media: ov7740: constify structures stored in fields of v4l2_subdev_ops structure
[linux-2.6-block.git] / security / keys / trusted.c
CommitLineData
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1/*
2 * Copyright (C) 2010 IBM Corporation
3 *
4 * Author:
5 * David Safford <safford@us.ibm.com>
6 *
7 * This program is free software; you can redistribute it and/or modify
8 * it under the terms of the GNU General Public License as published by
9 * the Free Software Foundation, version 2 of the License.
10 *
5395d312 11 * See Documentation/security/keys/trusted-encrypted.rst
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12 */
13
5ca4c20c 14#include <crypto/hash_info.h>
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15#include <linux/uaccess.h>
16#include <linux/module.h>
17#include <linux/init.h>
18#include <linux/slab.h>
19#include <linux/parser.h>
20#include <linux/string.h>
93ae86e7 21#include <linux/err.h>
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22#include <keys/user-type.h>
23#include <keys/trusted-type.h>
24#include <linux/key-type.h>
25#include <linux/rcupdate.h>
26#include <linux/crypto.h>
27#include <crypto/hash.h>
28#include <crypto/sha.h>
29#include <linux/capability.h>
30#include <linux/tpm.h>
31#include <linux/tpm_command.h>
32
22447981 33#include <keys/trusted.h>
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34
35static const char hmac_alg[] = "hmac(sha1)";
36static const char hash_alg[] = "sha1";
37
38struct sdesc {
39 struct shash_desc shash;
40 char ctx[];
41};
42
43static struct crypto_shash *hashalg;
44static struct crypto_shash *hmacalg;
45
46static struct sdesc *init_sdesc(struct crypto_shash *alg)
47{
48 struct sdesc *sdesc;
49 int size;
50
51 size = sizeof(struct shash_desc) + crypto_shash_descsize(alg);
52 sdesc = kmalloc(size, GFP_KERNEL);
53 if (!sdesc)
54 return ERR_PTR(-ENOMEM);
55 sdesc->shash.tfm = alg;
56 sdesc->shash.flags = 0x0;
57 return sdesc;
58}
59
1bdbb402 60static int TSS_sha1(const unsigned char *data, unsigned int datalen,
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61 unsigned char *digest)
62{
63 struct sdesc *sdesc;
64 int ret;
65
66 sdesc = init_sdesc(hashalg);
67 if (IS_ERR(sdesc)) {
68 pr_info("trusted_key: can't alloc %s\n", hash_alg);
69 return PTR_ERR(sdesc);
70 }
71
72 ret = crypto_shash_digest(&sdesc->shash, data, datalen, digest);
ee618b46 73 kzfree(sdesc);
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74 return ret;
75}
76
77static int TSS_rawhmac(unsigned char *digest, const unsigned char *key,
1bdbb402 78 unsigned int keylen, ...)
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79{
80 struct sdesc *sdesc;
81 va_list argp;
82 unsigned int dlen;
83 unsigned char *data;
84 int ret;
85
86 sdesc = init_sdesc(hmacalg);
87 if (IS_ERR(sdesc)) {
88 pr_info("trusted_key: can't alloc %s\n", hmac_alg);
89 return PTR_ERR(sdesc);
90 }
91
92 ret = crypto_shash_setkey(hmacalg, key, keylen);
93 if (ret < 0)
94 goto out;
95 ret = crypto_shash_init(&sdesc->shash);
96 if (ret < 0)
97 goto out;
98
99 va_start(argp, keylen);
100 for (;;) {
101 dlen = va_arg(argp, unsigned int);
102 if (dlen == 0)
103 break;
104 data = va_arg(argp, unsigned char *);
35576eab
TH
105 if (data == NULL) {
106 ret = -EINVAL;
107 break;
108 }
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109 ret = crypto_shash_update(&sdesc->shash, data, dlen);
110 if (ret < 0)
35576eab 111 break;
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112 }
113 va_end(argp);
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114 if (!ret)
115 ret = crypto_shash_final(&sdesc->shash, digest);
d00a1c72 116out:
ee618b46 117 kzfree(sdesc);
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118 return ret;
119}
120
121/*
122 * calculate authorization info fields to send to TPM
123 */
e1ea9f86 124int TSS_authhmac(unsigned char *digest, const unsigned char *key,
1bdbb402 125 unsigned int keylen, unsigned char *h1,
bc5e0af0 126 unsigned char *h2, unsigned char h3, ...)
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127{
128 unsigned char paramdigest[SHA1_DIGEST_SIZE];
129 struct sdesc *sdesc;
130 unsigned int dlen;
131 unsigned char *data;
132 unsigned char c;
133 int ret;
134 va_list argp;
135
136 sdesc = init_sdesc(hashalg);
137 if (IS_ERR(sdesc)) {
138 pr_info("trusted_key: can't alloc %s\n", hash_alg);
139 return PTR_ERR(sdesc);
140 }
141
142 c = h3;
143 ret = crypto_shash_init(&sdesc->shash);
144 if (ret < 0)
145 goto out;
146 va_start(argp, h3);
147 for (;;) {
148 dlen = va_arg(argp, unsigned int);
149 if (dlen == 0)
150 break;
151 data = va_arg(argp, unsigned char *);
0e7491f6
TH
152 if (!data) {
153 ret = -EINVAL;
154a96bf 154 break;
0e7491f6 155 }
d00a1c72 156 ret = crypto_shash_update(&sdesc->shash, data, dlen);
154a96bf
TH
157 if (ret < 0)
158 break;
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159 }
160 va_end(argp);
154a96bf
TH
161 if (!ret)
162 ret = crypto_shash_final(&sdesc->shash, paramdigest);
d00a1c72 163 if (!ret)
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164 ret = TSS_rawhmac(digest, key, keylen, SHA1_DIGEST_SIZE,
165 paramdigest, TPM_NONCE_SIZE, h1,
166 TPM_NONCE_SIZE, h2, 1, &c, 0, 0);
d00a1c72 167out:
ee618b46 168 kzfree(sdesc);
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169 return ret;
170}
e1ea9f86 171EXPORT_SYMBOL_GPL(TSS_authhmac);
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172
173/*
174 * verify the AUTH1_COMMAND (Seal) result from TPM
175 */
e1ea9f86 176int TSS_checkhmac1(unsigned char *buffer,
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177 const uint32_t command,
178 const unsigned char *ononce,
179 const unsigned char *key,
1bdbb402 180 unsigned int keylen, ...)
