Files
opaque-vx/src/serialization/tests.rs
T

1028 lines
34 KiB
Rust
Raw Normal View History

// SPDX-License-Identifier: MIT OR Apache-2.0
// Copyright (c) VexaHub and contributors.
2023-05-22 23:04:26 -07:00
// Copyright (c) Meta Platforms, Inc. and affiliates.
2022-01-04 00:50:40 +01:00
use core::ops::Add;
2022-01-06 00:10:57 +01:00
use std::vec;
use std::vec::Vec;
2025-04-15 22:31:37 +02:00
use digest::Output;
2022-01-06 06:19:02 +01:00
use generic_array::ArrayLength;
use generic_array::typenum::{Sum, Unsigned};
2022-01-06 06:19:02 +01:00
use proptest::collection::vec;
use proptest::prelude::*;
use rand::Rng;
use rand::rand_core::UnwrapErr;
use rand::rngs::SysRng;
2025-05-19 22:56:25 +02:00
use voprf::Group as _;
2025-05-19 22:56:25 +02:00
use crate::ciphersuite::{CipherSuite, KeGroup, OprfGroup, OprfHash};
2022-01-06 06:19:02 +01:00
use crate::envelope::{Envelope, EnvelopeLen, InnerEnvelopeMode};
use crate::errors::*;
2025-04-15 22:31:37 +02:00
use crate::hash::OutputSize;
2025-05-19 22:56:25 +02:00
use crate::key_exchange::group::Group;
use crate::key_exchange::shared::NonceLen;
2025-06-25 00:17:29 +02:00
use crate::key_exchange::{
2022-04-02 01:10:00 +02:00
Deserialize, Ke1MessageLen, Ke1StateLen, Ke2MessageLen, KeyExchange, Serialize,
2022-01-06 06:19:02 +01:00
};
use crate::keypair::KeyPair;
2022-01-06 06:19:02 +01:00
use crate::messages::CredentialResponseWithoutKeLen;
use crate::opaque::{ClientLoginLen, ClientRegistrationLen, MaskedResponseLen};
use crate::serialization::{i2osp, os2ip};
use crate::*;
2022-01-04 00:50:40 +01:00
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
struct TripleDhRistretto255;
2022-02-25 07:13:22 +01:00
2022-01-04 00:50:40 +01:00
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
impl CipherSuite for TripleDhRistretto255 {
type OprfCs = Ristretto255;
type KeyExchange = TripleDh<Ristretto255, sha2::Sha512>;
type Ksf = ksf::Identity;
}
2025-05-19 22:56:25 +02:00
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
struct TripleDhCurve25519;
2022-02-25 07:13:22 +01:00
2025-05-19 22:56:25 +02:00
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
impl CipherSuite for TripleDhCurve25519 {
type OprfCs = Ristretto255;
type KeyExchange = TripleDh<Curve25519, sha2::Sha512>;
type Ksf = ksf::Identity;
2025-05-19 22:56:25 +02:00
}
struct TripleDhP256;
impl CipherSuite for TripleDhP256 {
type OprfCs = p256::NistP256;
type KeyExchange = TripleDh<p256::NistP256, sha2::Sha256>;
type Ksf = ksf::Identity;
2022-01-04 00:50:40 +01:00
}
2025-05-19 22:56:25 +02:00
struct TripleDhP384;
2023-03-06 20:28:19 +01:00
2025-05-19 22:56:25 +02:00
impl CipherSuite for TripleDhP384 {
type OprfCs = p384::NistP384;
type KeyExchange = TripleDh<p384::NistP384, sha2::Sha384>;
type Ksf = ksf::Identity;
2023-03-06 20:28:19 +01:00
}
2025-05-19 22:56:25 +02:00
struct TripleDhP521;
2023-11-16 20:07:46 +01:00
2025-05-19 22:56:25 +02:00
impl CipherSuite for TripleDhP521 {
type OprfCs = p521::NistP521;
type KeyExchange = TripleDh<p521::NistP521, sha2::Sha512>;
type Ksf = ksf::Identity;
2025-05-19 22:56:25 +02:00
}
#[cfg(feature = "ecdsa")]
struct SigmaIP256;
#[cfg(feature = "ecdsa")]
impl CipherSuite for SigmaIP256 {
type OprfCs = p256::NistP256;
type KeyExchange = SigmaI<Ecdsa<p256::NistP256, sha2::Sha256>, p256::NistP256, sha2::Sha256>;
type Ksf = ksf::Identity;
2025-05-19 22:56:25 +02:00
}
#[cfg(feature = "ecdsa")]
struct SigmaIP384;
#[cfg(feature = "ecdsa")]
impl CipherSuite for SigmaIP384 {
type OprfCs = p384::NistP384;
type KeyExchange = SigmaI<Ecdsa<p384::NistP384, sha2::Sha384>, p384::NistP384, sha2::Sha384>;
type Ksf = ksf::Identity;
2025-05-19 22:56:25 +02:00
}
#[cfg(all(feature = "ristretto255", feature = "ed25519",))]
struct SigmaIEd25519;
#[cfg(all(feature = "ristretto255", feature = "ed25519",))]
impl CipherSuite for SigmaIEd25519 {
type OprfCs = Ristretto255;
type KeyExchange = SigmaI<PureEddsa<Ed25519>, Ristretto255, sha2::Sha512>;
type Ksf = ksf::Identity;
2023-11-16 20:07:46 +01:00
}
2025-05-19 22:56:25 +02:00
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
