authorgravatar for 124872+jedisct1@users.noreply.github.comFrank Denis <124872+jedisct1@users.noreply.github.com> 2022-10-27 19:07:42+02:00
committergravatar for noreply@github.comGitHub <noreply@github.com> 2022-10-27 19:07:42+02:00
log9c0d975a099387cd2b47e527892e71ae1601eaf4
tree3911d26c4bfb657b2dcef22e8c86d4857b6fe6cb
parent710e2e7f1048cb7d5a7c8d2bdd954f108dd94e7a
signaturebadge-question-mark Signed by PGP key 4AEE18F83AFDEB23

Revamp the ed25519 API (#13309)


3 files changed, 405 insertions(+), 203 deletions(-)

lib/std/crypto/25519/ed25519.zig+386-192
......@@ -16,27 +16,227 @@ const WeakPublicKeyError = crypto.errors.WeakPublicKeyError;
1616/// Ed25519 (EdDSA) signatures.
1717pub const Ed25519 = struct {
1818 /// The underlying elliptic curve.
19 pub const Curve = @import("edwards25519.zig").Edwards25519;
20 /// Length (in bytes) of a seed required to create a key pair.
21 pub const seed_length = 32;
22 /// Length (in bytes) of a compressed secret key.
23 pub const secret_length = 64;
24 /// Length (in bytes) of a compressed public key.
25 pub const public_length = 32;
26 /// Length (in bytes) of a signature.
27 pub const signature_length = 64;
19 pub const Curve = std.crypto.ecc.Edwards25519;
20
2821 /// Length (in bytes) of optional random bytes, for non-deterministic signatures.
2922 pub const noise_length = 32;
3023
3124 const CompressedScalar = Curve.scalar.CompressedScalar;
3225 const Scalar = Curve.scalar.Scalar;
3326
27 /// An Ed25519 secret key.
28 pub const SecretKey = struct {
29 /// Length (in bytes) of a raw secret key.
30 pub const encoded_length = 64;
31
32 bytes: [encoded_length]u8,
33
34 /// Return the seed used to generate this secret key.
35 pub fn seed(self: SecretKey) [KeyPair.seed_length]u8 {
36 return self.bytes[0..KeyPair.seed_length].*;
37 }
38
39 /// Return the raw public key bytes corresponding to this secret key.
40 pub fn publicKeyBytes(self: SecretKey) [PublicKey.encoded_length]u8 {
41 return self.bytes[KeyPair.seed_length..].*;
42 }
43
44 /// Create a secret key from raw bytes.
45 pub fn fromBytes(bytes: [encoded_length]u8) !SecretKey {
46 return SecretKey{ .bytes = bytes };
47 }
48
49 /// Return the secret key as raw bytes.
50 pub fn toBytes(sk: SecretKey) [encoded_length]u8 {
51 return sk.bytes;
52 }
53
54 // Return the clamped secret scalar and prefix for this secret key
55 fn scalarAndPrefix(self: SecretKey) struct { scalar: CompressedScalar, prefix: [32]u8 } {
56 var az: [Sha512.digest_length]u8 = undefined;
57 var h = Sha512.init(.{});
58 h.update(&self.seed());
59 h.final(&az);
60
61 var s = az[0..32].*;
62 Curve.scalar.clamp(&s);
63
64 return .{ .scalar = s, .prefix = az[32..].* };
65 }
66 };
67
68 /// A Signer is used to incrementally compute a signature.
69 /// It can be obtained from a `KeyPair`, using the `signer()` function.
70 pub const Signer = struct {
71 h: Sha512,
72 scalar: CompressedScalar,
73 nonce: CompressedScalar,
74 r_bytes: [Curve.encoded_length]u8,
75
76 fn init(scalar: CompressedScalar, nonce: CompressedScalar, public_key: PublicKey) (IdentityElementError || KeyMismatchError || NonCanonicalError || WeakPublicKeyError)!Signer {
77 const r = try Curve.basePoint.mul(nonce);
78 const r_bytes = r.toBytes();
79
80 var t: [64]u8 = undefined;
81 mem.copy(u8, t[0..32], &r_bytes);
82 mem.copy(u8, t[32..], &public_key.bytes);
83 var h = Sha512.init(.{});
84 h.update(&t);
85
86 return Signer{ .h = h, .scalar = scalar, .nonce = nonce, .r_bytes = r_bytes };
87 }
88
89 /// Add new data to the message being signed.
90 pub fn update(self: *Signer, data: []const u8) void {
91 self.h.update(data);
92 }
93
94 /// Compute a signature over the entire message.
95 pub fn finalize(self: *Signer) Signature {
96 var hram64: [Sha512.digest_length]u8 = undefined;
97 self.h.final(&hram64);
98 const hram = Curve.scalar.reduce64(hram64);
99
100 const s = Curve.scalar.mulAdd(hram, self.scalar, self.nonce);
101
102 return Signature{ .r = self.r_bytes, .s = s };
103 }
104 };
105
106 /// An Ed25519 public key.
107 pub const PublicKey = struct {
108 /// Length (in bytes) of a raw public key.
109 pub const encoded_length = 32;
110
111 bytes: [encoded_length]u8,
112
113 /// Create a public key from raw bytes.
