Files
opaque-vx/src/opaque.rs
T

960 lines
34 KiB
Rust

// Copyright (c) Facebook, Inc. and its affiliates.
//
// This source code is licensed under the MIT license found in the
// LICENSE file in the root directory of this source tree.
//! Provides the main OPAQUE API
use crate::{
ciphersuite::CipherSuite,
envelope::{Envelope, ExportKeySize},
errors::{utils::check_slice_size, InternalPakeError, PakeError, ProtocolError},
group::Group,
hash::Hash,
key_exchange::traits::{KeyExchange, ToBytes},
keypair::{Key, KeyPair, SizedBytes},
oprf,
oprf::OprfClientBytes,
slow_hash::SlowHash,
};
use generic_array::{typenum::Unsigned, GenericArray};
use rand_core::{CryptoRng, RngCore};
use std::{convert::TryFrom, marker::PhantomData};
use zeroize::Zeroize;
// Messages
// =========
/// The message sent by the client to the server, to initiate registration
pub struct RegisterFirstMessage<Grp> {
/// blinded password information
alpha: Grp,
}
impl<Grp: Group> TryFrom<&[u8]> for RegisterFirstMessage<Grp> {
type Error = ProtocolError;
fn try_from(first_message_bytes: &[u8]) -> Result<Self, Self::Error> {
// Check that the message is actually containing an element of the
// correct subgroup
let arr = GenericArray::from_slice(first_message_bytes);
let alpha = Grp::from_element_slice(arr)?;
Ok(Self { alpha })
}
}
impl<Grp: Group> RegisterFirstMessage<Grp> {
/// byte representation for the registration request
pub fn to_bytes(&self) -> GenericArray<u8, Grp::ElemLen> {
self.alpha.to_arr()
}
}
/// The answer sent by the server to the user, upon reception of the
/// registration attempt
pub struct RegisterSecondMessage<Grp> {
/// The server's oprf output
beta: Grp,
}
impl<Grp> TryFrom<&[u8]> for RegisterSecondMessage<Grp>
where
Grp: Group,
{
type Error = ProtocolError;
fn try_from(second_message_bytes: &[u8]) -> Result<Self, Self::Error> {
let checked_slice = check_slice_size(
second_message_bytes,
Grp::ElemLen::to_usize(),
"second_message_bytes",
)?;
// Check that the message is actually containing an element of the
// correct subgroup
let arr = GenericArray::from_slice(&checked_slice);
let beta = Grp::from_element_slice(arr)?;
Ok(Self { beta })
}
}
impl<Grp> RegisterSecondMessage<Grp>
where
Grp: Group,
{
/// byte representation for the registration response message
pub fn to_bytes(&self) -> Vec<u8> {
self.beta.to_arr().to_vec()
}
}
/// The final message from the client, containing sealed cryptographic
/// identifiers
pub struct RegisterThirdMessage<KeyFormat: KeyPair, D: Hash> {
/// The "envelope" generated by the user, containing sealed
/// cryptographic identifiers
envelope: Envelope<D>,
/// The user's public key
client_s_pk: KeyFormat::Repr,
}
impl<KeyFormat, D> RegisterThirdMessage<KeyFormat, D>
where
KeyFormat: KeyPair,
D: Hash,
{
/// byte representation for the registration upload message
pub fn to_bytes(&self) -> Vec<u8> {
[&self.envelope.to_bytes(), &self.client_s_pk.to_arr()[..]].concat()
}
}
impl<KeyFormat, D> TryFrom<&[u8]> for RegisterThirdMessage<KeyFormat, D>
where
KeyFormat: KeyPair,
D: Hash,
{
type Error = ProtocolError;
fn try_from(third_message_bytes: &[u8]) -> Result<Self, Self::Error> {
let key_len = <KeyFormat::Repr as SizedBytes>::Len::to_usize();
let envelope_size = key_len + Envelope::<D>::additional_size();
let checked_bytes = check_slice_size(
third_message_bytes,
envelope_size + key_len,
"third_message",
)?;
