FD.io VPP  v16.12-rc0-308-g931be3a
Vector Packet Processing
device.c
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1 /*
2  * Copyright (c) 2015 Cisco and/or its affiliates.
3  * Licensed under the Apache License, Version 2.0 (the "License");
4  * you may not use this file except in compliance with the License.
5  * You may obtain a copy of the License at:
6  *
7  * http://www.apache.org/licenses/LICENSE-2.0
8  *
9  * Unless required by applicable law or agreed to in writing, software
10  * distributed under the License is distributed on an "AS IS" BASIS,
11  * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
12  * See the License for the specific language governing permissions and
13  * limitations under the License.
14  */
15 #include <vnet/vnet.h>
16 #include <vppinfra/vec.h>
17 #include <vppinfra/format.h>
18 #include <vlib/unix/cj.h>
19 #include <assert.h>
20 
21 #include <vnet/ethernet/ethernet.h>
22 #include <vnet/devices/dpdk/dpdk.h>
23 
24 #include "dpdk_priv.h"
25 #include <vppinfra/error.h>
26 
27 #define foreach_dpdk_tx_func_error \
28  _(BAD_RETVAL, "DPDK tx function returned an error") \
29  _(RING_FULL, "Tx packet drops (ring full)") \
30  _(PKT_DROP, "Tx packet drops (dpdk tx failure)") \
31  _(REPL_FAIL, "Tx packet drops (replication failure)")
32 
33 typedef enum
34 {
35 #define _(f,s) DPDK_TX_FUNC_ERROR_##f,
37 #undef _
40 
41 static char *dpdk_tx_func_error_strings[] = {
42 #define _(n,s) s,
44 #undef _
45 };
46 
49 {
50  int error;
51  dpdk_main_t *dm = &dpdk_main;
53 
54  error = rte_eth_dev_default_mac_addr_set (xd->device_index,
55  (struct ether_addr *) address);
56 
57  if (error)
58  {
59  return clib_error_return (0, "mac address set failed: %d", error);
60  }
61  else
62  {
63  return NULL;
64  }
65 }
66 
69  struct ether_addr mc_addr_vec[], int naddr)
70 {
71  int error;
72  dpdk_main_t *dm = &dpdk_main;
74 
75  error = rte_eth_dev_set_mc_addr_list (xd->device_index, mc_addr_vec, naddr);
76 
77  if (error)
78  {
79  return clib_error_return (0, "mc addr list failed: %d", error);
80  }
81  else
82  {
83  return NULL;
84  }
85 }
86 
87 struct rte_mbuf *
89 {
90  vlib_main_t *vm = vlib_get_main ();
92  struct rte_mbuf *first_mb = 0, *new_mb, *pkt_mb, **prev_mb_next = 0;
93  u8 nb_segs, nb_segs_left;
94  u32 copy_bytes;
95  unsigned socket_id = rte_socket_id ();
96 
97  ASSERT (bm->pktmbuf_pools[socket_id]);
98  pkt_mb = rte_mbuf_from_vlib_buffer (b);
99  nb_segs = pkt_mb->nb_segs;
100  for (nb_segs_left = nb_segs; nb_segs_left; nb_segs_left--)
101  {
102  if (PREDICT_FALSE (pkt_mb == 0))
103  {
104  clib_warning ("Missing %d mbuf chain segment(s): "
105  "(nb_segs = %d, nb_segs_left = %d)!",
106  nb_segs - nb_segs_left, nb_segs, nb_segs_left);
107  if (first_mb)
108  rte_pktmbuf_free (first_mb);
109  return NULL;
110  }
111  new_mb = rte_pktmbuf_alloc (bm->pktmbuf_pools[socket_id]);
112  if (PREDICT_FALSE (new_mb == 0))
113  {
114  if (first_mb)
115  rte_pktmbuf_free (first_mb);
116  return NULL;
117  }
118 
119  /*
120  * Copy packet info into 1st segment.
121  */
122  if (first_mb == 0)
123  {
124  first_mb = new_mb;
125  rte_pktmbuf_pkt_len (first_mb) = pkt_mb->pkt_len;
126  first_mb->nb_segs = pkt_mb->nb_segs;
127  first_mb->port = pkt_mb->port;
128 #ifdef DAW_FIXME // TX Offload support TBD
129  first_mb->vlan_macip = pkt_mb->vlan_macip;
130  first_mb->hash = pkt_mb->hash;
131  first_mb->ol_flags = pkt_mb->ol_flags
132 #endif
133  }
134  else
135  {
136  ASSERT (prev_mb_next != 0);
137  *prev_mb_next = new_mb;
138  }
139 
140  /*
141  * Copy packet segment data into new mbuf segment.
142  */
143  rte_pktmbuf_data_len (new_mb) = pkt_mb->data_len;
144  copy_bytes = pkt_mb->data_len + RTE_PKTMBUF_HEADROOM;
145  ASSERT (copy_bytes <= pkt_mb->buf_len);
146  clib_memcpy (new_mb->buf_addr, pkt_mb->buf_addr, copy_bytes);
147 
148  prev_mb_next = &new_mb->next;
149  pkt_mb = pkt_mb->next;
150  }
151 
152  ASSERT (pkt_mb == 0);
153  __rte_mbuf_sanity_check (first_mb, 1);
154 
155  return first_mb;
156 }
157 
158 struct rte_mbuf *
160 {
161  vlib_main_t *vm = vlib_get_main ();
163  struct rte_mbuf *first_mb = 0, *new_mb, *pkt_mb, **prev_mb_next = 0;
164  u8 nb_segs, nb_segs_left;
165  unsigned socket_id = rte_socket_id ();
166 
167  ASSERT (bm->pktmbuf_pools[socket_id]);
168  pkt_mb = rte_mbuf_from_vlib_buffer (b);
169  nb_segs = pkt_mb->nb_segs;
170  for (nb_segs_left = nb_segs; nb_segs_left; nb_segs_left--)
171  {
172  if (PREDICT_FALSE (pkt_mb == 0))
173  {
174  clib_warning ("Missing %d mbuf chain segment(s): "
175  "(nb_segs = %d, nb_segs_left = %d)!",
176  nb_segs - nb_segs_left, nb_segs, nb_segs_left);
177  if (first_mb)
178  rte_pktmbuf_free (first_mb);
179  return NULL;
180  }
181  new_mb = rte_pktmbuf_clone (pkt_mb, bm->pktmbuf_pools[socket_id]);
182  if (PREDICT_FALSE (new_mb == 0))
183  {
184  if (first_mb)
185  rte_pktmbuf_free (first_mb);
186  return NULL;
187  }
188 
189  /*
190  * Copy packet info into 1st segment.
