1 // SPDX-License-Identifier: GPL-2.0-or-later
3 * Symmetric key cipher operations.
5 * Generic encrypt/decrypt wrapper for ciphers, handles operations across
6 * multiple page boundaries by using temporary blocks. In user context,
7 * the kernel is given a chance to schedule us once per page.
9 * Copyright (c) 2015 Herbert Xu <herbert@gondor.apana.org.au>
12 #include <crypto/internal/aead.h>
13 #include <crypto/internal/skcipher.h>
14 #include <crypto/scatterwalk.h>
15 #include <linux/bug.h>
16 #include <linux/cryptouser.h>
17 #include <linux/compiler.h>
18 #include <linux/list.h>
19 #include <linux/module.h>
20 #include <linux/rtnetlink.h>
21 #include <linux/seq_file.h>
22 #include <net/netlink.h>
27 SKCIPHER_WALK_PHYS = 1 << 0,
28 SKCIPHER_WALK_SLOW = 1 << 1,
29 SKCIPHER_WALK_COPY = 1 << 2,
30 SKCIPHER_WALK_DIFF = 1 << 3,
31 SKCIPHER_WALK_SLEEP = 1 << 4,
34 struct skcipher_walk_buffer {
35 struct list_head entry;
36 struct scatter_walk dst;
42 static int skcipher_walk_next(struct skcipher_walk *walk);
44 static inline void skcipher_unmap(struct scatter_walk *walk, void *vaddr)
46 if (PageHighMem(scatterwalk_page(walk)))
50 static inline void *skcipher_map(struct scatter_walk *walk)
52 struct page *page = scatterwalk_page(walk);
54 return (PageHighMem(page) ? kmap_atomic(page) : page_address(page)) +
55 offset_in_page(walk->offset);
58 static inline void skcipher_map_src(struct skcipher_walk *walk)
60 walk->src.virt.addr = skcipher_map(&walk->in);
63 static inline void skcipher_map_dst(struct skcipher_walk *walk)
65 walk->dst.virt.addr = skcipher_map(&walk->out);
68 static inline void skcipher_unmap_src(struct skcipher_walk *walk)
70 skcipher_unmap(&walk->in, walk->src.virt.addr);
73 static inline void skcipher_unmap_dst(struct skcipher_walk *walk)
75 skcipher_unmap(&walk->out, walk->dst.virt.addr);
78 static inline gfp_t skcipher_walk_gfp(struct skcipher_walk *walk)
80 return walk->flags & SKCIPHER_WALK_SLEEP ? GFP_KERNEL : GFP_ATOMIC;
83 /* Get a spot of the specified length that does not straddle a page.
84 * The caller needs to ensure that there is enough space for this operation.
86 static inline u8 *skcipher_get_spot(u8 *start, unsigned int len)
88 u8 *end_page = (u8 *)(((unsigned long)(start + len - 1)) & PAGE_MASK);
90 return max(start, end_page);
93 static int skcipher_done_slow(struct skcipher_walk *walk, unsigned int bsize)
97 addr = (u8 *)ALIGN((unsigned long)walk->buffer, walk->alignmask + 1);
98 addr = skcipher_get_spot(addr, bsize);
99 scatterwalk_copychunks(addr, &walk->out, bsize,
100 (walk->flags & SKCIPHER_WALK_PHYS) ? 2 : 1);
104 int skcipher_walk_done(struct skcipher_walk *walk, int err)
106 unsigned int n = walk->nbytes;
107 unsigned int nbytes = 0;
112 if (likely(err >= 0)) {
114 nbytes = walk->total - n;
117 if (likely(!(walk->flags & (SKCIPHER_WALK_PHYS |
120 SKCIPHER_WALK_DIFF)))) {
122 skcipher_unmap_src(walk);
123 } else if (walk->flags & SKCIPHER_WALK_DIFF) {
124 skcipher_unmap_dst(walk);
126 } else if (walk->flags & SKCIPHER_WALK_COPY) {
127 skcipher_map_dst(walk);
128 memcpy(walk->dst.virt.addr, walk->page, n);
129 skcipher_unmap_dst(walk);
130 } else if (unlikely(walk->flags & SKCIPHER_WALK_SLOW)) {
133 * Didn't process all bytes. Either the algorithm is
134 * broken, or this was the last step and it turned out
135 * the message wasn't evenly divisible into blocks but
136 * the algorithm requires it.
141 n = skcipher_done_slow(walk, n);
147 walk->total = nbytes;
150 scatterwalk_advance(&walk->in, n);
151 scatterwalk_advance(&walk->out, n);
152 scatterwalk_done(&walk->in, 0, nbytes);
153 scatterwalk_done(&walk->out, 1, nbytes);
156 crypto_yield(walk->flags & SKCIPHER_WALK_SLEEP ?
