X-Git-Url: http://pilppa.org/gitweb/gitweb.cgi?a=blobdiff_plain;f=drivers%2Fcrypto%2Fpadlock-sha.c;h=c666b4e0933e422442e57abd833db4641c4c6949;hb=bf0f97025c7306870b86ccd63669aa278e7ec1c2;hp=f7010038033beb826fddcad08d92488921c3a1fb;hpb=6c833275152b454d311f0e70b5e6bf028b4a2aaf;p=linux-2.6-omap-h63xx.git diff --git a/drivers/crypto/padlock-sha.c b/drivers/crypto/padlock-sha.c index f7010038033..c666b4e0933 100644 --- a/drivers/crypto/padlock-sha.c +++ b/drivers/crypto/padlock-sha.c @@ -12,10 +12,12 @@ * */ +#include +#include +#include #include #include #include -#include #include #include #include @@ -23,35 +25,19 @@ #include "padlock.h" #define SHA1_DEFAULT_FALLBACK "sha1-generic" -#define SHA1_DIGEST_SIZE 20 -#define SHA1_HMAC_BLOCK_SIZE 64 - #define SHA256_DEFAULT_FALLBACK "sha256-generic" -#define SHA256_DIGEST_SIZE 32 -#define SHA256_HMAC_BLOCK_SIZE 64 - -static char *sha1_fallback = SHA1_DEFAULT_FALLBACK; -static char *sha256_fallback = SHA256_DEFAULT_FALLBACK; - -module_param(sha1_fallback, charp, 0644); -module_param(sha256_fallback, charp, 0644); - -MODULE_PARM_DESC(sha1_fallback, "Fallback driver for SHA1. Default is " - SHA1_DEFAULT_FALLBACK); -MODULE_PARM_DESC(sha256_fallback, "Fallback driver for SHA256. Default is " - SHA256_DEFAULT_FALLBACK); struct padlock_sha_ctx { char *data; size_t used; int bypass; void (*f_sha_padlock)(const char *in, char *out, int count); - struct crypto_tfm *fallback_tfm; + struct hash_desc fallback; }; static inline struct padlock_sha_ctx *ctx(struct crypto_tfm *tfm) { - return (struct padlock_sha_ctx *)(crypto_tfm_ctx(tfm)); + return crypto_tfm_ctx(tfm); } /* We'll need aligned address on the stack */ @@ -65,14 +51,12 @@ static void padlock_sha_bypass(struct crypto_tfm *tfm) if (ctx(tfm)->bypass) return; - BUG_ON(!ctx(tfm)->fallback_tfm); - - crypto_digest_init(ctx(tfm)->fallback_tfm); + crypto_hash_init(&ctx(tfm)->fallback); if (ctx(tfm)->data && ctx(tfm)->used) { struct scatterlist sg; - sg_set_buf(&sg, ctx(tfm)->data, ctx(tfm)->used); - crypto_digest_update(ctx(tfm)->fallback_tfm, &sg, 1); + sg_init_one(&sg, ctx(tfm)->data, ctx(tfm)->used); + crypto_hash_update(&ctx(tfm)->fallback, &sg, sg.length); } ctx(tfm)->used = 0; @@ -95,9 +79,8 @@ static void padlock_sha_update(struct crypto_tfm *tfm, if (unlikely(ctx(tfm)->bypass)) { struct scatterlist sg; - BUG_ON(!ctx(tfm)->fallback_tfm); - sg_set_buf(&sg, (uint8_t *)data, length); - crypto_digest_update(ctx(tfm)->fallback_tfm, &sg, 1); + sg_init_one(&sg, (uint8_t *)data, length); + crypto_hash_update(&ctx(tfm)->fallback, &sg, length); return; } @@ -112,7 +95,7 @@ static inline void padlock_output_block(uint32_t *src, *dst++ = swab32(*src++); } -void padlock_do_sha1(const char *in, char *out, int count) +static void padlock_do_sha1(const char *in, char *out, int count) { /* We can't store directly to *out as it may be unaligned. */ /* BTW Don't reduce the buffer size below 128 Bytes! @@ -120,11 +103,11 @@ void padlock_do_sha1(const char *in, char *out, int count) char buf[128+16]; char *result = NEAREST_ALIGNED(buf); - ((uint32_t *)result)[0] = 0x67452301; - ((uint32_t *)result)[1] = 0xEFCDAB89; - ((uint32_t *)result)[2] = 