forked from olcxjas-softworks/LarpixClient
517 lines
No EOL
23 KiB
JavaScript
517 lines
No EOL
23 KiB
JavaScript
/**
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* Argon2 KDF from RFC 9106. Can be used to create a key from password and salt.
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* We suggest to use Scrypt. JS Argon is 2-10x slower than native code because of 64-bitness:
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* * argon uses uint64, but JS doesn't have fast uint64array
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* * uint64 multiplication is 1/3 of time
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* * `P` function would be very nice with u64, because most of value will be in registers,
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* hovewer with u32 it will require 32 registers, which is too much.
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* * JS arrays do slow bound checks, so reading from `A2_BUF` slows it down
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* @module
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*/
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import { add3H, add3L, rotr32H, rotr32L, rotrBH, rotrBL, rotrSH, rotrSL } from "./_u64.js";
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import { blake2b } from "./blake2.js";
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import { anumber, clean, kdfInputToBytes, nextTick, swap32IfBE, swap8IfBE, u32, u8, } from "./utils.js";
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// RFC 9106 §3.1 type `y`: 0 = Argon2d, 1 = Argon2i, 2 = Argon2id. The numeric values are the
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// spec-bound part here; the object keys are internal labels.
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const AT = { Argond2d: 0, Argon2i: 1, Argon2id: 2 };
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// RFC 9106 sync points constant `SL = 4`, fixed by the design rather than exposed as a tuning knob.
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const ARGON2_SYNC_POINTS = 4;
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// Preserve Argon2's `LE32(len(X)) || X` encoding for omitted
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// optional fields by emitting empty bytes.
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const abytesOrZero = (buf, errorTitle = '') => {
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if (buf === undefined)
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return Uint8Array.of();
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return kdfInputToBytes(buf, errorTitle);
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};
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// Unsigned `u32 * u32 = { h, l }`, returned as split 64-bit halves.
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function mul(a, b) {
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// Split into 16-bit limbs so each partial product stays exact under `Math.imul`.
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const aL = a & 0xffff;
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const aH = a >>> 16;
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const bL = b & 0xffff;
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const bH = b >>> 16;
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const ll = Math.imul(aL, bL);
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const hl = Math.imul(aH, bL);
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const lh = Math.imul(aL, bH);
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const hh = Math.imul(aH, bH);
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const carry = (ll >>> 16) + (hl & 0xffff) + lh;
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const high = (hh + (hl >>> 16) + (carry >>> 16)) | 0;
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const low = (carry << 16) | (ll & 0xffff);
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return { h: high, l: low };
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}
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function mul2(a, b) {
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// Double the split 64-bit product; carry from `l` is folded back into `h` via `l >>> 31`.
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const { h, l } = mul(a, b);
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return { h: ((h << 1) | (l >>> 31)) & 0xffff_ffff, l: (l << 1) & 0xffff_ffff };
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}
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// BlaMka permutation for Argon2
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// `A + B + 2 * trunc(A) * trunc(B)`, where `trunc(...)` means the low 32-bit halves.
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function blamka(Ah, Al, Bh, Bl) {
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const { h: Ch, l: Cl } = mul2(Al, Bl);
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// A + B + (2 * A * B)
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const Rll = add3L(Al, Bl, Cl);
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return { h: add3H(Rll, Ah, Bh, Ch), l: Rll | 0 };
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}
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// Temporary block buffer.
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// 1024-byte block: 256 u32 = 128 interleaved low/high halves = RFC's
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// 8x8 matrix of 16-byte registers.
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const A2_BUF = new Uint32Array(256);
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// Quarter-round over 64-bit word indices into `A2_BUF`; each index maps to adjacent low/high u32s.
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function G(a, b, c, d) {
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let Al = A2_BUF[2 * a], Ah = A2_BUF[2 * a + 1]; // prettier-ignore
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let Bl = A2_BUF[2 * b], Bh = A2_BUF[2 * b + 1]; // prettier-ignore
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let Cl = A2_BUF[2 * c], Ch = A2_BUF[2 * c + 1]; // prettier-ignore
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let Dl = A2_BUF[2 * d], Dh = A2_BUF[2 * d + 1]; // prettier-ignore
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// RFC 9106 Figure 19 GB rotates by 32, 24, 16, and 63 bits after each XOR step.
