1 /*- 2 * BSD LICENSE 3 * 4 * Copyright(c) 2015-2017 Intel Corporation. All rights reserved. 5 * All rights reserved. 6 * 7 * Redistribution and use in source and binary forms, with or without 8 * modification, are permitted provided that the following conditions 9 * are met: 10 * 11 * * Redistributions of source code must retain the above copyright 12 * notice, this list of conditions and the following disclaimer. 13 * * Redistributions in binary form must reproduce the above copyright 14 * notice, this list of conditions and the following disclaimer in 15 * the documentation and/or other materials provided with the 16 * distribution. 17 * * Neither the name of Intel Corporation nor the names of its 18 * contributors may be used to endorse or promote products derived 19 * from this software without specific prior written permission. 20 * 21 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS 22 * "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT 23 * LIMITED TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR 24 * A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT 25 * OWNER OR CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, 26 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT 27 * LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 28 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 29 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 30 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE 31 * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 32 */ 33 34 #include <time.h> 35 #include <stdio.h> 36 #include <stdlib.h> 37 #include <string.h> 38 #include <stdint.h> 39 #include <inttypes.h> 40 #include <sys/types.h> 41 #include <sys/queue.h> 42 #include <netinet/in.h> 43 #include <setjmp.h> 44 #include <stdarg.h> 45 #include <ctype.h> 46 #include <errno.h> 47 #include <getopt.h> 48 #include <fcntl.h> 49 #include <unistd.h> 50 51 #include <rte_atomic.h> 52 #include <rte_branch_prediction.h> 53 #include <rte_common.h> 54 #include <rte_cryptodev.h> 55 #include <rte_cycles.h> 56 #include <rte_debug.h> 57 #include <rte_eal.h> 58 #include <rte_ether.h> 59 #include <rte_ethdev.h> 60 #include <rte_interrupts.h> 61 #include <rte_ip.h> 62 #include <rte_launch.h> 63 #include <rte_lcore.h> 64 #include <rte_log.h> 65 #include <rte_malloc.h> 66 #include <rte_mbuf.h> 67 #include <rte_memcpy.h> 68 #include <rte_memory.h> 69 #include <rte_mempool.h> 70 #include <rte_memzone.h> 71 #include <rte_pci.h> 72 #include <rte_per_lcore.h> 73 #include <rte_prefetch.h> 74 #include <rte_random.h> 75 #include <rte_hexdump.h> 76 77 enum cdev_type { 78 CDEV_TYPE_ANY, 79 CDEV_TYPE_HW, 80 CDEV_TYPE_SW 81 }; 82 83 #define RTE_LOGTYPE_L2FWD RTE_LOGTYPE_USER1 84 85 #define NB_MBUF 8192 86 87 #define MAX_STR_LEN 32 88 #define MAX_KEY_SIZE 128 89 #define MAX_PKT_BURST 32 90 #define BURST_TX_DRAIN_US 100 /* TX drain every ~100us */ 91 92 #define MAXIMUM_IV_LENGTH 16 93 #define IV_OFFSET (sizeof(struct rte_crypto_op) + \ 94 sizeof(struct rte_crypto_sym_op)) 95 96 /* 97 * Configurable number of RX/TX ring descriptors 98 */ 99 #define RTE_TEST_RX_DESC_DEFAULT 128 100 #define RTE_TEST_TX_DESC_DEFAULT 512 101 102 static uint16_t nb_rxd = RTE_TEST_RX_DESC_DEFAULT; 103 static uint16_t nb_txd = RTE_TEST_TX_DESC_DEFAULT; 104 105 /* ethernet addresses of ports */ 106 static struct ether_addr l2fwd_ports_eth_addr[RTE_MAX_ETHPORTS]; 107 108 /* mask of enabled ports */ 109 static uint64_t l2fwd_enabled_port_mask; 110 static uint64_t l2fwd_enabled_crypto_mask; 111 112 /* list of enabled ports */ 113 static uint32_t l2fwd_dst_ports[RTE_MAX_ETHPORTS]; 114 115 116 struct pkt_buffer { 117 unsigned len; 118 struct rte_mbuf *buffer[MAX_PKT_BURST]; 119 }; 120 121 struct op_buffer { 122 unsigned len; 123 struct rte_crypto_op *buffer[MAX_PKT_BURST]; 124 }; 125 126 #define MAX_RX_QUEUE_PER_LCORE 16 127 #define MAX_TX_QUEUE_PER_PORT 16 128 129 enum l2fwd_crypto_xform_chain { 130 L2FWD_CRYPTO_CIPHER_HASH, 131 L2FWD_CRYPTO_HASH_CIPHER, 132 L2FWD_CRYPTO_CIPHER_ONLY, 133 L2FWD_CRYPTO_HASH_ONLY 134 }; 135 136 struct l2fwd_key { 137 uint8_t *data; 138 uint32_t length; 139 phys_addr_t phys_addr; 140 }; 141 142 /** l2fwd crypto application command line options */ 143 struct l2fwd_crypto_options { 144 unsigned portmask; 145 unsigned nb_ports_per_lcore; 146 unsigned refresh_period; 147 unsigned single_lcore:1; 148 149 enum cdev_type type; 150 unsigned sessionless:1; 151 152 enum l2fwd_crypto_xform_chain xform_chain; 153 154 struct rte_crypto_sym_xform cipher_xform; 155 unsigned ckey_param; 156 int ckey_random_size; 157 158 struct l2fwd_key iv; 159 unsigned iv_param; 160 int iv_random_size; 161 162 struct rte_crypto_sym_xform auth_xform; 163 uint8_t akey_param; 164 int akey_random_size; 165 166 struct l2fwd_key aad; 167 unsigned aad_param; 168 int aad_random_size; 169 170 int digest_size; 171 172 uint16_t block_size; 173 char string_type[MAX_STR_LEN]; 174 175 uint64_t cryptodev_mask; 176 }; 177 178 /** l2fwd crypto lcore params */ 179 struct l2fwd_crypto_params { 180 uint8_t dev_id; 181 uint8_t qp_id; 182 183 unsigned digest_length; 184 unsigned block_size; 185 186 struct l2fwd_key iv; 187 struct l2fwd_key aad; 188 struct rte_cryptodev_sym_session *session; 189 190 uint8_t do_cipher; 191 uint8_t do_hash; 192 uint8_t hash_verify; 193 194 enum rte_crypto_cipher_algorithm cipher_algo; 195 enum rte_crypto_auth_algorithm auth_algo; 196 }; 197 198 /** lcore configuration */ 199 struct lcore_queue_conf { 200 unsigned nb_rx_ports; 201 unsigned rx_port_list[MAX_RX_QUEUE_PER_LCORE]; 202 203 unsigned nb_crypto_devs; 204 unsigned cryptodev_list[MAX_RX_QUEUE_PER_LCORE]; 205 206 struct op_buffer op_buf[RTE_CRYPTO_MAX_DEVS]; 207 struct pkt_buffer pkt_buf[RTE_MAX_ETHPORTS]; 208 } __rte_cache_aligned; 209 210 struct lcore_queue_conf lcore_queue_conf[RTE_MAX_LCORE]; 211 212 static const struct rte_eth_conf port_conf = { 213 .rxmode = { 214 .mq_mode = ETH_MQ_RX_NONE, 215 .max_rx_pkt_len = ETHER_MAX_LEN, 216 .split_hdr_size = 0, 217 .header_split = 0, /**< Header Split disabled */ 218 .hw_ip_checksum = 0, /**< IP checksum offload disabled */ 219 .hw_vlan_filter = 0, /**< VLAN filtering disabled */ 220 .jumbo_frame = 0, /**< Jumbo Frame Support disabled */ 221 .hw_strip_crc = 1, /**< CRC stripped by hardware */ 222 }, 223 .txmode = { 224 .mq_mode = ETH_MQ_TX_NONE, 225 }, 226 }; 227 228 struct rte_mempool *l2fwd_pktmbuf_pool; 229 struct rte_mempool *l2fwd_crypto_op_pool; 230 231 /* Per-port statistics struct */ 232 struct l2fwd_port_statistics { 233 uint64_t tx; 234 uint64_t rx; 235 236 uint64_t crypto_enqueued; 237 uint64_t crypto_dequeued; 238 239 uint64_t dropped; 240 } __rte_cache_aligned; 241 242 struct l2fwd_crypto_statistics { 243 uint64_t enqueued; 244 uint64_t dequeued; 245 246 uint64_t errors; 247 } __rte_cache_aligned; 248 249 struct l2fwd_port_statistics port_statistics[RTE_MAX_ETHPORTS]; 250 struct l2fwd_crypto_statistics crypto_statistics[RTE_CRYPTO_MAX_DEVS]; 251 252 /* A tsc-based timer responsible for triggering statistics printout */ 253 #define TIMER_MILLISECOND 2000000ULL /* around 1ms at 2 Ghz */ 254 #define MAX_TIMER_PERIOD 86400UL /* 1 day max */ 255 256 /* default period is 10 seconds */ 257 static int64_t timer_period = 10 * TIMER_MILLISECOND * 1000; 258 259 /* Print out statistics on packets dropped */ 260 static void 261 print_stats(void) 262 { 263 uint64_t total_packets_dropped, total_packets_tx, total_packets_rx; 264 uint64_t total_packets_enqueued, total_packets_dequeued, 265 total_packets_errors; 266 unsigned portid; 267 uint64_t cdevid; 268 269 total_packets_dropped = 0; 270 total_packets_tx = 0; 271 total_packets_rx = 0; 272 total_packets_enqueued = 0; 273 total_packets_dequeued = 0; 274 total_packets_errors = 0; 275 276 const char clr[] = { 27, '[', '2', 'J', '\0' }; 277 const