mirror of
https://github.com/zadam/trilium.git
synced 2025-03-01 14:22:32 +01:00
453 lines
16 KiB
JavaScript
453 lines
16 KiB
JavaScript
"use strict";
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(function(root) {
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var MAX_VALUE = 0x7fffffff;
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// The SHA256 and PBKDF2 implementation are from scrypt-async-js:
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// See: https://github.com/dchest/scrypt-async-js
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function SHA256(m) {
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var K = [
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0x428a2f98, 0x71374491, 0xb5c0fbcf, 0xe9b5dba5, 0x3956c25b,
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0x59f111f1, 0x923f82a4, 0xab1c5ed5, 0xd807aa98, 0x12835b01,
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0x243185be, 0x550c7dc3, 0x72be5d74, 0x80deb1fe, 0x9bdc06a7,
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0xc19bf174, 0xe49b69c1, 0xefbe4786, 0x0fc19dc6, 0x240ca1cc,
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0x2de92c6f, 0x4a7484aa, 0x5cb0a9dc, 0x76f988da, 0x983e5152,
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0xa831c66d, 0xb00327c8, 0xbf597fc7, 0xc6e00bf3, 0xd5a79147,
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0x06ca6351, 0x14292967, 0x27b70a85, 0x2e1b2138, 0x4d2c6dfc,
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0x53380d13, 0x650a7354, 0x766a0abb, 0x81c2c92e, 0x92722c85,
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0xa2bfe8a1, 0xa81a664b, 0xc24b8b70, 0xc76c51a3, 0xd192e819,
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0xd6990624, 0xf40e3585, 0x106aa070, 0x19a4c116, 0x1e376c08,
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0x2748774c, 0x34b0bcb5, 0x391c0cb3, 0x4ed8aa4a, 0x5b9cca4f,
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0x682e6ff3, 0x748f82ee, 0x78a5636f, 0x84c87814, 0x8cc70208,
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0x90befffa, 0xa4506ceb, 0xbef9a3f7, 0xc67178f2
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];
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var h0 = 0x6a09e667, h1 = 0xbb67ae85, h2 = 0x3c6ef372, h3 = 0xa54ff53a;
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var h4 = 0x510e527f, h5 = 0x9b05688c, h6 = 0x1f83d9ab, h7 = 0x5be0cd19;
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var w = new Array(64);
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function blocks(p) {
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var off = 0, len = p.length;
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while (len >= 64) {
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var a = h0, b = h1, c = h2, d = h3, e = h4, f = h5, g = h6, h = h7, u, i, j, t1, t2;
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for (i = 0; i < 16; i++) {
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j = off + i*4;
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w[i] = ((p[j] & 0xff)<<24) | ((p[j+1] & 0xff)<<16) |
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((p[j+2] & 0xff)<<8) | (p[j+3] & 0xff);
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}
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for (i = 16; i < 64; i++) {
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u = w[i-2];
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t1 = ((u>>>17) | (u<<(32-17))) ^ ((u>>>19) | (u<<(32-19))) ^ (u>>>10);
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u = w[i-15];
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t2 = ((u>>>7) | (u<<(32-7))) ^ ((u>>>18) | (u<<(32-18))) ^ (u>>>3);
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w[i] = (((t1 + w[i-7]) | 0) + ((t2 + w[i-16]) | 0)) | 0;
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}
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for (i = 0; i < 64; i++) {
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t1 = ((((((e>>>6) | (e<<(32-6))) ^ ((e>>>11) | (e<<(32-11))) ^
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((e>>>25) | (e<<(32-25)))) + ((e & f) ^ (~e & g))) | 0) +
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((h + ((K[i] + w[i]) | 0)) | 0)) | 0;
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t2 = ((((a>>>2) | (a<<(32-2))) ^ ((a>>>13) | (a<<(32-13))) ^
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((a>>>22) | (a<<(32-22)))) + ((a & b) ^ (a & c) ^ (b & c))) | 0;
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h = g;
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g = f;
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f = e;
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e = (d + t1) | 0;
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d = c;
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c = b;
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b = a;
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a = (t1 + t2) | 0;
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}
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h0 = (h0 + a) | 0;
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h1 = (h1 + b) | 0;
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h2 = (h2 + c) | 0;
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h3 = (h3 + d) | 0;
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h4 = (h4 + e) | 0;
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h5 = (h5 + f) | 0;
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h6 = (h6 + g) | 0;
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h7 = (h7 + h) | 0;
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off += 64;
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len -= 64;
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}
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}
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blocks(m);
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var i, bytesLeft = m.length % 64,
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bitLenHi = (m.length / 0x20000000) | 0,
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bitLenLo = m.length << 3,
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numZeros = (bytesLeft < 56) ? 56 : 120,
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p = m.slice(m.length - bytesLeft, m.length);
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p.push(0x80);
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for (i = bytesLeft + 1; i < numZeros; i++) { p.push(0); }
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p.push((bitLenHi>>>24) & 0xff);
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p.push((bitLenHi>>>16) & 0xff);
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p.push((bitLenHi>>>8) & 0xff);
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p.push((bitLenHi>>>0) & 0xff);
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p.push((bitLenLo>>>24) & 0xff);
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p.push((bitLenLo>>>16) & 0xff);
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p.push((bitLenLo>>>8) & 0xff);
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p.push((bitLenLo>>>0) & 0xff);
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blocks(p);
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return [
