, uint256 amount ) internal virtual { require(owner != address(0), "ERC20: approve from the zero address"); require(spender != address(0), "ERC20: approve to the zero address"); _allowances[owner][spender] = amount; emit Approval(owner, spender, amount); } function _spendAllowance( address owner, address spender, uint256 amount ) internal virtual { uint256 currentAllowance = allowance(owner, spender); if (currentAllowance != type(uint256).max) { require( currentAllowance >= amount, "ERC20: insufficient allowance" ); unchecked { _approve(owner, spender, currentAllowance - amount); } } } function _beforeTokenTransfer( address from, address to, uint256 amount ) internal virtual {} function _afterTokenTransfer( address from, address to, uint256 amount ) internal virtual {} }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/Arrays.sol) // This file was procedurally generated from scripts/generate/templates/Arrays.js. pragma solidity ^0.8.20; import {Comparators} from "./Comparators.sol"; import {SlotDerivation} from "./SlotDerivation.sol"; import {StorageSlot} from "./StorageSlot.sol"; import {Math} from "./math/Math.sol"; /** * @dev Collection of functions related to array types. */ library Arrays { using SlotDerivation for bytes32; using StorageSlot for bytes32; /** * @dev Sort an array of uint256 (in memory) following the provided comparator function. * * This function does the sorting "in place", meaning that it overrides the input. The object is returned for * convenience, but that returned value can be discarded safely if the caller has a memory pointer to the array. * * NOTE: this function's cost is `O(n · log(n))` in average and `O(n²)` in the worst case, with n the length of the * array. Using it in view functions that are executed through `eth_call` is safe, but one should be very careful * when executing this as part of a transaction. If the array being sorted is too large, the sort operation may * consume more gas than is available in a block, leading to potential DoS. * * IMPORTANT: Consider memory side-effects when using custom comparator functions that access memory in an unsafe way. */ function sort( uint256[] memory array, function(uint256, uint256) pure returns (bool) comp ) internal pure returns (uint256[] memory) { _quickSort(_begin(array), _end(array), comp); return array; } /** * @dev Variant of {sort} that sorts an array of uint256 in increasing order. */ function sort(uint256[] memory array) internal pure returns (uint256[] memory) { sort(array, Comparators.lt); return array; } /** * @dev Sort an array of address (in memory) following the provided comparator function. * * This function does the sorting "in place", meaning that it overrides the input. The object is returned for * convenience, but that returned value can be discarded safely if the caller has a memory pointer to the array. * * NOTE: this function's cost is `O(n · log(n))` in average and `O(n²)` in the worst case, with n the length of the * array. Using it in view functions that are executed through `eth_call` is safe, but one should be very careful * when executing this as part of a transaction. If the array being sorted is too large, the sort operation may * consume more gas than is available in a block, leading to potential DoS. * * IMPORTANT: Consider memory side-effects when using custom comparator functions that access memory in an unsafe way. */ function sort( address[] memory array, function(address, address) pure returns (bool) comp ) internal pure returns (address[] memory) { sort(_castToUint256Array(array), _castToUint256Comp(comp)); return array; } /** * @dev Variant of {sort} that sorts an array of address in increasing order. */ function sort(address[] memory array) internal pure returns (address[] memory) { sort(_castToUint256Array(array), Comparators.lt); return array; } /** * @dev Sort an array of bytes32 (in memory) following the provided comparator function. * * This function does the sorting "in place", meaning that it overrides the input. The object is returned for * convenience, but that returned value can be discarded safely if the caller has a memory pointer to the array. * * NOTE: this function's cost is `O(n · log(n))` in average and `O(n²)` in the worst case, with n the length of the * array. Using it in view functions that are executed through `eth_call` is safe, but one should be very careful * when executing this as part of a transaction. If the array being sorted is too large, the sort operation may * consume more gas than is available in a block, leading to potential DoS. * * IMPORTANT: Consider memory side-effects when using custom comparator functions that access memory in an unsafe way. */ function sort( bytes32[] memory array, function(bytes32, bytes32) pure returns (bool) comp ) internal pure returns (bytes32[] memory) { sort(_castToUint256Array(array), _castToUint256Comp(comp)); return array; } /** * @dev Variant of {sort} that sorts an array of bytes32 in increasing order. */ function sort(bytes32[] memory array) internal pure returns (bytes32[] memory) { sort(_castToUint256Array(array), Comparators.lt); return array; } /** * @dev Performs a quick sort of a segment of memory. The segment sorted starts at `begin` (inclusive), and stops * at end (exclusive). Sorting follows the `comp` comparator. * * Invariant: `begin <= end`. This is the case when initially called by {sort} and is preserved in subcalls. * * IMPORTANT: Memory locations between `begin` and `end` are not validated/zeroed. This function should * be used only if the limits are within a memory array. */ function _quickSort(uint256 begin, uint256 end, function(uint256, uint256) pure returns (bool) comp) private pure { unchecked { if (end - begin < 0x40) return; // Use first element as pivot uint256 pivot = _mload(begin); // Position where the pivot should be at the end of the loop uint256 pos = begin; for (uint256 it = begin + 0x20; it < end; it += 0x20) { if (comp(_mload(it), pivot)) { // If the value stored at the iterator's position comes before the pivot, we increment the // position of the pivot and move the value there. pos += 0x20; _swap(pos, it); } } _swap(begin, pos); // Swap pivot into place _quickSort(begin, pos, comp); // Sort the left side of the pivot _quickSort(pos + 0x20, end, comp); // Sort the right side of the pivot } } /** * @dev Pointer to the memory location of the first element of `array`. */ function _begin(uint256[] memory array) private pure returns (uint256 ptr) { assembly ("memory-safe") { ptr := add(array, 0x20) } } /** * @dev Pointer to the memory location of the first memory word (32bytes) after `array`. This is the memory word * that comes just after the last element of the array. */ function _end(uint256[] memory array) private pure returns (uint256 ptr) { unchecked { return _begin(array) + array.length * 0x20; } } /** * @dev Load memory word (as a uint256) at location `ptr`. */ function _mload(uint256 ptr) private pure returns (uint256 value) { assembly { value := mload(ptr) } } /** * @dev Swaps the elements memory location `ptr1` and `ptr2`. */ function _swap(uint256 ptr1, uint256 ptr2) private pure { assembly { let value1 := mload(ptr1) let value2 := mload(ptr2) mstore(ptr1, value2) mstore(ptr2, value1) } } /// @dev Helper: low level cast address memory array to uint256 memory array function _castToUint256Array(address[] memory input) private pure returns (uint256[] memory output) { assembly { output := input } } /// @dev Helper: low level cast bytes32 memory array to uint256 memory array function _castToUint256Array(bytes32[] memory input) private pure returns (uint256[] memory output) { assembly { output := input } } /// @dev Helper: low level cast address comp function to uint256 comp function function _castToUint256Comp( function(address, address) pure returns (bool) input ) private pure returns (function(uint256, uint256) pure returns (bool) output) { assembly { output := input } } /// @dev Helper: low level cast bytes32 comp function to uint256 comp function function _castToUint256Comp( function(bytes32, bytes32) pure returns (bool) input ) private pure returns (function(uint256, uint256) pure returns (bool) output) { assembly { output := input } } /** * @dev Searches a sorted `array` and returns the first index that contains * a value greater or equal to `element`. If no such index exists (i.e. all * values in the array are strictly less than `element`), the array length is * returned. Time complexity O(log n). * * NOTE: The `array` is expected to be sorted in ascending order, and to * contain no repeated elements. * * IMPORTANT: Deprecated. This implementation behaves as {lowerBound} but lacks * support for repeated elements in the array. The {lowerBound} function should * be used instead. */ function findUpperBound(uint256[] storage array, uint256 element) internal view returns (uint256) { uint256 low = 0; uint256 high = array.length; if (high == 0) { return 0; } while (low < high) { uint256 mid = Math.average(low, high); // Note that mid will always be strictly less than high (i.e. it will be a valid array index) // because Math.average rounds towards zero (it does integer division with truncation). if (unsafeAccess(array, mid).value > element) { high = mid; } else { low = mid + 1; } } // At this point `low` is the exclusive upper bound. We will return the inclusive upper bound. if (low > 0 && unsafeAccess(array, low - 1).value == element) { return low - 1; } else { return low; } } /** * @dev Searches an `array` sorted in ascending order and returns the first * index that contains a value greater or equal than `element`. If no such index * exists (i.e. all values in the array are strictly less than `element`), the array * length is returned. Time complexity O(log n). * * See C++'s https://en.cppreference.com/w/cpp/algorithm/lower_bound[lower_bound]. */ function lowerBound(uint256[] storage array, uint256 element) internal view returns (uint256) { uint256 low = 0; uint256 high = array.length; if (high == 0) { return 0; } while (low < high) { uint256 mid = Math.average(low, high); // Note that mid will always be strictly less than high (i.e. it will be a valid array index) // because Math.average rounds towards zero (it does integer division with truncation). if (unsafeAccess(array, mid).value < element) { // this cannot overflow because mid < high unchecked { low = mid + 1; } } else { high = mid; } } return low; } /** * @dev Searches an `array` sorted in ascending order and returns the first * index that contains a value strictly greater than `element`. If no such index * exists (i.e. all values in the array are strictly less than `element`), the array * length is returned. Time complexity O(log n). * * See C++'s https://en.cppreference.com/w/cpp/algorithm/upper_bound[upper_bound]. */ function upperBound(uint256[] storage array, uint256 element) internal view returns (uint256) { uint256 low = 0; uint256 high = array.length; if (high == 0) { return 0; } while (low < high) { uint256 mid = Math.average(low, high); // Note that mid will always be strictly less than high (i.e. it will be a valid array index) // because Math.average rounds towards zero (it does integer division with truncation). if (unsafeAccess(array, mid).value > element) { high = mid; } else { // this cannot overflow because mid < high unchecked { low = mid + 1; } } } return low; } /** * @dev Same as {lowerBound}, but with an array in memory. */ function lowerBoundMemory(uint256[] memory