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181{
182 uint32_t bufsize;
183 uint16_t tag;
184 uint32_t ordinal;
185 uint32_t result;
186 unsigned char *enonce;
187 unsigned char *continueflag;
188 unsigned char *authdata;
189 unsigned char testhmac[SHA1_DIGEST_SIZE];
190 unsigned char paramdigest[SHA1_DIGEST_SIZE];
191 struct sdesc *sdesc;
192 unsigned int dlen;
193 unsigned int dpos;
194 va_list argp;
195 int ret;
196
197 bufsize = LOAD32(buffer, TPM_SIZE_OFFSET);
198 tag = LOAD16(buffer, 0);
199 ordinal = command;
200 result = LOAD32N(buffer, TPM_RETURN_OFFSET);
201 if (tag == TPM_TAG_RSP_COMMAND)
202 return 0;
203 if (tag != TPM_TAG_RSP_AUTH1_COMMAND)
204 return -EINVAL;
205 authdata = buffer + bufsize - SHA1_DIGEST_SIZE;
206 continueflag = authdata - 1;
207 enonce = continueflag - TPM_NONCE_SIZE;
208
209 sdesc = init_sdesc(hashalg);
210 if (IS_ERR(sdesc)) {
211 pr_info("trusted_key: can't alloc %s\n", hash_alg);
212 return PTR_ERR(sdesc);
213 }
214 ret = crypto_shash_init(&sdesc->shash);
215 if (ret < 0)
216 goto out;
217 ret = crypto_shash_update(&sdesc->shash, (const u8 *)&result,
218 sizeof result);
219 if (ret < 0)
220 goto out;
221 ret = crypto_shash_update(&sdesc->shash, (const u8 *)&ordinal,
222 sizeof ordinal);
223 if (ret < 0)
224 goto out;
225 va_start(argp, keylen);
226 for (;;) {
227 dlen = va_arg(argp, unsigned int);
228 if (dlen == 0)
229 break;
230 dpos = va_arg(argp, unsigned int);
231 ret = crypto_shash_update(&sdesc->shash, buffer + dpos, dlen);
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TH
232 if (ret < 0)
233 break;
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234 }
235 va_end(argp);
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TH
236 if (!ret)
237 ret = crypto_shash_final(&sdesc->shash, paramdigest);
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238 if (ret < 0)
239 goto out;
bc5e0af0 240
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241 ret = TSS_rawhmac(testhmac, key, keylen, SHA1_DIGEST_SIZE, paramdigest,
242 TPM_NONCE_SIZE, enonce, TPM_NONCE_SIZE, ononce,
243 1, continueflag, 0, 0);
244 if (ret < 0)
245 goto out;
bc5e0af0 246
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247 if (memcmp(testhmac, authdata, SHA1_DIGEST_SIZE))
248 ret = -EINVAL;
249out:
ee618b46 250 kzfree(sdesc);
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251 return ret;
252}
e1ea9f86 253EXPORT_SYMBOL_GPL(TSS_checkhmac1);
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254
255/*
256 * verify the AUTH2_COMMAND (unseal) result from TPM
257 */
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258static int TSS_checkhmac2(unsigned char *buffer,
259 const uint32_t command,
260 const unsigned char *ononce,
261 const unsigned char *key1,
1bdbb402 262 unsigned int keylen1,
bc5e0af0 263 const unsigned char *key2,
1bdbb402 264 unsigned int keylen2, ...)
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265{
266 uint32_t bufsize;
267 uint16_t tag;
268 uint32_t ordinal;
269 uint32_t result;
270 unsigned char *enonce1;
271 unsigned char *continueflag1;
272 unsigned char *authdata1;
273 unsigned char *enonce2;
274 unsigned char *continueflag2;
275 unsigned char *authdata2;
276 unsigned char testhmac1[SHA1_DIGEST_SIZE];
277 unsigned char testhmac2[SHA1_DIGEST_SIZE];
278 unsigned char paramdigest[SHA1_DIGEST_SIZE];
279 struct sdesc *sdesc;
280 unsigned int dlen;
281 unsigned int dpos;
282 va_list argp;
283 int ret;
284
285 bufsize = LOAD32(buffer, TPM_SIZE_OFFSET);
286 tag = LOAD16(buffer, 0);
287 ordinal = command;
288 result = LOAD32N(buffer, TPM_RETURN_OFFSET);
289
290 if (tag == TPM_TAG_RSP_COMMAND)
291 return 0;
292 if (tag != TPM_TAG_RSP_AUTH2_COMMAND)
293 return -EINVAL;
294 authdata1 = buffer + bufsize - (SHA1_DIGEST_SIZE + 1
295 + SHA1_DIGEST_SIZE + SHA1_DIGEST_SIZE);
296 authdata2 = buffer + bufsize - (SHA1_DIGEST_SIZE);
297 continueflag1 = authdata1 - 1;
298 continueflag2 = authdata2 - 1;
299 enonce1 = continueflag1 - TPM_NONCE_SIZE;
300 enonce2 = continueflag2 - TPM_NONCE_SIZE;
301
302 sdesc = init_sdesc(hashalg);
303 if (IS_ERR(sdesc)) {
304 pr_info("trusted_key: can't alloc %s\n", hash_alg);
305 return PTR_ERR(sdesc);
306 }
307 ret = crypto_shash_init(&sdesc->shash);
308 if (ret < 0)
309 goto out;
310 ret = crypto_shash_update(&sdesc->shash, (const u8 *)&result,
311 sizeof result);
312 if (ret < 0)
313 goto out;
314 ret = crypto_shash_update(&sdesc->shash, (const u8 *)&ordinal,
315 sizeof ordinal);
316 if (ret < 0)
317 goto out;
318
319 va_start(argp, keylen2);
320 for (;;) {
321 dlen = va_arg(argp, unsigned int);
322 if (dlen == 0)
323 break;
324 dpos = va_arg(argp, unsigned int);
325 ret = crypto_shash_update(&sdesc->shash, buffer + dpos, dlen);
154a96bf
TH
326 if (ret < 0)
327 break;
d00a1c72 328 }
bc5e0af0 329 va_end(argp);
154a96bf
TH
330 if (!ret)
331 ret = crypto_shash_final(&sdesc->shash, paramdigest);
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332 if (ret < 0)
333 goto out;
334
335 ret = TSS_rawhmac(testhmac1, key1, keylen1, SHA1_DIGEST_SIZE,
336 paramdigest, TPM_NONCE_SIZE, enonce1,
337 TPM_NONCE_SIZE, ononce, 1, continueflag1, 0, 0);
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338 if (ret < 0)
339 goto out;
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340 if (memcmp(testhmac1, authdata1, SHA1_DIGEST_SIZE)) {
341 ret = -EINVAL;
342 goto out;
343 }
344 ret = TSS_rawhmac(testhmac2, key2, keylen2, SHA1_DIGEST_SIZE,
345 paramdigest, TPM_NONCE_SIZE, enonce2,
346 TPM_NONCE_SIZE, ononce, 1, continueflag2, 0, 0);
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347 if (ret < 0)
348 goto out;
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349 if (memcmp(testhmac2, authdata2, SHA1_DIGEST_SIZE))
350 ret = -EINVAL;
351out:
ee618b46 352 kzfree(sdesc);
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353 return ret;
354}
355
356/*
357 * For key specific tpm requests, we will generate and send our
358 * own TPM command packets using the drivers send function.
