use core::fmt;
#[allow(clippy::unreadable_literal)]
const H256: [u32; 8] = [
0x6a09e667, 0xbb67ae85, 0x3c6ef372, 0xa54ff53a, 0x510e527f, 0x9b05688c, 0x1f83d9ab, 0x5be0cd19,
];
#[allow(clippy::unreadable_literal)]
const K256: [u32; 64] = [
0x428a2f98, 0x71374491, 0xb5c0fbcf, 0xe9b5dba5, 0x3956c25b, 0x59f111f1, 0x923f82a4, 0xab1c5ed5,
0xd807aa98, 0x12835b01, 0x243185be, 0x550c7dc3, 0x72be5d74, 0x80deb1fe, 0x9bdc06a7, 0xc19bf174,
0xe49b69c1, 0xefbe4786, 0x0fc19dc6, 0x240ca1cc, 0x2de92c6f, 0x4a7484aa, 0x5cb0a9dc, 0x76f988da,
0x983e5152, 0xa831c66d, 0xb00327c8, 0xbf597fc7, 0xc6e00bf3, 0xd5a79147, 0x06ca6351, 0x14292967,
0x27b70a85, 0x2e1b2138, 0x4d2c6dfc, 0x53380d13, 0x650a7354, 0x766a0abb, 0x81c2c92e, 0x92722c85,
0xa2bfe8a1, 0xa81a664b, 0xc24b8b70, 0xc76c51a3, 0xd192e819, 0xd6990624, 0xf40e3585, 0x106aa070,
0x19a4c116, 0x1e376c08, 0x2748774c, 0x34b0bcb5, 0x391c0cb3, 0x4ed8aa4a, 0x5b9cca4f, 0x682e6ff3,
0x748f82ee, 0x78a5636f, 0x84c87814, 0x8cc70208, 0x90befffa, 0xa4506ceb, 0xbef9a3f7, 0xc67178f2,
];
#[allow(clippy::unreadable_literal)]
const H512: [u64; 8] = [
0x6a09e667f3bcc908,
0xbb67ae8584caa73b,
0x3c6ef372fe94f82b,
0xa54ff53a5f1d36f1,
0x510e527fade682d1,
0x9b05688c2b3e6c1f,
0x1f83d9abfb41bd6b,
0x5be0cd19137e2179,
];
#[allow(clippy::unreadable_literal)]
const K512: [u64; 80] = [
0x428a2f98d728ae22,
0x7137449123ef65cd,
0xb5c0fbcfec4d3b2f,
0xe9b5dba58189dbbc,
0x3956c25bf348b538,
0x59f111f1b605d019,
0x923f82a4af194f9b,
0xab1c5ed5da6d8118,
0xd807aa98a3030242,
0x12835b0145706fbe,
0x243185be4ee4b28c,
0x550c7dc3d5ffb4e2,
0x72be5d74f27b896f,
0x80deb1fe3b1696b1,
0x9bdc06a725c71235,
0xc19bf174cf692694,
0xe49b69c19ef14ad2,
0xefbe4786384f25e3,
0x0fc19dc68b8cd5b5,
0x240ca1cc77ac9c65,
0x2de92c6f592b0275,
0x4a7484aa6ea6e483,
0x5cb0a9dcbd41fbd4,
0x76f988da831153b5,
0x983e5152ee66dfab,
0xa831c66d2db43210,
0xb00327c898fb213f,
0xbf597fc7beef0ee4,
0xc6e00bf33da88fc2,
0xd5a79147930aa725,
0x06ca6351e003826f,
0x142929670a0e6e70,
0x27b70a8546d22ffc,
0x2e1b21385c26c926,
0x4d2c6dfc5ac42aed,
0x53380d139d95b3df,
0x650a73548baf63de,
0x766a0abb3c77b2a8,
0x81c2c92e47edaee6,
0x92722c851482353b,
0xa2bfe8a14cf10364,
0xa81a664bbc423001,
0xc24b8b70d0f89791,
0xc76c51a30654be30,
0xd192e819d6ef5218,
0xd69906245565a910,
0xf40e35855771202a,
0x106aa07032bbd1b8,
0x19a4c116b8d2d0c8,
0x1e376c085141ab53,
0x2748774cdf8eeb99,
0x34b0bcb5e19b48a8,
0x391c0cb3c5c95a63,
0x4ed8aa4ae3418acb,
0x5b9cca4f7763e373,
0x682e6ff3d6b2b8a3,
0x748f82ee5defb2fc,
0x78a5636f43172f60,
0x84c87814a1f0ab72,
0x8cc702081a6439ec,
0x90befffa23631e28,
0xa4506cebde82bde9,
0xbef9a3f7b2c67915,
0xc67178f2e372532b,
0xca273eceea26619c,
0xd186b8c721c0c207,
0xeada7dd6cde0eb1e,
0xf57d4f7fee6ed178,
0x06f067aa72176fba,
0x0a637dc5a2c898a6,
