Add Derive DUKPT AES Key operation (ANSI X9.24-3 AES-128)

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Jacob Marks 2026-05-16 22:37:36 -04:00
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/**
* @license Apache-2.0
* @author Jacob Marks [https://jacobmarks.com]
*/
import forge from "node-forge";
import Operation from "../Operation.mjs";
import OperationError from "../errors/OperationError.mjs";
import { toHexFast } from "../lib/Hex.mjs";
// ── X9.24-3 key usage indicators (bytes 2-3 of derivation data) ───────────────
const KEY_USAGE = {
"IK Derivation": 0x8000, // BDK → device Initial Key
"Intermediate": 0x0000, // internal binary-tree node (not user-visible)
"PIN Encryption": 0x1000,
"MAC Generation": 0x2000, // sender / request direction
"MAC Verification": 0x2001, // receiver / response direction
"MAC Both Ways": 0x2002,
"Data Encryption": 0x3000,
"Data Decryption": 0x3001,
"Data Both Ways": 0x3002,
};
// AES-128 wire constants
const ALGO_CODE = 0x0002; // AES-128 algorithm identifier
const KEY_LEN_VAL = 0x0080; // 128 bits
// CMAC Rb constant for 128-bit block (RFC 4493)
const RB = new Uint8Array(16);
RB[15] = 0x87;
// ── Helpers ───────────────────────────────────────────────────────────────────
function parseHex(hex, expectedBytes, name) {
const h = (hex || "").replace(/\s+/g, "");
if (!/^[0-9a-fA-F]+$/.test(h) || h.length % 2 !== 0)
throw new OperationError(`${name} must be a hex string.`);
const bytes = new Uint8Array(h.length / 2);
for (let i = 0; i < bytes.length; i++)
bytes[i] = parseInt(h.slice(i * 2, i * 2 + 2), 16);
if (expectedBytes && bytes.length !== expectedBytes)
throw new OperationError(`${name} must be ${expectedBytes} bytes (got ${bytes.length}).`);
return bytes;
}
function xor(a, b) {
const out = new Uint8Array(a.length);
for (let i = 0; i < a.length; i++) out[i] = a[i] ^ b[i];
return out;
}
function shiftLeft1(a) {
const out = new Uint8Array(a.length);
for (let i = 0; i < a.length - 1; i++)
out[i] = ((a[i] << 1) | (a[i + 1] >> 7)) & 0xFF;
out[a.length - 1] = (a[a.length - 1] << 1) & 0xFF;
return out;
}
function toByteString(bytes) {
return Array.from(bytes, b => String.fromCharCode(b)).join("");
}
function hex(bytes) {
return toHexFast(bytes).toUpperCase();
}
// ── AES-128 ECB single-block encrypt ─────────────────────────────────────────
// Reuses the forge cipher object across calls (same pattern as CMAC.mjs).
function makeEcbCipher(key16) {
return forge.cipher.createCipher("AES-ECB", toByteString(key16));
}
function ecbBlock(cipher, block16) {
cipher.start();
cipher.update(forge.util.createBuffer(toByteString(block16)));
cipher.finish();
return Uint8Array.from(cipher.output.getBytes(), c => c.charCodeAt(0)).slice(0, 16);
}
// ── AES-CMAC (RFC 4493) ───────────────────────────────────────────────────────
function aesCmac(key16, message) {
const cipher = makeEcbCipher(key16);
// Subkey generation
const L = ecbBlock(cipher, new Uint8Array(16));
const K1 = shiftLeft1(L);
if (L[0] & 0x80) for (let i = 0; i < 16; i++) K1[i] ^= RB[i];
const K2 = shiftLeft1(K1);
if (K1[0] & 0x80) for (let i = 0; i < 16; i++) K2[i] ^= RB[i];
const n = Math.max(1, Math.ceil(message.length / 16));
const flag = message.length > 0 && message.length % 16 === 0;
// Prepare final block
const lastRaw = message.slice((n - 1) * 16);
const lastBlock = new Uint8Array(16);
lastBlock.set(lastRaw);
if (!flag) lastBlock[lastRaw.length] = 0x80; // ISO/IEC 7816-4 padding
const lastXored = xor(lastBlock, flag ? K1 : K2);
// CBC-MAC chain
let X = new Uint8Array(16);
for (let i = 0; i < n - 1; i++)
X = ecbBlock(cipher, xor(X, message.slice(i * 16, (i + 1) * 16)));
return ecbBlock(cipher, xor(X, lastXored));
}
// ── X9.24-3 AES-128 DUKPT derivation ─────────────────────────────────────────
/**
* Builds the 20-byte derivation data block (ANSI X9.24-3-2017).
