1use alloc::vec::Vec;
2use core::cmp::Ordering;
3use core::fmt;
4use core::hash::{Hash, Hasher};
5
6use crypto_bigint::modular::{BoxedMontyForm, BoxedMontyParams};
7use crypto_bigint::{BoxedUint, Integer, NonZero, Odd, Resize};
8use rand_core::CryptoRng;
9use zeroize::{Zeroize, ZeroizeOnDrop};
10#[cfg(feature = "serde")]
11use {
12 pkcs8::{DecodePrivateKey, EncodePrivateKey},
13 serdect::serde::{de, ser, Deserialize, Serialize},
14 spki::{DecodePublicKey, EncodePublicKey},
15};
16
17use crate::algorithms::generate::generate_multi_prime_key_with_exp;
18use crate::algorithms::rsa::{
19 compute_modulus, compute_private_exponent_carmicheal, compute_private_exponent_euler_totient,
20 recover_primes,
21};
22
23use crate::dummy_rng::DummyRng;
24use crate::errors::{Error, Result};
25use crate::traits::keys::{CrtValue, PrivateKeyParts, PublicKeyParts};
26use crate::traits::{PaddingScheme, SignatureScheme};
27
28#[derive(Debug, Clone)]
30pub struct RsaPublicKey {
31 n: NonZero<BoxedUint>,
33 e: BoxedUint,
38
39 n_params: BoxedMontyParams,
40}
41
42impl Eq for RsaPublicKey {}
43
44impl PartialEq for RsaPublicKey {
45 #[inline]
46 fn eq(&self, other: &RsaPublicKey) -> bool {
47 self.n == other.n && self.e == other.e
48 }
49}
50
51impl Hash for RsaPublicKey {
52 fn hash<H: Hasher>(&self, state: &mut H) {
53 state.write(b"RsaPublicKey");
55 Hash::hash(&self.n.as_limbs(), state);
57 Hash::hash(&self.e.as_limbs(), state);
58 }
59}
60
61#[derive(Clone)]
63pub struct RsaPrivateKey {
64 pubkey_components: RsaPublicKey,
66 pub(crate) d: BoxedUint,
68 pub(crate) primes: Vec<BoxedUint>,
70 pub(crate) precomputed: Option<PrecomputedValues>,
72}
73
74impl fmt::Debug for RsaPrivateKey {
75 fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
76 let precomputed = if self.precomputed.is_some() {
77 "Some(...)"
78 } else {
79 "None"
80 };
81 f.debug_struct("RsaPrivateKey")
82 .field("pubkey_components", &self.pubkey_components)
83 .field("d", &"...")
84 .field("primes", &"&[...]")
85 .field("precomputed", &precomputed)
86 .finish()
87 }
88}
89
90impl Eq for RsaPrivateKey {}
91impl PartialEq for RsaPrivateKey {
92 #[inline]
93 fn eq(&self, other: &RsaPrivateKey) -> bool {
94 self.pubkey_components == other.pubkey_components
95 && self.d == other.d
96 && self.primes == other.primes
97 }
98}
99
100impl AsRef<RsaPublicKey> for RsaPrivateKey {
101 fn as_ref(&self) -> &RsaPublicKey {
102 &self.pubkey_components
103 }
104}
105
106impl Hash for RsaPrivateKey {
107 fn hash<H: Hasher>(&self, state: &mut H) {
108 state.write(b"RsaPrivateKey");
110 Hash::hash(&self.pubkey_components, state);
111 }
112}
113
114impl Drop for RsaPrivateKey {
115 fn drop(&mut self) {
116 self.d.zeroize();
117 self.primes.zeroize();
118 self.precomputed.zeroize();
119 }
120}
121
122impl ZeroizeOnDrop for RsaPrivateKey {}
123
124#[derive(Clone)]
125pub(crate) struct PrecomputedValues {
126 pub(crate) dp: BoxedUint,
128 pub(crate) dq: BoxedUint,
130 pub(crate) qinv: BoxedMontyForm,
132
133 pub(crate) p_params: BoxedMontyParams,
135 pub(crate) q_params: BoxedMontyParams,
137}
138
139impl ZeroizeOnDrop for PrecomputedValues {}
140
141impl Zeroize for PrecomputedValues {
142 fn zeroize(&mut self) {
143 self.dp.zeroize();
144 self.dq.zeroize();
145 }
149}
150
151impl Drop for PrecomputedValues {
152 fn drop(&mut self) {
153 self.zeroize();
154 }
155}
156
157impl From<RsaPrivateKey> for RsaPublicKey {
158 fn from(private_key: RsaPrivateKey) -> Self {
159 (&private_key).into()
160 }
161}
162
163impl From<&RsaPrivateKey> for RsaPublicKey {
164 fn from(private_key: &RsaPrivateKey) -> Self {
165 let n = PublicKeyParts::n(private_key);
166 let e = PublicKeyParts::e(private_key);
