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1/* SPDX-License-Identifier: GPL-2.0-or-later */
2/*
3 * Cryptographic API for algorithms (i.e., low-level API).
4 *
5 * Copyright (c) 2006 Herbert Xu <herbert@gondor.apana.org.au>
6 */
7#ifndef _CRYPTO_ALGAPI_H
8#define _CRYPTO_ALGAPI_H
9
10#include <crypto/utils.h>
11#include <linux/align.h>
12#include <linux/cache.h>
13#include <linux/crypto.h>
14#include <linux/types.h>
15#include <linux/workqueue.h>
16
17/*
18 * Maximum values for blocksize and alignmask, used to allocate
19 * static buffers that are big enough for any combination of
20 * algs and architectures. Ciphers have a lower maximum size.
21 */
22#define MAX_ALGAPI_BLOCKSIZE 160
23#define MAX_ALGAPI_ALIGNMASK 127
24#define MAX_CIPHER_BLOCKSIZE 16
25#define MAX_CIPHER_ALIGNMASK 15
26
27#ifdef ARCH_DMA_MINALIGN
28#define CRYPTO_DMA_ALIGN ARCH_DMA_MINALIGN
29#else
30#define CRYPTO_DMA_ALIGN CRYPTO_MINALIGN
31#endif
32
33#define CRYPTO_DMA_PADDING ((CRYPTO_DMA_ALIGN - 1) & ~(CRYPTO_MINALIGN - 1))
34
35/*
36 * Autoloaded crypto modules should only use a prefixed name to avoid allowing
37 * arbitrary modules to be loaded. Loading from userspace may still need the
38 * unprefixed names, so retains those aliases as well.
39 * This uses __MODULE_INFO directly instead of MODULE_ALIAS because pre-4.3
40 * gcc (e.g. avr32 toolchain) uses __LINE__ for uniqueness, and this macro
41 * expands twice on the same line. Instead, use a separate base name for the
42 * alias.
43 */
44#define MODULE_ALIAS_CRYPTO(name) \
45 __MODULE_INFO(alias, alias_userspace, name); \
46 __MODULE_INFO(alias, alias_crypto, "crypto-" name)
47
48struct crypto_aead;
49struct crypto_instance;
50struct module;
51struct notifier_block;
52struct rtattr;
53struct scatterlist;
54struct seq_file;
55struct sk_buff;
56
57struct crypto_type {
58 unsigned int (*ctxsize)(struct crypto_alg *alg, u32 type, u32 mask);
59 unsigned int (*extsize)(struct crypto_alg *alg);
60 int (*init_tfm)(struct crypto_tfm *tfm);
61 void (*show)(struct seq_file *m, struct crypto_alg *alg);
62 int (*report)(struct sk_buff *skb, struct crypto_alg *alg);
63 void (*free)(struct crypto_instance *inst);
64#ifdef CONFIG_CRYPTO_STATS
65 int (*report_stat)(struct sk_buff *skb, struct crypto_alg *alg);
66#endif
67
68 unsigned int type;
69 unsigned int maskclear;
70 unsigned int maskset;
71 unsigned int tfmsize;
72};
73
74struct crypto_instance {
75 struct crypto_alg alg;
76
77 struct crypto_template *tmpl;
78
79 union {
80 /* Node in list of instances after registration. */
81 struct hlist_node list;
82 /* List of attached spawns before registration. */
83 struct crypto_spawn *spawns;
84 };
85
86 struct work_struct free_work;
87
88 void *__ctx[] CRYPTO_MINALIGN_ATTR;
89};
90
91struct crypto_template {
92 struct list_head list;
93 struct hlist_head instances;
94 struct module *module;
95
96 int (*create)(struct crypto_template *tmpl, struct rtattr **tb);
97
98 char name[CRYPTO_MAX_ALG_NAME];
99};
100
101struct crypto_spawn {
102 struct list_head list;
103 struct crypto_alg *alg;
104 union {
105 /* Back pointer to instance after registration.*/
106 struct crypto_instance *inst;
107 /* Spawn list pointer prior to registration. */
108 struct crypto_spawn *next;
109 };
110 const struct crypto_type *frontend;
111 u32 mask;
112 bool dead;
113 bool registered;
114};
115
116struct crypto_queue {
117 struct list_head list;
118 struct list_head *backlog;
119
120 unsigned int qlen;
121 unsigned int max_qlen;
122};
123
124struct scatter_walk {
125 struct scatterlist *sg;
126 unsigned int offset;
127};
128
129struct crypto_attr_alg {
130 char name[CRYPTO_MAX_ALG_NAME];
131};
132
133struct crypto_attr_type {
134 u32 type;
135 u32 mask;
136};
137
138/*
139 * Algorithm registration interface.