0x113f9804bef90dae,
0x1b710b35131c471b,
0x28db77f523047d84,
0x32caab7b40c72493,
0x3c9ebe0a15c9bebc,
0x431d67c49c100d4c,
0x4cc5d4becb3e42b6,
0x597f299cfc657e2a,
0x5fcb6fab3ad6faec,
0x6c44198c4a475817,
];
#[inline]
const fn ch32(x: u32, y: u32, z: u32) -> u32 {
(x & y) ^ (!x & z)
}
#[inline]
const fn maj32(x: u32, y: u32, z: u32) -> u32 {
(x & y) ^ (x & z) ^ (y & z)
}
#[inline]
const fn big_sigma0_32(x: u32) -> u32 {
x.rotate_right(2) ^ x.rotate_right(13) ^ x.rotate_right(22)
}
#[inline]
const fn big_sigma1_32(x: u32) -> u32 {
x.rotate_right(6) ^ x.rotate_right(11) ^ x.rotate_right(25)
}
#[inline]
const fn small_sigma0_32(x: u32) -> u32 {
x.rotate_right(7) ^ x.rotate_right(18) ^ (x >> 3)
}
#[inline]
const fn small_sigma1_32(x: u32) -> u32 {
x.rotate_right(17) ^ x.rotate_right(19) ^ (x >> 10)
}
#[inline]
const fn ch64(x: u64, y: u64, z: u64) -> u64 {
(x & y) ^ (!x & z)
}
#[inline]
const fn maj64(x: u64, y: u64, z: u64) -> u64 {
(x & y) ^ (x & z) ^ (y & z)
}
#[inline]
const fn big_sigma0_64(x: u64) -> u64 {
x.rotate_right(28) ^ x.rotate_right(34) ^ x.rotate_right(39)
}
#[inline]
const fn big_sigma1_64(x: u64) -> u64 {
x.rotate_right(14) ^ x.rotate_right(18) ^ x.rotate_right(41)
}
#[inline]
const fn small_sigma0_64(x: u64) -> u64 {
x.rotate_right(1) ^ x.rotate_right(8) ^ (x >> 7)
}
#[inline]
const fn small_sigma1_64(x: u64) -> u64 {
x.rotate_right(19) ^ x.rotate_right(61) ^ (x >> 6)
}
#[derive(Clone)]
pub struct Sha256 {
state: [u32; 8],
buffer: [u8; 64],
buf_len: usize,
total_len: u64,
}
impl Sha256 {
#[must_use]
pub fn new() -> Self {
Self {
state: H256,
buffer: [0u8; 64],
buf_len: 0,
total_len: 0,
}
}
#[allow(clippy::missing_panics_doc)]
pub fn update(&mut self, data: &[u8]) {
self.total_len = self.total_len.wrapping_add(data.len() as u64);
let mut offset = 0;
if self.buf_len > 0 {
let need = 64 - self.buf_len;
let take = need.min(data.len());
self.buffer[self.buf_len..self.buf_len + take].copy_from_slice(&data[..take]);
self.buf_len += take;
offset = take;
if self.buf_len == 64 {
let block: [u8; 64] = self.buffer;
Self::compress(&mut self.state, &block);
self.buf_len = 0;
} else {
return;
}
}
while offset + 64 <= data.len() {
let block: [u8; 64] = data[offset..offset + 64].try_into().unwrap();
Self::compress(&mut self.state, &block);
offset += 64;
}
let remaining = data.len() - offset;
if remaining > 0 {
self.buffer[..remaining].copy_from_slice(&data[offset..]);
self.buf_len = remaining;
}
}
#[must_use]
pub fn finalize(mut self) -> [u8; 32] {
let bit_len = self.total_len.wrapping_mul(8);
self.buffer[self.buf_len] = 0x80;
self.buf_len += 1;
if self.buf_len > 56 {
self.buffer[self.buf_len..64].fill(0);
let block: [u8; 64] = self.buffer;
