1 /* SPDX-License-Identifier: BSD-3-Clause
2 * Copyright(c) 2016-2017 Intel Corporation
3 */
4
5 #include <getopt.h>
6 #include <unistd.h>
7
8 #include <rte_cryptodev.h>
9 #include <rte_malloc.h>
10 #include <rte_ether.h>
11
12 #include "cperf_options.h"
13 #include "cperf_test_vectors.h"
14
15 #define AES_BLOCK_SIZE 16
16 #define DES_BLOCK_SIZE 8
17
18 struct name_id_map {
19 const char *name;
20 uint32_t id;
21 };
22
23 static void
usage(char * progname)24 usage(char *progname)
25 {
26 printf("%s [EAL options] --\n"
27 " --silent: disable options dump\n"
28 " --ptest throughput / latency / verify / pmd-cyclecount :"
29 " set test type\n"
30 " --pool_sz N: set the number of crypto ops/mbufs allocated\n"
31 " --total-ops N: set the number of total operations performed\n"
32 " --burst-sz N: set the number of packets per burst\n"
33 " --buffer-sz N: set the size of a single packet\n"
34 " --imix N: set the distribution of packet sizes\n"
35 " --segment-sz N: set the size of the segment to use\n"
36 " --desc-nb N: set number of descriptors for each crypto device\n"
37 " --devtype TYPE: set crypto device type to use\n"
38 " --optype cipher-only / auth-only / cipher-then-auth /\n"
39 " auth-then-cipher / aead : set operation type\n"
40 " --sessionless: enable session-less crypto operations\n"
41 " --out-of-place: enable out-of-place crypto operations\n"
42 " --test-file NAME: set the test vector file path\n"
43 " --test-name NAME: set specific test name section in test file\n"
44 " --cipher-algo ALGO: set cipher algorithm\n"
45 " --cipher-op encrypt / decrypt: set the cipher operation\n"
46 " --cipher-key-sz N: set the cipher key size\n"
47 " --cipher-iv-sz N: set the cipher IV size\n"
48 " --auth-algo ALGO: set auth algorithm\n"
49 " --auth-op generate / verify: set the auth operation\n"
50 " --auth-key-sz N: set the auth key size\n"
51 " --auth-iv-sz N: set the auth IV size\n"
52 " --aead-algo ALGO: set AEAD algorithm\n"
53 " --aead-op encrypt / decrypt: set the AEAD operation\n"
54 " --aead-key-sz N: set the AEAD key size\n"
55 " --aead-iv-sz N: set the AEAD IV size\n"
56 " --aead-aad-sz N: set the AEAD AAD size\n"
57 " --digest-sz N: set the digest size\n"
58 " --pmd-cyclecount-delay-ms N: set delay between enqueue\n"
59 " and dequeue in pmd-cyclecount benchmarking mode\n"
60 " --csv-friendly: enable test result output CSV friendly\n"
61 " --modex-len N: modex length, supported lengths are "
62 "60, 128, 255, 448. Default: 128\n"
63 #ifdef RTE_LIB_SECURITY
64 " --pdcp-sn-sz N: set PDCP SN size N <5/7/12/15/18>\n"
65 " --pdcp-domain DOMAIN: set PDCP domain <control/user>\n"
66 " --pdcp-ses-hfn-en: enable session based fixed HFN\n"
67 " --docsis-hdr-sz: set DOCSIS header size\n"
68 #endif
69 " -h: prints this help\n",
70 progname);
71 }
72
73 static int
get_str_key_id_mapping(struct name_id_map * map,unsigned int map_len,const char * str_key)74 get_str_key_id_mapping(struct name_id_map *map, unsigned int map_len,
75 const char *str_key)
76 {
77 unsigned int i;
78
79 for (i = 0; i < map_len; i++) {
80
81 if (strcmp(str_key, map[i].name) == 0)
82 return map[i].id;
83 }
84
85 return -1;
86 }
87
88 static int
parse_cperf_test_type(struct cperf_options * opts,const char * arg)89 parse_cperf_test_type(struct cperf_options *opts, const char *arg)
90 {
91 struct name_id_map cperftest_namemap[] = {
92 {
93 cperf_test_type_strs[CPERF_TEST_TYPE_THROUGHPUT],
94 CPERF_TEST_TYPE_THROUGHPUT
95 },
96 {
97 cperf_test_type_strs[CPERF_TEST_TYPE_VERIFY],
98 CPERF_TEST_TYPE_VERIFY
99 },
100 {
101 cperf_test_type_strs[CPERF_TEST_TYPE_LATENCY],
102 CPERF_TEST_TYPE_LATENCY
103 },
104 {
105 cperf_test_type_strs[CPERF_TEST_TYPE_PMDCC],
106 CPERF_TEST_TYPE_PMDCC
107 }
108 };
109
110 int id = get_str_key_id_mapping(
111 (struct name_id_map *)cperftest_namemap,
112 RTE_DIM(cperftest_namemap), arg);
113 if (id < 0) {
114 RTE_LOG(ERR, USER1, "failed to parse test type");
115 return -1;
116 }
117
118 opts->test = (enum cperf_perf_test_type)id;
119
120 return 0;
121 }
122
123 static int
parse_uint32_t(uint32_t * value,const char * arg)124 parse_uint32_t(uint32_t *value, const char *arg)
125 {
126 char *end = NULL;
127 unsigned long n = strtoul(arg, &end, 10);
128
129 if ((optarg[0] == '\0') || (end == NULL) || (*end != '\0'))
130 return -1;
131
132 if (n > UINT32_MAX)
133 return -ERANGE;
134
135 *value = (uint32_t) n;
136
137 return 0;
138 }
139
140 static int
parse_uint16_t(uint16_t * value,const char * arg)141 parse_uint16_t(uint16_t *value, const char *arg)
142 {
143 uint32_t val = 0;
144 int ret = parse_uint32_t(&val, arg);
145
146 if (ret < 0)
147 return ret;
148
149 if (val > UINT16_MAX)
150 return -ERANGE;
151
152 *value = (uint16_t) val;
153
154 return 0;
155 }
156
157 static int
parse_range(const char * arg,uint32_t * min,uint32_t * max,uint32_t * inc)158 parse_range(const char *arg, uint32_t *min, uint32_t *max, uint32_t *inc)
159 {
160 char *token;
161 uint32_t number;
162
163 char *copy_arg = strdup(arg);
164
165 if (copy_arg == NULL)
166 return -1;
167
168 errno = 0;