359 */
e1ea9f86 360int trusted_tpm_send(unsigned char *cmd, size_t buflen)
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361{
362 int rc;
363
364 dump_tpm_buf(cmd);
aad887f6 365 rc = tpm_send(NULL, cmd, buflen);
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366 dump_tpm_buf(cmd);
367 if (rc > 0)
368 /* Can't return positive return codes values to keyctl */
369 rc = -EPERM;
370 return rc;
371}
e1ea9f86 372EXPORT_SYMBOL_GPL(trusted_tpm_send);
d00a1c72 373
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374/*
375 * Lock a trusted key, by extending a selected PCR.
376 *
377 * Prevents a trusted key that is sealed to PCRs from being accessed.
378 * This uses the tpm driver's extend function.
379 */
380static int pcrlock(const int pcrnum)
381{
382 unsigned char hash[SHA1_DIGEST_SIZE];
bc5e0af0 383 int ret;
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384
385 if (!capable(CAP_SYS_ADMIN))
386 return -EPERM;
aad887f6 387 ret = tpm_get_random(NULL, hash, SHA1_DIGEST_SIZE);
41ab999c 388 if (ret != SHA1_DIGEST_SIZE)
bc5e0af0 389 return ret;
aad887f6 390 return tpm_pcr_extend(NULL, pcrnum, hash) ? -EINVAL : 0;
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391}
392
393/*
394 * Create an object specific authorisation protocol (OSAP) session
395 */
396static int osap(struct tpm_buf *tb, struct osapsess *s,
1bdbb402 397 const unsigned char *key, uint16_t type, uint32_t handle)
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398{
399 unsigned char enonce[TPM_NONCE_SIZE];
400 unsigned char ononce[TPM_NONCE_SIZE];
401 int ret;
402
aad887f6 403 ret = tpm_get_random(NULL, ononce, TPM_NONCE_SIZE);
41ab999c 404 if (ret != TPM_NONCE_SIZE)
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405 return ret;
406
407 INIT_BUF(tb);
408 store16(tb, TPM_TAG_RQU_COMMAND);
409 store32(tb, TPM_OSAP_SIZE);
410 store32(tb, TPM_ORD_OSAP);
411 store16(tb, type);
412 store32(tb, handle);
413 storebytes(tb, ononce, TPM_NONCE_SIZE);
414
aad887f6 415 ret = trusted_tpm_send(tb->data, MAX_BUF_SIZE);
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416 if (ret < 0)
417 return ret;
418
419 s->handle = LOAD32(tb->data, TPM_DATA_OFFSET);
420 memcpy(s->enonce, &(tb->data[TPM_DATA_OFFSET + sizeof(uint32_t)]),
421 TPM_NONCE_SIZE);
422 memcpy(enonce, &(tb->data[TPM_DATA_OFFSET + sizeof(uint32_t) +
423 TPM_NONCE_SIZE]), TPM_NONCE_SIZE);
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424 return TSS_rawhmac(s->secret, key, SHA1_DIGEST_SIZE, TPM_NONCE_SIZE,
425 enonce, TPM_NONCE_SIZE, ononce, 0, 0);
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426}
427
428/*
429 * Create an object independent authorisation protocol (oiap) session
430 */
e1ea9f86 431int oiap(struct tpm_buf *tb, uint32_t *handle, unsigned char *nonce)
d00a1c72
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432{
433 int ret;
434
435 INIT_BUF(tb);
436 store16(tb, TPM_TAG_RQU_COMMAND);
437 store32(tb, TPM_OIAP_SIZE);
438 store32(tb, TPM_ORD_OIAP);
aad887f6 439 ret = trusted_tpm_send(tb->data, MAX_BUF_SIZE);
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440 if (ret < 0)
441 return ret;
442
443 *handle = LOAD32(tb->data, TPM_DATA_OFFSET);
444 memcpy(nonce, &tb->data[TPM_DATA_OFFSET + sizeof(uint32_t)],
445 TPM_NONCE_SIZE);
bc5e0af0 446 return 0;
d00a1c72 447}
e1ea9f86 448EXPORT_SYMBOL_GPL(oiap);
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449
450struct tpm_digests {
451 unsigned char encauth[SHA1_DIGEST_SIZE];
452 unsigned char pubauth[SHA1_DIGEST_SIZE];
453 unsigned char xorwork[SHA1_DIGEST_SIZE * 2];
454 unsigned char xorhash[SHA1_DIGEST_SIZE];
455 unsigned char nonceodd[TPM_NONCE_SIZE];
456};
457
458/*
459 * Have the TPM seal(encrypt) the trusted key, possibly based on
460 * Platform Configuration Registers (PCRs). AUTH1 for sealing key.