struct SigmaIEd25519Ph;
#[cfg(all(feature = "ristretto255", feature = "ed25519",))]
impl CipherSuite for SigmaIEd25519Ph {
type OprfCs = Ristretto255;
type KeyExchange = SigmaI<HashEddsa<Ed25519>, Ristretto255, sha2::Sha512>;
type Ksf = ksf::Identity;
2025-05-19 22:56:25 +02:00
}
2025-09-18 13:15:32 -07:00
#[cfg(feature = "ecdsa")]
2025-05-19 22:56:25 +02:00
fn random_point<CS: CipherSuite>() -> <KeGroup<CS> as Group>::Pk {
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
let sk = KeGroup::<CS>::random_sk(&mut rng);
2025-07-17 22:15:30 +02:00
KeGroup::<CS>::public_key(&sk)
2025-05-19 22:56:25 +02:00
}
fn random_element<CS: CipherSuite>() -> <OprfGroup<CS> as voprf::Group>::Elem {
let mut rng = UnwrapErr(SysRng);
let scalar = OprfGroup::<CS>::random_scalar(&mut rng).unwrap();
2025-05-19 22:56:25 +02:00
OprfGroup::<CS>::base_elem() * &scalar
}
#[test]
2021-10-25 02:54:32 -07:00
fn client_registration_roundtrip() -> Result<(), ProtocolError> {
2022-01-06 00:10:57 +01:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
// ClientRegistration: KgSk + KgPk
2025-05-19 22:56:25 +02:00
<OprfGroup<CS> as voprf::Group>::ScalarLen: Add<<OprfGroup<CS> as voprf::Group>::ElemLen>,
ClientRegistrationLen<CS>: ArrayLength,
2022-01-06 00:10:57 +01:00
{
2022-01-04 00:50:40 +01:00
let pw = b"hunter2";
let mut rng = UnwrapErr(SysRng);
2022-01-04 00:50:40 +01:00
2022-04-17 16:23:31 -07:00
let blind_result = &voprf::OprfClient::<CS::OprfCs>::blind(pw, &mut rng)?;
2022-01-04 00:50:40 +01:00
2022-01-06 00:10:57 +01:00
let bytes: Vec<u8> = blind_result
.state
.serialize()
.iter()
.chain(blind_result.message.serialize().iter())
.cloned()
.collect();
2022-01-04 00:50:40 +01:00
let reg = ClientRegistration::<CS>::deserialize(&bytes)?;
2022-01-06 00:10:57 +01:00
let reg_bytes = reg.serialize();
assert_eq!(*reg_bytes, bytes);
2022-01-04 00:50:40 +01:00
Ok(())
}
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP256>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP384>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519Ph>()?;
2021-10-25 02:54:32 -07:00
Ok(())
}
#[test]
2021-10-25 02:54:32 -07:00
fn server_registration_roundtrip() -> Result<(), ProtocolError> {
2022-01-04 00:50:40 +01:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
// RegistrationUpload: (KePk + Hash) + Envelope
2025-05-19 22:56:25 +02:00
<KeGroup<CS> as Group>::PkLen: Add<OutputSize<OprfHash<CS>>>,
Sum<<KeGroup<CS> as Group>::PkLen, OutputSize<OprfHash<CS>>>:
ArrayLength + Add<EnvelopeLen<CS>>,
RegistrationUploadLen<CS>: ArrayLength,
2022-01-04 00:50:40 +01:00
// ServerRegistration = RegistrationUpload
{
// If we don't have envelope and client_pk, the server registration just
let mut rng = UnwrapErr(SysRng);
2022-02-25 07:13:22 +01:00
let mut masking_key = Output::<OprfHash<CS>>::default();
2022-01-04 00:50:40 +01:00
rng.fill_bytes(&mut masking_key);
// Construct a mock envelope
let mut mock_envelope_bytes = Vec::new();
2022-01-06 06:19:02 +01:00
// empty nonce
mock_envelope_bytes.extend_from_slice(&[0; NonceLen::USIZE]);
// ciphertext which is an encrypted private key
//mock_envelope_bytes.extend_from_slice(&ciphertext);
// length-MAC_SIZE hmac
2022-02-25 07:13:22 +01:00
mock_envelope_bytes.extend_from_slice(&Output::<OprfHash<CS>>::default());
2022-01-04 00:50:40 +01:00
2025-05-19 22:56:25 +02:00
let mock_client_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2022-01-04 00:50:40 +01:00
// serialization order: oprf_key, public key, envelope
let mut bytes = Vec::<u8>::new();
2022-04-02 01:10:00 +02:00
bytes.extend_from_slice(&mock_client_kp.public().serialize());
2022-01-04 00:50:40 +01:00
bytes.extend_from_slice(&masking_key);
bytes.extend_from_slice(&mock_envelope_bytes);
let reg = ServerRegistration::<CS>::deserialize(&bytes)?;
let reg_bytes = reg.serialize();
assert_eq!(*reg_bytes, bytes);
Ok(())
}
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP256>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP384>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519Ph>()?;