191  */
192  if (first_mb == 0)
193  {
194  first_mb = new_mb;
195  rte_pktmbuf_pkt_len (first_mb) = pkt_mb->pkt_len;
196  first_mb->nb_segs = pkt_mb->nb_segs;
197  first_mb->port = pkt_mb->port;
198 #ifdef DAW_FIXME // TX Offload support TBD
199  first_mb->vlan_macip = pkt_mb->vlan_macip;
200  first_mb->hash = pkt_mb->hash;
201  first_mb->ol_flags = pkt_mb->ol_flags
202 #endif
203  }
204  else
205  {
206  ASSERT (prev_mb_next != 0);
207  *prev_mb_next = new_mb;
208  }
209 
210  /*
211  * Copy packet segment data into new mbuf segment.
212  */
213  rte_pktmbuf_data_len (new_mb) = pkt_mb->data_len;
214 
215  prev_mb_next = &new_mb->next;
216  pkt_mb = pkt_mb->next;
217  }
218 
219  ASSERT (pkt_mb == 0);
220  __rte_mbuf_sanity_check (first_mb, 1);
221 
222  return first_mb;
223 
224 
225 }
226 
227 static void
229  vlib_node_runtime_t * node,
230  dpdk_device_t * xd,
231  u16 queue_id, u32 buffer_index, vlib_buffer_t * buffer)
232 {
233  vlib_main_t *vm = vlib_get_main ();
235  struct rte_mbuf *mb;
236 
237  mb = rte_mbuf_from_vlib_buffer (buffer);
238 
239  t0 = vlib_add_trace (vm, node, buffer, sizeof (t0[0]));
240  t0->queue_index = queue_id;
241  t0->device_index = xd->device_index;
242  t0->buffer_index = buffer_index;
243  clib_memcpy (&t0->mb, mb, sizeof (t0->mb));
244  clib_memcpy (&t0->buffer, buffer,
245  sizeof (buffer[0]) - sizeof (buffer->pre_data));
246  clib_memcpy (t0->buffer.pre_data, buffer->data + buffer->current_data,
247  sizeof (t0->buffer.pre_data));
248 }
249 
250 /*
251  * This function calls the dpdk's tx_burst function to transmit the packets
252  * on the tx_vector. It manages a lock per-device if the device does not
253  * support multiple queues. It returns the number of packets untransmitted
254  * on the tx_vector. If all packets are transmitted (the normal case), the
255  * function returns 0.
256  *
257  * The tx_burst function may not be able to transmit all packets because the
258  * dpdk ring is full. If a flowcontrol callback function has been configured
259  * then the function simply returns. If no callback has been configured, the
260  * function will retry calling tx_burst with the remaining packets. This will
261  * continue until all packets are transmitted or tx_burst indicates no packets
262  * could be transmitted. (The caller can drop the remaining packets.)
263  *
264  * The function assumes there is at least one packet on the tx_vector.
265  */
268  dpdk_device_t * xd,
269  struct rte_mbuf **tx_vector)
270 {
271  dpdk_main_t *dm = &dpdk_main;
272  u32 n_packets;
273  u32 tx_head;
274  u32 tx_tail;
275  u32 n_retry;
276  int rv;
277  int queue_id;
278  tx_ring_hdr_t *ring;
279 
280  ring = vec_header (tx_vector, sizeof (*ring));
281 
282  n_packets = ring->tx_head - ring->tx_tail;
283 
284  tx_head = ring->tx_head % xd->nb_tx_desc;
285 
286  /*
287  * Ensure rte_eth_tx_burst is not called with 0 packets, which can lead to
288  * unpredictable results.
289  */
290  ASSERT (n_packets > 0);
291 
292  /*
293  * Check for tx_vector overflow. If this fails it is a system configuration
294  * error. The ring should be sized big enough to handle the largest un-flowed
295  * off burst from a traffic manager. A larger size also helps performance
296  * a bit because it decreases the probability of having to issue two tx_burst
297  * calls due to a ring wrap.
298  */
299  ASSERT (n_packets < xd->nb_tx_desc);
300 
301  /*
302  * If there is no flowcontrol callback, there is only temporary buffering
303  * on the tx_vector and so the tail should always be 0.
304  */
305  ASSERT (dm->flowcontrol_callback || ring->tx_tail == 0);
306 
307  /*
308  * If there is a flowcontrol callback, don't retry any incomplete tx_bursts.
309  * Apply backpressure instead. If there is no callback, keep retrying until
310  * a tx_burst sends no packets. n_retry of 255 essentially means no retry
311  * limit.
312  */
313  n_retry = dm->flowcontrol_callback ? 0 : 255;
314 
315  queue_id = vm->cpu_index;
316 
317  do
318  {
319  /* start the burst at the tail */
320  tx_tail = ring->tx_tail % xd->nb_tx_desc;
321 
322  /*
323  * This device only supports one TX queue,
324  * and we're running multi-threaded...
325  */
326  if (PREDICT_FALSE (xd->lockp != 0))
327  {
328  queue_id = queue_id % xd->tx_q_used;
329  while (__sync_lock_test_and_set (xd->lockp[queue_id], 1))
330  /* zzzz */
331  queue_id = (queue_id + 1) % xd->tx_q_used;
332  }
333 
334  if (PREDICT_TRUE (xd->flags & DPDK_DEVICE_FLAG_HQOS)) /* HQoS ON */
335  {
336  if (PREDICT_TRUE (tx_head > tx_tail))
337  {
338  /* no wrap, transmit in one burst */
340  &xd->hqos_wt[vm->cpu_index];
341 
343  &tx_vector[tx_tail], tx_head - tx_tail);
344  rv = rte_ring_sp_enqueue_burst (hqos->swq,
345  (void **) &tx_vector[tx_tail],
346  (uint16_t) (tx_head - tx_tail));
347  }
348  else
349  {
350  /*
351  * This can only happen if there is a flowcontrol callback.
352  * We need to split the transmit into two calls: one for
353  * the packets up to the wrap point, and one to continue
354  * at the start of the ring.
355  * Transmit pkts up to the wrap point.
356  */
358  &xd->hqos_wt[vm->cpu_index];
359 
361  &tx_vector[tx_tail],
362  xd->nb_tx_desc - tx_tail);
363  rv = rte_ring_sp_enqueue_burst (hqos->swq,
364  (void **) &tx_vector[tx_tail],
365  (uint16_t) (xd->nb_tx_desc -
366  tx_tail));
367  /*
368  * If we transmitted everything we wanted, then allow 1 retry
369  * so we can try to transmit the rest. If we didn't transmit
370  * everything, stop now.