let unchecked_client_s_pk = KeyFormat::Repr::from_bytes(&checked_bytes[envelope_size..])?;
let client_s_pk = KeyFormat::check_public_key(unchecked_client_s_pk)?;
Ok(Self {
envelope: Envelope::<D>::from_bytes(&checked_bytes[..envelope_size])?,
client_s_pk,
})
}
}
/// The message sent by the user to the server, to initiate registration
pub struct LoginFirstMessage<CS: CipherSuite> {
/// blinded password information
alpha: CS::Group,
ke1_message: <CS::KeyExchange as KeyExchange<CS::Hash>>::KE1Message,
}
impl<CS: CipherSuite> TryFrom<&[u8]> for LoginFirstMessage<CS> {
type Error = ProtocolError;
fn try_from(first_message_bytes: &[u8]) -> Result<Self, Self::Error> {
// Check that the message is actually containing an element of the
// correct subgroup
let elem_len = <CS::Group as Group>::ElemLen::to_usize();
let arr = GenericArray::from_slice(&first_message_bytes[..elem_len]);
let alpha = CS::Group::from_element_slice(arr)?;
let ke1_message = <CS::KeyExchange as KeyExchange<CS::Hash>>::KE1Message::try_from(
first_message_bytes[elem_len..].to_vec(),
)?;
Ok(Self { alpha, ke1_message })
}
}
impl<CS: CipherSuite> LoginFirstMessage<CS> {
/// byte representation for the login request
pub fn to_bytes(&self) -> Vec<u8> {
[&self.alpha.to_arr()[..], &self.ke1_message.to_bytes()].concat()
}
}
/// The answer sent by the server to the user, upon reception of the
/// login attempt.
pub struct LoginSecondMessage<Grp, KeyFormat, KE, D>
where
KeyFormat: KeyPair<Repr = Key>,
KE: KeyExchange<D>,
D: Hash,
{
_key_format: PhantomData<KeyFormat>,
_key_exchange: PhantomData<KE>,
/// the server's oprf output
beta: Grp,
/// the user's sealed information,
envelope: Envelope<D>,
ke2_message: KE::KE2Message,
}
impl<Grp, KeyFormat, KE, D> LoginSecondMessage<Grp, KeyFormat, KE, D>
where
Grp: Group,
KeyFormat: KeyPair<Repr = Key>,
KE: KeyExchange<D>,
D: Hash,
{
/// byte representation for the login response
pub fn to_bytes(&self) -> Vec<u8> {
[
&self.beta.to_arr()[..],
&self.envelope.to_bytes()[..],
&self.ke2_message.to_bytes()[..],
]
.concat()
}
}
impl<Grp, KeyFormat, KE, D> TryFrom<&[u8]> for LoginSecondMessage<Grp, KeyFormat, KE, D>
where
Grp: Group,
KeyFormat: KeyPair<Repr = Key>,
KE: KeyExchange<D>,
D: Hash,
{
type Error = ProtocolError;
fn try_from(second_message_bytes: &[u8]) -> Result<Self, Self::Error> {
let key_len = <KeyFormat::Repr as SizedBytes>::Len::to_usize();
let envelope_size = key_len + Envelope::<D>::additional_size();
let elem_len = Grp::ElemLen::to_usize();
let ke2_message_size = KE::ke2_message_size();
let checked_slice = check_slice_size(
second_message_bytes,
elem_len + envelope_size + ke2_message_size,
"login_second_message_bytes",
)?;
// Check that the message is actually containing an element of the
// correct subgroup
let beta_bytes = &checked_slice[..elem_len];
let arr = GenericArray::from_slice(beta_bytes);
let beta = Grp::from_element_slice(arr)?;
let envelope =
Envelope::<D>::from_bytes(&checked_slice[elem_len..elem_len + envelope_size])?;
let ke2_message =
KE::KE2Message::try_from(checked_slice[elem_len + envelope_size..].to_vec())?;
Ok(Self {
_key_format: PhantomData,
_key_exchange: PhantomData,
beta,
envelope,
ke2_message,
})
}
}
/// The answer sent by the client to the server, upon reception of the
/// sealed envelope
pub struct LoginThirdMessage<CS: CipherSuite> {
ke3_message: <CS::KeyExchange as KeyExchange<CS::Hash>>::KE3Message,
}
