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Contract Name:
BazaarV2
Compiler Version
v0.8.20+commit.a1b79de6
Optimization Enabled:
Yes with 20 runs
Other Settings:
paris EvmVersion
Contract Source Code (Solidity Standard Json-Input format)
// SPDX-License-Identifier: MIT pragma solidity >=0.8.17 .0; import {Net} from "../../net/Net.sol"; import {OrderParameters} from "@seaport-types/lib/ConsiderationStructs.sol"; import {Strings} from "@openzeppelin/contracts/utils/Strings.sol"; /// @title Bazaar /// @author Aspyn Palatnick (aspyn.eth, stuckinaboot.eth) contract BazaarV2 { event Submitted(address indexed tokenAddress, uint256 indexed tokenId); error OfferItemsMustContainOneItem(); error ConsiderationItemsMustContainTwoItems(); error ConsiderationItemsMustIncludeMsgSender(); error ConsiderationItemsMustIncludeFeeAddress(); error InvalidFee(); address internal constant FEE_ADDRESS = address(0x32D16C15410248bef498D7aF50D10Db1a546b9E5); uint256 internal constant MIN_FEE_BPS = 450; Net internal net = Net(0x00000000B24D62781dB359b07880a105cD0b64e6); struct Submission { OrderParameters parameters; uint256 counter; bytes signature; } string public constant NET_APP_NAME = "BazaarV2"; function submit(Submission calldata submission) external { // https://github.com/ProjectOpenSea/seaport-types/blob/main/src/lib/ConsiderationStructs.sol // Validate offer items contain 1 items if (submission.parameters.offer.length != 1) { revert OfferItemsMustContainOneItem(); } // Validate consideration items contain 2 items if (submission.parameters.consideration.length != 2) { revert ConsiderationItemsMustContainTwoItems(); } // Address validation if (submission.parameters.consideration[0].recipient != msg.sender) { revert ConsiderationItemsMustIncludeMsgSender(); } if (submission.parameters.consideration[1].recipient != FEE_ADDRESS) { revert ConsiderationItemsMustIncludeFeeAddress(); } if ( ((submission.parameters.consideration[1].startAmount * 10_000) / (submission.parameters.consideration[0].startAmount + submission.parameters.consideration[1].startAmount)) < MIN_FEE_BPS ) { revert InvalidFee(); } // Use offer item address for topic address offerItemAddress = submission.parameters.offer[0].token; uint256 tokenId = submission.parameters.offer[0].identifierOrCriteria; uint256 totalAmount = submission.parameters.consideration[0].endAmount + submission.parameters.consideration[1].endAmount; emit Submitted(offerItemAddress, tokenId); net.sendMessageViaApp( msg.sender, string.concat( "List ", Strings.toHexString(offerItemAddress), " #", Strings.toString(tokenId), "\nPrice: ", weiToEthString(totalAmount), "\nExpiration Date: ", Strings.toString(submission.parameters.endTime) ), Strings.toHexString(offerItemAddress), abi.encode(submission) ); } function weiToEthString( uint256 weiValue ) internal pure returns (string memory) { uint256 ethValueWhole = weiValue / 1e18; uint256 ethValueFraction = (weiValue % 1e18) / 1e10; // 8 decimal places string memory wholePart = Strings.toString(ethValueWhole); string memory fractionPart = Strings.toString(ethValueFraction); // Pad the fraction part with leading zeros if necessary while (bytes(fractionPart).length < 8) { fractionPart = string(abi.encodePacked("0", fractionPart)); } return string(abi.encodePacked(wholePart, ".", fractionPart)); } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.0.0) (utils/Strings.sol) pragma solidity ^0.8.20; import {Math} from "./math/Math.sol"; import {SignedMath} from "./math/SignedMath.sol"; /** * @dev String operations. */ library Strings { bytes16 private constant HEX_DIGITS = "0123456789abcdef"; uint8 private constant ADDRESS_LENGTH = 20; /** * @dev The `value` string doesn't fit in the specified `length`. */ error StringsInsufficientHexLength(uint256 value, uint256 length); /** * @dev Converts a `uint256` to its ASCII `string` decimal representation. */ function toString(uint256 value) internal pure returns (string memory) { unchecked { uint256 length = Math.log10(value) + 1; string memory buffer = new string(length); uint256 ptr; /// @solidity memory-safe-assembly assembly { ptr := add(buffer, add(32, length)) } while (true) { ptr--; /// @solidity memory-safe-assembly assembly { mstore8(ptr, byte(mod(value, 10), HEX_DIGITS)) } value /= 10; if (value == 0) break; } return buffer; } } /** * @dev Converts a `int256` to its ASCII `string` decimal representation. */ function toStringSigned(int256 value) internal pure returns (string memory) { return string.concat(value < 0 ? "-" : "", toString(SignedMath.abs(value))); } /** * @dev Converts a `uint256` to its ASCII `string` hexadecimal representation. */ function toHexString(uint256 value) internal pure returns (string memory) { unchecked { return toHexString(value, Math.log256(value) + 1); } } /** * @dev Converts a `uint256` to its ASCII `string` hexadecimal representation with fixed length. */ function toHexString(uint256 value, uint256 length) internal pure returns (string memory) { uint256 localValue = value; bytes memory buffer = new bytes(2 * length + 2); buffer[0] = "0"; buffer[1] = "x"; for (uint256 i = 2 * length + 1; i > 1; --i) { buffer[i] = HEX_DIGITS[localValue & 0xf]; localValue >>= 4; } if (localValue != 0) { revert StringsInsufficientHexLength(value, length); } return string(buffer); } /** * @dev Converts an `address` with fixed length of 20 bytes to its not checksummed ASCII `string` hexadecimal * representation. */ function toHexString(address addr) internal pure returns (string memory) { return toHexString(uint256(uint160(addr)), ADDRESS_LENGTH); } /** * @dev Returns true if the two strings are equal. */ function equal(string memory a, string memory b) internal pure returns (bool) { return bytes(a).length == bytes(b).length && keccak256(bytes(a)) == keccak256(bytes(b)); } }
// SPDX-License-Identifier: MIT // OpenZeppelin Contracts (last updated v5.0.0) (utils/math/Math.sol) pragma solidity ^0.8.20; /** * @dev Standard math utilities missing in the Solidity language. */ library Math { /** * @dev Muldiv operation overflow. */ error MathOverflowedMulDiv(); 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 overflow flag. */ 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); } } /** * @dev Returns the subtraction of two unsigned integers, with an overflow flag. */ function trySub(uint256 a, uint256 b) internal pure returns (bool, uint256) { unchecked { if (b > a) return (false, 0); return (true, a - b); } } /** * @dev Returns the multiplication of two unsigned integers, with an overflow flag. */ function tryMul(uint256 a, uint256 b) internal pure returns (bool, uint256) { 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 division by zero flag. */ function tryDiv(uint256 a, uint256 b) internal pure returns (bool, uint256) { unchecked { if (b == 0) return (false, 0); return (true, a / b); } } /** * @dev Returns the remainder of dividing two unsigned integers, with a division by zero flag. */ function tryMod(uint256 a, uint256 b) internal pure returns (bool, uint256) { unchecked { if (b == 0) return (false, 0); return (true, a % b); } } /** * @dev Returns the largest of two numbers. */ function max(uint256 a, uint256 b) internal pure returns (uint256) { return a > b ? a : b; } /** * @dev Returns the smallest of two numbers. */ function min(uint256 a, uint256 b) internal pure returns (uint256) { return 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. return a / b; } // (a + b - 1) / b can overflow on addition, so we distribute. return a == 0 ? 0 : (a - 1) / b + 1; } /** * @notice Calculates floor(x * y / denominator) with full precision. Throws if result overflows a uint256 or * denominator == 0. * @dev 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 2^256 and mod 2^256 - 1, then use // use the Chinese Remainder Theorem to reconstruct the 512 bit result. The result is stored in two 256 // variables such that product = prod1 * 2^256 + 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 2^256. Also prevents denominator == 0. if (denominator <= prod1) { revert MathOverflowedMulDiv(); } /////////////////////////////////////////////// // 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 2^256 / 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 2^256. Now that denominator is an odd number, it has an inverse modulo 2^256 such // that denominator * inv = 1 mod 2^256. Compute the inverse by starting with a seed that is correct for // four bits. That is, denominator * inv = 1 mod 2^4. 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 2^8 inverse *= 2 - denominator * inverse; // inverse mod 2^16 inverse *= 2 - denominator * inverse; // inverse mod 2^32 inverse *= 2 - denominator * inverse; // inverse mod 2^64 inverse *= 2 - denominator * inverse; // inverse mod 2^128 inverse *= 2 - denominator * inverse; // inverse mod 2^256 // 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 2^256. Since the preconditions guarantee that the outcome is // less than 2^256, 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; } } /** * @notice 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) { uint256 result = mulDiv(x, y, denominator); if (unsignedRoundsUp(rounding) && mulmod(x, y, denominator) > 0) { result += 1; } return result; } /** * @dev Returns the square root of a number. If the number is not a perfect square, the value is rounded * towards zero. * * Inspired by Henry S. Warren, Jr.'s "Hacker's Delight" (Chapter 11). */ function sqrt(uint256 a) internal pure returns (uint256) { if (a == 0) { return 0; } // For our first guess, we get the biggest power of 2 which is smaller than the square root of the target. // // We know that the "msb" (most significant bit) of our target number `a` is a power of 2 such that we have // `msb(a) <= a < 2*msb(a)`. This value can be written `msb(a)=2**k` with `k=log2(a)`. // // This can be rewritten `2**log2(a) <= a < 2**(log2(a) + 1)` // → `sqrt(2**k) <= sqrt(a) < sqrt(2**(k+1))` // → `2**(k/2) <= sqrt(a) < 2**((k+1)/2) <= 2**(k/2 + 1)` // // Consequently, `2**(log2(a) / 2)` is a good first approximation of `sqrt(a)` with at least 1 correct bit. uint256 result = 1 << (log2(a) >> 1); // At this point `result` is an estimation with one bit of precision. We know the true value is a uint128, // since it is the square root of a uint256. Newton's method converges quadratically (precision doubles at // every iteration). We thus need at most 7 iteration to turn our partial result with one bit of precision // into the expected uint128 result. unchecked { result = (result + a / result) >> 1; result = (result + a / result) >> 1; result = (result + a / result) >> 1; result = (result + a / result) >> 1; result = (result + a / result) >> 1; result = (result + a / result) >> 1; result = (result + a / result) >> 1; return min(result, a / result); } } /** * @notice 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 + (unsignedRoundsUp(rounding) && result * result < a ? 1 : 0); } } /** * @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; unchecked { if (value >> 128 > 0) { value >>= 128; result += 128; } if (value >> 64 > 0) { value >>= 64; result += 64; } if (value >> 32 > 0) { value >>= 32; result += 32; } if (value >> 16 > 0) { value >>= 16; result += 16; } if (value >> 8 > 0) { value >>= 8; result += 8; } if (value >> 4 > 0) { value >>= 4; result += 4; } if (value >> 2 > 0) { value >>= 2; result += 2; } if (value >> 1 > 0) { result += 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 + (unsignedRoundsUp(rounding) && 1 << result < value ? 1 : 0); } } /** * @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 + (unsignedRoundsUp(rounding) && 10 ** result < value ? 1 : 0); } } /** * @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; unchecked { if (value >> 128 > 0) { value >>= 128; result += 16; } if (value >> 64 > 0) { value >>= 64; result += 8; } if (value >> 32 > 0) { value >>= 32; result += 4; } if (value >> 16 > 0) { value >>= 16; result += 2; } if (value >> 8 > 0) { result += 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 + (unsignedRoundsUp(rounding) && 1 << (result << 3) < value ? 1 : 0); } } /** * @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 v5.0.0) (utils/math/SignedMath.sol) pragma solidity ^0.8.20; /** * @dev Standard signed math utilities missing in the Solidity language. */ library SignedMath { /** * @dev Returns the largest of two signed numbers. */ function max(int256 a, int256 b) internal pure returns (int256) { return a > b ? a : b; } /** * @dev Returns the smallest of two signed numbers. */ function min(int256 a, int256 b) internal pure returns (int256) { return a < b ? a : b; } /** * @dev Returns the average of two signed numbers without overflow. * The result is rounded towards zero. */ function average(int256 a, int256 b) internal pure returns (int256) { // Formula from the book "Hacker's Delight" int256 x = (a & b) + ((a ^ b) >> 1); return x + (int256(uint256(x) >> 255) & (a ^ b)); } /** * @dev Returns the absolute unsigned value of a signed value. */ function abs(int256 n) internal pure returns (uint256) { unchecked { // must be unchecked in order to support `n = type(int256).min` return uint256(n >= 0 ? n : -n); } } }