157 CRYPTO_TFM_REQ_MAY_SLEEP : 0);
158 return skcipher_walk_next(walk);
162 /* Short-circuit for the common/fast path. */
163 if (!((unsigned long)walk->buffer | (unsigned long)walk->page))
166 if (walk->flags & SKCIPHER_WALK_PHYS)
169 if (walk->iv != walk->oiv)
170 memcpy(walk->oiv, walk->iv, walk->ivsize);
171 if (walk->buffer != walk->page)
174 free_page((unsigned long)walk->page);
179 EXPORT_SYMBOL_GPL(skcipher_walk_done);
181 void skcipher_walk_complete(struct skcipher_walk *walk, int err)
183 struct skcipher_walk_buffer *p, *tmp;
185 list_for_each_entry_safe(p, tmp, &walk->buffers, entry) {
193 data = PTR_ALIGN(&p->buffer[0], walk->alignmask + 1);
194 data = skcipher_get_spot(data, walk->stride);
197 scatterwalk_copychunks(data, &p->dst, p->len, 1);
199 if (offset_in_page(p->data) + p->len + walk->stride >
201 free_page((unsigned long)p->data);
208 if (!err && walk->iv != walk->oiv)
209 memcpy(walk->oiv, walk->iv, walk->ivsize);
210 if (walk->buffer != walk->page)
213 free_page((unsigned long)walk->page);
215 EXPORT_SYMBOL_GPL(skcipher_walk_complete);
217 static void skcipher_queue_write(struct skcipher_walk *walk,
218 struct skcipher_walk_buffer *p)
221 list_add_tail(&p->entry, &walk->buffers);
224 static int skcipher_next_slow(struct skcipher_walk *walk, unsigned int bsize)
226 bool phys = walk->flags & SKCIPHER_WALK_PHYS;
227 unsigned alignmask = walk->alignmask;
228 struct skcipher_walk_buffer *p;
236 walk->buffer = walk->page;
237 buffer = walk->buffer;
242 /* Start with the minimum alignment of kmalloc. */
243 a = crypto_tfm_ctx_alignment() - 1;
247 /* Calculate the minimum alignment of p->buffer. */
248 a &= (sizeof(*p) ^ (sizeof(*p) - 1)) >> 1;
252 /* Minimum size to align p->buffer by alignmask. */
255 /* Minimum size to ensure p->buffer does not straddle a page. */
256 n += (bsize - 1) & ~(alignmask | a);
258 v = kzalloc(n, skcipher_walk_gfp(walk));
260 return skcipher_walk_done(walk, -ENOMEM);
265 skcipher_queue_write(walk, p);
273 walk->dst.virt.addr = PTR_ALIGN(buffer, alignmask + 1);
274 walk->dst.virt.addr = skcipher_get_spot(walk->dst.virt.addr, bsize);
275 walk->src.virt.addr = walk->dst.virt.addr;
277 scatterwalk_copychunks(walk->src.virt.addr, &walk->in, bsize, 0);
279 walk->nbytes = bsize;
280 walk->flags |= SKCIPHER_WALK_SLOW;
285 static int skcipher_next_copy(struct skcipher_walk *walk)
287 struct skcipher_walk_buffer *p;
288 u8 *tmp = walk->page;
290 skcipher_map_src(walk);
291 memcpy(tmp, walk->src.virt.addr, walk->nbytes);
292 skcipher_unmap_src(walk);
294 walk->src.virt.addr = tmp;
295 walk->dst.virt.addr = tmp;
297 if (!(walk->flags & SKCIPHER_WALK_PHYS))
300 p = kmalloc(sizeof(*p), skcipher_walk_gfp(walk));
304 p->data = walk->page;
305 p->len = walk->nbytes;
306 skcipher_queue_write(walk, p);
308 if (offset_in_page(walk->page) + walk->nbytes + walk->stride >
312 walk->page += walk->nbytes;
317 static int skcipher_next_fast(struct skcipher_walk *walk)
321 walk->src.phys.page = scatterwalk_page(&walk->in);
322 walk->src.phys.offset = offset_in_page(walk->in.offset);
323 walk->dst.phys.page = scatterwalk_page(&walk->out);
324 walk->dst.phys.offset = offset_in_page(walk->out.offset);
326 if (walk->flags & SKCIPHER_WALK_PHYS)
329 diff = walk->src.phys.offset - walk->dst.phys.offset;
330 diff |= walk->src.virt.page - walk->dst.virt.page;
332 skcipher_map_src(walk);
333 walk->dst.virt.addr = walk->src.virt.addr;
336 walk->flags |= SKCIPHER_WALK_DIFF;
337 skcipher_map_dst(walk);
343 static int skcipher_walk_next(struct skcipher_walk *walk)
349 walk->flags &= ~(SKCIPHER_WALK_SLOW | SKCIPHER_WALK_COPY |
353 bsize = min(walk->stride, max(n, walk->blocksize));
354 n = scatterwalk_clamp(&walk->in, n);
355 n = scatterwalk_clamp(&walk->out, n);
357 if (unlikely(n < bsize)) {
358 if (unlikely(walk->total < walk->blocksize))
359 return skcipher_walk_done(walk, -EINVAL);
