1use crate::{Algorithm, EcdsaCurve, Error, Mpint, PrivateKey, PublicKey, Result, private, public};
4use alloc::vec::Vec;
5use core::fmt;
6use encoding::{CheckedSum, Decode, Encode, Reader, Writer};
7use signature::{SignatureEncoding, Signer, Verifier};
8
9#[cfg(feature = "ed25519")]
10use crate::{private::Ed25519Keypair, public::Ed25519PublicKey};
11
12#[cfg(feature = "dsa")]
13use {
14 crate::{private::DsaKeypair, public::DsaPublicKey},
15 encoding::Uint,
16 signature::{DigestSigner, DigestVerifier},
17};
18
19#[cfg(any(feature = "p256", feature = "p384", feature = "p521"))]
20use crate::{
21 private::{EcdsaKeypair, EcdsaPrivateKey},
22 public::EcdsaPublicKey,
23};
24
25#[cfg(feature = "rsa")]
26use {
27 crate::{HashAlg, private::RsaKeypair, public::RsaPublicKey},
28 sha2::Sha512,
29};
30
31#[cfg(any(all(feature = "sha1", feature = "rsa"), feature = "dsa"))]
32use sha1::Sha1;
33
34#[cfg(any(feature = "ed25519", feature = "rsa", feature = "p256"))]
35use sha2::Sha256;
36
37#[cfg(any(feature = "dsa", feature = "ed25519", feature = "p256"))]
38use sha2::Digest;
39
40const DSA_COMPONENT_SIZE: usize = 20;
41const DSA_SIGNATURE_SIZE: usize = DSA_COMPONENT_SIZE * 2;
42const ED25519_SIGNATURE_SIZE: usize = 64;
43const SK_SIGNATURE_TRAILER_SIZE: usize = 5; const SK_ED25519_SIGNATURE_SIZE: usize = ED25519_SIGNATURE_SIZE + SK_SIGNATURE_TRAILER_SIZE;
45
46pub trait SigningKey: Signer<Signature> {
52 fn public_key(&self) -> public::KeyData;
54}
55
56impl<T> SigningKey for T
57where
58 T: Signer<Signature>,
59 public::KeyData: for<'a> From<&'a T>,
60{
61 fn public_key(&self) -> public::KeyData {
62 self.into()
63 }
64}
65
66#[derive(Clone, Eq, Hash, PartialEq, PartialOrd, Ord)]
88pub struct Signature {
89 algorithm: Algorithm,
91
92 data: Vec<u8>,
94}
95
96impl Signature {
97 pub fn new(algorithm: Algorithm, data: impl Into<Vec<u8>>) -> Result<Self> {
105 let data = data.into();
106
107 match algorithm {
109 Algorithm::Dsa if data.len() == DSA_SIGNATURE_SIZE => (),
110 Algorithm::Ecdsa { curve } => ecdsa_sig_size(&data, curve, false)?,
111 Algorithm::Ed25519 if data.len() == ED25519_SIGNATURE_SIZE => (),
112 Algorithm::SkEd25519 if data.len() == SK_ED25519_SIGNATURE_SIZE => (),
113 Algorithm::SkEcdsaSha2NistP256 => ecdsa_sig_size(&data, EcdsaCurve::NistP256, true)?,
114 Algorithm::Rsa { .. } => (),
115 Algorithm::Other(_) if !data.is_empty() => (),
116 _ => return Err(encoding::Error::Length.into()),
117 }
118
119 Ok(Self { algorithm, data })
120 }
121
122 #[must_use]
124 pub fn algorithm(&self) -> Algorithm {
125 self.algorithm.clone()
126 }
127
128 #[must_use]
130 pub fn as_bytes(&self) -> &[u8] {
131 &self.data
132 }
133
134 pub(crate) fn placeholder() -> Self {
138 Self {
139 algorithm: Algorithm::default(),
140 data: Vec::new(),
141 }
142 }
143
144 pub(crate) fn is_placeholder(&self) -> bool {
146 self.algorithm == Algorithm::default() && self.data.is_empty()
147 }
148}
149
150fn ecdsa_sig_size(mut data: &[u8], curve: EcdsaCurve, sk_trailer: bool) -> Result<()> {
153 let reader = &mut data;
154
155 for _ in 0..2 {
156 let component = Mpint::decode(reader)?;
157 let bytes = component.as_positive_bytes().ok_or(Error::FormatEncoding)?;
158 if bytes.len() > curve.field_size() {
159 return Err(encoding::Error::Length.into());
160 }
161 }
162
163 if sk_trailer {
164 reader.drain(SK_SIGNATURE_TRAILER_SIZE)?;