140 */
141int crypto_register_alg(struct crypto_alg *alg);
142void crypto_unregister_alg(struct crypto_alg *alg);
143int crypto_register_algs(struct crypto_alg *algs, int count);
144void crypto_unregister_algs(struct crypto_alg *algs, int count);
145
146void crypto_mod_put(struct crypto_alg *alg);
147
148int crypto_register_template(struct crypto_template *tmpl);
149int crypto_register_templates(struct crypto_template *tmpls, int count);
150void crypto_unregister_template(struct crypto_template *tmpl);
151void crypto_unregister_templates(struct crypto_template *tmpls, int count);
152struct crypto_template *crypto_lookup_template(const char *name);
153
154int crypto_register_instance(struct crypto_template *tmpl,
155 struct crypto_instance *inst);
156void crypto_unregister_instance(struct crypto_instance *inst);
157
158int crypto_grab_spawn(struct crypto_spawn *spawn, struct crypto_instance *inst,
159 const char *name, u32 type, u32 mask);
160void crypto_drop_spawn(struct crypto_spawn *spawn);
161struct crypto_tfm *crypto_spawn_tfm(struct crypto_spawn *spawn, u32 type,
162 u32 mask);
163void *crypto_spawn_tfm2(struct crypto_spawn *spawn);
164
165struct crypto_attr_type *crypto_get_attr_type(struct rtattr **tb);
166int crypto_check_attr_type(struct rtattr **tb, u32 type, u32 *mask_ret);
167const char *crypto_attr_alg_name(struct rtattr *rta);
168int crypto_inst_setname(struct crypto_instance *inst, const char *name,
169 struct crypto_alg *alg);
170
171void crypto_init_queue(struct crypto_queue *queue, unsigned int max_qlen);
172int crypto_enqueue_request(struct crypto_queue *queue,
173 struct crypto_async_request *request);
174void crypto_enqueue_request_head(struct crypto_queue *queue,
175 struct crypto_async_request *request);
176struct crypto_async_request *crypto_dequeue_request(struct crypto_queue *queue);
177static inline unsigned int crypto_queue_len(struct crypto_queue *queue)
178{
179 return queue->qlen;
180}
181
182void crypto_inc(u8 *a, unsigned int size);
183
184static inline void *crypto_tfm_ctx(struct crypto_tfm *tfm)
185{
186 return tfm->__crt_ctx;
187}
188
189static inline void *crypto_tfm_ctx_align(struct crypto_tfm *tfm,
190 unsigned int align)
191{
192 if (align <= crypto_tfm_ctx_alignment())
193 align = 1;
194
195 return PTR_ALIGN(crypto_tfm_ctx(tfm), align);
196}
197
198static inline unsigned int crypto_dma_align(void)
199{
200 return CRYPTO_DMA_ALIGN;
201}
202
203static inline unsigned int crypto_dma_padding(void)
204{
205 return (crypto_dma_align() - 1) & ~(crypto_tfm_ctx_alignment() - 1);
206}
207
208static inline void *crypto_tfm_ctx_dma(struct crypto_tfm *tfm)
209{
210 return crypto_tfm_ctx_align(tfm, crypto_dma_align());
211}
212
213static inline struct crypto_instance *crypto_tfm_alg_instance(
214 struct crypto_tfm *tfm)
215{
216 return container_of(tfm->__crt_alg, struct crypto_instance, alg);
217}
218
219static inline void *crypto_instance_ctx(struct crypto_instance *inst)
220{
221 return inst->__ctx;
222}
223
224static inline struct crypto_async_request *crypto_get_backlog(
225 struct crypto_queue *queue)
226{
227 return queue->backlog == &queue->list ? NULL :
228 container_of(queue->backlog, struct crypto_async_request, list);
229}
230
231static inline u32 crypto_requires_off(struct crypto_attr_type *algt, u32 off)
232{
233 return (algt->type ^ off) & algt->mask & off;
234}
235
236/*
237 * When an algorithm uses another algorithm (e.g., if it's an instance of a
238 * template), these are the flags that should always be set on the "outer"
239 * algorithm if any "inner" algorithm has them set.
