crypto/mlx5: add maximum segments configuration
[dpdk.git] / examples / vhost / main.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2010-2017 Intel Corporation
3  */
4
5 #include <arpa/inet.h>
6 #include <getopt.h>
7 #include <linux/if_ether.h>
8 #include <linux/if_vlan.h>
9 #include <linux/virtio_net.h>
10 #include <linux/virtio_ring.h>
11 #include <signal.h>
12 #include <stdint.h>
13 #include <sys/eventfd.h>
14 #include <sys/param.h>
15 #include <unistd.h>
16
17 #include <rte_cycles.h>
18 #include <rte_ethdev.h>
19 #include <rte_log.h>
20 #include <rte_string_fns.h>
21 #include <rte_malloc.h>
22 #include <rte_net.h>
23 #include <rte_vhost.h>
24 #include <rte_ip.h>
25 #include <rte_tcp.h>
26 #include <rte_pause.h>
27
28 #include "ioat.h"
29 #include "main.h"
30
31 #ifndef MAX_QUEUES
32 #define MAX_QUEUES 128
33 #endif
34
35 /* the maximum number of external ports supported */
36 #define MAX_SUP_PORTS 1
37
38 #define MBUF_CACHE_SIZE 128
39 #define MBUF_DATA_SIZE  RTE_MBUF_DEFAULT_BUF_SIZE
40
41 #define BURST_TX_DRAIN_US 100   /* TX drain every ~100us */
42
43 #define BURST_RX_WAIT_US 15     /* Defines how long we wait between retries on RX */
44 #define BURST_RX_RETRIES 4              /* Number of retries on RX. */
45
46 #define JUMBO_FRAME_MAX_SIZE    0x2600
47
48 /* State of virtio device. */
49 #define DEVICE_MAC_LEARNING 0
50 #define DEVICE_RX                       1
51 #define DEVICE_SAFE_REMOVE      2
52
53 /* Configurable number of RX/TX ring descriptors */
54 #define RTE_TEST_RX_DESC_DEFAULT 1024
55 #define RTE_TEST_TX_DESC_DEFAULT 512
56
57 #define INVALID_PORT_ID 0xFF
58
59 /* mask of enabled ports */
60 static uint32_t enabled_port_mask = 0;
61
62 /* Promiscuous mode */
63 static uint32_t promiscuous;
64
65 /* number of devices/queues to support*/
66 static uint32_t num_queues = 0;
67 static uint32_t num_devices;
68
69 static struct rte_mempool *mbuf_pool;
70 static int mergeable;
71
72 /* Enable VM2VM communications. If this is disabled then the MAC address compare is skipped. */
73 typedef enum {
74         VM2VM_DISABLED = 0,
75         VM2VM_SOFTWARE = 1,
76         VM2VM_HARDWARE = 2,
77         VM2VM_LAST
78 } vm2vm_type;
79 static vm2vm_type vm2vm_mode = VM2VM_SOFTWARE;
80
81 /* Enable stats. */
82 static uint32_t enable_stats = 0;
83 /* Enable retries on RX. */
84 static uint32_t enable_retry = 1;
85
86 /* Disable TX checksum offload */
87 static uint32_t enable_tx_csum;
88
89 /* Disable TSO offload */
90 static uint32_t enable_tso;
91
92 static int client_mode;
93
94 static int builtin_net_driver;
95
96 static int async_vhost_driver;
97
98 static char *dma_type;
99
100 /* Specify timeout (in useconds) between retries on RX. */
101 static uint32_t burst_rx_delay_time = BURST_RX_WAIT_US;
102 /* Specify the number of retries on RX. */
103 static uint32_t burst_rx_retry_num = BURST_RX_RETRIES;
104
105 /* Socket file paths. Can be set by user */
106 static char *socket_files;
107 static int nb_sockets;
108
109 /* empty vmdq configuration structure. Filled in programatically */
110 static struct rte_eth_conf vmdq_conf_default = {
111         .rxmode = {
112                 .mq_mode        = ETH_MQ_RX_VMDQ_ONLY,
113                 .split_hdr_size = 0,
114                 /*
115                  * VLAN strip is necessary for 1G NIC such as I350,
116                  * this fixes bug of ipv4 forwarding in guest can't
117                  * forward pakets from one virtio dev to another virtio dev.
118                  */
119                 .offloads = DEV_RX_OFFLOAD_VLAN_STRIP,
120         },
121
122         .txmode = {
123                 .mq_mode = ETH_MQ_TX_NONE,
124                 .offloads = (DEV_TX_OFFLOAD_IPV4_CKSUM |
125                              DEV_TX_OFFLOAD_TCP_CKSUM |
126                              DEV_TX_OFFLOAD_VLAN_INSERT |
127                              DEV_TX_OFFLOAD_MULTI_SEGS |
128                              DEV_TX_OFFLOAD_TCP_TSO),
129         },
130         .rx_adv_conf = {
131                 /*
132                  * should be overridden separately in code with
133                  * appropriate values
134                  */
135                 .vmdq_rx_conf = {
136                         .nb_queue_pools = ETH_8_POOLS,
137                         .enable_default_pool = 0,
138                         .default_pool = 0,
139                         .nb_pool_maps = 0,
140                         .pool_map = {{0, 0},},
141                 },
142         },
143 };
144
145
146 static unsigned lcore_ids[RTE_MAX_LCORE];
147 static uint16_t ports[RTE_MAX_ETHPORTS];
148 static unsigned num_ports = 0; /**< The number of ports specified in command line */
149 static uint16_t num_pf_queues, num_vmdq_queues;
150 static uint16_t vmdq_pool_base, vmdq_queue_base;
151 static uint16_t queues_per_pool;
152
153 const uint16_t vlan_tags[] = {
154         1000, 1001, 1002, 1003, 1004, 1005, 1006, 1007,
155         1008, 1009, 1010, 1011, 1012, 1013, 1014, 1015,
156         1016, 1017, 1018, 1019, 1020, 1021, 1022, 1023,
157         1024, 1025, 1026, 1027, 1028, 1029, 1030, 1031,
158         1032, 1033, 1034, 1035, 1036, 1037, 1038, 1039,
159         1040, 1041, 1042, 1043, 1044, 1045, 1046, 1047,
160         1048, 1049, 1050, 1051, 1052, 1053, 1054, 1055,
161         1056, 1057, 1058, 1059, 1060, 1061, 1062, 1063,
162 };
163
164 /* ethernet addresses of ports */
165 static struct rte_ether_addr vmdq_ports_eth_addr[RTE_MAX_ETHPORTS];
166
167 static struct vhost_dev_tailq_list vhost_dev_list =
168         TAILQ_HEAD_INITIALIZER(vhost_dev_list);
169
170 static struct lcore_info lcore_info[RTE_MAX_LCORE];
171
172 /* Used for queueing bursts of TX packets. */
173 struct mbuf_table {
174         unsigned len;
175         unsigned txq_id;
176         struct rte_mbuf *m_table[MAX_PKT_BURST];
177 };
178
179 struct vhost_bufftable {
180         uint32_t len;
181         uint64_t pre_tsc;
182         struct rte_mbuf *m_table[MAX_PKT_BURST];
183 };
184
185 /* TX queue for each data core. */
186 struct mbuf_table lcore_tx_queue[RTE_MAX_LCORE];
187
188 /*
189  * Vhost TX buffer for each data core.
190  * Every data core maintains a TX buffer for every vhost device,
191  * which is used for batch pkts enqueue for higher performance.
192  */
193 struct vhost_bufftable *vhost_txbuff[RTE_MAX_LCORE * MAX_VHOST_DEVICE];
194
195 #define MBUF_TABLE_DRAIN_TSC    ((rte_get_tsc_hz() + US_PER_S - 1) \
196                                  / US_PER_S * BURST_TX_DRAIN_US)
197 #define VLAN_HLEN       4
198
199 static inline int
200 open_dma(const char *value)
201 {
202         if (dma_type != NULL && strncmp(dma_type, "ioat", 4) == 0)
203                 return open_ioat(value);
204
205         return -1;
206 }
207
208 /*
209  * Builds up the correct configuration for VMDQ VLAN pool map
210  * according to the pool & queue limits.
