xref: /dpdk/app/test-pmd/config.c (revision 59f3a8acbcdbafeebe816a26d76dfb06e6450f31)
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2010-2016 Intel Corporation.
3  * Copyright 2013-2014 6WIND S.A.
4  */
5 
6 #include <stdarg.h>
7 #include <errno.h>
8 #include <stdio.h>
9 #include <string.h>
10 #include <stdint.h>
11 #include <inttypes.h>
12 
13 #include <sys/queue.h>
14 #include <sys/types.h>
15 #include <sys/stat.h>
16 #include <fcntl.h>
17 #include <unistd.h>
18 
19 #include <rte_common.h>
20 #include <rte_byteorder.h>
21 #include <rte_debug.h>
22 #include <rte_log.h>
23 #include <rte_memory.h>
24 #include <rte_memcpy.h>
25 #include <rte_memzone.h>
26 #include <rte_launch.h>
27 #include <rte_eal.h>
28 #include <rte_per_lcore.h>
29 #include <rte_lcore.h>
30 #include <rte_atomic.h>
31 #include <rte_branch_prediction.h>
32 #include <rte_mempool.h>
33 #include <rte_mbuf.h>
34 #include <rte_interrupts.h>
35 #include <rte_pci.h>
36 #include <rte_ether.h>
37 #include <rte_ethdev.h>
38 #include <rte_string_fns.h>
39 #include <rte_cycles.h>
40 #include <rte_flow.h>
41 #include <rte_mtr.h>
42 #include <rte_errno.h>
43 #ifdef RTE_NET_IXGBE
44 #include <rte_pmd_ixgbe.h>
45 #endif
46 #ifdef RTE_NET_I40E
47 #include <rte_pmd_i40e.h>
48 #endif
49 #ifdef RTE_NET_BNXT
50 #include <rte_pmd_bnxt.h>
51 #endif
52 #include <rte_gro.h>
53 #include <rte_hexdump.h>
54 
55 #include "testpmd.h"
56 #include "cmdline_mtr.h"
57 
58 #define ETHDEV_FWVERS_LEN 32
59 
60 #ifdef CLOCK_MONOTONIC_RAW /* Defined in glibc bits/time.h */
61 #define CLOCK_TYPE_ID CLOCK_MONOTONIC_RAW
62 #else
63 #define CLOCK_TYPE_ID CLOCK_MONOTONIC
64 #endif
65 
66 #define NS_PER_SEC 1E9
67 
68 static char *flowtype_to_str(uint16_t flow_type);
69 
70 static const struct {
71 	enum tx_pkt_split split;
72 	const char *name;
73 } tx_split_name[] = {
74 	{
75 		.split = TX_PKT_SPLIT_OFF,
76 		.name = "off",
77 	},
78 	{
79 		.split = TX_PKT_SPLIT_ON,
80 		.name = "on",
81 	},
82 	{
83 		.split = TX_PKT_SPLIT_RND,
84 		.name = "rand",
85 	},
86 };
87 
88 const struct rss_type_info rss_type_table[] = {
89 	{ "all", ETH_RSS_ETH | ETH_RSS_VLAN | ETH_RSS_IP | ETH_RSS_TCP |
90 		ETH_RSS_UDP | ETH_RSS_SCTP | ETH_RSS_L2_PAYLOAD |
91 		ETH_RSS_L2TPV3 | ETH_RSS_ESP | ETH_RSS_AH | ETH_RSS_PFCP |
92 		ETH_RSS_GTPU | ETH_RSS_ECPRI | ETH_RSS_MPLS},
93 	{ "none", 0 },
94 	{ "eth", ETH_RSS_ETH },
95 	{ "l2-src-only", ETH_RSS_L2_SRC_ONLY },
96 	{ "l2-dst-only", ETH_RSS_L2_DST_ONLY },
97 	{ "vlan", ETH_RSS_VLAN },
98 	{ "s-vlan", ETH_RSS_S_VLAN },
99 	{ "c-vlan", ETH_RSS_C_VLAN },
100 	{ "ipv4", ETH_RSS_IPV4 },
101 	{ "ipv4-frag", ETH_RSS_FRAG_IPV4 },
102 	{ "ipv4-tcp", ETH_RSS_NONFRAG_IPV4_TCP },
103 	{ "ipv4-udp", ETH_RSS_NONFRAG_IPV4_UDP },
104 	{ "ipv4-sctp", ETH_RSS_NONFRAG_IPV4_SCTP },
105 	{ "ipv4-other", ETH_RSS_NONFRAG_IPV4_OTHER },
106 	{ "ipv6", ETH_RSS_IPV6 },
107 	{ "ipv6-frag", ETH_RSS_FRAG_IPV6 },
108 	{ "ipv6-tcp", ETH_RSS_NONFRAG_IPV6_TCP },
109 	{ "ipv6-udp", ETH_RSS_NONFRAG_IPV6_UDP },
110 	{ "ipv6-sctp", ETH_RSS_NONFRAG_IPV6_SCTP },
111 	{ "ipv6-other", ETH_RSS_NONFRAG_IPV6_OTHER },
112 	{ "l2-payload", ETH_RSS_L2_PAYLOAD },
113 	{ "ipv6-ex", ETH_RSS_IPV6_EX },
114 	{ "ipv6-tcp-ex", ETH_RSS_IPV6_TCP_EX },
115 	{ "ipv6-udp-ex", ETH_RSS_IPV6_UDP_EX },
116 	{ "port", ETH_RSS_PORT },
117 	{ "vxlan", ETH_RSS_VXLAN },
118 	{ "geneve", ETH_RSS_GENEVE },
119 	{ "nvgre", ETH_RSS_NVGRE },
120 	{ "ip", ETH_RSS_IP },
121 	{ "udp", ETH_RSS_UDP },
122 	{ "tcp", ETH_RSS_TCP },
123 	{ "sctp", ETH_RSS_SCTP },
124 	{ "tunnel", ETH_RSS_TUNNEL },
125 	{ "l3-pre32", RTE_ETH_RSS_L3_PRE32 },
126 	{ "l3-pre40", RTE_ETH_RSS_L3_PRE40 },
127 	{ "l3-pre48", RTE_ETH_RSS_L3_PRE48 },
128 	{ "l3-pre56", RTE_ETH_RSS_L3_PRE56 },
129 	{ "l3-pre64", RTE_ETH_RSS_L3_PRE64 },
130 	{ "l3-pre96", RTE_ETH_RSS_L3_PRE96 },
131 	{ "l3-src-only", ETH_RSS_L3_SRC_ONLY },
132 	{ "l3-dst-only", ETH_RSS_L3_DST_ONLY },
133 	{ "l4-src-only", ETH_RSS_L4_SRC_ONLY },
134 	{ "l4-dst-only", ETH_RSS_L4_DST_ONLY },
135 	{ "esp", ETH_RSS_ESP },
136 	{ "ah", ETH_RSS_AH },
137 	{ "l2tpv3", ETH_RSS_L2TPV3 },
138 	{ "pfcp", ETH_RSS_PFCP },
139 	{ "pppoe", ETH_RSS_PPPOE },
140 	{ "gtpu", ETH_RSS_GTPU },
141 	{ "ecpri", ETH_RSS_ECPRI },
142 	{ "mpls", ETH_RSS_MPLS },
143 	{ "ipv4-chksum", ETH_RSS_IPV4_CHKSUM },
144 	{ "l4-chksum", ETH_RSS_L4_CHKSUM },
145 	{ NULL, 0 },
146 };
147 
148 static const struct {
149 	enum rte_eth_fec_mode mode;
150 	const char *name;
151 } fec_mode_name[] = {
152 	{
153 		.mode = RTE_ETH_FEC_NOFEC,
154 		.name = "off",
155 	},
156 	{
157 		.mode = RTE_ETH_FEC_AUTO,
158 		.name = "auto",
159 	},
160 	{
161 		.mode = RTE_ETH_FEC_BASER,
162 		.name = "baser",
163 	},
164 	{
165 		.mode = RTE_ETH_FEC_RS,
166 		.name = "rs",
167 	},
168 };
169 
170 static void
171 print_ethaddr(const char *name, struct rte_ether_addr *eth_addr)
172 {
173 	char buf[RTE_ETHER_ADDR_FMT_SIZE];
174 	rte_ether_format_addr(buf, RTE_ETHER_ADDR_FMT_SIZE, eth_addr);
175 	printf("%s%s", name, buf);
176 }
177 
178 static void
179 nic_xstats_display_periodic(portid_t port_id)
180 {
181 	struct xstat_display_info *xstats_info;
182 	uint64_t *prev_values, *curr_values;
183 	uint64_t diff_value, value_rate;
184 	struct timespec cur_time;
185 	uint64_t *ids_supp;
186 	size_t ids_supp_sz;
187 	uint64_t diff_ns;
188 	unsigned int i;
189 	int rc;
190 
191 	xstats_info = &ports[port_id].xstats_info;
192 
193 	ids_supp_sz = xstats_info->ids_supp_sz;
194 	if (ids_supp_sz == 0)
195 		return;
196 
197 	printf("\n");
198 
199 	ids_supp = xstats_info->ids_supp;
200 	prev_values = xstats_info->prev_values;
201 	curr_values = xstats_info->curr_values;
202 
203 	rc = rte_eth_xstats_get_by_id(port_id, ids_supp, curr_values,
204 				      ids_supp_sz);
205 	if (rc != (int)ids_supp_sz) {
206 		fprintf(stderr,
207 			"Failed to get values of %zu xstats for port %u - return code %d\n",
208 			ids_supp_sz, port_id, rc);
209 		return;
210 	}
211 
212 	diff_ns = 0;
213 	if (clock_gettime(CLOCK_TYPE_ID, &cur_time) == 0) {
214 		uint64_t ns;
215 
216 		ns = cur_time.tv_sec * NS_PER_SEC;
217 		ns += cur_time.tv_nsec;
218 
219 		if (xstats_info->prev_ns != 0)
220 			diff_ns = ns - xstats_info->prev_ns;
221 		xstats_info->prev_ns = ns;
222 	}
223 
224 	printf("%-31s%-17s%s\n", " ", "Value", "Rate (since last show)");
225 	for (i = 0; i < ids_supp_sz; i++) {
226 		diff_value = (curr_values[i] > prev_values[i]) ?
227 			     (curr_values[i] - prev_values[i]) : 0;
228 		prev_values[i] = curr_values[i];
229 		value_rate = diff_ns > 0 ?
230 				(double)diff_value / diff_ns * NS_PER_SEC : 0;
231 
232 		printf("  %-25s%12"PRIu64" %15"PRIu64"\n",
233 		       xstats_display[i].name, curr_values[i], value_rate);
234 	}
235 }
236 
237 void
238 nic_stats_display(portid_t port_id)
239 {
240 	static uint64_t prev_pkts_rx[RTE_MAX_ETHPORTS];
241 	static uint64_t prev_pkts_tx[RTE_MAX_ETHPORTS];
242 	static uint64_t prev_bytes_rx[RTE_MAX_ETHPORTS];
243 	static uint64_t prev_bytes_tx[RTE_MAX_ETHPORTS];
244 	static uint64_t prev_ns[RTE_MAX_ETHPORTS];
245 	struct timespec cur_time;
246 	uint64_t diff_pkts_rx, diff_pkts_tx, diff_bytes_rx, diff_bytes_tx,
247 								diff_ns;
248 	uint64_t mpps_rx, mpps_tx, mbps_rx, mbps_tx;
249 	struct rte_eth_stats stats;
250 
251 	static const char *nic_stats_border = "########################";
252 
253 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
254 		print_valid_ports();
255 		return;
256 	}
257 	rte_eth_stats_get(port_id, &stats);
258 	printf("\n  %s NIC statistics for port %-2d %s\n",
259 	       nic_stats_border, port_id, nic_stats_border);
260 
261 	printf("  RX-packets: %-10"PRIu64" RX-missed: %-10"PRIu64" RX-bytes:  "
262 	       "%-"PRIu64"\n", stats.ipackets, stats.imissed, stats.ibytes);
263 	printf("  RX-errors: %-"PRIu64"\n", stats.ierrors);
264 	printf("  RX-nombuf:  %-10"PRIu64"\n", stats.rx_nombuf);
265 	printf("  TX-packets: %-10"PRIu64" TX-errors: %-10"PRIu64" TX-bytes:  "
266 	       "%-"PRIu64"\n", stats.opackets, stats.oerrors, stats.obytes);
267 
268 	diff_ns = 0;
269 	if (clock_gettime(CLOCK_TYPE_ID, &cur_time) == 0) {
270 		uint64_t ns;
271 
272 		ns = cur_time.tv_sec * NS_PER_SEC;
273 		ns += cur_time.tv_nsec;
274 
275 		if (prev_ns[port_id] != 0)
276 			diff_ns = ns - prev_ns[port_id];
277 		prev_ns[port_id] = ns;
278 	}
279 
280 	diff_pkts_rx = (stats.ipackets > prev_pkts_rx[port_id]) ?
281 		(stats.ipackets - prev_pkts_rx[port_id]) : 0;
282 	diff_pkts_tx = (stats.opackets > prev_pkts_tx[port_id]) ?
283 		(stats.opackets - prev_pkts_tx[port_id]) : 0;
284 	prev_pkts_rx[port_id] = stats.ipackets;
285 	prev_pkts_tx[port_id] = stats.opackets;
286 	mpps_rx = diff_ns > 0 ?
287 		(double)diff_pkts_rx / diff_ns * NS_PER_SEC : 0;
288 	mpps_tx = diff_ns > 0 ?
289 		(double)diff_pkts_tx / diff_ns * NS_PER_SEC : 0;
290 
291 	diff_bytes_rx = (stats.ibytes > prev_bytes_rx[port_id]) ?
292 		(stats.ibytes - prev_bytes_rx[port_id]) : 0;
293 	diff_bytes_tx = (stats.obytes > prev_bytes_tx[port_id]) ?
294 		(stats.obytes - prev_bytes_tx[port_id]) : 0;
295 	prev_bytes_rx[port_id] = stats.ibytes;
296 	prev_bytes_tx[port_id] = stats.obytes;
297 	mbps_rx = diff_ns > 0 ?
298 		(double)diff_bytes_rx / diff_ns * NS_PER_SEC : 0;
299 	mbps_tx = diff_ns > 0 ?
300 		(double)diff_bytes_tx / diff_ns * NS_PER_SEC : 0;
301 
302 	printf("\n  Throughput (since last show)\n");
303 	printf("  Rx-pps: %12"PRIu64"          Rx-bps: %12"PRIu64"\n  Tx-pps: %12"
304 	       PRIu64"          Tx-bps: %12"PRIu64"\n", mpps_rx, mbps_rx * 8,
305 	       mpps_tx, mbps_tx * 8);
306 
307 	if (xstats_display_num > 0)
308 		nic_xstats_display_periodic(port_id);
309 
310 	printf("  %s############################%s\n",
311 	       nic_stats_border, nic_stats_border);
312 }
313 
314 void
315 nic_stats_clear(portid_t port_id)
316 {
317 	int ret;
318 
319 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
320 		print_valid_ports();
321 		return;
322 	}
323 
324 	ret = rte_eth_stats_reset(port_id);
325 	if (ret != 0) {
326 		fprintf(stderr,
327 			"%s: Error: failed to reset stats (port %u): %s",
328 			__func__, port_id, strerror(-ret));
329 		return;
330 	}
331 
332 	ret = rte_eth_stats_get(port_id, &ports[port_id].stats);
333 	if (ret != 0) {
334 		if (ret < 0)
335 			ret = -ret;
336 		fprintf(stderr,
337 			"%s: Error: failed to get stats (port %u): %s",
338 			__func__, port_id, strerror(ret));
339 		return;
340 	}
341 	printf("\n  NIC statistics for port %d cleared\n", port_id);
342 }
343 
344 void
345 nic_xstats_display(portid_t port_id)
346 {
347 	struct rte_eth_xstat *xstats;
348 	int cnt_xstats, idx_xstat;
349 	struct rte_eth_xstat_name *xstats_names;
350 
351 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
352 		print_valid_ports();
353 		return;
354 	}
355 	printf("###### NIC extended statistics for port %-2d\n", port_id);
356 	if (!rte_eth_dev_is_valid_port(port_id)) {
357 		fprintf(stderr, "Error: Invalid port number %i\n", port_id);
358 		return;
359 	}
360 
361 	/* Get count */
362 	cnt_xstats = rte_eth_xstats_get_names(port_id, NULL, 0);
363 	if (cnt_xstats  < 0) {
364 		fprintf(stderr, "Error: Cannot get count of xstats\n");
365 		return;
366 	}
367 
368 	/* Get id-name lookup table */
369 	xstats_names = malloc(sizeof(struct rte_eth_xstat_name) * cnt_xstats);
370 	if (xstats_names == NULL) {
371 		fprintf(stderr, "Cannot allocate memory for xstats lookup\n");
372 		return;
373 	}
374 	if (cnt_xstats != rte_eth_xstats_get_names(
375 			port_id, xstats_names, cnt_xstats)) {
376 		fprintf(stderr, "Error: Cannot get xstats lookup\n");
377 		free(xstats_names);
378 		return;
379 	}
380 
381 	/* Get stats themselves */
382 	xstats = malloc(sizeof(struct rte_eth_xstat) * cnt_xstats);
383 	if (xstats == NULL) {
384 		fprintf(stderr, "Cannot allocate memory for xstats\n");
385 		free(xstats_names);
386 		return;
387 	}
388 	if (cnt_xstats != rte_eth_xstats_get(port_id, xstats, cnt_xstats)) {
389 		fprintf(stderr, "Error: Unable to get xstats\n");
390 		free(xstats_names);
391 		free(xstats);
392 		return;
393 	}
394 
395 	/* Display xstats */
396 	for (idx_xstat = 0; idx_xstat < cnt_xstats; idx_xstat++) {
397 		if (xstats_hide_zero && !xstats[idx_xstat].value)
398 			continue;
399 		printf("%s: %"PRIu64"\n",
400 			xstats_names[idx_xstat].name,
401 			xstats[idx_xstat].value);
402 	}
403 	free(xstats_names);
404 	free(xstats);
405 }
406 
407 void
408 nic_xstats_clear(portid_t port_id)
409 {
410 	int ret;
411 
412 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
413 		print_valid_ports();
414 		return;
415 	}
416 
417 	ret = rte_eth_xstats_reset(port_id);
418 	if (ret != 0) {
419 		fprintf(stderr,
420 			"%s: Error: failed to reset xstats (port %u): %s\n",
421 			__func__, port_id, strerror(-ret));
422 		return;
423 	}
424 
425 	ret = rte_eth_stats_get(port_id, &ports[port_id].stats);
426 	if (ret != 0) {
427 		if (ret < 0)
428 			ret = -ret;
429 		fprintf(stderr, "%s: Error: failed to get stats (port %u): %s",
430 			__func__, port_id, strerror(ret));
431 		return;
432 	}
433 }
434 
435 static const char *
436 get_queue_state_name(uint8_t queue_state)
437 {
438 	if (queue_state == RTE_ETH_QUEUE_STATE_STOPPED)
439 		return "stopped";
440 	else if (queue_state == RTE_ETH_QUEUE_STATE_STARTED)
441 		return "started";
442 	else if (queue_state == RTE_ETH_QUEUE_STATE_HAIRPIN)
443 		return "hairpin";
444 	else
445 		return "unknown";
446 }
447 
448 void
449 rx_queue_infos_display(portid_t port_id, uint16_t queue_id)
450 {
451 	struct rte_eth_burst_mode mode;
452 	struct rte_eth_rxq_info qinfo;
453 	int32_t rc;
454 	static const char *info_border = "*********************";
455 
456 	rc = rte_eth_rx_queue_info_get(port_id, queue_id, &qinfo);
457 	if (rc != 0) {
458 		fprintf(stderr,
459 			"Failed to retrieve information for port: %u, RX queue: %hu\nerror desc: %s(%d)\n",
460 			port_id, queue_id, strerror(-rc), rc);
461 		return;
462 	}
463 
464 	printf("\n%s Infos for port %-2u, RX queue %-2u %s",
465 	       info_border, port_id, queue_id, info_border);
466 
467 	printf("\nMempool: %s", (qinfo.mp == NULL) ? "NULL" : qinfo.mp->name);
468 	printf("\nRX prefetch threshold: %hhu", qinfo.conf.rx_thresh.pthresh);
469 	printf("\nRX host threshold: %hhu", qinfo.conf.rx_thresh.hthresh);
470 	printf("\nRX writeback threshold: %hhu", qinfo.conf.rx_thresh.wthresh);
471 	printf("\nRX free threshold: %hu", qinfo.conf.rx_free_thresh);
472 	printf("\nRX drop packets: %s",
473 		(qinfo.conf.rx_drop_en != 0) ? "on" : "off");
474 	printf("\nRX deferred start: %s",
475 		(qinfo.conf.rx_deferred_start != 0) ? "on" : "off");
476 	printf("\nRX scattered packets: %s",
477 		(qinfo.scattered_rx != 0) ? "on" : "off");
478 	printf("\nRx queue state: %s", get_queue_state_name(qinfo.queue_state));
479 	if (qinfo.rx_buf_size != 0)
480 		printf("\nRX buffer size: %hu", qinfo.rx_buf_size);
481 	printf("\nNumber of RXDs: %hu", qinfo.nb_desc);
482 
483 	if (rte_eth_rx_burst_mode_get(port_id, queue_id, &mode) == 0)
484 		printf("\nBurst mode: %s%s",
485 		       mode.info,
486 		       mode.flags & RTE_ETH_BURST_FLAG_PER_QUEUE ?
487 				" (per queue)" : "");
488 
489 	printf("\n");
490 }
491 
492 void
493 tx_queue_infos_display(portid_t port_id, uint16_t queue_id)
494 {
495 	struct rte_eth_burst_mode mode;
496 	struct rte_eth_txq_info qinfo;
497 	int32_t rc;
498 	static const char *info_border = "*********************";
499 
500 	rc = rte_eth_tx_queue_info_get(port_id, queue_id, &qinfo);
501 	if (rc != 0) {
502 		fprintf(stderr,
503 			"Failed to retrieve information for port: %u, TX queue: %hu\nerror desc: %s(%d)\n",
504 			port_id, queue_id, strerror(-rc), rc);
505 		return;
506 	}
507 
508 	printf("\n%s Infos for port %-2u, TX queue %-2u %s",
509 	       info_border, port_id, queue_id, info_border);
510 
511 	printf("\nTX prefetch threshold: %hhu", qinfo.conf.tx_thresh.pthresh);
512 	printf("\nTX host threshold: %hhu", qinfo.conf.tx_thresh.hthresh);
513 	printf("\nTX writeback threshold: %hhu", qinfo.conf.tx_thresh.wthresh);
514 	printf("\nTX RS threshold: %hu", qinfo.conf.tx_rs_thresh);
515 	printf("\nTX free threshold: %hu", qinfo.conf.tx_free_thresh);
516 	printf("\nTX deferred start: %s",
517 		(qinfo.conf.tx_deferred_start != 0) ? "on" : "off");
518 	printf("\nNumber of TXDs: %hu", qinfo.nb_desc);
519 	printf("\nTx queue state: %s", get_queue_state_name(qinfo.queue_state));
520 
521 	if (rte_eth_tx_burst_mode_get(port_id, queue_id, &mode) == 0)
522 		printf("\nBurst mode: %s%s",
523 		       mode.info,
524 		       mode.flags & RTE_ETH_BURST_FLAG_PER_QUEUE ?
525 				" (per queue)" : "");
526 
527 	printf("\n");
528 }
529 
530 static int bus_match_all(const struct rte_bus *bus, const void *data)
531 {
532 	RTE_SET_USED(bus);
533 	RTE_SET_USED(data);
534 	return 0;
535 }
536 
537 static void
538 device_infos_display_speeds(uint32_t speed_capa)
539 {
540 	printf("\n\tDevice speed capability:");
541 	if (speed_capa == ETH_LINK_SPEED_AUTONEG)
542 		printf(" Autonegotiate (all speeds)");
543 	if (speed_capa & ETH_LINK_SPEED_FIXED)
544 		printf(" Disable autonegotiate (fixed speed)  ");
545 	if (speed_capa & ETH_LINK_SPEED_10M_HD)
546 		printf(" 10 Mbps half-duplex  ");
547 	if (speed_capa & ETH_LINK_SPEED_10M)
548 		printf(" 10 Mbps full-duplex  ");
549 	if (speed_capa & ETH_LINK_SPEED_100M_HD)
550 		printf(" 100 Mbps half-duplex  ");
551 	if (speed_capa & ETH_LINK_SPEED_100M)
552 		printf(" 100 Mbps full-duplex  ");
553 	if (speed_capa & ETH_LINK_SPEED_1G)
554 		printf(" 1 Gbps  ");
555 	if (speed_capa & ETH_LINK_SPEED_2_5G)
556 		printf(" 2.5 Gbps  ");
557 	if (speed_capa & ETH_LINK_SPEED_5G)
558 		printf(" 5 Gbps  ");
559 	if (speed_capa & ETH_LINK_SPEED_10G)
560 		printf(" 10 Gbps  ");
561 	if (speed_capa & ETH_LINK_SPEED_20G)
562 		printf(" 20 Gbps  ");
563 	if (speed_capa & ETH_LINK_SPEED_25G)
564 		printf(" 25 Gbps  ");
565 	if (speed_capa & ETH_LINK_SPEED_40G)
566 		printf(" 40 Gbps  ");
567 	if (speed_capa & ETH_LINK_SPEED_50G)
568 		printf(" 50 Gbps  ");
569 	if (speed_capa & ETH_LINK_SPEED_56G)
570 		printf(" 56 Gbps  ");
571 	if (speed_capa & ETH_LINK_SPEED_100G)
572 		printf(" 100 Gbps  ");
573 	if (speed_capa & ETH_LINK_SPEED_200G)
574 		printf(" 200 Gbps  ");
575 }
576 
577 void
578 device_infos_display(const char *identifier)
579 {
580 	static const char *info_border = "*********************";
581 	struct rte_bus *start = NULL, *next;
582 	struct rte_dev_iterator dev_iter;
583 	char name[RTE_ETH_NAME_MAX_LEN];
584 	struct rte_ether_addr mac_addr;
585 	struct rte_device *dev;
586 	struct rte_devargs da;
587 	portid_t port_id;
588 	struct rte_eth_dev_info dev_info;
589 	char devstr[128];
590 
591 	memset(&da, 0, sizeof(da));
592 	if (!identifier)
593 		goto skip_parse;
594 
595 	if (rte_devargs_parsef(&da, "%s", identifier)) {
596 		fprintf(stderr, "cannot parse identifier\n");
597 		return;
598 	}
599 
600 skip_parse:
601 	while ((next = rte_bus_find(start, bus_match_all, NULL)) != NULL) {
602 
603 		start = next;
604 		if (identifier && da.bus != next)
605 			continue;
606 
607 		/* Skip buses that don't have iterate method */
608 		if (!next->dev_iterate)
609 			continue;
610 
611 		snprintf(devstr, sizeof(devstr), "bus=%s", next->name);
612 		RTE_DEV_FOREACH(dev, devstr, &dev_iter) {
613 
614 			if (!dev->driver)
615 				continue;
616 			/* Check for matching device if identifier is present */
617 			if (identifier &&
618 			    strncmp(da.name, dev->name, strlen(dev->name)))
619 				continue;
620 			printf("\n%s Infos for device %s %s\n",
621 			       info_border, dev->name, info_border);
622 			printf("Bus name: %s", dev->bus->name);
623 			printf("\nDriver name: %s", dev->driver->name);
624 			printf("\nDevargs: %s",
625 			       dev->devargs ? dev->devargs->args : "");
626 			printf("\nConnect to socket: %d", dev->numa_node);
627 			printf("\n");
628 
629 			/* List ports with matching device name */
630 			RTE_ETH_FOREACH_DEV_OF(port_id, dev) {
631 				printf("\n\tPort id: %-2d", port_id);
632 				if (eth_macaddr_get_print_err(port_id,
633 							      &mac_addr) == 0)
634 					print_ethaddr("\n\tMAC address: ",
635 						      &mac_addr);
636 				rte_eth_dev_get_name_by_port(port_id, name);
637 				printf("\n\tDevice name: %s", name);
638 				if (rte_eth_dev_info_get(port_id, &dev_info) == 0)
639 					device_infos_display_speeds(dev_info.speed_capa);
640 				printf("\n");
641 			}
642 		}
643 	};
644 	rte_devargs_reset(&da);
645 }
646 
647 void
648 port_infos_display(portid_t port_id)
649 {
650 	struct rte_port *port;
651 	struct rte_ether_addr mac_addr;
652 	struct rte_eth_link link;
653 	struct rte_eth_dev_info dev_info;
654 	int vlan_offload;
655 	struct rte_mempool * mp;
656 	static const char *info_border = "*********************";
657 	uint16_t mtu;
658 	char name[RTE_ETH_NAME_MAX_LEN];
659 	int ret;
660 	char fw_version[ETHDEV_FWVERS_LEN];
661 
662 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
663 		print_valid_ports();
664 		return;
665 	}
666 	port = &ports[port_id];
667 	ret = eth_link_get_nowait_print_err(port_id, &link);
668 	if (ret < 0)
669 		return;
670 
671 	ret = eth_dev_info_get_print_err(port_id, &dev_info);
672 	if (ret != 0)
673 		return;
674 
675 	printf("\n%s Infos for port %-2d %s\n",
676 	       info_border, port_id, info_border);
677 	if (eth_macaddr_get_print_err(port_id, &mac_addr) == 0)
678 		print_ethaddr("MAC address: ", &mac_addr);
679 	rte_eth_dev_get_name_by_port(port_id, name);
680 	printf("\nDevice name: %s", name);
681 	printf("\nDriver name: %s", dev_info.driver_name);
682 
683 	if (rte_eth_dev_fw_version_get(port_id, fw_version,
684 						ETHDEV_FWVERS_LEN) == 0)
685 		printf("\nFirmware-version: %s", fw_version);
686 	else
687 		printf("\nFirmware-version: %s", "not available");
688 
689 	if (dev_info.device->devargs && dev_info.device->devargs->args)
690 		printf("\nDevargs: %s", dev_info.device->devargs->args);
691 	printf("\nConnect to socket: %u", port->socket_id);
692 
693 	if (port_numa[port_id] != NUMA_NO_CONFIG) {
694 		mp = mbuf_pool_find(port_numa[port_id], 0);
695 		if (mp)
696 			printf("\nmemory allocation on the socket: %d",
697 							port_numa[port_id]);
698 	} else
699 		printf("\nmemory allocation on the socket: %u",port->socket_id);
700 
701 	printf("\nLink status: %s\n", (link.link_status) ? ("up") : ("down"));
702 	printf("Link speed: %s\n", rte_eth_link_speed_to_str(link.link_speed));
703 	printf("Link duplex: %s\n", (link.link_duplex == ETH_LINK_FULL_DUPLEX) ?