167 let n_params = PublicKeyParts::n_params(private_key);
168 RsaPublicKey {
169 n: n.clone(),
170 e: e.clone(),
171 n_params: n_params.clone(),
172 }
173 }
174}
175
176impl PublicKeyParts for RsaPublicKey {
177 fn n(&self) -> &NonZero<BoxedUint> {
178 &self.n
179 }
180
181 fn e(&self) -> &BoxedUint {
182 &self.e
183 }
184
185 fn n_params(&self) -> &BoxedMontyParams {
186 &self.n_params
187 }
188}
189
190impl RsaPublicKey {
191 pub fn encrypt<R: CryptoRng + ?Sized, P: PaddingScheme>(
193 &self,
194 rng: &mut R,
195 padding: P,
196 msg: &[u8],
197 ) -> Result<Vec<u8>> {
198 padding.encrypt(rng, self, msg)
199 }
200
201 pub fn verify<S: SignatureScheme>(&self, scheme: S, hashed: &[u8], sig: &[u8]) -> Result<()> {
208 scheme.verify(self, hashed, sig)
209 }
210}
211
212impl RsaPublicKey {
213 pub const MIN_PUB_EXPONENT: u64 = 2;
215
216 pub const MAX_PUB_EXPONENT: u64 = (1 << 33) - 1;
218
219 pub const MAX_SIZE: usize = 4096;
221
222 pub fn new(n: BoxedUint, e: BoxedUint) -> Result<Self> {
227 Self::new_with_max_size(n, e, Self::MAX_SIZE)
228 }
229
230 pub fn new_with_max_size(n: BoxedUint, e: BoxedUint, max_size: usize) -> Result<Self> {
232 check_public_with_max_size(&n, &e, Some(max_size))?;
233
234 let n_odd = Odd::new(n.clone())
235 .into_option()
236 .ok_or(Error::InvalidModulus)?;
237 let n_params = BoxedMontyParams::new(n_odd);
238 let n = NonZero::new(n).expect("checked above");
239
240 Ok(Self { n, e, n_params })
241 }
242
243 pub fn new_unchecked(n: BoxedUint, e: BoxedUint) -> Self {
250 let n_odd = Odd::new(n.clone()).expect("n must be odd");
251 let n_params = BoxedMontyParams::new(n_odd);
252 let n = NonZero::new(n).expect("odd numbers are non zero");
253
254 Self { n, e, n_params }
255 }
256}
257
258impl PublicKeyParts for RsaPrivateKey {
259 fn n(&self) -> &NonZero<BoxedUint> {
260 &self.pubkey_components.n
261 }
262
263 fn e(&self) -> &BoxedUint {
264 &self.pubkey_components.e
265 }
266
267 fn n_params(&self) -> &BoxedMontyParams {
268 &self.pubkey_components.n_params
269 }
270}
271
272impl RsaPrivateKey {
273 const EXP: u64 = 65537;
275
276 const MIN_SIZE: u32 = 1024;
278
279 pub fn new<R: CryptoRng + ?Sized>(rng: &mut R, bit_size: usize) -> Result<Self> {
284 Self::new_with_exp(rng, bit_size, Self::EXP.into())
285 }
286
287 #[cfg(feature = "hazmat")]
293 pub fn new_unchecked<R: CryptoRng + ?Sized>(rng: &mut R, bit_size: usize) -> Result<Self> {
294 Self::new_with_exp_unchecked(rng, bit_size, Self::EXP.into())
295 }
296
297 pub fn new_with_exp<R: CryptoRng + ?Sized>(
302 rng: &mut R,
303 bit_size: usize,
304 exp: BoxedUint,
305 ) -> Result<RsaPrivateKey> {
306 if bit_size < Self::MIN_SIZE as usize {
307 return Err(Error::ModulusTooSmall);
308 }
309
310 let components = generate_multi_prime_key_with_exp(rng, 2, bit_size, exp)?;
311 RsaPrivateKey::from_components(
312 components.n.get(),
313 components.e,
314 components.d,
315 components.primes,
316 )
317 }
318
319 #[cfg(feature = "hazmat")]
328 pub fn new_with_exp_unchecked<R: CryptoRng + ?Sized>(
329 rng: &mut R,
330 bit_size: usize,
331 exp: BoxedUint,
332 ) -> Result<RsaPrivateKey> {
333 let components = generate_multi_prime_key_with_exp(rng, 2, bit_size, exp)?;
334 RsaPrivateKey::from_components(
335 components.n.get(),
336 components.e,
337 components.d,
338 components.primes,
339 )
340 }
341
342 pub fn from_components(
356 n: BoxedUint,
357 e: BoxedUint,
358 d: BoxedUint,
359 mut primes: Vec<BoxedUint>,
360 ) -> Result<RsaPrivateKey> {
361 let n = Odd::new(n).into_option().ok_or(Error::InvalidModulus)?;
362
363 let n_bits = n.bits_vartime();
366 let n = n.resize_unchecked(n_bits);
367
368 let n_params = BoxedMontyParams::new(n.clone());
369 let n_c = NonZero::new(n.get())
