mirror of
https://github.com/saymrwulf/fips205-source.git
synced 2026-09-03 19:53:49 +00:00
tests: NIST ACVP SHA2-128s verification KATs + a real differential bridge
External review flagged across rounds 4-6 that the empirical evidence tying the proved model to the deployed code had not moved by a single data point in six rounds: the sole bridge was nine assertion points (3 rounds, one fixed seed, corruption always at byte 100), and the ACVP vectors vendored here contain NO SLH-DSA-SHA2-128s sigVer group at all — the one parameter set this verification campaign is about had zero NIST known-answer verification coverage. VECTORS. tests/nist_acvp_vectors/SLH-DSA-sigVer-FIPS205/sha2_128s_extracted.json carries the three SHA2-128s sigVer groups extracted verbatim from the official NIST ACVP-Server vector set (source URL, upstream file sha256 and extraction method recorded in the file's own _provenance block; per-test private keys dropped as unnecessary to verify). 42 tests: 2 valid and 12 negative per group, the negatives spread over structurally distinct corruption sites — modified R, modified SIGFORS, modified SIGHT, modified message, too-small and too-large signatures. TESTS (all in src/verify_mono.rs, so they exercise the monomorphic path the Lean certificates are about): - mono_matches_nist_acvp_128s_internal — NIST's `internal` group carries M' directly, which is exactly what slh_verify_128s consumes, so these are true known-answer tests OF THE PROVED PATH: 10 executed, 4 attributed to deserialization (wrong-length signatures, rejected above the extraction root). Accounting is exact — all 14 are accounted for, nothing silently skipped. - mono_matches_nist_acvp_128s_external_pure — builds M' the way lib.rs does and requires mono, the deployed verifier and NIST to agree: 10 executed, 9 of them with a NON-EMPTY context. This is the first empirical check of the domain-separator byte and context-length prefix that TRUSTED-BASE item 10 declares outside every proof. - deployed_matches_nist_acvp_128s_prehash — validates the deployed prehash path for 128s: 3 executed, 4 wrong-length, and 7 skipped because NIST exercises prehash functions (SHA3-*, truncated SHA2) this crate's `Ph` enum does not implement. Counted and reported rather than hidden. - mono_matches_deployed_randomized — replaces the fixed-seed/fixed-byte bridge: 12 rounds, varying message lengths including empty, corruption spread across the WHOLE 7856-byte signature, plus wrong-public-key and wrong-context cases that were never exercised before. 108 assertion points, each requiring mono and deployed to agree. Bridge coverage: 9 assertion points -> 131, of which 20 are NIST known-answer tests on the proved path where there were previously none. No change to any verify-path function: this commit touches test code and test data only, so the Charon/Aeneas extraction is unaffected (verified separately by re-running extract.sh and diffing the generated model). Co-Authored-By: Claude Opus 4.8 <noreply@anthropic.com>
This commit is contained in:
parent
797b4ef263
commit
3153988c4e
2 changed files with 722 additions and 0 deletions
|
|
@ -354,6 +354,13 @@ mod tests {
|
|||
use crate::slh_dsa_sha2_128s::{PublicKey, KG};
|
||||
use crate::traits::{KeyGen, SerDes, Signer, Verifier};
|
||||
use crate::types::{SlhDsaSig, SlhPublicKey};
|
||||
// This crate is no_std; the test binary links std, so pull in the pieces the
|
||||
// NIST-vector tests need (heap vectors for variable-length messages/contexts,
|
||||
// and serde_json for the ACVP file).
|
||||
extern crate std;
|
||||
use std::vec::Vec;
|
||||
use std::{println, vec};
|
||||
|
||||
use rand_chacha::rand_core::SeedableRng;
|
||||
use rand_chacha::ChaCha8Rng;
|
||||
|
||||
|
|
@ -412,4 +419,269 @@ mod tests {
|
|||
assert!(!mono_wm, "wrong-message signature accepted");
|
||||
}
|
||||
}
|
||||
|
||||
// ───────────────────────────────────────────────────────────────────────
|
||||
// NIST ACVP known-answer coverage for SLH-DSA-SHA2-128s.