371  */
372  n_retry = (rv == xd->nb_tx_desc - tx_tail) ? 1 : 0;
373  }
374  }
375  else if (PREDICT_TRUE (xd->flags & DPDK_DEVICE_FLAG_PMD))
376  {
377  if (PREDICT_TRUE (tx_head > tx_tail))
378  {
379  /* no wrap, transmit in one burst */
380  rv = rte_eth_tx_burst (xd->device_index,
381  (uint16_t) queue_id,
382  &tx_vector[tx_tail],
383  (uint16_t) (tx_head - tx_tail));
384  }
385  else
386  {
387  /*
388  * This can only happen if there is a flowcontrol callback.
389  * We need to split the transmit into two calls: one for
390  * the packets up to the wrap point, and one to continue
391  * at the start of the ring.
392  * Transmit pkts up to the wrap point.
393  */
394  rv = rte_eth_tx_burst (xd->device_index,
395  (uint16_t) queue_id,
396  &tx_vector[tx_tail],
397  (uint16_t) (xd->nb_tx_desc - tx_tail));
398 
399  /*
400  * If we transmitted everything we wanted, then allow 1 retry
401  * so we can try to transmit the rest. If we didn't transmit
402  * everything, stop now.
403  */
404  n_retry = (rv == xd->nb_tx_desc - tx_tail) ? 1 : 0;
405  }
406  }
407  else
408  {
409  ASSERT (0);
410  rv = 0;
411  }
412 
413  if (PREDICT_FALSE (xd->lockp != 0))
414  *xd->lockp[queue_id] = 0;
415 
416  if (PREDICT_FALSE (rv < 0))
417  {
418  // emit non-fatal message, bump counter
419  vnet_main_t *vnm = dm->vnet_main;
421  u32 node_index;
422 
423  node_index = vec_elt_at_index (im->hw_interfaces,
424  xd->vlib_hw_if_index)->tx_node_index;
425 
426  vlib_error_count (vm, node_index, DPDK_TX_FUNC_ERROR_BAD_RETVAL, 1);
427  clib_warning ("rte_eth_tx_burst[%d]: error %d", xd->device_index,
428  rv);
429  return n_packets; // untransmitted packets
430  }
431  ring->tx_tail += (u16) rv;
432  n_packets -= (uint16_t) rv;
433  }
434  while (rv && n_packets && (n_retry > 0));
435 
436  return n_packets;
437 }
438 
439 
440 /*
441  * This function transmits any packets on the interface's tx_vector and returns
442  * the number of packets untransmitted on the tx_vector. If the tx_vector is
443  * empty the function simply returns 0.
444  *
445  * It is intended to be called by a traffic manager which has flowed-off an
446  * interface to see if the interface can be flowed-on again.
447  */
448 u32
450 {
451  dpdk_main_t *dm = &dpdk_main;
452  dpdk_device_t *xd;
453  int queue_id;
454  struct rte_mbuf **tx_vector;
455  tx_ring_hdr_t *ring;
456 
457  /* param is dev_instance and not hw_if_index to save another lookup */
458  xd = vec_elt_at_index (dm->devices, dev_instance);
459 
460  queue_id = vm->cpu_index;
461  tx_vector = xd->tx_vectors[queue_id];
462 
463  /* If no packets on the ring, don't bother calling tx function */
464  ring = vec_header (tx_vector, sizeof (*ring));
465  if (ring->tx_head == ring->tx_tail)
466  {
467  return 0;
468  }
469 
470  return tx_burst_vector_internal (vm, xd, tx_vector);
471 }
472 
473 /*
474  * Transmits the packets on the frame to the interface associated with the
475  * node. It first copies packets on the frame to a tx_vector containing the
476  * rte_mbuf pointers. It then passes this vector to tx_burst_vector_internal
477  * which calls the dpdk tx_burst function.
478  *
479  * The tx_vector is treated slightly differently depending on whether or
480  * not a flowcontrol callback function has been configured. If there is no
481  * callback, the tx_vector is a temporary array of rte_mbuf packet pointers.
482  * Its entries are written and consumed before the function exits.
483  *
484  * If there is a callback then the transmit is being invoked in the presence
485  * of a traffic manager. Here the tx_vector is treated like a ring of rte_mbuf
486  * pointers. If not all packets can be transmitted, the untransmitted packets
487  * stay on the tx_vector until the next call. The callback allows the traffic
488  * manager to flow-off dequeues to the interface. The companion function
489  * dpdk_interface_tx_vector() allows the traffic manager to detect when
490  * it should flow-on the interface again.
491  */
492 static uword
494  vlib_node_runtime_t * node, vlib_frame_t * f)
495 {
496  dpdk_main_t *dm = &dpdk_main;
497  vnet_interface_output_runtime_t *rd = (void *) node->runtime_data;
499  u32 n_packets = f->n_vectors;
500  u32 n_left;
501  u32 *from;
502  struct rte_mbuf **tx_vector;
503  int i;
504  int queue_id;
505  u32 my_cpu;
506  u32 tx_pkts = 0;
507  tx_ring_hdr_t *ring;
508  u32 n_on_ring;
509 
510  my_cpu = vm->cpu_index;
511 
512  queue_id = my_cpu;
513 
514  tx_vector = xd->tx_vectors[queue_id];
515  ring = vec_header (tx_vector, sizeof (*ring));
516 
517  n_on_ring = ring->tx_head - ring->tx_tail;
518  from = vlib_frame_vector_args (f);
519 
520  ASSERT (n_packets <= VLIB_FRAME_SIZE);
521 
522  if (PREDICT_FALSE (n_on_ring + n_packets > xd->nb_tx_desc))
523  {
524  /*
525  * Overflowing the ring should never happen.
526  * If it does then drop the whole frame.
