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sha256.c
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2837 lines (2432 loc) · 88.8 KB
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/* sha256.c
*
* Copyright (C) 2006-2025 wolfSSL Inc.
*
* This file is part of wolfSSL.
*
* wolfSSL is free software; you can redistribute it and/or modify
* it under the terms of the GNU General Public License as published by
* the Free Software Foundation; either version 3 of the License, or
* (at your option) any later version.
*
* wolfSSL is distributed in the hope that it will be useful,
* but WITHOUT ANY WARRANTY; without even the implied warranty of
* MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
* GNU General Public License for more details.
*
* You should have received a copy of the GNU General Public License
* along with this program; if not, write to the Free Software
* Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1335, USA
*/
/* For more info on the algorithm, see https://tools.ietf.org/html/rfc6234
*
* For more information on NIST FIPS PUB 180-4, see
* https://nvlpubs.nist.gov/nistpubs/FIPS/NIST.FIPS.180-4.pdf
*/
/*
DESCRIPTION
This library provides the interface to SHA-256 secure hash algorithms.
SHA-256 performs processing on message blocks to produce a final hash digest
output. It can be used to hash a message, M, having a length of L bits,
where 0 <= L < 2^64.
Note that in some cases, hardware acceleration may be enabled, depending
on the specific device platform.
*/
#include <wolfssl/wolfcrypt/libwolfssl_sources.h>
/*
* SHA256 Build Options:
* USE_SLOW_SHA256: Reduces code size by not partially unrolling
(~2KB smaller and ~25% slower) (default OFF)
* WOLFSSL_SHA256_BY_SPEC: Uses the Ch/Maj based on SHA256 specification
(default ON)
* WOLFSSL_SHA256_ALT_CH_MAJ: Alternate Ch/Maj that is easier for compilers to
optimize and recognize as SHA256 (default OFF)
* SHA256_MANY_REGISTERS: A SHA256 version that keeps all data in registers
and partial unrolled (default OFF)
*/
/* Default SHA256 to use Ch/Maj based on specification */
#if !defined(WOLFSSL_SHA256_BY_SPEC) && !defined(WOLFSSL_SHA256_ALT_CH_MAJ)
#define WOLFSSL_SHA256_BY_SPEC
#endif
#if !defined(NO_SHA256) && !defined(WOLFSSL_RISCV_ASM)
#if defined(HAVE_FIPS) && defined(HAVE_FIPS_VERSION) && (HAVE_FIPS_VERSION >= 2)
/* set NO_WRAPPERS before headers, use direct internal f()s not wrappers */
#define FIPS_NO_WRAPPERS
#ifdef USE_WINDOWS_API
#pragma code_seg(".fipsA$l")
#pragma const_seg(".fipsB$l")
#endif
#endif
#include <wolfssl/wolfcrypt/sha256.h>
#include <wolfssl/wolfcrypt/cpuid.h>
#include <wolfssl/wolfcrypt/hash.h>
#ifdef WOLF_CRYPTO_CB
#include <wolfssl/wolfcrypt/cryptocb.h>
#endif
#ifdef WOLFSSL_IMXRT1170_CAAM
#include <wolfssl/wolfcrypt/port/caam/wolfcaam_fsl_nxp.h>
#endif
/* determine if we are using Espressif SHA hardware acceleration */
#undef WOLFSSL_USE_ESP32_CRYPT_HASH_HW
#if defined(WOLFSSL_ESP32_CRYPT) && \
!defined(NO_WOLFSSL_ESP32_CRYPT_HASH)
/* define a single keyword for simplicity & readability
*
* by default the HW acceleration is on for ESP32-WROOM32
* but individual components can be turned off.
*/
#define WOLFSSL_USE_ESP32_CRYPT_HASH_HW
#else
#undef WOLFSSL_USE_ESP32_CRYPT_HASH_HW
#endif
#ifdef WOLFSSL_ESPIDF
/* Define the ESP_LOGx(TAG, WOLFSSL_ESPIDF_BLANKLINE_MESSAGE value for output messages here.