240 */
241#define CRYPTO_ALG_INHERITED_FLAGS \
242 (CRYPTO_ALG_ASYNC | CRYPTO_ALG_NEED_FALLBACK | \
243 CRYPTO_ALG_ALLOCATES_MEMORY)
244
245/*
246 * Given the type and mask that specify the flags restrictions on a template
247 * instance being created, return the mask that should be passed to
248 * crypto_grab_*() (along with type=0) to honor any request the user made to
249 * have any of the CRYPTO_ALG_INHERITED_FLAGS clear.
250 */
251static inline u32 crypto_algt_inherited_mask(struct crypto_attr_type *algt)
252{
253 return crypto_requires_off(algt, CRYPTO_ALG_INHERITED_FLAGS);
254}
255
256int crypto_register_notifier(struct notifier_block *nb);
257int crypto_unregister_notifier(struct notifier_block *nb);
258
259/* Crypto notification events. */
260enum {
261 CRYPTO_MSG_ALG_REQUEST,
262 CRYPTO_MSG_ALG_REGISTER,
263 CRYPTO_MSG_ALG_LOADED,
264};
265
266static inline void crypto_request_complete(struct crypto_async_request *req,
267 int err)
268{
269 req->complete(req->data, err);
270}
271
272static inline u32 crypto_tfm_alg_type(struct crypto_tfm *tfm)
273{
274 return tfm->__crt_alg->cra_flags & CRYPTO_ALG_TYPE_MASK;
275}
276
277#endif /* _CRYPTO_ALGAPI_H */
1/*
2 * Cryptographic API for algorithms (i.e., low-level API).
3 *
4 * Copyright (c) 2006 Herbert Xu <herbert@gondor.apana.org.au>
5 *
6 * This program is free software; you can redistribute it and/or modify it
7 * under the terms of the GNU General Public License as published by the Free
8 * Software Foundation; either version 2 of the License, or (at your option)
9 * any later version.
10 *
11 */
12#ifndef _CRYPTO_ALGAPI_H
13#define _CRYPTO_ALGAPI_H
14
15#include <linux/crypto.h>
16#include <linux/list.h>
17#include <linux/kernel.h>
18#include <linux/skbuff.h>
19
20struct module;
21struct rtattr;
22struct seq_file;
23
24struct crypto_type {
25 unsigned int (*ctxsize)(struct crypto_alg *alg, u32 type, u32 mask);
26 unsigned int (*extsize)(struct crypto_alg *alg);
27 int (*init)(struct crypto_tfm *tfm, u32 type, u32 mask);
28 int (*init_tfm)(struct crypto_tfm *tfm);
29 void (*show)(struct seq_file *m, struct crypto_alg *alg);
30 int (*report)(struct sk_buff *skb, struct crypto_alg *alg);
31 struct crypto_alg *(*lookup)(const char *name, u32 type, u32 mask);
32
33 unsigned int type;
34 unsigned int maskclear;
35 unsigned int maskset;
36 unsigned int tfmsize;
37};
38
39struct crypto_instance {
40 struct crypto_alg alg;
41
42 struct crypto_template *tmpl;
43 struct hlist_node list;
44
45 void *__ctx[] CRYPTO_MINALIGN_ATTR;
46};
47
48struct crypto_template {
49 struct list_head list;
50 struct hlist_head instances;
51 struct module *module;
52
53 struct crypto_instance *(*alloc)(struct rtattr **tb);
54 void (*free)(struct crypto_instance *inst);
55 int (*create)(struct crypto_template *tmpl, struct rtattr **tb);
56
57 char name[CRYPTO_MAX_ALG_NAME];
58};
59
60struct crypto_spawn {
61 struct list_head list;
62 struct crypto_alg *alg;
63 struct crypto_instance *inst;
64 const struct crypto_type *frontend;
65 u32 mask;
66};
67
68struct crypto_queue {
69 struct list_head list;
70 struct list_head *backlog;
71
72 unsigned int qlen;
73 unsigned int max_qlen;
74};
75
76struct scatter_walk {
77 struct scatterlist *sg;
78 unsigned int offset;
79};
80
81struct blkcipher_walk {