169 token = strtok(copy_arg, ":");
170
171 /* Parse minimum value */
172 if (token != NULL) {
173 number = strtoul(token, NULL, 10);
174
175 if (errno == EINVAL || errno == ERANGE ||
176 number == 0)
177 goto err_range;
178
179 *min = number;
180 } else
181 goto err_range;
182
183 token = strtok(NULL, ":");
184
185 /* Parse increment value */
186 if (token != NULL) {
187 number = strtoul(token, NULL, 10);
188
189 if (errno == EINVAL || errno == ERANGE ||
190 number == 0)
191 goto err_range;
192
193 *inc = number;
194 } else
195 goto err_range;
196
197 token = strtok(NULL, ":");
198
199 /* Parse maximum value */
200 if (token != NULL) {
201 number = strtoul(token, NULL, 10);
202
203 if (errno == EINVAL || errno == ERANGE ||
204 number == 0 ||
205 number < *min)
206 goto err_range;
207
208 *max = number;
209 } else
210 goto err_range;
211
212 if (strtok(NULL, ":") != NULL)
213 goto err_range;
214
215 free(copy_arg);
216 return 0;
217
218 err_range:
219 free(copy_arg);
220 return -1;
221 }
222
223 static int
parse_list(const char * arg,uint32_t * list,uint32_t * min,uint32_t * max)224 parse_list(const char *arg, uint32_t *list, uint32_t *min, uint32_t *max)
225 {
226 char *token;
227 uint32_t number;
228 uint8_t count = 0;
229 uint32_t temp_min;
230 uint32_t temp_max;
231
232 char *copy_arg = strdup(arg);
233
234 if (copy_arg == NULL)
235 return -1;
236
237 errno = 0;
238 token = strtok(copy_arg, ",");
239
240 /* Parse first value */
241 if (token != NULL) {
242 number = strtoul(token, NULL, 10);
243
244 if (errno == EINVAL || errno == ERANGE ||
245 number == 0)
246 goto err_list;
247
248 list[count++] = number;
249 temp_min = number;
250 temp_max = number;
251 } else
252 goto err_list;
253
254 token = strtok(NULL, ",");
255
256 while (token != NULL) {
257 if (count == MAX_LIST) {
258 RTE_LOG(WARNING, USER1, "Using only the first %u sizes\n",
259 MAX_LIST);
260 break;
261 }
262
263 number = strtoul(token, NULL, 10);
264
265 if (errno == EINVAL || errno == ERANGE ||
266 number == 0)
267 goto err_list;
268
269 list[count++] = number;
270
271 if (number < temp_min)
272 temp_min = number;
273 if (number > temp_max)
274 temp_max = number;
275
276 token = strtok(NULL, ",");
277 }
278
279 if (min)
280 *min = temp_min;
281 if (max)
282 *max = temp_max;
283
284 free(copy_arg);
285 return count;
286
287 err_list:
288 free(copy_arg);
289 return -1;
290 }
291
292 static int
parse_total_ops(struct cperf_options * opts,const char * arg)293 parse_total_ops(struct cperf_options *opts, const char *arg)
294 {
295 int ret = parse_uint32_t(&opts->total_ops, arg);
296
297 if (ret)
298 RTE_LOG(ERR, USER1, "failed to parse total operations count\n");
299
300 if (opts->total_ops == 0) {
301 RTE_LOG(ERR, USER1,
302 "invalid total operations count number specified\n");
303 return -1;
304 }
305
306 return ret;
307 }
308
309 static int
parse_pool_sz(struct cperf_options * opts,const char * arg)310 parse_pool_sz(struct cperf_options *opts, const char *arg)
311 {
312 int ret = parse_uint32_t(&opts->pool_sz, arg);
313
314 if (ret)
315 RTE_LOG(ERR, USER1, "failed to parse pool size");
316 return ret;
317 }
318
319 static int
parse_modex_len(struct cperf_options * opts,const char * arg)320 parse_modex_len(struct cperf_options *opts, const char *arg)
321 {
322 int ret = parse_uint16_t(&opts->modex_len, arg);
323
324 if (ret)
325 RTE_LOG(ERR, USER1, "failed to parse modex len");
326 return ret;
327 }
328
329 static int
parse_burst_sz(struct cperf_options * opts,const char * arg)330 parse_burst_sz(struct cperf_options *opts, const char *arg)
331 {
332 int ret;
333
334 /* Try parsing the argument as a range, if it fails, parse it as a list */
335 if (parse_range(arg, &opts->min_burst_size, &opts->max_burst_size,
336 &opts->inc_burst_size) < 0) {
337 ret = parse_list(arg, opts->burst_size_list,
338 &opts->min_burst_size,
339 &opts->max_burst_size);
340 if (ret < 0) {
341 RTE_LOG(ERR, USER1, "failed to parse burst size/s\n");
342 return -1;
343 }
344 opts->burst_size_count = ret;
345 }
346
347 return 0;
348 }
349
350 static int
parse_buffer_sz(struct cperf_options * opts,const char * arg)351 parse_buffer_sz(struct cperf_options *opts, const char *arg)
352 {
353 int ret;
354
355 /* Try parsing the argument as a range, if it fails, parse it as a list */
356 if (parse_range(arg, &opts->min_buffer_size, &opts->max_buffer_size,
357 &opts->inc_buffer_size) < 0) {
358 ret = parse_list(arg, opts->buffer_size_list,
359 &opts->min_buffer_size,
360 &opts->max_buffer_size);
361 if (ret < 0) {
362 RTE_LOG(ERR, USER1, "failed to parse buffer size/s\n");
363 return -1;
364 }
365 opts->buffer_size_count = ret;
366 }
367
368 return 0;
369 }
370
371 static int
parse_segment_sz(struct cperf_options * opts,const char * arg)372 parse_segment_sz(struct cperf_options *opts, const char *arg)
373 {
374 int ret = parse_uint32_t(&opts->segment_sz, arg);
375
376 if (ret) {
377 RTE_LOG(ERR, USER1, "failed to parse segment size\n");
378 return -1;
379 }
380
381 if (opts->segment_sz == 0) {
