net/iavf: adjust CRC statistics calculation
[dpdk.git] / drivers / net / iavf / iavf_ethdev.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2017 Intel Corporation
3  */
4
5 #include <sys/queue.h>
6 #include <stdio.h>
7 #include <errno.h>
8 #include <stdint.h>
9 #include <string.h>
10 #include <unistd.h>
11 #include <stdarg.h>
12 #include <inttypes.h>
13 #include <rte_byteorder.h>
14 #include <rte_common.h>
15
16 #include <rte_interrupts.h>
17 #include <rte_debug.h>
18 #include <rte_pci.h>
19 #include <rte_atomic.h>
20 #include <rte_eal.h>
21 #include <rte_ether.h>
22 #include <rte_ethdev_driver.h>
23 #include <rte_ethdev_pci.h>
24 #include <rte_malloc.h>
25 #include <rte_memzone.h>
26 #include <rte_dev.h>
27
28 #include "iavf.h"
29 #include "iavf_rxtx.h"
30 #include "iavf_generic_flow.h"
31 #include "rte_pmd_iavf.h"
32
33 /* devargs */
34 #define IAVF_PROTO_XTR_ARG         "proto_xtr"
35
36 static const char * const iavf_valid_args[] = {
37         IAVF_PROTO_XTR_ARG,
38         NULL
39 };
40
41 static const struct rte_mbuf_dynfield iavf_proto_xtr_metadata_param = {
42         .name = "intel_pmd_dynfield_proto_xtr_metadata",
43         .size = sizeof(uint32_t),
44         .align = __alignof__(uint32_t),
45         .flags = 0,
46 };
47
48 struct iavf_proto_xtr_ol {
49         const struct rte_mbuf_dynflag param;
50         uint64_t *ol_flag;
51         bool required;
52 };
53
54 static struct iavf_proto_xtr_ol iavf_proto_xtr_params[] = {
55         [IAVF_PROTO_XTR_VLAN] = {
56                 .param = { .name = "intel_pmd_dynflag_proto_xtr_vlan" },
57                 .ol_flag = &rte_pmd_ifd_dynflag_proto_xtr_vlan_mask },
58         [IAVF_PROTO_XTR_IPV4] = {
59                 .param = { .name = "intel_pmd_dynflag_proto_xtr_ipv4" },
60                 .ol_flag = &rte_pmd_ifd_dynflag_proto_xtr_ipv4_mask },
61         [IAVF_PROTO_XTR_IPV6] = {
62                 .param = { .name = "intel_pmd_dynflag_proto_xtr_ipv6" },
63                 .ol_flag = &rte_pmd_ifd_dynflag_proto_xtr_ipv6_mask },
64         [IAVF_PROTO_XTR_IPV6_FLOW] = {
65                 .param = { .name = "intel_pmd_dynflag_proto_xtr_ipv6_flow" },
66                 .ol_flag = &rte_pmd_ifd_dynflag_proto_xtr_ipv6_flow_mask },
67         [IAVF_PROTO_XTR_TCP] = {
68                 .param = { .name = "intel_pmd_dynflag_proto_xtr_tcp" },
69                 .ol_flag = &rte_pmd_ifd_dynflag_proto_xtr_tcp_mask },
70         [IAVF_PROTO_XTR_IP_OFFSET] = {
71                 .param = { .name = "intel_pmd_dynflag_proto_xtr_ip_offset" },
72                 .ol_flag = &rte_pmd_ifd_dynflag_proto_xtr_ip_offset_mask },
73 };
74
75 static int iavf_dev_configure(struct rte_eth_dev *dev);
76 static int iavf_dev_start(struct rte_eth_dev *dev);
77 static int iavf_dev_stop(struct rte_eth_dev *dev);
78 static int iavf_dev_close(struct rte_eth_dev *dev);
79 static int iavf_dev_reset(struct rte_eth_dev *dev);
80 static int iavf_dev_info_get(struct rte_eth_dev *dev,
81                              struct rte_eth_dev_info *dev_info);
82 static const uint32_t *iavf_dev_supported_ptypes_get(struct rte_eth_dev *dev);
83 static int iavf_dev_stats_get(struct rte_eth_dev *dev,
84                              struct rte_eth_stats *stats);
85 static int iavf_dev_stats_reset(struct rte_eth_dev *dev);
86 static int iavf_dev_xstats_get(struct rte_eth_dev *dev,
87                                  struct rte_eth_xstat *xstats, unsigned int n);
88 static int iavf_dev_xstats_get_names(struct rte_eth_dev *dev,
89                                        struct rte_eth_xstat_name *xstats_names,
90                                        unsigned int limit);
91 static int iavf_dev_promiscuous_enable(struct rte_eth_dev *dev);
92 static int iavf_dev_promiscuous_disable(struct rte_eth_dev *dev);
93 static int iavf_dev_allmulticast_enable(struct rte_eth_dev *dev);
94 static int iavf_dev_allmulticast_disable(struct rte_eth_dev *dev);
95 static int iavf_dev_add_mac_addr(struct rte_eth_dev *dev,
96                                 struct rte_ether_addr *addr,
97                                 uint32_t index,
98                                 uint32_t pool);
99 static void iavf_dev_del_mac_addr(struct rte_eth_dev *dev, uint32_t index);
100 static int iavf_dev_vlan_filter_set(struct rte_eth_dev *dev,
101                                    uint16_t vlan_id, int on);
102 static int iavf_dev_vlan_offload_set(struct rte_eth_dev *dev, int mask);
103 static int iavf_dev_rss_reta_update(struct rte_eth_dev *dev,
104                                    struct rte_eth_rss_reta_entry64 *reta_conf,
105                                    uint16_t reta_size);
106 static int iavf_dev_rss_reta_query(struct rte_eth_dev *dev,
107                                   struct rte_eth_rss_reta_entry64 *reta_conf,
108                                   uint16_t reta_size);
109 static int iavf_dev_rss_hash_update(struct rte_eth_dev *dev,
110                                    struct rte_eth_rss_conf *rss_conf);
111 static int iavf_dev_rss_hash_conf_get(struct rte_eth_dev *dev,
112                                      struct rte_eth_rss_conf *rss_conf);
113 static int iavf_dev_mtu_set(struct rte_eth_dev *dev, uint16_t mtu);
114 static int iavf_dev_set_default_mac_addr(struct rte_eth_dev *dev,
115                                          struct rte_ether_addr *mac_addr);
116 static int iavf_dev_rx_queue_intr_enable(struct rte_eth_dev *dev,
117                                         uint16_t queue_id);
118 static int iavf_dev_rx_queue_intr_disable(struct rte_eth_dev *dev,
119                                          uint16_t queue_id);
120 static int iavf_dev_filter_ctrl(struct rte_eth_dev *dev,
121                      enum rte_filter_type filter_type,
122                      enum rte_filter_op filter_op,
123                      void *arg);
124 static int iavf_set_mc_addr_list(struct rte_eth_dev *dev,
125                         struct rte_ether_addr *mc_addrs,
126                         uint32_t mc_addrs_num);
127
128 static const struct rte_pci_id pci_id_iavf_map[] = {
129         { RTE_PCI_DEVICE(IAVF_INTEL_VENDOR_ID, IAVF_DEV_ID_ADAPTIVE_VF) },
130         { .vendor_id = 0, /* sentinel */ },
131 };
132
133 struct rte_iavf_xstats_name_off {
134         char name[RTE_ETH_XSTATS_NAME_SIZE];
135         unsigned int offset;
136 };
137
138 static const struct rte_iavf_xstats_name_off rte_iavf_stats_strings[] = {
139         {"rx_bytes", offsetof(struct iavf_eth_stats, rx_bytes)},
140         {"rx_unicast_packets", offsetof(struct iavf_eth_stats, rx_unicast)},
141         {"rx_multicast_packets", offsetof(struct iavf_eth_stats, rx_multicast)},
142         {"rx_broadcast_packets", offsetof(struct iavf_eth_stats, rx_broadcast)},
143         {"rx_dropped_packets", offsetof(struct iavf_eth_stats, rx_discards)},
144         {"rx_unknown_protocol_packets", offsetof(struct iavf_eth_stats,
145                 rx_unknown_protocol)},
146         {"tx_bytes", offsetof(struct iavf_eth_stats, tx_bytes)},
147         {"tx_unicast_packets", offsetof(struct iavf_eth_stats, tx_unicast)},
148         {"tx_multicast_packets", offsetof(struct iavf_eth_stats, tx_multicast)},
149         {"tx_broadcast_packets", offsetof(struct iavf_eth_stats, tx_broadcast)},
150         {"tx_dropped_packets", offsetof(struct iavf_eth_stats, tx_discards)},
151         {"tx_error_packets", offsetof(struct iavf_eth_stats, tx_errors)},
152 };
153
154 #define IAVF_NB_XSTATS (sizeof(rte_iavf_stats_strings) / \
155                 sizeof(rte_iavf_stats_strings[0]))
156
157 static const struct eth_dev_ops iavf_eth_dev_ops = {
158         .dev_configure              = iavf_dev_configure,
159         .dev_start                  = iavf_dev_start,
160         .dev_stop                   = iavf_dev_stop,
161         .dev_close                  = iavf_dev_close,
162         .dev_reset                  = iavf_dev_reset,
163         .dev_infos_get              = iavf_dev_info_get,
164         .dev_supported_ptypes_get   = iavf_dev_supported_ptypes_get,
165         .link_update                = iavf_dev_link_update,
166         .stats_get                  = iavf_dev_stats_get,
167         .stats_reset                = iavf_dev_stats_reset,
168         .xstats_get                 = iavf_dev_xstats_get,
169         .xstats_get_names           = iavf_dev_xstats_get_names,
170         .xstats_reset               = iavf_dev_stats_reset,
171         .promiscuous_enable         = iavf_dev_promiscuous_enable,
172         .promiscuous_disable        = iavf_dev_promiscuous_disable,
173         .allmulticast_enable        = iavf_dev_allmulticast_enable,
174         .allmulticast_disable       = iavf_dev_allmulticast_disable,
175         .mac_addr_add               = iavf_dev_add_mac_addr,
176         .mac_addr_remove            = iavf_dev_del_mac_addr,
177         .set_mc_addr_list                       = iavf_set_mc_addr_list,
178         .vlan_filter_set            = iavf_dev_vlan_filter_set,
179         .vlan_offload_set           = iavf_dev_vlan_offload_set,
180         .rx_queue_start             = iavf_dev_rx_queue_start,
181         .rx_queue_stop              = iavf_dev_rx_queue_stop,
182         .tx_queue_start             = iavf_dev_tx_queue_start,
183         .tx_queue_stop              = iavf_dev_tx_queue_stop,
184         .rx_queue_setup             = iavf_dev_rx_queue_setup,
185         .rx_queue_release           = iavf_dev_rx_queue_release,
186         .tx_queue_setup             = iavf_dev_tx_queue_setup,
187         .tx_queue_release           = iavf_dev_tx_queue_release,
188         .mac_addr_set               = iavf_dev_set_default_mac_addr,
189         .reta_update                = iavf_dev_rss_reta_update,
190         .reta_query                 = iavf_dev_rss_reta_query,
191         .rss_hash_update            = iavf_dev_rss_hash_update,
192         .rss_hash_conf_get          = iavf_dev_rss_hash_conf_get,
193         .rxq_info_get               = iavf_dev_rxq_info_get,
194         .txq_info_get               = iavf_dev_txq_info_get,
195         .mtu_set                    = iavf_dev_mtu_set,
196         .rx_queue_intr_enable       = iavf_dev_rx_queue_intr_enable,
197         .rx_queue_intr_disable      = iavf_dev_rx_queue_intr_disable,
198         .filter_ctrl                = iavf_dev_filter_ctrl,
199         .tx_done_cleanup            = iavf_dev_tx_done_cleanup,
200 };
201
202 static int
203 iavf_set_mc_addr_list(struct rte_eth_dev *dev,
204                         struct rte_ether_addr *mc_addrs,
205                         uint32_t mc_addrs_num)
206 {
207         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
208         struct iavf_adapter *adapter =
209                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
210         int err, ret;
211
212         if (mc_addrs_num > IAVF_NUM_MACADDR_MAX) {
213                 PMD_DRV_LOG(ERR,
214                             "can't add more than a limited number (%u) of addresses.",
215                             (uint32_t)IAVF_NUM_MACADDR_MAX);
216                 return -EINVAL;
217         }
218
219         /* flush previous addresses */
220         err = iavf_add_del_mc_addr_list(adapter, vf->mc_addrs, vf->mc_addrs_num,
221                                         false);
222         if (err)
223                 return err;
224
225         /* add new ones */
226         err = iavf_add_del_mc_addr_list(adapter, mc_addrs, mc_addrs_num, true);
227
228         if (err) {
229                 /* if adding mac address list fails, should add the previous
230                  * addresses back.