165 }
166
167 Ok(reader.finish(())?)
168}
169
170impl AsRef<[u8]> for Signature {
171 fn as_ref(&self) -> &[u8] {
172 self.as_bytes()
173 }
174}
175
176impl Decode for Signature {
177 type Error = Error;
178
179 fn decode(reader: &mut impl Reader) -> Result<Self> {
180 let algorithm = Algorithm::decode(reader)?;
181 let mut data = Vec::decode(reader)?;
182
183 if algorithm == Algorithm::SkEd25519 || algorithm == Algorithm::SkEcdsaSha2NistP256 {
184 let flags = u8::decode(reader)?;
185 let counter = u32::decode(reader)?;
186
187 data.push(flags);
188 data.extend(counter.to_be_bytes());
189 }
190 Self::new(algorithm, data)
191 }
192}
193
194impl Encode for Signature {
195 fn encoded_len(&self) -> encoding::Result<usize> {
196 [
197 self.algorithm().encoded_len()?,
198 self.as_bytes().encoded_len()?,
199 ]
200 .checked_sum()
201 }
202
203 fn encode(&self, writer: &mut impl Writer) -> encoding::Result<()> {
204 if self.is_placeholder() {
205 return Err(encoding::Error::Length);
206 }
207
208 self.algorithm().encode(writer)?;
209
210 if self.algorithm == Algorithm::SkEd25519 {
211 let signature_length = self
212 .as_bytes()
213 .len()
214 .checked_sub(SK_SIGNATURE_TRAILER_SIZE)
215 .ok_or(encoding::Error::Length)?;
216 self.as_bytes()[..signature_length].encode(writer)?;
217 writer.write(&self.as_bytes()[signature_length..])?;
218 } else {
219 self.as_bytes().encode(writer)?;
220 }
221
222 Ok(())
223 }
224}
225
226impl SignatureEncoding for Signature {
227 type Repr = Vec<u8>;
228}
229
230impl TryFrom<&[u8]> for Signature {
232 type Error = Error;
233
234 fn try_from(mut bytes: &[u8]) -> Result<Self> {
235 Self::decode(&mut bytes)
236 }
237}
238
239impl TryFrom<Signature> for Vec<u8> {
240 type Error = Error;
241
242 fn try_from(signature: Signature) -> Result<Vec<u8>> {
243 Ok(signature.encode_vec()?)
244 }
245}
246
247impl fmt::Debug for Signature {
248 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
249 write!(
250 f,
251 "Signature {{ algorithm: {:?}, data: {:X} }}",
252 self.algorithm, self
253 )
254 }
255}
256
257impl fmt::LowerHex for Signature {
258 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
259 for byte in self.as_ref() {
260 write!(f, "{byte:02x}")?;
261 }
262 Ok(())
263 }
264}
265
266impl fmt::UpperHex for Signature {
267 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
268 for byte in self.as_ref() {
269 write!(f, "{byte:02X}")?;
270 }
271 Ok(())
272 }
273}
274
275impl Signer<Signature> for PrivateKey {
276 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
277 self.key_data().try_sign(message)
278 }
279}
280
281impl Signer<Signature> for private::KeypairData {
282 #[allow(unused_variables)]
283 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
284 match self {
285 #[cfg(feature = "dsa")]
286 Self::Dsa(keypair) => keypair.try_sign(message),
287 #[cfg(any(feature = "p256", feature = "p384", feature = "p521"))]
288 Self::Ecdsa(keypair) => keypair.try_sign(message),
289 #[cfg(feature = "ed25519")]
290 Self::Ed25519(keypair) => keypair.try_sign(message),
291 #[cfg(feature = "rsa")]
292 Self::Rsa(keypair) => keypair.try_sign(message),
293 _ => Err(self.algorithm()?.unsupported_error().into()),
294 }
295 }
296}
297
298impl Verifier<Signature> for PublicKey {
299 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
300 self.key_data().verify(message, signature)
301 }
302}
303
304impl Verifier<Signature> for public::KeyData {
305 #[allow(unused_variables)]
306 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
307 match self {
308 #[cfg(feature = "dsa")]
309 Self::Dsa(pk) => pk.verify(message, signature),
310 #[cfg(any(feature = "p256", feature = "p384", feature = "p521"))]
311 Self::Ecdsa(pk) => pk.verify(message, signature),
312 #[cfg(feature = "ed25519")]
313 Self::Ed25519(pk) => pk.verify(message, signature),
314 #[cfg(feature = "ed25519")]
315 Self::SkEd25519(pk) => pk.verify(message, signature),
316 #[cfg(feature = "p256")]
317 Self::SkEcdsaSha2NistP256(pk) => pk.verify(message, signature),
318 #[cfg(feature = "rsa")]
319 Self::Rsa(pk) => pk.verify(message, signature),
320 #[allow(unreachable_patterns)]
321 _ => Err(self.algorithm().unsupported_error().into()),
322 }
323 }
324}
325
326#[cfg(feature = "dsa")]
327impl Signer<Signature> for DsaKeypair {
328 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
329 let signature = dsa::SigningKey::try_from(self)?