704 	       ("full-duplex") : ("half-duplex"));
705 	printf("Autoneg status: %s\n", (link.link_autoneg == ETH_LINK_AUTONEG) ?
706 	       ("On") : ("Off"));
707 
708 	if (!rte_eth_dev_get_mtu(port_id, &mtu))
709 		printf("MTU: %u\n", mtu);
710 
711 	printf("Promiscuous mode: %s\n",
712 	       rte_eth_promiscuous_get(port_id) ? "enabled" : "disabled");
713 	printf("Allmulticast mode: %s\n",
714 	       rte_eth_allmulticast_get(port_id) ? "enabled" : "disabled");
715 	printf("Maximum number of MAC addresses: %u\n",
716 	       (unsigned int)(port->dev_info.max_mac_addrs));
717 	printf("Maximum number of MAC addresses of hash filtering: %u\n",
718 	       (unsigned int)(port->dev_info.max_hash_mac_addrs));
719 
720 	vlan_offload = rte_eth_dev_get_vlan_offload(port_id);
721 	if (vlan_offload >= 0){
722 		printf("VLAN offload: \n");
723 		if (vlan_offload & ETH_VLAN_STRIP_OFFLOAD)
724 			printf("  strip on, ");
725 		else
726 			printf("  strip off, ");
727 
728 		if (vlan_offload & ETH_VLAN_FILTER_OFFLOAD)
729 			printf("filter on, ");
730 		else
731 			printf("filter off, ");
732 
733 		if (vlan_offload & ETH_VLAN_EXTEND_OFFLOAD)
734 			printf("extend on, ");
735 		else
736 			printf("extend off, ");
737 
738 		if (vlan_offload & ETH_QINQ_STRIP_OFFLOAD)
739 			printf("qinq strip on\n");
740 		else
741 			printf("qinq strip off\n");
742 	}
743 
744 	if (dev_info.hash_key_size > 0)
745 		printf("Hash key size in bytes: %u\n", dev_info.hash_key_size);
746 	if (dev_info.reta_size > 0)
747 		printf("Redirection table size: %u\n", dev_info.reta_size);
748 	if (!dev_info.flow_type_rss_offloads)
749 		printf("No RSS offload flow type is supported.\n");
750 	else {
751 		uint16_t i;
752 		char *p;
753 
754 		printf("Supported RSS offload flow types:\n");
755 		for (i = RTE_ETH_FLOW_UNKNOWN + 1;
756 		     i < sizeof(dev_info.flow_type_rss_offloads) * CHAR_BIT; i++) {
757 			if (!(dev_info.flow_type_rss_offloads & (1ULL << i)))
758 				continue;
759 			p = flowtype_to_str(i);
760 			if (p)
761 				printf("  %s\n", p);
762 			else
763 				printf("  user defined %d\n", i);
764 		}
765 	}
766 
767 	printf("Minimum size of RX buffer: %u\n", dev_info.min_rx_bufsize);
768 	printf("Maximum configurable length of RX packet: %u\n",
769 		dev_info.max_rx_pktlen);
770 	printf("Maximum configurable size of LRO aggregated packet: %u\n",
771 		dev_info.max_lro_pkt_size);
772 	if (dev_info.max_vfs)
773 		printf("Maximum number of VFs: %u\n", dev_info.max_vfs);
774 	if (dev_info.max_vmdq_pools)
775 		printf("Maximum number of VMDq pools: %u\n",
776 			dev_info.max_vmdq_pools);
777 
778 	printf("Current number of RX queues: %u\n", dev_info.nb_rx_queues);
779 	printf("Max possible RX queues: %u\n", dev_info.max_rx_queues);
780 	printf("Max possible number of RXDs per queue: %hu\n",
781 		dev_info.rx_desc_lim.nb_max);
782 	printf("Min possible number of RXDs per queue: %hu\n",
783 		dev_info.rx_desc_lim.nb_min);
784 	printf("RXDs number alignment: %hu\n", dev_info.rx_desc_lim.nb_align);
785 
786 	printf("Current number of TX queues: %u\n", dev_info.nb_tx_queues);
787 	printf("Max possible TX queues: %u\n", dev_info.max_tx_queues);
788 	printf("Max possible number of TXDs per queue: %hu\n",
789 		dev_info.tx_desc_lim.nb_max);
790 	printf("Min possible number of TXDs per queue: %hu\n",
791 		dev_info.tx_desc_lim.nb_min);
792 	printf("TXDs number alignment: %hu\n", dev_info.tx_desc_lim.nb_align);
793 	printf("Max segment number per packet: %hu\n",
794 		dev_info.tx_desc_lim.nb_seg_max);
795 	printf("Max segment number per MTU/TSO: %hu\n",
796 		dev_info.tx_desc_lim.nb_mtu_seg_max);
797 
798 	/* Show switch info only if valid switch domain and port id is set */
799 	if (dev_info.switch_info.domain_id !=
800 		RTE_ETH_DEV_SWITCH_DOMAIN_ID_INVALID) {
801 		if (dev_info.switch_info.name)
802 			printf("Switch name: %s\n", dev_info.switch_info.name);
803 
804 		printf("Switch domain Id: %u\n",
805 			dev_info.switch_info.domain_id);
806 		printf("Switch Port Id: %u\n",
807 			dev_info.switch_info.port_id);
808 	}
809 }
810 
811 void
812 port_summary_header_display(void)
813 {
814 	uint16_t port_number;
815 
816 	port_number = rte_eth_dev_count_avail();
817 	printf("Number of available ports: %i\n", port_number);
818 	printf("%-4s %-17s %-12s %-14s %-8s %s\n", "Port", "MAC Address", "Name",
819 			"Driver", "Status", "Link");
820 }
821 
822 void
823 port_summary_display(portid_t port_id)
824 {
825 	struct rte_ether_addr mac_addr;
826 	struct rte_eth_link link;
827 	struct rte_eth_dev_info dev_info;
828 	char name[RTE_ETH_NAME_MAX_LEN];
829 	int ret;
830 
831 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
832 		print_valid_ports();
833 		return;
834 	}
835 
836 	ret = eth_link_get_nowait_print_err(port_id, &link);
837 	if (ret < 0)
838 		return;
839 
840 	ret = eth_dev_info_get_print_err(port_id, &dev_info);
841 	if (ret != 0)
842 		return;
843 
844 	rte_eth_dev_get_name_by_port(port_id, name);
845 	ret = eth_macaddr_get_print_err(port_id, &mac_addr);
846 	if (ret != 0)
847 		return;
848 
849 	printf("%-4d " RTE_ETHER_ADDR_PRT_FMT " %-12s %-14s %-8s %s\n",
850 		port_id, RTE_ETHER_ADDR_BYTES(&mac_addr), name,
851 		dev_info.driver_name, (link.link_status) ? ("up") : ("down"),
852 		rte_eth_link_speed_to_str(link.link_speed));
853 }
854 
855 void
856 port_eeprom_display(portid_t port_id)
857 {
858 	struct rte_dev_eeprom_info einfo;
859 	int ret;
860 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
861 		print_valid_ports();
862 		return;
863 	}
864 
865 	int len_eeprom = rte_eth_dev_get_eeprom_length(port_id);
866 	if (len_eeprom < 0) {
867 		switch (len_eeprom) {
868 		case -ENODEV:
869 			fprintf(stderr, "port index %d invalid\n", port_id);
870 			break;
871 		case -ENOTSUP:
872 			fprintf(stderr, "operation not supported by device\n");
873 			break;
874 		case -EIO:
875 			fprintf(stderr, "device is removed\n");
876 			break;
877 		default:
878 			fprintf(stderr, "Unable to get EEPROM: %d\n",
879 				len_eeprom);
880 			break;
881 		}
882 		return;
883 	}
884 
885 	char buf[len_eeprom];
886 	einfo.offset = 0;
887 	einfo.length = len_eeprom;
888 	einfo.data = buf;
889 
890 	ret = rte_eth_dev_get_eeprom(port_id, &einfo);
891 	if (ret != 0) {
892 		switch (ret) {
893 		case -ENODEV:
894 			fprintf(stderr, "port index %d invalid\n", port_id);
895 			break;
896 		case -ENOTSUP:
897 			fprintf(stderr, "operation not supported by device\n");
898 			break;
899 		case -EIO:
900 			fprintf(stderr, "device is removed\n");
901 			break;
902 		default:
903 			fprintf(stderr, "Unable to get EEPROM: %d\n", ret);
904 			break;
905 		}
906 		return;
907 	}
908 	rte_hexdump(stdout, "hexdump", einfo.data, einfo.length);
909 	printf("Finish -- Port: %d EEPROM length: %d bytes\n", port_id, len_eeprom);
910 }
911 
912 void
913 port_module_eeprom_display(portid_t port_id)
914 {
915 	struct rte_eth_dev_module_info minfo;
916 	struct rte_dev_eeprom_info einfo;
917 	int ret;
918 
919 	if (port_id_is_invalid(port_id, ENABLED_WARN)) {
920 		print_valid_ports();
921 		return;
922 	}
923 
924 
925 	ret = rte_eth_dev_get_module_info(port_id, &minfo);
926 	if (ret != 0) {
927 		switch (ret) {
928 		case -ENODEV:
929 			fprintf(stderr, "port index %d invalid\n", port_id);
930 			break;
931 		case -ENOTSUP:
932 			fprintf(stderr, "operation not supported by device\n");
933 			break;
934 		case -EIO:
935 			fprintf(stderr, "device is removed\n");
936 			break;
937 		default:
938 			fprintf(stderr, "Unable to get module EEPROM: %d\n",
939 				ret);
940 			break;
941 		}
942 		return;
943 	}
944 
945 	char buf[minfo.eeprom_len];
946 	einfo.offset = 0;
947 	einfo.length = minfo.eeprom_len;
948 	einfo.data = buf;
949 
950 	ret = rte_eth_dev_get_module_eeprom(port_id, &einfo);
951 	if (ret != 0) {
952 		switch (ret) {
953 		case -ENODEV:
954 			fprintf(stderr, "port index %d invalid\n", port_id);
955 			break;
956 		case -ENOTSUP:
957 			fprintf(stderr, "operation not supported by device\n");
958 			break;
959 		case -EIO:
960 			fprintf(stderr, "device is removed\n");
961 			break;
962 		default:
963 			fprintf(stderr, "Unable to get module EEPROM: %d\n",
964 				ret);
965 			break;
966 		}
967 		return;
968 	}
969 
970 	rte_hexdump(stdout, "hexdump", einfo.data, einfo.length);
971 	printf("Finish -- Port: %d MODULE EEPROM length: %d bytes\n", port_id, einfo.length);
972 }
973 
974 int
975 port_id_is_invalid(portid_t port_id, enum print_warning warning)
976 {
977 	uint16_t pid;
978 
979 	if (port_id == (portid_t)RTE_PORT_ALL)
980 		return 0;
981 
982 	RTE_ETH_FOREACH_DEV(pid)
983 		if (port_id == pid)
984 			return 0;
985 
986 	if (warning == ENABLED_WARN)
987 		fprintf(stderr, "Invalid port %d\n", port_id);
988 
989 	return 1;
990 }
991 
992 void print_valid_ports(void)
993 {
994 	portid_t pid;
995 
996 	printf("The valid ports array is [");
997 	RTE_ETH_FOREACH_DEV(pid) {
998 		printf(" %d", pid);
999 	}
1000 	printf(" ]\n");
1001 }
1002 
1003 static int
1004 vlan_id_is_invalid(uint16_t vlan_id)
1005 {
1006 	if (vlan_id < 4096)
1007 		return 0;
1008 	fprintf(stderr, "Invalid vlan_id %d (must be < 4096)\n", vlan_id);
1009 	return 1;
1010 }
1011 
1012 static int
1013 port_reg_off_is_invalid(portid_t port_id, uint32_t reg_off)
1014 {
1015 	const struct rte_pci_device *pci_dev;
1016 	const struct rte_bus *bus;
1017 	uint64_t pci_len;
1018 
1019 	if (reg_off & 0x3) {
1020 		fprintf(stderr,
1021 			"Port register offset 0x%X not aligned on a 4-byte boundary\n",
1022 			(unsigned int)reg_off);
1023 		return 1;
1024 	}
1025 
1026 	if (!ports[port_id].dev_info.device) {
1027 		fprintf(stderr, "Invalid device\n");
1028 		return 0;
1029 	}
1030 
1031 	bus = rte_bus_find_by_device(ports[port_id].dev_info.device);
1032 	if (bus && !strcmp(bus->name, "pci")) {
1033 		pci_dev = RTE_DEV_TO_PCI(ports[port_id].dev_info.device);
1034 	} else {
1035 		fprintf(stderr, "Not a PCI device\n");
1036 		return 1;
1037 	}
1038 
1039 	pci_len = pci_dev->mem_resource[0].len;
1040 	if (reg_off >= pci_len) {
1041 		fprintf(stderr,
1042 			"Port %d: register offset %u (0x%X) out of port PCI resource (length=%"PRIu64")\n",
1043 			port_id, (unsigned int)reg_off, (unsigned int)reg_off,
1044 			pci_len);
1045 		return 1;
1046 	}
1047 	return 0;
1048 }
1049 
1050 static int
1051 reg_bit_pos_is_invalid(uint8_t bit_pos)
1052 {
1053 	if (bit_pos <= 31)
1054 		return 0;
1055 	fprintf(stderr, "Invalid bit position %d (must be <= 31)\n", bit_pos);
1056 	return 1;
1057 }
1058 
1059 #define display_port_and_reg_off(port_id, reg_off) \
1060 	printf("port %d PCI register at offset 0x%X: ", (port_id), (reg_off))
1061 
1062 static inline void
1063 display_port_reg_value(portid_t port_id, uint32_t reg_off, uint32_t reg_v)
1064 {
1065 	display_port_and_reg_off(port_id, (unsigned)reg_off);
1066 	printf("0x%08X (%u)\n", (unsigned)reg_v, (unsigned)reg_v);
1067 }
1068 
1069 void
1070 port_reg_bit_display(portid_t port_id, uint32_t reg_off, uint8_t bit_x)
1071 {
1072 	uint32_t reg_v;
1073 
1074 
1075 	if (port_id_is_invalid(port_id, ENABLED_WARN))
1076 		return;
1077 	if (port_reg_off_is_invalid(port_id, reg_off))
1078 		return;
1079 	if (reg_bit_pos_is_invalid(bit_x))
1080 		return;
1081 	reg_v = port_id_pci_reg_read(port_id, reg_off);
1082 	display_port_and_reg_off(port_id, (unsigned)reg_off);
1083 	printf("bit %d=%d\n", bit_x, (int) ((reg_v & (1 << bit_x)) >> bit_x));
1084 }
1085 
1086 void
1087 port_reg_bit_field_display(portid_t port_id, uint32_t reg_off,
1088 			   uint8_t bit1_pos, uint8_t bit2_pos)
1089 {
1090 	uint32_t reg_v;
1091 	uint8_t  l_bit;
1092 	uint8_t  h_bit;
1093 
1094 	if (port_id_is_invalid(port_id, ENABLED_WARN))
1095 		return;
1096 	if (port_reg_off_is_invalid(port_id, reg_off))
1097 		return;
1098 	if (reg_bit_pos_is_invalid(bit1_pos))
1099 		return;
1100 	if (reg_bit_pos_is_invalid(bit2_pos))
1101 		return;
1102 	if (bit1_pos > bit2_pos)
1103 		l_bit = bit2_pos, h_bit = bit1_pos;
1104 	else
1105 		l_bit = bit1_pos, h_bit = bit2_pos;
1106 
1107 	reg_v = port_id_pci_reg_read(port_id, reg_off);
1108 	reg_v >>= l_bit;
1109 	if (h_bit < 31)
1110 		reg_v &= ((1 << (h_bit - l_bit + 1)) - 1);
1111 	display_port_and_reg_off(port_id, (unsigned)reg_off);
1112 	printf("bits[%d, %d]=0x%0*X (%u)\n", l_bit, h_bit,
1113 	       ((h_bit - l_bit) / 4) + 1, (unsigned)reg_v, (unsigned)reg_v);
1114 }
1115 
1116 void
1117 port_reg_display(portid_t port_id, uint32_t reg_off)
1118 {
1119 	uint32_t reg_v;
1120 
1121 	if (port_id_is_invalid(port_id, ENABLED_WARN))
1122 		return;
1123 	if (port_reg_off_is_invalid(port_id, reg_off))
1124 		return;
1125 	reg_v = port_id_pci_reg_read(port_id, reg_off);
1126 	display_port_reg_value(port_id, reg_off, reg_v);
1127 }
1128 
1129 void
1130 port_reg_bit_set(portid_t port_id, uint32_t reg_off, uint8_t bit_pos,
1131 		 uint8_t bit_v)
1132 {
1133 	uint32_t reg_v;
1134 
1135 	if (port_id_is_invalid(port_id, ENABLED_WARN))
1136 		return;
1137 	if (port_reg_off_is_invalid(port_id, reg_off))
1138 		return;
1139 	if (reg_bit_pos_is_invalid(bit_pos))
1140 		return;
1141 	if (bit_v > 1) {
1142 		fprintf(stderr, "Invalid bit value %d (must be 0 or 1)\n",
1143 			(int) bit_v);
1144 		return;
1145 	}
1146 	reg_v = port_id_pci_reg_read(port_id, reg_off);
1147 	if (bit_v == 0)
1148 		reg_v &= ~(1 << bit_pos);
1149 	else
1150 		reg_v |= (1 << bit_pos);
1151 	port_id_pci_reg_write(port_id, reg_off, reg_v);
1152 	display_port_reg_value(port_id, reg_off, reg_v);
1153 }
1154 
1155 void
1156 port_reg_bit_field_set(portid_t port_id, uint32_t reg_off,
1157 		       uint8_t bit1_pos, uint8_t bit2_pos, uint32_t value)
1158 {
1159 	uint32_t max_v;
1160 	uint32_t reg_v;
1161 	uint8_t  l_bit;
1162 	uint8_t  h_bit;
1163 
1164 	if (port_id_is_invalid(port_id, ENABLED_WARN))
1165 		return;
1166 	if (port_reg_off_is_invalid(port_id, reg_off))
1167 		return;
1168 	if (reg_bit_pos_is_invalid(bit1_pos))
1169 		return;
1170 	if (reg_bit_pos_is_invalid(bit2_pos))
1171 		return;
1172 	if (bit1_pos > bit2_pos)
1173 		l_bit = bit2_pos, h_bit = bit1_pos;
1174 	else
1175 		l_bit = bit1_pos, h_bit = bit2_pos;
1176 
1177 	if ((h_bit - l_bit) < 31)
1178 		max_v = (1 << (h_bit - l_bit + 1)) - 1;
1179 	else
1180 		max_v = 0xFFFFFFFF;
1181 
1182 	if (value > max_v) {
1183 		fprintf(stderr, "Invalid value %u (0x%x) must be < %u (0x%x)\n",
1184 				(unsigned)value, (unsigned)value,
1185 				(unsigned)max_v, (unsigned)max_v);
1186 		return;
1187 	}
1188 	reg_v = port_id_pci_reg_read(port_id, reg_off);
1189 	reg_v &= ~(max_v << l_bit); /* Keep unchanged bits */
1190 	reg_v |= (value << l_bit); /* Set changed bits */
1191 	port_id_pci_reg_write(port_id, reg_off, reg_v);
1192 	display_port_reg_value(port_id, reg_off, reg_v);
1193 }
1194 
1195 void
1196 port_reg_set(portid_t port_id, uint32_t reg_off, uint32_t reg_v)
1197 {
1198 	if (port_id_is_invalid(port_id, ENABLED_WARN))
1199 		return;
1200 	if (port_reg_off_is_invalid(port_id, reg_off))
1201 		return;
1202 	port_id_pci_reg_write(port_id, reg_off, reg_v);
1203 	display_port_reg_value(port_id, reg_off, reg_v);
1204 }
1205 
1206 void
1207 port_mtu_set(portid_t port_id, uint16_t mtu)
1208 {
1209 	struct rte_port *port = &ports[port_id];
1210 	int diag;
1211 
1212 	if (port_id_is_invalid(port_id, ENABLED_WARN))
1213 		return;
1214 
1215 	diag = rte_eth_dev_set_mtu(port_id, mtu);
1216 	if (diag != 0) {
1217 		fprintf(stderr, "Set MTU failed. diag=%d\n", diag);
1218 		return;
1219 	}
1220 
1221 	port->dev_conf.rxmode.mtu = mtu;
1222 }
1223 
1224 /* Generic flow management functions. */
1225 
1226 static struct port_flow_tunnel *
1227 port_flow_locate_tunnel_id(struct rte_port *port, uint32_t port_tunnel_id)
1228 {
1229 	struct port_flow_tunnel *flow_tunnel;
1230 
1231 	LIST_FOREACH(flow_tunnel, &port->flow_tunnel_list, chain) {
1232 		if (flow_tunnel->id == port_tunnel_id)
1233 			goto out;
1234 	}
1235 	flow_tunnel = NULL;
1236 
1237 out:
1238 	return flow_tunnel;
1239 }
1240 
1241 const char *
1242 port_flow_tunnel_type(struct rte_flow_tunnel *tunnel)
1243 {
1244 	const char *type;
1245 	switch (tunnel->type) {
1246 	default:
1247 		type = "unknown";
1248 		break;
1249 	case RTE_FLOW_ITEM_TYPE_VXLAN:
1250 		type = "vxlan";
1251 		break;
1252 	case RTE_FLOW_ITEM_TYPE_GRE:
1253 		type = "gre";
1254 		break;
1255 	case RTE_FLOW_ITEM_TYPE_NVGRE:
1256 		type = "nvgre";
1257 		break;
1258 	case RTE_FLOW_ITEM_TYPE_GENEVE:
1259 		type = "geneve";
1260 		break;
1261 	}
1262 
1263 	return type;
1264 }
1265 
1266 struct port_flow_tunnel *
1267 port_flow_locate_tunnel(uint16_t port_id, struct rte_flow_tunnel *tun)
1268 {
1269 	struct rte_port *port = &ports[port_id];
1270 	struct port_flow_tunnel *flow_tunnel;
1271 
1272 	LIST_FOREACH(flow_tunnel, &port->flow_tunnel_list, chain) {
1273 		if (!memcmp(&flow_tunnel->tunnel, tun, sizeof(*tun)))
1274 			goto out;
1275 	}
1276 	flow_tunnel = NULL;
1277 
1278 out:
1279 	return flow_tunnel;
1280 }
1281 
1282 void port_flow_tunnel_list(portid_t port_id)
1283 {
1284 	struct rte_port *port = &ports[port_id];
1285 	struct port_flow_tunnel *flt;
1286 
1287 	LIST_FOREACH(flt, &port->flow_tunnel_list, chain) {
1288 		printf("port %u tunnel #%u type=%s",
1289 			port_id, flt->id, port_flow_tunnel_type(&flt->tunnel));
1290 		if (flt->tunnel.tun_id)
1291 			printf(" id=%" PRIu64, flt->tunnel.tun_id);
1292 		printf("\n");
1293 	}
1294 }
1295 
1296 void port_flow_tunnel_destroy(portid_t port_id, uint32_t tunnel_id)
1297 {
1298 	struct rte_port *port = &ports[port_id];
1299 	struct port_flow_tunnel *flt;
1300 
1301 	LIST_FOREACH(flt, &port->flow_tunnel_list, chain) {
1302 		if (flt->id == tunnel_id)
1303 			break;
1304 	}
1305 	if (flt) {
1306 		LIST_REMOVE(flt, chain);
1307 		free(flt);
1308 		printf("port %u: flow tunnel #%u destroyed\n",
1309 			port_id, tunnel_id);
1310 	}
1311 }
1312 
1313 void port_flow_tunnel_create(portid_t port_id, const struct tunnel_ops *ops)
1314 {
1315 	struct rte_port *port = &ports[port_id];
1316 	enum rte_flow_item_type	type;
1317 	struct port_flow_tunnel *flt;
1318 
1319 	if (!strcmp(ops->type, "vxlan"))
1320 		type = RTE_FLOW_ITEM_TYPE_VXLAN;
1321 	else if (!strcmp(ops->type, "gre"))
1322 		type = RTE_FLOW_ITEM_TYPE_GRE;
1323 	else if (!strcmp(ops->type, "nvgre"))
1324 		type = RTE_FLOW_ITEM_TYPE_NVGRE;
1325 	else if (!strcmp(ops->type, "geneve"))
1326 		type = RTE_FLOW_ITEM_TYPE_GENEVE;
1327 	else {
1328 		fprintf(stderr, "cannot offload \"%s\" tunnel type\n",
1329 			ops->type);
1330 		return;
1331 	}
1332 	LIST_FOREACH(flt, &port->flow_tunnel_list, chain) {
1333 		if (flt->tunnel.type == type)
1334 			break;
1335 	}
1336 	if (!flt) {
1337 		flt = calloc(1, sizeof(*flt));
1338 		if (!flt) {
1339 			fprintf(stderr, "failed to allocate port flt object\n");
1340 			return;
1341 		}
1342 		flt->tunnel.type = type;
1343 		flt->id = LIST_EMPTY(&port->flow_tunnel_list) ? 1 :
1344 				  LIST_FIRST(&port->flow_tunnel_list)->id + 1;
1345 		LIST_INSERT_HEAD(&port->flow_tunnel_list, flt, chain);
1346 	}
1347 	printf("port %d: flow tunnel #%u type %s\n",
1348 		port_id, flt->id, ops->type);
1349 }
1350 
1351 /** Generate a port_flow entry from attributes/pattern/actions. */
1352 static struct port_flow *
1353 port_flow_new(const struct rte_flow_attr *attr,
1354 	      const struct rte_flow_item *pattern,
1355 	      const struct rte_flow_action *actions,
1356 	      struct rte_flow_error *error)
1357 {
1358 	const struct rte_flow_conv_rule rule = {
1359 		.attr_ro = attr,
1360 		.pattern_ro = pattern,
1361 		.actions_ro = actions,
1362 	};
1363 	struct port_flow *pf;
1364 	int ret;
1365 
1366 	ret = rte_flow_conv(RTE_FLOW_CONV_OP_RULE, NULL, 0, &rule, error);
1367 	if (ret < 0)
1368 		return NULL;
1369 	pf = calloc(1, offsetof(struct port_flow, rule) + ret);
1370 	if (!pf) {
1371 		rte_flow_error_set
1372 			(error, errno, RTE_FLOW_ERROR_TYPE_UNSPECIFIED, NULL,
1373 			 "calloc() failed");
1374 		return NULL;
1375 	}
1376 	if (rte_flow_conv(RTE_FLOW_CONV_OP_RULE, &pf->rule, ret, &rule,
1377 			  error) >= 0)
1378 		return pf;
1379 	free(pf);
1380 	return NULL;
1381 }
1382 
1383 /** Print a message out of a flow error. */
1384 static int
1385 port_flow_complain(struct rte_flow_error *error)
1386 {
1387 	static const char *const errstrlist[] = {
1388 		[RTE_FLOW_ERROR_TYPE_NONE] = "no error",
1389 		[RTE_FLOW_ERROR_TYPE_UNSPECIFIED] = "cause unspecified",
1390 		[RTE_FLOW_ERROR_TYPE_HANDLE] = "flow rule (handle)",
1391 		[RTE_FLOW_ERROR_TYPE_ATTR_GROUP] = "group field",
1392 		[RTE_FLOW_ERROR_TYPE_ATTR_PRIORITY] = "priority field",
1393 		[RTE_FLOW_ERROR_TYPE_ATTR_INGRESS] = "ingress field",
1394 		[RTE_FLOW_ERROR_TYPE_ATTR_EGRESS] = "egress field",
1395 		[RTE_FLOW_ERROR_TYPE_ATTR_TRANSFER] = "transfer field",
1396 		[RTE_FLOW_ERROR_TYPE_ATTR] = "attributes structure",
1397 		[RTE_FLOW_ERROR_TYPE_ITEM_NUM] = "pattern length",
1398 		[RTE_FLOW_ERROR_TYPE_ITEM_SPEC] = "item specification",
1399 		[RTE_FLOW_ERROR_TYPE_ITEM_LAST] = "item specification range",
1400 		[RTE_FLOW_ERROR_TYPE_ITEM_MASK] = "item specification mask",
1401 		[RTE_FLOW_ERROR_TYPE_ITEM] = "specific pattern item",
1402 		[RTE_FLOW_ERROR_TYPE_ACTION_NUM] = "number of actions",
1403 		[RTE_FLOW_ERROR_TYPE_ACTION_CONF] = "action configuration",
1404 		[RTE_FLOW_ERROR_TYPE_ACTION] = "specific action",
1405 	};
1406 	const char *errstr;
1407 	char buf[32];
1408 	int err = rte_errno;
1409 
1410 	if ((unsigned int)error->type >= RTE_DIM(errstrlist) ||
1411 	    !errstrlist[error->type])
1412 		errstr = "unknown type";
1413 	else
1414 		errstr = errstrlist[error->type];
1415 	fprintf(stderr, "%s(): Caught PMD error type %d (%s): %s%s: %s\n",
1416 		__func__, error->type, errstr,
1417 		error->cause ? (snprintf(buf, sizeof(buf), "cause: %p, ",
1418 					 error->cause), buf) : "",
1419 		error->message ? error->message : "(no stated reason)",
1420 		rte_strerror(err));
1421 	return -err;
1422 }
1423 
1424 static void
1425 rss_config_display(struct rte_flow_action_rss *rss_conf)
1426 {
1427 	uint8_t i;
1428 
1429 	if (rss_conf == NULL) {