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(h0>>>24) & 0xff, (h0>>>16) & 0xff, (h0>>>8) & 0xff, (h0>>>0) & 0xff,
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(h1>>>24) & 0xff, (h1>>>16) & 0xff, (h1>>>8) & 0xff, (h1>>>0) & 0xff,
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(h2>>>24) & 0xff, (h2>>>16) & 0xff, (h2>>>8) & 0xff, (h2>>>0) & 0xff,
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(h3>>>24) & 0xff, (h3>>>16) & 0xff, (h3>>>8) & 0xff, (h3>>>0) & 0xff,
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(h4>>>24) & 0xff, (h4>>>16) & 0xff, (h4>>>8) & 0xff, (h4>>>0) & 0xff,
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(h5>>>24) & 0xff, (h5>>>16) & 0xff, (h5>>>8) & 0xff, (h5>>>0) & 0xff,
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(h6>>>24) & 0xff, (h6>>>16) & 0xff, (h6>>>8) & 0xff, (h6>>>0) & 0xff,
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(h7>>>24) & 0xff, (h7>>>16) & 0xff, (h7>>>8) & 0xff, (h7>>>0) & 0xff
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];
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}
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function PBKDF2_HMAC_SHA256_OneIter(password, salt, dkLen) {
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// compress password if it's longer than hash block length
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password = password.length <= 64 ? password : SHA256(password);
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var i;
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var innerLen = 64 + salt.length + 4;
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var inner = new Array(innerLen);
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var outerKey = new Array(64);
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var dk = [];
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// inner = (password ^ ipad) || salt || counter
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for (i = 0; i < 64; i++) inner[i] = 0x36;
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for (i = 0; i < password.length; i++) inner[i] ^= password[i];
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for (i = 0; i < salt.length; i++) inner[64+i] = salt[i];
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for (i = innerLen - 4; i < innerLen; i++) inner[i] = 0;
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// outerKey = password ^ opad
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for (i = 0; i < 64; i++) outerKey[i] = 0x5c;
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for (i = 0; i < password.length; i++) outerKey[i] ^= password[i];
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// increments counter inside inner
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function incrementCounter() {
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for (var i = innerLen-1; i >= innerLen-4; i--) {
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inner[i]++;
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if (inner[i] <= 0xff) return;
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inner[i] = 0;
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}
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}
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// output blocks = SHA256(outerKey || SHA256(inner)) ...
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while (dkLen >= 32) {
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incrementCounter();
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dk = dk.concat(SHA256(outerKey.concat(SHA256(inner))));
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dkLen -= 32;
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}
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if (dkLen > 0) {
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incrementCounter();
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dk = dk.concat(SHA256(outerKey.concat(SHA256(inner))).slice(0, dkLen));
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}
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return dk;
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}
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// The following is an adaptation of scryptsy
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// See: https://www.npmjs.com/package/scryptsy
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function blockmix_salsa8(BY, Yi, r, x, _X) {
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var i;
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arraycopy(BY, (2 * r - 1) * 16, _X, 0, 16);
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for (i = 0; i < 2 * r; i++) {
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blockxor(BY, i * 16, _X, 16);
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salsa20_8(_X, x);
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arraycopy(_X, 0, BY, Yi + (i * 16), 16);
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}
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for (i = 0; i < r; i++) {
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arraycopy(BY, Yi + (i * 2) * 16, BY, (i * 16), 16);
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}
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for (i = 0; i < r; i++) {
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arraycopy(BY, Yi + (i * 2 + 1) * 16, BY, (i + r) * 16, 16);
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}
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}
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function R(a, b) {
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return (a << b) | (a >>> (32 - b));
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}
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function salsa20_8(B, x) {
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arraycopy(B, 0, x, 0, 16);
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for (var i = 8; i > 0; i -= 2) {
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x[ 4] ^= R(x[ 0] + x[12], 7);
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x[ 8] ^= R(x[ 4] + x[ 0], 9);
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x[12] ^= R(x[ 8] + x[ 4], 13);
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x[ 0] ^= R(x[12] + x[ 8], 18);
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x[ 9] ^= R(x[ 5] + x[ 1], 7);
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x[13] ^= R(x[ 9] + x[ 5], 9);
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x[ 1] ^= R(x[13] + x[ 9], 13);
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x[ 5] ^= R(x[ 1] + x[13], 18);
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x[14] ^= R(x[10] + x[ 6], 7);
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x[ 2] ^= R(x[14] + x[10], 9);
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x[ 6] ^= R(x[ 2] + x[14], 13);
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x[10] ^= R(x[ 6] + x[ 2], 18);
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x[ 3] ^= R(x[15] + x[11], 7);
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x[ 7] ^= R(x[ 3] + x[15], 9);
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x[11] ^= R(x[ 7] + x[ 3], 13);
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x[15] ^= R(x[11] + x[ 7], 18);
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x[ 1] ^= R(x[ 0] + x[ 3], 7);
