fips205-source/src/fors.rs

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Rust
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2024-02-09 22:31:05 +00:00
use crate::hashers::Hashers;
use crate::helpers;
use crate::types::{Adrs, ForsPk, ForsSig, FORS_PRF, FORS_ROOTS};
use generic_array::{ArrayLength, GenericArray};
/// Algorithm 13: `fors_SKgen(SK.seed, PK.seed, ADRS, idx)` on page 29.
/// Generate a FORS private-key value.
///
/// Input: Secret seed `SK.seed`, public seed `PK.seed`, address `ADRS`, secret key index `idx`. <br>
/// Output: n-byte FORS private-key value.
#[allow(clippy::similar_names)] // sk_seed and pk_seed
pub(crate) fn fors_sk_gen<K: ArrayLength, LEN: ArrayLength, M: ArrayLength, N: ArrayLength>(
hashers: &Hashers<K, LEN, M, N>, sk_seed: &[u8], pk_seed: &[u8], adrs: &Adrs, idx: u32,
) -> GenericArray<u8, N> {
// 1: skADRS ← ADRS ▷ Copy address to create key generation address
let mut sk_adrs = adrs.clone();
// 2: skADRS.setTypeAndClear(FORS_PRF)
sk_adrs.set_type_and_clear(FORS_PRF);
// 3: skADRS.setKeyPairAddress(ADRS.getKeyPairAddress())
sk_adrs.set_key_pair_address(adrs.get_key_pair_address());
// 4: skADRS.setTreeIndex(idx)
sk_adrs.set_tree_index(idx);
// 5: return PRF(PK.seed, SK.seed, skADRS)
(hashers.prf)(pk_seed, sk_seed, &sk_adrs)
}
/// Algorithm 14: `fors_node(SK.seed, i, z, PK.seed, ADRS)` on page 30.
/// Compute the root of a Merkle subtree of FORS public values.
///
/// Input: Secret seed `SK.seed`, target node index `i`, target node height `z`, public seed `PK.seed`,
/// address `ADRS`. <br>
/// Output: n-byte root node.
#[allow(clippy::similar_names)] // sk_seed and pk_seed
pub(crate) fn fors_node<
A: ArrayLength,
K: ArrayLength,
LEN: ArrayLength,
M: ArrayLength,
N: ArrayLength,
>(
hashers: &Hashers<K, LEN, M, N>, sk_seed: &[u8], i: u32, z: u32, pk_seed: &[u8], adrs: &Adrs,
) -> Result<GenericArray<u8, N>, &'static str> {
let mut adrs = adrs.clone();
// 1: if z > a or i ≥ k · 2^(az) then
if (z > A::to_u32()) | (i > K::to_u32() * 2u32.pow(A::to_u32() - z)) {
//
// 2: return NULL
return Err("Alg14 fails");
// 3: end if
}
// 4: if z = 0 then
let node = if z == 0 {
//
// 5: sk ← fors_SKgen(SK.seed, PK.seed, ADRS, i)
let sk: GenericArray<u8, N> = fors_sk_gen(hashers, sk_seed, pk_seed, &adrs, i);
// 6: ADRS.setTreeHeight(0)
adrs.set_tree_height(0);
// 7: ADRS.setTreeIndex(i)
adrs.set_tree_index(i);
// 8: node ← F(PK.seed, ADRS, sk)
(hashers.f)(pk_seed, &adrs, &sk)
// 9: else
} else {
//
// 10: lnode ← fors_node(SK.seed, 2i, z 1, PK.seed, ADRS)
let lnode = fors_node::<A, K, LEN, M, N>(hashers, sk_seed, 2 * i, z - 1, pk_seed, &adrs)?;
// 11: rnode ← fors_node(SK.seed, 2i + 1, z 1, PK.seed, ADRS)
let rnode =
fors_node::<A, K, LEN, M, N>(hashers, sk_seed, 2 * i + 1, z - 1, pk_seed, &adrs)?;
// 12: ADRS.setTreeHeight(z)
adrs.set_tree_height(z);
// 13: ADRS.setTreeIndex(i)
adrs.set_tree_index(i);
// 14: node ← H(PK.seed, ADRS, lnode ∥ rnode)
(hashers.h)(pk_seed, &adrs, &lnode, &rnode)
// 15: end if
};
// 16: return node
Ok(node)
}
/// Algorithm 15: `fors_sign(md, SK.seed, PK.seed, ADRS)`
/// Generate a FORS signature.
///
/// Input: Message digest `md`, secret seed `SK.seed`, address `ADRS`, public seed `PK.seed`. <br>
/// Output: FORS signature `SIG_FORS`.