82 union {
83 struct {
84 struct page *page;
85 unsigned long offset;
86 } phys;
87
88 struct {
89 u8 *page;
90 u8 *addr;
91 } virt;
92 } src, dst;
93
94 struct scatter_walk in;
95 unsigned int nbytes;
96
97 struct scatter_walk out;
98 unsigned int total;
99
100 void *page;
101 u8 *buffer;
102 u8 *iv;
103 unsigned int ivsize;
104
105 int flags;
106 unsigned int walk_blocksize;
107 unsigned int cipher_blocksize;
108 unsigned int alignmask;
109};
110
111struct ablkcipher_walk {
112 struct {
113 struct page *page;
114 unsigned int offset;
115 } src, dst;
116
117 struct scatter_walk in;
118 unsigned int nbytes;
119 struct scatter_walk out;
120 unsigned int total;
121 struct list_head buffers;
122 u8 *iv_buffer;
123 u8 *iv;
124 int flags;
125 unsigned int blocksize;
126};
127
128extern const struct crypto_type crypto_ablkcipher_type;
129extern const struct crypto_type crypto_aead_type;
130extern const struct crypto_type crypto_blkcipher_type;
131
132void crypto_mod_put(struct crypto_alg *alg);
133
134int crypto_register_template(struct crypto_template *tmpl);
135void crypto_unregister_template(struct crypto_template *tmpl);
136struct crypto_template *crypto_lookup_template(const char *name);
137
138int crypto_register_instance(struct crypto_template *tmpl,
139 struct crypto_instance *inst);
140int crypto_unregister_instance(struct crypto_alg *alg);
141
142int crypto_init_spawn(struct crypto_spawn *spawn, struct crypto_alg *alg,
143 struct crypto_instance *inst, u32 mask);
144int crypto_init_spawn2(struct crypto_spawn *spawn, struct crypto_alg *alg,
145 struct crypto_instance *inst,
146 const struct crypto_type *frontend);
147
148void crypto_drop_spawn(struct crypto_spawn *spawn);
149struct crypto_tfm *crypto_spawn_tfm(struct crypto_spawn *spawn, u32 type,
150 u32 mask);
151void *crypto_spawn_tfm2(struct crypto_spawn *spawn);
152
153static inline void crypto_set_spawn(struct crypto_spawn *spawn,
154 struct crypto_instance *inst)
155{
156 spawn->inst = inst;
157}
158
159struct crypto_attr_type *crypto_get_attr_type(struct rtattr **tb);
160int crypto_check_attr_type(struct rtattr **tb, u32 type);
161const char *crypto_attr_alg_name(struct rtattr *rta);
162struct crypto_alg *crypto_attr_alg2(struct rtattr *rta,
163 const struct crypto_type *frontend,
164 u32 type, u32 mask);
165
166static inline struct crypto_alg *crypto_attr_alg(struct rtattr *rta,
167 u32 type, u32 mask)
168{
169 return crypto_attr_alg2(rta, NULL, type, mask);
170}
171
172int crypto_attr_u32(struct rtattr *rta, u32 *num);
173void *crypto_alloc_instance2(const char *name, struct crypto_alg *alg,
174 unsigned int head);
175struct crypto_instance *crypto_alloc_instance(const char *name,
176 struct crypto_alg *alg);
177
178void crypto_init_queue(struct crypto_queue *queue, unsigned int max_qlen);
179int crypto_enqueue_request(struct crypto_queue *queue,
180 struct crypto_async_request *request);
181void *__crypto_dequeue_request(struct crypto_queue *queue, unsigned int offset);
182struct crypto_async_request *crypto_dequeue_request(struct crypto_queue *queue);
183int crypto_tfm_in_queue(struct crypto_queue *queue, struct crypto_tfm *tfm);
184
185/* These functions require the input/output to be aligned as u32. */
186void crypto_inc(u8 *a, unsigned int size);