330 .try_sign_digest(|digest: &mut Sha1| {
331 digest.update(message);
332 Ok(())
333 })
334 .map_err(|_| signature::Error::new())?;
335
336 let mut data = Vec::with_capacity(DSA_SIGNATURE_SIZE);
338
339 for component in [signature.r(), signature.s()] {
340 let bytes = component.to_be_bytes_trimmed_vartime();
341 let pad_len = DSA_COMPONENT_SIZE.saturating_sub(bytes.len());
342 data.extend(core::iter::repeat_n(0, pad_len));
343 data.extend_from_slice(&bytes);
344 }
345
346 debug_assert_eq!(data.len(), DSA_SIGNATURE_SIZE);
347
348 Ok(Signature {
349 algorithm: Algorithm::Dsa,
350 data,
351 })
352 }
353}
354
355#[cfg(feature = "dsa")]
356impl Verifier<Signature> for DsaPublicKey {
357 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
358 match signature.algorithm {
359 Algorithm::Dsa => {
360 let signature = dsa::Signature::try_from(signature)?;
361 dsa::VerifyingKey::try_from(self)?
362 .verify_digest(
363 |digest: &mut Sha1| {
364 digest.update(message);
365 Ok(())
366 },
367 &signature,
368 )
369 .map_err(|_| signature::Error::new())
370 }
371 _ => Err(signature.algorithm().unsupported_error().into()),
372 }
373 }
374}
375
376#[cfg(feature = "dsa")]
377impl TryFrom<Signature> for dsa::Signature {
378 type Error = Error;
379
380 fn try_from(signature: Signature) -> Result<Self> {
381 dsa::Signature::try_from(&signature)
382 }
383}
384
385#[cfg(feature = "dsa")]
386impl TryFrom<&Signature> for dsa::Signature {
387 type Error = Error;
388
389 fn try_from(signature: &Signature) -> Result<Self> {
390 let data = signature.data.as_slice();
391 if data.len() != DSA_SIGNATURE_SIZE {
392 return Err(encoding::Error::Length.into());
393 }
394
395 let components = data.split_at(DSA_COMPONENT_SIZE);
396
397 #[expect(
398 clippy::as_conversions,
399 clippy::cast_possible_truncation,
400 reason = "constant"
401 )]
402 const COMPONENT_BITS: u32 = DSA_COMPONENT_SIZE.saturating_mul(8) as u32;
403 let r = Uint::from_be_slice(components.0, COMPONENT_BITS)?;
404 let s = Uint::from_be_slice(components.1, COMPONENT_BITS)?;
405 Ok(Self::from_components(r, s).ok_or(encoding::Error::MpintEncoding)?)
406 }
407}
408
409#[cfg(feature = "ed25519")]
410impl TryFrom<Signature> for ed25519_dalek::Signature {
411 type Error = Error;
412
413 fn try_from(signature: Signature) -> Result<ed25519_dalek::Signature> {
414 ed25519_dalek::Signature::try_from(&signature)
415 }
416}
417
418#[cfg(feature = "ed25519")]
419impl TryFrom<&Signature> for ed25519_dalek::Signature {
420 type Error = Error;