370 .into_option()
371 .ok_or(Error::InvalidModulus)?;
372
373 match primes.len() {
374 0 => {
375 let (p, q) = recover_primes(&n_c, &e, &d)?;
378 primes.push(p);
379 primes.push(q);
380 }
381 1 => return Err(Error::NprimesTooSmall),
382 _ => {
383 if &primes.iter().fold(BoxedUint::one(), |acc, p| acc * p) != n_c.as_ref() {
387 return Err(Error::InvalidModulus);
388 }
389 }
390 }
391
392 let primes = primes
394 .into_iter()
395 .map(|p| {
396 let p_bits = p.bits();
397 p.resize_unchecked(p_bits)
398 })
399 .collect();
400
401 let mut k = RsaPrivateKey {
402 pubkey_components: RsaPublicKey {
403 n: n_c,
404 e,
405 n_params,
406 },
407 d,
408 primes,
409 precomputed: None,
410 };
411
412 k.validate()?;
414
415 k.precompute().ok();
417
418 Ok(k)
419 }
420
421 pub fn from_p_q(
428 p: BoxedUint,
429 q: BoxedUint,
430 public_exponent: BoxedUint,
431 ) -> Result<RsaPrivateKey> {
432 if p == q {
433 return Err(Error::InvalidPrime);
434 }
435
436 let d = compute_private_exponent_carmicheal(&p, &q, &public_exponent)?;
437 let primes = vec![p, q];
438 let n = compute_modulus(&primes);
439
440 Self::from_components(n.get(), public_exponent, d, primes)
441 }
442
443 pub fn from_primes(
447 primes: Vec<BoxedUint>,
448 public_exponent: BoxedUint,
449 ) -> Result<RsaPrivateKey> {
450 if primes.len() < 2 {
451 return Err(Error::NprimesTooSmall);
452 }
453
454 for (i, prime1) in primes.iter().enumerate() {
456 for prime2 in primes.iter().take(i) {
457 if prime1 == prime2 {
458 return Err(Error::InvalidPrime);
459 }
460 }
461 }
462
463 let n = compute_modulus(&primes);
464 let d = compute_private_exponent_euler_totient(&primes, &public_exponent)?;
465
466 Self::from_components(n.get(), public_exponent, d, primes)
467 }
468
469 pub fn as_public_key(&self) -> &RsaPublicKey {
473 &self.pubkey_components
474 }
475
476 pub fn to_public_key(&self) -> RsaPublicKey {
481 self.pubkey_components.clone()
482 }
483
484 pub fn precompute(&mut self) -> Result<()> {
486 if self.precomputed.is_some() {
487 return Ok(());
488 }
489
490 let d = &self.d;
491 let p = self.primes[0].clone();
492 let q = self.primes[1].clone();
493
494 let p_odd = Odd::new(p.clone())
495 .into_option()
496 .ok_or(Error::InvalidPrime)?;
497 let p_params = BoxedMontyParams::new(p_odd);
498 let q_odd = Odd::new(q.clone())
499 .into_option()
500 .ok_or(Error::InvalidPrime)?;
501 let q_params = BoxedMontyParams::new(q_odd);
502
503 let x = NonZero::new(p.wrapping_sub(&BoxedUint::one()))
504 .into_option()
505 .ok_or(Error::InvalidPrime)?;
506 let dp = d.rem_vartime(&x);
507
508 let x = NonZero::new(q.wrapping_sub(&BoxedUint::one()))
509 .into_option()
510 .ok_or(Error::InvalidPrime)?;
511 let dq = d.rem_vartime(&x);
512
513 let q_mod_p = match p.bits_precision().cmp(&q.bits_precision()) {
516 Ordering::Less => (&q
517 % NonZero::new(p.clone())
518 .expect("`p` is non-zero")
519 .resize_unchecked(q.bits_precision()))
520 .resize_unchecked(p.bits_precision()),
521 Ordering::Greater => {
522 (&q).resize_unchecked(p.bits_precision())
523 % &NonZero::new(p.clone()).expect("`p` is non-zero")
524 }
525 Ordering::Equal => &q % NonZero::new(p.clone()).expect("`p` is non-zero"),
526 };
527
528 let q_mod_p = BoxedMontyForm::new(q_mod_p, &p_params);
529 let qinv = q_mod_p.invert().into_option().ok_or(Error::InvalidPrime)?;
530
531 debug_assert_eq!(dp.bits_precision(), p.bits_precision());
532 debug_assert_eq!(dq.bits_precision(), q.bits_precision());
533 debug_assert_eq!(qinv.bits_precision(), p.bits_precision());
534 debug_assert_eq!(p_params.bits_precision(), p.bits_precision());
535 debug_assert_eq!(q_params.bits_precision(), q.bits_precision());
536