211  */
212 static inline int
213 get_eth_conf(struct rte_eth_conf *eth_conf, uint32_t num_devices)
214 {
215         struct rte_eth_vmdq_rx_conf conf;
216         struct rte_eth_vmdq_rx_conf *def_conf =
217                 &vmdq_conf_default.rx_adv_conf.vmdq_rx_conf;
218         unsigned i;
219
220         memset(&conf, 0, sizeof(conf));
221         conf.nb_queue_pools = (enum rte_eth_nb_pools)num_devices;
222         conf.nb_pool_maps = num_devices;
223         conf.enable_loop_back = def_conf->enable_loop_back;
224         conf.rx_mode = def_conf->rx_mode;
225
226         for (i = 0; i < conf.nb_pool_maps; i++) {
227                 conf.pool_map[i].vlan_id = vlan_tags[ i ];
228                 conf.pool_map[i].pools = (1UL << i);
229         }
230
231         (void)(rte_memcpy(eth_conf, &vmdq_conf_default, sizeof(*eth_conf)));
232         (void)(rte_memcpy(&eth_conf->rx_adv_conf.vmdq_rx_conf, &conf,
233                    sizeof(eth_conf->rx_adv_conf.vmdq_rx_conf)));
234         return 0;
235 }
236
237 /*
238  * Initialises a given port using global settings and with the rx buffers
239  * coming from the mbuf_pool passed as parameter
240  */
241 static inline int
242 port_init(uint16_t port)
243 {
244         struct rte_eth_dev_info dev_info;
245         struct rte_eth_conf port_conf;
246         struct rte_eth_rxconf *rxconf;
247         struct rte_eth_txconf *txconf;
248         int16_t rx_rings, tx_rings;
249         uint16_t rx_ring_size, tx_ring_size;
250         int retval;
251         uint16_t q;
252
253         /* The max pool number from dev_info will be used to validate the pool number specified in cmd line */
254         retval = rte_eth_dev_info_get(port, &dev_info);
255         if (retval != 0) {
256                 RTE_LOG(ERR, VHOST_PORT,
257                         "Error during getting device (port %u) info: %s\n",
258                         port, strerror(-retval));
259
260                 return retval;
261         }
262
263         rxconf = &dev_info.default_rxconf;
264         txconf = &dev_info.default_txconf;
265         rxconf->rx_drop_en = 1;
266
267         /*configure the number of supported virtio devices based on VMDQ limits */
268         num_devices = dev_info.max_vmdq_pools;
269
270         rx_ring_size = RTE_TEST_RX_DESC_DEFAULT;
271         tx_ring_size = RTE_TEST_TX_DESC_DEFAULT;
272
273         tx_rings = (uint16_t)rte_lcore_count();
274
275         /* Get port configuration. */
276         retval = get_eth_conf(&port_conf, num_devices);
277         if (retval < 0)
278                 return retval;
279         /* NIC queues are divided into pf queues and vmdq queues.  */
280         num_pf_queues = dev_info.max_rx_queues - dev_info.vmdq_queue_num;
281         queues_per_pool = dev_info.vmdq_queue_num / dev_info.max_vmdq_pools;
282         num_vmdq_queues = num_devices * queues_per_pool;
283         num_queues = num_pf_queues + num_vmdq_queues;
284         vmdq_queue_base = dev_info.vmdq_queue_base;
285         vmdq_pool_base  = dev_info.vmdq_pool_base;
286         printf("pf queue num: %u, configured vmdq pool num: %u, each vmdq pool has %u queues\n",
287                 num_pf_queues, num_devices, queues_per_pool);
288
289         if (!rte_eth_dev_is_valid_port(port))
290                 return -1;
291
292         rx_rings = (uint16_t)dev_info.max_rx_queues;
293         if (dev_info.tx_offload_capa & DEV_TX_OFFLOAD_MBUF_FAST_FREE)
294                 port_conf.txmode.offloads |=
295                         DEV_TX_OFFLOAD_MBUF_FAST_FREE;
296         /* Configure ethernet device. */
297         retval = rte_eth_dev_configure(port, rx_rings, tx_rings, &port_conf);
298         if (retval != 0) {
299                 RTE_LOG(ERR, VHOST_PORT, "Failed to configure port %u: %s.\n",
300                         port, strerror(-retval));
301                 return retval;
302         }
303
304         retval = rte_eth_dev_adjust_nb_rx_tx_desc(port, &rx_ring_size,
305                 &tx_ring_size);
306         if (retval != 0) {
307                 RTE_LOG(ERR, VHOST_PORT, "Failed to adjust number of descriptors "
308                         "for port %u: %s.\n", port, strerror(-retval));
309                 return retval;
310         }
311         if (rx_ring_size > RTE_TEST_RX_DESC_DEFAULT) {
312                 RTE_LOG(ERR, VHOST_PORT, "Mbuf pool has an insufficient size "
313                         "for Rx queues on port %u.\n", port);
314                 return -1;
315         }
316
317         /* Setup the queues. */
318         rxconf->offloads = port_conf.rxmode.offloads;
319         for (q = 0; q < rx_rings; q ++) {
320                 retval = rte_eth_rx_queue_setup(port, q, rx_ring_size,
321                                                 rte_eth_dev_socket_id(port),
322                                                 rxconf,
323                                                 mbuf_pool);
324                 if (retval < 0) {
325                         RTE_LOG(ERR, VHOST_PORT,
326                                 "Failed to setup rx queue %u of port %u: %s.\n",
327                                 q, port, strerror(-retval));
328                         return retval;
329                 }
330         }
331         txconf->offloads = port_conf.txmode.offloads;
332         for (q = 0; q < tx_rings; q ++) {
333                 retval = rte_eth_tx_queue_setup(port, q, tx_ring_size,
334                                                 rte_eth_dev_socket_id(port),
335                                                 txconf);
336                 if (retval < 0) {
337                         RTE_LOG(ERR, VHOST_PORT,
338                                 "Failed to setup tx queue %u of port %u: %s.\n",
339                                 q, port, strerror(-retval));
340                         return retval;
341                 }
342         }
343
344         /* Start the device. */
345         retval  = rte_eth_dev_start(port);
346         if (retval < 0) {
347                 RTE_LOG(ERR, VHOST_PORT, "Failed to start port %u: %s\n",
348                         port, strerror(-retval));
349                 return retval;
350         }
351
352         if (promiscuous) {
353                 retval = rte_eth_promiscuous_enable(port);
354                 if (retval != 0) {
355                         RTE_LOG(ERR, VHOST_PORT,
356                                 "Failed to enable promiscuous mode on port %u: %s\n",
357                                 port, rte_strerror(-retval));
358                         return retval;
359                 }
360         }
361
362         retval = rte_eth_macaddr_get(port, &vmdq_ports_eth_addr[port]);
363         if (retval < 0) {
364                 RTE_LOG(ERR, VHOST_PORT,
365                         "Failed to get MAC address on port %u: %s\n",
366                         port, rte_strerror(-retval));
367                 return retval;
368         }
369
370         RTE_LOG(INFO, VHOST_PORT, "Max virtio devices supported: %u\n", num_devices);
371         RTE_LOG(INFO, VHOST_PORT, "Port %u MAC: %02"PRIx8" %02"PRIx8" %02"PRIx8
372                         " %02"PRIx8" %02"PRIx8" %02"PRIx8"\n",
373                         port,
374                         vmdq_ports_eth_addr[port].addr_bytes[0],
375                         vmdq_ports_eth_addr[port].addr_bytes[1],
376                         vmdq_ports_eth_addr[port].addr_bytes[2],
377                         vmdq_ports_eth_addr[port].addr_bytes[3],
378                         vmdq_ports_eth_addr[port].addr_bytes[4],
379                         vmdq_ports_eth_addr[port].addr_bytes[5]);
380
381         return 0;
382 }
383
384 /*
385  * Set socket file path.
386  */
387 static int
388 us_vhost_parse_socket_path(const char *q_arg)
389 {
390         char *old;
391
392         /* parse number string */
393         if (strnlen(q_arg, PATH_MAX) == PATH_MAX)
394                 return -1;
395
396         old = socket_files;
397         socket_files = realloc(socket_files, PATH_MAX * (nb_sockets + 1));
398         if (socket_files == NULL) {
399                 free(old);
400                 return -1;
401         }
402
403         strlcpy(socket_files + nb_sockets * PATH_MAX, q_arg, PATH_MAX);
404         nb_sockets++;
405
406         return 0;
407 }
408
409 /*
410  * Parse the portmask provided at run time.
411  */
412 static int
413 parse_portmask(const char *portmask)
414 {
415         char *end = NULL;
416         unsigned long pm;
417
418         errno = 0;
419
420         /* parse hexadecimal string */
421         pm = strtoul(portmask, &end, 16);
422         if ((portmask[0] == '\0') || (end == NULL) || (*end != '\0') || (errno != 0))
423                 return 0;
424
425         return pm;
426
427 }
428
429 /*
430  * Parse num options at run time.