char topLeft[] = { 27, '[', '1', ';', '1', 'H', '\0' }; 278 279 /* Clear screen and move to top left */ 280 printf("%s%s", clr, topLeft); 281 282 printf("\nPort statistics ===================================="); 283 284 for (portid = 0; portid < RTE_MAX_ETHPORTS; portid++) { 285 /* skip disabled ports */ 286 if ((l2fwd_enabled_port_mask & (1 << portid)) == 0) 287 continue; 288 printf("\nStatistics for port %u ------------------------------" 289 "\nPackets sent: %32"PRIu64 290 "\nPackets received: %28"PRIu64 291 "\nPackets dropped: %29"PRIu64, 292 portid, 293 port_statistics[portid].tx, 294 port_statistics[portid].rx, 295 port_statistics[portid].dropped); 296 297 total_packets_dropped += port_statistics[portid].dropped; 298 total_packets_tx += port_statistics[portid].tx; 299 total_packets_rx += port_statistics[portid].rx; 300 } 301 printf("\nCrypto statistics =================================="); 302 303 for (cdevid = 0; cdevid < RTE_CRYPTO_MAX_DEVS; cdevid++) { 304 /* skip disabled ports */ 305 if ((l2fwd_enabled_crypto_mask & (((uint64_t)1) << cdevid)) == 0) 306 continue; 307 printf("\nStatistics for cryptodev %"PRIu64 308 " -------------------------" 309 "\nPackets enqueued: %28"PRIu64 310 "\nPackets dequeued: %28"PRIu64 311 "\nPackets errors: %30"PRIu64, 312 cdevid, 313 crypto_statistics[cdevid].enqueued, 314 crypto_statistics[cdevid].dequeued, 315 crypto_statistics[cdevid].errors); 316 317 total_packets_enqueued += crypto_statistics[cdevid].enqueued; 318 total_packets_dequeued += crypto_statistics[cdevid].dequeued; 319 total_packets_errors += crypto_statistics[cdevid].errors; 320 } 321 printf("\nAggregate statistics ===============================" 322 "\nTotal packets received: %22"PRIu64 323 "\nTotal packets enqueued: %22"PRIu64 324 "\nTotal packets dequeued: %22"PRIu64 325 "\nTotal packets sent: %26"PRIu64 326 "\nTotal packets dropped: %23"PRIu64 327 "\nTotal packets crypto errors: %17"PRIu64, 328 total_packets_rx, 329 total_packets_enqueued, 330 total_packets_dequeued, 331 total_packets_tx, 332 total_packets_dropped, 333 total_packets_errors); 334 printf("\n====================================================\n"); 335 } 336 337 static int 338 l2fwd_crypto_send_burst(struct lcore_queue_conf *qconf, unsigned n, 339 struct l2fwd_crypto_params *cparams) 340 { 341 struct rte_crypto_op **op_buffer; 342 unsigned ret; 343 344 op_buffer = (struct rte_crypto_op **) 345 qconf->op_buf[cparams->dev_id].buffer; 346 347 ret = rte_cryptodev_enqueue_burst(cparams->dev_id, 348 cparams->qp_id, op_buffer, (uint16_t) n); 349 350 crypto_statistics[cparams->dev_id].enqueued += ret; 351 if (unlikely(ret < n)) { 352 crypto_statistics[cparams->dev_id].errors += (n - ret); 353 do { 354 rte_pktmbuf_free(op_buffer[ret]->sym->m_src); 355 rte_crypto_op_free(op_buffer[ret]); 356 } while (++ret < n); 357 } 358 359 return 0; 360 } 361 362 static int 363 l2fwd_crypto_enqueue(struct rte_crypto_op *op, 364 struct l2fwd_crypto_params *cparams) 365 { 366 unsigned lcore_id, len; 367 struct lcore_queue_conf *qconf; 368 369 lcore_id = rte_lcore_id(); 370 371 qconf = &lcore_queue_conf[lcore_id]; 372 len = qconf->op_buf[cparams->dev_id].len; 373 qconf->op_buf[cparams->dev_id].buffer[len] = op; 374 len++; 375 376 /* enough ops to be sent */ 377 if (len == MAX_PKT_BURST) { 378 l2fwd_crypto_send_burst(qconf, MAX_PKT_BURST, cparams); 379 len = 0; 380 } 381 382 qconf->op_buf[cparams->dev_id].len = len; 383 return 0; 384 } 385 386 static int 387 l2fwd_simple_crypto_enqueue(struct rte_mbuf *m, 388 struct rte_crypto_op *op, 389 struct l2fwd_crypto_params *cparams) 390 { 391 struct ether_hdr *eth_hdr; 392 struct ipv4_hdr *ip_hdr; 393 394 uint32_t ipdata_offset, data_len; 395 uint32_t pad_len = 0; 396 char *padding; 397 398 eth_hdr = rte_pktmbuf_mtod(m, struct ether_hdr *); 399 400 if (eth_hdr->ether_type != rte_cpu_to_be_16(ETHER_TYPE_IPv4)) 401 return -1; 402 403 ipdata_offset = sizeof(struct ether_hdr); 404 405 ip_hdr = (struct ipv4_hdr *)(rte_pktmbuf_mtod(m, char *) + 406 ipdata_offset); 407 408 ipdata_offset += (ip_hdr->version_ihl & IPV4_HDR_IHL_MASK) 409 * IPV4_IHL_MULTIPLIER; 410 411 412 /* Zero pad data to be crypto'd so it is block aligned */ 413 data_len = rte_pktmbuf_data_len(m) - ipdata_offset; 414 415 if (cparams->do_hash && cparams->hash_verify) 416 data_len -= cparams->digest_length; 417 418 if (cparams->do_cipher) { 419 /* 420 * Following algorithms are block cipher algorithms, 421 * and might need padding 422 */ 423 switch (cparams->cipher_algo) { 424 case RTE_CRYPTO_CIPHER_AES_CBC: 425 case RTE_CRYPTO_CIPHER_AES_ECB: 426 case RTE_CRYPTO_CIPHER_DES_CBC: 427 case RTE_CRYPTO_CIPHER_3DES_CBC: 428 case RTE_CRYPTO_CIPHER_3DES_ECB: 429 if (data_len % cparams->block_size) 430 pad_len = cparams->block_size - 431 (data_len % cparams->block_size); 432 break; 433 default: 434 pad_len = 0; 435 } 436 437 if (pad_len) { 438 padding = rte_pktmbuf_append(m, pad_len); 439 if (unlikely(!padding)) 440 return -1; 441 442 data_len += pad_len; 443 memset(padding, 0, pad_len); 444 } 445 } 446 447 /* Set crypto operation data parameters */ 448 rte_crypto_op_attach_sym_session(op, cparams->session); 449 450 if (cparams->do_hash) { 451 if (!cparams->hash_verify) { 452 /* Append space for digest to end of packet */ 453 op->sym->auth.digest.data = (uint8_t *)rte_pktmbuf_append(m, 454 cparams->digest_length); 455 } else { 456 op->sym->auth.digest.data = rte_pktmbuf_mtod(m, 457 uint8_t *) + ipdata_offset + data_len; 458 } 459 460 op->sym->auth.digest.phys_addr = rte_pktmbuf_mtophys_offset(m, 461 rte_pktmbuf_pkt_len(m) - cparams->digest_length); 462 op->sym->auth.digest.length = cparams->digest_length; 463 464 /* For wireless algorithms, offset/length must be in bits */ 465 if (cparams->auth_algo == RTE_CRYPTO_AUTH_SNOW3G_UIA2 || 466 cparams->auth_algo == RTE_CRYPTO_AUTH_KASUMI_F9 || 467 cparams->auth_algo == RTE_CRYPTO_AUTH_ZUC_EIA3) { 468 op->sym->auth.data.offset = ipdata_offset << 3; 469 op->sym->auth.data.length = data_len << 3; 470 } else { 471 op->sym->auth.data.offset = ipdata_offset; 472 op->sym->auth.data.length = data_len; 473 } 474 475 if (cparams->aad.length) { 476 op->sym->auth.aad.data = cparams->aad.data; 477 op->sym->auth.aad.phys_addr = cparams->aad.phys_addr; 478 op->sym->auth.aad.length = cparams->aad.length; 479 } else { 480 op->sym->auth.aad.data = NULL; 481 op->sym->auth.aad.phys_addr = 0; 482 op->sym->auth.aad.length = 0; 483 } 484 } 485 486 if (cparams->do_cipher) { 487 uint8_t *iv_ptr = rte_crypto_op_ctod_offset(op, uint8_t *, 488 IV_OFFSET); 489 /* Copy IV at the end of the crypto operation */ 490 rte_memcpy(iv_ptr, cparams->iv.data, cparams->iv.length); 491 492 op->sym->cipher.iv.offset = IV_OFFSET; 493 op->sym->cipher.iv.length = cparams->iv.length; 494 495 /* For wireless algorithms, offset/length must be in bits */ 496 if (cparams->cipher_algo == RTE_CRYPTO_CIPHER_SNOW3G_UEA2 || 497 cparams->cipher_algo == RTE_CRYPTO_CIPHER_KASUMI_F8 || 498 cparams->cipher_algo == RTE_CRYPTO_CIPHER_ZUC_EEA3) { 499 op->sym->cipher.data.offset = ipdata_offset << 3; 500 op->sym->cipher.data.length = data_len << 3; 501 } else { 502 op->sym->cipher.data.offset = ipdata_offset; 503 op->sym->cipher.data.length = data_len; 504 } 505 } 506 507 op->sym->m_src = m; 508 509 return l2fwd_crypto_enqueue(op, cparams); 510 } 511 512 513 /* Send the burst of packets on an output interface */ 514 static int 515 l2fwd_send_burst(struct lcore_queue_conf *qconf, unsigned n, 516 uint8_t port) 517 { 518 struct rte_mbuf **pkt_buffer; 519 unsigned ret; 520 521 pkt_buffer = (struct rte_mbuf **)qconf->pkt_buf[port].buffer; 522 523 ret = rte_eth_tx_burst(port, 0, pkt_buffer, (uint16_t)n); 524 port_statistics[port].tx += ret; 525 if (unlikely(ret < n)) { 526 port_statistics[port].dropped += (n - ret); 527 do { 528 