Self::compress(&mut self.state, &block);
self.buf_len = 0;
}
self.buffer[self.buf_len..56].fill(0);
self.buffer[56..64].copy_from_slice(&bit_len.to_be_bytes());
let block: [u8; 64] = self.buffer;
Self::compress(&mut self.state, &block);
let mut out = [0u8; 32];
for (i, word) in self.state.iter().enumerate() {
out[i * 4..(i + 1) * 4].copy_from_slice(&word.to_be_bytes());
}
out
}
#[must_use]
#[inline]
pub fn digest(data: &[u8]) -> [u8; 32] {
let mut hasher = Self::new();
hasher.update(data);
hasher.finalize()
}
#[allow(clippy::many_single_char_names, unsafe_code)]
fn compress(state: &mut [u32; 8], block: &[u8; 64]) {
let mut w = [0u32; 64];
for i in 0..16 {
w[i] = u32::from_be_bytes(block[i * 4..(i + 1) * 4].try_into().unwrap());
}
for i in 16..64 {
w[i] = small_sigma1_32(w[i - 2])
.wrapping_add(w[i - 7])
.wrapping_add(small_sigma0_32(w[i - 15]))
.wrapping_add(w[i - 16]);
}
let [mut a, mut b, mut c, mut d, mut e, mut f, mut g, mut h] = *state;
for i in 0..64 {
let t1 = h
.wrapping_add(big_sigma1_32(e))
.wrapping_add(ch32(e, f, g))
.wrapping_add(K256[i])
.wrapping_add(w[i]);
let t2 = big_sigma0_32(a).wrapping_add(maj32(a, b, c));
h = g;
g = f;
f = e;
e = d.wrapping_add(t1);
d = c;
c = b;
b = a;
a = t1.wrapping_add(t2);
}
state[0] = state[0].wrapping_add(a);
state[1] = state[1].wrapping_add(b);
state[2] = state[2].wrapping_add(c);
state[3] = state[3].wrapping_add(d);
state[4] = state[4].wrapping_add(e);
state[5] = state[5].wrapping_add(f);
state[6] = state[6].wrapping_add(g);
state[7] = state[7].wrapping_add(h);
zeroize_u32_slice(&mut w);
for v in [
&mut a, &mut b, &mut c, &mut d, &mut e, &mut f, &mut g, &mut h,
] {
unsafe { core::ptr::write_volatile(v, 0) };
}
}
}
#[allow(unsafe_code)]
fn zeroize_u32_slice(buf: &mut [u32]) {
for word in buf.iter_mut() {
unsafe { core::ptr::write_volatile(word, 0) };
}
}
#[allow(unsafe_code)]
fn zeroize_u64_slice(buf: &mut [u64]) {
for word in buf.iter_mut() {
unsafe { core::ptr::write_volatile(word, 0) };
}
}
impl fmt::Debug for Sha256 {
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
f.debug_struct("Sha256")
.field("total_len", &self.total_len)
.finish_non_exhaustive()
}
}
impl Drop for Sha256 {
#[allow(unsafe_code)]
fn drop(&mut self) {
for word in &mut self.state {
unsafe { core::ptr::write_volatile(word, 0) };
}
crate::crypto::zeroize::zeroize(&mut self.buffer);
}
}
impl Default for Sha256 {
fn default() -> Self {
Self::new()
}
}
#[derive(Clone)]
pub struct Sha512 {
state: [u64; 8],
buffer: [u8; 128],
buf_len: usize,
total_len: u128,
}
impl Sha512 {
#[must_use]
pub fn new() -> Self {
Self {
state: H512,
buffer: [0u8; 128],
buf_len: 0,
total_len: 0,
}
}
#[allow(clippy::missing_panics_doc)]
pub fn update(&mut self, data: &[u8]) {
