net/bnxt: remove commented out code
[dpdk.git] / drivers / net / bnxt / bnxt_ethdev.c
1 /* SPDX-License-Identifier: BSD-3-Clause
2  * Copyright(c) 2014-2018 Broadcom
3  * All rights reserved.
4  */
5
6 #include <inttypes.h>
7 #include <stdbool.h>
8
9 #include <rte_dev.h>
10 #include <rte_ethdev_driver.h>
11 #include <rte_ethdev_pci.h>
12 #include <rte_malloc.h>
13 #include <rte_cycles.h>
14 #include <rte_alarm.h>
15
16 #include "bnxt.h"
17 #include "bnxt_filter.h"
18 #include "bnxt_hwrm.h"
19 #include "bnxt_irq.h"
20 #include "bnxt_ring.h"
21 #include "bnxt_rxq.h"
22 #include "bnxt_rxr.h"
23 #include "bnxt_stats.h"
24 #include "bnxt_txq.h"
25 #include "bnxt_txr.h"
26 #include "bnxt_vnic.h"
27 #include "hsi_struct_def_dpdk.h"
28 #include "bnxt_nvm_defs.h"
29
30 #define DRV_MODULE_NAME         "bnxt"
31 static const char bnxt_version[] =
32         "Broadcom NetXtreme driver " DRV_MODULE_NAME;
33 int bnxt_logtype_driver;
34
35 /*
36  * The set of PCI devices this driver supports
37  */
38 static const struct rte_pci_id bnxt_pci_id_map[] = {
39         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM,
40                          BROADCOM_DEV_ID_STRATUS_NIC_VF1) },
41         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM,
42                          BROADCOM_DEV_ID_STRATUS_NIC_VF2) },
43         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_STRATUS_NIC) },
44         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57414_VF) },
45         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57301) },
46         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57302) },
47         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57304_PF) },
48         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57304_VF) },
49         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_NS2) },
50         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57402) },
51         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57404) },
52         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57406_PF) },
53         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57406_VF) },
54         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57402_MF) },
55         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57407_RJ45) },
56         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57404_MF) },
57         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57406_MF) },
58         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57407_SFP) },
59         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57407_MF) },
60         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_5741X_VF) },
61         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_5731X_VF) },
62         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57314) },
63         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57417_MF) },
64         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57311) },
65         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57312) },
66         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57412) },
67         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57414) },
68         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57416_RJ45) },
69         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57417_RJ45) },
70         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57412_MF) },
71         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57317_RJ45) },
72         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57417_SFP) },
73         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57416_SFP) },
74         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57317_SFP) },
75         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57414_MF) },
76         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57416_MF) },
77         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_58802) },
78         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_58804) },
79         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_58808) },
80         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_58802_VF) },
81         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57508) },
82         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57504) },
83         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57502) },
84         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57500_VF1) },
85         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57500_VF2) },
86         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57508_MF1) },
87         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57504_MF1) },
88         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57502_MF1) },
89         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57508_MF2) },
90         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57504_MF2) },
91         { RTE_PCI_DEVICE(PCI_VENDOR_ID_BROADCOM, BROADCOM_DEV_ID_57502_MF2) },
92         { .vendor_id = 0, /* sentinel */ },
93 };
94
95 #define BNXT_ETH_RSS_SUPPORT (  \
96         ETH_RSS_IPV4 |          \
97         ETH_RSS_NONFRAG_IPV4_TCP |      \
98         ETH_RSS_NONFRAG_IPV4_UDP |      \
99         ETH_RSS_IPV6 |          \
100         ETH_RSS_NONFRAG_IPV6_TCP |      \
101         ETH_RSS_NONFRAG_IPV6_UDP)
102
103 #define BNXT_DEV_TX_OFFLOAD_SUPPORT (DEV_TX_OFFLOAD_VLAN_INSERT | \
104                                      DEV_TX_OFFLOAD_IPV4_CKSUM | \
105                                      DEV_TX_OFFLOAD_TCP_CKSUM | \
106                                      DEV_TX_OFFLOAD_UDP_CKSUM | \
107                                      DEV_TX_OFFLOAD_TCP_TSO | \
108                                      DEV_TX_OFFLOAD_OUTER_IPV4_CKSUM | \
109                                      DEV_TX_OFFLOAD_VXLAN_TNL_TSO | \
110                                      DEV_TX_OFFLOAD_GRE_TNL_TSO | \
111                                      DEV_TX_OFFLOAD_IPIP_TNL_TSO | \
112                                      DEV_TX_OFFLOAD_GENEVE_TNL_TSO | \
113                                      DEV_TX_OFFLOAD_QINQ_INSERT | \
114                                      DEV_TX_OFFLOAD_MULTI_SEGS)
115
116 #define BNXT_DEV_RX_OFFLOAD_SUPPORT (DEV_RX_OFFLOAD_VLAN_FILTER | \
117                                      DEV_RX_OFFLOAD_VLAN_STRIP | \
118                                      DEV_RX_OFFLOAD_IPV4_CKSUM | \
119                                      DEV_RX_OFFLOAD_UDP_CKSUM | \
120                                      DEV_RX_OFFLOAD_TCP_CKSUM | \
121                                      DEV_RX_OFFLOAD_OUTER_IPV4_CKSUM | \
122                                      DEV_RX_OFFLOAD_JUMBO_FRAME | \
123                                      DEV_RX_OFFLOAD_KEEP_CRC | \
124                                      DEV_RX_OFFLOAD_VLAN_EXTEND | \
125                                      DEV_RX_OFFLOAD_TCP_LRO | \
126                                      DEV_RX_OFFLOAD_SCATTER)
127
128 static int bnxt_vlan_offload_set_op(struct rte_eth_dev *dev, int mask);
129 static void bnxt_print_link_info(struct rte_eth_dev *eth_dev);
130 static int bnxt_dev_uninit(struct rte_eth_dev *eth_dev);
131 static int bnxt_init_resources(struct bnxt *bp, bool reconfig_dev);
132 static int bnxt_uninit_resources(struct bnxt *bp, bool reconfig_dev);
133 static void bnxt_cancel_fw_health_check(struct bnxt *bp);
134
135 int is_bnxt_in_error(struct bnxt *bp)
136 {
137         if (bp->flags & BNXT_FLAG_FATAL_ERROR)
138                 return -EIO;
139         if (bp->flags & BNXT_FLAG_FW_RESET)
140                 return -EBUSY;
141
142         return 0;
143 }
144
145 /***********************/
146
147 /*
148  * High level utility functions
149  */
150
151 uint16_t bnxt_rss_ctxts(const struct bnxt *bp)
152 {
153         if (!BNXT_CHIP_THOR(bp))
154                 return 1;
155
156         return RTE_ALIGN_MUL_CEIL(bp->rx_nr_rings,
157                                   BNXT_RSS_ENTRIES_PER_CTX_THOR) /
158                                     BNXT_RSS_ENTRIES_PER_CTX_THOR;
159 }
160
161 static uint16_t  bnxt_rss_hash_tbl_size(const struct bnxt *bp)
162 {
163         if (!BNXT_CHIP_THOR(bp))
164                 return HW_HASH_INDEX_SIZE;
165
166         return bnxt_rss_ctxts(bp) * BNXT_RSS_ENTRIES_PER_CTX_THOR;
167 }
168
169 static void bnxt_free_mem(struct bnxt *bp, bool reconfig)
170 {
171         bnxt_free_filter_mem(bp);
172         bnxt_free_vnic_attributes(bp);
173         bnxt_free_vnic_mem(bp);
174
175         /* tx/rx rings are configured as part of *_queue_setup callbacks.
176          * If the number of rings change across fw update,
177          * we don't have much choice except to warn the user.
178          */
179         if (!reconfig) {
180                 bnxt_free_stats(bp);
181                 bnxt_free_tx_rings(bp);
182                 bnxt_free_rx_rings(bp);
183         }
184         bnxt_free_async_cp_ring(bp);
185         bnxt_free_rxtx_nq_ring(bp);
186
187         rte_free(bp->grp_info);
188         bp->grp_info = NULL;
189 }
190
191 static int bnxt_alloc_mem(struct bnxt *bp, bool reconfig)
192 {
193         int rc;
194
195         rc = bnxt_alloc_ring_grps(bp);
196         if (rc)
197                 goto alloc_mem_err;
198
199         rc = bnxt_alloc_async_ring_struct(bp);
200         if (rc)
201                 goto alloc_mem_err;
202
203         rc = bnxt_alloc_vnic_mem(bp);
204         if (rc)
205                 goto alloc_mem_err;
206
207         rc = bnxt_alloc_vnic_attributes(bp);
208         if (rc)
209                 goto alloc_mem_err;
210
211         rc = bnxt_alloc_filter_mem(bp);
212         if (rc)
213                 goto alloc_mem_err;
214
215         rc = bnxt_alloc_async_cp_ring(bp);
216         if (rc)
217                 goto alloc_mem_err;
218
219         rc = bnxt_alloc_rxtx_nq_ring(bp);
220         if (rc)
221                 goto alloc_mem_err;
222
223         return 0;
224
225 alloc_mem_err:
226         bnxt_free_mem(bp, reconfig);
227         return rc;
228 }
229
230 static int bnxt_init_chip(struct bnxt *bp)
231 {
232         struct bnxt_rx_queue *rxq;
233         struct rte_eth_link new;
234         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(bp->eth_dev);
235         struct rte_eth_conf *dev_conf = &bp->eth_dev->data->dev_conf;
236         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
237         uint64_t rx_offloads = dev_conf->rxmode.offloads;
238         uint32_t intr_vector = 0;
239         uint32_t queue_id, base = BNXT_MISC_VEC_ID;
240         uint32_t vec = BNXT_MISC_VEC_ID;
241         unsigned int i, j;
242         int rc;
243
244         if (bp->eth_dev->data->mtu > RTE_ETHER_MTU) {
245                 bp->eth_dev->data->dev_conf.rxmode.offloads |=
246                         DEV_RX_OFFLOAD_JUMBO_FRAME;
247                 bp->flags |= BNXT_FLAG_JUMBO;
248         } else {
249                 bp->eth_dev->data->dev_conf.rxmode.offloads &=
250                         ~DEV_RX_OFFLOAD_JUMBO_FRAME;
251                 bp->flags &= ~BNXT_FLAG_JUMBO;
252         }
253
254         /* THOR does not support ring groups.
255          * But we will use the array to save RSS context IDs.
256          */
257         if (BNXT_CHIP_THOR(bp))
258                 bp->max_ring_grps = BNXT_MAX_RSS_CTXTS_THOR;
259
260         rc = bnxt_alloc_all_hwrm_stat_ctxs(bp);
261         if (rc) {
262                 PMD_DRV_LOG(ERR, "HWRM stat ctx alloc failure rc: %x\n", rc);
263                 goto err_out;
264         }
265
266         rc = bnxt_alloc_hwrm_rings(bp);
267         if (rc) {
268                 PMD_DRV_LOG(ERR, "HWRM ring alloc failure rc: %x\n", rc);
269                 goto err_out;
270         }
271
272         rc = bnxt_alloc_all_hwrm_ring_grps(bp);
273         if (rc) {
274                 PMD_DRV_LOG(ERR, "HWRM ring grp alloc failure: %x\n", rc);
275                 goto err_out;
276         }
277
278         if (!(bp->vnic_cap_flags & BNXT_VNIC_CAP_COS_CLASSIFY))
279                 goto skip_cosq_cfg;
280
281         for (j = 0, i = 0; i < BNXT_COS_QUEUE_COUNT; i++) {
282                 if (bp->rx_cos_queue[i].id != 0xff) {
283                         struct bnxt_vnic_info *vnic = &bp->vnic_info[j++];
284
285                         if (!vnic) {
286                                 PMD_DRV_LOG(ERR,
287                                             "Num pools more than FW profile\n");
288                                 rc = -EINVAL;
289                                 goto err_out;
290                         }
291                         vnic->cos_queue_id = bp->rx_cos_queue[i].id;
292                         bp->rx_cosq_cnt++;
293                 }
294         }
295
296 skip_cosq_cfg:
297         rc = bnxt_mq_rx_configure(bp);
298         if (rc) {
299                 PMD_DRV_LOG(ERR, "MQ mode configure failure rc: %x\n", rc);
300                 goto err_out;
301         }
302
303         /* VNIC configuration */
304         for (i = 0; i < bp->nr_vnics; i++) {
305                 struct rte_eth_conf *dev_conf = &bp->eth_dev->data->dev_conf;
306                 struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
307
308                 rc = bnxt_vnic_grp_alloc(bp, vnic);
309                 if (rc)
310                         goto err_out;
311
312                 PMD_DRV_LOG(DEBUG, "vnic[%d] = %p vnic->fw_grp_ids = %p\n",
313                             i, vnic, vnic->fw_grp_ids);
314
315                 rc = bnxt_hwrm_vnic_alloc(bp, vnic);
316                 if (rc) {
317                         PMD_DRV_LOG(ERR, "HWRM vnic %d alloc failure rc: %x\n",
318                                 i, rc);
319                         goto err_out;
320                 }
321
322                 /* Alloc RSS context only if RSS mode is enabled */
323                 if (dev_conf->rxmode.mq_mode & ETH_MQ_RX_RSS) {
324                         int j, nr_ctxs = bnxt_rss_ctxts(bp);
325
326                         rc = 0;
327                         for (j = 0; j < nr_ctxs; j++) {
328                                 rc = bnxt_hwrm_vnic_ctx_alloc(bp, vnic, j);
329                                 if (rc)
330                                         break;
331                         }
332                         if (rc) {
333                                 PMD_DRV_LOG(ERR,
334                                   "HWRM vnic %d ctx %d alloc failure rc: %x\n",
335                                   i, j, rc);
336                                 goto err_out;
337                         }
338                         vnic->num_lb_ctxts = nr_ctxs;
339                 }
340
341                 /*
342                  * Firmware sets pf pair in default vnic cfg. If the VLAN strip
343                  * setting is not available at this time, it will not be
344                  * configured correctly in the CFA.