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({ h: Ah, l: Al } = blamka(Ah, Al, Bh, Bl));
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({ Dh, Dl } = { Dh: Dh ^ Ah, Dl: Dl ^ Al });
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({ Dh, Dl } = { Dh: rotr32H(Dh, Dl), Dl: rotr32L(Dh, Dl) });
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({ h: Ch, l: Cl } = blamka(Ch, Cl, Dh, Dl));
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({ Bh, Bl } = { Bh: Bh ^ Ch, Bl: Bl ^ Cl });
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({ Bh, Bl } = { Bh: rotrSH(Bh, Bl, 24), Bl: rotrSL(Bh, Bl, 24) });
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({ h: Ah, l: Al } = blamka(Ah, Al, Bh, Bl));
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({ Dh, Dl } = { Dh: Dh ^ Ah, Dl: Dl ^ Al });
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({ Dh, Dl } = { Dh: rotrSH(Dh, Dl, 16), Dl: rotrSL(Dh, Dl, 16) });
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({ h: Ch, l: Cl } = blamka(Ch, Cl, Dh, Dl));
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({ Bh, Bl } = { Bh: Bh ^ Ch, Bl: Bl ^ Cl });
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({ Bh, Bl } = { Bh: rotrBH(Bh, Bl, 63), Bl: rotrBL(Bh, Bl, 63) });
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((A2_BUF[2 * a] = Al), (A2_BUF[2 * a + 1] = Ah));
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((A2_BUF[2 * b] = Bl), (A2_BUF[2 * b + 1] = Bh));
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((A2_BUF[2 * c] = Cl), (A2_BUF[2 * c + 1] = Ch));
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((A2_BUF[2 * d] = Dl), (A2_BUF[2 * d + 1] = Dh));
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}
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// Argon2 permutation over 16 register indices into `A2_BUF`, not the register values themselves.
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// RFC 9106 Figure 17: these arguments are the 16 `v0..v15` 64-bit word
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// indices inside eight 16-byte inputs, not copied word values.
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// prettier-ignore
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function P(v00, v01, v02, v03, v04, v05, v06, v07, v08, v09, v10, v11, v12, v13, v14, v15) {
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// RFC 9106 Figure 18: first apply GB across rows, then across columns of the 8x8 register matrix.
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G(v00, v04, v08, v12);
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G(v01, v05, v09, v13);
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G(v02, v06, v10, v14);
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G(v03, v07, v11, v15);
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G(v00, v05, v10, v15);
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G(v01, v06, v11, v12);
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G(v02, v07, v08, v13);
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G(v03, v04, v09, v14);
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}
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function block(x, xPos, yPos, outPos, needXor) {
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for (let i = 0; i < 256; i++)
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A2_BUF[i] = x[xPos + i] ^ x[yPos + i];
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// rows (8 consecutive 16-register groups)
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for (let i = 0; i < 128; i += 16) {
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// prettier-ignore
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P(i, i + 1, i + 2, i + 3, i + 4, i + 5, i + 6, i + 7, i + 8, i + 9, i + 10, i + 11, i + 12, i + 13, i + 14, i + 15);
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}
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// columns (8 strided 16-register groups)
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for (let i = 0; i < 16; i += 2) {
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// prettier-ignore
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P(i, i + 1, i + 16, i + 17, i + 32, i + 33, i + 48, i + 49, i + 64, i + 65, i + 80, i + 81, i + 96, i + 97, i + 112, i + 113);
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}
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// RFC 9106 step 6: passes after the first XOR the old destination block into the new G(X, Y).
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if (needXor)
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for (let i = 0; i < 256; i++)
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x[outPos + i] ^= A2_BUF[i] ^ x[xPos + i] ^ x[yPos + i];
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else
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for (let i = 0; i < 256; i++)
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x[outPos + i] = A2_BUF[i] ^ x[xPos + i] ^ x[yPos + i];
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clean(A2_BUF);
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}
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// Variable-Length Hash Function H'
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// Returns bytes, not words; 1024-byte block callers explicitly reinterpret with `u32(...)`.