2022-01-04 00:50:40 +01:00
2021-10-25 02:54:32 -07:00
Ok(())
}
#[test]
2021-10-25 02:54:32 -07:00
fn registration_request_roundtrip() -> Result<(), ProtocolError> {
2025-04-15 22:31:37 +02:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError> {
2025-05-19 22:56:25 +02:00
let elem = random_element::<CS>();
let elem_bytes = OprfGroup::<CS>::serialize_elem(elem);
2022-01-04 00:50:40 +01:00
let mut input = Vec::new();
2025-05-19 22:56:25 +02:00
input.extend_from_slice(&elem_bytes);
2022-01-04 00:50:40 +01:00
let r1 = RegistrationRequest::<CS>::deserialize(&input)?;
let r1_bytes = r1.serialize();
assert_eq!(input, *r1_bytes);
2022-01-04 00:50:40 +01:00
// Assert that identity group element is rejected
2022-02-25 07:13:22 +01:00
let identity = OprfGroup::<CS>::identity_elem();
let identity_bytes = OprfGroup::<CS>::serialize_elem(identity).to_vec();
2022-01-04 00:50:40 +01:00
assert!(matches!(
RegistrationRequest::<CS>::deserialize(&identity_bytes),
2021-10-25 02:54:32 -07:00
Err(ProtocolError::LibraryError(InternalError::OprfError(
2022-02-25 07:13:22 +01:00
voprf::Error::Deserialization,
2022-01-04 00:50:40 +01:00
)))
));
Ok(())
}
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP256>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP384>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519Ph>()?;
2021-10-25 02:54:32 -07:00
Ok(())
}
#[test]
2021-10-25 02:54:32 -07:00
fn registration_response_roundtrip() -> Result<(), ProtocolError> {
2022-01-04 00:50:40 +01:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
// RegistrationResponse: KgPk + KePk
2025-05-19 22:56:25 +02:00
<OprfGroup<CS> as voprf::Group>::ElemLen: Add<<KeGroup<CS> as Group>::PkLen>,
RegistrationResponseLen<CS>: ArrayLength,
2022-01-04 00:50:40 +01:00
{
2025-05-19 22:56:25 +02:00
let elem = random_element::<CS>();
let beta_bytes = OprfGroup::<CS>::serialize_elem(elem);
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
let skp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2022-04-02 01:10:00 +02:00
let pubkey_bytes = skp.public().serialize();
2022-01-04 00:50:40 +01:00
let mut input = Vec::new();
input.extend_from_slice(&beta_bytes);
input.extend_from_slice(&pubkey_bytes);
let r2 = RegistrationResponse::<CS>::deserialize(&input)?;
let r2_bytes = r2.serialize();
assert_eq!(input, *r2_bytes);
// Assert that identity group element is rejected
2022-02-25 07:13:22 +01:00
let identity = OprfGroup::<CS>::identity_elem();
let identity_bytes = OprfGroup::<CS>::serialize_elem(identity).to_vec();
2022-01-04 00:50:40 +01:00
assert!(matches!(
RegistrationResponse::<CS>::deserialize(
&[identity_bytes, pubkey_bytes.to_vec()].concat()
),
Err(ProtocolError::LibraryError(InternalError::OprfError(
2022-02-25 07:13:22 +01:00
voprf::Error::Deserialization,
2022-01-04 00:50:40 +01:00
)))
));
Ok(())
}
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP256>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP384>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519Ph>()?;
2021-10-25 02:54:32 -07:00
Ok(())
}
#[test]
2021-10-25 02:54:32 -07:00
fn registration_upload_roundtrip() -> Result<(), ProtocolError> {
2022-01-04 00:50:40 +01:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
// RegistrationUpload: (KePk + Hash) + Envelope
2025-05-19 22:56:25 +02:00
<KeGroup<CS> as Group>::PkLen: Add<OutputSize<OprfHash<CS>>>,
Sum<<KeGroup<CS> as Group>::PkLen, OutputSize<OprfHash<CS>>>:
ArrayLength + Add<EnvelopeLen<CS>>,
RegistrationUploadLen<CS>: ArrayLength,
2022-01-04 00:50:40 +01:00
{
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
let skp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2022-04-02 01:10:00 +02:00
let pubkey_bytes = skp.public().serialize();
2022-01-04 00:50:40 +01:00
let mut key = [0u8; 32];
rng.fill_bytes(&mut key);
let mut nonce = [0u8; NonceLen::USIZE];
rng.fill_bytes(&mut nonce);
2022-02-25 07:13:22 +01:00
let mut masking_key = Output::<OprfHash<CS>>::default();
2022-01-04 00:50:40 +01:00
rng.fill_bytes(&mut masking_key);