345                  */
346                 if (rx_offloads & DEV_RX_OFFLOAD_VLAN_STRIP)
347                         vnic->vlan_strip = true;
348                 else
349                         vnic->vlan_strip = false;
350
351                 rc = bnxt_hwrm_vnic_cfg(bp, vnic);
352                 if (rc) {
353                         PMD_DRV_LOG(ERR, "HWRM vnic %d cfg failure rc: %x\n",
354                                 i, rc);
355                         goto err_out;
356                 }
357
358                 rc = bnxt_set_hwrm_vnic_filters(bp, vnic);
359                 if (rc) {
360                         PMD_DRV_LOG(ERR,
361                                 "HWRM vnic %d filter failure rc: %x\n",
362                                 i, rc);
363                         goto err_out;
364                 }
365
366                 for (j = 0; j < bp->rx_num_qs_per_vnic; j++) {
367                         rxq = bp->eth_dev->data->rx_queues[j];
368
369                         PMD_DRV_LOG(DEBUG,
370                                     "rxq[%d]->vnic=%p vnic->fw_grp_ids=%p\n",
371                                     j, rxq->vnic, rxq->vnic->fw_grp_ids);
372
373                         if (BNXT_HAS_RING_GRPS(bp) && rxq->rx_deferred_start)
374                                 rxq->vnic->fw_grp_ids[j] = INVALID_HW_RING_ID;
375                 }
376
377                 rc = bnxt_vnic_rss_configure(bp, vnic);
378                 if (rc) {
379                         PMD_DRV_LOG(ERR,
380                                     "HWRM vnic set RSS failure rc: %x\n", rc);
381                         goto err_out;
382                 }
383
384                 bnxt_hwrm_vnic_plcmode_cfg(bp, vnic);
385
386                 if (bp->eth_dev->data->dev_conf.rxmode.offloads &
387                     DEV_RX_OFFLOAD_TCP_LRO)
388                         bnxt_hwrm_vnic_tpa_cfg(bp, vnic, 1);
389                 else
390                         bnxt_hwrm_vnic_tpa_cfg(bp, vnic, 0);
391         }
392         rc = bnxt_hwrm_cfa_l2_set_rx_mask(bp, &bp->vnic_info[0], 0, NULL);
393         if (rc) {
394                 PMD_DRV_LOG(ERR,
395                         "HWRM cfa l2 rx mask failure rc: %x\n", rc);
396                 goto err_out;
397         }
398
399         /* check and configure queue intr-vector mapping */
400         if ((rte_intr_cap_multiple(intr_handle) ||
401              !RTE_ETH_DEV_SRIOV(bp->eth_dev).active) &&
402             bp->eth_dev->data->dev_conf.intr_conf.rxq != 0) {
403                 intr_vector = bp->eth_dev->data->nb_rx_queues;
404                 PMD_DRV_LOG(DEBUG, "intr_vector = %d\n", intr_vector);
405                 if (intr_vector > bp->rx_cp_nr_rings) {
406                         PMD_DRV_LOG(ERR, "At most %d intr queues supported",
407                                         bp->rx_cp_nr_rings);
408                         return -ENOTSUP;
409                 }
410                 rc = rte_intr_efd_enable(intr_handle, intr_vector);
411                 if (rc)
412                         return rc;
413         }
414
415         if (rte_intr_dp_is_en(intr_handle) && !intr_handle->intr_vec) {
416                 intr_handle->intr_vec =
417                         rte_zmalloc("intr_vec",
418                                     bp->eth_dev->data->nb_rx_queues *
419                                     sizeof(int), 0);
420                 if (intr_handle->intr_vec == NULL) {
421                         PMD_DRV_LOG(ERR, "Failed to allocate %d rx_queues"
422                                 " intr_vec", bp->eth_dev->data->nb_rx_queues);
423                         rc = -ENOMEM;
424                         goto err_disable;
425                 }
426                 PMD_DRV_LOG(DEBUG, "intr_handle->intr_vec = %p "
427                         "intr_handle->nb_efd = %d intr_handle->max_intr = %d\n",
428                          intr_handle->intr_vec, intr_handle->nb_efd,
429                         intr_handle->max_intr);
430                 for (queue_id = 0; queue_id < bp->eth_dev->data->nb_rx_queues;
431                      queue_id++) {
432                         intr_handle->intr_vec[queue_id] =
433                                                         vec + BNXT_RX_VEC_START;
434                         if (vec < base + intr_handle->nb_efd - 1)
435                                 vec++;
436                 }
437         }
438
439         /* enable uio/vfio intr/eventfd mapping */
440         rc = rte_intr_enable(intr_handle);
441         if (rc)
442                 goto err_free;
443
444         rc = bnxt_get_hwrm_link_config(bp, &new);
445         if (rc) {
446                 PMD_DRV_LOG(ERR, "HWRM Get link config failure rc: %x\n", rc);
447                 goto err_free;
448         }
449
450         if (!bp->link_info.link_up) {
451                 rc = bnxt_set_hwrm_link_config(bp, true);
452                 if (rc) {
453                         PMD_DRV_LOG(ERR,
454                                 "HWRM link config failure rc: %x\n", rc);
455                         goto err_free;
456                 }
457         }
458         bnxt_print_link_info(bp->eth_dev);
459
460         return 0;
461
462 err_free:
463         rte_free(intr_handle->intr_vec);
464 err_disable:
465         rte_intr_efd_disable(intr_handle);
466 err_out:
467         /* Some of the error status returned by FW may not be from errno.h */
468         if (rc > 0)
469                 rc = -EIO;
470
471         return rc;
472 }
473
474 static int bnxt_shutdown_nic(struct bnxt *bp)
475 {
476         bnxt_free_all_hwrm_resources(bp);
477         bnxt_free_all_filters(bp);
478         bnxt_free_all_vnics(bp);
479         return 0;
480 }
481
482 static int bnxt_init_nic(struct bnxt *bp)
483 {
484         int rc;
485
486         if (BNXT_HAS_RING_GRPS(bp)) {
487                 rc = bnxt_init_ring_grps(bp);
488                 if (rc)
489                         return rc;
490         }
491
492         bnxt_init_vnics(bp);
493         bnxt_init_filters(bp);
494
495         return 0;
496 }
497
498 /*
499  * Device configuration and status function
500  */
501
502 static int bnxt_dev_info_get_op(struct rte_eth_dev *eth_dev,
503                                 struct rte_eth_dev_info *dev_info)
504 {
505         struct rte_pci_device *pdev = RTE_DEV_TO_PCI(eth_dev->device);
506         struct bnxt *bp = eth_dev->data->dev_private;
507         uint16_t max_vnics, i, j, vpool, vrxq;
508         unsigned int max_rx_rings;
509         int rc;
510
511         rc = is_bnxt_in_error(bp);
512         if (rc)
513                 return rc;
514
515         /* MAC Specifics */
516         dev_info->max_mac_addrs = bp->max_l2_ctx;
517         dev_info->max_hash_mac_addrs = 0;
518
519         /* PF/VF specifics */
520         if (BNXT_PF(bp))
521                 dev_info->max_vfs = pdev->max_vfs;
522
523         max_rx_rings = RTE_MIN(bp->max_rx_rings, bp->max_stat_ctx);
524         /* For the sake of symmetry, max_rx_queues = max_tx_queues */
525         dev_info->max_rx_queues = max_rx_rings;
526         dev_info->max_tx_queues = max_rx_rings;
527         dev_info->reta_size = bnxt_rss_hash_tbl_size(bp);
528         dev_info->hash_key_size = 40;
529         max_vnics = bp->max_vnics;
530
531         /* MTU specifics */
532         dev_info->min_mtu = RTE_ETHER_MIN_MTU;
533         dev_info->max_mtu = BNXT_MAX_MTU;
534
535         /* Fast path specifics */
536         dev_info->min_rx_bufsize = 1;
537         dev_info->max_rx_pktlen = BNXT_MAX_PKT_LEN;
538
539         dev_info->rx_offload_capa = BNXT_DEV_RX_OFFLOAD_SUPPORT;
540         if (bp->flags & BNXT_FLAG_PTP_SUPPORTED)
541                 dev_info->rx_offload_capa |= DEV_RX_OFFLOAD_TIMESTAMP;
542         dev_info->tx_offload_capa = BNXT_DEV_TX_OFFLOAD_SUPPORT;
543         dev_info->flow_type_rss_offloads = BNXT_ETH_RSS_SUPPORT;
544
545         /* *INDENT-OFF* */
546         dev_info->default_rxconf = (struct rte_eth_rxconf) {
547                 .rx_thresh = {
548                         .pthresh = 8,
549                         .hthresh = 8,
550                         .wthresh = 0,
551                 },
552                 .rx_free_thresh = 32,
553                 /* If no descriptors available, pkts are dropped by default */
554                 .rx_drop_en = 1,
555         };
556
557         dev_info->default_txconf = (struct rte_eth_txconf) {
558                 .tx_thresh = {
559                         .pthresh = 32,
560                         .hthresh = 0,
561                         .wthresh = 0,
562                 },
563                 .tx_free_thresh = 32,
564                 .tx_rs_thresh = 32,
565         };
566         eth_dev->data->dev_conf.intr_conf.lsc = 1;
567
568         eth_dev->data->dev_conf.intr_conf.rxq = 1;
569         dev_info->rx_desc_lim.nb_min = BNXT_MIN_RING_DESC;
570         dev_info->rx_desc_lim.nb_max = BNXT_MAX_RX_RING_DESC;
571         dev_info->tx_desc_lim.nb_min = BNXT_MIN_RING_DESC;
572         dev_info->tx_desc_lim.nb_max = BNXT_MAX_TX_RING_DESC;
573
574         /* *INDENT-ON* */
575
576         /*
577          * TODO: default_rxconf, default_txconf, rx_desc_lim, and tx_desc_lim
578          *       need further investigation.
579          */
580
581         /* VMDq resources */
582         vpool = 64; /* ETH_64_POOLS */
583         vrxq = 128; /* ETH_VMDQ_DCB_NUM_QUEUES */
584         for (i = 0; i < 4; vpool >>= 1, i++) {
585                 if (max_vnics > vpool) {
586                         for (j = 0; j < 5; vrxq >>= 1, j++) {
587                                 if (dev_info->max_rx_queues > vrxq) {
588                                         if (vpool > vrxq)
589                                                 vpool = vrxq;
590                                         goto found;
591                                 }
592                         }
593                         /* Not enough resources to support VMDq */
594                         break;
595                 }
596         }
597         /* Not enough resources to support VMDq */
598         vpool = 0;
599         vrxq = 0;
600 found:
601         dev_info->max_vmdq_pools = vpool;
602         dev_info->vmdq_queue_num = vrxq;
603
604         dev_info->vmdq_pool_base = 0;
605         dev_info->vmdq_queue_base = 0;
606
607         return 0;
608 }
609
610 /* Configure the device based on the configuration provided */
611 static int bnxt_dev_configure_op(struct rte_eth_dev *eth_dev)
612 {
613         struct bnxt *bp = eth_dev->data->dev_private;
614         uint64_t rx_offloads = eth_dev->data->dev_conf.rxmode.offloads;
615         int rc;
616
617         bp->rx_queues = (void *)eth_dev->data->rx_queues;
618         bp->tx_queues = (void *)eth_dev->data->tx_queues;
619         bp->tx_nr_rings = eth_dev->data->nb_tx_queues;
620         bp->rx_nr_rings = eth_dev->data->nb_rx_queues;
621
622         rc = is_bnxt_in_error(bp);
623         if (rc)
624                 return rc;
625
626         if (BNXT_VF(bp) && (bp->flags & BNXT_FLAG_NEW_RM)) {
627                 rc = bnxt_hwrm_check_vf_rings(bp);
628                 if (rc) {
629                         PMD_DRV_LOG(ERR, "HWRM insufficient resources\n");
630                         return -ENOSPC;
631                 }
632
633                 /* If a resource has already been allocated - in this case
634                  * it is the async completion ring, free it. Reallocate it after
635                  * resource reservation. This will ensure the resource counts
636                  * are calculated correctly.
637                  */
638
639                 pthread_mutex_lock(&bp->def_cp_lock);
640
641                 if (!BNXT_HAS_NQ(bp) && bp->async_cp_ring) {
642                         bnxt_disable_int(bp);
643                         bnxt_free_cp_ring(bp, bp->async_cp_ring);
644                 }
645
646                 rc = bnxt_hwrm_func_reserve_vf_resc(bp, false);
647                 if (rc) {
648                         PMD_DRV_LOG(ERR, "HWRM resource alloc fail:%x\n", rc);
649                         pthread_mutex_unlock(&bp->def_cp_lock);
650                         return -ENOSPC;
651                 }
652
653                 if (!BNXT_HAS_NQ(bp) && bp->async_cp_ring) {
654                         rc = bnxt_alloc_async_cp_ring(bp);
655                         if (rc) {
656                                 pthread_mutex_unlock(&bp->def_cp_lock);
657                                 return rc;
658                         }
659                         bnxt_enable_int(bp);
660                 }
661
662                 pthread_mutex_unlock(&bp->def_cp_lock);
663         } else {
664                 /* legacy driver needs to get updated values */
665                 rc = bnxt_hwrm_func_qcaps(bp);
666                 if (rc) {
667                         PMD_DRV_LOG(ERR, "hwrm func qcaps fail:%d\n", rc);
668                         return rc;
669                 }
670         }
671
672         /* Inherit new configurations */
673         if (eth_dev->data->nb_rx_queues > bp->max_rx_rings ||
674             eth_dev->data->nb_tx_queues > bp->max_tx_rings ||
675             eth_dev->data->nb_rx_queues + eth_dev->data->nb_tx_queues
676                 + BNXT_NUM_ASYNC_CPR(bp) > bp->max_cp_rings ||
677             eth_dev->data->nb_rx_queues + eth_dev->data->nb_tx_queues >
678             bp->max_stat_ctx)
679                 goto resource_error;
680
681         if (BNXT_HAS_RING_GRPS(bp) &&
682             (uint32_t)(eth_dev->data->nb_rx_queues) > bp->max_ring_grps)
683                 goto resource_error;
684
685         if (!(eth_dev->data->dev_conf.rxmode.mq_mode & ETH_MQ_RX_RSS) &&
686             bp->max_vnics < eth_dev->data->nb_rx_queues)
687                 goto resource_error;
688
689         bp->rx_cp_nr_rings = bp->rx_nr_rings;
690         bp->tx_cp_nr_rings = bp->tx_nr_rings;
691
692         if (rx_offloads & DEV_RX_OFFLOAD_JUMBO_FRAME) {
693                 eth_dev->data->mtu =
694                         eth_dev->data->dev_conf.rxmode.max_rx_pkt_len -
695                         RTE_ETHER_HDR_LEN - RTE_ETHER_CRC_LEN - VLAN_TAG_SIZE *
696                         BNXT_NUM_VLANS;
697                 bnxt_mtu_set_op(eth_dev, eth_dev->data->mtu);
698         }
699         return 0;
700
701 resource_error:
702         PMD_DRV_LOG(ERR,
703                     "Insufficient resources to support requested config\n");
704         PMD_DRV_LOG(ERR,
705                     "Num Queues Requested: Tx %d, Rx %d\n",
706                     eth_dev->data->nb_tx_queues,
707                     eth_dev->data->nb_rx_queues);
708         PMD_DRV_LOG(ERR,
709                     "MAX: TxQ %d, RxQ %d, CQ %d Stat %d, Grp %d, Vnic %d\n",
710                     bp->max_tx_rings, bp->max_rx_rings, bp->max_cp_rings,
711                     bp->max_stat_ctx, bp->max_ring_grps, bp->max_vnics);
712         return -ENOSPC;
713 }
714
715 static void bnxt_print_link_info(struct rte_eth_dev *eth_dev)
716 {
717         struct rte_eth_link *link = &eth_dev->data->dev_link;
718
719         if (link->link_status)
720                 PMD_DRV_LOG(INFO, "Port %d Link Up - speed %u Mbps - %s\n",
721                         eth_dev->data->port_id,
722                         (uint32_t)link->link_speed,
723                         (link->link_duplex == ETH_LINK_FULL_DUPLEX) ?
724                         ("full-duplex") : ("half-duplex\n"));
725         else
726                 PMD_DRV_LOG(INFO, "Port %d Link Down\n",
727                         eth_dev->data->port_id);
728 }
729
730 /*
731  * Determine whether the current configuration requires support for scattered
732  * receive; return 1 if scattered receive is required and 0 if not.
733  */
734 static int bnxt_scattered_rx(struct rte_eth_dev *eth_dev)
735 {
736         uint16_t buf_size;
737         int i;
738
739         if (eth_dev->data->dev_conf.rxmode.offloads & DEV_RX_OFFLOAD_SCATTER)
740                 return 1;
741
742         for (i = 0; i < eth_dev->data->nb_rx_queues; i++) {
743                 struct bnxt_rx_queue *rxq = eth_dev->data->rx_queues[i];
744
745                 buf_size = (uint16_t)(rte_pktmbuf_data_room_size(rxq->mb_pool) -
746                                       RTE_PKTMBUF_HEADROOM);
747                 if (eth_dev->data->dev_conf.rxmode.max_rx_pkt_len > buf_size)
748                         return 1;
749         }
750         return 0;
751 }
752
753 static eth_rx_burst_t
754 bnxt_receive_function(__rte_unused struct rte_eth_dev *eth_dev)
755 {
756 #ifdef RTE_ARCH_X86
757 #ifndef RTE_LIBRTE_IEEE1588
758         /*
759          * Vector mode receive can be enabled only if scatter rx is not
760          * in use and rx offloads are limited to VLAN stripping and
761          * CRC stripping.