rte_pktmbuf_free(pkt_buffer[ret]); 529 } while (++ret < n); 530 } 531 532 return 0; 533 } 534 535 /* Enqueue packets for TX and prepare them to be sent */ 536 static int 537 l2fwd_send_packet(struct rte_mbuf *m, uint8_t port) 538 { 539 unsigned lcore_id, len; 540 struct lcore_queue_conf *qconf; 541 542 lcore_id = rte_lcore_id(); 543 544 qconf = &lcore_queue_conf[lcore_id]; 545 len = qconf->pkt_buf[port].len; 546 qconf->pkt_buf[port].buffer[len] = m; 547 len++; 548 549 /* enough pkts to be sent */ 550 if (unlikely(len == MAX_PKT_BURST)) { 551 l2fwd_send_burst(qconf, MAX_PKT_BURST, port); 552 len = 0; 553 } 554 555 qconf->pkt_buf[port].len = len; 556 return 0; 557 } 558 559 static void 560 l2fwd_simple_forward(struct rte_mbuf *m, unsigned portid) 561 { 562 struct ether_hdr *eth; 563 void *tmp; 564 unsigned dst_port; 565 566 dst_port = l2fwd_dst_ports[portid]; 567 eth = rte_pktmbuf_mtod(m, struct ether_hdr *); 568 569 /* 02:00:00:00:00:xx */ 570 tmp = ð->d_addr.addr_bytes[0]; 571 *((uint64_t *)tmp) = 0x000000000002 + ((uint64_t)dst_port << 40); 572 573 /* src addr */ 574 ether_addr_copy(&l2fwd_ports_eth_addr[dst_port], ð->s_addr); 575 576 l2fwd_send_packet(m, (uint8_t) dst_port); 577 } 578 579 /** Generate random key */ 580 static void 581 generate_random_key(uint8_t *key, unsigned length) 582 { 583 int fd; 584 int ret; 585 586 fd = open("/dev/urandom", O_RDONLY); 587 if (fd < 0) 588 rte_exit(EXIT_FAILURE, "Failed to generate random key\n"); 589 590 ret = read(fd, key, length); 591 close(fd); 592 593 if (ret != (signed)length) 594 rte_exit(EXIT_FAILURE, "Failed to generate random key\n"); 595 } 596 597 static struct rte_cryptodev_sym_session * 598 initialize_crypto_session(struct l2fwd_crypto_options *options, 599 uint8_t cdev_id) 600 { 601 struct rte_crypto_sym_xform *first_xform; 602 603 if (options->xform_chain == L2FWD_CRYPTO_CIPHER_HASH) { 604 first_xform = &options->cipher_xform; 605 first_xform->next = &options->auth_xform; 606 } else if (options->xform_chain == L2FWD_CRYPTO_HASH_CIPHER) { 607 first_xform = &options->auth_xform; 608 first_xform->next = &options->cipher_xform; 609 } else if (options->xform_chain == L2FWD_CRYPTO_CIPHER_ONLY) { 610 first_xform = &options->cipher_xform; 611 } else { 612 first_xform = &options->auth_xform; 613 } 614 615 /* Setup Cipher Parameters */ 616 return rte_cryptodev_sym_session_create(cdev_id, first_xform); 617 } 618 619 static void 620 l2fwd_crypto_options_print(struct l2fwd_crypto_options *options); 621 622 /* main processing loop */ 623 static void 624 l2fwd_main_loop(struct l2fwd_crypto_options *options) 625 { 626 struct rte_mbuf *m, *pkts_burst[MAX_PKT_BURST]; 627 struct rte_crypto_op *ops_burst[MAX_PKT_BURST]; 628 629 unsigned lcore_id = rte_lcore_id(); 630 uint64_t prev_tsc = 0, diff_tsc, cur_tsc, timer_tsc = 0; 631 unsigned i, j, portid, nb_rx, len; 632 struct lcore_queue_conf *qconf = &lcore_queue_conf[lcore_id]; 633 const uint64_t drain_tsc = (rte_get_tsc_hz() + US_PER_S - 1) / 634 US_PER_S * BURST_TX_DRAIN_US; 635 struct l2fwd_crypto_params *cparams; 636 struct l2fwd_crypto_params port_cparams[qconf->nb_crypto_devs]; 637 638 if (qconf->nb_rx_ports == 0) { 639 RTE_LOG(INFO, L2FWD, "lcore %u has nothing to do\n", lcore_id); 640 return; 641 } 642 643 RTE_LOG(INFO, L2FWD, "entering main loop on lcore %u\n", lcore_id); 644 645 for (i = 0; i < qconf->nb_rx_ports; i++) { 646 647 portid = qconf->rx_port_list[i]; 648 RTE_LOG(INFO, L2FWD, " -- lcoreid=%u portid=%u\n", lcore_id, 649 portid); 650 } 651 652 for (i = 0; i < qconf->nb_crypto_devs; i++) { 653 port_cparams[i].do_cipher = 0; 654 port_cparams[i].do_hash = 0; 655 656 switch (options->xform_chain) { 657 case L2FWD_CRYPTO_CIPHER_HASH: 658 case L2FWD_CRYPTO_HASH_CIPHER: 659 port_cparams[i].do_cipher = 1; 660 port_cparams[i].do_hash = 1; 661 break; 662 case L2FWD_CRYPTO_HASH_ONLY: 663 port_cparams[i].do_hash = 1; 664 break; 665 case L2FWD_CRYPTO_CIPHER_ONLY: 666 port_cparams[i].do_cipher = 1; 667 break; 668 } 669 670 port_cparams[i].dev_id = qconf->cryptodev_list[i]; 671 port_cparams[i].qp_id = 0; 672 673 port_cparams[i].block_size = options->block_size; 674 675 if (port_cparams[i].do_hash) { 676 port_cparams[i].digest_length = 677 options->auth_xform.auth.digest_length; 678 if (options->auth_xform.auth.add_auth_data_length) { 679 port_cparams[i].aad.data = options->aad.data; 680 port_cparams[i].aad.length = 681 options->auth_xform.auth.add_auth_data_length; 682 port_cparams[i].aad.phys_addr = options->aad.phys_addr; 683 if (!options->aad_param) 684 generate_random_key(port_cparams[i].aad.data, 685 port_cparams[i].aad.length); 686 687 } else 688 port_cparams[i].aad.length = 0; 689 690 if (options->auth_xform.auth.op == RTE_CRYPTO_AUTH_OP_VERIFY) 691 port_cparams[i].hash_verify = 1; 692 else 693 port_cparams[i].hash_verify = 0; 694 695 port_cparams[i].auth_algo = options->auth_xform.auth.algo; 696 } 697 698 if (port_cparams[i].do_cipher) { 699 port_cparams[i].iv.data = options->iv.data; 700 port_cparams[i].iv.length = options->iv.length; 701 if (!options->iv_param) 702 generate_random_key(port_cparams[i].iv.data, 703 port_cparams[i].iv.length); 704 705 port_cparams[i].cipher_algo = options->cipher_xform.cipher.algo; 706 } 707 708 port_cparams[i].session = initialize_crypto_session(options, 709 port_cparams[i].dev_id); 710 711 if (port_cparams[i].session == NULL) 712 return; 713 RTE_LOG(INFO, L2FWD, " -- lcoreid=%u cryptoid=%u\n", lcore_id, 714 port_cparams[i].dev_id); 715 } 716 717 l2fwd_crypto_options_print(options); 718 719 /* 720 * Initialize previous tsc timestamp before the loop, 721 * to avoid showing the port statistics immediately, 722 * so user can see the crypto information. 723 */ 724 prev_tsc = rte_rdtsc(); 725 while (1) { 726 727 cur_tsc = rte_rdtsc(); 728 729 /* 730 * Crypto device/TX burst queue drain 731 */ 732 diff_tsc = cur_tsc - prev_tsc; 733 if (unlikely(diff_tsc > drain_tsc)) { 734 /* Enqueue all crypto ops remaining in buffers */ 735 for (i = 0; i < qconf->nb_crypto_devs; i++) { 736 cparams = &port_cparams[i]; 737 len = qconf->op_buf[cparams->dev_id].len; 738 l2fwd_crypto_send_burst(qconf, len, cparams); 739 qconf->op_buf[cparams->dev_id].len = 0; 740 } 741 /* Transmit all packets remaining in buffers */ 742 for (portid = 0; portid < RTE_MAX_ETHPORTS; portid++) { 743 if (qconf->pkt_buf[portid].len == 0) 744 continue; 745 l2fwd_send_burst(&lcore_queue_conf[lcore_id], 746 qconf->pkt_buf[portid].len, 747 (uint8_t) portid); 748 qconf->pkt_buf[portid].len = 0; 749 } 750 751 /* if timer is enabled */ 752 if (timer_period > 0) { 753 754 /* advance the timer */ 755 timer_tsc += diff_tsc; 756 757 /* if timer has reached its timeout */ 758 if (unlikely(timer_tsc >= 759 (uint64_t)timer_period)) { 760 761 /* do this only on master core */ 762 if (lcore_id == rte_get_master_lcore() 763 && options->refresh_period) { 764 print_stats(); 765 timer_tsc = 0; 766 } 767 } 768 } 769 770 prev_tsc = cur_tsc; 771 } 772 773 /* 774 * Read packet from RX queues 775 */ 776 for (i = 0; i < qconf->nb_rx_ports; i++) { 777 portid = qconf->rx_port_list[i]; 778 779 cparams = &port_cparams[i]; 780 781 nb_rx = rte_eth_rx_burst((uint8_t) portid, 0, 782 pkts_burst, MAX_PKT_BURST); 783 784 port_statistics[portid].rx += nb_rx; 785 786 if (nb_rx) { 787 /* 788 * If we can't allocate a crypto_ops, then drop 789 * the rest of the burst and dequeue and 790 * process the packets to free offload structs 791 */ 792 if (rte_crypto_op_bulk_alloc( 793 l2fwd_crypto_op_pool, 794 RTE_CRYPTO_OP_TYPE_SYMMETRIC, 795 ops_burst, nb_rx) != 796 nb_rx) { 797 for (j = 0; j < nb_rx; j++) 798 rte_pktmbuf_free(pkts_burst[j]); 799 800 nb_rx = 0; 801 } 802 803 /* Enqueue packets from Crypto device*/ 804 for (j = 0; j < nb_rx; j++) { 805 m = pkts_burst[j]; 806 807 l2fwd_simple_crypto_enqueue(m, 808 ops_burst[j], cparams); 