431  */
432 static int
433 parse_num_opt(const char *q_arg, uint32_t max_valid_value)
434 {
435         char *end = NULL;
436         unsigned long num;
437
438         errno = 0;
439
440         /* parse unsigned int string */
441         num = strtoul(q_arg, &end, 10);
442         if ((q_arg[0] == '\0') || (end == NULL) || (*end != '\0') || (errno != 0))
443                 return -1;
444
445         if (num > max_valid_value)
446                 return -1;
447
448         return num;
449
450 }
451
452 /*
453  * Display usage
454  */
455 static void
456 us_vhost_usage(const char *prgname)
457 {
458         RTE_LOG(INFO, VHOST_CONFIG, "%s [EAL options] -- -p PORTMASK\n"
459         "               --vm2vm [0|1|2]\n"
460         "               --rx_retry [0|1] --mergeable [0|1] --stats [0-N]\n"
461         "               --socket-file <path>\n"
462         "               --nb-devices ND\n"
463         "               -p PORTMASK: Set mask for ports to be used by application\n"
464         "               --vm2vm [0|1|2]: disable/software(default)/hardware vm2vm comms\n"
465         "               --rx-retry [0|1]: disable/enable(default) retries on rx. Enable retry if destintation queue is full\n"
466         "               --rx-retry-delay [0-N]: timeout(in usecond) between retries on RX. This makes effect only if retries on rx enabled\n"
467         "               --rx-retry-num [0-N]: the number of retries on rx. This makes effect only if retries on rx enabled\n"
468         "               --mergeable [0|1]: disable(default)/enable RX mergeable buffers\n"
469         "               --stats [0-N]: 0: Disable stats, N: Time in seconds to print stats\n"
470         "               --socket-file: The path of the socket file.\n"
471         "               --tx-csum [0|1] disable/enable TX checksum offload.\n"
472         "               --tso [0|1] disable/enable TCP segment offload.\n"
473         "               --client register a vhost-user socket as client mode.\n"
474         "               --dma-type register dma type for your vhost async driver. For example \"ioat\" for now.\n"
475         "               --dmas register dma channel for specific vhost device.\n",
476                prgname);
477 }
478
479 enum {
480 #define OPT_VM2VM               "vm2vm"
481         OPT_VM2VM_NUM = 256,
482 #define OPT_RX_RETRY            "rx-retry"
483         OPT_RX_RETRY_NUM,
484 #define OPT_RX_RETRY_DELAY      "rx-retry-delay"
485         OPT_RX_RETRY_DELAY_NUM,
486 #define OPT_RX_RETRY_NUMB       "rx-retry-num"
487         OPT_RX_RETRY_NUMB_NUM,
488 #define OPT_MERGEABLE           "mergeable"
489         OPT_MERGEABLE_NUM,
490 #define OPT_STATS               "stats"
491         OPT_STATS_NUM,
492 #define OPT_SOCKET_FILE         "socket-file"
493         OPT_SOCKET_FILE_NUM,
494 #define OPT_TX_CSUM             "tx-csum"
495         OPT_TX_CSUM_NUM,
496 #define OPT_TSO                 "tso"
497         OPT_TSO_NUM,
498 #define OPT_CLIENT              "client"
499         OPT_CLIENT_NUM,
500 #define OPT_BUILTIN_NET_DRIVER  "builtin-net-driver"
501         OPT_BUILTIN_NET_DRIVER_NUM,
502 #define OPT_DMA_TYPE            "dma-type"
503         OPT_DMA_TYPE_NUM,
504 #define OPT_DMAS                "dmas"
505         OPT_DMAS_NUM,
506 };
507
508 /*
509  * Parse the arguments given in the command line of the application.
510  */
511 static int
512 us_vhost_parse_args(int argc, char **argv)
513 {
514         int opt, ret;
515         int option_index;
516         unsigned i;
517         const char *prgname = argv[0];
518         static struct option long_option[] = {
519                 {OPT_VM2VM, required_argument,
520                                 NULL, OPT_VM2VM_NUM},
521                 {OPT_RX_RETRY, required_argument,
522                                 NULL, OPT_RX_RETRY_NUM},
523                 {OPT_RX_RETRY_DELAY, required_argument,
524                                 NULL, OPT_RX_RETRY_DELAY_NUM},
525                 {OPT_RX_RETRY_NUMB, required_argument,
526                                 NULL, OPT_RX_RETRY_NUMB_NUM},
527                 {OPT_MERGEABLE, required_argument,
528                                 NULL, OPT_MERGEABLE_NUM},
529                 {OPT_STATS, required_argument,
530                                 NULL, OPT_STATS_NUM},
531                 {OPT_SOCKET_FILE, required_argument,
532                                 NULL, OPT_SOCKET_FILE_NUM},
533                 {OPT_TX_CSUM, required_argument,
534                                 NULL, OPT_TX_CSUM_NUM},
535                 {OPT_TSO, required_argument,
536                                 NULL, OPT_TSO_NUM},
537                 {OPT_CLIENT, no_argument,
538                                 NULL, OPT_CLIENT_NUM},
539                 {OPT_BUILTIN_NET_DRIVER, no_argument,
540                                 NULL, OPT_BUILTIN_NET_DRIVER_NUM},
541                 {OPT_DMA_TYPE, required_argument,
542                                 NULL, OPT_DMA_TYPE_NUM},
543                 {OPT_DMAS, required_argument,
544                                 NULL, OPT_DMAS_NUM},
545                 {NULL, 0, 0, 0},
546         };
547
548         /* Parse command line */
549         while ((opt = getopt_long(argc, argv, "p:P",
550                         long_option, &option_index)) != EOF) {
551                 switch (opt) {
552                 /* Portmask */
553                 case 'p':
554                         enabled_port_mask = parse_portmask(optarg);
555                         if (enabled_port_mask == 0) {
556                                 RTE_LOG(INFO, VHOST_CONFIG, "Invalid portmask\n");
557                                 us_vhost_usage(prgname);
558                                 return -1;
559                         }
560                         break;
561
562                 case 'P':
563                         promiscuous = 1;
564                         vmdq_conf_default.rx_adv_conf.vmdq_rx_conf.rx_mode =
565                                 ETH_VMDQ_ACCEPT_BROADCAST |
566                                 ETH_VMDQ_ACCEPT_MULTICAST;
567                         break;
568
569                 case OPT_VM2VM_NUM:
570                         ret = parse_num_opt(optarg, (VM2VM_LAST - 1));
571                         if (ret == -1) {
572                                 RTE_LOG(INFO, VHOST_CONFIG,
573                                         "Invalid argument for "
574                                         "vm2vm [0|1|2]\n");
575                                 us_vhost_usage(prgname);
576                                 return -1;
577                         }
578                         vm2vm_mode = (vm2vm_type)ret;
579                         break;
580
581                 case OPT_RX_RETRY_NUM:
582                         ret = parse_num_opt(optarg, 1);
583                         if (ret == -1) {
584                                 RTE_LOG(INFO, VHOST_CONFIG, "Invalid argument for rx-retry [0|1]\n");
585                                 us_vhost_usage(prgname);
586                                 return -1;
587                         }
588                         enable_retry = ret;
589                         break;
590
591                 case OPT_TX_CSUM_NUM:
592                         ret = parse_num_opt(optarg, 1);
593                         if (ret == -1) {
594                                 RTE_LOG(INFO, VHOST_CONFIG, "Invalid argument for tx-csum [0|1]\n");
595                                 us_vhost_usage(prgname);
596                                 return -1;
597                         }
598                         enable_tx_csum = ret;
599                         break;
600
601                 case OPT_TSO_NUM:
602                         ret = parse_num_opt(optarg, 1);
603                         if (ret == -1) {
604                                 RTE_LOG(INFO, VHOST_CONFIG, "Invalid argument for tso [0|1]\n");
605                                 us_vhost_usage(prgname);
606                                 return -1;
607                         }
608                         enable_tso = ret;
609                         break;
610
611                 case OPT_RX_RETRY_DELAY_NUM:
612                         ret = parse_num_opt(optarg, INT32_MAX);
613                         if (ret == -1) {
614                                 RTE_LOG(INFO, VHOST_CONFIG, "Invalid argument for rx-retry-delay [0-N]\n");
615                                 us_vhost_usage(prgname);
616                                 return -1;
617                         }
618                         burst_rx_delay_time = ret;
619                         break;
620
621                 case OPT_RX_RETRY_NUMB_NUM:
622                         ret = parse_num_opt(optarg, INT32_MAX);
623                         if (ret == -1) {
624                                 RTE_LOG(INFO, VHOST_CONFIG, "Invalid argument for rx-retry-num [0-N]\n");
625                                 us_vhost_usage(prgname);
626                                 return -1;
627                         }
628                         burst_rx_retry_num = ret;
629                         break;
630
631                 case OPT_MERGEABLE_NUM:
632                         ret = parse_num_opt(optarg, 1);
633                         if (ret == -1) {
634                                 RTE_LOG(INFO, VHOST_CONFIG, "Invalid argument for mergeable [0|1]\n");
635                                 us_vhost_usage(prgname);
636                                 return -1;
637                         }
638                         mergeable = !!ret;
639                         if (ret) {
640                                 vmdq_conf_default.rxmode.offloads |=
641                                         DEV_RX_OFFLOAD_JUMBO_FRAME;
642                                 vmdq_conf_default.rxmode.max_rx_pkt_len
643                                         = JUMBO_FRAME_MAX_SIZE;
644                         }
645                         break;
646
647                 case OPT_STATS_NUM:
648                         ret = parse_num_opt(optarg, INT32_MAX);
649                         if (ret == -1) {
650                                 RTE_LOG(INFO, VHOST_CONFIG,
651                                         "Invalid argument for stats [0..N]\n");
652                                 us_vhost_usage(prgname);
653                                 return -1;
654                         }
655                         enable_stats = ret;
656                         break;
657
658                 /* Set socket file path. */
659                 case OPT_SOCKET_FILE_NUM:
660                         if (us_vhost_parse_socket_path(optarg) == -1) {
661                                 RTE_LOG(INFO, VHOST_CONFIG,
662                                 "Invalid argument for socket name (Max %d characters)\n",
663                                 PATH_MAX);
664                                 us_vhost_usage(prgname);
665                                 return -1;
666                         }
667                         break;
668
669                 case OPT_DMA_TYPE_NUM:
670                         dma_type = optarg;
671                         break;
672
673                 case OPT_DMAS_NUM:
674                         if (open_dma(optarg) == -1) {
675                                 RTE_LOG(INFO, VHOST_CONFIG,
676                                         "Wrong DMA args\n");
677                                 us_vhost_usage(prgname);
678                                 return -1;
679                         }
680                         async_vhost_driver = 1;
681                         break;
682
683                 case OPT_CLIENT_NUM:
684                         client_mode = 1;
685                         break;
686
687                 case OPT_BUILTIN_NET_DRIVER_NUM:
688                         builtin_net_driver = 1;
689                         break;
690
691                 /* Invalid option - print options. */
692                 default:
693                         us_vhost_usage(prgname);
694                         return -1;
695                 }
696         }
697
698         for (i = 0; i < RTE_MAX_ETHPORTS; i++) {
699                 if (enabled_port_mask & (1 << i))
700                         ports[num_ports++] = i;
701         }
702
703         if ((num_ports ==  0) || (num_ports > MAX_SUP_PORTS)) {
704                 RTE_LOG(INFO, VHOST_PORT, "Current enabled port number is %u,"
705                         "but only %u port can be enabled\n",num_ports, MAX_SUP_PORTS);
706                 return -1;
707         }
708
709         return 0;
710 }
711
712 /*
713  * Update the global var NUM_PORTS and array PORTS according to system ports number
714  * and return valid ports number
715  */
716 static unsigned check_ports_num(unsigned nb_ports)
717 {
718         unsigned valid_num_ports = num_ports;
719         unsigned portid;
720
721         if (num_ports > nb_ports) {
722                 RTE_LOG(INFO, VHOST_PORT, "\nSpecified port number(%u) exceeds total system port number(%u)\n",
723                         num_ports, nb_ports);
724                 num_ports = nb_ports;
725         }
726
727         for (portid = 0; portid < num_ports; portid ++) {
728                 if (!rte_eth_dev_is_valid_port(ports[portid])) {
729                         RTE_LOG(INFO, VHOST_PORT,
730                                 "\nSpecified port ID(%u) is not valid\n",
731                                 ports[portid]);
732                         ports[portid] = INVALID_PORT_ID;
733                         valid_num_ports--;
734                 }
735         }
736         return valid_num_ports;
737 }
738
739 static __rte_always_inline struct vhost_dev *
740 find_vhost_dev(struct rte_ether_addr *mac)
741 {
742         struct vhost_dev *vdev;
743
744         TAILQ_FOREACH(vdev, &vhost_dev_list, global_vdev_entry) {
745                 if (vdev->ready == DEVICE_RX &&
746                     rte_is_same_ether_addr(mac, &vdev->mac_address))
747                         return vdev;
748         }
749
750         return NULL;
751 }
752
753 /*
754  * This function learns the MAC address of the device and registers this along with a
755  * vlan tag to a VMDQ.