527  */
528  vlib_error_count (vm, node->node_index, DPDK_TX_FUNC_ERROR_RING_FULL,
529  n_packets);
530 
531  while (n_packets--)
532  {
533  u32 bi0 = from[n_packets];
534  vlib_buffer_t *b0 = vlib_get_buffer (vm, bi0);
535  struct rte_mbuf *mb0 = rte_mbuf_from_vlib_buffer (b0);
536  rte_pktmbuf_free (mb0);
537  }
538  return n_on_ring;
539  }
540 
541  if (PREDICT_FALSE (dm->tx_pcap_enable))
542  {
543  n_left = n_packets;
544  while (n_left > 0)
545  {
546  u32 bi0 = from[0];
547  vlib_buffer_t *b0 = vlib_get_buffer (vm, bi0);
548  if (dm->pcap_sw_if_index == 0 ||
549  dm->pcap_sw_if_index == vnet_buffer (b0)->sw_if_index[VLIB_TX])
550  pcap_add_buffer (&dm->pcap_main, vm, bi0, 512);
551  from++;
552  n_left--;
553  }
554  }
555 
556  from = vlib_frame_vector_args (f);
557  n_left = n_packets;
558  i = ring->tx_head % xd->nb_tx_desc;
559 
560  while (n_left >= 4)
561  {
562  u32 bi0, bi1;
563  u32 pi0, pi1;
564  struct rte_mbuf *mb0, *mb1;
565  struct rte_mbuf *prefmb0, *prefmb1;
566  vlib_buffer_t *b0, *b1;
567  vlib_buffer_t *pref0, *pref1;
568  i16 delta0, delta1;
569  u16 new_data_len0, new_data_len1;
570  u16 new_pkt_len0, new_pkt_len1;
571  u32 any_clone;
572 
573  pi0 = from[2];
574  pi1 = from[3];
575  pref0 = vlib_get_buffer (vm, pi0);
576  pref1 = vlib_get_buffer (vm, pi1);
577 
578  prefmb0 = rte_mbuf_from_vlib_buffer (pref0);
579  prefmb1 = rte_mbuf_from_vlib_buffer (pref1);
580 
581  CLIB_PREFETCH (prefmb0, CLIB_CACHE_LINE_BYTES, LOAD);
582  CLIB_PREFETCH (pref0, CLIB_CACHE_LINE_BYTES, LOAD);
583  CLIB_PREFETCH (prefmb1, CLIB_CACHE_LINE_BYTES, LOAD);
584  CLIB_PREFETCH (pref1, CLIB_CACHE_LINE_BYTES, LOAD);
585 
586  bi0 = from[0];
587  bi1 = from[1];
588  from += 2;
589 
590  b0 = vlib_get_buffer (vm, bi0);
591  b1 = vlib_get_buffer (vm, bi1);
592 
593  mb0 = rte_mbuf_from_vlib_buffer (b0);
594  mb1 = rte_mbuf_from_vlib_buffer (b1);
595 
596  any_clone = (b0->flags & VLIB_BUFFER_RECYCLE)
597  | (b1->flags & VLIB_BUFFER_RECYCLE);
598  if (PREDICT_FALSE (any_clone != 0))
599  {
600  if (PREDICT_FALSE ((b0->flags & VLIB_BUFFER_RECYCLE) != 0))
601  {
602  struct rte_mbuf *mb0_new = dpdk_replicate_packet_mb (b0);
603  if (PREDICT_FALSE (mb0_new == 0))
604  {
605  vlib_error_count (vm, node->node_index,
606  DPDK_TX_FUNC_ERROR_REPL_FAIL, 1);
608  }
609  else
610  mb0 = mb0_new;
611  vec_add1 (dm->recycle[my_cpu], bi0);
612  }
613  if (PREDICT_FALSE ((b1->flags & VLIB_BUFFER_RECYCLE) != 0))
614  {
615  struct rte_mbuf *mb1_new = dpdk_replicate_packet_mb (b1);
616  if (PREDICT_FALSE (mb1_new == 0))
617  {
618  vlib_error_count (vm, node->node_index,
619  DPDK_TX_FUNC_ERROR_REPL_FAIL, 1);
621  }
622  else
623  mb1 = mb1_new;
624  vec_add1 (dm->recycle[my_cpu], bi1);
625  }
626  }
627 
628  delta0 = PREDICT_FALSE (b0->flags & VLIB_BUFFER_REPL_FAIL) ? 0 :
629  vlib_buffer_length_in_chain (vm, b0) - (i16) mb0->pkt_len;
630  delta1 = PREDICT_FALSE (b1->flags & VLIB_BUFFER_REPL_FAIL) ? 0 :
631  vlib_buffer_length_in_chain (vm, b1) - (i16) mb1->pkt_len;
632 
633  new_data_len0 = (u16) ((i16) mb0->data_len + delta0);
634  new_data_len1 = (u16) ((i16) mb1->data_len + delta1);
635  new_pkt_len0 = (u16) ((i16) mb0->pkt_len + delta0);
636  new_pkt_len1 = (u16) ((i16) mb1->pkt_len + delta1);
637 
638  b0->current_length = new_data_len0;
639  b1->current_length = new_data_len1;
640  mb0->data_len = new_data_len0;
641  mb1->data_len = new_data_len1;
642  mb0->pkt_len = new_pkt_len0;
643  mb1->pkt_len = new_pkt_len1;
644 
645  mb0->data_off = (PREDICT_FALSE (b0->flags & VLIB_BUFFER_REPL_FAIL)) ?
646  mb0->data_off : (u16) (RTE_PKTMBUF_HEADROOM + b0->current_data);
647  mb1->data_off = (PREDICT_FALSE (b1->flags & VLIB_BUFFER_REPL_FAIL)) ?
648  mb1->data_off : (u16) (RTE_PKTMBUF_HEADROOM + b1->current_data);
649 
651  {
652  if (b0->flags & VLIB_BUFFER_IS_TRACED)
653  dpdk_tx_trace_buffer (dm, node, xd, queue_id, bi0, b0);
654  if (b1->flags & VLIB_BUFFER_IS_TRACED)
655  dpdk_tx_trace_buffer (dm, node, xd, queue_id, bi1, b1);
656  }
657 
658  if (PREDICT_TRUE (any_clone == 0))
659  {
660  tx_vector[i % xd->nb_tx_desc] = mb0;
661  i++;
662  tx_vector[i % xd->nb_tx_desc] = mb1;
663  i++;
664  }
665  else
666  {
667  /* cloning was done, need to check for failure */
668  if (PREDICT_TRUE ((b0->flags & VLIB_BUFFER_REPL_FAIL) == 0))
669  {
670  tx_vector[i % xd->nb_tx_desc] = mb0;
671  i++;
672  }
673  if (PREDICT_TRUE ((b1->flags & VLIB_BUFFER_REPL_FAIL) == 0))
674  {
675  tx_vector[i % xd->nb_tx_desc] = mb1;
676  i++;
677  }
678  }
679 
680  n_left -= 2;
681  }
682  while (n_left > 0)
683  {
684  u32 bi0;
685  struct rte_mbuf *mb0;
686  vlib_buffer_t *b0;
687  i16 delta0;
688  u16 new_data_len0;
689  u16 new_pkt_len0;
690 
691  bi0 = from[0];
692  from++;
693 
694  b0 = vlib_get_buffer (vm, bi0);
695 
696  mb0 = rte_mbuf_from_vlib_buffer (b0);
697  if (PREDICT_FALSE ((b0->flags & VLIB_BUFFER_RECYCLE) != 0))
698  {
699  struct rte_mbuf *mb0_new = dpdk_replicate_packet_mb (b0);
700  if (PREDICT_FALSE (mb0_new == 0))
701  {
702  vlib_error_count (vm, node->node_index,
703  DPDK_TX_FUNC_ERROR_REPL_FAIL, 1);
705  }
706  else
707  mb0 = mb0_new;
708  vec_add1 (dm->recycle[my_cpu], bi0);
709  }
710 
711  delta0 = PREDICT_FALSE (b0->flags & VLIB_BUFFER_REPL_FAIL) ? 0 :
712  vlib_buffer_length_in_chain (vm, b0) - (i16) mb0->pkt_len;
713 
714  new_data_len0 = (u16) ((i16) mb0->data_len + delta0);
715  new_pkt_len0 = (u16) ((i16) mb0->pkt_len + delta0);
716 
717  b0->current_length = new_data_len0;
718  mb0->data_len = new_data_len0;
719  mb0->pkt_len = new_pkt_len0;
720  mb0->data_off = (PREDICT_FALSE (b0->flags & VLIB_BUFFER_REPL_FAIL)) ?