762          */
763         if (!eth_dev->data->scattered_rx &&
764             !(eth_dev->data->dev_conf.rxmode.offloads &
765               ~(DEV_RX_OFFLOAD_VLAN_STRIP |
766                 DEV_RX_OFFLOAD_KEEP_CRC |
767                 DEV_RX_OFFLOAD_JUMBO_FRAME |
768                 DEV_RX_OFFLOAD_IPV4_CKSUM |
769                 DEV_RX_OFFLOAD_UDP_CKSUM |
770                 DEV_RX_OFFLOAD_TCP_CKSUM |
771                 DEV_RX_OFFLOAD_OUTER_IPV4_CKSUM |
772                 DEV_RX_OFFLOAD_VLAN_FILTER))) {
773                 PMD_DRV_LOG(INFO, "Using vector mode receive for port %d\n",
774                             eth_dev->data->port_id);
775                 return bnxt_recv_pkts_vec;
776         }
777         PMD_DRV_LOG(INFO, "Vector mode receive disabled for port %d\n",
778                     eth_dev->data->port_id);
779         PMD_DRV_LOG(INFO,
780                     "Port %d scatter: %d rx offload: %" PRIX64 "\n",
781                     eth_dev->data->port_id,
782                     eth_dev->data->scattered_rx,
783                     eth_dev->data->dev_conf.rxmode.offloads);
784 #endif
785 #endif
786         return bnxt_recv_pkts;
787 }
788
789 static eth_tx_burst_t
790 bnxt_transmit_function(__rte_unused struct rte_eth_dev *eth_dev)
791 {
792 #ifdef RTE_ARCH_X86
793 #ifndef RTE_LIBRTE_IEEE1588
794         /*
795          * Vector mode transmit can be enabled only if not using scatter rx
796          * or tx offloads.
797          */
798         if (!eth_dev->data->scattered_rx &&
799             !eth_dev->data->dev_conf.txmode.offloads) {
800                 PMD_DRV_LOG(INFO, "Using vector mode transmit for port %d\n",
801                             eth_dev->data->port_id);
802                 return bnxt_xmit_pkts_vec;
803         }
804         PMD_DRV_LOG(INFO, "Vector mode transmit disabled for port %d\n",
805                     eth_dev->data->port_id);
806         PMD_DRV_LOG(INFO,
807                     "Port %d scatter: %d tx offload: %" PRIX64 "\n",
808                     eth_dev->data->port_id,
809                     eth_dev->data->scattered_rx,
810                     eth_dev->data->dev_conf.txmode.offloads);
811 #endif
812 #endif
813         return bnxt_xmit_pkts;
814 }
815
816 static int bnxt_handle_if_change_status(struct bnxt *bp)
817 {
818         int rc;
819
820         /* Since fw has undergone a reset and lost all contexts,
821          * set fatal flag to not issue hwrm during cleanup
822          */
823         bp->flags |= BNXT_FLAG_FATAL_ERROR;
824         bnxt_uninit_resources(bp, true);
825
826         /* clear fatal flag so that re-init happens */
827         bp->flags &= ~BNXT_FLAG_FATAL_ERROR;
828         rc = bnxt_init_resources(bp, true);
829
830         bp->flags &= ~BNXT_FLAG_IF_CHANGE_HOT_FW_RESET_DONE;
831
832         return rc;
833 }
834
835 static int bnxt_dev_start_op(struct rte_eth_dev *eth_dev)
836 {
837         struct bnxt *bp = eth_dev->data->dev_private;
838         uint64_t rx_offloads = eth_dev->data->dev_conf.rxmode.offloads;
839         int vlan_mask = 0;
840         int rc;
841
842         if (!eth_dev->data->nb_tx_queues || !eth_dev->data->nb_rx_queues) {
843                 PMD_DRV_LOG(ERR, "Queues are not configured yet!\n");
844                 return -EINVAL;
845         }
846
847         if (bp->rx_cp_nr_rings > RTE_ETHDEV_QUEUE_STAT_CNTRS) {
848                 PMD_DRV_LOG(ERR,
849                         "RxQ cnt %d > CONFIG_RTE_ETHDEV_QUEUE_STAT_CNTRS %d\n",
850                         bp->rx_cp_nr_rings, RTE_ETHDEV_QUEUE_STAT_CNTRS);
851         }
852
853         rc = bnxt_hwrm_if_change(bp, 1);
854         if (!rc) {
855                 if (bp->flags & BNXT_FLAG_IF_CHANGE_HOT_FW_RESET_DONE) {
856                         rc = bnxt_handle_if_change_status(bp);
857                         if (rc)
858                                 return rc;
859                 }
860         }
861         bnxt_enable_int(bp);
862
863         rc = bnxt_init_chip(bp);
864         if (rc)
865                 goto error;
866
867         eth_dev->data->scattered_rx = bnxt_scattered_rx(eth_dev);
868
869         bnxt_link_update_op(eth_dev, 1);
870
871         if (rx_offloads & DEV_RX_OFFLOAD_VLAN_FILTER)
872                 vlan_mask |= ETH_VLAN_FILTER_MASK;
873         if (rx_offloads & DEV_RX_OFFLOAD_VLAN_STRIP)
874                 vlan_mask |= ETH_VLAN_STRIP_MASK;
875         rc = bnxt_vlan_offload_set_op(eth_dev, vlan_mask);
876         if (rc)
877                 goto error;
878
879         eth_dev->rx_pkt_burst = bnxt_receive_function(eth_dev);
880         eth_dev->tx_pkt_burst = bnxt_transmit_function(eth_dev);
881
882         bp->flags |= BNXT_FLAG_INIT_DONE;
883         eth_dev->data->dev_started = 1;
884         bp->dev_stopped = 0;
885         pthread_mutex_lock(&bp->def_cp_lock);
886         bnxt_schedule_fw_health_check(bp);
887         pthread_mutex_unlock(&bp->def_cp_lock);
888         return 0;
889
890 error:
891         bnxt_hwrm_if_change(bp, 0);
892         bnxt_shutdown_nic(bp);
893         bnxt_free_tx_mbufs(bp);
894         bnxt_free_rx_mbufs(bp);
895         return rc;
896 }
897
898 static int bnxt_dev_set_link_up_op(struct rte_eth_dev *eth_dev)
899 {
900         struct bnxt *bp = eth_dev->data->dev_private;
901         int rc = 0;
902
903         if (!bp->link_info.link_up)
904                 rc = bnxt_set_hwrm_link_config(bp, true);
905         if (!rc)
906                 eth_dev->data->dev_link.link_status = 1;
907
908         bnxt_print_link_info(eth_dev);
909         return rc;
910 }
911
912 static int bnxt_dev_set_link_down_op(struct rte_eth_dev *eth_dev)
913 {
914         struct bnxt *bp = eth_dev->data->dev_private;
915
916         eth_dev->data->dev_link.link_status = 0;
917         bnxt_set_hwrm_link_config(bp, false);
918         bp->link_info.link_up = 0;
919
920         return 0;
921 }
922
923 /* Unload the driver, release resources */
924 static void bnxt_dev_stop_op(struct rte_eth_dev *eth_dev)
925 {
926         struct bnxt *bp = eth_dev->data->dev_private;
927         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(eth_dev);
928         struct rte_intr_handle *intr_handle = &pci_dev->intr_handle;
929
930         eth_dev->data->dev_started = 0;
931         /* Prevent crashes when queues are still in use */
932         eth_dev->rx_pkt_burst = &bnxt_dummy_recv_pkts;
933         eth_dev->tx_pkt_burst = &bnxt_dummy_xmit_pkts;
934
935         bnxt_disable_int(bp);
936
937         /* disable uio/vfio intr/eventfd mapping */
938         rte_intr_disable(intr_handle);
939
940         bnxt_cancel_fw_health_check(bp);
941
942         bp->flags &= ~BNXT_FLAG_INIT_DONE;
943         if (bp->eth_dev->data->dev_started) {
944                 /* TBD: STOP HW queues DMA */
945                 eth_dev->data->dev_link.link_status = 0;
946         }
947         bnxt_dev_set_link_down_op(eth_dev);
948
949         /* Wait for link to be reset and the async notification to process.
950          * During reset recovery, there is no need to wait
951          */
952         if (!is_bnxt_in_error(bp))
953                 rte_delay_ms(BNXT_LINK_WAIT_INTERVAL * 2);
954
955         /* Clean queue intr-vector mapping */
956         rte_intr_efd_disable(intr_handle);
957         if (intr_handle->intr_vec != NULL) {
958                 rte_free(intr_handle->intr_vec);
959                 intr_handle->intr_vec = NULL;
960         }
961
962         bnxt_hwrm_port_clr_stats(bp);
963         bnxt_free_tx_mbufs(bp);
964         bnxt_free_rx_mbufs(bp);
965         /* Process any remaining notifications in default completion queue */
966         bnxt_int_handler(eth_dev);
967         bnxt_shutdown_nic(bp);
968         bnxt_hwrm_if_change(bp, 0);
969         bp->dev_stopped = 1;
970 }
971
972 static void bnxt_dev_close_op(struct rte_eth_dev *eth_dev)
973 {
974         struct bnxt *bp = eth_dev->data->dev_private;
975
976         if (bp->dev_stopped == 0)
977                 bnxt_dev_stop_op(eth_dev);
978
979         if (eth_dev->data->mac_addrs != NULL) {
980                 rte_free(eth_dev->data->mac_addrs);
981                 eth_dev->data->mac_addrs = NULL;
982         }
983         if (bp->grp_info != NULL) {
984                 rte_free(bp->grp_info);
985                 bp->grp_info = NULL;
986         }
987
988         bnxt_dev_uninit(eth_dev);
989 }
990
991 static void bnxt_mac_addr_remove_op(struct rte_eth_dev *eth_dev,
992                                     uint32_t index)
993 {
994         struct bnxt *bp = eth_dev->data->dev_private;
995         uint64_t pool_mask = eth_dev->data->mac_pool_sel[index];
996         struct bnxt_vnic_info *vnic;
997         struct bnxt_filter_info *filter, *temp_filter;
998         uint32_t i;
999
1000         if (is_bnxt_in_error(bp))
1001                 return;
1002
1003         /*
1004          * Loop through all VNICs from the specified filter flow pools to
1005          * remove the corresponding MAC addr filter
1006          */
1007         for (i = 0; i < bp->nr_vnics; i++) {
1008                 if (!(pool_mask & (1ULL << i)))
1009                         continue;
1010
1011                 vnic = &bp->vnic_info[i];
1012                 filter = STAILQ_FIRST(&vnic->filter);
1013                 while (filter) {
1014                         temp_filter = STAILQ_NEXT(filter, next);
1015                         if (filter->mac_index == index) {
1016                                 STAILQ_REMOVE(&vnic->filter, filter,
1017                                                 bnxt_filter_info, next);
1018                                 bnxt_hwrm_clear_l2_filter(bp, filter);
1019                                 filter->mac_index = INVALID_MAC_INDEX;
1020                                 memset(&filter->l2_addr, 0, RTE_ETHER_ADDR_LEN);
1021                                 STAILQ_INSERT_TAIL(&bp->free_filter_list,
1022                                                    filter, next);
1023                         }
1024                         filter = temp_filter;
1025                 }
1026         }
1027 }
1028
1029 static int bnxt_add_mac_filter(struct bnxt *bp, struct bnxt_vnic_info *vnic,
1030                                struct rte_ether_addr *mac_addr, uint32_t index)
1031 {
1032         struct bnxt_filter_info *filter;
1033         int rc = 0;
1034
1035         filter = STAILQ_FIRST(&vnic->filter);
1036         /* During bnxt_mac_addr_add_op, default MAC is
1037          * already programmed, so skip it. But, when
1038          * hw-vlan-filter is turned OFF from ON, default
1039          * MAC filter should be restored
1040          */
1041         if (index == 0 && filter->dflt)
1042                 return 0;
1043
1044         filter = bnxt_alloc_filter(bp);
1045         if (!filter) {
1046                 PMD_DRV_LOG(ERR, "L2 filter alloc failed\n");
1047                 return -ENODEV;
1048         }
1049
1050         filter->mac_index = index;
1051         /* bnxt_alloc_filter copies default MAC to filter->l2_addr. So,
1052          * if the MAC that's been programmed now is a different one, then,
1053          * copy that addr to filter->l2_addr
1054          */
1055         if (mac_addr)
1056                 memcpy(filter->l2_addr, mac_addr, RTE_ETHER_ADDR_LEN);
1057         filter->flags |= HWRM_CFA_L2_FILTER_ALLOC_INPUT_FLAGS_OUTERMOST;
1058
1059         rc = bnxt_hwrm_set_l2_filter(bp, vnic->fw_vnic_id, filter);
1060         if (!rc) {
1061                 if (filter->mac_index == 0) {
1062                         filter->dflt = true;
1063                         STAILQ_INSERT_HEAD(&vnic->filter, filter, next);
1064                 } else {
1065                         STAILQ_INSERT_TAIL(&vnic->filter, filter, next);
1066                 }
1067         } else {
1068                 filter->mac_index = INVALID_MAC_INDEX;
1069                 memset(&filter->l2_addr, 0, RTE_ETHER_ADDR_LEN);
1070                 bnxt_free_filter(bp, filter);
1071         }
1072
1073         return rc;
1074 }
1075
1076 static int bnxt_mac_addr_add_op(struct rte_eth_dev *eth_dev,
1077                                 struct rte_ether_addr *mac_addr,
1078                                 uint32_t index, uint32_t pool)
1079 {
1080         struct bnxt *bp = eth_dev->data->dev_private;
1081         struct bnxt_vnic_info *vnic = &bp->vnic_info[pool];
1082         struct bnxt_filter_info *filter;
1083         int rc = 0;
1084
1085         rc = is_bnxt_in_error(bp);
1086         if (rc)
1087                 return rc;
1088
1089         if (BNXT_VF(bp) & !BNXT_VF_IS_TRUSTED(bp)) {
1090                 PMD_DRV_LOG(ERR, "Cannot add MAC address to a VF interface\n");
1091                 return -ENOTSUP;
1092         }
1093
1094         if (!vnic) {
1095                 PMD_DRV_LOG(ERR, "VNIC not found for pool %d!\n", pool);
1096                 return -EINVAL;
1097         }
1098         /* Attach requested MAC address to the new l2_filter */
1099         STAILQ_FOREACH(filter, &vnic->filter, next) {