537 self.precomputed = Some(PrecomputedValues {
538 dp,
539 dq,
540 qinv,
541 p_params,
542 q_params,
543 });
544
545 Ok(())
546 }
547
548 pub fn clear_precomputed(&mut self) {
550 self.precomputed = None;
551 }
552
553 pub fn crt_coefficient(&self) -> Option<BoxedUint> {
555 let p = &self.primes[0];
556 let q = &self.primes[1];
557 Option::from(q.invert_mod(&NonZero::new(p.clone()).expect("prime")))
559 }
560
561 pub fn validate(&self) -> Result<()> {
564 check_public(self)?;
565
566 let mut m = BoxedUint::one_with_precision(self.pubkey_components.n.bits_precision());
568 let one = BoxedUint::one();
569 for prime in &self.primes {
570 if prime < &one {
572 return Err(Error::InvalidPrime);
573 }
574 m = m.wrapping_mul(prime);
575 }
576 if m != *self.pubkey_components.n {
577 return Err(Error::InvalidModulus);
578 }
579
580 let de = self.d.mul(&self.pubkey_components.e);
586
587 for prime in &self.primes {
588 let x = NonZero::new(prime.wrapping_sub(&BoxedUint::one())).unwrap();
589 let congruence = de.rem_vartime(&x);
590 if !bool::from(congruence.is_one()) {
591 return Err(Error::InvalidExponent);
592 }
593 }
594
595 Ok(())
596 }
597
598 pub fn decrypt<P: PaddingScheme>(&self, padding: P, ciphertext: &[u8]) -> Result<Vec<u8>> {
600 padding.decrypt(Option::<&mut DummyRng>::None, self, ciphertext)
601 }
602
603 pub fn decrypt_blinded<R: CryptoRng + ?Sized, P: PaddingScheme>(
607 &self,
608 rng: &mut R,
609 padding: P,
610 ciphertext: &[u8],
611 ) -> Result<Vec<u8>> {
612 padding.decrypt(Some(rng), self, ciphertext)
613 }
614
615 pub fn sign<S: SignatureScheme>(&self, padding: S, digest_in: &[u8]) -> Result<Vec<u8>> {
617 padding.sign(Option::<&mut DummyRng>::None, self, digest_in)
618 }
619
620 pub fn sign_with_rng<R: CryptoRng + ?Sized, S: SignatureScheme>(
631 &self,
632 rng: &mut R,
633 padding: S,
634 digest_in: &[u8],
635 ) -> Result<Vec<u8>> {
636 padding.sign(Some(rng), self, digest_in)
637 }
638}
639
640impl PrivateKeyParts for RsaPrivateKey {
641 fn d(&self) -> &BoxedUint {
642 &self.d
643 }
644
645 fn primes(&self) -> &[BoxedUint] {
646 &self.primes
647 }
648
649 fn dp(&self) -> Option<&BoxedUint> {
650 self.precomputed.as_ref().map(|p| &p.dp)
651 }
652
653 fn dq(&self) -> Option<&BoxedUint> {
654 self.precomputed.as_ref().map(|p| &p.dq)
655 }
656
657 fn qinv(&self) -> Option<&BoxedMontyForm> {
658 self.precomputed.as_ref().map(|p| &p.qinv)
659 }
660
661 fn crt_values(&self) -> Option<&[CrtValue]> {
662 None
663 }
664
665 fn p_params(&self) -> Option<&BoxedMontyParams> {
666 self.precomputed.as_ref().map(|p| &p.p_params)
667 }
668
669 fn q_params(&self) -> Option<&BoxedMontyParams> {
670 self.precomputed.as_ref().map(|p| &p.q_params)
671 }
672}
673
674#[inline]
676pub fn check_public(public_key: &impl PublicKeyParts) -> Result<()> {
677 check_public_with_max_size(public_key.n(), public_key.e(), None)
678}
679
680#[inline]
682fn check_public_with_max_size(n: &BoxedUint, e: &BoxedUint, max_size: Option<usize>) -> Result<()> {
683 if let Some(max_size) = max_size {
684 if n.bits_vartime() as usize > max_size {
685 return Err(Error::ModulusTooLarge);
686 }
687 }
688
689 if e >= n || n.is_even().into() || n.is_zero().into() {
690 return Err(Error::InvalidModulus);
691 }
692
693 if e.is_even().into() {
694 return Err(Error::InvalidExponent);
695 }
696
697 if e < &BoxedUint::from(RsaPublicKey::MIN_PUB_EXPONENT) {
698 return Err(Error::PublicExponentTooSmall);
699 }
700
701 if e > &BoxedUint::from(RsaPublicKey::MAX_PUB_EXPONENT) {
702 return Err(Error::PublicExponentTooLarge);
703 }
704
705 Ok(())
706}
707
708#[cfg(feature = "serde")]
709impl Serialize for RsaPublicKey {
710 fn serialize<S>(&self, serializer: S) -> core::prelude::v1::Result<S::Ok, S::Error>