721  mb0->data_off : (u16) (RTE_PKTMBUF_HEADROOM + b0->current_data);
722 
724  if (b0->flags & VLIB_BUFFER_IS_TRACED)
725  dpdk_tx_trace_buffer (dm, node, xd, queue_id, bi0, b0);
726 
727  if (PREDICT_TRUE ((b0->flags & VLIB_BUFFER_REPL_FAIL) == 0))
728  {
729  tx_vector[i % xd->nb_tx_desc] = mb0;
730  i++;
731  }
732  n_left--;
733  }
734 
735  /* account for additional packets in the ring */
736  ring->tx_head += n_packets;
737  n_on_ring = ring->tx_head - ring->tx_tail;
738 
739  /* transmit as many packets as possible */
740  n_packets = tx_burst_vector_internal (vm, xd, tx_vector);
741 
742  /*
743  * tx_pkts is the number of packets successfully transmitted
744  * This is the number originally on ring minus the number remaining on ring
745  */
746  tx_pkts = n_on_ring - n_packets;
747 
748  if (PREDICT_FALSE (dm->flowcontrol_callback != 0))
749  {
750  if (PREDICT_FALSE (n_packets))
751  {
752  /* Callback may want to enable flowcontrol */
753  dm->flowcontrol_callback (vm, xd->vlib_hw_if_index,
754  ring->tx_head - ring->tx_tail);
755  }
756  else
757  {
758  /* Reset head/tail to avoid unnecessary wrap */
759  ring->tx_head = 0;
760  ring->tx_tail = 0;
761  }
762  }
763  else
764  {
765  /* If there is no callback then drop any non-transmitted packets */
766  if (PREDICT_FALSE (n_packets))
767  {
769  vnet_main_t *vnm = vnet_get_main ();
770 
773 
774  vlib_increment_simple_counter (cm, my_cpu, xd->vlib_sw_if_index,
775  n_packets);
776 
777  vlib_error_count (vm, node->node_index, DPDK_TX_FUNC_ERROR_PKT_DROP,
778  n_packets);
779 
780  while (n_packets--)
781  rte_pktmbuf_free (tx_vector[ring->tx_tail + n_packets]);
782  }
783 
784  /* Reset head/tail to avoid unnecessary wrap */
785  ring->tx_head = 0;
786  ring->tx_tail = 0;
787  }
788 
789  /* Recycle replicated buffers */
790  if (PREDICT_FALSE (vec_len (dm->recycle[my_cpu])))
791  {
792  vlib_buffer_free (vm, dm->recycle[my_cpu],
793  vec_len (dm->recycle[my_cpu]));
794  _vec_len (dm->recycle[my_cpu]) = 0;
795  }
796 
797  ASSERT (ring->tx_head >= ring->tx_tail);
798 
799  return tx_pkts;
800 }
801 
802 static void
804 {
805  dpdk_main_t *dm = &dpdk_main;
806  dpdk_device_t *xd = vec_elt_at_index (dm->devices, instance);
807 
808  /*
809  * Set the "last_cleared_stats" to the current stats, so that
810  * things appear to clear from a display perspective.
811  */
813 
814  clib_memcpy (&xd->last_cleared_stats, &xd->stats, sizeof (xd->stats));
817  sizeof (xd->last_cleared_xstats[0]));
818 
819 }
820 
821 static clib_error_t *
823 {
824  vnet_hw_interface_t *hif = vnet_get_hw_interface (vnm, hw_if_index);
825  uword is_up = (flags & VNET_SW_INTERFACE_FLAG_ADMIN_UP) != 0;
826  dpdk_main_t *dm = &dpdk_main;
828  int rv = 0;
829 
830  if (is_up)
831  {
832  f64 now = vlib_time_now (dm->vlib_main);
833 
834  if ((xd->flags & DPDK_DEVICE_FLAG_ADMIN_UP) == 0)
835  rv = rte_eth_dev_start (xd->device_index);
836 
838  rte_eth_promiscuous_enable (xd->device_index);
839  else
840  rte_eth_promiscuous_disable (xd->device_index);
841 
842  rte_eth_allmulticast_enable (xd->device_index);
844  dpdk_update_counters (xd, now);
845  dpdk_update_link_state (xd, now);
846  }
847  else
848  {
850 
851  rte_eth_allmulticast_disable (xd->device_index);
853  rte_eth_dev_stop (xd->device_index);
854 
855  /* For bonded interface, stop slave links */
856  if (xd->pmd == VNET_DPDK_PMD_BOND)
857  {
858  u8 slink[16];
859  int nlink = rte_eth_bond_slaves_get (xd->device_index, slink, 16);
860  while (nlink >= 1)
861  {
862  u8 dpdk_port = slink[--nlink];
863  rte_eth_dev_stop (dpdk_port);
864  }
865  }
866  }
867 
868  if (rv < 0)
869  clib_warning ("rte_eth_dev_%s error: %d", is_up ? "start" : "stop", rv);
870 
871  return /* no error */ 0;
872 }
873 
874 /*
875  * Dynamically redirect all pkts from a specific interface
876  * to the specified node
877  */
878 static void
880  u32 node_index)
881 {
882  dpdk_main_t *xm = &dpdk_main;
883  vnet_hw_interface_t *hw = vnet_get_hw_interface (vnm, hw_if_index);
885 
886  /* Shut off redirection */
887  if (node_index == ~0)
888  {
889  xd->per_interface_next_index = node_index;
890  return;
891  }
892 
894  vlib_node_add_next (xm->vlib_main, dpdk_input_node.index, node_index);
895 }
896 
897 
898 static clib_error_t *
900  u32 hw_if_index,
901  struct vnet_sw_interface_t *st, int is_add)
902 {
903  dpdk_main_t *xm = &dpdk_main;
904  vnet_hw_interface_t *hw = vnet_get_hw_interface (vnm, hw_if_index);
907  int r, vlan_offload;
908  u32 prev_subifs = xd->num_subifs;
909  clib_error_t *err = 0;
910 
911  if (is_add)
912  xd->num_subifs++;
913  else if (xd->num_subifs)
914  xd->num_subifs--;
915 
916  if ((xd->flags & DPDK_DEVICE_FLAG_PMD) == 0)
917  goto done;
918 
919  /* currently we program VLANS only for IXGBE VF and I40E VF */
920  if ((xd->pmd != VNET_DPDK_PMD_IXGBEVF) && (xd->pmd != VNET_DPDK_PMD_I40EVF))
921  goto done;
922 
923  if (t->sub.eth.flags.no_tags == 1)
924  goto done;
925 
926  if ((t->sub.eth.flags.one_tag != 1) || (t->sub.eth.flags.exact_match != 1))
927  {
928  xd->num_subifs = prev_subifs;
929  err = clib_error_return (0, "unsupported VLAN setup");