1100                 if (filter->mac_index == index) {
1101                         PMD_DRV_LOG(ERR,
1102                                 "MAC addr already existed for pool %d\n", pool);
1103                         return 0;
1104                 }
1105         }
1106
1107         rc = bnxt_add_mac_filter(bp, vnic, mac_addr, index);
1108
1109         return rc;
1110 }
1111
1112 int bnxt_link_update_op(struct rte_eth_dev *eth_dev, int wait_to_complete)
1113 {
1114         int rc = 0;
1115         struct bnxt *bp = eth_dev->data->dev_private;
1116         struct rte_eth_link new;
1117         unsigned int cnt = BNXT_LINK_WAIT_CNT;
1118
1119         rc = is_bnxt_in_error(bp);
1120         if (rc)
1121                 return rc;
1122
1123         memset(&new, 0, sizeof(new));
1124         do {
1125                 /* Retrieve link info from hardware */
1126                 rc = bnxt_get_hwrm_link_config(bp, &new);
1127                 if (rc) {
1128                         new.link_speed = ETH_LINK_SPEED_100M;
1129                         new.link_duplex = ETH_LINK_FULL_DUPLEX;
1130                         PMD_DRV_LOG(ERR,
1131                                 "Failed to retrieve link rc = 0x%x!\n", rc);
1132                         goto out;
1133                 }
1134
1135                 if (!wait_to_complete || new.link_status)
1136                         break;
1137
1138                 rte_delay_ms(BNXT_LINK_WAIT_INTERVAL);
1139         } while (cnt--);
1140
1141 out:
1142         /* Timed out or success */
1143         if (new.link_status != eth_dev->data->dev_link.link_status ||
1144         new.link_speed != eth_dev->data->dev_link.link_speed) {
1145                 rte_eth_linkstatus_set(eth_dev, &new);
1146
1147                 _rte_eth_dev_callback_process(eth_dev,
1148                                               RTE_ETH_EVENT_INTR_LSC,
1149                                               NULL);
1150
1151                 bnxt_print_link_info(eth_dev);
1152         }
1153
1154         return rc;
1155 }
1156
1157 static int bnxt_promiscuous_enable_op(struct rte_eth_dev *eth_dev)
1158 {
1159         struct bnxt *bp = eth_dev->data->dev_private;
1160         struct bnxt_vnic_info *vnic;
1161         uint32_t old_flags;
1162         int rc;
1163
1164         rc = is_bnxt_in_error(bp);
1165         if (rc)
1166                 return rc;
1167
1168         if (bp->vnic_info == NULL)
1169                 return 0;
1170
1171         vnic = BNXT_GET_DEFAULT_VNIC(bp);
1172
1173         old_flags = vnic->flags;
1174         vnic->flags |= BNXT_VNIC_INFO_PROMISC;
1175         rc = bnxt_hwrm_cfa_l2_set_rx_mask(bp, vnic, 0, NULL);
1176         if (rc != 0)
1177                 vnic->flags = old_flags;
1178
1179         return rc;
1180 }
1181
1182 static int bnxt_promiscuous_disable_op(struct rte_eth_dev *eth_dev)
1183 {
1184         struct bnxt *bp = eth_dev->data->dev_private;
1185         struct bnxt_vnic_info *vnic;
1186         uint32_t old_flags;
1187         int rc;
1188
1189         rc = is_bnxt_in_error(bp);
1190         if (rc)
1191                 return rc;
1192
1193         if (bp->vnic_info == NULL)
1194                 return 0;
1195
1196         vnic = BNXT_GET_DEFAULT_VNIC(bp);
1197
1198         old_flags = vnic->flags;
1199         vnic->flags &= ~BNXT_VNIC_INFO_PROMISC;
1200         rc = bnxt_hwrm_cfa_l2_set_rx_mask(bp, vnic, 0, NULL);
1201         if (rc != 0)
1202                 vnic->flags = old_flags;
1203
1204         return rc;
1205 }
1206
1207 static int bnxt_allmulticast_enable_op(struct rte_eth_dev *eth_dev)
1208 {
1209         struct bnxt *bp = eth_dev->data->dev_private;
1210         struct bnxt_vnic_info *vnic;
1211         uint32_t old_flags;
1212         int rc;
1213
1214         rc = is_bnxt_in_error(bp);
1215         if (rc)
1216                 return rc;
1217
1218         if (bp->vnic_info == NULL)
1219                 return 0;
1220
1221         vnic = BNXT_GET_DEFAULT_VNIC(bp);
1222
1223         old_flags = vnic->flags;
1224         vnic->flags |= BNXT_VNIC_INFO_ALLMULTI;
1225         rc = bnxt_hwrm_cfa_l2_set_rx_mask(bp, vnic, 0, NULL);
1226         if (rc != 0)
1227                 vnic->flags = old_flags;
1228
1229         return rc;
1230 }
1231
1232 static int bnxt_allmulticast_disable_op(struct rte_eth_dev *eth_dev)
1233 {
1234         struct bnxt *bp = eth_dev->data->dev_private;
1235         struct bnxt_vnic_info *vnic;
1236         uint32_t old_flags;
1237         int rc;
1238
1239         rc = is_bnxt_in_error(bp);
1240         if (rc)
1241                 return rc;
1242
1243         if (bp->vnic_info == NULL)
1244                 return 0;
1245
1246         vnic = BNXT_GET_DEFAULT_VNIC(bp);
1247
1248         old_flags = vnic->flags;
1249         vnic->flags &= ~BNXT_VNIC_INFO_ALLMULTI;
1250         rc = bnxt_hwrm_cfa_l2_set_rx_mask(bp, vnic, 0, NULL);
1251         if (rc != 0)
1252                 vnic->flags = old_flags;
1253
1254         return rc;
1255 }
1256
1257 /* Return bnxt_rx_queue pointer corresponding to a given rxq. */
1258 static struct bnxt_rx_queue *bnxt_qid_to_rxq(struct bnxt *bp, uint16_t qid)
1259 {
1260         if (qid >= bp->rx_nr_rings)
1261                 return NULL;
1262
1263         return bp->eth_dev->data->rx_queues[qid];
1264 }
1265
1266 /* Return rxq corresponding to a given rss table ring/group ID. */
1267 static uint16_t bnxt_rss_to_qid(struct bnxt *bp, uint16_t fwr)
1268 {
1269         struct bnxt_rx_queue *rxq;
1270         unsigned int i;
1271
1272         if (!BNXT_HAS_RING_GRPS(bp)) {
1273                 for (i = 0; i < bp->rx_nr_rings; i++) {
1274                         rxq = bp->eth_dev->data->rx_queues[i];
1275                         if (rxq->rx_ring->rx_ring_struct->fw_ring_id == fwr)
1276                                 return rxq->index;
1277                 }
1278         } else {
1279                 for (i = 0; i < bp->rx_nr_rings; i++) {
1280                         if (bp->grp_info[i].fw_grp_id == fwr)
1281                                 return i;
1282                 }
1283         }
1284
1285         return INVALID_HW_RING_ID;
1286 }
1287
1288 static int bnxt_reta_update_op(struct rte_eth_dev *eth_dev,
1289                             struct rte_eth_rss_reta_entry64 *reta_conf,
1290                             uint16_t reta_size)
1291 {
1292         struct bnxt *bp = eth_dev->data->dev_private;
1293         struct rte_eth_conf *dev_conf = &bp->eth_dev->data->dev_conf;
1294         struct bnxt_vnic_info *vnic = &bp->vnic_info[0];
1295         uint16_t tbl_size = bnxt_rss_hash_tbl_size(bp);
1296         uint16_t idx, sft;
1297         int i, rc;
1298
1299         rc = is_bnxt_in_error(bp);
1300         if (rc)
1301                 return rc;
1302
1303         if (!vnic->rss_table)
1304                 return -EINVAL;
1305
1306         if (!(dev_conf->rxmode.mq_mode & ETH_MQ_RX_RSS_FLAG))
1307                 return -EINVAL;
1308
1309         if (reta_size != tbl_size) {
1310                 PMD_DRV_LOG(ERR, "The configured hash table lookup size "
1311                         "(%d) must equal the size supported by the hardware "
1312                         "(%d)\n", reta_size, tbl_size);
1313                 return -EINVAL;
1314         }
1315
1316         for (i = 0; i < reta_size; i++) {
1317                 struct bnxt_rx_queue *rxq;
1318
1319                 idx = i / RTE_RETA_GROUP_SIZE;
1320                 sft = i % RTE_RETA_GROUP_SIZE;
1321
1322                 if (!(reta_conf[idx].mask & (1ULL << sft)))
1323                         continue;
1324
1325                 rxq = bnxt_qid_to_rxq(bp, reta_conf[idx].reta[sft]);
1326                 if (!rxq) {
1327                         PMD_DRV_LOG(ERR, "Invalid ring in reta_conf.\n");
1328                         return -EINVAL;
1329                 }
1330
1331                 if (BNXT_CHIP_THOR(bp)) {
1332                         vnic->rss_table[i * 2] =
1333                                 rxq->rx_ring->rx_ring_struct->fw_ring_id;
1334                         vnic->rss_table[i * 2 + 1] =
1335                                 rxq->cp_ring->cp_ring_struct->fw_ring_id;
1336                 } else {
1337                         vnic->rss_table[i] =
1338                             vnic->fw_grp_ids[reta_conf[idx].reta[sft]];
1339                 }
1340         }
1341
1342         bnxt_hwrm_vnic_rss_cfg(bp, vnic);
1343         return 0;
1344 }
1345
1346 static int bnxt_reta_query_op(struct rte_eth_dev *eth_dev,
1347                               struct rte_eth_rss_reta_entry64 *reta_conf,
1348                               uint16_t reta_size)
1349 {
1350         struct bnxt *bp = eth_dev->data->dev_private;
1351         struct bnxt_vnic_info *vnic = &bp->vnic_info[0];
1352         uint16_t tbl_size = bnxt_rss_hash_tbl_size(bp);
1353         uint16_t idx, sft, i;
1354         int rc;
1355
1356         rc = is_bnxt_in_error(bp);
1357         if (rc)
1358                 return rc;
1359
1360         /* Retrieve from the default VNIC */
1361         if (!vnic)
1362                 return -EINVAL;
1363         if (!vnic->rss_table)
1364                 return -EINVAL;
1365
1366         if (reta_size != tbl_size) {
1367                 PMD_DRV_LOG(ERR, "The configured hash table lookup size "
1368                         "(%d) must equal the size supported by the hardware "
1369                         "(%d)\n", reta_size, tbl_size);
1370                 return -EINVAL;
1371         }
1372
1373         for (idx = 0, i = 0; i < reta_size; i++) {
1374                 idx = i / RTE_RETA_GROUP_SIZE;
1375                 sft = i % RTE_RETA_GROUP_SIZE;
1376
1377                 if (reta_conf[idx].mask & (1ULL << sft)) {
1378                         uint16_t qid;
1379
1380                         if (BNXT_CHIP_THOR(bp))
1381                                 qid = bnxt_rss_to_qid(bp,
1382                                                       vnic->rss_table[i * 2]);
1383                         else
1384                                 qid = bnxt_rss_to_qid(bp, vnic->rss_table[i]);
1385
1386                         if (qid == INVALID_HW_RING_ID) {
1387                                 PMD_DRV_LOG(ERR, "Inv. entry in rss table.\n");
1388                                 return -EINVAL;
1389                         }
1390                         reta_conf[idx].reta[sft] = qid;
1391                 }
1392         }
1393
1394         return 0;
1395 }
1396
1397 static int bnxt_rss_hash_update_op(struct rte_eth_dev *eth_dev,
1398                                    struct rte_eth_rss_conf *rss_conf)
1399 {
1400         struct bnxt *bp = eth_dev->data->dev_private;
1401         struct rte_eth_conf *dev_conf = &bp->eth_dev->data->dev_conf;
1402         struct bnxt_vnic_info *vnic;
1403         int rc;
1404
1405         rc = is_bnxt_in_error(bp);
1406         if (rc)
1407                 return rc;
1408
1409         /*
1410          * If RSS enablement were different than dev_configure,
1411          * then return -EINVAL
1412          */
1413         if (dev_conf->rxmode.mq_mode & ETH_MQ_RX_RSS_FLAG) {
1414                 if (!rss_conf->rss_hf)
1415                         PMD_DRV_LOG(ERR, "Hash type NONE\n");
1416         } else {
1417                 if (rss_conf->rss_hf & BNXT_ETH_RSS_SUPPORT)
1418                         return -EINVAL;
1419         }
1420
1421         bp->flags |= BNXT_FLAG_UPDATE_HASH;
1422         memcpy(&bp->rss_conf, rss_conf, sizeof(*rss_conf));
1423
1424         /* Update the default RSS VNIC(s) */
1425         vnic = &bp->vnic_info[0];
1426         vnic->hash_type = bnxt_rte_to_hwrm_hash_types(rss_conf->rss_hf);
1427
1428         /*
1429          * If hashkey is not specified, use the previously configured
1430          * hashkey
1431          */
1432         if (!rss_conf->rss_key)
1433                 goto rss_config;
1434
1435         if (rss_conf->rss_key_len != HW_HASH_KEY_SIZE) {
1436                 PMD_DRV_LOG(ERR,
1437                             "Invalid hashkey length, should be 16 bytes\n");
1438                 return -EINVAL;
1439         }
1440         memcpy(vnic->rss_hash_key, rss_conf->rss_key, rss_conf->rss_key_len);
1441
1442 rss_config:
1443         bnxt_hwrm_vnic_rss_cfg(bp, vnic);
1444         return 0;
1445 }
1446
1447 static int bnxt_rss_hash_conf_get_op(struct rte_eth_dev *eth_dev,
1448                                      struct rte_eth_rss_conf *rss_conf)
1449 {
1450         struct bnxt *bp = eth_dev->data->dev_private;
1451         struct bnxt_vnic_info *vnic = &bp->vnic_info[0];
1452         int len, rc;
1453         uint32_t hash_types;
1454
1455         rc = is_bnxt_in_error(bp);
1456         if (rc)
1457                 return rc;
1458
1459         /* RSS configuration is the same for all VNICs */
1460         if (vnic && vnic->rss_hash_key) {
1461                 if (rss_conf->rss_key) {
1462                         len = rss_conf->rss_key_len <= HW_HASH_KEY_SIZE ?
