1 /* SPDX-License-Identifier: BSD-3-Clause 2 * Copyright(c) 2016-2017 Intel Corporation 3 */ 4 5 #include <string.h> 6 7 #include <rte_common.h> 8 #include <rte_malloc.h> 9 #include <cryptodev_pmd.h> 10 11 #include "openssl_pmd_private.h" 12 #include "compat.h" 13 #if (OPENSSL_VERSION_NUMBER >= 0x30000000L) 14 #include <openssl/provider.h> 15 #include <openssl/core_names.h> 16 #include <openssl/param_build.h> 17 #endif 18 19 static const struct rte_cryptodev_capabilities openssl_pmd_capabilities[] = { 20 { /* MD5 HMAC */ 21 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 22 {.sym = { 23 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 24 {.auth = { 25 .algo = RTE_CRYPTO_AUTH_MD5_HMAC, 26 .block_size = 64, 27 .key_size = { 28 .min = 1, 29 .max = 64, 30 .increment = 1 31 }, 32 .digest_size = { 33 .min = 1, 34 .max = 16, 35 .increment = 1 36 }, 37 .iv_size = { 0 } 38 }, } 39 }, } 40 }, 41 { /* MD5 */ 42 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 43 {.sym = { 44 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 45 {.auth = { 46 .algo = RTE_CRYPTO_AUTH_MD5, 47 .block_size = 64, 48 .key_size = { 49 .min = 0, 50 .max = 0, 51 .increment = 0 52 }, 53 .digest_size = { 54 .min = 16, 55 .max = 16, 56 .increment = 0 57 }, 58 .iv_size = { 0 } 59 }, } 60 }, } 61 }, 62 { /* SHA1 HMAC */ 63 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 64 {.sym = { 65 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 66 {.auth = { 67 .algo = RTE_CRYPTO_AUTH_SHA1_HMAC, 68 .block_size = 64, 69 .key_size = { 70 .min = 1, 71 .max = 64, 72 .increment = 1 73 }, 74 .digest_size = { 75 .min = 1, 76 .max = 20, 77 .increment = 1 78 }, 79 .iv_size = { 0 } 80 }, } 81 }, } 82 }, 83 { /* SHA1 */ 84 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 85 {.sym = { 86 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 87 {.auth = { 88 .algo = RTE_CRYPTO_AUTH_SHA1, 89 .block_size = 64, 90 .key_size = { 91 .min = 0, 92 .max = 0, 93 .increment = 0 94 }, 95 .digest_size = { 96 .min = 20, 97 .max = 20, 98 .increment = 0 99 }, 100 .iv_size = { 0 } 101 }, } 102 }, } 103 }, 104 { /* SHA224 HMAC */ 105 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 106 {.sym = { 107 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 108 {.auth = { 109 .algo = RTE_CRYPTO_AUTH_SHA224_HMAC, 110 .block_size = 64, 111 .key_size = { 112 .min = 1, 113 .max = 64, 114 .increment = 1 115 }, 116 .digest_size = { 117 .min = 1, 118 .max = 28, 119 .increment = 1 120 }, 121 .iv_size = { 0 } 122 }, } 123 }, } 124 }, 125 { /* SHA224 */ 126 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 127 {.sym = { 128 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 129 {.auth = { 130 .algo = RTE_CRYPTO_AUTH_SHA224, 131 .block_size = 64, 132 .key_size = { 133 .min = 0, 134 .max = 0, 135 .increment = 0 136 }, 137 .digest_size = { 138 .min = 1, 139 .max = 28, 140 .increment = 1 141 }, 142 .iv_size = { 0 } 143 }, } 144 }, } 145 }, 146 { /* SHA256 HMAC */ 147 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 148 {.sym = { 149 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 150 {.auth = { 151 .algo = RTE_CRYPTO_AUTH_SHA256_HMAC, 152 .block_size = 64, 153 .key_size = { 154 .min = 1, 155 .max = 64, 156 .increment = 1 157 }, 158 .digest_size = { 159 .min = 1, 160 .max = 32, 161 .increment = 1 162 }, 163 .iv_size = { 0 } 164 }, } 165 }, } 166 }, 167 { /* SHA256 */ 168 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 169 {.sym = { 170 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 171 {.auth = { 172 .algo = RTE_CRYPTO_AUTH_SHA256, 173 .block_size = 64, 174 .key_size = { 175 .min = 0, 176 .max = 0, 177 .increment = 0 178 }, 179 .digest_size = { 180 .min = 32, 181 .max = 32, 182 .increment = 0 183 }, 184 .iv_size = { 0 } 185 }, } 186 }, } 187 }, 188 { /* SHA384 HMAC */ 189 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 190 {.sym = { 191 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 192 {.auth = { 193 .algo = RTE_CRYPTO_AUTH_SHA384_HMAC, 194 .block_size = 128, 195 .key_size = { 196 .min = 1, 197 .max = 128, 198 .increment = 1 199 }, 200 .digest_size = { 201 .min = 1, 202 .max = 48, 203 .increment = 1 204 }, 205 .iv_size = { 0 } 206 }, } 207 }, } 208 }, 209 { /* SHA384 */ 210 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 211 {.sym = { 212 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 213 {.auth = { 214 .algo = RTE_CRYPTO_AUTH_SHA384, 215 .block_size = 128, 216 .key_size = { 217 .min = 0, 218 .max = 0, 219 .increment = 0 220 }, 221 .digest_size = { 222 .min = 48, 223 .max = 48, 224 .increment = 0 225 }, 226 .iv_size = { 0 } 227 }, } 228 }, } 229 }, 230 { /* SHA512 HMAC */ 231 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 232 {.sym = { 233 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 234 {.auth = { 235 .algo = RTE_CRYPTO_AUTH_SHA512_HMAC, 236 .block_size = 128, 237 .key_size = { 238 .min = 1, 239 .max = 128, 240 .increment = 1 241 }, 242 .digest_size = { 243 .min = 1, 244 .max = 64, 245 .increment = 1 246 }, 247 .iv_size = { 0 } 248 }, } 249 }, } 250 }, 251 { /* SHA512 */ 252 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 253 {.sym = { 254 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 255 {.auth = { 256 .algo = RTE_CRYPTO_AUTH_SHA512, 257 .block_size = 128, 258 .key_size = { 259 .min = 0, 260 .max = 0, 261 .increment = 0 262 }, 263 .digest_size = { 264 .min = 64, 265 .max = 64, 266 .increment = 0 267 }, 268 .iv_size = { 0 } 269 }, } 270 }, } 271 }, 272 { /* AES CBC */ 273 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 274 {.sym = { 275 .xform_type = RTE_CRYPTO_SYM_XFORM_CIPHER, 276 {.cipher = { 277 .algo = RTE_CRYPTO_CIPHER_AES_CBC, 278 .block_size = 16, 279 .key_size = { 280 .min = 16, 281 .max = 32, 282 .increment = 8 283 }, 284 .iv_size = { 285 .min = 16, 286 .max = 16, 287 .increment = 0 288 } 289 }, } 290 }, } 291 }, 292 { /* AES CTR */ 293 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 294 {.sym = { 295 .xform_type = RTE_CRYPTO_SYM_XFORM_CIPHER, 296 {.cipher = { 297 .algo = RTE_CRYPTO_CIPHER_AES_CTR, 298 .block_size = 16, 299 .key_size = { 300 .min = 16, 301 .max = 32, 302 .increment = 8 303 }, 304 .iv_size = { 305 .min = 16, 306 .max = 16, 307 .increment = 0 308 } 309 }, } 310 }, } 311 }, 312 { /* AES GCM */ 313 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 314 {.sym = { 315 .xform_type = RTE_CRYPTO_SYM_XFORM_AEAD, 316 {.aead = { 317 .algo = RTE_CRYPTO_AEAD_AES_GCM, 318 .block_size = 16, 319 .key_size = { 320 .min = 16, 321 .max = 32, 322 .increment = 8 323 }, 324 .digest_size = { 325 .min = 16, 326 .max = 16, 327 .increment = 0 328 }, 329 .aad_size = { 330 .min = 0, 331 .max = 65535, 332 .increment = 1 333 }, 334 .iv_size = { 335 .min = 12, 336 .max = 16, 337 .increment = 4 338 }, 339 }, } 340 }, } 341 }, 342 { /* AES CCM */ 343 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 344 {.sym = { 345 .xform_type = RTE_CRYPTO_SYM_XFORM_AEAD, 346 {.aead = { 347 .algo = RTE_CRYPTO_AEAD_AES_CCM, 348 .block_size = 16, 349 .key_size = { 350 .min = 16, 351 .max = 32, 352 .increment = 8 353 }, 354 .digest_size = { 355 .min = 4, 356 .max = 16, 357 .increment = 2 358 }, 359 .aad_size = { 360 .min = 0, 361 .max = 65535, 362 .increment = 1 363 }, 364 .iv_size = { 365 .min = 7, 366 .max = 13, 367 .increment = 1 368 }, 369 }, } 370 }, } 371 }, 372 { /* AES GMAC (AUTH) */ 373 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 374 {.sym = { 375 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 376 {.auth = { 377 .algo = RTE_CRYPTO_AUTH_AES_GMAC, 378 .block_size = 16, 379 .key_size = { 380 .min = 16, 381 .max = 32, 382 .increment = 8 383 }, 384 .digest_size = { 385 .min = 16, 386 .max = 16, 387 .increment = 0 388 }, 389 .iv_size = { 390 .min = 12, 391 .max = 16, 392 .increment = 4 393 } 394 }, } 395 }, } 396 }, 397 { /* AES CMAC (AUTH) */ 398 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 399 {.sym = { 400 .xform_type = RTE_CRYPTO_SYM_XFORM_AUTH, 401 {.auth = { 402 .algo = RTE_CRYPTO_AUTH_AES_CMAC, 403 .block_size = 16, 404 .key_size = { 405 .min = 16, 406 .max = 32, 407 .increment = 8 408 }, 409 .digest_size = { 410 .min = 4, 411 .max = 16, 412 .increment = 4 413 }, 414 }, } 415 }, } 416 }, 417 { /* 3DES CBC */ 418 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 419 {.sym = { 420 .xform_type = RTE_CRYPTO_SYM_XFORM_CIPHER, 421 {.cipher = { 422 .algo = RTE_CRYPTO_CIPHER_3DES_CBC, 423 .block_size = 8, 424 .key_size = { 425 .min = 8, 426 .max = 24, 427 .increment = 8 428 }, 429 .iv_size = { 430 .min = 8, 431 .max = 8, 432 .increment = 0 433 } 434 }, } 435 }, } 436 }, 437 { /* 3DES CTR */ 438 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 439 {.sym = { 440 .xform_type = RTE_CRYPTO_SYM_XFORM_CIPHER, 441 {.cipher = { 442 .algo = RTE_CRYPTO_CIPHER_3DES_CTR, 443 .block_size = 8, 444 .key_size = { 445 .min = 16, 446 .max = 24, 447 .increment = 8 448 }, 449 .iv_size = { 450 .min = 8, 451 .max = 8, 452 .increment = 0 453 } 454 }, } 455 }, } 456 }, 457 { /* DES CBC */ 458 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 459 {.sym = { 460 .xform_type = RTE_CRYPTO_SYM_XFORM_CIPHER, 461 {.cipher = { 462 .algo = RTE_CRYPTO_CIPHER_DES_CBC, 463 .block_size = 8, 464 .key_size = { 465 .min = 8, 466 .max = 8, 467 .increment = 0 468 }, 469 .iv_size = { 470 .min = 8, 471 .max = 8, 472 .increment = 0 473 } 474 }, } 475 }, } 476 }, 477 { /* DES DOCSIS BPI */ 478 .op = RTE_CRYPTO_OP_TYPE_SYMMETRIC, 479 {.sym = { 480 .xform_type = RTE_CRYPTO_SYM_XFORM_CIPHER, 481 {.cipher = { 482 .algo = RTE_CRYPTO_CIPHER_DES_DOCSISBPI, 483 .block_size = 8, 484 .key_size = { 485 .min = 8, 486 .max = 8, 487 .increment = 0 488 }, 489 .iv_size = { 490 .min = 8, 491 .max = 8, 492 .increment = 0 493 } 494 }, } 495 }, } 496 }, 497 { /* RSA */ 498 .op = RTE_CRYPTO_OP_TYPE_ASYMMETRIC, 499 {.asym = { 500 .xform_capa = { 501 .xform_type = RTE_CRYPTO_ASYM_XFORM_RSA, 502 .op_types = ((1 << RTE_CRYPTO_ASYM_OP_SIGN) | 503 (1 << RTE_CRYPTO_ASYM_OP_VERIFY) | 504 (1 << RTE_CRYPTO_ASYM_OP_ENCRYPT) | 505 (1 << RTE_CRYPTO_ASYM_OP_DECRYPT)), 506 { 507 .modlen = { 508 /* min length is based on openssl rsa keygen */ 509 .min = 30, 510 /* value 0 symbolizes no limit on max length */ 511 .max = 0, 512 .increment = 1 513 }, } 514 } 515 }, 516 } 517 }, 518 { /* modexp */ 519 .op = RTE_CRYPTO_OP_TYPE_ASYMMETRIC, 520 {.asym = { 521 .xform_capa = { 522 .xform_type = RTE_CRYPTO_ASYM_XFORM_MODEX, 523 .op_types = 0, 524 { 525 .modlen = { 526 /* value 0 symbolizes no limit on min length */ 527 .min = 0, 528 /* value 0 symbolizes no limit on max length */ 529 .max = 0, 530 .increment = 1 531 }, } 532 } 533 }, 534 } 535 }, 536 { /* modinv */ 537 .op = RTE_CRYPTO_OP_TYPE_ASYMMETRIC, 538 {.asym = { 539 .xform_capa = { 540 .xform_type = RTE_CRYPTO_ASYM_XFORM_MODINV, 541 .op_types = 0, 542 { 543 .modlen = { 544 /* value 0 symbolizes no limit on min length */ 545 .min = 0, 546 /* value 0 symbolizes no limit on max length */ 547 .max = 0, 548 .increment = 1 549 }, } 550 } 551 }, 552 } 553 }, 554 { /* dh */ 555 .op = RTE_CRYPTO_OP_TYPE_ASYMMETRIC, 556 {.asym = { 557 .xform_capa = { 558 .xform_type = RTE_CRYPTO_ASYM_XFORM_DH, 559 .op_types = 560 ((1<<RTE_CRYPTO_ASYM_KE_PRIV_KEY_GENERATE) | 561 (1 << RTE_CRYPTO_ASYM_KE_PUB_KEY_GENERATE | 562 (1 << 563 RTE_CRYPTO_ASYM_KE_SHARED_SECRET_COMPUTE))), 564 { 565 .modlen = { 566 /* value 0 symbolizes no limit on min length */ 567 .min = 0, 568 /* value 0 symbolizes no limit on max length */ 569 .max = 0, 570 .increment = 1 571 }, } 572 } 573 }, 574 } 575 }, 576 { /* dsa */ 577 .op = RTE_CRYPTO_OP_TYPE_ASYMMETRIC, 578 {.asym = { 579 .xform_capa = { 580 .xform_type = RTE_CRYPTO_ASYM_XFORM_DSA, 581 .op_types = 582 ((1<<RTE_CRYPTO_ASYM_OP_SIGN) | 583 (1 << RTE_CRYPTO_ASYM_OP_VERIFY)), 584 { 585 .modlen = { 586 /* value 0 symbolizes no limit on min length */ 587 .min = 0, 588 /* value 0 symbolizes no limit on max length */ 589 .max = 0, 590 .increment = 1 591 }, } 592 } 593 }, 594 } 595 }, 596 597 RTE_CRYPTODEV_END_OF_CAPABILITIES_LIST() 598 }; 599 600 601 /** Configure device */ 602 static int 603 openssl_pmd_config(__rte_unused struct rte_cryptodev *dev, 604 __rte_unused struct rte_cryptodev_config *config) 605 { 606 return 0; 607 } 608 609 /** Start device */ 610 static int 611 openssl_pmd_start(__rte_unused struct rte_cryptodev *dev) 612 { 613 return 0; 614 } 615 616 /** Stop device */ 617 static void 618 openssl_pmd_stop(__rte_unused struct rte_cryptodev *dev) 619 { 620 } 621 622 /** Close device */ 623 static int 624 openssl_pmd_close(__rte_unused struct rte_cryptodev *dev) 625 { 626 return 0; 627 } 628 629 630 /** Get device statistics */ 631 static void 632 openssl_pmd_stats_get(struct rte_cryptodev *dev, 633 struct rte_cryptodev_stats *stats) 634 { 635 int qp_id; 636 637 for (qp_id = 0; qp_id < dev->data->nb_queue_pairs; qp_id++) { 638 struct openssl_qp *qp = dev->data->queue_pairs[qp_id]; 639 640 stats->enqueued_count += qp->stats.enqueued_count; 641 stats->dequeued_count += qp->stats.dequeued_count; 642 643 stats->enqueue_err_count += qp->stats.enqueue_err_count; 644 stats->dequeue_err_count += qp->stats.dequeue_err_count; 645 } 646 } 647 648 /** Reset device statistics */ 649 static void 650 openssl_pmd_stats_reset(struct rte_cryptodev *dev) 651 { 652 int qp_id; 653 654 for (qp_id = 0; qp_id < dev->data->nb_queue_pairs; qp_id++) { 655 struct openssl_qp *qp = dev->data->queue_pairs[qp_id]; 656 657 memset(&qp->stats, 0, sizeof(qp->stats)); 658 } 659 } 660 661 662 /** Get device info */ 663 static void 664 openssl_pmd_info_get(struct rte_cryptodev *dev, 665 struct rte_cryptodev_info *dev_info) 666 { 667 struct openssl_private *internals = dev->data->dev_private; 668 669 if (dev_info != NULL) { 670 dev_info->driver_id = dev->driver_id; 671 dev_info->feature_flags = dev->feature_flags; 672 dev_info->capabilities = openssl_pmd_capabilities; 673 dev_info->max_nb_queue_pairs = internals->max_nb_qpairs; 674 /* No limit of number of sessions */ 675 dev_info->sym.max_nb_sessions = 0; 676 } 677 } 678 679 /** Release queue pair */ 680 static int 681 openssl_pmd_qp_release(struct rte_cryptodev *dev, uint16_t qp_id) 682 { 683 if (dev->data->queue_pairs[qp_id] != NULL) { 684 struct openssl_qp *qp = dev->data->queue_pairs[qp_id]; 685 686 rte_ring_free(qp->processed_ops); 687 688 rte_free(dev->data->queue_pairs[qp_id]); 689 dev->data->queue_pairs[qp_id] = NULL; 690 } 691 return 0; 692 } 693 694 /** set a unique name for the queue pair based on it's name, dev_id and qp_id */ 695 static int 696 openssl_pmd_qp_set_unique_name(struct rte_cryptodev *dev, 697 struct openssl_qp *qp) 698 { 699 unsigned int n = snprintf(qp->name, sizeof(qp->name), 700 "openssl_pmd_%u_qp_%u", 701 dev->data->dev_id, qp->id); 702 703 if (n >= sizeof(qp->name)) 704 return -1; 705 706 return 0; 707 } 708 709 710 /** Create a ring to place processed operations on */ 711 static struct rte_ring * 712 openssl_pmd_qp_create_processed_ops_ring(struct openssl_qp *qp, 713 unsigned int ring_size, int socket_id) 714 { 715 struct rte_ring *r; 716 717 r = rte_ring_lookup(qp->name); 718 if (r) { 719 if (rte_ring_get_size(r) >= ring_size) { 720 OPENSSL_LOG(INFO, 721 "Reusing existing ring %s for processed ops", 722 qp->name); 723 return r; 724 } 725 726 OPENSSL_LOG(ERR, 727 "Unable to reuse existing ring %s for processed ops", 728 qp->name); 729 return NULL; 730 } 731 732 return rte_ring_create(qp->name, ring_size, socket_id, 733 RING_F_SP_ENQ | RING_F_SC_DEQ); 734 } 735 736 737 /** Setup a queue pair */ 738 static int 739 openssl_pmd_qp_setup(struct rte_cryptodev *dev, uint16_t qp_id, 740 const struct rte_cryptodev_qp_conf *qp_conf, 741 int socket_id) 742 { 743 struct openssl_qp *qp = NULL; 744 745 /* Free memory prior to re-allocation if needed. */ 746 if (dev->data->queue_pairs[qp_id] != NULL) 747 openssl_pmd_qp_release(dev, qp_id); 748 749 /* Allocate the queue pair data structure. */ 750 qp = rte_zmalloc_socket("OPENSSL PMD Queue Pair", sizeof(*qp), 751 RTE_CACHE_LINE_SIZE, socket_id); 752 if (qp == NULL) 753 return -ENOMEM; 754 755 qp->id = qp_id; 756 dev->data->queue_pairs[qp_id] = qp; 757 758 if (openssl_pmd_qp_set_unique_name(dev, qp)) 759 goto qp_setup_cleanup; 760 761 qp->processed_ops = openssl_pmd_qp_create_processed_ops_ring(qp, 762 qp_conf->nb_descriptors, socket_id); 763 if (qp->processed_ops == NULL) 764 goto qp_setup_cleanup; 765 766 qp->sess_mp = qp_conf->mp_session; 767 qp->sess_mp_priv = qp_conf->mp_session_private; 768 769 memset(&qp->stats, 0, sizeof(qp->stats)); 770 771 return 0; 772 773 qp_setup_cleanup: 774 rte_free(qp); 775 776 return -1; 777 } 778 779 /** Returns the size of the symmetric session structure */ 780 static unsigned 781 openssl_pmd_sym_session_get_size(struct rte_cryptodev *dev __rte_unused) 782 { 783 return sizeof(struct openssl_session); 784 } 785 786 /** Returns the size of the asymmetric session structure */ 787 static unsigned 788 openssl_pmd_asym_session_get_size(struct rte_cryptodev *dev __rte_unused) 789 { 790 return sizeof(struct openssl_asym_session); 791 } 792 793 /** Configure the session from a crypto xform chain */ 794 static int 795 openssl_pmd_sym_session_configure(struct rte_cryptodev *dev __rte_unused, 796 struct