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2874c5fd | 1 | // SPDX-License-Identifier: GPL-2.0-or-later |
64470f1b RS |
2 | /* LRW: as defined by Cyril Guyot in |
3 | * http://grouper.ieee.org/groups/1619/email/pdf00017.pdf | |
4 | * | |
5 | * Copyright (c) 2006 Rik Snel <[email protected]> | |
6 | * | |
6c2205b8 | 7 | * Based on ecb.c |
64470f1b | 8 | * Copyright (c) 2006 Herbert Xu <[email protected]> |
64470f1b RS |
9 | */ |
10 | /* This implementation is checked against the test vectors in the above | |
11 | * document and by a test vector provided by Ken Buchanan at | |
9332a9e7 | 12 | * https://www.mail-archive.com/[email protected]/msg00173.html |
64470f1b RS |
13 | * |
14 | * The test vectors are included in the testing module tcrypt.[ch] */ | |
6c2205b8 | 15 | |
700cb3f5 HX |
16 | #include <crypto/internal/skcipher.h> |
17 | #include <crypto/scatterwalk.h> | |
64470f1b RS |
18 | #include <linux/err.h> |
19 | #include <linux/init.h> | |
20 | #include <linux/kernel.h> | |
21 | #include <linux/module.h> | |
22 | #include <linux/scatterlist.h> | |
23 | #include <linux/slab.h> | |
24 | ||
25 | #include <crypto/b128ops.h> | |
26 | #include <crypto/gf128mul.h> | |
64470f1b | 27 | |
217afccf EB |
28 | #define LRW_BLOCK_SIZE 16 |
29 | ||
e456ef6a | 30 | struct lrw_tfm_ctx { |
700cb3f5 | 31 | struct crypto_skcipher *child; |
217afccf EB |
32 | |
33 | /* | |
34 | * optimizes multiplying a random (non incrementing, as at the | |
35 | * start of a new sector) value with key2, we could also have | |
36 | * used 4k optimization tables or no optimization at all. In the | |
37 | * latter case we would have to store key2 here | |
38 | */ | |
39 | struct gf128mul_64k *table; | |
40 | ||
41 | /* | |
42 | * stores: | |
43 | * key2*{ 0,0,...0,0,0,0,1 }, key2*{ 0,0,...0,0,0,1,1 }, | |
44 | * key2*{ 0,0,...0,0,1,1,1 }, key2*{ 0,0,...0,1,1,1,1 } | |
45 | * key2*{ 0,0,...1,1,1,1,1 }, etc | |
46 | * needed for optimized multiplication of incrementing values | |
47 | * with key2 | |
48 | */ | |
49 | be128 mulinc[128]; | |
171c0204 JK |
50 | }; |
51 | ||
e456ef6a | 52 | struct lrw_request_ctx { |
700cb3f5 | 53 | be128 t; |
700cb3f5 HX |
54 | struct skcipher_request subreq; |
55 | }; | |
56 | ||
e456ef6a | 57 | static inline void lrw_setbit128_bbe(void *b, int bit) |
64470f1b | 58 | { |
8eb2dfac HX |
59 | __set_bit(bit ^ (0x80 - |
60 | #ifdef __BIG_ENDIAN | |
61 | BITS_PER_LONG | |
62 | #else | |
63 | BITS_PER_BYTE | |
64 | #endif | |
65 | ), b); | |
64470f1b RS |
66 | } |
67 | ||
e456ef6a EB |
68 | static int lrw_setkey(struct crypto_skcipher *parent, const u8 *key, |
69 | unsigned int keylen) | |
64470f1b | 70 | { |
e456ef6a | 71 | struct lrw_tfm_ctx *ctx = crypto_skcipher_ctx(parent); |
217afccf EB |
72 | struct crypto_skcipher *child = ctx->child; |