impl<CS: CipherSuite> TryFrom<&[u8]> for LoginThirdMessage<CS> {
type Error = ProtocolError;
fn try_from(bytes: &[u8]) -> Result<Self, Self::Error> {
let ke3_message =
<CS::KeyExchange as KeyExchange<CS::Hash>>::KE3Message::try_from(bytes.to_vec())?;
Ok(Self { ke3_message })
}
}
impl<CS: CipherSuite> LoginThirdMessage<CS> {
/// byte representation for the login finalization
pub fn to_bytes(&self) -> Vec<u8> {
self.ke3_message.to_bytes()
}
}
// Registration
// ============
/// The state elements the client holds to register itself
pub struct ClientRegistration<CS: CipherSuite> {
/// a blinding factor
pub(crate) blinding_factor: <CS::Group as Group>::Scalar,
/// the client's password
password: Vec<u8>,
}
impl<CS: CipherSuite> TryFrom<&[u8]> for ClientRegistration<CS> {
type Error = ProtocolError;
fn try_from(bytes: &[u8]) -> Result<Self, Self::Error> {
// Check that the message is actually containing an element of the
// correct subgroup
let scalar_len = <CS::Group as Group>::ScalarLen::to_usize();
let blinding_factor_bytes = GenericArray::from_slice(&bytes[..scalar_len]);
let blinding_factor = CS::Group::from_scalar_slice(blinding_factor_bytes)?;
let password = bytes[scalar_len..].to_vec();
Ok(Self {
blinding_factor,
password,
})
}
}
impl<CS: CipherSuite> ClientRegistration<CS> {
/// byte representation for the client's registration state
pub fn to_bytes(&self) -> Vec<u8> {
let output: Vec<u8> = [
&CS::Group::scalar_as_bytes(&self.blinding_factor)[..],
&self.password,
]
.concat();
output
}
}
impl<CS: CipherSuite> ClientRegistration<CS> {
/// Returns an initial "blinded" request to send to the server, as well as a ClientRegistration
///
/// # Arguments
/// * `password` - A user password
///
/// # Example
///
/// ```
/// use opaque_ke::opaque::ClientRegistration;
/// # use opaque_ke::errors::ProtocolError;
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut rng = OsRng;
/// let (register_m1, registration_state) = ClientRegistration::<Default>::start(b"hunter2", None, &mut rng)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn start<R: RngCore + CryptoRng>(
password: &[u8],
pepper: Option<&[u8]>,
blinding_factor_rng: &mut R,
) -> Result<(RegisterFirstMessage<CS::Group>, Self), ProtocolError> {
let OprfClientBytes {
alpha,
blinding_factor,
} = oprf::generate_oprf1::<R, CS::Group>(&password, pepper, blinding_factor_rng)?;
Ok((
RegisterFirstMessage::<CS::Group> { alpha },
Self {
blinding_factor,
password: password.to_vec(),
},
))
}
}
type ClientRegistrationFinishResult<KeyFormat, D> = (
RegisterThirdMessage<KeyFormat, D>,
GenericArray<u8, ExportKeySize>,
);
impl<CS: CipherSuite> ClientRegistration<CS> {
/// "Unblinds" the server's answer and returns a final message containing
/// cryptographic identifiers, to be sent to the server on setup finalization
///
/// # Arguments
/// * `message` - the server's answer to the initial registration attempt
///
/// # Example
///
/// ```
/// use opaque_ke::{opaque::{ClientRegistration, ServerRegistration}, keypair::{X25519KeyPair, SizedBytes}};
/// # use opaque_ke::errors::ProtocolError;
/// # use opaque_ke::keypair::KeyPair;
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut client_rng = OsRng;
/// let mut server_rng = OsRng;
/// let server_kp = X25519KeyPair::generate_random(&mut server_rng)?;
/// let (register_m1, client_state) = ClientRegistration::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// let (register_m2, server_state) =