rte_crypto_sym_xform *xform, 797 struct rte_cryptodev_sym_session *sess, 798 struct rte_mempool *mempool) 799 { 800 void *sess_private_data; 801 int ret; 802 803 if (unlikely(sess == NULL)) { 804 OPENSSL_LOG(ERR, "invalid session struct"); 805 return -EINVAL; 806 } 807 808 if (rte_mempool_get(mempool, &sess_private_data)) { 809 OPENSSL_LOG(ERR, 810 "Couldn't get object from session mempool"); 811 return -ENOMEM; 812 } 813 814 ret = openssl_set_session_parameters(sess_private_data, xform); 815 if (ret != 0) { 816 OPENSSL_LOG(ERR, "failed configure session parameters"); 817 818 /* Return session to mempool */ 819 rte_mempool_put(mempool, sess_private_data); 820 return ret; 821 } 822 823 set_sym_session_private_data(sess, dev->driver_id, 824 sess_private_data); 825 826 return 0; 827 } 828 829 static int openssl_set_asym_session_parameters( 830 struct openssl_asym_session *asym_session, 831 struct rte_crypto_asym_xform *xform) 832 { 833 int ret = -1; 834 835 if ((xform->xform_type != RTE_CRYPTO_ASYM_XFORM_DH) && 836 (xform->next != NULL)) { 837 OPENSSL_LOG(ERR, "chained xfrms are not supported on %s", 838 rte_crypto_asym_xform_strings[xform->xform_type]); 839 return ret; 840 } 841 842 switch (xform->xform_type) { 843 case RTE_CRYPTO_ASYM_XFORM_RSA: 844 { 845 BIGNUM *n = NULL; 846 BIGNUM *e = NULL; 847 BIGNUM *d = NULL; 848 BIGNUM *p = NULL, *q = NULL, *dmp1 = NULL; 849 BIGNUM *iqmp = NULL, *dmq1 = NULL; 850 851 /* copy xfrm data into rsa struct */ 852 n = BN_bin2bn((const unsigned char *)xform->rsa.n.data, 853 xform->rsa.n.length, n); 854 e = BN_bin2bn((const unsigned char *)xform->rsa.e.data, 855 xform->rsa.e.length, e); 856 857 if (!n || !e) 858 goto err_rsa; 859 860 #if (OPENSSL_VERSION_NUMBER >= 0x30000000L) 861 OSSL_PARAM_BLD * param_bld = OSSL_PARAM_BLD_new(); 862 if (!param_bld) { 863 OPENSSL_LOG(ERR, "failed to allocate resources\n"); 864 goto err_rsa; 865 } 866 867 if (!OSSL_PARAM_BLD_push_BN(param_bld, OSSL_PKEY_PARAM_RSA_N, n) 868 || !OSSL_PARAM_BLD_push_BN(param_bld, 869 OSSL_PKEY_PARAM_RSA_E, e)) { 870 OSSL_PARAM_BLD_free(param_bld); 871 OPENSSL_LOG(ERR, "failed to allocate resources\n"); 872 goto err_rsa; 873 } 874 875 if (xform->rsa.key_type == RTE_RSA_KEY_TYPE_EXP) { 876 d = BN_bin2bn( 877 (const unsigned char *)xform->rsa.d.data, 878 xform->rsa.d.length, 879 d); 880 if (!d) { 881 OSSL_PARAM_BLD_free(param_bld); 882 goto err_rsa; 883 } 884 } else { 885 p = BN_bin2bn((const unsigned char *) 886 xform->rsa.qt.p.data, 887 xform->rsa.qt.p.length, 888 p); 889 q = BN_bin2bn((const unsigned char *) 890 xform->rsa.qt.q.data, 891 xform->rsa.qt.q.length, 892 q); 893 dmp1 = BN_bin2bn((const unsigned char *) 894 xform->rsa.qt.dP.data, 895 xform->rsa.qt.dP.length, 896 dmp1); 897 dmq1 = BN_bin2bn((const unsigned char *) 898 xform->rsa.qt.dQ.data, 899 xform->rsa.qt.dQ.length, 900 dmq1); 901 iqmp = BN_bin2bn((const unsigned char *) 902 xform->rsa.qt.qInv.data, 903 xform->rsa.qt.qInv.length, 904 iqmp); 905 906 if (!p || !q || !dmp1 || !dmq1 || !iqmp) { 907 OSSL_PARAM_BLD_free(param_bld); 908 goto err_rsa; 909 } 910 911 if (!OSSL_PARAM_BLD_push_BN(param_bld, 912 OSSL_PKEY_PARAM_RSA_FACTOR1, p) 913 || !OSSL_PARAM_BLD_push_BN(param_bld, 914 OSSL_PKEY_PARAM_RSA_FACTOR2, q) 915 || !OSSL_PARAM_BLD_push_BN(param_bld, 916 OSSL_PKEY_PARAM_RSA_EXPONENT1, dmp1) 917 || !OSSL_PARAM_BLD_push_BN(param_bld, 918 OSSL_PKEY_PARAM_RSA_EXPONENT2, dmq1) 919 || !OSSL_PARAM_BLD_push_BN(param_bld, 920 OSSL_PKEY_PARAM_RSA_COEFFICIENT1, iqmp)) { 921 OSSL_PARAM_BLD_free(param_bld); 922 goto err_rsa; 923 } 924 } 925 926 if (!OSSL_PARAM_BLD_push_BN(param_bld, OSSL_PKEY_PARAM_RSA_N, n) 927 || !OSSL_PARAM_BLD_push_BN(param_bld, OSSL_PKEY_PARAM_RSA_E, e) 928 || !OSSL_PARAM_BLD_push_BN(param_bld, 929 OSSL_PKEY_PARAM_RSA_D, d)) { 930 OSSL_PARAM_BLD_free(param_bld); 931 goto err_rsa; 932 } 933 934 EVP_PKEY_CTX *key_ctx = EVP_PKEY_CTX_new_from_name(NULL, "RSA", NULL); 935 EVP_PKEY *pkey = NULL; 936 EVP_PKEY_CTX *rsa_ctx = NULL; 937 OSSL_PARAM *params = NULL; 938 939 params = OSSL_PARAM_BLD_to_param(param_bld); 940 if (!params) { 941 OSSL_PARAM_BLD_free(param_bld); 942 goto err_rsa; 943 } 944 945 if (key_ctx == NULL 946 || EVP_PKEY_fromdata_init(key_ctx) <= 0 947 || EVP_PKEY_fromdata(key_ctx, &pkey, 948 EVP_PKEY_KEYPAIR, params) <= 0) { 949 OSSL_PARAM_free(params); 