711 where
712 S: serdect::serde::Serializer,
713 {
714 let der = self.to_public_key_der().map_err(ser::Error::custom)?;
715 serdect::slice::serialize_hex_lower_or_bin(&der, serializer)
716 }
717}
718
719#[cfg(feature = "serde")]
720impl<'de> Deserialize<'de> for RsaPublicKey {
721 fn deserialize<D>(deserializer: D) -> core::prelude::v1::Result<Self, D::Error>
722 where
723 D: serdect::serde::Deserializer<'de>,
724 {
725 let der_bytes = serdect::slice::deserialize_hex_or_bin_vec(deserializer)?;
726 Self::from_public_key_der(&der_bytes).map_err(de::Error::custom)
727 }
728}
729
730#[cfg(feature = "serde")]
731impl Serialize for RsaPrivateKey {
732 fn serialize<S>(&self, serializer: S) -> core::prelude::v1::Result<S::Ok, S::Error>
733 where
734 S: ser::Serializer,
735 {
736 let der = self.to_pkcs8_der().map_err(ser::Error::custom)?;
737 serdect::slice::serialize_hex_lower_or_bin(&der.as_bytes(), serializer)
738 }
739}
740
741#[cfg(feature = "serde")]
742impl<'de> Deserialize<'de> for RsaPrivateKey {
743 fn deserialize<D>(deserializer: D) -> core::prelude::v1::Result<Self, D::Error>
744 where
745 D: de::Deserializer<'de>,
746 {
747 let der_bytes = serdect::slice::deserialize_hex_or_bin_vec(deserializer)?;
748 Self::from_pkcs8_der(&der_bytes).map_err(de::Error::custom)
749 }
750}
751
752#[cfg(test)]
753mod tests {
754 use super::*;
755 use crate::algorithms::rsa::{rsa_decrypt_and_check, rsa_encrypt};
756 use crate::traits::{PrivateKeyParts, PublicKeyParts};
757
758 use hex_literal::hex;
759 use rand::rngs::ChaCha8Rng;
760 use rand_core::SeedableRng;
761
762 #[cfg(feature = "encoding")]
763 use pkcs8::DecodePrivateKey;
764
765 #[test]
766 fn test_from_into() {
767 let raw_n = BoxedUint::from(101u64);
768 let n_odd = Odd::new(raw_n.clone()).unwrap();
769 let private_key = RsaPrivateKey {
770 pubkey_components: RsaPublicKey {
771 n: NonZero::new(raw_n.clone()).unwrap(),
772 e: BoxedUint::from(200u64),
773 n_params: BoxedMontyParams::new(n_odd),
774 },
775 d: BoxedUint::from(123u64),
776 primes: vec![],
777 precomputed: None,
778 };
779 let public_key: RsaPublicKey = private_key.into();
780
781 let n_limbs: &[u64] = PublicKeyParts::n(&public_key).as_ref().as_ref();
782 assert_eq!(n_limbs, &[101u64]);
783 assert_eq!(PublicKeyParts::e(&public_key), &BoxedUint::from(200u64));
784 assert_eq!(PublicKeyParts::e_bytes(&public_key), [200].into());
785 assert_eq!(PublicKeyParts::n_bytes(&public_key), [101].into());
786 }
787
788 fn test_key_basics(private_key: &RsaPrivateKey) {
789 private_key.validate().expect("invalid private key");
790
791 assert!(
792 PrivateKeyParts::d(private_key) < PublicKeyParts::n(private_key).as_ref(),
793 "private exponent too large"
794 );
795
796 let pub_key: RsaPublicKey = private_key.clone().into();
797 let m = BoxedUint::from(42u64);
798 let c = rsa_encrypt(&pub_key, &m).expect("encryption successful");
799
800 let m2 = rsa_decrypt_and_check::<ChaCha8Rng>(private_key, None, &c)
801 .expect("unable to decrypt without blinding");
802 assert_eq!(m, m2);
803 let mut rng = ChaCha8Rng::from_seed([42; 32]);
804 let m3 = rsa_decrypt_and_check(private_key, Some(&mut rng), &c)
805 .expect("unable to decrypt with blinding");
806 assert_eq!(m, m3);
807 }
808
809 macro_rules! key_generation {
810 ($name:ident, $multi:expr, $size:expr) => {
811 #[test]
812 fn $name() {
813 let mut rng = ChaCha8Rng::from_seed([42; 32]);
814 let exp = BoxedUint::from(RsaPrivateKey::EXP);
815
816 for _ in 0..10 {
817 let components =
818 generate_multi_prime_key_with_exp(&mut rng, $multi, $size, exp.clone())
819 .unwrap();
820 let private_key = RsaPrivateKey::from_components(
821 components.n.get(),
822 components.e,