#[allow(clippy::similar_names)] // sk_seed and pk_seed
pub(crate) fn fors_sign<
A: ArrayLength,
K: ArrayLength,
LEN: ArrayLength,
M: ArrayLength,
N: ArrayLength,
>(
hashers: &Hashers<K, LEN, M, N>, md: &[u8], sk_seed: &[u8], adrs: &Adrs, pk_seed: &[u8],
) -> Result<ForsSig<A, K, N>, &'static str> {
// 1: SIG_FORS = NULL ▷ Initialize SIG_FORS as a zero-length byte string
let mut sig_fors = ForsSig::default();
// 2: indices ← base_2^b(md, a, k)
let mut indices: GenericArray<u32, K> = GenericArray::default();
helpers::base_2b(md, A::to_u32(), K::to_u32(), &mut indices);
// 3: for i from 0 to k 1 do ▷ Compute signature elements
#[allow(clippy::cast_possible_truncation)]
for i in 0..K::to_u32() {
//
// 4: SIG_FORS ← SIG_FORS ∥ fors_SKgen(SK.seed, PK.seed, ADRS, i · 2^a + indices[i])
sig_fors.private_key_value[i as usize] = fors_sk_gen::<K, LEN, M, N>(
hashers,
sk_seed,
pk_seed,
adrs,
i * 2u32.pow(A::to_u32()) + indices[i as usize],
);
// 5:
// 6: for j from 0 to a 1 do ▷ Compute auth path
for j in 0..A::to_u32() {
//
// 7: s ← indices[i]/2^j xor 1
let s = (indices[i as usize] >> j) ^ 1;
// 8: AUTH[j] ← fors_node(SK.seed, i · 2^{aj} + s, j, PK.seed, ADRS)
sig_fors.auth[i as usize].tree[j as usize] = fors_node::<A, K, LEN, M, N>(
hashers,
sk_seed,
i * 2u32.pow(A::to_u32() - j) + s,
j,
pk_seed,
adrs,
)?;
// 9: end for
}
// 10: SIG_FORS ← SIG_FORS ∥ AUTH
// built within inner loop above
// 11: end for
}
// 12: return SIG_FORS
Ok(sig_fors)
}
/// Algorithm 16: `fors_pkFromSig(SIG_FORS, md, PK.seed, ADRS)` on page 32.
/// Compute a FORS public key from a FORS signature.
///
/// Input: FORS signature `SIG_FORS`, message digest `md`, public seed `PK.seed`, address `ADRS`. <br>
/// Output: FORS public key.
pub(crate) fn fors_pk_from_sig<
A: ArrayLength,
K: ArrayLength,
LEN: ArrayLength,
M: ArrayLength,
N: ArrayLength,
>(
hashers: &Hashers<K, LEN, M, N>, sig_fors: &ForsSig<A, K, N>, md: &[u8], pk_seed: &[u8],
adrs: &Adrs,
) -> ForsPk<N> {
let mut adrs = adrs.clone();
// 1: indices ← base_2^b(md, a, k)
let mut indices: GenericArray<u32, K> = GenericArray::default();
helpers::base_2b(md, A::to_u32(), K::to_u32(), &mut indices);
// 2: for i from 0 to k 1 do
let mut root: GenericArray<GenericArray<u8, N>, K> = GenericArray::default();
#[allow(clippy::cast_possible_truncation)] // Step 5
for i in 0..K::to_u32() {
//
// 3: sk ← SIG_FORS.getSK(i) ▷ SIG_FORS [i · (a + 1) · n : (i · (a + 1) + 1) · n]
let sk = sig_fors.private_key_value[i as usize].clone();
// 4: ADRS.setTreeHeight(0) ▷ Compute leaf
adrs.set_tree_height(0);
// 5: ADRS.setTreeIndex(i · 2^a + indices[i])
adrs.set_tree_index(i * 2u32.pow(A::to_u32()) + indices[i as usize]);
// 6: node[0] ← F(PK.seed, ADRS, sk)
let mut node_0 = (hashers.f)(pk_seed, &adrs, &sk);
// 7:
// 8: auth ← SIGFORS.getAUTH(i) ▷ SIGFORS [(i · (a + 1) + 1) · n : (i + 1) · (a + 1) · n]
let auth = sig_fors.auth[i as usize].clone();
// 9: for j from 0 to a 1 do ▷ Compute root from leaf and AUTH
for j in 0..A::to_u32() {
//
// 10: ADRS.setTreeHeight(j + 1)
adrs.set_tree_height(j + 1);
// 11: if indices[i]/2^j is even then
let node_1 = if ((indices[i as usize] >> j) % 2) == 0 {
//
// 12: ADRS.setTreeIndex(ADRS.getTreeIndex()/2)
let tmp = adrs.get_tree_index() / 2;
adrs.set_tree_index(tmp);
// 13: node[1] ← H(PK.seed, ADRS, node[0] ∥ auth[j])
(hashers.h)(pk_seed, &adrs, &node_0, &auth.tree[j as usize])
// 14: else
} else {
//
// 15: ADRS.setTreeIndex((ADRS.getTreeIndex() 1)/2)
let tmp = (adrs.get_tree_index() - 1) / 2;
adrs.set_tree_index(tmp);
// 16: node[1] ← H(PK.seed, ADRS, auth[j] ∥ node[0])
(hashers.h)(pk_seed, &adrs, &auth.tree[j as usize], &node_0)
// 17: end if
};
// 18: node[0] ← node[1]
node_0 = node_1;
// 19: end for
}
// 20: root[i] ← node[0]
root[i as usize] = node_0;
// 21: end for
}
// 22: forspkADRS ← ADRS ▷ Compute the FORS public key from the Merkle tree roots
let mut fors_pk_adrs = adrs.clone();
// 23: forspkADRS.setTypeAndClear(FORS_ROOTS)
fors_pk_adrs.set_type_and_clear(FORS_ROOTS);
// 24: forspkADRS.setKeyPairAddress(ADRS.getKeyPairAddress())
fors_pk_adrs.set_key_pair_address(adrs.get_key_pair_address());
// 25: pk ← Tk(PK.seed, forspkADRS, root)
let pk = (hashers.t_len)(pk_seed, &fors_pk_adrs, &root);
// 26: return pk;
ForsPk { key: pk }
}