**
** Beware of possible conflict in test.c (that one now named TEST_TAG)
*/
#if defined(WOLFSSL_USE_ESP32_CRYPT_HASH_HW) && \
!defined(NO_WOLFSSL_ESP32_CRYPT_HASH_SHA256)
static const char* TAG = "wc_sha256";
#endif
#endif
#if defined(WOLFSSL_TI_HASH)
/* #include <wolfcrypt/src/port/ti/ti-hash.c> included by wc_port.c */
#elif defined(WOLFSSL_CRYPTOCELL)
/* wc_port.c includes wolfcrypt/src/port/arm/cryptoCellHash.c */
#elif defined(MAX3266X_SHA)
/* Already brought in by sha256.h */
/* #include <wolfssl/wolfcrypt/port/maxim/max3266x.h> */
#else
#ifdef NO_INLINE
#include <wolfssl/wolfcrypt/misc.h>
#else
#define WOLFSSL_MISC_INCLUDED
#include <wolfcrypt/src/misc.c>
#endif
#ifdef WOLFSSL_DEVCRYPTO_HASH
#include <wolfssl/wolfcrypt/port/devcrypto/wc_devcrypto.h>
#endif
#if defined(WOLFSSL_SE050) && defined(WOLFSSL_SE050_HASH)
#include <wolfssl/wolfcrypt/port/nxp/se050_port.h>
#endif
#if FIPS_VERSION3_GE(6,0,0)
const unsigned int wolfCrypt_FIPS_sha256_ro_sanity[2] =
{ 0x1a2b3c4d, 0x00000014 };
int wolfCrypt_FIPS_SHA256_sanity(void)
{
return 0;
}
#endif
#if defined(WOLFSSL_X86_64_BUILD) && defined(USE_INTEL_SPEEDUP)
#if defined(__GNUC__) && ((__GNUC__ < 4) || \
(__GNUC__ == 4 && __GNUC_MINOR__ <= 8))
#undef NO_AVX2_SUPPORT
#define NO_AVX2_SUPPORT
#endif
#if defined(__clang__) && ((__clang_major__ < 3) || \
(__clang_major__ == 3 && __clang_minor__ <= 5))
#define NO_AVX2_SUPPORT
#elif defined(__clang__) && defined(NO_AVX2_SUPPORT)
#undef NO_AVX2_SUPPORT
#endif
#define HAVE_INTEL_AVX1
#ifndef NO_AVX2_SUPPORT
#define HAVE_INTEL_AVX2
#endif
#else
#undef HAVE_INTEL_AVX1
#undef HAVE_INTEL_AVX2
#endif /* WOLFSSL_X86_64_BUILD && USE_INTEL_SPEEDUP */
#if defined(HAVE_INTEL_AVX2)
#define HAVE_INTEL_RORX
#endif
#if defined(LITTLE_ENDIAN_ORDER)
#if ( defined(CONFIG_IDF_TARGET_ESP32C2) || \
defined(CONFIG_IDF_TARGET_ESP8684) || \
defined(CONFIG_IDF_TARGET_ESP32C3) || \
defined(CONFIG_IDF_TARGET_ESP32C6) \
) && \
defined(WOLFSSL_ESP32_CRYPT) && \
!defined(NO_WOLFSSL_ESP32_CRYPT_HASH) && \
!defined(NO_WOLFSSL_ESP32_CRYPT_HASH_SHA256)
/* For Espressif RISC-V Targets, we *may* need to reverse bytes
* depending on if HW is active or not. */
#define SHA256_REV_BYTES(ctx) \
(esp_sha_need_byte_reversal(ctx))
#elif defined(FREESCALE_MMCAU_SHA)
#define SHA256_REV_BYTES(ctx) 1 /* reverse needed on final */
#endif
#endif
#ifndef SHA256_REV_BYTES
#if defined(LITTLE_ENDIAN_ORDER)
#define SHA256_REV_BYTES(ctx) 1
#else
#define SHA256_REV_BYTES(ctx) 0
#endif
#endif
#if defined(LITTLE_ENDIAN_ORDER) && \
defined(WOLFSSL_X86_64_BUILD) && defined(USE_INTEL_SPEEDUP) && \
(defined(HAVE_INTEL_AVX1) || defined(HAVE_INTEL_AVX2))
#ifdef WC_C_DYNAMIC_FALLBACK
#define SHA256_UPDATE_REV_BYTES(ctx) (sha256->sha_method == SHA256_C)
#else
#define SHA256_UPDATE_REV_BYTES(ctx) \
(!IS_INTEL_AVX1(intel_flags) && !IS_INTEL_AVX2(intel_flags) && \
!IS_INTEL_SHA(intel_flags))
#endif
#elif defined(FREESCALE_MMCAU_SHA)
#define SHA256_UPDATE_REV_BYTES(ctx) 0 /* reverse not needed on update */
#elif defined(WOLFSSL_PPC32_ASM)