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function Hp(A, dkLen) {
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const A8 = u8(A);
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const T = new Uint32Array(1);
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const T8 = u8(T);
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// Argon2 H' prefixes dkLen as LE32; native Uint32Array writes would serialize as BE on s390x.
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T[0] = swap8IfBE(dkLen);
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// Fast path
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if (dkLen <= 64)
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return blake2b.create({ dkLen }).update(T8).update(A8).digest();
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const out = new Uint8Array(dkLen);
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let V = blake2b.create({}).update(T8).update(A8).digest();
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let pos = 0;
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// RFC 9106 Figure 8: each intermediate `V_i` contributes only `W_i`, its first 32 bytes; only
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// `V_{r+1}` is emitted in full at the remaining length.
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out.set(V.subarray(0, 32));
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pos += 32;
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// Rest blocks
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for (; dkLen - pos > 64; pos += 32) {
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const Vh = blake2b.create({}).update(V);
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Vh.digestInto(V);
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Vh.destroy();
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out.set(V.subarray(0, 32), pos);
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}
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// Last block
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out.set(blake2b(V, { dkLen: dkLen - pos }), pos);
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clean(V, T);
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// H' is byte-oriented; returning `u32(out)` would silently drop dkLen % 4 tail bytes.
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return out;
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}
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// Used only inside process block!
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function indexAlpha(r, s, laneLen, segmentLen, index, randL, sameLane = false) {
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// RFC 9106 §3.4.2 Figures 12-13: map `J1` / `J2` into the current lane's reference area `W`.
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let area;
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if (r === 0) {
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if (s === 0)
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area = index - 1;
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else if (sameLane)
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area = s * segmentLen + index - 1;
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else
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area = s * segmentLen + (index == 0 ? -1 : 0);
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}
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else if (sameLane)
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area = laneLen - segmentLen + index - 1;
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else
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area = laneLen - segmentLen + (index == 0 ? -1 : 0);
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const startPos = r !== 0 && s !== ARGON2_SYNC_POINTS - 1 ? (s + 1) * segmentLen : 0;
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// RFC 9106 Figure 13: `mul(randL, randL).h` is `floor(J_1^2 / 2^32)`, and the outer high-half
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// multiply computes `floor(|W| * x / 2^32)` without floating-point math.
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const rel = area - 1 - mul(area, mul(randL, randL).h).h;
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return (startPos + rel) % laneLen;
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}
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// Exclusive `2^32` sentinel used by `isU32(...)`, not the inclusive maximum u32 value.
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const maxUint32 = Math.pow(2, 32);
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// Validate safe JS integers in `[0, 2^32 - 1]`.
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function isU32(num) {
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return Number.isSafeInteger(num) && num >= 0 && num < maxUint32;
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}
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function argon2Opts(opts) {
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const merged = {
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version: 0x13,
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dkLen: 32,
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maxmem: maxUint32 - 1,
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asyncTick: 10,
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};
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// Unknown keys are copied through unchanged here and later ignored unless
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// destructuring consumes them.
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for (let [k, v] of Object.entries(opts))
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if (v !== undefined)
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merged[k] = v;
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const { dkLen, p, m, t, version, onProgress, asyncTick } = merged;
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// RFC 9106 §3.1: tag length `T` MUST be an integer number of bytes from 4 to 2^32-1.
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if (!isU32(dkLen) || dkLen < 4)
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throw new Error('"dkLen" must be 4..');
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if (!isU32(p) || p < 1 || p >= Math.pow(2, 24))
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throw new Error('"p" must be 1..2^24');
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if (!isU32(m))
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throw new Error('"m" must be 0..2^32');
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if (!isU32(t) || t < 1)
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throw new Error('"t" (iterations) must be 1..2^32');
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if (onProgress !== undefined && typeof onProgress !== 'function')
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throw new Error('"progressCb" must be a function');
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anumber(asyncTick, 'asyncTick');
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/*
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Memory size m MUST be an integer number of kibibytes from 8*p
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to 2^(32)-1. The actual number of blocks is m', which is m
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rounded down to the nearest multiple of 4*p.