950 goto err_rsa; 951 } 952 953 rsa_ctx = EVP_PKEY_CTX_new(pkey, NULL); 954 asym_session->xfrm_type = RTE_CRYPTO_ASYM_XFORM_RSA; 955 asym_session->u.r.ctx = rsa_ctx; 956 EVP_PKEY_CTX_free(key_ctx); 957 OSSL_PARAM_free(params); 958 break; 959 #else 960 RSA *rsa = RSA_new(); 961 if (rsa == NULL) 962 goto err_rsa; 963 964 if (xform->rsa.key_type == RTE_RSA_KEY_TYPE_EXP) { 965 d = BN_bin2bn( 966 (const unsigned char *)xform->rsa.d.data, 967 xform->rsa.d.length, 968 d); 969 if (!d) { 970 RSA_free(rsa); 971 goto err_rsa; 972 } 973 } else { 974 p = BN_bin2bn((const unsigned char *) 975 xform->rsa.qt.p.data, 976 xform->rsa.qt.p.length, 977 p); 978 q = BN_bin2bn((const unsigned char *) 979 xform->rsa.qt.q.data, 980 xform->rsa.qt.q.length, 981 q); 982 dmp1 = BN_bin2bn((const unsigned char *) 983 xform->rsa.qt.dP.data, 984 xform->rsa.qt.dP.length, 985 dmp1); 986 dmq1 = BN_bin2bn((const unsigned char *) 987 xform->rsa.qt.dQ.data, 988 xform->rsa.qt.dQ.length, 989 dmq1); 990 iqmp = BN_bin2bn((const unsigned char *) 991 xform->rsa.qt.qInv.data, 992 xform->rsa.qt.qInv.length, 993 iqmp); 994 995 if (!p || !q || !dmp1 || !dmq1 || !iqmp) { 996 RSA_free(rsa); 997 goto err_rsa; 998 } 999 ret = set_rsa_params(rsa, p, q); 1000 if (ret) { 1001 OPENSSL_LOG(ERR, 1002 "failed to set rsa params\n"); 1003 RSA_free(rsa); 1004 goto err_rsa; 1005 } 1006 ret = set_rsa_crt_params(rsa, dmp1, dmq1, iqmp); 1007 if (ret) { 1008 OPENSSL_LOG(ERR, 1009 "failed to set crt params\n"); 1010 RSA_free(rsa); 1011 /* 1012 * set already populated params to NULL 1013 * as its freed by call to RSA_free 1014 */ 1015 p = q = NULL; 1016 goto err_rsa; 1017 } 1018 } 1019 1020 ret = set_rsa_keys(rsa, n, e, d); 1021 if (ret) { 1022 OPENSSL_LOG(ERR, "Failed to load rsa keys\n"); 1023 RSA_free(rsa); 1024 return ret; 1025 } 1026 asym_session->u.r.rsa = rsa; 1027 asym_session->xfrm_type = RTE_CRYPTO_ASYM_XFORM_RSA; 1028 break; 1029 #endif 1030 err_rsa: 1031 BN_clear_free(n); 1032 BN_clear_free(e); 1033 BN_clear_free(d); 1034 BN_clear_free(p); 1035 BN_clear_free(q); 1036 BN_clear_free(dmp1); 1037 BN_clear_free(dmq1); 1038 BN_clear_free(iqmp); 1039 1040 return -1; 1041 } 1042 case RTE_CRYPTO_ASYM_XFORM_MODEX: 1043 { 1044 struct rte_crypto_modex_xform *xfrm = &(xform->modex); 1045 1046 BN_CTX *ctx = BN_CTX_new(); 1047 if (ctx == NULL) { 1048 OPENSSL_LOG(ERR, 1049 " failed to allocate resources\n"); 1050 return ret; 1051 } 1052 BN_CTX_start(ctx); 1053 BIGNUM *mod = BN_CTX_get(ctx); 1054 BIGNUM *exp = BN_CTX_get(ctx); 1055 if (mod == NULL || exp == NULL) { 1056 BN_CTX_end(ctx); 1057 BN_CTX_free(ctx); 1058 return ret; 1059 } 1060 1061 mod = BN_bin2bn((const unsigned char *) 1062 xfrm->modulus.data, 1063 xfrm->modulus.length, mod); 1064 exp = BN_bin2bn((const unsigned char *) 1065 xfrm->exponent.data, 1066 xfrm->exponent.length, exp); 1067 asym_session->u.e.ctx = ctx; 1068 asym_session->u.e.mod = mod; 1069 asym_session->u.e.exp = exp; 1070 asym_session->xfrm_type = RTE_CRYPTO_ASYM_XFORM_MODEX; 1071 break; 1072 } 1073 case RTE_CRYPTO_ASYM_XFORM_MODINV: 1074 { 1075 struct rte_crypto_modinv_xform *xfrm = &(xform->modinv); 1076 1077 BN_CTX *ctx = BN_CTX_new(); 1078 if (ctx == NULL) { 1079 OPENSSL_LOG(ERR, 1080 " failed to allocate resources\n"); 1081 return ret; 1082 } 1083 BN_CTX_start(ctx); 1084 BIGNUM *mod = BN_CTX_get(ctx); 1085 if (mod == NULL) { 1086 BN_CTX_end(ctx); 1087 BN_CTX_free(ctx); 1088 return ret; 1089 } 1090 1091 mod = BN_bin2bn((const unsigned char *) 1092 xfrm->modulus.data, 1093 xfrm->modulus.length, 1094 mod); 1095 asym_session->u.m.ctx = ctx; 1096 asym_session->u.m.modulus = mod; 1097 asym_session->xfrm_type = RTE_CRYPTO_ASYM_XFORM_MODINV; 1098 break; 1099 } 1100 case RTE_CRYPTO_ASYM_XFORM_DH: 1101 { 1102 BIGNUM *p = NULL; 1103 BIGNUM *g = NULL; 1104 1105 p = BN_bin2bn((const unsigned char *) 1106 xform->dh.p.data, 1107 xform->dh.p.length, 1108 p); 1109 g = BN_bin2bn((const unsigned char *) 1110 xform->dh.g.data, 1111 xform->dh.g.length, 1112 g); 1113 if (!p || !g) 1114 goto err_dh; 1115 1116 DH *dh = NULL; 1117 #if (OPENSSL_VERSION_NUMBER >= 0x30000000L) 1118 OSSL_PARAM_BLD *param_bld = NULL; 1119 param_bld = OSSL_PARAM_BLD_new(); 1120 if (!param_bld) { 1121 OPENSSL_LOG(ERR, "failed to allocate resources\n"); 1122 goto err_dh; 1123 } 1124 if ((!OSSL_PARAM_BLD_push_utf8_string(param_bld, 