#define SHA256_UPDATE_REV_BYTES(ctx) 0
#elif defined(WOLFSSL_ARMASM)
#define SHA256_UPDATE_REV_BYTES(ctx) 0
#else
#define SHA256_UPDATE_REV_BYTES(ctx) SHA256_REV_BYTES(ctx)
#endif
#if !defined(WOLFSSL_PIC32MZ_HASH) && !defined(STM32_HASH_SHA2) && \
(!defined(WOLFSSL_IMX6_CAAM) || defined(NO_IMX6_CAAM_HASH) || \
defined(WOLFSSL_QNX_CAAM)) && \
!defined(WOLFSSL_AFALG_HASH) && !defined(WOLFSSL_DEVCRYPTO_HASH) && \
(!defined(WOLFSSL_ESP32_CRYPT) || defined(NO_WOLFSSL_ESP32_CRYPT_HASH)) && \
((!defined(WOLFSSL_RENESAS_TSIP_TLS) && \
!defined(WOLFSSL_RENESAS_TSIP_CRYPTONLY)) || \
defined(NO_WOLFSSL_RENESAS_TSIP_CRYPT_HASH)) && \
!defined(PSOC6_HASH_SHA2) && !defined(WOLFSSL_IMXRT_DCP) && !defined(WOLFSSL_SILABS_SE_ACCEL) && \
!defined(WOLFSSL_KCAPI_HASH) && !defined(WOLFSSL_SE050_HASH) && \
((!defined(WOLFSSL_RENESAS_SCEPROTECT) && \
!defined(WOLFSSL_RENESAS_RSIP)) \
|| defined(NO_WOLFSSL_RENESAS_FSPSM_HASH)) && \
(!defined(WOLFSSL_HAVE_PSA) || defined(WOLFSSL_PSA_NO_HASH)) && \
!defined(WOLFSSL_RENESAS_RX64_HASH)
#if defined(WOLFSSL_X86_64_BUILD) && defined(USE_INTEL_SPEEDUP) && \
(defined(HAVE_INTEL_AVX1) || defined(HAVE_INTEL_AVX2))
#ifdef WC_C_DYNAMIC_FALLBACK
#define SHA256_SETTRANSFORM_ARGS int *sha_method
#else
#define SHA256_SETTRANSFORM_ARGS void
#endif
static void Sha256_SetTransform(SHA256_SETTRANSFORM_ARGS);
#endif
static int InitSha256(wc_Sha256* sha256)
{
XMEMSET(sha256->digest, 0, sizeof(sha256->digest));
sha256->digest[0] = 0x6A09E667L;
sha256->digest[1] = 0xBB67AE85L;
sha256->digest[2] = 0x3C6EF372L;
sha256->digest[3] = 0xA54FF53AL;
sha256->digest[4] = 0x510E527FL;
sha256->digest[5] = 0x9B05688CL;
sha256->digest[6] = 0x1F83D9ABL;
sha256->digest[7] = 0x5BE0CD19L;
sha256->buffLen = 0;
sha256->loLen = 0;
sha256->hiLen = 0;
#ifdef WOLFSSL_HASH_FLAGS
sha256->flags = 0;
#endif
#ifdef WOLFSSL_HASH_KEEP
sha256->msg = NULL;
sha256->len = 0;
sha256->used = 0;
#endif
#if defined(WOLFSSL_X86_64_BUILD) && defined(USE_INTEL_SPEEDUP) && \
(defined(HAVE_INTEL_AVX1) || defined(HAVE_INTEL_AVX2))
/* choose best Transform function under this runtime environment */
#ifdef WC_C_DYNAMIC_FALLBACK
sha256->sha_method = 0;
Sha256_SetTransform(&sha256->sha_method);
#else
Sha256_SetTransform();
#endif
#endif
#ifdef WOLFSSL_MAXQ10XX_CRYPTO
XMEMSET(&sha256->maxq_ctx, 0, sizeof(sha256->maxq_ctx));
#endif
#ifdef HAVE_ARIA
sha256->hSession = NULL;
#endif
return 0;
}
#endif
/* Hardware Acceleration */
#if defined(WOLFSSL_X86_64_BUILD) && defined(USE_INTEL_SPEEDUP) && \
(defined(HAVE_INTEL_AVX1) || defined(HAVE_INTEL_AVX2))
/* in case intel instructions aren't available, plus we need the K[] global */
#define NEED_SOFT_SHA256
/*****
Intel AVX1/AVX2 Macro Control Structure
#define HAVE_INTEL_AVX1
#define HAVE_INTEL_AVX2
#define HAVE_INTEL_RORX
int InitSha256(wc_Sha256* sha256) {
Save/Recover XMM, YMM
...
}
#if defined(HAVE_INTEL_AVX1)|| defined(HAVE_INTEL_AVX2)
Transform_Sha256(); Function prototype
#else
Transform_Sha256() { }
int Sha256Final() {
Save/Recover XMM, YMM
...