|
||||
//
|
||||
// Why this exists: the ACVP vector file vendored upstream contains NO
|
||||
// SHA2-128s sigVer group (only 192s/256f/SHAKE variants), so the single
|
||||
// parameter set this verification campaign is about had ZERO NIST
|
||||
// known-answer verification coverage — flagged by external review across
|
||||
// three rounds as the largest non-gate gap. The three 128s sigVer groups
|
||||
// were extracted verbatim from the official NIST ACVP-Server vector set
|
||||
// into tests/nist_acvp_vectors/SLH-DSA-sigVer-FIPS205/sha2_128s_extracted.json
|
||||
// (provenance, source URL and upstream sha256 recorded inside that file).
|
||||
//
|
||||
// NIST supplies 14 tests per group: 2 valid, and 12 negative spread over
|
||||
// structurally distinct corruption sites — modified R, modified SIGFORS,
|
||||
// modified SIGHT, modified message, and signatures that are too small or
|
||||
// too large. That is materially stronger than flipping one fixed byte.
|
||||
const ACVP_128S: &str = include_str!(
|
||||
"../tests/nist_acvp_vectors/SLH-DSA-sigVer-FIPS205/sha2_128s_extracted.json"
|
||||
);
|
||||
|
||||
fn hexb(s: &str) -> Vec<u8> {
|
||||
(0..s.len()).step_by(2).map(|i| u8::from_str_radix(&s[i..i + 2], 16).unwrap()).collect()
|
||||
}
|
||||
|
||||
fn acvp_groups() -> Vec<serde_json::Value> {
|
||||
let v: serde_json::Value = serde_json::from_str(ACVP_128S).unwrap();
|
||||
v["testGroups"].as_array().unwrap().clone()
|
||||
}
|
||||
|
||||
fn pk_parts(pk_hex: &str) -> SlhPublicKey<16> {
|
||||
let b = hexb(pk_hex);
|
||||
assert_eq!(b.len(), 32, "128s public key must be 32 bytes");
|
||||
let mut pk_seed = [0u8; 16];
|
||||
let mut pk_root = [0u8; 16];
|
||||
pk_seed.copy_from_slice(&b[0..16]);
|
||||
pk_root.copy_from_slice(&b[16..32]);
|
||||
SlhPublicKey { pk_seed, pk_root }
|
||||
}
|
||||
|
||||
/// THE PROVED PATH AGAINST NIST. The `internal` group carries M' directly
|
||||
/// (no context wrapping, no domain separator), which is exactly the input
|
||||
/// `verify_mono::slh_verify_128s` consumes — so these are true
|
||||
/// known-answer tests of the function the eleven Lean certificates are
|
||||
/// about, not of a wrapper above it.
|
||||
#[test]
|
||||
fn mono_matches_nist_acvp_128s_internal() {
|
||||
let mut checked = 0usize;
|
||||
let mut deserialization_rejects = 0usize;
|
||||
for g in acvp_groups() {
|
||||
if g["signatureInterface"] != "internal" { continue; }
|
||||
for t in g["tests"].as_array().unwrap() {
|
||||
let expected = t["testPassed"].as_bool().unwrap();
|
||||
let sig_v = hexb(t["signature"].as_str().unwrap());
|
||||
let msg = hexb(t["message"].as_str().unwrap());
|
||||
let ipk = pk_parts(t["pk"].as_str().unwrap());
|
||||
// Wrong-length signatures are rejected by deserialization, which
|
||||
// sits ABOVE the extraction root (TRUSTED-BASE item 10) — the
|
||||
// proved path is never reached. Record, do not silently skip.
|
||||
if sig_v.len() != 7856 {
|
||||
assert!(!expected, "NIST expects a wrong-length signature to fail");
|
||||
deserialization_rejects += 1;
|
||||
continue;
|
||||
}
|
||||
let mut sig_bytes = [0u8; 7856];
|
||||
sig_bytes.copy_from_slice(&sig_v);
|
||||
let sig = SlhDsaSig::<12, 7, 9, 14, 35, 16>::deserialize(&sig_bytes);
|
||||
let got = slh_verify_128s(&msg, &sig, &ipk);
|
||||
assert_eq!(
|
||||
got, expected,
|
||||
"tcId {} ({}): mono verdict {} != NIST {}",
|
||||
t["tcId"], t["reason"].as_str().unwrap_or(""), got, expected
|
||||
);
|
||||
checked += 1;
|
||||
}
|
||||
}
|
||||
// Exact accounting: every NIST test is either executed against the proved
|
||||
// path or explicitly attributed to deserialization. Nothing is silently
|
||||
// skipped, and if NIST's file changes shape this fails loudly.