1430 		fprintf(stderr, "Invalid rule\n");
1431 		return;
1432 	}
1433 
1434 	printf("RSS:\n"
1435 	       " queues:");
1436 	if (rss_conf->queue_num == 0)
1437 		printf(" none");
1438 	for (i = 0; i < rss_conf->queue_num; i++)
1439 		printf(" %d", rss_conf->queue[i]);
1440 	printf("\n");
1441 
1442 	printf(" function: ");
1443 	switch (rss_conf->func) {
1444 	case RTE_ETH_HASH_FUNCTION_DEFAULT:
1445 		printf("default\n");
1446 		break;
1447 	case RTE_ETH_HASH_FUNCTION_TOEPLITZ:
1448 		printf("toeplitz\n");
1449 		break;
1450 	case RTE_ETH_HASH_FUNCTION_SIMPLE_XOR:
1451 		printf("simple_xor\n");
1452 		break;
1453 	case RTE_ETH_HASH_FUNCTION_SYMMETRIC_TOEPLITZ:
1454 		printf("symmetric_toeplitz\n");
1455 		break;
1456 	default:
1457 		printf("Unknown function\n");
1458 		return;
1459 	}
1460 
1461 	printf(" types:\n");
1462 	if (rss_conf->types == 0) {
1463 		printf("  none\n");
1464 		return;
1465 	}
1466 	for (i = 0; rss_type_table[i].str; i++) {
1467 		if ((rss_conf->types &
1468 		    rss_type_table[i].rss_type) ==
1469 		    rss_type_table[i].rss_type &&
1470 		    rss_type_table[i].rss_type != 0)
1471 			printf("  %s\n", rss_type_table[i].str);
1472 	}
1473 }
1474 
1475 static struct port_indirect_action *
1476 action_get_by_id(portid_t port_id, uint32_t id)
1477 {
1478 	struct rte_port *port;
1479 	struct port_indirect_action **ppia;
1480 	struct port_indirect_action *pia = NULL;
1481 
1482 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1483 	    port_id == (portid_t)RTE_PORT_ALL)
1484 		return NULL;
1485 	port = &ports[port_id];
1486 	ppia = &port->actions_list;
1487 	while (*ppia) {
1488 		if ((*ppia)->id == id) {
1489 			pia = *ppia;
1490 			break;
1491 		}
1492 		ppia = &(*ppia)->next;
1493 	}
1494 	if (!pia)
1495 		fprintf(stderr,
1496 			"Failed to find indirect action #%u on port %u\n",
1497 			id, port_id);
1498 	return pia;
1499 }
1500 
1501 static int
1502 action_alloc(portid_t port_id, uint32_t id,
1503 	     struct port_indirect_action **action)
1504 {
1505 	struct rte_port *port;
1506 	struct port_indirect_action **ppia;
1507 	struct port_indirect_action *pia = NULL;
1508 
1509 	*action = NULL;
1510 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1511 	    port_id == (portid_t)RTE_PORT_ALL)
1512 		return -EINVAL;
1513 	port = &ports[port_id];
1514 	if (id == UINT32_MAX) {
1515 		/* taking first available ID */
1516 		if (port->actions_list) {
1517 			if (port->actions_list->id == UINT32_MAX - 1) {
1518 				fprintf(stderr,
1519 					"Highest indirect action ID is already assigned, delete it first\n");
1520 				return -ENOMEM;
1521 			}
1522 			id = port->actions_list->id + 1;
1523 		} else {
1524 			id = 0;
1525 		}
1526 	}
1527 	pia = calloc(1, sizeof(*pia));
1528 	if (!pia) {
1529 		fprintf(stderr,
1530 			"Allocation of port %u indirect action failed\n",
1531 			port_id);
1532 		return -ENOMEM;
1533 	}
1534 	ppia = &port->actions_list;
1535 	while (*ppia && (*ppia)->id > id)
1536 		ppia = &(*ppia)->next;
1537 	if (*ppia && (*ppia)->id == id) {
1538 		fprintf(stderr,
1539 			"Indirect action #%u is already assigned, delete it first\n",
1540 			id);
1541 		free(pia);
1542 		return -EINVAL;
1543 	}
1544 	pia->next = *ppia;
1545 	pia->id = id;
1546 	*ppia = pia;
1547 	*action = pia;
1548 	return 0;
1549 }
1550 
1551 /** Create indirect action */
1552 int
1553 port_action_handle_create(portid_t port_id, uint32_t id,
1554 			  const struct rte_flow_indir_action_conf *conf,
1555 			  const struct rte_flow_action *action)
1556 {
1557 	struct port_indirect_action *pia;
1558 	int ret;
1559 	struct rte_flow_error error;
1560 	struct rte_port *port;
1561 
1562 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1563 	    port_id == (portid_t)RTE_PORT_ALL)
1564 		return -EINVAL;
1565 
1566 	ret = action_alloc(port_id, id, &pia);
1567 	if (ret)
1568 		return ret;
1569 
1570 	port = &ports[port_id];
1571 
1572 	if (conf->transfer)
1573 		port_id = port->flow_transfer_proxy;
1574 
1575 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1576 	    port_id == (portid_t)RTE_PORT_ALL)
1577 		return -EINVAL;
1578 
1579 	if (action->type == RTE_FLOW_ACTION_TYPE_AGE) {
1580 		struct rte_flow_action_age *age =
1581 			(struct rte_flow_action_age *)(uintptr_t)(action->conf);
1582 
1583 		pia->age_type = ACTION_AGE_CONTEXT_TYPE_INDIRECT_ACTION;
1584 		age->context = &pia->age_type;
1585 	} else if (action->type == RTE_FLOW_ACTION_TYPE_CONNTRACK) {
1586 		struct rte_flow_action_conntrack *ct =
1587 		(struct rte_flow_action_conntrack *)(uintptr_t)(action->conf);
1588 
1589 		memcpy(ct, &conntrack_context, sizeof(*ct));
1590 	}
1591 	/* Poisoning to make sure PMDs update it in case of error. */
1592 	memset(&error, 0x22, sizeof(error));
1593 	pia->handle = rte_flow_action_handle_create(port_id, conf, action,
1594 						    &error);
1595 	if (!pia->handle) {
1596 		uint32_t destroy_id = pia->id;
1597 		port_action_handle_destroy(port_id, 1, &destroy_id);
1598 		return port_flow_complain(&error);
1599 	}
1600 	pia->type = action->type;
1601 	pia->transfer = conf->transfer;
1602 	printf("Indirect action #%u created\n", pia->id);
1603 	return 0;
1604 }
1605 
1606 /** Destroy indirect action */
1607 int
1608 port_action_handle_destroy(portid_t port_id,
1609 			   uint32_t n,
1610 			   const uint32_t *actions)
1611 {
1612 	struct rte_port *port;
1613 	struct port_indirect_action **tmp;
1614 	uint32_t c = 0;
1615 	int ret = 0;
1616 
1617 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1618 	    port_id == (portid_t)RTE_PORT_ALL)
1619 		return -EINVAL;
1620 	port = &ports[port_id];
1621 	tmp = &port->actions_list;
1622 	while (*tmp) {
1623 		uint32_t i;
1624 
1625 		for (i = 0; i != n; ++i) {
1626 			struct rte_flow_error error;
1627 			struct port_indirect_action *pia = *tmp;
1628 			portid_t port_id_eff = port_id;
1629 
1630 			if (actions[i] != pia->id)
1631 				continue;
1632 
1633 			if (pia->transfer)
1634 				port_id_eff = port->flow_transfer_proxy;
1635 
1636 			if (port_id_is_invalid(port_id_eff, ENABLED_WARN) ||
1637 			    port_id_eff == (portid_t)RTE_PORT_ALL)
1638 				return -EINVAL;
1639 
1640 			/*
1641 			 * Poisoning to make sure PMDs update it in case
1642 			 * of error.
1643 			 */
1644 			memset(&error, 0x33, sizeof(error));
1645 
1646 			if (pia->handle && rte_flow_action_handle_destroy(
1647 					port_id_eff, pia->handle, &error)) {
1648 				ret = port_flow_complain(&error);
1649 				continue;
1650 			}
1651 			*tmp = pia->next;
1652 			printf("Indirect action #%u destroyed\n", pia->id);
1653 			free(pia);
1654 			break;
1655 		}
1656 		if (i == n)
1657 			tmp = &(*tmp)->next;
1658 		++c;
1659 	}
1660 	return ret;
1661 }
1662 
1663 
1664 /** Get indirect action by port + id */
1665 struct rte_flow_action_handle *
1666 port_action_handle_get_by_id(portid_t port_id, uint32_t id)
1667 {
1668 
1669 	struct port_indirect_action *pia = action_get_by_id(port_id, id);
1670 
1671 	return (pia) ? pia->handle : NULL;
1672 }
1673 
1674 /** Update indirect action */
1675 int
1676 port_action_handle_update(portid_t port_id, uint32_t id,
1677 			  const struct rte_flow_action *action)
1678 {
1679 	struct rte_flow_error error;
1680 	struct rte_flow_action_handle *action_handle;
1681 	struct port_indirect_action *pia;
1682 	struct rte_port *port;
1683 	const void *update;
1684 
1685 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1686 	    port_id == (portid_t)RTE_PORT_ALL)
1687 		return -EINVAL;
1688 
1689 	port = &ports[port_id];
1690 
1691 	action_handle = port_action_handle_get_by_id(port_id, id);
1692 	if (!action_handle)
1693 		return -EINVAL;
1694 	pia = action_get_by_id(port_id, id);
1695 	if (!pia)
1696 		return -EINVAL;
1697 	switch (pia->type) {
1698 	case RTE_FLOW_ACTION_TYPE_CONNTRACK:
1699 		update = action->conf;
1700 		break;
1701 	default:
1702 		update = action;
1703 		break;
1704 	}
1705 
1706 	if (pia->transfer)
1707 		port_id = port->flow_transfer_proxy;
1708 
1709 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1710 	    port_id == (portid_t)RTE_PORT_ALL)
1711 		return -EINVAL;
1712 
1713 	if (rte_flow_action_handle_update(port_id, action_handle, update,
1714 					  &error)) {
1715 		return port_flow_complain(&error);
1716 	}
1717 	printf("Indirect action #%u updated\n", id);
1718 	return 0;
1719 }
1720 
1721 int
1722 port_action_handle_query(portid_t port_id, uint32_t id)
1723 {
1724 	struct rte_flow_error error;
1725 	struct port_indirect_action *pia;
1726 	union {
1727 		struct rte_flow_query_count count;
1728 		struct rte_flow_query_age age;
1729 		struct rte_flow_action_conntrack ct;
1730 	} query;
1731 	portid_t port_id_eff = port_id;
1732 	struct rte_port *port;
1733 
1734 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1735 	    port_id == (portid_t)RTE_PORT_ALL)
1736 		return -EINVAL;
1737 
1738 	port = &ports[port_id];
1739 
1740 	pia = action_get_by_id(port_id, id);
1741 	if (!pia)
1742 		return -EINVAL;
1743 	switch (pia->type) {
1744 	case RTE_FLOW_ACTION_TYPE_AGE:
1745 	case RTE_FLOW_ACTION_TYPE_COUNT:
1746 		break;
1747 	default:
1748 		fprintf(stderr,
1749 			"Indirect action %u (type: %d) on port %u doesn't support query\n",
1750 			id, pia->type, port_id);
1751 		return -ENOTSUP;
1752 	}
1753 
1754 	if (pia->transfer)
1755 		port_id_eff = port->flow_transfer_proxy;
1756 
1757 	if (port_id_is_invalid(port_id_eff, ENABLED_WARN) ||
1758 	    port_id_eff == (portid_t)RTE_PORT_ALL)
1759 		return -EINVAL;
1760 
1761 	/* Poisoning to make sure PMDs update it in case of error. */
1762 	memset(&error, 0x55, sizeof(error));
1763 	memset(&query, 0, sizeof(query));
1764 	if (rte_flow_action_handle_query(port_id_eff, pia->handle, &query,
1765 					 &error))
1766 		return port_flow_complain(&error);
1767 	switch (pia->type) {
1768 	case RTE_FLOW_ACTION_TYPE_AGE:
1769 		printf("Indirect AGE action:\n"
1770 		       " aged: %u\n"
1771 		       " sec_since_last_hit_valid: %u\n"
1772 		       " sec_since_last_hit: %" PRIu32 "\n",
1773 		       query.age.aged,
1774 		       query.age.sec_since_last_hit_valid,
1775 		       query.age.sec_since_last_hit);
1776 		break;
1777 	case RTE_FLOW_ACTION_TYPE_COUNT:
1778 		printf("Indirect COUNT action:\n"
1779 		       " hits_set: %u\n"
1780 		       " bytes_set: %u\n"
1781 		       " hits: %" PRIu64 "\n"
1782 		       " bytes: %" PRIu64 "\n",
1783 		       query.count.hits_set,
1784 		       query.count.bytes_set,
1785 		       query.count.hits,
1786 		       query.count.bytes);
1787 		break;
1788 	case RTE_FLOW_ACTION_TYPE_CONNTRACK:
1789 		printf("Conntrack Context:\n"
1790 		       "  Peer: %u, Flow dir: %s, Enable: %u\n"
1791 		       "  Live: %u, SACK: %u, CACK: %u\n"
1792 		       "  Packet dir: %s, Liberal: %u, State: %u\n"
1793 		       "  Factor: %u, Retrans: %u, TCP flags: %u\n"
1794 		       "  Last Seq: %u, Last ACK: %u\n"
1795 		       "  Last Win: %u, Last End: %u\n",
1796 		       query.ct.peer_port,
1797 		       query.ct.is_original_dir ? "Original" : "Reply",
1798 		       query.ct.enable, query.ct.live_connection,
1799 		       query.ct.selective_ack, query.ct.challenge_ack_passed,
1800 		       query.ct.last_direction ? "Original" : "Reply",
1801 		       query.ct.liberal_mode, query.ct.state,
1802 		       query.ct.max_ack_window, query.ct.retransmission_limit,
1803 		       query.ct.last_index, query.ct.last_seq,
1804 		       query.ct.last_ack, query.ct.last_window,
1805 		       query.ct.last_end);
1806 		printf("  Original Dir:\n"
1807 		       "    scale: %u, fin: %u, ack seen: %u\n"
1808 		       " unacked data: %u\n    Sent end: %u,"
1809 		       "    Reply end: %u, Max win: %u, Max ACK: %u\n",
1810 		       query.ct.original_dir.scale,
1811 		       query.ct.original_dir.close_initiated,
1812 		       query.ct.original_dir.last_ack_seen,
1813 		       query.ct.original_dir.data_unacked,
1814 		       query.ct.original_dir.sent_end,
1815 		       query.ct.original_dir.reply_end,
1816 		       query.ct.original_dir.max_win,
1817 		       query.ct.original_dir.max_ack);
1818 		printf("  Reply Dir:\n"
1819 		       "    scale: %u, fin: %u, ack seen: %u\n"
1820 		       " unacked data: %u\n    Sent end: %u,"
1821 		       "    Reply end: %u, Max win: %u, Max ACK: %u\n",
1822 		       query.ct.reply_dir.scale,
1823 		       query.ct.reply_dir.close_initiated,
1824 		       query.ct.reply_dir.last_ack_seen,
1825 		       query.ct.reply_dir.data_unacked,
1826 		       query.ct.reply_dir.sent_end,
1827 		       query.ct.reply_dir.reply_end,
1828 		       query.ct.reply_dir.max_win,
1829 		       query.ct.reply_dir.max_ack);
1830 		break;
1831 	default:
1832 		fprintf(stderr,
1833 			"Indirect action %u (type: %d) on port %u doesn't support query\n",
1834 			id, pia->type, port_id);
1835 		break;
1836 	}
1837 	return 0;
1838 }
1839 
1840 static struct port_flow_tunnel *
1841 port_flow_tunnel_offload_cmd_prep(portid_t port_id,
1842 				  const struct rte_flow_item *pattern,
1843 				  const struct rte_flow_action *actions,
1844 				  const struct tunnel_ops *tunnel_ops)
1845 {
1846 	int ret;
1847 	struct rte_port *port;
1848 	struct port_flow_tunnel *pft;
1849 	struct rte_flow_error error;
1850 
1851 	port = &ports[port_id];
1852 	pft = port_flow_locate_tunnel_id(port, tunnel_ops->id);
1853 	if (!pft) {
1854 		fprintf(stderr, "failed to locate port flow tunnel #%u\n",
1855 			tunnel_ops->id);
1856 		return NULL;
1857 	}
1858 	if (tunnel_ops->actions) {
1859 		uint32_t num_actions;
1860 		const struct rte_flow_action *aptr;
1861 
1862 		ret = rte_flow_tunnel_decap_set(port_id, &pft->tunnel,
1863 						&pft->pmd_actions,
1864 						&pft->num_pmd_actions,
1865 						&error);
1866 		if (ret) {
1867 			port_flow_complain(&error);
1868 			return NULL;
1869 		}
1870 		for (aptr = actions, num_actions = 1;
1871 		     aptr->type != RTE_FLOW_ACTION_TYPE_END;
1872 		     aptr++, num_actions++);
1873 		pft->actions = malloc(
1874 				(num_actions +  pft->num_pmd_actions) *
1875 				sizeof(actions[0]));
1876 		if (!pft->actions) {
1877 			rte_flow_tunnel_action_decap_release(
1878 					port_id, pft->actions,
1879 					pft->num_pmd_actions, &error);
1880 			return NULL;
1881 		}
1882 		rte_memcpy(pft->actions, pft->pmd_actions,
1883 			   pft->num_pmd_actions * sizeof(actions[0]));
1884 		rte_memcpy(pft->actions + pft->num_pmd_actions, actions,
1885 			   num_actions * sizeof(actions[0]));
1886 	}
1887 	if (tunnel_ops->items) {
1888 		uint32_t num_items;
1889 		const struct rte_flow_item *iptr;
1890 
1891 		ret = rte_flow_tunnel_match(port_id, &pft->tunnel,
1892 					    &pft->pmd_items,
1893 					    &pft->num_pmd_items,
1894 					    &error);
1895 		if (ret) {
1896 			port_flow_complain(&error);
1897 			return NULL;
1898 		}
1899 		for (iptr = pattern, num_items = 1;
1900 		     iptr->type != RTE_FLOW_ITEM_TYPE_END;
1901 		     iptr++, num_items++);
1902 		pft->items = malloc((num_items + pft->num_pmd_items) *
1903 				    sizeof(pattern[0]));
1904 		if (!pft->items) {
1905 			rte_flow_tunnel_item_release(
1906 					port_id, pft->pmd_items,
1907 					pft->num_pmd_items, &error);
1908 			return NULL;
1909 		}
1910 		rte_memcpy(pft->items, pft->pmd_items,
1911 			   pft->num_pmd_items * sizeof(pattern[0]));
1912 		rte_memcpy(pft->items + pft->num_pmd_items, pattern,
1913 			   num_items * sizeof(pattern[0]));
1914 	}
1915 
1916 	return pft;
1917 }
1918 
1919 static void
1920 port_flow_tunnel_offload_cmd_release(portid_t port_id,
1921 				     const struct tunnel_ops *tunnel_ops,
1922 				     struct port_flow_tunnel *pft)
1923 {
1924 	struct rte_flow_error error;
1925 
1926 	if (tunnel_ops->actions) {
1927 		free(pft->actions);
1928 		rte_flow_tunnel_action_decap_release(
1929 			port_id, pft->pmd_actions,
1930 			pft->num_pmd_actions, &error);
1931 		pft->actions = NULL;
1932 		pft->pmd_actions = NULL;
1933 	}
1934 	if (tunnel_ops->items) {
1935 		free(pft->items);
1936 		rte_flow_tunnel_item_release(port_id, pft->pmd_items,
1937 					     pft->num_pmd_items,
1938 					     &error);
1939 		pft->items = NULL;
1940 		pft->pmd_items = NULL;
1941 	}
1942 }
1943 
1944 /** Add port meter policy */
1945 int
1946 port_meter_policy_add(portid_t port_id, uint32_t policy_id,
1947 			const struct rte_flow_action *actions)
1948 {
1949 	struct rte_mtr_error error;
1950 	const struct rte_flow_action *act = actions;
1951 	const struct rte_flow_action *start;
1952 	struct rte_mtr_meter_policy_params policy;
1953 	uint32_t i = 0, act_n;
1954 	int ret;
1955 
1956 	for (i = 0; i < RTE_COLORS; i++) {
1957 		for (act_n = 0, start = act;
1958 			act->type != RTE_FLOW_ACTION_TYPE_END; act++)
1959 			act_n++;
1960 		if (act_n && act->type == RTE_FLOW_ACTION_TYPE_END)
1961 			policy.actions[i] = start;
1962 		else
1963 			policy.actions[i] = NULL;
1964 		act++;
1965 	}
1966 	ret = rte_mtr_meter_policy_add(port_id,
1967 			policy_id,
1968 			&policy, &error);
1969 	if (ret)
1970 		print_mtr_err_msg(&error);
1971 	return ret;
1972 }
1973 
1974 /** Validate flow rule. */
1975 int
1976 port_flow_validate(portid_t port_id,
1977 		   const struct rte_flow_attr *attr,
1978 		   const struct rte_flow_item *pattern,
1979 		   const struct rte_flow_action *actions,
1980 		   const struct tunnel_ops *tunnel_ops)
1981 {
1982 	struct rte_flow_error error;
1983 	struct port_flow_tunnel *pft = NULL;
1984 	struct rte_port *port;
1985 
1986 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1987 	    port_id == (portid_t)RTE_PORT_ALL)
1988 		return -EINVAL;
1989 
1990 	port = &ports[port_id];
1991 
1992 	if (attr->transfer)
1993 		port_id = port->flow_transfer_proxy;
1994 
1995 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
1996 	    port_id == (portid_t)RTE_PORT_ALL)
1997 		return -EINVAL;
1998 
1999 	/* Poisoning to make sure PMDs update it in case of error. */
2000 	memset(&error, 0x11, sizeof(error));
2001 	if (tunnel_ops->enabled) {
2002 		pft = port_flow_tunnel_offload_cmd_prep(port_id, pattern,
2003 							actions, tunnel_ops);
2004 		if (!pft)
2005 			return -ENOENT;
2006 		if (pft->items)
2007 			pattern = pft->items;
2008 		if (pft->actions)
2009 			actions = pft->actions;
2010 	}
2011 	if (rte_flow_validate(port_id, attr, pattern, actions, &error))
2012 		return port_flow_complain(&error);
2013 	if (tunnel_ops->enabled)
2014 		port_flow_tunnel_offload_cmd_release(port_id, tunnel_ops, pft);
2015 	printf("Flow rule validated\n");
2016 	return 0;
2017 }
2018 
2019 /** Return age action structure if exists, otherwise NULL. */
2020 static struct rte_flow_action_age *
2021 age_action_get(const struct rte_flow_action *actions)
2022 {
2023 	for (; actions->type != RTE_FLOW_ACTION_TYPE_END; actions++) {
2024 		switch (actions->type) {
2025 		case RTE_FLOW_ACTION_TYPE_AGE:
2026 			return (struct rte_flow_action_age *)
2027 				(uintptr_t)actions->conf;
2028 		default:
2029 			break;
2030 		}
2031 	}
2032 	return NULL;
2033 }
2034 
2035 /** Create flow rule. */
2036 int
2037 port_flow_create(portid_t port_id,
2038 		 const struct rte_flow_attr *attr,
2039 		 const struct rte_flow_item *pattern,
2040 		 const struct rte_flow_action *actions,
2041 		 const struct tunnel_ops *tunnel_ops)
2042 {
2043 	struct rte_flow *flow;
2044 	struct rte_port *port;
2045 	struct port_flow *pf;
2046 	uint32_t id = 0;
2047 	struct rte_flow_error error;
2048 	struct port_flow_tunnel *pft = NULL;
2049 	struct rte_flow_action_age *age = age_action_get(actions);
2050 
2051 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2052 	    port_id == (portid_t)RTE_PORT_ALL)
2053 		return -EINVAL;
2054 
2055 	port = &ports[port_id];
2056 
2057 	if (attr->transfer)
2058 		port_id = port->flow_transfer_proxy;
2059 
2060 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2061 	    port_id == (portid_t)RTE_PORT_ALL)
2062 		return -EINVAL;
2063 
2064 	if (port->flow_list) {
2065 		if (port->flow_list->id == UINT32_MAX) {
2066 			fprintf(stderr,
2067 				"Highest rule ID is already assigned, delete it first");
2068 			return -ENOMEM;
2069 		}
2070 		id = port->flow_list->id + 1;
2071 	}
2072 	if (tunnel_ops->enabled) {
2073 		pft = port_flow_tunnel_offload_cmd_prep(port_id, pattern,
2074 							actions, tunnel_ops);
2075 		if (!pft)
2076 			return -ENOENT;
2077 		if (pft->items)
2078 			pattern = pft->items;
2079 		if (pft->actions)
2080 			actions = pft->actions;
2081 	}
2082 	pf = port_flow_new(attr, pattern, actions, &error);
2083 	if (!pf)
2084 		return port_flow_complain(&error);
2085 	if (age) {
2086 		pf->age_type = ACTION_AGE_CONTEXT_TYPE_FLOW;
2087 		age->context = &pf->age_type;
2088 	}
2089 	/* Poisoning to make sure PMDs update it in case of error. */
2090 	memset(&error, 0x22, sizeof(error));
2091 	flow = rte_flow_create(port_id, attr, pattern, actions, &error);
2092 	if (!flow) {
2093 		if (tunnel_ops->enabled)
2094 			port_flow_tunnel_offload_cmd_release(port_id,
2095 							     tunnel_ops, pft);
2096 		free(pf);
2097 		return port_flow_complain(&error);
2098 	}
2099 	pf->next = port->flow_list;
2100 	pf->id = id;
2101 	pf->flow = flow;
2102 	port->flow_list = pf;
2103 	if (tunnel_ops->enabled)
2104 		port_flow_tunnel_offload_cmd_release(port_id, tunnel_ops, pft);
2105 	printf("Flow rule #%u created\n", pf->id);
2106 	return 0;
2107 }
2108 
2109 /** Destroy a number of flow rules. */
2110 int
2111 port_flow_destroy(portid_t port_id, uint32_t n, const uint32_t *rule)
2112 {
2113 	struct rte_port *port;
2114 	struct port_flow **tmp;
2115 	uint32_t c = 0;
2116 	int ret = 0;
2117 
2118 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2119 	    port_id == (portid_t)RTE_PORT_ALL)
2120 		return -EINVAL;
2121 	port = &ports[port_id];
2122 	tmp = &port->flow_list;
2123 	while (*tmp) {
2124 		uint32_t i;
2125 
2126 		for (i = 0; i != n; ++i) {
2127 			portid_t port_id_eff = port_id;
2128 			struct rte_flow_error error;
2129 			struct port_flow *pf = *tmp;
2130 
2131 			if (rule[i] != pf->id)
2132 				continue;
2133 			/*
2134 			 * Poisoning to make sure PMDs update it in case
2135 			 * of error.