}
#endif
#if defined(HAVE_INTEL_AVX1)|| defined(HAVE_INTEL_AVX2)
#if defined(HAVE_INTEL_RORX
#define RND with rorx instruction
#else
#define RND
#endif
#endif
#if defined(HAVE_INTEL_AVX1)
#define XMM Instructions/inline asm
int Transform_Sha256() {
Stitched Message Sched/Round
}
#elif defined(HAVE_INTEL_AVX2)
#define YMM Instructions/inline asm
int Transform_Sha256() {
More granular Stitched Message Sched/Round
}
#endif
*/
/* Each platform needs to query info type 1 from cpuid to see if aesni is
* supported. Also, let's setup a macro for proper linkage w/o ABI conflicts
*/
/* #if defined(HAVE_INTEL_AVX1/2) at the tail of sha256 */
static int Transform_Sha256(wc_Sha256* sha256, const byte* data);
#ifdef __cplusplus
extern "C" {
#endif
extern int Transform_Sha256_SSE2_Sha(wc_Sha256 *sha256,
const byte* data);
extern int Transform_Sha256_SSE2_Sha_Len(wc_Sha256* sha256,
const byte* data, word32 len);
#if defined(HAVE_INTEL_AVX1)
extern int Transform_Sha256_AVX1_Sha(wc_Sha256 *sha256,
const byte* data);
extern int Transform_Sha256_AVX1_Sha_Len(wc_Sha256* sha256,
const byte* data, word32 len);
extern int Transform_Sha256_AVX1(wc_Sha256 *sha256, const byte* data);
extern int Transform_Sha256_AVX1_Len(wc_Sha256* sha256,
const byte* data, word32 len);
#endif
#if defined(HAVE_INTEL_AVX2)
extern int Transform_Sha256_AVX2(wc_Sha256 *sha256, const byte* data);
extern int Transform_Sha256_AVX2_Len(wc_Sha256* sha256,
const byte* data, word32 len);
#ifdef HAVE_INTEL_RORX
extern int Transform_Sha256_AVX1_RORX(wc_Sha256 *sha256, const byte* data);
extern int Transform_Sha256_AVX1_RORX_Len(wc_Sha256* sha256,
const byte* data, word32 len);
extern int Transform_Sha256_AVX2_RORX(wc_Sha256 *sha256, const byte* data);
extern int Transform_Sha256_AVX2_RORX_Len(wc_Sha256* sha256,
const byte* data, word32 len);
#endif /* HAVE_INTEL_RORX */
#endif /* HAVE_INTEL_AVX2 */
#ifdef __cplusplus
} /* extern "C" */
#endif
static cpuid_flags_t intel_flags = WC_CPUID_INITIALIZER;
#if defined(WC_C_DYNAMIC_FALLBACK) && !defined(WC_NO_INTERNAL_FUNCTION_POINTERS)
#define WC_NO_INTERNAL_FUNCTION_POINTERS
#endif
#ifdef WC_NO_INTERNAL_FUNCTION_POINTERS
enum sha_methods { SHA256_UNSET = 0, SHA256_AVX1_SHA, SHA256_AVX2,
SHA256_AVX1_RORX, SHA256_AVX1_NOSHA, SHA256_AVX2_RORX,
SHA256_SSE2, SHA256_C };
#ifndef WC_C_DYNAMIC_FALLBACK
/* note that all write access to this static variable must be idempotent,
* as arranged by Sha256_SetTransform(), else it will be susceptible to
* data races.
*/
static enum sha_methods sha_method = SHA256_UNSET;
#endif
static void Sha256_SetTransform(SHA256_SETTRANSFORM_ARGS)
{
#ifdef WC_C_DYNAMIC_FALLBACK
#define SHA_METHOD (*sha_method)
#else
#define SHA_METHOD sha_method
#endif
if (SHA_METHOD != SHA256_UNSET)
return;
#ifdef WC_C_DYNAMIC_FALLBACK
if (! CAN_SAVE_VECTOR_REGISTERS()) {
SHA_METHOD = SHA256_C;
return;
}
#endif
cpuid_get_flags_ex(&intel_flags);
if (IS_INTEL_SHA(intel_flags)) {
#ifdef HAVE_INTEL_AVX1
if (IS_INTEL_AVX1(intel_flags)) {
SHA_METHOD = SHA256_AVX1_SHA;
}
else
#endif
{
SHA_METHOD = SHA256_SSE2;