0x98BADCFE; - ((uint32_t *)result)[3] = 0x10325476; - ((uint32_t *)result)[4] = 0xC3D2E1F0; + ((uint32_t *)result)[0] = SHA1_H0; + ((uint32_t *)result)[1] = SHA1_H1; + ((uint32_t *)result)[2] = SHA1_H2; + ((uint32_t *)result)[3] = SHA1_H3; + ((uint32_t *)result)[4] = SHA1_H4; asm volatile (".byte 0xf3,0x0f,0xa6,0xc8" /* rep xsha1 */ : "+S"(in), "+D"(result) @@ -133,7 +116,7 @@ void padlock_do_sha1(const char *in, char *out, int count) padlock_output_block((uint32_t *)result, (uint32_t *)out, 5); } -void padlock_do_sha256(const char *in, char *out, int count) +static void padlock_do_sha256(const char *in, char *out, int count) { /* We can't store directly to *out as it may be unaligned. */ /* BTW Don't reduce the buffer size below 128 Bytes! @@ -141,14 +124,14 @@ void padlock_do_sha256(const char *in, char *out, int count) char buf[128+16]; char *result = NEAREST_ALIGNED(buf); - ((uint32_t *)result)[0] = 0x6A09E667; - ((uint32_t *)result)[1] = 0xBB67AE85; - ((uint32_t *)result)[2] = 0x3C6EF372; - ((uint32_t *)result)[3] = 0xA54FF53A; - ((uint32_t *)result)[4] = 0x510E527F; - ((uint32_t *)result)[5] = 0x9B05688C; - ((uint32_t *)result)[6] = 0x1F83D9AB; - ((uint32_t *)result)[7] = 0x5BE0CD19; + ((uint32_t *)result)[0] = SHA256_H0; + ((uint32_t *)result)[1] = SHA256_H1; + ((uint32_t *)result)[2] = SHA256_H2; + ((uint32_t *)result)[3] = SHA256_H3; + ((uint32_t *)result)[4] = SHA256_H4; + ((uint32_t *)result)[5] = SHA256_H5; + ((uint32_t *)result)[6] = SHA256_H6; + ((uint32_t *)result)[7] = SHA256_H7; asm volatile (".byte 0xf3,0x0f,0xa6,0xd0" /* rep xsha256 */ : "+S"(in), "+D"(result) @@ -160,8 +143,7 @@ void padlock_do_sha256(const char *in, char *out, int count) static void padlock_sha_final(struct crypto_tfm *tfm, uint8_t *out) { if (unlikely(ctx(tfm)->bypass)) { - BUG_ON(!ctx(tfm)->fallback_tfm); - crypto_digest_final(ctx(tfm)->fallback_tfm, out); + crypto_hash_final(&ctx(tfm)->fallback, out); ctx(tfm)->bypass = 0; return; } @@ -172,8 +154,11 @@ static void padlock_sha_final(struct crypto_tfm *tfm, uint8_t *out) ctx(tfm)->used = 0; } -static int padlock_cra_init(struct crypto_tfm *tfm, const char *fallback_driver_name) +static int padlock_cra_init(struct crypto_tfm *tfm) { + const char *fallback_driver_name = tfm->__crt_alg->cra_name; + struct crypto_hash *fallback_tfm; + /* For now we'll allocate one page. This * could eventually be configurable one day. */ ctx(tfm)->data = (char *)__get_free_page(GFP_KERNEL); @@ -181,14 +166,17 @@ static int padlock_cra_init(struct crypto_tfm *tfm, const char *fallback_driver_ return -ENOMEM; /* Allocate a fallback and abort if it failed. */ - ctx(tfm)->fallback_tfm = crypto_alloc_tfm(fallback_driver_name, 0); - if (!ctx(tfm)->fallback_tfm) { + fallback_tfm = crypto_alloc_hash(fallback_driver_name, 0, + CRYPTO_ALG_ASYNC | + CRYPTO_ALG_NEED_FALLBACK); + if (IS_ERR(fallback_tfm)) { printk(KERN_WARNING PFX "Fallback driver '%s' could not be loaded!