114 pub fn fromBytes(bytes: [encoded_length]u8) NonCanonicalError!PublicKey {
115 try Curve.rejectNonCanonical(bytes);
116 return PublicKey{ .bytes = bytes };
117 }
118
119 /// Convert a public key to raw bytes.
120 pub fn toBytes(pk: PublicKey) [encoded_length]u8 {
121 return pk.bytes;
122 }
123
124 fn signWithNonce(public_key: PublicKey, msg: []const u8, scalar: CompressedScalar, nonce: CompressedScalar) (IdentityElementError || NonCanonicalError || KeyMismatchError || WeakPublicKeyError)!Signature {
125 var st = try Signer.init(scalar, nonce, public_key);
126 st.update(msg);
127 return st.finalize();
128 }
129
130 fn computeNonceAndSign(public_key: PublicKey, msg: []const u8, noise: ?[noise_length]u8, scalar: CompressedScalar, prefix: []const u8) (IdentityElementError || NonCanonicalError || KeyMismatchError || WeakPublicKeyError)!Signature {
131 var h = Sha512.init(.{});
132 if (noise) |*z| {
133 h.update(z);
134 }
135 h.update(prefix);
136 h.update(msg);
137 var nonce64: [64]u8 = undefined;
138 h.final(&nonce64);
139
140 const nonce = Curve.scalar.reduce64(nonce64);
141
142 return public_key.signWithNonce(msg, scalar, nonce);
143 }
144 };
145
146 /// A Verifier is used to incrementally verify a signature.
147 /// It can be obtained from a `Signature`, using the `verifier()` function.
148 pub const Verifier = struct {
149 h: Sha512,
150 s: CompressedScalar,
151 a: Curve,
152 expected_r: Curve,
153
154 fn init(sig: Signature, public_key: PublicKey) (NonCanonicalError || EncodingError || IdentityElementError)!Verifier {
155 const r = sig.r;
156 const s = sig.s;
157 try Curve.scalar.rejectNonCanonical(s);
158 const a = try Curve.fromBytes(public_key.bytes);
159 try a.rejectIdentity();
160 try Curve.rejectNonCanonical(r);
161 const expected_r = try Curve.fromBytes(r);
162 try expected_r.rejectIdentity();
163
164 var h = Sha512.init(.{});
165 h.update(&r);
166 h.update(&public_key.bytes);
167
168 return Verifier{ .h = h, .s = s, .a = a, .expected_r = expected_r };
169 }
170
171 /// Add new content to the message to be verified.
172 pub fn update(self: *Verifier, msg: []const u8) void {
173 self.h.update(msg);
174 }
175
176 /// Verify that the signature is valid for the entire message.
177 pub fn verify(self: *Verifier) (SignatureVerificationError || WeakPublicKeyError || IdentityElementError)!void {
178 var hram64: [Sha512.digest_length]u8 = undefined;
179 self.h.final(&hram64);
180 const hram = Curve.scalar.reduce64(hram64);
181
182 const sb_ah = try Curve.basePoint.mulDoubleBasePublic(self.s, self.a.neg(), hram);
183 if (self.expected_r.sub(sb_ah).clearCofactor().rejectIdentity()) |_| {
184 return error.SignatureVerificationFailed;
185 } else |_| {}
186 }
187 };
188
189 /// An Ed25519 signature.
190 pub const Signature = struct {
191 /// Length (in bytes) of a raw signature.
192 pub const encoded_length = Curve.encoded_length + @sizeOf(CompressedScalar);
193
194 /// The R component of an EdDSA signature.
195 r: [Curve.encoded_length]u8,
196 /// The S component of an EdDSA signature.
197 s: CompressedScalar,
198
199 /// Return the raw signature (r, s) in little-endian format.
200 pub fn toBytes(self: Signature) [encoded_length]u8 {
201 var bytes: [encoded_length]u8 = undefined;
202 mem.copy(u8, bytes[0 .. encoded_length / 2], &self.r);
203 mem.copy(u8, bytes[encoded_length / 2 ..], &self.s);
204 return bytes;
205 }
206
207 /// Create a signature from a raw encoding of (r, s).
208 /// EdDSA always assumes little-endian.
209 pub fn fromBytes(bytes: [encoded_length]u8) Signature {
210 return Signature{
211 .r = bytes[0 .. encoded_length / 2].*,
212 .s = bytes[encoded_length / 2 ..].*,
213 };
214 }
215
216 /// Create a Verifier for incremental verification of a signature.
217 pub fn verifier(self: Signature, public_key: PublicKey) (NonCanonicalError || EncodingError || IdentityElementError)!Verifier {
218 return Verifier.init(self, public_key);
219 }
220
221 /// Verify the signature against a message and public key.
222 /// Return IdentityElement or NonCanonical if the public key or signature are not in the expected range,
223 /// or SignatureVerificationError if the signature is invalid for the given message and key.
224 pub fn verify(self: Signature, msg: []const u8, public_key: PublicKey) (IdentityElementError || NonCanonicalError || SignatureVerificationError || EncodingError || WeakPublicKeyError)!void {
225 var st = try Verifier.init(self, public_key);
226 st.update(msg);
227 return st.verify();
228 }
229 };
230
34231 /// An Ed25519 key pair.
35232 pub const KeyPair = struct {
233 /// Length (in bytes) of a seed required to create a key pair.