231                  */
232                 ret = iavf_add_del_mc_addr_list(adapter, vf->mc_addrs,
233                                                 vf->mc_addrs_num, true);
234                 if (ret)
235                         return ret;
236         } else {
237                 vf->mc_addrs_num = mc_addrs_num;
238                 memcpy(vf->mc_addrs,
239                        mc_addrs, mc_addrs_num * sizeof(*mc_addrs));
240         }
241
242         return err;
243 }
244
245 static int
246 iavf_init_rss(struct iavf_adapter *adapter)
247 {
248         struct iavf_info *vf =  IAVF_DEV_PRIVATE_TO_VF(adapter);
249         struct rte_eth_rss_conf *rss_conf;
250         uint16_t i, j, nb_q;
251         int ret;
252
253         rss_conf = &adapter->eth_dev->data->dev_conf.rx_adv_conf.rss_conf;
254         nb_q = RTE_MIN(adapter->eth_dev->data->nb_rx_queues,
255                        vf->max_rss_qregion);
256
257         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF)) {
258                 PMD_DRV_LOG(DEBUG, "RSS is not supported");
259                 return -ENOTSUP;
260         }
261         if (adapter->eth_dev->data->dev_conf.rxmode.mq_mode != ETH_MQ_RX_RSS) {
262                 PMD_DRV_LOG(WARNING, "RSS is enabled by PF by default");
263                 /* set all lut items to default queue */
264                 for (i = 0; i < vf->vf_res->rss_lut_size; i++)
265                         vf->rss_lut[i] = 0;
266                 ret = iavf_configure_rss_lut(adapter);
267                 return ret;
268         }
269
270         /* configure RSS key */
271         if (!rss_conf->rss_key) {
272                 /* Calculate the default hash key */
273                 for (i = 0; i <= vf->vf_res->rss_key_size; i++)
274                         vf->rss_key[i] = (uint8_t)rte_rand();
275         } else
276                 rte_memcpy(vf->rss_key, rss_conf->rss_key,
277                            RTE_MIN(rss_conf->rss_key_len,
278                                    vf->vf_res->rss_key_size));
279
280         /* init RSS LUT table */
281         for (i = 0, j = 0; i < vf->vf_res->rss_lut_size; i++, j++) {
282                 if (j >= nb_q)
283                         j = 0;
284                 vf->rss_lut[i] = j;
285         }
286         /* send virtchnnl ops to configure rss*/
287         ret = iavf_configure_rss_lut(adapter);
288         if (ret)
289                 return ret;
290         ret = iavf_configure_rss_key(adapter);
291         if (ret)
292                 return ret;
293
294         /* Set RSS hash configuration based on rss_conf->rss_hf. */
295         ret = iavf_rss_hash_set(adapter, rss_conf->rss_hf, true);
296         if (ret) {
297                 PMD_DRV_LOG(ERR, "fail to set default RSS");
298                 return ret;
299         }
300
301         return 0;
302 }
303
304 static int
305 iavf_queues_req_reset(struct rte_eth_dev *dev, uint16_t num)
306 {
307         struct iavf_adapter *ad =
308                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
309         struct iavf_info *vf =  IAVF_DEV_PRIVATE_TO_VF(ad);
310         int ret;
311
312         ret = iavf_request_queues(ad, num);
313         if (ret) {
314                 PMD_DRV_LOG(ERR, "request queues from PF failed");
315                 return ret;
316         }
317         PMD_DRV_LOG(INFO, "change queue pairs from %u to %u",
318                         vf->vsi_res->num_queue_pairs, num);
319
320         ret = iavf_dev_reset(dev);
321         if (ret) {
322                 PMD_DRV_LOG(ERR, "vf reset failed");
323                 return ret;
324         }
325
326         return 0;
327 }
328
329 static int
330 iavf_dev_vlan_insert_set(struct rte_eth_dev *dev)
331 {
332         struct iavf_adapter *adapter =
333                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
334         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
335         bool enable;
336
337         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_VLAN_V2))
338                 return 0;
339
340         enable = !!(dev->data->dev_conf.txmode.offloads &
341                     DEV_TX_OFFLOAD_VLAN_INSERT);
342         iavf_config_vlan_insert_v2(adapter, enable);
343
344         return 0;
345 }
346
347 static int
348 iavf_dev_init_vlan(struct rte_eth_dev *dev)
349 {
350         int err;
351
352         err = iavf_dev_vlan_offload_set(dev,
353                                         ETH_VLAN_STRIP_MASK |
354                                         ETH_QINQ_STRIP_MASK |
355                                         ETH_VLAN_FILTER_MASK |
356                                         ETH_VLAN_EXTEND_MASK);
357         if (err) {
358                 PMD_DRV_LOG(ERR, "Failed to update vlan offload");
359                 return err;
360         }
361
362         err = iavf_dev_vlan_insert_set(dev);
363         if (err)
364                 PMD_DRV_LOG(ERR, "Failed to update vlan insertion");
365
366         return err;
367 }
368
369 static int
370 iavf_dev_configure(struct rte_eth_dev *dev)
371 {
372         struct iavf_adapter *ad =
373                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
374         struct iavf_info *vf =  IAVF_DEV_PRIVATE_TO_VF(ad);
375         uint16_t num_queue_pairs = RTE_MAX(dev->data->nb_rx_queues,
376                 dev->data->nb_tx_queues);
377         int ret;
378
379         ad->rx_bulk_alloc_allowed = true;
380         /* Initialize to TRUE. If any of Rx queues doesn't meet the
381          * vector Rx/Tx preconditions, it will be reset.
382          */
383         ad->rx_vec_allowed = true;
384         ad->tx_vec_allowed = true;
385
386         if (dev->data->dev_conf.rxmode.mq_mode & ETH_MQ_RX_RSS_FLAG)
387                 dev->data->dev_conf.rxmode.offloads |= DEV_RX_OFFLOAD_RSS_HASH;
388
389         /* Large VF setting */
390         if (num_queue_pairs > IAVF_MAX_NUM_QUEUES_DFLT) {
391                 if (!(vf->vf_res->vf_cap_flags &
392                                 VIRTCHNL_VF_LARGE_NUM_QPAIRS)) {
393                         PMD_DRV_LOG(ERR, "large VF is not supported");
394                         return -1;
395                 }
396
397                 if (num_queue_pairs > IAVF_MAX_NUM_QUEUES_LV) {
398                         PMD_DRV_LOG(ERR, "queue pairs number cannot be larger than %u",
399                                 IAVF_MAX_NUM_QUEUES_LV);
400                         return -1;
401                 }
402
403                 ret = iavf_queues_req_reset(dev, num_queue_pairs);
404                 if (ret)
405                         return ret;
406
407                 ret = iavf_get_max_rss_queue_region(ad);
408                 if (ret) {
409                         PMD_INIT_LOG(ERR, "get max rss queue region failed");
410                         return ret;
411                 }
412
413                 vf->lv_enabled = true;
414         } else {
415                 /* Check if large VF is already enabled. If so, disable and
416                  * release redundant queue resource.
417                  * Or check if enough queue pairs. If not, request them from PF.
418                  */
419                 if (vf->lv_enabled ||
420                     num_queue_pairs > vf->vsi_res->num_queue_pairs) {
421                         ret = iavf_queues_req_reset(dev, num_queue_pairs);
422                         if (ret)
423                                 return ret;
424
425                         vf->lv_enabled = false;
426                 }
427                 /* if large VF is not required, use default rss queue region */
428                 vf->max_rss_qregion = IAVF_MAX_NUM_QUEUES_DFLT;
429         }
430
431         ret = iavf_dev_init_vlan(dev);
432         if (ret) {
433                 PMD_DRV_LOG(ERR, "configure VLAN failed: %d", ret);
434                 return -1;
435         }
436
437         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF) {
438                 if (iavf_init_rss(ad) != 0) {
439                         PMD_DRV_LOG(ERR, "configure rss failed");
440                         return -1;
441                 }
442         }
443         return 0;
444 }
445
446 static int
447 iavf_init_rxq(struct rte_eth_dev *dev, struct iavf_rx_queue *rxq)
448 {
449         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(dev->data->dev_private);
450         struct rte_eth_dev_data *dev_data = dev->data;
451         uint16_t buf_size, max_pkt_len, len;
452
453         buf_size = rte_pktmbuf_data_room_size(rxq->mp) - RTE_PKTMBUF_HEADROOM;
454
455         /* Calculate the maximum packet length allowed */
456         len = rxq->rx_buf_len * IAVF_MAX_CHAINED_RX_BUFFERS;
457         max_pkt_len = RTE_MIN(len, dev->data->dev_conf.rxmode.max_rx_pkt_len);
458
459         /* Check if the jumbo frame and maximum packet length are set
460          * correctly.
461          */
462         if (dev->data->dev_conf.rxmode.offloads & DEV_RX_OFFLOAD_JUMBO_FRAME) {
463                 if (max_pkt_len <= RTE_ETHER_MAX_LEN ||
464                     max_pkt_len > IAVF_FRAME_SIZE_MAX) {
465                         PMD_DRV_LOG(ERR, "maximum packet length must be "
466                                     "larger than %u and smaller than %u, "
467                                     "as jumbo frame is enabled",
468                                     (uint32_t)RTE_ETHER_MAX_LEN,
469                                     (uint32_t)IAVF_FRAME_SIZE_MAX);
470                         return -EINVAL;
471                 }
472         } else {
473                 if (max_pkt_len < RTE_ETHER_MIN_LEN ||
474                     max_pkt_len > RTE_ETHER_MAX_LEN) {
475                         PMD_DRV_LOG(ERR, "maximum packet length must be "
476                                     "larger than %u and smaller than %u, "
477                                     "as jumbo frame is disabled",
478                                     (uint32_t)RTE_ETHER_MIN_LEN,
479                                     (uint32_t)RTE_ETHER_MAX_LEN);
480                         return -EINVAL;
481                 }
482         }
483
484         rxq->max_pkt_len = max_pkt_len;
485         if ((dev_data->dev_conf.rxmode.offloads & DEV_RX_OFFLOAD_SCATTER) ||
486             rxq->max_pkt_len > buf_size) {
487                 dev_data->scattered_rx = 1;
488         }
489         IAVF_PCI_REG_WRITE(rxq->qrx_tail, rxq->nb_rx_desc - 1);
490         IAVF_WRITE_FLUSH(hw);
491
492         return 0;
493 }
494
495 static int
496 iavf_init_queues(struct rte_eth_dev *dev)
497 {
498         struct iavf_rx_queue **rxq =
499                 (struct iavf_rx_queue **)dev->data->rx_queues;
500         int i, ret = IAVF_SUCCESS;
501
502         for (i = 0; i < dev->data->nb_rx_queues; i++) {
503                 if (!rxq[i] || !rxq[i]->q_set)
504                         continue;
505                 ret = iavf_init_rxq(dev, rxq[i]);
506                 if (ret != IAVF_SUCCESS)
507                         break;
508         }
509         /* set rx/tx function to vector/scatter/single-segment
510          * according to parameters
511          */
512         iavf_set_rx_function(dev);
513         iavf_set_tx_function(dev);
514
515         return ret;
516 }
517
518 static int iavf_config_rx_queues_irqs(struct rte_eth_dev *dev,
519                                      struct rte_intr_handle *intr_handle)
520 {
521         struct iavf_adapter *adapter =
522                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
523         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
524         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(adapter);
525         struct iavf_qv_map *qv_map;
526         uint16_t interval, i;
527         int vec;
528
529         if (rte_intr_cap_multiple(intr_handle) &&
530             dev->data->dev_conf.intr_conf.rxq) {
531                 if (rte_intr_efd_enable(intr_handle, dev->data->nb_rx_queues))
532                         return -1;
533         }
534
535         if (rte_intr_dp_is_en(intr_handle) && !intr_handle->intr_vec) {
536                 intr_handle->intr_vec =
537                         rte_zmalloc("intr_vec",
538                                     dev->data->nb_rx_queues * sizeof(int), 0);
539                 if (!intr_handle->intr_vec) {
540                         PMD_DRV_LOG(ERR, "Failed to allocate %d rx intr_vec",
541                                     dev->data->nb_rx_queues);
542                         return -1;
543                 }
544         }
545
546         qv_map = rte_zmalloc("qv_map",
547                 dev->data->nb_rx_queues * sizeof(struct iavf_qv_map), 0);
548         if (!qv_map) {
549                 PMD_DRV_LOG(ERR, "Failed to allocate %d queue-vector map",
550                                 dev->data->nb_rx_queues);
551                 return -1;
552         }
553
554         if (!dev->data->dev_conf.intr_conf.rxq ||
555             !rte_intr_dp_is_en(intr_handle)) {
556                 /* Rx interrupt disabled, Map interrupt only for writeback */
557                 vf->nb_msix = 1;
558                 if (vf->vf_res->vf_cap_flags &
559                     VIRTCHNL_VF_OFFLOAD_WB_ON_ITR) {
560                         /* If WB_ON_ITR supports, enable it */
561                         vf->msix_base = IAVF_RX_VEC_START;
562                         /* Set the ITR for index zero, to 2us to make sure that
563                          * we leave time for aggregation to occur, but don't
564                          * increase latency dramatically.
