#include <crypto/aes.h>
#include <crypto/scatterwalk.h>
#include <crypto/internal/aead.h>
+#include <crypto/internal/simd.h>
#include <crypto/internal/skcipher.h>
#include <linux/module.h>
static void ccm_update_mac(struct crypto_aes_ctx *key, u8 mac[], u8 const in[],
u32 abytes, u32 *macp)
{
- if (may_use_simd()) {
+ if (crypto_simd_usable()) {
kernel_neon_begin();
ce_aes_ccm_auth_data(mac, in, abytes, macp, key->key_enc,
num_rounds(key));
err = skcipher_walk_aead_encrypt(&walk, req, false);
- if (may_use_simd()) {
+ if (crypto_simd_usable()) {
while (walk.nbytes) {
u32 tail = walk.nbytes % AES_BLOCK_SIZE;
err = skcipher_walk_aead_decrypt(&walk, req, false);
- if (may_use_simd()) {
+ if (crypto_simd_usable()) {
while (walk.nbytes) {
u32 tail = walk.nbytes % AES_BLOCK_SIZE;
#include <asm/simd.h>
#include <asm/unaligned.h>
#include <crypto/aes.h>
+#include <crypto/internal/simd.h>
#include <linux/cpufeature.h>
#include <linux/crypto.h>
#include <linux/module.h>
{
struct crypto_aes_ctx *ctx = crypto_tfm_ctx(tfm);
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
__aes_arm64_encrypt(ctx->key_enc, dst, src, num_rounds(ctx));
return;
}
{
struct crypto_aes_ctx *ctx = crypto_tfm_ctx(tfm);
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
__aes_arm64_decrypt(ctx->key_dec, dst, src, num_rounds(ctx));
return;
}
struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
struct crypto_aes_ctx *ctx = crypto_skcipher_ctx(tfm);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return aes_ctr_encrypt_fallback(ctx, req);
return ctr_encrypt(req);
{
int rounds = 6 + ctx->key_length / 4;
- if (may_use_simd()) {
+ if (crypto_simd_usable()) {
kernel_neon_begin();
aes_mac_update(in, ctx->key_enc, rounds, blocks, dg, enc_before,
enc_after);
struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
struct aesbs_ctr_ctx *ctx = crypto_skcipher_ctx(tfm);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return aes_ctr_encrypt_fallback(&ctx->fallback, req);
return ctr_encrypt(req);
#include <crypto/algapi.h>
#include <crypto/chacha.h>
+#include <crypto/internal/simd.h>
#include <crypto/internal/skcipher.h>
#include <linux/kernel.h>
#include <linux/module.h>
struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
struct chacha_ctx *ctx = crypto_skcipher_ctx(tfm);
- if (req->cryptlen <= CHACHA_BLOCK_SIZE || !may_use_simd())
+ if (req->cryptlen <= CHACHA_BLOCK_SIZE || !crypto_simd_usable())
return crypto_chacha_crypt(req);
return chacha_neon_stream_xor(req, ctx, req->iv);
u32 state[16];
u8 real_iv[16];
- if (req->cryptlen <= CHACHA_BLOCK_SIZE || !may_use_simd())
+ if (req->cryptlen <= CHACHA_BLOCK_SIZE || !crypto_simd_usable())
return crypto_xchacha_crypt(req);
crypto_chacha_init(state, ctx, req->iv);
#include <linux/string.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <asm/neon.h>
#include <asm/simd.h>
{
u16 *crc = shash_desc_ctx(desc);
- if (length >= CRC_T10DIF_PMULL_CHUNK_SIZE && may_use_simd()) {
+ if (length >= CRC_T10DIF_PMULL_CHUNK_SIZE && crypto_simd_usable()) {
kernel_neon_begin();
*crc = crc_t10dif_pmull_p8(*crc, data, length);
kernel_neon_end();
{
u16 *crc = shash_desc_ctx(desc);
- if (length >= CRC_T10DIF_PMULL_CHUNK_SIZE && may_use_simd()) {
+ if (length >= CRC_T10DIF_PMULL_CHUNK_SIZE && crypto_simd_usable()) {
kernel_neon_begin();
*crc = crc_t10dif_pmull_p64(*crc, data, length);
kernel_neon_end();
#include <crypto/gf128mul.h>
#include <crypto/internal/aead.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/internal/skcipher.h>
#include <crypto/scatterwalk.h>
#include <linux/cpufeature.h>
struct ghash_key const *k,
const char *head))
{
- if (likely(may_use_simd())) {
+ if (likely(crypto_simd_usable())) {
kernel_neon_begin();
simd_update(blocks, dg, src, key, head);
kernel_neon_end();
err = skcipher_walk_aead_encrypt(&walk, req, false);
- if (likely(may_use_simd() && walk.total >= 2 * AES_BLOCK_SIZE)) {
+ if (likely(crypto_simd_usable() && walk.total >= 2 * AES_BLOCK_SIZE)) {
u32 const *rk = NULL;
kernel_neon_begin();
err = skcipher_walk_aead_decrypt(&walk, req, false);
- if (likely(may_use_simd() && walk.total >= 2 * AES_BLOCK_SIZE)) {
+ if (likely(crypto_simd_usable() && walk.total >= 2 * AES_BLOCK_SIZE)) {
u32 const *rk = NULL;
kernel_neon_begin();
#include <asm/neon.h>
#include <asm/simd.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/nhpoly1305.h>
#include <linux/module.h>
static int nhpoly1305_neon_update(struct shash_desc *desc,
const u8 *src, unsigned int srclen)
{
- if (srclen < 64 || !may_use_simd())
+ if (srclen < 64 || !crypto_simd_usable())
return crypto_nhpoly1305_update(desc, src, srclen);
do {
#include <asm/simd.h>
#include <asm/unaligned.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/sha.h>
#include <crypto/sha1_base.h>