let randomized_pwd_hasher = hkdf::SimpleHkdf::<OprfHash<CS>>::new(None, &key);
2022-01-04 00:50:40 +01:00
let (envelope, _, _) = Envelope::<CS>::seal_raw(
&randomized_pwd_hasher,
2022-01-04 00:50:40 +01:00
nonce.into(),
2022-01-06 00:10:57 +01:00
[pubkey_bytes.as_slice()].into_iter(),
2022-01-04 00:50:40 +01:00
InnerEnvelopeMode::Internal,
)?;
2022-01-04 00:50:40 +01:00
let envelope_bytes = envelope.serialize();
let mut input = Vec::new();
input.extend_from_slice(&pubkey_bytes);
input.extend_from_slice(&masking_key);
input.extend_from_slice(&envelope_bytes);
let r3 = RegistrationUpload::<CS>::deserialize(&input)?;
let r3_bytes = r3.serialize();
assert_eq!(input, *r3_bytes);
Ok(())
}
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP256>()?;
#[cfg(feature = "ecdsa")]
inner::<SigmaIP384>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519>()?;
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
inner::<SigmaIEd25519Ph>()?;
2021-10-25 02:54:32 -07:00
Ok(())
}
#[test]
2025-05-19 22:56:25 +02:00
fn triple_dh_credential_request_roundtrip() -> Result<(), ProtocolError> {
2022-01-04 00:50:40 +01:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE1Message: Deserialize + Serialize,
2022-01-04 00:50:40 +01:00
// CredentialRequest: KgPk + Ke1Message
2025-05-19 22:56:25 +02:00
<OprfGroup<CS> as voprf::Group>::ElemLen: Add<Ke1MessageLen<CS>>,
CredentialRequestLen<CS>: ArrayLength,
2022-01-04 00:50:40 +01:00
{
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
let alpha = random_element::<CS>();
let alpha_bytes = OprfGroup::<CS>::serialize_elem(alpha);
2022-01-04 00:50:40 +01:00
2025-05-19 22:56:25 +02:00
let client_e_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2022-01-04 00:50:40 +01:00
let mut client_nonce = [0u8; NonceLen::USIZE];
rng.fill_bytes(&mut client_nonce);
2022-02-25 07:13:22 +01:00
let ke1m: Vec<u8> = [
client_nonce.as_ref(),
2022-04-02 01:10:00 +02:00
client_e_kp.public().serialize().as_ref(),
2022-02-25 07:13:22 +01:00
]
.concat();
2022-01-04 00:50:40 +01:00
let mut input = Vec::new();
input.extend_from_slice(&alpha_bytes);
input.extend_from_slice(&ke1m);
let l1 = CredentialRequest::<CS>::deserialize(&input)?;
let l1_bytes = l1.serialize();
assert_eq!(input, *l1_bytes);
// Assert that identity group element is rejected
2022-02-25 07:13:22 +01:00
let identity = OprfGroup::<CS>::identity_elem();
let identity_bytes = OprfGroup::<CS>::serialize_elem(identity).to_vec();
2022-01-04 00:50:40 +01:00
assert!(matches!(
CredentialRequest::<CS>::deserialize(&[identity_bytes, ke1m.to_vec()].concat()),
Err(ProtocolError::LibraryError(InternalError::OprfError(
2022-02-25 07:13:22 +01:00
voprf::Error::Deserialization,
2022-01-04 00:50:40 +01:00
)))
));
2022-01-04 00:50:40 +01:00
Ok(())
}
2022-01-04 00:50:40 +01:00
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
2021-10-25 02:54:32 -07:00
Ok(())
}
#[test]
2025-05-19 22:56:25 +02:00
fn triple_dh_credential_response_roundtrip() -> Result<(), ProtocolError> {
2022-01-04 00:50:40 +01:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE2Message: Deserialize,
2022-01-04 00:50:40 +01:00
// CredentialResponseWithoutKeLen: (KgPk + Nonce) + MaskedResponse
2025-05-19 22:56:25 +02:00
<OprfGroup<CS> as voprf::Group>::ElemLen: Add<NonceLen>,
Sum<<OprfGroup<CS> as voprf::Group>::ElemLen, NonceLen>:
ArrayLength + Add<MaskedResponseLen<CS>>,
CredentialResponseWithoutKeLen<CS>: ArrayLength,
2022-01-04 00:50:40 +01:00
// CredentialResponse: CredentialResponseWithoutKeLen + Ke2Message
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE2Message: Serialize,
CredentialResponseWithoutKeLen<CS>: Add<Ke2MessageLen<CS>>,
CredentialResponseLen<CS>: ArrayLength,
2025-05-19 22:56:25 +02:00
{
let elem = random_element::<CS>();
let elem_bytes = OprfGroup::<CS>::serialize_elem(elem);
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
let mut masking_nonce = [0u8; 32];
rng.fill_bytes(&mut masking_nonce);
let mut masked_response =
vec![0u8; <OprfGroup<CS> as voprf::Group>::ElemLen::USIZE + Envelope::<CS>::len()];
rng.fill_bytes(&mut masked_response);