756  */
757 static int
758 link_vmdq(struct vhost_dev *vdev, struct rte_mbuf *m)
759 {
760         struct rte_ether_hdr *pkt_hdr;
761         int i, ret;
762
763         /* Learn MAC address of guest device from packet */
764         pkt_hdr = rte_pktmbuf_mtod(m, struct rte_ether_hdr *);
765
766         if (find_vhost_dev(&pkt_hdr->s_addr)) {
767                 RTE_LOG(ERR, VHOST_DATA,
768                         "(%d) device is using a registered MAC!\n",
769                         vdev->vid);
770                 return -1;
771         }
772
773         for (i = 0; i < RTE_ETHER_ADDR_LEN; i++)
774                 vdev->mac_address.addr_bytes[i] = pkt_hdr->s_addr.addr_bytes[i];
775
776         /* vlan_tag currently uses the device_id. */
777         vdev->vlan_tag = vlan_tags[vdev->vid];
778
779         /* Print out VMDQ registration info. */
780         RTE_LOG(INFO, VHOST_DATA,
781                 "(%d) mac %02x:%02x:%02x:%02x:%02x:%02x and vlan %d registered\n",
782                 vdev->vid,
783                 vdev->mac_address.addr_bytes[0], vdev->mac_address.addr_bytes[1],
784                 vdev->mac_address.addr_bytes[2], vdev->mac_address.addr_bytes[3],
785                 vdev->mac_address.addr_bytes[4], vdev->mac_address.addr_bytes[5],
786                 vdev->vlan_tag);
787
788         /* Register the MAC address. */
789         ret = rte_eth_dev_mac_addr_add(ports[0], &vdev->mac_address,
790                                 (uint32_t)vdev->vid + vmdq_pool_base);
791         if (ret)
792                 RTE_LOG(ERR, VHOST_DATA,
793                         "(%d) failed to add device MAC address to VMDQ\n",
794                         vdev->vid);
795
796         rte_eth_dev_set_vlan_strip_on_queue(ports[0], vdev->vmdq_rx_q, 1);
797
798         /* Set device as ready for RX. */
799         vdev->ready = DEVICE_RX;
800
801         return 0;
802 }
803
804 /*
805  * Removes MAC address and vlan tag from VMDQ. Ensures that nothing is adding buffers to the RX
806  * queue before disabling RX on the device.
807  */
808 static inline void
809 unlink_vmdq(struct vhost_dev *vdev)
810 {
811         unsigned i = 0;
812         unsigned rx_count;
813         struct rte_mbuf *pkts_burst[MAX_PKT_BURST];
814
815         if (vdev->ready == DEVICE_RX) {
816                 /*clear MAC and VLAN settings*/
817                 rte_eth_dev_mac_addr_remove(ports[0], &vdev->mac_address);
818                 for (i = 0; i < 6; i++)
819                         vdev->mac_address.addr_bytes[i] = 0;
820
821                 vdev->vlan_tag = 0;
822
823                 /*Clear out the receive buffers*/
824                 rx_count = rte_eth_rx_burst(ports[0],
825                                         (uint16_t)vdev->vmdq_rx_q, pkts_burst, MAX_PKT_BURST);
826
827                 while (rx_count) {
828                         for (i = 0; i < rx_count; i++)
829                                 rte_pktmbuf_free(pkts_burst[i]);
830
831                         rx_count = rte_eth_rx_burst(ports[0],
832                                         (uint16_t)vdev->vmdq_rx_q, pkts_burst, MAX_PKT_BURST);
833                 }
834
835                 vdev->ready = DEVICE_MAC_LEARNING;
836         }
837 }
838
839 static inline void
840 free_pkts(struct rte_mbuf **pkts, uint16_t n)
841 {
842         while (n--)
843                 rte_pktmbuf_free(pkts[n]);
844 }
845
846 static __rte_always_inline void
847 complete_async_pkts(struct vhost_dev *vdev)
848 {
849         struct rte_mbuf *p_cpl[MAX_PKT_BURST];
850         uint16_t complete_count;
851
852         complete_count = rte_vhost_poll_enqueue_completed(vdev->vid,
853                                         VIRTIO_RXQ, p_cpl, MAX_PKT_BURST);
854         if (complete_count)
855                 free_pkts(p_cpl, complete_count);
856 }
857
858 static __rte_always_inline void
859 sync_virtio_xmit(struct vhost_dev *dst_vdev, struct vhost_dev *src_vdev,
860             struct rte_mbuf *m)
861 {
862         uint16_t ret;
863
864         if (builtin_net_driver) {
865                 ret = vs_enqueue_pkts(dst_vdev, VIRTIO_RXQ, &m, 1);
866         } else {
867                 ret = rte_vhost_enqueue_burst(dst_vdev->vid, VIRTIO_RXQ, &m, 1);
868         }
869
870         if (enable_stats) {
871                 __atomic_add_fetch(&dst_vdev->stats.rx_total_atomic, 1,
872                                 __ATOMIC_SEQ_CST);
873                 __atomic_add_fetch(&dst_vdev->stats.rx_atomic, ret,
874                                 __ATOMIC_SEQ_CST);
875                 src_vdev->stats.tx_total++;
876                 src_vdev->stats.tx += ret;
877         }
878 }
879
880 static __rte_always_inline void
881 drain_vhost(struct vhost_dev *vdev)
882 {
883         uint16_t ret;
884         uint32_t buff_idx = rte_lcore_id() * MAX_VHOST_DEVICE + vdev->vid;
885         uint16_t nr_xmit = vhost_txbuff[buff_idx]->len;
886         struct rte_mbuf **m = vhost_txbuff[buff_idx]->m_table;
887
888         if (builtin_net_driver) {
889                 ret = vs_enqueue_pkts(vdev, VIRTIO_RXQ, m, nr_xmit);
890         } else if (async_vhost_driver) {
891                 uint32_t cpu_cpl_nr = 0;
892                 uint16_t enqueue_fail = 0;
893                 struct rte_mbuf *m_cpu_cpl[nr_xmit];
894
895                 complete_async_pkts(vdev);
896                 ret = rte_vhost_submit_enqueue_burst(vdev->vid, VIRTIO_RXQ,
897                                         m, nr_xmit, m_cpu_cpl, &cpu_cpl_nr);
898
899                 if (cpu_cpl_nr)
900                         free_pkts(m_cpu_cpl, cpu_cpl_nr);
901
902                 enqueue_fail = nr_xmit - ret;
903                 if (enqueue_fail)
904                         free_pkts(&m[ret], nr_xmit - ret);
905         } else {
906                 ret = rte_vhost_enqueue_burst(vdev->vid, VIRTIO_RXQ,
907                                                 m, nr_xmit);
908         }
909
910         if (enable_stats) {
911                 __atomic_add_fetch(&vdev->stats.rx_total_atomic, nr_xmit,
912                                 __ATOMIC_SEQ_CST);
913                 __atomic_add_fetch(&vdev->stats.rx_atomic, ret,
914                                 __ATOMIC_SEQ_CST);
915         }
916
917         if (!async_vhost_driver)
918                 free_pkts(m, nr_xmit);
919 }
920
921 static __rte_always_inline void
922 drain_vhost_table(void)
923 {
924         uint16_t lcore_id = rte_lcore_id();
925         struct vhost_bufftable *vhost_txq;
926         struct vhost_dev *vdev;
927         uint64_t cur_tsc;
928
929         TAILQ_FOREACH(vdev, &vhost_dev_list, global_vdev_entry) {
930                 vhost_txq = vhost_txbuff[lcore_id * MAX_VHOST_DEVICE
931                                                 + vdev->vid];
932
933                 cur_tsc = rte_rdtsc();
934                 if (unlikely(cur_tsc - vhost_txq->pre_tsc
935                                 > MBUF_TABLE_DRAIN_TSC)) {
936                         RTE_LOG_DP(DEBUG, VHOST_DATA,
937                                 "Vhost TX queue drained after timeout with burst size %u\n",
938                                 vhost_txq->len);
939                         drain_vhost(vdev);
940                         vhost_txq->len = 0;
941                         vhost_txq->pre_tsc = cur_tsc;
942                 }
943         }
944 }
945
946 /*
947  * Check if the packet destination MAC address is for a local device. If so then put
948  * the packet on that devices RX queue. If not then return.