565                          */
566                         IAVF_WRITE_REG(hw,
567                                        IAVF_VFINT_DYN_CTLN1(vf->msix_base - 1),
568                                        (0 << IAVF_VFINT_DYN_CTLN1_ITR_INDX_SHIFT) |
569                                        IAVF_VFINT_DYN_CTLN1_WB_ON_ITR_MASK |
570                                        (2UL << IAVF_VFINT_DYN_CTLN1_INTERVAL_SHIFT));
571                         /* debug - check for success! the return value
572                          * should be 2, offset is 0x2800
573                          */
574                         /* IAVF_READ_REG(hw, IAVF_VFINT_ITRN1(0, 0)); */
575                 } else {
576                         /* If no WB_ON_ITR offload flags, need to set
577                          * interrupt for descriptor write back.
578                          */
579                         vf->msix_base = IAVF_MISC_VEC_ID;
580
581                         /* set ITR to max */
582                         interval = iavf_calc_itr_interval(
583                                         IAVF_QUEUE_ITR_INTERVAL_MAX);
584                         IAVF_WRITE_REG(hw, IAVF_VFINT_DYN_CTL01,
585                                        IAVF_VFINT_DYN_CTL01_INTENA_MASK |
586                                        (IAVF_ITR_INDEX_DEFAULT <<
587                                         IAVF_VFINT_DYN_CTL01_ITR_INDX_SHIFT) |
588                                        (interval <<
589                                         IAVF_VFINT_DYN_CTL01_INTERVAL_SHIFT));
590                 }
591                 IAVF_WRITE_FLUSH(hw);
592                 /* map all queues to the same interrupt */
593                 for (i = 0; i < dev->data->nb_rx_queues; i++) {
594                         qv_map[i].queue_id = i;
595                         qv_map[i].vector_id = vf->msix_base;
596                 }
597                 vf->qv_map = qv_map;
598         } else {
599                 if (!rte_intr_allow_others(intr_handle)) {
600                         vf->nb_msix = 1;
601                         vf->msix_base = IAVF_MISC_VEC_ID;
602                         for (i = 0; i < dev->data->nb_rx_queues; i++) {
603                                 qv_map[i].queue_id = i;
604                                 qv_map[i].vector_id = vf->msix_base;
605                                 intr_handle->intr_vec[i] = IAVF_MISC_VEC_ID;
606                         }
607                         vf->qv_map = qv_map;
608                         PMD_DRV_LOG(DEBUG,
609                                     "vector %u are mapping to all Rx queues",
610                                     vf->msix_base);
611                 } else {
612                         /* If Rx interrupt is reuquired, and we can use
613                          * multi interrupts, then the vec is from 1
614                          */
615                         vf->nb_msix = RTE_MIN(vf->vf_res->max_vectors,
616                                               intr_handle->nb_efd);
617                         vf->msix_base = IAVF_RX_VEC_START;
618                         vec = IAVF_RX_VEC_START;
619                         for (i = 0; i < dev->data->nb_rx_queues; i++) {
620                                 qv_map[i].queue_id = i;
621                                 qv_map[i].vector_id = vec;
622                                 intr_handle->intr_vec[i] = vec++;
623                                 if (vec >= vf->nb_msix)
624                                         vec = IAVF_RX_VEC_START;
625                         }
626                         vf->qv_map = qv_map;
627                         PMD_DRV_LOG(DEBUG,
628                                     "%u vectors are mapping to %u Rx queues",
629                                     vf->nb_msix, dev->data->nb_rx_queues);
630                 }
631         }
632
633         if (!vf->lv_enabled) {
634                 if (iavf_config_irq_map(adapter)) {
635                         PMD_DRV_LOG(ERR, "config interrupt mapping failed");
636                         return -1;
637                 }
638         } else {
639                 uint16_t num_qv_maps = dev->data->nb_rx_queues;
640                 uint16_t index = 0;
641
642                 while (num_qv_maps > IAVF_IRQ_MAP_NUM_PER_BUF) {
643                         if (iavf_config_irq_map_lv(adapter,
644                                         IAVF_IRQ_MAP_NUM_PER_BUF, index)) {
645                                 PMD_DRV_LOG(ERR, "config interrupt mapping for large VF failed");
646                                 return -1;
647                         }
648                         num_qv_maps -= IAVF_IRQ_MAP_NUM_PER_BUF;
649                         index += IAVF_IRQ_MAP_NUM_PER_BUF;
650                 }
651
652                 if (iavf_config_irq_map_lv(adapter, num_qv_maps, index)) {
653                         PMD_DRV_LOG(ERR, "config interrupt mapping for large VF failed");
654                         return -1;
655                 }
656         }
657         return 0;
658 }
659
660 static int
661 iavf_start_queues(struct rte_eth_dev *dev)
662 {
663         struct iavf_rx_queue *rxq;
664         struct iavf_tx_queue *txq;
665         int i;
666
667         for (i = 0; i < dev->data->nb_tx_queues; i++) {
668                 txq = dev->data->tx_queues[i];
669                 if (txq->tx_deferred_start)
670                         continue;
671                 if (iavf_dev_tx_queue_start(dev, i) != 0) {
672                         PMD_DRV_LOG(ERR, "Fail to start queue %u", i);
673                         return -1;
674                 }
675         }
676
677         for (i = 0; i < dev->data->nb_rx_queues; i++) {
678                 rxq = dev->data->rx_queues[i];
679                 if (rxq->rx_deferred_start)
680                         continue;
681                 if (iavf_dev_rx_queue_start(dev, i) != 0) {
682                         PMD_DRV_LOG(ERR, "Fail to start queue %u", i);
683                         return -1;
684                 }
685         }
686
687         return 0;
688 }
689
690 static int
691 iavf_dev_start(struct rte_eth_dev *dev)
692 {
693         struct iavf_adapter *adapter =
694                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
695         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
696         struct rte_intr_handle *intr_handle = dev->intr_handle;
697         uint16_t num_queue_pairs;
698         uint16_t index = 0;
699
700         PMD_INIT_FUNC_TRACE();
701
702         adapter->stopped = 0;
703
704         vf->max_pkt_len = dev->data->dev_conf.rxmode.max_rx_pkt_len;
705         vf->num_queue_pairs = RTE_MAX(dev->data->nb_rx_queues,
706                                       dev->data->nb_tx_queues);
707         num_queue_pairs = vf->num_queue_pairs;
708
709         if (iavf_init_queues(dev) != 0) {
710                 PMD_DRV_LOG(ERR, "failed to do Queue init");
711                 return -1;
712         }
713
714         /* If needed, send configure queues msg multiple times to make the
715          * adminq buffer length smaller than the 4K limitation.
