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gmcrypto_core/sm4/
cipher.rs

1//! SM4 block cipher (GB/T 32907-2016).
2//!
3//! 128-bit block, 128-bit key, 32 Feistel-like rounds.
4//!
5//! # Constant-time stance
6//!
7//! v0.2 W1 ships SM4 with a [`subtle`]-style linear-scan S-box —
8//! [`subtle::ConditionallySelectable::conditional_assign`] over all 256
9//! possible byte inputs per S-box invocation. This costs ~256× per
10//! lookup vs. an LUT-only implementation but keeps the cryptographic
11//! side-channel posture consistent with the rest of the crate. A
12//! bitsliced fast-path is deferred to v0.4 alongside the C-ABI / wasm
13//! work.
14//!
15//! Throughput on the linear-scan S-box is ~1-2M blocks/sec
16//! single-threaded on modern x86 (vs. ~150M for an LUT impl). Document
17//! this on every callsite that cares about throughput.
18//!
19//! # Single-shot API
20//!
21//! v0.2 ships single-shot block-level `encrypt_block` / `decrypt_block`
22//! only. Streaming `BlockCipher`-trait wiring lands in v0.3 alongside
23//! the broader trait generalization.
24//!
25//! # KAT sources
26//!
27//! GB/T 32907-2016 Appendix A.1, two KATs under
28//! key = plaintext = `01 23 45 67 89 ab cd ef fe dc ba 98 76 54 32 10`:
29//!
30//! - Single-block ciphertext:
31//!   `68 1e df 34 d2 06 96 5e 86 b3 e9 4f 53 6e 42 46`.
32//! - 1,000,000-round ciphertext (encrypt 1M times under the same key):
33//!   `59 52 98 c7 c6 fd 27 1f 04 02 f8 04 c3 3d 3f 66`.
34//!
35//! The 1M-round test is `#[ignore]`d by default — at debug-build
36//! linear-scan-S-box speeds it takes minutes. Run with
37//! `cargo test --release -- --ignored` before any release.
38
39#[cfg(not(feature = "sm4-bitsliced"))]
40use subtle::{ConditionallySelectable, ConstantTimeEq};
41use zeroize::{Zeroize, ZeroizeOnDrop};
42
43/// Block size in bytes (128 bits).
44pub const BLOCK_SIZE: usize = 16;
45
46/// Key size in bytes (128 bits).
47pub const KEY_SIZE: usize = 16;
48
49/// SM4 S-box (GB/T 32907-2016 §6.2).
50///
51/// `pub(crate)` so the `sm4::sbox_bitsliced` module (v0.4 W3) can
52/// reference it for the exhaustive bitsliced-vs-table equivalence
53/// test. Not part of the public API.
54///
55/// Under `--features sm4-bitsliced` the runtime path doesn't touch
56/// `S_BOX` (the bitsliced S-box is table-less); only the bitsliced-
57/// equivalence test in `sm4::sbox_bitsliced::tests` keeps a
58/// reference. `#[allow(dead_code)]` suppresses the dead-code warning
59/// on the non-test feature-on build path.
60#[cfg_attr(feature = "sm4-bitsliced", allow(dead_code))]
61#[rustfmt::skip]
62pub(crate) const S_BOX: [u8; 256] = [
63    0xd6, 0x90, 0xe9, 0xfe, 0xcc, 0xe1, 0x3d, 0xb7, 0x16, 0xb6, 0x14, 0xc2, 0x28, 0xfb, 0x2c, 0x05,
64    0x2b, 0x67, 0x9a, 0x76, 0x2a, 0xbe, 0x04, 0xc3, 0xaa, 0x44, 0x13, 0x26, 0x49, 0x86, 0x06, 0x99,
65    0x9c, 0x42, 0x50, 0xf4, 0x91, 0xef, 0x98, 0x7a, 0x33, 0x54, 0x0b, 0x43, 0xed, 0xcf, 0xac, 0x62,
66    0xe4, 0xb3, 0x1c, 0xa9, 0xc9, 0x08, 0xe8, 0x95, 0x80, 0xdf, 0x94, 0xfa, 0x75, 0x8f, 0x3f, 0xa6,