/// ServerRegistration::<Default>::start(register_m1, &mut server_rng)?;
/// let mut client_rng = OsRng;
/// let register_m3 = client_state.finish(register_m2, server_kp.public(), &mut client_rng)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn finish<R: CryptoRng + RngCore>(
self,
r2: RegisterSecondMessage<CS::Group>,
server_s_pk: &<CS::KeyFormat as KeyPair>::Repr,
rng: &mut R,
) -> Result<ClientRegistrationFinishResult<CS::KeyFormat, CS::Hash>, ProtocolError> {
let client_static_keypair = CS::KeyFormat::generate_random(rng)?;
let password_derived_key = get_password_derived_key::<CS::Group, CS::SlowHash, CS::Hash>(
self.password.clone(),
r2.beta,
&self.blinding_factor,
)?;
let (envelope, export_key) = Envelope::<CS::Hash>::seal(
&password_derived_key,
&client_static_keypair.private().to_arr(),
&server_s_pk.to_arr(),
rng,
)?;
Ok((
RegisterThirdMessage {
envelope,
client_s_pk: client_static_keypair.public().clone(),
},
export_key,
))
}
}
// This can't be derived because of the use of a phantom parameter
impl<CS: CipherSuite> Zeroize for ClientRegistration<CS> {
fn zeroize(&mut self) {
self.password.zeroize();
self.blinding_factor.zeroize();
}
}
impl<CS: CipherSuite> Drop for ClientRegistration<CS> {
fn drop(&mut self) {
self.zeroize();
}
}
// This can't be derived because of the use of a phantom parameter
impl<CS: CipherSuite> Zeroize for ClientLogin<CS> {
fn zeroize(&mut self) {
self.password.zeroize();
self.blinding_factor.zeroize();
}
}
impl<CS: CipherSuite> Drop for ClientLogin<CS> {
fn drop(&mut self) {
self.zeroize();
}
}
/// The state elements the server holds to record a registration
pub struct ServerRegistration<CS: CipherSuite> {
envelope: Option<Envelope<CS::Hash>>,
client_s_pk: Option<<CS::KeyFormat as KeyPair>::Repr>,
pub(crate) oprf_key: <CS::Group as Group>::Scalar,
}
impl<CS: CipherSuite> TryFrom<&[u8]> for ServerRegistration<CS>
where
<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len:
std::ops::Add<<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len>,
generic_array::typenum::Sum<
<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len,
<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len,
>: generic_array::ArrayLength<u8>,
{
type Error = ProtocolError;
fn try_from(server_registration_bytes: &[u8]) -> Result<Self, Self::Error> {
let key_len = <<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len::to_usize();
let scalar_len = <CS::Group as Group>::ScalarLen::to_usize();
let envelope_size = key_len + Envelope::<CS::Hash>::additional_size();
if server_registration_bytes.len() == scalar_len {
return Ok(Self {
oprf_key: CS::Group::from_scalar_slice(GenericArray::from_slice(
server_registration_bytes,
))?,
client_s_pk: None,
envelope: None,
});
}
let checked_bytes = check_slice_size(
server_registration_bytes,
envelope_size + key_len + scalar_len,
"server_registration_bytes",
)?;
let oprf_key_bytes = GenericArray::from_slice(&checked_bytes[..scalar_len]);
let oprf_key = CS::Group::from_scalar_slice(oprf_key_bytes)?;
let unchecked_client_s_pk = <CS::KeyFormat as KeyPair>::Repr::from_bytes(
&checked_bytes[scalar_len..scalar_len + key_len],
)?;
let client_s_pk = CS::KeyFormat::check_public_key(unchecked_client_s_pk)?;
Ok(Self {
envelope: Some(Envelope::<CS::Hash>::from_bytes(
&checked_bytes[checked_bytes.len() - envelope_size..],
)?),
client_s_pk: Some(client_s_pk),