// SPDX-License-Identifier: MIT pragma solidity ^0.8.13; type CalldataPointer is uint256; type ReturndataPointer is uint256; type MemoryPointer is uint256; using CalldataPointerLib for CalldataPointer global; using MemoryPointerLib for MemoryPointer global; using ReturndataPointerLib for ReturndataPointer global; using CalldataReaders for CalldataPointer global; using ReturndataReaders for ReturndataPointer global; using MemoryReaders for MemoryPointer global; using MemoryWriters for MemoryPointer global; CalldataPointer constant CalldataStart = CalldataPointer.wrap(0x04); MemoryPointer constant FreeMemoryPPtr = MemoryPointer.wrap(0x40); MemoryPointer constant ZeroSlotPtr = MemoryPointer.wrap(0x60); uint256 constant IdentityPrecompileAddress = 0x4; uint256 constant OffsetOrLengthMask = 0xffffffff; uint256 constant _OneWord = 0x20; uint256 constant _FreeMemoryPointerSlot = 0x40; /// @dev Allocates `size` bytes in memory by increasing the free memory pointer /// and returns the memory pointer to the first byte of the allocated region. // (Free functions cannot have visibility.) // solhint-disable-next-line func-visibility function malloc(uint256 size) pure returns (MemoryPointer mPtr) { assembly { mPtr := mload(_FreeMemoryPointerSlot) mstore(_FreeMemoryPointerSlot, add(mPtr, size)) } } // (Free functions cannot have visibility.) // solhint-disable-next-line func-visibility function getFreeMemoryPointer() pure returns (MemoryPointer mPtr) { mPtr = FreeMemoryPPtr.readMemoryPointer(); } // (Free functions cannot have visibility.) // solhint-disable-next-line func-visibility function setFreeMemoryPointer(MemoryPointer mPtr) pure { FreeMemoryPPtr.write(mPtr); } library CalldataPointerLib { function lt( CalldataPointer a, CalldataPointer b ) internal pure returns (bool c) { assembly { c := lt(a, b) } } function gt( CalldataPointer a, CalldataPointer b ) internal pure returns (bool c) { assembly { c := gt(a, b) } } function eq( CalldataPointer a, CalldataPointer b ) internal pure returns (bool c) { assembly { c := eq(a, b) } } function isNull(CalldataPointer a) internal pure returns (bool b) { assembly { b := iszero(a) } } /// @dev Resolves an offset stored at `cdPtr + headOffset` to a calldata. /// pointer `cdPtr` must point to some parent object with a dynamic /// type's head stored at `cdPtr + headOffset`. function pptrOffset( CalldataPointer cdPtr, uint256 headOffset ) internal pure returns (CalldataPointer cdPtrChild) { cdPtrChild = cdPtr.offset( cdPtr.offset(headOffset).readUint256() & OffsetOrLengthMask ); } /// @dev Resolves an offset stored at `cdPtr` to a calldata pointer. /// `cdPtr` must point to some parent object with a dynamic type as its /// first member, e.g. `struct { bytes data; }` function pptr( CalldataPointer cdPtr ) internal pure returns (CalldataPointer cdPtrChild) { cdPtrChild = cdPtr.offset(cdPtr.readUint256() & OffsetOrLengthMask); } /// @dev Returns the calldata pointer one word after `cdPtr`. function next( CalldataPointer cdPtr ) internal pure returns (CalldataPointer cdPtrNext) { assembly { cdPtrNext := add(cdPtr, _OneWord) } } /// @dev Returns the calldata pointer `_offset` bytes after `cdPtr`. function offset( CalldataPointer cdPtr, uint256 _offset ) internal pure returns (CalldataPointer cdPtrNext) { assembly { cdPtrNext := add(cdPtr, _offset) } } /// @dev Copies `size` bytes from calldata starting at `src` to memory at /// `dst`. function copy( CalldataPointer src, MemoryPointer dst, uint256 size ) internal pure { assembly { calldatacopy(dst, src, size) } } } library ReturndataPointerLib { function lt( ReturndataPointer a, ReturndataPointer b ) internal pure returns (bool c) { assembly { c := lt(a, b) } } function gt( ReturndataPointer a, ReturndataPointer b ) internal pure returns (bool c) { assembly { c := gt(a, b) } } function eq( ReturndataPointer a, ReturndataPointer b ) internal pure returns (bool c) { assembly { c := eq(a, b) } } function isNull(ReturndataPointer a) internal pure returns (bool b) { assembly { b := iszero(a) } } /// @dev Resolves an offset stored at `rdPtr + headOffset` to a returndata /// pointer. `rdPtr` must point to some parent object with a dynamic /// type's head stored at `rdPtr + headOffset`. function pptrOffset( ReturndataPointer rdPtr, uint256 headOffset ) internal pure returns (ReturndataPointer rdPtrChild) { rdPtrChild = rdPtr.offset( rdPtr.offset(headOffset).readUint256() & OffsetOrLengthMask ); } /// @dev Resolves an offset stored at `rdPtr` to a returndata pointer. /// `rdPtr` must point to some parent object with a dynamic type as its /// first member, e.g. `struct { bytes data; }` function pptr( ReturndataPointer rdPtr ) internal pure returns (ReturndataPointer rdPtrChild) { rdPtrChild = rdPtr.offset(rdPtr.readUint256() & OffsetOrLengthMask); } /// @dev Returns the returndata pointer one word after `cdPtr`. function next( ReturndataPointer rdPtr ) internal pure returns (ReturndataPointer rdPtrNext) { assembly { rdPtrNext := add(rdPtr, _OneWord) } } /// @dev Returns the returndata pointer `_offset` bytes after `cdPtr`. function offset( ReturndataPointer rdPtr, uint256 _offset ) internal pure returns (ReturndataPointer rdPtrNext) { assembly { rdPtrNext := add(rdPtr, _offset) } } /// @dev Copies `size` bytes from returndata starting at `src` to memory at /// `dst`. function copy( ReturndataPointer src, MemoryPointer dst, uint256 size ) internal pure { assembly { returndatacopy(dst, src, size) } } } library MemoryPointerLib { function copy( MemoryPointer src, MemoryPointer dst, uint256 size ) internal view { assembly { let success := staticcall( gas(), IdentityPrecompileAddress, src, size, dst, size ) if or(iszero(returndatasize()), iszero(success)) { revert(0, 0) } } } function lt( MemoryPointer a, MemoryPointer b ) internal pure returns (bool c) { assembly { c := lt(a, b) } } function gt( MemoryPointer a, MemoryPointer b ) internal pure returns (bool c) { assembly { c := gt(a, b) } } function eq( MemoryPointer a, MemoryPointer b ) internal pure returns (bool c) { assembly { c := eq(a, b) } } function isNull(MemoryPointer a) internal pure returns (bool b) { assembly { b := iszero(a) } } function hash( MemoryPointer ptr, uint256 length ) internal pure returns (bytes32 _hash) { assembly { _hash := keccak256(ptr, length) } } /// @dev Returns the memory pointer one word after `mPtr`. function next( MemoryPointer mPtr ) internal pure returns (MemoryPointer mPtrNext) { assembly { mPtrNext := add(mPtr, _OneWord) } } /// @dev Returns the memory pointer `_offset` bytes after `mPtr`. function offset( MemoryPointer mPtr, uint256 _offset ) internal pure returns (MemoryPointer mPtrNext) { assembly { mPtrNext := add(mPtr, _offset) } } /// @dev Resolves a pointer at `mPtr + headOffset` to a memory /// pointer. `mPtr` must point to some parent object with a dynamic /// type's pointer stored at `mPtr + headOffset`. function pptrOffset( MemoryPointer mPtr, uint256 headOffset ) internal pure returns (MemoryPointer mPtrChild) { mPtrChild = mPtr.offset(headOffset).readMemoryPointer(); } /// @dev Resolves a pointer stored at `mPtr` to a memory pointer. /// `mPtr` must point to some parent object with a dynamic type as its /// first member, e.g. `struct { bytes data; }` function pptr( MemoryPointer mPtr ) internal pure returns (MemoryPointer mPtrChild) { mPtrChild = mPtr.readMemoryPointer(); } } library CalldataReaders { /// @dev Reads the value at `cdPtr` and applies a mask to return only the /// last 4 bytes. function readMaskedUint256( CalldataPointer cdPtr ) internal pure returns (uint256 value) { value = cdPtr.readUint256() & OffsetOrLengthMask; } /// @dev Reads the bool at `cdPtr` in calldata. function readBool( CalldataPointer cdPtr ) internal pure returns (bool value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the address at `cdPtr` in calldata. function readAddress( CalldataPointer cdPtr ) internal pure returns (address value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes1 at `cdPtr` in calldata. function readBytes1( CalldataPointer cdPtr ) internal pure returns (bytes1 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes2 at `cdPtr` in calldata. function readBytes2( CalldataPointer cdPtr ) internal pure returns (bytes2 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes3 at `cdPtr` in calldata. function readBytes3( CalldataPointer cdPtr ) internal pure returns (bytes3 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes4 at `cdPtr` in calldata. function readBytes4( CalldataPointer cdPtr ) internal pure returns (bytes4 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes5 at `cdPtr` in calldata. function readBytes5( CalldataPointer cdPtr ) internal pure returns (bytes5 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes6 at `cdPtr` in calldata. function readBytes6( CalldataPointer cdPtr ) internal pure returns (bytes6 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes7 at `cdPtr` in calldata. function readBytes7( CalldataPointer cdPtr ) internal pure returns (bytes7 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes8 at `cdPtr` in calldata. function readBytes8( CalldataPointer cdPtr ) internal pure returns (bytes8 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes9 at `cdPtr` in calldata. function readBytes9( CalldataPointer cdPtr ) internal pure returns (bytes9 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes10 at `cdPtr` in calldata. function readBytes10( CalldataPointer cdPtr ) internal pure returns (bytes10 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes11 at `cdPtr` in calldata. function readBytes11( CalldataPointer cdPtr ) internal pure returns (bytes11 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes12 at `cdPtr` in calldata. function readBytes12( CalldataPointer cdPtr ) internal pure returns (bytes12 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes13 at `cdPtr` in calldata. function readBytes13( CalldataPointer cdPtr ) internal pure returns (bytes13 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes14 at `cdPtr` in calldata. function readBytes14( CalldataPointer cdPtr ) internal pure returns (bytes14 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes15 at `cdPtr` in calldata. function readBytes15( CalldataPointer cdPtr ) internal pure returns (bytes15 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes16 at `cdPtr` in calldata. function readBytes16( CalldataPointer cdPtr ) internal pure returns (bytes16 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes17 at `cdPtr` in calldata. function readBytes17( CalldataPointer cdPtr ) internal pure returns (bytes17 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes18 at `cdPtr` in calldata. function readBytes18( CalldataPointer cdPtr ) internal pure returns (bytes18 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes19 at `cdPtr` in calldata. function readBytes19( CalldataPointer cdPtr ) internal pure returns (bytes19 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes20 at `cdPtr` in calldata. function readBytes20( CalldataPointer cdPtr ) internal pure returns (bytes20 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes21 at `cdPtr` in calldata. function readBytes21( CalldataPointer cdPtr ) internal pure returns (bytes21 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes22 at `cdPtr` in calldata. function readBytes22( CalldataPointer cdPtr ) internal pure returns (bytes22 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes23 at `cdPtr` in calldata. function readBytes23( CalldataPointer cdPtr ) internal pure returns (bytes23 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes24 at `cdPtr` in calldata. function readBytes24( CalldataPointer cdPtr ) internal pure returns (bytes24 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes25 at `cdPtr` in calldata. function readBytes25( CalldataPointer cdPtr ) internal pure returns (bytes25 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes26 at `cdPtr` in calldata. function readBytes26( CalldataPointer cdPtr ) internal pure returns (bytes26 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes27 at `cdPtr` in calldata. function readBytes27( CalldataPointer cdPtr ) internal pure returns (bytes27 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes28 at `cdPtr` in calldata. function readBytes28( CalldataPointer cdPtr ) internal pure returns (bytes28 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes29 at `cdPtr` in calldata. function readBytes29( CalldataPointer cdPtr ) internal pure returns (bytes29 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes30 at `cdPtr` in calldata. function readBytes30( CalldataPointer cdPtr ) internal pure returns (bytes30 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes31 at `cdPtr` in calldata. function readBytes31( CalldataPointer cdPtr ) internal pure returns (bytes31 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the bytes32 at `cdPtr` in calldata. function readBytes32( CalldataPointer cdPtr ) internal pure returns (bytes32 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint8 at `cdPtr` in calldata. function readUint8( CalldataPointer cdPtr ) internal pure returns (uint8 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint16 at `cdPtr` in calldata. function readUint16( CalldataPointer cdPtr ) internal pure returns (uint16 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint24 at `cdPtr` in calldata. function readUint24( CalldataPointer cdPtr ) internal pure returns (uint24 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint32 at `cdPtr` in calldata. function readUint32( CalldataPointer cdPtr ) internal pure returns (uint32 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint40 at `cdPtr` in calldata. function readUint40( CalldataPointer cdPtr ) internal pure returns (uint40 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint48 at `cdPtr` in calldata. function readUint48( CalldataPointer cdPtr ) internal pure returns (uint48 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint56 at `cdPtr` in calldata. function readUint56( CalldataPointer cdPtr ) internal pure returns (uint56 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint64 at `cdPtr` in calldata. function readUint64( CalldataPointer cdPtr ) internal pure returns (uint64 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint72 at `cdPtr` in calldata. function readUint72( CalldataPointer cdPtr ) internal pure returns (uint72 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint80 at `cdPtr` in calldata. function readUint80( CalldataPointer cdPtr ) internal pure returns (uint80 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint88 at `cdPtr` in calldata. function readUint88( CalldataPointer cdPtr ) internal pure returns (uint88 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint96 at `cdPtr` in calldata. function readUint96( CalldataPointer cdPtr ) internal pure returns (uint96 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint104 at `cdPtr` in calldata. function readUint104( CalldataPointer cdPtr ) internal pure returns (uint104 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint112 at `cdPtr` in calldata. function readUint112( CalldataPointer cdPtr ) internal pure returns (uint112 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint120 at `cdPtr` in calldata. function readUint120( CalldataPointer cdPtr ) internal pure returns (uint120 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint128 at `cdPtr` in calldata. function readUint128( CalldataPointer cdPtr ) internal pure returns (uint128 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint136 at `cdPtr` in calldata. function readUint136( CalldataPointer cdPtr ) internal pure returns (uint136 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint144 at `cdPtr` in calldata. function readUint144( CalldataPointer cdPtr ) internal pure returns (uint144 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint152 at `cdPtr` in calldata. function readUint152( CalldataPointer cdPtr ) internal pure returns (uint152 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint160 at `cdPtr` in calldata. function readUint160( CalldataPointer cdPtr ) internal pure returns (uint160 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint168 at `cdPtr` in calldata. function readUint168( CalldataPointer cdPtr ) internal pure