1125 "group", "ffdhe2048", 0)) 1126 || (!OSSL_PARAM_BLD_push_BN(param_bld, 1127 OSSL_PKEY_PARAM_FFC_P, p)) 1128 || (!OSSL_PARAM_BLD_push_BN(param_bld, 1129 OSSL_PKEY_PARAM_FFC_G, g))) { 1130 OSSL_PARAM_BLD_free(param_bld); 1131 goto err_dh; 1132 } 1133 1134 OSSL_PARAM_BLD *param_bld_peer = NULL; 1135 param_bld_peer = OSSL_PARAM_BLD_new(); 1136 if (!param_bld_peer) { 1137 OPENSSL_LOG(ERR, "failed to allocate resources\n"); 1138 OSSL_PARAM_BLD_free(param_bld); 1139 goto err_dh; 1140 } 1141 if ((!OSSL_PARAM_BLD_push_utf8_string(param_bld_peer, 1142 "group", "ffdhe2048", 0)) 1143 || (!OSSL_PARAM_BLD_push_BN(param_bld_peer, 1144 OSSL_PKEY_PARAM_FFC_P, p)) 1145 || (!OSSL_PARAM_BLD_push_BN(param_bld_peer, 1146 OSSL_PKEY_PARAM_FFC_G, g))) { 1147 OSSL_PARAM_BLD_free(param_bld); 1148 OSSL_PARAM_BLD_free(param_bld_peer); 1149 goto err_dh; 1150 } 1151 1152 asym_session->u.dh.param_bld = param_bld; 1153 asym_session->u.dh.param_bld_peer = param_bld_peer; 1154 #else 1155 dh = DH_new(); 1156 if (dh == NULL) { 1157 OPENSSL_LOG(ERR, 1158 "failed to allocate resources\n"); 1159 goto err_dh; 1160 } 1161 ret = set_dh_params(dh, p, g); 1162 if (ret) { 1163 DH_free(dh); 1164 goto err_dh; 1165 } 1166 #endif 1167 asym_session->u.dh.dh_key = dh; 1168 asym_session->xfrm_type = RTE_CRYPTO_ASYM_XFORM_DH; 1169 break; 1170 1171 err_dh: 1172 OPENSSL_LOG(ERR, " failed to set dh params\n"); 1173 BN_free(p); 1174 BN_free(g); 1175 return -1; 1176 } 1177 case RTE_CRYPTO_ASYM_XFORM_DSA: 1178 { 1179 #if (OPENSSL_VERSION_NUMBER >= 0x30000000L) 1180 BIGNUM *p = NULL, *g = NULL; 1181 BIGNUM *q = NULL, *priv_key = NULL; 1182 BIGNUM *pub_key = BN_new(); 1183 BN_zero(pub_key); 1184 OSSL_PARAM_BLD *param_bld = NULL; 1185 1186 p = BN_bin2bn((const unsigned char *) 1187 xform->dsa.p.data, 1188 xform->dsa.p.length, 1189 p); 1190 1191 g = BN_bin2bn((const unsigned char *) 1192 xform->dsa.g.data, 1193 xform->dsa.g.length, 1194 g); 1195 1196 q = BN_bin2bn((const unsigned char *) 1197 xform->dsa.q.data, 1198 xform->dsa.q.length, 1199 q); 1200 if (!p || !q || !g) 1201 goto err_dsa; 1202 1203 priv_key = BN_bin2bn((const unsigned char *) 1204 xform->dsa.x.data, 1205 xform->dsa.x.length, 1206 priv_key); 1207 if (priv_key == NULL) 1208 goto err_dsa; 1209 1210 param_bld = OSSL_PARAM_BLD_new(); 1211 if (!param_bld) { 1212 OPENSSL_LOG(ERR, "failed to allocate resources\n"); 1213 goto err_dsa; 1214 } 1215 1216 if (!OSSL_PARAM_BLD_push_BN(param_bld, OSSL_PKEY_PARAM_FFC_P, p) 1217 || !OSSL_PARAM_BLD_push_BN(param_bld, OSSL_PKEY_PARAM_FFC_G, g) 1218 || !OSSL_PARAM_BLD_push_BN(param_bld, OSSL_PKEY_PARAM_FFC_Q, q) 1219 || !OSSL_PARAM_BLD_push_BN(param_bld, OSSL_PKEY_PARAM_PRIV_KEY, priv_key)) { 1220 OSSL_PARAM_BLD_free(param_bld); 1221 OPENSSL_LOG(ERR, "failed to allocate resources\n"); 1222 goto err_dsa; 1223 } 1224 asym_session->xfrm_type = RTE_CRYPTO_ASYM_XFORM_DSA; 1225 asym_session->u.s.param_bld = param_bld; 1226 1227 break; 1228 #else 1229 BIGNUM *p = NULL, *g = NULL; 1230 BIGNUM *q = NULL, *priv_key = NULL; 1231 BIGNUM *pub_key = BN_new(); 1232 BN_zero(pub_key); 1233 1234 p = BN_bin2bn((const unsigned char *) 1235 xform->dsa.p.data, 1236 xform->dsa.p.length, 1237 p); 1238 1239 g = BN_bin2bn((const unsigned char *) 1240 xform->dsa.g.data, 1241 xform->dsa.g.length, 1242 g); 1243 1244 q = BN_bin2bn((const unsigned char *) 1245 xform->dsa.q.data, 1246 xform->dsa.q.length, 1247 q); 1248 if (!p || !q || !g) 1249 goto err_dsa; 1250 1251 priv_key = BN_bin2bn((const unsigned char *) 1252 xform->dsa.x.data, 1253 xform->dsa.x.length, 1254 priv_key); 1255 if (priv_key == NULL) 1256 goto err_dsa; 1257 1258 DSA *dsa = DSA_new(); 1259 if (dsa == NULL) { 1260 OPENSSL_LOG(ERR, 1261 " failed to allocate resources\n"); 1262 goto err_dsa; 1263 } 1264 1265 ret = set_dsa_params(dsa, p, q, g); 1266 if (ret) { 1267 DSA_free(dsa); 1268 OPENSSL_LOG(ERR, "Failed to dsa params\n"); 1269 goto err_dsa; 1270 } 1271 1272 /* 1273 * openssl 1.1.0 mandate that public key can't be 1274 * NULL in very first call. so set a dummy pub key. 1275 * to keep consistency, lets follow same approach for 1276 * both versions 1277 */ 1278 /* just set dummy public for very 1st call */ 1279 ret = set_dsa_keys(dsa, pub_key, priv_key); 1280 if (ret) { 1281 DSA_free(dsa); 1282 OPENSSL_LOG(ERR, "Failed to