187void crypto_xor(u8 *dst, const u8 *src, unsigned int size);
188
189int blkcipher_walk_done(struct blkcipher_desc *desc,
190 struct blkcipher_walk *walk, int err);
191int blkcipher_walk_virt(struct blkcipher_desc *desc,
192 struct blkcipher_walk *walk);
193int blkcipher_walk_phys(struct blkcipher_desc *desc,
194 struct blkcipher_walk *walk);
195int blkcipher_walk_virt_block(struct blkcipher_desc *desc,
196 struct blkcipher_walk *walk,
197 unsigned int blocksize);
198int blkcipher_aead_walk_virt_block(struct blkcipher_desc *desc,
199 struct blkcipher_walk *walk,
200 struct crypto_aead *tfm,
201 unsigned int blocksize);
202
203int ablkcipher_walk_done(struct ablkcipher_request *req,
204 struct ablkcipher_walk *walk, int err);
205int ablkcipher_walk_phys(struct ablkcipher_request *req,
206 struct ablkcipher_walk *walk);
207void __ablkcipher_walk_complete(struct ablkcipher_walk *walk);
208
209static inline void *crypto_tfm_ctx_aligned(struct crypto_tfm *tfm)
210{
211 return PTR_ALIGN(crypto_tfm_ctx(tfm),
212 crypto_tfm_alg_alignmask(tfm) + 1);
213}
214
215static inline struct crypto_instance *crypto_tfm_alg_instance(
216 struct crypto_tfm *tfm)
217{
218 return container_of(tfm->__crt_alg, struct crypto_instance, alg);
219}
220
221static inline void *crypto_instance_ctx(struct crypto_instance *inst)
222{
223 return inst->__ctx;
224}
225
226static inline struct ablkcipher_alg *crypto_ablkcipher_alg(
227 struct crypto_ablkcipher *tfm)
228{
229 return &crypto_ablkcipher_tfm(tfm)->__crt_alg->cra_ablkcipher;
230}
231
232static inline void *crypto_ablkcipher_ctx(struct crypto_ablkcipher *tfm)
233{
234 return crypto_tfm_ctx(&tfm->base);
235}
236
237static inline void *crypto_ablkcipher_ctx_aligned(struct crypto_ablkcipher *tfm)
238{
239 return crypto_tfm_ctx_aligned(&tfm->base);
240}
241
242static inline struct aead_alg *crypto_aead_alg(struct crypto_aead *tfm)
243{
244 return &crypto_aead_tfm(tfm)->__crt_alg->cra_aead;
245}
246
247static inline void *crypto_aead_ctx(struct crypto_aead *tfm)
248{
249 return crypto_tfm_ctx(&tfm->base);
250}
251
252static inline struct crypto_instance *crypto_aead_alg_instance(
253 struct crypto_aead *aead)
254{
255 return crypto_tfm_alg_instance(&aead->base);
256}
257
258static inline struct crypto_blkcipher *crypto_spawn_blkcipher(
259 struct crypto_spawn *spawn)
260{
261 u32 type = CRYPTO_ALG_TYPE_BLKCIPHER;
262 u32 mask = CRYPTO_ALG_TYPE_MASK;
263
264 return __crypto_blkcipher_cast(crypto_spawn_tfm(spawn, type, mask));
265}
266
267static inline void *crypto_blkcipher_ctx(struct crypto_blkcipher *tfm)
268{
269 return crypto_tfm_ctx(&tfm->base);
270}
271
272static inline void *crypto_blkcipher_ctx_aligned(struct crypto_blkcipher *tfm)
273{
274 return crypto_tfm_ctx_aligned(&tfm->base);
275}
276
277static inline struct crypto_cipher *crypto_spawn_cipher(
278 struct crypto_spawn *spawn)
279{
280 u32 type = CRYPTO_ALG_TYPE_CIPHER;
281 u32 mask = CRYPTO_ALG_TYPE_MASK;
282
283 return __crypto_cipher_cast(crypto_spawn_tfm(spawn, type, mask));
284}
285
286static inline struct cipher_alg *crypto_cipher_alg(struct crypto_cipher *tfm)
287{
288 return &crypto_cipher_tfm(tfm)->__crt_alg->cra_cipher;
289}
290
291static inline struct crypto_hash *crypto_spawn_hash(struct crypto_spawn *spawn)
292{
293 u32 type = CRYPTO_ALG_TYPE_HASH;