234 pub const seed_length = noise_length;
235
36236 /// Public part.
37 public_key: [public_length]u8,
38 /// Secret part. What we expose as a secret key is, under the hood, the concatenation of the seed and the public key.
39 secret_key: [secret_length]u8,
237 public_key: PublicKey,
238 /// Secret scalar.
239 secret_key: SecretKey,
40240
41241 /// Derive a key pair from an optional secret seed.
42242 ///
......@@ -56,120 +256,101 @@ pub const Ed25519 = struct {
56256 var h = Sha512.init(.{});
57257 h.update(&ss);
58258 h.final(&az);
59 const p = Curve.basePoint.clampedMul(az[0..32].*) catch return error.IdentityElement;
60 var sk: [secret_length]u8 = undefined;
61 mem.copy(u8, &sk, &ss);
62 const pk = p.toBytes();
63 mem.copy(u8, sk[seed_length..], &pk);
64
65 return KeyPair{ .public_key = pk, .secret_key = sk };
259 const pk_p = Curve.basePoint.clampedMul(az[0..32].*) catch return error.IdentityElement;
260 const pk_bytes = pk_p.toBytes();
261 var sk_bytes: [SecretKey.encoded_length]u8 = undefined;
262 mem.copy(u8, &sk_bytes, &ss);
263 mem.copy(u8, sk_bytes[seed_length..], &pk_bytes);
264 return KeyPair{
265 .public_key = PublicKey.fromBytes(pk_bytes) catch unreachable,
266 .secret_key = try SecretKey.fromBytes(sk_bytes),
267 };
66268 }
67269
68270 /// Create a KeyPair from a secret key.
69 pub fn fromSecretKey(secret_key: [secret_length]u8) KeyPair {
271 pub fn fromSecretKey(secret_key: SecretKey) IdentityElementError!KeyPair {
272 const pk_p = try Curve.fromBytes(secret_key.publicKeyBytes());
273
274 // It is critical for EdDSA to use the correct public key.
275 // In order to enforce this, a SecretKey implicitly includes a copy of the public key.
276 // In Debug mode, we can still afford checking that the public key is correct for extra safety.
277 if (std.builtin.mode == .Debug) {
278 const recomputed_kp = try create(secret_key[0..seed_length].*);
279 debug.assert(recomputed_kp.public_key.p.toBytes() == pk_p.toBytes());
280 }
70281 return KeyPair{
282 .public_key = PublicKey{ .p = pk_p },
71283 .secret_key = secret_key,
72 .public_key = secret_key[seed_length..].*,
73284 };
74285 }
75 };
76286
77 /// Sign a message using a key pair, and optional random noise.
78 /// Having noise creates non-standard, non-deterministic signatures,
79 /// but has been proven to increase resilience against fault attacks.
80 pub fn sign(msg: []const u8, key_pair: KeyPair, noise: ?[noise_length]u8) (IdentityElementError || WeakPublicKeyError || KeyMismatchError)![signature_length]u8 {
81 const seed = key_pair.secret_key[0..seed_length];
82 const public_key = key_pair.secret_key[seed_length..];
83 if (!mem.eql(u8, public_key, &key_pair.public_key)) {
84 return error.KeyMismatch;
85 }
86 var az: [Sha512.digest_length]u8 = undefined;
87 var h = Sha512.init(.{});
88 h.update(seed);
89 h.final(&az);
90
91 h = Sha512.init(.{});
92 if (noise) |*z| {
93 h.update(z);
287 /// Sign a message using the key pair.
288 /// The noise can be null in order to create deterministic signatures.
289 /// If deterministic signatures are not required, the noise should be randomly generated instead.
290 /// This helps defend against fault attacks.
291 pub fn sign(key_pair: KeyPair, msg: []const u8, noise: ?[noise_length]u8) (IdentityElementError || NonCanonicalError || KeyMismatchError || WeakPublicKeyError)!Signature {
292 if (!mem.eql(u8, &key_pair.secret_key.publicKeyBytes(), &key_pair.public_key.toBytes())) {
293 return error.KeyMismatch;
294 }
295 const scalar_and_prefix = key_pair.secret_key.scalarAndPrefix();
296 return key_pair.public_key.computeNonceAndSign(
297 msg,
298 noise,
299 scalar_and_prefix.scalar,
300 &scalar_and_prefix.prefix,
301 );
94302 }
95 h.update(az[32..]);
96 h.update(msg);
97 var nonce64: [64]u8 = undefined;
98 h.final(&nonce64);
99 const nonce = Curve.scalar.reduce64(nonce64);
100 const r = try Curve.basePoint.mul(nonce);
101
102 var sig: [signature_length]u8 = undefined;
103 mem.copy(u8, sig[0..32], &r.toBytes());
104 mem.copy(u8, sig[32..], public_key);
105 h = Sha512.init(.{});
106 h.update(&sig);
107 h.update(msg);
108 var hram64: [Sha512.digest_length]u8 = undefined;
109 h.final(&hram64);
110 const hram = Curve.scalar.reduce64(hram64);
111
112 var x = az[0..32];
113 Curve.scalar.clamp(x);
114 const s = Curve.scalar.mulAdd(hram, x.*, nonce);
115 mem.copy(u8, sig[32..], s[0..]);
116 return sig;
117 }
118303
119 /// Verify an Ed25519 signature given a message and a public key.