67    0x47, 0x07, 0xa7, 0xfc, 0xf3, 0x73, 0x17, 0xba, 0x83, 0x59, 0x3c, 0x19, 0xe6, 0x85, 0x4f, 0xa8,
68    0x68, 0x6b, 0x81, 0xb2, 0x71, 0x64, 0xda, 0x8b, 0xf8, 0xeb, 0x0f, 0x4b, 0x70, 0x56, 0x9d, 0x35,
69    0x1e, 0x24, 0x0e, 0x5e, 0x63, 0x58, 0xd1, 0xa2, 0x25, 0x22, 0x7c, 0x3b, 0x01, 0x21, 0x78, 0x87,
70    0xd4, 0x00, 0x46, 0x57, 0x9f, 0xd3, 0x27, 0x52, 0x4c, 0x36, 0x02, 0xe7, 0xa0, 0xc4, 0xc8, 0x9e,
71    0xea, 0xbf, 0x8a, 0xd2, 0x40, 0xc7, 0x38, 0xb5, 0xa3, 0xf7, 0xf2, 0xce, 0xf9, 0x61, 0x15, 0xa1,
72    0xe0, 0xae, 0x5d, 0xa4, 0x9b, 0x34, 0x1a, 0x55, 0xad, 0x93, 0x32, 0x30, 0xf5, 0x8c, 0xb1, 0xe3,
73    0x1d, 0xf6, 0xe2, 0x2e, 0x82, 0x66, 0xca, 0x60, 0xc0, 0x29, 0x23, 0xab, 0x0d, 0x53, 0x4e, 0x6f,
74    0xd5, 0xdb, 0x37, 0x45, 0xde, 0xfd, 0x8e, 0x2f, 0x03, 0xff, 0x6a, 0x72, 0x6d, 0x6c, 0x5b, 0x51,
75    0x8d, 0x1b, 0xaf, 0x92, 0xbb, 0xdd, 0xbc, 0x7f, 0x11, 0xd9, 0x5c, 0x41, 0x1f, 0x10, 0x5a, 0xd8,
76    0x0a, 0xc1, 0x31, 0x88, 0xa5, 0xcd, 0x7b, 0xbd, 0x2d, 0x74, 0xd0, 0x12, 0xb8, 0xe5, 0xb4, 0xb0,
77    0x89, 0x69, 0x97, 0x4a, 0x0c, 0x96, 0x77, 0x7e, 0x65, 0xb9, 0xf1, 0x09, 0xc5, 0x6e, 0xc6, 0x84,
78    0x18, 0xf0, 0x7d, 0xec, 0x3a, 0xdc, 0x4d, 0x20, 0x79, 0xee, 0x5f, 0x3e, 0xd7, 0xcb, 0x39, 0x48,
79];
80
81/// FK system parameter (GB/T 32907-2016 §7.3.1.1).
82const FK: [u32; 4] = [0xa3b1_bac6, 0x56aa_3350, 0x677d_9197, 0xb270_22dc];
83
84/// CK system parameter (GB/T 32907-2016 §7.3.1.2). Computed at compile
85/// time per the spec: `ck_{i,j} = (4i+j)·7 mod 256`. Cross-checks
86/// against the published values (e.g. `CK[0] = 0x00070e15`,
87/// `CK[31] = 0x646b7279`) sit in the test module below.
88const CK: [u32; 32] = {
89    let mut ck = [0u32; 32];
90    let mut i: u32 = 0;
91    while i < 32 {
92        let mut v: u32 = 0;
93        let mut j: u32 = 0;
94        while j < 4 {
95            let byte = (4 * i + j).wrapping_mul(7) & 0xff;
96            v = (v << 8) | byte;
97            j += 1;
98        }
99        ck[i as usize] = v;
100        i += 1;
101    }
102    ck
103};
104
105/// SM4 cipher with pre-computed round keys.
106///
107/// `Sm4Cipher` zeroizes its round-key buffer on drop via the workspace
108/// `zeroize` policy. Construction runs the key schedule (32 round keys
109/// × secret-key-touching S-box invocations); see the W1 dudect target
110/// `ct_sm4_key_schedule`.
111#[derive(Clone, Zeroize, ZeroizeOnDrop)]
112pub struct Sm4Cipher {
113    round_keys: [u32; 32],
114}
115
116impl Sm4Cipher {
117    /// Construct a cipher from a 128-bit key and run the key schedule.
118    #[must_use]
119    pub fn new(key: &[u8; KEY_SIZE]) -> Self {
120        let mk = [
121            u32::from_be_bytes([key[0], key[1], key[2], key[3]]),
122            u32::from_be_bytes([key[4], key[5], key[6], key[7]]),
123            u32::from_be_bytes([key[8], key[9], key[10], key[11]]),
124            u32::from_be_bytes([key[12], key[13], key[14], key[15]]),
125        ];
126
127        // K[0..3] = MK[0..3] XOR FK[0..3]; then 32 rounds expand to K[4..35].