421
422 fn try_from(signature: &Signature) -> Result<ed25519_dalek::Signature> {
423 match signature.algorithm {
424 Algorithm::Ed25519 | Algorithm::SkEd25519 => {
425 Ok(ed25519_dalek::Signature::try_from(signature.as_bytes())?)
426 }
427 _ => Err(Error::AlgorithmUnknown),
428 }
429 }
430}
431
432#[cfg(feature = "ed25519")]
433impl Signer<Signature> for Ed25519Keypair {
434 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
435 let signature = ed25519_dalek::SigningKey::try_from(self)?.sign(message);
436
437 Ok(Signature {
438 algorithm: Algorithm::Ed25519,
439 data: signature.to_vec(),
440 })
441 }
442}
443
444#[cfg(feature = "ed25519")]
445impl Verifier<Signature> for Ed25519PublicKey {
446 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
447 let signature = ed25519_dalek::Signature::try_from(signature)?;
448 ed25519_dalek::VerifyingKey::try_from(self)?.verify(message, &signature)
449 }
450}
451
452#[cfg(feature = "ed25519")]
453impl Verifier<Signature> for public::SkEd25519 {
454 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
455 let (signature, flags_and_counter) = split_sk_signature(signature)?;
456 let signature = ed25519_dalek::Signature::try_from(signature)?;
457 ed25519_dalek::VerifyingKey::try_from(self.public_key())?.verify(
458 &make_sk_signed_data(self.application(), flags_and_counter, message),
459 &signature,
460 )
461 }
462}
463
464#[cfg(feature = "p256")]
465impl Verifier<Signature> for public::SkEcdsaSha2NistP256 {
466 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
467 let (signature_bytes, flags_and_counter) = split_sk_signature(signature)?;
468 let signature = p256_signature_from_openssh_bytes(signature_bytes)?;
469 p256::ecdsa::VerifyingKey::from_sec1_point(self.ec_point())?.verify(
470 &make_sk_signed_data(self.application(), flags_and_counter, message),
471 &signature,
472 )
473 }
474}
475
476#[cfg(any(feature = "p256", feature = "ed25519"))]
477fn make_sk_signed_data(application: &str, flags_and_counter: &[u8], message: &[u8]) -> Vec<u8> {
478 const SHA256_OUTPUT_LENGTH: usize = 32;
479 const SIGNED_SK_DATA_LENGTH: usize = 2 * SHA256_OUTPUT_LENGTH + SK_SIGNATURE_TRAILER_SIZE;
480
481 let mut signed_data = Vec::with_capacity(SIGNED_SK_DATA_LENGTH);
482 signed_data.extend(Sha256::digest(application));
483 signed_data.extend(flags_and_counter);
484 signed_data.extend(Sha256::digest(message));
485 signed_data
486}
487
488#[cfg(any(feature = "p256", feature = "ed25519"))]
489fn split_sk_signature(signature: &Signature) -> Result<(&[u8], &[u8])> {
490 let signature_bytes = signature.as_bytes();
491 let signature_len = signature_bytes
492 .len()
493 .checked_sub(SK_SIGNATURE_TRAILER_SIZE)
494 .ok_or(Error::Encoding(encoding::Error::Length))?;
495 Ok((
496 &signature_bytes[..signature_len],
497 &signature_bytes[signature_len..],
498 ))
499}
500
501macro_rules! impl_signature_for_curve {
502 ($krate:ident, $feature:expr, $curve:ident, $size:expr) => {
503 #[cfg(feature = $feature)]
504 impl TryFrom<$krate::ecdsa::Signature> for Signature {
505 type Error = Error;
506
507 fn try_from(signature: $krate::ecdsa::Signature) -> Result<Signature> {
508 Signature::try_from(&signature)
509 }
510 }
511
512 #[cfg(feature = $feature)]
513 impl TryFrom<&$krate::ecdsa::Signature> for Signature {
514 type Error = Error;
515
516 fn try_from(signature: &$krate::ecdsa::Signature) -> Result<Signature> {
517 let (r, s) = signature.split_bytes();
518
519 #[allow(clippy::arithmetic_side_effects)]
520 let mut data = Vec::with_capacity($size * 2 + 4 * 2 + 2);
521
522 Mpint::from_positive_bytes(&r).encode(&mut data)?;
523 Mpint::from_positive_bytes(&s).encode(&mut data)?;
524
525 Ok(Signature {
526 algorithm: Algorithm::Ecdsa {
527 curve: EcdsaCurve::$curve,
528 },
529 data,
530 })
531 }
532 }
533
534 #[cfg(feature = $feature)]
535 impl TryFrom<Signature> for $krate::ecdsa::Signature {
536 type Error = Error;
537
538 fn try_from(signature: Signature) -> Result<$krate::ecdsa::Signature> {
539 $krate::ecdsa::Signature::try_from(&signature)
540 }
541 }
542
543 #[cfg(feature = $feature)]
544 impl Signer<Signature> for EcdsaPrivateKey<$size> {
545 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
546 let signing_key = $krate::ecdsa::SigningKey::from_slice(self.as_ref())?;
547 let signature: $krate::ecdsa::Signature = signing_key.try_sign(message)?;