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x[ 2] ^= R(x[ 1] + x[ 0], 9);
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x[ 3] ^= R(x[ 2] + x[ 1], 13);
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x[ 0] ^= R(x[ 3] + x[ 2], 18);
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x[ 6] ^= R(x[ 5] + x[ 4], 7);
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x[ 7] ^= R(x[ 6] + x[ 5], 9);
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x[ 4] ^= R(x[ 7] + x[ 6], 13);
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x[ 5] ^= R(x[ 4] + x[ 7], 18);
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x[11] ^= R(x[10] + x[ 9], 7);
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x[ 8] ^= R(x[11] + x[10], 9);
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x[ 9] ^= R(x[ 8] + x[11], 13);
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x[10] ^= R(x[ 9] + x[ 8], 18);
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x[12] ^= R(x[15] + x[14], 7);
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x[13] ^= R(x[12] + x[15], 9);
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x[14] ^= R(x[13] + x[12], 13);
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x[15] ^= R(x[14] + x[13], 18);
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}
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for (i = 0; i < 16; ++i) {
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B[i] += x[i];
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}
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}
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// naive approach... going back to loop unrolling may yield additional performance
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function blockxor(S, Si, D, len) {
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for (var i = 0; i < len; i++) {
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D[i] ^= S[Si + i]
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}
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}
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function arraycopy(src, srcPos, dest, destPos, length) {
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while (length--) {
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dest[destPos++] = src[srcPos++];
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}
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}
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function checkBufferish(o) {
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if (!o || typeof(o.length) !== 'number') {
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return false;
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}
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for (var i = 0; i < o.length; i++) {
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if (typeof(o[i]) !== 'number') { return false; }
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var v = parseInt(o[i]);
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if (v != o[i] || v < 0 || v >= 256) {
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return false;
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}
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}
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return true;
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}
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function ensureInteger(value, name) {
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var intValue = parseInt(value);
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if (value != intValue) { throw new Error('invalid ' + name); }
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return intValue;
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}
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// N = Cpu cost, r = Memory cost, p = parallelization cost
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// callback(error, progress, key)
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function scrypt(password, salt, N, r, p, dkLen, callback) {
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if (!callback) { throw new Error('missing callback'); }
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N = ensureInteger(N, 'N');
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r = ensureInteger(r, 'r');
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p = ensureInteger(p, 'p');
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dkLen = ensureInteger(dkLen, 'dkLen');
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if (N === 0 || (N & (N - 1)) !== 0) { throw new Error('N must be power of 2'); }
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if (N > MAX_VALUE / 128 / r) { throw new Error('N too large'); }
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if (r > MAX_VALUE / 128 / p) { throw new Error('r too large'); }
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if (!checkBufferish(password)) {
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throw new Error('password must be an array or buffer');
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}
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if (!checkBufferish(salt)) {
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throw new Error('salt must be an array or buffer');
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}
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var b = PBKDF2_HMAC_SHA256_OneIter(password, salt, p * 128 * r);
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var B = new Uint32Array(p * 32 * r)
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for (var i = 0; i < B.length; i++) {
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var j = i * 4;
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B[i] = ((b[j + 3] & 0xff) << 24) |
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((b[j + 2] & 0xff) << 16) |
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((b[j + 1] & 0xff) << 8) |
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((b[j + 0] & 0xff) << 0);
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}
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var XY = new Uint32Array(64 * r);
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var V = new Uint32Array(32 * r * N);
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var Yi = 32 * r;
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// scratch space
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var x = new Uint32Array(16); // salsa20_8
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var _X = new Uint32Array(16); // blockmix_salsa8
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var totalOps = p * N * 2;
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var currentOp = 0;
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var lastPercent10 = null;
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// Set this to true to abandon the scrypt on the next step
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var stop = false;
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// State information
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var state = 0;
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var i0 = 0, i1;
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var Bi;
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// How many blockmix_salsa8 can we do per step?