382 RTE_LOG(ERR, USER1, "Segment size has to be bigger than 0\n");
383 return -1;
384 }
385
386 return 0;
387 }
388
389 static int
parse_imix(struct cperf_options * opts,const char * arg)390 parse_imix(struct cperf_options *opts, const char *arg)
391 {
392 int ret;
393
394 ret = parse_list(arg, opts->imix_distribution_list,
395 NULL, NULL);
396 if (ret < 0) {
397 RTE_LOG(ERR, USER1, "failed to parse imix distribution\n");
398 return -1;
399 }
400
401 opts->imix_distribution_count = ret;
402
403 if (opts->imix_distribution_count <= 1) {
404 RTE_LOG(ERR, USER1, "imix distribution should have "
405 "at least two entries\n");
406 return -1;
407 }
408
409 return 0;
410 }
411
412 static int
parse_desc_nb(struct cperf_options * opts,const char * arg)413 parse_desc_nb(struct cperf_options *opts, const char *arg)
414 {
415 int ret = parse_uint32_t(&opts->nb_descriptors, arg);
416
417 if (ret) {
418 RTE_LOG(ERR, USER1, "failed to parse descriptors number\n");
419 return -1;
420 }
421
422 if (opts->nb_descriptors == 0) {
423 RTE_LOG(ERR, USER1, "invalid descriptors number specified\n");
424 return -1;
425 }
426
427 return 0;
428 }
429
430 static int
parse_device_type(struct cperf_options * opts,const char * arg)431 parse_device_type(struct cperf_options *opts, const char *arg)
432 {
433 if (strlen(arg) > (sizeof(opts->device_type) - 1))
434 return -1;
435
436 strncpy(opts->device_type, arg, sizeof(opts->device_type) - 1);
437 *(opts->device_type + sizeof(opts->device_type) - 1) = '\0';
438
439 return 0;
440 }
441
442 static int
parse_op_type(struct cperf_options * opts,const char * arg)443 parse_op_type(struct cperf_options *opts, const char *arg)
444 {
445 struct name_id_map optype_namemap[] = {
446 {
447 cperf_op_type_strs[CPERF_CIPHER_ONLY],
448 CPERF_CIPHER_ONLY
449 },
450 {
451 cperf_op_type_strs[CPERF_AUTH_ONLY],
452 CPERF_AUTH_ONLY
453 },
454 {
455 cperf_op_type_strs[CPERF_CIPHER_THEN_AUTH],
456 CPERF_CIPHER_THEN_AUTH
457 },
458 {
459 cperf_op_type_strs[CPERF_AUTH_THEN_CIPHER],
460 CPERF_AUTH_THEN_CIPHER
461 },
462 {
463 cperf_op_type_strs[CPERF_AEAD],
464 CPERF_AEAD
465 },
466 {
467 cperf_op_type_strs[CPERF_PDCP],
468 CPERF_PDCP
469 },
470 {
471 cperf_op_type_strs[CPERF_DOCSIS],
472 CPERF_DOCSIS
473 },
474 {
475 cperf_op_type_strs[CPERF_IPSEC],
476 CPERF_IPSEC
477 },
478 {
479 cperf_op_type_strs[CPERF_ASYM_MODEX],
480 CPERF_ASYM_MODEX
481 }
482 };
483
484 int id = get_str_key_id_mapping(optype_namemap,
485 RTE_DIM(optype_namemap), arg);
486 if (id < 0) {
487 RTE_LOG(ERR, USER1, "invalid opt type specified\n");
488 return -1;
489 }
490
491 opts->op_type = (enum cperf_op_type)id;
492
493 return 0;
494 }
495
496 static int
parse_sessionless(struct cperf_options * opts,const char * arg __rte_unused)497 parse_sessionless(struct cperf_options *opts,
498 const char *arg __rte_unused)
499 {
500 opts->sessionless = 1;
501 return 0;
502 }
503
504 static int
parse_out_of_place(struct cperf_options * opts,const char * arg __rte_unused)505 parse_out_of_place(struct cperf_options *opts,
506 const char *arg __rte_unused)
507 {
508 opts->out_of_place = 1;
509 return 0;
510 }
511
512 static int
parse_test_file(struct cperf_options * opts,const char * arg)513 parse_test_file(struct cperf_options *opts,
514 const char *arg)
515 {
516 opts->test_file = strdup(arg);
517 if (access(opts->test_file, F_OK) != -1)
518 return 0;
519 RTE_LOG(ERR, USER1, "Test vector file doesn't exist\n");
520
521 return -1;
522 }
523
524 static int
parse_test_name(struct cperf_options * opts,const char * arg)525 parse_test_name(struct cperf_options *opts,
526 const char *arg)
527 {
528 char *test_name = (char *) rte_zmalloc(NULL,
529 sizeof(char) * (strlen(arg) + 3), 0);
530 if (test_name == NULL) {
531 RTE_LOG(ERR, USER1, "Failed to rte zmalloc with size: %zu\n",
532 strlen(arg) + 3);
533 return -1;
534 }
535
536 snprintf(test_name, strlen(arg) + 3, "[%s]", arg);
537 opts->test_name = test_name;
538
539 return 0;
540 }
541
542 static int
parse_silent(struct cperf_options * opts,const char * arg __rte_unused)543 parse_silent(struct cperf_options *opts,
544 const char *arg __rte_unused)
545 {
546 opts->silent = 1;
547
548 return 0;
549 }
550
551 static int
parse_cipher_algo(struct cperf_options * opts,const char * arg)552 parse_cipher_algo(struct cperf_options *opts, const char *arg)
553 {
554
555 enum rte_crypto_cipher_algorithm cipher_algo;
556
557 if (rte_cryptodev_get_cipher_algo_enum(&cipher_algo, arg) < 0) {
558 RTE_LOG(ERR, USER1, "Invalid cipher algorithm specified\n");
559 return -1;
560 }
561
562 opts->cipher_algo = cipher_algo;
563
564 return 0;
565 }
566
567 static int
parse_cipher_op(struct cperf_options * opts,const char * arg)568 parse_cipher_op(struct cperf_options *opts, const char *arg)
569 {
570 struct name_id_map cipher_op_namemap[] = {
571 {
572 rte_crypto_cipher_operation_strings
573 [RTE_CRYPTO_CIPHER_OP_ENCRYPT],
574 RTE_CRYPTO_CIPHER_OP_ENCRYPT },
575 {
576 rte_crypto_cipher_operation_strings
577 [RTE_CRYPTO_CIPHER_OP_DECRYPT],
578 RTE_CRYPTO_CIPHER_OP_DECRYPT
579 }
580 };