548 Ok(signature.try_into()?)
549 }
550 }
551 };
552}
553
554impl_signature_for_curve!(p256, "p256", NistP256, 32);
555impl_signature_for_curve!(p384, "p384", NistP384, 48);
556impl_signature_for_curve!(p521, "p521", NistP521, 66);
557
558#[cfg(any(feature = "p256", feature = "p384", feature = "p521"))]
560fn zero_pad_field_bytes<B: FromIterator<u8> + Copy>(m: Mpint) -> Option<B> {
561 use core::mem::size_of;
562
563 let bytes = m.as_positive_bytes()?;
564 size_of::<B>().checked_sub(bytes.len()).map(|i| {
565 core::iter::repeat_n(0u8, i)
566 .chain(bytes.iter().cloned())
567 .collect()
568 })
569}
570
571#[cfg(feature = "p256")]
572impl TryFrom<&Signature> for p256::ecdsa::Signature {
573 type Error = Error;
574
575 fn try_from(signature: &Signature) -> Result<p256::ecdsa::Signature> {
576 match signature.algorithm {
577 Algorithm::Ecdsa {
578 curve: EcdsaCurve::NistP256,
579 } => p256_signature_from_openssh_bytes(signature.as_bytes()),
580 _ => Err(signature.algorithm.clone().unsupported_error()),
581 }
582 }
583}
584#[cfg(feature = "p256")]
585fn p256_signature_from_openssh_bytes(mut signature_bytes: &[u8]) -> Result<p256::ecdsa::Signature> {
586 let reader = &mut signature_bytes;
587 let r = Mpint::decode(reader)?;
588 let s = Mpint::decode(reader)?;
589
590 match (
591 zero_pad_field_bytes::<p256::FieldBytes>(r),
592 zero_pad_field_bytes::<p256::FieldBytes>(s),
593 ) {
594 (Some(r), Some(s)) => Ok(p256::ecdsa::Signature::from_scalars(r, s)?),
595 _ => Err(Error::Crypto),
596 }
597}
598
599#[cfg(feature = "p384")]
600impl TryFrom<&Signature> for p384::ecdsa::Signature {
601 type Error = Error;
602
603 fn try_from(signature: &Signature) -> Result<p384::ecdsa::Signature> {
604 match signature.algorithm {
605 Algorithm::Ecdsa {
606 curve: EcdsaCurve::NistP384,
607 } => {
608 let reader = &mut signature.as_bytes();
609 let r = Mpint::decode(reader)?;
610 let s = Mpint::decode(reader)?;
611
612 match (
613 zero_pad_field_bytes::<p384::FieldBytes>(r),
614 zero_pad_field_bytes::<p384::FieldBytes>(s),
615 ) {
616 (Some(r), Some(s)) => Ok(p384::ecdsa::Signature::from_scalars(r, s)?),
617 _ => Err(Error::Crypto),
618 }
619 }
620 _ => Err(signature.algorithm.clone().unsupported_error()),
621 }
622 }
623}
624
625#[cfg(feature = "p521")]
626impl TryFrom<&Signature> for p521::ecdsa::Signature {
627 type Error = Error;
628
629 fn try_from(signature: &Signature) -> Result<p521::ecdsa::Signature> {
630 match signature.algorithm {
631 Algorithm::Ecdsa {
632 curve: EcdsaCurve::NistP521,
633 } => {
634 let reader = &mut signature.as_bytes();
635 let r = Mpint::decode(reader)?;
636 let s = Mpint::decode(reader)?;
637
638 match (
639 zero_pad_field_bytes::<p521::FieldBytes>(r),
640 zero_pad_field_bytes::<p521::FieldBytes>(s),
641 ) {
642 (Some(r), Some(s)) => Ok(p521::ecdsa::Signature::from_scalars(r, s)?),
643 _ => Err(Error::Crypto),
644 }
645 }
646 _ => Err(signature.algorithm.clone().unsupported_error()),
647 }
648 }
649}
650
651#[cfg(any(feature = "p256", feature = "p384", feature = "p521"))]
652impl Signer<Signature> for EcdsaKeypair {
653 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
654 match self {
655 #[cfg(feature = "p256")]
656 Self::NistP256 { private, .. } => private.try_sign(message),
657 #[cfg(feature = "p384")]
658 Self::NistP384 { private, .. } => private.try_sign(message),