returns (uint168 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint176 at `cdPtr` in calldata. function readUint176( CalldataPointer cdPtr ) internal pure returns (uint176 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint184 at `cdPtr` in calldata. function readUint184( CalldataPointer cdPtr ) internal pure returns (uint184 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint192 at `cdPtr` in calldata. function readUint192( CalldataPointer cdPtr ) internal pure returns (uint192 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint200 at `cdPtr` in calldata. function readUint200( CalldataPointer cdPtr ) internal pure returns (uint200 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint208 at `cdPtr` in calldata. function readUint208( CalldataPointer cdPtr ) internal pure returns (uint208 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint216 at `cdPtr` in calldata. function readUint216( CalldataPointer cdPtr ) internal pure returns (uint216 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint224 at `cdPtr` in calldata. function readUint224( CalldataPointer cdPtr ) internal pure returns (uint224 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint232 at `cdPtr` in calldata. function readUint232( CalldataPointer cdPtr ) internal pure returns (uint232 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint240 at `cdPtr` in calldata. function readUint240( CalldataPointer cdPtr ) internal pure returns (uint240 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint248 at `cdPtr` in calldata. function readUint248( CalldataPointer cdPtr ) internal pure returns (uint248 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the uint256 at `cdPtr` in calldata. function readUint256( CalldataPointer cdPtr ) internal pure returns (uint256 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int8 at `cdPtr` in calldata. function readInt8( CalldataPointer cdPtr ) internal pure returns (int8 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int16 at `cdPtr` in calldata. function readInt16( CalldataPointer cdPtr ) internal pure returns (int16 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int24 at `cdPtr` in calldata. function readInt24( CalldataPointer cdPtr ) internal pure returns (int24 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int32 at `cdPtr` in calldata. function readInt32( CalldataPointer cdPtr ) internal pure returns (int32 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int40 at `cdPtr` in calldata. function readInt40( CalldataPointer cdPtr ) internal pure returns (int40 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int48 at `cdPtr` in calldata. function readInt48( CalldataPointer cdPtr ) internal pure returns (int48 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int56 at `cdPtr` in calldata. function readInt56( CalldataPointer cdPtr ) internal pure returns (int56 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int64 at `cdPtr` in calldata. function readInt64( CalldataPointer cdPtr ) internal pure returns (int64 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int72 at `cdPtr` in calldata. function readInt72( CalldataPointer cdPtr ) internal pure returns (int72 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int80 at `cdPtr` in calldata. function readInt80( CalldataPointer cdPtr ) internal pure returns (int80 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int88 at `cdPtr` in calldata. function readInt88( CalldataPointer cdPtr ) internal pure returns (int88 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int96 at `cdPtr` in calldata. function readInt96( CalldataPointer cdPtr ) internal pure returns (int96 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int104 at `cdPtr` in calldata. function readInt104( CalldataPointer cdPtr ) internal pure returns (int104 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int112 at `cdPtr` in calldata. function readInt112( CalldataPointer cdPtr ) internal pure returns (int112 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int120 at `cdPtr` in calldata. function readInt120( CalldataPointer cdPtr ) internal pure returns (int120 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int128 at `cdPtr` in calldata. function readInt128( CalldataPointer cdPtr ) internal pure returns (int128 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int136 at `cdPtr` in calldata. function readInt136( CalldataPointer cdPtr ) internal pure returns (int136 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int144 at `cdPtr` in calldata. function readInt144( CalldataPointer cdPtr ) internal pure returns (int144 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int152 at `cdPtr` in calldata. function readInt152( CalldataPointer cdPtr ) internal pure returns (int152 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int160 at `cdPtr` in calldata. function readInt160( CalldataPointer cdPtr ) internal pure returns (int160 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int168 at `cdPtr` in calldata. function readInt168( CalldataPointer cdPtr ) internal pure returns (int168 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int176 at `cdPtr` in calldata. function readInt176( CalldataPointer cdPtr ) internal pure returns (int176 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int184 at `cdPtr` in calldata. function readInt184( CalldataPointer cdPtr ) internal pure returns (int184 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int192 at `cdPtr` in calldata. function readInt192( CalldataPointer cdPtr ) internal pure returns (int192 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int200 at `cdPtr` in calldata. function readInt200( CalldataPointer cdPtr ) internal pure returns (int200 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int208 at `cdPtr` in calldata. function readInt208( CalldataPointer cdPtr ) internal pure returns (int208 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int216 at `cdPtr` in calldata. function readInt216( CalldataPointer cdPtr ) internal pure returns (int216 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int224 at `cdPtr` in calldata. function readInt224( CalldataPointer cdPtr ) internal pure returns (int224 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int232 at `cdPtr` in calldata. function readInt232( CalldataPointer cdPtr ) internal pure returns (int232 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int240 at `cdPtr` in calldata. function readInt240( CalldataPointer cdPtr ) internal pure returns (int240 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int248 at `cdPtr` in calldata. function readInt248( CalldataPointer cdPtr ) internal pure returns (int248 value) { assembly { value := calldataload(cdPtr) } } /// @dev Reads the int256 at `cdPtr` in calldata. function readInt256( CalldataPointer cdPtr ) internal pure returns (int256 value) { assembly { value := calldataload(cdPtr) } } } library ReturndataReaders { /// @dev Reads value at `rdPtr` & applies a mask to return only last 4 bytes function readMaskedUint256( ReturndataPointer rdPtr ) internal pure returns (uint256 value) { value = rdPtr.readUint256() & OffsetOrLengthMask; } /// @dev Reads the bool at `rdPtr` in returndata. function readBool( ReturndataPointer rdPtr ) internal pure returns (bool value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the address at `rdPtr` in returndata. function readAddress( ReturndataPointer rdPtr ) internal pure returns (address value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes1 at `rdPtr` in returndata. function readBytes1( ReturndataPointer rdPtr ) internal pure returns (bytes1 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes2 at `rdPtr` in returndata. function readBytes2( ReturndataPointer rdPtr ) internal pure returns (bytes2 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes3 at `rdPtr` in returndata. function readBytes3( ReturndataPointer rdPtr ) internal pure returns (bytes3 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes4 at `rdPtr` in returndata. function readBytes4( ReturndataPointer rdPtr ) internal pure returns (bytes4 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes5 at `rdPtr` in returndata. function readBytes5( ReturndataPointer rdPtr ) internal pure returns (bytes5 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes6 at `rdPtr` in returndata. function readBytes6( ReturndataPointer rdPtr ) internal pure returns (bytes6 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes7 at `rdPtr` in returndata. function readBytes7( ReturndataPointer rdPtr ) internal pure returns (bytes7 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes8 at `rdPtr` in returndata. function readBytes8( ReturndataPointer rdPtr ) internal pure returns (bytes8 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes9 at `rdPtr` in returndata. function readBytes9( ReturndataPointer rdPtr ) internal pure returns (bytes9 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes10 at `rdPtr` in returndata. function readBytes10( ReturndataPointer rdPtr ) internal pure returns (bytes10 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes11 at `rdPtr` in returndata. function readBytes11( ReturndataPointer rdPtr ) internal pure returns (bytes11 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes12 at `rdPtr` in returndata. function readBytes12( ReturndataPointer rdPtr ) internal pure returns (bytes12 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes13 at `rdPtr` in returndata. function readBytes13( ReturndataPointer rdPtr ) internal pure returns (bytes13 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes14 at `rdPtr` in returndata. function readBytes14( ReturndataPointer rdPtr ) internal pure returns (bytes14 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes15 at `rdPtr` in returndata. function readBytes15( ReturndataPointer rdPtr ) internal pure returns (bytes15 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes16 at `rdPtr` in returndata. function readBytes16( ReturndataPointer rdPtr ) internal pure returns (bytes16 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes17 at `rdPtr` in returndata. function readBytes17( ReturndataPointer rdPtr ) internal pure returns (bytes17 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes18 at `rdPtr` in returndata. function readBytes18( ReturndataPointer rdPtr ) internal pure returns (bytes18 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes19 at `rdPtr` in returndata. function readBytes19( ReturndataPointer rdPtr ) internal pure returns (bytes19 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes20 at `rdPtr` in returndata. function readBytes20( ReturndataPointer rdPtr ) internal pure returns (bytes20 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes21 at `rdPtr` in returndata. function readBytes21( ReturndataPointer rdPtr ) internal pure returns (bytes21 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes22 at `rdPtr` in returndata. function readBytes22( ReturndataPointer rdPtr ) internal pure returns (bytes22 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes23 at `rdPtr` in returndata. function readBytes23( ReturndataPointer rdPtr ) internal pure returns (bytes23 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes24 at `rdPtr` in returndata. function readBytes24( ReturndataPointer rdPtr ) internal pure returns (bytes24 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes25 at `rdPtr` in returndata. function readBytes25( ReturndataPointer rdPtr ) internal pure returns (bytes25 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes26 at `rdPtr` in returndata. function readBytes26( ReturndataPointer rdPtr ) internal pure returns (bytes26 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes27 at `rdPtr` in returndata. function readBytes27( ReturndataPointer rdPtr ) internal pure returns (bytes27 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes28 at `rdPtr` in returndata. function readBytes28( ReturndataPointer rdPtr ) internal pure returns (bytes28 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes29 at `rdPtr` in returndata. function readBytes29( ReturndataPointer rdPtr ) internal pure returns (bytes29 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes30 at `rdPtr` in returndata. function readBytes30( ReturndataPointer rdPtr ) internal pure returns (bytes30 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes31 at `rdPtr` in returndata. function readBytes31( ReturndataPointer rdPtr ) internal pure returns (bytes31 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the bytes32 at `rdPtr` in returndata. function readBytes32( ReturndataPointer rdPtr ) internal pure returns (bytes32 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint8 at `rdPtr` in returndata. function readUint8( ReturndataPointer rdPtr ) internal pure returns (uint8 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint16 at `rdPtr` in returndata. function readUint16( ReturndataPointer rdPtr ) internal pure returns (uint16 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint24 at `rdPtr` in returndata. function readUint24( ReturndataPointer rdPtr ) internal pure returns (uint24 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint32 at `rdPtr` in returndata. function readUint32( ReturndataPointer rdPtr ) internal pure returns (uint32 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint40 at `rdPtr` in returndata. function readUint40( ReturndataPointer rdPtr ) internal pure returns (uint40 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint48 at `rdPtr` in returndata. function readUint48( ReturndataPointer rdPtr ) internal pure returns (uint48 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint56 at `rdPtr` in returndata. function readUint56( ReturndataPointer rdPtr ) internal pure returns (uint56 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint64 at `rdPtr` in returndata. function readUint64( ReturndataPointer rdPtr ) internal pure returns (uint64 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint72 at `rdPtr` in returndata. function readUint72( ReturndataPointer rdPtr ) internal pure returns (uint72 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint80 at `rdPtr` in returndata. function readUint80( ReturndataPointer rdPtr ) internal pure returns (uint80 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint88 at `rdPtr` in returndata. function readUint88( ReturndataPointer rdPtr ) internal pure returns (uint88 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint96 at `rdPtr` in returndata. function readUint96( ReturndataPointer rdPtr ) internal pure returns (uint96 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint104 at `rdPtr` in returndata. function readUint104( ReturndataPointer rdPtr ) internal pure returns (uint104 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint112 at `rdPtr` in returndata. function readUint112( ReturndataPointer rdPtr ) internal pure returns (uint112 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint120 at `rdPtr` in returndata. function readUint120( ReturndataPointer rdPtr ) internal pure returns (uint120 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint128 at `rdPtr` in returndata. function readUint128( ReturndataPointer rdPtr ) internal pure returns (uint128 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint136 at `rdPtr` in returndata. function readUint136( ReturndataPointer rdPtr ) internal pure returns (uint136 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint144 at `rdPtr` in returndata. function readUint144( ReturndataPointer rdPtr ) internal pure returns (uint144 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint152 at `rdPtr` in returndata. function readUint152( ReturndataPointer rdPtr ) internal pure returns (uint152 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint160 at `rdPtr` in returndata. function readUint160( ReturndataPointer rdPtr ) internal pure returns (uint160 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint168 at `rdPtr` in returndata. function readUint168( ReturndataPointer rdPtr ) internal pure returns (uint168 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint176 at `rdPtr` in returndata. function readUint176( ReturndataPointer rdPtr ) internal pure returns (uint176 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint184 at `rdPtr` in returndata. function readUint184( ReturndataPointer rdPtr ) internal pure returns (uint184 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint192 at `rdPtr` in returndata. function readUint192( ReturndataPointer rdPtr ) internal pure returns (uint192 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint200 at `rdPtr` in returndata. function readUint200( ReturndataPointer rdPtr ) internal pure returns (uint200 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint208 at `rdPtr` in returndata. function readUint208( ReturndataPointer rdPtr ) internal pure returns (uint208 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint216 at `rdPtr` in returndata. function readUint216( ReturndataPointer rdPtr ) internal pure returns (uint216 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint224 at `rdPtr` in returndata. function readUint224( ReturndataPointer rdPtr ) internal pure returns (uint224 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint232 at `rdPtr` in returndata. function readUint232( ReturndataPointer rdPtr ) internal pure returns (uint232 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint240 at `rdPtr` in returndata. function readUint240( ReturndataPointer rdPtr ) internal pure returns (uint240 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint248 at `rdPtr` in returndata. function readUint248( ReturndataPointer rdPtr ) internal pure returns (uint248 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the uint256 at `rdPtr` in returndata. function readUint256( ReturndataPointer rdPtr ) internal pure returns (uint256 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int8 at `rdPtr` in returndata. function readInt8( ReturndataPointer rdPtr ) internal pure returns (int8 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int16 at `rdPtr` in returndata. function readInt16( ReturndataPointer rdPtr ) internal pure returns (int16 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int24 at `rdPtr` in returndata. function readInt24( ReturndataPointer rdPtr ) internal pure returns (int24 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int32 at `rdPtr` in returndata. function readInt32( ReturndataPointer rdPtr ) internal pure returns (int32 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int40 at `rdPtr` in returndata. function readInt40( ReturndataPointer rdPtr ) internal pure returns (int40 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int48 at `rdPtr` in returndata. function readInt48( ReturndataPointer rdPtr ) internal pure returns (int48 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int56 at `rdPtr` in returndata. function readInt56( ReturndataPointer rdPtr ) internal pure returns (int56 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int64 at `rdPtr` in returndata. function readInt64( ReturndataPointer rdPtr ) internal pure returns (int64 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int72 at `rdPtr` in returndata. function readInt72( ReturndataPointer rdPtr ) internal pure returns (int72 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int80 at `rdPtr` in returndata. function readInt80( ReturndataPointer rdPtr ) internal pure returns (int80 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int88 at `rdPtr` in returndata. function readInt88( ReturndataPointer rdPtr ) internal pure returns (int88 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int96 at `rdPtr` in returndata. function readInt96( ReturndataPointer rdPtr ) internal pure returns (int96 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int104 at `rdPtr` in returndata. function readInt104( ReturndataPointer rdPtr ) internal pure returns (int104 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int112 at `rdPtr` in returndata. function readInt112( ReturndataPointer rdPtr ) internal pure returns (int112 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int120 at `rdPtr` in returndata. function readInt120( ReturndataPointer rdPtr ) internal pure returns (int120 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int128 at `rdPtr` in returndata. function readInt128( ReturndataPointer rdPtr ) internal pure returns (int128 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int136 at `rdPtr` in returndata. function readInt136( ReturndataPointer rdPtr ) internal pure returns (int136 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int144 at `rdPtr` in returndata. function readInt144( ReturndataPointer rdPtr ) internal pure returns (int144 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int152 at `rdPtr` in returndata. function readInt152( ReturndataPointer rdPtr ) internal pure returns (int152 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int160 at `rdPtr` in returndata. function readInt160( ReturndataPointer rdPtr ) internal pure returns (int160 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int168 at `rdPtr` in returndata. function readInt168( ReturndataPointer rdPtr ) internal pure returns (int168 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int176 at `rdPtr` in returndata. function readInt176( ReturndataPointer rdPtr ) internal pure returns (int176 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int184 at `rdPtr` in returndata. function readInt184( ReturndataPointer rdPtr ) internal pure returns (int184 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int192 at `rdPtr` in returndata. function readInt192( ReturndataPointer rdPtr ) internal pure returns (int192 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int200 at `rdPtr` in returndata. function readInt200( ReturndataPointer rdPtr ) internal pure returns (int200 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int208 at `rdPtr` in returndata. function readInt208( ReturndataPointer rdPtr ) internal pure returns (int208 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int216 at `rdPtr` in returndata. function readInt216( ReturndataPointer rdPtr ) internal pure returns (int216 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int224 at `rdPtr` in returndata. function readInt224( ReturndataPointer rdPtr ) internal pure returns (int224 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int232 at `rdPtr` in returndata. function readInt232( ReturndataPointer rdPtr ) internal pure returns (int232 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int240 at `rdPtr` in returndata. function readInt240( ReturndataPointer rdPtr ) internal pure returns (int240 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int248 at `rdPtr` in returndata. function readInt248( ReturndataPointer rdPtr ) internal pure returns (int248 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } /// @dev Reads the int256 at `rdPtr` in returndata. function readInt256( ReturndataPointer rdPtr ) internal pure returns (int256 value) { assembly { returndatacopy(0, rdPtr, _OneWord) value := mload(0) } } } library MemoryReaders { /// @dev Reads the memory pointer at `mPtr` in memory. function readMemoryPointer( MemoryPointer mPtr ) internal pure returns (MemoryPointer value) { assembly { value := mload(mPtr) } } /// @dev Reads value at `mPtr` & applies a mask to return only last 4 bytes function readMaskedUint256( MemoryPointer mPtr ) internal pure returns (uint256 value) { value = mPtr.readUint256() & OffsetOrLengthMask; } /// @dev Reads the bool at `mPtr` in memory. function readBool(MemoryPointer mPtr) internal pure returns (bool value) { assembly { value := mload(mPtr) } } /// @dev Reads the address at `mPtr` in memory. function readAddress( MemoryPointer mPtr ) internal pure returns (address value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes1 at `mPtr` in memory. function readBytes1( MemoryPointer mPtr ) internal pure returns (bytes1 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes2 at `mPtr` in memory. function readBytes2( MemoryPointer mPtr ) internal pure returns (bytes2 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes3 at `mPtr` in memory. function readBytes3( MemoryPointer mPtr ) internal pure returns (bytes3 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes4 at `mPtr` in memory. function readBytes4( MemoryPointer mPtr ) internal pure returns (bytes4 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes5 at `mPtr` in memory. function readBytes5( MemoryPointer mPtr ) internal pure returns (bytes5 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes6 at `mPtr` in memory. function readBytes6( MemoryPointer mPtr ) internal pure returns (bytes6 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes7 at `mPtr` in memory. function readBytes7( MemoryPointer mPtr ) internal pure returns (bytes7 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes8 at `mPtr` in memory. function readBytes8( MemoryPointer mPtr ) internal pure returns (bytes8 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes9 at `mPtr` in memory. function readBytes9( MemoryPointer mPtr ) internal pure returns (bytes9 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes10 at `mPtr` in memory. function readBytes10( MemoryPointer mPtr ) internal pure returns (bytes10 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes11 at `mPtr` in memory. function readBytes11( MemoryPointer mPtr ) internal pure returns (bytes11 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes12 at `mPtr` in memory. function readBytes12( MemoryPointer mPtr ) internal pure returns (bytes12 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes13 at `mPtr` in memory. function readBytes13( MemoryPointer mPtr ) internal pure returns (bytes13 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes14 at `mPtr` in memory. function readBytes14( MemoryPointer mPtr ) internal pure returns (bytes14 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes15 at `mPtr` in memory. function readBytes15( MemoryPointer mPtr ) internal pure returns (bytes15 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes16 at `mPtr` in memory. function readBytes16( MemoryPointer mPtr ) internal pure returns (bytes16 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes17 at `mPtr` in memory. function readBytes17( MemoryPointer mPtr ) internal pure returns (bytes17 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes18 at `mPtr` in memory. function readBytes18( MemoryPointer mPtr ) internal pure returns (bytes18 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes19 at `mPtr` in memory. function readBytes19( MemoryPointer mPtr ) internal pure returns (bytes19 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes20 at `mPtr` in memory. function readBytes20( MemoryPointer mPtr ) internal pure returns (bytes20 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes21 at `mPtr` in memory. function readBytes21( MemoryPointer mPtr ) internal pure returns (bytes21 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes22 at `mPtr` in memory. function readBytes22( MemoryPointer mPtr ) internal pure returns (bytes22 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes23 at `mPtr` in memory. function readBytes23( MemoryPointer mPtr ) internal pure returns (bytes23 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes24 at `mPtr` in memory. function readBytes24( MemoryPointer mPtr ) internal pure returns (bytes24 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes25 at `mPtr` in memory. function readBytes25( MemoryPointer mPtr ) internal pure returns (bytes25 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes26 at `mPtr` in memory. function readBytes26( MemoryPointer mPtr ) internal pure returns (bytes26 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes27 at `mPtr` in memory. function readBytes27( MemoryPointer mPtr ) internal pure returns (bytes27 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes28 at `mPtr` in memory. function readBytes28( MemoryPointer mPtr ) internal pure returns (bytes28 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes29 at `mPtr` in memory. function readBytes29( MemoryPointer mPtr ) internal pure returns (bytes29 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes30 at `mPtr` in memory. function readBytes30( MemoryPointer mPtr ) internal pure returns (bytes30 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes31 at `mPtr` in memory. function readBytes31( MemoryPointer mPtr ) internal pure returns (bytes31 value) { assembly { value := mload(mPtr) } } /// @dev Reads the bytes32 at `mPtr` in memory. function readBytes32( MemoryPointer mPtr ) internal pure returns (bytes32 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint8 at `mPtr` in memory. function readUint8(MemoryPointer mPtr) internal pure returns (uint8 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint16 at `mPtr` in memory. function readUint16( MemoryPointer mPtr ) internal pure returns (uint16 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint24 at `mPtr` in memory. function readUint24( MemoryPointer mPtr ) internal pure returns (uint24 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint32 at `mPtr` in memory. function readUint32( MemoryPointer mPtr ) internal pure returns (uint32 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint40 at `mPtr` in memory. function readUint40( MemoryPointer mPtr ) internal pure returns (uint40 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint48 at `mPtr` in memory. function readUint48( MemoryPointer mPtr ) internal pure returns (uint48 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint56 at `mPtr` in memory. function readUint56( MemoryPointer mPtr ) internal pure returns (uint56 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint64 at `mPtr` in memory. function readUint64( MemoryPointer mPtr ) internal pure returns (uint64 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint72 at `mPtr` in memory. function readUint72( MemoryPointer mPtr ) internal pure returns (uint72 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint80 at `mPtr` in memory. function readUint80( MemoryPointer mPtr ) internal pure returns (uint80 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint88 at `mPtr` in memory. function readUint88( MemoryPointer mPtr ) internal pure returns (uint88 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint96 at `mPtr` in memory. function readUint96( MemoryPointer mPtr ) internal pure returns (uint96 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint104 at `mPtr` in memory. function readUint104( MemoryPointer mPtr ) internal pure returns (uint104 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint112 at `mPtr` in memory. function readUint112( MemoryPointer mPtr ) internal pure returns (uint112 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint120 at `mPtr` in memory. function readUint120( MemoryPointer mPtr ) internal pure returns (uint120 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint128 at `mPtr` in memory. function readUint128( MemoryPointer mPtr ) internal pure returns (uint128 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint136 at `mPtr` in memory. function readUint136( MemoryPointer mPtr ) internal pure returns (uint136 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint144 at `mPtr` in memory. function readUint144( MemoryPointer mPtr ) internal pure returns (uint144 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint152 at `mPtr` in memory. function readUint152( MemoryPointer mPtr ) internal pure returns (uint152 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint160 at `mPtr` in memory. function readUint160( MemoryPointer mPtr ) internal pure returns (uint160 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint168 at `mPtr` in memory. function readUint168( MemoryPointer mPtr ) internal pure returns (uint168 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint176 at `mPtr` in memory. function readUint176( MemoryPointer mPtr ) internal pure returns (uint176 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint184 at `mPtr` in memory. function readUint184( MemoryPointer mPtr ) internal pure returns (uint184 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint192 at `mPtr` in memory. function readUint192( MemoryPointer mPtr ) internal pure returns (uint192 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint200 at `mPtr` in memory. function readUint200( MemoryPointer mPtr ) internal pure returns (uint200 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint208 at `mPtr` in memory. function readUint208( MemoryPointer mPtr ) internal pure returns (uint208 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint216 at `mPtr` in memory. function readUint216( MemoryPointer mPtr ) internal pure returns (uint216 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint224 at `mPtr` in memory. function readUint224( MemoryPointer mPtr ) internal pure returns (uint224 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint232 at `mPtr` in memory. function readUint232( MemoryPointer mPtr ) internal pure returns (uint232 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint240 at `mPtr` in memory. function readUint240( MemoryPointer mPtr ) internal pure returns (uint240 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint248 at `mPtr` in memory. function readUint248( MemoryPointer mPtr ) internal pure returns (uint248 value) { assembly { value := mload(mPtr) } } /// @dev Reads the uint256 at `mPtr` in memory. function readUint256( MemoryPointer mPtr ) internal pure returns (uint256 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int8 at `mPtr` in memory. function readInt8(MemoryPointer mPtr) internal pure returns (int8 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int16 at `mPtr` in memory. function readInt16(MemoryPointer mPtr) internal pure returns (int16 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int24 at `mPtr` in memory. function readInt24(MemoryPointer mPtr) internal pure returns (int24 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int32 at `mPtr` in memory. function readInt32(MemoryPointer mPtr) internal pure returns (int32 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int40 at `mPtr` in memory. function readInt40(MemoryPointer mPtr) internal pure returns (int40 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int48 at `mPtr` in memory. function readInt48(MemoryPointer mPtr) internal pure returns (int48 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int56 at `mPtr` in memory. function readInt56(MemoryPointer mPtr) internal pure returns (int56 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int64 at `mPtr` in memory. function readInt64(MemoryPointer mPtr) internal pure returns (int64 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int72 at `mPtr` in memory. function readInt72(MemoryPointer mPtr) internal pure returns (int72 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int80 at `mPtr` in memory. function readInt80(MemoryPointer mPtr) internal pure returns (int80 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int88 at `mPtr` in memory. function readInt88(MemoryPointer mPtr) internal pure returns (int88 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int96 at `mPtr` in memory. function readInt96(MemoryPointer mPtr) internal pure returns (int96 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int104 at `mPtr` in memory. function readInt104( MemoryPointer mPtr ) internal pure returns (int104 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int112 at `mPtr` in memory. function readInt112( MemoryPointer mPtr ) internal pure returns (int112 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int120 at `mPtr` in memory. function readInt120( MemoryPointer mPtr ) internal pure returns (int120 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int128 at `mPtr` in memory. function readInt128( MemoryPointer mPtr ) internal pure returns (int128 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int136 at `mPtr` in memory. function readInt136( MemoryPointer mPtr ) internal pure returns (int136 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int144 at `mPtr` in memory. function readInt144( MemoryPointer mPtr ) internal pure returns (int144 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int152 at `mPtr` in memory. function readInt152( MemoryPointer mPtr ) internal pure returns (int152 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int160 at `mPtr` in memory. function readInt160( MemoryPointer mPtr ) internal pure returns (int160 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int168 at `mPtr` in memory. function readInt168( MemoryPointer mPtr ) internal pure returns (int168 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int176 at `mPtr` in memory. function readInt176( MemoryPointer mPtr ) internal pure returns (int176 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int184 at `mPtr` in memory. function readInt184( MemoryPointer mPtr ) internal pure returns (int184 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int192 at `mPtr` in memory. function readInt192( MemoryPointer mPtr ) internal pure returns (int192 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int200 at `mPtr` in memory. function readInt200( MemoryPointer mPtr ) internal pure returns (int200 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int208 at `mPtr` in memory. function readInt208( MemoryPointer mPtr ) internal pure returns (int208 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int216 at `mPtr` in memory. function readInt216( MemoryPointer mPtr ) internal pure returns (int216 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int224 at `mPtr` in memory. function readInt224( MemoryPointer mPtr ) internal pure returns (int224 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int232 at `mPtr` in memory. function readInt232( MemoryPointer mPtr ) internal pure returns (int232 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int240 at `mPtr` in memory. function readInt240( MemoryPointer mPtr ) internal pure returns (int240 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int248 at `mPtr` in memory. function readInt248( MemoryPointer mPtr ) internal pure returns (int248 value) { assembly { value := mload(mPtr) } } /// @dev Reads the int256 at `mPtr` in memory. function readInt256( MemoryPointer mPtr ) internal pure returns (int256 value) { assembly { value := mload(mPtr) } } } library MemoryWriters { /// @dev Writes `valuePtr` to memory at `mPtr`. function write(MemoryPointer mPtr, MemoryPointer valuePtr) internal pure { assembly { mstore(mPtr, valuePtr) } } /// @dev Writes a boolean `value` to `mPtr` in memory. function write(MemoryPointer mPtr, bool value) internal pure { assembly { mstore(mPtr, value) } } /// @dev Writes an address `value` to `mPtr` in memory. function write(MemoryPointer mPtr, address value) internal pure { assembly { mstore(mPtr, value) } } /// @dev Writes a bytes32 `value` to `mPtr` in memory. /// Separate name to disambiguate literal write parameters. function writeBytes32(MemoryPointer mPtr, bytes32 value) internal pure { assembly { mstore(mPtr, value) } } /// @dev Writes a uint256 `value` to `mPtr` in memory. function write(MemoryPointer mPtr, uint256 value) internal pure { assembly { mstore(mPtr, value) } } /// @dev Writes an int256 `value` to `mPtr` in memory. /// Separate name to disambiguate literal write parameters. function writeInt(MemoryPointer mPtr, int256 value) internal pure { assembly { mstore(mPtr, value) } } }
// SPDX-License-Identifier: MIT pragma solidity ^0.8.13; enum OrderType { // 0: no partial fills, anyone can execute FULL_OPEN, // 1: partial fills supported, anyone can execute PARTIAL_OPEN, // 2: no partial fills, only offerer or zone can execute FULL_RESTRICTED, // 3: partial fills supported, only offerer or zone can execute PARTIAL_RESTRICTED, // 4: contract order type CONTRACT } enum BasicOrderType { // 0: no partial fills, anyone can execute ETH_TO_ERC721_FULL_OPEN, // 1: partial fills supported, anyone can execute ETH_TO_ERC721_PARTIAL_OPEN, // 2: no partial fills, only offerer or zone can execute ETH_TO_ERC721_FULL_RESTRICTED, // 3: partial fills supported, only offerer or zone can execute ETH_TO_ERC721_PARTIAL_RESTRICTED, // 4: no partial fills, anyone can execute ETH_TO_ERC1155_FULL_OPEN, // 5: partial fills supported, anyone can execute ETH_TO_ERC1155_PARTIAL_OPEN, // 6: no partial fills, only offerer or zone can execute ETH_TO_ERC1155_FULL_RESTRICTED, // 7: partial fills supported, only offerer or zone can execute ETH_TO_ERC1155_PARTIAL_RESTRICTED, // 8: no partial fills, anyone can execute ERC20_TO_ERC721_FULL_OPEN, // 9: partial fills supported, anyone can execute ERC20_TO_ERC721_PARTIAL_OPEN, // 10: no partial fills, only offerer or zone can execute ERC20_TO_ERC721_FULL_RESTRICTED, // 11: partial fills supported, only offerer or zone can execute ERC20_TO_ERC721_PARTIAL_RESTRICTED, // 12: no partial fills, anyone can execute ERC20_TO_ERC1155_FULL_OPEN, // 13: partial fills supported, anyone can execute ERC20_TO_ERC1155_PARTIAL_OPEN, // 14: no partial fills, only offerer or zone can execute ERC20_TO_ERC1155_FULL_RESTRICTED, // 15: partial fills supported, only offerer or zone can execute ERC20_TO_ERC1155_PARTIAL_RESTRICTED, // 16: no partial fills, anyone can execute ERC721_TO_ERC20_FULL_OPEN, // 17: partial fills supported, anyone can execute ERC721_TO_ERC20_PARTIAL_OPEN, // 18: no partial fills, only offerer or zone can execute ERC721_TO_ERC20_FULL_RESTRICTED, // 19: partial fills supported, only offerer or zone can execute ERC721_TO_ERC20_PARTIAL_RESTRICTED, // 20: no partial fills, anyone can execute ERC1155_TO_ERC20_FULL_OPEN, // 21: partial fills supported, anyone can execute ERC1155_TO_ERC20_PARTIAL_OPEN, // 22: no partial fills, only offerer or zone can execute ERC1155_TO_ERC20_FULL_RESTRICTED, // 23: partial fills supported, only offerer or zone can execute ERC1155_TO_ERC20_PARTIAL_RESTRICTED } enum BasicOrderRouteType { // 0: provide Ether (or other native token) to receive offered ERC721 item. ETH_TO_ERC721, // 1: provide Ether (or other native token) to receive offered ERC1155 item. ETH_TO_ERC1155, // 2: provide ERC20 item to receive offered ERC721 item. ERC20_TO_ERC721, // 3: provide ERC20 item to receive offered ERC1155 item. ERC20_TO_ERC1155, // 4: provide ERC721 item to receive offered ERC20 item. ERC721_TO_ERC20, // 5: provide ERC1155 item to receive offered ERC20 item. ERC1155_TO_ERC20 } enum ItemType { // 0: ETH on mainnet, MATIC on polygon, etc. NATIVE, // 1: ERC20 items (ERC777 and ERC20 analogues could also technically work) ERC20, // 2: ERC721 items ERC721, // 3: ERC1155 items ERC1155, // 4: ERC721 items where a number of tokenIds are supported ERC721_WITH_CRITERIA, // 5: ERC1155 items where a number of ids are supported ERC1155_WITH_CRITERIA } enum Side { // 0: Items that can be spent OFFER, // 1: Items that must be received CONSIDERATION }