716          */
717         while (num_queue_pairs > IAVF_CFG_Q_NUM_PER_BUF) {
718                 if (iavf_configure_queues(adapter,
719                                 IAVF_CFG_Q_NUM_PER_BUF, index) != 0) {
720                         PMD_DRV_LOG(ERR, "configure queues failed");
721                         goto err_queue;
722                 }
723                 num_queue_pairs -= IAVF_CFG_Q_NUM_PER_BUF;
724                 index += IAVF_CFG_Q_NUM_PER_BUF;
725         }
726
727         if (iavf_configure_queues(adapter, num_queue_pairs, index) != 0) {
728                 PMD_DRV_LOG(ERR, "configure queues failed");
729                 goto err_queue;
730         }
731
732         if (iavf_config_rx_queues_irqs(dev, intr_handle) != 0) {
733                 PMD_DRV_LOG(ERR, "configure irq failed");
734                 goto err_queue;
735         }
736         /* re-enable intr again, because efd assign may change */
737         if (dev->data->dev_conf.intr_conf.rxq != 0) {
738                 rte_intr_disable(intr_handle);
739                 rte_intr_enable(intr_handle);
740         }
741
742         /* Set all mac addrs */
743         iavf_add_del_all_mac_addr(adapter, true);
744
745         /* Set all multicast addresses */
746         iavf_add_del_mc_addr_list(adapter, vf->mc_addrs, vf->mc_addrs_num,
747                                   true);
748
749         if (iavf_start_queues(dev) != 0) {
750                 PMD_DRV_LOG(ERR, "enable queues failed");
751                 goto err_mac;
752         }
753
754         return 0;
755
756 err_mac:
757         iavf_add_del_all_mac_addr(adapter, false);
758 err_queue:
759         return -1;
760 }
761
762 static int
763 iavf_dev_stop(struct rte_eth_dev *dev)
764 {
765         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
766         struct iavf_adapter *adapter =
767                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
768         struct rte_intr_handle *intr_handle = dev->intr_handle;
769
770         PMD_INIT_FUNC_TRACE();
771
772         if (adapter->stopped == 1)
773                 return 0;
774
775         iavf_stop_queues(dev);
776
777         /* Disable the interrupt for Rx */
778         rte_intr_efd_disable(intr_handle);
779         /* Rx interrupt vector mapping free */
780         if (intr_handle->intr_vec) {
781                 rte_free(intr_handle->intr_vec);
782                 intr_handle->intr_vec = NULL;
783         }
784
785         /* remove all mac addrs */
786         iavf_add_del_all_mac_addr(adapter, false);
787
788         /* remove all multicast addresses */
789         iavf_add_del_mc_addr_list(adapter, vf->mc_addrs, vf->mc_addrs_num,
790                                   false);
791
792         adapter->stopped = 1;
793         dev->data->dev_started = 0;
794
795         return 0;
796 }
797
798 static int
799 iavf_dev_info_get(struct rte_eth_dev *dev, struct rte_eth_dev_info *dev_info)
800 {
801         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
802
803         dev_info->max_rx_queues = IAVF_MAX_NUM_QUEUES_LV;
804         dev_info->max_tx_queues = IAVF_MAX_NUM_QUEUES_LV;
805         dev_info->min_rx_bufsize = IAVF_BUF_SIZE_MIN;
806         dev_info->max_rx_pktlen = IAVF_FRAME_SIZE_MAX;
807         dev_info->max_mtu = dev_info->max_rx_pktlen - IAVF_ETH_OVERHEAD;
808         dev_info->min_mtu = RTE_ETHER_MIN_MTU;
809         dev_info->hash_key_size = vf->vf_res->rss_key_size;
810         dev_info->reta_size = vf->vf_res->rss_lut_size;
811         dev_info->flow_type_rss_offloads = IAVF_RSS_OFFLOAD_ALL;
812         dev_info->max_mac_addrs = IAVF_NUM_MACADDR_MAX;
813         dev_info->rx_offload_capa =
814                 DEV_RX_OFFLOAD_VLAN_STRIP |
815                 DEV_RX_OFFLOAD_QINQ_STRIP |
816                 DEV_RX_OFFLOAD_IPV4_CKSUM |
817                 DEV_RX_OFFLOAD_UDP_CKSUM |
818                 DEV_RX_OFFLOAD_TCP_CKSUM |
819                 DEV_RX_OFFLOAD_OUTER_IPV4_CKSUM |
820                 DEV_RX_OFFLOAD_SCATTER |
821                 DEV_RX_OFFLOAD_JUMBO_FRAME |
822                 DEV_RX_OFFLOAD_VLAN_FILTER |
823                 DEV_RX_OFFLOAD_RSS_HASH;
824
825         dev_info->tx_offload_capa =
826                 DEV_TX_OFFLOAD_VLAN_INSERT |
827                 DEV_TX_OFFLOAD_QINQ_INSERT |
828                 DEV_TX_OFFLOAD_IPV4_CKSUM |
829                 DEV_TX_OFFLOAD_UDP_CKSUM |
830                 DEV_TX_OFFLOAD_TCP_CKSUM |
831                 DEV_TX_OFFLOAD_SCTP_CKSUM |
832                 DEV_TX_OFFLOAD_OUTER_IPV4_CKSUM |
833                 DEV_TX_OFFLOAD_TCP_TSO |
834                 DEV_TX_OFFLOAD_VXLAN_TNL_TSO |
835                 DEV_TX_OFFLOAD_GRE_TNL_TSO |
836                 DEV_TX_OFFLOAD_IPIP_TNL_TSO |
837                 DEV_TX_OFFLOAD_GENEVE_TNL_TSO |
838                 DEV_TX_OFFLOAD_MULTI_SEGS |
839                 DEV_TX_OFFLOAD_MBUF_FAST_FREE;
840
841         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_CRC)
842                 dev_info->rx_offload_capa |= DEV_RX_OFFLOAD_KEEP_CRC;
843
844         dev_info->default_rxconf = (struct rte_eth_rxconf) {
845                 .rx_free_thresh = IAVF_DEFAULT_RX_FREE_THRESH,
846                 .rx_drop_en = 0,
847                 .offloads = 0,
848         };
849
850         dev_info->default_txconf = (struct rte_eth_txconf) {
851                 .tx_free_thresh = IAVF_DEFAULT_TX_FREE_THRESH,
852                 .tx_rs_thresh = IAVF_DEFAULT_TX_RS_THRESH,
853                 .offloads = 0,
854         };
855
856         dev_info->rx_desc_lim = (struct rte_eth_desc_lim) {
857                 .nb_max = IAVF_MAX_RING_DESC,
858                 .nb_min = IAVF_MIN_RING_DESC,
859                 .nb_align = IAVF_ALIGN_RING_DESC,
860         };
861
862         dev_info->tx_desc_lim = (struct rte_eth_desc_lim) {
863                 .nb_max = IAVF_MAX_RING_DESC,
864                 .nb_min = IAVF_MIN_RING_DESC,
865                 .nb_align = IAVF_ALIGN_RING_DESC,
866         };
867
868         return 0;
869 }
870
871 static const uint32_t *
872 iavf_dev_supported_ptypes_get(struct rte_eth_dev *dev __rte_unused)
873 {
874         static const uint32_t ptypes[] = {
875                 RTE_PTYPE_L2_ETHER,
876                 RTE_PTYPE_L3_IPV4_EXT_UNKNOWN,
877                 RTE_PTYPE_L4_FRAG,
878                 RTE_PTYPE_L4_ICMP,
879                 RTE_PTYPE_L4_NONFRAG,
880                 RTE_PTYPE_L4_SCTP,
881                 RTE_PTYPE_L4_TCP,
882                 RTE_PTYPE_L4_UDP,
883                 RTE_PTYPE_UNKNOWN
884         };
885         return ptypes;
886 }
887
888 int
889 iavf_dev_link_update(struct rte_eth_dev *dev,
890                     __rte_unused int wait_to_complete)
891 {
892         struct rte_eth_link new_link;
893         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
894
895         memset(&new_link, 0, sizeof(new_link));
896
897         /* Only read status info stored in VF, and the info is updated
898          *  when receive LINK_CHANGE evnet from PF by Virtchnnl.
899          */
900         switch (vf->link_speed) {
901         case 10:
902                 new_link.link_speed = ETH_SPEED_NUM_10M;
903                 break;
904         case 100:
905                 new_link.link_speed = ETH_SPEED_NUM_100M;
906                 break;
907         case 1000:
908                 new_link.link_speed = ETH_SPEED_NUM_1G;
909                 break;
910         case 10000:
911                 new_link.link_speed = ETH_SPEED_NUM_10G;
912                 break;
913         case 20000:
914                 new_link.link_speed = ETH_SPEED_NUM_20G;
915                 break;
916         case 25000:
917                 new_link.link_speed = ETH_SPEED_NUM_25G;
918                 break;
919         case 40000:
920                 new_link.link_speed = ETH_SPEED_NUM_40G;
921                 break;
922         case 50000:
923                 new_link.link_speed = ETH_SPEED_NUM_50G;
924                 break;
925         case 100000:
926                 new_link.link_speed = ETH_SPEED_NUM_100G;
927                 break;
928         default:
929                 new_link.link_speed = ETH_SPEED_NUM_NONE;
930                 break;
931         }
932
933         new_link.link_duplex = ETH_LINK_FULL_DUPLEX;
934         new_link.link_status = vf->link_up ? ETH_LINK_UP :
935                                              ETH_LINK_DOWN;
936         new_link.link_autoneg = !(dev->data->dev_conf.link_speeds &
937                                 ETH_LINK_SPEED_FIXED);
938
939         return rte_eth_linkstatus_set(dev, &new_link);
940 }
941
942 static int
943 iavf_dev_promiscuous_enable(struct rte_eth_dev *dev)
944 {
945         struct iavf_adapter *adapter =
946                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
947         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
948
949         return iavf_config_promisc(adapter,
950                                   true, vf->promisc_multicast_enabled);
951 }
952
953 static int
954 iavf_dev_promiscuous_disable(struct rte_eth_dev *dev)
955 {
956         struct iavf_adapter *adapter =
957                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
958         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
959
960         return iavf_config_promisc(adapter,
961                                   false, vf->promisc_multicast_enabled);
962 }
963
964 static int
965 iavf_dev_allmulticast_enable(struct rte_eth_dev *dev)
966 {
967         struct iavf_adapter *adapter =
968                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
969         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
970
971         return iavf_config_promisc(adapter,
972                                   vf->promisc_unicast_enabled, true);
973 }
974
975 static int
976 iavf_dev_allmulticast_disable(struct rte_eth_dev *dev)
977 {
978         struct iavf_adapter *adapter =
979                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
980         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
981
982         return iavf_config_promisc(adapter,
983                                   vf->promisc_unicast_enabled, false);
984 }
985
986 static int
987 iavf_dev_add_mac_addr(struct rte_eth_dev *dev, struct rte_ether_addr *addr,
988                      __rte_unused uint32_t index,
989                      __rte_unused uint32_t pool)
990 {
991         struct iavf_adapter *adapter =
992                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
993         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
994         int err;
995
996         if (rte_is_zero_ether_addr(addr)) {
997                 PMD_DRV_LOG(ERR, "Invalid Ethernet Address");
998                 return -EINVAL;
999         }
1000
1001         err = iavf_add_del_eth_addr(adapter, addr, true);
1002         if (err) {
1003                 PMD_DRV_LOG(ERR, "fail to add MAC address");
1004                 return -EIO;
1005         }
1006
1007         vf->mac_num++;
1008
1009         return 0;
1010 }
1011
1012 static void
1013 iavf_dev_del_mac_addr(struct rte_eth_dev *dev, uint32_t index)
1014 {
1015         struct iavf_adapter *adapter =
1016                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1017         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1018         struct rte_ether_addr *addr;
1019         int err;
1020
1021         addr = &dev->data->mac_addrs[index];
1022
1023         err = iavf_add_del_eth_addr(adapter, addr, false);
1024         if (err)
1025                 PMD_DRV_LOG(ERR, "fail to delete MAC address");
1026
1027         vf->mac_num--;
1028 }
1029
1030 static int
1031 iavf_dev_vlan_filter_set(struct rte_eth_dev *dev, uint16_t vlan_id, int on)
1032 {
1033         struct iavf_adapter *adapter =
1034                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1035         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1036         int err;
1037
1038         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_VLAN_V2) {
1039                 err = iavf_add_del_vlan_v2(adapter, vlan_id, on);
1040                 if (err)
1041                         return -EIO;
1042                 return 0;
1043         }
1044
1045         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_VLAN))
1046                 return -ENOTSUP;
1047
1048         err = iavf_add_del_vlan(adapter, vlan_id, on);
1049         if (err)
1050                 return -EIO;
1051         return 0;
1052 }
1053
1054 static void
1055 iavf_iterate_vlan_filters_v2(struct rte_eth_dev *dev, bool enable)
1056 {
1057         struct rte_vlan_filter_conf *vfc = &dev->data->vlan_filter_conf;
1058         struct iavf_adapter *adapter =
1059                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1060         uint32_t i, j;
1061         uint64_t ids;
1062
1063         for (i = 0; i < RTE_DIM(vfc->ids); i++) {
1064                 if (vfc->ids[i] == 0)
1065                         continue;
1066
1067                 ids = vfc->ids[i];
1068                 for (j = 0; ids != 0 && j < 64; j++, ids >>= 1) {
1069                         if (ids & 1)
1070                                 iavf_add_del_vlan_v2(adapter,
1071                                                      64 * i + j, enable);
1072                 }