oprf_key,
})
}
}
impl<CS: CipherSuite> ServerRegistration<CS>
where
<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len:
std::ops::Add<<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len>,
generic_array::typenum::Sum<
<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len,
<<CS::KeyFormat as KeyPair>::Repr as SizedBytes>::Len,
>: generic_array::ArrayLength<u8>,
{
/// byte representation for the server's registration state
pub fn to_bytes(&self) -> Vec<u8> {
let mut output: Vec<u8> = CS::Group::scalar_as_bytes(&self.oprf_key).to_vec();
match &self.client_s_pk {
Some(v) => output.extend_from_slice(&v.to_arr()),
None => {}
};
match &self.envelope {
Some(v) => output.extend_from_slice(&v.to_bytes()),
None => {}
};
output
}
/// From the client's "blinded" password, returns a response to be
/// sent back to the client, as well as a ServerRegistration
///
/// # Arguments
/// * `message` - the initial registration message
///
/// # Example
///
/// ```
/// use opaque_ke::{opaque::*, keypair::{X25519KeyPair, SizedBytes}};
/// # use opaque_ke::errors::ProtocolError;
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut client_rng = OsRng;
/// let mut server_rng = OsRng;
/// let (register_m1, client_state) = ClientRegistration::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// let (register_m2, server_state) =
/// ServerRegistration::<Default>::start(register_m1, &mut server_rng)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn start<R: RngCore + CryptoRng>(
message: RegisterFirstMessage<CS::Group>,
rng: &mut R,
) -> Result<(RegisterSecondMessage<CS::Group>, Self), ProtocolError> {
// RFC: generate oprf_key (salt) and v_u = g^oprf_key
let oprf_key = CS::Group::random_scalar(rng);
// Compute beta = alpha^oprf_key
let beta = oprf::generate_oprf2::<CS::Group>(message.alpha, &oprf_key)?;
Ok((
RegisterSecondMessage { beta },
Self {
envelope: None,
client_s_pk: None,
oprf_key,
},
))
}
/// From the client's cryptographic identifiers, fully populates and
/// returns a ServerRegistration
///
/// # Arguments
/// * `message` - the final client message
///
/// # Example
///
/// ```
/// use opaque_ke::{opaque::*, keypair::{KeyPair, X25519KeyPair, SizedBytes}};
/// # use opaque_ke::errors::ProtocolError;
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut client_rng = OsRng;
/// let mut server_rng = OsRng;
/// let server_kp = X25519KeyPair::generate_random(&mut server_rng)?;
/// let (register_m1, client_state) = ClientRegistration::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// let (register_m2, server_state) =
/// ServerRegistration::<Default>::start(register_m1, &mut server_rng)?;
/// let mut client_rng = OsRng;
/// let (register_m3, _opaque_key) = client_state.finish(register_m2, server_kp.public(), &mut client_rng)?;
/// let client_record = server_state.finish(register_m3)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn finish(
self,
message: RegisterThirdMessage<CS::KeyFormat, CS::Hash>,
) -> Result<Self, ProtocolError> {
Ok(Self {
envelope: Some(message.envelope),
client_s_pk: Some(message.client_s_pk),
oprf_key: self.oprf_key,
})
}
}
// Login
// =====
/// The state elements the client holds to perform a login
pub struct ClientLogin<CS: CipherSuite> {
/// A choice of the keypair type
_key_format: PhantomData<CS::KeyFormat>,
/// A blinding factor, which is used to mask (and unmask) secret
/// information before transmission