949  */
950 static __rte_always_inline int
951 virtio_tx_local(struct vhost_dev *vdev, struct rte_mbuf *m)
952 {
953         struct rte_ether_hdr *pkt_hdr;
954         struct vhost_dev *dst_vdev;
955         struct vhost_bufftable *vhost_txq;
956         uint16_t lcore_id = rte_lcore_id();
957         pkt_hdr = rte_pktmbuf_mtod(m, struct rte_ether_hdr *);
958
959         dst_vdev = find_vhost_dev(&pkt_hdr->d_addr);
960         if (!dst_vdev)
961                 return -1;
962
963         if (vdev->vid == dst_vdev->vid) {
964                 RTE_LOG_DP(DEBUG, VHOST_DATA,
965                         "(%d) TX: src and dst MAC is same. Dropping packet.\n",
966                         vdev->vid);
967                 return 0;
968         }
969
970         RTE_LOG_DP(DEBUG, VHOST_DATA,
971                 "(%d) TX: MAC address is local\n", dst_vdev->vid);
972
973         if (unlikely(dst_vdev->remove)) {
974                 RTE_LOG_DP(DEBUG, VHOST_DATA,
975                         "(%d) device is marked for removal\n", dst_vdev->vid);
976                 return 0;
977         }
978
979         vhost_txq = vhost_txbuff[lcore_id * MAX_VHOST_DEVICE + dst_vdev->vid];
980         vhost_txq->m_table[vhost_txq->len++] = m;
981
982         if (enable_stats) {
983                 vdev->stats.tx_total++;
984                 vdev->stats.tx++;
985         }
986
987         if (unlikely(vhost_txq->len == MAX_PKT_BURST)) {
988                 drain_vhost(dst_vdev);
989                 vhost_txq->len = 0;
990                 vhost_txq->pre_tsc = rte_rdtsc();
991         }
992         return 0;
993 }
994
995 /*
996  * Check if the destination MAC of a packet is one local VM,
997  * and get its vlan tag, and offset if it is.
998  */
999 static __rte_always_inline int
1000 find_local_dest(struct vhost_dev *vdev, struct rte_mbuf *m,
1001         uint32_t *offset, uint16_t *vlan_tag)
1002 {
1003         struct vhost_dev *dst_vdev;
1004         struct rte_ether_hdr *pkt_hdr =
1005                 rte_pktmbuf_mtod(m, struct rte_ether_hdr *);
1006
1007         dst_vdev = find_vhost_dev(&pkt_hdr->d_addr);
1008         if (!dst_vdev)
1009                 return 0;
1010
1011         if (vdev->vid == dst_vdev->vid) {
1012                 RTE_LOG_DP(DEBUG, VHOST_DATA,
1013                         "(%d) TX: src and dst MAC is same. Dropping packet.\n",
1014                         vdev->vid);
1015                 return -1;
1016         }
1017
1018         /*
1019          * HW vlan strip will reduce the packet length
1020          * by minus length of vlan tag, so need restore
1021          * the packet length by plus it.
1022          */
1023         *offset  = VLAN_HLEN;
1024         *vlan_tag = vlan_tags[vdev->vid];
1025
1026         RTE_LOG_DP(DEBUG, VHOST_DATA,
1027                 "(%d) TX: pkt to local VM device id: (%d), vlan tag: %u.\n",
1028                 vdev->vid, dst_vdev->vid, *vlan_tag);
1029
1030         return 0;
1031 }
1032
1033 static void virtio_tx_offload(struct rte_mbuf *m)
1034 {
1035         struct rte_net_hdr_lens hdr_lens;
1036         struct rte_ipv4_hdr *ipv4_hdr;
1037         struct rte_tcp_hdr *tcp_hdr;
1038         uint32_t ptype;
1039         void *l3_hdr;
1040
1041         ptype = rte_net_get_ptype(m, &hdr_lens, RTE_PTYPE_ALL_MASK);
1042         m->l2_len = hdr_lens.l2_len;
1043         m->l3_len = hdr_lens.l3_len;
1044         m->l4_len = hdr_lens.l4_len;
1045
1046         l3_hdr = rte_pktmbuf_mtod_offset(m, void *, m->l2_len);
1047         tcp_hdr = rte_pktmbuf_mtod_offset(m, struct rte_tcp_hdr *,
1048                 m->l2_len + m->l3_len);
1049
1050         m->ol_flags |= PKT_TX_TCP_SEG;
1051         if ((ptype & RTE_PTYPE_L3_MASK) == RTE_PTYPE_L3_IPV4) {
1052                 m->ol_flags |= PKT_TX_IPV4;
1053                 m->ol_flags |= PKT_TX_IP_CKSUM;
1054                 ipv4_hdr = l3_hdr;
1055                 ipv4_hdr->hdr_checksum = 0;
1056                 tcp_hdr->cksum = rte_ipv4_phdr_cksum(l3_hdr, m->ol_flags);
1057         } else { /* assume ethertype == RTE_ETHER_TYPE_IPV6 */
1058                 m->ol_flags |= PKT_TX_IPV6;
1059                 tcp_hdr->cksum = rte_ipv6_phdr_cksum(l3_hdr, m->ol_flags);
1060         }
1061 }
1062
1063 static __rte_always_inline void
1064 do_drain_mbuf_table(struct mbuf_table *tx_q)
1065 {
1066         uint16_t count;
1067
1068         count = rte_eth_tx_burst(ports[0], tx_q->txq_id,
1069                                  tx_q->m_table, tx_q->len);
1070         if (unlikely(count < tx_q->len))
1071                 free_pkts(&tx_q->m_table[count], tx_q->len - count);
1072
1073         tx_q->len = 0;
1074 }
1075
1076 /*
1077  * This function routes the TX packet to the correct interface. This
1078  * may be a local device or the physical port.
1079  */
1080 static __rte_always_inline void
1081 virtio_tx_route(struct vhost_dev *vdev, struct rte_mbuf *m, uint16_t vlan_tag)
1082 {
1083         struct mbuf_table *tx_q;
1084         unsigned offset = 0;
1085         const uint16_t lcore_id = rte_lcore_id();
1086         struct rte_ether_hdr *nh;
1087
1088
1089         nh = rte_pktmbuf_mtod(m, struct rte_ether_hdr *);
1090         if (unlikely(rte_is_broadcast_ether_addr(&nh->d_addr))) {
1091                 struct vhost_dev *vdev2;
1092
1093                 TAILQ_FOREACH(vdev2, &vhost_dev_list, global_vdev_entry) {
1094                         if (vdev2 != vdev)
1095                                 sync_virtio_xmit(vdev2, vdev, m);
1096                 }
1097                 goto queue2nic;
1098         }
1099
1100         /*check if destination is local VM*/
1101         if ((vm2vm_mode == VM2VM_SOFTWARE) && (virtio_tx_local(vdev, m) == 0))
1102                 return;
1103
1104         if (unlikely(vm2vm_mode == VM2VM_HARDWARE)) {
1105                 if (unlikely(find_local_dest(vdev, m, &offset,
1106                                              &vlan_tag) != 0)) {
1107                         rte_pktmbuf_free(m);
1108                         return;
1109                 }
1110         }
1111
1112         RTE_LOG_DP(DEBUG, VHOST_DATA,
1113                 "(%d) TX: MAC address is external\n", vdev->vid);
1114
1115 queue2nic:
1116
1117         /*Add packet to the port tx queue*/
1118         tx_q = &lcore_tx_queue[lcore_id];
1119
1120         nh = rte_pktmbuf_mtod(m, struct rte_ether_hdr *);
1121         if (unlikely(nh->ether_type == rte_cpu_to_be_16(RTE_ETHER_TYPE_VLAN))) {
1122                 /* Guest has inserted the vlan tag. */
1123                 struct rte_vlan_hdr *vh = (struct rte_vlan_hdr *) (nh + 1);
1124                 uint16_t vlan_tag_be = rte_cpu_to_be_16(vlan_tag);
1125                 if ((vm2vm_mode == VM2VM_HARDWARE) &&
1126                         (vh->vlan_tci != vlan_tag_be))
1127                         vh->vlan_tci = vlan_tag_be;
1128         } else {
1129                 m->ol_flags |= PKT_TX_VLAN_PKT;
1130
1131                 /*
1132                  * Find the right seg to adjust the data len when offset is
1133                  * bigger than tail room size.