809 } 810 } 811 812 /* Dequeue packets from Crypto device */ 813 do { 814 nb_rx = rte_cryptodev_dequeue_burst( 815 cparams->dev_id, cparams->qp_id, 816 ops_burst, MAX_PKT_BURST); 817 818 crypto_statistics[cparams->dev_id].dequeued += 819 nb_rx; 820 821 /* Forward crypto'd packets */ 822 for (j = 0; j < nb_rx; j++) { 823 m = ops_burst[j]->sym->m_src; 824 825 rte_crypto_op_free(ops_burst[j]); 826 l2fwd_simple_forward(m, portid); 827 } 828 } while (nb_rx == MAX_PKT_BURST); 829 } 830 } 831 } 832 833 static int 834 l2fwd_launch_one_lcore(void *arg) 835 { 836 l2fwd_main_loop((struct l2fwd_crypto_options *)arg); 837 return 0; 838 } 839 840 /* Display command line arguments usage */ 841 static void 842 l2fwd_crypto_usage(const char *prgname) 843 { 844 printf("%s [EAL options] --\n" 845 " -p PORTMASK: hexadecimal bitmask of ports to configure\n" 846 " -q NQ: number of queue (=ports) per lcore (default is 1)\n" 847 " -s manage all ports from single lcore\n" 848 " -T PERIOD: statistics will be refreshed each PERIOD seconds" 849 " (0 to disable, 10 default, 86400 maximum)\n" 850 851 " --cdev_type HW / SW / ANY\n" 852 " --chain HASH_CIPHER / CIPHER_HASH / CIPHER_ONLY /" 853 " HASH_ONLY\n" 854 855 " --cipher_algo ALGO\n" 856 " --cipher_op ENCRYPT / DECRYPT\n" 857 " --cipher_key KEY (bytes separated with \":\")\n" 858 " --cipher_key_random_size SIZE: size of cipher key when generated randomly\n" 859 " --iv IV (bytes separated with \":\")\n" 860 " --iv_random_size SIZE: size of IV when generated randomly\n" 861 862 " --auth_algo ALGO\n" 863 " --auth_op GENERATE / VERIFY\n" 864 " --auth_key KEY (bytes separated with \":\")\n" 865 " --auth_key_random_size SIZE: size of auth key when generated randomly\n" 866 " --aad AAD (bytes separated with \":\")\n" 867 " --aad_random_size SIZE: size of AAD when generated randomly\n" 868 " --digest_size SIZE: size of digest to be generated/verified\n" 869 870 " --sessionless\n" 871 " --cryptodev_mask MASK: hexadecimal bitmask of crypto devices to configure\n", 872 prgname); 873 } 874 875 /** Parse crypto device type command line argument */ 876 static int 877 parse_cryptodev_type(enum cdev_type *type, char *optarg) 878 { 879 if (strcmp("HW", optarg) == 0) { 880 *type = CDEV_TYPE_HW; 881 return 0; 882 } else if (strcmp("SW", optarg) == 0) { 883 *type = CDEV_TYPE_SW; 884 return 0; 885 } else if (strcmp("ANY", optarg) == 0) { 886 *type = CDEV_TYPE_ANY; 887 return 0; 888 } 889 890 return -1; 891 } 892 893 /** Parse crypto chain xform command line argument */ 894 static int 895 parse_crypto_opt_chain(struct l2fwd_crypto_options *options, char *optarg) 896 { 897 if (strcmp("CIPHER_HASH", optarg) == 0) { 898 options->xform_chain = L2FWD_CRYPTO_CIPHER_HASH; 899 return 0; 900 } else if (strcmp("HASH_CIPHER", optarg) == 0) { 901 options->xform_chain = L2FWD_CRYPTO_HASH_CIPHER; 902 return 0; 903 } else if (strcmp("CIPHER_ONLY", optarg) == 0) { 904 options->xform_chain = L2FWD_CRYPTO_CIPHER_ONLY; 905 return 0; 906 } else if (strcmp("HASH_ONLY", optarg) == 0) { 907 options->xform_chain = L2FWD_CRYPTO_HASH_ONLY; 908 return 0; 909 } 910 911 return -1; 912 } 913 914 /** Parse crypto cipher algo option command line argument */ 915 static int 916 parse_cipher_algo(enum rte_crypto_cipher_algorithm *algo, char *optarg) 917 { 918 919 if (rte_cryptodev_get_cipher_algo_enum(algo, optarg) < 0) { 920 RTE_LOG(ERR, USER1, "Cipher algorithm specified " 921 "not supported!\n"); 922 return -1; 923 } 924 925 return 0; 926 } 927 928 /** Parse crypto cipher operation command line argument */ 929 static int 930 parse_cipher_op(enum rte_crypto_cipher_operation *op, char *optarg) 931 { 932 if (strcmp("ENCRYPT", optarg) == 0) { 933 *op = RTE_CRYPTO_CIPHER_OP_ENCRYPT; 934 return 0; 935 } else if (strcmp("DECRYPT", optarg) == 0) { 936 *op = RTE_CRYPTO_CIPHER_OP_DECRYPT; 937 return 0; 938 } 939 940 printf("Cipher operation not supported!\n"); 941 return -1; 942 } 943 944 /** Parse crypto key command line argument */ 945 static int 946 parse_key(uint8_t *data, char *input_arg) 947 { 948 unsigned byte_count; 949 char *token; 950 951 for (byte_count = 0, token = strtok(input_arg, ":"); 952 (byte_count < MAX_KEY_SIZE) && (token != NULL); 953 token = strtok(NULL, ":")) { 954 955 int number = (int)strtol(token, NULL, 16); 956 957 if (errno == EINVAL || errno == ERANGE || number > 0xFF) 958 return -1; 959 960 data[byte_count++] = (uint8_t)number; 961 } 962 963 return byte_count; 964 } 965 966 /** Parse size param*/ 967 static int 968 parse_size(int *size, const char *q_arg) 969 { 970 char *end = NULL; 971 unsigned long n; 972 973 /* parse hexadecimal string */ 974 n = strtoul(q_arg, &end, 10); 975 if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0')) 976 n = 0; 977 978 if (n == 0) { 979 printf("invalid size\n"); 980 return -1; 981 } 982 983 *size = n; 984 return 0; 985 } 986 987 /** Parse crypto cipher operation command line argument */ 988 static int 989 parse_auth_algo(enum rte_crypto_auth_algorithm *algo, char *optarg) 990 { 991 if (rte_cryptodev_get_auth_algo_enum(algo, optarg) < 0) { 992 RTE_LOG(ERR, USER1, "Authentication algorithm specified " 993 "not supported!\n"); 994 return -1; 995 } 996 997 return 0; 998 } 999 1000 static int 1001 parse_auth_op(enum rte_crypto_auth_operation *op, char *optarg) 1002 { 1003 if (strcmp("VERIFY", optarg) == 0) { 1004 *op = RTE_CRYPTO_AUTH_OP_VERIFY; 1005 return 0; 1006 } else if (strcmp("GENERATE", optarg) == 0) { 1007 *op = RTE_CRYPTO_AUTH_OP_GENERATE; 1008 return 0; 1009 } 1010 1011 printf("Authentication operation specified not supported!\n"); 1012 return -1; 1013 } 1014 1015 static int 1016 parse_cryptodev_mask(struct l2fwd_crypto_options *options, 1017 const char *q_arg) 1018 { 1019 char *end = NULL; 1020 uint64_t pm; 1021 1022 /* parse hexadecimal string */ 1023 pm = strtoul(q_arg, &end, 16); 1024 if ((pm == '\0') || (end == NULL) || (*end != '\0')) 1025 pm = 0; 1026 1027 options->cryptodev_mask = pm; 1028 if (options->cryptodev_mask == 0) { 1029 printf("invalid cryptodev_mask specified\n"); 1030 return -1; 1031 } 1032 1033 return 0; 1034 } 1035 1036 /** Parse long options */ 1037 static int 1038 l2fwd_crypto_parse_args_long_options(struct l2fwd_crypto_options *options, 1039 struct option *lgopts, int option_index) 1040 { 1041 int retval; 1042 1043 if (strcmp(lgopts[option_index].name, "cdev_type") == 0) { 1044 retval = parse_cryptodev_type(&options->type, optarg); 1045 if (retval == 0) 1046 snprintf(options->string_type, MAX_STR_LEN, 1047 "%s", optarg); 1048 return retval; 1049 } 1050 1051 else if (strcmp(lgopts[option_index].name, "chain") == 0) 1052 return parse_crypto_opt_chain(options, optarg); 1053 1054 /* Cipher options */ 1055 else if (strcmp(lgopts[option_index].name, "cipher_algo") == 0) 1056 return parse_cipher_algo(&options->cipher_xform.cipher.algo, 1057 optarg); 1058 1059 else if (strcmp(lgopts[option_index].name, "cipher_op") == 0) 1060 return parse_cipher_op(&options->cipher_xform.cipher.op, 1061 optarg); 1062 1063 else if (strcmp(lgopts[option_index].name, "cipher_key") == 0) { 1064 options->ckey_param = 1; 1065 options->cipher_xform.cipher.key.length = 1066 parse_key(options->cipher_xform.cipher.key.data, optarg); 1067 if (options->cipher_xform.cipher.key.length > 0) 1068 return 0; 1069 else 1070 return -1; 1071 } 1072 1073 else if (strcmp(lgopts[option_index].name, "cipher_key_random_size") == 0) 1074 return parse_size(&options->ckey_random_size, optarg); 1075 1076 else if (strcmp(lgopts[option_index].name, "iv") == 0) { 1077 options->iv_param = 1; 1078 options->iv.length = 1079 parse_key(options->iv.data, optarg); 1080 if (options->iv.length > 0) 1081 return 0; 1082 else 1083 return -1; 1084 } 1085 1086 else if (strcmp(lgopts[option_index].name, "iv_random_size") == 0) 1087 return parse_size(&options->iv_random_size, optarg); 