array, uint256 element) internal pure returns (uint256) { uint256 low = 0; uint256 high = array.length; if (high == 0) { return 0; } while (low < high) { uint256 mid = Math.average(low, high); // Note that mid will always be strictly less than high (i.e. it will be a valid array index) // because Math.average rounds towards zero (it does integer division with truncation). if (unsafeMemoryAccess(array, mid) < element) { // this cannot overflow because mid < high unchecked { low = mid + 1; } } else { high = mid; } } return low; } /** * @dev Same as {upperBound}, but with an array in memory. */ function upperBoundMemory(uint256[] memory array, uint256 element) internal pure returns (uint256) { uint256 low = 0; uint256 high = array.length; if (high == 0) { return 0; } while (low < high) { uint256 mid = Math.average(low, high); // Note that mid will always be strictly less than high (i.e. it will be a valid array index) // because Math.average rounds towards zero (it does integer division with truncation). if (unsafeMemoryAccess(array, mid) > element) { high = mid; } else { // this cannot overflow because mid < high unchecked { low = mid + 1; } } } return low; } /** * @dev Access an array in an "unsafe" way. Skips solidity "index-out-of-range" check. * * WARNING: Only use if you are certain `pos` is lower than the array length. */ function unsafeAccess(address[] storage arr, uint256 pos) internal pure returns (StorageSlot.AddressSlot storage) { bytes32 slot; assembly ("memory-safe") { slot := arr.slot } return slot.deriveArray().offset(pos).getAddressSlot(); } /** * @dev Access an array in an "unsafe" way. Skips solidity "index-out-of-range" check. * * WARNING: Only use if you are certain `pos` is lower than the array length. */ function unsafeAccess(bytes32[] storage arr, uint256 pos) internal pure returns (StorageSlot.Bytes32Slot storage) { bytes32 slot; assembly ("memory-safe") { slot := arr.slot } return slot.deriveArray().offset(pos).getBytes32Slot(); } /** * @dev Access an array in an "unsafe" way. Skips solidity "index-out-of-range" check. * * WARNING: Only use if you are certain `pos` is lower than the array length. */ function unsafeAccess(uint256[] storage arr, uint256 pos) internal pure returns (StorageSlot.Uint256Slot storage) { bytes32 slot; assembly ("memory-safe") { slot := arr.slot } return slot.deriveArray().offset(pos).getUint256Slot(); } /** * @dev Access an array in an "unsafe" way. Skips solidity "index-out-of-range" check. * * WARNING: Only use if you are certain `pos` is lower than the array length. */ function unsafeMemoryAccess(address[] memory arr, uint256 pos) internal pure returns (address res) { assembly { res := mload(add(add(arr, 0x20), mul(pos, 0x20))) } } /** * @dev Access an array in an "unsafe" way. Skips solidity "index-out-of-range" check. * * WARNING: Only use if you are certain `pos` is lower than the array length. */ function unsafeMemoryAccess(bytes32[] memory arr, uint256 pos) internal pure returns (bytes32 res) { assembly { res := mload(add(add(arr, 0x20), mul(pos, 0x20))) } } /** * @dev Access an array in an "unsafe" way. Skips solidity "index-out-of-range" check. * * WARNING: Only use if you are certain `pos` is lower than the array length. */ function unsafeMemoryAccess(uint256[] memory arr, uint256 pos) internal pure returns (uint256 res) { assembly { res := mload(add(add(arr, 0x20), mul(pos, 0x20))) } } /** * @dev Helper to set the length of an dynamic array. Directly writing to `.length` is forbidden. * * WARNING: this does not clear elements if length is reduced, of initialize elements if length is increased. */ function unsafeSetLength(address[] storage array, uint256 len) internal { assembly ("memory-safe") { sstore(array.slot, len) } } /** * @dev Helper to set the length of an dynamic array. Directly writing to `.length` is forbidden. * * WARNING: this does not clear elements if length is reduced, of initialize elements if length is increased. */ function unsafeSetLength(bytes32[] storage array, uint256 len) internal { assembly ("memory-safe") { sstore(array.slot, len) } } /** * @dev Helper to set the length of an dynamic array. Directly writing to `.length` is forbidden. * * WARNING: this does not clear elements if length is reduced, of initialize elements if length is increased. */ function unsafeSetLength(uint256[] storage array, uint256 len) internal { assembly ("memory-safe") { sstore(array.slot, len) } } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/Base64.sol) pragma solidity ^0.8.20; /** * @dev Provides a set of functions to operate with Base64 strings. */ library Base64 { /** * @dev Base64 Encoding/Decoding Table * See sections 4 and 5 of https://datatracker.ietf.org/doc/html/rfc4648 */ string internal constant _TABLE = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789+/"; string internal constant _TABLE_URL = "ABCDEFGHIJKLMNOPQRSTUVWXYZabcdefghijklmnopqrstuvwxyz0123456789-_"; /** * @dev Converts a `bytes` to its Bytes64 `string` representation. */ function encode(bytes memory data) internal pure returns (string memory) { return _encode(data, _TABLE, true); } /** * @dev Converts a `bytes` to its Bytes64Url `string` representation. * Output is not padded with `=` as specified in https://www.rfc-editor.org/rfc/rfc4648[rfc4648]. */ function encodeURL(bytes memory data) internal pure returns (string memory) { return _encode(data, _TABLE_URL, false); } /** * @dev Internal table-agnostic conversion */ function _encode(bytes memory data, string memory table, bool withPadding) private pure returns (string memory) { /** * Inspired by Brecht Devos (Brechtpd) implementation - MIT licence * https://github.com/Brechtpd/base64/blob/e78d9fd951e7b0977ddca77d92dc85183770daf4/base64.sol */ if (data.length == 0) return ""; // If padding is enabled, the final length should be `bytes` data length divided by 3 rounded up and then // multiplied by 4 so that it leaves room for padding the last chunk // - `data.length + 2` -> Prepare for division rounding up // - `/ 3` -> Number of 3-bytes chunks (rounded up) // - `4 *` -> 4 characters for each chunk // This is equivalent to: 4 * Math.ceil(data.length / 3) // // If padding is disabled, the final length should be `bytes` data length multiplied by 4/3 rounded up as // opposed to when padding is required to fill the last chunk. // - `4 * data.length` -> 4 characters for each chunk // - ` + 2` -> Prepare for division rounding up // - `/ 3` -> Number of 3-bytes chunks (rounded up) // This is equivalent to: Math.ceil((4 * data.length) / 3) uint256 resultLength = withPadding ? 4 * ((data.length + 2) / 3) : (4 * data.length + 2) / 3; string memory result = new string(resultLength); assembly ("memory-safe") { // Prepare the lookup table (skip the first "length" byte) let tablePtr := add(table, 1) // Prepare result pointer, jump over length let resultPtr := add(result, 0x20) let dataPtr := data let endPtr := add(data, mload(data)) // In some cases, the last iteration will read bytes after the end of the data. We cache the value, and // set it to zero to make sure no dirty bytes are read in that section. let afterPtr := add(endPtr, 0x20) let afterCache := mload(afterPtr) mstore(afterPtr, 0x00) // Run over the input, 3 bytes at a time for { } lt(dataPtr, endPtr) { } { // Advance 3 bytes dataPtr := add(dataPtr, 3) let input := mload(dataPtr) // To write each character, shift the 3 byte (24 bits) chunk // 4 times in blocks of 6 bits for each character (18, 12, 6, 0) // and apply logical AND with 0x3F to bitmask the least significant 6 bits. // Use this as an index into the lookup table, mload an entire word // so the desired character is in the least significant byte, and // mstore8 this least significant byte into the result and continue. mstore8(resultPtr, mload(add(tablePtr, and(shr(18, input), 0x3F)))) resultPtr := add(resultPtr, 1) // Advance mstore8(resultPtr, mload(add(tablePtr, and(shr(12, input), 0x3F)))) resultPtr := add(resultPtr, 1) // Advance mstore8(resultPtr, mload(add(tablePtr, and(shr(6, input), 0x3F)))) resultPtr := add(resultPtr, 1) // Advance mstore8(resultPtr, mload(add(tablePtr, and(input, 0x3F)))) resultPtr := add(resultPtr, 1) // Advance } // Reset the value that was cached mstore(afterPtr, afterCache) if withPadding { // When data `bytes` is not exactly 3 bytes long // it is padded with `=` characters at the end switch mod(mload(data), 3) case 1 { mstore8(sub(resultPtr, 1), 0x3d) mstore8(sub(resultPtr, 2), 0x3d) } case 2 { mstore8(sub(resultPtr, 1), 0x3d) } } } return result; } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (proxy/Clones.sol) pragma solidity ^0.8.20; import {Errors} from "../utils/Errors.sol"; /** * @dev https://eips.ethereum.org/EIPS/eip-1167[ERC-1167] is a standard for * deploying minimal proxy contracts, also known as "clones". * * > To simply and cheaply clone contract functionality in an immutable way, this standard specifies * > a minimal bytecode implementation that delegates all calls to a known, fixed address. * * The library includes functions to deploy a proxy using either `create` (traditional deployment) or `create2` * (salted deterministic deployment). It also includes functions to predict the addresses of clones deployed using the * deterministic method. */ library Clones { /** * @dev Deploys and returns the address of a clone that mimics the behaviour of `implementation`. * * This function uses the create opcode, which should never revert. */ function clone(address implementation) internal returns (address instance) { return clone(implementation, 0); } /** * @dev Same as {xref-Clones-clone-address-}[clone], but with a `value` parameter to send native currency * to the new contract. * * NOTE: Using a non-zero value at creation will require the contract using this function (e.g. a factory) * to always have enough balance for new deployments. Consider exposing this function under a payable method. */ function clone(address implementation, uint256 value) internal returns (address instance) { if (address(this).balance < value) { revert Errors.InsufficientBalance(address(this).balance, value); } assembly ("memory-safe") { // Cleans the upper 96 bits of the `implementation` word, then packs the first 3 bytes // of the `implementation` address with the bytecode before the address. mstore(0x00, or(shr(0xe8, shl(0x60, implementation)), 0x3d602d80600a3d3981f3363d3d373d3d3d363d73000000)) // Packs the remaining 17 bytes of `implementation` with the bytecode after the address. mstore(0x20, or(shl(0x78, implementation), 0x5af43d82803e903d91602b57fd5bf3)) instance := create(value, 0x09, 0x37) } if (instance == address(0)) { revert Errors.FailedDeployment(); } } /** * @dev Deploys and returns the address of a clone that mimics the behaviour of `implementation`. * * This function uses the create2 opcode and a `salt` to deterministically deploy * the clone. Using the same `implementation` and `salt` multiple time will revert, since * the clones cannot be deployed twice at the same address. */ function cloneDeterministic(address implementation, bytes32 salt) internal returns (address instance) { return cloneDeterministic(implementation, salt, 0); } /** * @dev Same as {xref-Clones-cloneDeterministic-address-bytes32-}[cloneDeterministic], but with * a `value` parameter to send native currency to the new contract. * * NOTE: Using a non-zero value at creation will require the contract using this function (e.g. a factory) * to always have enough balance for new deployments. Consider