// SPDX-License-Identifier: MIT pragma solidity ^0.8.13; import { BasicOrderType, ItemType, OrderType, Side } from "./ConsiderationEnums.sol"; import { CalldataPointer, MemoryPointer } from "../helpers/PointerLibraries.sol"; /** * @dev An order contains eleven components: an offerer, a zone (or account that * can cancel the order or restrict who can fulfill the order depending on * the type), the order type (specifying partial fill support as well as * restricted order status), the start and end time, a hash that will be * provided to the zone when validating restricted orders, a salt, a key * corresponding to a given conduit, a counter, and an arbitrary number of * offer items that can be spent along with consideration items that must * be received by their respective recipient. */ struct OrderComponents { address offerer; address zone; OfferItem[] offer; ConsiderationItem[] consideration; OrderType orderType; uint256 startTime; uint256 endTime; bytes32 zoneHash; uint256 salt; bytes32 conduitKey; uint256 counter; } /** * @dev An offer item has five components: an item type (ETH or other native * tokens, ERC20, ERC721, and ERC1155, as well as criteria-based ERC721 and * ERC1155), a token address, a dual-purpose "identifierOrCriteria" * component that will either represent a tokenId or a merkle root * depending on the item type, and a start and end amount that support * increasing or decreasing amounts over the duration of the respective * order. */ struct OfferItem { ItemType itemType; address token; uint256 identifierOrCriteria; uint256 startAmount; uint256 endAmount; } /** * @dev A consideration item has the same five components as an offer item and * an additional sixth component designating the required recipient of the * item. */ struct ConsiderationItem { ItemType itemType; address token; uint256 identifierOrCriteria; uint256 startAmount; uint256 endAmount; address payable recipient; } /** * @dev A spent item is translated from a utilized offer item and has four * components: an item type (ETH or other native tokens, ERC20, ERC721, and * ERC1155), a token address, a tokenId, and an amount. */ struct SpentItem { ItemType itemType; address token; uint256 identifier; uint256 amount; } /** * @dev A received item is translated from a utilized consideration item and has * the same four components as a spent item, as well as an additional fifth * component designating the required recipient of the item. */ struct ReceivedItem { ItemType itemType; address token; uint256 identifier; uint256 amount; address payable recipient; } /** * @dev For basic orders involving ETH / native / ERC20 <=> ERC721 / ERC1155 * matching, a group of six functions may be called that only requires a * subset of the usual order arguments. Note the use of a "basicOrderType" * enum; this represents both the usual order type as well as the "route" * of the basic order (a simple derivation function for the basic order * type is `basicOrderType = orderType + (4 * basicOrderRoute)`.) */ struct BasicOrderParameters { // calldata offset address considerationToken; // 0x24 uint256 considerationIdentifier; // 0x44 uint256 considerationAmount; // 0x64 address payable offerer; // 0x84 address zone; // 0xa4 address offerToken; // 0xc4 uint256 offerIdentifier; // 0xe4 uint256 offerAmount; // 0x104 BasicOrderType basicOrderType; // 0x124 uint256 startTime; // 0x144 uint256 endTime; // 0x164 bytes32 zoneHash; // 0x184 uint256 salt; // 0x1a4 bytes32 offererConduitKey; // 0x1c4 bytes32 fulfillerConduitKey; // 0x1e4 uint256 totalOriginalAdditionalRecipients; // 0x204 AdditionalRecipient[] additionalRecipients; // 0x224 bytes signature; // 0x244 // Total length, excluding dynamic array data: 0x264 (580) } /** * @dev Basic orders can supply any number of additional recipients, with the * implied assumption that they are supplied from the offered ETH (or other * native token) or ERC20 token for the order. */ struct AdditionalRecipient { uint256 amount; address payable recipient; } /** * @dev The full set of order components, with the exception of the counter, * must be supplied when fulfilling more sophisticated orders or groups of * orders. The total number of original consideration items must also be * supplied, as the caller may specify additional consideration items. */ struct OrderParameters { address offerer; // 0x00 address zone; // 0x20 OfferItem[] offer; // 0x40 ConsiderationItem[] consideration; // 0x60 OrderType orderType; // 0x80 uint256 startTime; // 0xa0 uint256 endTime; // 0xc0 bytes32 zoneHash; // 0xe0 uint256 salt; // 0x100 bytes32 conduitKey; // 0x120 uint256 totalOriginalConsiderationItems; // 0x140 // offer.length // 0x160 } /** * @dev Orders require a signature in addition to the other order parameters. */ struct Order { OrderParameters parameters; bytes signature; } /** * @dev Advanced orders include a numerator (i.e. a fraction to attempt to fill) * and a denominator (the total size of the order) in addition to the * signature and other order parameters. It also supports an optional field * for supplying extra data; this data will be provided to the zone if the * order type is restricted and the zone is not the caller, or will be * provided to the offerer as context for contract order types. */ struct AdvancedOrder { OrderParameters parameters; uint120 numerator; uint120 denominator; bytes signature; bytes extraData; } /** * @dev Orders can be validated (either explicitly via `validate`, or as a * consequence of a full or partial fill), specifically cancelled (they can * also be cancelled in bulk via incrementing a per-zone counter), and * partially or fully filled (with the fraction filled represented by a * numerator and denominator). */ struct OrderStatus { bool isValidated; bool isCancelled; uint120 numerator; uint120 denominator; } /** * @dev A criteria resolver specifies an order, side (offer vs. consideration), * and item index. It then provides a chosen identifier (i.e. tokenId) * alongside a merkle proof demonstrating the identifier meets the required * criteria. */ struct CriteriaResolver { uint256 orderIndex; Side side; uint256 index; uint256 identifier; bytes32[] criteriaProof; } /** * @dev A fulfillment is applied to a group of orders. It decrements a series of * offer and consideration items, then generates a single execution * element. A given fulfillment can be applied to as many offer and * consideration items as desired, but must contain at least one offer and * at least one consideration that match. The fulfillment must also remain * consistent on all key parameters across all offer items (same offerer, * token, type, tokenId, and conduit preference) as well as across all * consideration items (token, type, tokenId, and recipient). */ struct Fulfillment { FulfillmentComponent[] offerComponents; FulfillmentComponent[] considerationComponents; } /** * @dev Each fulfillment component contains one index referencing a specific * order and another referencing a specific offer or consideration item. */ struct FulfillmentComponent { uint256 orderIndex; uint256 itemIndex; } /** * @dev An execution is triggered once all consideration items have been zeroed * out. It sends the item in question from the offerer to the item's * recipient, optionally sourcing approvals from either this contract * directly or from the offerer's chosen conduit if one is specified. An * execution is not provided as an argument, but rather is derived via * orders, criteria resolvers, and fulfillments (where the total number of * executions will be less than or equal to the total number of indicated * fulfillments) and returned as part of `matchOrders`. */ struct Execution { ReceivedItem item; address offerer; bytes32 conduitKey; } /** * @dev Restricted orders are validated post-execution by calling validateOrder * on the zone. This struct provides context about the order fulfillment * and any supplied extraData, as well as all order hashes fulfilled in a * call to a match or fulfillAvailable method. */ struct ZoneParameters { bytes32 orderHash; address fulfiller; address offerer; SpentItem[] offer; ReceivedItem[] consideration; bytes extraData; bytes32[] orderHashes; uint256 startTime; uint256 endTime; bytes32 zoneHash; } /** * @dev Zones and contract offerers can communicate which schemas they implement * along with any associated metadata related to each schema. */ struct Schema { uint256 id; bytes metadata; } using StructPointers for OrderComponents global; using StructPointers for OfferItem global; using StructPointers for ConsiderationItem global; using StructPointers for SpentItem global; using StructPointers for ReceivedItem global; using StructPointers for BasicOrderParameters global; using StructPointers for AdditionalRecipient global; using StructPointers for OrderParameters global; using StructPointers for Order global; using StructPointers for AdvancedOrder global; using StructPointers for OrderStatus global; using StructPointers for CriteriaResolver global; using StructPointers for Fulfillment global; using StructPointers for FulfillmentComponent global; using StructPointers for Execution global; using StructPointers for ZoneParameters global; /** * @dev This library provides a set of functions for converting structs to * pointers. */ library StructPointers { /** * @dev Get a MemoryPointer from OrderComponents. * * @param obj The OrderComponents object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( OrderComponents memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from OrderComponents. * * @param obj The OrderComponents object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( OrderComponents calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from OfferItem. * * @param obj The OfferItem object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( OfferItem memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from OfferItem. * * @param obj The OfferItem object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( OfferItem calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from ConsiderationItem. * * @param obj The ConsiderationItem object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( ConsiderationItem memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from ConsiderationItem. * * @param obj The ConsiderationItem object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( ConsiderationItem calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from SpentItem. * * @param obj The SpentItem object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( SpentItem memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from SpentItem. * * @param obj The SpentItem object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( SpentItem calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from ReceivedItem. * * @param obj The ReceivedItem object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( ReceivedItem memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from ReceivedItem. * * @param obj The ReceivedItem object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( ReceivedItem calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from BasicOrderParameters. * * @param obj The BasicOrderParameters object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( BasicOrderParameters memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from BasicOrderParameters. * * @param obj The BasicOrderParameters object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( BasicOrderParameters calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from AdditionalRecipient. * * @param obj The AdditionalRecipient object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( AdditionalRecipient memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from AdditionalRecipient. * * @param obj The AdditionalRecipient object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( AdditionalRecipient calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from OrderParameters. * * @param obj The OrderParameters object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( OrderParameters memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from OrderParameters. * * @param obj The OrderParameters object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( OrderParameters calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from Order. * * @param obj The Order object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( Order memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from Order. * * @param obj The Order object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( Order calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from AdvancedOrder. * * @param obj The AdvancedOrder object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( AdvancedOrder memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from AdvancedOrder. * * @param obj The AdvancedOrder object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( AdvancedOrder calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from OrderStatus. * * @param obj The OrderStatus object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( OrderStatus memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from OrderStatus. * * @param obj The OrderStatus object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( OrderStatus calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from CriteriaResolver. * * @param obj The CriteriaResolver object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( CriteriaResolver memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from CriteriaResolver. * * @param obj The CriteriaResolver object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( CriteriaResolver calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from Fulfillment. * * @param obj The Fulfillment object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( Fulfillment memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from Fulfillment. * * @param obj The Fulfillment object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( Fulfillment calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from FulfillmentComponent. * * @param obj The FulfillmentComponent object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( FulfillmentComponent memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from FulfillmentComponent. * * @param obj The FulfillmentComponent object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( FulfillmentComponent calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from Execution. * * @param obj The Execution object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( Execution memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from Execution. * * @param obj The Execution object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( Execution calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } /** * @dev Get a MemoryPointer from ZoneParameters. * * @param obj The ZoneParameters object. * * @return ptr The MemoryPointer. */ function toMemoryPointer( ZoneParameters memory obj ) internal pure returns (MemoryPointer ptr) { assembly { ptr := obj } } /** * @dev Get a CalldataPointer from ZoneParameters. * * @param obj The ZoneParameters object. * * @return ptr The CalldataPointer. */ function toCalldataPointer( ZoneParameters calldata obj ) internal pure returns (CalldataPointer ptr) { assembly { ptr := obj } } }