blinding_factor: <CS::Group as Group>::Scalar,
/// The user's password
password: Vec<u8>,
ke1_state: <CS::KeyExchange as KeyExchange<CS::Hash>>::KE1State,
}
impl<CS: CipherSuite> TryFrom<&[u8]> for ClientLogin<CS> {
type Error = ProtocolError;
fn try_from(bytes: &[u8]) -> Result<Self, Self::Error> {
let scalar_len = <CS::Group as Group>::ScalarLen::to_usize();
let blinding_factor_bytes = GenericArray::from_slice(&bytes[..scalar_len]);
let blinding_factor = CS::Group::from_scalar_slice(blinding_factor_bytes)?;
let ke1_state_size = <CS::KeyExchange as KeyExchange<CS::Hash>>::ke1_state_size();
let ke1_state = <CS::KeyExchange as KeyExchange<CS::Hash>>::KE1State::try_from(
bytes[scalar_len..scalar_len + ke1_state_size].to_vec(),
)?;
let password = bytes[scalar_len + ke1_state_size..].to_vec();
Ok(Self {
_key_format: PhantomData,
blinding_factor,
password,
ke1_state,
})
}
}
impl<CS: CipherSuite> ClientLogin<CS> {
/// byte representation for the client's login state
pub fn to_bytes(&self) -> Vec<u8> {
let output: Vec<u8> = [
&CS::Group::scalar_as_bytes(&self.blinding_factor)[..],
&self.ke1_state.to_bytes(),
&self.password,
]
.concat();
output
}
}
type ClientLoginFinishResult<CS> = (
LoginThirdMessage<CS>,
Vec<u8>,
GenericArray<u8, ExportKeySize>,
);
impl<CS: CipherSuite> ClientLogin<CS> {
/// Returns an initial "blinded" password request to send to the server, as well as a ClientLogin
///
/// # Arguments
/// * `password` - A user password
///
/// # Example
///
/// ```
/// use opaque_ke::opaque::ClientLogin;
/// # use opaque_ke::errors::ProtocolError;
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut client_rng = OsRng;
/// let (login_m1, client_login_state) = ClientLogin::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn start<R: RngCore + CryptoRng>(
password: &[u8],
pepper: Option<&[u8]>,
rng: &mut R,
) -> Result<(LoginFirstMessage<CS>, Self), ProtocolError> {
let OprfClientBytes {
alpha,
blinding_factor,
} = oprf::generate_oprf1::<R, CS::Group>(&password, pepper, rng)?;
let (ke1_state, ke1_message) =
CS::KeyExchange::generate_ke1::<_, CS::KeyFormat>(alpha.to_arr().to_vec(), rng)?;
let l1 = LoginFirstMessage { alpha, ke1_message };
Ok((
l1,
Self {
_key_format: PhantomData,
blinding_factor,
password: password.to_vec(),
ke1_state,
},
))
}
/// "Unblinds" the server's answer and returns the opened assets from
/// the server
///
/// # Arguments
/// * `message` - the server's answer to the initial login attempt
///
/// # Example
///
/// ```
/// use opaque_ke::opaque::{ClientLogin, ServerLogin};
/// # use opaque_ke::opaque::{ClientRegistration, ServerRegistration};
/// # use opaque_ke::errors::ProtocolError;
/// # use opaque_ke::keypair::{X25519KeyPair, KeyPair};
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut client_rng = OsRng;
/// # let mut server_rng = OsRng;
/// # let (register_m1, client_state) = ClientRegistration::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// # let server_kp = X25519KeyPair::generate_random(&mut server_rng)?;
/// # let (register_m2, server_state) = ServerRegistration::<Default>::start(register_m1, &mut server_rng)?;
/// # let (register_m3, _opaque_key) = client_state.finish(register_m2, server_kp.public(), &mut client_rng)?;
/// # let p_file = server_state.finish(register_m3)?;