exposing this function under a payable method. */ function cloneDeterministic( address implementation, bytes32 salt, uint256 value ) internal returns (address instance) { if (address(this).balance < value) { revert Errors.InsufficientBalance(address(this).balance, value); } assembly ("memory-safe") { // Cleans the upper 96 bits of the `implementation` word, then packs the first 3 bytes // of the `implementation` address with the bytecode before the address. mstore(0x00, or(shr(0xe8, shl(0x60, implementation)), 0x3d602d80600a3d3981f3363d3d373d3d3d363d73000000)) // Packs the remaining 17 bytes of `implementation` with the bytecode after the address. mstore(0x20, or(shl(0x78, implementation), 0x5af43d82803e903d91602b57fd5bf3)) instance := create2(value, 0x09, 0x37, salt) } if (instance == address(0)) { revert Errors.FailedDeployment(); } } /** * @dev Computes the address of a clone deployed using {Clones-cloneDeterministic}. */ function predictDeterministicAddress( address implementation, bytes32 salt, address deployer ) internal pure returns (address predicted) { assembly ("memory-safe") { let ptr := mload(0x40) mstore(add(ptr, 0x38), deployer) mstore(add(ptr, 0x24), 0x5af43d82803e903d91602b57fd5bf3ff) mstore(add(ptr, 0x14), implementation) mstore(ptr, 0x3d602d80600a3d3981f3363d3d373d3d3d363d73) mstore(add(ptr, 0x58), salt) mstore(add(ptr, 0x78), keccak256(add(ptr, 0x0c), 0x37)) predicted := and(keccak256(add(ptr, 0x43), 0x55), 0xffffffffffffffffffffffffffffffffffffffff) } } /** * @dev Computes the address of a clone deployed using {Clones-cloneDeterministic}. */ function predictDeterministicAddress( address implementation, bytes32 salt ) internal view returns (address predicted) { return predictDeterministicAddress(implementation, salt, address(this)); } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/math/Math.sol) pragma solidity ^0.8.20; import {Panic} from "../Panic.sol"; import {SafeCast} from "./SafeCast.sol"; /** * @dev Standard math utilities missing in the Solidity language. */ library Math { enum Rounding { Floor, // Toward negative infinity Ceil, // Toward positive infinity Trunc, // Toward zero Expand // Away from zero } /** * @dev Returns the addition of two unsigned integers, with an success flag (no overflow). */ function tryAdd(uint256 a, uint256 b) internal pure returns (bool success, uint256 result) { unchecked { uint256 c = a + b; if (c < a) return (false, 0); return (true, c); } } /** * @dev Returns the subtraction of two unsigned integers, with an success flag (no overflow). */ function trySub(uint256 a, uint256 b) internal pure returns (bool success, uint256 result) { unchecked { if (b > a) return (false, 0); return (true, a - b); } } /** * @dev Returns the multiplication of two unsigned integers, with an success flag (no overflow). */ function tryMul(uint256 a, uint256 b) internal pure returns (bool success, uint256 result) { unchecked { // Gas optimization: this is cheaper than requiring 'a' not being zero, but the // benefit is lost if 'b' is also tested. // See: https://github.com/OpenZeppelin/openzeppelin-contracts/pull/522 if (a == 0) return (true, 0); uint256 c = a * b; if (c / a != b) return (false, 0); return (true, c); } } /** * @dev Returns the division of two unsigned integers, with a success flag (no division by zero). */ function tryDiv(uint256 a, uint256 b) internal pure returns (bool success, uint256 result) { unchecked { if (b == 0) return (false, 0); return (true, a / b); } } /** * @dev Returns the remainder of dividing two unsigned integers, with a success flag (no division by zero). */ function tryMod(uint256 a, uint256 b) internal pure returns (bool success, uint256 result) { unchecked { if (b == 0) return (false, 0); return (true, a % b); } } /** * @dev Branchless ternary evaluation for `a ? b : c`. Gas costs are constant. * * IMPORTANT: This function may reduce bytecode size and consume less gas when used standalone. * However, the compiler may optimize Solidity ternary operations (i.e. `a ? b : c`) to only compute * one branch when needed, making this function more expensive. */ function ternary(bool condition, uint256 a, uint256 b) internal pure returns (uint256) { unchecked { // branchless ternary works because: // b ^ (a ^ b) == a // b ^ 0 == b return b ^ ((a ^ b) * SafeCast.toUint(condition)); } } /** * @dev Returns the largest of two numbers. */ function max(uint256 a, uint256 b) internal pure returns (uint256) { return ternary(a > b, a, b); } /** * @dev Returns the smallest of two numbers. */ function min(uint256 a, uint256 b) internal pure returns (uint256) { return ternary(a < b, a, b); } /** * @dev Returns the average of two numbers. The result is rounded towards * zero. */ function average(uint256 a, uint256 b) internal pure returns (uint256) { // (a + b) / 2 can overflow. return (a & b) + (a ^ b) / 2; } /** * @dev Returns the ceiling of the division of two numbers. * * This differs from standard division with `/` in that it rounds towards infinity instead * of rounding towards zero. */ function ceilDiv(uint256 a, uint256 b) internal pure returns (uint256) { if (b == 0) { // Guarantee the same behavior as in a regular Solidity division. Panic.panic(Panic.DIVISION_BY_ZERO); } // The following calculation ensures accurate ceiling division without overflow. // Since a is non-zero, (a - 1) / b will not overflow. // The largest possible result occurs when (a - 1) / b is type(uint256).max, // but the largest value we can obtain is type(uint256).max - 1, which happens // when a = type(uint256).max and b = 1. unchecked { return SafeCast.toUint(a > 0) * ((a - 1) / b + 1); } } /** * @dev Calculates floor(x * y / denominator) with full precision. Throws if result overflows a uint256 or * denominator == 0. * * Original credit to Remco Bloemen under MIT license (https://xn--2-umb.com/21/muldiv) with further edits by * Uniswap Labs also under MIT license. */ function mulDiv(uint256 x, uint256 y, uint256 denominator) internal pure returns (uint256 result) { unchecked { // 512-bit multiply [prod1 prod0] = x * y. Compute the product mod 2²⁵⁶ and mod 2²⁵⁶ - 1, then use // the Chinese Remainder Theorem to reconstruct the 512 bit result. The result is stored in two 256 // variables such that product = prod1 * 2²⁵⁶ + prod0. uint256 prod0 = x * y; // Least significant 256 bits of the product uint256 prod1; // Most significant 256 bits of the product assembly { let mm := mulmod(x, y, not(0)) prod1 := sub(sub(mm, prod0), lt(mm, prod0)) } // Handle non-overflow cases, 256 by 256 division. if (prod1 == 0) { // Solidity will revert if denominator == 0, unlike the div opcode on its own. // The surrounding unchecked block does not change this fact. // See https://docs.soliditylang.org/en/latest/control-structures.html#checked-or-unchecked-arithmetic. return prod0 / denominator; } // Make sure the result is less than 2²⁵⁶. Also prevents denominator == 0. if (denominator <= prod1) { Panic.panic(ternary(denominator == 0, Panic.DIVISION_BY_ZERO, Panic.UNDER_OVERFLOW)); } /////////////////////////////////////////////// // 512 by 256 division. /////////////////////////////////////////////// // Make division exact by subtracting the remainder from [prod1 prod0]. uint256 remainder; assembly { // Compute remainder using mulmod. remainder := mulmod(x, y, denominator) // Subtract 256 bit number from 512 bit number. prod1 := sub(prod1, gt(remainder, prod0)) prod0 := sub(prod0, remainder) } // Factor powers of two out of denominator and compute largest power of two divisor of denominator. // Always >= 1. See https://cs.stackexchange.com/q/138556/92363. uint256 twos = denominator & (0 - denominator); assembly { // Divide denominator by twos. denominator := div(denominator, twos) // Divide [prod1 prod0] by twos. prod0 := div(prod0, twos) // Flip twos such that it is 2²⁵⁶ / twos. If twos is zero, then it becomes one. twos := add(div(sub(0, twos), twos), 1) } // Shift in bits from prod1 into prod0. prod0 |= prod1 * twos; // Invert denominator mod 2²⁵⁶. Now that denominator is an odd number, it has an inverse modulo 2²⁵⁶ such // that denominator * inv ≡ 1 mod 2²⁵⁶. Compute the inverse by starting with a seed that is correct for // four bits. That is, denominator * inv ≡ 1 mod 2⁴. uint256 inverse = (3 * denominator) ^ 2; // Use the Newton-Raphson iteration to improve the precision. Thanks to Hensel's lifting lemma, this also // works in modular arithmetic, doubling the correct bits in each step. inverse *= 2 - denominator * inverse; // inverse mod 2⁸ inverse *= 2 - denominator * inverse; // inverse mod 2¹⁶ inverse *= 2 - denominator * inverse; // inverse mod 2³² inverse *= 2 - denominator * inverse; // inverse mod 2⁶⁴ inverse *= 2 - denominator * inverse; // inverse mod 2¹²⁸ inverse *= 2 - denominator * inverse; // inverse mod 2²⁵⁶ // Because the division is now exact we can divide by multiplying with the modular inverse of denominator. // This will give us the correct result modulo 2²⁵⁶. Since the preconditions guarantee that the outcome is // less than 2²⁵⁶, this is the final result. We don't need to compute the high bits of the result and prod1 // is no longer required. result = prod0 * inverse; return result; } } /** * @dev Calculates x * y / denominator with full precision, following the selected rounding direction. */ function mulDiv(uint256 x, uint256 y, uint256 denominator, Rounding rounding) internal pure returns (uint256) { return mulDiv(x, y, denominator) + SafeCast.toUint(unsignedRoundsUp(rounding) && mulmod(x, y, denominator) > 0); } /** * @dev Calculate the modular multiplicative inverse of a number in Z/nZ. * * If n is a prime, then Z/nZ is a field. In that case all elements are inversible, except 0. * If n is not a prime, then Z/nZ is not a field, and some elements might not be inversible. * * If the input value is not inversible, 0 is returned. * * NOTE: If you know for sure that n is (big) a prime, it may be cheaper to use Fermat's little theorem and get the * inverse using `Math.modExp(a, n - 2, n)`. See {invModPrime}. */ function invMod(uint256 a, uint256 n) internal pure returns (uint256) { unchecked { if (n == 0) return 0; // The inverse modulo is calculated using the Extended Euclidean Algorithm (iterative version) // Used to compute integers x and y such that: ax + ny = gcd(a, n). // When the gcd is 1, then the inverse of a modulo n exists and it's x. // ax + ny = 1 // ax = 1 + (-y)n // ax ≡ 1 (mod n) # x is the inverse of a modulo n // If the remainder is 0 the gcd is n right away. uint256 remainder = a % n; uint256 gcd = n; // Therefore the initial coefficients are: // ax + ny = gcd(a, n) = n // 0a + 1n = n int256 x = 0; int256 y = 1; while (remainder != 0) { uint256 quotient = gcd / remainder; (gcd, remainder) = ( // The old remainder is the next gcd to try. remainder, // Compute the next remainder. // Can't overflow given that (a % gcd) * (gcd // (a % gcd)) <= gcd // where gcd is at most n (capped to type(uint256).max) gcd - remainder * quotient ); (x, y) = ( // Increment the coefficient of a. y, // Decrement the coefficient of n. // Can overflow, but the result is casted to uint256 so that the // next value of y is "wrapped around" to a value between 0 and n - 1. x - y * int256(quotient) ); } if (gcd != 1) return 0; // No inverse exists. return ternary(x < 0, n - uint256(-x), uint256(x)); // Wrap the result if it's negative. } } /** * @dev Variant of {invMod}. More efficient, but only works if `p` is known to be a prime greater than `2`. * * From https://en.wikipedia.org/wiki/Fermat%27s_little_theorem[Fermat's little theorem], we know that if p is * prime, then `a**(p-1) ≡ 1 mod p`. As a consequence, we have `a * a**(p-2) ≡ 1 mod p`, which means that * `a**(p-2)` is the modular multiplicative inverse of a in Fp. * * NOTE: this function does NOT check that `p` is a prime greater than `2`. */ function invModPrime(uint256 a, uint256 p) internal view returns (uint256) { unchecked { return Math.modExp(a, p - 2, p); } } /** * @dev Returns the modular exponentiation of the specified base, exponent and modulus (b ** e % m) * * Requirements: * - modulus can't be zero * - underlying staticcall to precompile must succeed * * IMPORTANT: The result is only valid if the underlying call succeeds. When using this function, make * sure the chain you're using it on supports the precompiled contract for modular exponentiation * at address 0x05 as specified in https://eips.ethereum.org/EIPS/eip-198[EIP-198]. Otherwise, * the underlying function will succeed given the lack of a revert, but the result may be incorrectly * interpreted as 0. */ function modExp(uint256 b, uint256 e, uint256 m) internal view returns (uint256) { (bool success, uint256 result) = tryModExp(b, e, m); if (!success) { Panic.panic(Panic.DIVISION_BY_ZERO); } return result; } /** * @dev Returns the modular exponentiation of the specified base, exponent and modulus (b ** e % m). * It includes a success flag indicating if the operation succeeded. Operation will be marked as failed if trying * to operate modulo 0 or if the underlying precompile reverted. * * IMPORTANT: The result is only valid if the success flag is true. When using this function, make sure the chain * you're using it on supports the precompiled contract for modular exponentiation at address 0x05 as specified in * https://eips.ethereum.org/EIPS/eip-198[EIP-198]. Otherwise, the underlying function will succeed given the lack * of a revert, but the result may be incorrectly interpreted as 0. */ function tryModExp(uint256 b, uint256 e, uint256 m) internal view returns (bool success, uint256 result) { if (m == 0) return (false, 0); assembly ("memory-safe") { let ptr := mload(0x40) // | Offset | Content | Content (Hex) | // |-----------|------------|--------------------------------------------------------------------| // | 0x00:0x1f | size of b | 0x0000000000000000000000000000000000000000000000000000000000000020 | // | 0x20:0x3f | size of e | 0x0000000000000000000000000000000000000000000000000000000000000020 | // | 0x40:0x5f | size of m | 0x0000000000000000000000000000000000000000000000000000000000000020 | // | 0x60:0x7f | value of b | 0x<.............................................................b> | // | 0x80:0x9f | value of e | 0x<.............................................................e> | // | 0xa0:0xbf | value of m | 0x<.............................................................m> | mstore(ptr, 0x20) mstore(add(ptr, 0x20), 0x20) mstore(add(ptr, 0x40), 0x20) mstore(add(ptr, 0x60), b) mstore(add(ptr, 0x80), e) mstore(add(ptr, 0xa0), m) // Given the result < m, it's guaranteed to fit in 32 bytes, // so we can use the memory scratch space located at offset 0. success := staticcall(gas(), 0x05, ptr, 0xc0, 0x00, 0x20) result := mload(0x00) } } /** * @dev Variant of {modExp} that supports inputs of arbitrary length. */ function modExp(bytes memory b, bytes memory e, bytes memory m) internal view returns (bytes memory) { (bool success, bytes memory result) = tryModExp(b, e, m); if (!success) { Panic.panic(Panic.DIVISION_BY_ZERO); } return result; } /** * @dev Variant of {tryModExp} that supports inputs of arbitrary length. */ function tryModExp( bytes memory b, bytes memory e, bytes memory m ) internal view returns (bool success, bytes memory result) { if (_zeroBytes(m)) return (false, new bytes(0)); uint256 mLen = m.length; // Encode call args in result and move the free memory pointer result = abi.encodePacked(b.length, e.length, mLen, b, e, m); assembly ("memory-safe") { let dataPtr := add(result, 0x20) // Write result on top of args to avoid allocating extra memory. success := staticcall(gas(), 0x05, dataPtr, mload(result), dataPtr, mLen) // Overwrite the length. // result.length > returndatasize() is guaranteed because returndatasize() == m.length mstore(result, mLen) // Set the memory pointer after the returned data. mstore(0x40, add(dataPtr, mLen)) } } /** * @dev Returns whether the provided byte array is zero. */ function _zeroBytes(bytes memory byteArray) private pure returns (bool) { for (uint256 i = 0; i < byteArray.length; ++i) { if (byteArray[i] != 0) { return false; } } return true; } /** * @dev Returns the square root of a number. If the number is not a perfect square, the value is rounded * towards zero. * * This method is based on Newton's method for computing square roots; the algorithm is restricted to only * using integer operations. */ function sqrt(uint256 a) internal pure returns (uint256) { unchecked { // Take care of easy edge cases when a == 0 or a == 1 if (a <= 1) { return a; } // In this function, we use Newton's method to get a root of `f(x) := x² - a`. It involves building a // sequence x_n that converges toward sqrt(a). For each iteration x_n, we also define the error between // the current value as `ε_n = | x_n - sqrt(a) |`. // // For our first estimation, we consider `e` the smallest power of 2 which is bigger than the square root // of the target. (i.e. `2**(e-1) ≤ sqrt(a) < 2**e`). We know that `e ≤ 128` because `(2¹²⁸)² = 2²⁵⁶` is // bigger than any uint256. // // By noticing that // `2**(e-1) ≤ sqrt(a) < 2**e → (2**(e-1))² ≤ a < (2**e)² → 2**(2*e-2) ≤ a < 2**(2*e)` // we can deduce that `e - 1` is `log2(a) / 2`. We can thus compute `x_n = 2**(e-1)` using a method similar // to the msb function. uint256 aa = a; uint256 xn = 1; if (aa >= (1 << 128)) { aa >>= 128; xn <<= 64; } if (aa >= (1 << 64)) { aa >>= 64; xn <<= 32; } if (aa >= (1 << 32)) { aa >>= 32; xn <<= 16; } if (aa >= (1 << 16)) { aa >>= 16; xn <<= 8; } if (aa >= (1 << 8)) { aa >>= 8; xn <<= 4; } if (aa >= (1 << 4)) { aa >>= 4; xn <<= 2; } if (aa >= (1 << 2)) { xn <<= 1; } // We now have x_n such that `x_n = 2**(e-1) ≤ sqrt(a) < 2**e = 2 * x_n`. This implies ε_n ≤ 2**(e-1). // // We can refine our estimation by noticing that the middle of that interval minimizes the error. // If we move x_n to equal 2**(e-1) + 2**(e-2), then we reduce the error to ε_n ≤ 2**(e-2). // This is going to be our x_0 (and ε_0) xn = (3 * xn) >> 1; // ε_0 := | x_0 - sqrt(a) | ≤ 2**(e-2) // From here, Newton's method give us: // x_{n+1} = (x_n + a / x_n) / 2 // // One should note that: // x_{n+1}² - a = ((x_n + a / x_n) / 2)² - a // = ((x_n² + a) / (2 * x_n))² - a // = (x_n⁴ + 2 * a * x_n² + a²) / (4 * x_n²) - a // = (x_n⁴ + 2 * a * x_n² + a² - 4 * a * x_n²) / (4 * x_n²) // = (x_n⁴ - 2 * a * x_n² + a²) / (4 * x_n²) // = (x_n² - a)² / (2 * x_n)² // = ((x_n² - a) / (2 * x_n))² // ≥ 0 // Which proves that for all n ≥ 1, sqrt(a) ≤ x_n // // This gives us the proof of quadratic convergence of the sequence: // ε_{n+1} = | x_{n+1} - sqrt(a) | // = | (x_n + a / x_n) / 2 - sqrt(a) | // = | (x_n² + a - 2*x_n*sqrt(a)) / (2 * x_n) | // = | (x_n - sqrt(a))² / (2 * x_n) | // = | ε_n² / (2 * x_n) | // = ε_n² / | (2 * x_n) | // // For the first iteration, we have a special case where x_0 is known: // ε_1 = ε_0² / | (2 * x_0) | // ≤ (2**(e-2))² / (2 * (2**(e-1) + 2**(e-2))) // ≤ 2**(2*e-4) / (3 * 2**(e-1)) // ≤ 2**(e-3) / 3 // ≤ 2**(e-3-log2(3)) // ≤ 2**(e-4.5) // // For the following iterations, we use the fact that, 2**(e-1) ≤ sqrt(a) ≤ x_n: // ε_{n+1} = ε_n² / | (2 * x_n) | // ≤ (2**(e-k))² / (2 * 2**(e-1)) // ≤ 2**(2*e-2*k) / 2**e // ≤ 2**(e-2*k) xn = (xn + a / xn) >> 1; // ε_1 := | x_1 - sqrt(a) | ≤ 2**(e-4.5) -- special case, see above xn = (xn + a / xn) >> 1; // ε_2 := | x_2 - sqrt(a) | ≤ 2**(e-9) -- general case with k = 4.5 xn = (xn + a / xn) >> 1; // ε_3 := | x_3 - sqrt(a) | ≤ 2**(e-18) -- general case with k = 9 xn = (xn + a / xn) >> 1; // ε_4 := | x_4 - sqrt(a) | ≤ 2**(e-36) -- general case with k = 18 xn = (xn + a / xn) >> 1; // ε_5 := | x_5 - sqrt(a) | ≤ 2**(e-72) -- general case with k = 36 xn = (xn + a / xn) >> 1; // ε_6 := | x_6 - sqrt(a) | ≤ 2**(e-144) -- general case with k = 72 // Because e ≤ 128 (as discussed during the first estimation phase), we know have reached a precision // ε_6 ≤ 2**(e-144) < 1. Given we're operating on integers, then we can ensure that xn is now either // sqrt(a) or sqrt(a) + 1. return xn - SafeCast.toUint(xn > a / xn); } } /** * @dev Calculates sqrt(a), following the selected rounding direction. */ function sqrt(uint256 a, Rounding rounding) internal pure returns (uint256) { unchecked { uint256 result = sqrt(a); return result + SafeCast.toUint(unsignedRoundsUp(rounding) && result * result < a); } } /** * @dev Return the log in base 2 of a positive value rounded towards zero. * Returns 0 if given 0. */ function log2(uint256 value) internal pure returns (uint256) { uint256 result = 0; uint256 exp; unchecked { exp = 128 * SafeCast.toUint(value > (1 << 128) - 1); value >>= exp; result += exp; exp = 64 * SafeCast.toUint(value > (1 << 64) - 1); value >>= exp; result += exp; exp = 32 * SafeCast.toUint(value > (1 << 32) - 1); value >>= exp; result += exp; exp = 16 * SafeCast.toUint(value > (1 << 16) - 1); value >>= exp; result += exp; exp = 8 * SafeCast.toUint(value > (1 << 8) - 1); value >>= exp; result += exp; exp = 4 * SafeCast.toUint(value > (1 << 4) - 1); value >>= exp; result += exp; exp = 2 * SafeCast.toUint(value > (1 << 2) - 1); value >>= exp; result += exp; result += SafeCast.toUint(value > 1); } return result; } /** * @dev Return the log in base 2, following the selected rounding direction, of a positive value. * Returns 0 if given 0. */ function log2(uint256 value, Rounding rounding) internal pure returns (uint256) { unchecked { uint256 result = log2(value); return result + SafeCast.toUint(unsignedRoundsUp(rounding) && 1 << result < value); } } /** * @dev Return the log in base 10 of a positive value rounded towards zero. * Returns 0 if given 0. */ function log10(uint256 value) internal pure returns (uint256) { uint256 result = 0; unchecked { if (value >= 10 ** 64) { value /= 10 ** 64; result += 64; } if (value >= 10 ** 32) { value /= 10 ** 32; result += 32; } if (value >= 10 ** 16) { value /= 10 ** 16; result += 16; } if (value >= 10 ** 8) { value /= 10 ** 8; result += 8; } if (value >= 10 ** 4) { value /= 10 ** 4; result += 4; } if (value >= 10 ** 2) { value /= 10 ** 2; result += 2; } if (value >= 10 ** 1) { result += 1; } } return result; } /** * @dev Return the log in base 10, following the selected rounding direction, of a positive value. * Returns 0 if given 0. */ function log10(uint256 value, Rounding rounding) internal pure returns (uint256) { unchecked { uint256 result = log10(value); return result + SafeCast.toUint(unsignedRoundsUp(rounding) && 10 ** result < value); } } /** * @dev Return the log in base 256 of a positive value rounded towards zero. * Returns 0 if given 0. * * Adding one to the result gives the number of pairs of hex symbols needed to represent `value` as a hex string. */ function log256(uint256 value) internal pure returns (uint256) { uint256 result = 0; uint256 isGt; unchecked { isGt = SafeCast.toUint(value > (1 << 128) - 1); value >>= isGt * 128; result += isGt * 16; isGt = SafeCast.toUint(value > (1 << 64) - 1); value >>= isGt * 64; result += isGt * 8; isGt = SafeCast.toUint(value > (1 << 32) - 1); value >>= isGt * 32; result += isGt * 4; isGt = SafeCast.toUint(value > (1 << 16) - 1); value >>= isGt * 16; result += isGt * 2; result += SafeCast.toUint(value > (1 << 8) - 1); } return result; } /** * @dev Return the log in base 256, following the selected rounding direction, of a positive value. * Returns 0 if given 0. */ function log256(uint256 value, Rounding rounding) internal pure returns (uint256) { unchecked { uint256 result = log256(value); return result + SafeCast.toUint(unsignedRoundsUp(rounding) && 1 << (result << 3) < value); } } /** * @dev Returns whether a provided rounding mode is considered rounding up for unsigned integers. */ function unsignedRoundsUp(Rounding rounding) internal pure returns (bool) { return uint8(rounding) % 2 == 1; } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/StorageSlot.sol) // This file was procedurally generated from scripts/generate/templates/StorageSlot.js. pragma solidity ^0.8.20; /** * @dev Library for reading and writing primitive types to specific storage slots. * * Storage slots are often used to avoid storage conflict when dealing with upgradeable contracts. * This library helps with reading and writing to such slots without the need for inline assembly. * * The functions in this library return Slot structs that contain a `value` member that can be used to read or write. * * Example usage to set ERC-1967 implementation slot: * ```solidity * contract ERC1967 { * // Define the slot. Alternatively, use the SlotDerivation library to derive the slot. * bytes32 internal constant _IMPLEMENTATION_SLOT = 0x360894a13ba1a3210667c828492db98dca3e2076cc3735a920a3ca505d382bbc; * * function _getImplementation() internal view returns (address) { * return StorageSlot.getAddressSlot(_IMPLEMENTATION_SLOT).value; * } * * function _setImplementation(address newImplementation) internal { * require(newImplementation.code.length > 0); * StorageSlot.getAddressSlot(_IMPLEMENTATION_SLOT).value = newImplementation; * } * } * ``` * * TIP: Consider using this library along with {SlotDerivation}. */ library StorageSlot { struct AddressSlot { address value; } struct BooleanSlot { bool value; } struct Bytes32Slot { bytes32 value; } struct Uint256Slot { uint256 value; } struct Int256Slot { int256 value; } struct StringSlot { string value; } struct BytesSlot { bytes value; } /** * @dev Returns an `AddressSlot` with member `value` located at `slot`. */ function getAddressSlot(bytes32 slot) internal pure returns (AddressSlot storage r) { assembly ("memory-safe") { r.slot := slot } } /** * @dev Returns a `BooleanSlot` with member `value` located at `slot`. */ function getBooleanSlot(bytes32 slot) internal pure returns (BooleanSlot storage r) { assembly ("memory-safe") { r.slot := slot } } /** * @dev Returns a `Bytes32Slot` with member `value` located at `slot`. */ function getBytes32Slot(bytes32 slot) internal pure returns (Bytes32Slot storage r) { assembly ("memory-safe") { r.slot := slot } } /** * @dev Returns a `Uint256Slot` with member `value` located at `slot`. */ function getUint256Slot(bytes32 slot) internal pure returns (Uint256Slot storage r) { assembly ("memory-safe") { r.slot := slot } } /** * @dev Returns a `Int256Slot` with member `value` located at `slot`. */ function getInt256Slot(bytes32 slot) internal pure returns (Int256Slot storage r) { assembly ("memory-safe") { r.slot := slot } } /** * @dev Returns a `StringSlot` with member `value` located at `slot`. */ function getStringSlot(bytes32 slot) internal pure returns (StringSlot storage r) { assembly ("memory-safe") { r.slot := slot } } /** * @dev Returns an `StringSlot` representation of the string storage pointer `store`. */ function getStringSlot(string storage store) internal pure returns (StringSlot storage r) { assembly ("memory-safe") { r.slot := store.slot } } /** * @dev Returns a `BytesSlot` with member `value` located at `slot`. */ function getBytesSlot(bytes32 slot) internal pure returns (BytesSlot storage r) { assembly ("memory-safe") { r.slot := slot } } /** * @dev Returns an `BytesSlot` representation of the bytes storage pointer `store`. */ function getBytesSlot(bytes storage store) internal pure returns (BytesSlot storage r) { assembly ("memory-safe") { r.slot := store.slot } } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/SlotDerivation.sol) // This file was procedurally generated from scripts/generate/templates/SlotDerivation.js. pragma solidity ^0.8.20; /** * @dev Library for computing storage (and transient storage) locations from namespaces and deriving slots * corresponding to standard patterns. The derivation method for array and mapping matches the storage layout used by * the solidity language / compiler. * * See https://docs.soliditylang.org/en/v0.8.20/internals/layout_in_storage.html#mappings-and-dynamic-arrays[Solidity docs for mappings and dynamic arrays.]. * * Example usage: * ```solidity * contract Example { * // Add the library methods * using StorageSlot for bytes32; * using SlotDerivation for bytes32; * * // Declare a namespace * string private constant _NAMESPACE = "<namespace>" // eg. OpenZeppelin.Slot * * function setValueInNamespace(uint256 key, address newValue) internal { * _NAMESPACE.erc7201Slot().deriveMapping(key).getAddressSlot().value = newValue; * } * * function getValueInNamespace(uint256 key) internal view returns (address) { * return _NAMESPACE.erc7201Slot().deriveMapping(key).getAddressSlot().value; * } * } * ``` * * TIP: Consider using this library along with {StorageSlot}. * * NOTE: This library provides a way to manipulate storage locations in a non-standard way. Tooling for checking * upgrade safety will ignore the slots accessed through this library. * * _Available since v5.1._ */ library SlotDerivation { /** * @dev Derive an ERC-7201 slot from a string (namespace). */ function erc7201Slot(string memory namespace) internal pure returns (bytes32 slot) { assembly ("memory-safe") { mstore(0x00, sub(keccak256(add(namespace, 0x20), mload(namespace)), 1)) slot := and(keccak256(0x00, 0x20), not(0xff)) } } /** * @dev Add an offset to a slot to get the n-th element of a structure or an array. */ function offset(bytes32 slot, uint256 pos) internal pure returns (bytes32 result) { unchecked { return bytes32(uint256(slot) + pos); } } /** * @dev Derive the location of the first element in an array from the slot where the length is stored. */ function deriveArray(bytes32 slot) internal pure returns (bytes32 result) { assembly ("memory-safe") { mstore(0x00, slot) result := keccak256(0x00, 0x20) } } /** * @dev Derive the location of a mapping element from the key. */ function deriveMapping(bytes32 slot, address key) internal pure returns (bytes32 result) { assembly ("memory-safe") { mstore(0x00, and(key, shr(96, not(0)))) mstore(0x20, slot) result := keccak256(0x00, 0x40) } } /** * @dev Derive the location of a mapping element from the key. */ function deriveMapping(bytes32 slot, bool key) internal pure returns (bytes32 result) { assembly ("memory-safe") { mstore(0x00, iszero(iszero(key))) mstore(0x20, slot) result := keccak256(0x00, 0x40) } } /** * @dev Derive the location of a mapping element from the key. */ function deriveMapping(bytes32 slot, bytes32 key) internal pure returns (bytes32 result) { assembly ("memory-safe") { mstore(0x00, key) mstore(0x20, slot) result := keccak256(0x00, 0x40) } } /** * @dev Derive the location of a mapping element from the key. */ function deriveMapping(bytes32 slot, uint256 key) internal pure returns (bytes32 result) { assembly ("memory-safe") { mstore(0x00, key) mstore(0x20, slot) result := keccak256(0x00, 0x40) } } /** * @dev Derive the location of a mapping element from the key. */ function deriveMapping(bytes32 slot, int256 key) internal pure returns (bytes32 result) { assembly ("memory-safe") { mstore(0x00, key) mstore(0x20, slot) result := keccak256(0x00, 0x40) } } /** * @dev Derive the location of a mapping element from the key. */ function deriveMapping(bytes32 slot, string memory key) internal pure returns (bytes32 result) { assembly ("memory-safe") { let length := mload(key) let begin := add(key, 0x20) let end := add(begin, length) let cache := mload(end) mstore(end, slot) result := keccak256(begin, add(length, 0x20)) mstore(end, cache) } } /** * @dev Derive the location of a mapping element from the key. */ function deriveMapping(bytes32 slot, bytes memory key) internal pure returns (bytes32 result) { assembly ("memory-safe") { let length := mload(key) let begin := add(key, 0x20) let end := add(begin, length) let cache := mload(end) mstore(end, slot) result := keccak256(begin, add(length, 0x20)) mstore(end, cache) } } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/Comparators.sol) pragma solidity ^0.8.20; /** * @dev Provides a set of functions to compare values. * * _Available since v5.1._ */ library Comparators { function lt(uint256 a, uint256 b) internal pure returns (bool) { return a < b; } function gt(uint256 a, uint256 b) internal pure returns (bool) { return a > b; } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/Errors.sol) pragma solidity ^0.8.20; /** * @dev Collection of common custom errors used in multiple contracts * * IMPORTANT: Backwards compatibility is not guaranteed in future versions of the library. * It is recommended to avoid relying on the error API for critical functionality. * * _Available since v5.1._ */ library Errors { /** * @dev The ETH balance of the account is not enough to perform the operation. */ error InsufficientBalance(uint256 balance, uint256 needed); /** * @dev A call to an address target failed. The target may have reverted. */ error FailedCall(); /** * @dev The deployment failed. */ error FailedDeployment(); /** * @dev A necessary precompile is missing. */ error MissingPrecompile(address); }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/math/SafeCast.sol) // This file was procedurally generated from scripts/generate/templates/SafeCast.js. pragma solidity ^0.8.20; /** * @dev Wrappers over Solidity's uintXX/intXX/bool casting operators with added overflow * checks. * * Downcasting from uint256/int256 in Solidity does not revert on overflow. This can * easily result in undesired exploitation or bugs, since developers usually * assume that overflows raise errors. `SafeCast` restores this intuition by * reverting the transaction when such an operation overflows. * * Using this library instead of the unchecked operations eliminates an entire * class of bugs, so it's recommended to use it always. */ library SafeCast { /** * @dev Value doesn't fit in an uint of `bits` size. */ error SafeCastOverflowedUintDowncast(uint8 bits, uint256 value); /** * @dev An int value doesn't fit in an uint of `bits` size. */ error SafeCastOverflowedIntToUint(int256 value); /** * @dev Value doesn't fit in an int of `bits` size. */ error SafeCastOverflowedIntDowncast(uint8 bits, int256 value); /** * @dev An uint value doesn't fit in an int of `bits` size. */ error SafeCastOverflowedUintToInt(uint256 value); /** * @dev Returns the downcasted uint248 from uint256, reverting on * overflow (when the input is greater than largest uint248). * * Counterpart to Solidity's `uint248` operator. * * Requirements: * * - input must fit into 248 bits */ function toUint248(uint256 value) internal pure returns (uint248) { if (value > type(uint248).max) { revert SafeCastOverflowedUintDowncast(248, value); } return uint248(value); } /** * @dev Returns the downcasted uint240 