930  goto done;
931  }
932 
933  vlan_offload = rte_eth_dev_get_vlan_offload (xd->device_index);
934  vlan_offload |= ETH_VLAN_FILTER_OFFLOAD;
935 
936  if ((r = rte_eth_dev_set_vlan_offload (xd->device_index, vlan_offload)))
937  {
938  xd->num_subifs = prev_subifs;
939  err = clib_error_return (0, "rte_eth_dev_set_vlan_offload[%d]: err %d",
940  xd->device_index, r);
941  goto done;
942  }
943 
944 
945  if ((r =
946  rte_eth_dev_vlan_filter (xd->device_index, t->sub.eth.outer_vlan_id,
947  is_add)))
948  {
949  xd->num_subifs = prev_subifs;
950  err = clib_error_return (0, "rte_eth_dev_vlan_filter[%d]: err %d",
951  xd->device_index, r);
952  goto done;
953  }
954 
955 done:
956  if (xd->num_subifs)
958  else
960 
961  return err;
962 }
963 
964 /* *INDENT-OFF* */
966  .name = "dpdk",
967  .tx_function = dpdk_interface_tx,
968  .tx_function_n_errors = DPDK_TX_FUNC_N_ERROR,
969  .tx_function_error_strings = dpdk_tx_func_error_strings,
970  .format_device_name = format_dpdk_device_name,
971  .format_device = format_dpdk_device,
972  .format_tx_trace = format_dpdk_tx_dma_trace,
973  .clear_counters = dpdk_clear_hw_interface_counters,
974  .admin_up_down_function = dpdk_interface_admin_up_down,
975  .subif_add_del_function = dpdk_subif_add_del_function,
976  .rx_redirect_to_node = dpdk_set_interface_next_node,
977  .no_flatten_output_chains = 1,
978  .mac_addr_change_function = dpdk_set_mac_address,
979 };
980 
982 /* *INDENT-ON* */
983 
984 void
987 {
988  dpdk_main.flowcontrol_callback = callback;
989 }
990 
991 #define UP_DOWN_FLAG_EVENT 1
992 
993 
994 u32
996 {
998 }
999 
1000 uword
1003 {
1004  clib_error_t *error = 0;
1005  uword event_type;
1006  uword *event_data = 0;
1007  u32 sw_if_index;
1008  u32 flags;
1009 
1010  while (1)
1011  {
1013 
1014  event_type = vlib_process_get_events (vm, &event_data);
1015 
1017 
1018  switch (event_type)
1019  {
1020  case UP_DOWN_FLAG_EVENT:
1021  {
1022  if (vec_len (event_data) == 2)
1023  {
1024  sw_if_index = event_data[0];
1025  flags = event_data[1];
1026  error =
1027  vnet_sw_interface_set_flags (vnet_get_main (), sw_if_index,
1028  flags);
1029  clib_error_report (error);
1030  }
1031  }
1032  break;
1033  }
1034 
1035  vec_reset_length (event_data);
1036 
1038 
1039  }
1040  return 0; /* or not */
1041 }
1042 
1043 /* *INDENT-OFF* */
1045  .function = admin_up_down_process,
1046  .type = VLIB_NODE_TYPE_PROCESS,
1047  .name = "admin-up-down-process",
1048  .process_log2_n_stack_bytes = 17, // 256KB
1049 };
1050 /* *INDENT-ON* */
1051 
1052 /*
1053  * Asynchronously invoke vnet_sw_interface_set_flags via the admin_up_down
1054  * process. Useful for avoiding long blocking delays (>150ms) in the dpdk
1055  * drivers.
1056  * WARNING: when posting this event, no other interface-related calls should
1057  * be made (e.g. vnet_create_sw_interface()) while the event is being
1058  * processed (admin_up_down_in_progress). This is required in order to avoid
1059  * race conditions in manipulating interface data structures.
1060  */
1061 void
1063 {
1065  (vm, admin_up_down_process_node.index,
1066  UP_DOWN_FLAG_EVENT, 2, sizeof (u32));
1067  d[0] = sw_if_index;
1068  d[1] = flags;
1069 }
1070 
1071 /*
1072  * Return a copy of the DPDK port stats in dest.
1073  */
1074 clib_error_t *
1075 dpdk_get_hw_interface_stats (u32 hw_if_index, struct rte_eth_stats *dest)
1076 {
1077  dpdk_main_t *dm = &dpdk_main;
1078  vnet_main_t *vnm = vnet_get_main ();
1079  vnet_hw_interface_t *hi = vnet_get_hw_interface (vnm, hw_if_index);
1081 
1082  if (!dest)
1083  {
1084  return clib_error_return (0, "Missing or NULL argument");
1085  }
1086  if (!xd)
1087  {
1088  return clib_error_return (0,
1089  "Unable to get DPDK device from HW interface");
1090  }
1091 
1093 
1094  clib_memcpy (dest, &xd->stats, sizeof (xd->stats));
1095  return (0);
1096 }
1097 
1098 /*
1099  * Return the number of dpdk mbufs
1100  */
1101 u32
1103 {
1104  dpdk_main_t *dm = &dpdk_main;
1105 
1106  return dm->conf->num_mbufs;
1107 }
1108 
1109 /*
1110  * Return the pmd type for a given hardware interface
1111  */
1112 dpdk_pmd_t
1114 {
1115  dpdk_main_t *dm = &dpdk_main;
1116  dpdk_device_t *xd;
1117 
1118  assert (hi);
1119 
1120  xd = vec_elt_at_index (dm->devices, hi->dev_instance);
1121 
1122  assert (xd);
1123 
1124  return xd->pmd;
1125 }
1126 
1127 /*
1128  * Return the cpu socket for a given hardware interface
1129  */
1130 i8
1132 {
1133  dpdk_main_t *dm = &dpdk_main;
1134  dpdk_device_t *xd;
1135 
1136  assert (hi);
1137 
1138  xd = vec_elt_at_index (dm->devices, hi->dev_instance);
1139 
1140  assert (xd);
1141 
1142  return xd->cpu_socket;
1143 }
1144 
1145 /*
1146  * fd.io coding-style-patch-verification: ON
1147  *
1148  * Local Variables:
1149  * eval: (c-set-style "gnu")
1150  * End:
1151  */
void(* dpdk_flowcontrol_callback_t)(vlib_main_t *vm, u32 hw_if_index, u32 n_packets)
Definition: dpdk.h:148
#define DPDK_DEVICE_FLAG_PROMISC
Definition: dpdk.h:217
static void vlib_increment_simple_counter(vlib_simple_counter_main_t *cm, u32 cpu_index, u32 index, u32 increment)
Increment a simple counter.