// SPDX-License-Identifier: MIT pragma solidity ^0.8.4; /// @notice Read and write to persistent storage at a fraction of the cost. /// @author Solady (https://github.com/vectorized/solmady/blob/main/src/utils/SSTORE2.sol) /// @author Saw-mon-and-Natalie (https://github.com/Saw-mon-and-Natalie) /// @author Modified from Solmate (https://github.com/transmissions11/solmate/blob/main/src/utils/SSTORE2.sol) /// @author Modified from 0xSequence (https://github.com/0xSequence/sstore2/blob/master/contracts/SSTORE2.sol) library SSTORE2 { /*´:°•.°+.*•´.*:˚.°*.˚•´.°:°•.°•.*•´.*:˚.°*.˚•´.°:°•.°+.*•´.*:*/ /* CONSTANTS */ /*.•°:°.´+˚.*°.˚:*.´•*.+°.•°:´*.´•*.•°.•°:°.´:•˚°.*°.˚:*.´+°.•*/ /// @dev We skip the first byte as it's a STOP opcode, /// which ensures the contract can't be called. uint256 internal constant DATA_OFFSET = 1; /*´:°•.°+.*•´.*:˚.°*.˚•´.°:°•.°•.*•´.*:˚.°*.˚•´.°:°•.°+.*•´.*:*/ /* CUSTOM ERRORS */ /*.•°:°.´+˚.*°.˚:*.´•*.+°.•°:´*.´•*.•°.•°:°.´:•˚°.*°.˚:*.´+°.•*/ /// @dev Unable to deploy the storage contract. error DeploymentFailed(); /// @dev The storage contract address is invalid. error InvalidPointer(); /// @dev Attempt to read outside of the storage contract's bytecode bounds. error ReadOutOfBounds(); /*´:°•.°+.*•´.*:˚.°*.˚•´.°:°•.°•.*•´.*:˚.°*.˚•´.°:°•.°+.*•´.*:*/ /* WRITE LOGIC */ /*.•°:°.´+˚.*°.˚:*.´•*.+°.•°:´*.´•*.•°.•°:°.´:•˚°.*°.˚:*.´+°.•*/ /// @dev Writes `data` into the bytecode of a storage contract and returns its address. function write(bytes memory data) internal returns (address pointer) { /// @solidity memory-safe-assembly assembly { let originalDataLength := mload(data) // Add 1 to data size since we are prefixing it with a STOP opcode. let dataSize := add(originalDataLength, DATA_OFFSET) /** * ------------------------------------------------------------------------------+ * Opcode | Mnemonic | Stack | Memory | * ------------------------------------------------------------------------------| * 61 dataSize | PUSH2 dataSize | dataSize | | * 80 | DUP1 | dataSize dataSize | | * 60 0xa | PUSH1 0xa | 0xa dataSize dataSize | | * 3D | RETURNDATASIZE | 0 0xa dataSize dataSize | | * 39 | CODECOPY | dataSize | [0..dataSize): code | * 3D | RETURNDATASIZE | 0 dataSize | [0..dataSize): code | * F3 | RETURN | | [0..dataSize): code | * 00 | STOP | | | * ------------------------------------------------------------------------------+ * @dev Prefix the bytecode with a STOP opcode to ensure it cannot be called. * Also PUSH2 is used since max contract size cap is 24,576 bytes which is less than 2 ** 16. */ mstore( // Do a out-of-gas revert if `dataSize` is more than 2 bytes. // The actual EVM limit may be smaller and may change over time. add(data, gt(dataSize, 0xffff)), // Left shift `dataSize` by 64 so that it lines up with the 0000 after PUSH2. or(0xfd61000080600a3d393df300, shl(0x40, dataSize)) ) // Deploy a new contract with the generated creation code. pointer := create(0, add(data, 0x15), add(dataSize, 0xa)) // If `pointer` is zero, revert. if iszero(pointer) { // Store the function selector of `DeploymentFailed()`. mstore(0x00, 0x30116425) // Revert with (offset, size). revert(0x1c, 0x04) } // Restore original length of the variable size `data`. mstore(data, originalDataLength) } } /// @dev Writes `data` into the bytecode of a storage contract with `salt` /// and returns its deterministic address. function writeDeterministic(bytes memory data, bytes32 salt) internal returns (address pointer) { /// @solidity memory-safe-assembly assembly { let originalDataLength := mload(data) let dataSize := add(originalDataLength, DATA_OFFSET) mstore( // Do a out-of-gas revert if `dataSize` is more than 2 bytes. // The actual EVM limit may be smaller and may change over time. add(data, gt(dataSize, 0xffff)), // Left shift `dataSize` by 64 so that it lines up with the 0000 after PUSH2. or(0xfd61000080600a3d393df300, shl(0x40, dataSize)) ) // Deploy a new contract with the generated creation code. pointer := create2(0, add(data, 0x15), add(dataSize, 0xa), salt) // If `pointer` is zero, revert. if iszero(pointer) { // Store the function selector of `DeploymentFailed()`. mstore(0x00, 0x30116425) // Revert with (offset, size). revert(0x1c, 0x04) } // Restore original length of the variable size `data`. mstore(data, originalDataLength) } } /// @dev Returns the initialization code hash of the storage contract for `data`. /// Used for mining vanity addresses with create2crunch. function initCodeHash(bytes memory data) internal pure returns (bytes32 hash) { /// @solidity memory-safe-assembly assembly { let originalDataLength := mload(data) let dataSize := add(originalDataLength, DATA_OFFSET) // Do a out-of-gas revert if `dataSize` is more than 2 bytes. // The actual EVM limit may be smaller and may change over time. returndatacopy(returndatasize(), returndatasize(), shr(16, dataSize)) mstore(data, or(0x61000080600a3d393df300, shl(0x40, dataSize))) hash := keccak256(add(data, 0x15), add(dataSize, 0xa)) // Restore original length of the variable size `data`. mstore(data, originalDataLength) } } /// @dev Returns the address of the storage contract for `data` /// deployed with `salt` by `deployer`. /// Note: The returned result has dirty upper 96 bits. Please clean if used in assembly. function predictDeterministicAddress(bytes memory data, bytes32 salt, address deployer) internal pure returns (address predicted) { bytes32 hash = initCodeHash(data); /// @solidity memory-safe-assembly assembly { // Compute and store the bytecode hash. mstore8(0x00, 0xff) // Write the prefix. mstore(0x35, hash) mstore(0x01, shl(96, deployer)) mstore(0x15, salt) predicted := keccak256(0x00, 0x55) // Restore the part of the free memory pointer that has been overwritten. mstore(0x35, 0) } } /*´:°•.°+.*•´.*:˚.°*.˚•´.°:°•.°•.*•´.*:˚.°*.˚•´.°:°•.°+.*•´.*:*/ /* READ LOGIC */ /*.•°:°.´+˚.*°.˚:*.´•*.+°.•°:´*.´•*.•°.•°:°.´:•˚°.*°.˚:*.´+°.•*/ /// @dev Returns all the `data` from the bytecode of the storage contract at `pointer`. function read(address pointer) internal view returns (bytes memory data) { /// @solidity memory-safe-assembly assembly { let pointerCodesize := extcodesize(pointer) if iszero(pointerCodesize) { // Store the function selector of `InvalidPointer()`. mstore(0x00, 0x11052bb4) // Revert with (offset, size). revert(0x1c, 0x04) } // Offset all indices by 1 to skip the STOP opcode. let size := sub(pointerCodesize, DATA_OFFSET) // Get the pointer to the free memory and allocate // enough 32-byte words for the data and the length of the data, // then copy the code to the allocated memory. // Masking with 0xffe0 will suffice, since contract size is less than 16 bits. data := mload(0x40) mstore(0x40, add(data, and(add(size, 0x3f), 0xffe0))) mstore(data, size) mstore(add(add(data, 0x20), size), 0) // Zeroize the last slot. extcodecopy(pointer, add(data, 0x20), DATA_OFFSET, size) } } /// @dev Returns the `data` from the bytecode of the storage contract at `pointer`, /// from the byte at `start`, to the end of the data stored. function read(address pointer, uint256 start) internal view returns (bytes memory data) { /// @solidity memory-safe-assembly assembly { let pointerCodesize := extcodesize(pointer) if iszero(pointerCodesize) { // Store the function selector of `InvalidPointer()`. mstore(0x00, 0x11052bb4) // Revert with (offset, size). revert(0x1c, 0x04) } // If `!(pointer.code.size > start)`, reverts. // This also handles the case where `start + DATA_OFFSET` overflows. if iszero(gt(pointerCodesize, start)) { // Store the function selector of `ReadOutOfBounds()`. mstore(0x00, 0x84eb0dd1) // Revert with (offset, size). revert(0x1c, 0x04) } let size := sub(pointerCodesize, add(start, DATA_OFFSET)) // Get the pointer to the free memory and allocate // enough 32-byte words for the data and the length of the data, // then copy the code to the allocated memory. // Masking with 0xffe0 will suffice, since contract size is less than 16 bits. data := mload(0x40) mstore(0x40, add(data, and(add(size, 0x3f), 0xffe0))) mstore(data, size) mstore(add(add(data, 0x20), size), 0) // Zeroize the last slot. extcodecopy(pointer, add(data, 0x20), add(start, DATA_OFFSET), size) } } /// @dev Returns the `data` from the bytecode of the storage contract at `pointer`, /// from the byte at `start`, to the byte at `end` (exclusive) of the data stored. function read(address pointer, uint256 start, uint256 end) internal view returns (bytes memory data) { /// @solidity memory-safe-assembly assembly { let pointerCodesize := extcodesize(pointer) if iszero(pointerCodesize) { // Store the function selector of `InvalidPointer()`. mstore(0x00, 0x11052bb4) // Revert with (offset, size). revert(0x1c, 0x04) } // If `!(pointer.code.size > end) || (start > end)`, revert. // This also handles the cases where // `end + DATA_OFFSET` or `start + DATA_OFFSET` overflows. if iszero( and( gt(pointerCodesize, end), // Within bounds. iszero(gt(start, end)) // Valid range. ) ) { // Store the function selector of `ReadOutOfBounds()`. mstore(0x00, 0x84eb0dd1) // Revert with (offset, size). revert(0x1c, 0x04) } let size := sub(end, start) // Get the pointer to the free memory and allocate // enough 32-byte words for the data and the length of the data, // then copy the code to the allocated memory. // Masking with 0xffe0 will suffice, since contract size is less than 16 bits. data := mload(0x40) mstore(0x40, add(data, and(add(size, 0x3f), 0xffe0))) mstore(data, size) mstore(add(add(data, 0x20), size), 0) // Zeroize the last slot. extcodecopy(pointer, add(data, 0x20), add(start, DATA_OFFSET), size) } } }
// SPDX-License-Identifier: MIT pragma solidity >=0.8.17 .0; interface EventsAndErrors { error MsgEmpty(); error InvalidRange(); error InvalidStartIndex(); error InvalidEndIndex(); event MessageSent( address indexed sender, string indexed topic, uint256 messageIndex ); event MessageSentViaApp( address indexed app, address indexed sender, string indexed topic, uint256 messageIndex ); }
// SPDX-License-Identifier: MIT pragma solidity >=0.8.17 .0; interface INet { struct Message { address app; address sender; uint256 timestamp; bytes data; string text; string topic; } function sendMessageViaApp( address sender, string calldata text, string calldata topic, bytes calldata extraData ) external; function sendMessage( string calldata text, string calldata topic, bytes calldata extraData ) external; // ************** // Fetch Messages // ************** // Fetch message indexes function getMessageIdxForApp( uint256 idx, address app ) external view returns (uint256); function getMessageIdxForAppUser( uint256 idx, address app, address user ) external view returns (uint256); function getMessageIdxForAppTopic( uint256 idx, address app, string calldata topic ) external view returns (uint256); function getMessageIdxForAppUserTopic( uint256 idx, address app, address user, string calldata topic ) external view returns (uint256); // Fetch single message function getMessage(uint256 idx) external view returns (Message memory); function getMessageForApp( uint256 idx, address app ) external view returns (Message memory); function getMessageForAppUser( uint256 idx, address app, address user ) external view returns (Message memory); function getMessageForAppTopic( uint256 idx, address app, string calldata topic ) external view returns (Message memory); function getMessageForAppUserTopic( uint256 idx, address app, address user, string calldata topic ) external view returns (Message memory); // Fetch multiple messages function getMessagesInRange( uint256 startIdx, uint256 endIdx ) external view returns (Message[] memory); function getMessagesInRangeForApp( uint256 startIdx, uint256 endIdx, address app ) external view returns (Message[] memory); function getMessagesInRangeForAppUser( uint256 startIdx, uint256 endIdx, address app, address user ) external view returns (Message[] memory); function getMessagesInRangeForAppTopic( uint256 startIdx, uint256 endIdx, address app, string calldata topic ) external view returns (Message[] memory); function getMessagesInRangeForAppUserTopic( uint256 startIdx, uint256 endIdx, address app, address user, string calldata topic ) external view returns (Message[] memory); // ************** // Message counts // ************** function getTotalMessagesCount() external view returns (uint256); function getTotalMessagesForAppCount( address app ) external view returns (uint256); function getTotalMessagesForAppUserCount( address app, address user ) external view returns (uint256); function getTotalMessagesForAppTopicCount( address app, string calldata topic ) external view returns (uint256); function getTotalMessagesForAppUserTopicCount( address app, address user, string calldata topic ) external view returns (uint256); }
// SPDX-License-Identifier: MIT pragma solidity >=0.8.17 .0; import {EventsAndErrors} from "./EventsAndErrors.sol"; import {INet} from "./INet.sol"; import {SSTORE2} from "@solady/utils/SSTORE2.sol"; /// @title Net /// @author Aspyn Palatnick (aspyn.eth, stuckinaboot.eth) /// @notice Fully decentralized onchain messaging protocol contract Net is INet, EventsAndErrors { // Use a single global mapping to map hashes to message indexes mapping(bytes32 hashVal => uint256[] messageIndexes) public hashToMessageIndexes; address[] public messagePointers; bytes32 constant ZERO_HASH = keccak256(abi.encodePacked(address(0))); // Empty topic "" will not impact a hash, which could result in collisions // between hash values that use topic and don't use topic. For that reason, // we prefix the relevant hash topic keys with these values to ensure collisions don't occur // Example if this prefix didn't exist: // keccak256(abi.encodePacked(address(0))) == keccak256(abi.encodePacked(address(0), "" /* where "" represents topic */)) evaluates to true uint256 constant APP_TOPIC_HASH_PREFIX = 1; uint256 constant APP_USER_TOPIC_HASH_PREFIX = 2; // ************ // Send message // ************ /// @notice Send message via app /// @param sender message sender /// @param text message text /// @param topic message topic /// @param data message data function sendMessageViaApp( address sender, string calldata text, string calldata topic, bytes calldata data ) external { // Revert if message length is none to prevent empty messages if (bytes(text).length == 0 && bytes(data).length == 0) { revert MsgEmpty(); } // Track message index in topic and user mappings uint256 messagesLength = messagePointers.length; // App messages hashToMessageIndexes[keccak256(abi.encodePacked(msg.sender))].push( messagesLength ); // App-user messages hashToMessageIndexes[keccak256(abi.encodePacked(msg.sender, sender))] .push(messagesLength); // App-topic messages hashToMessageIndexes[ // msg.sender is the app id keccak256( abi.encodePacked(APP_TOPIC_HASH_PREFIX, msg.sender, topic) ) ].push(messagesLength); // App-user-topic messages hashToMessageIndexes[ keccak256( abi.encodePacked( APP_USER_TOPIC_HASH_PREFIX, msg.sender, sender, topic ) ) ].push(messagesLength); // Emit message sent using current messages length as the index emit MessageSentViaApp(msg.sender, sender, topic, messagesLength); // Store message messagePointers.push( SSTORE2.write( abi.encode( // App msg.sender, // Sender