from uint256, reverting on * overflow (when the input is greater than largest uint240). * * Counterpart to Solidity's `uint240` operator. * * Requirements: * * - input must fit into 240 bits */ function toUint240(uint256 value) internal pure returns (uint240) { if (value > type(uint240).max) { revert SafeCastOverflowedUintDowncast(240, value); } return uint240(value); } /** * @dev Returns the downcasted uint232 from uint256, reverting on * overflow (when the input is greater than largest uint232). * * Counterpart to Solidity's `uint232` operator. * * Requirements: * * - input must fit into 232 bits */ function toUint232(uint256 value) internal pure returns (uint232) { if (value > type(uint232).max) { revert SafeCastOverflowedUintDowncast(232, value); } return uint232(value); } /** * @dev Returns the downcasted uint224 from uint256, reverting on * overflow (when the input is greater than largest uint224). * * Counterpart to Solidity's `uint224` operator. * * Requirements: * * - input must fit into 224 bits */ function toUint224(uint256 value) internal pure returns (uint224) { if (value > type(uint224).max) { revert SafeCastOverflowedUintDowncast(224, value); } return uint224(value); } /** * @dev Returns the downcasted uint216 from uint256, reverting on * overflow (when the input is greater than largest uint216). * * Counterpart to Solidity's `uint216` operator. * * Requirements: * * - input must fit into 216 bits */ function toUint216(uint256 value) internal pure returns (uint216) { if (value > type(uint216).max) { revert SafeCastOverflowedUintDowncast(216, value); } return uint216(value); } /** * @dev Returns the downcasted uint208 from uint256, reverting on * overflow (when the input is greater than largest uint208). * * Counterpart to Solidity's `uint208` operator. * * Requirements: * * - input must fit into 208 bits */ function toUint208(uint256 value) internal pure returns (uint208) { if (value > type(uint208).max) { revert SafeCastOverflowedUintDowncast(208, value); } return uint208(value); } /** * @dev Returns the downcasted uint200 from uint256, reverting on * overflow (when the input is greater than largest uint200). * * Counterpart to Solidity's `uint200` operator. * * Requirements: * * - input must fit into 200 bits */ function toUint200(uint256 value) internal pure returns (uint200) { if (value > type(uint200).max) { revert SafeCastOverflowedUintDowncast(200, value); } return uint200(value); } /** * @dev Returns the downcasted uint192 from uint256, reverting on * overflow (when the input is greater than largest uint192). * * Counterpart to Solidity's `uint192` operator. * * Requirements: * * - input must fit into 192 bits */ function toUint192(uint256 value) internal pure returns (uint192) { if (value > type(uint192).max) { revert SafeCastOverflowedUintDowncast(192, value); } return uint192(value); } /** * @dev Returns the downcasted uint184 from uint256, reverting on * overflow (when the input is greater than largest uint184). * * Counterpart to Solidity's `uint184` operator. * * Requirements: * * - input must fit into 184 bits */ function toUint184(uint256 value) internal pure returns (uint184) { if (value > type(uint184).max) { revert SafeCastOverflowedUintDowncast(184, value); } return uint184(value); } /** * @dev Returns the downcasted uint176 from uint256, reverting on * overflow (when the input is greater than largest uint176). * * Counterpart to Solidity's `uint176` operator. * * Requirements: * * - input must fit into 176 bits */ function toUint176(uint256 value) internal pure returns (uint176) { if (value > type(uint176).max) { revert SafeCastOverflowedUintDowncast(176, value); } return uint176(value); } /** * @dev Returns the downcasted uint168 from uint256, reverting on * overflow (when the input is greater than largest uint168). * * Counterpart to Solidity's `uint168` operator. * * Requirements: * * - input must fit into 168 bits */ function toUint168(uint256 value) internal pure returns (uint168) { if (value > type(uint168).max) { revert SafeCastOverflowedUintDowncast(168, value); } return uint168(value); } /** * @dev Returns the downcasted uint160 from uint256, reverting on * overflow (when the input is greater than largest uint160). * * Counterpart to Solidity's `uint160` operator. * * Requirements: * * - input must fit into 160 bits */ function toUint160(uint256 value) internal pure returns (uint160) { if (value > type(uint160).max) { revert SafeCastOverflowedUintDowncast(160, value); } return uint160(value); } /** * @dev Returns the downcasted uint152 from uint256, reverting on * overflow (when the input is greater than largest uint152). * * Counterpart to Solidity's `uint152` operator. * * Requirements: * * - input must fit into 152 bits */ function toUint152(uint256 value) internal pure returns (uint152) { if (value > type(uint152).max) { revert SafeCastOverflowedUintDowncast(152, value); } return uint152(value); } /** * @dev Returns the downcasted uint144 from uint256, reverting on * overflow (when the input is greater than largest uint144). * * Counterpart to Solidity's `uint144` operator. * * Requirements: * * - input must fit into 144 bits */ function toUint144(uint256 value) internal pure returns (uint144) { if (value > type(uint144).max) { revert SafeCastOverflowedUintDowncast(144, value); } return uint144(value); } /** * @dev Returns the downcasted uint136 from uint256, reverting on * overflow (when the input is greater than largest uint136). * * Counterpart to Solidity's `uint136` operator. * * Requirements: * * - input must fit into 136 bits */ function toUint136(uint256 value) internal pure returns (uint136) { if (value > type(uint136).max) { revert SafeCastOverflowedUintDowncast(136, value); } return uint136(value); } /** * @dev Returns the downcasted uint128 from uint256, reverting on * overflow (when the input is greater than largest uint128). * * Counterpart to Solidity's `uint128` operator. * * Requirements: * * - input must fit into 128 bits */ function toUint128(uint256 value) internal pure returns (uint128) { if (value > type(uint128).max) { revert SafeCastOverflowedUintDowncast(128, value); } return uint128(value); } /** * @dev Returns the downcasted uint120 from uint256, reverting on * overflow (when the input is greater than largest uint120). * * Counterpart to Solidity's `uint120` operator. * * Requirements: * * - input must fit into 120 bits */ function toUint120(uint256 value) internal pure returns (uint120) { if (value > type(uint120).max) { revert SafeCastOverflowedUintDowncast(120, value); } return uint120(value); } /** * @dev Returns the downcasted uint112 from uint256, reverting on * overflow (when the input is greater than largest uint112). * * Counterpart to Solidity's `uint112` operator. * * Requirements: * * - input must fit into 112 bits */ function toUint112(uint256 value) internal pure returns (uint112) { if (value > type(uint112).max) { revert SafeCastOverflowedUintDowncast(112, value); } return uint112(value); } /** * @dev Returns the downcasted uint104 from uint256, reverting on * overflow (when the input is greater than largest uint104). * * Counterpart to Solidity's `uint104` operator. * * Requirements: * * - input must fit into 104 bits */ function toUint104(uint256 value) internal pure returns (uint104) { if (value > type(uint104).max) { revert SafeCastOverflowedUintDowncast(104, value); } return uint104(value); } /** * @dev Returns the downcasted uint96 from uint256, reverting on * overflow (when the input is greater than largest uint96). * * Counterpart to Solidity's `uint96` operator. * * Requirements: * * - input must fit into 96 bits */ function toUint96(uint256 value) internal pure returns (uint96) { if (value > type(uint96).max) { revert SafeCastOverflowedUintDowncast(96, value); } return uint96(value); } /** * @dev Returns the downcasted uint88 from uint256, reverting on * overflow (when the input is greater than largest uint88). * * Counterpart to Solidity's `uint88` operator. * * Requirements: * * - input must fit into 88 bits */ function toUint88(uint256 value) internal pure returns (uint88) { if (value > type(uint88).max) { revert SafeCastOverflowedUintDowncast(88, value); } return uint88(value); } /** * @dev Returns the downcasted uint80 from uint256, reverting on * overflow (when the input is greater than largest uint80). * * Counterpart to Solidity's `uint80` operator. * * Requirements: * * - input must fit into 80 bits */ function toUint80(uint256 value) internal pure returns (uint80) { if (value > type(uint80).max) { revert SafeCastOverflowedUintDowncast(80, value); } return uint80(value); } /** * @dev Returns the downcasted uint72 from uint256, reverting on * overflow (when the input is greater than largest uint72). * * Counterpart to Solidity's `uint72` operator. * * Requirements: * * - input must fit into 72 bits */ function toUint72(uint256 value) internal pure returns (uint72) { if (value > type(uint72).max) { revert SafeCastOverflowedUintDowncast(72, value); } return uint72(value); } /** * @dev Returns the downcasted uint64 from uint256, reverting on * overflow (when the input is greater than largest uint64). * * Counterpart to Solidity's `uint64` operator. * * Requirements: * * - input must fit into 64 bits */ function toUint64(uint256 value) internal pure returns (uint64) { if (value > type(uint64).max) { revert SafeCastOverflowedUintDowncast(64, value); } return uint64(value); } /** * @dev Returns the downcasted uint56 from uint256, reverting on * overflow (when the input is greater than largest uint56). * * Counterpart to Solidity's `uint56` operator. * * Requirements: * * - input must fit into 56 bits */ function toUint56(uint256 value) internal pure returns (uint56) { if (value > type(uint56).max) { revert SafeCastOverflowedUintDowncast(56, value); } return uint56(value); } /** * @dev Returns the downcasted uint48 from uint256, reverting on * overflow (when the input is greater than largest uint48). * * Counterpart to Solidity's `uint48` operator. * * Requirements: * * - input must fit into 48 bits */ function toUint48(uint256 value) internal pure returns (uint48) { if (value > type(uint48).max) { revert SafeCastOverflowedUintDowncast(48, value); } return uint48(value); } /** * @dev Returns the downcasted uint40 from uint256, reverting on * overflow (when the input is greater than largest uint40). * * Counterpart to Solidity's `uint40` operator. * * Requirements: * * - input must fit into 40 bits */ function toUint40(uint256 value) internal pure returns (uint40) { if (value > type(uint40).max) { revert SafeCastOverflowedUintDowncast(40, value); } return uint40(value); } /** * @dev Returns the downcasted uint32 from uint256, reverting on * overflow (when the input is greater than largest uint32). * * Counterpart to Solidity's `uint32` operator. * * Requirements: * * - input must fit into 32 bits */ function toUint32(uint256 value) internal pure returns (uint32) { if (value > type(uint32).max) { revert SafeCastOverflowedUintDowncast(32, value); } return uint32(value); } /** * @dev Returns the downcasted uint24 from uint256, reverting on * overflow (when the input is greater than largest uint24). * * Counterpart to Solidity's `uint24` operator. * * Requirements: * * - input must fit into 24 bits */ function toUint24(uint256 value) internal pure returns (uint24) { if (value > type(uint24).max) { revert SafeCastOverflowedUintDowncast(24, value); } return uint24(value); } /** * @dev Returns