1 /*
2 * CDDL HEADER START
3 *
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
7 *
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or http://www.opensolaris.org/os/licensing.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
12 *
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
18 *
19 * CDDL HEADER END
20 */
21 /*
22 * Copyright 2008 Sun Microsystems, Inc. All rights reserved.
23 * Use is subject to license terms.
24 */
25
26 #ifndef _KERNEL
27 #include <strings.h>
28 #include <limits.h>
29 #include <assert.h>
30 #include <security/cryptoki.h>
31 #endif
32
33 #include <sys/types.h>
34 #include <sys/kmem.h>
35 #include <modes/modes.h>
36 #include <sys/crypto/common.h>
37 #include <sys/crypto/impl.h>
38
39 #if defined(__i386) || defined(__amd64)
40 #include <sys/byteorder.h>
41 #define UNALIGNED_POINTERS_PERMITTED
42 #endif
43
44 /*
45 * Encrypt multiple blocks of data in CCM mode. Decrypt for CCM mode
46 * is done in another function.
47 */
48 int
49 ccm_mode_encrypt_contiguous_blocks(ccm_ctx_t *ctx, char *data, size_t length,
50 crypto_data_t *out, size_t block_size,
51 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *),
52 void (*copy_block)(uint8_t *, uint8_t *),
53 void (*xor_block)(uint8_t *, uint8_t *))
54 {
55 size_t remainder = length;
56 size_t need;
57 uint8_t *datap = (uint8_t *)data;
58 uint8_t *blockp;
59 uint8_t *lastp;
60 void *iov_or_mp;
61 offset_t offset;
62 uint8_t *out_data_1;
63 uint8_t *out_data_2;
64 size_t out_data_1_len;
65 uint64_t counter;
66 uint8_t *mac_buf;
67
68 if (length + ctx->ccm_remainder_len < block_size) {
69 /* accumulate bytes here and return */
70 bcopy(datap,
71 (uint8_t *)ctx->ccm_remainder + ctx->ccm_remainder_len,
72 length);
73 ctx->ccm_remainder_len += length;
74 ctx->ccm_copy_to = datap;
75 return (CRYPTO_SUCCESS);
76 }
77
78 lastp = (uint8_t *)ctx->ccm_cb;
79 if (out != NULL)
80 crypto_init_ptrs(out, &iov_or_mp, &offset);
81
82 mac_buf = (uint8_t *)ctx->ccm_mac_buf;
83
84 do {
85 /* Unprocessed data from last call. */
86 if (ctx->ccm_remainder_len > 0) {
87 need = block_size - ctx->ccm_remainder_len;
88
89 if (need > remainder)
90 return (CRYPTO_DATA_LEN_RANGE);
91
92 bcopy(datap, &((uint8_t *)ctx->ccm_remainder)
93 [ctx->ccm_remainder_len], need);
94
95 blockp = (uint8_t *)ctx->ccm_remainder;
96 } else {
97 blockp = datap;
98 }
99
100 /*
101 * do CBC MAC
102 *
103 * XOR the previous cipher block current clear block.
104 * mac_buf always contain previous cipher block.
105 */
106 xor_block(blockp, mac_buf);
107 encrypt_block(ctx->ccm_keysched, mac_buf, mac_buf);
108
109 /* ccm_cb is the counter block */
110 encrypt_block(ctx->ccm_keysched, (uint8_t *)ctx->ccm_cb,
111 (uint8_t *)ctx->ccm_tmp);
112
113 lastp = (uint8_t *)ctx->ccm_tmp;
114
115 /*
116 * Increment counter. Counter bits are confined
117 * to the bottom 64 bits of the counter block.
118 */
119 #ifdef _LITTLE_ENDIAN
120 counter = ntohll(ctx->ccm_cb[1] & ctx->ccm_counter_mask);
121 counter = htonll(counter + 1);
122 #else
123 counter = ctx->ccm_cb[1] & ctx->ccm_counter_mask;
124 counter++;
125 #endif /* _LITTLE_ENDIAN */
126 counter &= ctx->ccm_counter_mask;
127 ctx->ccm_cb[1] =
128 (ctx->ccm_cb[1] & ~(ctx->ccm_counter_mask)) | counter;
129
130 /*
131 * XOR encrypted counter block with the current clear block.