461 */
1bdbb402
MZ
462static int tpm_seal(struct tpm_buf *tb, uint16_t keytype,
463 uint32_t keyhandle, const unsigned char *keyauth,
464 const unsigned char *data, uint32_t datalen,
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465 unsigned char *blob, uint32_t *bloblen,
466 const unsigned char *blobauth,
1bdbb402 467 const unsigned char *pcrinfo, uint32_t pcrinfosize)
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468{
469 struct osapsess sess;
470 struct tpm_digests *td;
471 unsigned char cont;
472 uint32_t ordinal;
473 uint32_t pcrsize;
474 uint32_t datsize;
475 int sealinfosize;
476 int encdatasize;
477 int storedsize;
478 int ret;
479 int i;
480
481 /* alloc some work space for all the hashes */
482 td = kmalloc(sizeof *td, GFP_KERNEL);
483 if (!td)
484 return -ENOMEM;
485
486 /* get session for sealing key */
487 ret = osap(tb, &sess, keyauth, keytype, keyhandle);
488 if (ret < 0)
40c10017 489 goto out;
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490 dump_sess(&sess);
491
492 /* calculate encrypted authorization value */
493 memcpy(td->xorwork, sess.secret, SHA1_DIGEST_SIZE);
494 memcpy(td->xorwork + SHA1_DIGEST_SIZE, sess.enonce, SHA1_DIGEST_SIZE);
495 ret = TSS_sha1(td->xorwork, SHA1_DIGEST_SIZE * 2, td->xorhash);
496 if (ret < 0)
40c10017 497 goto out;
d00a1c72 498
aad887f6 499 ret = tpm_get_random(NULL, td->nonceodd, TPM_NONCE_SIZE);
41ab999c 500 if (ret != TPM_NONCE_SIZE)
40c10017 501 goto out;
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502 ordinal = htonl(TPM_ORD_SEAL);
503 datsize = htonl(datalen);
504 pcrsize = htonl(pcrinfosize);
505 cont = 0;
506
507 /* encrypt data authorization key */
508 for (i = 0; i < SHA1_DIGEST_SIZE; ++i)
509 td->encauth[i] = td->xorhash[i] ^ blobauth[i];
510
511 /* calculate authorization HMAC value */
512 if (pcrinfosize == 0) {
513 /* no pcr info specified */
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514 ret = TSS_authhmac(td->pubauth, sess.secret, SHA1_DIGEST_SIZE,
515 sess.enonce, td->nonceodd, cont,
516 sizeof(uint32_t), &ordinal, SHA1_DIGEST_SIZE,
517 td->encauth, sizeof(uint32_t), &pcrsize,
518 sizeof(uint32_t), &datsize, datalen, data, 0,
519 0);
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520 } else {
521 /* pcr info specified */
bc5e0af0
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522 ret = TSS_authhmac(td->pubauth, sess.secret, SHA1_DIGEST_SIZE,
523 sess.enonce, td->nonceodd, cont,
524 sizeof(uint32_t), &ordinal, SHA1_DIGEST_SIZE,
525 td->encauth, sizeof(uint32_t), &pcrsize,
526 pcrinfosize, pcrinfo, sizeof(uint32_t),
527 &datsize, datalen, data, 0, 0);
d00a1c72 528 }
bc5e0af0 529 if (ret < 0)
40c10017 530 goto out;
d00a1c72
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531
532 /* build and send the TPM request packet */
533 INIT_BUF(tb);
534 store16(tb, TPM_TAG_RQU_AUTH1_COMMAND);
535 store32(tb, TPM_SEAL_SIZE + pcrinfosize + datalen);
536 store32(tb, TPM_ORD_SEAL);
537 store32(tb, keyhandle);
538 storebytes(tb, td->encauth, SHA1_DIGEST_SIZE);
539 store32(tb, pcrinfosize);
540 storebytes(tb, pcrinfo, pcrinfosize);
541 store32(tb, datalen);
542 storebytes(tb, data, datalen);
543 store32(tb, sess.handle);
544 storebytes(tb, td->nonceodd, TPM_NONCE_SIZE);
545 store8(tb, cont);
546 storebytes(tb, td->pubauth, SHA1_DIGEST_SIZE);
547
aad887f6 548 ret = trusted_tpm_send(tb->data, MAX_BUF_SIZE);
d00a1c72 549 if (ret < 0)
40c10017 550 goto out;
d00a1c72
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551
552 /* calculate the size of the returned Blob */
553 sealinfosize = LOAD32(tb->data, TPM_DATA_OFFSET + sizeof(uint32_t));
554 encdatasize = LOAD32(tb->data, TPM_DATA_OFFSET + sizeof(uint32_t) +
555 sizeof(uint32_t) + sealinfosize);
556 storedsize = sizeof(uint32_t) + sizeof(uint32_t) + sealinfosize +
557 sizeof(uint32_t) + encdatasize;
558
559 /* check the HMAC in the response */
560 ret = TSS_checkhmac1(tb->data, ordinal, td->nonceodd, sess.secret,
561 SHA1_DIGEST_SIZE, storedsize, TPM_DATA_OFFSET, 0,
562 0);
563
564 /* copy the returned blob to caller */
bc5e0af0
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565 if (!ret) {
566 memcpy(blob, tb->data + TPM_DATA_OFFSET, storedsize);
567 *bloblen = storedsize;
568 }
40c10017 569out:
ee618b46 570 kzfree(td);