1134                  */
1135                 if (unlikely(vm2vm_mode == VM2VM_HARDWARE)) {
1136                         if (likely(offset <= rte_pktmbuf_tailroom(m)))
1137                                 m->data_len += offset;
1138                         else {
1139                                 struct rte_mbuf *seg = m;
1140
1141                                 while ((seg->next != NULL) &&
1142                                         (offset > rte_pktmbuf_tailroom(seg)))
1143                                         seg = seg->next;
1144
1145                                 seg->data_len += offset;
1146                         }
1147                         m->pkt_len += offset;
1148                 }
1149
1150                 m->vlan_tci = vlan_tag;
1151         }
1152
1153         if (m->ol_flags & PKT_RX_LRO)
1154                 virtio_tx_offload(m);
1155
1156         tx_q->m_table[tx_q->len++] = m;
1157         if (enable_stats) {
1158                 vdev->stats.tx_total++;
1159                 vdev->stats.tx++;
1160         }
1161
1162         if (unlikely(tx_q->len == MAX_PKT_BURST))
1163                 do_drain_mbuf_table(tx_q);
1164 }
1165
1166
1167 static __rte_always_inline void
1168 drain_mbuf_table(struct mbuf_table *tx_q)
1169 {
1170         static uint64_t prev_tsc;
1171         uint64_t cur_tsc;
1172
1173         if (tx_q->len == 0)
1174                 return;
1175
1176         cur_tsc = rte_rdtsc();
1177         if (unlikely(cur_tsc - prev_tsc > MBUF_TABLE_DRAIN_TSC)) {
1178                 prev_tsc = cur_tsc;
1179
1180                 RTE_LOG_DP(DEBUG, VHOST_DATA,
1181                         "TX queue drained after timeout with burst size %u\n",
1182                         tx_q->len);
1183                 do_drain_mbuf_table(tx_q);
1184         }
1185 }
1186
1187 static __rte_always_inline void
1188 drain_eth_rx(struct vhost_dev *vdev)
1189 {
1190         uint16_t rx_count, enqueue_count;
1191         struct rte_mbuf *pkts[MAX_PKT_BURST];
1192
1193         rx_count = rte_eth_rx_burst(ports[0], vdev->vmdq_rx_q,
1194                                     pkts, MAX_PKT_BURST);
1195
1196         if (!rx_count)
1197                 return;
1198
1199         /*
1200          * When "enable_retry" is set, here we wait and retry when there
1201          * is no enough free slots in the queue to hold @rx_count packets,
1202          * to diminish packet loss.
1203          */
1204         if (enable_retry &&
1205             unlikely(rx_count > rte_vhost_avail_entries(vdev->vid,
1206                         VIRTIO_RXQ))) {
1207                 uint32_t retry;
1208
1209                 for (retry = 0; retry < burst_rx_retry_num; retry++) {
1210                         rte_delay_us(burst_rx_delay_time);
1211                         if (rx_count <= rte_vhost_avail_entries(vdev->vid,
1212                                         VIRTIO_RXQ))
1213                                 break;
1214                 }
1215         }
1216
1217         if (builtin_net_driver) {
1218                 enqueue_count = vs_enqueue_pkts(vdev, VIRTIO_RXQ,
1219                                                 pkts, rx_count);
1220         } else if (async_vhost_driver) {
1221                 uint32_t cpu_cpl_nr = 0;
1222                 uint16_t enqueue_fail = 0;
1223                 struct rte_mbuf *m_cpu_cpl[MAX_PKT_BURST];
1224
1225                 complete_async_pkts(vdev);
1226                 enqueue_count = rte_vhost_submit_enqueue_burst(vdev->vid,
1227                                         VIRTIO_RXQ, pkts, rx_count,
1228                                         m_cpu_cpl, &cpu_cpl_nr);
1229                 if (cpu_cpl_nr)
1230                         free_pkts(m_cpu_cpl, cpu_cpl_nr);
1231
1232                 enqueue_fail = rx_count - enqueue_count;
1233                 if (enqueue_fail)
1234                         free_pkts(&pkts[enqueue_count], enqueue_fail);
1235
1236         } else {
1237                 enqueue_count = rte_vhost_enqueue_burst(vdev->vid, VIRTIO_RXQ,
1238                                                 pkts, rx_count);
1239         }
1240
1241         if (enable_stats) {
1242                 __atomic_add_fetch(&vdev->stats.rx_total_atomic, rx_count,
1243                                 __ATOMIC_SEQ_CST);
1244                 __atomic_add_fetch(&vdev->stats.rx_atomic, enqueue_count,
1245                                 __ATOMIC_SEQ_CST);
1246         }
1247
1248         if (!async_vhost_driver)
1249                 free_pkts(pkts, rx_count);
1250 }
1251
1252 static __rte_always_inline void
1253 drain_virtio_tx(struct vhost_dev *vdev)
1254 {
1255         struct rte_mbuf *pkts[MAX_PKT_BURST];
1256         uint16_t count;
1257         uint16_t i;
1258
1259         if (builtin_net_driver) {
1260                 count = vs_dequeue_pkts(vdev, VIRTIO_TXQ, mbuf_pool,
1261                                         pkts, MAX_PKT_BURST);
1262         } else {
1263                 count = rte_vhost_dequeue_burst(vdev->vid, VIRTIO_TXQ,
1264                                         mbuf_pool, pkts, MAX_PKT_BURST);
1265         }
1266
1267         /* setup VMDq for the first packet */
1268         if (unlikely(vdev->ready == DEVICE_MAC_LEARNING) && count) {
1269                 if (vdev->remove || link_vmdq(vdev, pkts[0]) == -1)
1270                         free_pkts(pkts, count);
1271         }
1272
1273         for (i = 0; i < count; ++i)
1274                 virtio_tx_route(vdev, pkts[i], vlan_tags[vdev->vid]);
1275 }
1276
1277 /*
1278  * Main function of vhost-switch. It basically does:
1279  *
1280  * for each vhost device {
1281  *    - drain_eth_rx()
1282  *
1283  *      Which drains the host eth Rx queue linked to the vhost device,
1284  *      and deliver all of them to guest virito Rx ring associated with
1285  *      this vhost device.
1286  *
1287  *    - drain_virtio_tx()
1288  *
1289  *      Which drains the guest virtio Tx queue and deliver all of them
1290  *      to the target, which could be another vhost device, or the
1291  *      physical eth dev. The route is done in function "virtio_tx_route".
1292  * }
1293  */
1294 static int
1295 switch_worker(void *arg __rte_unused)
1296 {
1297         unsigned i;
1298         unsigned lcore_id = rte_lcore_id();
1299         struct vhost_dev *vdev;
1300         struct mbuf_table *tx_q;
1301
1302         RTE_LOG(INFO, VHOST_DATA, "Procesing on Core %u started\n", lcore_id);
1303
1304         tx_q = &lcore_tx_queue[lcore_id];
1305         for (i = 0; i < rte_lcore_count(); i++) {
1306                 if (lcore_ids[i] == lcore_id) {
1307                         tx_q->txq_id = i;
1308                         break;
1309                 }
1310         }
1311
1312         while(1) {
1313                 drain_mbuf_table(tx_q);
1314                 drain_vhost_table();
1315                 /*
1316                  * Inform the configuration core that we have exited the
1317                  * linked list and that no devices are in use if requested.
1318                  */
1319                 if (lcore_info[lcore_id].dev_removal_flag == REQUEST_DEV_REMOVAL)
1320                         lcore_info[lcore_id].dev_removal_flag = ACK_DEV_REMOVAL;
1321
1322                 /*
1323                  * Process vhost devices
1324                  */
1325                 TAILQ_FOREACH(vdev, &lcore_info[lcore_id].vdev_list,
1326                               lcore_vdev_entry) {
1327                         if (unlikely(vdev->remove)) {
1328                                 unlink_vmdq(vdev);
1329                                 vdev->ready = DEVICE_SAFE_REMOVE;
1330                                 continue;
1331                         }
1332
1333                         if (likely(vdev->ready == DEVICE_RX))
1334                                 drain_eth_rx(vdev);
1335
1336                         if (likely(!vdev->remove))
1337                                 drain_virtio_tx(vdev);
1338                 }
1339         }
1340
1341         return 0;
1342 }
1343
1344 /*
1345  * Remove a device from the specific data core linked list and from the
1346  * main linked list. Synchonization  occurs through the use of the
1347  * lcore dev_removal_flag. Device is made volatile here to avoid re-ordering
1348  * of dev->remove=1 which can cause an infinite loop in the rte_pause loop.