73 | int err, bsize = LRW_BLOCK_SIZE; | |
74 | const u8 *tweak = key + keylen - bsize; | |
64470f1b | 75 | be128 tmp = { 0 }; |
171c0204 | 76 | int i; |
64470f1b | 77 | |
217afccf EB |
78 | crypto_skcipher_clear_flags(child, CRYPTO_TFM_REQ_MASK); |
79 | crypto_skcipher_set_flags(child, crypto_skcipher_get_flags(parent) & | |
80 | CRYPTO_TFM_REQ_MASK); | |
81 | err = crypto_skcipher_setkey(child, key, keylen - bsize); | |
217afccf EB |
82 | if (err) |
83 | return err; | |
84 | ||
64470f1b RS |
85 | if (ctx->table) |
86 | gf128mul_free_64k(ctx->table); | |
87 | ||
88 | /* initialize multiplication table for Key2 */ | |
171c0204 | 89 | ctx->table = gf128mul_init_64k_bbe((be128 *)tweak); |
64470f1b RS |
90 | if (!ctx->table) |
91 | return -ENOMEM; | |
92 | ||
93 | /* initialize optimization table */ | |
94 | for (i = 0; i < 128; i++) { | |
e456ef6a | 95 | lrw_setbit128_bbe(&tmp, i); |
64470f1b RS |
96 | ctx->mulinc[i] = tmp; |
97 | gf128mul_64k_bbe(&ctx->mulinc[i], ctx->table); | |
98 | } | |
99 | ||
100 | return 0; | |
101 | } | |
171c0204 | 102 | |
c778f96b OM |
103 | /* |
104 | * Returns the number of trailing '1' bits in the words of the counter, which is | |
105 | * represented by 4 32-bit words, arranged from least to most significant. | |
106 | * At the same time, increments the counter by one. | |
107 | * | |
108 | * For example: | |
109 | * | |
110 | * u32 counter[4] = { 0xFFFFFFFF, 0x1, 0x0, 0x0 }; | |
e456ef6a | 111 | * int i = lrw_next_index(&counter); |
c778f96b OM |
112 | * // i == 33, counter == { 0x0, 0x2, 0x0, 0x0 } |
113 | */ | |
e456ef6a | 114 | static int lrw_next_index(u32 *counter) |
64470f1b | 115 | { |
c778f96b | 116 | int i, res = 0; |
64470f1b | 117 | |
c778f96b | 118 | for (i = 0; i < 4; i++) { |
fd27b571 AB |
119 | if (counter[i] + 1 != 0) |
120 | return res + ffz(counter[i]++); | |
121 | ||
c778f96b OM |
122 | counter[i] = 0; |
123 | res += 32; | |
64470f1b RS |
124 | } |
125 | ||
fbe1a850 OM |
126 | /* |
127 | * If we get here, then x == 128 and we are incrementing the counter | |
128 | * from all ones to all zeros. This means we must return index 127, i.e. | |
129 | * the one corresponding to key2*{ 1,...,1 }. | |
130 | */ | |
131 | return 127; | |
64470f1b RS |
132 | } |
133 | ||
ac3c8f36 OM |
134 | /* |
135 | * We compute the tweak masks twice (both before and after the ECB encryption or | |
136 | * decryption) to avoid having to allocate a temporary buffer and/or make | |
137 | * mutliple calls to the 'ecb(..)' instance, which usually would be slower than | |
e456ef6a | 138 | * just doing the lrw_next_index() calls again. |
ac3c8f36 | 139 | */ |
e456ef6a | 140 | static int lrw_xor_tweak(struct skcipher_request *req, bool second_pass) |
64470f1b | 141 | { |
700cb3f5 | 142 | const int bs = LRW_BLOCK_SIZE; |