581
582 int id = get_str_key_id_mapping(cipher_op_namemap,
583 RTE_DIM(cipher_op_namemap), arg);
584 if (id < 0) {
585 RTE_LOG(ERR, USER1, "Invalid cipher operation specified\n");
586 return -1;
587 }
588
589 opts->cipher_op = (enum rte_crypto_cipher_operation)id;
590
591 return 0;
592 }
593
594 static int
parse_cipher_key_sz(struct cperf_options * opts,const char * arg)595 parse_cipher_key_sz(struct cperf_options *opts, const char *arg)
596 {
597 return parse_uint16_t(&opts->cipher_key_sz, arg);
598 }
599
600 static int
parse_cipher_iv_sz(struct cperf_options * opts,const char * arg)601 parse_cipher_iv_sz(struct cperf_options *opts, const char *arg)
602 {
603 return parse_uint16_t(&opts->cipher_iv_sz, arg);
604 }
605
606 static int
parse_auth_algo(struct cperf_options * opts,const char * arg)607 parse_auth_algo(struct cperf_options *opts, const char *arg)
608 {
609 enum rte_crypto_auth_algorithm auth_algo;
610
611 if (rte_cryptodev_get_auth_algo_enum(&auth_algo, arg) < 0) {
612 RTE_LOG(ERR, USER1, "Invalid authentication algorithm specified\n");
613 return -1;
614 }
615
616 opts->auth_algo = auth_algo;
617
618 return 0;
619 }
620
621 static int
parse_auth_op(struct cperf_options * opts,const char * arg)622 parse_auth_op(struct cperf_options *opts, const char *arg)
623 {
624 struct name_id_map auth_op_namemap[] = {
625 {
626 rte_crypto_auth_operation_strings
627 [RTE_CRYPTO_AUTH_OP_GENERATE],
628 RTE_CRYPTO_AUTH_OP_GENERATE },
629 {
630 rte_crypto_auth_operation_strings
631 [RTE_CRYPTO_AUTH_OP_VERIFY],
632 RTE_CRYPTO_AUTH_OP_VERIFY
633 }
634 };
635
636 int id = get_str_key_id_mapping(auth_op_namemap,
637 RTE_DIM(auth_op_namemap), arg);
638 if (id < 0) {
639 RTE_LOG(ERR, USER1, "invalid authentication operation specified"
640 "\n");
641 return -1;
642 }
643
644 opts->auth_op = (enum rte_crypto_auth_operation)id;
645
646 return 0;
647 }
648
649 static int
parse_auth_key_sz(struct cperf_options * opts,const char * arg)650 parse_auth_key_sz(struct cperf_options *opts, const char *arg)
651 {
652 return parse_uint16_t(&opts->auth_key_sz, arg);
653 }
654
655 static int
parse_digest_sz(struct cperf_options * opts,const char * arg)656 parse_digest_sz(struct cperf_options *opts, const char *arg)
657 {
658 return parse_uint16_t(&opts->digest_sz, arg);
659 }
660
661 #ifdef RTE_LIB_SECURITY
662 static int
parse_pdcp_sn_sz(struct cperf_options * opts,const char * arg)663 parse_pdcp_sn_sz(struct cperf_options *opts, const char *arg)
664 {
665 uint32_t val = 0;
666 int ret = parse_uint32_t(&val, arg);
667
668 if (ret < 0)
669 return ret;
670
671 if (val != RTE_SECURITY_PDCP_SN_SIZE_5 &&
672 val != RTE_SECURITY_PDCP_SN_SIZE_7 &&
673 val != RTE_SECURITY_PDCP_SN_SIZE_12 &&
674 val != RTE_SECURITY_PDCP_SN_SIZE_15 &&
675 val != RTE_SECURITY_PDCP_SN_SIZE_18) {
676 printf("\nInvalid pdcp SN size: %u\n", val);
677 return -ERANGE;
678 }
679 opts->pdcp_sn_sz = val;
680
681 return 0;
682 }
683
684 const char *cperf_pdcp_domain_strs[] = {
685 [RTE_SECURITY_PDCP_MODE_CONTROL] = "control",
686 [RTE_SECURITY_PDCP_MODE_DATA] = "data",
687 [RTE_SECURITY_PDCP_MODE_SHORT_MAC] = "short_mac"
688 };
689
690 static int
parse_pdcp_domain(struct cperf_options * opts,const char * arg)691 parse_pdcp_domain(struct cperf_options *opts, const char *arg)
692 {
693 struct name_id_map pdcp_domain_namemap[] = {
694 {
695 cperf_pdcp_domain_strs
696 [RTE_SECURITY_PDCP_MODE_CONTROL],
697 RTE_SECURITY_PDCP_MODE_CONTROL },
698 {
699 cperf_pdcp_domain_strs
700 [RTE_SECURITY_PDCP_MODE_DATA],
701 RTE_SECURITY_PDCP_MODE_DATA
702 },
703 {
704 cperf_pdcp_domain_strs
705 [RTE_SECURITY_PDCP_MODE_SHORT_MAC],
706 RTE_SECURITY_PDCP_MODE_SHORT_MAC
707 }
708 };
709
710 int id = get_str_key_id_mapping(pdcp_domain_namemap,
711 RTE_DIM(pdcp_domain_namemap), arg);
712 if (id < 0) {
713 RTE_LOG(ERR, USER1, "invalid pdcp domain specified"
714 "\n");
715 return -1;
716 }
717
718 opts->pdcp_domain = (enum rte_security_pdcp_domain)id;
719
720 return 0;
721 }
722
723 static int
parse_pdcp_ses_hfn_en(struct cperf_options * opts,const char * arg __rte_unused)724 parse_pdcp_ses_hfn_en(struct cperf_options *opts, const char *arg __rte_unused)
725 {
726 opts->pdcp_ses_hfn_en = 1;
727 return 0;
728 }
729
730 static int
parse_docsis_hdr_sz(struct cperf_options * opts,const char * arg)731 parse_docsis_hdr_sz(struct cperf_options *opts, const char *arg)
732 {
733 return parse_uint16_t(&opts->docsis_hdr_sz, arg);
734 }
735 #endif
736
737 static int
parse_auth_iv_sz(struct cperf_options * opts,const char * arg)738 parse_auth_iv_sz(struct cperf_options *opts, const char *arg)
739 {
740 return parse_uint16_t(&opts->auth_iv_sz, arg);
741 }
742
743 static int
parse_aead_algo(struct cperf_options * opts,const char * arg)744 parse_aead_algo(struct cperf_options *opts, const char *arg)
745 {
746 enum rte_crypto_aead_algorithm aead_algo;
747
748 if (rte_cryptodev_get_aead_algo_enum(&aead_algo, arg) < 0) {
749 RTE_LOG(ERR, USER1, "Invalid AEAD algorithm specified\n");
750 return -1;
751 }
752
753 opts->aead_algo = aead_algo;
754
