Release 0.2.0.
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README.md
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README.md
@ -47,29 +47,47 @@ npm install @noble/curves
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```ts
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import { weierstrass } from '@noble/curves/weierstrass'; // Short Weierstrass curve
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import { twistedEdwards } from '@noble/curves/edwards'; // Twisted Edwards curve
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import { sha256 } from '@noble/hashes/sha256';
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import { hmac } from '@noble/hashes/hmac';
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import { concatBytes, randomBytes } from '@noble/hashes/utils';
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export const secp256k1 = shortw({
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const secp256k1 = weierstrass({
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a: 0n,
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b: 7n,
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// Field over which we'll do calculations
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P: 2n ** 256n - 2n ** 32n - 2n ** 9n - 2n ** 8n - 2n ** 7n - 2n ** 6n - 2n ** 4n - 1n,
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// Curve order, total count of valid points in the field
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P: 0xfffffffffffffffffffffffffffffffffffffffffffffffffffffffefffffc2fn,
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n: 0xfffffffffffffffffffffffffffffffebaaedce6af48a03bbfd25e8cd0364141n,
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// Base point (x, y) aka generator point
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Gx: 55066263022277343669578718895168534326250603453777594175500187360389116729240n,
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Gy: 32670510020758816978083085130507043184471273380659243275938904335757337482424n,
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hash: sha256,
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hmac: (k: Uint8Array, ...msgs: Uint8Array[]) => hmac(sha256, key, concatBytes(...msgs)),
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randomBytes: randomBytes
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randomBytes
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});
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// secp256k1.getPublicKey(priv)
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// secp256k1.sign(msg, priv)
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secp256k1.getPublicKey(secp256k1.utils.randomPrivateKey());
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secp256k1.sign(randomBytes(32), secp256k1.utils.randomPrivateKey());
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// secp256k1.verify(sig, msg, pub)
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import { twistedEdwards } from '@noble/curves/edwards'; // Twisted Edwards curve
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import { sha512 } from '@noble/hashes/sha512';
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const ed25519 = twistedEdwards({
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a: -1n,
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d: 37095705934669439343138083508754565189542113879843219016388785533085940283555n,
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P: 57896044618658097711785492504343953926634992332820282019728792003956564819949n,
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n: 7237005577332262213973186563042994240857116359379907606001950938285454250989n,
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h: 8n,
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Gx: 15112221349535400772501151409588531511454012693041857206046113283949847762202n,
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Gy: 46316835694926478169428394003475163141307993866256225615783033603165251855960n,
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hash: sha512,
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randomBytes,
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adjustScalarBytes(bytes) { // could be no-op
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bytes[0] &= 248;
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bytes[31] &= 127;
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bytes[31] |= 64;
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return bytes;
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},
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} as const);
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ed25519.getPublicKey(ed25519.utils.randomPrivateKey());
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```
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## Performance
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@ -1,6 +1,6 @@
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{
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"name": "micro-curve-definitions",
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"version": "0.1.0",
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"version": "0.2.0",
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"description": "Curve definitions for @noble/curves",
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"files": [
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"lib"
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@ -10,7 +10,7 @@
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"module": "lib/index.js",
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"types": "lib/index.d.ts",
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"dependencies": {
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"@noble/curves": "file:../",
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"@noble/curves": "0.2.0",
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"@noble/hashes": "1.1.5"
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},
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"devDependencies": {
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@ -49,14 +49,18 @@ function ed25519_pow_2_252_3(x: bigint) {
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// ^ To pow to (p+3)/8, multiply it by x.
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return { pow_p_5_8, b2 };
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}
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/**
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* For X25519, in order to decode 32 random bytes as an integer scalar,
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* set the
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* three least significant bits of the first byte 0b1111_1000,
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* and the most significant bit of the last to zero 0b0111_1111,
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* set the second most significant bit of the last byte to 1 0b0100_0000
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*/
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function adjustScalarBytes(bytes: Uint8Array): Uint8Array {
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// Section 5: For X25519, in order to decode 32 random bytes as an integer scalar,
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// set the three least significant bits of the first byte
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bytes[0] &= 248; // 0b1111_1000
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// and the most significant bit of the last to zero,
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bytes[31] &= 127; // 0b0111_1111
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// set the second most significant bit of the last byte to 1
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bytes[31] |= 64; // 0b0100_0000
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bytes[0] &= 248;
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bytes[31] &= 127;
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bytes[31] |= 64;
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return bytes;
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}
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// sqrt(u/v)
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12
package.json
12
package.json
@ -1,6 +1,6 @@
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{
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"name": "@noble/curves",
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"version": "0.1.0",
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"version": "0.2.0",
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"description": "Minimal, zero-dependency JS implementation of elliptic curve cryptography",
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"files": [
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"index.js",
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@ -63,14 +63,16 @@
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"curve",
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"cryptography",
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"hyperelliptic",
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"weierstrass",
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"edwards",
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"montgomery",
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"secp256k1",
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"ed25519",
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"ed448",
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"p256",
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"p384",
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"p521",
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"nist",
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"weierstrass",
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"edwards",
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"montgomery",
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"hashes",
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"ecc",
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"ecdsa",
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"eddsa",
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