}
}
else
#ifdef HAVE_INTEL_AVX2
if (IS_INTEL_AVX2(intel_flags)) {
#ifdef HAVE_INTEL_RORX
if (IS_INTEL_BMI2(intel_flags)) {
SHA_METHOD = SHA256_AVX2_RORX;
}
else
#endif
{
SHA_METHOD = SHA256_AVX2;
}
}
else
#endif
#ifdef HAVE_INTEL_AVX1
if (IS_INTEL_AVX1(intel_flags)) {
#ifdef HAVE_INTEL_RORX
if (IS_INTEL_BMI2(intel_flags)) {
SHA_METHOD = SHA256_AVX1_RORX;
}
else
#endif
{
SHA_METHOD = SHA256_AVX1_NOSHA;
}
}
else
#endif
{
SHA_METHOD = SHA256_C;
}
#undef SHA_METHOD
}
static WC_INLINE int inline_XTRANSFORM(wc_Sha256* S, const byte* D) {
#ifdef WC_C_DYNAMIC_FALLBACK
#define SHA_METHOD (S->sha_method)
#else
#define SHA_METHOD sha_method
#endif
int ret;
if (SHA_METHOD == SHA256_C)
return Transform_Sha256(S, D);
SAVE_VECTOR_REGISTERS(return _svr_ret;);
switch (SHA_METHOD) {
case SHA256_AVX2:
ret = Transform_Sha256_AVX2(S, D);
break;
case SHA256_AVX2_RORX:
ret = Transform_Sha256_AVX2_RORX(S, D);
break;
case SHA256_AVX1_SHA:
ret = Transform_Sha256_AVX1_Sha(S, D);
break;
case SHA256_AVX1_NOSHA:
ret = Transform_Sha256_AVX1(S, D);
break;
case SHA256_AVX1_RORX:
ret = Transform_Sha256_AVX1_RORX(S, D);
break;
case SHA256_SSE2:
ret = Transform_Sha256_SSE2_Sha(S, D);
break;
case SHA256_C:
case SHA256_UNSET:
default:
ret = Transform_Sha256(S, D);
break;
}
RESTORE_VECTOR_REGISTERS();
return ret;
#undef SHA_METHOD
}
#define XTRANSFORM(...) inline_XTRANSFORM(__VA_ARGS__)
static WC_INLINE int inline_XTRANSFORM_LEN(wc_Sha256* S, const byte* D, word32 L) {
#ifdef WC_C_DYNAMIC_FALLBACK
#define SHA_METHOD (S->sha_method)
#else
#define SHA_METHOD sha_method
#endif
int ret;
SAVE_VECTOR_REGISTERS(return _svr_ret;);
switch (SHA_METHOD) {
case SHA256_AVX2:
ret = Transform_Sha256_AVX2_Len(S, D, L);
break;
case SHA256_AVX2_RORX:
ret = Transform_Sha256_AVX2_RORX_Len(S, D, L);
break;
case SHA256_AVX1_SHA:
ret = Transform_Sha256_AVX1_Sha_Len(S, D, L);
break;
case SHA256_AVX1_NOSHA:
ret = Transform_Sha256_AVX1_Len(S, D, L);
break;
case SHA256_AVX1_RORX:
ret = Transform_Sha256_AVX1_RORX_Len(S, D, L);
break;
case SHA256_SSE2:
ret = Transform_Sha256_SSE2_Sha_Len(S, D, L);
break;
case SHA256_C:
case SHA256_UNSET:
default:
ret = 0;
break;
}
RESTORE_VECTOR_REGISTERS();
return ret;
#undef SHA_METHOD
}
#define XTRANSFORM_LEN(...) inline_XTRANSFORM_LEN(__VA_ARGS__)
#else /* !WC_NO_INTERNAL_FUNCTION_POINTERS */
static int (*Transform_Sha256_p)(wc_Sha256* sha256, const byte* data);
/* = _Transform_Sha256 */
static int (*Transform_Sha256_Len_p)(wc_Sha256* sha256, const byte* data,
word32 len);
/* = NULL */
static int transform_check = 0;
static int Transform_Sha256_is_vectorized = 0;
static WC_INLINE int inline_XTRANSFORM(wc_Sha256* S, const byte* D) {
int ret;
#ifdef WOLFSSL_USE_SAVE_VECTOR_REGISTERS
if (Transform_Sha256_is_vectorized)
SAVE_VECTOR_REGISTERS(return _svr_ret;);
#endif
ret = (*Transform_Sha256_p)(S, D);
#ifdef WOLFSSL_USE_SAVE_VECTOR_REGISTERS
if (Transform_Sha256_is_vectorized)
RESTORE_VECTOR_REGISTERS();
#endif
return ret;
}
#define XTRANSFORM(...) inline_XTRANSFORM(__VA_ARGS__)
static WC_INLINE int inline_XTRANSFORM_LEN(wc_Sha256* S, const byte* D, word32 L) {