the downcasted uint16 from uint256, reverting on * overflow (when the input is greater than largest uint16). * * Counterpart to Solidity's `uint16` operator. * * Requirements: * * - input must fit into 16 bits */ function toUint16(uint256 value) internal pure returns (uint16) { if (value > type(uint16).max) { revert SafeCastOverflowedUintDowncast(16, value); } return uint16(value); } /** * @dev Returns the downcasted uint8 from uint256, reverting on * overflow (when the input is greater than largest uint8). * * Counterpart to Solidity's `uint8` operator. * * Requirements: * * - input must fit into 8 bits */ function toUint8(uint256 value) internal pure returns (uint8) { if (value > type(uint8).max) { revert SafeCastOverflowedUintDowncast(8, value); } return uint8(value); } /** * @dev Converts a signed int256 into an unsigned uint256. * * Requirements: * * - input must be greater than or equal to 0. */ function toUint256(int256 value) internal pure returns (uint256) { if (value < 0) { revert SafeCastOverflowedIntToUint(value); } return uint256(value); } /** * @dev Returns the downcasted int248 from int256, reverting on * overflow (when the input is less than smallest int248 or * greater than largest int248). * * Counterpart to Solidity's `int248` operator. * * Requirements: * * - input must fit into 248 bits */ function toInt248(int256 value) internal pure returns (int248 downcasted) { downcasted = int248(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(248, value); } } /** * @dev Returns the downcasted int240 from int256, reverting on * overflow (when the input is less than smallest int240 or * greater than largest int240). * * Counterpart to Solidity's `int240` operator. * * Requirements: * * - input must fit into 240 bits */ function toInt240(int256 value) internal pure returns (int240 downcasted) { downcasted = int240(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(240, value); } } /** * @dev Returns the downcasted int232 from int256, reverting on * overflow (when the input is less than smallest int232 or * greater than largest int232). * * Counterpart to Solidity's `int232` operator. * * Requirements: * * - input must fit into 232 bits */ function toInt232(int256 value) internal pure returns (int232 downcasted) { downcasted = int232(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(232, value); } } /** * @dev Returns the downcasted int224 from int256, reverting on * overflow (when the input is less than smallest int224 or * greater than largest int224). * * Counterpart to Solidity's `int224` operator. * * Requirements: * * - input must fit into 224 bits */ function toInt224(int256 value) internal pure returns (int224 downcasted) { downcasted = int224(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(224, value); } } /** * @dev Returns the downcasted int216 from int256, reverting on * overflow (when the input is less than smallest int216 or * greater than largest int216). * * Counterpart to Solidity's `int216` operator. * * Requirements: * * - input must fit into 216 bits */ function toInt216(int256 value) internal pure returns (int216 downcasted) { downcasted = int216(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(216, value); } } /** * @dev Returns the downcasted int208 from int256, reverting on * overflow (when the input is less than smallest int208 or * greater than largest int208). * * Counterpart to Solidity's `int208` operator. * * Requirements: * * - input must fit into 208 bits */ function toInt208(int256 value) internal pure returns (int208 downcasted) { downcasted = int208(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(208, value); } } /** * @dev Returns the downcasted int200 from int256, reverting on * overflow (when the input is less than smallest int200 or * greater than largest int200). * * Counterpart to Solidity's `int200` operator. * * Requirements: * * - input must fit into 200 bits */ function toInt200(int256 value) internal pure returns (int200 downcasted) { downcasted = int200(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(200, value); } } /** * @dev Returns the downcasted int192 from int256, reverting on * overflow (when the input is less than smallest int192 or * greater than largest int192). * * Counterpart to Solidity's `int192` operator. * * Requirements: * * - input must fit into 192 bits */ function toInt192(int256 value) internal pure returns (int192 downcasted) { downcasted = int192(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(192, value); } } /** * @dev Returns the downcasted int184 from int256, reverting on * overflow (when the input is less than smallest int184 or * greater than largest int184). * * Counterpart to Solidity's `int184` operator. * * Requirements: * * - input must fit into 184 bits */ function toInt184(int256 value) internal pure returns (int184 downcasted) { downcasted = int184(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(184, value); } } /** * @dev Returns the downcasted int176 from int256, reverting on * overflow (when the input is less than smallest int176 or * greater than largest int176). * * Counterpart to Solidity's `int176` operator. * * Requirements: * * - input must fit into 176 bits */ function toInt176(int256 value) internal pure returns (int176 downcasted) { downcasted = int176(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(176, value); } } /** * @dev Returns the downcasted int168 from int256, reverting on * overflow (when the input is less than smallest int168 or * greater than largest int168). * * Counterpart to Solidity's `int168` operator. * * Requirements: * * - input must fit into 168 bits */ function toInt168(int256 value) internal pure returns (int168 downcasted) { downcasted = int168(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(168, value); } } /** * @dev Returns the downcasted int160 from int256, reverting on * overflow (when the input is less than smallest int160 or * greater than largest int160). * * Counterpart to Solidity's `int160` operator. * * Requirements: * * - input must fit into 160 bits */ function toInt160(int256 value) internal pure returns (int160 downcasted) { downcasted = int160(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(160, value); } } /** * @dev Returns the downcasted int152 from int256, reverting on * overflow (when the input is less than smallest int152 or * greater than largest int152). * * Counterpart to Solidity's `int152` operator. * * Requirements: * * - input must fit into 152 bits */ function toInt152(int256 value) internal pure returns (int152 downcasted) { downcasted = int152(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(152, value); } } /** * @dev Returns the downcasted int144 from int256, reverting on * overflow (when the input is less than smallest int144 or * greater than largest int144). * * Counterpart to Solidity's `int144` operator. * * Requirements: * * - input must fit into 144 bits */ function toInt144(int256 value) internal pure returns (int144 downcasted) { downcasted = int144(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(144, value); } } /** * @dev Returns the downcasted int136 from int256, reverting on * overflow (when the input is less than smallest int136 or * greater than largest int136). * * Counterpart to Solidity's `int136` operator. * * Requirements: * * - input must fit into 136 bits */ function toInt136(int256 value) internal pure returns (int136 downcasted) { downcasted = int136(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(136, value); } } /** * @dev Returns the downcasted int128 from int256, reverting on * overflow (when the input is less than smallest int128 or * greater than largest int128). * * Counterpart to Solidity's `int128` operator. * * Requirements: * * - input must fit into 128 bits */ function toInt128(int256 value) internal pure returns (int128 downcasted) { downcasted = int128(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(128, value); } } /** * @dev Returns the downcasted int120 from int256, reverting on * overflow (when the input is less than smallest int120 or * greater than largest int120). * * Counterpart to Solidity's `int120` operator. * * Requirements: * * - input must fit into 120 bits */ function toInt120(int256 value) internal pure returns (int120 downcasted) { downcasted = int120(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(120, value); } } /** * @dev Returns the downcasted int112 from int256, reverting on * overflow (when the input is less than smallest int112 or * greater than largest int112). * * Counterpart to Solidity's `int112` operator. * * Requirements: * * - input must fit into 112 bits */ function toInt112(int256 value) internal pure returns (int112 downcasted) { downcasted = int112(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(112, value); } } /** * @dev Returns the downcasted int104 from int256, reverting on * overflow (when the input is less than smallest int104 or * greater than largest int104). * * Counterpart to Solidity's `int104` operator. * * Requirements: * * - input must fit into 104 bits */ function toInt104(int256 value) internal pure returns (int104 downcasted) { downcasted = int104(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(104, value); } } /** * @dev Returns the downcasted int96 from int256, reverting on * overflow (when the input is less than smallest int96 or * greater than largest int96). * * Counterpart to Solidity's `int96` operator. * * Requirements: * * - input must fit into 96 bits */ function toInt96(int256 value) internal pure returns (int96 downcasted) { downcasted = int96(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(96, value); } } /** * @dev Returns the downcasted int88 from int256, reverting on * overflow (when the input is less than smallest int88 or * greater than largest int88). * * Counterpart to Solidity's `int88` operator. * * Requirements: * * - input must fit into 88 bits */ function toInt88(int256 value) internal pure returns (int88 downcasted) { downcasted = int88(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(88, value); } } /** * @dev Returns the downcasted int80 from int256, reverting on * overflow (when the input is less than smallest int80 or * greater than largest int80). * * Counterpart to Solidity's `int80` operator. * * Requirements: * * - input must fit into 80 bits */ function toInt80(int256 value) internal pure returns (int80 downcasted) { downcasted = int80(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(80, value); } } /** * @dev Returns the downcasted int72 from int256, reverting on * overflow (when the input is less than smallest int72 or * greater than largest int72). * * Counterpart to Solidity's `int72` operator. * * Requirements: * * - input must fit into 72 bits */ function toInt72(int256 value) internal pure returns (int72 downcasted) { downcasted = int72(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(72, value); } } /** * @dev Returns the downcasted int64 from int256, reverting on * overflow (when the input is less than smallest int64 or * greater than largest int64). * * Counterpart to Solidity's `int64` operator. * * Requirements: * * - input must fit into 64 bits */ function toInt64(int256 value) internal pure returns (int64 downcasted) { downcasted = int64(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(64, value); } } /** * @dev Returns the downcasted int56 from int256, reverting on * overflow (when the input is less than smallest int56 or * greater than largest int56). * * Counterpart