1463                               rss_conf->rss_key_len : HW_HASH_KEY_SIZE;
1464                         memcpy(rss_conf->rss_key, vnic->rss_hash_key, len);
1465                 }
1466
1467                 hash_types = vnic->hash_type;
1468                 rss_conf->rss_hf = 0;
1469                 if (hash_types & HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_IPV4) {
1470                         rss_conf->rss_hf |= ETH_RSS_IPV4;
1471                         hash_types &= ~HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_IPV4;
1472                 }
1473                 if (hash_types & HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_TCP_IPV4) {
1474                         rss_conf->rss_hf |= ETH_RSS_NONFRAG_IPV4_TCP;
1475                         hash_types &=
1476                                 ~HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_TCP_IPV4;
1477                 }
1478                 if (hash_types & HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_UDP_IPV4) {
1479                         rss_conf->rss_hf |= ETH_RSS_NONFRAG_IPV4_UDP;
1480                         hash_types &=
1481                                 ~HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_UDP_IPV4;
1482                 }
1483                 if (hash_types & HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_IPV6) {
1484                         rss_conf->rss_hf |= ETH_RSS_IPV6;
1485                         hash_types &= ~HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_IPV6;
1486                 }
1487                 if (hash_types & HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_TCP_IPV6) {
1488                         rss_conf->rss_hf |= ETH_RSS_NONFRAG_IPV6_TCP;
1489                         hash_types &=
1490                                 ~HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_TCP_IPV6;
1491                 }
1492                 if (hash_types & HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_UDP_IPV6) {
1493                         rss_conf->rss_hf |= ETH_RSS_NONFRAG_IPV6_UDP;
1494                         hash_types &=
1495                                 ~HWRM_VNIC_RSS_CFG_INPUT_HASH_TYPE_UDP_IPV6;
1496                 }
1497                 if (hash_types) {
1498                         PMD_DRV_LOG(ERR,
1499                                 "Unknwon RSS config from firmware (%08x), RSS disabled",
1500                                 vnic->hash_type);
1501                         return -ENOTSUP;
1502                 }
1503         } else {
1504                 rss_conf->rss_hf = 0;
1505         }
1506         return 0;
1507 }
1508
1509 static int bnxt_flow_ctrl_get_op(struct rte_eth_dev *dev,
1510                                struct rte_eth_fc_conf *fc_conf)
1511 {
1512         struct bnxt *bp = dev->data->dev_private;
1513         struct rte_eth_link link_info;
1514         int rc;
1515
1516         rc = is_bnxt_in_error(bp);
1517         if (rc)
1518                 return rc;
1519
1520         rc = bnxt_get_hwrm_link_config(bp, &link_info);
1521         if (rc)
1522                 return rc;
1523
1524         memset(fc_conf, 0, sizeof(*fc_conf));
1525         if (bp->link_info.auto_pause)
1526                 fc_conf->autoneg = 1;
1527         switch (bp->link_info.pause) {
1528         case 0:
1529                 fc_conf->mode = RTE_FC_NONE;
1530                 break;
1531         case HWRM_PORT_PHY_QCFG_OUTPUT_PAUSE_TX:
1532                 fc_conf->mode = RTE_FC_TX_PAUSE;
1533                 break;
1534         case HWRM_PORT_PHY_QCFG_OUTPUT_PAUSE_RX:
1535                 fc_conf->mode = RTE_FC_RX_PAUSE;
1536                 break;
1537         case (HWRM_PORT_PHY_QCFG_OUTPUT_PAUSE_TX |
1538                         HWRM_PORT_PHY_QCFG_OUTPUT_PAUSE_RX):
1539                 fc_conf->mode = RTE_FC_FULL;
1540                 break;
1541         }
1542         return 0;
1543 }
1544
1545 static int bnxt_flow_ctrl_set_op(struct rte_eth_dev *dev,
1546                                struct rte_eth_fc_conf *fc_conf)
1547 {
1548         struct bnxt *bp = dev->data->dev_private;
1549         int rc;
1550
1551         rc = is_bnxt_in_error(bp);
1552         if (rc)
1553                 return rc;
1554
1555         if (!BNXT_SINGLE_PF(bp) || BNXT_VF(bp)) {
1556                 PMD_DRV_LOG(ERR, "Flow Control Settings cannot be modified\n");
1557                 return -ENOTSUP;
1558         }
1559
1560         switch (fc_conf->mode) {
1561         case RTE_FC_NONE:
1562                 bp->link_info.auto_pause = 0;
1563                 bp->link_info.force_pause = 0;
1564                 break;
1565         case RTE_FC_RX_PAUSE:
1566                 if (fc_conf->autoneg) {
1567                         bp->link_info.auto_pause =
1568                                         HWRM_PORT_PHY_CFG_INPUT_AUTO_PAUSE_RX;
1569                         bp->link_info.force_pause = 0;
1570                 } else {
1571                         bp->link_info.auto_pause = 0;
1572                         bp->link_info.force_pause =
1573                                         HWRM_PORT_PHY_CFG_INPUT_FORCE_PAUSE_RX;
1574                 }
1575                 break;
1576         case RTE_FC_TX_PAUSE:
1577                 if (fc_conf->autoneg) {
1578                         bp->link_info.auto_pause =
1579                                         HWRM_PORT_PHY_CFG_INPUT_AUTO_PAUSE_TX;
1580                         bp->link_info.force_pause = 0;
1581                 } else {
1582                         bp->link_info.auto_pause = 0;
1583                         bp->link_info.force_pause =
1584                                         HWRM_PORT_PHY_CFG_INPUT_FORCE_PAUSE_TX;
1585                 }
1586                 break;
1587         case RTE_FC_FULL:
1588                 if (fc_conf->autoneg) {
1589                         bp->link_info.auto_pause =
1590                                         HWRM_PORT_PHY_CFG_INPUT_AUTO_PAUSE_TX |
1591                                         HWRM_PORT_PHY_CFG_INPUT_AUTO_PAUSE_RX;
1592                         bp->link_info.force_pause = 0;
1593                 } else {
1594                         bp->link_info.auto_pause = 0;
1595                         bp->link_info.force_pause =
1596                                         HWRM_PORT_PHY_CFG_INPUT_FORCE_PAUSE_TX |
1597                                         HWRM_PORT_PHY_CFG_INPUT_FORCE_PAUSE_RX;
1598                 }
1599                 break;
1600         }
1601         return bnxt_set_hwrm_link_config(bp, true);
1602 }
1603
1604 /* Add UDP tunneling port */
1605 static int
1606 bnxt_udp_tunnel_port_add_op(struct rte_eth_dev *eth_dev,
1607                          struct rte_eth_udp_tunnel *udp_tunnel)
1608 {
1609         struct bnxt *bp = eth_dev->data->dev_private;
1610         uint16_t tunnel_type = 0;
1611         int rc = 0;
1612
1613         rc = is_bnxt_in_error(bp);
1614         if (rc)
1615                 return rc;
1616
1617         switch (udp_tunnel->prot_type) {
1618         case RTE_TUNNEL_TYPE_VXLAN:
1619                 if (bp->vxlan_port_cnt) {
1620                         PMD_DRV_LOG(ERR, "Tunnel Port %d already programmed\n",
1621                                 udp_tunnel->udp_port);
1622                         if (bp->vxlan_port != udp_tunnel->udp_port) {
1623                                 PMD_DRV_LOG(ERR, "Only one port allowed\n");
1624                                 return -ENOSPC;
1625                         }
1626                         bp->vxlan_port_cnt++;
1627                         return 0;
1628                 }
1629                 tunnel_type =
1630                         HWRM_TUNNEL_DST_PORT_ALLOC_INPUT_TUNNEL_TYPE_VXLAN;
1631                 bp->vxlan_port_cnt++;
1632                 break;
1633         case RTE_TUNNEL_TYPE_GENEVE:
1634                 if (bp->geneve_port_cnt) {
1635                         PMD_DRV_LOG(ERR, "Tunnel Port %d already programmed\n",
1636                                 udp_tunnel->udp_port);
1637                         if (bp->geneve_port != udp_tunnel->udp_port) {
1638                                 PMD_DRV_LOG(ERR, "Only one port allowed\n");
1639                                 return -ENOSPC;
1640                         }
1641                         bp->geneve_port_cnt++;
1642                         return 0;
1643                 }
1644                 tunnel_type =
1645                         HWRM_TUNNEL_DST_PORT_ALLOC_INPUT_TUNNEL_TYPE_GENEVE;
1646                 bp->geneve_port_cnt++;
1647                 break;
1648         default:
1649                 PMD_DRV_LOG(ERR, "Tunnel type is not supported\n");
1650                 return -ENOTSUP;
1651         }
1652         rc = bnxt_hwrm_tunnel_dst_port_alloc(bp, udp_tunnel->udp_port,
1653                                              tunnel_type);
1654         return rc;
1655 }
1656
1657 static int
1658 bnxt_udp_tunnel_port_del_op(struct rte_eth_dev *eth_dev,
1659                          struct rte_eth_udp_tunnel *udp_tunnel)
1660 {
1661         struct bnxt *bp = eth_dev->data->dev_private;
1662         uint16_t tunnel_type = 0;
1663         uint16_t port = 0;
1664         int rc = 0;
1665
1666         rc = is_bnxt_in_error(bp);
1667         if (rc)
1668                 return rc;
1669
1670         switch (udp_tunnel->prot_type) {
1671         case RTE_TUNNEL_TYPE_VXLAN:
1672                 if (!bp->vxlan_port_cnt) {
1673                         PMD_DRV_LOG(ERR, "No Tunnel port configured yet\n");
1674                         return -EINVAL;
1675                 }
1676                 if (bp->vxlan_port != udp_tunnel->udp_port) {
1677                         PMD_DRV_LOG(ERR, "Req Port: %d. Configured port: %d\n",
1678                                 udp_tunnel->udp_port, bp->vxlan_port);
1679                         return -EINVAL;
1680                 }
1681                 if (--bp->vxlan_port_cnt)
1682                         return 0;
1683
1684                 tunnel_type =
1685                         HWRM_TUNNEL_DST_PORT_FREE_INPUT_TUNNEL_TYPE_VXLAN;
1686                 port = bp->vxlan_fw_dst_port_id;
1687                 break;
1688         case RTE_TUNNEL_TYPE_GENEVE:
1689                 if (!bp->geneve_port_cnt) {
1690                         PMD_DRV_LOG(ERR, "No Tunnel port configured yet\n");
1691                         return -EINVAL;
1692                 }
1693                 if (bp->geneve_port != udp_tunnel->udp_port) {
1694                         PMD_DRV_LOG(ERR, "Req Port: %d. Configured port: %d\n",
1695                                 udp_tunnel->udp_port, bp->geneve_port);
1696                         return -EINVAL;
1697                 }
1698                 if (--bp->geneve_port_cnt)
1699                         return 0;
1700
1701                 tunnel_type =
1702                         HWRM_TUNNEL_DST_PORT_FREE_INPUT_TUNNEL_TYPE_GENEVE;
1703                 port = bp->geneve_fw_dst_port_id;
1704                 break;
1705         default:
1706                 PMD_DRV_LOG(ERR, "Tunnel type is not supported\n");
1707                 return -ENOTSUP;
1708         }
1709
1710         rc = bnxt_hwrm_tunnel_dst_port_free(bp, port, tunnel_type);
1711         if (!rc) {
1712                 if (tunnel_type ==
1713                     HWRM_TUNNEL_DST_PORT_FREE_INPUT_TUNNEL_TYPE_VXLAN)
1714                         bp->vxlan_port = 0;
1715                 if (tunnel_type ==
1716                     HWRM_TUNNEL_DST_PORT_FREE_INPUT_TUNNEL_TYPE_GENEVE)
1717                         bp->geneve_port = 0;
1718         }
1719         return rc;
1720 }
1721
1722 static int bnxt_del_vlan_filter(struct bnxt *bp, uint16_t vlan_id)
1723 {
1724         struct bnxt_filter_info *filter;
1725         struct bnxt_vnic_info *vnic;
1726         int rc = 0;
1727         uint32_t chk = HWRM_CFA_L2_FILTER_ALLOC_INPUT_ENABLES_L2_IVLAN;
1728
1729         /* if VLAN exists && VLAN matches vlan_id
1730          *      remove the MAC+VLAN filter
1731          *      add a new MAC only filter
1732          * else
1733          *      VLAN filter doesn't exist, just skip and continue
1734          */
1735         vnic = BNXT_GET_DEFAULT_VNIC(bp);
1736         filter = STAILQ_FIRST(&vnic->filter);
1737         while (filter) {
1738                 /* Search for this matching MAC+VLAN filter */
1739                 if ((filter->enables & chk) &&
1740                     (filter->l2_ivlan == vlan_id &&
1741                      filter->l2_ivlan_mask != 0) &&
1742                     !memcmp(filter->l2_addr, bp->mac_addr,
1743                             RTE_ETHER_ADDR_LEN)) {
1744                         /* Delete the filter */
1745                         rc = bnxt_hwrm_clear_l2_filter(bp, filter);
1746                         if (rc)
1747                                 return rc;
1748                         STAILQ_REMOVE(&vnic->filter, filter,
1749                                       bnxt_filter_info, next);
1750                         STAILQ_INSERT_TAIL(&bp->free_filter_list, filter, next);
1751
1752                         PMD_DRV_LOG(INFO,
1753                                     "Del Vlan filter for %d\n",
1754                                     vlan_id);
1755                         return rc;
1756                 }
1757                 filter = STAILQ_NEXT(filter, next);
1758         }
1759         return -ENOENT;
1760 }
1761
1762 static int bnxt_add_vlan_filter(struct bnxt *bp, uint16_t vlan_id)
1763 {
1764         struct bnxt_filter_info *filter;
1765         struct bnxt_vnic_info *vnic;
1766         int rc = 0;
1767         uint32_t en = HWRM_CFA_L2_FILTER_ALLOC_INPUT_ENABLES_L2_IVLAN |
1768                 HWRM_CFA_L2_FILTER_ALLOC_INPUT_ENABLES_L2_IVLAN_MASK;
1769         uint32_t chk = HWRM_CFA_L2_FILTER_ALLOC_INPUT_ENABLES_L2_IVLAN;
1770
1771         /* Implementation notes on the use of VNIC in this command:
1772          *
1773          * By default, these filters belong to default vnic for the function.
1774          * Once these filters are set up, only destination VNIC can be modified.
1775          * If the destination VNIC is not specified in this command,
1776          * then the HWRM shall only create an l2 context id.
1777          */
1778
1779         vnic = BNXT_GET_DEFAULT_VNIC(bp);
1780         filter = STAILQ_FIRST(&vnic->filter);
1781         /* Check if the VLAN has already been added */
1782         while (filter) {
1783                 if ((filter->enables & chk) &&
1784                     (filter->l2_ivlan == vlan_id &&
1785                      filter->l2_ivlan_mask == 0x0FFF) &&
1786                      !memcmp(filter->l2_addr, bp->mac_addr,
1787                              RTE_ETHER_ADDR_LEN))
1788                         return -EEXIST;
1789
1790                 filter = STAILQ_NEXT(filter, next);
1791         }
1792
1793         /* No match found. Alloc a fresh filter and issue the L2_FILTER_ALLOC
1794          * command to create MAC+VLAN filter with the right flags, enables set.
1795          */
1796         filter = bnxt_alloc_filter(bp);
1797         if (!filter) {
1798                 PMD_DRV_LOG(ERR,
1799                             "MAC/VLAN filter alloc failed\n");
1800                 return -ENOMEM;
1801         }
1802         /* MAC + VLAN ID filter */
1803         /* If l2_ivlan == 0 and l2_ivlan_mask != 0, only
1804          * untagged packets are received
1805          *
1806          * If l2_ivlan != 0 and l2_ivlan_mask != 0, untagged
1807          * packets and only the programmed vlan's packets are received
1808          */
1809         filter->l2_ivlan = vlan_id;
1810         filter->l2_ivlan_mask = 0x0FFF;
1811         filter->enables |= en;
1812         filter->flags |= HWRM_CFA_L2_FILTER_ALLOC_INPUT_FLAGS_OUTERMOST;
1813
1814         rc = bnxt_hwrm_set_l2_filter(bp, vnic->fw_vnic_id, filter);
1815         if (rc) {
1816                 /* Free the newly allocated filter as we were
1817                  * not able to create the filter in hardware.