let server_e_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
let mut mac = Output::<OprfHash<CS>>::default();
rng.fill_bytes(&mut mac);
let mut server_nonce = [0u8; NonceLen::USIZE];
rng.fill_bytes(&mut server_nonce);
let ke2m: Vec<u8> = [
server_nonce.as_ref(),
server_e_kp.public().serialize().as_ref(),
&mac,
]
.concat();
let mut input = Vec::new();
input.extend_from_slice(&elem_bytes);
input.extend_from_slice(&masking_nonce);
input.extend_from_slice(&masked_response);
input.extend_from_slice(&ke2m);
let l2 = CredentialResponse::<CS>::deserialize(&input)?;
2025-05-19 22:56:25 +02:00
let l2_bytes = l2.serialize();
assert_eq!(input, *l2_bytes);
// Assert that identity group element is rejected
let identity = OprfGroup::<CS>::identity_elem();
let identity_bytes = OprfGroup::<CS>::serialize_elem(identity).to_vec();
assert!(matches!(
CredentialResponse::<CS>::deserialize(
&[
identity_bytes,
masking_nonce.to_vec(),
masked_response,
ke2m.to_vec()
]
.concat()
),
Err(ProtocolError::LibraryError(InternalError::OprfError(
voprf::Error::Deserialization,
)))
));
Ok(())
}
#[cfg(feature = "ristretto255")]
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
Ok(())
}
#[test]
#[cfg(feature = "ecdsa")]
fn sigma_i_ecdsa_credential_response_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE2Message: Deserialize,
// CredentialResponseWithoutKeLen: (KgPk + Nonce) + MaskedResponse
<OprfGroup<CS> as voprf::Group>::ElemLen: Add<NonceLen>,
Sum<<OprfGroup<CS> as voprf::Group>::ElemLen, NonceLen>:
ArrayLength + Add<MaskedResponseLen<CS>>,
CredentialResponseWithoutKeLen<CS>: ArrayLength,
2025-05-19 22:56:25 +02:00
// CredentialResponse: CredentialResponseWithoutKeLen + Ke2Message
<CS::KeyExchange as KeyExchange>::KE2Message: Serialize,
2022-01-04 00:50:40 +01:00
CredentialResponseWithoutKeLen<CS>: Add<Ke2MessageLen<CS>>,
CredentialResponseLen<CS>: ArrayLength,
2022-01-04 00:50:40 +01:00
{
let pt = random_point::<CS>();
2025-07-17 22:15:30 +02:00
let pt_bytes = KeGroup::<CS>::serialize_pk(&pt);
2022-01-04 00:50:40 +01:00
let mut rng = UnwrapErr(SysRng);
2022-01-04 00:50:40 +01:00
let mut masking_nonce = [0u8; 32];
rng.fill_bytes(&mut masking_nonce);
let mut masked_response =
2025-05-19 22:56:25 +02:00
vec![0u8; <OprfGroup<CS> as voprf::Group>::ElemLen::USIZE + Envelope::<CS>::len()];
2022-01-04 00:50:40 +01:00
rng.fill_bytes(&mut masked_response);
2025-05-19 22:56:25 +02:00
let server_e_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2025-07-17 22:15:30 +02:00
let r = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
let s = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
2022-02-25 07:13:22 +01:00
let mut mac = Output::<OprfHash<CS>>::default();
2022-01-04 00:50:40 +01:00
rng.fill_bytes(&mut mac);
let mut server_nonce = [0u8; NonceLen::USIZE];
rng.fill_bytes(&mut server_nonce);
2022-02-25 07:13:22 +01:00
let ke2m: Vec<u8> = [
server_nonce.as_ref(),
2022-04-02 01:10:00 +02:00
server_e_kp.public().serialize().as_ref(),
2025-05-19 22:56:25 +02:00
&r,
&s,
2022-02-25 07:13:22 +01:00
&mac,
]
.concat();
2022-01-04 00:50:40 +01:00
let mut input = Vec::new();
input.extend_from_slice(&pt_bytes);
input.extend_from_slice(&masking_nonce);
input.extend_from_slice(&masked_response);
input.extend_from_slice(&ke2m);
let l2 = CredentialResponse::<CS>::deserialize(&input)?;
let l2_bytes = l2.serialize();
assert_eq!(input, *l2_bytes);
// Assert that identity group element is rejected
2022-02-25 07:13:22 +01:00
let identity = OprfGroup::<CS>::identity_elem();
let identity_bytes = OprfGroup::<CS>::serialize_elem(identity).to_vec();
2022-01-04 00:50:40 +01:00
assert!(matches!(
CredentialResponse::<CS>::deserialize(
&[
identity_bytes,
masking_nonce.to_vec(),
masked_response,
ke2m.to_vec()
]
.concat()
),
Err(ProtocolError::LibraryError(InternalError::OprfError(
2022-02-25 07:13:22 +01:00
voprf::Error::Deserialization,
2022-01-04 00:50:40 +01:00
)))
));
2022-01-04 00:50:40 +01:00
Ok(())
}
2025-05-19 22:56:25 +02:00
inner::<SigmaIP256>()?;
inner::<SigmaIP384>()?;
2021-10-25 02:54:32 -07:00
