Merge git://git.kernel.org/pub/scm/linux/kernel/git/herbert/crypto-2.6
* git://git.kernel.org/pub/scm/linux/kernel/git/herbert/crypto-2.6: crypto: aes-ni - Remove CRYPTO_TFM_REQ_MAY_SLEEP from fpu template crypto: aes-ni - Do not sleep when using the FPU crypto: aes-ni - Fix cbc mode IV saving crypto: padlock-aes - work around Nano CPU errata in CBC mode crypto: padlock-aes - work around Nano CPU errata in ECB mode
This commit is contained in:
commit
00d94a6a5e
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@ -845,7 +845,7 @@ ENTRY(aesni_cbc_enc)
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*/
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ENTRY(aesni_cbc_dec)
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cmp $16, LEN
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jb .Lcbc_dec_ret
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jb .Lcbc_dec_just_ret
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mov 480(KEYP), KLEN
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add $240, KEYP
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movups (IVP), IV
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@ -891,6 +891,7 @@ ENTRY(aesni_cbc_dec)
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add $16, OUTP
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cmp $16, LEN
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jge .Lcbc_dec_loop1
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movups IV, (IVP)
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.Lcbc_dec_ret:
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movups IV, (IVP)
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.Lcbc_dec_just_ret:
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ret
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@ -198,6 +198,7 @@ static int ecb_encrypt(struct blkcipher_desc *desc,
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blkcipher_walk_init(&walk, dst, src, nbytes);
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err = blkcipher_walk_virt(desc, &walk);
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desc->flags &= ~CRYPTO_TFM_REQ_MAY_SLEEP;
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kernel_fpu_begin();
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while ((nbytes = walk.nbytes)) {
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@ -221,6 +222,7 @@ static int ecb_decrypt(struct blkcipher_desc *desc,
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blkcipher_walk_init(&walk, dst, src, nbytes);
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err = blkcipher_walk_virt(desc, &walk);
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desc->flags &= ~CRYPTO_TFM_REQ_MAY_SLEEP;
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kernel_fpu_begin();
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while ((nbytes = walk.nbytes)) {
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@ -266,6 +268,7 @@ static int cbc_encrypt(struct blkcipher_desc *desc,
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blkcipher_walk_init(&walk, dst, src, nbytes);
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err = blkcipher_walk_virt(desc, &walk);
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desc->flags &= ~CRYPTO_TFM_REQ_MAY_SLEEP;
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kernel_fpu_begin();
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while ((nbytes = walk.nbytes)) {
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@ -289,6 +292,7 @@ static int cbc_decrypt(struct blkcipher_desc *desc,
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blkcipher_walk_init(&walk, dst, src, nbytes);
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err = blkcipher_walk_virt(desc, &walk);
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desc->flags &= ~CRYPTO_TFM_REQ_MAY_SLEEP;
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kernel_fpu_begin();
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while ((nbytes = walk.nbytes)) {
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@ -48,7 +48,7 @@ static int crypto_fpu_encrypt(struct blkcipher_desc *desc_in,
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struct blkcipher_desc desc = {
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.tfm = child,
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.info = desc_in->info,
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.flags = desc_in->flags,
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.flags = desc_in->flags & ~CRYPTO_TFM_REQ_MAY_SLEEP,
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};
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kernel_fpu_begin();
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@ -67,7 +67,7 @@ static int crypto_fpu_decrypt(struct blkcipher_desc *desc_in,
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struct blkcipher_desc desc = {
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.tfm = child,
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.info = desc_in->info,
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.flags = desc_in->flags,
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.flags = desc_in->flags & ~CRYPTO_TFM_REQ_MAY_SLEEP,
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};
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kernel_fpu_begin();
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@ -18,9 +18,22 @@
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#include <linux/percpu.h>
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#include <linux/smp.h>
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#include <asm/byteorder.h>
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#include <asm/processor.h>
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#include <asm/i387.h>
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#include "padlock.h"
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/*
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* Number of data blocks actually fetched for each xcrypt insn.
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* Processors with prefetch errata will fetch extra blocks.