700cb3f5 | 143 | struct crypto_skcipher *tfm = crypto_skcipher_reqtfm(req); |
e456ef6a EB |
144 | const struct lrw_tfm_ctx *ctx = crypto_skcipher_ctx(tfm); |
145 | struct lrw_request_ctx *rctx = skcipher_request_ctx(req); | |
ac3c8f36 | 146 | be128 t = rctx->t; |
700cb3f5 | 147 | struct skcipher_walk w; |
c778f96b OM |
148 | __be32 *iv; |
149 | u32 counter[4]; | |
700cb3f5 | 150 | int err; |
64470f1b | 151 | |
ac3c8f36 OM |
152 | if (second_pass) { |
153 | req = &rctx->subreq; | |
154 | /* set to our TFM to enforce correct alignment: */ | |
155 | skcipher_request_set_tfm(req, tfm); | |
156 | } | |
64470f1b | 157 | |
ac3c8f36 | 158 | err = skcipher_walk_virt(&w, req, false); |
aec286cd EB |
159 | if (err) |
160 | return err; | |
c778f96b | 161 | |
aec286cd | 162 | iv = (__be32 *)w.iv; |
c778f96b OM |
163 | counter[0] = be32_to_cpu(iv[3]); |
164 | counter[1] = be32_to_cpu(iv[2]); | |
165 | counter[2] = be32_to_cpu(iv[1]); | |
166 | counter[3] = be32_to_cpu(iv[0]); | |
64470f1b | 167 | |
700cb3f5 HX |
168 | while (w.nbytes) { |
169 | unsigned int avail = w.nbytes; | |
170 | be128 *wsrc; | |
171 | be128 *wdst; | |
172 | ||
173 | wsrc = w.src.virt.addr; | |
174 | wdst = w.dst.virt.addr; | |
64470f1b | 175 | |
64470f1b | 176 | do { |
ac3c8f36 | 177 | be128_xor(wdst++, &t, wsrc++); |
700cb3f5 | 178 | |
64470f1b RS |
179 | /* T <- I*Key2, using the optimization |
180 | * discussed in the specification */ | |
e456ef6a EB |
181 | be128_xor(&t, &t, |
182 | &ctx->mulinc[lrw_next_index(counter)]); | |
700cb3f5 | 183 | } while ((avail -= bs) >= bs); |
64470f1b | 184 | |
ac3c8f36 | 185 | if (second_pass && w.nbytes == w.total) { |
c778f96b OM |
186 | iv[0] = cpu_to_be32(counter[3]); |
187 | iv[1] = cpu_to_be32(counter[2]); | |
188 | iv[2] = cpu_to_be32(counter[1]); | |
189 | iv[3] = cpu_to_be32(counter[0]); | |
190 | } | |
191 | ||
700cb3f5 HX |
192 | err = skcipher_walk_done(&w, avail); |
193 | } | |
64470f1b | 194 | |
700cb3f5 HX |
195 | return err; |
196 | } | |
197 | ||
e456ef6a | 198 | static int lrw_xor_tweak_pre(struct skcipher_request *req) |
700cb3f5 | 199 | { |
e456ef6a | 200 | return lrw_xor_tweak(req, false); |
700cb3f5 HX |
201 | } |
202 | ||
e456ef6a | 203 | static int lrw_xor_tweak_post(struct skcipher_request *req) |
700cb3f5 | 204 | { |
e456ef6a | 205 | return lrw_xor_tweak(req, true); |
64470f1b RS |
206 | } |
207 | ||
255e48eb | 208 | static void lrw_crypt_done(void *data, int err) |
700cb3f5 | 209 | { |
255e48eb | 210 | struct skcipher_request *req = data; |
700cb3f5 | 211 | |
b257b48c | 212 | if (!err) { |
e456ef6a | 213 | struct lrw_request_ctx *rctx = skcipher_request_ctx(req); |
b257b48c HX |
214 | |
215 | rctx->subreq.base.flags &= ~CRYPTO_TFM_REQ_MAY_SLEEP; | |
e456ef6a | 216 | err = lrw_xor_tweak_post(req); |
b257b48c | 217 | } |
700cb3f5 HX |
218 | |