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*/
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if (!isU32(m) || m < 8 * p)
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throw new Error('"m" (memory) must be at least 8*p bytes');
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// Accept legacy `0x10` for compatibility even though RFC 9106 profiles standardize `0x13`.
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if (version !== 0x10 && version !== 0x13)
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throw new Error('"version" must be 0x10 or 0x13, got ' + version);
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return merged;
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}
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function argon2Init(password, salt, type, opts) {
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password = kdfInputToBytes(password, 'password');
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salt = kdfInputToBytes(salt, 'salt');
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if (!isU32(password.length))
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throw new Error('"password" must be less of length 1..4Gb');
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// RFC 9106 §3.1 only requires S <= 2^32-1 bytes and says 16 bytes is RECOMMENDED for password
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// hashing; this library intentionally takes the stricter common >=8-byte salt path.
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if (!isU32(salt.length) || salt.length < 8)
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throw new Error('"salt" must be of length 8..4Gb');
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if (!Object.values(AT).includes(type))
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throw new Error('"type" was invalid');
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let { p, dkLen, m, t, version, key, personalization, maxmem, onProgress, asyncTick } = argon2Opts(opts);
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// Validation
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key = abytesOrZero(key, 'key');
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personalization = abytesOrZero(personalization, 'personalization');
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// H_0 = H^(64)(LE32(p) || LE32(T) || LE32(m) || LE32(t) ||
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// LE32(v) || LE32(y) || LE32(length(P)) || P ||
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// LE32(length(S)) || S || LE32(length(K)) || K ||
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// LE32(length(X)) || X)
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const h = blake2b.create();
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const BUF = new Uint32Array(1);
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const BUF8 = u8(BUF);
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for (let item of [p, dkLen, m, t, version, type]) {
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// RFC 9106 H0 encodes these scalars as LE32, so normalize the host word before exposing bytes.
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BUF[0] = swap8IfBE(item);
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h.update(BUF8);
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}
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for (let i of [password, salt, key, personalization]) {
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BUF[0] = swap8IfBE(i.length); // BUF is u32 array, this is valid once normalized to LE bytes
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h.update(BUF8).update(i);
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}
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// Reserve two extra LE32 words after the 64-byte `H_0` so Figures 3-4 can append
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// `LE32(0 or 1) || LE32(i)` in place for the lane-starting blocks.
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const H0 = new Uint32Array(18);
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const H0_8 = u8(H0);
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h.digestInto(H0_8);
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// 256 u32 = 1024 (BLOCK_SIZE), fills A2_BUF on processing
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// Params
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const lanes = p;
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// m' = 4 * p * floor (m / 4p)
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const mP = 4 * p * Math.floor(m / (ARGON2_SYNC_POINTS * p));
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//q = m' / p columns
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const laneLen = Math.floor(mP / p);
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const segmentLen = Math.floor(laneLen / ARGON2_SYNC_POINTS);
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// `maxmem` is documented in bytes; compare against the actual 1024-byte block allocation.
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const memUsed = mP * 1024;
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if (!isU32(maxmem))
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throw new Error('"maxmem" expected <2**32, got ' + maxmem);
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if (memUsed > maxmem)
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throw new Error('"maxmem" limit was hit: memUsed(mP*1024)=' + memUsed + ', maxmem=' + maxmem);
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const B = new Uint32Array(memUsed / 4);
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// Fill first blocks
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for (let l = 0; l < p; l++) {
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const i = 256 * laneLen * l;
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// B[i][0] = H'^(1024)(H_0 || LE32(0) || LE32(i))
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H0[17] = swap8IfBE(l);
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H0[16] = swap8IfBE(0);
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B.set(swap32IfBE(u32(Hp(H0, 1024))), i);
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// B[i][1] = H'^(1024)(H_0 || LE32(1) || LE32(i))
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H0[16] = swap8IfBE(1);
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B.set(swap32IfBE(u32(Hp(H0, 1024))), i + 256);
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}
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let perBlock = () => { };
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if (onProgress) {
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// The first segment of the first pass skips two preinitialized blocks per lane.