Ok(())
}
2020-11-16 11:49:27 -08:00
#[test]
2025-05-19 22:56:25 +02:00
fn triple_dh_credential_finalization_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE3Message: Deserialize + Serialize,
{
let mut rng = UnwrapErr(SysRng);
2022-02-25 07:13:22 +01:00
let mut mac = Output::<OprfHash<CS>>::default();
2022-01-04 00:50:40 +01:00
rng.fill_bytes(&mut mac);
let input = mac;
2020-11-16 11:49:27 -08:00
2022-01-04 00:50:40 +01:00
let l3 = CredentialFinalization::<CS>::deserialize(&input)?;
let l3_bytes = l3.serialize();
assert_eq!(input.as_slice(), l3_bytes.as_slice());
2020-11-16 11:49:27 -08:00
2022-01-04 00:50:40 +01:00
Ok(())
}
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
Ok(())
}
#[test]
#[cfg(feature = "ecdsa")]
fn sigma_i_ecdsa_credential_finalization_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE3Message: Deserialize + Serialize,
{
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
2025-07-17 22:15:30 +02:00
let r = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
let s = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
2025-05-19 22:56:25 +02:00
let mut mac = Output::<OprfHash<CS>>::default();
rng.fill_bytes(&mut mac);
let mut input = Vec::new();
input.extend_from_slice(&r);
input.extend_from_slice(&s);
input.extend_from_slice(&mac);
let l3 = CredentialFinalization::<CS>::deserialize(&input)?;
let l3_bytes = l3.serialize();
assert_eq!(input.as_slice(), l3_bytes.as_slice());
Ok(())
}
inner::<SigmaIP256>()?;
inner::<SigmaIP384>()?;
2021-10-25 02:54:32 -07:00
Ok(())
2020-11-16 11:49:27 -08:00
}
#[test]
2025-05-19 22:56:25 +02:00
fn triple_dh_client_login_roundtrip() -> Result<(), ProtocolError> {
2022-01-04 00:50:40 +01:00
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE1Message: Deserialize,
<CS::KeyExchange as KeyExchange>::KE1State: Deserialize,
2022-01-04 00:50:40 +01:00
// CredentialRequest: KgPk + Ke1Message
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE1Message: Serialize,
<OprfGroup<CS> as voprf::Group>::ElemLen: Add<Ke1MessageLen<CS>>,
CredentialRequestLen<CS>: ArrayLength,
2022-01-06 00:10:57 +01:00
// ClientLogin: KgSk + CredentialRequest + Ke1State
2025-05-19 22:56:25 +02:00
<OprfGroup<CS> as voprf::Group>::ScalarLen: Add<CredentialRequestLen<CS>>,
<CS::KeyExchange as KeyExchange>::KE1State: Serialize,
Sum<<OprfGroup<CS> as voprf::Group>::ScalarLen, CredentialRequestLen<CS>>:
ArrayLength + Add<Ke1StateLen<CS>>,
ClientLoginLen<CS>: ArrayLength,
2022-01-04 00:50:40 +01:00
{
let pw = b"hunter2";
let mut rng = UnwrapErr(SysRng);
2022-01-04 00:50:40 +01:00
2025-05-19 22:56:25 +02:00
let client_e_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2022-01-04 00:50:40 +01:00
let mut client_nonce = [0; NonceLen::USIZE];
rng.fill_bytes(&mut client_nonce);
let l1_data = [
2022-02-25 07:13:22 +01:00
client_e_kp.private().serialize().to_vec(),
2022-01-04 00:50:40 +01:00
client_nonce.to_vec(),
]
.concat();
2022-04-17 16:23:31 -07:00
let blind_result = voprf::OprfClient::<CS::OprfCs>::blind(pw, &mut rng)?;
2022-01-04 00:50:40 +01:00
let credential_request = CredentialRequest::<CS> {
blinded_element: blind_result.message,
2025-05-19 22:56:25 +02:00
ke1_message: <CS::KeyExchange as KeyExchange>::KE1Message::deserialize_take(
&mut ([
client_nonce.as_ref(),
client_e_kp.public().serialize().as_ref(),
]
.concat()
.as_slice()),
)?,
2022-01-04 00:50:40 +01:00
};
2022-01-06 00:10:57 +01:00
let bytes: Vec<u8> = blind_result
.state
.serialize()
.iter()
.chain(credential_request.serialize().iter())
.chain(l1_data.iter())
.cloned()
.collect();
2022-01-04 00:50:40 +01:00
let reg = ClientLogin::<CS>::deserialize(&bytes)?;
2022-01-06 00:10:57 +01:00
let reg_bytes = reg.serialize();
assert_eq!(*reg_bytes, bytes);
2022-01-04 00:50:40 +01:00
Ok(())
}
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
2021-10-25 02:54:32 -07:00
Ok(())
}
#[test]
2025-05-19 22:56:25 +02:00
fn triple_dh_ke1_message_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE1Message: Deserialize + Serialize,
{
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