362 err = skcipher_next_slow(walk, bsize);
363 goto set_phys_lowmem;
366 if (unlikely((walk->in.offset | walk->out.offset) & walk->alignmask)) {
368 gfp_t gfp = skcipher_walk_gfp(walk);
370 walk->page = (void *)__get_free_page(gfp);
375 walk->nbytes = min_t(unsigned, n,
376 PAGE_SIZE - offset_in_page(walk->page));
377 walk->flags |= SKCIPHER_WALK_COPY;
378 err = skcipher_next_copy(walk);
379 goto set_phys_lowmem;
384 return skcipher_next_fast(walk);
387 if (!err && (walk->flags & SKCIPHER_WALK_PHYS)) {
388 walk->src.phys.page = virt_to_page(walk->src.virt.addr);
389 walk->dst.phys.page = virt_to_page(walk->dst.virt.addr);
390 walk->src.phys.offset &= PAGE_SIZE - 1;
391 walk->dst.phys.offset &= PAGE_SIZE - 1;
396 static int skcipher_copy_iv(struct skcipher_walk *walk)
398 unsigned a = crypto_tfm_ctx_alignment() - 1;
399 unsigned alignmask = walk->alignmask;
400 unsigned ivsize = walk->ivsize;
401 unsigned bs = walk->stride;
406 aligned_bs = ALIGN(bs, alignmask + 1);
408 /* Minimum size to align buffer by alignmask. */
409 size = alignmask & ~a;
411 if (walk->flags & SKCIPHER_WALK_PHYS)
414 size += aligned_bs + ivsize;
416 /* Minimum size to ensure buffer does not straddle a page. */
417 size += (bs - 1) & ~(alignmask | a);
420 walk->buffer = kmalloc(size, skcipher_walk_gfp(walk));
424 iv = PTR_ALIGN(walk->buffer, alignmask + 1);
425 iv = skcipher_get_spot(iv, bs) + aligned_bs;
427 walk->iv = memcpy(iv, walk->iv, walk->ivsize);
431 static int skcipher_walk_first(struct skcipher_walk *walk)
433 if (WARN_ON_ONCE(in_irq()))
437 if (unlikely(((unsigned long)walk->iv & walk->alignmask))) {
438 int err = skcipher_copy_iv(walk);
445 return skcipher_walk_next(walk);
448 static int skcipher_walk_skcipher(struct skcipher_walk *walk,
449 struct skcipher_request *req)
451 struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
453 walk->total = req->cryptlen;
458 if (unlikely(!walk->total))
461 scatterwalk_start(&walk->in, req->src);
462 scatterwalk_start(&walk->out, req->dst);
464 walk->flags &= ~SKCIPHER_WALK_SLEEP;
465 walk->flags |= req->base.flags & CRYPTO_TFM_REQ_MAY_SLEEP ?
466 SKCIPHER_WALK_SLEEP : 0;
468 walk->blocksize = crypto_skcipher_blocksize(tfm);
469 walk->stride = crypto_skcipher_walksize(tfm);
470 walk->ivsize = crypto_skcipher_ivsize(tfm);
471 walk->alignmask = crypto_skcipher_alignmask(tfm);
473 return skcipher_walk_first(walk);
476 int skcipher_walk_virt(struct skcipher_walk *walk,
477 struct skcipher_request *req, bool atomic)
481 might_sleep_if(req->base.flags & CRYPTO_TFM_REQ_MAY_SLEEP);
483 walk->flags &= ~SKCIPHER_WALK_PHYS;
485 err = skcipher_walk_skcipher(walk, req);
487 walk->flags &= atomic ? ~SKCIPHER_WALK_SLEEP : ~0;
491 EXPORT_SYMBOL_GPL(skcipher_walk_virt);
493 void skcipher_walk_atomise(struct skcipher_walk *walk)
495 walk->flags &= ~SKCIPHER_WALK_SLEEP;
497 EXPORT_SYMBOL_GPL(skcipher_walk_atomise);
499 int skcipher_walk_async(struct skcipher_walk *walk,
500 struct skcipher_request *req)
502 walk->flags |= SKCIPHER_WALK_PHYS;
504 INIT_LIST_HEAD(&walk->buffers);
506 return skcipher_walk_skcipher(walk, req);
508 EXPORT_SYMBOL_GPL(skcipher_walk_async);
510 static int skcipher_walk_aead_common(struct skcipher_walk *walk,
511 struct aead_request *req, bool atomic)
513 struct crypto_aead *tfm = crypto_aead_reqtfm(req);
520 if (unlikely(!walk->total))
523 walk->flags &= ~SKCIPHER_WALK_PHYS;
525 scatterwalk_start(&walk->in, req->src);
526 scatterwalk_start(&walk->out, req->dst);
528 scatterwalk_copychunks(NULL, &walk->in, req->assoclen, 2);
529 scatterwalk_copychunks(NULL, &walk->out, req->assoclen, 2);
531 scatterwalk_done(&walk->in, 0, walk->total);
532 scatterwalk_done(&walk->out, 0, walk->total);
534 if (req->base.flags & CRYPTO_TFM_REQ_MAY_SLEEP)
535 walk->flags |= SKCIPHER_WALK_SLEEP;
537 walk->flags &= ~SKCIPHER_WALK_SLEEP;
539 walk->blocksize = crypto_aead_blocksize(tfm);