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const totalBlock = t * ARGON2_SYNC_POINTS * p * segmentLen - 2 * p;
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// Invoke callback if progress changes from 10.01 to 10.02
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// Allows to draw smooth progress bar on up to 8K screen
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const callbackPer = Math.max(Math.floor(totalBlock / 10000), 1);
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let blockCnt = 0;
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perBlock = () => {
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blockCnt++;
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if (onProgress && (!(blockCnt % callbackPer) || blockCnt === totalBlock))
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onProgress(blockCnt / totalBlock);
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};
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}
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clean(BUF, H0);
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return { type, mP, p, t, version, B, laneLen, lanes, segmentLen, dkLen, perBlock, asyncTick };
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}
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function argon2Output(B, p, laneLen, dkLen) {
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const B_final = new Uint32Array(256);
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for (let l = 0; l < p; l++)
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for (let j = 0; j < 256; j++)
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B_final[j] ^= B[256 * (laneLen * l + laneLen - 1) + j];
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// RFC 9106 steps 7-8 feed the byte string `C` into `H'^T(C)`, so normalize the xor'ed words
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// back to spec byte order before `Hp(...)` reinterprets them as bytes.
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const res = Hp(swap32IfBE(B_final), dkLen);
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// Wipe both the xor scratch and the full working matrix once final digest bytes exist.
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// JS cleanup is still only best-effort, but this local buffer is no longer needed here.
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clean(B, B_final);
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return res;
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}
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function processBlock(B, address, l, r, s, index, laneLen, segmentLen, lanes, offset, prev, dataIndependent, needXor) {
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if (offset % laneLen)
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prev = offset - 1;
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let randL, randH;
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if (dataIndependent) {
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let i128 = index % 128;
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// RFC 9106 §3.4.1.2: each 1024-byte address block yields 128 `(J1, J2)` pairs, so regenerate
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// it whenever the segment index crosses a multiple of 128.
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if (i128 === 0) {
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address[256 + 12]++;
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block(address, 256, 2 * 256, 0, false);
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block(address, 0, 2 * 256, 0, false);
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}
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randL = address[2 * i128];
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randH = address[2 * i128 + 1];
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}
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else {
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const T = 256 * prev;
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randL = B[T];
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randH = B[T + 1];
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}
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// Address-block path selects `J1` / `J2`, then maps them to the reference
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// lane/block per RFC 9106 §3.4.
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const refLane = r === 0 && s === 0 ? l : randH % lanes;
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const refPos = indexAlpha(r, s, laneLen, segmentLen, index, randL, refLane == l);
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const refBlock = laneLen * refLane + refPos;
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// B[i][j] = G(B[i][j-1], B[l][z])
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block(B, 256 * prev, 256 * refBlock, offset * 256, needXor);
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}
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function argon2(type, password, salt, opts) {
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const { mP, p, t, version, B, laneLen, lanes, segmentLen, dkLen, perBlock } = argon2Init(password, salt, type, opts);
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// Pre-loop setup
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// [address, input, zero_block] format so we can pass single U32 to block function
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const address = new Uint32Array(3 * 256);
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address[256 + 6] = mP;
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address[256 + 8] = t;
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address[256 + 10] = type;
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for (let r = 0; r < t; r++) {
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// RFC 9106 step 6 applies the XOR-on-later-passes rule only for version `0x13`; legacy
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// `0x10` keeps the older overwrite behavior used by the v16 test vectors.
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const needXor = r !== 0 && version === 0x13;
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address[256 + 0] = r;
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for (let s = 0; s < ARGON2_SYNC_POINTS; s++) {
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address[256 + 4] = s;
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// RFC 9106 §3.4.1.3: Argon2id uses Argon2i's data-independent `J1` / `J2` generation only
|
|
// in pass 0, slices 0 and 1; Argon2i uses it in every segment.