2136 			 */
2137 			memset(&error, 0x33, sizeof(error));
2138 
2139 			if (pf->rule.attr->transfer)
2140 				port_id_eff = port->flow_transfer_proxy;
2141 
2142 			if (port_id_is_invalid(port_id_eff, ENABLED_WARN) ||
2143 			    port_id_eff == (portid_t)RTE_PORT_ALL)
2144 				return -EINVAL;
2145 
2146 			if (rte_flow_destroy(port_id_eff, pf->flow, &error)) {
2147 				ret = port_flow_complain(&error);
2148 				continue;
2149 			}
2150 			printf("Flow rule #%u destroyed\n", pf->id);
2151 			*tmp = pf->next;
2152 			free(pf);
2153 			break;
2154 		}
2155 		if (i == n)
2156 			tmp = &(*tmp)->next;
2157 		++c;
2158 	}
2159 	return ret;
2160 }
2161 
2162 /** Remove all flow rules. */
2163 int
2164 port_flow_flush(portid_t port_id)
2165 {
2166 	struct rte_flow_error error;
2167 	struct rte_port *port;
2168 	int ret = 0;
2169 
2170 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2171 		port_id == (portid_t)RTE_PORT_ALL)
2172 		return -EINVAL;
2173 
2174 	port = &ports[port_id];
2175 
2176 	if (port->flow_list == NULL)
2177 		return ret;
2178 
2179 	/* Poisoning to make sure PMDs update it in case of error. */
2180 	memset(&error, 0x44, sizeof(error));
2181 	if (rte_flow_flush(port_id, &error)) {
2182 		port_flow_complain(&error);
2183 	}
2184 
2185 	while (port->flow_list) {
2186 		struct port_flow *pf = port->flow_list->next;
2187 
2188 		free(port->flow_list);
2189 		port->flow_list = pf;
2190 	}
2191 	return ret;
2192 }
2193 
2194 /** Dump flow rules. */
2195 int
2196 port_flow_dump(portid_t port_id, bool dump_all, uint32_t rule_id,
2197 		const char *file_name)
2198 {
2199 	int ret = 0;
2200 	FILE *file = stdout;
2201 	struct rte_flow_error error;
2202 	struct rte_port *port;
2203 	struct port_flow *pflow;
2204 	struct rte_flow *tmpFlow = NULL;
2205 	bool found = false;
2206 
2207 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2208 		port_id == (portid_t)RTE_PORT_ALL)
2209 		return -EINVAL;
2210 
2211 	if (!dump_all) {
2212 		port = &ports[port_id];
2213 		pflow = port->flow_list;
2214 		while (pflow) {
2215 			if (rule_id != pflow->id) {
2216 				pflow = pflow->next;
2217 			} else {
2218 				tmpFlow = pflow->flow;
2219 				if (tmpFlow)
2220 					found = true;
2221 				break;
2222 			}
2223 		}
2224 		if (found == false) {
2225 			fprintf(stderr, "Failed to dump to flow %d\n", rule_id);
2226 			return -EINVAL;
2227 		}
2228 	}
2229 
2230 	if (file_name && strlen(file_name)) {
2231 		file = fopen(file_name, "w");
2232 		if (!file) {
2233 			fprintf(stderr, "Failed to create file %s: %s\n",
2234 				file_name, strerror(errno));
2235 			return -errno;
2236 		}
2237 	}
2238 
2239 	if (!dump_all)
2240 		ret = rte_flow_dev_dump(port_id, tmpFlow, file, &error);
2241 	else
2242 		ret = rte_flow_dev_dump(port_id, NULL, file, &error);
2243 	if (ret) {
2244 		port_flow_complain(&error);
2245 		fprintf(stderr, "Failed to dump flow: %s\n", strerror(-ret));
2246 	} else
2247 		printf("Flow dump finished\n");
2248 	if (file_name && strlen(file_name))
2249 		fclose(file);
2250 	return ret;
2251 }
2252 
2253 /** Query a flow rule. */
2254 int
2255 port_flow_query(portid_t port_id, uint32_t rule,
2256 		const struct rte_flow_action *action)
2257 {
2258 	struct rte_flow_error error;
2259 	struct rte_port *port;
2260 	struct port_flow *pf;
2261 	const char *name;
2262 	union {
2263 		struct rte_flow_query_count count;
2264 		struct rte_flow_action_rss rss_conf;
2265 		struct rte_flow_query_age age;
2266 	} query;
2267 	int ret;
2268 
2269 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2270 	    port_id == (portid_t)RTE_PORT_ALL)
2271 		return -EINVAL;
2272 	port = &ports[port_id];
2273 	for (pf = port->flow_list; pf; pf = pf->next)
2274 		if (pf->id == rule)
2275 			break;
2276 	if (!pf) {
2277 		fprintf(stderr, "Flow rule #%u not found\n", rule);
2278 		return -ENOENT;
2279 	}
2280 
2281 	if (pf->rule.attr->transfer)
2282 		port_id = port->flow_transfer_proxy;
2283 
2284 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2285 	    port_id == (portid_t)RTE_PORT_ALL)
2286 		return -EINVAL;
2287 
2288 	ret = rte_flow_conv(RTE_FLOW_CONV_OP_ACTION_NAME_PTR,
2289 			    &name, sizeof(name),
2290 			    (void *)(uintptr_t)action->type, &error);
2291 	if (ret < 0)
2292 		return port_flow_complain(&error);
2293 	switch (action->type) {
2294 	case RTE_FLOW_ACTION_TYPE_COUNT:
2295 	case RTE_FLOW_ACTION_TYPE_RSS:
2296 	case RTE_FLOW_ACTION_TYPE_AGE:
2297 		break;
2298 	default:
2299 		fprintf(stderr, "Cannot query action type %d (%s)\n",
2300 			action->type, name);
2301 		return -ENOTSUP;
2302 	}
2303 	/* Poisoning to make sure PMDs update it in case of error. */
2304 	memset(&error, 0x55, sizeof(error));
2305 	memset(&query, 0, sizeof(query));
2306 	if (rte_flow_query(port_id, pf->flow, action, &query, &error))
2307 		return port_flow_complain(&error);
2308 	switch (action->type) {
2309 	case RTE_FLOW_ACTION_TYPE_COUNT:
2310 		printf("%s:\n"
2311 		       " hits_set: %u\n"
2312 		       " bytes_set: %u\n"
2313 		       " hits: %" PRIu64 "\n"
2314 		       " bytes: %" PRIu64 "\n",
2315 		       name,
2316 		       query.count.hits_set,
2317 		       query.count.bytes_set,
2318 		       query.count.hits,
2319 		       query.count.bytes);
2320 		break;
2321 	case RTE_FLOW_ACTION_TYPE_RSS:
2322 		rss_config_display(&query.rss_conf);
2323 		break;
2324 	case RTE_FLOW_ACTION_TYPE_AGE:
2325 		printf("%s:\n"
2326 		       " aged: %u\n"
2327 		       " sec_since_last_hit_valid: %u\n"
2328 		       " sec_since_last_hit: %" PRIu32 "\n",
2329 		       name,
2330 		       query.age.aged,
2331 		       query.age.sec_since_last_hit_valid,
2332 		       query.age.sec_since_last_hit);
2333 		break;
2334 	default:
2335 		fprintf(stderr,
2336 			"Cannot display result for action type %d (%s)\n",
2337 			action->type, name);
2338 		break;
2339 	}
2340 	return 0;
2341 }
2342 
2343 /** List simply and destroy all aged flows. */
2344 void
2345 port_flow_aged(portid_t port_id, uint8_t destroy)
2346 {
2347 	void **contexts;
2348 	int nb_context, total = 0, idx;
2349 	struct rte_flow_error error;
2350 	enum age_action_context_type *type;
2351 	union {
2352 		struct port_flow *pf;
2353 		struct port_indirect_action *pia;
2354 	} ctx;
2355 
2356 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2357 	    port_id == (portid_t)RTE_PORT_ALL)
2358 		return;
2359 	total = rte_flow_get_aged_flows(port_id, NULL, 0, &error);
2360 	printf("Port %u total aged flows: %d\n", port_id, total);
2361 	if (total < 0) {
2362 		port_flow_complain(&error);
2363 		return;
2364 	}
2365 	if (total == 0)
2366 		return;
2367 	contexts = malloc(sizeof(void *) * total);
2368 	if (contexts == NULL) {
2369 		fprintf(stderr, "Cannot allocate contexts for aged flow\n");
2370 		return;
2371 	}
2372 	printf("%-20s\tID\tGroup\tPrio\tAttr\n", "Type");
2373 	nb_context = rte_flow_get_aged_flows(port_id, contexts, total, &error);
2374 	if (nb_context != total) {
2375 		fprintf(stderr,
2376 			"Port:%d get aged flows count(%d) != total(%d)\n",
2377 			port_id, nb_context, total);
2378 		free(contexts);
2379 		return;
2380 	}
2381 	total = 0;
2382 	for (idx = 0; idx < nb_context; idx++) {
2383 		if (!contexts[idx]) {
2384 			fprintf(stderr, "Error: get Null context in port %u\n",
2385 				port_id);
2386 			continue;
2387 		}
2388 		type = (enum age_action_context_type *)contexts[idx];
2389 		switch (*type) {
2390 		case ACTION_AGE_CONTEXT_TYPE_FLOW:
2391 			ctx.pf = container_of(type, struct port_flow, age_type);
2392 			printf("%-20s\t%" PRIu32 "\t%" PRIu32 "\t%" PRIu32
2393 								 "\t%c%c%c\t\n",
2394 			       "Flow",
2395 			       ctx.pf->id,
2396 			       ctx.pf->rule.attr->group,
2397 			       ctx.pf->rule.attr->priority,
2398 			       ctx.pf->rule.attr->ingress ? 'i' : '-',
2399 			       ctx.pf->rule.attr->egress ? 'e' : '-',
2400 			       ctx.pf->rule.attr->transfer ? 't' : '-');
2401 			if (destroy && !port_flow_destroy(port_id, 1,
2402 							  &ctx.pf->id))
2403 				total++;
2404 			break;
2405 		case ACTION_AGE_CONTEXT_TYPE_INDIRECT_ACTION:
2406 			ctx.pia = container_of(type,
2407 					struct port_indirect_action, age_type);
2408 			printf("%-20s\t%" PRIu32 "\n", "Indirect action",
2409 			       ctx.pia->id);
2410 			break;
2411 		default:
2412 			fprintf(stderr, "Error: invalid context type %u\n",
2413 				port_id);
2414 			break;
2415 		}
2416 	}
2417 	printf("\n%d flows destroyed\n", total);
2418 	free(contexts);
2419 }
2420 
2421 /** List flow rules. */
2422 void
2423 port_flow_list(portid_t port_id, uint32_t n, const uint32_t *group)
2424 {
2425 	struct rte_port *port;
2426 	struct port_flow *pf;
2427 	struct port_flow *list = NULL;
2428 	uint32_t i;
2429 
2430 	if (port_id_is_invalid(port_id, ENABLED_WARN) ||
2431 	    port_id == (portid_t)RTE_PORT_ALL)
2432 		return;
2433 	port = &ports[port_id];
2434 	if (!port->flow_list)
2435 		return;
2436 	/* Sort flows by group, priority and ID. */
2437 	for (pf = port->flow_list; pf != NULL; pf = pf->next) {
2438 		struct port_flow **tmp;
2439 		const struct rte_flow_attr *curr = pf->rule.attr;
2440 
2441 		if (n) {
2442 			/* Filter out unwanted groups. */
2443 			for (i = 0; i != n; ++i)
2444 				if (curr->group == group[i])
2445 					break;
2446 			if (i == n)
2447 				continue;
2448 		}
2449 		for (tmp = &list; *tmp; tmp = &(*tmp)->tmp) {
2450 			const struct rte_flow_attr *comp = (*tmp)->rule.attr;
2451 
2452 			if (curr->group > comp->group ||
2453 			    (curr->group == comp->group &&
2454 			     curr->priority > comp->priority) ||
2455 			    (curr->group == comp->group &&
2456 			     curr->priority == comp->priority &&
2457 			     pf->id > (*tmp)->id))
2458 				continue;
2459 			break;
2460 		}
2461 		pf->tmp = *tmp;
2462 		*tmp = pf;
2463 	}
2464 	printf("ID\tGroup\tPrio\tAttr\tRule\n");
2465 	for (pf = list; pf != NULL; pf = pf->tmp) {
2466 		const struct rte_flow_item *item = pf->rule.pattern;
2467 		const struct rte_flow_action *action = pf->rule.actions;
2468 		const char *name;
2469 
2470 		printf("%" PRIu32 "\t%" PRIu32 "\t%" PRIu32 "\t%c%c%c\t",
2471 		       pf->id,
2472 		       pf->rule.attr->group,
2473 		       pf->rule.attr->priority,
2474 		       pf->rule.attr->ingress ? 'i' : '-',
2475 		       pf->rule.attr->egress ? 'e' : '-',
2476 		       pf->rule.attr->transfer ? 't' : '-');
2477 		while (item->type != RTE_FLOW_ITEM_TYPE_END) {
2478 			if ((uint32_t)item->type > INT_MAX)
2479 				name = "PMD_INTERNAL";
2480 			else if (rte_flow_conv(RTE_FLOW_CONV_OP_ITEM_NAME_PTR,
2481 					  &name, sizeof(name),
2482 					  (void *)(uintptr_t)item->type,
2483 					  NULL) <= 0)
2484 				name = "[UNKNOWN]";
2485 			if (item->type != RTE_FLOW_ITEM_TYPE_VOID)
2486 				printf("%s ", name);
2487 			++item;
2488 		}
2489 		printf("=>");
2490 		while (action->type != RTE_FLOW_ACTION_TYPE_END) {
2491 			if ((uint32_t)action->type > INT_MAX)
2492 				name = "PMD_INTERNAL";
2493 			else if (rte_flow_conv(RTE_FLOW_CONV_OP_ACTION_NAME_PTR,
2494 					  &name, sizeof(name),
2495 					  (void *)(uintptr_t)action->type,
2496 					  NULL) <= 0)
2497 				name = "[UNKNOWN]";
2498 			if (action->type != RTE_FLOW_ACTION_TYPE_VOID)
2499 				printf(" %s", name);
2500 			++action;
2501 		}
2502 		printf("\n");
2503 	}
2504 }
2505 
2506 /** Restrict ingress traffic to the defined flow rules. */
2507 int
2508 port_flow_isolate(portid_t port_id, int set)
2509 {
2510 	struct rte_flow_error error;
2511 
2512 	/* Poisoning to make sure PMDs update it in case of error. */
2513 	memset(&error, 0x66, sizeof(error));
2514 	if (rte_flow_isolate(port_id, set, &error))
2515 		return port_flow_complain(&error);
2516 	printf("Ingress traffic on port %u is %s to the defined flow rules\n",
2517 	       port_id,
2518 	       set ? "now restricted" : "not restricted anymore");
2519 	return 0;
2520 }
2521 
2522 /*
2523  * RX/TX ring descriptors display functions.
2524  */
2525 int
2526 rx_queue_id_is_invalid(queueid_t rxq_id)
2527 {
2528 	if (rxq_id < nb_rxq)
2529 		return 0;
2530 	fprintf(stderr, "Invalid RX queue %d (must be < nb_rxq=%d)\n",
2531 		rxq_id, nb_rxq);
2532 	return 1;
2533 }
2534 
2535 int
2536 tx_queue_id_is_invalid(queueid_t txq_id)
2537 {
2538 	if (txq_id < nb_txq)
2539 		return 0;
2540 	fprintf(stderr, "Invalid TX queue %d (must be < nb_txq=%d)\n",
2541 		txq_id, nb_txq);
2542 	return 1;
2543 }
2544 
2545 static int
2546 get_rx_ring_size(portid_t port_id, queueid_t rxq_id, uint16_t *ring_size)
2547 {
2548 	struct rte_port *port = &ports[port_id];
2549 	struct rte_eth_rxq_info rx_qinfo;
2550 	int ret;
2551 
2552 	ret = rte_eth_rx_queue_info_get(port_id, rxq_id, &rx_qinfo);
2553 	if (ret == 0) {
2554 		*ring_size = rx_qinfo.nb_desc;
2555 		return ret;
2556 	}
2557 
2558 	if (ret != -ENOTSUP)
2559 		return ret;
2560 	/*
2561 	 * If the rte_eth_rx_queue_info_get is not support for this PMD,
2562 	 * ring_size stored in testpmd will be used for validity verification.
2563 	 * When configure the rxq by rte_eth_rx_queue_setup with nb_rx_desc
2564 	 * being 0, it will use a default value provided by PMDs to setup this
2565 	 * rxq. If the default value is 0, it will use the
2566 	 * RTE_ETH_DEV_FALLBACK_RX_RINGSIZE to setup this rxq.
2567 	 */
2568 	if (port->nb_rx_desc[rxq_id])
2569 		*ring_size = port->nb_rx_desc[rxq_id];
2570 	else if (port->dev_info.default_rxportconf.ring_size)
2571 		*ring_size = port->dev_info.default_rxportconf.ring_size;
2572 	else
2573 		*ring_size = RTE_ETH_DEV_FALLBACK_RX_RINGSIZE;
2574 	return 0;
2575 }
2576 
2577 static int
2578 get_tx_ring_size(portid_t port_id, queueid_t txq_id, uint16_t *ring_size)
2579 {
2580 	struct rte_port *port = &ports[port_id];
2581 	struct rte_eth_txq_info tx_qinfo;
2582 	int ret;
2583 
2584 	ret = rte_eth_tx_queue_info_get(port_id, txq_id, &tx_qinfo);
2585 	if (ret == 0) {
2586 		*ring_size = tx_qinfo.nb_desc;
2587 		return ret;
2588 	}
2589 
2590 	if (ret != -ENOTSUP)
2591 		return ret;
2592 	/*
2593 	 * If the rte_eth_tx_queue_info_get is not support for this PMD,
2594 	 * ring_size stored in testpmd will be used for validity verification.
2595 	 * When configure the txq by rte_eth_tx_queue_setup with nb_tx_desc
2596 	 * being 0, it will use a default value provided by PMDs to setup this
2597 	 * txq. If the default value is 0, it will use the
2598 	 * RTE_ETH_DEV_FALLBACK_TX_RINGSIZE to setup this txq.