540 walk->stride = crypto_aead_chunksize(tfm);
541 walk->ivsize = crypto_aead_ivsize(tfm);
542 walk->alignmask = crypto_aead_alignmask(tfm);
544 err = skcipher_walk_first(walk);
547 walk->flags &= ~SKCIPHER_WALK_SLEEP;
552 int skcipher_walk_aead(struct skcipher_walk *walk, struct aead_request *req,
555 walk->total = req->cryptlen;
557 return skcipher_walk_aead_common(walk, req, atomic);
559 EXPORT_SYMBOL_GPL(skcipher_walk_aead);
561 int skcipher_walk_aead_encrypt(struct skcipher_walk *walk,
562 struct aead_request *req, bool atomic)
564 walk->total = req->cryptlen;
566 return skcipher_walk_aead_common(walk, req, atomic);
568 EXPORT_SYMBOL_GPL(skcipher_walk_aead_encrypt);
570 int skcipher_walk_aead_decrypt(struct skcipher_walk *walk,
571 struct aead_request *req, bool atomic)
573 struct crypto_aead *tfm = crypto_aead_reqtfm(req);
575 walk->total = req->cryptlen - crypto_aead_authsize(tfm);
577 return skcipher_walk_aead_common(walk, req, atomic);
579 EXPORT_SYMBOL_GPL(skcipher_walk_aead_decrypt);
581 static unsigned int crypto_skcipher_extsize(struct crypto_alg *alg)
583 if (alg->cra_type == &crypto_blkcipher_type)
584 return sizeof(struct crypto_blkcipher *);
586 if (alg->cra_type == &crypto_ablkcipher_type)
587 return sizeof(struct crypto_ablkcipher *);
589 return crypto_alg_extsize(alg);
592 static void skcipher_set_needkey(struct crypto_skcipher *tfm)
595 crypto_skcipher_set_flags(tfm, CRYPTO_TFM_NEED_KEY);
598 static int skcipher_setkey_blkcipher(struct crypto_skcipher *tfm,
599 const u8 *key, unsigned int keylen)
601 struct crypto_blkcipher **ctx = crypto_skcipher_ctx(tfm);
602 struct crypto_blkcipher *blkcipher = *ctx;
605 crypto_blkcipher_clear_flags(blkcipher, ~0);
606 crypto_blkcipher_set_flags(blkcipher, crypto_skcipher_get_flags(tfm) &
607 CRYPTO_TFM_REQ_MASK);
608 err = crypto_blkcipher_setkey(blkcipher, key, keylen);
609 crypto_skcipher_set_flags(tfm, crypto_blkcipher_get_flags(blkcipher) &
610 CRYPTO_TFM_RES_MASK);
612 skcipher_set_needkey(tfm);
616 crypto_skcipher_clear_flags(tfm, CRYPTO_TFM_NEED_KEY);
620 static int skcipher_crypt_blkcipher(struct skcipher_request *req,
621 int (*crypt)(struct blkcipher_desc *,
622 struct scatterlist *,
623 struct scatterlist *,
626 struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
627 struct crypto_blkcipher **ctx = crypto_skcipher_ctx(tfm);
628 struct blkcipher_desc desc = {
631 .flags = req->base.flags,
635 return crypt(&desc, req->dst, req->src, req->cryptlen);
638 static int skcipher_encrypt_blkcipher(struct skcipher_request *req)
640 struct crypto_skcipher *skcipher = crypto_skcipher_reqtfm(req);
641 struct crypto_tfm *tfm = crypto_skcipher_tfm(skcipher);
642 struct blkcipher_alg *alg = &tfm->__crt_alg->cra_blkcipher;
644 return skcipher_crypt_blkcipher(req, alg->encrypt);
647 static int skcipher_decrypt_blkcipher(struct skcipher_request *req)
649 struct crypto_skcipher *skcipher = crypto_skcipher_reqtfm(req);
650 struct crypto_tfm *tfm = crypto_skcipher_tfm(skcipher);
651 struct blkcipher_alg *alg = &tfm->__crt_alg->cra_blkcipher;
653 return skcipher_crypt_blkcipher(req, alg->decrypt);
656 static void crypto_exit_skcipher_ops_blkcipher(struct crypto_tfm *tfm)
658 struct crypto_blkcipher **ctx = crypto_tfm_ctx(tfm);
660 crypto_free_blkcipher(*ctx);
663 static int crypto_init_skcipher_ops_blkcipher(struct crypto_tfm *tfm)
665 struct crypto_alg *calg = tfm->__crt_alg;
666 struct crypto_skcipher *skcipher = __crypto_skcipher_cast(tfm);
667 struct crypto_blkcipher **ctx = crypto_tfm_ctx(tfm);
668 struct crypto_blkcipher *blkcipher;
669 struct crypto_tfm *btfm;
671 if (!crypto_mod_get(calg))
674 btfm = __crypto_alloc_tfm(calg, CRYPTO_ALG_TYPE_BLKCIPHER,
675 CRYPTO_ALG_TYPE_MASK);
677 crypto_mod_put(calg);
678 return PTR_ERR(btfm);
681 blkcipher = __crypto_blkcipher_cast(btfm);
683 tfm->exit = crypto_exit_skcipher_ops_blkcipher;