219 | skcipher_request_complete(req, err); | |
220 | } | |
221 | ||
e456ef6a | 222 | static void lrw_init_crypt(struct skcipher_request *req) |
64470f1b | 223 | { |
e456ef6a EB |
224 | const struct lrw_tfm_ctx *ctx = |
225 | crypto_skcipher_ctx(crypto_skcipher_reqtfm(req)); | |
226 | struct lrw_request_ctx *rctx = skcipher_request_ctx(req); | |
ac3c8f36 | 227 | struct skcipher_request *subreq = &rctx->subreq; |
700cb3f5 | 228 | |
ac3c8f36 | 229 | skcipher_request_set_tfm(subreq, ctx->child); |
e456ef6a EB |
230 | skcipher_request_set_callback(subreq, req->base.flags, lrw_crypt_done, |
231 | req); | |
ac3c8f36 OM |
232 | /* pass req->iv as IV (will be used by xor_tweak, ECB will ignore it) */ |
233 | skcipher_request_set_crypt(subreq, req->dst, req->dst, | |
234 | req->cryptlen, req->iv); | |
700cb3f5 | 235 | |
ac3c8f36 OM |
236 | /* calculate first value of T */ |
237 | memcpy(&rctx->t, req->iv, sizeof(rctx->t)); | |
64470f1b | 238 | |
ac3c8f36 OM |
239 | /* T <- I*Key2 */ |
240 | gf128mul_64k_bbe(&rctx->t, ctx->table); | |
64470f1b RS |
241 | } |
242 | ||
e456ef6a | 243 | static int lrw_encrypt(struct skcipher_request *req) |
64470f1b | 244 | { |
e456ef6a | 245 | struct lrw_request_ctx *rctx = skcipher_request_ctx(req); |
ac3c8f36 | 246 | struct skcipher_request *subreq = &rctx->subreq; |
64470f1b | 247 | |
e456ef6a EB |
248 | lrw_init_crypt(req); |
249 | return lrw_xor_tweak_pre(req) ?: | |
ac3c8f36 | 250 | crypto_skcipher_encrypt(subreq) ?: |
e456ef6a | 251 | lrw_xor_tweak_post(req); |
700cb3f5 HX |
252 | } |
253 | ||
e456ef6a | 254 | static int lrw_decrypt(struct skcipher_request *req) |
700cb3f5 | 255 | { |
e456ef6a | 256 | struct lrw_request_ctx *rctx = skcipher_request_ctx(req); |
ac3c8f36 OM |
257 | struct skcipher_request *subreq = &rctx->subreq; |
258 | ||
e456ef6a EB |
259 | lrw_init_crypt(req); |
260 | return lrw_xor_tweak_pre(req) ?: | |
ac3c8f36 | 261 | crypto_skcipher_decrypt(subreq) ?: |
e456ef6a | 262 | lrw_xor_tweak_post(req); |
64470f1b RS |
263 | } |
264 | ||
e456ef6a | 265 | static int lrw_init_tfm(struct crypto_skcipher *tfm) |
64470f1b | 266 | { |
700cb3f5 HX |
267 | struct skcipher_instance *inst = skcipher_alg_instance(tfm); |
268 | struct crypto_skcipher_spawn *spawn = skcipher_instance_ctx(inst); | |
e456ef6a | 269 | struct lrw_tfm_ctx *ctx = crypto_skcipher_ctx(tfm); |
700cb3f5 | 270 | struct crypto_skcipher *cipher; |
64470f1b | 271 | |
700cb3f5 | 272 | cipher = crypto_spawn_skcipher(spawn); |
2e306ee0 HX |
273 | if (IS_ERR(cipher)) |
274 | return PTR_ERR(cipher); | |
64470f1b | 275 | |
2e306ee0 | 276 | ctx->child = cipher; |
700cb3f5 HX |
277 | |
278 | crypto_skcipher_set_reqsize(tfm, crypto_skcipher_reqsize(cipher) + | |
e456ef6a | 279 | sizeof(struct lrw_request_ctx)); |
700cb3f5 | 280 | |
64470f1b RS |
281 | return 0; |