int ret;
#ifdef WOLFSSL_USE_SAVE_VECTOR_REGISTERS
if (Transform_Sha256_is_vectorized)
SAVE_VECTOR_REGISTERS(return _svr_ret;);
#endif
ret = (*Transform_Sha256_Len_p)(S, D, L);
#ifdef WOLFSSL_USE_SAVE_VECTOR_REGISTERS
if (Transform_Sha256_is_vectorized)
RESTORE_VECTOR_REGISTERS();
#endif
return ret;
}
#define XTRANSFORM_LEN(...) inline_XTRANSFORM_LEN(__VA_ARGS__)
static void Sha256_SetTransform(void)
{
if (transform_check)
return;
cpuid_get_flags_ex(&intel_flags);
if (IS_INTEL_SHA(intel_flags)) {
#ifdef HAVE_INTEL_AVX1
if (IS_INTEL_AVX1(intel_flags)) {
Transform_Sha256_p = Transform_Sha256_AVX1_Sha;
Transform_Sha256_Len_p = Transform_Sha256_AVX1_Sha_Len;
Transform_Sha256_is_vectorized = 1;
}
else
#endif
{
Transform_Sha256_p = Transform_Sha256_SSE2_Sha;
Transform_Sha256_Len_p = Transform_Sha256_SSE2_Sha_Len;
Transform_Sha256_is_vectorized = 1;
}
}
else
#ifdef HAVE_INTEL_AVX2
if (IS_INTEL_AVX2(intel_flags)) {
#ifdef HAVE_INTEL_RORX
if (IS_INTEL_BMI2(intel_flags)) {
Transform_Sha256_p = Transform_Sha256_AVX2_RORX;
Transform_Sha256_Len_p = Transform_Sha256_AVX2_RORX_Len;
Transform_Sha256_is_vectorized = 1;
}
else
#endif
{
Transform_Sha256_p = Transform_Sha256_AVX2;
Transform_Sha256_Len_p = Transform_Sha256_AVX2_Len;
Transform_Sha256_is_vectorized = 1;
}
}
else
#endif
#ifdef HAVE_INTEL_AVX1
if (IS_INTEL_AVX1(intel_flags)) {
#ifdef HAVE_INTEL_RORX
if (IS_INTEL_BMI2(intel_flags)) {
Transform_Sha256_p = Transform_Sha256_AVX1_RORX;
Transform_Sha256_Len_p = Transform_Sha256_AVX1_RORX_Len;
Transform_Sha256_is_vectorized = 1;
}
else
#endif
{
Transform_Sha256_p = Transform_Sha256_AVX1;
Transform_Sha256_Len_p = Transform_Sha256_AVX1_Len;
Transform_Sha256_is_vectorized = 1;
}
}
else
#endif
{
Transform_Sha256_p = Transform_Sha256;
Transform_Sha256_Len_p = NULL;
Transform_Sha256_is_vectorized = 0;
}
transform_check = 1;
}
#endif /* !WC_NO_INTERNAL_FUNCTION_POINTERS */
#if !defined(WOLFSSL_KCAPI_HASH)
int wc_InitSha256_ex(wc_Sha256* sha256, void* heap, int devId)
{
int ret = 0;
if (sha256 == NULL)
return BAD_FUNC_ARG;
sha256->heap = heap;
#ifdef WOLF_CRYPTO_CB
sha256->devId = devId;
sha256->devCtx = NULL;
#endif
#ifdef WOLFSSL_SMALL_STACK_CACHE
sha256->W = (word32*)XMALLOC(sizeof(word32) * WC_SHA256_BLOCK_SIZE,
sha256->heap, DYNAMIC_TYPE_DIGEST);
if (sha256->W == NULL)
return MEMORY_E;
#endif
ret = InitSha256(sha256);
if (ret != 0)
return ret;
#if defined(WOLFSSL_ASYNC_CRYPT) && defined(WC_ASYNC_ENABLE_SHA256)
ret = wolfAsync_DevCtxInit(&sha256->asyncDev,
WOLFSSL_ASYNC_MARKER_SHA256, sha256->heap, devId);
#else
(void)devId;
#endif /* WOLFSSL_ASYNC_CRYPT */
return ret;
}
#endif /* !WOLFSSL_KCAPI_HASH */
#elif defined(FREESCALE_LTC_SHA)
int wc_InitSha256_ex(wc_Sha256* sha256, void* heap, int devId)
{
(void)heap;
(void)devId;
LTC_HASH_Init(LTC_BASE, &sha256->ctx, kLTC_Sha256, NULL, 0);
return 0;
}
#elif defined(FREESCALE_MMCAU_SHA)
#ifdef FREESCALE_MMCAU_CLASSIC_SHA
#include "cau_api.h"
#else
#include "fsl_mmcau.h"
#endif
#define XTRANSFORM(S, D) Transform_Sha256((S),(D))
