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https://github.com/saymrwulf/betrusted-curve25519-dalek-source.git
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241 lines
8.7 KiB
Rust
241 lines
8.7 KiB
Rust
// -*- mode: rust; -*-
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//
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// This file is part of ed25519-dalek.
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// Copyright (c) 2017-2019 isis lovecruft
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// See LICENSE for licensing information.
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//
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// Authors:
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// - isis agora lovecruft <isis@patternsinthevoid.net>
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//! Batch signature verification.
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use alloc::vec::Vec;
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use core::iter::once;
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use curve25519_dalek::constants;
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use curve25519_dalek::edwards::EdwardsPoint;
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use curve25519_dalek::scalar::Scalar;
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use curve25519_dalek::traits::IsIdentity;
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use curve25519_dalek::traits::VartimeMultiscalarMul;
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pub use curve25519_dalek::digest::Digest;
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use merlin::Transcript;
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use rand_core::RngCore;
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use sha2::Sha512;
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use crate::errors::InternalError;
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use crate::errors::SignatureError;
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use crate::signature::InternalSignature;
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use crate::VerifyingKey;
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/// An implementation of `rand_core::RngCore` which does nothing. This is necessary because merlin
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/// demands an `Rng` as input to `TranscriptRngBuilder::finalize()`. Using this with `finalize()`
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/// yields a PRG whose input is the hashed transcript.
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struct ZeroRng;
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impl rand_core::RngCore for ZeroRng {
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fn next_u32(&mut self) -> u32 {
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rand_core::impls::next_u32_via_fill(self)
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}
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fn next_u64(&mut self) -> u64 {
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rand_core::impls::next_u64_via_fill(self)
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}
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/// A no-op function which leaves the destination bytes for randomness unchanged.
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///
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/// In this case, the internal merlin code is initialising the destination
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/// by doing `[0u8; …]`, which means that when we call
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/// `merlin::TranscriptRngBuilder.finalize()`, rather than rekeying the
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/// STROBE state based on external randomness, we're doing an
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/// `ENC_{state}(00000000000000000000000000000000)` operation, which is
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/// identical to the STROBE `MAC` operation.
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fn fill_bytes(&mut self, _dest: &mut [u8]) {}
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fn try_fill_bytes(&mut self, dest: &mut [u8]) -> Result<(), rand_core::Error> {
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self.fill_bytes(dest);
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Ok(())
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}
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}
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// `TranscriptRngBuilder::finalize()` requires a `CryptoRng`
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impl rand_core::CryptoRng for ZeroRng {}
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// We write our own gen() function so we don't need to pull in the rand crate
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fn gen_u128<R: RngCore>(rng: &mut R) -> u128 {
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let mut buf = [0u8; 16];
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rng.fill_bytes(&mut buf);
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u128::from_le_bytes(buf)
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}
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/// Verify a batch of `signatures` on `messages` with their respective `verifying_keys`.
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///
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/// # Inputs
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///
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/// * `messages` is a slice of byte slices, one per signed message.
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/// * `signatures` is a slice of `Signature`s.
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/// * `verifying_keys` is a slice of `VerifyingKey`s.
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///
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/// # Returns
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///
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/// * A `Result` whose `Ok` value is an empty tuple and whose `Err` value is a
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/// `SignatureError` containing a description of the internal error which
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/// occurred.
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///
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/// ## On Deterministic Nonces
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///
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/// The nonces for batch signature verification are derived purely from the inputs to this function
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/// themselves.
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///
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/// In any sigma protocol it is wise to include as much context pertaining
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/// to the public state in the protocol as possible, to avoid malleability
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/// attacks where an adversary alters publics in an algebraic manner that
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/// manages to satisfy the equations for the protocol in question.
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///
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/// For ed25519 batch verification we include the following as scalars in the protocol transcript:
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///
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/// * All of the computed `H(R||A||M)`s to the protocol transcript, and
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/// * All of the `s` components of each signature.
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///
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/// The former, while not quite as elegant as adding the `R`s, `A`s, and
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/// `M`s separately, saves us a bit of context hashing since the
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/// `H(R||A||M)`s need to be computed for the verification equation anyway.
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///
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/// The latter prevents a malleability attack wherein an adversary, without access
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/// to the signing key(s), can take any valid signature, `(s,R)`, and swap
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/// `s` with `s' = -z1`. This doesn't constitute a signature forgery, merely
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/// a vulnerability, as the resulting signature will not pass single
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/// signature verification. (Thanks to Github users @real_or_random and
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/// @jonasnick for pointing out this malleability issue.)