1818                  */
1819                 filter->fw_l2_filter_id = UINT64_MAX;
1820                 STAILQ_INSERT_TAIL(&bp->free_filter_list, filter, next);
1821                 return rc;
1822         } else {
1823                 /* Add this new filter to the list */
1824                 if (vlan_id == 0) {
1825                         filter->dflt = true;
1826                         STAILQ_INSERT_HEAD(&vnic->filter, filter, next);
1827                 } else {
1828                         STAILQ_INSERT_TAIL(&vnic->filter, filter, next);
1829                 }
1830         }
1831
1832         PMD_DRV_LOG(INFO,
1833                     "Added Vlan filter for %d\n", vlan_id);
1834         return rc;
1835 }
1836
1837 static int bnxt_vlan_filter_set_op(struct rte_eth_dev *eth_dev,
1838                 uint16_t vlan_id, int on)
1839 {
1840         struct bnxt *bp = eth_dev->data->dev_private;
1841         int rc;
1842
1843         rc = is_bnxt_in_error(bp);
1844         if (rc)
1845                 return rc;
1846
1847         /* These operations apply to ALL existing MAC/VLAN filters */
1848         if (on)
1849                 return bnxt_add_vlan_filter(bp, vlan_id);
1850         else
1851                 return bnxt_del_vlan_filter(bp, vlan_id);
1852 }
1853
1854 static int bnxt_del_dflt_mac_filter(struct bnxt *bp,
1855                                     struct bnxt_vnic_info *vnic)
1856 {
1857         struct bnxt_filter_info *filter;
1858         int rc;
1859
1860         filter = STAILQ_FIRST(&vnic->filter);
1861         while (filter) {
1862                 if (filter->dflt &&
1863                     !memcmp(filter->l2_addr, bp->mac_addr,
1864                             RTE_ETHER_ADDR_LEN)) {
1865                         rc = bnxt_hwrm_clear_l2_filter(bp, filter);
1866                         if (rc)
1867                                 return rc;
1868                         filter->dflt = false;
1869                         STAILQ_REMOVE(&vnic->filter, filter,
1870                                       bnxt_filter_info, next);
1871                         STAILQ_INSERT_TAIL(&bp->free_filter_list,
1872                                            filter, next);
1873                         filter->fw_l2_filter_id = -1;
1874                         break;
1875                 }
1876                 filter = STAILQ_NEXT(filter, next);
1877         }
1878         return 0;
1879 }
1880
1881 static int
1882 bnxt_vlan_offload_set_op(struct rte_eth_dev *dev, int mask)
1883 {
1884         struct bnxt *bp = dev->data->dev_private;
1885         uint64_t rx_offloads = dev->data->dev_conf.rxmode.offloads;
1886         struct bnxt_vnic_info *vnic;
1887         unsigned int i;
1888         int rc;
1889
1890         rc = is_bnxt_in_error(bp);
1891         if (rc)
1892                 return rc;
1893
1894         vnic = BNXT_GET_DEFAULT_VNIC(bp);
1895         if (!(rx_offloads & DEV_RX_OFFLOAD_VLAN_FILTER)) {
1896                 /* Remove any VLAN filters programmed */
1897                 for (i = 0; i < 4095; i++)
1898                         bnxt_del_vlan_filter(bp, i);
1899
1900                 rc = bnxt_add_mac_filter(bp, vnic, NULL, 0);
1901                 if (rc)
1902                         return rc;
1903         } else {
1904                 /* Default filter will allow packets that match the
1905                  * dest mac. So, it has to be deleted, otherwise, we
1906                  * will endup receiving vlan packets for which the
1907                  * filter is not programmed, when hw-vlan-filter
1908                  * configuration is ON
1909                  */
1910                 bnxt_del_dflt_mac_filter(bp, vnic);
1911                 /* This filter will allow only untagged packets */
1912                 bnxt_add_vlan_filter(bp, 0);
1913         }
1914         PMD_DRV_LOG(DEBUG, "VLAN Filtering: %d\n",
1915                     !!(rx_offloads & DEV_RX_OFFLOAD_VLAN_FILTER));
1916
1917         if (mask & ETH_VLAN_STRIP_MASK) {
1918                 /* Enable or disable VLAN stripping */
1919                 for (i = 0; i < bp->nr_vnics; i++) {
1920                         struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
1921                         if (rx_offloads & DEV_RX_OFFLOAD_VLAN_STRIP)
1922                                 vnic->vlan_strip = true;
1923                         else
1924                                 vnic->vlan_strip = false;
1925                         bnxt_hwrm_vnic_cfg(bp, vnic);
1926                 }
1927                 PMD_DRV_LOG(DEBUG, "VLAN Strip Offload: %d\n",
1928                         !!(rx_offloads & DEV_RX_OFFLOAD_VLAN_STRIP));
1929         }
1930
1931         if (mask & ETH_VLAN_EXTEND_MASK) {
1932                 if (rx_offloads & DEV_RX_OFFLOAD_VLAN_EXTEND)
1933                         PMD_DRV_LOG(DEBUG, "Extend VLAN supported\n");
1934                 else
1935                         PMD_DRV_LOG(INFO, "Extend VLAN unsupported\n");
1936         }
1937
1938         return 0;
1939 }
1940
1941 static int
1942 bnxt_vlan_tpid_set_op(struct rte_eth_dev *dev, enum rte_vlan_type vlan_type,
1943                       uint16_t tpid)
1944 {
1945         struct bnxt *bp = dev->data->dev_private;
1946         int qinq = dev->data->dev_conf.rxmode.offloads &
1947                    DEV_RX_OFFLOAD_VLAN_EXTEND;
1948
1949         if (vlan_type != ETH_VLAN_TYPE_INNER &&
1950             vlan_type != ETH_VLAN_TYPE_OUTER) {
1951                 PMD_DRV_LOG(ERR,
1952                             "Unsupported vlan type.");
1953                 return -EINVAL;
1954         }
1955         if (!qinq) {
1956                 PMD_DRV_LOG(ERR,
1957                             "QinQ not enabled. Needs to be ON as we can "
1958                             "accelerate only outer vlan\n");
1959                 return -EINVAL;
1960         }
1961
1962         if (vlan_type == ETH_VLAN_TYPE_OUTER) {
1963                 switch (tpid) {
1964                 case RTE_ETHER_TYPE_QINQ:
1965                         bp->outer_tpid_bd =
1966                                 TX_BD_LONG_CFA_META_VLAN_TPID_TPID88A8;
1967                                 break;
1968                 case RTE_ETHER_TYPE_VLAN:
1969                         bp->outer_tpid_bd =
1970                                 TX_BD_LONG_CFA_META_VLAN_TPID_TPID8100;
1971                                 break;
1972                 case 0x9100:
1973                         bp->outer_tpid_bd =
1974                                 TX_BD_LONG_CFA_META_VLAN_TPID_TPID9100;
1975                                 break;
1976                 case 0x9200:
1977                         bp->outer_tpid_bd =
1978                                 TX_BD_LONG_CFA_META_VLAN_TPID_TPID9200;
1979                                 break;
1980                 case 0x9300:
1981                         bp->outer_tpid_bd =
1982                                  TX_BD_LONG_CFA_META_VLAN_TPID_TPID9300;
1983                                 break;
1984                 default:
1985                         PMD_DRV_LOG(ERR, "Invalid TPID: %x\n", tpid);
1986                         return -EINVAL;
1987                 }
1988                 bp->outer_tpid_bd |= tpid;
1989                 PMD_DRV_LOG(INFO, "outer_tpid_bd = %x\n", bp->outer_tpid_bd);
1990         } else if (vlan_type == ETH_VLAN_TYPE_INNER) {
1991                 PMD_DRV_LOG(ERR,
1992                             "Can accelerate only outer vlan in QinQ\n");
1993                 return -EINVAL;
1994         }
1995
1996         return 0;
1997 }
1998
1999 static int
2000 bnxt_set_default_mac_addr_op(struct rte_eth_dev *dev,
2001                              struct rte_ether_addr *addr)
2002 {
2003         struct bnxt *bp = dev->data->dev_private;
2004         /* Default Filter is tied to VNIC 0 */
2005         struct bnxt_vnic_info *vnic = &bp->vnic_info[0];
2006         struct bnxt_filter_info *filter;
2007         int rc;
2008
2009         rc = is_bnxt_in_error(bp);
2010         if (rc)
2011                 return rc;
2012
2013         if (BNXT_VF(bp) && !BNXT_VF_IS_TRUSTED(bp))
2014                 return -EPERM;
2015
2016         if (rte_is_zero_ether_addr(addr))
2017                 return -EINVAL;
2018
2019         STAILQ_FOREACH(filter, &vnic->filter, next) {
2020                 /* Default Filter is at Index 0 */
2021                 if (filter->mac_index != 0)
2022                         continue;
2023
2024                 memcpy(filter->l2_addr, addr, RTE_ETHER_ADDR_LEN);
2025                 memset(filter->l2_addr_mask, 0xff, RTE_ETHER_ADDR_LEN);
2026                 filter->flags |= HWRM_CFA_L2_FILTER_ALLOC_INPUT_FLAGS_PATH_RX |
2027                         HWRM_CFA_L2_FILTER_ALLOC_INPUT_FLAGS_OUTERMOST;
2028                 filter->enables |=
2029                         HWRM_CFA_L2_FILTER_ALLOC_INPUT_ENABLES_L2_ADDR |
2030                         HWRM_CFA_L2_FILTER_ALLOC_INPUT_ENABLES_L2_ADDR_MASK;
2031
2032                 rc = bnxt_hwrm_set_l2_filter(bp, vnic->fw_vnic_id, filter);
2033                 if (rc) {
2034                         memcpy(filter->l2_addr, bp->mac_addr,
2035                                RTE_ETHER_ADDR_LEN);
2036                         return rc;
2037                 }
2038
2039                 memcpy(bp->mac_addr, addr, RTE_ETHER_ADDR_LEN);
2040                 PMD_DRV_LOG(DEBUG, "Set MAC addr\n");
2041                 return 0;
2042         }
2043
2044         return 0;
2045 }
2046
2047 static int
2048 bnxt_dev_set_mc_addr_list_op(struct rte_eth_dev *eth_dev,
2049                           struct rte_ether_addr *mc_addr_set,
2050                           uint32_t nb_mc_addr)
2051 {
2052         struct bnxt *bp = eth_dev->data->dev_private;
2053         char *mc_addr_list = (char *)mc_addr_set;
2054         struct bnxt_vnic_info *vnic;
2055         uint32_t off = 0, i = 0;
2056         int rc;
2057
2058         rc = is_bnxt_in_error(bp);
2059         if (rc)
2060                 return rc;
2061
2062         vnic = BNXT_GET_DEFAULT_VNIC(bp);
2063
2064         if (nb_mc_addr > BNXT_MAX_MC_ADDRS) {
2065                 vnic->flags |= BNXT_VNIC_INFO_ALLMULTI;
2066                 goto allmulti;
2067         }
2068
2069         /* TODO Check for Duplicate mcast addresses */
2070         vnic->flags &= ~BNXT_VNIC_INFO_ALLMULTI;
2071         for (i = 0; i < nb_mc_addr; i++) {
2072                 memcpy(vnic->mc_list + off, &mc_addr_list[i],
2073                         RTE_ETHER_ADDR_LEN);
2074                 off += RTE_ETHER_ADDR_LEN;
2075         }
2076
2077         vnic->mc_addr_cnt = i;
2078         if (vnic->mc_addr_cnt)
2079                 vnic->flags |= BNXT_VNIC_INFO_MCAST;
2080         else
2081                 vnic->flags &= ~BNXT_VNIC_INFO_MCAST;
2082
2083 allmulti:
2084         return bnxt_hwrm_cfa_l2_set_rx_mask(bp, vnic, 0, NULL);
2085 }
2086
2087 static int
2088 bnxt_fw_version_get(struct rte_eth_dev *dev, char *fw_version, size_t fw_size)
2089 {
2090         struct bnxt *bp = dev->data->dev_private;
2091         uint8_t fw_major = (bp->fw_ver >> 24) & 0xff;
2092         uint8_t fw_minor = (bp->fw_ver >> 16) & 0xff;
2093         uint8_t fw_updt = (bp->fw_ver >> 8) & 0xff;
2094         int ret;
2095
2096         ret = snprintf(fw_version, fw_size, "%d.%d.%d",
2097                         fw_major, fw_minor, fw_updt);
2098
2099         ret += 1; /* add the size of '\0' */
2100         if (fw_size < (uint32_t)ret)
2101                 return ret;
2102         else
2103                 return 0;
2104 }
2105
2106 static void
2107 bnxt_rxq_info_get_op(struct rte_eth_dev *dev, uint16_t queue_id,
2108         struct rte_eth_rxq_info *qinfo)
2109 {
2110         struct bnxt_rx_queue *rxq;
2111
2112         rxq = dev->data->rx_queues[queue_id];
2113
2114         qinfo->mp = rxq->mb_pool;
2115         qinfo->scattered_rx = dev->data->scattered_rx;
2116         qinfo->nb_desc = rxq->nb_rx_desc;
2117
2118         qinfo->conf.rx_free_thresh = rxq->rx_free_thresh;
2119         qinfo->conf.rx_drop_en = 0;
2120         qinfo->conf.rx_deferred_start = rxq->rx_deferred_start;
2121 }
2122
2123 static void
2124 bnxt_txq_info_get_op(struct rte_eth_dev *dev, uint16_t queue_id,
2125         struct rte_eth_txq_info *qinfo)
2126 {
2127         struct bnxt_tx_queue *txq;
2128
2129         txq = dev->data->tx_queues[queue_id];
2130
2131         qinfo->nb_desc = txq->nb_tx_desc;
2132
2133         qinfo->conf.tx_thresh.pthresh = txq->pthresh;
2134         qinfo->conf.tx_thresh.hthresh = txq->hthresh;
2135         qinfo->conf.tx_thresh.wthresh = txq->wthresh;
2136
2137         qinfo->conf.tx_free_thresh = txq->tx_free_thresh;
2138         qinfo->conf.tx_rs_thresh = 0;
2139         qinfo->conf.tx_deferred_start = txq->tx_deferred_start;
2140 }
2141
2142 int bnxt_mtu_set_op(struct rte_eth_dev *eth_dev, uint16_t new_mtu)
2143 {
2144         struct bnxt *bp = eth_dev->data->dev_private;
2145         uint32_t new_pkt_size;
2146         uint32_t rc = 0;
2147         uint32_t i;
2148
2149         rc = is_bnxt_in_error(bp);
2150         if (rc)
2151                 return rc;
2152
2153         /* Exit if receive queues are not configured yet */
2154         if (!eth_dev->data->nb_rx_queues)
2155                 return rc;
2156
2157         new_pkt_size = new_mtu + RTE_ETHER_HDR_LEN + RTE_ETHER_CRC_LEN +
2158                        VLAN_TAG_SIZE * BNXT_NUM_VLANS;
2159
2160 #ifdef RTE_ARCH_X86
2161         /*
2162          * If vector-mode tx/rx is active, disallow any MTU change that would
2163          * require scattered receive support.