let client_e_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2022-01-04 00:50:40 +01:00
let mut client_nonce = vec![0u8; NonceLen::USIZE];
rng.fill_bytes(&mut client_nonce);
2021-10-25 02:54:32 -07:00
2022-02-25 07:13:22 +01:00
let ke1m = [
client_nonce.as_slice(),
2022-04-02 01:10:00 +02:00
client_e_kp.public().serialize().as_ref(),
2022-02-25 07:13:22 +01:00
]
.concat();
2022-01-04 00:50:40 +01:00
let reg =
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE1Message::deserialize_take(&mut (ke1m.as_slice()))?;
2022-04-02 01:10:00 +02:00
let reg_bytes = reg.serialize();
2022-01-04 00:50:40 +01:00
assert_eq!(*reg_bytes, ke1m);
2020-11-16 11:49:27 -08:00
2022-01-04 00:50:40 +01:00
Ok(())
}
2022-01-04 00:50:40 +01:00
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
2021-10-25 02:54:32 -07:00
Ok(())
2020-11-16 11:49:27 -08:00
}
#[test]
2025-05-19 22:56:25 +02:00
fn triple_dh_ke2_message_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE2Message: Deserialize + Serialize,
{
let mut rng = UnwrapErr(SysRng);
2020-11-16 11:49:27 -08:00
2025-05-19 22:56:25 +02:00
let server_e_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
2022-02-25 07:13:22 +01:00
let mut mac = Output::<OprfHash<CS>>::default();
2022-01-04 00:50:40 +01:00
rng.fill_bytes(&mut mac);
let mut server_nonce = vec![0u8; NonceLen::USIZE];
rng.fill_bytes(&mut server_nonce);
2021-10-25 02:54:32 -07:00
2022-02-25 07:13:22 +01:00
let ke2m: Vec<u8> = [
server_nonce.as_slice(),
2022-04-02 01:10:00 +02:00
server_e_kp.public().serialize().as_ref(),
2022-02-25 07:13:22 +01:00
&mac,
]
.concat();
2020-11-16 11:49:27 -08:00
2022-01-04 00:50:40 +01:00
let reg =
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE2Message::deserialize_take(&mut (ke2m.as_slice()))?;
2022-04-02 01:10:00 +02:00
let reg_bytes = reg.serialize();
2022-01-04 00:50:40 +01:00
assert_eq!(*reg_bytes, ke2m);
2022-01-04 00:50:40 +01:00
Ok(())
}
2022-01-04 00:50:40 +01:00
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
2022-01-04 00:50:40 +01:00
Ok(())
}
#[test]
2025-05-19 22:56:25 +02:00
#[cfg(feature = "ecdsa")]
fn sigma_i_ecdsa_ke2_message_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE2Message: Deserialize + Serialize,
{
let mut rng = UnwrapErr(SysRng);
2025-05-19 22:56:25 +02:00
let server_e_kp = KeyPair::<KeGroup<CS>>::derive_random(&mut rng);
let mut mac = Output::<OprfHash<CS>>::default();
rng.fill_bytes(&mut mac);
let mut server_nonce = vec![0u8; NonceLen::USIZE];
rng.fill_bytes(&mut server_nonce);
2025-07-17 22:15:30 +02:00
let r = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
let s = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
2025-05-19 22:56:25 +02:00
let ke2m: Vec<u8> = [
server_nonce.as_slice(),
server_e_kp.public().serialize().as_ref(),
&r,
&s,
&mac,
]
.concat();
let reg =
<CS::KeyExchange as KeyExchange>::KE2Message::deserialize_take(&mut (ke2m.as_slice()))?;
let reg_bytes = reg.serialize();
assert_eq!(*reg_bytes, ke2m);
Ok(())
}
inner::<SigmaIP256>()?;
inner::<SigmaIP384>()?;
Ok(())
}
#[test]
fn triple_dh_ke3_message_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE3Message: Deserialize + Serialize,
{
let mut rng = UnwrapErr(SysRng);
2022-02-25 07:13:22 +01:00
let mut mac = Output::<OprfHash<CS>>::default();
2022-01-04 00:50:40 +01:00
rng.fill_bytes(&mut mac);
2022-01-04 00:50:40 +01:00
let ke3m: Vec<u8> = [mac].concat();
2022-01-04 00:50:40 +01:00
let reg =
2025-05-19 22:56:25 +02:00
<CS::KeyExchange as KeyExchange>::KE3Message::deserialize_take(&mut (ke3m.as_slice()))?;
2022-04-02 01:10:00 +02:00
let reg_bytes = reg.serialize();
2022-01-04 00:50:40 +01:00
assert_eq!(*reg_bytes, ke3m);
2022-01-04 00:50:40 +01:00
Ok(())
}
2022-01-04 00:50:40 +01:00
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
inner::<TripleDhRistretto255>()?;
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
inner::<TripleDhCurve25519>()?;
inner::<TripleDhP256>()?;
inner::<TripleDhP384>()?;
inner::<TripleDhP521>()?;
Ok(())
}
#[test]
#[cfg(feature = "ecdsa")]