1073         }
1074 }
1075
1076 static int
1077 iavf_dev_vlan_offload_set_v2(struct rte_eth_dev *dev, int mask)
1078 {
1079         struct rte_eth_rxmode *rxmode = &dev->data->dev_conf.rxmode;
1080         struct iavf_adapter *adapter =
1081                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1082         bool enable;
1083         int err;
1084
1085         if (mask & ETH_VLAN_FILTER_MASK) {
1086                 enable = !!(rxmode->offloads & DEV_RX_OFFLOAD_VLAN_FILTER);
1087
1088                 iavf_iterate_vlan_filters_v2(dev, enable);
1089         }
1090
1091         if (mask & ETH_VLAN_STRIP_MASK) {
1092                 enable = !!(rxmode->offloads & DEV_RX_OFFLOAD_VLAN_STRIP);
1093
1094                 err = iavf_config_vlan_strip_v2(adapter, enable);
1095                 if (err)
1096                         return -EIO;
1097         }
1098
1099         return 0;
1100 }
1101
1102 static int
1103 iavf_dev_vlan_offload_set(struct rte_eth_dev *dev, int mask)
1104 {
1105         struct iavf_adapter *adapter =
1106                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1107         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1108         struct rte_eth_conf *dev_conf = &dev->data->dev_conf;
1109         int err;
1110
1111         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_VLAN_V2)
1112                 return iavf_dev_vlan_offload_set_v2(dev, mask);
1113
1114         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_VLAN))
1115                 return -ENOTSUP;
1116
1117         /* Vlan stripping setting */
1118         if (mask & ETH_VLAN_STRIP_MASK) {
1119                 /* Enable or disable VLAN stripping */
1120                 if (dev_conf->rxmode.offloads & DEV_RX_OFFLOAD_VLAN_STRIP)
1121                         err = iavf_enable_vlan_strip(adapter);
1122                 else
1123                         err = iavf_disable_vlan_strip(adapter);
1124
1125                 if (err)
1126                         return -EIO;
1127         }
1128         return 0;
1129 }
1130
1131 static int
1132 iavf_dev_rss_reta_update(struct rte_eth_dev *dev,
1133                         struct rte_eth_rss_reta_entry64 *reta_conf,
1134                         uint16_t reta_size)
1135 {
1136         struct iavf_adapter *adapter =
1137                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1138         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1139         uint8_t *lut;
1140         uint16_t i, idx, shift;
1141         int ret;
1142
1143         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF))
1144                 return -ENOTSUP;
1145
1146         if (reta_size != vf->vf_res->rss_lut_size) {
1147                 PMD_DRV_LOG(ERR, "The size of hash lookup table configured "
1148                         "(%d) doesn't match the number of hardware can "
1149                         "support (%d)", reta_size, vf->vf_res->rss_lut_size);
1150                 return -EINVAL;
1151         }
1152
1153         lut = rte_zmalloc("rss_lut", reta_size, 0);
1154         if (!lut) {
1155                 PMD_DRV_LOG(ERR, "No memory can be allocated");
1156                 return -ENOMEM;
1157         }
1158         /* store the old lut table temporarily */
1159         rte_memcpy(lut, vf->rss_lut, reta_size);
1160
1161         for (i = 0; i < reta_size; i++) {
1162                 idx = i / RTE_RETA_GROUP_SIZE;
1163                 shift = i % RTE_RETA_GROUP_SIZE;
1164                 if (reta_conf[idx].mask & (1ULL << shift))
1165                         lut[i] = reta_conf[idx].reta[shift];
1166         }
1167
1168         rte_memcpy(vf->rss_lut, lut, reta_size);
1169         /* send virtchnnl ops to configure rss*/
1170         ret = iavf_configure_rss_lut(adapter);
1171         if (ret) /* revert back */
1172                 rte_memcpy(vf->rss_lut, lut, reta_size);
1173         rte_free(lut);
1174
1175         return ret;
1176 }
1177
1178 static int
1179 iavf_dev_rss_reta_query(struct rte_eth_dev *dev,
1180                        struct rte_eth_rss_reta_entry64 *reta_conf,
1181                        uint16_t reta_size)
1182 {
1183         struct iavf_adapter *adapter =
1184                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1185         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1186         uint16_t i, idx, shift;
1187
1188         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF))
1189                 return -ENOTSUP;
1190
1191         if (reta_size != vf->vf_res->rss_lut_size) {
1192                 PMD_DRV_LOG(ERR, "The size of hash lookup table configured "
1193                         "(%d) doesn't match the number of hardware can "
1194                         "support (%d)", reta_size, vf->vf_res->rss_lut_size);
1195                 return -EINVAL;
1196         }
1197
1198         for (i = 0; i < reta_size; i++) {
1199                 idx = i / RTE_RETA_GROUP_SIZE;
1200                 shift = i % RTE_RETA_GROUP_SIZE;
1201                 if (reta_conf[idx].mask & (1ULL << shift))
1202                         reta_conf[idx].reta[shift] = vf->rss_lut[i];
1203         }
1204
1205         return 0;
1206 }
1207
1208 static int
1209 iavf_set_rss_key(struct iavf_adapter *adapter, uint8_t *key, uint8_t key_len)
1210 {
1211         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1212
1213         /* HENA setting, it is enabled by default, no change */
1214         if (!key || key_len == 0) {
1215                 PMD_DRV_LOG(DEBUG, "No key to be configured");
1216                 return 0;
1217         } else if (key_len != vf->vf_res->rss_key_size) {
1218                 PMD_DRV_LOG(ERR, "The size of hash key configured "
1219                         "(%d) doesn't match the size of hardware can "
1220                         "support (%d)", key_len,
1221                         vf->vf_res->rss_key_size);
1222                 return -EINVAL;
1223         }
1224
1225         rte_memcpy(vf->rss_key, key, key_len);
1226
1227         return iavf_configure_rss_key(adapter);
1228 }
1229
1230 static int
1231 iavf_dev_rss_hash_update(struct rte_eth_dev *dev,
1232                         struct rte_eth_rss_conf *rss_conf)
1233 {
1234         struct iavf_adapter *adapter =
1235                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1236         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1237         int ret;
1238
1239         adapter->eth_dev->data->dev_conf.rx_adv_conf.rss_conf = *rss_conf;
1240
1241         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF))
1242                 return -ENOTSUP;
1243
1244         /* Set hash key. */
1245         ret = iavf_set_rss_key(adapter, rss_conf->rss_key,
1246                                rss_conf->rss_key_len);
1247         if (ret)
1248                 return ret;
1249
1250         if (rss_conf->rss_hf == 0)
1251                 return 0;
1252
1253         /* Overwritten default RSS. */
1254         ret = iavf_set_hena(adapter, 0);
1255         if (ret)
1256                 PMD_DRV_LOG(ERR, "%s Remove rss vsi fail %d",
1257                             __func__, ret);
1258
1259         /* Set new RSS configuration. */
1260         ret = iavf_rss_hash_set(adapter, rss_conf->rss_hf, true);
1261         if (ret) {
1262                 PMD_DRV_LOG(ERR, "fail to set new RSS");
1263                 return ret;
1264         }
1265
1266         return 0;
1267 }
1268
1269 static int
1270 iavf_dev_rss_hash_conf_get(struct rte_eth_dev *dev,
1271                           struct rte_eth_rss_conf *rss_conf)
1272 {
1273         struct iavf_adapter *adapter =
1274                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1275         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(adapter);
1276
1277         if (!(vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF))
1278                 return -ENOTSUP;
1279
1280         rss_conf->rss_hf = vf->rss_hf;
1281
1282         if (!rss_conf->rss_key)
1283                 return 0;
1284
1285         rss_conf->rss_key_len = vf->vf_res->rss_key_size;
1286         rte_memcpy(rss_conf->rss_key, vf->rss_key, rss_conf->rss_key_len);
1287
1288         return 0;
1289 }
1290
1291 static int
1292 iavf_dev_mtu_set(struct rte_eth_dev *dev, uint16_t mtu)
1293 {
1294         uint32_t frame_size = mtu + IAVF_ETH_OVERHEAD;
1295         int ret = 0;
1296
1297         if (mtu < RTE_ETHER_MIN_MTU || frame_size > IAVF_FRAME_SIZE_MAX)
1298                 return -EINVAL;
1299
1300         /* mtu setting is forbidden if port is start */
1301         if (dev->data->dev_started) {
1302                 PMD_DRV_LOG(ERR, "port must be stopped before configuration");
1303                 return -EBUSY;
1304         }
1305
1306         if (frame_size > RTE_ETHER_MAX_LEN)
1307                 dev->data->dev_conf.rxmode.offloads |=
1308                                 DEV_RX_OFFLOAD_JUMBO_FRAME;
1309         else
1310                 dev->data->dev_conf.rxmode.offloads &=
1311                                 ~DEV_RX_OFFLOAD_JUMBO_FRAME;
1312
1313         dev->data->dev_conf.rxmode.max_rx_pkt_len = frame_size;
1314
1315         return ret;
1316 }
1317
1318 static int
1319 iavf_dev_set_default_mac_addr(struct rte_eth_dev *dev,
1320                              struct rte_ether_addr *mac_addr)
1321 {
1322         struct iavf_adapter *adapter =
1323                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1324         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(adapter);
1325         struct rte_ether_addr *perm_addr, *old_addr;
1326         int ret;
1327
1328         old_addr = (struct rte_ether_addr *)hw->mac.addr;
1329         perm_addr = (struct rte_ether_addr *)hw->mac.perm_addr;
1330
1331         /* If the MAC address is configured by host, skip the setting */
1332         if (rte_is_valid_assigned_ether_addr(perm_addr))
1333                 return -EPERM;
1334
1335         ret = iavf_add_del_eth_addr(adapter, old_addr, false);
1336         if (ret)
1337                 PMD_DRV_LOG(ERR, "Fail to delete old MAC:"
1338                             " %02X:%02X:%02X:%02X:%02X:%02X",
1339                             old_addr->addr_bytes[0],
1340                             old_addr->addr_bytes[1],
1341                             old_addr->addr_bytes[2],
1342                             old_addr->addr_bytes[3],
1343                             old_addr->addr_bytes[4],
1344                             old_addr->addr_bytes[5]);
1345
1346         ret = iavf_add_del_eth_addr(adapter, mac_addr, true);
1347         if (ret)
1348                 PMD_DRV_LOG(ERR, "Fail to add new MAC:"
1349                             " %02X:%02X:%02X:%02X:%02X:%02X",
1350                             mac_addr->addr_bytes[0],
1351                             mac_addr->addr_bytes[1],
1352                             mac_addr->addr_bytes[2],
1353                             mac_addr->addr_bytes[3],
1354                             mac_addr->addr_bytes[4],
1355                             mac_addr->addr_bytes[5]);
1356
1357         if (ret)
1358                 return -EIO;
1359
1360         rte_ether_addr_copy(mac_addr, (struct rte_ether_addr *)hw->mac.addr);
1361         return 0;
1362 }
1363
1364 static void
1365 iavf_stat_update_48(uint64_t *offset, uint64_t *stat)
1366 {
1367         if (*stat >= *offset)
1368                 *stat = *stat - *offset;
1369         else
1370                 *stat = (uint64_t)((*stat +
1371                         ((uint64_t)1 << IAVF_48_BIT_WIDTH)) - *offset);
1372
1373         *stat &= IAVF_48_BIT_MASK;
1374 }
1375
1376 static void
1377 iavf_stat_update_32(uint64_t *offset, uint64_t *stat)
1378 {
1379         if (*stat >= *offset)
1380                 *stat = (uint64_t)(*stat - *offset);
1381         else
1382                 *stat = (uint64_t)((*stat +
1383                         ((uint64_t)1 << IAVF_32_BIT_WIDTH)) - *offset);
1384 }
1385
1386 static void
1387 iavf_update_stats(struct iavf_vsi *vsi, struct virtchnl_eth_stats *nes)
1388 {
1389         struct virtchnl_eth_stats *oes = &vsi->eth_stats_offset;
1390
1391         iavf_stat_update_48(&oes->rx_bytes, &nes->rx_bytes);
1392         iavf_stat_update_48(&oes->rx_unicast, &nes->rx_unicast);
1393         iavf_stat_update_48(&oes->rx_multicast, &nes->rx_multicast);
1394         iavf_stat_update_48(&oes->rx_broadcast, &nes->rx_broadcast);
1395         iavf_stat_update_32(&oes->rx_discards, &nes->rx_discards);
1396         iavf_stat_update_48(&oes->tx_bytes, &nes->tx_bytes);
1397         iavf_stat_update_48(&oes->tx_unicast, &nes->tx_unicast);
1398         iavf_stat_update_48(&oes->tx_multicast, &nes->tx_multicast);
1399         iavf_stat_update_48(&oes->tx_broadcast, &nes->tx_broadcast);
1400         iavf_stat_update_32(&oes->tx_errors, &nes->tx_errors);
1401         iavf_stat_update_32(&oes->tx_discards, &nes->tx_discards);
1402 }
1403
1404 static int
1405 iavf_dev_stats_get(struct rte_eth_dev *dev, struct rte_eth_stats *stats)
1406 {
1407         struct iavf_adapter *adapter =
1408                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1409         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
1410         struct iavf_vsi *vsi = &vf->vsi;
1411         struct virtchnl_eth_stats *pstats = NULL;
