Imported Upstream version 16.07-rc1
[deb_dpdk.git] / examples / ip_fragmentation / main.c
1 /*-
2  *   BSD LICENSE
3  *
4  *   Copyright(c) 2010-2014 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 <stdio.h>
35 #include <stdlib.h>
36 #include <stdint.h>
37 #include <inttypes.h>
38 #include <sys/types.h>
39 #include <sys/param.h>
40 #include <string.h>
41 #include <sys/queue.h>
42 #include <stdarg.h>
43 #include <errno.h>
44 #include <getopt.h>
45
46 #include <rte_common.h>
47 #include <rte_byteorder.h>
48 #include <rte_log.h>
49 #include <rte_memory.h>
50 #include <rte_memcpy.h>
51 #include <rte_memzone.h>
52 #include <rte_eal.h>
53 #include <rte_per_lcore.h>
54 #include <rte_launch.h>
55 #include <rte_atomic.h>
56 #include <rte_cycles.h>
57 #include <rte_prefetch.h>
58 #include <rte_lcore.h>
59 #include <rte_per_lcore.h>
60 #include <rte_branch_prediction.h>
61 #include <rte_interrupts.h>
62 #include <rte_pci.h>
63 #include <rte_random.h>
64 #include <rte_debug.h>
65 #include <rte_ether.h>
66 #include <rte_ethdev.h>
67 #include <rte_ring.h>
68 #include <rte_mempool.h>
69 #include <rte_mbuf.h>
70 #include <rte_lpm.h>
71 #include <rte_lpm6.h>
72 #include <rte_ip.h>
73 #include <rte_string_fns.h>
74
75 #include <rte_ip_frag.h>
76
77 #define RTE_LOGTYPE_IP_FRAG RTE_LOGTYPE_USER1
78
79 /* allow max jumbo frame 9.5 KB */
80 #define JUMBO_FRAME_MAX_SIZE    0x2600
81
82 #define ROUNDUP_DIV(a, b)       (((a) + (b) - 1) / (b))
83
84 /*
85  * Default byte size for the IPv6 Maximum Transfer Unit (MTU).
86  * This value includes the size of IPv6 header.
87  */
88 #define IPV4_MTU_DEFAULT        ETHER_MTU
89 #define IPV6_MTU_DEFAULT        ETHER_MTU
90
91 /*
92  * Default payload in bytes for the IPv6 packet.
93  */
94 #define IPV4_DEFAULT_PAYLOAD    (IPV4_MTU_DEFAULT - sizeof(struct ipv4_hdr))
95 #define IPV6_DEFAULT_PAYLOAD    (IPV6_MTU_DEFAULT - sizeof(struct ipv6_hdr))
96
97 /*
98  * Max number of fragments per packet expected - defined by config file.
99  */
100 #define MAX_PACKET_FRAG RTE_LIBRTE_IP_FRAG_MAX_FRAG
101
102 #define NB_MBUF   8192
103
104 #define MAX_PKT_BURST   32
105 #define BURST_TX_DRAIN_US 100 /* TX drain every ~100us */
106
107 /* Configure how many packets ahead to prefetch, when reading packets */
108 #define PREFETCH_OFFSET 3
109
110 /*
111  * Configurable number of RX/TX ring descriptors
112  */
113 #define RTE_TEST_RX_DESC_DEFAULT 128
114 #define RTE_TEST_TX_DESC_DEFAULT 512
115 static uint16_t nb_rxd = RTE_TEST_RX_DESC_DEFAULT;
116 static uint16_t nb_txd = RTE_TEST_TX_DESC_DEFAULT;
117
118 /* ethernet addresses of ports */
119 static struct ether_addr ports_eth_addr[RTE_MAX_ETHPORTS];
120
121 #ifndef IPv4_BYTES
122 #define IPv4_BYTES_FMT "%" PRIu8 ".%" PRIu8 ".%" PRIu8 ".%" PRIu8
123 #define IPv4_BYTES(addr) \
124                 (uint8_t) (((addr) >> 24) & 0xFF),\
125                 (uint8_t) (((addr) >> 16) & 0xFF),\
126                 (uint8_t) (((addr) >> 8) & 0xFF),\
127                 (uint8_t) ((addr) & 0xFF)
128 #endif
129
130 #ifndef IPv6_BYTES
131 #define IPv6_BYTES_FMT "%02x%02x:%02x%02x:%02x%02x:%02x%02x:"\
132                        "%02x%02x:%02x%02x:%02x%02x:%02x%02x"
133 #define IPv6_BYTES(addr) \
134         addr[0],  addr[1], addr[2],  addr[3], \
135         addr[4],  addr[5], addr[6],  addr[7], \
136         addr[8],  addr[9], addr[10], addr[11],\
137         addr[12], addr[13],addr[14], addr[15]
138 #endif
139
140 #define IPV6_ADDR_LEN 16
141
142 /* mask of enabled ports */
143 static int enabled_port_mask = 0;
144
145 static int rx_queue_per_lcore = 1;
146
147 #define MBUF_TABLE_SIZE  (2 * MAX(MAX_PKT_BURST, MAX_PACKET_FRAG))
148
149 struct mbuf_table {
150         uint16_t len;
151         struct rte_mbuf *m_table[MBUF_TABLE_SIZE];
152 };
153
154 struct rx_queue {
155         struct rte_mempool *direct_pool;
156         struct rte_mempool *indirect_pool;
157         struct rte_lpm *lpm;
158         struct rte_lpm6 *lpm6;
159         uint8_t portid;
160 };
161
162 #define MAX_RX_QUEUE_PER_LCORE 16
163 #define MAX_TX_QUEUE_PER_PORT 16
164 struct lcore_queue_conf {
165         uint16_t n_rx_queue;
166         uint16_t tx_queue_id[RTE_MAX_ETHPORTS];
167         struct rx_queue rx_queue_list[MAX_RX_QUEUE_PER_LCORE];
168         struct mbuf_table tx_mbufs[RTE_MAX_ETHPORTS];
169 } __rte_cache_aligned;
170 struct lcore_queue_conf lcore_queue_conf[RTE_MAX_LCORE];
171
172 static const struct rte_eth_conf port_conf = {