Definition: counter.h:78
vmrglw vmrglh hi
i8 dpdk_get_cpu_socket(vnet_hw_interface_t *hi)
Definition: device.c:1131
sll srl srl sll sra u16x4 i
Definition: vector_sse2.h:343
#define rte_mbuf_from_vlib_buffer(x)
Definition: buffer.h:385
clib_error_t * vnet_hw_interface_set_flags(vnet_main_t *vnm, u32 hw_if_index, u32 flags)
Definition: interface.c:522
vlib_buffer_t buffer
Definition: dpdk.h:485
#define UP_DOWN_FLAG_EVENT
Definition: device.c:991
u8 runtime_data[0]
Definition: node.h:472
static uword * vlib_process_wait_for_event(vlib_main_t *vm)
Definition: node_funcs.h:604
dpdk_main_t dpdk_main
Definition: dpdk.h:476
static vlib_main_t * vlib_get_main(void)
Definition: global_funcs.h:23
vnet_interface_main_t interface_main
Definition: vnet.h:72
clib_error_t * dpdk_set_mac_address(vnet_hw_interface_t *hi, char *address)
Definition: device.c:48
vnet_device_class_t dpdk_device_class
#define PREDICT_TRUE(x)
Definition: clib.h:98
static void vlib_error_count(vlib_main_t *vm, uword node_index, uword counter, uword increment)
Definition: error_funcs.h:55
#define NULL
Definition: clib.h:55
static f64 vlib_time_now(vlib_main_t *vm)
Definition: main.h:182
u16 flags
Definition: dpdk.h:215
static vnet_hw_interface_t * vnet_get_hw_interface(vnet_main_t *vnm, u32 hw_if_index)
#define vec_add1(V, E)
Add 1 element to end of vector (unspecified alignment).
Definition: vec.h:482
unsigned rte_socket_id()
#define DPDK_DEVICE_FLAG_HQOS
Definition: dpdk.h:221
vlib_buffer_main_t * buffer_main
Definition: main.h:104
u32 per_interface_next_index
Definition: dpdk.h:203
u64 tx_tail
Definition: dpdk.h:159
#define clib_error_report(e)
Definition: error.h:125
struct rte_eth_xstat * last_cleared_xstats
Definition: dpdk.h:253
u16 num_subifs
Definition: dpdk.h:229
struct rte_mbuf * dpdk_zerocopy_replicate_packet_mb(vlib_buffer_t *b)
Definition: device.c:159
static uword vlib_buffer_length_in_chain(vlib_main_t *vm, vlib_buffer_t *b)
Get length in bytes of the buffer chain.
Definition: buffer_funcs.h:112
format_function_t format_dpdk_tx_dma_trace
Definition: dpdk.h:607
uword admin_up_down_process(vlib_main_t *vm, vlib_node_runtime_t *rt, vlib_frame_t *f)
Definition: device.c:1001
static clib_error_t * dpdk_interface_admin_up_down(vnet_main_t *vnm, u32 hw_if_index, u32 flags)
Definition: device.c:822
static uword vlib_node_add_next(vlib_main_t *vm, uword node, uword next_node)
Definition: node_funcs.h:1063
#define vec_reset_length(v)
Reset vector length to zero NULL-pointer tolerant.
#define DPDK_DEVICE_FLAG_PMD
Definition: dpdk.h:218
struct rte_eth_stats stats
Definition: dpdk.h:249
VNET_DEVICE_CLASS(af_packet_device_class)
vnet_main_t * vnet_get_main(void)
Definition: misc.c:46
struct rte_mbuf *** tx_vectors
Definition: dpdk.h:206
static_always_inline u32 tx_burst_vector_internal(vlib_main_t *vm, dpdk_device_t *xd, struct rte_mbuf **tx_vector)
Definition: device.c:267
i16 current_data
signed offset in data[], pre_data[] that we are currently processing.
Definition: buffer.h:78
#define static_always_inline
Definition: clib.h:85
static uword vlib_process_get_events(vlib_main_t *vm, uword **data_vector)
Return the first event type which has occurred and a vector of per-event data of that type...
Definition: node_funcs.h:527
vlib_node_registration_t dpdk_input_node
(constructor) VLIB_REGISTER_NODE (dpdk_input_node)
Definition: node.c:707
char i8
Definition: types.h:45
#define vec_elt_at_index(v, i)
Get vector value at index i checking that i is in bounds.
u8 pre_data[VLIB_BUFFER_PRE_DATA_SIZE]
Space for inserting data before buffer start.
Definition: buffer.h:146
u32 cpu_index
Definition: main.h:159
#define clib_warning(format, args...)
Definition: error.h:59
A collection of simple counters.
Definition: counter.h:59
u32 device_index
Definition: dpdk.h:197
dpdk_device_hqos_per_worker_thread_t * hqos_wt
Definition: dpdk.h:240
u32 dpdk_num_mbufs(void)
Definition: device.c:1102
u32 pcap_sw_if_index
Definition: dpdk.h:435
struct rte_mbuf * dpdk_replicate_packet_mb(vlib_buffer_t *b)
Definition: device.c:88
vnet_hw_interface_t * hw_interfaces
Definition: interface.h:554
vnet_sub_interface_t sub
Definition: interface.h:522
static clib_error_t * dpdk_subif_add_del_function(vnet_main_t *vnm, u32 hw_if_index, struct vnet_sw_interface_t *st, int is_add)
Definition: device.c:899
u16 current_length
Nbytes between current data and the end of this buffer.
Definition: buffer.h:82
u32 vlib_hw_if_index
Definition: dpdk.h:199
dpdk_flowcontrol_callback_t flowcontrol_callback
Definition: dpdk.h:417
static char * dpdk_tx_func_error_strings[]
Definition: device.c:41
pcap_main_t pcap_main
Definition: dpdk.h:433
void dpdk_hqos_metadata_set(dpdk_device_hqos_per_worker_thread_t *hqos, struct rte_mbuf **pkts, u32 n_pkts)
Definition: hqos.c:640
struct rte_mbuf mb
Definition: dpdk.h:483
static void * vlib_process_signal_event_data(vlib_main_t *vm, uword node_index, uword type_opaque, uword n_data_elts, uword n_data_elt_bytes)
Definition: node_funcs.h:829
struct vnet_sub_interface_t::@143::@144::@146 flags
static void pcap_add_buffer(pcap_main_t *pm, vlib_main_t *vm, u32 buffer_index, u32 n_bytes_in_trace)
Add buffer (vlib_buffer_t) to the trace.