|
|
const dataIndependent = type == AT.Argon2i || (type == AT.Argon2id && r === 0 && s < 2);
|
|
for (let l = 0; l < p; l++) {
|
|
address[256 + 2] = l;
|
|
address[256 + 12] = 0;
|
|
let startPos = 0;
|
|
if (r === 0 && s === 0) {
|
|
startPos = 2;
|
|
if (dataIndependent) {
|
|
address[256 + 12]++;
|
|
block(address, 256, 2 * 256, 0, false);
|
|
block(address, 0, 2 * 256, 0, false);
|
|
}
|
|
}
|
|
// current block postion
|
|
let offset = l * laneLen + s * segmentLen + startPos;
|
|
// previous block position
|
|
let prev = offset % laneLen ? offset - 1 : offset + laneLen - 1;
|
|
for (let index = startPos; index < segmentLen; index++, offset++, prev++) {
|
|
perBlock();
|
|
processBlock(B, address, l, r, s, index, laneLen, segmentLen, lanes, offset, prev, dataIndependent, needXor);
|
|
}
|
|
}
|
|
}
|
|
}
|
|
clean(address);
|
|
return argon2Output(B, p, laneLen, dkLen);
|
|
}
|
|
/**
|
|
* Argon2d GPU-resistant version.
|
|
* @param password - password or input key material
|
|
* @param salt - unique salt value
|
|
* @param opts - Argon2 cost and optional tuning parameters. See {@link ArgonOpts}.
|
|
* @returns Derived key bytes.
|
|
* @throws If the Argon2 input or cost parameters are invalid. {@link Error}
|
|
* @example
|
|
* Derive a key with Argon2d.
|
|
* ```ts
|
|
* argon2d('password', 'salt1234', { t: 1, m: 8, p: 1, dkLen: 32 });
|
|
* ```
|
|
*/
|
|
export const argon2d = (password, salt, opts) => argon2(AT.Argond2d, password, salt, opts);
|
|
/**
|
|
* Argon2i side-channel-resistant version.
|
|
* @param password - password or input key material
|
|
* @param salt - unique salt value
|
|
* @param opts - Argon2 cost and optional tuning parameters. See {@link ArgonOpts}.
|
|
* @returns Derived key bytes.
|
|
* @throws If the Argon2 input or cost parameters are invalid. {@link Error}
|
|
* @example
|
|
* Derive a key with Argon2i.
|
|
* ```ts
|
|
* argon2i('password', 'salt1234', { t: 1, m: 8, p: 1, dkLen: 32 });
|
|
* ```
|
|
*/
|
|
export const argon2i = (password, salt, opts) => argon2(AT.Argon2i, password, salt, opts);
|
|
/**
|
|
* Argon2id, combining i+d, the most popular version from RFC 9106.
|
|
* @param password - password or input key material
|
|
* @param salt - unique salt value
|
|
* @param opts - Argon2 cost and optional tuning parameters. See {@link ArgonOpts}.
|
|
* @returns Derived key bytes.
|
|
* @throws If the Argon2 input or cost parameters are invalid. {@link Error}
|
|
* @example
|
|
* Derive a key with Argon2id.
|
|
* ```ts
|
|
* argon2id('password', 'salt1234', { t: 1, m: 8, p: 1, dkLen: 32 });
|
|
* ```
|
|
*/
|
|
export const argon2id = (password, salt, opts) => argon2(AT.Argon2id, password, salt, opts);
|
|
async function argon2Async(type, password, salt, opts) {
|
|
const { mP, p, t, version, B, laneLen, lanes, segmentLen, dkLen, perBlock, asyncTick } = argon2Init(password, salt, type, opts);
|
|
// Pre-loop setup
|
|
// [address, input, zero_block] format so we can pass single U32 to block function
|
|
const address = new Uint32Array(3 * 256);
|
|
address[256 + 6] = mP;
|
|
address[256 + 8] = t;
|
|
address[256 + 10] = type;
|
|
let ts = Date.now();
|
|
for (let r = 0; r < t; r++) {
|
|
// RFC 9106 step 6 applies the XOR-on-later-passes rule only for version `0x13`; legacy
|
|
// `0x10` keeps the older overwrite behavior used by the v16 test vectors.
|
|
const needXor = r !== 0 && version === 0x13;
|
|
address[256 + 0] = r;
|
|
for (let s = 0; s < ARGON2_SYNC_POINTS; s++) {
|
|
address[256 + 4] = s;
|
|
// RFC 9106 §3.4.1.3: Argon2id uses Argon2i's data-independent `J1` / `J2` generation only
|
|
// in pass 0, slices 0 and 1; Argon2i uses it in every segment.