120 /// Returns error.SignatureVerificationFailed is the signature verification failed.
121 pub fn verify(sig: [signature_length]u8, msg: []const u8, public_key: [public_length]u8) (SignatureVerificationError || WeakPublicKeyError || EncodingError || NonCanonicalError || IdentityElementError)!void {
122 const r = sig[0..32];
123 const s = sig[32..64];
124 try Curve.scalar.rejectNonCanonical(s.*);
125 try Curve.rejectNonCanonical(public_key);
126 const a = try Curve.fromBytes(public_key);
127 try a.rejectIdentity();
128 try Curve.rejectNonCanonical(r.*);
129 const expected_r = try Curve.fromBytes(r.*);
130 try expected_r.rejectIdentity();
131
132 var h = Sha512.init(.{});
133 h.update(r);
134 h.update(&public_key);
135 h.update(msg);
136 var hram64: [Sha512.digest_length]u8 = undefined;
137 h.final(&hram64);
138 const hram = Curve.scalar.reduce64(hram64);
139
140 const sb_ah = try Curve.basePoint.mulDoubleBasePublic(s.*, a.neg(), hram);
141 if (expected_r.sub(sb_ah).clearCofactor().rejectIdentity()) |_| {
142 return error.SignatureVerificationFailed;
143 } else |_| {}
144 }
304 /// Create a Signer, that can be used for incremental signing.
305 /// Note that the signature is not deterministic.
306 /// The noise parameter, if set, should be something unique for each message,
307 /// such as a random nonce, or a counter.
308 pub fn signer(key_pair: KeyPair, noise: ?[noise_length]u8) (IdentityElementError || KeyMismatchError || NonCanonicalError || WeakPublicKeyError)!Signer {
309 if (!mem.eql(u8, &key_pair.secret_key.publicKeyBytes(), &key_pair.public_key.toBytes())) {
310 return error.KeyMismatch;
311 }
312 const scalar_and_prefix = key_pair.secret_key.scalarAndPrefix();
313 var h = Sha512.init(.{});
314 h.update(&scalar_and_prefix.prefix);
315 var noise2: [noise_length]u8 = undefined;
316 crypto.random.bytes(&noise2);
317 if (noise) |*z| {
318 h.update(z);
319 }
320 var nonce64: [64]u8 = undefined;
321 h.final(&nonce64);
322 const nonce = Curve.scalar.reduce64(nonce64);
323
324 return Signer.init(scalar_and_prefix.scalar, nonce, key_pair.public_key);
325 }
326 };
145327
146328 /// A (signature, message, public_key) tuple for batch verification
147329 pub const BatchElement = struct {
148 sig: [signature_length]u8,
330 sig: Signature,
149331 msg: []const u8,
150 public_key: [public_length]u8,
332 public_key: PublicKey,
151333 };
152334
153335 /// Verify several signatures in a single operation, much faster than verifying signatures one-by-one
154336 pub fn verifyBatch(comptime count: usize, signature_batch: [count]BatchElement) (SignatureVerificationError || IdentityElementError || WeakPublicKeyError || EncodingError || NonCanonicalError)!void {
155 var r_batch: [count][32]u8 = undefined;
156 var s_batch: [count][32]u8 = undefined;
337 var r_batch: [count]CompressedScalar = undefined;
338 var s_batch: [count]CompressedScalar = undefined;
157339 var a_batch: [count]Curve = undefined;
158340 var expected_r_batch: [count]Curve = undefined;
159341
160342 for (signature_batch) |signature, i| {
161 const r = signature.sig[0..32];
162 const s = signature.sig[32..64];
163 try Curve.scalar.rejectNonCanonical(s.*);
164 try Curve.rejectNonCanonical(signature.public_key);
165 const a = try Curve.fromBytes(signature.public_key);
343 const r = signature.sig.r;
344 const s = signature.sig.s;
345 try Curve.scalar.rejectNonCanonical(s);
346 const a = try Curve.fromBytes(signature.public_key.bytes);
166347 try a.rejectIdentity();
167 try Curve.rejectNonCanonical(r.*);
168 const expected_r = try Curve.fromBytes(r.*);
348 try Curve.rejectNonCanonical(r);
349 const expected_r = try Curve.fromBytes(r);
169350 try expected_r.rejectIdentity();
170351 expected_r_batch[i] = expected_r;
171 r_batch[i] = r.*;
172 s_batch[i] = s.*;
352 r_batch[i] = r;
353 s_batch[i] = s;
173354 a_batch[i] = a;
174355 }
175356
......@@ -177,7 +358,7 @@ pub const Ed25519 = struct {
177358 for (signature_batch) |signature, i| {
178359 var h = Sha512.init(.{});
179360 h.update(&r_batch[i]);
180 h.update(&signature.public_key);
361 h.update(&signature.public_key.bytes);
181362 h.update(signature.msg);
182363 var hram64: [Sha512.digest_length]u8 = undefined;
183364 h.final(&hram64);
......@@ -212,7 +393,7 @@ pub const Ed25519 = struct {
212393 }
213394
214395 /// Ed25519 signatures with key blinding.