Definition: pcap.h:201
#define PREDICT_FALSE(x)
Definition: clib.h:97
static void dpdk_set_interface_next_node(vnet_main_t *vnm, u32 hw_if_index, u32 node_index)
Definition: device.c:879
#define VLIB_FRAME_SIZE
Definition: node.h:328
vlib_simple_counter_main_t * sw_if_counters
Definition: interface.h:576
u16 tx_q_used
Definition: dpdk.h:232
void dpdk_set_flowcontrol_callback(vlib_main_t *vm, dpdk_flowcontrol_callback_t callback)
Definition: device.c:985
#define DPDK_DEVICE_FLAG_ADMIN_UP
Definition: dpdk.h:216
static uword dpdk_interface_tx(vlib_main_t *vm, vlib_node_runtime_t *node, vlib_frame_t *f)
Definition: device.c:493
u32 ** recycle
Definition: dpdk.h:411
struct rte_mempool ** pktmbuf_pools
Definition: buffer.h:324
u16 n_vectors
Definition: node.h:344
#define CLIB_PREFETCH(addr, size, type)
Definition: cache.h:82
dpdk_device_t * devices
Definition: dpdk.h:406
static void dpdk_update_counters(dpdk_device_t *xd, f64 now)
Definition: dpdk_priv.h:80
volatile u32 ** lockp
Definition: dpdk.h:194
#define clib_memcpy(a, b, c)
Definition: string.h:64
dpdk_pmd_t pmd
Definition: dpdk.h:212
struct vnet_sub_interface_t::@143 eth
#define VLIB_BUFFER_RECYCLE
Definition: buffer.h:101
dpdk_pmd_t
Definition: dpdk.h:107
format_function_t format_dpdk_device
Definition: dpdk.h:606
struct rte_eth_xstat * xstats
Definition: dpdk.h:252
#define VNET_SW_INTERFACE_FLAG_ADMIN_UP
Definition: interface.h:490
#define ASSERT(truth)
format_function_t format_dpdk_device_name
Definition: dpdk.h:605
#define VLIB_BUFFER_REPL_FAIL
Definition: buffer.h:100
unsigned int u32
Definition: types.h:88
#define vnet_buffer(b)
Definition: buffer.h:333
u64 tx_head
Definition: dpdk.h:158
void vlib_buffer_free(vlib_main_t *vm, u32 *buffers, u32 n_buffers)
Free buffers Frees the entire buffer chain for each buffer.
Definition: dpdk_buffer.c:766
#define DPDK_DEVICE_FLAG_HAVE_SUBIF
Definition: dpdk.h:220
#define VLIB_NODE_FLAG_TRACE
Definition: node.h:259
void dpdk_update_link_state(dpdk_device_t *xd, f64 now)
Definition: init.c:1392
#define VLIB_BUFFER_IS_TRACED
Definition: buffer.h:95
dpdk_pmd_t dpdk_get_pmd_type(vnet_hw_interface_t *hi)
Definition: device.c:1113
u64 uword
Definition: types.h:112
static void * vlib_add_trace(vlib_main_t *vm, vlib_node_runtime_t *r, vlib_buffer_t *b, u32 n_data_bytes)
Definition: trace_funcs.h:55
static void dpdk_clear_hw_interface_counters(u32 instance)
Definition: device.c:803
static vlib_node_registration_t admin_up_down_process_node
(constructor) VLIB_REGISTER_NODE (admin_up_down_process_node)
Definition: device.c:1044
Definition: defs.h:47
unsigned short u16
Definition: types.h:57
#define vec_len(v)
Number of elements in vector (rvalue-only, NULL tolerant)
double f64
Definition: types.h:142
unsigned char u8
Definition: types.h:56
#define foreach_dpdk_tx_func_error
Definition: device.c:27
u8 admin_up_down_in_progress
Definition: dpdk.h:451
static void * vlib_frame_vector_args(vlib_frame_t *f)
Get pointer to frame vector data.
Definition: node_funcs.h:253
static void dpdk_tx_trace_buffer(dpdk_main_t *dm, vlib_node_runtime_t *node, dpdk_device_t *xd, u16 queue_id, u32 buffer_index, vlib_buffer_t *buffer)
Definition: device.c:228
u32 dpdk_interface_tx_vector(vlib_main_t *vm, u32 dev_instance)
Definition: device.c:449
short i16
Definition: types.h:46
void post_sw_interface_set_flags(vlib_main_t *vm, u32 sw_if_index, u32 flags)
Definition: device.c:1062
#define VLIB_REGISTER_NODE(x,...)
Definition: node.h:143
u32 dpdk_get_admin_up_down_in_progress(void)
Definition: device.c:995
static void * vec_header(void *v, uword header_bytes)
Find a user vector header.
Definition: vec_bootstrap.h:92
u8 data[0]
Packet data.
Definition: buffer.h:154
i8 cpu_socket
Definition: dpdk.h:213
clib_error_t * vnet_sw_interface_set_flags(vnet_main_t *vnm, u32 sw_if_index, u32 flags)
Definition: interface.c:530
struct rte_eth_stats last_cleared_stats
Definition: dpdk.h:251
#define clib_error_return(e, args...)
Definition: error.h:111
u32 flags
Definition: vhost-user.h:75
#define CLIB_CACHE_LINE_BYTES
Definition: cache.h:67
u32 flags
buffer flags: VLIB_BUFFER_IS_TRACED: trace this buffer.
Definition: buffer.h:85
clib_error_t * dpdk_get_hw_interface_stats(u32 hw_if_index, struct rte_eth_stats *dest)
Definition: device.c:1075
int tx_pcap_enable
Definition: dpdk.h:432
vnet_main_t * vnet_main
Definition: dpdk.h:472
u16 nb_tx_desc
Definition: dpdk.h:223
static vlib_buffer_t * vlib_get_buffer(vlib_main_t *vm, u32 buffer_index)
Translate buffer index into buffer pointer.
Definition: buffer_funcs.h:69
dpdk_tx_func_error_t
Definition: device.c:33
#define VLIB_DEVICE_TX_FUNCTION_MULTIARCH(dev, fn)
Definition: interface.h:191
clib_error_t * dpdk_set_mc_filter(vnet_hw_interface_t *hi, struct ether_addr mc_addr_vec[], int naddr)
Definition: device.c:68
CLIB vectors are ubiquitous dynamically resized arrays with by user defined "headers".
dpdk_config_main_t * conf
Definition: dpdk.h:473
vlib_main_t * vlib_main
Definition: dpdk.h:471