132 */
133 xor_block(blockp, lastp);
134
135 ctx->ccm_processed_data_len += block_size;
136
137 if (out == NULL) {
138 if (ctx->ccm_remainder_len > 0) {
139 bcopy(blockp, ctx->ccm_copy_to,
140 ctx->ccm_remainder_len);
141 bcopy(blockp + ctx->ccm_remainder_len, datap,
142 need);
143 }
144 } else {
145 crypto_get_ptrs(out, &iov_or_mp, &offset, &out_data_1,
146 &out_data_1_len, &out_data_2, block_size);
147
148 /* copy block to where it belongs */
149 if (out_data_1_len == block_size) {
150 copy_block(lastp, out_data_1);
151 } else {
152 bcopy(lastp, out_data_1, out_data_1_len);
153 if (out_data_2 != NULL) {
154 bcopy(lastp + out_data_1_len,
155 out_data_2,
156 block_size - out_data_1_len);
157 }
158 }
159 /* update offset */
160 out->cd_offset += block_size;
161 }
162
163 /* Update pointer to next block of data to be processed. */
164 if (ctx->ccm_remainder_len != 0) {
165 datap += need;
166 ctx->ccm_remainder_len = 0;
167 } else {
168 datap += block_size;
169 }
170
171 remainder = (size_t)&data[length] - (size_t)datap;
172
173 /* Incomplete last block. */
174 if (remainder > 0 && remainder < block_size) {
175 bcopy(datap, ctx->ccm_remainder, remainder);
176 ctx->ccm_remainder_len = remainder;
177 ctx->ccm_copy_to = datap;
178 goto out;
179 }
180 ctx->ccm_copy_to = NULL;
181
182 } while (remainder > 0);
183
184 out:
185 return (CRYPTO_SUCCESS);
186 }
187
188 void
189 calculate_ccm_mac(ccm_ctx_t *ctx, uint8_t *ccm_mac,
190 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *))
191 {
192 uint64_t counter;
193 uint8_t *counterp, *mac_buf;
194 int i;
195
196 mac_buf = (uint8_t *)ctx->ccm_mac_buf;
197
198 /* first counter block start with index 0 */
199 counter = 0;
200 ctx->ccm_cb[1] = (ctx->ccm_cb[1] & ~(ctx->ccm_counter_mask)) | counter;
201
202 counterp = (uint8_t *)ctx->ccm_tmp;
203 encrypt_block(ctx->ccm_keysched, (uint8_t *)ctx->ccm_cb, counterp);
204
205 /* calculate XOR of MAC with first counter block */
206 for (i = 0; i < ctx->ccm_mac_len; i++) {
207 ccm_mac[i] = mac_buf[i] ^ counterp[i];
208 }
209 }
210
211 /* ARGSUSED */
212 int
213 ccm_encrypt_final(ccm_ctx_t *ctx, crypto_data_t *out, size_t block_size,
214 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *),
215 void (*xor_block)(uint8_t *, uint8_t *))
216 {
217 uint8_t *lastp, *mac_buf, *ccm_mac_p, *macp;
218 void *iov_or_mp;
219 offset_t offset;
220 uint8_t *out_data_1;
221 uint8_t *out_data_2;
222 size_t out_data_1_len;
223 int i;
224
225 if (out->cd_length < (ctx->ccm_remainder_len + ctx->ccm_mac_len)) {
226 return (CRYPTO_DATA_LEN_RANGE);
227 }
228
229 /*
230 * When we get here, the number of bytes of payload processed
231 * plus whatever data remains, if any,
232 * should be the same as the number of bytes that's being
233 * passed in the argument during init time.
