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j-bitcoin

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Comprehensive JavaScript cryptocurrency wallet library for Bitcoin (BTC), Bitcoin Cash (BCH), and Bitcoin SV (BSV) with custodial and non-custodial wallet support, threshold signatures, and multiple address formats

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/** * @fileoverview ECDSA (Elliptic Curve Digital Signature Algorithm) implementation * * This module provides ECDSA signature generation and verification using the secp256k1 * elliptic curve, which is the standard curve used in Bitcoin. It includes functionality * for signing messages, verifying signatures, and recovering public keys from signatures. * * @see {@link https://en.bitcoin.it/wiki/Elliptic_Curve_Digital_Signature_Algorithm|ECDSA on Bitcoin Wiki} * @author yfbsei * @version 1.0.0 */ import { secp256k1 } from '@noble/curves/secp256k1'; import { privateKey_decode } from '../utilities/decodeKeys.js'; /** * @typedef {Array} ECDSASignatureResult * @description Array containing signature bytes and recovery ID * @property {Uint8Array} 0 - DER-encoded signature bytes * @property {number} 1 - Recovery ID (0-3) for public key recovery */ /** * ECDSA cryptographic operations for Bitcoin * * Provides comprehensive ECDSA functionality including deterministic signature generation * (RFC 6979), signature verification, and public key recovery. All operations use the * secp256k1 elliptic curve as required by Bitcoin. * * @namespace ECDSA * @example * // Sign a message * const privateKey = "L1vHfV6GUbMJSvFaqjnButzwq5x4ThdFaotpUgsfScwMNKjdGVuS"; * const [signature, recoveryId] = ECDSA.sign(privateKey, "Hello Bitcoin!"); * * // Recover public key from signature * const publicKey = ECDSA.retrieve_public_key("Hello Bitcoin!", signature, recoveryId); * * // Verify signature * const isValid = ECDSA.verify(signature, "Hello Bitcoin!", publicKey); */ const ECDSA = { /** * Signs a message using ECDSA with deterministic k-value generation (RFC 6979) * * The signing process: * 1. Decodes the WIF-encoded private key * 2. Converts the message to a buffer * 3. Generates a deterministic signature using RFC 6979 * 4. Returns both the signature and recovery ID for public key recovery * * @param {string} [private_key="L1vHfV6GUbMJSvFaqjnButzwq5x4ThdFaotpUgsfScwMNKjdGVuS"] - WIF-encoded private key * @param {string} [msg="Hello world"] - Message to sign (will be UTF-8 encoded) * @returns {ECDSASignatureResult} Array containing signature and recovery ID * @throws {Error} If private key is invalid or signing fails * @example * const privateKey = "L1vHfV6GUbMJSvFaqjnButzwq5x4ThdFaotpUgsfScwMNKjdGVuS"; * const message = "Hello Bitcoin!"; * const [signature, recoveryId] = ECDSA.sign(privateKey, message); * * console.log(signature); // Uint8Array with DER-encoded signature * console.log(recoveryId); // Number 0-3 for public key recovery */ sign(private_key = "L1vHfV6GUbMJSvFaqjnButzwq5x4ThdFaotpUgsfScwMNKjdGVuS", msg = "Hello world") { msg = Buffer.from(msg); private_key = privateKey_decode(private_key); const signature = secp256k1.sign(msg, private_key); return [signature.toCompactRawBytes(), signature.recovery || 0]; }, /** * Verifies an ECDSA signature against a message using a public key * * Performs cryptographic verification to ensure that the signature was created * by the holder of the private key corresponding to the given public key. * * @param {Uint8Array|Buffer} sig - DER-encoded signature bytes * @param {string} [msg="Hello World"] - Original message that was signed * @param {Uint8Array|Buffer} public_key - Compressed or uncompressed public key * @returns {boolean} True if signature is valid, false otherwise * @example * const [signature, _] = ECDSA.sign(privateKey, "Hello Bitcoin!"); * const publicKey = ECDSA.retrieve_public_key("Hello Bitcoin!", signature, recoveryId); * const isValid = ECDSA.verify(signature, "Hello Bitcoin!", publicKey); * console.log(isValid); // true * * // Invalid signature * const isInvalid = ECDSA.verify(signature, "Different message", publicKey); * console.log(isInvalid); // false */ verify(sig, msg = "Hello World", public_key) { msg = Buffer.from(msg); return secp256k1.verify(sig, msg, public_key); }, /** * Recovers the public key from a signature and message using the recovery ID * * This function enables public key recovery without prior knowledge of the public key, * which is useful for applications like Ethereum-style address recovery and * signature verification workflows. * * @param {string} [msg="Hello world"] - Original message that was signed * @param {Uint8Array|Buffer} sig - DER-encoded signature bytes * @param {number} [recovery=0] - Recovery ID (0-3) obtained during signing * @returns {Uint8Array} Compressed public key (33 bytes) * @throws {Error} If recovery fails or parameters are invalid * @example * const message = "Hello Bitcoin!"; * const [signature, recoveryId] = ECDSA.sign(privateKey, message); * const recoveredPubKey = ECDSA.retrieve_public_key(message, signature, recoveryId); * * // The recovered public key should match the original * const originalPubKey = getPublicKey(privateKey_decode(privateKey), true); * console.log(Buffer.from(recoveredPubKey).equals(Buffer.from(originalPubKey))); // true */ retrieve_public_key(msg = "Hello world", sig, recovery = 0) { msg = Buffer.from(msg); const signature = secp256k1.Signature.fromCompact(sig).addRecoveryBit(recovery); const point = signature.recoverPublicKey(msg); return point.toRawBytes(true); } } // Example usage demonstrating the complete ECDSA workflow // const // [private_key, message] = ["L1vHfV6GUbMJSvFaqjnButzwq5x4ThdFaotpUgsfScwMNKjdGVuS", "Jamallo"], // [sig, recovery] = ECDSA.sign(private_key, message), // public_key = ECDSA.retrieve_public_key(message, sig, recovery); // ECDSA.verify(sig, message, public_key) // true export default ECDSA;