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@airgap/coinlib-core

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The @airgap/coinlib-core is a protocol agnostic library to prepare, sign and broadcast cryptocurrency transactions.

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"use strict"; var __extends = (this && this.__extends) || (function () { var extendStatics = function (d, b) { extendStatics = Object.setPrototypeOf || ({ __proto__: [] } instanceof Array && function (d, b) { d.__proto__ = b; }) || function (d, b) { for (var p in b) if (Object.prototype.hasOwnProperty.call(b, p)) d[p] = b[p]; }; return extendStatics(d, b); }; return function (d, b) { if (typeof b !== "function" && b !== null) throw new TypeError("Class extends value " + String(b) + " is not a constructor or null"); extendStatics(d, b); function __() { this.constructor = d; } d.prototype = b === null ? Object.create(b) : (__.prototype = b.prototype, new __()); }; })(); var __awaiter = (this && this.__awaiter) || function (thisArg, _arguments, P, generator) { function adopt(value) { return value instanceof P ? value : new P(function (resolve) { resolve(value); }); } return new (P || (P = Promise))(function (resolve, reject) { function fulfilled(value) { try { step(generator.next(value)); } catch (e) { reject(e); } } function rejected(value) { try { step(generator["throw"](value)); } catch (e) { reject(e); } } function step(result) { result.done ? resolve(result.value) : adopt(result.value).then(fulfilled, rejected); } step((generator = generator.apply(thisArg, _arguments || [])).next()); }); }; var __generator = (this && this.__generator) || function (thisArg, body) { var _ = { label: 0, sent: function() { if (t[0] & 1) throw t[1]; return t[1]; }, trys: [], ops: [] }, f, y, t, g; return g = { next: verb(0), "throw": verb(1), "return": verb(2) }, typeof Symbol === "function" && (g[Symbol.iterator] = function() { return this; }), g; function verb(n) { return function (v) { return step([n, v]); }; } function step(op) { if (f) throw new TypeError("Generator is already executing."); while (_) try { if (f = 1, y && (t = op[0] & 2 ? y["return"] : op[0] ? y["throw"] || ((t = y["return"]) && t.call(y), 0) : y.next) && !(t = t.call(y, op[1])).done) return t; if (y = 0, t) op = [op[0] & 2, t.value]; switch (op[0]) { case 0: case 1: t = op; break; case 4: _.label++; return { value: op[1], done: false }; case 5: _.label++; y = op[1]; op = [0]; continue; case 7: op = _.ops.pop(); _.trys.pop(); continue; default: if (!(t = _.trys, t = t.length > 0 && t[t.length - 1]) && (op[0] === 6 || op[0] === 2)) { _ = 0; continue; } if (op[0] === 3 && (!t || (op[1] > t[0] && op[1] < t[3]))) { _.label = op[1]; break; } if (op[0] === 6 && _.label < t[1]) { _.label = t[1]; t = op; break; } if (t && _.label < t[2]) { _.label = t[2]; _.ops.push(op); break; } if (t[2]) _.ops.pop(); _.trys.pop(); continue; } op = body.call(thisArg, _); } catch (e) { op = [6, e]; y = 0; } finally { f = t = 0; } if (op[0] & 5) throw op[1]; return { value: op[0] ? op[1] : void 0, done: true }; } }; Object.defineProperty(exports, "__esModule", { value: true }); exports.Ed25519CryptoClient = void 0; var bytes_1 = require("@stablelib/bytes"); var blake2b_1 = require("@stablelib/blake2b"); var ed25519_1 = require("@stablelib/ed25519"); var nacl_1 = require("@stablelib/nacl"); var utf8_1 = require("@stablelib/utf8"); var hex_1 = require("../utils/hex"); var CryptoClient_1 = require("./CryptoClient"); function toHex(value) { return Buffer.from(value).toString('hex'); } var Ed25519CryptoClient = /** @class */ (function (_super) { __extends(Ed25519CryptoClient, _super); function Ed25519CryptoClient() { return _super !== null && _super.apply(this, arguments) || this; } Ed25519CryptoClient.prototype.encryptAsymmetric = function (payload, publicKey) { return __awaiter(this, void 0, void 0, function () { var kxOtherPublicKey, keypair, state, nonce, encryptedMessage; return __generator(this, function (_a) { kxOtherPublicKey = (0, ed25519_1.convertPublicKeyToX25519)(Buffer.from(publicKey, 'hex')); keypair = (0, nacl_1.generateKeyPair)(); state = new blake2b_1.BLAKE2b(24); nonce = state.update(keypair.publicKey, 32).update(kxOtherPublicKey, 32).digest(); encryptedMessage = (0, nacl_1.box)(kxOtherPublicKey, keypair.secretKey, nonce, (0, hex_1.isHex)(payload) ? Buffer.from(payload, 'hex') : (0, utf8_1.encode)(payload)); return [2 /*return*/, toHex((0, bytes_1.concat)(keypair.publicKey, encryptedMessage))]; }); }); }; Ed25519CryptoClient.prototype.decryptAsymmetric = function (encryptedPayload, keypair) { return __awaiter(this, void 0, void 0, function () { var kxSelfPrivateKey, kxSelfPublicKey, encryptedPayloadBytes, kxOtherPublicKey, ciphertext, state, nonce, decryptedMessage; return __generator(this, function (_a) { kxSelfPrivateKey = (0, ed25519_1.convertSecretKeyToX25519)(Buffer.from(keypair.privateKey, 'hex')) // Secret bytes to scalar bytes ; kxSelfPublicKey = (0, ed25519_1.convertPublicKeyToX25519)(Buffer.from(keypair.publicKey, 'hex')) // Secret bytes to scalar bytes ; encryptedPayloadBytes = Buffer.from(encryptedPayload, (0, hex_1.isHex)(encryptedPayload) ? 'hex' : 'utf-8'); kxOtherPublicKey = encryptedPayloadBytes.slice(0, 32); ciphertext = encryptedPayloadBytes.slice(32); state = new blake2b_1.BLAKE2b(24); nonce = state.update(kxOtherPublicKey, 32).update(kxSelfPublicKey, 32).digest(); decryptedMessage = (0, nacl_1.openBox)(kxOtherPublicKey, kxSelfPrivateKey, nonce, ciphertext); if (decryptedMessage === null) { throw new Error('Ed25519 decryption failed.'); } return [2 /*return*/, Buffer.from(decryptedMessage).toString()]; }); }); }; return Ed25519CryptoClient; }(CryptoClient_1.CryptoClient)); exports.Ed25519CryptoClient = Ed25519CryptoClient; //# sourceMappingURL=Ed25519CryptoClient.js.map