294 u32 mask = CRYPTO_ALG_TYPE_HASH_MASK;
295
296 return __crypto_hash_cast(crypto_spawn_tfm(spawn, type, mask));
297}
298
299static inline void *crypto_hash_ctx(struct crypto_hash *tfm)
300{
301 return crypto_tfm_ctx(&tfm->base);
302}
303
304static inline void *crypto_hash_ctx_aligned(struct crypto_hash *tfm)
305{
306 return crypto_tfm_ctx_aligned(&tfm->base);
307}
308
309static inline void blkcipher_walk_init(struct blkcipher_walk *walk,
310 struct scatterlist *dst,
311 struct scatterlist *src,
312 unsigned int nbytes)
313{
314 walk->in.sg = src;
315 walk->out.sg = dst;
316 walk->total = nbytes;
317}
318
319static inline void ablkcipher_walk_init(struct ablkcipher_walk *walk,
320 struct scatterlist *dst,
321 struct scatterlist *src,
322 unsigned int nbytes)
323{
324 walk->in.sg = src;
325 walk->out.sg = dst;
326 walk->total = nbytes;
327 INIT_LIST_HEAD(&walk->buffers);
328}
329
330static inline void ablkcipher_walk_complete(struct ablkcipher_walk *walk)
331{
332 if (unlikely(!list_empty(&walk->buffers)))
333 __ablkcipher_walk_complete(walk);
334}
335
336static inline struct crypto_async_request *crypto_get_backlog(
337 struct crypto_queue *queue)
338{
339 return queue->backlog == &queue->list ? NULL :
340 container_of(queue->backlog, struct crypto_async_request, list);
341}
342
343static inline int ablkcipher_enqueue_request(struct crypto_queue *queue,
344 struct ablkcipher_request *request)
345{
346 return crypto_enqueue_request(queue, &request->base);
347}
348
349static inline struct ablkcipher_request *ablkcipher_dequeue_request(
350 struct crypto_queue *queue)
351{
352 return ablkcipher_request_cast(crypto_dequeue_request(queue));
353}
354
355static inline void *ablkcipher_request_ctx(struct ablkcipher_request *req)
356{
357 return req->__ctx;
358}
359
360static inline int ablkcipher_tfm_in_queue(struct crypto_queue *queue,
361 struct crypto_ablkcipher *tfm)
362{
363 return crypto_tfm_in_queue(queue, crypto_ablkcipher_tfm(tfm));
364}
365
366static inline void *aead_request_ctx(struct aead_request *req)
367{
368 return req->__ctx;
369}
370
371static inline void aead_request_complete(struct aead_request *req, int err)
372{
373 req->base.complete(&req->base, err);
374}
375
376static inline u32 aead_request_flags(struct aead_request *req)
377{
378 return req->base.flags;
379}
380
381static inline struct crypto_alg *crypto_get_attr_alg(struct rtattr **tb,
382 u32 type, u32 mask)
383{
384 return crypto_attr_alg(tb[1], type, mask);
385}
386
387/*
388 * Returns CRYPTO_ALG_ASYNC if type/mask requires the use of sync algorithms.
389 * Otherwise returns zero.
390 */
391static inline int crypto_requires_sync(u32 type, u32 mask)
392{
393 return (type ^ CRYPTO_ALG_ASYNC) & mask & CRYPTO_ALG_ASYNC;
394}
395
396noinline unsigned long __crypto_memneq(const void *a, const void *b, size_t size);
397
398/**
399 * crypto_memneq - Compare two areas of memory without leaking
400 * timing information.
401 *
402 * @a: One area of memory
403 * @b: Another area of memory
404 * @size: The size of the area.
405 *
406 * Returns 0 when data is equal, 1 otherwise.
407 */
408static inline int crypto_memneq(const void *a, const void *b, size_t size)
409{
410 return __crypto_memneq(a, b, size) != 0UL ? 1 : 0;
411}
412
413#endif /* _CRYPTO_ALGAPI_H */