128        // Sliding 4-word window matches the round-function loop in `crypt`.
129        let mut k = [mk[0] ^ FK[0], mk[1] ^ FK[1], mk[2] ^ FK[2], mk[3] ^ FK[3]];
130        let mut round_keys = [0u32; 32];
131        for i in 0..32 {
132            let t = k[1] ^ k[2] ^ k[3] ^ CK[i];
133            let new_k = k[0] ^ t_prime(t);
134            round_keys[i] = new_k;
135            k[0] = k[1];
136            k[1] = k[2];
137            k[2] = k[3];
138            k[3] = new_k;
139        }
140
141        // The intermediate `mk` and `k` arrays held secret material; wipe
142        // them before returning. (`round_keys` lives on in `self` and
143        // zeroizes via `ZeroizeOnDrop`.)
144        let mut mk = mk;
145        mk.zeroize();
146        k.zeroize();
147
148        Self { round_keys }
149    }
150
151    /// Encrypt one 16-byte block in place.
152    pub fn encrypt_block(&self, block: &mut [u8; BLOCK_SIZE]) {
153        crypt(block, &self.round_keys, false);
154    }
155
156    /// Decrypt one 16-byte block in place.
157    pub fn decrypt_block(&self, block: &mut [u8; BLOCK_SIZE]) {
158        crypt(block, &self.round_keys, true);
159    }
160
161    /// v0.6 W6 — Batched SIMD-packed CBC-decrypt path. Runs the SM4
162    /// decrypt round loop on `SIMD_BATCH` blocks in lockstep; the
163    /// per-round `tau` (4 byte S-box lookups per block) gets fanned
164    /// out across the full SIMD register width via
165    /// `gmcrypto_simd::sm4::sbox_x32` (x86_64 AVX2: 8 blocks × 4 =
166    /// 32 bytes packed in `__m256i`) or `sbox_x16` (aarch64 NEON:
167    /// 4 blocks × 4 = 16 bytes packed in `uint8x16_t`). On other
168    /// targets, `SIMD_BATCH = 1` and this falls back to a single
169    /// [`decrypt_block`] call.
170    ///
171    /// Only [`super::cbc_streaming::Sm4CbcDecryptor`] calls this;
172    /// the surface is `pub(super)` per Q5.10 ("no new public Rust
173    /// API").
174    ///
175    /// [`decrypt_block`]: Self::decrypt_block
176    #[cfg(all(feature = "sm4-bitsliced-simd", target_arch = "x86_64"))]
177    pub(super) fn decrypt_blocks_simd(&self, blocks: &mut [[u8; BLOCK_SIZE]; SIMD_BATCH]) {
178        crypt_batch_x8(blocks, &self.round_keys, true);
179    }
180
181    #[cfg(all(feature = "sm4-bitsliced-simd", target_arch = "aarch64"))]
182    pub(super) fn decrypt_blocks_simd(&self, blocks: &mut [[u8; BLOCK_SIZE]; SIMD_BATCH]) {
183        crypt_batch_x4(blocks, &self.round_keys, true);
184    }
185
186    #[cfg(all(
187        feature = "sm4-bitsliced-simd",
188        not(any(target_arch = "x86_64", target_arch = "aarch64"))
189    ))]
190    pub(super) fn decrypt_blocks_simd(&self, blocks: &mut [[u8; BLOCK_SIZE]; SIMD_BATCH]) {
191        // SIMD_BATCH = 1 on this arch; just delegate.
192        self.decrypt_block(&mut blocks[0]);
193    }
194}
195
196/// v0.6 W6 — compile-time batch size for [`Sm4Cipher::decrypt_blocks_simd`].
197///
198/// - 8 on x86_64 (AVX2 `__m256i` = 32 bytes = 8 blocks × 4 `tau` bytes).
199/// - 4 on aarch64 (NEON `uint8x16_t` = 16 bytes = 4 blocks × 4 `tau` bytes).
200/// - 1 elsewhere (`decrypt_blocks_simd` collapses to `decrypt_block`).