#define XTRANSFORM_LEN(S, D, L) Transform_Sha256_Len((S),(D),(L))
#ifndef WC_HASH_DATA_ALIGNMENT
/* these hardware API's require 4 byte (word32) alignment */
#define WC_HASH_DATA_ALIGNMENT 4
#endif
int wc_InitSha256_ex(wc_Sha256* sha256, void* heap, int devId)
{
int ret = 0;
(void)heap;
(void)devId;
ret = wolfSSL_CryptHwMutexLock();
if (ret != 0) {
return ret;
}
#ifdef FREESCALE_MMCAU_CLASSIC_SHA
cau_sha256_initialize_output(sha256->digest);
#else
MMCAU_SHA256_InitializeOutput((uint32_t*)sha256->digest);
#endif
wolfSSL_CryptHwMutexUnLock();
sha256->buffLen = 0;
sha256->loLen = 0;
sha256->hiLen = 0;
#ifdef WOLFSSL_SMALL_STACK_CACHE
sha256->W = NULL;
#endif
return ret;
}
static int Transform_Sha256(wc_Sha256* sha256, const byte* data)
{
int ret = wolfSSL_CryptHwMutexLock();
if (ret == 0) {
#ifdef FREESCALE_MMCAU_CLASSIC_SHA
cau_sha256_hash_n((byte*)data, 1, sha256->digest);
#else
MMCAU_SHA256_HashN((byte*)data, 1, (uint32_t*)sha256->digest);
#endif
wolfSSL_CryptHwMutexUnLock();
}
return ret;
}
static int Transform_Sha256_Len(wc_Sha256* sha256, const byte* data,
word32 len)
{
int ret = wolfSSL_CryptHwMutexLock();
if (ret == 0) {
#if defined(WC_HASH_DATA_ALIGNMENT) && WC_HASH_DATA_ALIGNMENT > 0
if ((wc_ptr_t)data % WC_HASH_DATA_ALIGNMENT) {
/* data pointer is NOT aligned,
* so copy and perform one block at a time */
byte* local = (byte*)sha256->buffer;
while (len >= WC_SHA256_BLOCK_SIZE) {
XMEMCPY(local, data, WC_SHA256_BLOCK_SIZE);
#ifdef FREESCALE_MMCAU_CLASSIC_SHA
cau_sha256_hash_n(local, 1, sha256->digest);
#else
MMCAU_SHA256_HashN(local, 1, (uint32_t*)sha256->digest);
#endif
data += WC_SHA256_BLOCK_SIZE;
len -= WC_SHA256_BLOCK_SIZE;
}
}
else
#endif
{
#ifdef FREESCALE_MMCAU_CLASSIC_SHA
cau_sha256_hash_n((byte*)data, len/WC_SHA256_BLOCK_SIZE,
sha256->digest);
#else
MMCAU_SHA256_HashN((byte*)data, len/WC_SHA256_BLOCK_SIZE,
(uint32_t*)sha256->digest);
#endif
}
wolfSSL_CryptHwMutexUnLock();
}
return ret;
}
#elif defined(WOLFSSL_PIC32MZ_HASH)
#include <wolfssl/wolfcrypt/port/pic32/pic32mz-crypt.h>
#elif defined(STM32_HASH_SHA2)
/* Supports CubeMX HAL or Standard Peripheral Library */
int wc_InitSha256_ex(wc_Sha256* sha256, void* heap, int devId)
{
if (sha256 == NULL)
return BAD_FUNC_ARG;
(void)devId;
(void)heap;
XMEMSET(sha256, 0, sizeof(wc_Sha256));
wc_Stm32_Hash_Init(&sha256->stmCtx);
return 0;
}
int wc_Sha256Update(wc_Sha256* sha256, const byte* data, word32 len)
{
int ret = 0;
if (sha256 == NULL) {
return BAD_FUNC_ARG;
}
if (data == NULL && len == 0) {
/* valid, but do nothing */
return 0;
}
if (data == NULL) {
return BAD_FUNC_ARG;
}
ret = wolfSSL_CryptHwMutexLock();
if (ret == 0) {
ret = wc_Stm32_Hash_Update(&sha256->stmCtx,
HASH_AlgoSelection_SHA256, data, len, WC_SHA256_BLOCK_SIZE);
wolfSSL_CryptHwMutexUnLock();
}
return ret;
}
int wc_Sha256Final(wc_Sha256* sha256, byte* hash)
{
int ret = 0;
if (sha256 == NULL || hash == NULL) {
return BAD_FUNC_ARG;
}
ret = wolfSSL_CryptHwMutexLock();
if (ret == 0) {
ret = wc_Stm32_Hash_Final(&sha256->stmCtx,
HASH_AlgoSelection_SHA256, hash, WC_SHA256_DIGEST_SIZE);