1412         int ret;
1413
1414         ret = iavf_query_stats(adapter, &pstats);
1415         if (ret == 0) {
1416                 uint8_t crc_stats_len = (dev->data->dev_conf.rxmode.offloads &
1417                                          DEV_RX_OFFLOAD_KEEP_CRC) ? 0 :
1418                                          RTE_ETHER_CRC_LEN;
1419                 iavf_update_stats(vsi, pstats);
1420                 stats->ipackets = pstats->rx_unicast + pstats->rx_multicast +
1421                                 pstats->rx_broadcast - pstats->rx_discards;
1422                 stats->opackets = pstats->tx_broadcast + pstats->tx_multicast +
1423                                                 pstats->tx_unicast;
1424                 stats->imissed = pstats->rx_discards;
1425                 stats->oerrors = pstats->tx_errors + pstats->tx_discards;
1426                 stats->ibytes = pstats->rx_bytes;
1427                 stats->ibytes -= stats->ipackets * crc_stats_len;
1428                 stats->obytes = pstats->tx_bytes;
1429         } else {
1430                 PMD_DRV_LOG(ERR, "Get statistics failed");
1431         }
1432         return ret;
1433 }
1434
1435 static int
1436 iavf_dev_stats_reset(struct rte_eth_dev *dev)
1437 {
1438         int ret;
1439         struct iavf_adapter *adapter =
1440                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1441         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
1442         struct iavf_vsi *vsi = &vf->vsi;
1443         struct virtchnl_eth_stats *pstats = NULL;
1444
1445         /* read stat values to clear hardware registers */
1446         ret = iavf_query_stats(adapter, &pstats);
1447         if (ret != 0)
1448                 return ret;
1449
1450         /* set stats offset base on current values */
1451         vsi->eth_stats_offset = *pstats;
1452
1453         return 0;
1454 }
1455
1456 static int iavf_dev_xstats_get_names(__rte_unused struct rte_eth_dev *dev,
1457                                       struct rte_eth_xstat_name *xstats_names,
1458                                       __rte_unused unsigned int limit)
1459 {
1460         unsigned int i;
1461
1462         if (xstats_names != NULL)
1463                 for (i = 0; i < IAVF_NB_XSTATS; i++) {
1464                         snprintf(xstats_names[i].name,
1465                                 sizeof(xstats_names[i].name),
1466                                 "%s", rte_iavf_stats_strings[i].name);
1467                 }
1468         return IAVF_NB_XSTATS;
1469 }
1470
1471 static int iavf_dev_xstats_get(struct rte_eth_dev *dev,
1472                                  struct rte_eth_xstat *xstats, unsigned int n)
1473 {
1474         int ret;
1475         unsigned int i;
1476         struct iavf_adapter *adapter =
1477                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1478         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
1479         struct iavf_vsi *vsi = &vf->vsi;
1480         struct virtchnl_eth_stats *pstats = NULL;
1481
1482         if (n < IAVF_NB_XSTATS)
1483                 return IAVF_NB_XSTATS;
1484
1485         ret = iavf_query_stats(adapter, &pstats);
1486         if (ret != 0)
1487                 return 0;
1488
1489         if (!xstats)
1490                 return 0;
1491
1492         iavf_update_stats(vsi, pstats);
1493
1494         /* loop over xstats array and values from pstats */
1495         for (i = 0; i < IAVF_NB_XSTATS; i++) {
1496                 xstats[i].id = i;
1497                 xstats[i].value = *(uint64_t *)(((char *)pstats) +
1498                         rte_iavf_stats_strings[i].offset);
1499         }
1500
1501         return IAVF_NB_XSTATS;
1502 }
1503
1504
1505 static int
1506 iavf_dev_rx_queue_intr_enable(struct rte_eth_dev *dev, uint16_t queue_id)
1507 {
1508         struct iavf_adapter *adapter =
1509                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1510         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
1511         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(adapter);
1512         uint16_t msix_intr;
1513
1514         msix_intr = pci_dev->intr_handle.intr_vec[queue_id];
1515         if (msix_intr == IAVF_MISC_VEC_ID) {
1516                 PMD_DRV_LOG(INFO, "MISC is also enabled for control");
1517                 IAVF_WRITE_REG(hw, IAVF_VFINT_DYN_CTL01,
1518                                IAVF_VFINT_DYN_CTL01_INTENA_MASK |
1519                                IAVF_VFINT_DYN_CTL01_CLEARPBA_MASK |
1520                                IAVF_VFINT_DYN_CTL01_ITR_INDX_MASK);
1521         } else {
1522                 IAVF_WRITE_REG(hw,
1523                                IAVF_VFINT_DYN_CTLN1
1524                                 (msix_intr - IAVF_RX_VEC_START),
1525                                IAVF_VFINT_DYN_CTLN1_INTENA_MASK |
1526                                IAVF_VFINT_DYN_CTL01_CLEARPBA_MASK |
1527                                IAVF_VFINT_DYN_CTLN1_ITR_INDX_MASK);
1528         }
1529
1530         IAVF_WRITE_FLUSH(hw);
1531
1532         rte_intr_ack(&pci_dev->intr_handle);
1533
1534         return 0;
1535 }
1536
1537 static int
1538 iavf_dev_rx_queue_intr_disable(struct rte_eth_dev *dev, uint16_t queue_id)
1539 {
1540         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
1541         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(dev->data->dev_private);
1542         uint16_t msix_intr;
1543
1544         msix_intr = pci_dev->intr_handle.intr_vec[queue_id];
1545         if (msix_intr == IAVF_MISC_VEC_ID) {
1546                 PMD_DRV_LOG(ERR, "MISC is used for control, cannot disable it");
1547                 return -EIO;
1548         }
1549
1550         IAVF_WRITE_REG(hw,
1551                       IAVF_VFINT_DYN_CTLN1(msix_intr - IAVF_RX_VEC_START),
1552                       0);
1553
1554         IAVF_WRITE_FLUSH(hw);
1555         return 0;
1556 }
1557
1558 static int
1559 iavf_check_vf_reset_done(struct iavf_hw *hw)
1560 {
1561         int i, reset;
1562
1563         for (i = 0; i < IAVF_RESET_WAIT_CNT; i++) {
1564                 reset = IAVF_READ_REG(hw, IAVF_VFGEN_RSTAT) &
1565                         IAVF_VFGEN_RSTAT_VFR_STATE_MASK;
1566                 reset = reset >> IAVF_VFGEN_RSTAT_VFR_STATE_SHIFT;
1567                 if (reset == VIRTCHNL_VFR_VFACTIVE ||
1568                     reset == VIRTCHNL_VFR_COMPLETED)
1569                         break;
1570                 rte_delay_ms(20);
1571         }
1572
1573         if (i >= IAVF_RESET_WAIT_CNT)
1574                 return -1;
1575
1576         return 0;
1577 }
1578
1579 static int
1580 iavf_lookup_proto_xtr_type(const char *flex_name)
1581 {
1582         static struct {
1583                 const char *name;
1584                 enum iavf_proto_xtr_type type;
1585         } xtr_type_map[] = {
1586                 { "vlan",      IAVF_PROTO_XTR_VLAN      },
1587                 { "ipv4",      IAVF_PROTO_XTR_IPV4      },
1588                 { "ipv6",      IAVF_PROTO_XTR_IPV6      },
1589                 { "ipv6_flow", IAVF_PROTO_XTR_IPV6_FLOW },
1590                 { "tcp",       IAVF_PROTO_XTR_TCP       },
1591                 { "ip_offset", IAVF_PROTO_XTR_IP_OFFSET },
1592         };
1593         uint32_t i;
1594
1595         for (i = 0; i < RTE_DIM(xtr_type_map); i++) {
1596                 if (strcmp(flex_name, xtr_type_map[i].name) == 0)
1597                         return xtr_type_map[i].type;
1598         }
1599
1600         PMD_DRV_LOG(ERR, "wrong proto_xtr type, "
1601                     "it should be: vlan|ipv4|ipv6|ipv6_flow|tcp|ip_offset");
1602
1603         return -1;
1604 }
1605
1606 /**
1607  * Parse elem, the elem could be single number/range or '(' ')' group
1608  * 1) A single number elem, it's just a simple digit. e.g. 9
1609  * 2) A single range elem, two digits with a '-' between. e.g. 2-6
1610  * 3) A group elem, combines multiple 1) or 2) with '( )'. e.g (0,2-4,6)
1611  *    Within group elem, '-' used for a range separator;
1612  *                       ',' used for a single number.
1613  */
1614 static int
1615 iavf_parse_queue_set(const char *input, int xtr_type,
1616                      struct iavf_devargs *devargs)
1617 {
1618         const char *str = input;
1619         char *end = NULL;
1620         uint32_t min, max;
1621         uint32_t idx;
1622
1623         while (isblank(*str))
1624                 str++;
1625
1626         if (!isdigit(*str) && *str != '(')
1627                 return -1;
1628
1629         /* process single number or single range of number */
1630         if (*str != '(') {
1631                 errno = 0;
1632                 idx = strtoul(str, &end, 10);
1633                 if (errno || !end || idx >= IAVF_MAX_QUEUE_NUM)
1634                         return -1;
1635
1636                 while (isblank(*end))
1637                         end++;
1638
1639                 min = idx;
1640                 max = idx;
1641
1642                 /* process single <number>-<number> */
1643                 if (*end == '-') {
1644                         end++;
1645                         while (isblank(*end))
1646                                 end++;
1647                         if (!isdigit(*end))
1648                                 return -1;
1649
1650                         errno = 0;
1651                         idx = strtoul(end, &end, 10);
1652                         if (errno || !end || idx >= IAVF_MAX_QUEUE_NUM)
1653                                 return -1;
1654
1655                         max = idx;
1656                         while (isblank(*end))
1657                                 end++;
1658                 }
1659
1660                 if (*end != ':')
1661                         return -1;
1662
1663                 for (idx = RTE_MIN(min, max);
1664                      idx <= RTE_MAX(min, max); idx++)
1665                         devargs->proto_xtr[idx] = xtr_type;
1666
1667                 return 0;
1668         }
1669
1670         /* process set within bracket */
1671         str++;
1672         while (isblank(*str))
1673                 str++;
1674         if (*str == '\0')
1675                 return -1;
1676
1677         min = IAVF_MAX_QUEUE_NUM;
1678         do {
1679                 /* go ahead to the first digit */
1680                 while (isblank(*str))
1681                         str++;
1682                 if (!isdigit(*str))
1683                         return -1;
1684
1685                 /* get the digit value */
1686                 errno = 0;
1687                 idx = strtoul(str, &end, 10);
1688                 if (errno || !end || idx >= IAVF_MAX_QUEUE_NUM)
1689                         return -1;
1690
1691                 /* go ahead to separator '-',',' and ')' */
1692                 while (isblank(*end))
1693                         end++;
1694                 if (*end == '-') {
1695                         if (min == IAVF_MAX_QUEUE_NUM)
1696                                 min = idx;
1697                         else /* avoid continuous '-' */
1698                                 return -1;
1699                 } else if (*end == ',' || *end == ')') {
1700                         max = idx;
1701                         if (min == IAVF_MAX_QUEUE_NUM)
1702                                 min = idx;
1703
1704                         for (idx = RTE_MIN(min, max);
1705                              idx <= RTE_MAX(min, max); idx++)
1706                                 devargs->proto_xtr[idx] = xtr_type;
1707
1708                         min = IAVF_MAX_QUEUE_NUM;
1709                 } else {
1710                         return -1;
1711                 }
1712
1713                 str = end + 1;
1714         } while (*end != ')' && *end != '\0');
1715
1716         return 0;
1717 }
1718
1719 static int
1720 iavf_parse_queue_proto_xtr(const char *queues, struct iavf_devargs *devargs)
1721 {
1722         const char *queue_start;
1723         uint32_t idx;
1724         int xtr_type;
1725         char flex_name[32];
1726
1727         while (isblank(*queues))
1728                 queues++;
1729
1730         if (*queues != '[') {
1731                 xtr_type = iavf_lookup_proto_xtr_type(queues);
1732                 if (xtr_type < 0)
1733                         return -1;
1734
1735                 devargs->proto_xtr_dflt = xtr_type;
1736
1737                 return 0;
1738         }
1739
1740         queues++;
1741         do {
1742                 while (isblank(*queues))
1743                         queues++;
1744                 if (*queues == '\0')
1745                         return -1;
1746
1747                 queue_start = queues;
1748
1749                 /* go across a complete bracket */
1750                 if (*queue_start == '(') {
1751                         queues += strcspn(queues, ")");
1752                         if (*queues != ')')
1753                                 return -1;
1754                 }
1755
1756                 /* scan the separator ':' */
1757                 queues += strcspn(queues, ":");
1758                 if (*queues++ != ':')
1759                         return -1;
1760                 while (isblank(*queues))
1761                         queues++;
1762
1763                 for (idx = 0; ; idx++) {