173         .rxmode = {
174                 .max_rx_pkt_len = JUMBO_FRAME_MAX_SIZE,
175                 .split_hdr_size = 0,
176                 .header_split   = 0, /**< Header Split disabled */
177                 .hw_ip_checksum = 1, /**< IP checksum offload enabled */
178                 .hw_vlan_filter = 0, /**< VLAN filtering disabled */
179                 .jumbo_frame    = 1, /**< Jumbo Frame Support enabled */
180                 .hw_strip_crc   = 0, /**< CRC stripped by hardware */
181         },
182         .txmode = {
183                 .mq_mode = ETH_MQ_TX_NONE,
184         },
185 };
186
187 /*
188  * IPv4 forwarding table
189  */
190 struct l3fwd_ipv4_route {
191         uint32_t ip;
192         uint8_t  depth;
193         uint8_t  if_out;
194 };
195
196 struct l3fwd_ipv4_route l3fwd_ipv4_route_array[] = {
197                 {IPv4(100,10,0,0), 16, 0},
198                 {IPv4(100,20,0,0), 16, 1},
199                 {IPv4(100,30,0,0), 16, 2},
200                 {IPv4(100,40,0,0), 16, 3},
201                 {IPv4(100,50,0,0), 16, 4},
202                 {IPv4(100,60,0,0), 16, 5},
203                 {IPv4(100,70,0,0), 16, 6},
204                 {IPv4(100,80,0,0), 16, 7},
205 };
206
207 /*
208  * IPv6 forwarding table
209  */
210
211 struct l3fwd_ipv6_route {
212         uint8_t ip[IPV6_ADDR_LEN];
213         uint8_t depth;
214         uint8_t if_out;
215 };
216
217 static struct l3fwd_ipv6_route l3fwd_ipv6_route_array[] = {
218         {{1,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 0},
219         {{2,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 1},
220         {{3,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 2},
221         {{4,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 3},
222         {{5,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 4},
223         {{6,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 5},
224         {{7,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 6},
225         {{8,1,1,1,1,1,1,1,1,1,1,1,1,1,1,1}, 48, 7},
226 };
227
228 #define LPM_MAX_RULES         1024
229 #define LPM6_MAX_RULES         1024
230 #define LPM6_NUMBER_TBL8S (1 << 16)
231
232 struct rte_lpm6_config lpm6_config = {
233                 .max_rules = LPM6_MAX_RULES,
234                 .number_tbl8s = LPM6_NUMBER_TBL8S,
235                 .flags = 0
236 };
237
238 static struct rte_mempool *socket_direct_pool[RTE_MAX_NUMA_NODES];
239 static struct rte_mempool *socket_indirect_pool[RTE_MAX_NUMA_NODES];
240 static struct rte_lpm *socket_lpm[RTE_MAX_NUMA_NODES];
241 static struct rte_lpm6 *socket_lpm6[RTE_MAX_NUMA_NODES];
242
243 /* Send burst of packets on an output interface */
244 static inline int
245 send_burst(struct lcore_queue_conf *qconf, uint16_t n, uint8_t port)
246 {
247         struct rte_mbuf **m_table;
248         int ret;
249         uint16_t queueid;
250
251         queueid = qconf->tx_queue_id[port];
252         m_table = (struct rte_mbuf **)qconf->tx_mbufs[port].m_table;
253
254         ret = rte_eth_tx_burst(port, queueid, m_table, n);
255         if (unlikely(ret < n)) {
256                 do {
257                         rte_pktmbuf_free(m_table[ret]);
258                 } while (++ret < n);
259         }
260
261         return 0;
262 }
263
264 static inline void
265 l3fwd_simple_forward(struct rte_mbuf *m, struct lcore_queue_conf *qconf,
266                 uint8_t queueid, uint8_t port_in)
267 {
268         struct rx_queue *rxq;
269         uint32_t i, len, next_hop_ipv4;
270         uint8_t next_hop_ipv6, port_out, ipv6;
271         int32_t len2;
272
273         ipv6 = 0;
274         rxq = &qconf->rx_queue_list[queueid];
275
276         /* by default, send everything back to the source port */
277         port_out = port_in;
278
279         /* Remove the Ethernet header and trailer from the input packet */
280         rte_pktmbuf_adj(m, (uint16_t)sizeof(struct ether_hdr));
281
282         /* Build transmission burst */
283         len = qconf->tx_mbufs[port_out].len;
284
285         /* if this is an IPv4 packet */
286         if (RTE_ETH_IS_IPV4_HDR(m->packet_type)) {
287                 struct ipv4_hdr *ip_hdr;
288                 uint32_t ip_dst;
289                 /* Read the lookup key (i.e. ip_dst) from the input packet */
290                 ip_hdr = rte_pktmbuf_mtod(m, struct ipv4_hdr *);
291                 ip_dst = rte_be_to_cpu_32(ip_hdr->dst_addr);