2599 	 */
2600 	if (port->nb_tx_desc[txq_id])
2601 		*ring_size = port->nb_tx_desc[txq_id];
2602 	else if (port->dev_info.default_txportconf.ring_size)
2603 		*ring_size = port->dev_info.default_txportconf.ring_size;
2604 	else
2605 		*ring_size = RTE_ETH_DEV_FALLBACK_TX_RINGSIZE;
2606 	return 0;
2607 }
2608 
2609 static int
2610 rx_desc_id_is_invalid(portid_t port_id, queueid_t rxq_id, uint16_t rxdesc_id)
2611 {
2612 	uint16_t ring_size;
2613 	int ret;
2614 
2615 	ret = get_rx_ring_size(port_id, rxq_id, &ring_size);
2616 	if (ret)
2617 		return 1;
2618 
2619 	if (rxdesc_id < ring_size)
2620 		return 0;
2621 
2622 	fprintf(stderr, "Invalid RX descriptor %u (must be < ring_size=%u)\n",
2623 		rxdesc_id, ring_size);
2624 	return 1;
2625 }
2626 
2627 static int
2628 tx_desc_id_is_invalid(portid_t port_id, queueid_t txq_id, uint16_t txdesc_id)
2629 {
2630 	uint16_t ring_size;
2631 	int ret;
2632 
2633 	ret = get_tx_ring_size(port_id, txq_id, &ring_size);
2634 	if (ret)
2635 		return 1;
2636 
2637 	if (txdesc_id < ring_size)
2638 		return 0;
2639 
2640 	fprintf(stderr, "Invalid TX descriptor %u (must be < ring_size=%u)\n",
2641 		txdesc_id, ring_size);
2642 	return 1;
2643 }
2644 
2645 static const struct rte_memzone *
2646 ring_dma_zone_lookup(const char *ring_name, portid_t port_id, uint16_t q_id)
2647 {
2648 	char mz_name[RTE_MEMZONE_NAMESIZE];
2649 	const struct rte_memzone *mz;
2650 
2651 	snprintf(mz_name, sizeof(mz_name), "eth_p%d_q%d_%s",
2652 			port_id, q_id, ring_name);
2653 	mz = rte_memzone_lookup(mz_name);
2654 	if (mz == NULL)
2655 		fprintf(stderr,
2656 			"%s ring memory zoneof (port %d, queue %d) not found (zone name = %s\n",
2657 			ring_name, port_id, q_id, mz_name);
2658 	return mz;
2659 }
2660 
2661 union igb_ring_dword {
2662 	uint64_t dword;
2663 	struct {
2664 #if RTE_BYTE_ORDER == RTE_BIG_ENDIAN
2665 		uint32_t lo;
2666 		uint32_t hi;
2667 #else
2668 		uint32_t hi;
2669 		uint32_t lo;
2670 #endif
2671 	} words;
2672 };
2673 
2674 struct igb_ring_desc_32_bytes {
2675 	union igb_ring_dword lo_dword;
2676 	union igb_ring_dword hi_dword;
2677 	union igb_ring_dword resv1;
2678 	union igb_ring_dword resv2;
2679 };
2680 
2681 struct igb_ring_desc_16_bytes {
2682 	union igb_ring_dword lo_dword;
2683 	union igb_ring_dword hi_dword;
2684 };
2685 
2686 static void
2687 ring_rxd_display_dword(union igb_ring_dword dword)
2688 {
2689 	printf("    0x%08X - 0x%08X\n", (unsigned)dword.words.lo,
2690 					(unsigned)dword.words.hi);
2691 }
2692 
2693 static void
2694 ring_rx_descriptor_display(const struct rte_memzone *ring_mz,
2695 #ifndef RTE_LIBRTE_I40E_16BYTE_RX_DESC
2696 			   portid_t port_id,
2697 #else
2698 			   __rte_unused portid_t port_id,
2699 #endif
2700 			   uint16_t desc_id)
2701 {
2702 	struct igb_ring_desc_16_bytes *ring =
2703 		(struct igb_ring_desc_16_bytes *)ring_mz->addr;
2704 #ifndef RTE_LIBRTE_I40E_16BYTE_RX_DESC
2705 	int ret;
2706 	struct rte_eth_dev_info dev_info;
2707 
2708 	ret = eth_dev_info_get_print_err(port_id, &dev_info);
2709 	if (ret != 0)
2710 		return;
2711 
2712 	if (strstr(dev_info.driver_name, "i40e") != NULL) {
2713 		/* 32 bytes RX descriptor, i40e only */
2714 		struct igb_ring_desc_32_bytes *ring =
2715 			(struct igb_ring_desc_32_bytes *)ring_mz->addr;
2716 		ring[desc_id].lo_dword.dword =
2717 			rte_le_to_cpu_64(ring[desc_id].lo_dword.dword);
2718 		ring_rxd_display_dword(ring[desc_id].lo_dword);
2719 		ring[desc_id].hi_dword.dword =
2720 			rte_le_to_cpu_64(ring[desc_id].hi_dword.dword);
2721 		ring_rxd_display_dword(ring[desc_id].hi_dword);
2722 		ring[desc_id].resv1.dword =
2723 			rte_le_to_cpu_64(ring[desc_id].resv1.dword);
2724 		ring_rxd_display_dword(ring[desc_id].resv1);
2725 		ring[desc_id].resv2.dword =
2726 			rte_le_to_cpu_64(ring[desc_id].resv2.dword);
2727 		ring_rxd_display_dword(ring[desc_id].resv2);
2728 
2729 		return;
2730 	}
2731 #endif
2732 	/* 16 bytes RX descriptor */
2733 	ring[desc_id].lo_dword.dword =
2734 		rte_le_to_cpu_64(ring[desc_id].lo_dword.dword);
2735 	ring_rxd_display_dword(ring[desc_id].lo_dword);
2736 	ring[desc_id].hi_dword.dword =
2737 		rte_le_to_cpu_64(ring[desc_id].hi_dword.dword);
2738 	ring_rxd_display_dword(ring[desc_id].hi_dword);
2739 }
2740 
2741 static void
2742 ring_tx_descriptor_display(const struct rte_memzone *ring_mz, uint16_t desc_id)
2743 {
2744 	struct igb_ring_desc_16_bytes *ring;
2745 	struct igb_ring_desc_16_bytes txd;
2746 
2747 	ring = (struct igb_ring_desc_16_bytes *)ring_mz->addr;
2748 	txd.lo_dword.dword = rte_le_to_cpu_64(ring[desc_id].lo_dword.dword);
2749 	txd.hi_dword.dword = rte_le_to_cpu_64(ring[desc_id].hi_dword.dword);
2750 	printf("    0x%08X - 0x%08X / 0x%08X - 0x%08X\n",
2751 			(unsigned)txd.lo_dword.words.lo,
2752 			(unsigned)txd.lo_dword.words.hi,
2753 			(unsigned)txd.hi_dword.words.lo,
2754 			(unsigned)txd.hi_dword.words.hi);
2755 }
2756 
2757 void
2758 rx_ring_desc_display(portid_t port_id, queueid_t rxq_id, uint16_t rxd_id)
2759 {
2760 	const struct rte_memzone *rx_mz;
2761 
2762 	if (rx_desc_id_is_invalid(port_id, rxq_id, rxd_id))
2763 		return;
2764 	rx_mz = ring_dma_zone_lookup("rx_ring", port_id, rxq_id);
2765 	if (rx_mz == NULL)
2766 		return;
2767 	ring_rx_descriptor_display(rx_mz, port_id, rxd_id);
2768 }
2769 
2770 void
2771 tx_ring_desc_display(portid_t port_id, queueid_t txq_id, uint16_t txd_id)
2772 {
2773 	const struct rte_memzone *tx_mz;
2774 
2775 	if (tx_desc_id_is_invalid(port_id, txq_id, txd_id))
2776 		return;
2777 	tx_mz = ring_dma_zone_lookup("tx_ring", port_id, txq_id);
2778 	if (tx_mz == NULL)
2779 		return;
2780 	ring_tx_descriptor_display(tx_mz, txd_id);
2781 }
2782 
2783 void
2784 fwd_lcores_config_display(void)
2785 {
2786 	lcoreid_t lc_id;
2787 
2788 	printf("List of forwarding lcores:");
2789 	for (lc_id = 0; lc_id < nb_cfg_lcores; lc_id++)
2790 		printf(" %2u", fwd_lcores_cpuids[lc_id]);
2791 	printf("\n");
2792 }
2793 void
2794 rxtx_config_display(void)
2795 {
2796 	portid_t pid;
2797 	queueid_t qid;
2798 
2799 	printf("  %s packet forwarding%s packets/burst=%d\n",
2800 	       cur_fwd_eng->fwd_mode_name,
2801 	       retry_enabled == 0 ? "" : " with retry",
2802 	       nb_pkt_per_burst);
2803 
2804 	if (cur_fwd_eng == &tx_only_engine || cur_fwd_eng == &flow_gen_engine)
2805 		printf("  packet len=%u - nb packet segments=%d\n",
2806 				(unsigned)tx_pkt_length, (int) tx_pkt_nb_segs);
2807 
2808 	printf("  nb forwarding cores=%d - nb forwarding ports=%d\n",
2809 	       nb_fwd_lcores, nb_fwd_ports);
2810 
2811 	RTE_ETH_FOREACH_DEV(pid) {
2812 		struct rte_eth_rxconf *rx_conf = &ports[pid].rx_conf[0];
2813 		struct rte_eth_txconf *tx_conf = &ports[pid].tx_conf[0];
2814 		uint16_t *nb_rx_desc = &ports[pid].nb_rx_desc[0];
2815 		uint16_t *nb_tx_desc = &ports[pid].nb_tx_desc[0];
2816 		struct rte_eth_rxq_info rx_qinfo;
2817 		struct rte_eth_txq_info tx_qinfo;
2818 		uint16_t rx_free_thresh_tmp;
2819 		uint16_t tx_free_thresh_tmp;
2820 		uint16_t tx_rs_thresh_tmp;
2821 		uint16_t nb_rx_desc_tmp;
2822 		uint16_t nb_tx_desc_tmp;
2823 		uint64_t offloads_tmp;
2824 		uint8_t pthresh_tmp;
2825 		uint8_t hthresh_tmp;
2826 		uint8_t wthresh_tmp;
2827 		int32_t rc;
2828 
2829 		/* per port config */
2830 		printf("  port %d: RX queue number: %d Tx queue number: %d\n",
2831 				(unsigned int)pid, nb_rxq, nb_txq);
2832 
2833 		printf("    Rx offloads=0x%"PRIx64" Tx offloads=0x%"PRIx64"\n",
2834 				ports[pid].dev_conf.rxmode.offloads,
2835 				ports[pid].dev_conf.txmode.offloads);
2836 
2837 		/* per rx queue config only for first queue to be less verbose */
2838 		for (qid = 0; qid < 1; qid++) {
2839 			rc = rte_eth_rx_queue_info_get(pid, qid, &rx_qinfo);
2840 			if (rc) {
2841 				nb_rx_desc_tmp = nb_rx_desc[qid];
2842 				rx_free_thresh_tmp =
2843 					rx_conf[qid].rx_free_thresh;
2844 				pthresh_tmp = rx_conf[qid].rx_thresh.pthresh;
2845 				hthresh_tmp = rx_conf[qid].rx_thresh.hthresh;
2846 				wthresh_tmp = rx_conf[qid].rx_thresh.wthresh;
2847 				offloads_tmp = rx_conf[qid].offloads;
2848 			} else {
2849 				nb_rx_desc_tmp = rx_qinfo.nb_desc;
2850 				rx_free_thresh_tmp =
2851 						rx_qinfo.conf.rx_free_thresh;
2852 				pthresh_tmp = rx_qinfo.conf.rx_thresh.pthresh;
2853 				hthresh_tmp = rx_qinfo.conf.rx_thresh.hthresh;
2854 				wthresh_tmp = rx_qinfo.conf.rx_thresh.wthresh;
2855 				offloads_tmp = rx_qinfo.conf.offloads;
2856 			}
2857 
2858 			printf("    RX queue: %d\n", qid);
2859 			printf("      RX desc=%d - RX free threshold=%d\n",
2860 				nb_rx_desc_tmp, rx_free_thresh_tmp);
2861 			printf("      RX threshold registers: pthresh=%d hthresh=%d "
2862 				" wthresh=%d\n",
2863 				pthresh_tmp, hthresh_tmp, wthresh_tmp);
2864 			printf("      RX Offloads=0x%"PRIx64"\n", offloads_tmp);
2865 		}
2866 
2867 		/* per tx queue config only for first queue to be less verbose */
2868 		for (qid = 0; qid < 1; qid++) {
2869 			rc = rte_eth_tx_queue_info_get(pid, qid, &tx_qinfo);
2870 			if (rc) {
2871 				nb_tx_desc_tmp = nb_tx_desc[qid];
2872 				tx_free_thresh_tmp =
2873 					tx_conf[qid].tx_free_thresh;
2874 				pthresh_tmp = tx_conf[qid].tx_thresh.pthresh;
2875 				hthresh_tmp = tx_conf[qid].tx_thresh.hthresh;
2876 				wthresh_tmp = tx_conf[qid].tx_thresh.wthresh;
2877 				offloads_tmp = tx_conf[qid].offloads;
2878 				tx_rs_thresh_tmp = tx_conf[qid].tx_rs_thresh;
2879 			} else {
2880 				nb_tx_desc_tmp = tx_qinfo.nb_desc;
2881 				tx_free_thresh_tmp =
2882 						tx_qinfo.conf.tx_free_thresh;
2883 				pthresh_tmp = tx_qinfo.conf.tx_thresh.pthresh;
2884 				hthresh_tmp = tx_qinfo.conf.tx_thresh.hthresh;
2885 				wthresh_tmp = tx_qinfo.conf.tx_thresh.wthresh;
2886 				offloads_tmp = tx_qinfo.conf.offloads;
2887 				tx_rs_thresh_tmp = tx_qinfo.conf.tx_rs_thresh;
2888 			}
2889 
2890 			printf("    TX queue: %d\n", qid);
2891 			printf("      TX desc=%d - TX free threshold=%d\n",
2892 				nb_tx_desc_tmp, tx_free_thresh_tmp);
2893 			printf("      TX threshold registers: pthresh=%d hthresh=%d "
2894 				" wthresh=%d\n",
2895 				pthresh_tmp, hthresh_tmp, wthresh_tmp);
2896 			printf("      TX offloads=0x%"PRIx64" - TX RS bit threshold=%d\n",
2897 				offloads_tmp, tx_rs_thresh_tmp);
2898 		}
2899 	}
2900 }
2901 
2902 void
2903 port_rss_reta_info(portid_t port_id,
2904 		   struct rte_eth_rss_reta_entry64 *reta_conf,
2905 		   uint16_t nb_entries)
2906 {
2907 	uint16_t i, idx, shift;
2908 	int ret;
2909 
2910 	if (port_id_is_invalid(port_id, ENABLED_WARN))
2911 		return;
2912 
2913 	ret = rte_eth_dev_rss_reta_query(port_id, reta_conf, nb_entries);
2914 	if (ret != 0) {
2915 		fprintf(stderr,
2916 			"Failed to get RSS RETA info, return code = %d\n",
2917 			ret);
2918 		return;
2919 	}
2920 
2921 	for (i = 0; i < nb_entries; i++) {
2922 		idx = i / RTE_RETA_GROUP_SIZE;
2923 		shift = i % RTE_RETA_GROUP_SIZE;
2924 		if (!(reta_conf[idx].mask & (1ULL << shift)))
2925 			continue;
2926 		printf("RSS RETA configuration: hash index=%u, queue=%u\n",
2927 					i, reta_conf[idx].reta[shift]);
2928 	}
2929 }
2930 
2931 /*
2932  * Displays the RSS hash functions of a port, and, optionaly, the RSS hash
2933  * key of the port.
2934  */
2935 void
2936 port_rss_hash_conf_show(portid_t port_id, int show_rss_key)
2937 {
2938 	struct rte_eth_rss_conf rss_conf = {0};
2939 	uint8_t rss_key[RSS_HASH_KEY_LENGTH];
2940 	uint64_t rss_hf;
2941 	uint8_t i;
2942 	int diag;
2943 	struct rte_eth_dev_info dev_info;
2944 	uint8_t hash_key_size;
2945 	int ret;
2946 
2947 	if (port_id_is_invalid(port_id, ENABLED_WARN))
2948 		return;
2949 
2950 	ret = eth_dev_info_get_print_err(port_id, &dev_info);
2951 	if (ret != 0)
2952 		return;
2953 
2954 	if (dev_info.hash_key_size > 0 &&
2955 			dev_info.hash_key_size <= sizeof(rss_key))
2956 		hash_key_size = dev_info.hash_key_size;
2957 	else {
2958 		fprintf(stderr,
2959 			"dev_info did not provide a valid hash key size\n");
2960 		return;
2961 	}
2962 
2963 	/* Get RSS hash key if asked to display it */
2964 	rss_conf.rss_key = (show_rss_key) ? rss_key : NULL;
2965 	rss_conf.rss_key_len = hash_key_size;
2966 	diag = rte_eth_dev_rss_hash_conf_get(port_id, &rss_conf);
2967 	if (diag != 0) {
2968 		switch (diag) {
2969 		case -ENODEV:
2970 			fprintf(stderr, "port index %d invalid\n", port_id);
2971 			break;
2972 		case -ENOTSUP:
2973 			fprintf(stderr, "operation not supported by device\n");
2974 			break;
2975 		default:
2976 			fprintf(stderr, "operation failed - diag=%d\n", diag);
2977 			break;
2978 		}
2979 		return;
2980 	}
2981 	rss_hf = rss_conf.rss_hf;
2982 	if (rss_hf == 0) {
2983 		printf("RSS disabled\n");
2984 		return;
2985 	}
2986 	printf("RSS functions:\n ");
2987 	for (i = 0; rss_type_table[i].str; i++) {
2988 		if (rss_hf & rss_type_table[i].rss_type)
2989 			printf("%s ", rss_type_table[i].str);
2990 	}
2991 	printf("\n");
2992 	if (!show_rss_key)
2993 		return;
2994 	printf("RSS key:\n");
2995 	for (i = 0; i < hash_key_size; i++)
2996 		printf("%02X", rss_key[i]);
2997 	printf("\n");
2998 }
2999 
3000 void
3001 port_rss_hash_key_update(portid_t port_id, char rss_type[], uint8_t *hash_key,
3002 			 uint8_t hash_key_len)
3003 {
3004 	struct rte_eth_rss_conf rss_conf;
3005 	int diag;
3006 	unsigned int i;
3007 
3008 	rss_conf.rss_key = NULL;
3009 	rss_conf.rss_key_len = hash_key_len;
3010 	rss_conf.rss_hf = 0;
3011 	for (i = 0; rss_type_table[i].str; i++) {
3012 		if (!strcmp(rss_type_table[i].str, rss_type))
3013 			rss_conf.rss_hf = rss_type_table[i].rss_type;
3014 	}
3015 	diag = rte_eth_dev_rss_hash_conf_get(port_id, &rss_conf);
3016 	if (diag == 0) {
3017 		rss_conf.rss_key = hash_key;
3018 		diag = rte_eth_dev_rss_hash_update(port_id, &rss_conf);
3019 	}
3020 	if (diag == 0)
3021 		return;
3022 
3023 	switch (diag) {
3024 	case -ENODEV:
3025 		fprintf(stderr, "port index %d invalid\n", port_id);
3026 		break;
3027 	case -ENOTSUP:
3028 		fprintf(stderr, "operation not supported by device\n");
3029 		break;
3030 	default:
3031 		fprintf(stderr, "operation failed - diag=%d\n", diag);
3032 		break;
3033 	}
3034 }
3035 
3036 /*
3037  * Setup forwarding configuration for each logical core.
3038  */
3039 static void
3040 setup_fwd_config_of_each_lcore(struct fwd_config *cfg)
3041 {
3042 	streamid_t nb_fs_per_lcore;
3043 	streamid_t nb_fs;
3044 	streamid_t sm_id;
3045 	lcoreid_t  nb_extra;
3046 	lcoreid_t  nb_fc;
3047 	lcoreid_t  nb_lc;
3048 	lcoreid_t  lc_id;
3049 
3050 	nb_fs = cfg->nb_fwd_streams;
3051 	nb_fc = cfg->nb_fwd_lcores;
3052 	if (nb_fs <= nb_fc) {
3053 		nb_fs_per_lcore = 1;
3054 		nb_extra = 0;
3055 	} else {
3056 		nb_fs_per_lcore = (streamid_t) (nb_fs / nb_fc);
3057 		nb_extra = (lcoreid_t) (nb_fs % nb_fc);
3058 	}
3059 
3060 	nb_lc = (lcoreid_t) (nb_fc - nb_extra);
3061 	sm_id = 0;
3062 	for (lc_id = 0; lc_id < nb_lc; lc_id++) {
3063 		fwd_lcores[lc_id]->stream_idx = sm_id;
3064 		fwd_lcores[lc_id]->stream_nb = nb_fs_per_lcore;
3065 		sm_id = (streamid_t) (sm_id + nb_fs_per_lcore);
3066 	}
3067 
3068 	/*
3069 	 * Assign extra remaining streams, if any.
3070 	 */
3071 	nb_fs_per_lcore = (streamid_t) (nb_fs_per_lcore + 1);
3072 	for (lc_id = 0; lc_id < nb_extra; lc_id++) {
3073 		fwd_lcores[nb_lc + lc_id]->stream_idx = sm_id;
3074 		fwd_lcores[nb_lc + lc_id]->stream_nb = nb_fs_per_lcore;
3075 		sm_id = (streamid_t) (sm_id + nb_fs_per_lcore);
3076 	}
3077 }
3078 
3079 static portid_t
3080 fwd_topology_tx_port_get(portid_t rxp)
3081 {
3082 	static int warning_once = 1;
3083 
3084 	RTE_ASSERT(rxp < cur_fwd_config.nb_fwd_ports);
3085 
3086 	switch (port_topology) {
3087 	default:
3088 	case PORT_TOPOLOGY_PAIRED:
3089 		if ((rxp & 0x1) == 0) {
3090 			if (rxp + 1 < cur_fwd_config.nb_fwd_ports)
3091 				return rxp + 1;
3092 			if (warning_once) {
3093 				fprintf(stderr,
3094 					"\nWarning! port-topology=paired and odd forward ports number, the last port will pair with itself.\n\n");
3095 				warning_once = 0;
3096 			}
3097 			return rxp;
3098 		}
3099 		return rxp - 1;
3100 	case PORT_TOPOLOGY_CHAINED:
3101 		return (rxp + 1) % cur_fwd_config.nb_fwd_ports;
3102 	case PORT_TOPOLOGY_LOOP:
3103 		return rxp;
3104 	}
3105 }
3106 
3107 static void
3108 simple_fwd_config_setup(void)
3109 {
3110 	portid_t i;
3111 
3112 	cur_fwd_config.nb_fwd_ports = (portid_t) nb_fwd_ports;
3113 	cur_fwd_config.nb_fwd_streams =
3114 		(streamid_t) cur_fwd_config.nb_fwd_ports;
3115 
3116 	/* reinitialize forwarding streams */
3117 	init_fwd_streams();
3118 
3119 	/*
3120 	 * In the simple forwarding test, the number of forwarding cores
3121 	 * must be lower or equal to the number of forwarding ports.
3122 	 */
3123 	cur_fwd_config.nb_fwd_lcores = (lcoreid_t) nb_fwd_lcores;
3124 	if (cur_fwd_config.nb_fwd_lcores > cur_fwd_config.nb_fwd_ports)
3125 		cur_fwd_config.nb_fwd_lcores =
3126 			(lcoreid_t) cur_fwd_config.nb_fwd_ports;
3127 	setup_fwd_config_of_each_lcore(&cur_fwd_config);
3128 
3129 	for (i = 0; i < cur_fwd_config.nb_fwd_ports; i++) {
3130 		fwd_streams[i]->rx_port   = fwd_ports_ids[i];
3131 		fwd_streams[i]->rx_queue  = 0;
3132 		fwd_streams[i]->tx_port   =
3133 				fwd_ports_ids[fwd_topology_tx_port_get(i)];
3134 		fwd_streams[i]->tx_queue  = 0;
3135 		fwd_streams[i]->peer_addr = fwd_streams[i]->tx_port;
3136 		fwd_streams[i]->retry_enabled = retry_enabled;
3137 	}
3138 }
3139 
3140 /**
3141  * For the RSS forwarding test all streams distributed over lcores. Each stream
3142  * being composed of a RX queue to poll on a RX port for input messages,
3143  * associated with a TX queue of a TX port where to send forwarded packets.
3144  */
3145 static void
3146 rss_fwd_config_setup(void)
3147 {
3148 	portid_t   rxp;
3149 	portid_t   txp;
3150 	queueid_t  rxq;
3151 	queueid_t  nb_q;
3152 	streamid_t  sm_id;
3153 	int start;
3154 	int end;
3155 
3156 	nb_q = nb_rxq;
3157 	if (nb_q > nb_txq)
3158 		nb_q = nb_txq;
3159 	cur_fwd_config.nb_fwd_lcores = (lcoreid_t) nb_fwd_lcores;
3160 	cur_fwd_config.nb_fwd_ports = nb_fwd_ports;
3161 	cur_fwd_config.nb_fwd_streams =
3162 		(streamid_t) (nb_q * cur_fwd_config.nb_fwd_ports);
3163 
3164 	if (cur_fwd_config.nb_fwd_streams < cur_fwd_config.nb_fwd_lcores)
3165 		cur_fwd_config.nb_fwd_lcores =
3166 			(lcoreid_t)cur_fwd_config.nb_fwd_streams;
3167 
3168 	/* reinitialize forwarding streams */
3169 	init_fwd_streams();
3170 
3171 	setup_fwd_config_of_each_lcore(&cur_fwd_config);
3172 
3173 	if (proc_id > 0 && nb_q % num_procs != 0)
3174 		printf("Warning! queue numbers should be multiple of processes, or packet loss will happen.\n");
3175 
3176 	/**
3177 	 * In multi-process, All queues are allocated to different
3178 	 * processes based on num_procs and proc_id. For example:
3179 	 * if supports 4 queues(nb_q), 2 processes(num_procs),
3180 	 * the 0~1 queue for primary process.
3181 	 * the 2~3 queue for secondary process.
3182 	 */
3183 	start = proc_id * nb_q / num_procs;
3184 	end = start + nb_q / num_procs;
3185 	rxp = 0;
3186 	rxq = start;
3187 	for (sm_id = 0; sm_id < cur_fwd_config.nb_fwd_streams; sm_id++) {
3188 		struct fwd_stream *fs;
3189 
3190 		fs = fwd_streams[sm_id];
3191 		txp = fwd_topology_tx_port_get(rxp);
3192 		fs->rx_port = fwd_ports_ids[rxp];
3193 		fs->rx_queue = rxq;
3194 		fs->tx_port = fwd_ports_ids[txp];
3195 		fs->tx_queue = rxq;
3196 		fs->peer_addr = fs->tx_port;
3197 		fs->retry_enabled = retry_enabled;
3198 		rxp++;
3199 		if (rxp < nb_fwd_ports)
3200 			continue;
3201 		rxp = 0;
3202 		rxq++;
3203 		if (rxq >= end)
3204 			rxq = start;
3205 	}
3206 }
3207 
3208 static uint16_t
3209 get_fwd_port_total_tc_num(void)
3210 {
3211 	struct rte_eth_dcb_info dcb_info;
3212 	uint16_t total_tc_num = 0;
3213 	unsigned int i;
3214 
3215 	for (i = 0; i < nb_fwd_ports; i++) {
3216 		(void)rte_eth_dev_get_dcb_info(fwd_ports_ids[i], &dcb_info);
3217 		total_tc_num += dcb_info.nb_tcs;
3218 	}
3219 
3220 	return total_tc_num;
3221 }
3222 
3223 /**
3224  * For the DCB forwarding test, each core is assigned on each traffic class.
3225  *
3226  * Each core is assigned a multi-stream, each stream being composed of
3227  * a RX queue to poll on a RX port for input messages, associated with
3228  * a TX queue of a TX port where to send forwarded packets. All RX and
3229  * TX queues are mapping to the same traffic class.
3230  * If VMDQ and DCB co-exist, each traffic class on different POOLs share
3231  * the same core
3232  */
3233 static void
3234 dcb_fwd_config_setup(void)
3235 {
3236 	struct rte_eth_dcb_info rxp_dcb_info, txp_dcb_info;
3237 	portid_t txp, rxp = 0;
3238 	queueid_t txq, rxq = 0;
3239 	lcoreid_t  lc_id;
3240 	uint16_t nb_rx_queue, nb_tx_queue;
3241 	uint16_t i, j, k, sm_id = 0;
3242 	uint16_t total_tc_num;
3243 	struct rte_port *port;
3244 	uint8_t tc = 0;
3245 	portid_t pid;
3246 	int ret;
3247 
3248 	/*
3249 	 * The fwd_config_setup() is called when the port is RTE_PORT_STARTED
3250 	 * or RTE_PORT_STOPPED.
3251 	 *
3252 	 * Re-configure ports to get updated mapping between tc and queue in
3253 	 * case the queue number of the port is changed. Skip for started ports
3254 	 * since modifying queue number and calling dev_configure need to stop
3255 	 * ports first.
