Development Artifact Cleanup: ✅ BROTHER_NODE REORGANIZATION: Moved development test node to appropriate location - dev/test-nodes/brother_node/: Moved from root directory for better organization - Contains development configuration, test logs, and test chain data - No impact on production systems - purely development/testing artifact ✅ DEVELOPMENT ARTIFACTS IDENTIFIED: - Chain ID: aitbc-brother-chain (test/development chain) - Ports: 8010 (P2P) and 8011 (RPC) - different from production - Environment: .env file with test configuration - Logs: rpc.log and node.log from development testing session (March 15, 2026) ✅ ROOT DIRECTORY CLEANUP: Removed development clutter from production directory - brother_node/ moved to dev/test-nodes/brother_node/ - Root directory now contains only production-ready components - Development artifacts properly organized in dev/ subdirectory DIRECTORY STRUCTURE IMPROVEMENT: 📁 dev/test-nodes/: Development and testing node configurations 🏗️ Root Directory: Clean production structure with only essential components 🧪 Development Isolation: Test environments separated from production BENEFITS: ✅ Clean Production Directory: No development artifacts in root ✅ Better Organization: Development nodes grouped in dev/ subdirectory ✅ Clear Separation: Production vs development environments clearly distinguished ✅ Maintainability: Easier to identify and manage development components RESULT: Successfully moved brother_node development artifact to dev/test-nodes/ subdirectory, cleaning up the root directory while preserving development testing environment for future use.
156 lines
5.2 KiB
Solidity
Executable File
156 lines
5.2 KiB
Solidity
Executable File
// SPDX-License-Identifier: MIT
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// OpenZeppelin Contracts (last updated v5.3.0) (utils/SlotDerivation.sol)
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// This file was procedurally generated from scripts/generate/templates/SlotDerivation.js.
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pragma solidity ^0.8.20;
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/**
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* @dev Library for computing storage (and transient storage) locations from namespaces and deriving slots
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* corresponding to standard patterns. The derivation method for array and mapping matches the storage layout used by
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* the solidity language / compiler.
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*
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* See https://docs.soliditylang.org/en/v0.8.20/internals/layout_in_storage.html#mappings-and-dynamic-arrays[Solidity docs for mappings and dynamic arrays.].
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*
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* Example usage:
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* ```solidity
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* contract Example {
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* // Add the library methods
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* using StorageSlot for bytes32;
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* using SlotDerivation for bytes32;
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*
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* // Declare a namespace
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* string private constant _NAMESPACE = "<namespace>"; // eg. OpenZeppelin.Slot
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*
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* function setValueInNamespace(uint256 key, address newValue) internal {
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* _NAMESPACE.erc7201Slot().deriveMapping(key).getAddressSlot().value = newValue;
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* }
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*
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* function getValueInNamespace(uint256 key) internal view returns (address) {
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* return _NAMESPACE.erc7201Slot().deriveMapping(key).getAddressSlot().value;
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* }
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* }
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* ```
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*
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* TIP: Consider using this library along with {StorageSlot}.
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*
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* NOTE: This library provides a way to manipulate storage locations in a non-standard way. Tooling for checking
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* upgrade safety will ignore the slots accessed through this library.
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*
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* _Available since v5.1._
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*/
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library SlotDerivation {
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/**
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* @dev Derive an ERC-7201 slot from a string (namespace).
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*/
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function erc7201Slot(string memory namespace) internal pure returns (bytes32 slot) {
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assembly ("memory-safe") {
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mstore(0x00, sub(keccak256(add(namespace, 0x20), mload(namespace)), 1))
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slot := and(keccak256(0x00, 0x20), not(0xff))
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}
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}
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/**
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* @dev Add an offset to a slot to get the n-th element of a structure or an array.
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*/
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function offset(bytes32 slot, uint256 pos) internal pure returns (bytes32 result) {
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unchecked {
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return bytes32(uint256(slot) + pos);
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}
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}
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/**
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* @dev Derive the location of the first element in an array from the slot where the length is stored.
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*/
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function deriveArray(bytes32 slot) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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mstore(0x00, slot)
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result := keccak256(0x00, 0x20)
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}
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}
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/**
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* @dev Derive the location of a mapping element from the key.
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*/
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function deriveMapping(bytes32 slot, address key) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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mstore(0x00, and(key, shr(96, not(0))))
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mstore(0x20, slot)
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result := keccak256(0x00, 0x40)
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}
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}
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/**
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* @dev Derive the location of a mapping element from the key.
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*/
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function deriveMapping(bytes32 slot, bool key) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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mstore(0x00, iszero(iszero(key)))
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mstore(0x20, slot)
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result := keccak256(0x00, 0x40)
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}
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}
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/**
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* @dev Derive the location of a mapping element from the key.
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*/
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function deriveMapping(bytes32 slot, bytes32 key) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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mstore(0x00, key)
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mstore(0x20, slot)
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result := keccak256(0x00, 0x40)
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}
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}
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/**
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* @dev Derive the location of a mapping element from the key.
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*/
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function deriveMapping(bytes32 slot, uint256 key) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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mstore(0x00, key)
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mstore(0x20, slot)
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result := keccak256(0x00, 0x40)
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}
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}
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/**
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* @dev Derive the location of a mapping element from the key.
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*/
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function deriveMapping(bytes32 slot, int256 key) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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mstore(0x00, key)
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mstore(0x20, slot)
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result := keccak256(0x00, 0x40)
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}
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}
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/**
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* @dev Derive the location of a mapping element from the key.
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*/
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function deriveMapping(bytes32 slot, string memory key) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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let length := mload(key)
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let begin := add(key, 0x20)
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let end := add(begin, length)
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let cache := mload(end)
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mstore(end, slot)
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result := keccak256(begin, add(length, 0x20))
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mstore(end, cache)
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}
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}
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/**
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* @dev Derive the location of a mapping element from the key.
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*/
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function deriveMapping(bytes32 slot, bytes memory key) internal pure returns (bytes32 result) {
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assembly ("memory-safe") {
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let length := mload(key)
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let begin := add(key, 0x20)
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let end := add(begin, length)
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let cache := mload(end)
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mstore(end, slot)
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result := keccak256(begin, add(length, 0x20))
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mstore(end, cache)
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}
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}
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}
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