282 | } | |
283 | ||
e456ef6a | 284 | static void lrw_exit_tfm(struct crypto_skcipher *tfm) |
64470f1b | 285 | { |
e456ef6a | 286 | struct lrw_tfm_ctx *ctx = crypto_skcipher_ctx(tfm); |
171c0204 | 287 | |
217afccf EB |
288 | if (ctx->table) |
289 | gf128mul_free_64k(ctx->table); | |
700cb3f5 HX |
290 | crypto_free_skcipher(ctx->child); |
291 | } | |
292 | ||
e456ef6a | 293 | static void lrw_free_instance(struct skcipher_instance *inst) |
700cb3f5 HX |
294 | { |
295 | crypto_drop_skcipher(skcipher_instance_ctx(inst)); | |
296 | kfree(inst); | |
64470f1b RS |
297 | } |
298 | ||
e456ef6a | 299 | static int lrw_create(struct crypto_template *tmpl, struct rtattr **tb) |
64470f1b | 300 | { |
700cb3f5 | 301 | struct crypto_skcipher_spawn *spawn; |
1ec0a8ab | 302 | struct skcipher_alg_common *alg; |
700cb3f5 | 303 | struct skcipher_instance *inst; |
700cb3f5 HX |
304 | const char *cipher_name; |
305 | char ecb_name[CRYPTO_MAX_ALG_NAME]; | |
b9f76ddd | 306 | u32 mask; |
ebc610e5 HX |
307 | int err; |
308 | ||
7bcb2c99 EB |
309 | err = crypto_check_attr_type(tb, CRYPTO_ALG_TYPE_SKCIPHER, &mask); |
310 | if (err) | |
311 | return err; | |
b9f76ddd | 312 | |
700cb3f5 HX |
313 | cipher_name = crypto_attr_alg_name(tb[1]); |
314 | if (IS_ERR(cipher_name)) | |
315 | return PTR_ERR(cipher_name); | |
316 | ||
317 | inst = kzalloc(sizeof(*inst) + sizeof(*spawn), GFP_KERNEL); | |
318 | if (!inst) | |
319 | return -ENOMEM; | |
320 | ||
321 | spawn = skcipher_instance_ctx(inst); | |
322 | ||
b9f76ddd EB |
323 | err = crypto_grab_skcipher(spawn, skcipher_crypto_instance(inst), |
324 | cipher_name, 0, mask); | |
700cb3f5 HX |
325 | if (err == -ENOENT) { |
326 | err = -ENAMETOOLONG; | |
327 | if (snprintf(ecb_name, CRYPTO_MAX_ALG_NAME, "ecb(%s)", | |
328 | cipher_name) >= CRYPTO_MAX_ALG_NAME) | |
329 | goto err_free_inst; | |
330 | ||
b9f76ddd EB |
331 | err = crypto_grab_skcipher(spawn, |
332 | skcipher_crypto_instance(inst), | |
333 | ecb_name, 0, mask); | |
700cb3f5 HX |
334 | } |
335 | ||
ebc610e5 | 336 | if (err) |
700cb3f5 | 337 | goto err_free_inst; |
64470f1b | 338 | |
1ec0a8ab | 339 | alg = crypto_spawn_skcipher_alg_common(spawn); |
64470f1b | 340 | |
700cb3f5 HX |
341 | err = -EINVAL; |
342 | if (alg->base.cra_blocksize != LRW_BLOCK_SIZE) | |
d5706310 | 343 | goto err_free_inst; |
64470f1b | 344 | |
1ec0a8ab | 345 | if (alg->ivsize) |
d5706310 | 346 | goto err_free_inst; |
64470f1b | 347 | |
700cb3f5 HX |
348 | err = crypto_inst_setname(skcipher_crypto_instance(inst), "lrw", |
349 | &alg->base); | |
350 | if (err) | |
d5706310 | 351 | goto err_free_inst; |
64470f1b | 352 | |
700cb3f5 HX |
353 | err = -EINVAL; |
354 | cipher_name = alg->base.cra_name; | |
64470f1b | 355 | |
700cb3f5 HX |
356 | /* Alas we screwed up the naming so we have to mangle the |