685 skcipher->setkey = skcipher_setkey_blkcipher;
686 skcipher->encrypt = skcipher_encrypt_blkcipher;
687 skcipher->decrypt = skcipher_decrypt_blkcipher;
689 skcipher->ivsize = crypto_blkcipher_ivsize(blkcipher);
690 skcipher->keysize = calg->cra_blkcipher.max_keysize;
692 skcipher_set_needkey(skcipher);
697 static int skcipher_setkey_ablkcipher(struct crypto_skcipher *tfm,
698 const u8 *key, unsigned int keylen)
700 struct crypto_ablkcipher **ctx = crypto_skcipher_ctx(tfm);
701 struct crypto_ablkcipher *ablkcipher = *ctx;
704 crypto_ablkcipher_clear_flags(ablkcipher, ~0);
705 crypto_ablkcipher_set_flags(ablkcipher,
706 crypto_skcipher_get_flags(tfm) &
707 CRYPTO_TFM_REQ_MASK);
708 err = crypto_ablkcipher_setkey(ablkcipher, key, keylen);
709 crypto_skcipher_set_flags(tfm,
710 crypto_ablkcipher_get_flags(ablkcipher) &
711 CRYPTO_TFM_RES_MASK);
713 skcipher_set_needkey(tfm);
717 crypto_skcipher_clear_flags(tfm, CRYPTO_TFM_NEED_KEY);
721 static int skcipher_crypt_ablkcipher(struct skcipher_request *req,
722 int (*crypt)(struct ablkcipher_request *))
724 struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
725 struct crypto_ablkcipher **ctx = crypto_skcipher_ctx(tfm);
726 struct ablkcipher_request *subreq = skcipher_request_ctx(req);
728 ablkcipher_request_set_tfm(subreq, *ctx);
729 ablkcipher_request_set_callback(subreq, skcipher_request_flags(req),
730 req->base.complete, req->base.data);
731 ablkcipher_request_set_crypt(subreq, req->src, req->dst, req->cryptlen,
734 return crypt(subreq);
737 static int skcipher_encrypt_ablkcipher(struct skcipher_request *req)
739 struct crypto_skcipher *skcipher = crypto_skcipher_reqtfm(req);
740 struct crypto_tfm *tfm = crypto_skcipher_tfm(skcipher);
741 struct ablkcipher_alg *alg = &tfm->__crt_alg->cra_ablkcipher;
743 return skcipher_crypt_ablkcipher(req, alg->encrypt);
746 static int skcipher_decrypt_ablkcipher(struct skcipher_request *req)
748 struct crypto_skcipher *skcipher = crypto_skcipher_reqtfm(req);
749 struct crypto_tfm *tfm = crypto_skcipher_tfm(skcipher);
750 struct ablkcipher_alg *alg = &tfm->__crt_alg->cra_ablkcipher;
752 return skcipher_crypt_ablkcipher(req, alg->decrypt);
755 static void crypto_exit_skcipher_ops_ablkcipher(struct crypto_tfm *tfm)
757 struct crypto_ablkcipher **ctx = crypto_tfm_ctx(tfm);
759 crypto_free_ablkcipher(*ctx);
762 static int crypto_init_skcipher_ops_ablkcipher(struct crypto_tfm *tfm)
764 struct crypto_alg *calg = tfm->__crt_alg;
765 struct crypto_skcipher *skcipher = __crypto_skcipher_cast(tfm);
766 struct crypto_ablkcipher **ctx = crypto_tfm_ctx(tfm);
767 struct crypto_ablkcipher *ablkcipher;
768 struct crypto_tfm *abtfm;
770 if (!crypto_mod_get(calg))
773 abtfm = __crypto_alloc_tfm(calg, 0, 0);
775 crypto_mod_put(calg);
776 return PTR_ERR(abtfm);
779 ablkcipher = __crypto_ablkcipher_cast(abtfm);
781 tfm->exit = crypto_exit_skcipher_ops_ablkcipher;
783 skcipher->setkey = skcipher_setkey_ablkcipher;
784 skcipher->encrypt = skcipher_encrypt_ablkcipher;
785 skcipher->decrypt = skcipher_decrypt_ablkcipher;
787 skcipher->ivsize = crypto_ablkcipher_ivsize(ablkcipher);
788 skcipher->reqsize = crypto_ablkcipher_reqsize(ablkcipher) +
789 sizeof(struct ablkcipher_request);
790 skcipher->keysize = calg->cra_ablkcipher.max_keysize;
792 skcipher_set_needkey(skcipher);
797 static int skcipher_setkey_unaligned(struct crypto_skcipher *tfm,
798 const u8 *key, unsigned int keylen)
800 unsigned long alignmask = crypto_skcipher_alignmask(tfm);
801 struct skcipher_alg *cipher = crypto_skcipher_alg(tfm);
802 u8 *buffer, *alignbuffer;
803 unsigned long absize;
806 absize = keylen + alignmask;
807 buffer = kmalloc(absize, GFP_ATOMIC);
811 alignbuffer = (u8 *)ALIGN((unsigned long)buffer, alignmask + 1);
812 memcpy(alignbuffer, key, keylen);
813 ret = cipher->setkey(tfm, alignbuffer, keylen);