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///
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/// # Examples
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///
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/// ```
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/// use ed25519_dalek::{
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/// verify_batch, SigningKey, VerifyingKey, Signer, Signature,
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/// };
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/// use rand::rngs::OsRng;
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///
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/// # fn main() {
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/// let mut csprng = OsRng;
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/// let signing_keys: Vec<_> = (0..64).map(|_| SigningKey::generate(&mut csprng)).collect();
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/// let msg: &[u8] = b"They're good dogs Brant";
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/// let messages: Vec<_> = (0..64).map(|_| msg).collect();
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/// let signatures: Vec<_> = signing_keys.iter().map(|key| key.sign(&msg)).collect();
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/// let verifying_keys: Vec<_> = signing_keys.iter().map(|key| key.verifying_key()).collect();
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///
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/// let result = verify_batch(&messages, &signatures, &verifying_keys);
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/// assert!(result.is_ok());
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/// # }
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/// ```
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#[allow(non_snake_case)]
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pub fn verify_batch(
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messages: &[&[u8]],
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signatures: &[ed25519::Signature],
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verifying_keys: &[VerifyingKey],
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) -> Result<(), SignatureError> {
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// Return an Error if any of the vectors were not the same size as the others.
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if signatures.len() != messages.len()
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|| signatures.len() != verifying_keys.len()
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|| verifying_keys.len() != messages.len()
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{
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return Err(InternalError::ArrayLength {
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name_a: "signatures",
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length_a: signatures.len(),
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name_b: "messages",
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length_b: messages.len(),
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name_c: "verifying_keys",
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length_c: verifying_keys.len(),
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}
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.into());
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}
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// Make a transcript which logs all inputs to this function
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let mut transcript: Transcript = Transcript::new(b"ed25519 batch verification");
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// We make one optimization in the transcript: since we will end up computing H(R || A || M)
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// for each (R, A, M) triplet, we will feed _that_ into our transcript rather than each R, A, M
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// individually. Since R and A are fixed-length, this modification is secure so long as SHA-512
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// is collision-resistant.
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// It suffices to take `verifying_keys[i].as_bytes()` even though a `VerifyingKey` has two
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// fields, and `as_bytes()` only returns the bytes of the first. This is because of an
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// invariant guaranteed by `VerifyingKey`: the second field is always the (unique)
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// decompression of the first. Thus, the serialized first field is a unique representation of
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// the entire `VerifyingKey`.
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let hrams: Vec<[u8; 64]> = (0..signatures.len())
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.map(|i| {
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// Compute H(R || A || M), where
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// R = sig.R
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// A = verifying key
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// M = msg
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let mut h: Sha512 = Sha512::default();
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h.update(signatures[i].r_bytes());
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h.update(verifying_keys[i].as_bytes());
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h.update(messages[i]);
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*h.finalize().as_ref()
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})
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.collect();
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// Update transcript with the hashes above. This covers verifying_keys, messages, and the R
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// half of signatures
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for hram in hrams.iter() {
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transcript.append_message(b"hram", hram);
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}
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// Update transcript with the rest of the data. This covers the s half of the signatures
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for sig in signatures {
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transcript.append_message(b"sig.s", sig.s_bytes());
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}
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// All function inputs have now been hashed into the transcript. Finalize it and use it as
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// randomness for the batch verification.
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let mut rng = transcript.build_rng().finalize(&mut ZeroRng);
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// Convert all signatures to `InternalSignature`
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let signatures = signatures
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.iter()
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.map(InternalSignature::try_from)
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.collect::<Result<Vec<_>, _>>()?;
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// Convert the H(R || A || M) values into scalars
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let hrams: Vec<Scalar> = hrams
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.iter()
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.map(Scalar::from_bytes_mod_order_wide)
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.collect();
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// Select a random 128-bit scalar for each signature.
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let zs: Vec<Scalar> = signatures
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.iter()
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.map(|_| Scalar::from(gen_u128(&mut rng)))
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.collect();
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// Compute the basepoint coefficient, ∑ s[i]z[i] (mod l)
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let B_coefficient: Scalar = signatures
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.iter()
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.map(|sig| sig.s)
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.zip(zs.iter())
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.map(|(s, z)| z * s)
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.sum();
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// Multiply each H(R || A || M) by the random value
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let zhrams = hrams.iter().zip(zs.iter()).map(|(hram, z)| hram * z);
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let Rs = signatures.iter().map(|sig| sig.R.decompress());
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let As = verifying_keys.iter().map(|pk| Some(pk.point));
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let B = once(Some(constants::ED25519_BASEPOINT_POINT));
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// Compute (-∑ z[i]s[i] (mod l)) B + ∑ z[i]R[i] + ∑ (z[i]H(R||A||M)[i] (mod l)) A[i] = 0
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let id = EdwardsPoint::optional_multiscalar_mul(
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once(-B_coefficient).chain(zs.iter().cloned()).chain(zhrams),
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B.chain(Rs).chain(As),
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)
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.ok_or(InternalError::Verify)?;
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if id.is_identity() {
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Ok(())
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} else {
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Err(InternalError::Verify.into())
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}
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}
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