659 #[cfg(feature = "p521")]
660 Self::NistP521 { private, .. } => private.try_sign(message),
661 #[cfg(not(all(feature = "p256", feature = "p384", feature = "p521")))]
662 _ => Err(self.algorithm().unsupported_error().into()),
663 }
664 }
665}
666
667#[cfg(any(feature = "p256", feature = "p384", feature = "p521"))]
668impl Verifier<Signature> for EcdsaPublicKey {
669 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
670 match signature.algorithm {
671 Algorithm::Ecdsa { curve } => match curve {
672 #[cfg(feature = "p256")]
673 EcdsaCurve::NistP256 => {
674 let verifying_key = p256::ecdsa::VerifyingKey::try_from(self)?;
675 let signature = p256::ecdsa::Signature::try_from(signature)?;
676 verifying_key.verify(message, &signature)
677 }
678
679 #[cfg(feature = "p384")]
680 EcdsaCurve::NistP384 => {
681 let verifying_key = p384::ecdsa::VerifyingKey::try_from(self)?;
682 let signature = p384::ecdsa::Signature::try_from(signature)?;
683 verifying_key.verify(message, &signature)
684 }
685
686 #[cfg(feature = "p521")]
687 EcdsaCurve::NistP521 => {
688 let verifying_key = p521::ecdsa::VerifyingKey::try_from(self)?;
689 let signature = p521::ecdsa::Signature::try_from(signature)?;
690 verifying_key.verify(message, &signature)
691 }
692
693 #[cfg(not(all(feature = "p256", feature = "p384", feature = "p521")))]
694 _ => Err(signature.algorithm().unsupported_error().into()),
695 },
696 _ => Err(signature.algorithm().unsupported_error().into()),
697 }
698 }
699}
700
701#[cfg(feature = "rsa")]
702impl Signer<Signature> for (&RsaKeypair, Option<HashAlg>) {
703 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
704 let data = match self.1 {
705 Some(HashAlg::Sha512) => {
706 rsa::pkcs1v15::SigningKey::<Sha512>::try_from(self.0)?.try_sign(message)
707 }
708 Some(HashAlg::Sha256) => {
709 rsa::pkcs1v15::SigningKey::<Sha256>::try_from(self.0)?.try_sign(message)
710 }
711 #[cfg(all(feature = "rsa", feature = "sha1"))]
712 None => rsa::pkcs1v15::SigningKey::<Sha1>::try_from(self.0)?.try_sign(message),
713 #[cfg(not(all(feature = "rsa", feature = "sha1")))]
714 None => return Err(Algorithm::Rsa { hash: None }.unsupported_error().into()),
715 }
716 .map_err(|_| signature::Error::new())?;
717
718 Ok(Signature {
719 algorithm: Algorithm::Rsa { hash: self.1 },
720 data: data.to_vec(),
721 })
722 }
723}
724
725#[cfg(feature = "rsa")]
726impl Signer<Signature> for RsaKeypair {
727 fn try_sign(&self, message: &[u8]) -> signature::Result<Signature> {
728 (self, Some(HashAlg::Sha512)).try_sign(message)
729 }
730}
731
732#[cfg(feature = "rsa")]
733impl Verifier<Signature> for RsaPublicKey {
734 fn verify(&self, message: &[u8], signature: &Signature) -> signature::Result<()> {
735 match signature.algorithm {
736 Algorithm::Rsa { hash } => {
737 let signature = rsa::pkcs1v15::Signature::try_from(signature.data.as_ref())?;
738
739 match hash {
740 #[cfg(not(all(feature = "rsa", feature = "sha1")))]
741 None => Err(Algorithm::Rsa { hash: None }.unsupported_error().into()),
742 #[cfg(all(feature = "rsa", feature = "sha1"))]
743 None => rsa::pkcs1v15::VerifyingKey::<Sha1>::try_from(self)?
744 .verify(message, &signature)
745 .map_err(|_| signature::Error::new()),
746 Some(HashAlg::Sha256) => rsa::pkcs1v15::VerifyingKey::<Sha256>::try_from(self)?
747 .verify(message, &signature)