self.total_len = self.total_len.wrapping_add(data.len() as u128);
let mut offset = 0;
if self.buf_len > 0 {
let need = 128 - self.buf_len;
let take = need.min(data.len());
self.buffer[self.buf_len..self.buf_len + take].copy_from_slice(&data[..take]);
self.buf_len += take;
offset = take;
if self.buf_len == 128 {
let block: [u8; 128] = self.buffer;
Self::compress(&mut self.state, &block);
self.buf_len = 0;
} else {
return;
}
}
while offset + 128 <= data.len() {
let block: [u8; 128] = data[offset..offset + 128].try_into().unwrap();
Self::compress(&mut self.state, &block);
offset += 128;
}
let remaining = data.len() - offset;
if remaining > 0 {
self.buffer[..remaining].copy_from_slice(&data[offset..]);
self.buf_len = remaining;
}
}
#[must_use]
pub fn finalize(mut self) -> [u8; 64] {
let bit_len = self.total_len.wrapping_mul(8);
self.buffer[self.buf_len] = 0x80;
self.buf_len += 1;
if self.buf_len > 112 {
self.buffer[self.buf_len..128].fill(0);
let block: [u8; 128] = self.buffer;
Self::compress(&mut self.state, &block);
self.buf_len = 0;
}
self.buffer[self.buf_len..112].fill(0);
self.buffer[112..128].copy_from_slice(&bit_len.to_be_bytes());
let block: [u8; 128] = self.buffer;
Self::compress(&mut self.state, &block);
let mut out = [0u8; 64];
for (i, word) in self.state.iter().enumerate() {
out[i * 8..(i + 1) * 8].copy_from_slice(&word.to_be_bytes());
}
out
}
#[must_use]
#[inline]
pub fn digest(data: &[u8]) -> [u8; 64] {
let mut hasher = Self::new();
hasher.update(data);
hasher.finalize()
}
#[allow(clippy::many_single_char_names, unsafe_code)]
fn compress(state: &mut [u64; 8], block: &[u8; 128]) {
let mut w = [0u64; 80];
for i in 0..16 {
w[i] = u64::from_be_bytes(block[i * 8..(i + 1) * 8].try_into().unwrap());
}
for i in 16..80 {
w[i] = small_sigma1_64(w[i - 2])
.wrapping_add(w[i - 7])
.wrapping_add(small_sigma0_64(w[i - 15]))
.wrapping_add(w[i - 16]);
}
let [mut a, mut b, mut c, mut d, mut e, mut f, mut g, mut h] = *state;
for i in 0..80 {
let t1 = h
.wrapping_add(big_sigma1_64(e))
.wrapping_add(ch64(e, f, g))
.wrapping_add(K512[i])
.wrapping_add(w[i]);
let t2 = big_sigma0_64(a).wrapping_add(maj64(a, b, c));
h = g;
g = f;
f = e;
e = d.wrapping_add(t1);
d = c;
c = b;
b = a;
a = t1.wrapping_add(t2);
}
state[0] = state[0].wrapping_add(a);
state[1] = state[1].wrapping_add(b);
state[2] = state[2].wrapping_add(c);
state[3] = state[3].wrapping_add(d);
state[4] = state[4].wrapping_add(e);
state[5] = state[5].wrapping_add(f);
state[6] = state[6].wrapping_add(g);
state[7] = state[7].wrapping_add(h);
zeroize_u64_slice(&mut w);
for v in [
&mut a, &mut b, &mut c, &mut d, &mut e, &mut f, &mut g, &mut h,
] {
unsafe { core::ptr::write_volatile(v, 0) };