1088 1089 /* Authentication options */ 1090 else if (strcmp(lgopts[option_index].name, "auth_algo") == 0) { 1091 return parse_auth_algo(&options->auth_xform.auth.algo, 1092 optarg); 1093 } 1094 1095 else if (strcmp(lgopts[option_index].name, "auth_op") == 0) 1096 return parse_auth_op(&options->auth_xform.auth.op, 1097 optarg); 1098 1099 else if (strcmp(lgopts[option_index].name, "auth_key") == 0) { 1100 options->akey_param = 1; 1101 options->auth_xform.auth.key.length = 1102 parse_key(options->auth_xform.auth.key.data, optarg); 1103 if (options->auth_xform.auth.key.length > 0) 1104 return 0; 1105 else 1106 return -1; 1107 } 1108 1109 else if (strcmp(lgopts[option_index].name, "auth_key_random_size") == 0) { 1110 return parse_size(&options->akey_random_size, optarg); 1111 } 1112 1113 else if (strcmp(lgopts[option_index].name, "aad") == 0) { 1114 options->aad_param = 1; 1115 options->aad.length = 1116 parse_key(options->aad.data, optarg); 1117 if (options->aad.length > 0) 1118 return 0; 1119 else 1120 return -1; 1121 } 1122 1123 else if (strcmp(lgopts[option_index].name, "aad_random_size") == 0) { 1124 return parse_size(&options->aad_random_size, optarg); 1125 } 1126 1127 else if (strcmp(lgopts[option_index].name, "digest_size") == 0) { 1128 return parse_size(&options->digest_size, optarg); 1129 } 1130 1131 else if (strcmp(lgopts[option_index].name, "sessionless") == 0) { 1132 options->sessionless = 1; 1133 return 0; 1134 } 1135 1136 else if (strcmp(lgopts[option_index].name, "cryptodev_mask") == 0) 1137 return parse_cryptodev_mask(options, optarg); 1138 1139 return -1; 1140 } 1141 1142 /** Parse port mask */ 1143 static int 1144 l2fwd_crypto_parse_portmask(struct l2fwd_crypto_options *options, 1145 const char *q_arg) 1146 { 1147 char *end = NULL; 1148 unsigned long pm; 1149 1150 /* parse hexadecimal string */ 1151 pm = strtoul(q_arg, &end, 16); 1152 if ((pm == '\0') || (end == NULL) || (*end != '\0')) 1153 pm = 0; 1154 1155 options->portmask = pm; 1156 if (options->portmask == 0) { 1157 printf("invalid portmask specified\n"); 1158 return -1; 1159 } 1160 1161 return pm; 1162 } 1163 1164 /** Parse number of queues */ 1165 static int 1166 l2fwd_crypto_parse_nqueue(struct l2fwd_crypto_options *options, 1167 const char *q_arg) 1168 { 1169 char *end = NULL; 1170 unsigned long n; 1171 1172 /* parse hexadecimal string */ 1173 n = strtoul(q_arg, &end, 10); 1174 if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0')) 1175 n = 0; 1176 else if (n >= MAX_RX_QUEUE_PER_LCORE) 1177 n = 0; 1178 1179 options->nb_ports_per_lcore = n; 1180 if (options->nb_ports_per_lcore == 0) { 1181 printf("invalid number of ports selected\n"); 1182 return -1; 1183 } 1184 1185 return 0; 1186 } 1187 1188 /** Parse timer period */ 1189 static int 1190 l2fwd_crypto_parse_timer_period(struct l2fwd_crypto_options *options, 1191 const char *q_arg) 1192 { 1193 char *end = NULL; 1194 unsigned long n; 1195 1196 /* parse number string */ 1197 n = (unsigned)strtol(q_arg, &end, 10); 1198 if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0')) 1199 n = 0; 1200 1201 if (n >= MAX_TIMER_PERIOD) { 1202 printf("Warning refresh period specified %lu is greater than " 1203 "max value %lu! using max value", 1204 n, MAX_TIMER_PERIOD); 1205 n = MAX_TIMER_PERIOD; 1206 } 1207 1208 options->refresh_period = n * 1000 * TIMER_MILLISECOND; 1209 1210 return 0; 1211 } 1212 1213 /** Generate default options for application */ 1214 static void 1215 l2fwd_crypto_default_options(struct l2fwd_crypto_options *options) 1216 { 1217 options->portmask = 0xffffffff; 1218 options->nb_ports_per_lcore = 1; 1219 options->refresh_period = 10000; 1220 options->single_lcore = 0; 1221 options->sessionless = 0; 1222 1223 options->xform_chain = L2FWD_CRYPTO_CIPHER_HASH; 1224 1225 /* Cipher Data */ 1226 options->cipher_xform.type = RTE_CRYPTO_SYM_XFORM_CIPHER; 1227 options->cipher_xform.next = NULL; 1228 options->ckey_param = 0; 1229 options->ckey_random_size = -1; 1230 options->cipher_xform.cipher.key.length = 0; 1231 options->iv_param = 0; 1232 options->iv_random_size = -1; 1233 options->iv.length = 0; 1234 1235 options->cipher_xform.cipher.algo = RTE_CRYPTO_CIPHER_AES_CBC; 1236 options->cipher_xform.cipher.op = RTE_CRYPTO_CIPHER_OP_ENCRYPT; 1237 1238 /* Authentication Data */ 1239 options->auth_xform.type = RTE_CRYPTO_SYM_XFORM_AUTH; 1240 options->auth_xform.next = NULL; 1241 options->akey_param = 0; 1242 options->akey_random_size = -1; 1243 options->auth_xform.auth.key.length = 0; 1244 options->aad_param = 0; 1245 options->aad_random_size = -1; 1246 options->aad.length = 0; 1247 options->digest_size = -1; 1248 1249 options->auth_xform.auth.algo = RTE_CRYPTO_AUTH_SHA1_HMAC; 1250 options->auth_xform.auth.op = RTE_CRYPTO_AUTH_OP_GENERATE; 1251 1252 options->type = CDEV_TYPE_ANY; 1253 options->cryptodev_mask = UINT64_MAX; 1254 } 1255 1256 static void 1257 display_cipher_info(struct l2fwd_crypto_options *options) 1258 { 1259 printf("\n---- Cipher information ---\n"); 1260 printf("Algorithm: %s\n", 1261 rte_crypto_cipher_algorithm_strings[options->cipher_xform.cipher.algo]); 1262 rte_hexdump(stdout, "Cipher key:", 1263 options->cipher_xform.cipher.key.data, 1264 options->cipher_xform.cipher.key.length); 1265 rte_hexdump(stdout, "IV:", options->iv.data, options->iv.length); 1266 } 1267 1268 static void 1269 display_auth_info(struct l2fwd_crypto_options *options) 1270 { 1271 printf("\n---- Authentication information ---\n"); 1272 printf("Algorithm: %s\n", 1273 rte_crypto_auth_algorithm_strings[options->auth_xform.auth.algo]); 1274 rte_hexdump(stdout, "Auth key:", 1275 options->auth_xform.auth.key.data, 1276 options->auth_xform.auth.key.length); 1277 rte_hexdump(stdout, "AAD:", options->aad.data, options->aad.length); 1278 } 1279 1280 static void 1281 l2fwd_crypto_options_print(struct l2fwd_crypto_options *options) 1282 { 1283 char string_cipher_op[MAX_STR_LEN]; 1284 char string_auth_op[MAX_STR_LEN]; 1285 1286 if (options->cipher_xform.cipher.op == RTE_CRYPTO_CIPHER_OP_ENCRYPT) 1287 strcpy(string_cipher_op, "Encrypt"); 1288 else 1289 strcpy(string_cipher_op, "Decrypt"); 1290 1291 if (options->auth_xform.auth.op == RTE_CRYPTO_AUTH_OP_GENERATE) 1292 strcpy(string_auth_op, "Auth generate"); 1293 else 1294 strcpy(string_auth_op, "Auth verify"); 1295 1296 printf("Options:-\nn"); 1297 printf("portmask: %x\n", options->portmask); 1298 printf("ports per lcore: %u\n", options->nb_ports_per_lcore); 1299 printf("refresh period : %u\n", options->refresh_period); 1300 printf("single lcore mode: %s\n", 1301 options->single_lcore ? "enabled" : "disabled"); 1302 printf("stats_printing: %s\n", 1303 options->refresh_period == 0 ? "disabled" : "enabled"); 1304 1305 printf("sessionless crypto: %s\n", 1306 options->sessionless ? "enabled" : "disabled"); 1307 1308 if (options->ckey_param && (options->ckey_random_size != -1)) 1309 printf("Cipher key already parsed, ignoring size of random key\n"); 1310 1311 if (options->akey_param && (options->akey_random_size != -1)) 1312 printf("Auth key already parsed, ignoring size of random key\n"); 1313 1314 if (options->iv_param && (options->iv_random_size != -1)) 1315 printf("IV already parsed, ignoring size of random IV\n"); 1316 1317 if (options->aad_param && (options->aad_random_size != -1)) 1318 printf("AAD already parsed, ignoring size of random AAD\n"); 1319 1320 printf("\nCrypto chain: "); 1321 switch (options->xform_chain) { 1322 case L2FWD_CRYPTO_CIPHER_HASH: 1323 printf("Input --> %s --> %s --> Output\n", 1324 string_cipher_op, string_auth_op); 1325 display_cipher_info(options); 1326 display_auth_info(options); 1327 break; 1328 case L2FWD_CRYPTO_HASH_CIPHER: 1329 printf("Input --> %s --> %s --> Output\n", 1330 string_auth_op, string_cipher_op); 1331 display_cipher_info(options); 1332 display_auth_info(options); 