*
* Layout:
* [0-1] version = 0x0001
* [2-3] key usage indicator
* [4-5] algorithm = 0x0002 (AES-128)
* [6-7] key length = 0x0080 (128 bits)
* [8-15] IKI (8 bytes, from KSN bytes 0-7)
* [16-19] counter register (4 bytes)
*/
function derivationData(usage, iki8, counterReg) {
const d = new Uint8Array(20);
d[0] = 0x00; d[1] = 0x01;
d[2] = (usage >> 8) & 0xFF; d[3] = usage & 0xFF;
d[4] = (ALGO_CODE >> 8) & 0xFF; d[5] = ALGO_CODE & 0xFF;
d[6] = (KEY_LEN_VAL >> 8) & 0xFF; d[7] = KEY_LEN_VAL & 0xFF;
d.set(iki8, 8);
d[16] = (counterReg >>> 24) & 0xFF;
d[17] = (counterReg >>> 16) & 0xFF;
d[18] = (counterReg >>> 8) & 0xFF;
d[19] = counterReg & 0xFF;
return d;
}
/** BDK + IKI → Initial Key loaded into the terminal. */
function deriveIK(bdk16, iki8) {
return aesCmac(bdk16, derivationData(KEY_USAGE["IK Derivation"], iki8, 0));
}
/**
* Binary-tree traversal from IK to the leaf transaction key.
* Uses the 21 usable counter bits (bits 20-0 of the 4-byte counter field).
*/
function deriveTransactionKey(ik16, iki8, counter) {
const usable = counter & 0x1FFFFF;
if (usable === 0) throw new OperationError(
"Counter 0 is reserved — no transactions have occurred yet."
);
if (usable === 0x1FFFFF) throw new OperationError(
"Counter 0x1FFFFF indicates key exhaustion — this terminal needs a new IK."
);
let key = Uint8Array.from(ik16);
let reg = 0;
for (let bit = 20; bit >= 0; bit--) {
if (usable & (1 << bit)) {
reg |= (1 << bit);
key = aesCmac(key, derivationData(KEY_USAGE["Intermediate"], iki8, reg));
}
}
return key;
}
/** Transaction key + purpose → purpose-specific working key. */
function deriveWorkingKey(txKey16, iki8, counter, purposeName) {
return aesCmac(txKey16, derivationData(KEY_USAGE[purposeName], iki8, counter & 0x1FFFFF));
}
// ── Operation class ───────────────────────────────────────────────────────────
/**
* Derive DUKPT AES Key operation.