201#[cfg(all(feature = "sm4-bitsliced-simd", target_arch = "x86_64"))]
202pub(super) const SIMD_BATCH: usize = 8;
203
204#[cfg(all(feature = "sm4-bitsliced-simd", target_arch = "aarch64"))]
205pub(super) const SIMD_BATCH: usize = 4;
206
207#[cfg(all(
208    feature = "sm4-bitsliced-simd",
209    not(any(target_arch = "x86_64", target_arch = "aarch64"))
210))]
211pub(super) const SIMD_BATCH: usize = 1;
212
213impl crate::traits::BlockCipher for Sm4Cipher {
214    const BLOCK_SIZE: usize = BLOCK_SIZE;
215
216    /// Construct from a key slice. `key.len()` must equal
217    /// [`KEY_SIZE`].
218    ///
219    /// # Panics
220    ///
221    /// Panics if `key.len() != KEY_SIZE`.
222    fn new(key: &[u8]) -> Self {
223        let key: &[u8; KEY_SIZE] = key
224            .try_into()
225            .expect("Sm4Cipher::new: key must be exactly 16 bytes");
226        Self::new(key)
227    }
228
229    /// Encrypt one 16-byte block in place.
230    ///
231    /// # Panics
232    ///
233    /// Panics if `block.len() != BLOCK_SIZE`.
234    fn encrypt_block(&self, block: &mut [u8]) {
235        let block: &mut [u8; BLOCK_SIZE] = block
236            .try_into()
237            .expect("Sm4Cipher::encrypt_block: block must be exactly 16 bytes");
238        Self::encrypt_block(self, block);
239    }
240
241    /// Decrypt one 16-byte block in place.
242    ///
243    /// # Panics
244    ///
245    /// Panics if `block.len() != BLOCK_SIZE`.
246    fn decrypt_block(&self, block: &mut [u8]) {
247        let block: &mut [u8; BLOCK_SIZE] = block
248            .try_into()
249            .expect("Sm4Cipher::decrypt_block: block must be exactly 16 bytes");
250        Self::decrypt_block(self, block);
251    }
252}
253
254#[cfg(feature = "cipher-traits")]
255mod cipher_impl {
256    //! `cipher::BlockEncrypt` / `cipher::BlockDecrypt`-compatible impl
257    //! for [`Sm4Cipher`] (v0.4 W2; Q4.3).
258    //!
259    //! Behind the `cipher-traits` feature flag. The cipher 0.4 trait
260    //! surface uses a rank-2 backend pattern: callers invoke
261    //! `encrypt_with_backend` / `decrypt_with_backend` with a
262    //! `BlockClosure`, and the impl calls the closure with a
263    //! `BlockBackend`. Following the `aes` crate's pattern.
264    //!
265    //! Block size = 16 bytes; key size = 16 bytes. Output is byte-
266    //! identical to the inherent
267    //! [`Sm4Cipher::encrypt_block`] / [`Sm4Cipher::decrypt_block`].
268
269    use super::{BLOCK_SIZE, KEY_SIZE, Sm4Cipher};
270    use cipher::consts::{U1, U16};
271    use cipher::crypto_common::{Key, KeyInit, KeySizeUser, ParBlocksSizeUser};
272    use cipher::inout::InOut;
273    use cipher::{
274        BlockBackend, BlockCipher, BlockClosure, BlockDecrypt, BlockEncrypt, BlockSizeUser,
275    };
276
277    const _: () = assert!(BLOCK_SIZE == 16, "cipher trait fit assumes U16 block");
278    const _: () = assert!(KEY_SIZE == 16, "cipher trait fit assumes U16 key");
279
280    impl BlockSizeUser for Sm4Cipher {
281        type BlockSize = U16;
282    }
283
284    impl KeySizeUser for Sm4Cipher {
285        type KeySize = U16;
286    }
287
288    impl KeyInit for Sm4Cipher {
289        fn new(key: &Key<Self>) -> Self {
290            let key: &[u8; KEY_SIZE] = key.as_ref();
291            Self::new(key)
292        }
293    }
294
295    impl BlockCipher for Sm4Cipher {}
296
297    struct Sm4Backend<'a> {
298        cipher: &'a Sm4Cipher,
299        decrypt: bool,
300    }
301
302    impl BlockSizeUser for Sm4Backend<'_> {
303        type BlockSize = U16;
304    }
305
306    impl ParBlocksSizeUser for Sm4Backend<'_> {
307        type ParBlocksSize = U1;
308    }
309
310    impl BlockBackend for Sm4Backend<'_> {
311        #[inline]
312        fn proc_block(&mut self, mut block: InOut<'_, '_, cipher::Block<Self>>) {
313            let mut buf = [0u8; BLOCK_SIZE];
314            buf.copy_from_slice(block.get_in().as_slice());
315            if self.decrypt {
316                self.cipher.decrypt_block(&mut buf);
317            } else {
318                self.cipher.encrypt_block(&mut buf);
319            }
320            block.get_out().copy_from_slice(&buf);
321        }
322        // ParBlocksSize = U1, so the default `proc_par_blocks` falls back
323        // to `proc_block` for each block. No override needed.