234 */
235 if ((ctx->ccm_processed_data_len + ctx->ccm_remainder_len)
236 != (ctx->ccm_data_len)) {
237 return (CRYPTO_DATA_LEN_RANGE);
238 }
239
240 mac_buf = (uint8_t *)ctx->ccm_mac_buf;
241
242 if (ctx->ccm_remainder_len > 0) {
243
244 /* ccm_mac_input_buf is not used for encryption */
245 macp = (uint8_t *)ctx->ccm_mac_input_buf;
246 bzero(macp, block_size);
247
248 /* copy remainder to temporary buffer */
249 bcopy(ctx->ccm_remainder, macp, ctx->ccm_remainder_len);
250
251 /* calculate the CBC MAC */
252 xor_block(macp, mac_buf);
253 encrypt_block(ctx->ccm_keysched, mac_buf, mac_buf);
254
255 /* calculate the counter mode */
256 lastp = (uint8_t *)ctx->ccm_tmp;
257 encrypt_block(ctx->ccm_keysched, (uint8_t *)ctx->ccm_cb, lastp);
258
259 /* XOR with counter block */
260 for (i = 0; i < ctx->ccm_remainder_len; i++) {
261 macp[i] ^= lastp[i];
262 }
263 ctx->ccm_processed_data_len += ctx->ccm_remainder_len;
264 }
265
266 /* Calculate the CCM MAC */
267 ccm_mac_p = (uint8_t *)ctx->ccm_tmp;
268 calculate_ccm_mac(ctx, ccm_mac_p, encrypt_block);
269
270 crypto_init_ptrs(out, &iov_or_mp, &offset);
271 crypto_get_ptrs(out, &iov_or_mp, &offset, &out_data_1,
272 &out_data_1_len, &out_data_2,
273 ctx->ccm_remainder_len + ctx->ccm_mac_len);
274
275 if (ctx->ccm_remainder_len > 0) {
276
277 /* copy temporary block to where it belongs */
278 if (out_data_2 == NULL) {
279 /* everything will fit in out_data_1 */
280 bcopy(macp, out_data_1, ctx->ccm_remainder_len);
281 bcopy(ccm_mac_p, out_data_1 + ctx->ccm_remainder_len,
282 ctx->ccm_mac_len);
283 } else {
284
285 if (out_data_1_len < ctx->ccm_remainder_len) {
286
287 size_t data_2_len_used;
288
289 bcopy(macp, out_data_1, out_data_1_len);
290
291 data_2_len_used = ctx->ccm_remainder_len
292 - out_data_1_len;
293
294 bcopy((uint8_t *)macp + out_data_1_len,
295 out_data_2, data_2_len_used);
296 bcopy(ccm_mac_p, out_data_2 + data_2_len_used,
297 ctx->ccm_mac_len);
298 } else {
299 bcopy(macp, out_data_1, out_data_1_len);
300 if (out_data_1_len == ctx->ccm_remainder_len) {
301 /* mac will be in out_data_2 */
302 bcopy(ccm_mac_p, out_data_2,
303 ctx->ccm_mac_len);
304 } else {
305 size_t len_not_used = out_data_1_len -
306 ctx->ccm_remainder_len;
307 /*
308 * part of mac in will be in
309 * out_data_1, part of the mac will be
310 * in out_data_2
311 */
312 bcopy(ccm_mac_p,
313 out_data_1 + ctx->ccm_remainder_len,
314 len_not_used);
315 bcopy(ccm_mac_p + len_not_used,
316 out_data_2,
317 ctx->ccm_mac_len - len_not_used);
318
319 }
320 }
321 }
322 } else {
323 /* copy block to where it belongs */
324 bcopy(ccm_mac_p, out_data_1, out_data_1_len);
325 if (out_data_2 != NULL) {
326 bcopy(ccm_mac_p + out_data_1_len, out_data_2,
327 block_size - out_data_1_len);
328 }
329 }
330 out->cd_offset += ctx->ccm_remainder_len + ctx->ccm_mac_len;
331 ctx->ccm_remainder_len = 0;
332 return (CRYPTO_SUCCESS);
333 }
334
335 /*
336 * This will only deal with decrypting the last block of the input that
337 * might not be a multiple of block length.