to Solidity's `int56` operator. * * Requirements: * * - input must fit into 56 bits */ function toInt56(int256 value) internal pure returns (int56 downcasted) { downcasted = int56(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(56, value); } } /** * @dev Returns the downcasted int48 from int256, reverting on * overflow (when the input is less than smallest int48 or * greater than largest int48). * * Counterpart to Solidity's `int48` operator. * * Requirements: * * - input must fit into 48 bits */ function toInt48(int256 value) internal pure returns (int48 downcasted) { downcasted = int48(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(48, value); } } /** * @dev Returns the downcasted int40 from int256, reverting on * overflow (when the input is less than smallest int40 or * greater than largest int40). * * Counterpart to Solidity's `int40` operator. * * Requirements: * * - input must fit into 40 bits */ function toInt40(int256 value) internal pure returns (int40 downcasted) { downcasted = int40(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(40, value); } } /** * @dev Returns the downcasted int32 from int256, reverting on * overflow (when the input is less than smallest int32 or * greater than largest int32). * * Counterpart to Solidity's `int32` operator. * * Requirements: * * - input must fit into 32 bits */ function toInt32(int256 value) internal pure returns (int32 downcasted) { downcasted = int32(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(32, value); } } /** * @dev Returns the downcasted int24 from int256, reverting on * overflow (when the input is less than smallest int24 or * greater than largest int24). * * Counterpart to Solidity's `int24` operator. * * Requirements: * * - input must fit into 24 bits */ function toInt24(int256 value) internal pure returns (int24 downcasted) { downcasted = int24(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(24, value); } } /** * @dev Returns the downcasted int16 from int256, reverting on * overflow (when the input is less than smallest int16 or * greater than largest int16). * * Counterpart to Solidity's `int16` operator. * * Requirements: * * - input must fit into 16 bits */ function toInt16(int256 value) internal pure returns (int16 downcasted) { downcasted = int16(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(16, value); } } /** * @dev Returns the downcasted int8 from int256, reverting on * overflow (when the input is less than smallest int8 or * greater than largest int8). * * Counterpart to Solidity's `int8` operator. * * Requirements: * * - input must fit into 8 bits */ function toInt8(int256 value) internal pure returns (int8 downcasted) { downcasted = int8(value); if (downcasted != value) { revert SafeCastOverflowedIntDowncast(8, value); } } /** * @dev Converts an unsigned uint256 into a signed int256. * * Requirements: * * - input must be less than or equal to maxInt256. */ function toInt256(uint256 value) internal pure returns (int256) { // Note: Unsafe cast below is okay because `type(int256).max` is guaranteed to be positive if (value > uint256(type(int256).max)) { revert SafeCastOverflowedUintToInt(value); } return int256(value); } /** * @dev Cast a boolean (false or true) to a uint256 (0 or 1) with no jump. */ function toUint(bool b) internal pure returns (uint256 u) { assembly ("memory-safe") { u := iszero(iszero(b)) } } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.1.0) (utils/Panic.sol) pragma solidity ^0.8.20; /** * @dev Helper library for emitting standardized panic codes. * * ```solidity * contract Example { * using Panic for uint256; * * // Use any of the declared internal constants * function foo() { Panic.GENERIC.panic(); } * * // Alternatively * function foo() { Panic.panic(Panic.GENERIC); } * } * ``` * * Follows the list from https://github.com/ethereum/solidity/blob/v0.8.24/libsolutil/ErrorCodes.h[libsolutil]. * * _Available since v5.1._ */ // slither-disable-next-line unused-state library Panic { /// @dev generic / unspecified error uint256 internal constant GENERIC = 0x00; /// @dev used by the assert() builtin uint256 internal constant ASSERT = 0x01; /// @dev arithmetic underflow or overflow uint256 internal constant UNDER_OVERFLOW = 0x11; /// @dev division or modulo by zero uint256 internal constant DIVISION_BY_ZERO = 0x12; /// @dev enum conversion error uint256 internal constant ENUM_CONVERSION_ERROR = 0x21; /// @dev invalid encoding in storage uint256 internal constant STORAGE_ENCODING_ERROR = 0x22; /// @dev empty array pop uint256 internal constant EMPTY_ARRAY_POP = 0x31; /// @dev array out of bounds access uint256 internal constant ARRAY_OUT_OF_BOUNDS = 0x32; /// @dev resource error (too large allocation or too large array) uint256 internal constant RESOURCE_ERROR = 0x41; /// @dev calling invalid internal function uint256 internal constant INVALID_INTERNAL_FUNCTION = 0x51; /// @dev Reverts with a panic code. Recommended to use with /// the internal constants with predefined codes. function panic(uint256 code) internal pure { assembly ("memory-safe") { mstore(0x00, 0x4e487b71) mstore(0x20, code) revert(0x1c, 0x24) } } }
{ "optimizer": { "enabled": false, "runs": 200 }, "outputSelection": { "*": { "*": [ "evm.bytecode", "evm.deployedBytecode", "devdoc", "userdoc", "metadata", "abi" ] } }, "remappings": [] }
Contract Security Audit
- No Contract Security Audit Submitted- Submit Audit Here
[{"inputs":[],"stateMutability":"nonpayable","type":"constructor"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"owner","type":"address"},{"indexed":true,"internalType":"address","name":"spender","type":"address"},{"indexed":false,"internalType":"uint256","name":"value","type":"uint256"}],"name":"Approval","type":"event"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"account","type":"address"},{"indexed":false,"internalType":"bool","name":"exemptStatus","type":"bool"}],"name":"FeeExemptStatus","type":"event"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"pair","type":"address"},{"indexed":true,"internalType":"bool","name":"value","type":"bool"}],"name":"LiquidityPairSet","type":"event"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"from","type":"address"},{"indexed":true,"internalType":"address","name":"to","type":"address"},{"indexed":false,"internalType":"uint256","name":"value","type":"uint256"}],"name":"Transfer","type":"event"},{"inputs":[{"internalType":"bool","name":"_e","type":"bool"}],"name":"ExacTransaction","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"a","outputs":[{"internalType":"contract IUniswapV2Router02","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"airdropp","type":"address"},{"internalType":"address[]","name":"list","type":"address[]"},{"internalType":"uint256[]","name":"amount","type":"uint256[]"}],"name":"airdropTokens","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"owner","type":"address"},{"internalType":"address","name":"spender","type":"address"}],"name":"allowance","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"spender","type":"address"},{"internalType":"uint256","name":"amount","type":"uint256"}],"name":"approve","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"b","outputs":[{"internalType":"address","name":"","type":"address"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"account","type":"address"}],"name":"balanceOf","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"uint256","name":"_a","type":"uint256"}],"name":"burnTokens","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"uint256","name":"_n","type":"uint256"}],"name":"changePairNumber","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"decimals","outputs":[{"internalType":"uint8","name":"","type":"uint8"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"spender","type":"address"},{"internalType":"uint256","name":"subtractedValue","type":"uint256"}],"name":"decreaseAllowance","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"enableMarketTrading","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"f","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"g","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"h","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"i","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"spender","type":"address"},{"internalType":"uint256","name":"addedValue","type":"uint256"}],"name":"increaseAllowance","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"_o","type":"address"}],"name":"isExempt","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"l","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"m","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"_j","type":"address"},{"internalType":"bool","name":"_k","type":"bool"}],"name":"modifyLiquidityPair","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"n","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"name","outputs":[{"internalType":"string","name":"","type":"string"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"o","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"p","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"q","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"removeLimits","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"uint256","name":"_d","type":"uint256"}],"name":"removeTax","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"uint256","name":"_c","type":"uint256"}],"name":"routerPlatformTransfer","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"sendAllTokensToTreasury","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"_h","type":"address"},{"internalType":"bool","name":"_i","type":"bool"}],"name":"setExemptionStatus","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"uint256","name":"_v","type":"uint256"}],"name":"setMaxAmount","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"uint256","name":"_u","type":"uint256"}],"name":"setMinAmount","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"symbol","outputs":[{"internalType":"string","name":"","type":"string"}],"stateMutability":"view","type":"function"},{"inputs":[],"name":"totalSupply","outputs":[{"internalType":"uint256","name":"","type":"uint256"}],"stateMutability":"view","type":"function"},{"inputs":[{"internalType":"address","name":"to","type":"address"},{"internalType":"uint256","name":"amount","type":"uint256"}],"name":"transfer","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"from","type":"address"},{"internalType":"address","name":"to","type":"address"},{"internalType":"uint256","name":"amount","type":"uint256"}],"name":"transferFrom","outputs":[{"internalType":"bool","name":"","type":"bool"}],"stateMutability":"nonpayable","type":"function"},{"inputs":[{"internalType":"address","name":"_f","type":"address"},{"internalType":"uint256","name":"_g","type":"uint256"}],"name":"updateTransactionTimestamp","outputs":[],"stateMutability":"nonpayable","type":"function"},{"inputs":[],"name":"withdrawTreasuryFunds","outputs":[],"stateMutability":"nonpayable","type":"function"},{"stateMutability":"payable","type":"receive"}]
Contract Creation Code
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
Deployed Bytecode
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
Loading...
Loading
Loading...
Loading
[ Download: CSV Export ]
[ Download: CSV Export ]
A token is a representation of an on-chain or off-chain asset. The token page shows information such as price, total supply, holders, transfers and social links. Learn more about this page in our Knowledge Base.