sender, // Timestamp block.timestamp, // Data data, // Text text, // Topic topic ) ) ); } /// @notice Send message /// @param text message text /// @param topic message topic /// @param data message data function sendMessage( string calldata text, string calldata topic, bytes calldata data ) external { // Revert if message length is none to prevent empty messages if (bytes(text).length == 0 && bytes(data).length == 0) { revert MsgEmpty(); } // Track message index in topic and user mappings uint256 messagesLength = messagePointers.length; // address(0) is used to represent messages sent from "no app" hashToMessageIndexes[ZERO_HASH].push(messagesLength); hashToMessageIndexes[ keccak256( abi.encodePacked(APP_TOPIC_HASH_PREFIX, address(0), topic) ) ].push(messagesLength); hashToMessageIndexes[ keccak256(abi.encodePacked(address(0), msg.sender)) ].push(messagesLength); hashToMessageIndexes[ keccak256( abi.encodePacked( APP_USER_TOPIC_HASH_PREFIX, address(0), msg.sender, topic ) ) ].push(messagesLength); // Emit message sent using current messages length as the index emit MessageSent(msg.sender, topic, messagesLength); // Store message messagePointers.push( SSTORE2.write( abi.encode( // App address(0), // Sender msg.sender, // Timestamp block.timestamp, // Data data, // Text text, // Topic topic ) ) ); } // ************** // Fetch Messages // ************** // Fetch message indexes /// @notice Get message pointer index for app /// @param idx message index /// @param app app /// @return index index function getMessageIdxForApp( uint256 idx, address app ) external view returns (uint256) { return hashToMessageIndexes[keccak256(abi.encodePacked(app))][idx]; } /// @notice Get message pointer index for app user /// @param idx message index /// @param app app /// @param user user /// @return index index function getMessageIdxForAppUser( uint256 idx, address app, address user ) external view returns (uint256) { return hashToMessageIndexes[keccak256(abi.encodePacked(app, user))][idx]; } /// @notice Get message pointer index for app topic /// @param idx message index /// @param app app /// @param topic topic /// @return index index function getMessageIdxForAppTopic( uint256 idx, address app, string calldata topic ) external view returns (uint256) { return hashToMessageIndexes[ keccak256(abi.encodePacked(APP_TOPIC_HASH_PREFIX, app, topic)) ][idx]; } /// @notice Get message pointer index for app user topic /// @param idx message index /// @param app app /// @param user user /// @param topic topic /// @return index index function getMessageIdxForAppUserTopic( uint256 idx, address app, address user, string calldata topic ) external view returns (uint256) { return hashToMessageIndexes[ keccak256( abi.encodePacked( APP_USER_TOPIC_HASH_PREFIX, app, user, topic ) ) ][idx]; } // Fetch single message /// @notice Decode encoded message /// @param encodedMessage encoded message /// @return decodedMessage decoded message function decodeMessage( bytes memory encodedMessage ) public pure returns (Message memory) { Message memory message; ( message.app, message.sender, message.timestamp, message.data, message.text, message.topic ) = abi.decode( encodedMessage, ( // App address, // Sender address, // Timestamp uint256, // Data bytes, // Text string, // Topic string ) ); return message; } /// @notice Decode message at index in message pointers /// @param idx index /// @return decodedMessage decoded message function decodeMessageAtIndex( uint256 idx ) public view returns (Message memory) { return decodeMessage(SSTORE2.read(messagePointers[idx])); } /// @notice Get message /// @param idx index /// @return message message function getMessage(uint256 idx) external view returns (Message memory) { return decodeMessageAtIndex(idx); } /// @notice Get message for app /// @param idx index /// @param app app /// @return message message function getMessageForApp( uint256 idx, address app ) external view returns (Message memory) { return decodeMessageAtIndex( hashToMessageIndexes[keccak256(abi.encodePacked(app))][idx] ); } /// @notice Get message for app user /// @param idx index /// @param app app /// @param user user /// @return message message function getMessageForAppUser( uint256 idx, address app, address user ) external view returns (Message memory) { return decodeMessageAtIndex( hashToMessageIndexes[keccak256(abi.encodePacked(app, user))][ idx ] ); } /// @notice Get message for app topic /// @param idx index /// @param app app /// @param topic topic /// @return message message function getMessageForAppTopic( uint256 idx, address app, string calldata topic ) external view returns (Message memory) { return decodeMessageAtIndex( hashToMessageIndexes[ keccak256( abi.encodePacked(APP_TOPIC_HASH_PREFIX, app, topic) ) ][idx] ); } /// @notice Get message for app user topic /// @param idx index /// @param app app /// @param user user /// @param topic topic /// @return message message function getMessageForAppUserTopic( uint256 idx, address app, address user, string calldata topic ) external view returns (Message memory) { return decodeMessageAtIndex( hashToMessageIndexes[ keccak256( abi.encodePacked( APP_USER_TOPIC_HASH_PREFIX, app, user, topic ) ) ][idx] ); } // Fetch multiple messages /// @notice Get messages in range /// @param startIdx start index /// @param endIdx end index /// @return messages list of messages function getMessagesInRange( uint256 startIdx, uint256 endIdx ) external view returns (Message[] memory) { if (startIdx >= endIdx) { revert InvalidRange(); } uint256 querySetLength = messagePointers.length; if (startIdx + 1 > querySetLength) { revert InvalidStartIndex(); } if (endIdx > querySetLength) { revert InvalidEndIndex(); } Message[] memory messagesSlice = new Message[](endIdx - startIdx); uint256 idxInMessages = startIdx; unchecked { for (; idxInMessages < endIdx; ) { messagesSlice[idxInMessages - startIdx] = decodeMessageAtIndex( idxInMessages ); ++idxInMessages; } } return messagesSlice; } /// @notice Get messages in range for hash /// @param startIdx start index /// @param endIdx end index /// @param hashVal hash /// @return messages list of messages function getMessagesInRangeForHash( uint256 startIdx, uint256 endIdx, bytes32 hashVal ) public view returns (Message[] memory) { if (startIdx >= endIdx) { revert InvalidRange(); } uint256 querySetLength = hashToMessageIndexes[hashVal].length; if (startIdx + 1 > querySetLength) { revert InvalidStartIndex(); } if (endIdx > querySetLength) { revert InvalidEndIndex(); } Message[] memory messagesSlice = new Message[](endIdx - startIdx); uint256 idxInMessages = startIdx; unchecked { for (; idxInMessages < endIdx; ) { messagesSlice[idxInMessages - startIdx] = decodeMessageAtIndex( hashToMessageIndexes[hashVal][idxInMessages] ); ++idxInMessages; } } return messagesSlice; } /// @notice Get messages in range for app /// @param startIdx start index /// @param endIdx end index /// @param app app /// @return messages list of messages function getMessagesInRangeForApp( uint256 startIdx, uint256 endIdx, address app ) external view returns (Message[] memory) { return getMessagesInRangeForHash( startIdx, endIdx, keccak256(abi.encodePacked(app)) ); } /// @notice Get messages in range for app user /// @param startIdx start index /// @param endIdx end index /// @param app app /// @param user user /// @return messages list of messages function getMessagesInRangeForAppUser( uint256 startIdx, uint256 endIdx, address app, address user ) external view returns (Message[] memory) { return getMessagesInRangeForHash( startIdx, endIdx, keccak256(abi.encodePacked(app, user)) ); } /// @notice Get messages in range for app topic /// @param startIdx start index /// @param endIdx end index /// @param app app /// @param topic topic /// @return messages list of messages function getMessagesInRangeForAppTopic( uint256 startIdx, uint256 endIdx, address app, string calldata topic ) external view returns (Message[] memory) { return getMessagesInRangeForHash( startIdx, endIdx, keccak256(abi.encodePacked(APP_TOPIC_HASH_PREFIX, app, topic)) ); } /// @notice Get messages in range for app user topic /// @param startIdx start index /// @param endIdx end index /// @param app app /// @param user user /// @param topic topic /// @return messages list of messages function getMessagesInRangeForAppUserTopic( uint256 startIdx, uint256 endIdx, address app, address user, string calldata topic ) external view returns (Message[] memory) { return getMessagesInRangeForHash( startIdx, endIdx, keccak256( abi.encodePacked( APP_USER_TOPIC_HASH_PREFIX, app, user, topic ) ) ); } // ************** // Message counts // ************** /// @notice Get total messages count /// @return count count function getTotalMessagesCount() external view returns (uint256) { return messagePointers.length; } /// @notice Get total messages for hash count /// @param hashVal hash /// @return count count function getTotalMessagesForHashCount( bytes32 hashVal ) public view returns (uint256) { return hashToMessageIndexes[hashVal].length; } /// @notice Get total messages for app count /// @param app app /// @return count count function getTotalMessagesForAppCount( address app ) external view returns (uint256) { return getTotalMessagesForHashCount(keccak256(abi.encodePacked(app))); } /// @notice Get total messages for app user count /// @param app app /// @param user user /// @return count count function getTotalMessagesForAppUserCount( address app, address user ) external view returns (uint256) { return getTotalMessagesForHashCount( keccak256(abi.encodePacked(app, user)) ); } /// @notice Get total messages for app topic count /// @param app app /// @param topic topic /// @return count count function getTotalMessagesForAppTopicCount( address app, string calldata topic ) external view returns (uint256) { return getTotalMessagesForHashCount( keccak256(abi.encodePacked(APP_TOPIC_HASH_PREFIX, app, topic)) ); } /// @notice Get total messages for app user topic count /// @param app app /// @param user user /// @param topic topic /// @return count count function getTotalMessagesForAppUserTopicCount( address app, address user, string calldata topic ) external view returns (uint256) { return getTotalMessagesForHashCount( keccak256( abi.encodePacked( APP_USER_TOPIC_HASH_PREFIX, app, user, topic ) ) ); } }
{ "evmVersion": "paris", "libraries": {}, "metadata": { "appendCBOR": false, "bytecodeHash": "none", "useLiteralContent": false }, "optimizer": { "enabled": true, "runs": 20 }, "outputSelection": { "*": { "*": [ "evm.bytecode", "evm.deployedBytecode", "devdoc", "userdoc", "metadata", "abi" ] } }, "remappings": [ "@prb/test/=lib/prb-test/src/", "forge-std/=lib/forge-std/src/", "src/=src/", "@erc721a/=lib/ERC721A/contracts/", "@openzeppelin/=lib/openzeppelin-contracts/", "openzeppelin-contracts/=lib/openzeppelin-contracts/contracts/", "@solady/=lib/solady/src/", "solmate/=lib/solady/lib/solmate/src/", "utility-contracts/=lib/utility-contracts/src/", "@seaport-types/=lib/seaport-types/src/", "@openzeppelin/contracts/=lib/openzeppelin-contracts/contracts/", "ERC721A/=lib/ERC721A/contracts/", "ds-test/=lib/openzeppelin-contracts/lib/forge-std/lib/ds-test/src/", "erc4626-tests/=lib/openzeppelin-contracts/lib/erc4626-tests/", "prb-math/=lib/prb-math/src/", "prb-test/=lib/prb-test/src/", "seaport-types/=lib/seaport-types/src/", "solady/=lib/solady/src/" ], "viaIR": false }
Contract Security Audit
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Contract ABI
API[{"inputs":[],"name":"ConsiderationItemsMustContainTwoItems","type":"error"},{"inputs":[],"name":"ConsiderationItemsMustIncludeFeeAddress","type":"error"},{"inputs":[],"name":"ConsiderationItemsMustIncludeMsgSender","type":"error"},{"inputs":[],"name":"InvalidFee","type":"error"},{"inputs":[],"name":"OfferItemsMustContainOneItem","type":"error"},{"inputs":[{"internalType":"uint256","name":"value","type":"uint256"},{"internalType":"uint256","name":"length","type":"uint256"}],"name":"StringsInsufficientHexLength","type":"error"},{"anonymous":false,"inputs":[{"indexed":true,"internalType":"address","name":"tokenAddress","type":"address"},{"indexed":true,"internalType":"uint256","name":"tokenId","type":"uint256"}],"name":"Submitted","type":"event"},{"inputs":[],"name":"NET_APP_NAME","outputs":[{"internalType":"string","name":"","type":"string"}],"stateMutability":"view","type":"function"},{"inputs":[{"components":[{"components":[{"internalType":"address","name":"offerer","type":"address"},{"internalType":"address","name":"zone","type":"address"},{"components":[{"internalType":"enum ItemType","name":"itemType","type":"uint8"},{"internalType":"address","name":"token","type":"address"},{"internalType":"uint256","name":"identifierOrCriteria","type":"uint256"},{"internalType":"uint256","name":"startAmount","type":"uint256"},{"internalType":"uint256","name":"endAmount","type":"uint256"}],"internalType":"struct OfferItem[]","name":"offer","type":"tuple[]"},{"components":[{"internalType":"enum ItemType","name":"itemType","type":"uint8"},{"internalType":"address","name":"token","type":"address"},{"internalType":"uint256","name":"identifierOrCriteria","type":"uint256"},{"internalType":"uint256","name":"startAmount","type":"uint256"},{"internalType":"uint256","name":"endAmount","type":"uint256"},{"internalType":"address payable","name":"recipient","type":"address"}],"internalType":"struct ConsiderationItem[]","name":"consideration","type":"tuple[]"},{"internalType":"enum OrderType","name":"orderType","type":"uint8"},{"internalType":"uint256","name":"startTime","type":"uint256"},{"internalType":"uint256","name":"endTime","type":"uint256"},{"internalType":"bytes32","name":"zoneHash","type":"bytes32"},{"internalType":"uint256","name":"salt","type":"uint256"},{"internalType":"bytes32","name":"conduitKey","type":"bytes32"},{"internalType":"uint256","name":"totalOriginalConsiderationItems","type":"uint256"}],"internalType":"struct OrderParameters","name":"parameters","type":"tuple"},{"internalType":"uint256","name":"counter","type":"uint256"},{"internalType":"bytes","name":"signature","type":"bytes"}],"internalType":"struct BazaarV2.Submission","name":"submission","type":"tuple"}],"name":"submit","outputs":[],"stateMutability":"nonpayable","type":"function"}]
Contract Creation Code
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Deployed Bytecode
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Multichain Portfolio | 35 Chains
Chain | Token | Portfolio % | Price | Amount | Value |
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A contract address hosts a smart contract, which is a set of code stored on the blockchain that runs when predetermined conditions are met. Learn more about addresses in our Knowledge Base.