755 return 0;
756 }
757
758 static int
parse_aead_op(struct cperf_options * opts,const char * arg)759 parse_aead_op(struct cperf_options *opts, const char *arg)
760 {
761 struct name_id_map aead_op_namemap[] = {
762 {
763 rte_crypto_aead_operation_strings
764 [RTE_CRYPTO_AEAD_OP_ENCRYPT],
765 RTE_CRYPTO_AEAD_OP_ENCRYPT },
766 {
767 rte_crypto_aead_operation_strings
768 [RTE_CRYPTO_AEAD_OP_DECRYPT],
769 RTE_CRYPTO_AEAD_OP_DECRYPT
770 }
771 };
772
773 int id = get_str_key_id_mapping(aead_op_namemap,
774 RTE_DIM(aead_op_namemap), arg);
775 if (id < 0) {
776 RTE_LOG(ERR, USER1, "invalid AEAD operation specified"
777 "\n");
778 return -1;
779 }
780
781 opts->aead_op = (enum rte_crypto_aead_operation)id;
782
783 return 0;
784 }
785
786 static int
parse_aead_key_sz(struct cperf_options * opts,const char * arg)787 parse_aead_key_sz(struct cperf_options *opts, const char *arg)
788 {
789 return parse_uint16_t(&opts->aead_key_sz, arg);
790 }
791
792 static int
parse_aead_iv_sz(struct cperf_options * opts,const char * arg)793 parse_aead_iv_sz(struct cperf_options *opts, const char *arg)
794 {
795 return parse_uint16_t(&opts->aead_iv_sz, arg);
796 }
797
798 static int
parse_aead_aad_sz(struct cperf_options * opts,const char * arg)799 parse_aead_aad_sz(struct cperf_options *opts, const char *arg)
800 {
801 return parse_uint16_t(&opts->aead_aad_sz, arg);
802 }
803
804 static int
parse_csv_friendly(struct cperf_options * opts,const char * arg __rte_unused)805 parse_csv_friendly(struct cperf_options *opts, const char *arg __rte_unused)
806 {
807 opts->csv = 1;
808 opts->silent = 1;
809 return 0;
810 }
811
812 static int
parse_pmd_cyclecount_delay_ms(struct cperf_options * opts,const char * arg)813 parse_pmd_cyclecount_delay_ms(struct cperf_options *opts,
814 const char *arg)
815 {
816 int ret = parse_uint32_t(&opts->pmdcc_delay, arg);
817
818 if (ret) {
819 RTE_LOG(ERR, USER1, "failed to parse pmd-cyclecount delay\n");
820 return -1;
821 }
822
823 return 0;
824 }
825
826 typedef int (*option_parser_t)(struct cperf_options *opts,
827 const char *arg);
828
829 struct long_opt_parser {
830 const char *lgopt_name;
831 option_parser_t parser_fn;
832
833 };
834
835 static struct option lgopts[] = {
836
837 { CPERF_PTEST_TYPE, required_argument, 0, 0 },
838 { CPERF_MODEX_LEN, required_argument, 0, 0 },
839
840 { CPERF_POOL_SIZE, required_argument, 0, 0 },
841 { CPERF_TOTAL_OPS, required_argument, 0, 0 },
842 { CPERF_BURST_SIZE, required_argument, 0, 0 },
843 { CPERF_BUFFER_SIZE, required_argument, 0, 0 },
844 { CPERF_SEGMENT_SIZE, required_argument, 0, 0 },
845 { CPERF_DESC_NB, required_argument, 0, 0 },
846
847 { CPERF_IMIX, required_argument, 0, 0 },
848 { CPERF_DEVTYPE, required_argument, 0, 0 },
849 { CPERF_OPTYPE, required_argument, 0, 0 },
850
851 { CPERF_SILENT, no_argument, 0, 0 },
852 { CPERF_SESSIONLESS, no_argument, 0, 0 },
853 { CPERF_OUT_OF_PLACE, no_argument, 0, 0 },
854 { CPERF_TEST_FILE, required_argument, 0, 0 },
855 { CPERF_TEST_NAME, required_argument, 0, 0 },
856
857 { CPERF_CIPHER_ALGO, required_argument, 0, 0 },
858 { CPERF_CIPHER_OP, required_argument, 0, 0 },
859
860 { CPERF_CIPHER_KEY_SZ, required_argument, 0, 0 },
861 { CPERF_CIPHER_IV_SZ, required_argument, 0, 0 },
862
863 { CPERF_AUTH_ALGO, required_argument, 0, 0 },
864 { CPERF_AUTH_OP, required_argument, 0, 0 },
865
866 { CPERF_AUTH_KEY_SZ, required_argument, 0, 0 },
867 { CPERF_AUTH_IV_SZ, required_argument, 0, 0 },
868
869 { CPERF_AEAD_ALGO, required_argument, 0, 0 },
870 { CPERF_AEAD_OP, required_argument, 0, 0 },
871
872 { CPERF_AEAD_KEY_SZ, required_argument, 0, 0 },
873 { CPERF_AEAD_AAD_SZ, required_argument, 0, 0 },
874 { CPERF_AEAD_IV_SZ, required_argument, 0, 0 },
875
876 { CPERF_DIGEST_SZ, required_argument, 0, 0 },
877
878 #ifdef RTE_LIB_SECURITY
879 { CPERF_PDCP_SN_SZ, required_argument, 0, 0 },
880 { CPERF_PDCP_DOMAIN, required_argument, 0, 0 },
881 { CPERF_PDCP_SES_HFN_EN, no_argument, 0, 0 },
882 { CPERF_DOCSIS_HDR_SZ, required_argument, 0, 0 },
883 #endif
884 { CPERF_CSV, no_argument, 0, 0},
885
886 { CPERF_PMDCC_DELAY_MS, required_argument, 0, 0 },
887
888 { NULL, 0, 0, 0 }
889 };
890
891 void
cperf_options_default(struct cperf_options * opts)892 cperf_options_default(struct cperf_options *opts)
893 {
894 opts->test = CPERF_TEST_TYPE_THROUGHPUT;
895
896 opts->pool_sz = 8192;
897 opts->total_ops = 10000000;
898 opts->nb_descriptors = 2048;
899
900 opts->buffer_size_list[0] = 64;
901 opts->buffer_size_count = 1;
902 opts->max_buffer_size = 64;
903 opts->min_buffer_size = 64;
904 opts->inc_buffer_size = 0;
905
906 opts->burst_size_list[0] = 32;
907 opts->burst_size_count = 1;
908 opts->max_burst_size = 32;
909 opts->min_burst_size = 32;
910 opts->inc_burst_size = 0;
911
912 /*
913 * Will be parsed from command line or set to
914 * maximum buffer size + digest, later
915 */
916 opts->segment_sz = 0;
917
918 opts->imix_distribution_count = 0;
919 strncpy(opts->device_type, "crypto_aesni_mb",
920 sizeof(opts->device_type));
921 opts->nb_qps = 1;
922
923 opts->op_type = CPERF_CIPHER_THEN_AUTH;