215 pub const BlindKeySignatures = struct {
396 pub const key_blinding = struct {
216397 /// Length (in bytes) of a blinding seed.
217398 pub const blind_seed_length = 32;
218399
......@@ -220,81 +401,69 @@ pub const Ed25519 = struct {
220401 pub const BlindSecretKey = struct {
221402 prefix: [64]u8,
222403 blind_scalar: CompressedScalar,
223 blind_public_key: CompressedScalar,
404 blind_public_key: BlindPublicKey,
405 };
406
407 /// A blind public key.
408 pub const BlindPublicKey = struct {
409 /// Public key equivalent, that can used for signature verification.
410 key: PublicKey,
411
412 /// Recover a public key from a blind version of it.
413 pub fn unblind(blind_public_key: BlindPublicKey, blind_seed: [blind_seed_length]u8, ctx: []const u8) (IdentityElementError || NonCanonicalError || EncodingError || WeakPublicKeyError)!PublicKey {
414 const blind_h = blindCtx(blind_seed, ctx);
415 const inv_blind_factor = Scalar.fromBytes(blind_h[0..32].*).invert().toBytes();
416 const pk_p = try (try Curve.fromBytes(blind_public_key.key.bytes)).mul(inv_blind_factor);
417 return PublicKey.fromBytes(pk_p.toBytes());
418 }
224419 };
225420
226421 /// A blind key pair.
227422 pub const BlindKeyPair = struct {
228 blind_public_key: [public_length]u8,
423 blind_public_key: BlindPublicKey,
229424 blind_secret_key: BlindSecretKey,
230 };
231425
232 /// Blind an existing key pair with a blinding seed and a context.
233 pub fn blind(key_pair: Ed25519.KeyPair, blind_seed: [blind_seed_length]u8, ctx: []const u8) !BlindKeyPair {
234 var h: [Sha512.digest_length]u8 = undefined;
235 Sha512.hash(key_pair.secret_key[0..32], &h, .{});
236 Curve.scalar.clamp(h[0..32]);
237 const scalar = Curve.scalar.reduce(h[0..32].*);
238
239 const blind_h = blindCtx(blind_seed, ctx);
240 const blind_factor = Curve.scalar.reduce(blind_h[0..32].*);
241
242 const blind_scalar = Curve.scalar.mul(scalar, blind_factor);
243 const blind_public_key = (Curve.basePoint.mul(blind_scalar) catch return error.IdentityElement).toBytes();
244
245 var prefix: [64]u8 = undefined;
246 mem.copy(u8, prefix[0..32], h[32..64]);
247 mem.copy(u8, prefix[32..64], blind_h[32..64]);
248
249 const blind_secret_key = .{
250 .prefix = prefix,
251 .blind_scalar = blind_scalar,
252 .blind_public_key = blind_public_key,
253 };
254 return BlindKeyPair{
255 .blind_public_key = blind_public_key,
256 .blind_secret_key = blind_secret_key,
257 };
258 }
259
260 /// Recover a public key from a blind version of it.
261 pub fn unblindPublicKey(blind_public_key: [public_length]u8, blind_seed: [blind_seed_length]u8, ctx: []const u8) ![public_length]u8 {
262 const blind_h = blindCtx(blind_seed, ctx);
263 const inv_blind_factor = Scalar.fromBytes(blind_h[0..32].*).invert().toBytes();
264 const public_key = try (try Curve.fromBytes(blind_public_key)).mul(inv_blind_factor);
265 return public_key.toBytes();
266 }
267
268 /// Sign a message using a blind key pair, and optional random noise.
269 /// Having noise creates non-standard, non-deterministic signatures,
270 /// but has been proven to increase resilience against fault attacks.
271 pub fn sign(msg: []const u8, key_pair: BlindKeyPair, noise: ?[noise_length]u8) ![signature_length]u8 {
272 var h = Sha512.init(.{});
273 if (noise) |*z| {
274 h.update(z);
426 /// Create an blind key pair from an existing key pair, a blinding seed and a context.
427 pub fn init(key_pair: Ed25519.KeyPair, blind_seed: [blind_seed_length]u8, ctx: []const u8) (NonCanonicalError || IdentityElementError)!BlindKeyPair {
428 var h: [Sha512.digest_length]u8 = undefined;
429 Sha512.hash(&key_pair.secret_key.seed(), &h, .{});
430 Curve.scalar.clamp(h[0..32]);
431 const scalar = Curve.scalar.reduce(h[0..32].*);
432
433 const blind_h = blindCtx(blind_seed, ctx);
434 const blind_factor = Curve.scalar.reduce(blind_h[0..32].*);
435
436 const blind_scalar = Curve.scalar.mul(scalar, blind_factor);
437 const blind_public_key = BlindPublicKey{
438 .key = try PublicKey.fromBytes((Curve.basePoint.mul(blind_scalar) catch return error.IdentityElement).toBytes()),
439 };
440
441 var prefix: [64]u8 = undefined;
442 mem.copy(u8, prefix[0..32], h[32..64]);
443 mem.copy(u8, prefix[32..64], blind_h[32..64]);
444
445 const blind_secret_key = BlindSecretKey{
446 .prefix = prefix,
447 .blind_scalar = blind_scalar,
448 .blind_public_key = blind_public_key,
449 };
450 return BlindKeyPair{
451 .blind_public_key = blind_public_key,
452 .blind_secret_key = blind_secret_key,
453 };
275454 }
276 h.update(&key_pair.blind_secret_key.prefix);
277 h.update(msg);
278 var nonce64: [64]u8 = undefined;
279 h.final(&nonce64);
280455
281 const nonce = Curve.scalar.reduce64(nonce64);
282 const r = try Curve.basePoint.mul(nonce);
456 /// Sign a message using a blind key pair, and optional random noise.