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var limit = parseInt(1000 / r);
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// Trick from scrypt-async; if there is a setImmediate shim in place, use it
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var nextTick = (typeof(setImmediate) !== 'undefined') ? setImmediate : setTimeout;
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// This is really all I changed; making scryptsy a state machine so we occasionally
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// stop and give other evnts on the evnt loop a chance to run. ~RicMoo
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var incrementalSMix = function() {
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if (stop) {
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return callback(new Error('cancelled'), currentOp / totalOps);
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}
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switch (state) {
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case 0:
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// for (var i = 0; i < p; i++)...
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Bi = i0 * 32 * r;
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arraycopy(B, Bi, XY, 0, Yi); // ROMix - 1
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state = 1; // Move to ROMix 2
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i1 = 0;
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// Fall through
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case 1:
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// Run up to 1000 steps of the first inner smix loop
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var steps = N - i1;
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if (steps > limit) { steps = limit; }
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for (var i = 0; i < steps; i++) { // ROMix - 2
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arraycopy(XY, 0, V, (i1 + i) * Yi, Yi) // ROMix - 3
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blockmix_salsa8(XY, Yi, r, x, _X); // ROMix - 4
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}
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// for (var i = 0; i < N; i++)
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i1 += steps;
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currentOp += steps;
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// Call the callback with the progress (optionally stopping us)
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var percent10 = parseInt(1000 * currentOp / totalOps);
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if (percent10 !== lastPercent10) {
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stop = callback(null, currentOp / totalOps);
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if (stop) { break; }
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lastPercent10 = percent10;
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}
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if (i1 < N) {
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break;
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}
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i1 = 0; // Move to ROMix 6
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state = 2;
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// Fall through
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case 2:
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// Run up to 1000 steps of the second inner smix loop
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var steps = N - i1;
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if (steps > limit) { steps = limit; }
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for (var i = 0; i < steps; i++) { // ROMix - 6
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var offset = (2 * r - 1) * 16; // ROMix - 7
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var j = XY[offset] & (N - 1);
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blockxor(V, j * Yi, XY, Yi); // ROMix - 8 (inner)
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blockmix_salsa8(XY, Yi, r, x, _X); // ROMix - 9 (outer)
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}
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// for (var i = 0; i < N; i++)...
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i1 += steps;
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currentOp += steps;
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// Call the callback with the progress (optionally stopping us)
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var percent10 = parseInt(1000 * currentOp / totalOps);
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if (percent10 !== lastPercent10) {
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stop = callback(null, currentOp / totalOps);
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if (stop) { break; }
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lastPercent10 = percent10;
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}
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if (i1 < N) {
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break;
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}
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arraycopy(XY, 0, B, Bi, Yi); // ROMix - 10
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// for (var i = 0; i < p; i++)...
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i0++;
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if (i0 < p) {
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state = 0;
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break;
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}
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b = [];
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for (var i = 0; i < B.length; i++) {
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b.push((B[i] >> 0) & 0xff);
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b.push((B[i] >> 8) & 0xff);
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b.push((B[i] >> 16) & 0xff);
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b.push((B[i] >> 24) & 0xff);
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}
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var derivedKey = PBKDF2_HMAC_SHA256_OneIter(password, b, dkLen);
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// Done; don't break (which would reschedule)
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return callback(null, 1.0, derivedKey);
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}
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// Schedule the next steps
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nextTick(incrementalSMix);
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}
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// Bootstrap the incremental smix
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incrementalSMix();
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}
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// node.js
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if (typeof(exports) !== 'undefined') {
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module.exports = scrypt;
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// RequireJS/AMD
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// http://www.requirejs.org/docs/api.html
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// https://github.com/amdjs/amdjs-api/wiki/AMD
|
|
} else if (typeof(define) === 'function' && define.amd) {
|
|
define(scrypt);
|
|
|
|
// Web Browsers
|
|
} else if (root) {
|
|
|
|
// If there was an existing library "scrypt", make sure it is still available
|
|
if (root.scrypt) {
|
|
root._scrypt = root.scrypt;
|
|
}
|
|
|
|
root.scrypt = scrypt;
|
|
}
|
|
|
|
})(this);
|