924
925 opts->silent = 0;
926 opts->test_file = NULL;
927 opts->test_name = NULL;
928 opts->sessionless = 0;
929 opts->out_of_place = 0;
930 opts->csv = 0;
931
932 opts->cipher_algo = RTE_CRYPTO_CIPHER_AES_CBC;
933 opts->cipher_op = RTE_CRYPTO_CIPHER_OP_ENCRYPT;
934 opts->cipher_key_sz = 16;
935 opts->cipher_iv_sz = 16;
936
937 opts->auth_algo = RTE_CRYPTO_AUTH_SHA1_HMAC;
938 opts->auth_op = RTE_CRYPTO_AUTH_OP_GENERATE;
939
940 opts->auth_key_sz = 64;
941 opts->auth_iv_sz = 0;
942
943 opts->aead_key_sz = 0;
944 opts->aead_iv_sz = 0;
945 opts->aead_aad_sz = 0;
946
947 opts->digest_sz = 12;
948
949 opts->pmdcc_delay = 0;
950 #ifdef RTE_LIB_SECURITY
951 opts->pdcp_sn_sz = 12;
952 opts->pdcp_domain = RTE_SECURITY_PDCP_MODE_CONTROL;
953 opts->pdcp_ses_hfn_en = 0;
954 opts->docsis_hdr_sz = 17;
955 #endif
956 opts->modex_data = (struct cperf_modex_test_data *)&modex_perf_data[0];
957 }
958
959 static int
cperf_opts_parse_long(int opt_idx,struct cperf_options * opts)960 cperf_opts_parse_long(int opt_idx, struct cperf_options *opts)
961 {
962 struct long_opt_parser parsermap[] = {
963 { CPERF_PTEST_TYPE, parse_cperf_test_type },
964 { CPERF_MODEX_LEN, parse_modex_len },
965 { CPERF_SILENT, parse_silent },
966 { CPERF_POOL_SIZE, parse_pool_sz },
967 { CPERF_TOTAL_OPS, parse_total_ops },
968 { CPERF_BURST_SIZE, parse_burst_sz },
969 { CPERF_BUFFER_SIZE, parse_buffer_sz },
970 { CPERF_SEGMENT_SIZE, parse_segment_sz },
971 { CPERF_DESC_NB, parse_desc_nb },
972 { CPERF_DEVTYPE, parse_device_type },
973 { CPERF_OPTYPE, parse_op_type },
974 { CPERF_SESSIONLESS, parse_sessionless },
975 { CPERF_OUT_OF_PLACE, parse_out_of_place },
976 { CPERF_IMIX, parse_imix },
977 { CPERF_TEST_FILE, parse_test_file },
978 { CPERF_TEST_NAME, parse_test_name },
979 { CPERF_CIPHER_ALGO, parse_cipher_algo },
980 { CPERF_CIPHER_OP, parse_cipher_op },
981 { CPERF_CIPHER_KEY_SZ, parse_cipher_key_sz },
982 { CPERF_CIPHER_IV_SZ, parse_cipher_iv_sz },
983 { CPERF_AUTH_ALGO, parse_auth_algo },
984 { CPERF_AUTH_OP, parse_auth_op },
985 { CPERF_AUTH_KEY_SZ, parse_auth_key_sz },
986 { CPERF_AUTH_IV_SZ, parse_auth_iv_sz },
987 { CPERF_AEAD_ALGO, parse_aead_algo },
988 { CPERF_AEAD_OP, parse_aead_op },
989 { CPERF_AEAD_KEY_SZ, parse_aead_key_sz },
990 { CPERF_AEAD_IV_SZ, parse_aead_iv_sz },
991 { CPERF_AEAD_AAD_SZ, parse_aead_aad_sz },
992 { CPERF_DIGEST_SZ, parse_digest_sz },
993 #ifdef RTE_LIB_SECURITY
994 { CPERF_PDCP_SN_SZ, parse_pdcp_sn_sz },
995 { CPERF_PDCP_DOMAIN, parse_pdcp_domain },
996 { CPERF_PDCP_SES_HFN_EN, parse_pdcp_ses_hfn_en },
997 { CPERF_DOCSIS_HDR_SZ, parse_docsis_hdr_sz },
998 #endif
999 { CPERF_CSV, parse_csv_friendly},
1000 { CPERF_PMDCC_DELAY_MS, parse_pmd_cyclecount_delay_ms},
1001 };
1002 unsigned int i;
1003
1004 for (i = 0; i < RTE_DIM(parsermap); i++) {
1005 if (strncmp(lgopts[opt_idx].name, parsermap[i].lgopt_name,
1006 strlen(lgopts[opt_idx].name)) == 0)
1007 return parsermap[i].parser_fn(opts, optarg);
1008 }
1009
1010 return -EINVAL;
1011 }
1012
1013 int
cperf_options_parse(struct cperf_options * options,int argc,char ** argv)1014 cperf_options_parse(struct cperf_options *options, int argc, char **argv)
1015 {
1016 int opt, retval, opt_idx;
1017
1018 while ((opt = getopt_long(argc, argv, "h", lgopts, &opt_idx)) != EOF) {
1019 switch (opt) {
1020 case 'h':
1021 usage(argv[0]);
1022 exit(EXIT_SUCCESS);
1023 break;
1024 /* long options */
1025 case 0:
1026 retval = cperf_opts_parse_long(opt_idx, options);
1027 if (retval != 0)
1028 return retval;
1029
1030 break;
1031
1032 default:
1033 usage(argv[0]);
1034 return -EINVAL;
1035 }
1036 }
1037
1038 return 0;
1039 }
1040
1041 static int
check_cipher_buffer_length(struct cperf_options * options)1042 check_cipher_buffer_length(struct cperf_options *options)
1043 {
1044 uint32_t buffer_size, buffer_size_idx = 0;
1045
1046 if (options->cipher_algo == RTE_CRYPTO_CIPHER_AES_CBC ||
1047 options->cipher_algo == RTE_CRYPTO_CIPHER_AES_ECB) {
1048 if (options->inc_buffer_size != 0)
1049 buffer_size = options->min_buffer_size;
1050 else
1051 buffer_size = options->buffer_size_list[0];
1052
1053 while (buffer_size <= options->max_buffer_size) {
1054 if ((buffer_size % AES_BLOCK_SIZE) != 0) {
1055 RTE_LOG(ERR, USER1, "Some of the buffer sizes are "
1056 "not suitable for the algorithm selected\n");
1057 return -EINVAL;
1058 }
1059
1060 if (options->inc_buffer_size != 0)
1061 buffer_size += options->inc_buffer_size;
1062 else {
1063 if (++buffer_size_idx == options->buffer_size_count)
1064 break;
1065 buffer_size = options->buffer_size_list[buffer_size_idx];
1066 }
1067
1068 }
1069 }
1070
1071 if (options->cipher_algo == RTE_CRYPTO_CIPHER_DES_CBC ||
1072 options->cipher_algo == RTE_CRYPTO_CIPHER_3DES_CBC ||
1073 options->cipher_algo == RTE_CRYPTO_CIPHER_3DES_ECB) {
1074 if (options->inc_buffer_size != 0)
1075 buffer_size = options->min_buffer_size;
1076 else
1077 buffer_size = options->buffer_size_list[0];
1078
1079 while (buffer_size <= options->max_buffer_size) {
1080 if ((buffer_size % DES_BLOCK_SIZE) != 0) {