324    }
325
326    impl BlockEncrypt for Sm4Cipher {
327        fn encrypt_with_backend(&self, f: impl BlockClosure<BlockSize = Self::BlockSize>) {
328            f.call(&mut Sm4Backend {
329                cipher: self,
330                decrypt: false,
331            });
332        }
333    }
334
335    impl BlockDecrypt for Sm4Cipher {
336        fn decrypt_with_backend(&self, f: impl BlockClosure<BlockSize = Self::BlockSize>) {
337            f.call(&mut Sm4Backend {
338                cipher: self,
339                decrypt: true,
340            });
341        }
342    }
343}
344
345/// Run the 32-round Feistel-like SM4 transform in place. `reverse`
346/// flips the round-key index direction — encrypt and decrypt share
347/// the same data path under SM4's key-reversal property.
348fn crypt(block: &mut [u8; BLOCK_SIZE], rk: &[u32; 32], reverse: bool) {
349    let mut x = [
350        u32::from_be_bytes([block[0], block[1], block[2], block[3]]),
351        u32::from_be_bytes([block[4], block[5], block[6], block[7]]),
352        u32::from_be_bytes([block[8], block[9], block[10], block[11]]),
353        u32::from_be_bytes([block[12], block[13], block[14], block[15]]),
354    ];
355    for i in 0..32 {
356        let rki = if reverse { rk[31 - i] } else { rk[i] };
357        let t = x[1] ^ x[2] ^ x[3] ^ rki;
358        let new_x = x[0] ^ t_round(t);
359        x[0] = x[1];
360        x[1] = x[2];
361        x[2] = x[3];
362        x[3] = new_x;
363    }
364    // Output is (X35, X34, X33, X32) — i.e. `x` reversed.
365    let out = [x[3], x[2], x[1], x[0]];
366    for (i, w) in out.iter().enumerate() {
367        block[i * 4..i * 4 + 4].copy_from_slice(&w.to_be_bytes());
368    }
369}
370
371/// v0.6 W6 — AVX2 batched SM4 round loop on 8 blocks in lockstep.
372///
373/// Same algorithm as [`crypt`] for `N = 8` blocks; the difference is
374/// that per round, all 8 blocks' `tau` inputs (32 bytes total) are
375/// packed into one `__m256i` and S-boxed in a single
376/// [`gmcrypto_simd::sm4::sbox_x32::sbox_x32`] call. 32× fewer SIMD
377/// dispatches per batch vs 8 sequential [`crypt`] calls × 32 rounds
378/// × 4 S-box bytes per round = 1024 single-byte `sbox_x8` dispatches.
379///
380/// The L transform (`l_round`) and the round-state shift stay
381/// per-block — they're per-u32 bit rotations / XORs, not naturally
382/// SIMD-packable in the same shape.
383///
384/// Behavior is byte-identical to 8 sequential `crypt` calls; verified
385/// in `super::cbc_streaming::tests`.
386#[cfg(all(feature = "sm4-bitsliced-simd", target_arch = "x86_64"))]
387fn crypt_batch_x8(blocks: &mut [[u8; BLOCK_SIZE]; 8], rk: &[u32; 32], reverse: bool) {
388    let mut x: [[u32; 4]; 8] = [[0; 4]; 8];
389    for b in 0..8 {
390        for w in 0..4 {
391            x[b][w] = u32::from_be_bytes([
392                blocks[b][w * 4],
393                blocks[b][w * 4 + 1],
394                blocks[b][w * 4 + 2],
395                blocks[b][w * 4 + 3],
396            ]);
397        }
398    }
399
400    for i in 0..32 {
401        let rki = if reverse { rk[31 - i] } else { rk[i] };
402
403        // Pack all 8 blocks' tau inputs (8 × 4 = 32 bytes) into one
404        // buffer, run a single SIMD S-box pass, then unpack.
405        let mut t_bytes = [0u8; 32];
406        for b in 0..8 {
407            let t = x[b][1] ^ x[b][2] ^ x[b][3] ^ rki;
408            t_bytes[b * 4..b * 4 + 4].copy_from_slice(&t.to_be_bytes());
409        }
410        let s_bytes = gmcrypto_simd::sm4::sbox_x32::sbox_x32(&t_bytes);
411
412        // Per-block: apply L, XOR with x[0], shift state window.