d00a1c72
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571 return ret;
572}
573
574/*
575 * use the AUTH2_COMMAND form of unseal, to authorize both key and blob
576 */
577static int tpm_unseal(struct tpm_buf *tb,
1bdbb402
MZ
578 uint32_t keyhandle, const unsigned char *keyauth,
579 const unsigned char *blob, int bloblen,
d00a1c72
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580 const unsigned char *blobauth,
581 unsigned char *data, unsigned int *datalen)
582{
583 unsigned char nonceodd[TPM_NONCE_SIZE];
584 unsigned char enonce1[TPM_NONCE_SIZE];
585 unsigned char enonce2[TPM_NONCE_SIZE];
586 unsigned char authdata1[SHA1_DIGEST_SIZE];
587 unsigned char authdata2[SHA1_DIGEST_SIZE];
588 uint32_t authhandle1 = 0;
589 uint32_t authhandle2 = 0;
590 unsigned char cont = 0;
591 uint32_t ordinal;
592 uint32_t keyhndl;
593 int ret;
594
595 /* sessions for unsealing key and data */
596 ret = oiap(tb, &authhandle1, enonce1);
597 if (ret < 0) {
598 pr_info("trusted_key: oiap failed (%d)\n", ret);
599 return ret;
600 }
601 ret = oiap(tb, &authhandle2, enonce2);
602 if (ret < 0) {
603 pr_info("trusted_key: oiap failed (%d)\n", ret);
604 return ret;
605 }
606
607 ordinal = htonl(TPM_ORD_UNSEAL);
608 keyhndl = htonl(SRKHANDLE);
aad887f6 609 ret = tpm_get_random(NULL, nonceodd, TPM_NONCE_SIZE);
41ab999c 610 if (ret != TPM_NONCE_SIZE) {
d00a1c72
MZ
611 pr_info("trusted_key: tpm_get_random failed (%d)\n", ret);
612 return ret;
613 }
bc5e0af0
MZ
614 ret = TSS_authhmac(authdata1, keyauth, TPM_NONCE_SIZE,
615 enonce1, nonceodd, cont, sizeof(uint32_t),
616 &ordinal, bloblen, blob, 0, 0);
617 if (ret < 0)
618 return ret;
619 ret = TSS_authhmac(authdata2, blobauth, TPM_NONCE_SIZE,
620 enonce2, nonceodd, cont, sizeof(uint32_t),
621 &ordinal, bloblen, blob, 0, 0);
622 if (ret < 0)
623 return ret;
d00a1c72
MZ
624
625 /* build and send TPM request packet */
626 INIT_BUF(tb);
627 store16(tb, TPM_TAG_RQU_AUTH2_COMMAND);
628 store32(tb, TPM_UNSEAL_SIZE + bloblen);
629 store32(tb, TPM_ORD_UNSEAL);
630 store32(tb, keyhandle);
631 storebytes(tb, blob, bloblen);
632 store32(tb, authhandle1);
633 storebytes(tb, nonceodd, TPM_NONCE_SIZE);
634 store8(tb, cont);
635 storebytes(tb, authdata1, SHA1_DIGEST_SIZE);
636 store32(tb, authhandle2);
637 storebytes(tb, nonceodd, TPM_NONCE_SIZE);
638 store8(tb, cont);
639 storebytes(tb, authdata2, SHA1_DIGEST_SIZE);
640
aad887f6 641 ret = trusted_tpm_send(tb->data, MAX_BUF_SIZE);
d00a1c72
MZ
642 if (ret < 0) {
643 pr_info("trusted_key: authhmac failed (%d)\n", ret);
644 return ret;
645 }
646
647 *datalen = LOAD32(tb->data, TPM_DATA_OFFSET);
648 ret = TSS_checkhmac2(tb->data, ordinal, nonceodd,
649 keyauth, SHA1_DIGEST_SIZE,
650 blobauth, SHA1_DIGEST_SIZE,
651 sizeof(uint32_t), TPM_DATA_OFFSET,
652 *datalen, TPM_DATA_OFFSET + sizeof(uint32_t), 0,
653 0);
bc5e0af0 654 if (ret < 0) {
d00a1c72 655 pr_info("trusted_key: TSS_checkhmac2 failed (%d)\n", ret);
bc5e0af0
MZ
656 return ret;
657 }
d00a1c72 658 memcpy(data, tb->data + TPM_DATA_OFFSET + sizeof(uint32_t), *datalen);
bc5e0af0 659 return 0;
d00a1c72
MZ
660}
661
662/*
663 * Have the TPM seal(encrypt) the symmetric key
664 */
665static int key_seal(struct trusted_key_payload *p,
666 struct trusted_key_options *o)
667{
668 struct tpm_buf *tb;
669 int ret;
670
671 tb = kzalloc(sizeof *tb, GFP_KERNEL);
672 if (!tb)
673 return -ENOMEM;
674
675 /* include migratable flag at end of sealed key */
676 p->key[p->key_len] = p->migratable;
677
678 ret = tpm_seal(tb, o->keytype, o->keyhandle, o->keyauth,
679 p->key, p->key_len + 1, p->blob, &p->blob_len,
680 o->blobauth, o->pcrinfo, o->pcrinfo_len);
681 if (ret < 0)
682 pr_info("trusted_key: srkseal failed (%d)\n", ret);
683
ee618b46 684 kzfree(tb);
d00a1c72
MZ
685 return ret;
686}
687
688/*
689 * Have the TPM unseal(decrypt) the symmetric key
690 */
691static int key_unseal(struct trusted_key_payload *p,
692 struct trusted_key_options *o)
693{
694 struct tpm_buf *tb;
695 int ret;
696
697 tb = kzalloc(sizeof *tb, GFP_KERNEL);
698 if (!tb)
699 return -ENOMEM;
700
701 ret = tpm_unseal(tb, o->keyhandle, o->keyauth, p->blob, p->blob_len,
702 o->blobauth, p->key, &p->key_len);
d00a1c72
MZ
703 if (ret < 0)
704 pr_info("trusted_key: srkunseal failed (%d)\n", ret);
bc5e0af0
MZ
705 else