823 components.d,
824 components.primes,
825 )
826 .unwrap();
827 assert_eq!(PublicKeyParts::n(&private_key).bits(), $size);
828
829 test_key_basics(&private_key);
830 }
831 }
832 };
833 }
834
835 key_generation!(key_generation_128, 2, 128);
836 key_generation!(key_generation_1024, 2, 1024);
837
838 key_generation!(key_generation_multi_3_256, 3, 256);
839
840 key_generation!(key_generation_multi_4_64, 4, 64);
841
842 key_generation!(key_generation_multi_5_64, 5, 64);
843 key_generation!(key_generation_multi_8_576, 8, 576);
844 key_generation!(key_generation_multi_16_1024, 16, 1024);
845
846 #[test]
847 fn test_negative_decryption_value() {
848 let bits = 128;
849 let private_key = RsaPrivateKey::from_components(
850 BoxedUint::from_le_slice(
851 &[
852 99, 192, 208, 179, 0, 220, 7, 29, 49, 151, 75, 107, 75, 73, 200, 180,
853 ],
854 bits,
855 )
856 .unwrap(),
857 BoxedUint::from_le_slice(&[1, 0, 1, 0, 0, 0, 0, 0], 64).unwrap(),
858 BoxedUint::from_le_slice(
859 &[
860 81, 163, 254, 144, 171, 159, 144, 42, 244, 133, 51, 249, 28, 12, 63, 65,
861 ],
862 bits,
863 )
864 .unwrap(),
865 vec![
866 BoxedUint::from_le_slice(&[105, 101, 60, 173, 19, 153, 3, 192], bits / 2).unwrap(),
867 BoxedUint::from_le_slice(&[235, 65, 160, 134, 32, 136, 6, 241], bits / 2).unwrap(),
868 ],
869 )
870 .unwrap();
871
872 for _ in 0..1000 {
873 test_key_basics(&private_key);
874 }
875 }
876
877 #[test]
878 #[cfg(all(feature = "hazmat", feature = "serde"))]
879 fn test_serde() {
880 use rand::rngs::ChaCha8Rng;
881 use rand_core::SeedableRng;
882 use serde_test::{assert_tokens, Configure, Token};
883
884 let mut rng = ChaCha8Rng::from_seed([42; 32]);
885 let priv_key = RsaPrivateKey::new_unchecked(&mut rng, 64).expect("failed to generate key");
886
887 let priv_tokens = [Token::Str(concat!(
888 "3056020100300d06092a864886f70d010101050004423040020100020900a",
889 "b240c3361d02e370203010001020811e54a15259d22f9020500ceff5cf302",
890 "0500d3a7aaad020500ccaddf17020500cb529d3d020500bb526d6f"
891 ))];
892 assert_tokens(&priv_key.clone().readable(), &priv_tokens);
893
894 let priv_tokens = [Token::Str(
895 "3024300d06092a864886f70d01010105000313003010020900ab240c3361d02e370203010001",
896 )];
897 assert_tokens(
898 &RsaPublicKey::from(priv_key.clone()).readable(),
899 &priv_tokens,
900 );
901 }
902
903 #[test]
904 fn invalid_coeff_private_key_regression() {
905 use base64ct::{Base64, Encoding};
906
907 let n = Base64::decode_vec(
908 "wC8GyQvTCZOK+iiBR5fGQCmzRCTWX9TQ3aRG5gGFk0wB6EFoLMAyEEqeG3gS8xhA\
909 m2rSWYx9kKufvNat3iWlbSRVqkcbpVAYlj2vTrpqDpJl+6u+zxFYoUEBevlJJkAh\
910 l8EuCccOA30fVpcfRvXPTtvRd3yFT9E9EwZljtgSI02w7gZwg7VIxaGeajh5Euz6\
911 ZVQZ+qNRKgXrRC7gPRqVyI6Dt0Jc+Su5KBGNn0QcPDzOahWha1ieaeMkFisZ9mdp\
912 sJoZ4tw5eicLaUomKzALHXQVt+/rcZSrCd6/7uUo11B/CYBM4UfSpwXaL88J9AE6\
913 A5++no9hmJzaF2LLp+Qwx4yY3j9TDutxSAjsraxxJOGZ3XyA9nG++Ybt3cxZ5fP7\
914 ROjxCfROBmVv5dYn0O9OBIqYeCH6QraNpZMadlLNIhyMv8Y+P3r5l/PaK4VJaEi5\
915 pPosnEPawp0W0yZDzmjk2z1LthaRx0aZVrAjlH0Rb/6goLUQ9qu1xsDtQVVpN4A8\
916 9ZUmtTWORnnJr0+595eHHxssd2gpzqf4bPjNITdAEuOCCtpvyi4ls23zwuzryUYj\
917 cUOEnsXNQ+DrZpLKxdtsD/qNV/j1hfeyBoPllC3cV+6bcGOFcVGbjYqb+Kw1b0+j\
918 L69RSKQqgmS+qYqr8c48nDRxyq3QXhR8qtzUwBFSLVk=",
919 )
920 .unwrap();
921 let e = Base64::decode_vec("AQAB").unwrap();
922 let d = Base64::decode_vec(
923 "qQazSQ+FRN7nVK1bRsROMRB8AmsDwLVEHivlz1V3Td2Dr+oW3YUMgxedhztML1Id\
924 QJPq/ad6qErJ6yRFNySVIjDaxzBTOEoB1eHa1btOnBJWb8rVvvjaorixvJ6Tn3i4\
925 EuhsvVy9DoR1k4rGj3qSIiFjUVvLRDAbLyhpGgEfsr0Z577yJmTC5E8JLRMOKX8T\
926 mxsk3jPVpsgd65Hu1s8S/ZmabwuHCf9SkdMeY/1bd/9i7BqqJeeDLE4B5x1xcC3z\
927 3scqDUTzqGO+vZPhjgprPDRlBamVwgenhr7KwCn8iaLamFinRVwOAag8BeBqOJj7\
928 lURiOsKQa9FIX1kdFUS1QMQxgtPycLjkbvCJjriqT7zWKsmJ7l8YLs6Wmm9/+QJR\