/// let (login_m1, client_login_state) = ClientLogin::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// let (login_m2, server_login_state) = ServerLogin::start(p_file, &server_kp.private(), login_m1, &mut server_rng)?;
/// let (login_m3, client_transport, _opaque_key) = client_login_state.finish(login_m2, &server_kp.public(), &mut client_rng)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn finish<R: RngCore + CryptoRng>(
self,
l2: LoginSecondMessage<CS::Group, CS::KeyFormat, CS::KeyExchange, CS::Hash>,
server_s_pk: &<<CS as CipherSuite>::KeyFormat as KeyPair>::Repr,
_client_e_sk_rng: &mut R,
) -> Result<ClientLoginFinishResult<CS>, ProtocolError> {
let l2_bytes: Vec<u8> = [&l2.beta.to_arr()[..], &l2.envelope.to_bytes()].concat();
let password_derived_key = get_password_derived_key::<CS::Group, CS::SlowHash, CS::Hash>(
self.password.clone(),
l2.beta,
&self.blinding_factor,
)?;
let opened_envelope = &l2
.envelope
.open(&password_derived_key, &server_s_pk.to_arr())
.map_err(|e| match e {
InternalPakeError::SealOpenHmacError => PakeError::InvalidLoginError,
err => PakeError::from(err),
})?;
let (shared_secret, ke3_message) = CS::KeyExchange::generate_ke3::<CS::KeyFormat>(
l2_bytes,
l2.ke2_message,
&self.ke1_state,
server_s_pk.clone(),
Key::from_bytes(&opened_envelope.plaintext)?,
)?;
Ok((
LoginThirdMessage { ke3_message },
shared_secret,
opened_envelope.export_key,
))
}
}
/// The state elements the server holds to record a login
pub struct ServerLogin<CS: CipherSuite> {
ke2_state: <CS::KeyExchange as KeyExchange<CS::Hash>>::KE2State,
_cs: PhantomData<CS>,
}
impl<CS: CipherSuite> TryFrom<&[u8]> for ServerLogin<CS> {
type Error = ProtocolError;
fn try_from(bytes: &[u8]) -> Result<Self, Self::Error> {
Ok(Self {
_cs: PhantomData,
ke2_state: <CS::KeyExchange as KeyExchange<CS::Hash>>::KE2State::try_from(
bytes.to_vec(),
)?,
})
}
}
type ServerLoginStartResult<CS> = (
LoginSecondMessage<
<CS as CipherSuite>::Group,
<CS as CipherSuite>::KeyFormat,
<CS as CipherSuite>::KeyExchange,
<CS as CipherSuite>::Hash,
>,
ServerLogin<CS>,
);
impl<CS: CipherSuite> ServerLogin<CS> {
/// byte representation for the server's login state
pub fn to_bytes(&self) -> Vec<u8> {
self.ke2_state.to_bytes()
}
/// From the client's "blinded"" password, returns a challenge to be
/// sent back to the client, as well as a ServerLogin
///
/// # Arguments
/// * `message` - the initial registration message
///
/// # Example
///
/// ```
/// use opaque_ke::opaque::{ClientLogin, ServerLogin};
/// # use opaque_ke::opaque::{ClientRegistration, ServerRegistration};
/// # use opaque_ke::errors::ProtocolError;
/// # use opaque_ke::keypair::{KeyPair, X25519KeyPair};
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut client_rng = OsRng;
/// let mut server_rng = OsRng;
/// let server_kp = X25519KeyPair::generate_random(&mut server_rng)?;
/// # let (register_m1, client_state) = ClientRegistration::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// # let (register_m2, server_state) =
/// ServerRegistration::<Default>::start(register_m1, &mut server_rng)?;
/// # let (register_m3, _opaque_key) = client_state.finish(register_m2, server_kp.public(), &mut client_rng)?;
/// # let p_file = server_state.finish(register_m3)?;
/// let (login_m1, client_login_state) = ClientLogin::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// let (login_m2, server_login_state) = ServerLogin::start(p_file, &server_kp.private(), login_m1, &mut server_rng)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn start<R: RngCore + CryptoRng>(