457 /// Having noise creates non-standard, non-deterministic signatures,
458 /// but has been proven to increase resilience against fault attacks.
459 pub fn sign(key_pair: BlindKeyPair, msg: []const u8, noise: ?[noise_length]u8) (IdentityElementError || KeyMismatchError || NonCanonicalError || WeakPublicKeyError)!Signature {
460 const scalar = key_pair.blind_secret_key.blind_scalar;
461 const prefix = key_pair.blind_secret_key.prefix;
283462
284 var sig: [signature_length]u8 = undefined;
285 mem.copy(u8, sig[0..32], &r.toBytes());
286 mem.copy(u8, sig[32..], &key_pair.blind_public_key);
287 h = Sha512.init(.{});
288 h.update(&sig);
289 h.update(msg);
290 var hram64: [Sha512.digest_length]u8 = undefined;
291 h.final(&hram64);
292 const hram = Curve.scalar.reduce64(hram64);
293
294 const s = Curve.scalar.mulAdd(hram, key_pair.blind_secret_key.blind_scalar, nonce);
295 mem.copy(u8, sig[32..], s[0..]);
296 return sig;
297 }
463 return (try PublicKey.fromBytes(key_pair.blind_public_key.key.bytes))
464 .computeNonceAndSign(msg, noise, scalar, &prefix);
465 }
466 };
298467
299468 /// Compute a blind context from a blinding seed and a context.
300469 fn blindCtx(blind_seed: [blind_seed_length]u8, ctx: []const u8) [Sha512.digest_length]u8 {
......@@ -306,7 +475,13 @@ pub const Ed25519 = struct {
306475 hx.final(&blind_h);
307476 return blind_h;
308477 }
478
479 pub const sign = @compileError("deprecated; use BlindKeyPair.sign instead");
480 pub const unblindPublicKey = @compileError("deprecated; use BlindPublicKey.unblind instead");
309481 };
482
483 pub const sign = @compileError("deprecated; use KeyPair.sign instead");
484 pub const verify = @compileError("deprecated; use PublicKey.verify instead");
310485};
311486
312487test "ed25519 key pair creation" {
......@@ -314,8 +489,8 @@ test "ed25519 key pair creation" {
314489 _ = try fmt.hexToBytes(seed[0..], "8052030376d47112be7f73ed7a019293dd12ad910b654455798b4667d73de166");
315490 const key_pair = try Ed25519.KeyPair.create(seed);
316491 var buf: [256]u8 = undefined;
317 try std.testing.expectEqualStrings(try std.fmt.bufPrint(&buf, "{s}", .{std.fmt.fmtSliceHexUpper(&key_pair.secret_key)}), "8052030376D47112BE7F73ED7A019293DD12AD910B654455798B4667D73DE1662D6F7455D97B4A3A10D7293909D1A4F2058CB9A370E43FA8154BB280DB839083");
318 try std.testing.expectEqualStrings(try std.fmt.bufPrint(&buf, "{s}", .{std.fmt.fmtSliceHexUpper(&key_pair.public_key)}), "2D6F7455D97B4A3A10D7293909D1A4F2058CB9A370E43FA8154BB280DB839083");
492 try std.testing.expectEqualStrings(try std.fmt.bufPrint(&buf, "{s}", .{std.fmt.fmtSliceHexUpper(&key_pair.secret_key.toBytes())}), "8052030376D47112BE7F73ED7A019293DD12AD910B654455798B4667D73DE1662D6F7455D97B4A3A10D7293909D1A4F2058CB9A370E43FA8154BB280DB839083");
493 try std.testing.expectEqualStrings(try std.fmt.bufPrint(&buf, "{s}", .{std.fmt.fmtSliceHexUpper(&key_pair.public_key.toBytes())}), "2D6F7455D97B4A3A10D7293909D1A4F2058CB9A370E43FA8154BB280DB839083");
319494}
320495
321496test "ed25519 signature" {
......@@ -323,11 +498,11 @@ test "ed25519 signature" {
323498 _ = try fmt.hexToBytes(seed[0..], "8052030376d47112be7f73ed7a019293dd12ad910b654455798b4667d73de166");
324499 const key_pair = try Ed25519.KeyPair.create(seed);
325500
326 const sig = try Ed25519.sign("test", key_pair, null);
501 const sig = try key_pair.sign("test", null);
327502 var buf: [128]u8 = undefined;
328 try std.testing.expectEqualStrings(try std.fmt.bufPrint(&buf, "{s}", .{std.fmt.fmtSliceHexUpper(&sig)}), "10A442B4A80CC4225B154F43BEF28D2472CA80221951262EB8E0DF9091575E2687CC486E77263C3418C757522D54F84B0359236ABBBD4ACD20DC297FDCA66808");
329 try Ed25519.verify(sig, "test", key_pair.public_key);
330 try std.testing.expectError(error.SignatureVerificationFailed, Ed25519.verify(sig, "TEST", key_pair.public_key));
503 try std.testing.expectEqualStrings(try std.fmt.bufPrint(&buf, "{s}", .{std.fmt.fmtSliceHexUpper(&sig.toBytes())}), "10A442B4A80CC4225B154F43BEF28D2472CA80221951262EB8E0DF9091575E2687CC486E77263C3418C757522D54F84B0359236ABBBD4ACD20DC297FDCA66808");
504 try sig.verify("test", key_pair.public_key);
505 try std.testing.expectError(error.SignatureVerificationFailed, sig.verify("TEST", key_pair.public_key));
331506}
332507
333508test "ed25519 batch verification" {
......@@ -338,8 +513,8 @@ test "ed25519 batch verification" {
338513 var msg2: [32]u8 = undefined;
339514 crypto.random.bytes(&msg1);