748 .map_err(|_| signature::Error::new()),
749 Some(HashAlg::Sha512) => rsa::pkcs1v15::VerifyingKey::<Sha512>::try_from(self)?
750 .verify(message, &signature)
751 .map_err(|_| signature::Error::new()),
752 }
753 }
754 _ => Err(signature.algorithm().unsupported_error().into()),
755 }
756 }
757}
758
759#[cfg(test)]
760mod tests {
761 use super::Signature;
762 use crate::{Algorithm, EcdsaCurve, HashAlg};
763 use alloc::vec::Vec;
764 use encoding::Encode;
765 use hex_literal::hex;
766
767 #[cfg(any(feature = "ed25519", all(feature = "rsa", feature = "sha1")))]
768 use signature::Verifier;
769 #[cfg(feature = "ed25519")]
770 use {super::Ed25519Keypair, signature::Signer};
771
772 #[cfg(feature = "p256")]
773 use super::{Mpint, zero_pad_field_bytes};
774
775 const DSA_SIGNATURE: &[u8] = &hex!(
776 "000000077373682d6473730000002866725bf3c56100e975e21fff28a60f73717534d285ea3e1beefc2891f7189d00bd4d94627e84c55c"
777 );
778 const ECDSA_SHA2_P256_SIGNATURE: &[u8] = &hex!(
779 "0000001365636473612d736861322d6e6973747032353600000048000000201298ab320720a32139cda8a40c97a13dc54ce032ea3c6f09ea9e87501e48fa1d0000002046e4ac697a6424a9870b9ef04ca1182cd741965f989bd1f1f4a26fd83cf70348"
780 );
781 const ED25519_SIGNATURE: &[u8] = &hex!(
782 "0000000b7373682d65643235353139000000403d6b9906b76875aef1e7b2f1e02078a94f439aebb9a4734da1a851a81e22ce0199bbf820387a8de9c834c9c3cc778d9972dcbe70f68d53cc6bc9e26b02b46d04"
783 );
784 const SK_ED25519_SIGNATURE: &[u8] = &hex!(
785 "0000001a736b2d7373682d65643235353139406f70656e7373682e636f6d000000402f5670b6f93465d17423878a74084bf331767031ed240c627c8eb79ab8fa1b935a1fd993f52f5a13fec1797f8a434f943a6096246aea8dd5c8aa922cba3d95060100000009"
786 );
787 const RSA_SHA512_SIGNATURE: &[u8] = &hex!(
788 "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"
789 );
790
791 #[cfg(any(feature = "ed25519", all(feature = "rsa", feature = "sha1")))]
793 const EXAMPLE_MSG: &[u8] = b"Hello, world!";
794
795 #[cfg(feature = "p256")]
796 #[test]
797 fn convert_ecdsa_sha2_p256() {
798 let p256_signature = p256::ecdsa::Signature::try_from(&hex!("00000000000000000000000000000000000000000000000000000000000000010000000000000000000000000000000000000000000000000000000000000001")[..]).unwrap();
799 let _ssh_signature = Signature::try_from(p256_signature).unwrap();
800 }
801
802 #[cfg(feature = "p256")]
803 #[test]
804 fn zero_pad_field_bytes_p256() {
805 let i = Mpint::from_bytes(&hex!(
806 "1122334455667788112233445566778811223344556677881122334455667788"
807 ))
808 .unwrap();
809 let fb = zero_pad_field_bytes::<p256::FieldBytes>(i);
810 assert!(fb.is_some());
811
812 let i = Mpint::from_bytes(&hex!(
814 "991122334455667788112233445566778811223344556677881122334455667788"
815 ))
816 .unwrap();
817 let fb = zero_pad_field_bytes::<p256::FieldBytes>(i);
818 assert!(fb.is_none());
819
820 let i = Mpint::from_bytes(&hex!(
822 "22334455667788112233445566778811223344556677881122334455667788"
823 ))
824 .unwrap();
825 let fb = zero_pad_field_bytes::<p256::FieldBytes>(i)
826 .expect("failed to build FieldBytes from short hex string");
827 assert_eq!(fb[0], 0x00);
828 assert_eq!(fb[1], 0x22);
829 }
830
831 #[test]
832 fn decode_dsa() {
833 let signature = Signature::try_from(DSA_SIGNATURE).unwrap();
834 assert_eq!(Algorithm::Dsa, signature.algorithm());
835 }
836
837 #[test]
838 fn decode_ecdsa_sha2_p256() {
839 let signature = Signature::try_from(ECDSA_SHA2_P256_SIGNATURE).unwrap();
840 assert_eq!(
841 Algorithm::Ecdsa {
842 curve: EcdsaCurve::NistP256
843 },
844 signature.algorithm()
845 );
846 }
847
848 #[test]
849 fn decode_ed25519() {
850 let signature = Signature::try_from(ED25519_SIGNATURE).unwrap();
851 assert_eq!(Algorithm::Ed25519, signature.algorithm());
852 }
853
854 #[test]
855 fn decode_sk_ed25519() {
856 let signature = Signature::try_from(SK_ED25519_SIGNATURE).unwrap();
857 assert_eq!(Algorithm::SkEd25519, signature.algorithm());
858 }
859
860 #[test]
861 fn decode_rsa() {
862 let signature = Signature::try_from(RSA_SHA512_SIGNATURE).unwrap();
863 assert_eq!(
864 Algorithm::Rsa {
865 hash: Some(HashAlg::Sha512)
866 },