fn sigma_i_ecdsa_ke3_message_roundtrip() -> Result<(), ProtocolError> {
fn inner<CS: CipherSuite>() -> Result<(), ProtocolError>
where
<CS::KeyExchange as KeyExchange>::KE3Message: Deserialize + Serialize,
{
let mut rng = UnwrapErr(SysRng);
2025-07-17 22:15:30 +02:00
let r = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
let s = KeGroup::<CS>::serialize_sk(&KeGroup::<CS>::random_sk(&mut rng));
2025-05-19 22:56:25 +02:00
let mut mac = Output::<OprfHash<CS>>::default();
rng.fill_bytes(&mut mac);
let ke3m: Vec<u8> = [mac.as_slice(), &r, &s].concat();
let reg =
<CS::KeyExchange as KeyExchange>::KE3Message::deserialize_take(&mut (ke3m.as_slice()))?;
let reg_bytes = reg.serialize();
assert_eq!(*reg_bytes, ke3m);
Ok(())
}
inner::<SigmaIP256>()?;
inner::<SigmaIP384>()?;
2022-01-04 00:50:40 +01:00
Ok(())
}
2022-01-04 00:50:40 +01:00
proptest! {
#[test]
fn test_i2osp_os2ip(bytes in vec(any::<u8>(), 0..size_of::<usize>())) {
2022-01-04 00:50:40 +01:00
use generic_array::typenum::{U0, U1, U2, U3, U4, U5, U6, U7};
let input = os2ip(&bytes).unwrap();
let output = match bytes.len() {
0 => i2osp::<U0>(input).unwrap().to_vec(),
1 => i2osp::<U1>(input).unwrap().to_vec(),
2 => i2osp::<U2>(input).unwrap().to_vec(),
3 => i2osp::<U3>(input).unwrap().to_vec(),
4 => i2osp::<U4>(input).unwrap().to_vec(),
5 => i2osp::<U5>(input).unwrap().to_vec(),
6 => i2osp::<U6>(input).unwrap().to_vec(),
7 => i2osp::<U7>(input).unwrap().to_vec(),
_ => unreachable!("unexpected size")
};
assert_eq!(output, bytes);
}
}
2022-01-04 00:50:40 +01:00
macro_rules! test {
($mod:ident, $CS:ty) => {
mod $mod {
use super::*;
proptest! {
#[test]
fn test_nocrash_registration_request(bytes in vec(any::<u8>(), 0..200)) {
2023-10-28 22:19:53 -07:00
let _ = RegistrationRequest::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_registration_response(bytes in vec(any::<u8>(), 0..200)) {
2023-10-28 22:19:53 -07:00
let _ = RegistrationResponse::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_registration_upload(bytes in vec(any::<u8>(), 0..200)) {
2023-10-28 22:19:53 -07:00
let _ = RegistrationUpload::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_credential_request(bytes in vec(any::<u8>(), 0..500)) {
2025-05-19 22:56:25 +02:00
let _ = CredentialRequest::<$CS>::deserialize(&mut (bytes.as_slice())).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_credential_response(bytes in vec(any::<u8>(), 0..500)) {
2023-10-28 22:19:53 -07:00
let _ = CredentialResponse::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_credential_finalization(bytes in vec(any::<u8>(), 0..500)) {
2023-10-28 22:19:53 -07:00
let _ = CredentialFinalization::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_client_registration(bytes in vec(any::<u8>(), 0..700)) {
2023-10-28 22:19:53 -07:00
let _ = ClientRegistration::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_server_registration(bytes in vec(any::<u8>(), 0..700)) {
2023-10-28 22:19:53 -07:00
let _ = ServerRegistration::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_client_login(bytes in vec(any::<u8>(), 0..700)) {
2023-10-28 22:19:53 -07:00
let _ = ClientLogin::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
#[test]
fn test_nocrash_server_login(bytes in vec(any::<u8>(), 0..700)) {
2023-10-28 22:19:53 -07:00
let _ = ServerLogin::<$CS>::deserialize(&bytes).map_or(true, |_| true);
2022-01-04 00:50:40 +01:00
}
}
}
};
}
2022-01-04 00:50:40 +01:00
#[cfg(feature = "ristretto255")]
2025-05-19 22:56:25 +02:00
test!(triple_dh_ristretto255, TripleDhRistretto255);
#[cfg(all(feature = "ristretto255", feature = "curve25519"))]
test!(triple_dh_curve25519, TripleDhCurve25519);
test!(triple_dh_p256, TripleDhP256);
test!(triple_dh_p384, TripleDhP384);
test!(triple_dh_p521, TripleDhP521);
#[cfg(feature = "ecdsa")]
test!(sigma_i_p256, SigmaIP256);
#[cfg(feature = "ecdsa")]
test!(sigma_i_p384, SigmaIP384);
#[cfg(all(feature = "ristretto255", feature = "ed25519",))]
test!(sigma_i_ed25519, SigmaIEd25519);
#[cfg(all(feature = "ristretto255", feature = "ed25519"))]
test!(sigma_i_ed25519_ph, SigmaIEd25519Ph);