340515 crypto.random.bytes(&msg2);
341 const sig1 = try Ed25519.sign(&msg1, key_pair, null);
342 const sig2 = try Ed25519.sign(&msg2, key_pair, null);
516 const sig1 = try key_pair.sign(&msg1, null);
517 const sig2 = try key_pair.sign(&msg2, null);
343518 var signature_batch = [_]Ed25519.BatchElement{
344519 Ed25519.BatchElement{
345520 .sig = sig1,
......@@ -355,9 +530,7 @@ test "ed25519 batch verification" {
355530 try Ed25519.verifyBatch(2, signature_batch);
356531
357532 signature_batch[1].sig = sig1;
358 // TODO https://github.com/ziglang/zig/issues/12240
359 const sig_len = signature_batch.len;
360 try std.testing.expectError(error.SignatureVerificationFailed, Ed25519.verifyBatch(sig_len, signature_batch));
533 try std.testing.expectError(error.SignatureVerificationFailed, Ed25519.verifyBatch(signature_batch.len, signature_batch));
361534 }
362535}
363536
......@@ -446,20 +619,25 @@ test "ed25519 test vectors" {
446619 for (entries) |entry| {
447620 var msg: [entry.msg_hex.len / 2]u8 = undefined;
448621 _ = try fmt.hexToBytes(&msg, entry.msg_hex);
449 var public_key: [32]u8 = undefined;
450 _ = try fmt.hexToBytes(&public_key, entry.public_key_hex);
451 var sig: [64]u8 = undefined;
452 _ = try fmt.hexToBytes(&sig, entry.sig_hex);
622 var public_key_bytes: [32]u8 = undefined;
623 _ = try fmt.hexToBytes(&public_key_bytes, entry.public_key_hex);
624 const public_key = Ed25519.PublicKey.fromBytes(public_key_bytes) catch |err| {
625 try std.testing.expectEqual(entry.expected.?, err);
626 continue;
627 };
628 var sig_bytes: [64]u8 = undefined;
629 _ = try fmt.hexToBytes(&sig_bytes, entry.sig_hex);
630 const sig = Ed25519.Signature.fromBytes(sig_bytes);
453631 if (entry.expected) |error_type| {
454 try std.testing.expectError(error_type, Ed25519.verify(sig, &msg, public_key));
632 try std.testing.expectError(error_type, sig.verify(&msg, public_key));
455633 } else {
456 try Ed25519.verify(sig, &msg, public_key);
634 try sig.verify(&msg, public_key);
457635 }
458636 }
459637}
460638
461639test "ed25519 with blind keys" {
462 const BlindKeySignatures = Ed25519.BlindKeySignatures;
640 const BlindKeyPair = Ed25519.key_blinding.BlindKeyPair;
463641
464642 // Create a standard Ed25519 key pair
465643 const kp = try Ed25519.KeyPair.create(null);
......@@ -469,14 +647,30 @@ test "ed25519 with blind keys" {
469647 crypto.random.bytes(&blind);
470648
471649 // Blind the key pair
472 const blind_kp = try BlindKeySignatures.blind(kp, blind, "ctx");
650 const blind_kp = try BlindKeyPair.init(kp, blind, "ctx");
473651
474652 // Sign a message and check that it can be verified with the blind public key
475653 const msg = "test";
476 const sig = try BlindKeySignatures.sign(msg, blind_kp, null);
477 try Ed25519.verify(sig, msg, blind_kp.blind_public_key);
654 const sig = try blind_kp.sign(msg, null);
655 try sig.verify(msg, blind_kp.blind_public_key.key);
478656
479657 // Unblind the public key
480 const pk = try BlindKeySignatures.unblindPublicKey(blind_kp.blind_public_key, blind, "ctx");
481 try std.testing.expectEqualSlices(u8, &pk, &kp.public_key);
658 const pk = try blind_kp.blind_public_key.unblind(blind, "ctx");
659 try std.testing.expectEqualSlices(u8, &pk.toBytes(), &kp.public_key.toBytes());
660}
661
662test "ed25519 signatures with streaming" {
663 const kp = try Ed25519.KeyPair.create(null);
664
665 var signer = try kp.signer(null);
666 signer.update("mes");
667 signer.update("sage");
668 const sig = signer.finalize();
669
670 try sig.verify("message", kp.public_key);
671
672 var verifier = try sig.verifier(kp.public_key);
673 verifier.update("mess");
674 verifier.update("age");
675 try verifier.verify();
482676}
lib/std/crypto/25519/x25519.zig+4-4
......@@ -44,9 +44,9 @@ pub const X25519 = struct {
4444
4545 /// Create a key pair from an Ed25519 key pair
4646 pub fn fromEd25519(ed25519_key_pair: crypto.sign.Ed25519.KeyPair) (IdentityElementError || EncodingError)!KeyPair {
47 const seed = ed25519_key_pair.secret_key[0..32];
47 const seed = ed25519_key_pair.secret_key.seed();
4848 var az: [Sha512.digest_length]u8 = undefined;
49 Sha512.hash(seed, &az, .{});
49 Sha512.hash(&seed, &az, .{});
5050 var sk = az[0..32].*;
5151 Curve.scalar.clamp(&sk);
5252 const pk = try publicKeyFromEd25519(ed25519_key_pair.public_key);
......@@ -64,8 +64,8 @@ pub const X25519 = struct {
6464 }
6565
6666 /// Compute the X25519 equivalent to an Ed25519 public eky.