password_file: ServerRegistration<CS>,
server_s_sk: &Key,
l1: LoginFirstMessage<CS>,
rng: &mut R,
) -> Result<ServerLoginStartResult<CS>, ProtocolError> {
let l1_bytes = &l1.to_bytes();
let beta = oprf::generate_oprf2(l1.alpha, &password_file.oprf_key)?;
let client_s_pk = password_file
.client_s_pk
.ok_or(InternalPakeError::SealError)?;
let envelope = password_file.envelope.ok_or(InternalPakeError::SealError)?;
let l2_component: Vec<u8> = [&beta.to_arr()[..], &envelope.to_bytes()].concat();
let (ke2_state, ke2_message) = CS::KeyExchange::generate_ke2::<_, CS::KeyFormat>(
rng,
l1_bytes.to_vec(),
l2_component,
l1.ke1_message,
client_s_pk,
server_s_sk.clone(),
)?;
let l2 = LoginSecondMessage {
_key_format: PhantomData,
_key_exchange: PhantomData,
beta,
envelope,
ke2_message,
};
Ok((
l2,
Self {
_cs: PhantomData,
ke2_state,
},
))
}
/// From the client's second & final message, check the client's
/// authentication & produce a message transport
///
/// # Arguments
/// * `message` - the client's second login message
///
/// # Example
///
/// ```
/// use opaque_ke::opaque::{ClientLogin, ServerLogin};
/// # use opaque_ke::opaque::{ClientRegistration, ServerRegistration};
/// # use opaque_ke::errors::ProtocolError;
/// # use opaque_ke::keypair::{KeyPair, X25519KeyPair};
/// use rand_core::{OsRng, RngCore};
/// use opaque_ke::ciphersuite::CipherSuite;
/// struct Default;
/// impl CipherSuite for Default {
/// type Group = curve25519_dalek::ristretto::RistrettoPoint;
/// type KeyFormat = opaque_ke::keypair::X25519KeyPair;
/// type KeyExchange = opaque_ke::key_exchange::tripledh::TripleDH;
/// type Hash = sha2::Sha256;
/// type SlowHash = opaque_ke::slow_hash::NoOpHash;
/// }
/// let mut client_rng = OsRng;
/// let mut server_rng = OsRng;
/// let server_kp = X25519KeyPair::generate_random(&mut server_rng)?;
/// # let (register_m1, client_state) = ClientRegistration::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// # let (register_m2, server_state) =
/// ServerRegistration::<Default>::start(register_m1, &mut server_rng)?;
/// # let (register_m3, _opaque_key) = client_state.finish(register_m2, server_kp.public(), &mut client_rng)?;
/// # let p_file = server_state.finish(register_m3)?;
/// let (login_m1, client_login_state) = ClientLogin::<Default>::start(b"hunter2", None, &mut client_rng)?;
/// let (login_m2, server_login_state) = ServerLogin::start(p_file, &server_kp.private(), login_m1, &mut server_rng)?;
/// let (login_m3, client_transport, _opaque_key) = client_login_state.finish(login_m2, &server_kp.public(), &mut client_rng)?;
/// let mut server_transport = server_login_state.finish(login_m3)?;
/// # Ok::<(), ProtocolError>(())
/// ```
pub fn finish(&self, message: LoginThirdMessage<CS>) -> Result<Vec<u8>, ProtocolError> {
<CS::KeyExchange as KeyExchange<CS::Hash>>::finish_ke(message.ke3_message, &self.ke2_state)
.map_err(|e| match e {
ProtocolError::VerificationError(PakeError::KeyExchangeMacValidationError) => {
ProtocolError::VerificationError(PakeError::InvalidLoginError)
}
err => err,
})
}
}
// Helper functions
fn get_password_derived_key<G: Group, SH: SlowHash<D>, D: Hash>(
password: Vec<u8>,
beta: G,
blinding_factor: &G::Scalar,
) -> Result<Vec<u8>, InternalPakeError> {
let oprf_output = oprf::generate_oprf3::<G, D>(&password, beta, blinding_factor)?;
SH::hash(oprf_output)
}