413        for b in 0..8 {
414            let s = u32::from_be_bytes([
415                s_bytes[b * 4],
416                s_bytes[b * 4 + 1],
417                s_bytes[b * 4 + 2],
418                s_bytes[b * 4 + 3],
419            ]);
420            let new_x = x[b][0] ^ l_round(s);
421            x[b][0] = x[b][1];
422            x[b][1] = x[b][2];
423            x[b][2] = x[b][3];
424            x[b][3] = new_x;
425        }
426    }
427
428    // Reverse-output per block (matches `crypt`'s tail).
429    for b in 0..8 {
430        let out = [x[b][3], x[b][2], x[b][1], x[b][0]];
431        for w in 0..4 {
432            blocks[b][w * 4..w * 4 + 4].copy_from_slice(&out[w].to_be_bytes());
433        }
434    }
435}
436
437/// v0.6 W6 — NEON batched SM4 round loop on 4 blocks in lockstep.
438///
439/// Same as [`crypt_batch_x8`] but for `N = 4` blocks; per-round
440/// tau bytes (4 × 4 = 16) pack into one `uint8x16_t` and S-box
441/// via [`gmcrypto_simd::sm4::sbox_x16::sbox_x16`].
442#[cfg(all(feature = "sm4-bitsliced-simd", target_arch = "aarch64"))]
443fn crypt_batch_x4(blocks: &mut [[u8; BLOCK_SIZE]; 4], rk: &[u32; 32], reverse: bool) {
444    let mut x: [[u32; 4]; 4] = [[0; 4]; 4];
445    for b in 0..4 {
446        for w in 0..4 {
447            x[b][w] = u32::from_be_bytes([
448                blocks[b][w * 4],
449                blocks[b][w * 4 + 1],
450                blocks[b][w * 4 + 2],
451                blocks[b][w * 4 + 3],
452            ]);
453        }
454    }
455
456    for i in 0..32 {
457        let rki = if reverse { rk[31 - i] } else { rk[i] };
458
459        let mut t_bytes = [0u8; 16];
460        for b in 0..4 {
461            let t = x[b][1] ^ x[b][2] ^ x[b][3] ^ rki;
462            t_bytes[b * 4..b * 4 + 4].copy_from_slice(&t.to_be_bytes());
463        }
464        let s_bytes = gmcrypto_simd::sm4::sbox_x16::sbox_x16(&t_bytes);
465
466        for b in 0..4 {
467            let s = u32::from_be_bytes([
468                s_bytes[b * 4],
469                s_bytes[b * 4 + 1],
470                s_bytes[b * 4 + 2],
471                s_bytes[b * 4 + 3],
472            ]);
473            let new_x = x[b][0] ^ l_round(s);
474            x[b][0] = x[b][1];
475            x[b][1] = x[b][2];
476            x[b][2] = x[b][3];
477            x[b][3] = new_x;
478        }
479    }
480
481    for b in 0..4 {
482        let out = [x[b][3], x[b][2], x[b][1], x[b][0]];
483        for w in 0..4 {
484            blocks[b][w * 4..w * 4 + 4].copy_from_slice(&out[w].to_be_bytes());
485        }
486    }
487}
488
489/// Constant-time S-box lookup via [`subtle`] linear scan.
490///
491/// Compiles to a fixed 256-iteration loop; each iteration runs a
492/// constant-time equality check and a constant-time conditional
493/// assignment. Roughly 256× slower than a direct LUT lookup but
494/// uniform over the input — see module-doc.
495///
496/// Default-features build uses this path. Under
497/// `--features sm4-bitsliced` (v0.4 W3) [`tau`] swaps to the
498/// table-less Itoh-Tsujii bitsliced implementation; this function
499/// remains compiled but unused on the bitsliced path.
500#[cfg(not(feature = "sm4-bitsliced"))]
501#[inline]
502fn sbox_ct(x: u8) -> u8 {
503    let mut result: u8 = 0;
504    for i in 0..256u16 {
505        #[allow(clippy::cast_possible_truncation)]
506        let i_u8 = i as u8;
507        let eq = i_u8.ct_eq(&x);
508        result.conditional_assign(&S_BOX[i as usize], eq);
509    }
510    result
511}
512
513/// Apply the S-box to all four bytes of a `u32` (the τ transform,
514/// GB/T 32907-2016 §6.3.1).