1081 RTE_LOG(ERR, USER1, "Some of the buffer sizes are "
1082 "not suitable for the algorithm selected\n");
1083 return -EINVAL;
1084 }
1085
1086 if (options->inc_buffer_size != 0)
1087 buffer_size += options->inc_buffer_size;
1088 else {
1089 if (++buffer_size_idx == options->buffer_size_count)
1090 break;
1091 buffer_size = options->buffer_size_list[buffer_size_idx];
1092 }
1093
1094 }
1095 }
1096
1097 return 0;
1098 }
1099
1100 #ifdef RTE_LIB_SECURITY
1101 static int
check_docsis_buffer_length(struct cperf_options * options)1102 check_docsis_buffer_length(struct cperf_options *options)
1103 {
1104 uint32_t buffer_size, buffer_size_idx = 0;
1105
1106 if (options->inc_buffer_size != 0)
1107 buffer_size = options->min_buffer_size;
1108 else
1109 buffer_size = options->buffer_size_list[0];
1110
1111 while (buffer_size <= options->max_buffer_size) {
1112 if (buffer_size < (uint32_t)(options->docsis_hdr_sz +
1113 RTE_ETHER_HDR_LEN + RTE_ETHER_CRC_LEN)) {
1114 RTE_LOG(ERR, USER1, "Some of the buffer sizes are not "
1115 "valid for DOCSIS\n");
1116 return -EINVAL;
1117 }
1118
1119 if (options->inc_buffer_size != 0)
1120 buffer_size += options->inc_buffer_size;
1121 else {
1122 if (++buffer_size_idx == options->buffer_size_count)
1123 break;
1124 buffer_size =
1125 options->buffer_size_list[buffer_size_idx];
1126 }
1127 }
1128
1129 return 0;
1130 }
1131 #endif
1132
1133 int
cperf_options_check(struct cperf_options * options)1134 cperf_options_check(struct cperf_options *options)
1135 {
1136 int i;
1137
1138 if (options->op_type == CPERF_CIPHER_ONLY ||
1139 options->op_type == CPERF_DOCSIS)
1140 options->digest_sz = 0;
1141
1142 if (options->out_of_place &&
1143 options->segment_sz <= options->max_buffer_size) {
1144 RTE_LOG(ERR, USER1, "Out of place mode can only work "
1145 "with non segmented buffers\n");
1146 return -EINVAL;
1147 }
1148
1149 /*
1150 * If segment size is not set, assume only one segment,
1151 * big enough to contain the largest buffer and the digest
1152 */
1153 if (options->segment_sz == 0) {
1154 options->segment_sz = options->max_buffer_size +
1155 options->digest_sz;
1156 /* In IPsec operation, packet length will be increased
1157 * by some bytes depend upon the algorithm, so increasing
1158 * the segment size by headroom to cover most of
1159 * the scenarios.
1160 */
1161 if (options->op_type == CPERF_IPSEC)
1162 options->segment_sz += RTE_PKTMBUF_HEADROOM;
1163 }
1164
1165 if (options->segment_sz < options->digest_sz) {
1166 RTE_LOG(ERR, USER1,
1167 "Segment size should be at least "
1168 "the size of the digest\n");
1169 return -EINVAL;
1170 }
1171
1172 if ((options->imix_distribution_count != 0) &&
1173 (options->imix_distribution_count !=
1174 options->buffer_size_count)) {
1175 RTE_LOG(ERR, USER1, "IMIX distribution must have the same "
1176 "number of buffer sizes\n");
1177 return -EINVAL;
1178 }
1179
1180 if (options->test == CPERF_TEST_TYPE_VERIFY &&
1181 options->test_file == NULL) {
1182 RTE_LOG(ERR, USER1, "Define path to the file with test"
1183 " vectors.\n");
1184 return -EINVAL;
1185 }
1186
1187 if (options->test == CPERF_TEST_TYPE_VERIFY &&
1188 options->op_type != CPERF_CIPHER_ONLY &&
1189 options->test_name == NULL) {
1190 RTE_LOG(ERR, USER1, "Define test name to get the correct digest"
1191 " from the test vectors.\n");
1192 return -EINVAL;
1193 }
1194
1195 if (options->test_name != NULL && options->test_file == NULL) {
1196 RTE_LOG(ERR, USER1, "Define path to the file with test"
1197 " vectors.\n");
1198 return -EINVAL;
1199 }
1200
1201 if (options->auth_op == RTE_CRYPTO_AUTH_OP_VERIFY &&
1202 options->test_file == NULL) {
1203 RTE_LOG(ERR, USER1, "Define path to the file with test"
1204 " vectors.\n");
1205 return -EINVAL;
1206 }
1207
1208 if (options->test == CPERF_TEST_TYPE_VERIFY &&
1209 (options->inc_buffer_size != 0 ||
1210 options->buffer_size_count > 1)) {
1211 RTE_LOG(ERR, USER1, "Only one buffer size is allowed when "
1212 "using the verify test.\n");
1213 return -EINVAL;
1214 }
1215
1216 if (options->test == CPERF_TEST_TYPE_VERIFY &&
1217 (options->inc_burst_size != 0 ||
1218 options->burst_size_count > 1)) {
1219 RTE_LOG(ERR, USER1, "Only one burst size is allowed when "
1220 "using the verify test.\n");
1221 return -EINVAL;
1222 }
1223
1224 if (options->test == CPERF_TEST_TYPE_PMDCC &&
1225 options->pool_sz < options->nb_descriptors) {
1226 RTE_LOG(ERR, USER1, "For pmd cyclecount benchmarks, pool size "
1227 "must be equal or greater than the number of "
1228 "cryptodev descriptors.\n");
1229 return -EINVAL;
1230 }
1231
1232 if (options->test == CPERF_TEST_TYPE_VERIFY &&
1233 options->imix_distribution_count > 0) {
1234 RTE_LOG(ERR, USER1, "IMIX is not allowed when "
1235 "using the verify test.\n");
1236 return -EINVAL;
1237 }
1238
1239 if (options->op_type == CPERF_CIPHER_THEN_AUTH) {
1240 if (options->cipher_op != RTE_CRYPTO_CIPHER_OP_ENCRYPT &&
1241 options->auth_op !=
1242 RTE_CRYPTO_AUTH_OP_GENERATE) {
1243 RTE_LOG(ERR, USER1, "Option cipher then auth must use"