929 wNCEVdMTXKfCP1cJjudaiskEQThfUldtgu8gUDNYbQ/Filb2eKfiX4h1TiMxZqUZ\
930 HVZyb9nShbQoXJ3vj/MGVF0QM8TxhXM8r2Lv9gDYU5t9nQlUMLhs0jVjai48jHAB\
931 bFNyH3sEcOmJOIwJrCXw1dzG7AotwyaEVUHOmL04TffmwCFfnyrLjbFgnyOeoyII\
932 BYjcY7QFRm/9nupXMTH5hZ2qrHfCJIp0KK4tNBdQqmnHapFl5l6Le1s4qBS5bEIz\
933 jitobLvAFm9abPlDGfxmY6mlrMK4+nytwF9Ct7wc1AE=",
934 )
935 .unwrap();
936 let primes = [
937 Base64::decode_vec(
938 "9kQWEAzsbzOcdPa+s5wFfw4XDd7bB1q9foZ31b1+TNjGNxbSBCFlDF1q98vwpV6n\
939 M8bWDh/wtbNoETSQDgpEnYOQ26LWEw6YY1+q1Q2GGEFceYUf+Myk8/vTc8TN6Zw0\
940 bKZBWy10Qo8h7xk4JpzuI7NcxvjJYTkS9aErFxi3vVH0aiZC0tmfaCqr8a2rJxyV\
941 wqreRpOjwAWrotMsf2wGsF4ofx5ScoFy5GB5fJkkdOrW1LyTvZAUCX3cstPr19+T\
942 NC5zZOk7WzZatnCkN5H5WzalWtZuu0oVL205KPOa3R8V2yv5e6fm0v5fTmqSuvjm\
943 aMJLXCN4QJkmIzojO99ckQ==",
944 )
945 .unwrap(),
946 Base64::decode_vec(
947 "x8exdMjVA2CiI+Thx7loHtVcevoeE2sZ7btRVAvmBqo+lkHwxb7FHRnWvuj6eJSl\
948 D2f0T50EewIhhiW3R9BmktCk7hXjbSCnC1u9Oxc1IAUm/7azRqyfCMx43XhLxpD+\
949 xkBCpWkKDLxGczsRwTuaP3lKS3bSdBrNlGmdblubvVBIq4YZ2vXVlnYtza0cS+dg\
950 CK7BGTqUsrCUd/ZbIvwcwZkZtpkhj1KQfto9X/0OMurBzAqbkeq1cyRHXHkOfN/q\
951 bUIIRqr9Ii7Eswf9Vk8xp2O1Nt8nzcYS9PFD12M5eyaeFEkEYfpNMNGuTzp/31oq\
952 VjbpoCxS6vuWAZyADxhISQ==",
953 )
954 .unwrap(),
955 Base64::decode_vec(
956 "is7d0LY4HoXszlC2NO7gejkq7XqL4p1W6hZJPYTNx+r37t1CC2n3Vvzg6kNdpRix\
957 DhIpXVTLjN9O7UO/XuqSumYKJIKoP52eb4Tg+a3hw5Iz2Zsb5lUTNSLgkQSBPAf7\
958 1LHxbL82JL4g1nBUog8ae60BwnVArThKY4EwlJguGNw09BAU4lwf6csDl/nX2vfV\
959 wiAloYpeZkHL+L8m+bueGZM5KE2jEz+7ztZCI+T+E5i69rZEYDjx0lfLKlEhQlCW\
960 3HbCPELqXgNJJkRfi6MP9kXa9lSfnZmoT081RMvqonB/FUa4HOcKyCrw9XZEtnbN\
961 CIdbitfDVEX+pSSD7596wQ==",
962 )
963 .unwrap(),
964 Base64::decode_vec(
965 "GPs0injugfycacaeIP5jMa/WX55VEnKLDHom4k6WlfDF4L4gIGoJdekcPEUfxOI5\
966 faKvHyFwRP1wObkPoRBDM0qZxRfBl4zEtpvjHrd5MibSyJkM8+J0BIKk/nSjbRIG\
967 eb3hV5O56PvGB3S0dKhCUnuVObiC+ne7izplsD4OTG70l1Yud33UFntyoMxrxGYL\
968 USqhBMmZfHquJg4NOWOzKNY/K+EcHDLj1Kjvkcgv9Vf7ocsVxvpFdD9uGPceQ6kw\
969 RDdEl6mb+6FDgWuXVyqR9+904oanEIkbJ7vfkthagLbEf57dyG6nJlqh5FBZWxGI\
970 R72YGypPuAh7qnnqXXjY2Q==",
971 )
972 .unwrap(),
973 Base64::decode_vec(
974 "CUWC+hRWOT421kwRllgVjy6FYv6jQUcgDNHeAiYZnf5HjS9iK2ki7v8G5dL/0f+Y\
975 f+NhE/4q8w4m8go51hACrVpP1p8GJDjiT09+RsOzITsHwl+ceEKoe56ZW6iDHBLl\
976 rNw5/MtcYhKpjNU9KJ2udm5J/c9iislcjgckrZG2IB8ADgXHMEByZ5DgaMl4AKZ1\
977 Gx8/q6KftTvmOT5rNTMLi76VN5KWQcDWK/DqXiOiZHM7Nr4dX4me3XeRgABJyNR8\
978 Fqxj3N1+HrYLe/zs7LOaK0++F9Ul3tLelhrhsvLxei3oCZkF9A/foD3on3luYA+1\
979 cRcxWpSY3h2J4/22+yo4+Q==",
980 )
981 .unwrap(),
982 ];
983
984 let e = BoxedUint::from_be_slice(&e, 64).unwrap();
985
986 let bits = 4096;
987 let n = BoxedUint::from_be_slice(&n, bits).unwrap();
988 let d = BoxedUint::from_be_slice(&d, bits).unwrap();
989 let primes = primes
990 .iter()
991 .map(|p| BoxedUint::from_be_slice(p, bits / 2).unwrap())
992 .collect();
993 let res = RsaPrivateKey::from_components(n, e, d, primes);
994 assert_eq!(res, Err(Error::InvalidModulus));
995 }
996
997 #[test]
998 fn reject_oversized_private_key() {
999 let n = BoxedUint::from_be_slice(
1026 &hex!(
1027 "
1028 90c06207caac3555c0b0947a5e8b681f5af6aed665ff1cd42b6b487f2f7d68f1
1029 38f3dbbee6d2f10908507fe6bcf75e7cbd20e9af6ff1c202bcc3dbb45e9bb69b
1030 b5d12a354c4b463a50820d16879373ceeb5574fdd9272be3b90d55c1a64855de
1031 cf80520e94be2caa56c1737ed0042ef9c99c7ddb6cc76f3ada211ba90beae0fc
1032 0a19024e74e474ca5747f0ee327892bf6eebc83974478dbfbebed40d0ffc626c
1033 518071df5626abda386eed72585b676efb99b3ba111fb2f4b8fb0323bccb0c9b
1034 5aa35e1da54f1cccac3e14fb1d4588d7b9b9f62d4ea6e570c049efcc34101147
1035 fd7798549a42d86f9a90cee7fa0dd9f1ff4e10242280824872afd09782757abc
1036 46773cab6989c08747193b7aa4c49a0065830a87e6f7e54455758b2c10317267