1349  */
1350 static void
1351 destroy_device(int vid)
1352 {
1353         struct vhost_dev *vdev = NULL;
1354         int lcore;
1355         uint16_t i;
1356
1357         TAILQ_FOREACH(vdev, &vhost_dev_list, global_vdev_entry) {
1358                 if (vdev->vid == vid)
1359                         break;
1360         }
1361         if (!vdev)
1362                 return;
1363         /*set the remove flag. */
1364         vdev->remove = 1;
1365         while(vdev->ready != DEVICE_SAFE_REMOVE) {
1366                 rte_pause();
1367         }
1368
1369         for (i = 0; i < RTE_MAX_LCORE; i++)
1370                 rte_free(vhost_txbuff[i * MAX_VHOST_DEVICE + vid]);
1371
1372         if (builtin_net_driver)
1373                 vs_vhost_net_remove(vdev);
1374
1375         TAILQ_REMOVE(&lcore_info[vdev->coreid].vdev_list, vdev,
1376                      lcore_vdev_entry);
1377         TAILQ_REMOVE(&vhost_dev_list, vdev, global_vdev_entry);
1378
1379
1380         /* Set the dev_removal_flag on each lcore. */
1381         RTE_LCORE_FOREACH_WORKER(lcore)
1382                 lcore_info[lcore].dev_removal_flag = REQUEST_DEV_REMOVAL;
1383
1384         /*
1385          * Once each core has set the dev_removal_flag to ACK_DEV_REMOVAL
1386          * we can be sure that they can no longer access the device removed
1387          * from the linked lists and that the devices are no longer in use.
1388          */
1389         RTE_LCORE_FOREACH_WORKER(lcore) {
1390                 while (lcore_info[lcore].dev_removal_flag != ACK_DEV_REMOVAL)
1391                         rte_pause();
1392         }
1393
1394         lcore_info[vdev->coreid].device_num--;
1395
1396         RTE_LOG(INFO, VHOST_DATA,
1397                 "(%d) device has been removed from data core\n",
1398                 vdev->vid);
1399
1400         if (async_vhost_driver)
1401                 rte_vhost_async_channel_unregister(vid, VIRTIO_RXQ);
1402
1403         rte_free(vdev);
1404 }
1405
1406 /*
1407  * A new device is added to a data core. First the device is added to the main linked list
1408  * and then allocated to a specific data core.
1409  */
1410 static int
1411 new_device(int vid)
1412 {
1413         int lcore, core_add = 0;
1414         uint16_t i;
1415         uint32_t device_num_min = num_devices;
1416         struct vhost_dev *vdev;
1417         vdev = rte_zmalloc("vhost device", sizeof(*vdev), RTE_CACHE_LINE_SIZE);
1418         if (vdev == NULL) {
1419                 RTE_LOG(INFO, VHOST_DATA,
1420                         "(%d) couldn't allocate memory for vhost dev\n",
1421                         vid);
1422                 return -1;
1423         }
1424         vdev->vid = vid;
1425
1426         for (i = 0; i < RTE_MAX_LCORE; i++) {
1427                 vhost_txbuff[i * MAX_VHOST_DEVICE + vid]
1428                         = rte_zmalloc("vhost bufftable",
1429                                 sizeof(struct vhost_bufftable),
1430                                 RTE_CACHE_LINE_SIZE);
1431
1432                 if (vhost_txbuff[i * MAX_VHOST_DEVICE + vid] == NULL) {
1433                         RTE_LOG(INFO, VHOST_DATA,
1434                           "(%d) couldn't allocate memory for vhost TX\n", vid);
1435                         return -1;
1436                 }
1437         }
1438
1439         if (builtin_net_driver)
1440                 vs_vhost_net_setup(vdev);
1441
1442         TAILQ_INSERT_TAIL(&vhost_dev_list, vdev, global_vdev_entry);
1443         vdev->vmdq_rx_q = vid * queues_per_pool + vmdq_queue_base;
1444
1445         /*reset ready flag*/
1446         vdev->ready = DEVICE_MAC_LEARNING;
1447         vdev->remove = 0;
1448
1449         /* Find a suitable lcore to add the device. */
1450         RTE_LCORE_FOREACH_WORKER(lcore) {
1451                 if (lcore_info[lcore].device_num < device_num_min) {
1452                         device_num_min = lcore_info[lcore].device_num;
1453                         core_add = lcore;
1454                 }
1455         }
1456         vdev->coreid = core_add;
1457
1458         TAILQ_INSERT_TAIL(&lcore_info[vdev->coreid].vdev_list, vdev,
1459                           lcore_vdev_entry);
1460         lcore_info[vdev->coreid].device_num++;
1461
1462         /* Disable notifications. */
1463         rte_vhost_enable_guest_notification(vid, VIRTIO_RXQ, 0);
1464         rte_vhost_enable_guest_notification(vid, VIRTIO_TXQ, 0);
1465
1466         RTE_LOG(INFO, VHOST_DATA,
1467                 "(%d) device has been added to data core %d\n",
1468                 vid, vdev->coreid);
1469
1470         if (async_vhost_driver) {
1471                 struct rte_vhost_async_features f;
1472                 struct rte_vhost_async_channel_ops channel_ops;
1473
1474                 if (dma_type != NULL && strncmp(dma_type, "ioat", 4) == 0) {
1475                         channel_ops.transfer_data = ioat_transfer_data_cb;
1476                         channel_ops.check_completed_copies =
1477                                 ioat_check_completed_copies_cb;
1478
1479                         f.async_inorder = 1;
1480                         f.async_threshold = 256;
1481
1482                         return rte_vhost_async_channel_register(vid, VIRTIO_RXQ,
1483                                 f.intval, &channel_ops);
1484                 }
1485         }
1486
1487         return 0;
1488 }
1489
1490 /*
1491  * These callback allow devices to be added to the data core when configuration
1492  * has been fully complete.
1493  */
1494 static const struct vhost_device_ops virtio_net_device_ops =
1495 {
1496         .new_device =  new_device,
1497         .destroy_device = destroy_device,
1498 };
1499
1500 /*
1501  * This is a thread will wake up after a period to print stats if the user has
1502  * enabled them.
1503  */
1504 static void *
1505 print_stats(__rte_unused void *arg)
1506 {
1507         struct vhost_dev *vdev;
1508         uint64_t tx_dropped, rx_dropped;
1509         uint64_t tx, tx_total, rx, rx_total;
1510         const char clr[] = { 27, '[', '2', 'J', '\0' };
1511         const char top_left[] = { 27, '[', '1', ';', '1', 'H','\0' };
1512
1513         while(1) {
1514                 sleep(enable_stats);
1515
1516                 /* Clear screen and move to top left */
1517                 printf("%s%s\n", clr, top_left);
1518                 printf("Device statistics =================================\n");
1519
1520                 TAILQ_FOREACH(vdev, &vhost_dev_list, global_vdev_entry) {
1521                         tx_total   = vdev->stats.tx_total;
1522                         tx         = vdev->stats.tx;
1523                         tx_dropped = tx_total - tx;
1524
1525                         rx_total = __atomic_load_n(&vdev->stats.rx_total_atomic,
1526                                 __ATOMIC_SEQ_CST);
1527                         rx         = __atomic_load_n(&vdev->stats.rx_atomic,
1528                                 __ATOMIC_SEQ_CST);
1529                         rx_dropped = rx_total - rx;
1530
1531                         printf("Statistics for device %d\n"
1532                                 "-----------------------\n"
1533                                 "TX total:              %" PRIu64 "\n"
1534                                 "TX dropped:            %" PRIu64 "\n"
1535                                 "TX successful:         %" PRIu64 "\n"
1536                                 "RX total:              %" PRIu64 "\n"
1537                                 "RX dropped:            %" PRIu64 "\n"
1538                                 "RX successful:         %" PRIu64 "\n",
1539                                 vdev->vid,
1540                                 tx_total, tx_dropped, tx,
1541                                 rx_total, rx_dropped, rx);
1542                 }
1543
1544                 printf("===================================================\n");
1545
1546                 fflush(stdout);
1547         }
1548
1549         return NULL;
1550 }
1551
1552 static void
1553 unregister_drivers(int socket_num)
1554 {
1555         int i, ret;
1556
1557         for (i = 0; i < socket_num; i++) {
1558                 ret = rte_vhost_driver_unregister(socket_files + i * PATH_MAX);
1559                 if (ret != 0)
1560                         RTE_LOG(ERR, VHOST_CONFIG,
1561                                 "Fail to unregister vhost driver for %s.\n",
1562                                 socket_files + i * PATH_MAX);
1563         }
1564 }
1565
1566 /* When we receive a INT signal, unregister vhost driver */
1567 static void
1568 sigint_handler(__rte_unused int signum)
1569 {
1570         /* Unregister vhost driver. */
1571         unregister_drivers(nb_sockets);
1572
1573         exit(0);
1574 }
1575
1576 /*
1577  * While creating an mbuf pool, one key thing is to figure out how
1578  * many mbuf entries is enough for our use. FYI, here are some
1579  * guidelines:
1580  *
1581  * - Each rx queue would reserve @nr_rx_desc mbufs at queue setup stage
1582  *
1583  * - For each switch core (A CPU core does the packet switch), we need
1584  *   also make some reservation for receiving the packets from virtio
1585  *   Tx queue. How many is enough depends on the usage. It's normally
1586  *   a simple calculation like following:
1587  *
1588  *       MAX_PKT_BURST * max packet size / mbuf size
1589  *
1590  *   So, we definitely need allocate more mbufs when TSO is enabled.