867 signature.algorithm()
868 );
869 }
870
871 #[test]
872 fn encode_dsa() {
873 let signature = Signature::try_from(DSA_SIGNATURE).unwrap();
874 let result = signature.encode_vec().unwrap();
875 assert_eq!(DSA_SIGNATURE, &result);
876 }
877
878 #[test]
879 fn encode_ecdsa_sha2_p256() {
880 let signature = Signature::try_from(ECDSA_SHA2_P256_SIGNATURE).unwrap();
881 let result = signature.encode_vec().unwrap();
882 assert_eq!(ECDSA_SHA2_P256_SIGNATURE, &result);
883 }
884
885 #[test]
886 fn encode_ed25519() {
887 let signature = Signature::try_from(ED25519_SIGNATURE).unwrap();
888 let result = signature.encode_vec().unwrap();
889 assert_eq!(ED25519_SIGNATURE, &result);
890 }
891
892 #[test]
893 fn encode_sk_ed25519() {
894 let signature = Signature::try_from(SK_ED25519_SIGNATURE).unwrap();
895 let result = signature.encode_vec().unwrap();
896 assert_eq!(SK_ED25519_SIGNATURE, &result);
897 }
898
899 #[cfg(feature = "dsa")]
900 #[test]
901 fn try_sign_and_verify_dsa() {
902 use super::{DSA_COMPONENT_SIZE, DsaKeypair};
903 use encoding::Decode as _;
904 use signature::{Signer as _, Verifier as _};
905
906 fn check_signature_component_lengths(
907 keypair: &DsaKeypair,
908 data: &[u8],
909 r_len: usize,
910 s_len: usize,
911 ) {
912 use sha1::{Digest as _, Sha1};
913 use signature::DigestSigner as _;
914
915 let signature = dsa::SigningKey::try_from(keypair)
916 .expect("valid DSA signing key")
917 .try_sign_digest(|digest: &mut Sha1| {
918 digest.update(data);
919 Ok(())
920 })
921 .expect("valid DSA signature");
922
923 let r = signature.r().to_be_bytes_trimmed_vartime();
924 assert_eq!(
925 r.len(),
926 r_len,
927 "dsa signature component `r` has len {} != {}",
928 r.len(),
929 r_len
930 );
931 let s = signature.s().to_be_bytes_trimmed_vartime();
932 assert_eq!(
933 s.len(),
934 s_len,
935 "dsa signature component `s` has len {} != {}",
936 s.len(),
937 s_len
938 );
939 }
940
941 let keypair = hex!(
942 "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"
943 );
944 let keypair = DsaKeypair::decode(&mut &keypair[..]).expect("properly encoded DSA keypair");
945
946 let data = hex!(
947 "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"
948 );
949 check_signature_component_lengths(&keypair, &data, DSA_COMPONENT_SIZE, DSA_COMPONENT_SIZE);
950 let signature = keypair.try_sign(&data[..]).expect("dsa try_sign is ok");
951 keypair
952 .public()
953 .verify(&data[..], &signature)
954 .expect("dsa verify is ok");
955
956 let data = hex!(
957 "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"
958 );
959 check_signature_component_lengths(
961 &keypair,
962 &data,
963 DSA_COMPONENT_SIZE - 1,
964 DSA_COMPONENT_SIZE,
965 );
966 let signature = keypair
967 .try_sign(&data[..])
968 .expect("dsa try_sign for r.len() == 19 is ok");
969 keypair
970 .public()
971 .verify(&data[..], &signature)
972 .expect("dsa verify is ok");
973 }
974
975 #[cfg(feature = "ed25519")]
976 #[test]
977 fn sign_and_verify_ed25519() {
978 let keypair = Ed25519Keypair::from_seed(&[42; 32]);
979 let signature = keypair.sign(EXAMPLE_MSG);
980 assert!(keypair.public.verify(EXAMPLE_MSG, &signature).is_ok());
981 }
982
983 #[test]
984 fn placeholder() {
985 assert!(
986 !Signature::try_from(ED25519_SIGNATURE)
987 .unwrap()
988 .is_placeholder()
989 );
990
991 let placeholder = Signature::placeholder();
992 assert!(placeholder.is_placeholder());
993
994 let mut writer = Vec::new();
995 assert_eq!(
996 placeholder.encode(&mut writer),
997 Err(encoding::Error::Length)
998 );
999 }
1000
1001 #[cfg(all(feature = "rsa", feature = "sha1"))]
1002 #[test]
1003 fn sign_and_verify_rsa_sha1() {
1004 use encoding::Decode;
1005
1006 use crate::PrivateKey;
1007
1008 let key = PrivateKey::from_openssh(include_str!("../tests/examples/id_rsa_3072")).unwrap();
1009 let key = key.key_data().rsa().unwrap();
1010 let encoded = hex!(
1011 "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"
1012 );
1013
1014 let decoded = Signature::decode(&mut &encoded[..]).unwrap();
1015
1016 assert!(Verifier::verify(key.public(), EXAMPLE_MSG, &decoded).is_ok());
1017 }
1018}