338 */
339 void
340 ccm_decrypt_incomplete_block(ccm_ctx_t *ctx,
341 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *))
342 {
343 uint8_t *datap, *outp, *counterp;
344 int i;
345
346 datap = (uint8_t *)ctx->ccm_remainder;
347 outp = &((ctx->ccm_pt_buf)[ctx->ccm_processed_data_len]);
348
349 counterp = (uint8_t *)ctx->ccm_tmp;
350 encrypt_block(ctx->ccm_keysched, (uint8_t *)ctx->ccm_cb, counterp);
351
352 /* XOR with counter block */
353 for (i = 0; i < ctx->ccm_remainder_len; i++) {
354 outp[i] = datap[i] ^ counterp[i];
355 }
356 }
357
358 /*
359 * This will decrypt the cipher text. However, the plaintext won't be
360 * returned to the caller. It will be returned when decrypt_final() is
361 * called if the MAC matches
362 */
363 /* ARGSUSED */
364 int
365 ccm_mode_decrypt_contiguous_blocks(ccm_ctx_t *ctx, char *data, size_t length,
366 crypto_data_t *out, size_t block_size,
367 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *),
368 void (*copy_block)(uint8_t *, uint8_t *),
369 void (*xor_block)(uint8_t *, uint8_t *))
370 {
371 size_t remainder = length;
372 size_t need;
373 uint8_t *datap = (uint8_t *)data;
374 uint8_t *blockp;
375 uint8_t *cbp;
376 uint64_t counter;
377 size_t pt_len, total_decrypted_len, mac_len, pm_len, pd_len;
378 uint8_t *resultp;
379
380
381 pm_len = ctx->ccm_processed_mac_len;
382
383 if (pm_len > 0) {
384 uint8_t *tmp;
385 /*
386 * all ciphertext has been processed, just waiting for
387 * part of the value of the mac
388 */
389 if ((pm_len + length) > ctx->ccm_mac_len) {
390 return (CRYPTO_ENCRYPTED_DATA_LEN_RANGE);
391 }
392 tmp = (uint8_t *)ctx->ccm_mac_input_buf;
393
394 bcopy(datap, tmp + pm_len, length);
395
396 ctx->ccm_processed_mac_len += length;
397 return (CRYPTO_SUCCESS);
398 }
399
400 /*
401 * If we decrypt the given data, what total amount of data would
402 * have been decrypted?
403 */
404 pd_len = ctx->ccm_processed_data_len;
405 total_decrypted_len = pd_len + length + ctx->ccm_remainder_len;
406
407 if (total_decrypted_len >
408 (ctx->ccm_data_len + ctx->ccm_mac_len)) {
409 return (CRYPTO_ENCRYPTED_DATA_LEN_RANGE);
410 }
411
412 pt_len = ctx->ccm_data_len;
413
414 if (total_decrypted_len > pt_len) {
415 /*
416 * part of the input will be the MAC, need to isolate that
417 * to be dealt with later. The left-over data in
418 * ccm_remainder_len from last time will not be part of the
419 * MAC. Otherwise, it would have already been taken out
420 * when this call is made last time.
421 */
422 size_t pt_part = pt_len - pd_len - ctx->ccm_remainder_len;
423
424 mac_len = length - pt_part;
425
426 ctx->ccm_processed_mac_len = mac_len;
427 bcopy(data + pt_part, ctx->ccm_mac_input_buf, mac_len);
428
429 if (pt_part + ctx->ccm_remainder_len < block_size) {
430 /*
431 * since this is last of the ciphertext, will
432 * just decrypt with it here
433 */
434 bcopy(datap, &((uint8_t *)ctx->ccm_remainder)
435 [ctx->ccm_remainder_len], pt_part);
436 ctx->ccm_remainder_len += pt_part;
437 ccm_decrypt_incomplete_block(ctx, encrypt_block);
438 ctx->ccm_processed_data_len += ctx->ccm_remainder_len;
439 ctx->ccm_remainder_len = 0;
440 return (CRYPTO_SUCCESS);
441 } else {
442 /* let rest of the code handle this */
443 length = pt_part;
444 }
445 } else if (length + ctx->ccm_remainder_len < block_size) {
446 /* accumulate bytes here and return */
447 bcopy(datap,
448 (uint8_t *)ctx->ccm_remainder + ctx->ccm_remainder_len,
449 length);
450 ctx->ccm_remainder_len += length;
451 ctx->ccm_copy_to = datap;
452 return (CRYPTO_SUCCESS);
453 }
454
455 do {
456 /* Unprocessed data from last call. */
457 if (ctx->ccm_remainder_len > 0) {
458 need = block_size - ctx->ccm_remainder_len;
459
460 if (need > remainder)
461 return (CRYPTO_ENCRYPTED_DATA_LEN_RANGE);
462
463 bcopy(datap, &((uint8_t *)ctx->ccm_remainder)
464 [ctx->ccm_remainder_len], need);
465
466 blockp = (uint8_t *)ctx->ccm_remainder;
467 } else {
468 blockp = datap;
469 }
470
471 /* Calculate the counter mode, ccm_cb is the counter block */
472 cbp = (uint8_t *)ctx->ccm_tmp;
473 encrypt_block(ctx->ccm_keysched, (uint8_t *)ctx->ccm_cb, cbp);
474
475 /*
476 * Increment counter.