1764                         if (isblank(queues[idx]) ||
1765                             queues[idx] == ',' ||
1766                             queues[idx] == ']' ||
1767                             queues[idx] == '\0')
1768                                 break;
1769
1770                         if (idx > sizeof(flex_name) - 2)
1771                                 return -1;
1772
1773                         flex_name[idx] = queues[idx];
1774                 }
1775                 flex_name[idx] = '\0';
1776                 xtr_type = iavf_lookup_proto_xtr_type(flex_name);
1777                 if (xtr_type < 0)
1778                         return -1;
1779
1780                 queues += idx;
1781
1782                 while (isblank(*queues) || *queues == ',' || *queues == ']')
1783                         queues++;
1784
1785                 if (iavf_parse_queue_set(queue_start, xtr_type, devargs) < 0)
1786                         return -1;
1787         } while (*queues != '\0');
1788
1789         return 0;
1790 }
1791
1792 static int
1793 iavf_handle_proto_xtr_arg(__rte_unused const char *key, const char *value,
1794                           void *extra_args)
1795 {
1796         struct iavf_devargs *devargs = extra_args;
1797
1798         if (!value || !extra_args)
1799                 return -EINVAL;
1800
1801         if (iavf_parse_queue_proto_xtr(value, devargs) < 0) {
1802                 PMD_DRV_LOG(ERR, "the proto_xtr's parameter is wrong : '%s'",
1803                             value);
1804                 return -1;
1805         }
1806
1807         return 0;
1808 }
1809
1810 static int iavf_parse_devargs(struct rte_eth_dev *dev)
1811 {
1812         struct iavf_adapter *ad =
1813                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1814         struct rte_devargs *devargs = dev->device->devargs;
1815         struct rte_kvargs *kvlist;
1816         int ret;
1817
1818         if (!devargs)
1819                 return 0;
1820
1821         kvlist = rte_kvargs_parse(devargs->args, iavf_valid_args);
1822         if (!kvlist) {
1823                 PMD_INIT_LOG(ERR, "invalid kvargs key\n");
1824                 return -EINVAL;
1825         }
1826
1827         ad->devargs.proto_xtr_dflt = IAVF_PROTO_XTR_NONE;
1828         memset(ad->devargs.proto_xtr, IAVF_PROTO_XTR_NONE,
1829                sizeof(ad->devargs.proto_xtr));
1830
1831         ret = rte_kvargs_process(kvlist, IAVF_PROTO_XTR_ARG,
1832                                  &iavf_handle_proto_xtr_arg, &ad->devargs);
1833         if (ret)
1834                 goto bail;
1835
1836 bail:
1837         rte_kvargs_free(kvlist);
1838         return ret;
1839 }
1840
1841 static void
1842 iavf_init_proto_xtr(struct rte_eth_dev *dev)
1843 {
1844         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
1845         struct iavf_adapter *ad =
1846                         IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1847         const struct iavf_proto_xtr_ol *xtr_ol;
1848         bool proto_xtr_enable = false;
1849         int offset;
1850         uint16_t i;
1851
1852         vf->proto_xtr = rte_zmalloc("vf proto xtr",
1853                                     vf->vsi_res->num_queue_pairs, 0);
1854         if (unlikely(!(vf->proto_xtr))) {
1855                 PMD_DRV_LOG(ERR, "no memory for setting up proto_xtr's table");
1856                 return;
1857         }
1858
1859         for (i = 0; i < vf->vsi_res->num_queue_pairs; i++) {
1860                 vf->proto_xtr[i] = ad->devargs.proto_xtr[i] !=
1861                                         IAVF_PROTO_XTR_NONE ?
1862                                         ad->devargs.proto_xtr[i] :
1863                                         ad->devargs.proto_xtr_dflt;
1864
1865                 if (vf->proto_xtr[i] != IAVF_PROTO_XTR_NONE) {
1866                         uint8_t type = vf->proto_xtr[i];
1867
1868                         iavf_proto_xtr_params[type].required = true;
1869                         proto_xtr_enable = true;
1870                 }
1871         }
1872
1873         if (likely(!proto_xtr_enable))
1874                 return;
1875
1876         offset = rte_mbuf_dynfield_register(&iavf_proto_xtr_metadata_param);
1877         if (unlikely(offset == -1)) {
1878                 PMD_DRV_LOG(ERR,
1879                             "failed to extract protocol metadata, error %d",
1880                             -rte_errno);
1881                 return;
1882         }
1883
1884         PMD_DRV_LOG(DEBUG,
1885                     "proto_xtr metadata offset in mbuf is : %d",
1886                     offset);
1887         rte_pmd_ifd_dynfield_proto_xtr_metadata_offs = offset;
1888
1889         for (i = 0; i < RTE_DIM(iavf_proto_xtr_params); i++) {
1890                 xtr_ol = &iavf_proto_xtr_params[i];
1891
1892                 uint8_t rxdid = iavf_proto_xtr_type_to_rxdid((uint8_t)i);
1893
1894                 if (!xtr_ol->required)
1895                         continue;
1896
1897                 if (!(vf->supported_rxdid & BIT(rxdid))) {
1898                         PMD_DRV_LOG(ERR,
1899                                     "rxdid[%u] is not supported in hardware",
1900                                     rxdid);
1901                         rte_pmd_ifd_dynfield_proto_xtr_metadata_offs = -1;
1902                         break;
1903                 }
1904
1905                 offset = rte_mbuf_dynflag_register(&xtr_ol->param);
1906                 if (unlikely(offset == -1)) {
1907                         PMD_DRV_LOG(ERR,
1908                                     "failed to register proto_xtr offload '%s', error %d",
1909                                     xtr_ol->param.name, -rte_errno);
1910
1911                         rte_pmd_ifd_dynfield_proto_xtr_metadata_offs = -1;
1912                         break;
1913                 }
1914
1915                 PMD_DRV_LOG(DEBUG,
1916                             "proto_xtr offload '%s' offset in mbuf is : %d",
1917                             xtr_ol->param.name, offset);
1918                 *xtr_ol->ol_flag = 1ULL << offset;
1919         }
1920 }
1921
1922 static int
1923 iavf_init_vf(struct rte_eth_dev *dev)
1924 {
1925         int err, bufsz;
1926         struct iavf_adapter *adapter =
1927                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
1928         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(dev->data->dev_private);
1929         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
1930
1931         err = iavf_parse_devargs(dev);
1932         if (err) {
1933                 PMD_INIT_LOG(ERR, "Failed to parse devargs");
1934                 goto err;
1935         }
1936
1937         err = iavf_set_mac_type(hw);
1938         if (err) {
1939                 PMD_INIT_LOG(ERR, "set_mac_type failed: %d", err);
1940                 goto err;
1941         }
1942
1943         err = iavf_check_vf_reset_done(hw);
1944         if (err) {
1945                 PMD_INIT_LOG(ERR, "VF is still resetting");
1946                 goto err;
1947         }
1948
1949         iavf_init_adminq_parameter(hw);
1950         err = iavf_init_adminq(hw);
1951         if (err) {
1952                 PMD_INIT_LOG(ERR, "init_adminq failed: %d", err);
1953                 goto err;
1954         }
1955
1956         vf->aq_resp = rte_zmalloc("vf_aq_resp", IAVF_AQ_BUF_SZ, 0);
1957         if (!vf->aq_resp) {
1958                 PMD_INIT_LOG(ERR, "unable to allocate vf_aq_resp memory");
1959                 goto err_aq;
1960         }
1961         if (iavf_check_api_version(adapter) != 0) {
1962                 PMD_INIT_LOG(ERR, "check_api version failed");
1963                 goto err_api;
1964         }
1965
1966         bufsz = sizeof(struct virtchnl_vf_resource) +
1967                 (IAVF_MAX_VF_VSI * sizeof(struct virtchnl_vsi_resource));
1968         vf->vf_res = rte_zmalloc("vf_res", bufsz, 0);
1969         if (!vf->vf_res) {
1970                 PMD_INIT_LOG(ERR, "unable to allocate vf_res memory");
1971                 goto err_api;
1972         }
1973         if (iavf_get_vf_resource(adapter) != 0) {
1974                 PMD_INIT_LOG(ERR, "iavf_get_vf_config failed");
1975                 goto err_alloc;
1976         }
1977         /* Allocate memort for RSS info */
1978         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF) {
1979                 vf->rss_key = rte_zmalloc("rss_key",
1980                                           vf->vf_res->rss_key_size, 0);
1981                 if (!vf->rss_key) {
1982                         PMD_INIT_LOG(ERR, "unable to allocate rss_key memory");
1983                         goto err_rss;
1984                 }
1985                 vf->rss_lut = rte_zmalloc("rss_lut",
1986                                           vf->vf_res->rss_lut_size, 0);
1987                 if (!vf->rss_lut) {
1988                         PMD_INIT_LOG(ERR, "unable to allocate rss_lut memory");
1989                         goto err_rss;
1990                 }
1991         }
1992
1993         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RX_FLEX_DESC) {
1994                 if (iavf_get_supported_rxdid(adapter) != 0) {
1995                         PMD_INIT_LOG(ERR, "failed to do get supported rxdid");
1996                         goto err_rss;
1997                 }
1998         }
1999
2000         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_VLAN_V2) {
2001                 if (iavf_get_vlan_offload_caps_v2(adapter) != 0) {
2002                         PMD_INIT_LOG(ERR, "failed to do get VLAN offload v2 capabilities");
2003                         goto err_rss;
2004                 }
2005         }
2006
2007         iavf_init_proto_xtr(dev);
2008
2009         return 0;
2010 err_rss:
2011         rte_free(vf->rss_key);
2012         rte_free(vf->rss_lut);
2013 err_alloc:
2014         rte_free(vf->vf_res);
2015         vf->vsi_res = NULL;
2016 err_api:
2017         rte_free(vf->aq_resp);
2018 err_aq:
2019         iavf_shutdown_adminq(hw);
2020 err:
2021         return -1;
2022 }
2023
2024 /* Enable default admin queue interrupt setting */
2025 static inline void
2026 iavf_enable_irq0(struct iavf_hw *hw)
2027 {
2028         /* Enable admin queue interrupt trigger */
2029         IAVF_WRITE_REG(hw, IAVF_VFINT_ICR0_ENA1,
2030                        IAVF_VFINT_ICR0_ENA1_ADMINQ_MASK);
2031
2032         IAVF_WRITE_REG(hw, IAVF_VFINT_DYN_CTL01,
2033                        IAVF_VFINT_DYN_CTL01_INTENA_MASK |
2034                        IAVF_VFINT_DYN_CTL01_CLEARPBA_MASK |
2035                        IAVF_VFINT_DYN_CTL01_ITR_INDX_MASK);
2036
2037         IAVF_WRITE_FLUSH(hw);
2038 }
2039
2040 static inline void
2041 iavf_disable_irq0(struct iavf_hw *hw)
2042 {
2043         /* Disable all interrupt types */
2044         IAVF_WRITE_REG(hw, IAVF_VFINT_ICR0_ENA1, 0);
2045         IAVF_WRITE_REG(hw, IAVF_VFINT_DYN_CTL01,
2046                        IAVF_VFINT_DYN_CTL01_ITR_INDX_MASK);
2047         IAVF_WRITE_FLUSH(hw);
2048 }
2049
2050 static void
2051 iavf_dev_interrupt_handler(void *param)
2052 {
2053         struct rte_eth_dev *dev = (struct rte_eth_dev *)param;
2054         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(dev->data->dev_private);
2055
2056         iavf_disable_irq0(hw);
2057
2058         iavf_handle_virtchnl_msg(dev);
2059
2060         iavf_enable_irq0(hw);
2061 }
2062
2063 static int
2064 iavf_dev_filter_ctrl(struct rte_eth_dev *dev,
2065                      enum rte_filter_type filter_type,
2066                      enum rte_filter_op filter_op,
2067                      void *arg)
2068 {
2069         int ret = 0;
2070
2071         if (!dev)
2072                 return -EINVAL;
2073
2074         switch (filter_type) {
2075         case RTE_ETH_FILTER_GENERIC:
2076                 if (filter_op != RTE_ETH_FILTER_GET)
2077                         return -EINVAL;
2078                 *(const void **)arg = &iavf_flow_ops;
2079                 break;
2080         default:
2081                 PMD_DRV_LOG(WARNING, "Filter type (%d) not supported",
2082                             filter_type);
2083                 ret = -EINVAL;
2084                 break;
2085         }
2086
2087         return ret;
2088 }
2089
2090
2091 static int
2092 iavf_dev_init(struct rte_eth_dev *eth_dev)
2093 {
2094         struct iavf_adapter *adapter =
2095                 IAVF_DEV_PRIVATE_TO_ADAPTER(eth_dev->data->dev_private);
2096         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(adapter);
2097         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(eth_dev);
2098         int ret = 0;
2099
2100         PMD_INIT_FUNC_TRACE();
2101
2102         /* assign ops func pointer */
2103         eth_dev->dev_ops = &iavf_eth_dev_ops;
2104         eth_dev->rx_queue_count = iavf_dev_rxq_count;
2105         eth_dev->rx_descriptor_status = iavf_dev_rx_desc_status;
2106         eth_dev->tx_descriptor_status = iavf_dev_tx_desc_status;
2107         eth_dev->rx_pkt_burst = &iavf_recv_pkts;
2108         eth_dev->tx_pkt_burst = &iavf_xmit_pkts;
2109         eth_dev->tx_pkt_prepare = &iavf_prep_pkts;
2110
2111         /* For secondary processes, we don't initialise any further as primary
2112          * has already done this work. Only check if we need a different RX
2113          * and TX function.