1333 break; 1334 case L2FWD_CRYPTO_HASH_ONLY: 1335 printf("Input --> %s --> Output\n", string_auth_op); 1336 display_auth_info(options); 1337 break; 1338 case L2FWD_CRYPTO_CIPHER_ONLY: 1339 printf("Input --> %s --> Output\n", string_cipher_op); 1340 display_cipher_info(options); 1341 break; 1342 } 1343 } 1344 1345 /* Parse the argument given in the command line of the application */ 1346 static int 1347 l2fwd_crypto_parse_args(struct l2fwd_crypto_options *options, 1348 int argc, char **argv) 1349 { 1350 int opt, retval, option_index; 1351 char **argvopt = argv, *prgname = argv[0]; 1352 1353 static struct option lgopts[] = { 1354 { "sessionless", no_argument, 0, 0 }, 1355 1356 { "cdev_type", required_argument, 0, 0 }, 1357 { "chain", required_argument, 0, 0 }, 1358 1359 { "cipher_algo", required_argument, 0, 0 }, 1360 { "cipher_op", required_argument, 0, 0 }, 1361 { "cipher_key", required_argument, 0, 0 }, 1362 { "cipher_key_random_size", required_argument, 0, 0 }, 1363 1364 { "auth_algo", required_argument, 0, 0 }, 1365 { "auth_op", required_argument, 0, 0 }, 1366 { "auth_key", required_argument, 0, 0 }, 1367 { "auth_key_random_size", required_argument, 0, 0 }, 1368 1369 { "iv", required_argument, 0, 0 }, 1370 { "iv_random_size", required_argument, 0, 0 }, 1371 { "aad", required_argument, 0, 0 }, 1372 { "aad_random_size", required_argument, 0, 0 }, 1373 { "digest_size", required_argument, 0, 0 }, 1374 1375 { "sessionless", no_argument, 0, 0 }, 1376 { "cryptodev_mask", required_argument, 0, 0}, 1377 1378 { NULL, 0, 0, 0 } 1379 }; 1380 1381 l2fwd_crypto_default_options(options); 1382 1383 while ((opt = getopt_long(argc, argvopt, "p:q:sT:", lgopts, 1384 &option_index)) != EOF) { 1385 switch (opt) { 1386 /* long options */ 1387 case 0: 1388 retval = l2fwd_crypto_parse_args_long_options(options, 1389 lgopts, option_index); 1390 if (retval < 0) { 1391 l2fwd_crypto_usage(prgname); 1392 return -1; 1393 } 1394 break; 1395 1396 /* portmask */ 1397 case 'p': 1398 retval = l2fwd_crypto_parse_portmask(options, optarg); 1399 if (retval < 0) { 1400 l2fwd_crypto_usage(prgname); 1401 return -1; 1402 } 1403 break; 1404 1405 /* nqueue */ 1406 case 'q': 1407 retval = l2fwd_crypto_parse_nqueue(options, optarg); 1408 if (retval < 0) { 1409 l2fwd_crypto_usage(prgname); 1410 return -1; 1411 } 1412 break; 1413 1414 /* single */ 1415 case 's': 1416 options->single_lcore = 1; 1417 1418 break; 1419 1420 /* timer period */ 1421 case 'T': 1422 retval = l2fwd_crypto_parse_timer_period(options, 1423 optarg); 1424 if (retval < 0) { 1425 l2fwd_crypto_usage(prgname); 1426 return -1; 1427 } 1428 break; 1429 1430 default: 1431 l2fwd_crypto_usage(prgname); 1432 return -1; 1433 } 1434 } 1435 1436 1437 if (optind >= 0) 1438 argv[optind-1] = prgname; 1439 1440 retval = optind-1; 1441 optind = 1; /* reset getopt lib */ 1442 1443 return retval; 1444 } 1445 1446 /* Check the link status of all ports in up to 9s, and print them finally */ 1447 static void 1448 check_all_ports_link_status(uint8_t port_num, uint32_t port_mask) 1449 { 1450 #define CHECK_INTERVAL 100 /* 100ms */ 1451 #define MAX_CHECK_TIME 90 /* 9s (90 * 100ms) in total */ 1452 uint8_t portid, count, all_ports_up, print_flag = 0; 1453 struct rte_eth_link link; 1454 1455 printf("\nChecking link status"); 1456 fflush(stdout); 1457 for (count = 0; count <= MAX_CHECK_TIME; count++) { 1458 all_ports_up = 1; 1459 for (portid = 0; portid < port_num; portid++) { 1460 if ((port_mask & (1 << portid)) == 0) 1461 continue; 1462 memset(&link, 0, sizeof(link)); 1463 rte_eth_link_get_nowait(portid, &link); 1464 /* print link status if flag set */ 1465 if (print_flag == 1) { 1466 if (link.link_status) 1467 printf("Port %d Link Up - speed %u " 1468 "Mbps - %s\n", (uint8_t)portid, 1469 (unsigned)link.link_speed, 1470 (link.link_duplex == ETH_LINK_FULL_DUPLEX) ? 1471 ("full-duplex") : ("half-duplex\n")); 1472 else 1473 printf("Port %d Link Down\n", 1474 (uint8_t)portid); 1475 continue; 1476 } 1477 /* clear all_ports_up flag if any link down */ 1478 if (link.link_status == ETH_LINK_DOWN) { 1479 all_ports_up = 0; 1480 break; 1481 } 1482 } 1483 /* after finally printing all link status, get out */ 1484 if (print_flag == 1) 1485 break; 1486 1487 if (all_ports_up == 0) { 1488 printf("."); 1489 fflush(stdout); 1490 rte_delay_ms(CHECK_INTERVAL); 1491 } 1492 1493 /* set the print_flag if all ports up or timeout */ 1494 if (all_ports_up == 1 || count == (MAX_CHECK_TIME - 1)) { 1495 print_flag = 1; 1496 printf("done\n"); 1497 } 1498 } 1499 } 1500 1501 /* Check if device has to be HW/SW or any */ 1502 static int 1503 check_type(struct l2fwd_crypto_options *options, struct rte_cryptodev_info *dev_info) 1504 { 1505 if (options->type == CDEV_TYPE_HW && 1506 (dev_info->feature_flags & RTE_CRYPTODEV_FF_HW_ACCELERATED)) 1507 return 0; 1508 if (options->type == CDEV_TYPE_SW && 1509 !(dev_info->feature_flags & RTE_CRYPTODEV_FF_HW_ACCELERATED)) 1510 return 0; 1511 if (options->type == CDEV_TYPE_ANY) 1512 return 0; 1513 1514 return -1; 1515 } 1516 1517 /* Check if the device is enabled by cryptodev_mask */ 1518 static int 1519 check_cryptodev_mask(struct l2fwd_crypto_options *options, 1520 uint8_t cdev_id) 1521 { 1522 if (options->cryptodev_mask & (1 << cdev_id)) 1523 return 0; 1524 1525 return -1; 1526 } 1527 1528 static inline int 1529 check_supported_size(uint16_t length, uint16_t min, uint16_t max, 1530 uint16_t increment) 1531 { 1532 uint16_t supp_size; 1533 1534 /* Single value */ 1535 if (increment == 0) { 1536 if (length == min) 1537 return 0; 1538 else 1539 return -1; 1540 } 1541 1542 /* Range of values */ 1543 for (supp_size = min; supp_size <= max; supp_size += increment) { 1544 if (length == supp_size) 1545 return 0; 1546 } 1547 1548 return -1; 1549 } 1550 static int 1551 initialize_cryptodevs(struct l2fwd_crypto_options *options, unsigned nb_ports, 1552 uint8_t *enabled_cdevs) 1553 { 1554 unsigned i, cdev_id, cdev_count, enabled_cdev_count = 0; 1555 const struct rte_cryptodev_capabilities *cap; 1556 enum rte_crypto_auth_algorithm cap_auth_algo; 1557 enum rte_crypto_auth_algorithm opt_auth_algo; 1558 enum rte_crypto_cipher_algorithm cap_cipher_algo; 1559 enum rte_crypto_cipher_algorithm opt_cipher_algo; 1560 int retval; 1561 1562 cdev_count = rte_cryptodev_count(); 1563 if (cdev_count == 0) { 1564 printf("No crypto devices available\n"); 1565 return -1; 1566 } 1567 1568 for (cdev_id = 0; cdev_id < cdev_count && enabled_cdev_count < nb_ports; 1569 cdev_id++) { 1570 struct rte_cryptodev_qp_conf qp_conf; 1571 struct rte_cryptodev_info dev_info; 1572 1573 struct rte_cryptodev_config conf = { 1574 .nb_queue_pairs = 1, 1575 .socket_id = SOCKET_ID_ANY, 1576 .session_mp = { 1577 .nb_objs = 2048, 1578 .cache_size = 64 1579 } 1580 }; 1581 1582 if (check_cryptodev_mask(options, (uint8_t)cdev_id)) 1583 continue; 1584 1585 rte_cryptodev_info_get(cdev_id, &dev_info); 1586 1587 /* Set cipher parameters */ 1588 if (options->xform_chain == L2FWD_CRYPTO_CIPHER_HASH || 1589 options->xform_chain == L2FWD_CRYPTO_HASH_CIPHER || 1590 options->xform_chain == L2FWD_CRYPTO_CIPHER_ONLY) { 1591 /* Check if device supports cipher algo */ 1592 i = 0; 1593 opt_cipher_algo = options->cipher_xform.cipher.algo; 1594 cap = &dev_info.capabilities[i]; 1595 while (cap->op != RTE_CRYPTO_OP_TYPE_UNDEFINED) { 1596 cap_cipher_algo = cap->sym.cipher.algo; 1597 if (cap->sym.xform_type == 1598 RTE_CRYPTO_SYM_XFORM_CIPHER) { 1599 if (cap_cipher_algo == opt_cipher_algo) { 1600 if (check_type(options, &dev_info) == 0) 1601 break; 1602 } 1603 } 1604 cap = &dev_info.capabilities[++i]; 1605 } 1606 1607 if (cap->op == RTE_CRYPTO_OP_TYPE_UNDEFINED) { 1608 printf("Algorithm %s not supported by cryptodev %u" 1609 " or device not of preferred type (%s)\n", 1610 rte_crypto_cipher_algorithm_strings[opt_cipher_algo], 1611 cdev_id, 1612 options->string_type); 1613 continue; 1614 } 1615 1616 options->block_size = cap->sym.cipher.block_size; 1617 /* 1618 * Check if length of provided IV is supported 1619 * by the algorithm chosen. 