|
||||
assert_eq!(checked + deserialization_rejects, 14, "unaccounted NIST internal tests");
|
||||
assert_eq!(checked, 10, "expected 10 executable internal KATs");
|
||||
assert_eq!(deserialization_rejects, 4, "expected 4 wrong-length (too small/large) cases");
|
||||
println!(
|
||||
"mono vs NIST ACVP 128s (internal): {checked} executed against the PROVED path, \
|
||||
{deserialization_rejects} rejected at deserialization (above the extraction root)"
|
||||
);
|
||||
}
|
||||
|
||||
/// THE M' ASSEMBLY, PINNED EMPIRICALLY. The `external pure` group carries a
|
||||
/// real (often NON-EMPTY) context, so building M' the way lib.rs does and
|
||||
/// feeding it to the mono path checks the domain-separator byte and the
|
||||
/// context-length prefix that TRUSTED-BASE item 10 declares OUTSIDE every
|
||||
/// proof. Mono, the deployed verifier, and NIST must all agree.
|
||||
#[test]
|
||||
fn mono_matches_nist_acvp_128s_external_pure() {
|
||||
use crate::slh_dsa_sha2_128s::PublicKey as PK128s;
|
||||
let mut checked = 0usize;
|
||||
let mut wrong_len = 0usize;
|
||||
let mut with_ctx = 0usize;
|
||||
for g in acvp_groups() {
|
||||
if g["signatureInterface"] != "external" || g["preHash"] != "pure" { continue; }
|
||||
for t in g["tests"].as_array().unwrap() {
|
||||
let expected = t["testPassed"].as_bool().unwrap();
|
||||
let sig_v = hexb(t["signature"].as_str().unwrap());
|
||||
if sig_v.len() != 7856 { assert!(!expected); wrong_len += 1; continue; }
|
||||
let msg = hexb(t["message"].as_str().unwrap());
|
||||
let ctx = hexb(t["context"].as_str().unwrap_or(""));
|
||||
assert!(ctx.len() <= 255, "ACVP context longer than FIPS 205 allows");
|
||||
if !ctx.is_empty() { with_ctx += 1; }
|
||||
let pk_b = hexb(t["pk"].as_str().unwrap());
|
||||
let mut pk_arr = [0u8; 32];
|
||||
pk_arr.copy_from_slice(&pk_b);
|
||||
let mut sig_bytes = [0u8; 7856];
|
||||
sig_bytes.copy_from_slice(&sig_v);
|
||||
|
||||
// M' = toByte(0,1) ‖ toByte(|ctx|,1) ‖ ctx ‖ M (pure variant)
|
||||
let mut mprime = Vec::with_capacity(2 + ctx.len() + msg.len());
|
||||
mprime.push(0u8);
|
||||
mprime.push(ctx.len() as u8);
|
||||
mprime.extend_from_slice(&ctx);
|
||||
mprime.extend_from_slice(&msg);
|
||||
|
||||
let ipk = pk_parts(t["pk"].as_str().unwrap());
|
||||
let sig = SlhDsaSig::<12, 7, 9, 14, 35, 16>::deserialize(&sig_bytes);
|
||||
let mono = slh_verify_128s(&mprime, &sig, &ipk);
|
||||
|
||||
let deployed = PK128s::try_from_bytes(&pk_arr).unwrap().verify(&msg, &sig_bytes, &ctx);
|
||||
assert_eq!(mono, deployed, "tcId {}: mono != deployed", t["tcId"]);
|
||||
assert_eq!(
|
||||
mono, expected,
|
||||
"tcId {} ({}): verdict {} != NIST {}",
|
||||
t["tcId"], t["reason"].as_str().unwrap_or(""), mono, expected
|
||||
);
|
||||
checked += 1;
|
||||
}
|
||||
}
|
||||
assert_eq!(checked + wrong_len, 14, "unaccounted NIST external-pure tests");
|
||||
assert_eq!(checked, 10, "expected 10 executable external-pure KATs");
|
||||
assert!(with_ctx > 0, "no NON-EMPTY context exercised — the separator/ctx prefix is untested");
|
||||
println!(
|
||||
"mono+deployed vs NIST ACVP 128s (external pure): {checked} executed \
|
||||
({with_ctx} with a NON-EMPTY context), {wrong_len} rejected at deserialization"
|
||||
);
|
||||
}
|
||||
|
||||
/// The prehash group validates the DEPLOYED verifier against NIST for 128s.