set keys\n"); 1283 return -1; 1284 } 1285 asym_session->u.s.dsa = dsa; 1286 asym_session->xfrm_type = RTE_CRYPTO_ASYM_XFORM_DSA; 1287 break; 1288 #endif 1289 err_dsa: 1290 BN_free(p); 1291 BN_free(q); 1292 BN_free(g); 1293 BN_free(priv_key); 1294 BN_free(pub_key); 1295 return -1; 1296 } 1297 default: 1298 return ret; 1299 } 1300 1301 return 0; 1302 } 1303 1304 /** Configure the session from a crypto xform chain */ 1305 static int 1306 openssl_pmd_asym_session_configure(struct rte_cryptodev *dev __rte_unused, 1307 struct rte_crypto_asym_xform *xform, 1308 struct rte_cryptodev_asym_session *sess) 1309 { 1310 void *asym_sess_private_data; 1311 int ret; 1312 1313 if (unlikely(sess == NULL)) { 1314 OPENSSL_LOG(ERR, "invalid asymmetric session struct"); 1315 return -EINVAL; 1316 } 1317 1318 asym_sess_private_data = sess->sess_private_data; 1319 ret = openssl_set_asym_session_parameters(asym_sess_private_data, 1320 xform); 1321 if (ret != 0) { 1322 OPENSSL_LOG(ERR, "failed configure session parameters"); 1323 return ret; 1324 } 1325 1326 return 0; 1327 } 1328 1329 /** Clear the memory of session so it doesn't leave key material behind */ 1330 static void 1331 openssl_pmd_sym_session_clear(struct rte_cryptodev *dev, 1332 struct rte_cryptodev_sym_session *sess) 1333 { 1334 uint8_t index = dev->driver_id; 1335 void *sess_priv = get_sym_session_private_data(sess, index); 1336 1337 /* Zero out the whole structure */ 1338 if (sess_priv) { 1339 openssl_reset_session(sess_priv); 1340 memset(sess_priv, 0, sizeof(struct openssl_session)); 1341 struct rte_mempool *sess_mp = rte_mempool_from_obj(sess_priv); 1342 set_sym_session_private_data(sess, index, NULL); 1343 rte_mempool_put(sess_mp, sess_priv); 1344 } 1345 } 1346 1347 static void openssl_reset_asym_session(struct openssl_asym_session *sess) 1348 { 1349 switch (sess->xfrm_type) { 1350 case RTE_CRYPTO_ASYM_XFORM_RSA: 1351 #if (OPENSSL_VERSION_NUMBER >= 0x30000000L) 1352 if (sess->u.r.ctx) 1353 EVP_PKEY_CTX_free(sess->u.r.ctx); 1354 #else 1355 if (sess->u.r.rsa) 1356 RSA_free(sess->u.r.rsa); 1357 #endif 1358 break; 1359 case RTE_CRYPTO_ASYM_XFORM_MODEX: 1360 if (sess->u.e.ctx) { 1361 BN_CTX_end(sess->u.e.ctx); 1362 BN_CTX_free(sess->u.e.ctx); 1363 } 1364 break; 1365 case RTE_CRYPTO_ASYM_XFORM_MODINV: 1366 if (sess->u.m.ctx) { 1367 BN_CTX_end(sess->u.m.ctx); 1368 BN_CTX_free(sess->u.m.ctx); 1369 } 1370 break; 1371 case RTE_CRYPTO_ASYM_XFORM_DH: 1372 #if (OPENSSL_VERSION_NUMBER >= 0x30000000L) 1373 sess->u.dh.param_bld = NULL; 1374 sess->u.dh.param_bld_peer = NULL; 1375 #else 1376 if (sess->u.dh.dh_key) 1377 DH_free(sess->u.dh.dh_key); 1378 #endif 1379 break; 1380 case RTE_CRYPTO_ASYM_XFORM_DSA: 1381 #if (OPENSSL_VERSION_NUMBER >= 0x30000000L) 1382 sess->u.s.param_bld = NULL; 1383 #else 1384 if (sess->u.s.dsa) 1385 DSA_free(sess->u.s.dsa); 1386 #endif 1387 break; 1388 default: 1389 break; 1390 } 1391 } 1392 1393 /** Clear the memory of asymmetric session 1394 * so it doesn't leave key material behind 1395 */ 1396 static void 1397 openssl_pmd_asym_session_clear(struct rte_cryptodev *dev __rte_unused, 1398 struct rte_cryptodev_asym_session *sess) 1399 { 1400 void *sess_priv = sess->sess_private_data; 1401 1402 /* Zero out the whole structure */ 1403 if (sess_priv) { 1404 openssl_reset_asym_session(sess_priv); 1405 memset(sess_priv, 0, sizeof(struct openssl_asym_session)); 1406 } 1407 } 1408 1409 struct rte_cryptodev_ops openssl_pmd_ops = { 1410 .dev_configure = openssl_pmd_config, 1411 .dev_start = openssl_pmd_start, 1412 .dev_stop = openssl_pmd_stop, 1413 .dev_close = openssl_pmd_close, 1414 1415 .stats_get = openssl_pmd_stats_get, 1416 .stats_reset = openssl_pmd_stats_reset, 1417 1418 .dev_infos_get = openssl_pmd_info_get, 1419 1420 .queue_pair_setup = openssl_pmd_qp_setup, 1421 .queue_pair_release = openssl_pmd_qp_release, 1422 1423 .sym_session_get_size = openssl_pmd_sym_session_get_size, 1424 .asym_session_get_size = openssl_pmd_asym_session_get_size, 1425 .sym_session_configure = openssl_pmd_sym_session_configure, 1426 .asym_session_configure = openssl_pmd_asym_session_configure, 1427 .sym_session_clear = openssl_pmd_sym_session_clear, 1428 .asym_session_clear = openssl_pmd_asym_session_clear 1429 }; 1430 1431 struct rte_cryptodev_ops *rte_openssl_pmd_ops = &openssl_pmd_ops; 1432