292
293                 /* Find destination port */
294                 if (rte_lpm_lookup(rxq->lpm, ip_dst, &next_hop_ipv4) == 0 &&
295                                 (enabled_port_mask & 1 << next_hop_ipv4) != 0) {
296                         port_out = next_hop_ipv4;
297
298                         /* Build transmission burst for new port */
299                         len = qconf->tx_mbufs[port_out].len;
300                 }
301
302                 /* if we don't need to do any fragmentation */
303                 if (likely (IPV4_MTU_DEFAULT >= m->pkt_len)) {
304                         qconf->tx_mbufs[port_out].m_table[len] = m;
305                         len2 = 1;
306                 } else {
307                         len2 = rte_ipv4_fragment_packet(m,
308                                 &qconf->tx_mbufs[port_out].m_table[len],
309                                 (uint16_t)(MBUF_TABLE_SIZE - len),
310                                 IPV4_MTU_DEFAULT,
311                                 rxq->direct_pool, rxq->indirect_pool);
312
313                         /* Free input packet */
314                         rte_pktmbuf_free(m);
315
316                         /* If we fail to fragment the packet */
317                         if (unlikely (len2 < 0))
318                                 return;
319                 }
320         } else if (RTE_ETH_IS_IPV6_HDR(m->packet_type)) {
321                 /* if this is an IPv6 packet */
322                 struct ipv6_hdr *ip_hdr;
323
324                 ipv6 = 1;
325
326                 /* Read the lookup key (i.e. ip_dst) from the input packet */
327                 ip_hdr = rte_pktmbuf_mtod(m, struct ipv6_hdr *);
328
329                 /* Find destination port */
330                 if (rte_lpm6_lookup(rxq->lpm6, ip_hdr->dst_addr, &next_hop_ipv6) == 0 &&
331                                 (enabled_port_mask & 1 << next_hop_ipv6) != 0) {
332                         port_out = next_hop_ipv6;
333
334                         /* Build transmission burst for new port */
335                         len = qconf->tx_mbufs[port_out].len;
336                 }
337
338                 /* if we don't need to do any fragmentation */
339                 if (likely (IPV6_MTU_DEFAULT >= m->pkt_len)) {
340                         qconf->tx_mbufs[port_out].m_table[len] = m;
341                         len2 = 1;
342                 } else {
343                         len2 = rte_ipv6_fragment_packet(m,
344                                 &qconf->tx_mbufs[port_out].m_table[len],
345                                 (uint16_t)(MBUF_TABLE_SIZE - len),
346                                 IPV6_MTU_DEFAULT,
347                                 rxq->direct_pool, rxq->indirect_pool);
348
349                         /* Free input packet */
350                         rte_pktmbuf_free(m);
351
352                         /* If we fail to fragment the packet */
353                         if (unlikely (len2 < 0))
354                                 return;
355                 }
356         }
357         /* else, just forward the packet */
358         else {
359                 qconf->tx_mbufs[port_out].m_table[len] = m;
360                 len2 = 1;
361         }
362
363         for (i = len; i < len + len2; i ++) {
364                 void *d_addr_bytes;
365
366                 m = qconf->tx_mbufs[port_out].m_table[i];
367                 struct ether_hdr *eth_hdr = (struct ether_hdr *)
368                         rte_pktmbuf_prepend(m, (uint16_t)sizeof(struct ether_hdr));
369                 if (eth_hdr == NULL) {
370                         rte_panic("No headroom in mbuf.\n");
371                 }
372
373                 m->l2_len = sizeof(struct ether_hdr);
374
375                 /* 02:00:00:00:00:xx */
376                 d_addr_bytes = &eth_hdr->d_addr.addr_bytes[0];
377                 *((uint64_t *)d_addr_bytes) = 0x000000000002 + ((uint64_t)port_out << 40);
378
379                 /* src addr */
380                 ether_addr_copy(&ports_eth_addr[port_out], &eth_hdr->s_addr);
381                 if (ipv6)
382                         eth_hdr->ether_type = rte_be_to_cpu_16(ETHER_TYPE_IPv6);
383                 else
384                         eth_hdr->ether_type = rte_be_to_cpu_16(ETHER_TYPE_IPv4);
385         }
386
387         len += len2;
388
389         if (likely(len < MAX_PKT_BURST)) {