wolfSSL_CryptHwMutexUnLock();
}
(void)wc_InitSha256(sha256); /* reset state */
return ret;
}
#elif defined(WOLFSSL_IMX6_CAAM) && !defined(NO_IMX6_CAAM_HASH) && \
!defined(WOLFSSL_QNX_CAAM)
/* functions defined in wolfcrypt/src/port/caam/caam_sha256.c */
#elif defined(WOLFSSL_SE050) && defined(WOLFSSL_SE050_HASH)
int wc_InitSha256_ex(wc_Sha256* sha256, void* heap, int devId)
{
if (sha256 == NULL) {
return BAD_FUNC_ARG;
}
(void)devId;
return se050_hash_init(&sha256->se050Ctx, heap);
}
int wc_Sha256Update(wc_Sha256* sha256, const byte* data, word32 len)
{
if (sha256 == NULL) {
return BAD_FUNC_ARG;
}
if (data == NULL && len == 0) {
/* valid, but do nothing */
return 0;
}
if (data == NULL) {
return BAD_FUNC_ARG;
}
return se050_hash_update(&sha256->se050Ctx, data, len);
}
int wc_Sha256Final(wc_Sha256* sha256, byte* hash)
{
int ret = 0;
ret = se050_hash_final(&sha256->se050Ctx, hash, WC_SHA256_DIGEST_SIZE,
kAlgorithm_SSS_SHA256);
return ret;
}
#elif defined(WOLFSSL_AFALG_HASH)
/* implemented in wolfcrypt/src/port/af_alg/afalg_hash.c */
#elif defined(WOLFSSL_DEVCRYPTO_HASH)
/* implemented in wolfcrypt/src/port/devcrypto/devcrypt_hash.c */
#elif defined(WOLFSSL_SCE) && !defined(WOLFSSL_SCE_NO_HASH)
#include "hal_data.h"
#ifndef WOLFSSL_SCE_SHA256_HANDLE
#define WOLFSSL_SCE_SHA256_HANDLE g_sce_hash_0
#endif
#define WC_SHA256_DIGEST_WORD_SIZE 16
#define XTRANSFORM(S, D) wc_Sha256SCE_XTRANSFORM((S), (D))
static int wc_Sha256SCE_XTRANSFORM(wc_Sha256* sha256, const byte* data)
{
if (WOLFSSL_SCE_GSCE_HANDLE.p_cfg->endian_flag ==
CRYPTO_WORD_ENDIAN_LITTLE)
{
ByteReverseWords((word32*)data, (word32*)data,
WC_SHA256_BLOCK_SIZE);
ByteReverseWords(sha256->digest, sha256->digest,
WC_SHA256_DIGEST_SIZE);
}
if (WOLFSSL_SCE_SHA256_HANDLE.p_api->hashUpdate(
WOLFSSL_SCE_SHA256_HANDLE.p_ctrl, (word32*)data,
WC_SHA256_DIGEST_WORD_SIZE, sha256->digest) != SSP_SUCCESS){
WOLFSSL_MSG("Unexpected hardware return value");
return WC_HW_E;
}
if (WOLFSSL_SCE_GSCE_HANDLE.p_cfg->endian_flag ==
CRYPTO_WORD_ENDIAN_LITTLE)
{
ByteReverseWords((word32*)data, (word32*)data,
WC_SHA256_BLOCK_SIZE);
ByteReverseWords(sha256->digest, sha256->digest,
WC_SHA256_DIGEST_SIZE);
}
return 0;
}
int wc_InitSha256_ex(wc_Sha256* sha256, void* heap, int devId)
{
int ret = 0;
if (sha256 == NULL)
return BAD_FUNC_ARG;
sha256->heap = heap;
ret = InitSha256(sha256);
if (ret != 0)
return ret;
(void)devId;
return ret;
}
#elif defined(WOLFSSL_USE_ESP32_CRYPT_HASH_HW)
/* HW may fail since there's only one, so we still need SW */
#define NEED_SOFT_SHA256
/*
** An Espressif-specific InitSha256()
**
** soft SHA needs initialization digest, but HW does not.
*/
static int InitSha256(wc_Sha256* sha256)
{
int ret = 0; /* zero = success */
/* We may or may not need initial digest for HW.
* Always needed for SW-only. */
sha256->digest[0] = 0x6A09E667L;
sha256->digest[1] = 0xBB67AE85L;
sha256->digest[2] = 0x3C6EF372L;
sha256->digest[3] = 0xA54FF53AL;
sha256->digest[4] = 0x510E527FL;
sha256->digest[5] = 0x9B05688CL;
sha256->digest[6] = 0x1F83D9ABL;
sha256->digest[7] = 0x5BE0CD19L;