515///
516/// Default-features path uses the linear-scan [`sbox_ct`]. Under
517/// `--features sm4-bitsliced` (v0.4 W3) this dispatches to the
518/// table-less Itoh-Tsujii bitsliced S-box in
519/// [`crate::sm4::sbox_bitsliced`]. Under
520/// `--features sm4-bitsliced-simd` (v0.5 W4) it further dispatches to
521/// [`crate::sm4::sbox_bitsliced_simd`] — in phase 1 a transparent
522/// delegate to the single-block bitslice (byte-identical output);
523/// phase 2 / phase 3 swap in AVX2 / NEON intrinsics behind the same
524/// path.
525// Under `sm4-bitsliced` the bitsliced S-box is `const fn`, which
526// would let `tau` be const too — but the default linear-scan path
527// uses runtime `subtle` ops that aren't const-eligible. Suppress the
528// clippy lint that only fires on one feature config.
529#[allow(clippy::missing_const_for_fn)]
530#[inline]
531fn tau(a: u32) -> u32 {
532    let a_bytes = a.to_be_bytes();
533    #[cfg(not(feature = "sm4-bitsliced"))]
534    let b = [
535        sbox_ct(a_bytes[0]),
536        sbox_ct(a_bytes[1]),
537        sbox_ct(a_bytes[2]),
538        sbox_ct(a_bytes[3]),
539    ];
540    // `sm4-bitsliced-simd` implies `sm4-bitsliced` per Cargo.toml's
541    // feature-dependency declaration. The dispatch ordering ensures
542    // the SIMD path wins when both are enabled.
543    #[cfg(all(feature = "sm4-bitsliced", not(feature = "sm4-bitsliced-simd")))]
544    let b = [
545        crate::sm4::sbox_bitsliced::sbox(a_bytes[0]),
546        crate::sm4::sbox_bitsliced::sbox(a_bytes[1]),
547        crate::sm4::sbox_bitsliced::sbox(a_bytes[2]),
548        crate::sm4::sbox_bitsliced::sbox(a_bytes[3]),
549    ];
550    #[cfg(feature = "sm4-bitsliced-simd")]
551    let b = [
552        crate::sm4::sbox_bitsliced_simd::sbox(a_bytes[0]),
553        crate::sm4::sbox_bitsliced_simd::sbox(a_bytes[1]),
554        crate::sm4::sbox_bitsliced_simd::sbox(a_bytes[2]),
555        crate::sm4::sbox_bitsliced_simd::sbox(a_bytes[3]),
556    ];
557    u32::from_be_bytes(b)
558}
559
560/// Linear transform `L` for the round function (GB/T 32907-2016 §6.3.2):
561/// `L(B) = B XOR (B<<<2) XOR (B<<<10) XOR (B<<<18) XOR (B<<<24)`.
562#[inline]
563const fn l_round(b: u32) -> u32 {
564    b ^ b.rotate_left(2) ^ b.rotate_left(10) ^ b.rotate_left(18) ^ b.rotate_left(24)
565}
566
567/// Linear transform `L'` for the key schedule (GB/T 32907-2016 §7.3.1):
568/// `L'(B) = B XOR (B<<<13) XOR (B<<<23)`.
569#[inline]
570const fn l_prime(b: u32) -> u32 {
571    b ^ b.rotate_left(13) ^ b.rotate_left(23)
572}
573
574/// Round-function composite transform `T(x) = L(τ(x))`.
575#[inline]
576fn t_round(x: u32) -> u32 {
577    l_round(tau(x))
578}
579
580/// Key-schedule composite transform `T'(x) = L'(τ(x))`.
581#[inline]
582fn t_prime(x: u32) -> u32 {
583    l_prime(tau(x))
584}
585
586#[cfg(test)]
587mod tests {
588    use super::*;
589
590    /// Cross-check the compile-time `CK` table against published values.
591    #[test]
592    fn ck_table_matches_published_endpoints() {
593        assert_eq!(CK[0], 0x0007_0e15, "CK[0]");
594        assert_eq!(CK[31], 0x646b_7279, "CK[31]");
595        // Spot-check a middle entry: CK[7] = 0xc4cbd2d9 per spec.
596        assert_eq!(CK[7], 0xc4cb_d2d9, "CK[7]");
597    }
598
599    /// GB/T 32907-2016 Appendix A.1: single-block KAT.