477 * Counter bits are confined to the bottom 64 bits
478 */
479 #ifdef _LITTLE_ENDIAN
480 counter = ntohll(ctx->ccm_cb[1] & ctx->ccm_counter_mask);
481 counter = htonll(counter + 1);
482 #else
483 counter = ctx->ccm_cb[1] & ctx->ccm_counter_mask;
484 counter++;
485 #endif /* _LITTLE_ENDIAN */
486 counter &= ctx->ccm_counter_mask;
487 ctx->ccm_cb[1] =
488 (ctx->ccm_cb[1] & ~(ctx->ccm_counter_mask)) | counter;
489
490 /* XOR with the ciphertext */
491 xor_block(blockp, cbp);
492
493 /* Copy the plaintext to the "holding buffer" */
494 resultp = (uint8_t *)ctx->ccm_pt_buf +
495 ctx->ccm_processed_data_len;
496 copy_block(cbp, resultp);
497
498 ctx->ccm_processed_data_len += block_size;
499
500 ctx->ccm_lastp = blockp;
501
502 /* Update pointer to next block of data to be processed. */
503 if (ctx->ccm_remainder_len != 0) {
504 datap += need;
505 ctx->ccm_remainder_len = 0;
506 } else {
507 datap += block_size;
508 }
509
510 remainder = (size_t)&data[length] - (size_t)datap;
511
512 /* Incomplete last block */
513 if (remainder > 0 && remainder < block_size) {
514 bcopy(datap, ctx->ccm_remainder, remainder);
515 ctx->ccm_remainder_len = remainder;
516 ctx->ccm_copy_to = datap;
517 if (ctx->ccm_processed_mac_len > 0) {
518 /*
519 * not expecting anymore ciphertext, just
520 * compute plaintext for the remaining input
521 */
522 ccm_decrypt_incomplete_block(ctx,
523 encrypt_block);
524 ctx->ccm_processed_data_len += remainder;
525 ctx->ccm_remainder_len = 0;
526 }
527 goto out;
528 }
529 ctx->ccm_copy_to = NULL;
530
531 } while (remainder > 0);
532
533 out:
534 return (CRYPTO_SUCCESS);
535 }
536
537 int
538 ccm_decrypt_final(ccm_ctx_t *ctx, crypto_data_t *out, size_t block_size,
539 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *),
540 void (*copy_block)(uint8_t *, uint8_t *),
541 void (*xor_block)(uint8_t *, uint8_t *))
542 {
543 size_t mac_remain, pt_len;
544 uint8_t *pt, *mac_buf, *macp, *ccm_mac_p;
545 int rv;
546
547 pt_len = ctx->ccm_data_len;
548
549 /* Make sure output buffer can fit all of the plaintext */
550 if (out->cd_length < pt_len) {
551 return (CRYPTO_DATA_LEN_RANGE);
552 }
553
554 pt = ctx->ccm_pt_buf;
555 mac_remain = ctx->ccm_processed_data_len;
556 mac_buf = (uint8_t *)ctx->ccm_mac_buf;
557
558 macp = (uint8_t *)ctx->ccm_tmp;
559
560 while (mac_remain > 0) {
561
562 if (mac_remain < block_size) {
563 bzero(macp, block_size);
564 bcopy(pt, macp, mac_remain);
565 mac_remain = 0;
566 } else {
567 copy_block(pt, macp);
568 mac_remain -= block_size;
569 pt += block_size;
570 }
571
572 /* calculate the CBC MAC */
573 xor_block(macp, mac_buf);
574 encrypt_block(ctx->ccm_keysched, mac_buf, mac_buf);
575 }
576
577 /* Calculate the CCM MAC */
578 ccm_mac_p = (uint8_t *)ctx->ccm_tmp;
579 calculate_ccm_mac((ccm_ctx_t *)ctx, ccm_mac_p, encrypt_block);
580
581 /* compare the input CCM MAC value with what we calculated */
582 if (bcmp(ctx->ccm_mac_input_buf, ccm_mac_p, ctx->ccm_mac_len)) {
583 /* They don't match */
584 return (CRYPTO_INVALID_MAC);
585 } else {
586 rv = crypto_put_output_data(ctx->ccm_pt_buf, out, pt_len);
587 if (rv != CRYPTO_SUCCESS)
588 return (rv);
589 out->cd_offset += pt_len;
590 }
591 return (CRYPTO_SUCCESS);
592 }
593
594 int
595 ccm_validate_args(CK_AES_CCM_PARAMS *ccm_param, boolean_t is_encrypt_init)
596 {
597 size_t macSize, nonceSize;
598 uint8_t q;