1037 b9187358e41a5e5fef6fcbf81c8bc5e136ad1192aa7f3a5bc9270b22261b3c40
1038 211d729d64c776cd8f219126e27227de3c0a40666b8da40c71243673a6187baf
1039 8943eadf0c3d3fd150076dad97e286a68185db8523a61e548cba7a6834e4ce98
1040 5af954c9eafb9d819a3d14b526a0f8d2fef13ad99ee48f10c3a00f8853d7853a
1041 812b7a1c72bed38066f75779690bc12af9eb0d1eb8e2f7c4757c84e415725629
1042 d15c4d68c18213f18a86d4ccc08552b3c80c97165de073ac0440af253e8578c4
1043 8857f396e5eba6cd01ed1250feb2c32d77939f8be8bd47874151daed87e8c963
1044 32f697ea7950bee7a2c12bb484200bcbd08de5aeae6f22ff9922e38075b56026
1045 2472f039de08e9362cfdd19c0f0cd0749ebd85bddc3882fb887f9789ed8e388e
1046 7e2eb2455399f166d5c9767ff378f8ebea465a0be2d2e3326fe6ed80e5e3050b
1047 fb6c6a9dc8731ce4baa4e5b17b131113c79d6f290318095e37e7571a4ba697ab
1048 5ea56190131e06d300310064776ba0330907e1cc41acdef4eeaa53964ef30c71
1049 023c3cf71af2d1d9e83900ffc80e07ec2442a3dbd50e957686a22f1d8f512364
1050 fb71e936f24990a4abcdbef2bea2f98cd77f1d1ca5625942c79347c146dee6e3
1051 043eb622f63e627f4ebf20d6056133a4bd0f55dd13dcf429e0e73830969f543c
1052 b31d86d9a878ca79d841444359cc0e31c0283fa6dd27b702b7ee05dad12c30f7
1053 f84bf1309678efb8da108efcedc423da8587bd127ca082d417c8726f7889fb80
1054 326c3fa6fddd507ac7841b2f2e5c8780d486a0d68229ee2957a8ec24e00e4ab4
1055 de3fc811a4b5047c2b7920d071e9f2f9b61638dc15fb84cca46cad28e1ef539d
1056 bcf249876f2647757b9a5e4f0b2ea6e7aabdf47dae826e9e259428bdb07e5a2a
1057 68b98f141f5537be7a590cb3ba15b0bb15824652e8da8f70eb847240058a336a
1058 1b6db7f88268aaf89f0b33b905d72c25338b13e61a51873c2d427021a3f29207
1059 179ad32f423793f0c090dda025ce41df0e94afbc80ab5eda9b1a268aa2553a99"
1060 ),
1061 8192,
1062 )
1063 .unwrap();
1064
1065 let e = BoxedUint::from(65_537u64);
1066
1067 assert_eq!(
1068 RsaPublicKey::new(n, e).err().unwrap(),
1069 Error::ModulusTooLarge
1070 );
1071 }
1072
1073 #[test]
1074 #[cfg(feature = "encoding")]
1075 fn build_key_from_primes() {
1076 const RSA_2048_PRIV_DER: &[u8] = include_bytes!("../tests/examples/pkcs8/rsa2048-priv.der");
1077 let ref_key = RsaPrivateKey::from_pkcs8_der(RSA_2048_PRIV_DER).unwrap();
1078 assert_eq!(ref_key.validate(), Ok(()));
1079
1080 let primes = PrivateKeyParts::primes(&ref_key).to_vec();
1081
1082 let exp = PublicKeyParts::e(&ref_key);
1083 let key = RsaPrivateKey::from_primes(primes, exp.clone())
1084 .expect("failed to import key from primes");
1085 assert_eq!(key.validate(), Ok(()));
1086
1087 assert_eq!(PublicKeyParts::n(&key), PublicKeyParts::n(&ref_key));
1088
1089 assert_eq!(PrivateKeyParts::dp(&key), PrivateKeyParts::dp(&ref_key));
1090 assert_eq!(PrivateKeyParts::dq(&key), PrivateKeyParts::dq(&ref_key));
1091
1092 assert_eq!(PrivateKeyParts::d(&key), PrivateKeyParts::d(&ref_key));
1093 }
1094
1095 #[test]
1096 #[cfg(feature = "encoding")]
1097 fn build_key_from_p_q() {
1098 const RSA_2048_SP800_PRIV_DER: &[u8] =
1099 include_bytes!("../tests/examples/pkcs8/rsa2048-sp800-56b-priv.der");
1100 let ref_key = RsaPrivateKey::from_pkcs8_der(RSA_2048_SP800_PRIV_DER).unwrap();
1101 assert_eq!(ref_key.validate(), Ok(()));
1102
1103 let primes = PrivateKeyParts::primes(&ref_key).to_vec();
1104 let exp = PublicKeyParts::e(&ref_key);
1105
1106 let key = RsaPrivateKey::from_p_q(primes[0].clone(), primes[1].clone(), exp.clone())
1107 .expect("failed to import key from primes");
1108 assert_eq!(key.validate(), Ok(()));
1109
1110 assert_eq!(PublicKeyParts::n(&key), PublicKeyParts::n(&ref_key));
1111
1112 assert_eq!(PrivateKeyParts::dp(&key), PrivateKeyParts::dp(&ref_key));
1113 assert_eq!(PrivateKeyParts::dq(&key), PrivateKeyParts::dq(&ref_key));
1114
1115 assert_eq!(PrivateKeyParts::d(&key), PrivateKeyParts::d(&ref_key));
1116 }
1117}