818 static int skcipher_setkey(struct crypto_skcipher *tfm, const u8 *key,
821 struct skcipher_alg *cipher = crypto_skcipher_alg(tfm);
822 unsigned long alignmask = crypto_skcipher_alignmask(tfm);
825 if (keylen < cipher->min_keysize || keylen > cipher->max_keysize) {
826 crypto_skcipher_set_flags(tfm, CRYPTO_TFM_RES_BAD_KEY_LEN);
830 if ((unsigned long)key & alignmask)
831 err = skcipher_setkey_unaligned(tfm, key, keylen);
833 err = cipher->setkey(tfm, key, keylen);
836 skcipher_set_needkey(tfm);
840 crypto_skcipher_clear_flags(tfm, CRYPTO_TFM_NEED_KEY);
844 int crypto_skcipher_encrypt(struct skcipher_request *req)
846 struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
847 struct crypto_alg *alg = tfm->base.__crt_alg;
848 unsigned int cryptlen = req->cryptlen;
851 crypto_stats_get(alg);
852 if (crypto_skcipher_get_flags(tfm) & CRYPTO_TFM_NEED_KEY)
855 ret = tfm->encrypt(req);
856 crypto_stats_skcipher_encrypt(cryptlen, ret, alg);
859 EXPORT_SYMBOL_GPL(crypto_skcipher_encrypt);
861 int crypto_skcipher_decrypt(struct skcipher_request *req)
863 struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req);
864 struct crypto_alg *alg = tfm->base.__crt_alg;
865 unsigned int cryptlen = req->cryptlen;
868 crypto_stats_get(alg);
869 if (crypto_skcipher_get_flags(tfm) & CRYPTO_TFM_NEED_KEY)
872 ret = tfm->decrypt(req);
873 crypto_stats_skcipher_decrypt(cryptlen, ret, alg);
876 EXPORT_SYMBOL_GPL(crypto_skcipher_decrypt);
878 static void crypto_skcipher_exit_tfm(struct crypto_tfm *tfm)
880 struct crypto_skcipher *skcipher = __crypto_skcipher_cast(tfm);
881 struct skcipher_alg *alg = crypto_skcipher_alg(skcipher);
886 static int crypto_skcipher_init_tfm(struct crypto_tfm *tfm)
888 struct crypto_skcipher *skcipher = __crypto_skcipher_cast(tfm);
889 struct skcipher_alg *alg = crypto_skcipher_alg(skcipher);
891 if (tfm->__crt_alg->cra_type == &crypto_blkcipher_type)
892 return crypto_init_skcipher_ops_blkcipher(tfm);
894 if (tfm->__crt_alg->cra_type == &crypto_ablkcipher_type)
895 return crypto_init_skcipher_ops_ablkcipher(tfm);
897 skcipher->setkey = skcipher_setkey;
898 skcipher->encrypt = alg->encrypt;
899 skcipher->decrypt = alg->decrypt;
900 skcipher->ivsize = alg->ivsize;
901 skcipher->keysize = alg->max_keysize;
903 skcipher_set_needkey(skcipher);
906 skcipher->base.exit = crypto_skcipher_exit_tfm;
909 return alg->init(skcipher);
914 static void crypto_skcipher_free_instance(struct crypto_instance *inst)
916 struct skcipher_instance *skcipher =
917 container_of(inst, struct skcipher_instance, s.base);
919 skcipher->free(skcipher);
922 static void crypto_skcipher_show(struct seq_file *m, struct crypto_alg *alg)
924 static void crypto_skcipher_show(struct seq_file *m, struct crypto_alg *alg)
926 struct skcipher_alg *skcipher = container_of(alg, struct skcipher_alg,
929 seq_printf(m, "type : skcipher\n");
930 seq_printf(m, "async : %s\n",
931 alg->cra_flags & CRYPTO_ALG_ASYNC ? "yes" : "no");
932 seq_printf(m, "blocksize : %u\n", alg->cra_blocksize);
933 seq_printf(m, "min keysize : %u\n", skcipher->min_keysize);
934 seq_printf(m, "max keysize : %u\n", skcipher->max_keysize);
935 seq_printf(m, "ivsize : %u\n", skcipher->ivsize);
936 seq_printf(m, "chunksize : %u\n", skcipher->chunksize);
937 seq_printf(m, "walksize : %u\n", skcipher->walksize);
941 static int crypto_skcipher_report(struct sk_buff *skb, struct crypto_alg *alg)
943 struct crypto_report_blkcipher rblkcipher;
944 struct skcipher_alg *skcipher = container_of(alg, struct skcipher_alg,
947 memset(&rblkcipher, 0, sizeof(rblkcipher));
949 strscpy(rblkcipher.type, "skcipher", sizeof(rblkcipher.type));
950 strscpy(rblkcipher.geniv, "<none>", sizeof(rblkcipher.geniv));
952 rblkcipher.blocksize = alg->cra_blocksize;
953 rblkcipher.min_keysize = skcipher->min_keysize;
954 rblkcipher.max_keysize = skcipher->max_keysize;
955 rblkcipher.ivsize = skcipher->ivsize;