67 pub fn publicKeyFromEd25519(ed25519_public_key: [crypto.sign.Ed25519.public_length]u8) (IdentityElementError || EncodingError)![public_length]u8 {
68 const pk_ed = try crypto.ecc.Edwards25519.fromBytes(ed25519_public_key);
67 pub fn publicKeyFromEd25519(ed25519_public_key: crypto.sign.Ed25519.PublicKey) (IdentityElementError || EncodingError)![public_length]u8 {
68 const pk_ed = try crypto.ecc.Edwards25519.fromBytes(ed25519_public_key.bytes);
6969 const pk = try Curve.fromEdwards25519(pk_ed);
7070 return pk.toBytes();
7171 }
lib/std/crypto/benchmark.zig+15-7
......@@ -130,7 +130,7 @@ pub fn benchmarkSignature(comptime Signature: anytype, comptime signatures_count
130130 {
131131 var i: usize = 0;
132132 while (i < signatures_count) : (i += 1) {
133 const sig = try Signature.sign(&msg, key_pair, null);
133 const sig = try key_pair.sign(&msg, null);
134134 mem.doNotOptimizeAway(&sig);
135135 }
136136 }
......@@ -147,14 +147,14 @@ const signature_verifications = [_]Crypto{Crypto{ .ty = crypto.sign.Ed25519, .na
147147pub fn benchmarkSignatureVerification(comptime Signature: anytype, comptime signatures_count: comptime_int) !u64 {
148148 const msg = [_]u8{0} ** 64;
149149 const key_pair = try Signature.KeyPair.create(null);
150 const sig = try Signature.sign(&msg, key_pair, null);
150 const sig = try key_pair.sign(&msg, null);
151151
152152 var timer = try Timer.start();
153153 const start = timer.lap();
154154 {
155155 var i: usize = 0;
156156 while (i < signatures_count) : (i += 1) {
157 try Signature.verify(sig, &msg, key_pair.public_key);
157 try sig.verify(&msg, key_pair.public_key);
158158 mem.doNotOptimizeAway(&sig);
159159 }
160160 }
......@@ -171,7 +171,7 @@ const batch_signature_verifications = [_]Crypto{Crypto{ .ty = crypto.sign.Ed2551
171171pub fn benchmarkBatchSignatureVerification(comptime Signature: anytype, comptime signatures_count: comptime_int) !u64 {
172172 const msg = [_]u8{0} ** 64;
173173 const key_pair = try Signature.KeyPair.create(null);
174 const sig = try Signature.sign(&msg, key_pair, null);
174 const sig = try key_pair.sign(&msg, null);
175175
176176 var batch: [64]Signature.BatchElement = undefined;
177177 for (batch) |*element| {
......@@ -301,9 +301,13 @@ const CryptoPwhash = struct {
301301 params: *const anyopaque,
302302 name: []const u8,
303303};
304const bcrypt_params = crypto.pwhash.bcrypt.Params{ .rounds_log = 12 };
304const bcrypt_params = crypto.pwhash.bcrypt.Params{ .rounds_log = 8 };
305305const pwhashes = [_]CryptoPwhash{
306 .{ .ty = crypto.pwhash.bcrypt, .params = &bcrypt_params, .name = "bcrypt" },
306 .{
307 .ty = crypto.pwhash.bcrypt,
308 .params = &bcrypt_params,
309 .name = "bcrypt",
310 },
307311 .{
308312 .ty = crypto.pwhash.scrypt,
309313 .params = &crypto.pwhash.scrypt.Params.interactive,
......@@ -323,7 +327,11 @@ fn benchmarkPwhash(
323327 comptime count: comptime_int,
324328) !f64 {
325329 const password = "testpass" ** 2;
326 const opts = .{ .allocator = allocator, .params = @ptrCast(*const ty.Params, params).*, .encoding = .phc };
330 const opts = .{
331 .allocator = allocator,
332 .params = @ptrCast(*const ty.Params, @alignCast(std.meta.alignment(ty.Params), params)).*,
333 .encoding = .phc,
334 };
327335 var buf: [256]u8 = undefined;
328336
329337 var timer = try Timer.start();