600    #[test]
601    fn gbt32907_single_block() {
602        let key: [u8; 16] = [
603            0x01, 0x23, 0x45, 0x67, 0x89, 0xab, 0xcd, 0xef, 0xfe, 0xdc, 0xba, 0x98, 0x76, 0x54,
604            0x32, 0x10,
605        ];
606        // The spec KAT happens to use plaintext == key.
607        let plaintext: [u8; 16] = key;
608        let expected: [u8; 16] = [
609            0x68, 0x1e, 0xdf, 0x34, 0xd2, 0x06, 0x96, 0x5e, 0x86, 0xb3, 0xe9, 0x4f, 0x53, 0x6e,
610            0x42, 0x46,
611        ];
612
613        let cipher = Sm4Cipher::new(&key);
614        let mut block = plaintext;
615        cipher.encrypt_block(&mut block);
616        assert_eq!(block, expected, "encrypt KAT mismatch");
617
618        cipher.decrypt_block(&mut block);
619        assert_eq!(block, plaintext, "decrypt round-trip mismatch");
620    }
621
622    /// GB/T 32907-2016 Appendix A.1: 1,000,000-round KAT.
623    ///
624    /// Encrypt the same plaintext 1,000,000 times under the same key
625    /// and verify the final ciphertext matches the spec. Slow on the
626    /// linear-scan S-box at debug-build speeds (single-digit minutes);
627    /// gated `#[ignore]` so default `cargo test --workspace` stays fast.
628    /// Run with `cargo test --release -- --ignored` before any release.
629    #[test]
630    #[ignore = "1M-round KAT — run with --release --ignored before release"]
631    fn gbt32907_one_million_rounds() {
632        let key: [u8; 16] = [
633            0x01, 0x23, 0x45, 0x67, 0x89, 0xab, 0xcd, 0xef, 0xfe, 0xdc, 0xba, 0x98, 0x76, 0x54,
634            0x32, 0x10,
635        ];
636        let expected: [u8; 16] = [
637            0x59, 0x52, 0x98, 0xc7, 0xc6, 0xfd, 0x27, 0x1f, 0x04, 0x02, 0xf8, 0x04, 0xc3, 0x3d,
638            0x3f, 0x66,
639        ];
640
641        let cipher = Sm4Cipher::new(&key);
642        let mut block = key;
643        for _ in 0..1_000_000 {
644            cipher.encrypt_block(&mut block);
645        }
646        assert_eq!(block, expected, "1M-round KAT mismatch");
647    }
648
649    /// Random plaintext should round-trip through encrypt+decrypt.
650    #[test]
651    fn encrypt_decrypt_round_trip() {
652        let key: [u8; 16] = [
653            0xde, 0xad, 0xbe, 0xef, 0xfe, 0xed, 0xfa, 0xce, 0xca, 0xfe, 0xba, 0xbe, 0xba, 0xad,
654            0xf0, 0x0d,
655        ];
656        let plaintext: [u8; 16] = [
657            0xa5, 0x5a, 0x12, 0x34, 0x56, 0x78, 0x9a, 0xbc, 0xde, 0xf0, 0x0f, 0x1e, 0x2d, 0x3c,
658            0x4b, 0x5a,
659        ];
660        let cipher = Sm4Cipher::new(&key);
661        let mut block = plaintext;
662        cipher.encrypt_block(&mut block);
663        assert_ne!(block, plaintext, "ciphertext must differ from plaintext");
664        cipher.decrypt_block(&mut block);
665        assert_eq!(block, plaintext, "round-trip must restore plaintext");
666    }
667
668    /// Spot-check `sbox_ct` against the LUT for a handful of inputs.
669    /// `sbox_ct` is the constant-time reformulation of `S_BOX[x]` and
670    /// must agree with it for every `x` (otherwise we ship a broken
671    /// cipher).
672    ///
673    /// Gated `cfg(not(feature = "sm4-bitsliced"))` because `sbox_ct`
674    /// itself is gated off the bitsliced path; v0.4 W3's bitsliced
675    /// impl has its own exhaustive-vs-S_BOX equivalence test in
676    /// [`crate::sm4::sbox_bitsliced::tests::bitsliced_matches_table`].
677    #[cfg(not(feature = "sm4-bitsliced"))]
678    #[test]
679    fn sbox_ct_matches_lut() {
680        for x in 0..=255u8 {
681            assert_eq!(
682                sbox_ct(x),
683                S_BOX[x as usize],
684                "sbox_ct mismatch at x={x:#04x}"
685            );
686        }
687    }
688}