957 return nla_put(skb, CRYPTOCFGA_REPORT_BLKCIPHER,
958 sizeof(rblkcipher), &rblkcipher);
961 static int crypto_skcipher_report(struct sk_buff *skb, struct crypto_alg *alg)
967 static const struct crypto_type crypto_skcipher_type2 = {
968 .extsize = crypto_skcipher_extsize,
969 .init_tfm = crypto_skcipher_init_tfm,
970 .free = crypto_skcipher_free_instance,
971 #ifdef CONFIG_PROC_FS
972 .show = crypto_skcipher_show,
974 .report = crypto_skcipher_report,
975 .maskclear = ~CRYPTO_ALG_TYPE_MASK,
976 .maskset = CRYPTO_ALG_TYPE_BLKCIPHER_MASK,
977 .type = CRYPTO_ALG_TYPE_SKCIPHER,
978 .tfmsize = offsetof(struct crypto_skcipher, base),
981 int crypto_grab_skcipher(struct crypto_skcipher_spawn *spawn,
982 const char *name, u32 type, u32 mask)
984 spawn->base.frontend = &crypto_skcipher_type2;
985 return crypto_grab_spawn(&spawn->base, name, type, mask);
987 EXPORT_SYMBOL_GPL(crypto_grab_skcipher);
989 struct crypto_skcipher *crypto_alloc_skcipher(const char *alg_name,
992 return crypto_alloc_tfm(alg_name, &crypto_skcipher_type2, type, mask);
994 EXPORT_SYMBOL_GPL(crypto_alloc_skcipher);
996 struct crypto_sync_skcipher *crypto_alloc_sync_skcipher(
997 const char *alg_name, u32 type, u32 mask)
999 struct crypto_skcipher *tfm;
1001 /* Only sync algorithms allowed. */
1002 mask |= CRYPTO_ALG_ASYNC;
1004 tfm = crypto_alloc_tfm(alg_name, &crypto_skcipher_type2, type, mask);
1007 * Make sure we do not allocate something that might get used with
1008 * an on-stack request: check the request size.
1010 if (!IS_ERR(tfm) && WARN_ON(crypto_skcipher_reqsize(tfm) >
1011 MAX_SYNC_SKCIPHER_REQSIZE)) {
1012 crypto_free_skcipher(tfm);
1013 return ERR_PTR(-EINVAL);
1016 return (struct crypto_sync_skcipher *)tfm;
1018 EXPORT_SYMBOL_GPL(crypto_alloc_sync_skcipher);
1020 int crypto_has_skcipher2(const char *alg_name, u32 type, u32 mask)
1022 return crypto_type_has_alg(alg_name, &crypto_skcipher_type2,
1025 EXPORT_SYMBOL_GPL(crypto_has_skcipher2);
1027 static int skcipher_prepare_alg(struct skcipher_alg *alg)
1029 struct crypto_alg *base = &alg->base;
1031 if (alg->ivsize > PAGE_SIZE / 8 || alg->chunksize > PAGE_SIZE / 8 ||
1032 alg->walksize > PAGE_SIZE / 8)
1035 if (!alg->chunksize)
1036 alg->chunksize = base->cra_blocksize;
1038 alg->walksize = alg->chunksize;
1040 base->cra_type = &crypto_skcipher_type2;
1041 base->cra_flags &= ~CRYPTO_ALG_TYPE_MASK;
1042 base->cra_flags |= CRYPTO_ALG_TYPE_SKCIPHER;
1047 int crypto_register_skcipher(struct skcipher_alg *alg)
1049 struct crypto_alg *base = &alg->base;
1052 err = skcipher_prepare_alg(alg);
1056 return crypto_register_alg(base);
1058 EXPORT_SYMBOL_GPL(crypto_register_skcipher);
1060 void crypto_unregister_skcipher(struct skcipher_alg *alg)
1062 crypto_unregister_alg(&alg->base);
1064 EXPORT_SYMBOL_GPL(crypto_unregister_skcipher);
1066 int crypto_register_skciphers(struct skcipher_alg *algs, int count)
1070 for (i = 0; i < count; i++) {
1071 ret = crypto_register_skcipher(&algs[i]);
1079 for (--i; i >= 0; --i)
1080 crypto_unregister_skcipher(&algs[i]);
1084 EXPORT_SYMBOL_GPL(crypto_register_skciphers);
1086 void crypto_unregister_skciphers(struct skcipher_alg *algs, int count)
1090 for (i = count - 1; i >= 0; --i)
1091 crypto_unregister_skcipher(&algs[i]);
1093 EXPORT_SYMBOL_GPL(crypto_unregister_skciphers);
1095 int skcipher_register_instance(struct crypto_template *tmpl,
1096 struct skcipher_instance *inst)
1100 err = skcipher_prepare_alg(&inst->alg);
1104 return crypto_register_instance(tmpl, skcipher_crypto_instance(inst));
1106 EXPORT_SYMBOL_GPL(skcipher_register_instance);
1108 static int skcipher_setkey_simple(struct crypto_skcipher *tfm, const u8 *key,
1109 unsigned int keylen)
1111 struct crypto_cipher *cipher = skcipher_cipher_simple(tfm);
1114 crypto_cipher_clear_flags(cipher, CRYPTO_TFM_REQ_MASK);
1115 crypto_cipher_set_flags(cipher, crypto_skcipher_get_flags(tfm) &