3256 	 */
3257 	for (pid = 0; pid < nb_fwd_ports; pid++) {
3258 		if (port_is_started(pid) == 1)
3259 			continue;
3260 
3261 		port = &ports[pid];
3262 		ret = rte_eth_dev_configure(pid, nb_rxq, nb_txq,
3263 					    &port->dev_conf);
3264 		if (ret < 0) {
3265 			fprintf(stderr,
3266 				"Failed to re-configure port %d, ret = %d.\n",
3267 				pid, ret);
3268 			return;
3269 		}
3270 	}
3271 
3272 	cur_fwd_config.nb_fwd_lcores = (lcoreid_t) nb_fwd_lcores;
3273 	cur_fwd_config.nb_fwd_ports = nb_fwd_ports;
3274 	cur_fwd_config.nb_fwd_streams =
3275 		(streamid_t) (nb_rxq * cur_fwd_config.nb_fwd_ports);
3276 	total_tc_num = get_fwd_port_total_tc_num();
3277 	if (cur_fwd_config.nb_fwd_lcores > total_tc_num)
3278 		cur_fwd_config.nb_fwd_lcores = total_tc_num;
3279 
3280 	/* reinitialize forwarding streams */
3281 	init_fwd_streams();
3282 	sm_id = 0;
3283 	txp = 1;
3284 	/* get the dcb info on the first RX and TX ports */
3285 	(void)rte_eth_dev_get_dcb_info(fwd_ports_ids[rxp], &rxp_dcb_info);
3286 	(void)rte_eth_dev_get_dcb_info(fwd_ports_ids[txp], &txp_dcb_info);
3287 
3288 	for (lc_id = 0; lc_id < cur_fwd_config.nb_fwd_lcores; lc_id++) {
3289 		fwd_lcores[lc_id]->stream_nb = 0;
3290 		fwd_lcores[lc_id]->stream_idx = sm_id;
3291 		for (i = 0; i < ETH_MAX_VMDQ_POOL; i++) {
3292 			/* if the nb_queue is zero, means this tc is
3293 			 * not enabled on the POOL
3294 			 */
3295 			if (rxp_dcb_info.tc_queue.tc_rxq[i][tc].nb_queue == 0)
3296 				break;
3297 			k = fwd_lcores[lc_id]->stream_nb +
3298 				fwd_lcores[lc_id]->stream_idx;
3299 			rxq = rxp_dcb_info.tc_queue.tc_rxq[i][tc].base;
3300 			txq = txp_dcb_info.tc_queue.tc_txq[i][tc].base;
3301 			nb_rx_queue = txp_dcb_info.tc_queue.tc_rxq[i][tc].nb_queue;
3302 			nb_tx_queue = txp_dcb_info.tc_queue.tc_txq[i][tc].nb_queue;
3303 			for (j = 0; j < nb_rx_queue; j++) {
3304 				struct fwd_stream *fs;
3305 
3306 				fs = fwd_streams[k + j];
3307 				fs->rx_port = fwd_ports_ids[rxp];
3308 				fs->rx_queue = rxq + j;
3309 				fs->tx_port = fwd_ports_ids[txp];
3310 				fs->tx_queue = txq + j % nb_tx_queue;
3311 				fs->peer_addr = fs->tx_port;
3312 				fs->retry_enabled = retry_enabled;
3313 			}
3314 			fwd_lcores[lc_id]->stream_nb +=
3315 				rxp_dcb_info.tc_queue.tc_rxq[i][tc].nb_queue;
3316 		}
3317 		sm_id = (streamid_t) (sm_id + fwd_lcores[lc_id]->stream_nb);
3318 
3319 		tc++;
3320 		if (tc < rxp_dcb_info.nb_tcs)
3321 			continue;
3322 		/* Restart from TC 0 on next RX port */
3323 		tc = 0;
3324 		if (numa_support && (nb_fwd_ports <= (nb_ports >> 1)))
3325 			rxp = (portid_t)
3326 				(rxp + ((nb_ports >> 1) / nb_fwd_ports));
3327 		else
3328 			rxp++;
3329 		if (rxp >= nb_fwd_ports)
3330 			return;
3331 		/* get the dcb information on next RX and TX ports */
3332 		if ((rxp & 0x1) == 0)
3333 			txp = (portid_t) (rxp + 1);
3334 		else
3335 			txp = (portid_t) (rxp - 1);
3336 		rte_eth_dev_get_dcb_info(fwd_ports_ids[rxp], &rxp_dcb_info);
3337 		rte_eth_dev_get_dcb_info(fwd_ports_ids[txp], &txp_dcb_info);
3338 	}
3339 }
3340 
3341 static void
3342 icmp_echo_config_setup(void)
3343 {
3344 	portid_t  rxp;
3345 	queueid_t rxq;
3346 	lcoreid_t lc_id;
3347 	uint16_t  sm_id;
3348 
3349 	if ((nb_txq * nb_fwd_ports) < nb_fwd_lcores)
3350 		cur_fwd_config.nb_fwd_lcores = (lcoreid_t)
3351 			(nb_txq * nb_fwd_ports);
3352 	else
3353 		cur_fwd_config.nb_fwd_lcores = (lcoreid_t) nb_fwd_lcores;
3354 	cur_fwd_config.nb_fwd_ports = nb_fwd_ports;
3355 	cur_fwd_config.nb_fwd_streams =
3356 		(streamid_t) (nb_rxq * cur_fwd_config.nb_fwd_ports);
3357 	if (cur_fwd_config.nb_fwd_streams < cur_fwd_config.nb_fwd_lcores)
3358 		cur_fwd_config.nb_fwd_lcores =
3359 			(lcoreid_t)cur_fwd_config.nb_fwd_streams;
3360 	if (verbose_level > 0) {
3361 		printf("%s fwd_cores=%d fwd_ports=%d fwd_streams=%d\n",
3362 		       __FUNCTION__,
3363 		       cur_fwd_config.nb_fwd_lcores,
3364 		       cur_fwd_config.nb_fwd_ports,
3365 		       cur_fwd_config.nb_fwd_streams);
3366 	}
3367 
3368 	/* reinitialize forwarding streams */
3369 	init_fwd_streams();
3370 	setup_fwd_config_of_each_lcore(&cur_fwd_config);
3371 	rxp = 0; rxq = 0;
3372 	for (lc_id = 0; lc_id < cur_fwd_config.nb_fwd_lcores; lc_id++) {
3373 		if (verbose_level > 0)
3374 			printf("  core=%d: \n", lc_id);
3375 		for (sm_id = 0; sm_id < fwd_lcores[lc_id]->stream_nb; sm_id++) {
3376 			struct fwd_stream *fs;
3377 			fs = fwd_streams[fwd_lcores[lc_id]->stream_idx + sm_id];
3378 			fs->rx_port = fwd_ports_ids[rxp];
3379 			fs->rx_queue = rxq;
3380 			fs->tx_port = fs->rx_port;
3381 			fs->tx_queue = rxq;
3382 			fs->peer_addr = fs->tx_port;
3383 			fs->retry_enabled = retry_enabled;
3384 			if (verbose_level > 0)
3385 				printf("  stream=%d port=%d rxq=%d txq=%d\n",
3386 				       sm_id, fs->rx_port, fs->rx_queue,
3387 				       fs->tx_queue);
3388 			rxq = (queueid_t) (rxq + 1);
3389 			if (rxq == nb_rxq) {
3390 				rxq = 0;
3391 				rxp = (portid_t) (rxp + 1);
3392 			}
3393 		}
3394 	}
3395 }
3396 
3397 void
3398 fwd_config_setup(void)
3399 {
3400 	struct rte_port *port;
3401 	portid_t pt_id;
3402 	unsigned int i;
3403 
3404 	cur_fwd_config.fwd_eng = cur_fwd_eng;
3405 	if (strcmp(cur_fwd_eng->fwd_mode_name, "icmpecho") == 0) {
3406 		icmp_echo_config_setup();
3407 		return;
3408 	}
3409 
3410 	if ((nb_rxq > 1) && (nb_txq > 1)){
3411 		if (dcb_config) {
3412 			for (i = 0; i < nb_fwd_ports; i++) {
3413 				pt_id = fwd_ports_ids[i];
3414 				port = &ports[pt_id];
3415 				if (!port->dcb_flag) {
3416 					fprintf(stderr,
3417 						"In DCB mode, all forwarding ports must be configured in this mode.\n");
3418 					return;
3419 				}
3420 			}
3421 			if (nb_fwd_lcores == 1) {
3422 				fprintf(stderr,
3423 					"In DCB mode,the nb forwarding cores should be larger than 1.\n");
3424 				return;
3425 			}
3426 
3427 			dcb_fwd_config_setup();
3428 		} else
3429 			rss_fwd_config_setup();
3430 	}
3431 	else
3432 		simple_fwd_config_setup();
3433 }
3434 
3435 static const char *
3436 mp_alloc_to_str(uint8_t mode)
3437 {
3438 	switch (mode) {
3439 	case MP_ALLOC_NATIVE:
3440 		return "native";
3441 	case MP_ALLOC_ANON:
3442 		return "anon";
3443 	case MP_ALLOC_XMEM:
3444 		return "xmem";
3445 	case MP_ALLOC_XMEM_HUGE:
3446 		return "xmemhuge";
3447 	case MP_ALLOC_XBUF:
3448 		return "xbuf";
3449 	default:
3450 		return "invalid";
3451 	}
3452 }
3453 
3454 void
3455 pkt_fwd_config_display(struct fwd_config *cfg)
3456 {
3457 	struct fwd_stream *fs;
3458 	lcoreid_t  lc_id;
3459 	streamid_t sm_id;
3460 
3461 	printf("%s packet forwarding%s - ports=%d - cores=%d - streams=%d - "
3462 		"NUMA support %s, MP allocation mode: %s\n",
3463 		cfg->fwd_eng->fwd_mode_name,
3464 		retry_enabled == 0 ? "" : " with retry",
3465 		cfg->nb_fwd_ports, cfg->nb_fwd_lcores, cfg->nb_fwd_streams,
3466 		numa_support == 1 ? "enabled" : "disabled",
3467 		mp_alloc_to_str(mp_alloc_type));
3468 
3469 	if (retry_enabled)
3470 		printf("TX retry num: %u, delay between TX retries: %uus\n",
3471 			burst_tx_retry_num, burst_tx_delay_time);
3472 	for (lc_id = 0; lc_id < cfg->nb_fwd_lcores; lc_id++) {
3473 		printf("Logical Core %u (socket %u) forwards packets on "
3474 		       "%d streams:",
3475 		       fwd_lcores_cpuids[lc_id],
3476 		       rte_lcore_to_socket_id(fwd_lcores_cpuids[lc_id]),
3477 		       fwd_lcores[lc_id]->stream_nb);
3478 		for (sm_id = 0; sm_id < fwd_lcores[lc_id]->stream_nb; sm_id++) {
3479 			fs = fwd_streams[fwd_lcores[lc_id]->stream_idx + sm_id];
3480 			printf("\n  RX P=%d/Q=%d (socket %u) -> TX "
3481 			       "P=%d/Q=%d (socket %u) ",
3482 			       fs->rx_port, fs->rx_queue,
3483 			       ports[fs->rx_port].socket_id,
3484 			       fs->tx_port, fs->tx_queue,
3485 			       ports[fs->tx_port].socket_id);
3486 			print_ethaddr("peer=",
3487 				      &peer_eth_addrs[fs->peer_addr]);
3488 		}
3489 		printf("\n");
3490 	}
3491 	printf("\n");
3492 }
3493 
3494 void
3495 set_fwd_eth_peer(portid_t port_id, char *peer_addr)
3496 {
3497 	struct rte_ether_addr new_peer_addr;
3498 	if (!rte_eth_dev_is_valid_port(port_id)) {
3499 		fprintf(stderr, "Error: Invalid port number %i\n", port_id);
3500 		return;
3501 	}
3502 	if (rte_ether_unformat_addr(peer_addr, &new_peer_addr) < 0) {
3503 		fprintf(stderr, "Error: Invalid ethernet address: %s\n",
3504 			peer_addr);
3505 		return;
3506 	}
3507 	peer_eth_addrs[port_id] = new_peer_addr;
3508 }
3509 
3510 int
3511 set_fwd_lcores_list(unsigned int *lcorelist, unsigned int nb_lc)
3512 {
3513 	unsigned int i;
3514 	unsigned int lcore_cpuid;
3515 	int record_now;
3516 
3517 	record_now = 0;
3518  again:
3519 	for (i = 0; i < nb_lc; i++) {
3520 		lcore_cpuid = lcorelist[i];
3521 		if (! rte_lcore_is_enabled(lcore_cpuid)) {
3522 			fprintf(stderr, "lcore %u not enabled\n", lcore_cpuid);
3523 			return -1;
3524 		}
3525 		if (lcore_cpuid == rte_get_main_lcore()) {
3526 			fprintf(stderr,
3527 				"lcore %u cannot be masked on for running packet forwarding, which is the main lcore and reserved for command line parsing only\n",
3528 				lcore_cpuid);
3529 			return -1;
3530 		}
3531 		if (record_now)
3532 			fwd_lcores_cpuids[i] = lcore_cpuid;
3533 	}
3534 	if (record_now == 0) {
3535 		record_now = 1;
3536 		goto again;
3537 	}
3538 	nb_cfg_lcores = (lcoreid_t) nb_lc;
3539 	if (nb_fwd_lcores != (lcoreid_t) nb_lc) {
3540 		printf("previous number of forwarding cores %u - changed to "
3541 		       "number of configured cores %u\n",
3542 		       (unsigned int) nb_fwd_lcores, nb_lc);
3543 		nb_fwd_lcores = (lcoreid_t) nb_lc;
3544 	}
3545 
3546 	return 0;
3547 }
3548 
3549 int
3550 set_fwd_lcores_mask(uint64_t lcoremask)
3551 {
3552 	unsigned int lcorelist[64];
3553 	unsigned int nb_lc;
3554 	unsigned int i;
3555 
3556 	if (lcoremask == 0) {
3557 		fprintf(stderr, "Invalid NULL mask of cores\n");
3558 		return -1;
3559 	}
3560 	nb_lc = 0;
3561 	for (i = 0; i < 64; i++) {
3562 		if (! ((uint64_t)(1ULL << i) & lcoremask))
3563 			continue;
3564 		lcorelist[nb_lc++] = i;
3565 	}
3566 	return set_fwd_lcores_list(lcorelist, nb_lc);
3567 }
3568 
3569 void
3570 set_fwd_lcores_number(uint16_t nb_lc)
3571 {
3572 	if (test_done == 0) {
3573 		fprintf(stderr, "Please stop forwarding first\n");
3574 		return;
3575 	}
3576 	if (nb_lc > nb_cfg_lcores) {
3577 		fprintf(stderr,
3578 			"nb fwd cores %u > %u (max. number of configured lcores) - ignored\n",
3579 			(unsigned int) nb_lc, (unsigned int) nb_cfg_lcores);
3580 		return;
3581 	}
3582 	nb_fwd_lcores = (lcoreid_t) nb_lc;
3583 	printf("Number of forwarding cores set to %u\n",
3584 	       (unsigned int) nb_fwd_lcores);
3585 }
3586 
3587 void
3588 set_fwd_ports_list(unsigned int *portlist, unsigned int nb_pt)
3589 {
3590 	unsigned int i;
3591 	portid_t port_id;
3592 	int record_now;
3593 
3594 	record_now = 0;
3595  again:
3596 	for (i = 0; i < nb_pt; i++) {
3597 		port_id = (portid_t) portlist[i];
3598 		if (port_id_is_invalid(port_id, ENABLED_WARN))
3599 			return;
3600 		if (record_now)
3601 			fwd_ports_ids[i] = port_id;
3602 	}
3603 	if (record_now == 0) {
3604 		record_now = 1;
3605 		goto again;
3606 	}
3607 	nb_cfg_ports = (portid_t) nb_pt;
3608 	if (nb_fwd_ports != (portid_t) nb_pt) {
3609 		printf("previous number of forwarding ports %u - changed to "
3610 		       "number of configured ports %u\n",
3611 		       (unsigned int) nb_fwd_ports, nb_pt);
3612 		nb_fwd_ports = (portid_t) nb_pt;
3613 	}
3614 }
3615 
3616 /**
3617  * Parse the user input and obtain the list of forwarding ports
3618  *
3619  * @param[in] list
3620  *   String containing the user input. User can specify
3621  *   in these formats 1,3,5 or 1-3 or 1-2,5 or 3,5-6.
3622  *   For example, if the user wants to use all the available
3623  *   4 ports in his system, then the input can be 0-3 or 0,1,2,3.
3624  *   If the user wants to use only the ports 1,2 then the input
3625  *   is 1,2.
3626  *   valid characters are '-' and ','
3627  * @param[out] values
3628  *   This array will be filled with a list of port IDs
3629  *   based on the user input
3630  *   Note that duplicate entries are discarded and only the first
3631  *   count entries in this array are port IDs and all the rest
3632  *   will contain default values
3633  * @param[in] maxsize
3634  *   This parameter denotes 2 things
3635  *   1) Number of elements in the values array
3636  *   2) Maximum value of each element in the values array
3637  * @return
3638  *   On success, returns total count of parsed port IDs
3639  *   On failure, returns 0
3640  */
3641 static unsigned int
3642 parse_port_list(const char *list, unsigned int *values, unsigned int maxsize)
3643 {
3644 	unsigned int count = 0;
3645 	char *end = NULL;
3646 	int min, max;
3647 	int value, i;
3648 	unsigned int marked[maxsize];
3649 
3650 	if (list == NULL || values == NULL)
3651 		return 0;
3652 
3653 	for (i = 0; i < (int)maxsize; i++)
3654 		marked[i] = 0;
3655 
3656 	min = INT_MAX;
3657 
3658 	do {
3659 		/*Remove the blank spaces if any*/
3660 		while (isblank(*list))
3661 			list++;
3662 		if (*list == '\0')
3663 			break;
3664 		errno = 0;
3665 		value = strtol(list, &end, 10);
3666 		if (errno || end == NULL)
3667 			return 0;
3668 		if (value < 0 || value >= (int)maxsize)
3669 			return 0;
3670 		while (isblank(*end))
3671 			end++;
3672 		if (*end == '-' && min == INT_MAX) {
3673 			min = value;
3674 		} else if ((*end == ',') || (*end == '\0')) {
3675 			max = value;
3676 			if (min == INT_MAX)
3677 				min = value;
3678 			for (i = min; i <= max; i++) {
3679 				if (count < maxsize) {
3680 					if (marked[i])
3681 						continue;
3682 					values[count] = i;
3683 					marked[i] = 1;
3684 					count++;
3685 				}
3686 			}
3687 			min = INT_MAX;
3688 		} else
3689 			return 0;
3690 		list = end + 1;
3691 	} while (*end != '\0');
3692 
3693 	return count;
3694 }
3695 
3696 void
3697 parse_fwd_portlist(const char *portlist)
3698 {
3699 	unsigned int portcount;
3700 	unsigned int portindex[RTE_MAX_ETHPORTS];
3701 	unsigned int i, valid_port_count = 0;
3702 
3703 	portcount = parse_port_list(portlist, portindex, RTE_MAX_ETHPORTS);
3704 	if (!portcount)
3705 		rte_exit(EXIT_FAILURE, "Invalid fwd port list\n");
3706 
3707 	/*
3708 	 * Here we verify the validity of the ports
3709 	 * and thereby calculate the total number of
3710 	 * valid ports
3711 	 */
3712 	for (i = 0; i < portcount && i < RTE_DIM(portindex); i++) {
3713 		if (rte_eth_dev_is_valid_port(portindex[i])) {
3714 			portindex[valid_port_count] = portindex[i];
3715 			valid_port_count++;
3716 		}
3717 	}
3718 
3719 	set_fwd_ports_list(portindex, valid_port_count);
3720 }
3721 
3722 void
3723 set_fwd_ports_mask(uint64_t portmask)
3724 {
3725 	unsigned int portlist[64];
3726 	unsigned int nb_pt;
3727 	unsigned int i;
3728 
3729 	if (portmask == 0) {
3730 		fprintf(stderr, "Invalid NULL mask of ports\n");
3731 		return;
3732 	}
3733 	nb_pt = 0;
3734 	RTE_ETH_FOREACH_DEV(i) {
3735 		if (! ((uint64_t)(1ULL << i) & portmask))
3736 			continue;
3737 		portlist[nb_pt++] = i;
3738 	}
3739 	set_fwd_ports_list(portlist, nb_pt);
3740 }
3741 
3742 void
3743 set_fwd_ports_number(uint16_t nb_pt)
3744 {
3745 	if (nb_pt > nb_cfg_ports) {
3746 		fprintf(stderr,
3747 			"nb fwd ports %u > %u (number of configured ports) - ignored\n",
3748 			(unsigned int) nb_pt, (unsigned int) nb_cfg_ports);
3749 		return;
3750 	}
3751 	nb_fwd_ports = (portid_t) nb_pt;
3752 	printf("Number of forwarding ports set to %u\n",
3753 	       (unsigned int) nb_fwd_ports);
3754 }
3755 
3756 int
3757 port_is_forwarding(portid_t port_id)
3758 {
3759 	unsigned int i;
3760 
3761 	if (port_id_is_invalid(port_id, ENABLED_WARN))
3762 		return -1;
3763 
3764 	for (i = 0; i < nb_fwd_ports; i++) {
3765 		if (fwd_ports_ids[i] == port_id)
3766 			return 1;
3767 	}
3768 
3769 	return 0;
3770 }
3771 
3772 void
3773 set_nb_pkt_per_burst(uint16_t nb)
3774 {
3775 	if (nb > MAX_PKT_BURST) {
3776 		fprintf(stderr,
3777 			"nb pkt per burst: %u > %u (maximum packet per burst)  ignored\n",
3778 			(unsigned int) nb, (unsigned int) MAX_PKT_BURST);
3779 		return;
3780 	}
3781 	nb_pkt_per_burst = nb;
3782 	printf("Number of packets per burst set to %u\n",
3783 	       (unsigned int) nb_pkt_per_burst);
3784 }
3785 
3786 static const char *
3787 tx_split_get_name(enum tx_pkt_split split)
3788 {
3789 	uint32_t i;
3790 
3791 	for (i = 0; i != RTE_DIM(tx_split_name); i++) {
3792 		if (tx_split_name[i].split == split)
3793 			return tx_split_name[i].name;
3794 	}
3795 	return NULL;
3796 }
3797 
3798 void
3799 set_tx_pkt_split(const char *name)
3800 {
3801 	uint32_t i;
3802 
3803 	for (i = 0; i != RTE_DIM(tx_split_name); i++) {
3804 		if (strcmp(tx_split_name[i].name, name) == 0) {
3805 			tx_pkt_split = tx_split_name[i].split;
3806 			return;
3807 		}
3808 	}
3809 	fprintf(stderr, "unknown value: \"%s\"\n", name);
3810 }
3811 
3812 int
3813 parse_fec_mode(const char *name, uint32_t *fec_capa)
3814 {
3815 	uint8_t i;
3816 
3817 	for (i = 0; i < RTE_DIM(fec_mode_name); i++) {
3818 		if (strcmp(fec_mode_name[i].name, name) == 0) {
3819 			*fec_capa =
3820 				RTE_ETH_FEC_MODE_TO_CAPA(fec_mode_name[i].mode);
3821 			return 0;
3822 		}
3823 	}
3824 	return -1;
3825 }
3826 
3827 void
3828 show_fec_capability(unsigned int num, struct rte_eth_fec_capa *speed_fec_capa)
3829 {
3830 	unsigned int i, j;
3831 
3832 	printf("FEC capabilities:\n");
3833 
3834 	for (i = 0; i < num; i++) {
3835 		printf("%s : ",
3836 			rte_eth_link_speed_to_str(speed_fec_capa[i].speed));
3837 
3838 		for (j = 0; j < RTE_DIM(fec_mode_name); j++) {
3839 			if (RTE_ETH_FEC_MODE_TO_CAPA(j) &
3840 						speed_fec_capa[i].capa)
3841 				printf("%s ", fec_mode_name[j].name);
3842 		}
3843 		printf("\n");
3844 	}
3845 }
3846 
3847 void
3848 show_rx_pkt_offsets(void)
3849 {
3850 	uint32_t i, n;
3851 
3852 	n = rx_pkt_nb_offs;
3853 	printf("Number of offsets: %u\n", n);
3854 	if (n) {
3855 		printf("Segment offsets: ");
3856 		for (i = 0; i != n - 1; i++)
3857 			printf("%hu,", rx_pkt_seg_offsets[i]);
3858 		printf("%hu\n", rx_pkt_seg_lengths[i]);
3859 	}
3860 }
3861 
3862 void
3863 set_rx_pkt_offsets(unsigned int *seg_offsets, unsigned int nb_offs)
3864 {
3865 	unsigned int i;
3866 
3867 	if (nb_offs >= MAX_SEGS_BUFFER_SPLIT) {
3868 		printf("nb segments per RX packets=%u >= "
3869 		       "MAX_SEGS_BUFFER_SPLIT - ignored\n", nb_offs);
3870 		return;
3871 	}
3872 
3873 	/*
3874 	 * No extra check here, the segment length will be checked by PMD
3875 	 * in the extended queue setup.
3876 	 */
3877 	for (i = 0; i < nb_offs; i++) {
3878 		if (seg_offsets[i] >= UINT16_MAX) {
3879 			printf("offset[%u]=%u > UINT16_MAX - give up\n",
3880 			       i, seg_offsets[i]);
3881 			return;
3882 		}
3883 	}
3884 
3885 	for (i = 0; i < nb_offs; i++)
3886 		rx_pkt_seg_offsets[i] = (uint16_t) seg_offsets[i];
3887 
3888 	rx_pkt_nb_offs = (uint8_t) nb_offs;
3889 }
3890 
3891 void
3892 show_rx_pkt_segments(void)
3893 {
3894 	uint32_t i, n;
3895 
3896 	n = rx_pkt_nb_segs;
3897 	printf("Number of segments: %u\n", n);
3898 	if (n) {
3899 		printf("Segment sizes: ");
3900 		for (i = 0; i != n - 1; i++)
3901 			printf("%hu,", rx_pkt_seg_lengths[i]);
3902 		printf("%hu\n", rx_pkt_seg_lengths[i]);
3903 	}
3904 }
3905 
3906 void
3907 set_rx_pkt_segments(unsigned int *seg_lengths, unsigned int nb_segs)
3908 {
3909 	unsigned int i;
3910 
3911 	if (nb_segs >= MAX_SEGS_BUFFER_SPLIT) {
3912 		printf("nb segments per RX packets=%u >= "
3913 		       "MAX_SEGS_BUFFER_SPLIT - ignored\n", nb_segs);
3914 		return;
3915 	}
3916 
3917 	/*
3918 	 * No extra check here, the segment length will be checked by PMD
3919 	 * in the extended queue setup.
3920 	 */
3921 	for (i = 0; i < nb_segs; i++) {
3922 		if (seg_lengths[i] >= UINT16_MAX) {
3923 			printf("length[%u]=%u > UINT16_MAX - give up\n",
3924 			       i, seg_lengths[i]);
3925 			return;
3926 		}
3927 	}
3928 
3929 	for (i = 0; i < nb_segs; i++)
3930 		rx_pkt_seg_lengths[i] = (uint16_t) seg_lengths[i];
3931 
3932 	rx_pkt_nb_segs = (uint8_t) nb_segs;
3933 }
3934 
3935 void
3936 show_tx_pkt_segments(void)
3937 {
3938 	uint32_t i, n;
3939 	const char *split;
3940 
3941 	n = tx_pkt_nb_segs;
3942 	split = tx_split_get_name(tx_pkt_split);
3943 
3944 	printf("Number of segments: %u\n", n);
3945 	printf("Segment sizes: ");
3946 	for (i = 0; i != n - 1; i++)
3947 		printf("%hu,", tx_pkt_seg_lengths[i]);
3948 	printf("%hu\n", tx_pkt_seg_lengths[i]);
3949 	printf("Split packet: %s\n", split);
3950 }
3951 
3952 static bool
3953 nb_segs_is_invalid(unsigned int nb_segs)
3954 {
3955 	uint16_t ring_size;
3956 	uint16_t queue_id;
3957 	uint16_t port_id;
3958 	int ret;
3959 
3960 	RTE_ETH_FOREACH_DEV(port_id) {
3961 		for (queue_id = 0; queue_id < nb_txq; queue_id++) {
3962 			ret = get_tx_ring_size(port_id, queue_id, &ring_size);
3963 			if (ret) {
3964 				/* Port may not be initialized yet, can't say
3965 				 * the port is invalid in this stage.
3966 				 */
3967 				continue;
3968 			}
3969 			if (ring_size < nb_segs) {
3970 				printf("nb segments per TX packets=%u >= TX "
3971 				       "queue(%u) ring_size=%u - txpkts ignored\n",
3972 				       nb_segs, queue_id, ring_size);
3973 				return true;
3974 			}
3975 		}
3976 	}
3977 
3978 	return false;
3979 }
3980 
3981 void
3982 set_tx_pkt_segments(unsigned int *seg_lengths, unsigned int nb_segs)
3983 {
3984 	uint16_t tx_pkt_len;
3985 	unsigned int i;
3986 
3987 	/*
3988 	 * For single segment settings failed check is ignored.
3989 	 * It is a very basic capability to send the single segment
3990 	 * packets, suppose it is always supported.
3991 	 */
3992 	if (nb_segs > 1 && nb_segs_is_invalid(nb_segs)) {
3993 		fprintf(stderr,
3994 			"Tx segment size(%u) is not supported - txpkts ignored\n",
3995 			nb_segs);
3996 		return;
3997 	}
3998 
3999 	if (nb_segs > RTE_MAX_SEGS_PER_PKT) {
4000 		fprintf(stderr,
4001 			"Tx segment size(%u) is bigger than max number of segment(%u)\n",
4002 			nb_segs, RTE_MAX_SEGS_PER_PKT);
4003 		return;
4004 	}
4005 
4006 	/*
4007 	 * Check that each segment length is greater or equal than
4008 	 * the mbuf data size.
4009 	 * Check also that the total packet length is greater or equal than the
4010 	 * size of an empty UDP/IP packet (sizeof(struct rte_ether_hdr) +
4011 	 * 20 + 8).