599 uint64_t maxValue;
600
601 /*
602 * Check the length of the MAC. The only valid
603 * lengths for the MAC are: 4, 6, 8, 10, 12, 14, 16
604 */
605 macSize = ccm_param->ulMACSize;
606 if ((macSize < 4) || (macSize > 16) || ((macSize % 2) != 0)) {
607 return (CRYPTO_MECHANISM_PARAM_INVALID);
608 }
609
610 /* Check the nonce length. Valid values are 7, 8, 9, 10, 11, 12, 13 */
611 nonceSize = ccm_param->ulNonceSize;
612 if ((nonceSize < 7) || (nonceSize > 13)) {
613 return (CRYPTO_MECHANISM_PARAM_INVALID);
614 }
615
616 /* q is the length of the field storing the length, in bytes */
617 q = (uint8_t)((15 - nonceSize) & 0xFF);
618
619
620 /*
621 * If it is decrypt, need to make sure size of ciphertext is at least
622 * bigger than MAC len
623 */
624 if ((!is_encrypt_init) && (ccm_param->ulDataSize < macSize)) {
625 return (CRYPTO_MECHANISM_PARAM_INVALID);
626 }
627
628 /*
629 * Check to make sure the length of the payload is within the
630 * range of values allowed by q
631 */
632 if (q < 8) {
633 maxValue = (1ULL << (q * 8)) - 1;
634 } else {
635 maxValue = ULONG_MAX;
636 }
637
638 if (ccm_param->ulDataSize > maxValue) {
639 return (CRYPTO_MECHANISM_PARAM_INVALID);
640 }
641 return (CRYPTO_SUCCESS);
642 }
643
644 /*
645 * Format the first block used in CBC-MAC (B0) and the initial counter
646 * block based on formatting functions and counter generation functions
647 * specified in RFC 3610 and NIST publication 800-38C, appendix A
648 *
649 * b0 is the first block used in CBC-MAC
650 * cb0 is the first counter block
651 *
652 * It's assumed that the arguments b0 and cb0 are preallocated AES blocks
653 *
654 */
655 static void
656 ccm_format_initial_blocks(uchar_t *nonce, ulong_t nonceSize,
657 ulong_t authDataSize, uint8_t *b0, ccm_ctx_t *aes_ctx)
658 {
659 uint64_t payloadSize;
660 uint8_t t, q, have_adata = 0;
661 size_t limit;
662 int i, j, k;
663 uint64_t mask = 0;
664 uint8_t *cb;
665
666 q = (uint8_t)((15 - nonceSize) & 0xFF);
667 t = (uint8_t)((aes_ctx->ccm_mac_len) & 0xFF);
668
669 /* Construct the first octet of b0 */
670 if (authDataSize > 0) {
671 have_adata = 1;
672 }
673 b0[0] = (have_adata << 6) | (((t - 2) / 2) << 3) | (q - 1);
674
675 /* copy the nonce value into b0 */
676 bcopy(nonce, &(b0[1]), nonceSize);
677
678 /* store the length of the payload into b0 */
679 bzero(&(b0[1+nonceSize]), q);
680
681 payloadSize = aes_ctx->ccm_data_len;
682 limit = 8 < q ? 8 : q;
683
684 for (i = 0, j = 0, k = 15; i < limit; i++, j += 8, k--) {
685 b0[k] = (uint8_t)((payloadSize >> j) & 0xFF);
686 }
687
688 /* format the counter block */
689
690 cb = (uint8_t *)aes_ctx->ccm_cb;
691
692 cb[0] = 0x07 & (q-1); /* first byte */
693
694 /* copy the nonce value into the counter block */
695 bcopy(nonce, &(cb[1]), nonceSize);
696
697 bzero(&(cb[1+nonceSize]), q);
698
699 /* Create the mask for the counter field based on the size of nonce */
700 q <<= 3;
701 while (q-- > 0) {
702 mask |= (1ULL << q);
703 }
704
705 #ifdef _LITTLE_ENDIAN
706 mask = htonll(mask);
707 #endif
708 aes_ctx->ccm_counter_mask = mask;
709
710 /*
711 * During calculation, we start using counter block 1, we will
712 * set it up right here.
713 * We can just set the last byte to have the value 1, because
714 * even with the biggest nonce of 13, the last byte of the
715 * counter block will be used for the counter value.