1244 " options: encrypt and generate.\n");
1245 return -EINVAL;
1246 }
1247 } else if (options->op_type == CPERF_AUTH_THEN_CIPHER) {
1248 if (options->cipher_op != RTE_CRYPTO_CIPHER_OP_DECRYPT &&
1249 options->auth_op !=
1250 RTE_CRYPTO_AUTH_OP_VERIFY) {
1251 RTE_LOG(ERR, USER1, "Option auth then cipher must use"
1252 " options: decrypt and verify.\n");
1253 return -EINVAL;
1254 }
1255 }
1256
1257 if (options->op_type == CPERF_CIPHER_ONLY ||
1258 options->op_type == CPERF_CIPHER_THEN_AUTH ||
1259 options->op_type == CPERF_AUTH_THEN_CIPHER) {
1260 if (check_cipher_buffer_length(options) < 0)
1261 return -EINVAL;
1262 }
1263
1264 if (options->modex_len) {
1265 if (options->op_type != CPERF_ASYM_MODEX) {
1266 RTE_LOG(ERR, USER1, "Option modex len should be used only with "
1267 " optype: modex.\n");
1268 return -EINVAL;
1269 }
1270
1271 for (i = 0; i < (int)RTE_DIM(modex_perf_data); i++) {
1272 if (modex_perf_data[i].modulus.len ==
1273 options->modex_len) {
1274 options->modex_data =
1275 (struct cperf_modex_test_data
1276 *)&modex_perf_data[i];
1277 break;
1278 }
1279 }
1280 if (i == (int)RTE_DIM(modex_perf_data)) {
1281 RTE_LOG(ERR, USER1,
1282 "Option modex len: %d is not supported\n",
1283 options->modex_len);
1284 return -EINVAL;
1285 }
1286 }
1287
1288 #ifdef RTE_LIB_SECURITY
1289 if (options->op_type == CPERF_DOCSIS) {
1290 if (check_docsis_buffer_length(options) < 0)
1291 return -EINVAL;
1292 }
1293 #endif
1294
1295 return 0;
1296 }
1297
1298 void
cperf_options_dump(struct cperf_options * opts)1299 cperf_options_dump(struct cperf_options *opts)
1300 {
1301 uint8_t size_idx;
1302
1303 printf("# Crypto Performance Application Options:\n");
1304 printf("#\n");
1305 printf("# cperf test: %s\n", cperf_test_type_strs[opts->test]);
1306 printf("#\n");
1307 printf("# size of crypto op / mbuf pool: %u\n", opts->pool_sz);
1308 printf("# total number of ops: %u\n", opts->total_ops);
1309 if (opts->inc_buffer_size != 0) {
1310 printf("# buffer size:\n");
1311 printf("#\t min: %u\n", opts->min_buffer_size);
1312 printf("#\t max: %u\n", opts->max_buffer_size);
1313 printf("#\t inc: %u\n", opts->inc_buffer_size);
1314 } else {
1315 printf("# buffer sizes: ");
1316 for (size_idx = 0; size_idx < opts->buffer_size_count; size_idx++)
1317 printf("%u ", opts->buffer_size_list[size_idx]);
1318 printf("\n");
1319 }
1320 if (opts->inc_burst_size != 0) {
1321 printf("# burst size:\n");
1322 printf("#\t min: %u\n", opts->min_burst_size);
1323 printf("#\t max: %u\n", opts->max_burst_size);
1324 printf("#\t inc: %u\n", opts->inc_burst_size);
1325 } else {
1326 printf("# burst sizes: ");
1327 for (size_idx = 0; size_idx < opts->burst_size_count; size_idx++)
1328 printf("%u ", opts->burst_size_list[size_idx]);
1329 printf("\n");
1330 }
1331 printf("\n# segment size: %u\n", opts->segment_sz);
1332 printf("#\n");
1333 printf("# cryptodev type: %s\n", opts->device_type);
1334 printf("#\n");
1335 printf("# number of queue pairs per device: %u\n", opts->nb_qps);
1336 printf("# crypto operation: %s\n", cperf_op_type_strs[opts->op_type]);
1337 printf("# sessionless: %s\n", opts->sessionless ? "yes" : "no");
1338 printf("# out of place: %s\n", opts->out_of_place ? "yes" : "no");
1339 if (opts->test == CPERF_TEST_TYPE_PMDCC)
1340 printf("# inter-burst delay: %u ms\n", opts->pmdcc_delay);
1341
1342 printf("#\n");
1343
1344 if (opts->op_type == CPERF_AUTH_ONLY ||
1345 opts->op_type == CPERF_CIPHER_THEN_AUTH ||
1346 opts->op_type == CPERF_AUTH_THEN_CIPHER) {
1347 printf("# auth algorithm: %s\n",
1348 rte_crypto_auth_algorithm_strings[opts->auth_algo]);
1349 printf("# auth operation: %s\n",
1350 rte_crypto_auth_operation_strings[opts->auth_op]);
1351 printf("# auth key size: %u\n", opts->auth_key_sz);
1352 printf("# auth iv size: %u\n", opts->auth_iv_sz);
1353 printf("# auth digest size: %u\n", opts->digest_sz);
1354 printf("#\n");
1355 }
1356
1357 if (opts->op_type == CPERF_CIPHER_ONLY ||
1358 opts->op_type == CPERF_CIPHER_THEN_AUTH ||
1359 opts->op_type == CPERF_AUTH_THEN_CIPHER) {
1360 printf("# cipher algorithm: %s\n",
1361 rte_crypto_cipher_algorithm_strings[opts->cipher_algo]);
1362 printf("# cipher operation: %s\n",
1363 rte_crypto_cipher_operation_strings[opts->cipher_op]);
1364 printf("# cipher key size: %u\n", opts->cipher_key_sz);
1365 printf("# cipher iv size: %u\n", opts->cipher_iv_sz);
1366 printf("#\n");
1367 }
1368
1369 if (opts->op_type == CPERF_AEAD) {
1370 printf("# aead algorithm: %s\n",
1371 rte_crypto_aead_algorithm_strings[opts->aead_algo]);
1372 printf("# aead operation: %s\n",
1373 rte_crypto_aead_operation_strings[opts->aead_op]);
1374 printf("# aead key size: %u\n", opts->aead_key_sz);
1375 printf("# aead iv size: %u\n", opts->aead_iv_sz);
1376 printf("# aead digest size: %u\n", opts->digest_sz);
1377 printf("# aead aad size: %u\n", opts->aead_aad_sz);
1378 printf("#\n");
1379 }
1380
1381 #ifdef RTE_LIB_SECURITY
1382 if (opts->op_type == CPERF_DOCSIS) {
1383 printf("# docsis header size: %u\n", opts->docsis_hdr_sz);
1384 printf("#\n");
1385 }
1386 #endif
1387 }
1388