2164          */
2165         if (eth_dev->data->dev_started &&
2166             (eth_dev->rx_pkt_burst == bnxt_recv_pkts_vec ||
2167              eth_dev->tx_pkt_burst == bnxt_xmit_pkts_vec) &&
2168             (new_pkt_size >
2169              eth_dev->data->min_rx_buf_size - RTE_PKTMBUF_HEADROOM)) {
2170                 PMD_DRV_LOG(ERR,
2171                             "MTU change would require scattered rx support. ");
2172                 PMD_DRV_LOG(ERR, "Stop port before changing MTU.\n");
2173                 return -EINVAL;
2174         }
2175 #endif
2176
2177         if (new_mtu > RTE_ETHER_MTU) {
2178                 bp->flags |= BNXT_FLAG_JUMBO;
2179                 bp->eth_dev->data->dev_conf.rxmode.offloads |=
2180                         DEV_RX_OFFLOAD_JUMBO_FRAME;
2181         } else {
2182                 bp->eth_dev->data->dev_conf.rxmode.offloads &=
2183                         ~DEV_RX_OFFLOAD_JUMBO_FRAME;
2184                 bp->flags &= ~BNXT_FLAG_JUMBO;
2185         }
2186
2187         /* Is there a change in mtu setting? */
2188         if (eth_dev->data->dev_conf.rxmode.max_rx_pkt_len == new_pkt_size)
2189                 return rc;
2190
2191         for (i = 0; i < bp->nr_vnics; i++) {
2192                 struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
2193                 uint16_t size = 0;
2194
2195                 vnic->mru = BNXT_VNIC_MRU(new_mtu);
2196                 rc = bnxt_hwrm_vnic_cfg(bp, vnic);
2197                 if (rc)
2198                         break;
2199
2200                 size = rte_pktmbuf_data_room_size(bp->rx_queues[0]->mb_pool);
2201                 size -= RTE_PKTMBUF_HEADROOM;
2202
2203                 if (size < new_mtu) {
2204                         rc = bnxt_hwrm_vnic_plcmode_cfg(bp, vnic);
2205                         if (rc)
2206                                 return rc;
2207                 }
2208         }
2209
2210         if (!rc)
2211                 eth_dev->data->dev_conf.rxmode.max_rx_pkt_len = new_pkt_size;
2212
2213         PMD_DRV_LOG(INFO, "New MTU is %d\n", new_mtu);
2214
2215         return rc;
2216 }
2217
2218 static int
2219 bnxt_vlan_pvid_set_op(struct rte_eth_dev *dev, uint16_t pvid, int on)
2220 {
2221         struct bnxt *bp = dev->data->dev_private;
2222         uint16_t vlan = bp->vlan;
2223         int rc;
2224
2225         rc = is_bnxt_in_error(bp);
2226         if (rc)
2227                 return rc;
2228
2229         if (!BNXT_SINGLE_PF(bp) || BNXT_VF(bp)) {
2230                 PMD_DRV_LOG(ERR,
2231                         "PVID cannot be modified for this function\n");
2232                 return -ENOTSUP;
2233         }
2234         bp->vlan = on ? pvid : 0;
2235
2236         rc = bnxt_hwrm_set_default_vlan(bp, 0, 0);
2237         if (rc)
2238                 bp->vlan = vlan;
2239         return rc;
2240 }
2241
2242 static int
2243 bnxt_dev_led_on_op(struct rte_eth_dev *dev)
2244 {
2245         struct bnxt *bp = dev->data->dev_private;
2246         int rc;
2247
2248         rc = is_bnxt_in_error(bp);
2249         if (rc)
2250                 return rc;
2251
2252         return bnxt_hwrm_port_led_cfg(bp, true);
2253 }
2254
2255 static int
2256 bnxt_dev_led_off_op(struct rte_eth_dev *dev)
2257 {
2258         struct bnxt *bp = dev->data->dev_private;
2259         int rc;
2260
2261         rc = is_bnxt_in_error(bp);
2262         if (rc)
2263                 return rc;
2264
2265         return bnxt_hwrm_port_led_cfg(bp, false);
2266 }
2267
2268 static uint32_t
2269 bnxt_rx_queue_count_op(struct rte_eth_dev *dev, uint16_t rx_queue_id)
2270 {
2271         struct bnxt *bp = (struct bnxt *)dev->data->dev_private;
2272         uint32_t desc = 0, raw_cons = 0, cons;
2273         struct bnxt_cp_ring_info *cpr;
2274         struct bnxt_rx_queue *rxq;
2275         struct rx_pkt_cmpl *rxcmp;
2276         int rc;
2277
2278         rc = is_bnxt_in_error(bp);
2279         if (rc)
2280                 return rc;
2281
2282         rxq = dev->data->rx_queues[rx_queue_id];
2283         cpr = rxq->cp_ring;
2284         raw_cons = cpr->cp_raw_cons;
2285
2286         while (1) {
2287                 cons = RING_CMP(cpr->cp_ring_struct, raw_cons);
2288                 rte_prefetch0(&cpr->cp_desc_ring[cons]);
2289                 rxcmp = (struct rx_pkt_cmpl *)&cpr->cp_desc_ring[cons];
2290
2291                 if (!CMP_VALID(rxcmp, raw_cons, cpr->cp_ring_struct)) {
2292                         break;
2293                 } else {
2294                         raw_cons++;
2295                         desc++;
2296                 }
2297         }
2298
2299         return desc;
2300 }
2301
2302 static int
2303 bnxt_rx_descriptor_status_op(void *rx_queue, uint16_t offset)
2304 {
2305         struct bnxt_rx_queue *rxq = (struct bnxt_rx_queue *)rx_queue;
2306         struct bnxt_rx_ring_info *rxr;
2307         struct bnxt_cp_ring_info *cpr;
2308         struct bnxt_sw_rx_bd *rx_buf;
2309         struct rx_pkt_cmpl *rxcmp;
2310         uint32_t cons, cp_cons;
2311         int rc;
2312
2313         if (!rxq)
2314                 return -EINVAL;
2315
2316         rc = is_bnxt_in_error(rxq->bp);
2317         if (rc)
2318                 return rc;
2319
2320         cpr = rxq->cp_ring;
2321         rxr = rxq->rx_ring;
2322
2323         if (offset >= rxq->nb_rx_desc)
2324                 return -EINVAL;
2325
2326         cons = RING_CMP(cpr->cp_ring_struct, offset);
2327         cp_cons = cpr->cp_raw_cons;
2328         rxcmp = (struct rx_pkt_cmpl *)&cpr->cp_desc_ring[cons];
2329
2330         if (cons > cp_cons) {
2331                 if (CMPL_VALID(rxcmp, cpr->valid))
2332                         return RTE_ETH_RX_DESC_DONE;
2333         } else {
2334                 if (CMPL_VALID(rxcmp, !cpr->valid))
2335                         return RTE_ETH_RX_DESC_DONE;
2336         }
2337         rx_buf = &rxr->rx_buf_ring[cons];
2338         if (rx_buf->mbuf == NULL)
2339                 return RTE_ETH_RX_DESC_UNAVAIL;
2340
2341
2342         return RTE_ETH_RX_DESC_AVAIL;
2343 }
2344
2345 static int
2346 bnxt_tx_descriptor_status_op(void *tx_queue, uint16_t offset)
2347 {
2348         struct bnxt_tx_queue *txq = (struct bnxt_tx_queue *)tx_queue;
2349         struct bnxt_tx_ring_info *txr;
2350         struct bnxt_cp_ring_info *cpr;
2351         struct bnxt_sw_tx_bd *tx_buf;
2352         struct tx_pkt_cmpl *txcmp;
2353         uint32_t cons, cp_cons;
2354         int rc;
2355
2356         if (!txq)
2357                 return -EINVAL;
2358
2359         rc = is_bnxt_in_error(txq->bp);
2360         if (rc)
2361                 return rc;
2362
2363         cpr = txq->cp_ring;
2364         txr = txq->tx_ring;
2365
2366         if (offset >= txq->nb_tx_desc)
2367                 return -EINVAL;
2368
2369         cons = RING_CMP(cpr->cp_ring_struct, offset);
2370         txcmp = (struct tx_pkt_cmpl *)&cpr->cp_desc_ring[cons];
2371         cp_cons = cpr->cp_raw_cons;
2372
2373         if (cons > cp_cons) {
2374                 if (CMPL_VALID(txcmp, cpr->valid))
2375                         return RTE_ETH_TX_DESC_UNAVAIL;
2376         } else {
2377                 if (CMPL_VALID(txcmp, !cpr->valid))
2378                         return RTE_ETH_TX_DESC_UNAVAIL;
2379         }
2380         tx_buf = &txr->tx_buf_ring[cons];
2381         if (tx_buf->mbuf == NULL)
2382                 return RTE_ETH_TX_DESC_DONE;
2383
2384         return RTE_ETH_TX_DESC_FULL;
2385 }
2386
2387 static struct bnxt_filter_info *
2388 bnxt_match_and_validate_ether_filter(struct bnxt *bp,
2389                                 struct rte_eth_ethertype_filter *efilter,
2390                                 struct bnxt_vnic_info *vnic0,
2391                                 struct bnxt_vnic_info *vnic,
2392                                 int *ret)
2393 {
2394         struct bnxt_filter_info *mfilter = NULL;
2395         int match = 0;
2396         *ret = 0;
2397
2398         if (efilter->ether_type == RTE_ETHER_TYPE_IPV4 ||
2399                 efilter->ether_type == RTE_ETHER_TYPE_IPV6) {
2400                 PMD_DRV_LOG(ERR, "invalid ether_type(0x%04x) in"
2401                         " ethertype filter.", efilter->ether_type);
2402                 *ret = -EINVAL;
2403                 goto exit;
2404         }
2405         if (efilter->queue >= bp->rx_nr_rings) {
2406                 PMD_DRV_LOG(ERR, "Invalid queue %d\n", efilter->queue);
2407                 *ret = -EINVAL;
2408                 goto exit;
2409         }
2410
2411         vnic0 = &bp->vnic_info[0];
2412         vnic = &bp->vnic_info[efilter->queue];
2413         if (vnic == NULL) {
2414                 PMD_DRV_LOG(ERR, "Invalid queue %d\n", efilter->queue);
2415                 *ret = -EINVAL;
2416                 goto exit;
2417         }
2418
2419         if (efilter->flags & RTE_ETHTYPE_FLAGS_DROP) {
2420                 STAILQ_FOREACH(mfilter, &vnic0->filter, next) {
2421                         if ((!memcmp(efilter->mac_addr.addr_bytes,
2422                                      mfilter->l2_addr, RTE_ETHER_ADDR_LEN) &&
2423                              mfilter->flags ==
2424                              HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_FLAGS_DROP &&
2425                              mfilter->ethertype == efilter->ether_type)) {
2426                                 match = 1;
2427                                 break;
2428                         }
2429                 }
2430         } else {
2431                 STAILQ_FOREACH(mfilter, &vnic->filter, next)
2432                         if ((!memcmp(efilter->mac_addr.addr_bytes,
2433                                      mfilter->l2_addr, RTE_ETHER_ADDR_LEN) &&
2434                              mfilter->ethertype == efilter->ether_type &&
2435                              mfilter->flags ==
2436                              HWRM_CFA_L2_FILTER_CFG_INPUT_FLAGS_PATH_RX)) {
2437                                 match = 1;
2438                                 break;
2439                         }
2440         }
2441
2442         if (match)
2443                 *ret = -EEXIST;
2444
2445 exit:
2446         return mfilter;
2447 }
2448
2449 static int
2450 bnxt_ethertype_filter(struct rte_eth_dev *dev,
2451                         enum rte_filter_op filter_op,
2452                         void *arg)
2453 {
2454         struct bnxt *bp = dev->data->dev_private;
2455         struct rte_eth_ethertype_filter *efilter =
2456                         (struct rte_eth_ethertype_filter *)arg;
2457         struct bnxt_filter_info *bfilter, *filter1;
2458         struct bnxt_vnic_info *vnic, *vnic0;
2459         int ret;
2460
2461         if (filter_op == RTE_ETH_FILTER_NOP)
2462                 return 0;
2463
2464         if (arg == NULL) {
2465                 PMD_DRV_LOG(ERR, "arg shouldn't be NULL for operation %u.",
2466                             filter_op);
2467                 return -EINVAL;
2468         }
2469
2470         vnic0 = &bp->vnic_info[0];
2471         vnic = &bp->vnic_info[efilter->queue];
2472
2473         switch (filter_op) {
2474         case RTE_ETH_FILTER_ADD:
2475                 bnxt_match_and_validate_ether_filter(bp, efilter,
2476                                                         vnic0, vnic, &ret);
2477                 if (ret < 0)
2478                         return ret;
2479
2480                 bfilter = bnxt_get_unused_filter(bp);
2481                 if (bfilter == NULL) {
2482                         PMD_DRV_LOG(ERR,
2483                                 "Not enough resources for a new filter.\n");
2484                         return -ENOMEM;
2485                 }
2486                 bfilter->filter_type = HWRM_CFA_NTUPLE_FILTER;
2487                 memcpy(bfilter->l2_addr, efilter->mac_addr.addr_bytes,
2488                        RTE_ETHER_ADDR_LEN);
2489                 memcpy(bfilter->dst_macaddr, efilter->mac_addr.addr_bytes,
2490                        RTE_ETHER_ADDR_LEN);
2491                 bfilter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_MACADDR;
2492                 bfilter->ethertype = efilter->ether_type;
2493                 bfilter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2494
2495                 filter1 = bnxt_get_l2_filter(bp, bfilter, vnic0);
2496                 if (filter1 == NULL) {
2497                         ret = -EINVAL;
2498                         goto cleanup;
2499                 }
2500                 bfilter->enables |=
2501                         HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_ENABLES_L2_FILTER_ID;
2502                 bfilter->fw_l2_filter_id = filter1->fw_l2_filter_id;
2503
2504                 bfilter->dst_id = vnic->fw_vnic_id;
2505
2506                 if (efilter->flags & RTE_ETHTYPE_FLAGS_DROP) {
2507                         bfilter->flags =
2508                                 HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_FLAGS_DROP;
2509                 }
2510
2511                 ret = bnxt_hwrm_set_ntuple_filter(bp, bfilter->dst_id, bfilter);
2512                 if (ret)
2513                         goto cleanup;
2514                 STAILQ_INSERT_TAIL(&vnic->filter, bfilter, next);
2515                 break;
2516         case RTE_ETH_FILTER_DELETE:
2517                 filter1 = bnxt_match_and_validate_ether_filter(bp, efilter,
2518                                                         vnic0, vnic, &ret);
2519                 if (ret == -EEXIST) {
2520                         ret = bnxt_hwrm_clear_ntuple_filter(bp, filter1);
2521
2522                         STAILQ_REMOVE(&vnic->filter, filter1, bnxt_filter_info,
2523                                       next);
2524                         bnxt_free_filter(bp, filter1);
2525                 } else if (ret == 0) {
2526                         PMD_DRV_LOG(ERR, "No matching filter found\n");
2527                 }
2528                 break;
2529         default:
2530                 PMD_DRV_LOG(ERR, "unsupported operation %u.", filter_op);
2531                 ret = -EINVAL;
2532                 goto error;
2533         }
2534         return ret;
2535 cleanup:
2536         bnxt_free_filter(bp, bfilter);
2537 error:
2538         return ret;
2539 }
2540
2541 static inline int
2542 parse_ntuple_filter(struct bnxt *bp,
2543                     struct rte_eth_ntuple_filter *nfilter,
2544                     struct bnxt_filter_info *bfilter)
2545 {
2546         uint32_t en = 0;
2547
2548         if (nfilter->queue >= bp->rx_nr_rings) {
2549                 PMD_DRV_LOG(ERR, "Invalid queue %d\n", nfilter->queue);
2550                 return -EINVAL;
2551         }
2552
2553         switch (nfilter->dst_port_mask) {
2554         case UINT16_MAX:
2555                 bfilter->dst_port_mask = -1;
2556                 bfilter->dst_port = nfilter->dst_port;
2557                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT |
2558                         NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT_MASK;
2559                 break;
2560         default:
2561                 PMD_DRV_LOG(ERR, "invalid dst_port mask.");
2562                 return -EINVAL;
2563         }
2564
2565         bfilter->ip_addr_type = NTUPLE_FLTR_ALLOC_INPUT_IP_ADDR_TYPE_IPV4;
2566         en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2567
2568         switch (nfilter->proto_mask) {
2569         case UINT8_MAX:
2570                 if (nfilter->proto == 17) /* IPPROTO_UDP */
2571                         bfilter->ip_protocol = 17;
2572                 else if (nfilter->proto == 6) /* IPPROTO_TCP */
2573                         bfilter->ip_protocol = 6;
2574                 else
2575                         return -EINVAL;
2576                 en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2577                 break;
2578         default:
2579                 PMD_DRV_LOG(ERR, "invalid protocol mask.");
2580                 return -EINVAL;
2581         }
2582
2583         switch (nfilter->dst_ip_mask) {
2584         case UINT32_MAX:
2585                 bfilter->dst_ipaddr_mask[0] = -1;
2586                 bfilter->dst_ipaddr[0] = nfilter->dst_ip;
2587                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR |
2588                         NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR_MASK;
2589                 break;
2590         default:
2591                 PMD_DRV_LOG(ERR, "invalid dst_ip mask.");
2592                 return -EINVAL;
2593         }
2594
2595         switch (nfilter->src_ip_mask) {
2596         case UINT32_MAX:
2597                 bfilter->src_ipaddr_mask[0] = -1;
2598                 bfilter->src_ipaddr[0] = nfilter->src_ip;
2599                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR |
2600                         NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR_MASK;
2601                 break;
2602         default:
2603                 PMD_DRV_LOG(ERR, "invalid src_ip mask.");
2604                 return -EINVAL;
2605         }
2606
2607         switch (nfilter->src_port_mask) {
2608         case UINT16_MAX:
2609                 bfilter->src_port_mask = -1;
2610                 bfilter->src_port = nfilter->src_port;
2611                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT |
2612                         NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT_MASK;
2613                 break;
2614         default:
2615                 PMD_DRV_LOG(ERR, "invalid src_port mask.");
2616                 return -EINVAL;
2617         }
2618
2619         bfilter->enables = en;
2620         return 0;
2621 }
2622
2623 static struct bnxt_filter_info*
2624 bnxt_match_ntuple_filter(struct bnxt *bp,
2625                          struct bnxt_filter_info *bfilter,
2626                          struct bnxt_vnic_info **mvnic)
2627 {
2628         struct bnxt_filter_info *mfilter = NULL;
2629         int i;
2630
2631         for (i = bp->nr_vnics - 1; i >= 0; i--) {
2632                 struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
2633                 STAILQ_FOREACH(mfilter, &vnic->filter, next) {
2634                         if (bfilter->src_ipaddr[0] == mfilter->src_ipaddr[0] &&
2635                             bfilter->src_ipaddr_mask[0] ==
2636                             mfilter->src_ipaddr_mask[0] &&
2637                             bfilter->src_port == mfilter->src_port &&
2638                             bfilter->src_port_mask == mfilter->src_port_mask &&
2639                             bfilter->dst_ipaddr[0] == mfilter->dst_ipaddr[0] &&