706 /* pull migratable flag out of sealed key */
707 p->migratable = p->key[--p->key_len];
d00a1c72 708
ee618b46 709 kzfree(tb);
d00a1c72
MZ
710 return ret;
711}
712
713enum {
714 Opt_err = -1,
715 Opt_new, Opt_load, Opt_update,
716 Opt_keyhandle, Opt_keyauth, Opt_blobauth,
5ca4c20c
JS
717 Opt_pcrinfo, Opt_pcrlock, Opt_migratable,
718 Opt_hash,
5beb0c43
JS
719 Opt_policydigest,
720 Opt_policyhandle,
d00a1c72
MZ
721};
722
723static const match_table_t key_tokens = {
724 {Opt_new, "new"},
725 {Opt_load, "load"},
726 {Opt_update, "update"},
727 {Opt_keyhandle, "keyhandle=%s"},
728 {Opt_keyauth, "keyauth=%s"},
729 {Opt_blobauth, "blobauth=%s"},
730 {Opt_pcrinfo, "pcrinfo=%s"},
731 {Opt_pcrlock, "pcrlock=%s"},
732 {Opt_migratable, "migratable=%s"},
5ca4c20c 733 {Opt_hash, "hash=%s"},
5beb0c43
JS
734 {Opt_policydigest, "policydigest=%s"},
735 {Opt_policyhandle, "policyhandle=%s"},
d00a1c72
MZ
736 {Opt_err, NULL}
737};
738
739/* can have zero or more token= options */
740static int getoptions(char *c, struct trusted_key_payload *pay,
741 struct trusted_key_options *opt)
742{
743 substring_t args[MAX_OPT_ARGS];
744 char *p = c;
745 int token;
746 int res;
747 unsigned long handle;
748 unsigned long lock;
5208cc83 749 unsigned long token_mask = 0;
f3c82ade 750 unsigned int digest_len;
5ca4c20c
JS
751 int i;
752 int tpm2;
753
aad887f6 754 tpm2 = tpm_is_tpm2(NULL);
5ca4c20c
JS
755 if (tpm2 < 0)
756 return tpm2;
757
758 opt->hash = tpm2 ? HASH_ALGO_SHA256 : HASH_ALGO_SHA1;
d00a1c72
MZ
759
760 while ((p = strsep(&c, " \t"))) {
761 if (*p == '\0' || *p == ' ' || *p == '\t')
762 continue;
763 token = match_token(p, key_tokens, args);
5208cc83
JS
764 if (test_and_set_bit(token, &token_mask))
765 return -EINVAL;
d00a1c72
MZ
766
767 switch (token) {
768 case Opt_pcrinfo:
769 opt->pcrinfo_len = strlen(args[0].from) / 2;
770 if (opt->pcrinfo_len > MAX_PCRINFO_SIZE)
771 return -EINVAL;
2684bf7f
MZ
772 res = hex2bin(opt->pcrinfo, args[0].from,
773 opt->pcrinfo_len);
774 if (res < 0)
775 return -EINVAL;
d00a1c72
MZ
776 break;
777 case Opt_keyhandle:
29707b20 778 res = kstrtoul(args[0].from, 16, &handle);
d00a1c72
MZ
779 if (res < 0)
780 return -EINVAL;
781 opt->keytype = SEAL_keytype;
782 opt->keyhandle = handle;
783 break;
784 case Opt_keyauth:
785 if (strlen(args[0].from) != 2 * SHA1_DIGEST_SIZE)
786 return -EINVAL;
2684bf7f
MZ
787 res = hex2bin(opt->keyauth, args[0].from,
788 SHA1_DIGEST_SIZE);
789 if (res < 0)
790 return -EINVAL;
d00a1c72
MZ
791 break;
792 case Opt_blobauth:
793 if (strlen(args[0].from) != 2 * SHA1_DIGEST_SIZE)
794 return -EINVAL;
2684bf7f
MZ
795 res = hex2bin(opt->blobauth, args[0].from,
796 SHA1_DIGEST_SIZE);
797 if (res < 0)
798 return -EINVAL;
d00a1c72
MZ
799 break;
800 case Opt_migratable:
801 if (*args[0].from == '0')
802 pay->migratable = 0;
803 else
804 return -EINVAL;
805 break;
806 case Opt_pcrlock:
29707b20 807 res = kstrtoul(args[0].from, 10, &lock);
d00a1c72
MZ
808 if (res < 0)
809 return -EINVAL;
810 opt->pcrlock = lock;
811 break;
5ca4c20c 812 case Opt_hash:
5beb0c43
JS
813 if (test_bit(Opt_policydigest, &token_mask))
814 return -EINVAL;
5ca4c20c
JS
815 for (i = 0; i < HASH_ALGO__LAST; i++) {
816 if (!strcmp(args[0].from, hash_algo_name[i])) {
817 opt->hash = i;
818 break;
819 }
820 }
821 if (i == HASH_ALGO__LAST)
822 return -EINVAL;
823 if (!tpm2 && i != HASH_ALGO_SHA1) {
824 pr_info("trusted_key: TPM 1.x only supports SHA-1.\n");
825 return -EINVAL;
826 }
827 break;
5beb0c43 828 case Opt_policydigest:
f3c82ade
JS
829 digest_len = hash_digest_size[opt->hash];
830 if (!tpm2 || strlen(args[0].from) != (2 * digest_len))
5beb0c43
JS
831 return -EINVAL;
832 res = hex2bin(opt->policydigest, args[0].from,
f3c82ade 833 digest_len);
5beb0c43
JS
834 if (res < 0)
835 return -EINVAL;
f3c82ade 836 opt->policydigest_len = digest_len;
5beb0c43
JS
837 break;
838 case Opt_policyhandle:
839 if (!tpm2)
840 return -EINVAL;
841 res = kstrtoul(args[0].from, 16, &handle);
842 if (res < 0)
843 return -EINVAL;
844 opt->policyhandle = handle;
845 break;
d00a1c72
MZ
846 default:
847 return -EINVAL;
848 }
849 }
850 return 0;
851}
852
853/*
854 * datablob_parse - parse the keyctl data and fill in the
855 * payload and options structures
856 *
857 * On success returns 0, otherwise -EINVAL.