\n", fallback_driver_name); free_page((unsigned long)(ctx(tfm)->data)); - return -ENOENT; + return PTR_ERR(fallback_tfm); } + ctx(tfm)->fallback.tfm = fallback_tfm; return 0; } @@ -196,14 +184,14 @@ static int padlock_sha1_cra_init(struct crypto_tfm *tfm) { ctx(tfm)->f_sha_padlock = padlock_do_sha1; - return padlock_cra_init(tfm, sha1_fallback); + return padlock_cra_init(tfm); } static int padlock_sha256_cra_init(struct crypto_tfm *tfm) { ctx(tfm)->f_sha_padlock = padlock_do_sha256; - return padlock_cra_init(tfm, sha256_fallback); + return padlock_cra_init(tfm); } static void padlock_cra_exit(struct crypto_tfm *tfm) @@ -213,17 +201,17 @@ static void padlock_cra_exit(struct crypto_tfm *tfm) ctx(tfm)->data = NULL; } - BUG_ON(!ctx(tfm)->fallback_tfm); - crypto_free_tfm(ctx(tfm)->fallback_tfm); - ctx(tfm)->fallback_tfm = NULL; + crypto_free_hash(ctx(tfm)->fallback.tfm); + ctx(tfm)->fallback.tfm = NULL; } static struct crypto_alg sha1_alg = { .cra_name = "sha1", .cra_driver_name = "sha1-padlock", .cra_priority = PADLOCK_CRA_PRIORITY, - .cra_flags = CRYPTO_ALG_TYPE_DIGEST, - .cra_blocksize = SHA1_HMAC_BLOCK_SIZE, + .cra_flags = CRYPTO_ALG_TYPE_DIGEST | + CRYPTO_ALG_NEED_FALLBACK, + .cra_blocksize = SHA1_BLOCK_SIZE, .cra_ctxsize = sizeof(struct padlock_sha_ctx), .cra_module = THIS_MODULE, .cra_list = LIST_HEAD_INIT(sha1_alg.cra_list), @@ -243,8 +231,9 @@ static struct crypto_alg sha256_alg = { .cra_name = "sha256", .cra_driver_name = "sha256-padlock", .cra_priority = PADLOCK_CRA_PRIORITY, - .cra_flags = CRYPTO_ALG_TYPE_DIGEST, - .cra_blocksize = SHA256_HMAC_BLOCK_SIZE, + .cra_flags = CRYPTO_ALG_TYPE_DIGEST | + CRYPTO_ALG_NEED_FALLBACK, + .cra_blocksize = SHA256_BLOCK_SIZE, .cra_ctxsize = sizeof(struct padlock_sha_ctx), .cra_module = THIS_MODULE, .cra_list = LIST_HEAD_INIT(sha256_alg.cra_list), @@ -260,33 +249,6 @@ static struct crypto_alg sha256_alg = { } }; -static void __init padlock_sha_check_fallbacks(void) -{ - static struct crypto_tfm *tfm_sha1, *tfm_sha256; - - /* We'll try to allocate one TFM for each fallback - * to test that the modules are available. */ - tfm_sha1 = crypto_alloc_tfm(sha1_fallback, 0); - if (!tfm_sha1) { - printk(KERN_WARNING PFX "Couldn't load fallback module for '%s'. Tried '%s'.\n", - sha1_alg.cra_name, sha1_fallback); - } else { - printk(KERN_NOTICE PFX "Fallback for '%s' is driver '%s' (prio=%d)\n", sha1_alg.cra_name, - crypto_tfm_alg_driver_name(tfm_sha1), crypto_tfm_alg_priority(tfm_sha1)); - crypto_free_tfm(tfm_sha1); - } - - tfm_sha256 = crypto_alloc_tfm(sha256_fallback, 0); - if (!tfm_sha256) { - printk(KERN_WARNING PFX "Couldn't load fallback module for '%s'. Tried '%s'.\n", - sha256_alg.cra_name, sha256_fallback); - } else { - printk(KERN_NOTICE PFX "Fallback for '%s' is driver '%s' (prio=%d)\n", sha256_alg.cra_name, - crypto_tfm_alg_driver_name(tfm_sha256), crypto_tfm_alg_priority(tfm_sha256)); - crypto_free_tfm(tfm_sha256); - } -} - static int __init padlock_init(void) { int rc = -ENODEV; @@ -301,8 +263,6 @@ static int __init padlock_init(void) return -ENODEV; } - padlock_sha_check_fallbacks(); - rc = crypto_register_alg(&sha1_alg); if (rc) goto out; @@ -335,5 +295,7 @@ MODULE_DESCRIPTION("VIA PadLock SHA1/SHA256 algorithms support."); MODULE_LICENSE("GPL"); MODULE_AUTHOR("Michal Ludvig"); +MODULE_ALIAS("sha1"); +MODULE_ALIAS("sha256"); MODULE_ALIAS("sha1-padlock"); MODULE_ALIAS("sha256-padlock");