390                 qconf->tx_mbufs[port_out].len = (uint16_t)len;
391                 return;
392         }
393
394         /* Transmit packets */
395         send_burst(qconf, (uint16_t)len, port_out);
396         qconf->tx_mbufs[port_out].len = 0;
397 }
398
399 /* main processing loop */
400 static int
401 main_loop(__attribute__((unused)) void *dummy)
402 {
403         struct rte_mbuf *pkts_burst[MAX_PKT_BURST];
404         unsigned lcore_id;
405         uint64_t prev_tsc, diff_tsc, cur_tsc;
406         int i, j, nb_rx;
407         uint8_t portid;
408         struct lcore_queue_conf *qconf;
409         const uint64_t drain_tsc = (rte_get_tsc_hz() + US_PER_S - 1) / US_PER_S * BURST_TX_DRAIN_US;
410
411         prev_tsc = 0;
412
413         lcore_id = rte_lcore_id();
414         qconf = &lcore_queue_conf[lcore_id];
415
416         if (qconf->n_rx_queue == 0) {
417                 RTE_LOG(INFO, IP_FRAG, "lcore %u has nothing to do\n", lcore_id);
418                 return 0;
419         }
420
421         RTE_LOG(INFO, IP_FRAG, "entering main loop on lcore %u\n", lcore_id);
422
423         for (i = 0; i < qconf->n_rx_queue; i++) {
424
425                 portid = qconf->rx_queue_list[i].portid;
426                 RTE_LOG(INFO, IP_FRAG, " -- lcoreid=%u portid=%d\n", lcore_id,
427                                 (int) portid);
428         }
429
430         while (1) {
431
432                 cur_tsc = rte_rdtsc();
433
434                 /*
435                  * TX burst queue drain
436                  */
437                 diff_tsc = cur_tsc - prev_tsc;
438                 if (unlikely(diff_tsc > drain_tsc)) {
439
440                         /*
441                          * This could be optimized (use queueid instead of
442                          * portid), but it is not called so often
443                          */
444                         for (portid = 0; portid < RTE_MAX_ETHPORTS; portid++) {
445                                 if (qconf->tx_mbufs[portid].len == 0)
446                                         continue;
447                                 send_burst(&lcore_queue_conf[lcore_id],
448                                            qconf->tx_mbufs[portid].len,
449                                            portid);
450                                 qconf->tx_mbufs[portid].len = 0;
451                         }
452
453                         prev_tsc = cur_tsc;
454                 }
455
456                 /*
457                  * Read packet from RX queues
458                  */
459                 for (i = 0; i < qconf->n_rx_queue; i++) {
460
461                         portid = qconf->rx_queue_list[i].portid;
462                         nb_rx = rte_eth_rx_burst(portid, 0, pkts_burst,
463                                                  MAX_PKT_BURST);
464
465                         /* Prefetch first packets */
466                         for (j = 0; j < PREFETCH_OFFSET && j < nb_rx; j++) {
467                                 rte_prefetch0(rte_pktmbuf_mtod(
468                                                 pkts_burst[j], void *));
469                         }
470
471                         /* Prefetch and forward already prefetched packets */
472                         for (j = 0; j < (nb_rx - PREFETCH_OFFSET); j++) {
473                                 rte_prefetch0(rte_pktmbuf_mtod(pkts_burst[
474                                                 j + PREFETCH_OFFSET], void *));
475                                 l3fwd_simple_forward(pkts_burst[j], qconf, i, portid);
476                         }
477
478                         /* Forward remaining prefetched packets */
479                         for (; j < nb_rx; j++) {
480                                 l3fwd_simple_forward(pkts_burst[j], qconf, i, portid);
481                         }
482                 }
483         }
484 }
485
486 /* display usage */
487 static void
488 print_usage(const char *prgname)
489 {
490         printf("%s [EAL options] -- -p PORTMASK [-q NQ]\n"
491                "  -p PORTMASK: hexadecimal bitmask of ports to configure\n"
492                "  -q NQ: number of queue (=ports) per lcore (default is 1)\n",
493                prgname);
494 }
495
496 static int
497 parse_portmask(const char *portmask)
498 {
499         char *end = NULL;
500         unsigned long pm;
501
502         /* parse hexadecimal string */
503         pm = strtoul(portmask, &end, 16);