716 */
717 cb[15] = 0x01;
718 }
719
720 /*
721 * Encode the length of the associated data as
722 * specified in RFC 3610 and NIST publication 800-38C, appendix A
723 */
724 static void
725 encode_adata_len(ulong_t auth_data_len, uint8_t *encoded, size_t *encoded_len)
726 {
727 #ifdef UNALIGNED_POINTERS_PERMITTED
728 uint32_t *lencoded_ptr;
729 #ifdef _LP64
730 uint64_t *llencoded_ptr;
731 #endif
732 #endif /* UNALIGNED_POINTERS_PERMITTED */
733
734 if (auth_data_len < ((1ULL<<16) - (1ULL<<8))) {
735 /* 0 < a < (2^16-2^8) */
736 *encoded_len = 2;
737 encoded[0] = (auth_data_len & 0xff00) >> 8;
738 encoded[1] = auth_data_len & 0xff;
739
740 } else if ((auth_data_len >= ((1ULL<<16) - (1ULL<<8))) &&
741 (auth_data_len < (1ULL << 31))) {
742 /* (2^16-2^8) <= a < 2^32 */
743 *encoded_len = 6;
744 encoded[0] = 0xff;
745 encoded[1] = 0xfe;
746 #ifdef UNALIGNED_POINTERS_PERMITTED
747 lencoded_ptr = (uint32_t *)&encoded[2];
748 *lencoded_ptr = htonl(auth_data_len);
749 #else
750 encoded[2] = (auth_data_len & 0xff000000) >> 24;
751 encoded[3] = (auth_data_len & 0xff0000) >> 16;
752 encoded[4] = (auth_data_len & 0xff00) >> 8;
753 encoded[5] = auth_data_len & 0xff;
754 #endif /* UNALIGNED_POINTERS_PERMITTED */
755
756 #ifdef _LP64
757 } else {
758 /* 2^32 <= a < 2^64 */
759 *encoded_len = 10;
760 encoded[0] = 0xff;
761 encoded[1] = 0xff;
762 #ifdef UNALIGNED_POINTERS_PERMITTED
763 llencoded_ptr = (uint64_t *)&encoded[2];
764 *llencoded_ptr = htonl(auth_data_len);
765 #else
766 encoded[2] = (auth_data_len & 0xff00000000000000) >> 56;
767 encoded[3] = (auth_data_len & 0xff000000000000) >> 48;
768 encoded[4] = (auth_data_len & 0xff0000000000) >> 40;
769 encoded[5] = (auth_data_len & 0xff00000000) >> 32;
770 encoded[6] = (auth_data_len & 0xff000000) >> 24;
771 encoded[7] = (auth_data_len & 0xff0000) >> 16;
772 encoded[8] = (auth_data_len & 0xff00) >> 8;
773 encoded[9] = auth_data_len & 0xff;
774 #endif /* UNALIGNED_POINTERS_PERMITTED */
775 #endif /* _LP64 */
776 }
777 }
778
779 /*
780 * The following function should be call at encrypt or decrypt init time
781 * for AES CCM mode.
782 */
783 int
784 ccm_init(ccm_ctx_t *ctx, unsigned char *nonce, size_t nonce_len,
785 unsigned char *auth_data, size_t auth_data_len, size_t block_size,
786 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *),
787 void (*xor_block)(uint8_t *, uint8_t *))
788 {
789 uint8_t *mac_buf, *datap, *ivp, *authp;
790 size_t remainder, processed;
791 uint8_t encoded_a[10]; /* max encoded auth data length is 10 octets */
792 size_t encoded_a_len = 0;
793
794 mac_buf = (uint8_t *)&(ctx->ccm_mac_buf);
795
796 /*
797 * Format the 1st block for CBC-MAC and construct the
798 * 1st counter block.
799 *
800 * aes_ctx->ccm_iv is used for storing the counter block
801 * mac_buf will store b0 at this time.