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*/
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static unsigned int ecb_fetch_blocks = 2;
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#define MAX_ECB_FETCH_BLOCKS (8)
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#define ecb_fetch_bytes (ecb_fetch_blocks * AES_BLOCK_SIZE)
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static unsigned int cbc_fetch_blocks = 1;
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#define MAX_CBC_FETCH_BLOCKS (4)
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#define cbc_fetch_bytes (cbc_fetch_blocks * AES_BLOCK_SIZE)
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/* Control word. */
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struct cword {
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unsigned int __attribute__ ((__packed__))
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@ -172,73 +185,111 @@ static inline void padlock_store_cword(struct cword *cword)
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* should be used only inside the irq_ts_save/restore() context
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*/
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static inline void padlock_xcrypt(const u8 *input, u8 *output, void *key,
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struct cword *control_word)
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static inline void rep_xcrypt_ecb(const u8 *input, u8 *output, void *key,
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struct cword *control_word, int count)
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{
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asm volatile (".byte 0xf3,0x0f,0xa7,0xc8" /* rep xcryptecb */
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: "+S"(input), "+D"(output)
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: "d"(control_word), "b"(key), "c"(1));
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: "d"(control_word), "b"(key), "c"(count));
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}
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static void aes_crypt_copy(const u8 *in, u8 *out, u32 *key, struct cword *cword)
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static inline u8 *rep_xcrypt_cbc(const u8 *input, u8 *output, void *key,
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u8 *iv, struct cword *control_word, int count)
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{
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u8 buf[AES_BLOCK_SIZE * 2 + PADLOCK_ALIGNMENT - 1];
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asm volatile (".byte 0xf3,0x0f,0xa7,0xd0" /* rep xcryptcbc */
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: "+S" (input), "+D" (output), "+a" (iv)
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: "d" (control_word), "b" (key), "c" (count));
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return iv;
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}
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static void ecb_crypt_copy(const u8 *in, u8 *out, u32 *key,
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struct cword *cword, int count)
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{
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/*
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* Padlock prefetches extra data so we must provide mapped input buffers.
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* Assume there are at least 16 bytes of stack already in use.
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*/
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u8 buf[AES_BLOCK_SIZE * (MAX_ECB_FETCH_BLOCKS - 1) + PADLOCK_ALIGNMENT - 1];
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u8 *tmp = PTR_ALIGN(&buf[0], PADLOCK_ALIGNMENT);
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memcpy(tmp, in, AES_BLOCK_SIZE);
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padlock_xcrypt(tmp, out, key, cword);
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memcpy(tmp, in, count * AES_BLOCK_SIZE);
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rep_xcrypt_ecb(tmp, out, key, cword, count);
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}
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static inline void aes_crypt(const u8 *in, u8 *out, u32 *key,
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struct cword *cword)
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static u8 *cbc_crypt_copy(const u8 *in, u8 *out, u32 *key,
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u8 *iv, struct cword *cword, int count)
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{
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/* padlock_xcrypt requires at least two blocks of data. */
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if (unlikely(!(((unsigned long)in ^ (PAGE_SIZE - AES_BLOCK_SIZE)) &
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(PAGE_SIZE - 1)))) {
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aes_crypt_copy(in, out, key, cword);
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/*
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* Padlock prefetches extra data so we must provide mapped input buffers.
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* Assume there are at least 16 bytes of stack already in use.
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*/
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u8 buf[AES_BLOCK_SIZE * (MAX_CBC_FETCH_BLOCKS - 1) + PADLOCK_ALIGNMENT - 1];
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u8 *tmp = PTR_ALIGN(&buf[0], PADLOCK_ALIGNMENT);
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memcpy(tmp, in, count * AES_BLOCK_SIZE);
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return rep_xcrypt_cbc(tmp, out, key, iv, cword, count);
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}
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static inline void ecb_crypt(const u8 *in, u8 *out, u32 *key,
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struct cword *cword, int count)
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{
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/* Padlock in ECB mode fetches at least ecb_fetch_bytes of data.
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* We could avoid some copying here but it's probably not worth it.