504         if ((portmask[0] == '\0') || (end == NULL) || (*end != '\0'))
505                 return -1;
506
507         if (pm == 0)
508                 return -1;
509
510         return pm;
511 }
512
513 static int
514 parse_nqueue(const char *q_arg)
515 {
516         char *end = NULL;
517         unsigned long n;
518
519         /* parse hexadecimal string */
520         n = strtoul(q_arg, &end, 10);
521         if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0'))
522                 return -1;
523         if (n == 0)
524                 return -1;
525         if (n >= MAX_RX_QUEUE_PER_LCORE)
526                 return -1;
527
528         return n;
529 }
530
531 /* Parse the argument given in the command line of the application */
532 static int
533 parse_args(int argc, char **argv)
534 {
535         int opt, ret;
536         char **argvopt;
537         int option_index;
538         char *prgname = argv[0];
539         static struct option lgopts[] = {
540                 {NULL, 0, 0, 0}
541         };
542
543         argvopt = argv;
544
545         while ((opt = getopt_long(argc, argvopt, "p:q:",
546                                   lgopts, &option_index)) != EOF) {
547
548                 switch (opt) {
549                 /* portmask */
550                 case 'p':
551                         enabled_port_mask = parse_portmask(optarg);
552                         if (enabled_port_mask < 0) {
553                                 printf("invalid portmask\n");
554                                 print_usage(prgname);
555                                 return -1;
556                         }
557                         break;
558
559                 /* nqueue */
560                 case 'q':
561                         rx_queue_per_lcore = parse_nqueue(optarg);
562                         if (rx_queue_per_lcore < 0) {
563                                 printf("invalid queue number\n");
564                                 print_usage(prgname);
565                                 return -1;
566                         }
567                         break;
568
569                 /* long options */
570                 case 0:
571                         print_usage(prgname);
572                         return -1;
573
574                 default:
575                         print_usage(prgname);
576                         return -1;
577                 }
578         }
579
580         if (enabled_port_mask == 0) {
581                 printf("portmask not specified\n");
582                 print_usage(prgname);
583                 return -1;
584         }
585
586         if (optind >= 0)
587                 argv[optind-1] = prgname;
588
589         ret = optind-1;
590         optind = 0; /* reset getopt lib */
591         return ret;
592 }
593
594 static void
595 print_ethaddr(const char *name, struct ether_addr *eth_addr)
596 {
597         char buf[ETHER_ADDR_FMT_SIZE];
598         ether_format_addr(buf, ETHER_ADDR_FMT_SIZE, eth_addr);
599         printf("%s%s", name, buf);
600 }
601
602 /* Check the link status of all ports in up to 9s, and print them finally */
603 static void
604 check_all_ports_link_status(uint8_t port_num, uint32_t port_mask)
605 {
606 #define CHECK_INTERVAL 100 /* 100ms */
607 #define MAX_CHECK_TIME 90 /* 9s (90 * 100ms) in total */
608         uint8_t portid, count, all_ports_up, print_flag = 0;
609         struct rte_eth_link link;
610
611         printf("\nChecking link status");
612         fflush(stdout);
613         for (count = 0; count <= MAX_CHECK_TIME; count++) {
614                 all_ports_up = 1;
615                 for (portid = 0; portid < port_num; portid++) {
616                         if ((port_mask & (1 << portid)) == 0)
617                                 continue;
618                         memset(&link, 0, sizeof(link));
619                         rte_eth_link_get_nowait(portid, &link);
620                         /* print link status if flag set */
621                         if (print_flag == 1) {
622                                 if (link.link_status)
623                                         printf("Port %d Link Up - speed %u "
624                                                 "Mbps - %s\n", (uint8_t)portid,
625                                                 (unsigned)link.link_speed,
626                                 (link.link_duplex == ETH_LINK_FULL_DUPLEX) ?