2114          */
2115         if (rte_eal_process_type() != RTE_PROC_PRIMARY) {
2116                 iavf_set_rx_function(eth_dev);
2117                 iavf_set_tx_function(eth_dev);
2118                 return 0;
2119         }
2120         rte_eth_copy_pci_info(eth_dev, pci_dev);
2121         eth_dev->data->dev_flags |= RTE_ETH_DEV_AUTOFILL_QUEUE_XSTATS;
2122
2123         hw->vendor_id = pci_dev->id.vendor_id;
2124         hw->device_id = pci_dev->id.device_id;
2125         hw->subsystem_vendor_id = pci_dev->id.subsystem_vendor_id;
2126         hw->subsystem_device_id = pci_dev->id.subsystem_device_id;
2127         hw->bus.bus_id = pci_dev->addr.bus;
2128         hw->bus.device = pci_dev->addr.devid;
2129         hw->bus.func = pci_dev->addr.function;
2130         hw->hw_addr = (void *)pci_dev->mem_resource[0].addr;
2131         hw->back = IAVF_DEV_PRIVATE_TO_ADAPTER(eth_dev->data->dev_private);
2132         adapter->eth_dev = eth_dev;
2133         adapter->stopped = 1;
2134
2135         if (iavf_init_vf(eth_dev) != 0) {
2136                 PMD_INIT_LOG(ERR, "Init vf failed");
2137                 return -1;
2138         }
2139
2140         /* set default ptype table */
2141         adapter->ptype_tbl = iavf_get_default_ptype_table();
2142
2143         /* copy mac addr */
2144         eth_dev->data->mac_addrs = rte_zmalloc(
2145                 "iavf_mac", RTE_ETHER_ADDR_LEN * IAVF_NUM_MACADDR_MAX, 0);
2146         if (!eth_dev->data->mac_addrs) {
2147                 PMD_INIT_LOG(ERR, "Failed to allocate %d bytes needed to"
2148                              " store MAC addresses",
2149                              RTE_ETHER_ADDR_LEN * IAVF_NUM_MACADDR_MAX);
2150                 return -ENOMEM;
2151         }
2152         /* If the MAC address is not configured by host,
2153          * generate a random one.
2154          */
2155         if (!rte_is_valid_assigned_ether_addr(
2156                         (struct rte_ether_addr *)hw->mac.addr))
2157                 rte_eth_random_addr(hw->mac.addr);
2158         rte_ether_addr_copy((struct rte_ether_addr *)hw->mac.addr,
2159                         &eth_dev->data->mac_addrs[0]);
2160
2161         /* register callback func to eal lib */
2162         rte_intr_callback_register(&pci_dev->intr_handle,
2163                                    iavf_dev_interrupt_handler,
2164                                    (void *)eth_dev);
2165
2166         /* enable uio intr after callback register */
2167         rte_intr_enable(&pci_dev->intr_handle);
2168
2169         /* configure and enable device interrupt */
2170         iavf_enable_irq0(hw);
2171
2172         ret = iavf_flow_init(adapter);
2173         if (ret) {
2174                 PMD_INIT_LOG(ERR, "Failed to initialize flow");
2175                 return ret;
2176         }
2177
2178         /* Set hena = 0 to ask PF to cleanup all existing RSS. */
2179         ret = iavf_set_hena(adapter, 0);
2180         if (ret) {
2181                 PMD_DRV_LOG(ERR, "fail to disable default PF RSS");
2182                 return ret;
2183         }
2184
2185         return 0;
2186 }
2187
2188 static int
2189 iavf_dev_close(struct rte_eth_dev *dev)
2190 {
2191         struct iavf_hw *hw = IAVF_DEV_PRIVATE_TO_HW(dev->data->dev_private);
2192         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(dev);
2193         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
2194         struct iavf_adapter *adapter =
2195                 IAVF_DEV_PRIVATE_TO_ADAPTER(dev->data->dev_private);
2196         struct iavf_info *vf = IAVF_DEV_PRIVATE_TO_VF(dev->data->dev_private);
2197         int ret;
2198
2199         if (rte_eal_process_type() != RTE_PROC_PRIMARY)
2200                 return 0;
2201
2202         ret = iavf_dev_stop(dev);
2203
2204         iavf_flow_flush(dev, NULL);
2205         iavf_flow_uninit(adapter);
2206
2207         /*
2208          * disable promiscuous mode before reset vf
2209          * it is a workaround solution when work with kernel driver
2210          * and it is not the normal way
2211          */
2212         if (vf->promisc_unicast_enabled || vf->promisc_multicast_enabled)
2213                 iavf_config_promisc(adapter, false, false);
2214
2215         iavf_shutdown_adminq(hw);
2216         /* disable uio intr before callback unregister */
2217         rte_intr_disable(intr_handle);
2218
2219         /* unregister callback func from eal lib */
2220         rte_intr_callback_unregister(intr_handle,
2221                                      iavf_dev_interrupt_handler, dev);
2222         iavf_disable_irq0(hw);
2223
2224         if (vf->vf_res->vf_cap_flags & VIRTCHNL_VF_OFFLOAD_RSS_PF) {
2225                 if (vf->rss_lut) {
2226                         rte_free(vf->rss_lut);
2227                         vf->rss_lut = NULL;
2228                 }
2229                 if (vf->rss_key) {
2230                         rte_free(vf->rss_key);
2231                         vf->rss_key = NULL;
2232                 }
2233         }
2234
2235         rte_free(vf->vf_res);
2236         vf->vsi_res = NULL;
2237         vf->vf_res = NULL;
2238
2239         rte_free(vf->aq_resp);
2240         vf->aq_resp = NULL;
2241
2242         vf->vf_reset = false;
2243
2244         return ret;
2245 }
2246
2247 static int
2248 iavf_dev_uninit(struct rte_eth_dev *dev)
2249 {
2250         if (rte_eal_process_type() != RTE_PROC_PRIMARY)
2251                 return -EPERM;
2252
2253         iavf_dev_close(dev);
2254
2255         return 0;
2256 }
2257
2258 /*
2259  * Reset VF device only to re-initialize resources in PMD layer
2260  */
2261 static int
2262 iavf_dev_reset(struct rte_eth_dev *dev)
2263 {
2264         int ret;
2265
2266         ret = iavf_dev_uninit(dev);
2267         if (ret)
2268                 return ret;
2269
2270         return iavf_dev_init(dev);
2271 }
2272
2273 static int
2274 iavf_dcf_cap_check_handler(__rte_unused const char *key,
2275                            const char *value, __rte_unused void *opaque)
2276 {
2277         if (strcmp(value, "dcf"))
2278                 return -1;
2279
2280         return 0;
2281 }
2282
2283 static int
2284 iavf_dcf_cap_selected(struct rte_devargs *devargs)
2285 {
2286         struct rte_kvargs *kvlist;
2287         const char *key = "cap";
2288         int ret = 0;
2289
2290         if (devargs == NULL)
2291                 return 0;
2292
2293         kvlist = rte_kvargs_parse(devargs->args, NULL);
2294         if (kvlist == NULL)
2295                 return 0;
2296
2297         if (!rte_kvargs_count(kvlist, key))
2298                 goto exit;
2299
2300         /* dcf capability selected when there's a key-value pair: cap=dcf */
2301         if (rte_kvargs_process(kvlist, key,
2302                                iavf_dcf_cap_check_handler, NULL) < 0)
2303                 goto exit;
2304
2305         ret = 1;
2306
2307 exit:
2308         rte_kvargs_free(kvlist);
2309         return ret;
2310 }
2311
2312 static int eth_iavf_pci_probe(struct rte_pci_driver *pci_drv __rte_unused,
2313                              struct rte_pci_device *pci_dev)
2314 {
2315         if (iavf_dcf_cap_selected(pci_dev->device.devargs))
2316                 return 1;
2317
2318         return rte_eth_dev_pci_generic_probe(pci_dev,
2319                 sizeof(struct iavf_adapter), iavf_dev_init);
2320 }
2321
2322 static int eth_iavf_pci_remove(struct rte_pci_device *pci_dev)
2323 {
2324         return rte_eth_dev_pci_generic_remove(pci_dev, iavf_dev_uninit);
2325 }
2326
2327 /* Adaptive virtual function driver struct */
2328 static struct rte_pci_driver rte_iavf_pmd = {
2329         .id_table = pci_id_iavf_map,
2330         .drv_flags = RTE_PCI_DRV_NEED_MAPPING | RTE_PCI_DRV_INTR_LSC,
2331         .probe = eth_iavf_pci_probe,
2332         .remove = eth_iavf_pci_remove,
2333 };
2334
2335 RTE_PMD_REGISTER_PCI(net_iavf, rte_iavf_pmd);
2336 RTE_PMD_REGISTER_PCI_TABLE(net_iavf, pci_id_iavf_map);
2337 RTE_PMD_REGISTER_KMOD_DEP(net_iavf, "* igb_uio | vfio-pci");
2338 RTE_PMD_REGISTER_PARAM_STRING(net_iavf, "cap=dcf");
2339 RTE_LOG_REGISTER(iavf_logtype_init, pmd.net.iavf.init, NOTICE);
2340 RTE_LOG_REGISTER(iavf_logtype_driver, pmd.net.iavf.driver, NOTICE);
2341 #ifdef RTE_LIBRTE_IAVF_DEBUG_RX
2342 RTE_LOG_REGISTER(iavf_logtype_rx, pmd.net.iavf.rx, DEBUG);
2343 #endif
2344 #ifdef RTE_LIBRTE_IAVF_DEBUG_TX
2345 RTE_LOG_REGISTER(iavf_logtype_tx, pmd.net.iavf.tx, DEBUG);
2346 #endif
2347 #ifdef RTE_LIBRTE_IAVF_DEBUG_TX_FREE
2348 RTE_LOG_REGISTER(iavf_logtype_tx_free, pmd.net.iavf.tx_free, DEBUG);
2349 #endif