|
|
const dataIndependent = type == AT.Argon2i || (type == AT.Argon2id && r === 0 && s < 2);
|
|
for (let l = 0; l < p; l++) {
|
|
address[256 + 2] = l;
|
|
address[256 + 12] = 0;
|
|
let startPos = 0;
|
|
if (r === 0 && s === 0) {
|
|
startPos = 2;
|
|
if (dataIndependent) {
|
|
address[256 + 12]++;
|
|
block(address, 256, 2 * 256, 0, false);
|
|
block(address, 0, 2 * 256, 0, false);
|
|
}
|
|
}
|
|
// current block postion
|
|
let offset = l * laneLen + s * segmentLen + startPos;
|
|
// previous block position
|
|
let prev = offset % laneLen ? offset - 1 : offset + laneLen - 1;
|
|
for (let index = startPos; index < segmentLen; index++, offset++, prev++) {
|
|
perBlock();
|
|
processBlock(B, address, l, r, s, index, laneLen, segmentLen, lanes, offset, prev, dataIndependent, needXor);
|
|
// Date.now() is not monotonic. If the clock goes backwards,
|
|
// still yield control.
|
|
const diff = Date.now() - ts;
|
|
if (!(diff >= 0 && diff < asyncTick)) {
|
|
await nextTick();
|
|
ts += diff;
|
|
}
|
|
}
|
|
}
|
|
}
|
|
}
|
|
clean(address);
|
|
return argon2Output(B, p, laneLen, dkLen);
|
|
}
|
|
/**
|
|
* Argon2d async GPU-resistant version.
|
|
* @param password - password or input key material
|
|
* @param salt - unique salt value
|
|
* @param opts - Argon2 cost and optional tuning parameters. See {@link ArgonOpts}.
|
|
* @returns Promise resolving to derived key bytes.
|
|
* @throws If the Argon2 input or cost parameters are invalid. {@link Error}
|
|
* @example
|
|
* Derive a key with Argon2d asynchronously.
|
|
* ```ts
|
|
* await argon2dAsync('password', 'salt1234', { t: 1, m: 8, p: 1, dkLen: 32 });
|
|
* ```
|
|
*/
|
|
export const argon2dAsync = (password, salt, opts) => argon2Async(AT.Argond2d, password, salt, opts);
|
|
/**
|
|
* Argon2i async side-channel-resistant version.
|
|
* @param password - password or input key material
|
|
* @param salt - unique salt value
|
|
* @param opts - Argon2 cost and optional tuning parameters. See {@link ArgonOpts}.
|
|
* @returns Promise resolving to derived key bytes.
|
|
* @throws If the Argon2 input or cost parameters are invalid. {@link Error}
|
|
* @example
|
|
* Derive a key with Argon2i asynchronously.
|
|
* ```ts
|
|
* await argon2iAsync('password', 'salt1234', { t: 1, m: 8, p: 1, dkLen: 32 });
|
|
* ```
|
|
*/
|
|
export const argon2iAsync = (password, salt, opts) => argon2Async(AT.Argon2i, password, salt, opts);
|
|
/**
|
|
* Argon2id async, combining i+d, the most popular version from RFC 9106.
|
|
* @param password - password or input key material
|
|
* @param salt - unique salt value
|
|
* @param opts - Argon2 cost and optional tuning parameters. See {@link ArgonOpts}.
|
|
* @returns Promise resolving to derived key bytes.
|
|
* @throws If the Argon2 input or cost parameters are invalid. {@link Error}
|
|
* @example
|
|
* Derive a key with Argon2id asynchronously.
|
|
* ```ts
|
|
* await argon2idAsync('password', 'salt1234', { t: 1, m: 8, p: 1, dkLen: 32 });
|
|
* ```
|
|
*/
|
|
export const argon2idAsync = (password, salt, opts) => argon2Async(AT.Argon2id, password, salt, opts);
|
|
//# sourceMappingURL=argon2.js.map
|