627                                         ("full-duplex") : ("half-duplex\n"));
628                                 else
629                                         printf("Port %d Link Down\n",
630                                                         (uint8_t)portid);
631                                 continue;
632                         }
633                         /* clear all_ports_up flag if any link down */
634                         if (link.link_status == ETH_LINK_DOWN) {
635                                 all_ports_up = 0;
636                                 break;
637                         }
638                 }
639                 /* after finally printing all link status, get out */
640                 if (print_flag == 1)
641                         break;
642
643                 if (all_ports_up == 0) {
644                         printf(".");
645                         fflush(stdout);
646                         rte_delay_ms(CHECK_INTERVAL);
647                 }
648
649                 /* set the print_flag if all ports up or timeout */
650                 if (all_ports_up == 1 || count == (MAX_CHECK_TIME - 1)) {
651                         print_flag = 1;
652                         printf("\ndone\n");
653                 }
654         }
655 }
656
657 static int
658 init_routing_table(void)
659 {
660         struct rte_lpm *lpm;
661         struct rte_lpm6 *lpm6;
662         int socket, ret;
663         unsigned i;
664
665         for (socket = 0; socket < RTE_MAX_NUMA_NODES; socket++) {
666                 if (socket_lpm[socket]) {
667                         lpm = socket_lpm[socket];
668                         /* populate the LPM table */
669                         for (i = 0; i < RTE_DIM(l3fwd_ipv4_route_array); i++) {
670                                 ret = rte_lpm_add(lpm,
671                                         l3fwd_ipv4_route_array[i].ip,
672                                         l3fwd_ipv4_route_array[i].depth,
673                                         l3fwd_ipv4_route_array[i].if_out);
674
675                                 if (ret < 0) {
676                                         RTE_LOG(ERR, IP_FRAG, "Unable to add entry %i to the l3fwd "
677                                                 "LPM table\n", i);
678                                         return -1;
679                                 }
680
681                                 RTE_LOG(INFO, IP_FRAG, "Socket %i: adding route " IPv4_BYTES_FMT
682                                                 "/%d (port %d)\n",
683                                         socket,
684                                         IPv4_BYTES(l3fwd_ipv4_route_array[i].ip),
685                                         l3fwd_ipv4_route_array[i].depth,
686                                         l3fwd_ipv4_route_array[i].if_out);
687                         }
688                 }
689
690                 if (socket_lpm6[socket]) {
691                         lpm6 = socket_lpm6[socket];
692                         /* populate the LPM6 table */
693                         for (i = 0; i < RTE_DIM(l3fwd_ipv6_route_array); i++) {
694                                 ret = rte_lpm6_add(lpm6,
695                                         l3fwd_ipv6_route_array[i].ip,
696                                         l3fwd_ipv6_route_array[i].depth,
697                                         l3fwd_ipv6_route_array[i].if_out);
698
699                                 if (ret < 0) {
700                                         RTE_LOG(ERR, IP_FRAG, "Unable to add entry %i to the l3fwd "
701                                                 "LPM6 table\n", i);
702                                         return -1;
703                                 }
704
705                                 RTE_LOG(INFO, IP_FRAG, "Socket %i: adding route " IPv6_BYTES_FMT
706                                                 "/%d (port %d)\n",
707                                         socket,
708                                         IPv6_BYTES(l3fwd_ipv6_route_array[i].ip),
709                                         l3fwd_ipv6_route_array[i].depth,
710                                         l3fwd_ipv6_route_array[i].if_out);
711                         }
712                 }
713         }
714         return 0;
715 }
716
717 static int
718 init_mem(void)
719 {
720         char buf[PATH_MAX];
721         struct rte_mempool *mp;
722         struct rte_lpm *lpm;
723         struct rte_lpm6 *lpm6;
724         struct rte_lpm_config lpm_config;
725         int socket;
726         unsigned lcore_id;
727
728         /* traverse through lcores and initialize structures on each socket */
729
730         for (lcore_id = 0; lcore_id < RTE_MAX_LCORE; lcore_id++) {
731
732                 if (rte_lcore_is_enabled(lcore_id) == 0)
733                         continue;
734
735                 socket = rte_lcore_to_socket_id(lcore_id);
736