|
||||
/// The mono path is deliberately NOT driven here: prehash M' assembly adds
|
||||
/// an OID and a message digest, and reconstructing it in the test would be
|
||||
/// re-implementing the very wrapper code that is out of scope — the honest
|
||||
/// statement is that this group covers the deployed path only.
|
||||
#[test]
|
||||
fn deployed_matches_nist_acvp_128s_prehash() {
|
||||
use crate::slh_dsa_sha2_128s::PublicKey as PK128s;
|
||||
use crate::types::Ph;
|
||||
let mut checked = 0usize;
|
||||
let mut unsupported_alg = 0usize;
|
||||
let mut wrong_len = 0usize;
|
||||
for g in acvp_groups() {
|
||||
if g["preHash"] != "preHash" { continue; }
|
||||
for t in g["tests"].as_array().unwrap() {
|
||||
let expected = t["testPassed"].as_bool().unwrap();
|
||||
let sig_v = hexb(t["signature"].as_str().unwrap());
|
||||
if sig_v.len() != 7856 { assert!(!expected); wrong_len += 1; continue; }
|
||||
// FIPS 205 permits more prehash functions than this crate's `Ph`
|
||||
// enum implements (NIST exercises SHA3-* and the truncated SHA2
|
||||
// variants too). Those are unreachable through the public API, so
|
||||
// they are counted and skipped rather than failing the test.
|
||||
let ph = match t["hashAlg"].as_str().unwrap_or("") {
|
||||
"SHA2-256" => Ph::SHA256,
|
||||
"SHA2-512" => Ph::SHA512,
|
||||
"SHAKE-128" => Ph::SHAKE128,
|
||||
"SHAKE-256" => Ph::SHAKE256,
|
||||
_ => { unsupported_alg += 1; continue; }
|
||||
};
|
||||
let msg = hexb(t["message"].as_str().unwrap());
|
||||
let ctx = hexb(t["context"].as_str().unwrap_or(""));
|
||||
let pk_b = hexb(t["pk"].as_str().unwrap());
|
||||
let mut pk_arr = [0u8; 32];
|
||||
pk_arr.copy_from_slice(&pk_b);
|
||||
let mut sig_bytes = [0u8; 7856];
|
||||
sig_bytes.copy_from_slice(&sig_v);
|
||||
let got = PK128s::try_from_bytes(&pk_arr).unwrap().hash_verify(&msg, &sig_bytes, &ctx, &ph);
|
||||
assert_eq!(
|
||||
got, expected,
|
||||
"tcId {} ({}): deployed prehash verdict {} != NIST {}",
|
||||
t["tcId"], t["reason"].as_str().unwrap_or(""), got, expected
|
||||
);
|
||||
checked += 1;
|
||||
}
|
||||
}
|
||||
assert_eq!(checked + wrong_len + unsupported_alg, 14, "unaccounted NIST prehash tests");
|
||||
assert!(checked > 0, "no prehash KAT was executable");
|
||||
println!(
|
||||
"deployed vs NIST ACVP 128s (prehash): {checked} executed, {wrong_len} wrong-length, \
|
||||
{unsupported_alg} skipped (hash function not implemented by this crate)"
|
||||
);
|
||||
}
|
||||
|
||||
/// RANDOMIZED DIFFERENTIAL BRIDGE. The original bridge was nine assertion
|
||||
/// points: three rounds from one fixed seed, corrupting one fixed byte
|
||||
/// (index 100) of a 7856-byte signature. This walks many seeds and spreads
|
||||
/// corruption across the WHOLE signature, and adds wrong-key and
|
||||
/// wrong-context cases the original never exercised. Every point asserts
|
||||
/// mono and deployed agree — that is the bridge — and that forgeries are
|
||||
/// rejected.