858 */
859static int datablob_parse(char *datablob, struct trusted_key_payload *p,
860 struct trusted_key_options *o)
861{
862 substring_t args[MAX_OPT_ARGS];
863 long keylen;
864 int ret = -EINVAL;
865 int key_cmd;
866 char *c;
867
868 /* main command */
869 c = strsep(&datablob, " \t");
870 if (!c)
871 return -EINVAL;
872 key_cmd = match_token(c, key_tokens, args);
873 switch (key_cmd) {
874 case Opt_new:
875 /* first argument is key size */
876 c = strsep(&datablob, " \t");
877 if (!c)
878 return -EINVAL;
29707b20 879 ret = kstrtol(c, 10, &keylen);
d00a1c72
MZ
880 if (ret < 0 || keylen < MIN_KEY_SIZE || keylen > MAX_KEY_SIZE)
881 return -EINVAL;
882 p->key_len = keylen;
883 ret = getoptions(datablob, p, o);
884 if (ret < 0)
885 return ret;
886 ret = Opt_new;
887 break;
888 case Opt_load:
889 /* first argument is sealed blob */
890 c = strsep(&datablob, " \t");
891 if (!c)
892 return -EINVAL;
893 p->blob_len = strlen(c) / 2;
894 if (p->blob_len > MAX_BLOB_SIZE)
895 return -EINVAL;
2684bf7f
MZ
896 ret = hex2bin(p->blob, c, p->blob_len);
897 if (ret < 0)
898 return -EINVAL;
d00a1c72
MZ
899 ret = getoptions(datablob, p, o);
900 if (ret < 0)
901 return ret;
902 ret = Opt_load;
903 break;
904 case Opt_update:
905 /* all arguments are options */
906 ret = getoptions(datablob, p, o);
907 if (ret < 0)
908 return ret;
909 ret = Opt_update;
910 break;
911 case Opt_err:
912 return -EINVAL;
913 break;
914 }
915 return ret;
916}
917
918static struct trusted_key_options *trusted_options_alloc(void)
919{
920 struct trusted_key_options *options;
0fe54803
JS
921 int tpm2;
922
aad887f6 923 tpm2 = tpm_is_tpm2(NULL);
0fe54803
JS
924 if (tpm2 < 0)
925 return NULL;
d00a1c72
MZ
926
927 options = kzalloc(sizeof *options, GFP_KERNEL);
bc5e0af0
MZ
928 if (options) {
929 /* set any non-zero defaults */
930 options->keytype = SRK_keytype;
0fe54803
JS
931
932 if (!tpm2)
933 options->keyhandle = SRKHANDLE;
bc5e0af0 934 }
d00a1c72
MZ
935 return options;
936}
937
938static struct trusted_key_payload *trusted_payload_alloc(struct key *key)
939{
940 struct trusted_key_payload *p = NULL;
941 int ret;
942
943 ret = key_payload_reserve(key, sizeof *p);
944 if (ret < 0)
945 return p;
946 p = kzalloc(sizeof *p, GFP_KERNEL);
bc5e0af0
MZ
947 if (p)
948 p->migratable = 1; /* migratable by default */
d00a1c72
MZ
949 return p;
950}
951
952/*
953 * trusted_instantiate - create a new trusted key
954 *
955 * Unseal an existing trusted blob or, for a new key, get a
956 * random key, then seal and create a trusted key-type key,
957 * adding it to the specified keyring.
958 *
959 * On success, return 0. Otherwise return errno.
960 */
cf7f601c
DH
961static int trusted_instantiate(struct key *key,
962 struct key_preparsed_payload *prep)
d00a1c72
MZ
963{
964 struct trusted_key_payload *payload = NULL;
965 struct trusted_key_options *options = NULL;
cf7f601c 966 size_t datalen = prep->datalen;
d00a1c72
MZ
967 char *datablob;
968 int ret = 0;
969 int key_cmd;
41ab999c 970 size_t key_len;
0fe54803
JS
971 int tpm2;
972
aad887f6 973 tpm2 = tpm_is_tpm2(NULL);
0fe54803
JS
974 if (tpm2 < 0)
975 return tpm2;
d00a1c72 976
cf7f601c 977 if (datalen <= 0 || datalen > 32767 || !prep->data)
d00a1c72
MZ
978 return -EINVAL;
979
980 datablob = kmalloc(datalen + 1, GFP_KERNEL);
981 if (!datablob)
982 return -ENOMEM;
cf7f601c 983 memcpy(datablob, prep->data, datalen);
d00a1c72
MZ
984 datablob[datalen] = '\0';
985
986 options = trusted_options_alloc();
987 if (!options) {
988 ret = -ENOMEM;
989 goto out;
990 }
991 payload = trusted_payload_alloc(key);
992 if (!payload) {
993 ret = -ENOMEM;
994 goto out;
995 }
996
997 key_cmd = datablob_parse(datablob, payload, options);
998 if (key_cmd < 0) {
999 ret = key_cmd;
1000 goto out;
1001 }
1002
0fe54803
JS
1003 if (!options->keyhandle) {
1004 ret = -EINVAL;
1005 goto out;
1006 }
1007
d00a1c72
MZ
1008 dump_payload(payload);
1009 dump_options(options);
1010
1011 switch (key_cmd) {
1012 case Opt_load:
0fe54803 1013 if (tpm2)
aad887f6 1014 ret = tpm_unseal_trusted(NULL, payload, options);
0fe54803
JS
1015 else
1016 ret = key_unseal(payload, options);
d00a1c72
MZ
1017 dump_payload(payload);
1018 dump_options(options);
1019 if (ret < 0)
1020 pr_info("trusted_key: key_unseal failed (%d)\n", ret);
1021 break;
1022 case Opt_new:
41ab999c 1023 key_len = payload->key_len;
aad887f6 1024 ret = tpm_get_random(NULL, payload->key, key_len);
41ab999c 1025 if (ret != key_len) {
d00a1c72
MZ
1026 pr_info("trusted_key: key_create failed (%d)\n", ret);
1027 goto out;
1028 }
0fe54803 1029 if (tpm2)
aad887f6 1030 ret = tpm_seal_trusted(NULL, payload, options);
0fe54803
JS
1031 else
1032 ret = key_seal(payload, options);
d00a1c72
MZ
1033 if (ret < 0)
1034 pr_info("trusted_key: key_seal failed (%d)\n", ret);
1035 break;
1036 default:
1037 ret = -EINVAL;
1038 goto out;
1039 }
1040 if (!ret && options->pcrlock)
1041 ret = pcrlock(options->pcrlock);
1042out:
ee618b46
EB
1043 kzfree(datablob);
1044 kzfree(options);
d00a1c72 1045 if (!ret)
ee0b31a2 1046 rcu_assign_keypointer(key, payload);
d00a1c72 1047 else
ee618b46 1048 kzfree(payload);
d00a1c72
MZ
1049 return ret;
1050}
1051
1052static void trusted_rcu_free(struct rcu_head *rcu)