#include <linux/cpufeature.h>
{
struct sha1_ce_state *sctx = shash_desc_ctx(desc);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sha1_update(desc, data, len);
sctx->finalize = 0;
struct sha1_ce_state *sctx = shash_desc_ctx(desc);
bool finalize = !sctx->sst.count && !(len % SHA1_BLOCK_SIZE);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sha1_finup(desc, data, len, out);
/*
{
struct sha1_ce_state *sctx = shash_desc_ctx(desc);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sha1_finup(desc, NULL, 0, out);
sctx->finalize = 0;
#include <asm/simd.h>
#include <asm/unaligned.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/sha.h>
#include <crypto/sha256_base.h>
#include <linux/cpufeature.h>
{
struct sha256_ce_state *sctx = shash_desc_ctx(desc);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return sha256_base_do_update(desc, data, len,
(sha256_block_fn *)sha256_block_data_order);
struct sha256_ce_state *sctx = shash_desc_ctx(desc);
bool finalize = !sctx->sst.count && !(len % SHA256_BLOCK_SIZE);
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
if (len)
sha256_base_do_update(desc, data, len,
(sha256_block_fn *)sha256_block_data_order);
{
struct sha256_ce_state *sctx = shash_desc_ctx(desc);
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
sha256_base_do_finalize(desc,
(sha256_block_fn *)sha256_block_data_order);
return sha256_base_finish(desc, out);
#include <asm/neon.h>
#include <asm/simd.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/sha.h>
#include <crypto/sha256_base.h>
#include <linux/cryptohash.h>
{
struct sha256_state *sctx = shash_desc_ctx(desc);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return sha256_base_do_update(desc, data, len,
(sha256_block_fn *)sha256_block_data_order);
static int sha256_finup_neon(struct shash_desc *desc, const u8 *data,
unsigned int len, u8 *out)
{
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
if (len)
sha256_base_do_update(desc, data, len,
(sha256_block_fn *)sha256_block_data_order);
#include <asm/simd.h>
#include <asm/unaligned.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/sha3.h>
#include <linux/cpufeature.h>
#include <linux/crypto.h>
struct sha3_state *sctx = shash_desc_ctx(desc);
unsigned int digest_size = crypto_shash_digestsize(desc->tfm);
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sha3_update(desc, data, len);
if ((sctx->partial + len) >= sctx->rsiz) {
__le64 *digest = (__le64 *)out;
int i;
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sha3_final(desc, out);
sctx->buf[sctx->partial++] = 0x06;
#include <asm/simd.h>
#include <asm/unaligned.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/sha.h>
#include <crypto/sha512_base.h>
#include <linux/cpufeature.h>
static int sha512_ce_update(struct shash_desc *desc, const u8 *data,
unsigned int len)
{
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return sha512_base_do_update(desc, data, len,
(sha512_block_fn *)sha512_block_data_order);
static int sha512_ce_finup(struct shash_desc *desc, const u8 *data,
unsigned int len, u8 *out)
{
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
if (len)
sha512_base_do_update(desc, data, len,
(sha512_block_fn *)sha512_block_data_order);
static int sha512_ce_final(struct shash_desc *desc, u8 *out)
{
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
sha512_base_do_finalize(desc,
(sha512_block_fn *)sha512_block_data_order);
return sha512_base_finish(desc, out);
#include <asm/simd.h>
#include <asm/unaligned.h>
#include <crypto/internal/hash.h>
+#include <crypto/internal/simd.h>
#include <crypto/sm3.h>
#include <crypto/sm3_base.h>
#include <linux/cpufeature.h>
static int sm3_ce_update(struct shash_desc *desc, const u8 *data,
unsigned int len)
{
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sm3_update(desc, data, len);
kernel_neon_begin();
static int sm3_ce_final(struct shash_desc *desc, u8 *out)
{
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sm3_finup(desc, NULL, 0, out);
kernel_neon_begin();
static int sm3_ce_finup(struct shash_desc *desc, const u8 *data,
unsigned int len, u8 *out)
{
- if (!may_use_simd())
+ if (!crypto_simd_usable())
return crypto_sm3_finup(desc, data, len, out);
kernel_neon_begin();
#include <asm/neon.h>
#include <asm/simd.h>
#include <crypto/sm4.h>
+#include <crypto/internal/simd.h>
#include <linux/module.h>
#include <linux/cpufeature.h>
#include <linux/crypto.h>
{
const struct crypto_sm4_ctx *ctx = crypto_tfm_ctx(tfm);
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
crypto_sm4_encrypt(tfm, out, in);
} else {
kernel_neon_begin();
{
const struct crypto_sm4_ctx *ctx = crypto_tfm_ctx(tfm);
- if (!may_use_simd()) {
+ if (!crypto_simd_usable()) {
crypto_sm4_decrypt(tfm, out, in);
} else {
kernel_neon_begin();