|
||||
#[test]
|
||||
fn mono_matches_deployed_randomized() {
|
||||
let mut rng = ChaCha8Rng::seed_from_u64(0x5EED_0F15u64);
|
||||
let mut points = 0usize;
|
||||
for round in 0u32..12 {
|
||||
let (pk, sk) = KG::try_keygen_with_rng(&mut rng).unwrap();
|
||||
let (pk_other, _) = KG::try_keygen_with_rng(&mut rng).unwrap();
|
||||
// vary message length, including empty
|
||||
let mlen = (round as usize * 7) % 23;
|
||||
let msg: Vec<u8> = (0..mlen).map(|i| (i as u8).wrapping_mul(31).wrapping_add(round as u8)).collect();
|
||||
let sig_bytes = sk.try_sign_with_rng(&mut rng, &msg, &[], false).unwrap();
|
||||
|
||||
let mut mprime = vec![0u8, 0u8];
|
||||
mprime.extend_from_slice(&msg);
|
||||
let (ipk, sig) = internal_inputs(&pk, &sig_bytes);
|
||||
|
||||
// valid
|
||||
let d = pk.verify(&msg, &sig_bytes, &[]);
|
||||
let m = slh_verify_128s(&mprime, &sig, &ipk);
|
||||
assert!(d, "deployed rejected a fresh valid signature");
|
||||
assert_eq!(m, d, "round {round}: mono != deployed on a valid signature");
|
||||
points += 1;
|
||||
|
||||
// corruption spread across the entire signature, not one fixed byte
|
||||
for k in 0..6 {
|
||||
let mut bad = sig_bytes;
|
||||
let idx = ((round as usize * 1237 + k * 1301) * 7 + 11) % bad.len();
|
||||
let bit = 1u8 << ((round as usize + k) % 8);
|
||||
bad[idx] ^= bit;
|
||||
let (_, bad_sig) = internal_inputs(&pk, &bad);
|
||||
let db = pk.verify(&msg, &bad, &[]);
|
||||
let mb = slh_verify_128s(&mprime, &bad_sig, &ipk);
|
||||
assert_eq!(mb, db, "round {round}: mono != deployed on corruption at byte {idx}");
|
||||
assert!(!mb, "round {round}: corrupted signature accepted (byte {idx})");
|
||||
points += 1;
|
||||
}
|
||||
|
||||
// wrong public key — never exercised before
|
||||
let (ipk_other, _) = internal_inputs(&pk_other, &sig_bytes);
|
||||
let dk = pk_other.verify(&msg, &sig_bytes, &[]);
|
||||
let mk = slh_verify_128s(&mprime, &sig, &ipk_other);
|
||||
assert_eq!(mk, dk, "round {round}: mono != deployed under a wrong public key");
|
||||
assert!(!mk, "round {round}: signature verified under the wrong public key");
|
||||
points += 1;
|
||||
|
||||
// wrong context: deployed is given a non-empty ctx while the
|
||||
// signature was made over the empty one; M' changes accordingly.
|
||||
let ctx = [round as u8, 0xAA];
|
||||
let mut mprime_ctx = vec![0u8, ctx.len() as u8];
|
||||
mprime_ctx.extend_from_slice(&ctx);
|
||||
mprime_ctx.extend_from_slice(&msg);
|
||||
let dc = pk.verify(&msg, &sig_bytes, &ctx);
|
||||
let mc = slh_verify_128s(&mprime_ctx, &sig, &ipk);
|
||||
assert_eq!(mc, dc, "round {round}: mono != deployed under a wrong context");
|
||||
assert!(!mc, "round {round}: signature verified under the wrong context");
|
||||
points += 1;
|
||||
}
|
||||
assert!(points >= 100, "expected >=100 differential points, got {points}");
|
||||
println!("randomized differential bridge: {points} assertion points");
|
||||
}
|
||||
}
|
||||
|
|
|
|||
File diff suppressed because one or more lines are too long
Loading…
Reference in a new issue