802 */
803 ccm_format_initial_blocks(nonce, nonce_len,
804 auth_data_len, mac_buf, ctx);
805
806 /* The IV for CBC MAC for AES CCM mode is always zero */
807 ivp = (uint8_t *)ctx->ccm_tmp;
808 bzero(ivp, block_size);
809
810 xor_block(ivp, mac_buf);
811
812 /* encrypt the nonce */
813 encrypt_block(ctx->ccm_keysched, mac_buf, mac_buf);
814
815 /* take care of the associated data, if any */
816 if (auth_data_len == 0) {
817 return (CRYPTO_SUCCESS);
818 }
819
820 encode_adata_len(auth_data_len, encoded_a, &encoded_a_len);
821
822 remainder = auth_data_len;
823
824 /* 1st block: it contains encoded associated data, and some data */
825 authp = (uint8_t *)ctx->ccm_tmp;
826 bzero(authp, block_size);
827 bcopy(encoded_a, authp, encoded_a_len);
828 processed = block_size - encoded_a_len;
829 if (processed > auth_data_len) {
830 /* in case auth_data is very small */
831 processed = auth_data_len;
832 }
833 bcopy(auth_data, authp+encoded_a_len, processed);
834 /* xor with previous buffer */
835 xor_block(authp, mac_buf);
836 encrypt_block(ctx->ccm_keysched, mac_buf, mac_buf);
837 remainder -= processed;
838 if (remainder == 0) {
839 /* a small amount of associated data, it's all done now */
840 return (CRYPTO_SUCCESS);
841 }
842
843 do {
844 if (remainder < block_size) {
845 /*
846 * There's not a block full of data, pad rest of
847 * buffer with zero
848 */
849 bzero(authp, block_size);
850 bcopy(&(auth_data[processed]), authp, remainder);
851 datap = (uint8_t *)authp;
852 remainder = 0;
853 } else {
854 datap = (uint8_t *)(&(auth_data[processed]));
855 processed += block_size;
856 remainder -= block_size;
857 }
858
859 xor_block(datap, mac_buf);
860 encrypt_block(ctx->ccm_keysched, mac_buf, mac_buf);
861
862 } while (remainder > 0);
863
864 return (CRYPTO_SUCCESS);
865 }
866
867 int
868 ccm_init_ctx(ccm_ctx_t *ccm_ctx, char *param, int kmflag,
869 boolean_t is_encrypt_init, size_t block_size,
870 int (*encrypt_block)(const void *, const uint8_t *, uint8_t *),
871 void (*xor_block)(uint8_t *, uint8_t *))
872 {
873 int rv;
874 CK_AES_CCM_PARAMS *ccm_param;
875
876 if (param != NULL) {
877 ccm_param = (CK_AES_CCM_PARAMS *)param;
878
879 if ((rv = ccm_validate_args(ccm_param,
880 is_encrypt_init)) != 0) {
881 return (rv);
882 }
883
884 ccm_ctx->ccm_mac_len = ccm_param->ulMACSize;
885 if (is_encrypt_init) {
886 ccm_ctx->ccm_data_len = ccm_param->ulDataSize;
887 } else {
888 ccm_ctx->ccm_data_len =
889 ccm_param->ulDataSize - ccm_ctx->ccm_mac_len;
890 ccm_ctx->ccm_processed_mac_len = 0;
891 }
892 ccm_ctx->ccm_processed_data_len = 0;
893
894 ccm_ctx->ccm_flags |= CCM_MODE;
895 } else {
896 rv = CRYPTO_MECHANISM_PARAM_INVALID;
897 goto out;
898 }
899
900 if (ccm_init(ccm_ctx, ccm_param->nonce, ccm_param->ulNonceSize,
901 ccm_param->authData, ccm_param->ulAuthDataSize, block_size,
902 encrypt_block, xor_block) != 0) {
903 rv = CRYPTO_MECHANISM_PARAM_INVALID;
904 goto out;
905 }
906 if (!is_encrypt_init) {
907 /* allocate buffer for storing decrypted plaintext */
908 #ifdef _KERNEL
909 ccm_ctx->ccm_pt_buf = kmem_alloc(ccm_ctx->ccm_data_len,
910 kmflag);
911 #else
912 ccm_ctx->ccm_pt_buf = malloc(ccm_ctx->ccm_data_len);
913 #endif
914 if (ccm_ctx->ccm_pt_buf == NULL) {
915 rv = CRYPTO_HOST_MEMORY;
916 }
917 }
918 out:
919 return (rv);
920 }
921
922 void *
923 ccm_alloc_ctx(int kmflag)
924 {
925 ccm_ctx_t *ccm_ctx;
926
927 #ifdef _KERNEL
928 if ((ccm_ctx = kmem_zalloc(sizeof (ccm_ctx_t), kmflag)) == NULL)
929 #else
930 if ((ccm_ctx = calloc(1, sizeof (ccm_ctx_t))) == NULL)
931 #endif
932 return (NULL);
933
934 ccm_ctx->ccm_flags = CCM_MODE;
935 return (ccm_ctx);
936 }