1053{
1054 struct trusted_key_payload *p;
1055
1056 p = container_of(rcu, struct trusted_key_payload, rcu);
ee618b46 1057 kzfree(p);
d00a1c72
MZ
1058}
1059
1060/*
1061 * trusted_update - reseal an existing key with new PCR values
1062 */
cf7f601c 1063static int trusted_update(struct key *key, struct key_preparsed_payload *prep)
d00a1c72 1064{
096fe9ea 1065 struct trusted_key_payload *p;
d00a1c72
MZ
1066 struct trusted_key_payload *new_p;
1067 struct trusted_key_options *new_o;
cf7f601c 1068 size_t datalen = prep->datalen;
d00a1c72
MZ
1069 char *datablob;
1070 int ret = 0;
1071
363b02da 1072 if (key_is_negative(key))
096fe9ea
DH
1073 return -ENOKEY;
1074 p = key->payload.data[0];
d00a1c72
MZ
1075 if (!p->migratable)
1076 return -EPERM;
cf7f601c 1077 if (datalen <= 0 || datalen > 32767 || !prep->data)
d00a1c72
MZ
1078 return -EINVAL;
1079
1080 datablob = kmalloc(datalen + 1, GFP_KERNEL);
1081 if (!datablob)
1082 return -ENOMEM;
1083 new_o = trusted_options_alloc();
1084 if (!new_o) {
1085 ret = -ENOMEM;
1086 goto out;
1087 }
1088 new_p = trusted_payload_alloc(key);
1089 if (!new_p) {
1090 ret = -ENOMEM;
1091 goto out;
1092 }
1093
cf7f601c 1094 memcpy(datablob, prep->data, datalen);
d00a1c72
MZ
1095 datablob[datalen] = '\0';
1096 ret = datablob_parse(datablob, new_p, new_o);
1097 if (ret != Opt_update) {
1098 ret = -EINVAL;
ee618b46 1099 kzfree(new_p);
d00a1c72
MZ
1100 goto out;
1101 }
0fe54803
JS
1102
1103 if (!new_o->keyhandle) {
1104 ret = -EINVAL;
ee618b46 1105 kzfree(new_p);
0fe54803
JS
1106 goto out;
1107 }
1108
d00a1c72
MZ
1109 /* copy old key values, and reseal with new pcrs */
1110 new_p->migratable = p->migratable;
1111 new_p->key_len = p->key_len;
1112 memcpy(new_p->key, p->key, p->key_len);
1113 dump_payload(p);
1114 dump_payload(new_p);
1115
1116 ret = key_seal(new_p, new_o);
1117 if (ret < 0) {
1118 pr_info("trusted_key: key_seal failed (%d)\n", ret);
ee618b46 1119 kzfree(new_p);
d00a1c72
MZ
1120 goto out;
1121 }
1122 if (new_o->pcrlock) {
1123 ret = pcrlock(new_o->pcrlock);
1124 if (ret < 0) {
1125 pr_info("trusted_key: pcrlock failed (%d)\n", ret);
ee618b46 1126 kzfree(new_p);
d00a1c72
MZ
1127 goto out;
1128 }
1129 }
ee0b31a2 1130 rcu_assign_keypointer(key, new_p);
d00a1c72
MZ
1131 call_rcu(&p->rcu, trusted_rcu_free);
1132out:
ee618b46
EB
1133 kzfree(datablob);
1134 kzfree(new_o);
d00a1c72
MZ
1135 return ret;
1136}
1137
1138/*
1139 * trusted_read - copy the sealed blob data to userspace in hex.
1140 * On success, return to userspace the trusted key datablob size.
1141 */
1142static long trusted_read(const struct key *key, char __user *buffer,
1143 size_t buflen)
1144{
0837e49a 1145 const struct trusted_key_payload *p;
d00a1c72
MZ
1146 char *ascii_buf;
1147 char *bufp;
1148 int i;
1149
0837e49a 1150 p = dereference_key_locked(key);
d00a1c72
MZ
1151 if (!p)
1152 return -EINVAL;
d00a1c72 1153
a3c812f7 1154 if (buffer && buflen >= 2 * p->blob_len) {
6da2ec56 1155 ascii_buf = kmalloc_array(2, p->blob_len, GFP_KERNEL);
a3c812f7
EB
1156 if (!ascii_buf)
1157 return -ENOMEM;
1158
1159 bufp = ascii_buf;
1160 for (i = 0; i < p->blob_len; i++)
1161 bufp = hex_byte_pack(bufp, p->blob[i]);
1162 if (copy_to_user(buffer, ascii_buf, 2 * p->blob_len) != 0) {
1163 kzfree(ascii_buf);
1164 return -EFAULT;
1165 }
ee618b46 1166 kzfree(ascii_buf);
d00a1c72 1167 }
d00a1c72
MZ
1168 return 2 * p->blob_len;
1169}
1170
1171/*
ee618b46 1172 * trusted_destroy - clear and free the key's payload
d00a1c72
MZ
1173 */
1174static void trusted_destroy(struct key *key)
1175{
ee618b46 1176 kzfree(key->payload.data[0]);
d00a1c72
MZ
1177}
1178
1179struct key_type key_type_trusted = {
1180 .name = "trusted",
1181 .instantiate = trusted_instantiate,
1182 .update = trusted_update,
d00a1c72
MZ
1183 .destroy = trusted_destroy,
1184 .describe = user_describe,
1185 .read = trusted_read,
1186};
1187
1188EXPORT_SYMBOL_GPL(key_type_trusted);
1189
1190static void trusted_shash_release(void)
1191{
1192 if (hashalg)
1193 crypto_free_shash(hashalg);
1194 if (hmacalg)
1195 crypto_free_shash(hmacalg);
1196}
1197
1198static int __init trusted_shash_alloc(void)
1199{
1200 int ret;
1201
1202 hmacalg = crypto_alloc_shash(hmac_alg, 0, CRYPTO_ALG_ASYNC);
1203 if (IS_ERR(hmacalg)) {
1204 pr_info("trusted_key: could not allocate crypto %s\n",
1205 hmac_alg);
1206 return PTR_ERR(hmacalg);
1207 }
1208
1209 hashalg = crypto_alloc_shash(hash_alg, 0, CRYPTO_ALG_ASYNC);
1210 if (IS_ERR(hashalg)) {
1211 pr_info("trusted_key: could not allocate crypto %s\n",
1212 hash_alg);
1213 ret = PTR_ERR(hashalg);
1214 goto hashalg_fail;
1215 }
1216
1217 return 0;
1218
1219hashalg_fail:
1220 crypto_free_shash(hmacalg);
1221 return ret;
1222}
1223
1224static int __init init_trusted(void)
1225{
1226 int ret;
1227
1228 ret = trusted_shash_alloc();
1229 if (ret < 0)
1230 return ret;
1231 ret = register_key_type(&key_type_trusted);
1232 if (ret < 0)
1233 trusted_shash_release();
1234 return ret;
1235}
1236
1237static void __exit cleanup_trusted(void)
1238{
1239 trusted_shash_release();
1240 unregister_key_type(&key_type_trusted);
1241}
1242
1243late_initcall(init_trusted);
1244module_exit(cleanup_trusted);
1245
1246MODULE_LICENSE("GPL");