1620 */ 1621 if (options->iv_param) { 1622 if (check_supported_size(options->iv.length, 1623 cap->sym.cipher.iv_size.min, 1624 cap->sym.cipher.iv_size.max, 1625 cap->sym.cipher.iv_size.increment) 1626 != 0) { 1627 printf("Unsupported IV length\n"); 1628 return -1; 1629 } 1630 /* 1631 * Check if length of IV to be randomly generated 1632 * is supported by the algorithm chosen. 1633 */ 1634 } else if (options->iv_random_size != -1) { 1635 if (check_supported_size(options->iv_random_size, 1636 cap->sym.cipher.iv_size.min, 1637 cap->sym.cipher.iv_size.max, 1638 cap->sym.cipher.iv_size.increment) 1639 != 0) { 1640 printf("Unsupported IV length\n"); 1641 return -1; 1642 } 1643 options->iv.length = options->iv_random_size; 1644 /* No size provided, use minimum size. */ 1645 } else 1646 options->iv.length = cap->sym.cipher.iv_size.min; 1647 1648 /* 1649 * Check if length of provided cipher key is supported 1650 * by the algorithm chosen. 1651 */ 1652 if (options->ckey_param) { 1653 if (check_supported_size( 1654 options->cipher_xform.cipher.key.length, 1655 cap->sym.cipher.key_size.min, 1656 cap->sym.cipher.key_size.max, 1657 cap->sym.cipher.key_size.increment) 1658 != 0) { 1659 printf("Unsupported cipher key length\n"); 1660 return -1; 1661 } 1662 /* 1663 * Check if length of the cipher key to be randomly generated 1664 * is supported by the algorithm chosen. 1665 */ 1666 } else if (options->ckey_random_size != -1) { 1667 if (check_supported_size(options->ckey_random_size, 1668 cap->sym.cipher.key_size.min, 1669 cap->sym.cipher.key_size.max, 1670 cap->sym.cipher.key_size.increment) 1671 != 0) { 1672 printf("Unsupported cipher key length\n"); 1673 return -1; 1674 } 1675 options->cipher_xform.cipher.key.length = 1676 options->ckey_random_size; 1677 /* No size provided, use minimum size. */ 1678 } else 1679 options->cipher_xform.cipher.key.length = 1680 cap->sym.cipher.key_size.min; 1681 1682 if (!options->ckey_param) 1683 generate_random_key( 1684 options->cipher_xform.cipher.key.data, 1685 options->cipher_xform.cipher.key.length); 1686 1687 } 1688 1689 /* Set auth parameters */ 1690 if (options->xform_chain == L2FWD_CRYPTO_CIPHER_HASH || 1691 options->xform_chain == L2FWD_CRYPTO_HASH_CIPHER || 1692 options->xform_chain == L2FWD_CRYPTO_HASH_ONLY) { 1693 /* Check if device supports auth algo */ 1694 i = 0; 1695 opt_auth_algo = options->auth_xform.auth.algo; 1696 cap = &dev_info.capabilities[i]; 1697 while (cap->op != RTE_CRYPTO_OP_TYPE_UNDEFINED) { 1698 cap_auth_algo = cap->sym.auth.algo; 1699 if ((cap->sym.xform_type == RTE_CRYPTO_SYM_XFORM_AUTH) && 1700 (cap_auth_algo == opt_auth_algo) && 1701 (check_type(options, &dev_info) == 0)) { 1702 break; 1703 } 1704 cap = &dev_info.capabilities[++i]; 1705 } 1706 1707 if (cap->op == RTE_CRYPTO_OP_TYPE_UNDEFINED) { 1708 printf("Algorithm %s not supported by cryptodev %u" 1709 " or device not of preferred type (%s)\n", 1710 rte_crypto_auth_algorithm_strings[opt_auth_algo], 1711 cdev_id, 1712 options->string_type); 1713 continue; 1714 } 1715 1716 /* 1717 * Check if length of provided AAD is supported 1718 * by the algorithm chosen. 1719 */ 1720 if (options->aad_param) { 1721 if (check_supported_size(options->aad.length, 1722 cap->sym.auth.aad_size.min, 1723 cap->sym.auth.aad_size.max, 1724 cap->sym.auth.aad_size.increment) 1725 != 0) { 1726 printf("Unsupported AAD length\n"); 1727 return -1; 1728 } 1729 /* 1730 * Check if length of AAD to be randomly generated 1731 * is supported by the algorithm chosen. 1732 */ 1733 } else if (options->aad_random_size != -1) { 1734 if (check_supported_size(options->aad_random_size, 1735 cap->sym.auth.aad_size.min, 1736 cap->sym.auth.aad_size.max, 1737 cap->sym.auth.aad_size.increment) 1738 != 0) { 1739 printf("Unsupported AAD length\n"); 1740 return -1; 1741 } 1742 options->aad.length = options->aad_random_size; 1743 /* No size provided, use minimum size. */ 1744 } else 1745 options->aad.length = cap->sym.auth.aad_size.min; 1746 1747 options->auth_xform.auth.add_auth_data_length = 1748 options->aad.length; 1749 1750 /* 1751 * Check if length of provided auth key is supported 1752 * by the algorithm chosen. 1753 */ 1754 if (options->akey_param) { 1755 if (check_supported_size( 1756 options->auth_xform.auth.key.length, 1757 cap->sym.auth.key_size.min, 1758 cap->sym.auth.key_size.max, 1759 cap->sym.auth.key_size.increment) 1760 != 0) { 1761 printf("Unsupported auth key length\n"); 1762 return -1; 1763 } 1764 /* 1765 * Check if length of the auth key to be randomly generated 1766 * is supported by the algorithm chosen. 1767 */ 1768 } else if (options->akey_random_size != -1) { 1769 if (check_supported_size(options->akey_random_size, 1770 cap->sym.auth.key_size.min, 1771 cap->sym.auth.key_size.max, 1772 cap->sym.auth.key_size.increment) 1773 != 0) { 1774 printf("Unsupported auth key length\n"); 1775 return -1; 1776 } 1777 options->auth_xform.auth.key.length = 1778 options->akey_random_size; 1779 /* No size provided, use minimum size. */ 1780 } else 1781 options->auth_xform.auth.key.length = 1782 cap->sym.auth.key_size.min; 1783 1784 if (!options->akey_param) 1785 generate_random_key( 1786 options->auth_xform.auth.key.data, 1787 options->auth_xform.auth.key.length); 1788 1789 /* Check if digest size is supported by the algorithm. */ 1790 if (options->digest_size != -1) { 1791 if (check_supported_size(options->digest_size, 1792 cap->sym.auth.digest_size.min, 1793 cap->sym.auth.digest_size.max, 1794 cap->sym.auth.digest_size.increment) 1795 != 0) { 1796 printf("Unsupported digest length\n"); 1797 return -1; 1798 } 1799 options->auth_xform.auth.digest_length = 1800 options->digest_size; 1801 /* No size provided, use minimum size. */ 1802 } else 1803 options->auth_xform.auth.digest_length = 1804 cap->sym.auth.digest_size.min; 1805 } 1806 1807 retval = rte_cryptodev_configure(cdev_id, &conf); 1808 if (retval < 0) { 1809 printf("Failed to configure cryptodev %u", cdev_id); 1810 return -1; 1811 } 1812 1813 qp_conf.nb_descriptors = 2048; 1814 1815 retval = rte_cryptodev_queue_pair_setup(cdev_id, 0, &qp_conf, 1816 SOCKET_ID_ANY); 1817 if (retval < 0) { 1818 printf("Failed to setup queue pair %u on cryptodev %u", 1819 0, cdev_id); 1820 return -1; 1821 } 1822 1823 retval = rte_cryptodev_start(cdev_id); 1824 if (retval < 0) { 1825 printf("Failed to start device %u: error %d\n", 1826 cdev_id, retval); 1827 return -1; 1828 } 1829 1830 l2fwd_enabled_crypto_mask |= (((uint64_t)1) << cdev_id); 1831 1832 enabled_cdevs[cdev_id] = 1; 1833 enabled_cdev_count++; 1834 } 1835 1836 return enabled_cdev_count; 1837 } 1838 1839 static int 1840 initialize_ports(struct l2fwd_crypto_options *options) 1841 { 1842 uint8_t last_portid, portid; 1843 unsigned enabled_portcount = 0; 1844 unsigned nb_ports = rte_eth_dev_count(); 1845 1846 if (nb_ports == 0) { 1847 printf("No Ethernet ports - bye\n"); 1848 return -1; 1849 } 1850 1851 /* Reset l2fwd_dst_ports */ 1852 for (portid = 0; portid < RTE_MAX_ETHPORTS; portid++) 1853 l2fwd_dst_ports[portid] = 0; 1854 1855 for (last_portid = 0, portid = 0; portid < nb_ports; portid++) { 1856 int retval; 1857 1858 /* Skip ports that are not enabled */ 1859 if ((options->portmask & (1 << portid)) == 0) 1860 continue; 1861 1862 /* init port */ 1863 printf("Initializing port %u... ", (unsigned) portid); 1864 fflush(stdout); 1865 retval = rte_eth_dev_configure(portid, 1, 1, &port_conf); 1866 if (retval < 0) { 1867 printf("Cannot configure device: err=%d, port=%u\n", 1868 retval, (unsigned) portid); 1869 return -1; 1870 } 1871 1872 /* init one RX queue */ 1873 fflush(stdout); 1874 retval = rte_eth_rx_queue_setup(portid, 0, nb_rxd, 1875 rte_eth_dev_socket_id(portid), 1876 NULL, l2fwd_pktmbuf_pool); 1877 if (retval < 0) { 1878 printf("rte_eth_rx_queue_setup:err=%d, port=%u\n", 1879 retval, (unsigned) portid); 1880 return -1; 1881 } 1882 1883 /* init one TX queue on each port */ 1884 fflush(stdout); 1885 retval = rte_eth_tx_queue_setup(portid, 0, nb_txd, 1886 rte_eth_dev_socket_id(portid), 1887 NULL); 1888 if (retval < 0) { 1889 printf("rte_eth_tx_queue_setup:err=%d, port=%u\n", 1890 retval, (unsigned) portid); 1891 1892 return -1; 1893 } 1894 1895 /* Start device */ 1896 retval = rte_eth_dev_start(portid); 1897 if (retval < 0) { 1898 printf("rte_eth_dev_start:err=%d, port=%u\n", 1899 retval, (unsigned) portid); 1900 return -1; 1901 } 1902 1903 rte_eth_promiscuous_enable(portid); 1904 1905 rte_eth_macaddr_get(portid, &l2fwd_ports_eth_addr[portid]); 1906 1907 printf("Port %u, MAC address: %02X:%02X:%02X:%02X:%02X:%02X\n\n", 1908 (unsigned) portid, 1909 l2fwd_ports_eth_addr[portid].addr_bytes[0], 1910 l2fwd_ports_eth_addr[portid].addr_bytes[1], 1911 l2fwd_ports_eth_addr[portid].addr_bytes[2], 1912 l2fwd_ports_eth_addr[portid].addr_bytes[3], 1913 l2fwd_ports_eth_addr[portid].addr_bytes[4], 1914 l2fwd_ports_eth_addr[portid].addr_bytes[5]); 1915 1916 /* initialize port stats */ 1917 memset(&port_statistics, 0, sizeof(port_statistics)); 1918 1919 /* Setup port forwarding table */ 1920 if (enabled_portcount % 2) { 1921 l2fwd_dst_ports[portid] = last_portid; 1922 l2fwd_dst_ports[last_portid] = portid; 1923 } else { 1924 last_portid = portid; 1925 } 1926 1927 l2fwd_enabled_port_mask |= (1 << portid); 1928 enabled_portcount++; 1929 } 1930 1931 if (enabled_portcount == 1) { 1932 l2fwd_dst_ports[last_portid] = last_portid; 1933 } else if (enabled_portcount % 2) { 1934 printf("odd number of ports in portmask- bye\n"); 1935 return -1; 1936 } 1937 1938 check_all_ports_link_status(nb_ports, l2fwd_enabled_port_mask); 1939 1940 return enabled_portcount; 1941 } 1942 1943 static void 1944 reserve_key_memory(struct l2fwd_crypto_options *options) 1945 { 1946 options->cipher_xform.cipher.key.data = rte_malloc("crypto key", 1947 MAX_KEY_SIZE, 0); 1948 if (options->cipher_xform.cipher.key.data == NULL) 1949 rte_exit(EXIT_FAILURE, "Failed to allocate memory for cipher key"); 1950 1951 1952 options->auth_xform.auth.key.data = rte_malloc("auth key", 1953 MAX_KEY_SIZE, 0); 1954 if (options->auth_xform.auth.key.data == NULL) 1955 rte_exit(EXIT_FAILURE, "Failed to allocate memory for auth key"); 1956 1957 options->iv.data = rte_malloc("iv", MAX_KEY_SIZE, 0); 1958 if (options->iv.data == NULL) 1959 rte_exit(EXIT_FAILURE, "Failed to allocate memory for IV"); 1960 1961 options->aad.data = rte_malloc("aad", MAX_KEY_SIZE, 0); 1962 if (options->aad.data == NULL) 1963 rte_exit(EXIT_FAILURE, "Failed to allocate memory for AAD"); 1964 options->aad.phys_addr = rte_malloc_virt2phy(options->aad.data); 1965 } 1966 1967 int 1968 main(int argc, char **argv) 1969 { 1970 struct lcore_queue_conf *qconf; 1971 struct l2fwd_crypto_options options; 1972 1973 uint8_t nb_ports, nb_cryptodevs, portid, cdev_id; 1974 unsigned lcore_id, rx_lcore_id; 1975 int ret, enabled_cdevcount, enabled_portcount; 1976 uint8_t enabled_cdevs[RTE_CRYPTO_MAX_DEVS] = {0}; 1977 1978 /* init EAL */ 1979 ret = rte_eal_init(argc, argv); 1980 if (ret < 0) 1981 rte_exit(EXIT_FAILURE, "Invalid EAL arguments\n"); 1982 argc -= ret; 1983 argv += ret; 1984 1985 /* reserve memory for Cipher/Auth key and IV */ 1986 reserve_key_memory(&options); 1987 1988 /* parse application arguments (after the EAL ones) */ 1989 ret = l2fwd_crypto_parse_args(&options, argc, argv); 1990 if (ret < 0) 1991 rte_exit(EXIT_FAILURE, "Invalid L2FWD-CRYPTO arguments\n"); 1992 1993 /* create the mbuf pool */ 1994 l2fwd_pktmbuf_pool = rte_pktmbuf_pool_create("mbuf_pool", NB_MBUF, 512, 1995 sizeof(struct rte_crypto_op), 1996 RTE_MBUF_DEFAULT_BUF_SIZE, rte_socket_id()); 1997 if (l2fwd_pktmbuf_pool == NULL) 1998 rte_exit(EXIT_FAILURE, "Cannot create mbuf pool\n"); 1999 2000 /* create crypto op pool */ 2001 l2fwd_crypto_op_pool = rte_crypto_op_pool_create("crypto_op_pool", 2002 RTE_CRYPTO_OP_TYPE_SYMMETRIC, NB_MBUF, 128, MAXIMUM_IV_LENGTH, 2003 rte_socket_id()); 2004 if (l2fwd_crypto_op_pool == NULL) 2005 rte_exit(EXIT_FAILURE, "Cannot create crypto op pool\n"); 2006 2007 /* Enable Ethernet ports */ 2008 enabled_portcount = initialize_ports(&options); 2009 if (enabled_portcount < 1) 2010 rte_exit(EXIT_FAILURE, "Failed to initial Ethernet ports\n"); 2011 2012 nb_ports = rte_eth_dev_count(); 2013 /* Initialize the port/queue configuration of each logical core */ 2014 for (rx_lcore_id = 0, qconf = NULL, portid = 0; 2015 portid < nb_ports; portid++) { 2016 2017 /* skip ports that are not enabled */ 2018 if ((options.portmask & (1 << portid)) == 0) 2019 continue; 2020 2021 if (options.single_lcore && qconf == NULL) { 2022 while (rte_lcore_is_enabled(rx_lcore_id) == 0) { 2023 rx_lcore_id++; 2024 if (rx_lcore_id >= RTE_MAX_LCORE) 2025 rte_exit(EXIT_FAILURE, 2026 "Not enough cores\n"); 2027 } 2028 } else if (!options.single_lcore) { 2029 /* get the lcore_id for this port */ 2030 while (rte_lcore_is_enabled(rx_lcore_id) == 0 || 2031 lcore_queue_conf[rx_lcore_id].nb_rx_ports == 2032 options.nb_ports_per_lcore) { 2033 rx_lcore_id++; 2034 if (rx_lcore_id >= RTE_MAX_LCORE) 2035 rte_exit(EXIT_FAILURE, 2036 "Not enough cores\n"); 2037 } 2038 } 2039 2040 /* Assigned a new logical core in the loop above. */ 2041 if (qconf != &lcore_queue_conf[rx_lcore_id]) 2042 qconf = &lcore_queue_conf[rx_lcore_id]; 2043 2044 qconf->rx_port_list[qconf->nb_rx_ports] = portid; 2045 qconf->nb_rx_ports++; 2046 2047 printf("Lcore %u: RX port %u\n", rx_lcore_id, (unsigned)portid); 2048 } 2049 2050 /* Enable Crypto devices */ 2051 enabled_cdevcount = initialize_cryptodevs(&options, enabled_portcount, 2052 enabled_cdevs); 2053 if (enabled_cdevcount < 0) 2054 rte_exit(EXIT_FAILURE, "Failed to initialize crypto devices\n"); 2055 2056 if (enabled_cdevcount < enabled_portcount) 2057 rte_exit(EXIT_FAILURE, "Number of capable crypto devices (%d) " 2058 "has to be more or equal to number of ports (%d)\n", 2059 enabled_cdevcount, enabled_portcount); 2060 2061 nb_cryptodevs = rte_cryptodev_count(); 2062 2063 /* Initialize the port/cryptodev configuration of each logical core */ 2064 for (rx_lcore_id = 0, qconf = NULL, cdev_id = 0; 2065 cdev_id < nb_cryptodevs && enabled_cdevcount; 2066 cdev_id++) { 2067 /* Crypto op not supported by crypto device */ 2068 if (!enabled_cdevs[cdev_id]) 2069 continue; 2070 2071 if (options.single_lcore && qconf == NULL) { 2072 while (rte_lcore_is_enabled(rx_lcore_id) == 0) { 2073 rx_lcore_id++; 2074 if (rx_lcore_id >= RTE_MAX_LCORE) 2075 rte_exit(EXIT_FAILURE, 2076 "Not enough cores\n"); 2077 } 2078 } else if (!options.single_lcore) { 2079 /* get the lcore_id for this port */ 2080 while (rte_lcore_is_enabled(rx_lcore_id) == 0 || 2081 lcore_queue_conf[rx_lcore_id].nb_crypto_devs == 2082 options.nb_ports_per_lcore) { 2083 rx_lcore_id++; 2084 if (rx_lcore_id >= RTE_MAX_LCORE) 2085 rte_exit(EXIT_FAILURE, 2086 "Not enough cores\n"); 2087 } 2088 } 2089 2090 /* Assigned a new logical core in the loop above. */ 2091 if (qconf != &lcore_queue_conf[rx_lcore_id]) 2092 qconf = &lcore_queue_conf[rx_lcore_id]; 2093 2094 qconf->cryptodev_list[qconf->nb_crypto_devs] = cdev_id; 2095 qconf->nb_crypto_devs++; 2096 2097 enabled_cdevcount--; 2098 2099 printf("Lcore %u: cryptodev %u\n", rx_lcore_id, 2100 (unsigned)cdev_id); 2101 } 2102 2103 /* launch per-lcore init on every lcore */ 2104 rte_eal_mp_remote_launch(l2fwd_launch_one_lcore, (void *)&options, 2105 CALL_MASTER); 2106 RTE_LCORE_FOREACH_SLAVE(lcore_id) { 2107 if (rte_eal_wait_lcore(lcore_id) < 0) 2108 return -1; 2109 } 2110 2111 return 0; 2112 } 2113