1591  *
1592  * - Similarly, for each switching core, we should serve @nr_rx_desc
1593  *   mbufs for receiving the packets from physical NIC device.
1594  *
1595  * - We also need make sure, for each switch core, we have allocated
1596  *   enough mbufs to fill up the mbuf cache.
1597  */
1598 static void
1599 create_mbuf_pool(uint16_t nr_port, uint32_t nr_switch_core, uint32_t mbuf_size,
1600         uint32_t nr_queues, uint32_t nr_rx_desc, uint32_t nr_mbuf_cache)
1601 {
1602         uint32_t nr_mbufs;
1603         uint32_t nr_mbufs_per_core;
1604         uint32_t mtu = 1500;
1605
1606         if (mergeable)
1607                 mtu = 9000;
1608         if (enable_tso)
1609                 mtu = 64 * 1024;
1610
1611         nr_mbufs_per_core  = (mtu + mbuf_size) * MAX_PKT_BURST /
1612                         (mbuf_size - RTE_PKTMBUF_HEADROOM);
1613         nr_mbufs_per_core += nr_rx_desc;
1614         nr_mbufs_per_core  = RTE_MAX(nr_mbufs_per_core, nr_mbuf_cache);
1615
1616         nr_mbufs  = nr_queues * nr_rx_desc;
1617         nr_mbufs += nr_mbufs_per_core * nr_switch_core;
1618         nr_mbufs *= nr_port;
1619
1620         mbuf_pool = rte_pktmbuf_pool_create("MBUF_POOL", nr_mbufs,
1621                                             nr_mbuf_cache, 0, mbuf_size,
1622                                             rte_socket_id());
1623         if (mbuf_pool == NULL)
1624                 rte_exit(EXIT_FAILURE, "Cannot create mbuf pool\n");
1625 }
1626
1627 /*
1628  * Main function, does initialisation and calls the per-lcore functions.
1629  */
1630 int
1631 main(int argc, char *argv[])
1632 {
1633         unsigned lcore_id, core_id = 0;
1634         unsigned nb_ports, valid_num_ports;
1635         int ret, i;
1636         uint16_t portid;
1637         static pthread_t tid;
1638         uint64_t flags = RTE_VHOST_USER_NET_COMPLIANT_OL_FLAGS;
1639
1640         signal(SIGINT, sigint_handler);
1641
1642         /* init EAL */
1643         ret = rte_eal_init(argc, argv);
1644         if (ret < 0)
1645                 rte_exit(EXIT_FAILURE, "Error with EAL initialization\n");
1646         argc -= ret;
1647         argv += ret;
1648
1649         /* parse app arguments */
1650         ret = us_vhost_parse_args(argc, argv);
1651         if (ret < 0)
1652                 rte_exit(EXIT_FAILURE, "Invalid argument\n");
1653
1654         for (lcore_id = 0; lcore_id < RTE_MAX_LCORE; lcore_id++) {
1655                 TAILQ_INIT(&lcore_info[lcore_id].vdev_list);
1656
1657                 if (rte_lcore_is_enabled(lcore_id))
1658                         lcore_ids[core_id++] = lcore_id;
1659         }
1660
1661         if (rte_lcore_count() > RTE_MAX_LCORE)
1662                 rte_exit(EXIT_FAILURE,"Not enough cores\n");
1663
1664         /* Get the number of physical ports. */
1665         nb_ports = rte_eth_dev_count_avail();
1666
1667         /*
1668          * Update the global var NUM_PORTS and global array PORTS
1669          * and get value of var VALID_NUM_PORTS according to system ports number
1670          */
1671         valid_num_ports = check_ports_num(nb_ports);
1672
1673         if ((valid_num_ports ==  0) || (valid_num_ports > MAX_SUP_PORTS)) {
1674                 RTE_LOG(INFO, VHOST_PORT, "Current enabled port number is %u,"
1675                         "but only %u port can be enabled\n",num_ports, MAX_SUP_PORTS);
1676                 return -1;
1677         }
1678
1679         /*
1680          * FIXME: here we are trying to allocate mbufs big enough for
1681          * @MAX_QUEUES, but the truth is we're never going to use that
1682          * many queues here. We probably should only do allocation for
1683          * those queues we are going to use.
1684          */
1685         create_mbuf_pool(valid_num_ports, rte_lcore_count() - 1, MBUF_DATA_SIZE,
1686                          MAX_QUEUES, RTE_TEST_RX_DESC_DEFAULT, MBUF_CACHE_SIZE);
1687
1688         if (vm2vm_mode == VM2VM_HARDWARE) {
1689                 /* Enable VT loop back to let L2 switch to do it. */
1690                 vmdq_conf_default.rx_adv_conf.vmdq_rx_conf.enable_loop_back = 1;
1691                 RTE_LOG(DEBUG, VHOST_CONFIG,
1692                         "Enable loop back for L2 switch in vmdq.\n");
1693         }
1694
1695         /* initialize all ports */
1696         RTE_ETH_FOREACH_DEV(portid) {
1697                 /* skip ports that are not enabled */
1698                 if ((enabled_port_mask & (1 << portid)) == 0) {
1699                         RTE_LOG(INFO, VHOST_PORT,
1700                                 "Skipping disabled port %d\n", portid);
1701                         continue;
1702                 }
1703                 if (port_init(portid) != 0)
1704                         rte_exit(EXIT_FAILURE,
1705                                 "Cannot initialize network ports\n");
1706         }
1707
1708         /* Enable stats if the user option is set. */
1709         if (enable_stats) {
1710                 ret = rte_ctrl_thread_create(&tid, "print-stats", NULL,
1711                                         print_stats, NULL);
1712                 if (ret < 0)
1713                         rte_exit(EXIT_FAILURE,
1714                                 "Cannot create print-stats thread\n");
1715         }
1716
1717         /* Launch all data cores. */
1718         RTE_LCORE_FOREACH_WORKER(lcore_id)
1719                 rte_eal_remote_launch(switch_worker, NULL, lcore_id);
1720
1721         if (client_mode)
1722                 flags |= RTE_VHOST_USER_CLIENT;
1723
1724         /* Register vhost user driver to handle vhost messages. */
1725         for (i = 0; i < nb_sockets; i++) {
1726                 char *file = socket_files + i * PATH_MAX;
1727
1728                 if (async_vhost_driver)
1729                         flags = flags | RTE_VHOST_USER_ASYNC_COPY;
1730
1731                 ret = rte_vhost_driver_register(file, flags);
1732                 if (ret != 0) {
1733                         unregister_drivers(i);
1734                         rte_exit(EXIT_FAILURE,
1735                                 "vhost driver register failure.\n");
1736                 }
1737
1738                 if (builtin_net_driver)
1739                         rte_vhost_driver_set_features(file, VIRTIO_NET_FEATURES);
1740
1741                 if (mergeable == 0) {
1742                         rte_vhost_driver_disable_features(file,
1743                                 1ULL << VIRTIO_NET_F_MRG_RXBUF);
1744                 }
1745
1746                 if (enable_tx_csum == 0) {
1747                         rte_vhost_driver_disable_features(file,
1748                                 1ULL << VIRTIO_NET_F_CSUM);
1749                 }
1750
1751                 if (enable_tso == 0) {
1752                         rte_vhost_driver_disable_features(file,
1753                                 1ULL << VIRTIO_NET_F_HOST_TSO4);
1754                         rte_vhost_driver_disable_features(file,
1755                                 1ULL << VIRTIO_NET_F_HOST_TSO6);
1756                         rte_vhost_driver_disable_features(file,
1757                                 1ULL << VIRTIO_NET_F_GUEST_TSO4);
1758                         rte_vhost_driver_disable_features(file,
1759                                 1ULL << VIRTIO_NET_F_GUEST_TSO6);
1760                 }
1761
1762                 if (promiscuous) {
1763                         rte_vhost_driver_enable_features(file,
1764                                 1ULL << VIRTIO_NET_F_CTRL_RX);
1765                 }
1766
1767                 ret = rte_vhost_driver_callback_register(file,
1768                         &virtio_net_device_ops);
1769                 if (ret != 0) {
1770                         rte_exit(EXIT_FAILURE,
1771                                 "failed to register vhost driver callbacks.\n");
1772                 }
1773
1774                 if (rte_vhost_driver_start(file) < 0) {
1775                         rte_exit(EXIT_FAILURE,
1776                                 "failed to start vhost driver.\n");
1777                 }
1778         }
1779
1780         RTE_LCORE_FOREACH_WORKER(lcore_id)
1781                 rte_eal_wait_lcore(lcore_id);
1782
1783         /* clean up the EAL */
1784         rte_eal_cleanup();
1785
1786         return 0;
1787 }