1116 CRYPTO_TFM_REQ_MASK);
1117 err = crypto_cipher_setkey(cipher, key, keylen);
1118 crypto_skcipher_set_flags(tfm, crypto_cipher_get_flags(cipher) &
1119 CRYPTO_TFM_RES_MASK);
1123 static int skcipher_init_tfm_simple(struct crypto_skcipher *tfm)
1125 struct skcipher_instance *inst = skcipher_alg_instance(tfm);
1126 struct crypto_spawn *spawn = skcipher_instance_ctx(inst);
1127 struct skcipher_ctx_simple *ctx = crypto_skcipher_ctx(tfm);
1128 struct crypto_cipher *cipher;
1130 cipher = crypto_spawn_cipher(spawn);
1132 return PTR_ERR(cipher);
1134 ctx->cipher = cipher;
1138 static void skcipher_exit_tfm_simple(struct crypto_skcipher *tfm)
1140 struct skcipher_ctx_simple *ctx = crypto_skcipher_ctx(tfm);
1142 crypto_free_cipher(ctx->cipher);
1145 static void skcipher_free_instance_simple(struct skcipher_instance *inst)
1147 crypto_drop_spawn(skcipher_instance_ctx(inst));
1152 * skcipher_alloc_instance_simple - allocate instance of simple block cipher mode
1154 * Allocate an skcipher_instance for a simple block cipher mode of operation,
1155 * e.g. cbc or ecb. The instance context will have just a single crypto_spawn,
1156 * that for the underlying cipher. The {min,max}_keysize, ivsize, blocksize,
1157 * alignmask, and priority are set from the underlying cipher but can be
1158 * overridden if needed. The tfm context defaults to skcipher_ctx_simple, and
1159 * default ->setkey(), ->init(), and ->exit() methods are installed.
1161 * @tmpl: the template being instantiated
1162 * @tb: the template parameters
1163 * @cipher_alg_ret: on success, a pointer to the underlying cipher algorithm is
1164 * returned here. It must be dropped with crypto_mod_put().
1166 * Return: a pointer to the new instance, or an ERR_PTR(). The caller still
1167 * needs to register the instance.
1169 struct skcipher_instance *
1170 skcipher_alloc_instance_simple(struct crypto_template *tmpl, struct rtattr **tb,
1171 struct crypto_alg **cipher_alg_ret)
1173 struct crypto_attr_type *algt;
1174 struct crypto_alg *cipher_alg;
1175 struct skcipher_instance *inst;
1176 struct crypto_spawn *spawn;
1180 algt = crypto_get_attr_type(tb);
1182 return ERR_CAST(algt);
1184 if ((algt->type ^ CRYPTO_ALG_TYPE_SKCIPHER) & algt->mask)
1185 return ERR_PTR(-EINVAL);
1187 mask = CRYPTO_ALG_TYPE_MASK |
1188 crypto_requires_off(algt->type, algt->mask,
1189 CRYPTO_ALG_NEED_FALLBACK);
1191 cipher_alg = crypto_get_attr_alg(tb, CRYPTO_ALG_TYPE_CIPHER, mask);
1192 if (IS_ERR(cipher_alg))
1193 return ERR_CAST(cipher_alg);
1195 inst = kzalloc(sizeof(*inst) + sizeof(*spawn), GFP_KERNEL);
1198 goto err_put_cipher_alg;
1200 spawn = skcipher_instance_ctx(inst);
1202 err = crypto_inst_setname(skcipher_crypto_instance(inst), tmpl->name,
1207 err = crypto_init_spawn(spawn, cipher_alg,
1208 skcipher_crypto_instance(inst),
1209 CRYPTO_ALG_TYPE_MASK);
1212 inst->free = skcipher_free_instance_simple;
1214 /* Default algorithm properties, can be overridden */
1215 inst->alg.base.cra_blocksize = cipher_alg->cra_blocksize;
1216 inst->alg.base.cra_alignmask = cipher_alg->cra_alignmask;
1217 inst->alg.base.cra_priority = cipher_alg->cra_priority;
1218 inst->alg.min_keysize = cipher_alg->cra_cipher.cia_min_keysize;
1219 inst->alg.max_keysize = cipher_alg->cra_cipher.cia_max_keysize;
1220 inst->alg.ivsize = cipher_alg->cra_blocksize;
1222 /* Use skcipher_ctx_simple by default, can be overridden */
1223 inst->alg.base.cra_ctxsize = sizeof(struct skcipher_ctx_simple);
1224 inst->alg.setkey = skcipher_setkey_simple;
1225 inst->alg.init = skcipher_init_tfm_simple;
1226 inst->alg.exit = skcipher_exit_tfm_simple;
1228 *cipher_alg_ret = cipher_alg;
1234 crypto_mod_put(cipher_alg);
1235 return ERR_PTR(err);
1237 EXPORT_SYMBOL_GPL(skcipher_alloc_instance_simple);
1239 MODULE_LICENSE("GPL");
1240 MODULE_DESCRIPTION("Symmetric key cipher type");