737                 if (socket == SOCKET_ID_ANY)
738                         socket = 0;
739
740                 if (socket_direct_pool[socket] == NULL) {
741                         RTE_LOG(INFO, IP_FRAG, "Creating direct mempool on socket %i\n",
742                                         socket);
743                         snprintf(buf, sizeof(buf), "pool_direct_%i", socket);
744
745                         mp = rte_pktmbuf_pool_create(buf, NB_MBUF, 32,
746                                 0, RTE_MBUF_DEFAULT_BUF_SIZE, socket);
747                         if (mp == NULL) {
748                                 RTE_LOG(ERR, IP_FRAG, "Cannot create direct mempool\n");
749                                 return -1;
750                         }
751                         socket_direct_pool[socket] = mp;
752                 }
753
754                 if (socket_indirect_pool[socket] == NULL) {
755                         RTE_LOG(INFO, IP_FRAG, "Creating indirect mempool on socket %i\n",
756                                         socket);
757                         snprintf(buf, sizeof(buf), "pool_indirect_%i", socket);
758
759                         mp = rte_pktmbuf_pool_create(buf, NB_MBUF, 32, 0, 0,
760                                 socket);
761                         if (mp == NULL) {
762                                 RTE_LOG(ERR, IP_FRAG, "Cannot create indirect mempool\n");
763                                 return -1;
764                         }
765                         socket_indirect_pool[socket] = mp;
766                 }
767
768                 if (socket_lpm[socket] == NULL) {
769                         RTE_LOG(INFO, IP_FRAG, "Creating LPM table on socket %i\n", socket);
770                         snprintf(buf, sizeof(buf), "IP_FRAG_LPM_%i", socket);
771
772                         lpm_config.max_rules = LPM_MAX_RULES;
773                         lpm_config.number_tbl8s = 256;
774                         lpm_config.flags = 0;
775
776                         lpm = rte_lpm_create(buf, socket, &lpm_config);
777                         if (lpm == NULL) {
778                                 RTE_LOG(ERR, IP_FRAG, "Cannot create LPM table\n");
779                                 return -1;
780                         }
781                         socket_lpm[socket] = lpm;
782                 }
783
784                 if (socket_lpm6[socket] == NULL) {
785                         RTE_LOG(INFO, IP_FRAG, "Creating LPM6 table on socket %i\n", socket);
786                         snprintf(buf, sizeof(buf), "IP_FRAG_LPM_%i", socket);
787
788                         lpm6 = rte_lpm6_create(buf, socket, &lpm6_config);
789                         if (lpm6 == NULL) {
790                                 RTE_LOG(ERR, IP_FRAG, "Cannot create LPM table\n");
791                                 return -1;
792                         }
793                         socket_lpm6[socket] = lpm6;
794                 }
795         }
796
797         return 0;
798 }
799
800 int
801 main(int argc, char **argv)
802 {
803         struct lcore_queue_conf *qconf;
804         struct rte_eth_dev_info dev_info;
805         struct rte_eth_txconf *txconf;
806         struct rx_queue *rxq;
807         int socket, ret;
808         unsigned nb_ports;
809         uint16_t queueid = 0;
810         unsigned lcore_id = 0, rx_lcore_id = 0;
811         uint32_t n_tx_queue, nb_lcores;
812         uint8_t portid;
813
814         /* init EAL */
815         ret = rte_eal_init(argc, argv);
816         if (ret < 0)
817                 rte_exit(EXIT_FAILURE, "rte_eal_init failed");
818         argc -= ret;
819         argv += ret;
820
821         /* parse application arguments (after the EAL ones) */
822         ret = parse_args(argc, argv);
823         if (ret < 0)
824                 rte_exit(EXIT_FAILURE, "Invalid arguments");
825
826         nb_ports = rte_eth_dev_count();
827         if (nb_ports == 0)
828                 rte_exit(EXIT_FAILURE, "No ports found!\n");
829
830         nb_lcores = rte_lcore_count();
831
832         /* initialize structures (mempools, lpm etc.) */
833         if (init_mem() < 0)
834                 rte_panic("Cannot initialize memory structures!\n");
835
836         /* check if portmask has non-existent ports */
837         if (enabled_port_mask & ~(RTE_LEN2MASK(nb_ports, unsigned)))
838                 rte_exit(EXIT_FAILURE, "Non-existent ports in portmask!\n");
839
840         /* initialize all ports */
841         for (portid = 0; portid < nb_ports; portid++) {
842                 /* skip ports that are not enabled */
843                 if ((enabled_port_mask & (1 << portid)) == 0) {
844                         printf("Skipping disabled port %d\n", portid);
845                         continue;
846                 }
847
848                 qconf = &lcore_queue_conf[rx_lcore_id];
849
850                 /* get the lcore_id for this port */