}
}
}
impl fmt::Debug for Sha512 {
fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
f.debug_struct("Sha512")
.field("total_len", &self.total_len)
.finish_non_exhaustive()
}
}
impl Drop for Sha512 {
#[allow(unsafe_code)]
fn drop(&mut self) {
for word in &mut self.state {
unsafe { core::ptr::write_volatile(word, 0) };
}
crate::crypto::zeroize::zeroize(&mut self.buffer);
}
}
impl Default for Sha512 {
fn default() -> Self {
Self::new()
}
}
#[cfg(test)]
mod tests {
use super::*;
use crate::encoding::hex_encode;
#[test]
fn sha256_empty() {
let digest = Sha256::digest(b"");
assert_eq!(
hex_encode(&digest),
"e3b0c44298fc1c149afbf4c8996fb92427ae41e4649b934ca495991b7852b855",
);
}
#[test]
fn sha256_abc() {
let digest = Sha256::digest(b"abc");
assert_eq!(
hex_encode(&digest),
"ba7816bf8f01cfea414140de5dae2223b00361a396177a9cb410ff61f20015ad",
);
}
#[test]
fn sha256_448_bits() {
let msg = b"abcdbcdecdefdefgefghfghighijhijkijkljklmklmnlmnomnopnopq";
assert_eq!(msg.len(), 56);
let digest = Sha256::digest(msg);
assert_eq!(
hex_encode(&digest),
"248d6a61d20638b8e5c026930c3e6039a33ce45964ff2167f6ecedd419db06c1",
);
}
#[test]
fn sha256_896_bits() {
let msg = b"abcdefghbcdefghicdefghijdefghijkefghijklfghijklmghijklmnhijklmnoijklmnopjklmnopqklmnopqrlmnopqrsmnopqrstnopqrstu";
assert_eq!(msg.len(), 112);
let digest = Sha256::digest(msg);
assert_eq!(
hex_encode(&digest),
"cf5b16a778af8380036ce59e7b0492370b249b11e8f07a51afac45037afee9d1",
);
}
#[test]
fn sha256_one_million_a() {
let digest = Sha256::digest(&vec![b'a'; 1_000_000]);
assert_eq!(
hex_encode(&digest),
"cdc76e5c9914fb9281a1c7e284d73e67f1809a48a497200e046d39ccc7112cd0",
);
}
#[test]
fn sha256_incremental_split() {
let mut hasher = Sha256::new();
hasher.update(b"a");
hasher.update(b"bc");
assert_eq!(
hex_encode(&hasher.finalize()),
"ba7816bf8f01cfea414140de5dae2223b00361a396177a9cb410ff61f20015ad",
);
}
#[test]
fn sha256_single_byte_updates() {
let mut hasher = Sha256::new();
for &byte in b"abc" {
hasher.update(&[byte]);
}
assert_eq!(
hex_encode(&hasher.finalize()),
"ba7816bf8f01cfea414140de5dae2223b00361a396177a9cb410ff61f20015ad",
);
}
#[test]
fn sha256_incremental_two_block_message() {
let msg = b"abcdefghbcdefghicdefghijdefghijkefghijklfghijklmghijklmnhijklmnoijklmnopjklmnopqklmnopqrlmnopqrsmnopqrstnopqrstu";
let mut hasher = Sha256::new();
hasher.update(&msg[..70]);
hasher.update(&msg[70..]);
assert_eq!(
hex_encode(&hasher.finalize()),
"cf5b16a778af8380036ce59e7b0492370b249b11e8f07a51afac45037afee9d1",
);
}
#[test]
fn sha256_default_trait() {
let a = Sha256::new().finalize();
let b = Sha256::default().finalize();
assert_eq!(a, b);
}
#[test]
fn sha512_empty() {
let digest = Sha512::digest(b"");