4012 	 */
4013 	tx_pkt_len = 0;
4014 	for (i = 0; i < nb_segs; i++) {
4015 		if (seg_lengths[i] > mbuf_data_size[0]) {
4016 			fprintf(stderr,
4017 				"length[%u]=%u > mbuf_data_size=%u - give up\n",
4018 				i, seg_lengths[i], mbuf_data_size[0]);
4019 			return;
4020 		}
4021 		tx_pkt_len = (uint16_t)(tx_pkt_len + seg_lengths[i]);
4022 	}
4023 	if (tx_pkt_len < (sizeof(struct rte_ether_hdr) + 20 + 8)) {
4024 		fprintf(stderr, "total packet length=%u < %d - give up\n",
4025 				(unsigned) tx_pkt_len,
4026 				(int)(sizeof(struct rte_ether_hdr) + 20 + 8));
4027 		return;
4028 	}
4029 
4030 	for (i = 0; i < nb_segs; i++)
4031 		tx_pkt_seg_lengths[i] = (uint16_t) seg_lengths[i];
4032 
4033 	tx_pkt_length  = tx_pkt_len;
4034 	tx_pkt_nb_segs = (uint8_t) nb_segs;
4035 }
4036 
4037 void
4038 show_tx_pkt_times(void)
4039 {
4040 	printf("Interburst gap: %u\n", tx_pkt_times_inter);
4041 	printf("Intraburst gap: %u\n", tx_pkt_times_intra);
4042 }
4043 
4044 void
4045 set_tx_pkt_times(unsigned int *tx_times)
4046 {
4047 	tx_pkt_times_inter = tx_times[0];
4048 	tx_pkt_times_intra = tx_times[1];
4049 }
4050 
4051 void
4052 setup_gro(const char *onoff, portid_t port_id)
4053 {
4054 	if (!rte_eth_dev_is_valid_port(port_id)) {
4055 		fprintf(stderr, "invalid port id %u\n", port_id);
4056 		return;
4057 	}
4058 	if (test_done == 0) {
4059 		fprintf(stderr,
4060 			"Before enable/disable GRO, please stop forwarding first\n");
4061 		return;
4062 	}
4063 	if (strcmp(onoff, "on") == 0) {
4064 		if (gro_ports[port_id].enable != 0) {
4065 			fprintf(stderr,
4066 				"Port %u has enabled GRO. Please disable GRO first\n",
4067 				port_id);
4068 			return;
4069 		}
4070 		if (gro_flush_cycles == GRO_DEFAULT_FLUSH_CYCLES) {
4071 			gro_ports[port_id].param.gro_types = RTE_GRO_TCP_IPV4;
4072 			gro_ports[port_id].param.max_flow_num =
4073 				GRO_DEFAULT_FLOW_NUM;
4074 			gro_ports[port_id].param.max_item_per_flow =
4075 				GRO_DEFAULT_ITEM_NUM_PER_FLOW;
4076 		}
4077 		gro_ports[port_id].enable = 1;
4078 	} else {
4079 		if (gro_ports[port_id].enable == 0) {
4080 			fprintf(stderr, "Port %u has disabled GRO\n", port_id);
4081 			return;
4082 		}
4083 		gro_ports[port_id].enable = 0;
4084 	}
4085 }
4086 
4087 void
4088 setup_gro_flush_cycles(uint8_t cycles)
4089 {
4090 	if (test_done == 0) {
4091 		fprintf(stderr,
4092 			"Before change flush interval for GRO, please stop forwarding first.\n");
4093 		return;
4094 	}
4095 
4096 	if (cycles > GRO_MAX_FLUSH_CYCLES || cycles <
4097 			GRO_DEFAULT_FLUSH_CYCLES) {
4098 		fprintf(stderr,
4099 			"The flushing cycle be in the range of 1 to %u. Revert to the default value %u.\n",
4100 			GRO_MAX_FLUSH_CYCLES, GRO_DEFAULT_FLUSH_CYCLES);
4101 		cycles = GRO_DEFAULT_FLUSH_CYCLES;
4102 	}
4103 
4104 	gro_flush_cycles = cycles;
4105 }
4106 
4107 void
4108 show_gro(portid_t port_id)
4109 {
4110 	struct rte_gro_param *param;
4111 	uint32_t max_pkts_num;
4112 
4113 	param = &gro_ports[port_id].param;
4114 
4115 	if (!rte_eth_dev_is_valid_port(port_id)) {
4116 		fprintf(stderr, "Invalid port id %u.\n", port_id);
4117 		return;
4118 	}
4119 	if (gro_ports[port_id].enable) {
4120 		printf("GRO type: TCP/IPv4\n");
4121 		if (gro_flush_cycles == GRO_DEFAULT_FLUSH_CYCLES) {
4122 			max_pkts_num = param->max_flow_num *
4123 				param->max_item_per_flow;
4124 		} else
4125 			max_pkts_num = MAX_PKT_BURST * GRO_MAX_FLUSH_CYCLES;
4126 		printf("Max number of packets to perform GRO: %u\n",
4127 				max_pkts_num);
4128 		printf("Flushing cycles: %u\n", gro_flush_cycles);
4129 	} else
4130 		printf("Port %u doesn't enable GRO.\n", port_id);
4131 }
4132 
4133 void
4134 setup_gso(const char *mode, portid_t port_id)
4135 {
4136 	if (!rte_eth_dev_is_valid_port(port_id)) {
4137 		fprintf(stderr, "invalid port id %u\n", port_id);
4138 		return;
4139 	}
4140 	if (strcmp(mode, "on") == 0) {
4141 		if (test_done == 0) {
4142 			fprintf(stderr,
4143 				"before enabling GSO, please stop forwarding first\n");
4144 			return;
4145 		}
4146 		gso_ports[port_id].enable = 1;
4147 	} else if (strcmp(mode, "off") == 0) {
4148 		if (test_done == 0) {
4149 			fprintf(stderr,
4150 				"before disabling GSO, please stop forwarding first\n");
4151 			return;
4152 		}
4153 		gso_ports[port_id].enable = 0;
4154 	}
4155 }
4156 
4157 char*
4158 list_pkt_forwarding_modes(void)
4159 {
4160 	static char fwd_modes[128] = "";
4161 	const char *separator = "|";
4162 	struct fwd_engine *fwd_eng;
4163 	unsigned i = 0;
4164 
4165 	if (strlen (fwd_modes) == 0) {
4166 		while ((fwd_eng = fwd_engines[i++]) != NULL) {
4167 			strncat(fwd_modes, fwd_eng->fwd_mode_name,
4168 					sizeof(fwd_modes) - strlen(fwd_modes) - 1);
4169 			strncat(fwd_modes, separator,
4170 					sizeof(fwd_modes) - strlen(fwd_modes) - 1);
4171 		}
4172 		fwd_modes[strlen(fwd_modes) - strlen(separator)] = '\0';
4173 	}
4174 
4175 	return fwd_modes;
4176 }
4177 
4178 char*
4179 list_pkt_forwarding_retry_modes(void)
4180 {
4181 	static char fwd_modes[128] = "";
4182 	const char *separator = "|";
4183 	struct fwd_engine *fwd_eng;
4184 	unsigned i = 0;
4185 
4186 	if (strlen(fwd_modes) == 0) {
4187 		while ((fwd_eng = fwd_engines[i++]) != NULL) {
4188 			if (fwd_eng == &rx_only_engine)
4189 				continue;
4190 			strncat(fwd_modes, fwd_eng->fwd_mode_name,
4191 					sizeof(fwd_modes) -
4192 					strlen(fwd_modes) - 1);
4193 			strncat(fwd_modes, separator,
4194 					sizeof(fwd_modes) -
4195 					strlen(fwd_modes) - 1);
4196 		}
4197 		fwd_modes[strlen(fwd_modes) - strlen(separator)] = '\0';
4198 	}
4199 
4200 	return fwd_modes;
4201 }
4202 
4203 void
4204 set_pkt_forwarding_mode(const char *fwd_mode_name)
4205 {
4206 	struct fwd_engine *fwd_eng;
4207 	unsigned i;
4208 
4209 	i = 0;
4210 	while ((fwd_eng = fwd_engines[i]) != NULL) {
4211 		if (! strcmp(fwd_eng->fwd_mode_name, fwd_mode_name)) {
4212 			printf("Set %s packet forwarding mode%s\n",
4213 			       fwd_mode_name,
4214 			       retry_enabled == 0 ? "" : " with retry");
4215 			cur_fwd_eng = fwd_eng;
4216 			return;
4217 		}
4218 		i++;
4219 	}
4220 	fprintf(stderr, "Invalid %s packet forwarding mode\n", fwd_mode_name);
4221 }
4222 
4223 void
4224 add_rx_dump_callbacks(portid_t portid)
4225 {
4226 	struct rte_eth_dev_info dev_info;
4227 	uint16_t queue;
4228 	int ret;
4229 
4230 	if (port_id_is_invalid(portid, ENABLED_WARN))
4231 		return;
4232 
4233 	ret = eth_dev_info_get_print_err(portid, &dev_info);
4234 	if (ret != 0)
4235 		return;
4236 
4237 	for (queue = 0; queue < dev_info.nb_rx_queues; queue++)
4238 		if (!ports[portid].rx_dump_cb[queue])
4239 			ports[portid].rx_dump_cb[queue] =
4240 				rte_eth_add_rx_callback(portid, queue,
4241 					dump_rx_pkts, NULL);
4242 }
4243 
4244 void
4245 add_tx_dump_callbacks(portid_t portid)
4246 {
4247 	struct rte_eth_dev_info dev_info;
4248 	uint16_t queue;
4249 	int ret;
4250 
4251 	if (port_id_is_invalid(portid, ENABLED_WARN))
4252 		return;
4253 
4254 	ret = eth_dev_info_get_print_err(portid, &dev_info);
4255 	if (ret != 0)
4256 		return;
4257 
4258 	for (queue = 0; queue < dev_info.nb_tx_queues; queue++)
4259 		if (!ports[portid].tx_dump_cb[queue])
4260 			ports[portid].tx_dump_cb[queue] =
4261 				rte_eth_add_tx_callback(portid, queue,
4262 							dump_tx_pkts, NULL);
4263 }
4264 
4265 void
4266 remove_rx_dump_callbacks(portid_t portid)
4267 {
4268 	struct rte_eth_dev_info dev_info;
4269 	uint16_t queue;
4270 	int ret;
4271 
4272 	if (port_id_is_invalid(portid, ENABLED_WARN))
4273 		return;
4274 
4275 	ret = eth_dev_info_get_print_err(portid, &dev_info);
4276 	if (ret != 0)
4277 		return;
4278 
4279 	for (queue = 0; queue < dev_info.nb_rx_queues; queue++)
4280 		if (ports[portid].rx_dump_cb[queue]) {
4281 			rte_eth_remove_rx_callback(portid, queue,
4282 				ports[portid].rx_dump_cb[queue]);
4283 			ports[portid].rx_dump_cb[queue] = NULL;
4284 		}
4285 }
4286 
4287 void
4288 remove_tx_dump_callbacks(portid_t portid)
4289 {
4290 	struct rte_eth_dev_info dev_info;
4291 	uint16_t queue;
4292 	int ret;
4293 
4294 	if (port_id_is_invalid(portid, ENABLED_WARN))
4295 		return;
4296 
4297 	ret = eth_dev_info_get_print_err(portid, &dev_info);
4298 	if (ret != 0)
4299 		return;
4300 
4301 	for (queue = 0; queue < dev_info.nb_tx_queues; queue++)
4302 		if (ports[portid].tx_dump_cb[queue]) {
4303 			rte_eth_remove_tx_callback(portid, queue,
4304 				ports[portid].tx_dump_cb[queue]);
4305 			ports[portid].tx_dump_cb[queue] = NULL;
4306 		}
4307 }
4308 
4309 void
4310 configure_rxtx_dump_callbacks(uint16_t verbose)
4311 {
4312 	portid_t portid;
4313 
4314 #ifndef RTE_ETHDEV_RXTX_CALLBACKS
4315 		TESTPMD_LOG(ERR, "setting rxtx callbacks is not enabled\n");
4316 		return;
4317 #endif
4318 
4319 	RTE_ETH_FOREACH_DEV(portid)
4320 	{
4321 		if (verbose == 1 || verbose > 2)
4322 			add_rx_dump_callbacks(portid);
4323 		else
4324 			remove_rx_dump_callbacks(portid);
4325 		if (verbose >= 2)
4326 			add_tx_dump_callbacks(portid);
4327 		else
4328 			remove_tx_dump_callbacks(portid);
4329 	}
4330 }
4331 
4332 void
4333 set_verbose_level(uint16_t vb_level)
4334 {
4335 	printf("Change verbose level from %u to %u\n",
4336 	       (unsigned int) verbose_level, (unsigned int) vb_level);
4337 	verbose_level = vb_level;
4338 	configure_rxtx_dump_callbacks(verbose_level);
4339 }
4340 
4341 void
4342 vlan_extend_set(portid_t port_id, int on)
4343 {
4344 	int diag;
4345 	int vlan_offload;
4346 	uint64_t port_rx_offloads = ports[port_id].dev_conf.rxmode.offloads;
4347 
4348 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4349 		return;
4350 
4351 	vlan_offload = rte_eth_dev_get_vlan_offload(port_id);
4352 
4353 	if (on) {
4354 		vlan_offload |= ETH_VLAN_EXTEND_OFFLOAD;
4355 		port_rx_offloads |= DEV_RX_OFFLOAD_VLAN_EXTEND;
4356 	} else {
4357 		vlan_offload &= ~ETH_VLAN_EXTEND_OFFLOAD;
4358 		port_rx_offloads &= ~DEV_RX_OFFLOAD_VLAN_EXTEND;
4359 	}
4360 
4361 	diag = rte_eth_dev_set_vlan_offload(port_id, vlan_offload);
4362 	if (diag < 0) {
4363 		fprintf(stderr,
4364 			"rx_vlan_extend_set(port_pi=%d, on=%d) failed diag=%d\n",
4365 			port_id, on, diag);
4366 		return;
4367 	}
4368 	ports[port_id].dev_conf.rxmode.offloads = port_rx_offloads;
4369 }
4370 
4371 void
4372 rx_vlan_strip_set(portid_t port_id, int on)
4373 {
4374 	int diag;
4375 	int vlan_offload;
4376 	uint64_t port_rx_offloads = ports[port_id].dev_conf.rxmode.offloads;
4377 
4378 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4379 		return;
4380 
4381 	vlan_offload = rte_eth_dev_get_vlan_offload(port_id);
4382 
4383 	if (on) {
4384 		vlan_offload |= ETH_VLAN_STRIP_OFFLOAD;
4385 		port_rx_offloads |= DEV_RX_OFFLOAD_VLAN_STRIP;
4386 	} else {
4387 		vlan_offload &= ~ETH_VLAN_STRIP_OFFLOAD;
4388 		port_rx_offloads &= ~DEV_RX_OFFLOAD_VLAN_STRIP;
4389 	}
4390 
4391 	diag = rte_eth_dev_set_vlan_offload(port_id, vlan_offload);
4392 	if (diag < 0) {
4393 		fprintf(stderr,
4394 			"%s(port_pi=%d, on=%d) failed diag=%d\n",
4395 			__func__, port_id, on, diag);
4396 		return;
4397 	}
4398 	ports[port_id].dev_conf.rxmode.offloads = port_rx_offloads;
4399 }
4400 
4401 void
4402 rx_vlan_strip_set_on_queue(portid_t port_id, uint16_t queue_id, int on)
4403 {
4404 	int diag;
4405 
4406 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4407 		return;
4408 
4409 	diag = rte_eth_dev_set_vlan_strip_on_queue(port_id, queue_id, on);
4410 	if (diag < 0)
4411 		fprintf(stderr,
4412 			"%s(port_pi=%d, queue_id=%d, on=%d) failed diag=%d\n",
4413 			__func__, port_id, queue_id, on, diag);
4414 }
4415 
4416 void
4417 rx_vlan_filter_set(portid_t port_id, int on)
4418 {
4419 	int diag;
4420 	int vlan_offload;
4421 	uint64_t port_rx_offloads = ports[port_id].dev_conf.rxmode.offloads;
4422 
4423 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4424 		return;
4425 
4426 	vlan_offload = rte_eth_dev_get_vlan_offload(port_id);
4427 
4428 	if (on) {
4429 		vlan_offload |= ETH_VLAN_FILTER_OFFLOAD;
4430 		port_rx_offloads |= DEV_RX_OFFLOAD_VLAN_FILTER;
4431 	} else {
4432 		vlan_offload &= ~ETH_VLAN_FILTER_OFFLOAD;
4433 		port_rx_offloads &= ~DEV_RX_OFFLOAD_VLAN_FILTER;
4434 	}
4435 
4436 	diag = rte_eth_dev_set_vlan_offload(port_id, vlan_offload);
4437 	if (diag < 0) {
4438 		fprintf(stderr,
4439 			"%s(port_pi=%d, on=%d) failed diag=%d\n",
4440 			__func__, port_id, on, diag);
4441 		return;
4442 	}
4443 	ports[port_id].dev_conf.rxmode.offloads = port_rx_offloads;
4444 }
4445 
4446 void
4447 rx_vlan_qinq_strip_set(portid_t port_id, int on)
4448 {
4449 	int diag;
4450 	int vlan_offload;
4451 	uint64_t port_rx_offloads = ports[port_id].dev_conf.rxmode.offloads;
4452 
4453 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4454 		return;
4455 
4456 	vlan_offload = rte_eth_dev_get_vlan_offload(port_id);
4457 
4458 	if (on) {
4459 		vlan_offload |= ETH_QINQ_STRIP_OFFLOAD;
4460 		port_rx_offloads |= DEV_RX_OFFLOAD_QINQ_STRIP;
4461 	} else {
4462 		vlan_offload &= ~ETH_QINQ_STRIP_OFFLOAD;
4463 		port_rx_offloads &= ~DEV_RX_OFFLOAD_QINQ_STRIP;
4464 	}
4465 
4466 	diag = rte_eth_dev_set_vlan_offload(port_id, vlan_offload);
4467 	if (diag < 0) {
4468 		fprintf(stderr, "%s(port_pi=%d, on=%d) failed diag=%d\n",
4469 			__func__, port_id, on, diag);
4470 		return;
4471 	}
4472 	ports[port_id].dev_conf.rxmode.offloads = port_rx_offloads;
4473 }
4474 
4475 int
4476 rx_vft_set(portid_t port_id, uint16_t vlan_id, int on)
4477 {
4478 	int diag;
4479 
4480 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4481 		return 1;
4482 	if (vlan_id_is_invalid(vlan_id))
4483 		return 1;
4484 	diag = rte_eth_dev_vlan_filter(port_id, vlan_id, on);
4485 	if (diag == 0)
4486 		return 0;
4487 	fprintf(stderr,
4488 		"rte_eth_dev_vlan_filter(port_pi=%d, vlan_id=%d, on=%d) failed diag=%d\n",
4489 		port_id, vlan_id, on, diag);
4490 	return -1;
4491 }
4492 
4493 void
4494 rx_vlan_all_filter_set(portid_t port_id, int on)
4495 {
4496 	uint16_t vlan_id;
4497 
4498 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4499 		return;
4500 	for (vlan_id = 0; vlan_id < 4096; vlan_id++) {
4501 		if (rx_vft_set(port_id, vlan_id, on))
4502 			break;
4503 	}
4504 }
4505 
4506 void
4507 vlan_tpid_set(portid_t port_id, enum rte_vlan_type vlan_type, uint16_t tp_id)
4508 {
4509 	int diag;
4510 
4511 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4512 		return;
4513 
4514 	diag = rte_eth_dev_set_vlan_ether_type(port_id, vlan_type, tp_id);
4515 	if (diag == 0)
4516 		return;
4517 
4518 	fprintf(stderr,
4519 		"tx_vlan_tpid_set(port_pi=%d, vlan_type=%d, tpid=%d) failed diag=%d\n",
4520 		port_id, vlan_type, tp_id, diag);
4521 }
4522 
4523 void
4524 tx_vlan_set(portid_t port_id, uint16_t vlan_id)
4525 {
4526 	struct rte_eth_dev_info dev_info;
4527 	int ret;
4528 
4529 	if (vlan_id_is_invalid(vlan_id))
4530 		return;
4531 
4532 	if (ports[port_id].dev_conf.txmode.offloads &
4533 	    DEV_TX_OFFLOAD_QINQ_INSERT) {
4534 		fprintf(stderr, "Error, as QinQ has been enabled.\n");
4535 		return;
4536 	}
4537 
4538 	ret = eth_dev_info_get_print_err(port_id, &dev_info);
4539 	if (ret != 0)
4540 		return;
4541 
4542 	if ((dev_info.tx_offload_capa & DEV_TX_OFFLOAD_VLAN_INSERT) == 0) {
4543 		fprintf(stderr,
4544 			"Error: vlan insert is not supported by port %d\n",
4545 			port_id);
4546 		return;
4547 	}
4548 
4549 	tx_vlan_reset(port_id);
4550 	ports[port_id].dev_conf.txmode.offloads |= DEV_TX_OFFLOAD_VLAN_INSERT;
4551 	ports[port_id].tx_vlan_id = vlan_id;
4552 }
4553 
4554 void
4555 tx_qinq_set(portid_t port_id, uint16_t vlan_id, uint16_t vlan_id_outer)
4556 {
4557 	struct rte_eth_dev_info dev_info;
4558 	int ret;
4559 
4560 	if (vlan_id_is_invalid(vlan_id))
4561 		return;
4562 	if (vlan_id_is_invalid(vlan_id_outer))
4563 		return;
4564 
4565 	ret = eth_dev_info_get_print_err(port_id, &dev_info);
4566 	if (ret != 0)
4567 		return;
4568 
4569 	if ((dev_info.tx_offload_capa & DEV_TX_OFFLOAD_QINQ_INSERT) == 0) {
4570 		fprintf(stderr,
4571 			"Error: qinq insert not supported by port %d\n",
4572 			port_id);
4573 		return;
4574 	}
4575 
4576 	tx_vlan_reset(port_id);
4577 	ports[port_id].dev_conf.txmode.offloads |= (DEV_TX_OFFLOAD_VLAN_INSERT |
4578 						    DEV_TX_OFFLOAD_QINQ_INSERT);
4579 	ports[port_id].tx_vlan_id = vlan_id;
4580 	ports[port_id].tx_vlan_id_outer = vlan_id_outer;
4581 }
4582 
4583 void
4584 tx_vlan_reset(portid_t port_id)
4585 {
4586 	ports[port_id].dev_conf.txmode.offloads &=
4587 				~(DEV_TX_OFFLOAD_VLAN_INSERT |
4588 				  DEV_TX_OFFLOAD_QINQ_INSERT);
4589 	ports[port_id].tx_vlan_id = 0;
4590 	ports[port_id].tx_vlan_id_outer = 0;
4591 }
4592 
4593 void
4594 tx_vlan_pvid_set(portid_t port_id, uint16_t vlan_id, int on)
4595 {
4596 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4597 		return;
4598 
4599 	rte_eth_dev_set_vlan_pvid(port_id, vlan_id, on);
4600 }
4601 
4602 void
4603 set_qmap(portid_t port_id, uint8_t is_rx, uint16_t queue_id, uint8_t map_value)
4604 {
4605 	int ret;
4606 
4607 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4608 		return;
4609 
4610 	if (is_rx ? (rx_queue_id_is_invalid(queue_id)) : (tx_queue_id_is_invalid(queue_id)))
4611 		return;
4612 
4613 	if (map_value >= RTE_ETHDEV_QUEUE_STAT_CNTRS) {
4614 		fprintf(stderr, "map_value not in required range 0..%d\n",
4615 			RTE_ETHDEV_QUEUE_STAT_CNTRS - 1);
4616 		return;
4617 	}
4618 
4619 	if (!is_rx) { /* tx */
4620 		ret = rte_eth_dev_set_tx_queue_stats_mapping(port_id, queue_id,
4621 							     map_value);
4622 		if (ret) {
4623 			fprintf(stderr,
4624 				"failed to set tx queue stats mapping.\n");
4625 			return;
4626 		}
4627 	} else { /* rx */
4628 		ret = rte_eth_dev_set_rx_queue_stats_mapping(port_id, queue_id,
4629 							     map_value);
4630 		if (ret) {
4631 			fprintf(stderr,
4632 				"failed to set rx queue stats mapping.\n");
4633 			return;
4634 		}
4635 	}
4636 }
4637 
4638 void
4639 set_xstats_hide_zero(uint8_t on_off)
4640 {
4641 	xstats_hide_zero = on_off;
4642 }
4643 
4644 void
4645 set_record_core_cycles(uint8_t on_off)
4646 {
4647 	record_core_cycles = on_off;
4648 }
4649 
4650 void
4651 set_record_burst_stats(uint8_t on_off)
4652 {
4653 	record_burst_stats = on_off;
4654 }
4655 
4656 static char*
4657 flowtype_to_str(uint16_t flow_type)
4658 {
4659 	struct flow_type_info {
4660 		char str[32];
4661 		uint16_t ftype;
4662 	};
4663 
4664 	uint8_t i;
4665 	static struct flow_type_info flowtype_str_table[] = {
4666 		{"raw", RTE_ETH_FLOW_RAW},
4667 		{"ipv4", RTE_ETH_FLOW_IPV4},
4668 		{"ipv4-frag", RTE_ETH_FLOW_FRAG_IPV4},
4669 		{"ipv4-tcp", RTE_ETH_FLOW_NONFRAG_IPV4_TCP},
4670 		{"ipv4-udp", RTE_ETH_FLOW_NONFRAG_IPV4_UDP},
4671 		{"ipv4-sctp", RTE_ETH_FLOW_NONFRAG_IPV4_SCTP},
4672 		{"ipv4-other", RTE_ETH_FLOW_NONFRAG_IPV4_OTHER},
4673 		{"ipv6", RTE_ETH_FLOW_IPV6},
4674 		{"ipv6-frag", RTE_ETH_FLOW_FRAG_IPV6},
4675 		{"ipv6-tcp", RTE_ETH_FLOW_NONFRAG_IPV6_TCP},
4676 		{"ipv6-udp", RTE_ETH_FLOW_NONFRAG_IPV6_UDP},
4677 		{"ipv6-sctp", RTE_ETH_FLOW_NONFRAG_IPV6_SCTP},
4678 		{"ipv6-other", RTE_ETH_FLOW_NONFRAG_IPV6_OTHER},
4679 		{"l2_payload", RTE_ETH_FLOW_L2_PAYLOAD},
4680 		{"port", RTE_ETH_FLOW_PORT},
4681 		{"vxlan", RTE_ETH_FLOW_VXLAN},
4682 		{"geneve", RTE_ETH_FLOW_GENEVE},
4683 		{"nvgre", RTE_ETH_FLOW_NVGRE},
4684 		{"vxlan-gpe", RTE_ETH_FLOW_VXLAN_GPE},
4685 	};
4686 
4687 	for (i = 0; i < RTE_DIM(flowtype_str_table); i++) {
4688 		if (flowtype_str_table[i].ftype == flow_type)
4689 			return flowtype_str_table[i].str;
4690 	}
4691 
4692 	return NULL;
4693 }
4694 
4695 #if defined(RTE_NET_I40E) || defined(RTE_NET_IXGBE)
4696 
4697 static inline void
4698 print_fdir_mask(struct rte_eth_fdir_masks *mask)
4699 {
4700 	printf("\n    vlan_tci: 0x%04x", rte_be_to_cpu_16(mask->vlan_tci_mask));
4701 
4702 	if (fdir_conf.mode == RTE_FDIR_MODE_PERFECT_TUNNEL)
4703 		printf(", mac_addr: 0x%02x, tunnel_type: 0x%01x,"
4704 			" tunnel_id: 0x%08x",
4705 			mask->mac_addr_byte_mask, mask->tunnel_type_mask,
4706 			rte_be_to_cpu_32(mask->tunnel_id_mask));
4707 	else if (fdir_conf.mode != RTE_FDIR_MODE_PERFECT_MAC_VLAN) {
4708 		printf(", src_ipv4: 0x%08x, dst_ipv4: 0x%08x",
4709 			rte_be_to_cpu_32(mask->ipv4_mask.src_ip),
4710 			rte_be_to_cpu_32(mask->ipv4_mask.dst_ip));
4711 
4712 		printf("\n    src_port: 0x%04x, dst_port: 0x%04x",
4713 			rte_be_to_cpu_16(mask->src_port_mask),
4714 			rte_be_to_cpu_16(mask->dst_port_mask));
4715 
4716 		printf("\n    src_ipv6: 0x%08x,0x%08x,0x%08x,0x%08x",
4717 			rte_be_to_cpu_32(mask->ipv6_mask.src_ip[0]),
4718 			rte_be_to_cpu_32(mask->ipv6_mask.src_ip[1]),
4719 			rte_be_to_cpu_32(mask->ipv6_mask.src_ip[2]),
4720 			rte_be_to_cpu_32(mask->ipv6_mask.src_ip[3]));
4721 
4722 		printf("\n    dst_ipv6: 0x%08x,0x%08x,0x%08x,0x%08x",
4723 			rte_be_to_cpu_32(mask->ipv6_mask.dst_ip[0]),
4724 			rte_be_to_cpu_32(mask->ipv6_mask.dst_ip[1]),
4725 			rte_be_to_cpu_32(mask->ipv6_mask.dst_ip[2]),
4726 			rte_be_to_cpu_32(mask->ipv6_mask.dst_ip[3]));
4727 	}
4728 
4729 	printf("\n");
4730 }
4731 
4732 static inline void
4733 print_fdir_flex_payload(struct rte_eth_fdir_flex_conf *flex_conf, uint32_t num)
4734 {