851                 while (rte_lcore_is_enabled(rx_lcore_id) == 0 ||
852                        qconf->n_rx_queue == (unsigned)rx_queue_per_lcore) {
853
854                         rx_lcore_id ++;
855                         if (rx_lcore_id >= RTE_MAX_LCORE)
856                                 rte_exit(EXIT_FAILURE, "Not enough cores\n");
857
858                         qconf = &lcore_queue_conf[rx_lcore_id];
859                 }
860
861                 socket = (int) rte_lcore_to_socket_id(rx_lcore_id);
862                 if (socket == SOCKET_ID_ANY)
863                         socket = 0;
864
865                 rxq = &qconf->rx_queue_list[qconf->n_rx_queue];
866                 rxq->portid = portid;
867                 rxq->direct_pool = socket_direct_pool[socket];
868                 rxq->indirect_pool = socket_indirect_pool[socket];
869                 rxq->lpm = socket_lpm[socket];
870                 rxq->lpm6 = socket_lpm6[socket];
871                 qconf->n_rx_queue++;
872
873                 /* init port */
874                 printf("Initializing port %d on lcore %u...", portid,
875                        rx_lcore_id);
876                 fflush(stdout);
877
878                 n_tx_queue = nb_lcores;
879                 if (n_tx_queue > MAX_TX_QUEUE_PER_PORT)
880                         n_tx_queue = MAX_TX_QUEUE_PER_PORT;
881                 ret = rte_eth_dev_configure(portid, 1, (uint16_t)n_tx_queue,
882                                             &port_conf);
883                 if (ret < 0) {
884                         printf("\n");
885                         rte_exit(EXIT_FAILURE, "Cannot configure device: "
886                                 "err=%d, port=%d\n",
887                                 ret, portid);
888                 }
889
890                 /* init one RX queue */
891                 ret = rte_eth_rx_queue_setup(portid, 0, nb_rxd,
892                                              socket, NULL,
893                                              socket_direct_pool[socket]);
894                 if (ret < 0) {
895                         printf("\n");
896                         rte_exit(EXIT_FAILURE, "rte_eth_rx_queue_setup: "
897                                 "err=%d, port=%d\n",
898                                 ret, portid);
899                 }
900
901                 rte_eth_macaddr_get(portid, &ports_eth_addr[portid]);
902                 print_ethaddr(" Address:", &ports_eth_addr[portid]);
903                 printf("\n");
904
905                 /* init one TX queue per couple (lcore,port) */
906                 queueid = 0;
907                 for (lcore_id = 0; lcore_id < RTE_MAX_LCORE; lcore_id++) {
908                         if (rte_lcore_is_enabled(lcore_id) == 0)
909                                 continue;
910
911                         socket = (int) rte_lcore_to_socket_id(lcore_id);
912                         printf("txq=%u,%d ", lcore_id, queueid);
913                         fflush(stdout);
914
915                         rte_eth_dev_info_get(portid, &dev_info);
916                         txconf = &dev_info.default_txconf;
917                         txconf->txq_flags = 0;
918                         ret = rte_eth_tx_queue_setup(portid, queueid, nb_txd,
919                                                      socket, txconf);
920                         if (ret < 0) {
921                                 printf("\n");
922                                 rte_exit(EXIT_FAILURE, "rte_eth_tx_queue_setup: "
923                                         "err=%d, port=%d\n", ret, portid);
924                         }
925
926                         qconf = &lcore_queue_conf[lcore_id];
927                         qconf->tx_queue_id[portid] = queueid;
928                         queueid++;
929                 }
930
931                 printf("\n");
932         }
933
934         printf("\n");
935
936         /* start ports */
937         for (portid = 0; portid < nb_ports; portid++) {
938                 if ((enabled_port_mask & (1 << portid)) == 0) {
939                         continue;
940                 }
941                 /* Start device */
942                 ret = rte_eth_dev_start(portid);
943                 if (ret < 0)
944                         rte_exit(EXIT_FAILURE, "rte_eth_dev_start: err=%d, port=%d\n",
945                                 ret, portid);
946
947                 rte_eth_promiscuous_enable(portid);
948         }
949
950         if (init_routing_table() < 0)
951                 rte_exit(EXIT_FAILURE, "Cannot init routing table\n");
952
953         check_all_ports_link_status((uint8_t)nb_ports, enabled_port_mask);
954
955         /* launch per-lcore init on every lcore */
956         rte_eal_mp_remote_launch(main_loop, NULL, CALL_MASTER);
957         RTE_LCORE_FOREACH_SLAVE(lcore_id) {
958                 if (rte_eal_wait_lcore(lcore_id) < 0)
959                         return -1;
960         }
961
962         return 0;
963 }