357 | * cipher name. | |
358 | */ | |
359 | if (!strncmp(cipher_name, "ecb(", 4)) { | |
babb80b3 | 360 | int len; |
64470f1b | 361 | |
babb80b3 AS |
362 | len = strscpy(ecb_name, cipher_name + 4, sizeof(ecb_name)); |
363 | if (len < 2) | |
d5706310 | 364 | goto err_free_inst; |
64470f1b | 365 | |
700cb3f5 | 366 | if (ecb_name[len - 1] != ')') |
d5706310 | 367 | goto err_free_inst; |
64470f1b | 368 | |
700cb3f5 | 369 | ecb_name[len - 1] = 0; |
64470f1b | 370 | |
700cb3f5 | 371 | if (snprintf(inst->alg.base.cra_name, CRYPTO_MAX_ALG_NAME, |
616129cc CJ |
372 | "lrw(%s)", ecb_name) >= CRYPTO_MAX_ALG_NAME) { |
373 | err = -ENAMETOOLONG; | |
d5706310 | 374 | goto err_free_inst; |
616129cc | 375 | } |
d38efad2 | 376 | } else |
d5706310 | 377 | goto err_free_inst; |
700cb3f5 | 378 | |
700cb3f5 HX |
379 | inst->alg.base.cra_priority = alg->base.cra_priority; |
380 | inst->alg.base.cra_blocksize = LRW_BLOCK_SIZE; | |
381 | inst->alg.base.cra_alignmask = alg->base.cra_alignmask | | |
20a0f976 | 382 | (__alignof__(be128) - 1); |
700cb3f5 HX |
383 | |
384 | inst->alg.ivsize = LRW_BLOCK_SIZE; | |
1ec0a8ab HX |
385 | inst->alg.min_keysize = alg->min_keysize + LRW_BLOCK_SIZE; |
386 | inst->alg.max_keysize = alg->max_keysize + LRW_BLOCK_SIZE; | |
700cb3f5 | 387 | |
e456ef6a | 388 | inst->alg.base.cra_ctxsize = sizeof(struct lrw_tfm_ctx); |
700cb3f5 | 389 | |
e456ef6a EB |
390 | inst->alg.init = lrw_init_tfm; |
391 | inst->alg.exit = lrw_exit_tfm; | |
700cb3f5 | 392 | |
e456ef6a EB |
393 | inst->alg.setkey = lrw_setkey; |
394 | inst->alg.encrypt = lrw_encrypt; | |
395 | inst->alg.decrypt = lrw_decrypt; | |
700cb3f5 | 396 | |
e456ef6a | 397 | inst->free = lrw_free_instance; |
700cb3f5 HX |
398 | |
399 | err = skcipher_register_instance(tmpl, inst); | |
d5706310 | 400 | if (err) { |
700cb3f5 | 401 | err_free_inst: |
e456ef6a | 402 | lrw_free_instance(inst); |
d5706310 EB |
403 | } |
404 | return err; | |
64470f1b RS |
405 | } |
406 | ||
e456ef6a | 407 | static struct crypto_template lrw_tmpl = { |
64470f1b | 408 | .name = "lrw", |
e456ef6a | 409 | .create = lrw_create, |
64470f1b RS |
410 | .module = THIS_MODULE, |
411 | }; | |
412 | ||
e456ef6a | 413 | static int __init lrw_module_init(void) |
64470f1b | 414 | { |
e456ef6a | 415 | return crypto_register_template(&lrw_tmpl); |
64470f1b RS |
416 | } |
417 | ||
e456ef6a | 418 | static void __exit lrw_module_exit(void) |
64470f1b | 419 | { |
e456ef6a | 420 | crypto_unregister_template(&lrw_tmpl); |
64470f1b RS |
421 | } |
422 | ||
e456ef6a EB |
423 | subsys_initcall(lrw_module_init); |
424 | module_exit(lrw_module_exit); | |
64470f1b RS |
425 | |
426 | MODULE_LICENSE("GPL"); | |
427 | MODULE_DESCRIPTION("LRW block cipher mode"); | |
4943ba16 | 428 | MODULE_ALIAS_CRYPTO("lrw"); |
f60bbbbe | 429 | MODULE_SOFTDEP("pre: ecb"); |