4735 	struct rte_eth_flex_payload_cfg *cfg;
4736 	uint32_t i, j;
4737 
4738 	for (i = 0; i < flex_conf->nb_payloads; i++) {
4739 		cfg = &flex_conf->flex_set[i];
4740 		if (cfg->type == RTE_ETH_RAW_PAYLOAD)
4741 			printf("\n    RAW:  ");
4742 		else if (cfg->type == RTE_ETH_L2_PAYLOAD)
4743 			printf("\n    L2_PAYLOAD:  ");
4744 		else if (cfg->type == RTE_ETH_L3_PAYLOAD)
4745 			printf("\n    L3_PAYLOAD:  ");
4746 		else if (cfg->type == RTE_ETH_L4_PAYLOAD)
4747 			printf("\n    L4_PAYLOAD:  ");
4748 		else
4749 			printf("\n    UNKNOWN PAYLOAD(%u):  ", cfg->type);
4750 		for (j = 0; j < num; j++)
4751 			printf("  %-5u", cfg->src_offset[j]);
4752 	}
4753 	printf("\n");
4754 }
4755 
4756 static inline void
4757 print_fdir_flex_mask(struct rte_eth_fdir_flex_conf *flex_conf, uint32_t num)
4758 {
4759 	struct rte_eth_fdir_flex_mask *mask;
4760 	uint32_t i, j;
4761 	char *p;
4762 
4763 	for (i = 0; i < flex_conf->nb_flexmasks; i++) {
4764 		mask = &flex_conf->flex_mask[i];
4765 		p = flowtype_to_str(mask->flow_type);
4766 		printf("\n    %s:\t", p ? p : "unknown");
4767 		for (j = 0; j < num; j++)
4768 			printf(" %02x", mask->mask[j]);
4769 	}
4770 	printf("\n");
4771 }
4772 
4773 static inline void
4774 print_fdir_flow_type(uint32_t flow_types_mask)
4775 {
4776 	int i;
4777 	char *p;
4778 
4779 	for (i = RTE_ETH_FLOW_UNKNOWN; i < RTE_ETH_FLOW_MAX; i++) {
4780 		if (!(flow_types_mask & (1 << i)))
4781 			continue;
4782 		p = flowtype_to_str(i);
4783 		if (p)
4784 			printf(" %s", p);
4785 		else
4786 			printf(" unknown");
4787 	}
4788 	printf("\n");
4789 }
4790 
4791 static int
4792 get_fdir_info(portid_t port_id, struct rte_eth_fdir_info *fdir_info,
4793 		    struct rte_eth_fdir_stats *fdir_stat)
4794 {
4795 	int ret = -ENOTSUP;
4796 
4797 #ifdef RTE_NET_I40E
4798 	if (ret == -ENOTSUP) {
4799 		ret = rte_pmd_i40e_get_fdir_info(port_id, fdir_info);
4800 		if (!ret)
4801 			ret = rte_pmd_i40e_get_fdir_stats(port_id, fdir_stat);
4802 	}
4803 #endif
4804 #ifdef RTE_NET_IXGBE
4805 	if (ret == -ENOTSUP) {
4806 		ret = rte_pmd_ixgbe_get_fdir_info(port_id, fdir_info);
4807 		if (!ret)
4808 			ret = rte_pmd_ixgbe_get_fdir_stats(port_id, fdir_stat);
4809 	}
4810 #endif
4811 	switch (ret) {
4812 	case 0:
4813 		break;
4814 	case -ENOTSUP:
4815 		fprintf(stderr, "\n FDIR is not supported on port %-2d\n",
4816 			port_id);
4817 		break;
4818 	default:
4819 		fprintf(stderr, "programming error: (%s)\n", strerror(-ret));
4820 		break;
4821 	}
4822 	return ret;
4823 }
4824 
4825 void
4826 fdir_get_infos(portid_t port_id)
4827 {
4828 	struct rte_eth_fdir_stats fdir_stat;
4829 	struct rte_eth_fdir_info fdir_info;
4830 
4831 	static const char *fdir_stats_border = "########################";
4832 
4833 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4834 		return;
4835 
4836 	memset(&fdir_info, 0, sizeof(fdir_info));
4837 	memset(&fdir_stat, 0, sizeof(fdir_stat));
4838 	if (get_fdir_info(port_id, &fdir_info, &fdir_stat))
4839 		return;
4840 
4841 	printf("\n  %s FDIR infos for port %-2d     %s\n",
4842 	       fdir_stats_border, port_id, fdir_stats_border);
4843 	printf("  MODE: ");
4844 	if (fdir_info.mode == RTE_FDIR_MODE_PERFECT)
4845 		printf("  PERFECT\n");
4846 	else if (fdir_info.mode == RTE_FDIR_MODE_PERFECT_MAC_VLAN)
4847 		printf("  PERFECT-MAC-VLAN\n");
4848 	else if (fdir_info.mode == RTE_FDIR_MODE_PERFECT_TUNNEL)
4849 		printf("  PERFECT-TUNNEL\n");
4850 	else if (fdir_info.mode == RTE_FDIR_MODE_SIGNATURE)
4851 		printf("  SIGNATURE\n");
4852 	else
4853 		printf("  DISABLE\n");
4854 	if (fdir_info.mode != RTE_FDIR_MODE_PERFECT_MAC_VLAN
4855 		&& fdir_info.mode != RTE_FDIR_MODE_PERFECT_TUNNEL) {
4856 		printf("  SUPPORTED FLOW TYPE: ");
4857 		print_fdir_flow_type(fdir_info.flow_types_mask[0]);
4858 	}
4859 	printf("  FLEX PAYLOAD INFO:\n");
4860 	printf("  max_len:       %-10"PRIu32"  payload_limit: %-10"PRIu32"\n"
4861 	       "  payload_unit:  %-10"PRIu32"  payload_seg:   %-10"PRIu32"\n"
4862 	       "  bitmask_unit:  %-10"PRIu32"  bitmask_num:   %-10"PRIu32"\n",
4863 		fdir_info.max_flexpayload, fdir_info.flex_payload_limit,
4864 		fdir_info.flex_payload_unit,
4865 		fdir_info.max_flex_payload_segment_num,
4866 		fdir_info.flex_bitmask_unit, fdir_info.max_flex_bitmask_num);
4867 	printf("  MASK: ");
4868 	print_fdir_mask(&fdir_info.mask);
4869 	if (fdir_info.flex_conf.nb_payloads > 0) {
4870 		printf("  FLEX PAYLOAD SRC OFFSET:");
4871 		print_fdir_flex_payload(&fdir_info.flex_conf, fdir_info.max_flexpayload);
4872 	}
4873 	if (fdir_info.flex_conf.nb_flexmasks > 0) {
4874 		printf("  FLEX MASK CFG:");
4875 		print_fdir_flex_mask(&fdir_info.flex_conf, fdir_info.max_flexpayload);
4876 	}
4877 	printf("  guarant_count: %-10"PRIu32"  best_count:    %"PRIu32"\n",
4878 	       fdir_stat.guarant_cnt, fdir_stat.best_cnt);
4879 	printf("  guarant_space: %-10"PRIu32"  best_space:    %"PRIu32"\n",
4880 	       fdir_info.guarant_spc, fdir_info.best_spc);
4881 	printf("  collision:     %-10"PRIu32"  free:          %"PRIu32"\n"
4882 	       "  maxhash:       %-10"PRIu32"  maxlen:        %"PRIu32"\n"
4883 	       "  add:	         %-10"PRIu64"  remove:        %"PRIu64"\n"
4884 	       "  f_add:         %-10"PRIu64"  f_remove:      %"PRIu64"\n",
4885 	       fdir_stat.collision, fdir_stat.free,
4886 	       fdir_stat.maxhash, fdir_stat.maxlen,
4887 	       fdir_stat.add, fdir_stat.remove,
4888 	       fdir_stat.f_add, fdir_stat.f_remove);
4889 	printf("  %s############################%s\n",
4890 	       fdir_stats_border, fdir_stats_border);
4891 }
4892 
4893 #endif /* RTE_NET_I40E || RTE_NET_IXGBE */
4894 
4895 void
4896 fdir_set_flex_mask(portid_t port_id, struct rte_eth_fdir_flex_mask *cfg)
4897 {
4898 	struct rte_port *port;
4899 	struct rte_eth_fdir_flex_conf *flex_conf;
4900 	int i, idx = 0;
4901 
4902 	port = &ports[port_id];
4903 	flex_conf = &port->dev_conf.fdir_conf.flex_conf;
4904 	for (i = 0; i < RTE_ETH_FLOW_MAX; i++) {
4905 		if (cfg->flow_type == flex_conf->flex_mask[i].flow_type) {
4906 			idx = i;
4907 			break;
4908 		}
4909 	}
4910 	if (i >= RTE_ETH_FLOW_MAX) {
4911 		if (flex_conf->nb_flexmasks < RTE_DIM(flex_conf->flex_mask)) {
4912 			idx = flex_conf->nb_flexmasks;
4913 			flex_conf->nb_flexmasks++;
4914 		} else {
4915 			fprintf(stderr,
4916 				"The flex mask table is full. Can not set flex mask for flow_type(%u).",
4917 				cfg->flow_type);
4918 			return;
4919 		}
4920 	}
4921 	rte_memcpy(&flex_conf->flex_mask[idx],
4922 			 cfg,
4923 			 sizeof(struct rte_eth_fdir_flex_mask));
4924 }
4925 
4926 void
4927 fdir_set_flex_payload(portid_t port_id, struct rte_eth_flex_payload_cfg *cfg)
4928 {
4929 	struct rte_port *port;
4930 	struct rte_eth_fdir_flex_conf *flex_conf;
4931 	int i, idx = 0;
4932 
4933 	port = &ports[port_id];
4934 	flex_conf = &port->dev_conf.fdir_conf.flex_conf;
4935 	for (i = 0; i < RTE_ETH_PAYLOAD_MAX; i++) {
4936 		if (cfg->type == flex_conf->flex_set[i].type) {
4937 			idx = i;
4938 			break;
4939 		}
4940 	}
4941 	if (i >= RTE_ETH_PAYLOAD_MAX) {
4942 		if (flex_conf->nb_payloads < RTE_DIM(flex_conf->flex_set)) {
4943 			idx = flex_conf->nb_payloads;
4944 			flex_conf->nb_payloads++;
4945 		} else {
4946 			fprintf(stderr,
4947 				"The flex payload table is full. Can not set flex payload for type(%u).",
4948 				cfg->type);
4949 			return;
4950 		}
4951 	}
4952 	rte_memcpy(&flex_conf->flex_set[idx],
4953 			 cfg,
4954 			 sizeof(struct rte_eth_flex_payload_cfg));
4955 
4956 }
4957 
4958 void
4959 set_vf_traffic(portid_t port_id, uint8_t is_rx, uint16_t vf, uint8_t on)
4960 {
4961 #ifdef RTE_NET_IXGBE
4962 	int diag;
4963 
4964 	if (is_rx)
4965 		diag = rte_pmd_ixgbe_set_vf_rx(port_id, vf, on);
4966 	else
4967 		diag = rte_pmd_ixgbe_set_vf_tx(port_id, vf, on);
4968 
4969 	if (diag == 0)
4970 		return;
4971 	fprintf(stderr,
4972 		"rte_pmd_ixgbe_set_vf_%s for port_id=%d failed diag=%d\n",
4973 		is_rx ? "rx" : "tx", port_id, diag);
4974 	return;
4975 #endif
4976 	fprintf(stderr, "VF %s setting not supported for port %d\n",
4977 		is_rx ? "Rx" : "Tx", port_id);
4978 	RTE_SET_USED(vf);
4979 	RTE_SET_USED(on);
4980 }
4981 
4982 int
4983 set_queue_rate_limit(portid_t port_id, uint16_t queue_idx, uint16_t rate)
4984 {
4985 	int diag;
4986 	struct rte_eth_link link;
4987 	int ret;
4988 
4989 	if (port_id_is_invalid(port_id, ENABLED_WARN))
4990 		return 1;
4991 	ret = eth_link_get_nowait_print_err(port_id, &link);
4992 	if (ret < 0)
4993 		return 1;
4994 	if (link.link_speed != ETH_SPEED_NUM_UNKNOWN &&
4995 	    rate > link.link_speed) {
4996 		fprintf(stderr,
4997 			"Invalid rate value:%u bigger than link speed: %u\n",
4998 			rate, link.link_speed);
4999 		return 1;
5000 	}
5001 	diag = rte_eth_set_queue_rate_limit(port_id, queue_idx, rate);
5002 	if (diag == 0)
5003 		return diag;
5004 	fprintf(stderr,
5005 		"rte_eth_set_queue_rate_limit for port_id=%d failed diag=%d\n",
5006 		port_id, diag);
5007 	return diag;
5008 }
5009 
5010 int
5011 set_vf_rate_limit(portid_t port_id, uint16_t vf, uint16_t rate, uint64_t q_msk)
5012 {
5013 	int diag = -ENOTSUP;
5014 
5015 	RTE_SET_USED(vf);
5016 	RTE_SET_USED(rate);
5017 	RTE_SET_USED(q_msk);
5018 
5019 #ifdef RTE_NET_IXGBE
5020 	if (diag == -ENOTSUP)
5021 		diag = rte_pmd_ixgbe_set_vf_rate_limit(port_id, vf, rate,
5022 						       q_msk);
5023 #endif
5024 #ifdef RTE_NET_BNXT
5025 	if (diag == -ENOTSUP)
5026 		diag = rte_pmd_bnxt_set_vf_rate_limit(port_id, vf, rate, q_msk);
5027 #endif
5028 	if (diag == 0)
5029 		return diag;
5030 
5031 	fprintf(stderr,
5032 		"%s for port_id=%d failed diag=%d\n",
5033 		__func__, port_id, diag);
5034 	return diag;
5035 }
5036 
5037 /*
5038  * Functions to manage the set of filtered Multicast MAC addresses.
5039  *
5040  * A pool of filtered multicast MAC addresses is associated with each port.
5041  * The pool is allocated in chunks of MCAST_POOL_INC multicast addresses.
5042  * The address of the pool and the number of valid multicast MAC addresses
5043  * recorded in the pool are stored in the fields "mc_addr_pool" and
5044  * "mc_addr_nb" of the "rte_port" data structure.
5045  *
5046  * The function "rte_eth_dev_set_mc_addr_list" of the PMDs API imposes
5047  * to be supplied a contiguous array of multicast MAC addresses.
5048  * To comply with this constraint, the set of multicast addresses recorded
5049  * into the pool are systematically compacted at the beginning of the pool.
5050  * Hence, when a multicast address is removed from the pool, all following
5051  * addresses, if any, are copied back to keep the set contiguous.
5052  */
5053 #define MCAST_POOL_INC 32
5054 
5055 static int
5056 mcast_addr_pool_extend(struct rte_port *port)
5057 {
5058 	struct rte_ether_addr *mc_pool;
5059 	size_t mc_pool_size;
5060 
5061 	/*
5062 	 * If a free entry is available at the end of the pool, just
5063 	 * increment the number of recorded multicast addresses.
5064 	 */
5065 	if ((port->mc_addr_nb % MCAST_POOL_INC) != 0) {
5066 		port->mc_addr_nb++;
5067 		return 0;
5068 	}
5069 
5070 	/*
5071 	 * [re]allocate a pool with MCAST_POOL_INC more entries.
5072 	 * The previous test guarantees that port->mc_addr_nb is a multiple
5073 	 * of MCAST_POOL_INC.
5074 	 */
5075 	mc_pool_size = sizeof(struct rte_ether_addr) * (port->mc_addr_nb +
5076 						    MCAST_POOL_INC);
5077 	mc_pool = (struct rte_ether_addr *) realloc(port->mc_addr_pool,
5078 						mc_pool_size);
5079 	if (mc_pool == NULL) {
5080 		fprintf(stderr,
5081 			"allocation of pool of %u multicast addresses failed\n",
5082 			port->mc_addr_nb + MCAST_POOL_INC);
5083 		return -ENOMEM;
5084 	}
5085 
5086 	port->mc_addr_pool = mc_pool;
5087 	port->mc_addr_nb++;
5088 	return 0;
5089 
5090 }
5091 
5092 static void
5093 mcast_addr_pool_append(struct rte_port *port, struct rte_ether_addr *mc_addr)
5094 {
5095 	if (mcast_addr_pool_extend(port) != 0)
5096 		return;
5097 	rte_ether_addr_copy(mc_addr, &port->mc_addr_pool[port->mc_addr_nb - 1]);
5098 }
5099 
5100 static void
5101 mcast_addr_pool_remove(struct rte_port *port, uint32_t addr_idx)
5102 {
5103 	port->mc_addr_nb--;
5104 	if (addr_idx == port->mc_addr_nb) {
5105 		/* No need to recompact the set of multicast addressses. */
5106 		if (port->mc_addr_nb == 0) {
5107 			/* free the pool of multicast addresses. */
5108 			free(port->mc_addr_pool);
5109 			port->mc_addr_pool = NULL;
5110 		}
5111 		return;
5112 	}
5113 	memmove(&port->mc_addr_pool[addr_idx],
5114 		&port->mc_addr_pool[addr_idx + 1],
5115 		sizeof(struct rte_ether_addr) * (port->mc_addr_nb - addr_idx));
5116 }
5117 
5118 static int
5119 eth_port_multicast_addr_list_set(portid_t port_id)
5120 {
5121 	struct rte_port *port;
5122 	int diag;
5123 
5124 	port = &ports[port_id];
5125 	diag = rte_eth_dev_set_mc_addr_list(port_id, port->mc_addr_pool,
5126 					    port->mc_addr_nb);
5127 	if (diag < 0)
5128 		fprintf(stderr,
5129 			"rte_eth_dev_set_mc_addr_list(port=%d, nb=%u) failed. diag=%d\n",
5130 			port_id, port->mc_addr_nb, diag);
5131 
5132 	return diag;
5133 }
5134 
5135 void
5136 mcast_addr_add(portid_t port_id, struct rte_ether_addr *mc_addr)
5137 {
5138 	struct rte_port *port;
5139 	uint32_t i;
5140 
5141 	if (port_id_is_invalid(port_id, ENABLED_WARN))
5142 		return;
5143 
5144 	port = &ports[port_id];
5145 
5146 	/*
5147 	 * Check that the added multicast MAC address is not already recorded
5148 	 * in the pool of multicast addresses.
5149 	 */
5150 	for (i = 0; i < port->mc_addr_nb; i++) {
5151 		if (rte_is_same_ether_addr(mc_addr, &port->mc_addr_pool[i])) {
5152 			fprintf(stderr,
5153 				"multicast address already filtered by port\n");
5154 			return;
5155 		}
5156 	}
5157 
5158 	mcast_addr_pool_append(port, mc_addr);
5159 	if (eth_port_multicast_addr_list_set(port_id) < 0)
5160 		/* Rollback on failure, remove the address from the pool */
5161 		mcast_addr_pool_remove(port, i);
5162 }
5163 
5164 void
5165 mcast_addr_remove(portid_t port_id, struct rte_ether_addr *mc_addr)
5166 {
5167 	struct rte_port *port;
5168 	uint32_t i;
5169 
5170 	if (port_id_is_invalid(port_id, ENABLED_WARN))
5171 		return;
5172 
5173 	port = &ports[port_id];
5174 
5175 	/*
5176 	 * Search the pool of multicast MAC addresses for the removed address.
5177 	 */
5178 	for (i = 0; i < port->mc_addr_nb; i++) {
5179 		if (rte_is_same_ether_addr(mc_addr, &port->mc_addr_pool[i]))
5180 			break;
5181 	}
5182 	if (i == port->mc_addr_nb) {
5183 		fprintf(stderr, "multicast address not filtered by port %d\n",
5184 			port_id);
5185 		return;
5186 	}
5187 
5188 	mcast_addr_pool_remove(port, i);
5189 	if (eth_port_multicast_addr_list_set(port_id) < 0)
5190 		/* Rollback on failure, add the address back into the pool */
5191 		mcast_addr_pool_append(port, mc_addr);
5192 }
5193 
5194 void
5195 port_dcb_info_display(portid_t port_id)
5196 {
5197 	struct rte_eth_dcb_info dcb_info;
5198 	uint16_t i;
5199 	int ret;
5200 	static const char *border = "================";
5201 
5202 	if (port_id_is_invalid(port_id, ENABLED_WARN))
5203 		return;
5204 
5205 	ret = rte_eth_dev_get_dcb_info(port_id, &dcb_info);
5206 	if (ret) {
5207 		fprintf(stderr, "\n Failed to get dcb infos on port %-2d\n",
5208 			port_id);
5209 		return;
5210 	}
5211 	printf("\n  %s DCB infos for port %-2d  %s\n", border, port_id, border);
5212 	printf("  TC NUMBER: %d\n", dcb_info.nb_tcs);
5213 	printf("\n  TC :        ");
5214 	for (i = 0; i < dcb_info.nb_tcs; i++)
5215 		printf("\t%4d", i);
5216 	printf("\n  Priority :  ");
5217 	for (i = 0; i < dcb_info.nb_tcs; i++)
5218 		printf("\t%4d", dcb_info.prio_tc[i]);
5219 	printf("\n  BW percent :");
5220 	for (i = 0; i < dcb_info.nb_tcs; i++)
5221 		printf("\t%4d%%", dcb_info.tc_bws[i]);
5222 	printf("\n  RXQ base :  ");
5223 	for (i = 0; i < dcb_info.nb_tcs; i++)
5224 		printf("\t%4d", dcb_info.tc_queue.tc_rxq[0][i].base);
5225 	printf("\n  RXQ number :");
5226 	for (i = 0; i < dcb_info.nb_tcs; i++)
5227 		printf("\t%4d", dcb_info.tc_queue.tc_rxq[0][i].nb_queue);
5228 	printf("\n  TXQ base :  ");
5229 	for (i = 0; i < dcb_info.nb_tcs; i++)
5230 		printf("\t%4d", dcb_info.tc_queue.tc_txq[0][i].base);
5231 	printf("\n  TXQ number :");
5232 	for (i = 0; i < dcb_info.nb_tcs; i++)
5233 		printf("\t%4d", dcb_info.tc_queue.tc_txq[0][i].nb_queue);
5234 	printf("\n");
5235 }
5236 
5237 uint8_t *
5238 open_file(const char *file_path, uint32_t *size)
5239 {
5240 	int fd = open(file_path, O_RDONLY);
5241 	off_t pkg_size;
5242 	uint8_t *buf = NULL;
5243 	int ret = 0;
5244 	struct stat st_buf;
5245 
5246 	if (size)
5247 		*size = 0;
5248 
5249 	if (fd == -1) {
5250 		fprintf(stderr, "%s: Failed to open %s\n", __func__, file_path);
5251 		return buf;
5252 	}
5253 
5254 	if ((fstat(fd, &st_buf) != 0) || (!S_ISREG(st_buf.st_mode))) {
5255 		close(fd);
5256 		fprintf(stderr, "%s: File operations failed\n", __func__);
5257 		return buf;
5258 	}
5259 
5260 	pkg_size = st_buf.st_size;
5261 	if (pkg_size < 0) {
5262 		close(fd);
5263 		fprintf(stderr, "%s: File operations failed\n", __func__);
5264 		return buf;
5265 	}
5266 
5267 	buf = (uint8_t *)malloc(pkg_size);
5268 	if (!buf) {
5269 		close(fd);
5270 		fprintf(stderr, "%s: Failed to malloc memory\n", __func__);
5271 		return buf;
5272 	}
5273 
5274 	ret = read(fd, buf, pkg_size);
5275 	if (ret < 0) {
5276 		close(fd);
5277 		fprintf(stderr, "%s: File read operation failed\n", __func__);
5278 		close_file(buf);
5279 		return NULL;
5280 	}
5281 
5282 	if (size)
5283 		*size = pkg_size;
5284 
5285 	close(fd);
5286 
5287 	return buf;
5288 }
5289 
5290 int
5291 save_file(const char *file_path, uint8_t *buf, uint32_t size)
5292 {
5293 	FILE *fh = fopen(file_path, "wb");
5294 
5295 	if (fh == NULL) {
5296 		fprintf(stderr, "%s: Failed to open %s\n", __func__, file_path);
5297 		return -1;
5298 	}
5299 
5300 	if (fwrite(buf, 1, size, fh) != size) {
5301 		fclose(fh);
5302 		fprintf(stderr, "%s: File write operation failed\n", __func__);
5303 		return -1;
5304 	}
5305 
5306 	fclose(fh);
5307 
5308 	return 0;
5309 }
5310 
5311 int
5312 close_file(uint8_t *buf)
5313 {
5314 	if (buf) {
5315 		free((void *)buf);
5316 		return 0;
5317 	}
5318 
5319 	return -1;
5320 }
5321 
5322 void
5323 port_queue_region_info_display(portid_t port_id, void *buf)
5324 {
5325 #ifdef RTE_NET_I40E
5326 	uint16_t i, j;
5327 	struct rte_pmd_i40e_queue_regions *info =
5328 		(struct rte_pmd_i40e_queue_regions *)buf;
5329 	static const char *queue_region_info_stats_border = "-------";
5330 
5331 	if (!info->queue_region_number)
5332 		printf("there is no region has been set before");
5333 
5334 	printf("\n	%s All queue region info for port=%2d %s",
5335 			queue_region_info_stats_border, port_id,
5336 			queue_region_info_stats_border);
5337 	printf("\n	queue_region_number: %-14u \n",
5338 			info->queue_region_number);
5339 
5340 	for (i = 0; i < info->queue_region_number; i++) {
5341 		printf("\n	region_id: %-14u queue_number: %-14u "
5342 			"queue_start_index: %-14u \n",
5343 			info->region[i].region_id,
5344 			info->region[i].queue_num,
5345 			info->region[i].queue_start_index);
5346 
5347 		printf("  user_priority_num is	%-14u :",
5348 					info->region[i].user_priority_num);
5349 		for (j = 0; j < info->region[i].user_priority_num; j++)
5350 			printf(" %-14u ", info->region[i].user_priority[j]);
5351 
5352 		printf("\n	flowtype_num is  %-14u :",
5353 				info->region[i].flowtype_num);
5354 		for (j = 0; j < info->region[i].flowtype_num; j++)
5355 			printf(" %-14u ", info->region[i].hw_flowtype[j]);
5356 	}
5357 #else
5358 	RTE_SET_USED(port_id);
5359 	RTE_SET_USED(buf);
5360 #endif
5361 
5362 	printf("\n\n");
5363 }
5364 
5365 void
5366 show_macs(portid_t port_id)
5367 {
5368 	char buf[RTE_ETHER_ADDR_FMT_SIZE];
5369 	struct rte_eth_dev_info dev_info;
5370 	int32_t i, rc, num_macs = 0;
5371 
5372 	if (eth_dev_info_get_print_err(port_id, &dev_info))
5373 		return;
5374 
5375 	struct rte_ether_addr addr[dev_info.max_mac_addrs];
5376 	rc = rte_eth_macaddrs_get(port_id, addr, dev_info.max_mac_addrs);
5377 	if (rc < 0)
5378 		return;
5379 
5380 	for (i = 0; i < rc; i++) {
5381 
5382 		/* skip zero address */
5383 		if (rte_is_zero_ether_addr(&addr[i]))
5384 			continue;
5385 
5386 		num_macs++;
5387 	}
5388 
5389 	printf("Number of MAC address added: %d\n", num_macs);
5390 
5391 	for (i = 0; i < rc; i++) {
5392 
5393 		/* skip zero address */
5394 		if (rte_is_zero_ether_addr(&addr[i]))
5395 			continue;
5396 
5397 		rte_ether_format_addr(buf, RTE_ETHER_ADDR_FMT_SIZE, &addr[i]);
5398 		printf("  %s\n", buf);
5399 	}
5400 }
5401 
5402 void
5403 show_mcast_macs(portid_t port_id)
5404 {
5405 	char buf[RTE_ETHER_ADDR_FMT_SIZE];
5406 	struct rte_ether_addr *addr;
5407 	struct rte_port *port;
5408 	uint32_t i;
5409 
5410 	port = &ports[port_id];
5411 
5412 	printf("Number of Multicast MAC address added: %d\n", port->mc_addr_nb);
5413 
5414 	for (i = 0; i < port->mc_addr_nb; i++) {
5415 		addr = &port->mc_addr_pool[i];
5416 
5417 		rte_ether_format_addr(buf, RTE_ETHER_ADDR_FMT_SIZE, addr);
5418 		printf("  %s\n", buf);
5419 	}
5420 }
5421