assert_eq!(
hex_encode(&digest),
"cf83e1357eefb8bdf1542850d66d8007d620e4050b5715dc83f4a921d36ce9ce\
47d0d13c5d85f2b0ff8318d2877eec2f63b931bd47417a81a538327af927da3e",
);
}
#[test]
fn sha512_abc() {
let digest = Sha512::digest(b"abc");
assert_eq!(
hex_encode(&digest),
"ddaf35a193617abacc417349ae20413112e6fa4e89a97ea20a9eeee64b55d39a\
2192992a274fc1a836ba3c23a3feebbd454d4423643ce80e2a9ac94fa54ca49f",
);
}
#[test]
fn sha512_two_block() {
let msg = b"abcdefghbcdefghicdefghijdefghijkefghijklfghijklmghijklmnhijklmnoijklmnopjklmnopqklmnopqrlmnopqrsmnopqrstnopqrstu";
let digest = Sha512::digest(msg);
assert_eq!(
hex_encode(&digest),
"8e959b75dae313da8cf4f72814fc143f8f7779c6eb9f7fa17299aeadb6889018\
501d289e4900f7e4331b99dec4b5433ac7d329eeb6dd26545e96e55b874be909",
);
}
#[test]
fn sha512_incremental_split() {
let mut hasher = Sha512::new();
hasher.update(b"a");
hasher.update(b"bc");
assert_eq!(
hex_encode(&hasher.finalize()),
"ddaf35a193617abacc417349ae20413112e6fa4e89a97ea20a9eeee64b55d39a\
2192992a274fc1a836ba3c23a3feebbd454d4423643ce80e2a9ac94fa54ca49f",
);
}
#[test]
fn sha512_single_byte_updates() {
let mut hasher = Sha512::new();
for &byte in b"abc" {
hasher.update(&[byte]);
}
assert_eq!(
hex_encode(&hasher.finalize()),
"ddaf35a193617abacc417349ae20413112e6fa4e89a97ea20a9eeee64b55d39a\
2192992a274fc1a836ba3c23a3feebbd454d4423643ce80e2a9ac94fa54ca49f",
);
}
#[test]
fn sha512_default_trait() {
let a = Sha512::new().finalize();
let b = Sha512::default().finalize();
assert_eq!(a, b);
}
#[test]
fn sha256_debug_does_not_leak_state() {
let mut hasher = Sha256::new();
hasher.update(b"secret data that must not appear");
let debug = format!("{hasher:?}");
assert!(debug.contains("Sha256"), "should contain the type name");
assert!(
debug.contains("total_len"),
"should contain total_len field"
);
assert!(!debug.contains("state"), "must not expose state field");
assert!(!debug.contains("buffer"), "must not expose buffer field");
assert!(!debug.contains("buf_len"), "must not expose buf_len field");
assert!(
!debug.contains("6a09e667"),
"must not expose SHA-256 IV words"
);
}
#[test]
fn sha512_debug_does_not_leak_state() {
let mut hasher = Sha512::new();
hasher.update(b"secret data that must not appear");
let debug = format!("{hasher:?}");
assert!(debug.contains("Sha512"), "should contain the type name");
assert!(
debug.contains("total_len"),
"should contain total_len field"
);
assert!(!debug.contains("state"), "must not expose state field");
assert!(!debug.contains("buffer"), "must not expose buffer field");
assert!(!debug.contains("buf_len"), "must not expose buf_len field");
assert!(
!debug.contains("6a09e667f3bcc908"),
"must not expose SHA-512 IV words"
);
}
}