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*/
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if (unlikely(((unsigned long)in & PAGE_SIZE) + ecb_fetch_bytes > PAGE_SIZE)) {
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ecb_crypt_copy(in, out, key, cword, count);
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return;
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}
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padlock_xcrypt(in, out, key, cword);
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rep_xcrypt_ecb(in, out, key, cword, count);
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}
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static inline u8 *cbc_crypt(const u8 *in, u8 *out, u32 *key,
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u8 *iv, struct cword *cword, int count)
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{
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/* Padlock in CBC mode fetches at least cbc_fetch_bytes of data. */
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if (unlikely(((unsigned long)in & PAGE_SIZE) + cbc_fetch_bytes > PAGE_SIZE))
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return cbc_crypt_copy(in, out, key, iv, cword, count);
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return rep_xcrypt_cbc(in, out, key, iv, cword, count);
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}
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static inline void padlock_xcrypt_ecb(const u8 *input, u8 *output, void *key,
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void *control_word, u32 count)
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{
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if (count == 1) {
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aes_crypt(input, output, key, control_word);
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u32 initial = count & (ecb_fetch_blocks - 1);
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if (count < ecb_fetch_blocks) {
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ecb_crypt(input, output, key, control_word, count);
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return;
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}
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asm volatile ("test $1, %%cl;"
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"je 1f;"
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#ifndef CONFIG_X86_64
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"lea -1(%%ecx), %%eax;"
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"mov $1, %%ecx;"
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#else
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"lea -1(%%rcx), %%rax;"
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"mov $1, %%rcx;"
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#endif
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".byte 0xf3,0x0f,0xa7,0xc8;" /* rep xcryptecb */
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#ifndef CONFIG_X86_64
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"mov %%eax, %%ecx;"
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#else
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"mov %%rax, %%rcx;"
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#endif
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"1:"
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".byte 0xf3,0x0f,0xa7,0xc8" /* rep xcryptecb */
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if (initial)
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asm volatile (".byte 0xf3,0x0f,0xa7,0xc8" /* rep xcryptecb */
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: "+S"(input), "+D"(output)
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: "d"(control_word), "b"(key), "c"(initial));
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asm volatile (".byte 0xf3,0x0f,0xa7,0xc8" /* rep xcryptecb */
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: "+S"(input), "+D"(output)
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: "d"(control_word), "b"(key), "c"(count)
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: "ax");
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: "d"(control_word), "b"(key), "c"(count - initial));
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}
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static inline u8 *padlock_xcrypt_cbc(const u8 *input, u8 *output, void *key,
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u8 *iv, void *control_word, u32 count)
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{
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/* rep xcryptcbc */
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asm volatile (".byte 0xf3,0x0f,0xa7,0xd0"
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u32 initial = count & (cbc_fetch_blocks - 1);
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if (count < cbc_fetch_blocks)
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return cbc_crypt(input, output, key, iv, control_word, count);
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if (initial)
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asm volatile (".byte 0xf3,0x0f,0xa7,0xd0" /* rep xcryptcbc */
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: "+S" (input), "+D" (output), "+a" (iv)
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: "d" (control_word), "b" (key), "c" (count));
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asm volatile (".byte 0xf3,0x0f,0xa7,0xd0" /* rep xcryptcbc */
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: "+S" (input), "+D" (output), "+a" (iv)
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: "d" (control_word), "b" (key), "c" (count));
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: "d" (control_word), "b" (key), "c" (count-initial));
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return iv;
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}
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@ -249,7 +300,7 @@ static void aes_encrypt(struct crypto_tfm *tfm, u8 *out, const u8 *in)
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padlock_reset_key(&ctx->cword.encrypt);
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ts_state = irq_ts_save();
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aes_crypt(in, out, ctx->E, &ctx->cword.encrypt);
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ecb_crypt(in, out, ctx->E, &ctx->cword.encrypt, 1);
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irq_ts_restore(ts_state);
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padlock_store_cword(&ctx->cword.encrypt);
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}
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@ -261,7 +312,7 @@ static void aes_decrypt(struct crypto_tfm *tfm, u8 *out, const u8 *in)
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padlock_reset_key(&ctx->cword.encrypt);
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ts_state = irq_ts_save();
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aes_crypt(in, out, ctx->D, &ctx->cword.decrypt);
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ecb_crypt(in, out, ctx->D, &ctx->cword.decrypt, 1);
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irq_ts_restore(ts_state);
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padlock_store_cword(&ctx->cword.encrypt);
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}
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@ -454,6 +505,7 @@ static struct crypto_alg cbc_aes_alg = {
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static int __init padlock_init(void)
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{
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int ret;
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struct cpuinfo_x86 *c = &cpu_data(0);
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if (!cpu_has_xcrypt) {
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printk(KERN_NOTICE PFX "VIA PadLock not detected.\n");
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@ -476,6 +528,12 @@ static int __init padlock_init(void)
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printk(KERN_NOTICE PFX "Using VIA PadLock ACE for AES algorithm.\n");
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if (c->x86 == 6 && c->x86_model == 15 && c->x86_mask == 2) {
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ecb_fetch_blocks = MAX_ECB_FETCH_BLOCKS;
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cbc_fetch_blocks = MAX_CBC_FETCH_BLOCKS;
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printk(KERN_NOTICE PFX "VIA Nano stepping 2 detected: enabling workaround.\n");
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}
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out:
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return ret;
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