*/
class DeriveDUKPTAESKey extends Operation {
constructor() {
super();
this.name = "Derive DUKPT AES Key";
this.module = "Payment";
this.description = [
"Derives AES DUKPT working keys per <b>ANSI X9.24-3</b> (AES-128).",
"<br><br>",
"<b>Input:</b> 16-byte BDK as hex, or the 16-byte Initial Key (IK) if you already have it.",
"<br><br>",
"The <b>KSN</b> is 12 bytes: 8-byte Initial Key Identifier (IKI) + 4-byte transaction counter.",
"Only the low 21 bits of the counter are used for derivation (max 2,097,151 transactions per IK).",
"<br><br>",
"<b>Derivation data format (X9.24-3, 20 bytes):</b>",
"<pre>",
"[0-1] version = 0x0001\n",
"[2-3] key usage indicator\n",
"[4-5] algorithm = 0x0002 (AES-128)\n",
"[6-7] key length = 0x0080 (128 bits)\n",
"[8-15] IKI (8 bytes from KSN)\n",
"[16-19] counter register (4 bytes)\n",
"</pre>",
"<b>Key usage codes:</b> PIN Encryption=0x1000, MAC Generation=0x2000, ",
"MAC Verification=0x2001, MAC Both Ways=0x2002, ",
"Data Encryption=0x3000, Data Decryption=0x3001, Data Both Ways=0x3002.",
"<br><br>",
"AES-192 and AES-256 require a multi-block KDF and are not implemented here.",
" Cross-verify results against KABC (kabc.ca/payment/dukptaes) or the X9.24-3 annex test vectors.",
].join("");
this.inlineHelp = [
"<strong>Input:</strong> BDK hex (16 bytes) or IK hex (16 bytes).",
"<strong>KSN:</strong> 24 hex chars = 8-byte IKI + 4-byte counter.",
].join(" ");
this.testDataSamples = [
{
name: "Derive IK from BDK",
input: "FEDCBA9876543210F1F1F1F1F1F1F1F1",
args: ["BDK", "Derive IK", "123456789012345600000001", "PIN Encryption", false],
},
];
this.infoURL = "https://www.eftlab.com/knowledge-base/dukpt-aes";
this.inputType = "string";
this.outputType = "string";
this.args = [
{
name: "Input key type",
type: "option",
value: ["BDK", "Initial Key (IK)"],
},
{
name: "Derive",
type: "option",
value: ["Initial Key (IK)", "Working Key"],
},
{
name: "KSN (24 hex chars — 8-byte IKI + 4-byte counter)",
type: "string",
value: "",
},
{
name: "Key purpose",
type: "option",
value: [
"PIN Encryption",
"MAC Generation",
"MAC Verification",
"MAC Both Ways",
"Data Encryption",
"Data Decryption",
"Data Both Ways",
],
},
{
name: "Output as JSON",
type: "boolean",
value: false,
},
];
}
/**
* @param {string} input
* @param {Object[]} args
* @returns {string}
*/
run(input, args) {
const [inputKeyType, deriveMode, ksnHex, purpose, outputJson] = args;
const inputKey = parseHex(input, 16, "Input key");
const ksn = parseHex(ksnHex, 12, "KSN");
const iki = ksn.slice(0, 8);
const counter = (ksn[8] << 24 | ksn[9] << 16 | ksn[10] << 8 | ksn[11]) >>> 0;
// Resolve IK
const ik = inputKeyType === "BDK" ? deriveIK(inputKey, iki) : Uint8Array.from(inputKey);
if (deriveMode === "Initial Key (IK)") {
if (outputJson) {
const out = { inputKeyType, ik: hex(ik) };
if (inputKeyType === "BDK") out.bdk = hex(inputKey);
return JSON.stringify(out, null, 4);
}
return hex(ik);
}
// Derive working key
const txKey = deriveTransactionKey(ik, iki, counter);
const wkKey = deriveWorkingKey(txKey, iki, counter, purpose);
if (outputJson) {
const out = { inputKeyType, iki: hex(iki), counter: `0x${counter.toString(16).padStart(8, "0").toUpperCase()}` };
if (inputKeyType === "BDK") out.bdk = hex(inputKey);
out.ik = hex(ik);
out.transactionKey = hex(txKey);
out.purpose = purpose;
out.workingKey = hex(wkKey);
return JSON.stringify(out, null, 4);
}
return hex(wkKey);
}
}
export default DeriveDUKPTAESKey;