2640                             bfilter->dst_ipaddr_mask[0] ==
2641                             mfilter->dst_ipaddr_mask[0] &&
2642                             bfilter->dst_port == mfilter->dst_port &&
2643                             bfilter->dst_port_mask == mfilter->dst_port_mask &&
2644                             bfilter->flags == mfilter->flags &&
2645                             bfilter->enables == mfilter->enables) {
2646                                 if (mvnic)
2647                                         *mvnic = vnic;
2648                                 return mfilter;
2649                         }
2650                 }
2651         }
2652         return NULL;
2653 }
2654
2655 static int
2656 bnxt_cfg_ntuple_filter(struct bnxt *bp,
2657                        struct rte_eth_ntuple_filter *nfilter,
2658                        enum rte_filter_op filter_op)
2659 {
2660         struct bnxt_filter_info *bfilter, *mfilter, *filter1;
2661         struct bnxt_vnic_info *vnic, *vnic0, *mvnic;
2662         int ret;
2663
2664         if (nfilter->flags != RTE_5TUPLE_FLAGS) {
2665                 PMD_DRV_LOG(ERR, "only 5tuple is supported.");
2666                 return -EINVAL;
2667         }
2668
2669         if (nfilter->flags & RTE_NTUPLE_FLAGS_TCP_FLAG) {
2670                 PMD_DRV_LOG(ERR, "Ntuple filter: TCP flags not supported\n");
2671                 return -EINVAL;
2672         }
2673
2674         bfilter = bnxt_get_unused_filter(bp);
2675         if (bfilter == NULL) {
2676                 PMD_DRV_LOG(ERR,
2677                         "Not enough resources for a new filter.\n");
2678                 return -ENOMEM;
2679         }
2680         ret = parse_ntuple_filter(bp, nfilter, bfilter);
2681         if (ret < 0)
2682                 goto free_filter;
2683
2684         vnic = &bp->vnic_info[nfilter->queue];
2685         vnic0 = &bp->vnic_info[0];
2686         filter1 = STAILQ_FIRST(&vnic0->filter);
2687         if (filter1 == NULL) {
2688                 ret = -EINVAL;
2689                 goto free_filter;
2690         }
2691
2692         bfilter->dst_id = vnic->fw_vnic_id;
2693         bfilter->fw_l2_filter_id = filter1->fw_l2_filter_id;
2694         bfilter->enables |=
2695                 HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_ENABLES_L2_FILTER_ID;
2696         bfilter->ethertype = 0x800;
2697         bfilter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2698
2699         mfilter = bnxt_match_ntuple_filter(bp, bfilter, &mvnic);
2700
2701         if (mfilter != NULL && filter_op == RTE_ETH_FILTER_ADD &&
2702             bfilter->dst_id == mfilter->dst_id) {
2703                 PMD_DRV_LOG(ERR, "filter exists.\n");
2704                 ret = -EEXIST;
2705                 goto free_filter;
2706         } else if (mfilter != NULL && filter_op == RTE_ETH_FILTER_ADD &&
2707                    bfilter->dst_id != mfilter->dst_id) {
2708                 mfilter->dst_id = vnic->fw_vnic_id;
2709                 ret = bnxt_hwrm_set_ntuple_filter(bp, mfilter->dst_id, mfilter);
2710                 STAILQ_REMOVE(&mvnic->filter, mfilter, bnxt_filter_info, next);
2711                 STAILQ_INSERT_TAIL(&vnic->filter, mfilter, next);
2712                 PMD_DRV_LOG(ERR, "filter with matching pattern exists.\n");
2713                 PMD_DRV_LOG(ERR, " Updated it to the new destination queue\n");
2714                 goto free_filter;
2715         }
2716         if (mfilter == NULL && filter_op == RTE_ETH_FILTER_DELETE) {
2717                 PMD_DRV_LOG(ERR, "filter doesn't exist.");
2718                 ret = -ENOENT;
2719                 goto free_filter;
2720         }
2721
2722         if (filter_op == RTE_ETH_FILTER_ADD) {
2723                 bfilter->filter_type = HWRM_CFA_NTUPLE_FILTER;
2724                 ret = bnxt_hwrm_set_ntuple_filter(bp, bfilter->dst_id, bfilter);
2725                 if (ret)
2726                         goto free_filter;
2727                 STAILQ_INSERT_TAIL(&vnic->filter, bfilter, next);
2728         } else {
2729                 if (mfilter == NULL) {
2730                         /* This should not happen. But for Coverity! */
2731                         ret = -ENOENT;
2732                         goto free_filter;
2733                 }
2734                 ret = bnxt_hwrm_clear_ntuple_filter(bp, mfilter);
2735
2736                 STAILQ_REMOVE(&vnic->filter, mfilter, bnxt_filter_info, next);
2737                 bnxt_free_filter(bp, mfilter);
2738                 mfilter->fw_l2_filter_id = -1;
2739                 bnxt_free_filter(bp, bfilter);
2740                 bfilter->fw_l2_filter_id = -1;
2741         }
2742
2743         return 0;
2744 free_filter:
2745         bfilter->fw_l2_filter_id = -1;
2746         bnxt_free_filter(bp, bfilter);
2747         return ret;
2748 }
2749
2750 static int
2751 bnxt_ntuple_filter(struct rte_eth_dev *dev,
2752                         enum rte_filter_op filter_op,
2753                         void *arg)
2754 {
2755         struct bnxt *bp = dev->data->dev_private;
2756         int ret;
2757
2758         if (filter_op == RTE_ETH_FILTER_NOP)
2759                 return 0;
2760
2761         if (arg == NULL) {
2762                 PMD_DRV_LOG(ERR, "arg shouldn't be NULL for operation %u.",
2763                             filter_op);
2764                 return -EINVAL;
2765         }
2766
2767         switch (filter_op) {
2768         case RTE_ETH_FILTER_ADD:
2769                 ret = bnxt_cfg_ntuple_filter(bp,
2770                         (struct rte_eth_ntuple_filter *)arg,
2771                         filter_op);
2772                 break;
2773         case RTE_ETH_FILTER_DELETE:
2774                 ret = bnxt_cfg_ntuple_filter(bp,
2775                         (struct rte_eth_ntuple_filter *)arg,
2776                         filter_op);
2777                 break;
2778         default:
2779                 PMD_DRV_LOG(ERR, "unsupported operation %u.", filter_op);
2780                 ret = -EINVAL;
2781                 break;
2782         }
2783         return ret;
2784 }
2785
2786 static int
2787 bnxt_parse_fdir_filter(struct bnxt *bp,
2788                        struct rte_eth_fdir_filter *fdir,
2789                        struct bnxt_filter_info *filter)
2790 {
2791         enum rte_fdir_mode fdir_mode =
2792                 bp->eth_dev->data->dev_conf.fdir_conf.mode;
2793         struct bnxt_vnic_info *vnic0, *vnic;
2794         struct bnxt_filter_info *filter1;
2795         uint32_t en = 0;
2796         int i;
2797
2798         if (fdir_mode == RTE_FDIR_MODE_PERFECT_TUNNEL)
2799                 return -EINVAL;
2800
2801         filter->l2_ovlan = fdir->input.flow_ext.vlan_tci;
2802         en |= EM_FLOW_ALLOC_INPUT_EN_OVLAN_VID;
2803
2804         switch (fdir->input.flow_type) {
2805         case RTE_ETH_FLOW_IPV4:
2806         case RTE_ETH_FLOW_NONFRAG_IPV4_OTHER:
2807                 /* FALLTHROUGH */
2808                 filter->src_ipaddr[0] = fdir->input.flow.ip4_flow.src_ip;
2809                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR;
2810                 filter->dst_ipaddr[0] = fdir->input.flow.ip4_flow.dst_ip;
2811                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR;
2812                 filter->ip_protocol = fdir->input.flow.ip4_flow.proto;
2813                 en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2814                 filter->ip_addr_type =
2815                         NTUPLE_FLTR_ALLOC_INPUT_IP_ADDR_TYPE_IPV4;
2816                 filter->src_ipaddr_mask[0] = 0xffffffff;
2817                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR_MASK;
2818                 filter->dst_ipaddr_mask[0] = 0xffffffff;
2819                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR_MASK;
2820                 filter->ethertype = 0x800;
2821                 filter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2822                 break;
2823         case RTE_ETH_FLOW_NONFRAG_IPV4_TCP:
2824                 filter->src_port = fdir->input.flow.tcp4_flow.src_port;
2825                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT;
2826                 filter->dst_port = fdir->input.flow.tcp4_flow.dst_port;
2827                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT;
2828                 filter->dst_port_mask = 0xffff;
2829                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT_MASK;
2830                 filter->src_port_mask = 0xffff;
2831                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT_MASK;
2832                 filter->src_ipaddr[0] = fdir->input.flow.tcp4_flow.ip.src_ip;
2833                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR;
2834                 filter->dst_ipaddr[0] = fdir->input.flow.tcp4_flow.ip.dst_ip;
2835                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR;
2836                 filter->ip_protocol = 6;
2837                 en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2838                 filter->ip_addr_type =
2839                         NTUPLE_FLTR_ALLOC_INPUT_IP_ADDR_TYPE_IPV4;
2840                 filter->src_ipaddr_mask[0] = 0xffffffff;
2841                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR_MASK;
2842                 filter->dst_ipaddr_mask[0] = 0xffffffff;
2843                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR_MASK;
2844                 filter->ethertype = 0x800;
2845                 filter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2846                 break;
2847         case RTE_ETH_FLOW_NONFRAG_IPV4_UDP:
2848                 filter->src_port = fdir->input.flow.udp4_flow.src_port;
2849                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT;
2850                 filter->dst_port = fdir->input.flow.udp4_flow.dst_port;
2851                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT;
2852                 filter->dst_port_mask = 0xffff;
2853                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT_MASK;
2854                 filter->src_port_mask = 0xffff;
2855                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT_MASK;
2856                 filter->src_ipaddr[0] = fdir->input.flow.udp4_flow.ip.src_ip;
2857                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR;
2858                 filter->dst_ipaddr[0] = fdir->input.flow.udp4_flow.ip.dst_ip;
2859                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR;
2860                 filter->ip_protocol = 17;
2861                 en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2862                 filter->ip_addr_type =
2863                         NTUPLE_FLTR_ALLOC_INPUT_IP_ADDR_TYPE_IPV4;
2864                 filter->src_ipaddr_mask[0] = 0xffffffff;
2865                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR_MASK;
2866                 filter->dst_ipaddr_mask[0] = 0xffffffff;
2867                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR_MASK;
2868                 filter->ethertype = 0x800;
2869                 filter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2870                 break;
2871         case RTE_ETH_FLOW_IPV6:
2872         case RTE_ETH_FLOW_NONFRAG_IPV6_OTHER:
2873                 /* FALLTHROUGH */
2874                 filter->ip_addr_type =
2875                         NTUPLE_FLTR_ALLOC_INPUT_IP_ADDR_TYPE_IPV6;
2876                 filter->ip_protocol = fdir->input.flow.ipv6_flow.proto;
2877                 en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2878                 rte_memcpy(filter->src_ipaddr,
2879                            fdir->input.flow.ipv6_flow.src_ip, 16);
2880                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR;
2881                 rte_memcpy(filter->dst_ipaddr,
2882                            fdir->input.flow.ipv6_flow.dst_ip, 16);
2883                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR;
2884                 memset(filter->dst_ipaddr_mask, 0xff, 16);
2885                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR_MASK;
2886                 memset(filter->src_ipaddr_mask, 0xff, 16);
2887                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR_MASK;
2888                 filter->ethertype = 0x86dd;
2889                 filter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2890                 break;
2891         case RTE_ETH_FLOW_NONFRAG_IPV6_TCP:
2892                 filter->src_port = fdir->input.flow.tcp6_flow.src_port;
2893                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT;
2894                 filter->dst_port = fdir->input.flow.tcp6_flow.dst_port;
2895                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT;
2896                 filter->dst_port_mask = 0xffff;
2897                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT_MASK;
2898                 filter->src_port_mask = 0xffff;
2899                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT_MASK;
2900                 filter->ip_addr_type =
2901                         NTUPLE_FLTR_ALLOC_INPUT_IP_ADDR_TYPE_IPV6;
2902                 filter->ip_protocol = fdir->input.flow.tcp6_flow.ip.proto;
2903                 en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2904                 rte_memcpy(filter->src_ipaddr,
2905                            fdir->input.flow.tcp6_flow.ip.src_ip, 16);
2906                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR;
2907                 rte_memcpy(filter->dst_ipaddr,
2908                            fdir->input.flow.tcp6_flow.ip.dst_ip, 16);
2909                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR;
2910                 memset(filter->dst_ipaddr_mask, 0xff, 16);
2911                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR_MASK;
2912                 memset(filter->src_ipaddr_mask, 0xff, 16);
2913                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR_MASK;
2914                 filter->ethertype = 0x86dd;
2915                 filter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2916                 break;
2917         case RTE_ETH_FLOW_NONFRAG_IPV6_UDP:
2918                 filter->src_port = fdir->input.flow.udp6_flow.src_port;
2919                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT;
2920                 filter->dst_port = fdir->input.flow.udp6_flow.dst_port;
2921                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT;
2922                 filter->dst_port_mask = 0xffff;
2923                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_PORT_MASK;
2924                 filter->src_port_mask = 0xffff;
2925                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_PORT_MASK;
2926                 filter->ip_addr_type =
2927                         NTUPLE_FLTR_ALLOC_INPUT_IP_ADDR_TYPE_IPV6;
2928                 filter->ip_protocol = fdir->input.flow.udp6_flow.ip.proto;
2929                 en |= NTUPLE_FLTR_ALLOC_IN_EN_IP_PROTO;
2930                 rte_memcpy(filter->src_ipaddr,
2931                            fdir->input.flow.udp6_flow.ip.src_ip, 16);
2932                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR;
2933                 rte_memcpy(filter->dst_ipaddr,
2934                            fdir->input.flow.udp6_flow.ip.dst_ip, 16);
2935                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR;
2936                 memset(filter->dst_ipaddr_mask, 0xff, 16);
2937                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_IPADDR_MASK;
2938                 memset(filter->src_ipaddr_mask, 0xff, 16);
2939                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_SRC_IPADDR_MASK;
2940                 filter->ethertype = 0x86dd;
2941                 filter->enables |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2942                 break;
2943         case RTE_ETH_FLOW_L2_PAYLOAD:
2944                 filter->ethertype = fdir->input.flow.l2_flow.ether_type;
2945                 en |= NTUPLE_FLTR_ALLOC_INPUT_EN_ETHERTYPE;
2946                 break;
2947         case RTE_ETH_FLOW_VXLAN:
2948                 if (fdir->action.behavior == RTE_ETH_FDIR_REJECT)
2949                         return -EINVAL;
2950                 filter->vni = fdir->input.flow.tunnel_flow.tunnel_id;
2951                 filter->tunnel_type =
2952                         CFA_NTUPLE_FILTER_ALLOC_REQ_TUNNEL_TYPE_VXLAN;
2953                 en |= HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_ENABLES_TUNNEL_TYPE;
2954                 break;
2955         case RTE_ETH_FLOW_NVGRE:
2956                 if (fdir->action.behavior == RTE_ETH_FDIR_REJECT)
2957                         return -EINVAL;
2958                 filter->vni = fdir->input.flow.tunnel_flow.tunnel_id;
2959                 filter->tunnel_type =
2960                         CFA_NTUPLE_FILTER_ALLOC_REQ_TUNNEL_TYPE_NVGRE;
2961                 en |= HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_ENABLES_TUNNEL_TYPE;
2962                 break;
2963         case RTE_ETH_FLOW_UNKNOWN:
2964         case RTE_ETH_FLOW_RAW:
2965         case RTE_ETH_FLOW_FRAG_IPV4:
2966         case RTE_ETH_FLOW_NONFRAG_IPV4_SCTP:
2967         case RTE_ETH_FLOW_FRAG_IPV6:
2968         case RTE_ETH_FLOW_NONFRAG_IPV6_SCTP:
2969         case RTE_ETH_FLOW_IPV6_EX:
2970         case RTE_ETH_FLOW_IPV6_TCP_EX:
2971         case RTE_ETH_FLOW_IPV6_UDP_EX:
2972         case RTE_ETH_FLOW_GENEVE:
2973                 /* FALLTHROUGH */
2974         default:
2975                 return -EINVAL;
2976         }
2977
2978         vnic0 = &bp->vnic_info[0];
2979         vnic = &bp->vnic_info[fdir->action.rx_queue];
2980         if (vnic == NULL) {
2981                 PMD_DRV_LOG(ERR, "Invalid queue %d\n", fdir->action.rx_queue);
2982                 return -EINVAL;
2983         }
2984
2985         if (fdir_mode == RTE_FDIR_MODE_PERFECT_MAC_VLAN) {
2986                 rte_memcpy(filter->dst_macaddr,
2987                         fdir->input.flow.mac_vlan_flow.mac_addr.addr_bytes, 6);
2988                         en |= NTUPLE_FLTR_ALLOC_INPUT_EN_DST_MACADDR;
2989         }
2990
2991         if (fdir->action.behavior == RTE_ETH_FDIR_REJECT) {
2992                 filter->flags = HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_FLAGS_DROP;
2993                 filter1 = STAILQ_FIRST(&vnic0->filter);
2994                 //filter1 = bnxt_get_l2_filter(bp, filter, vnic0);
2995         } else {
2996                 filter->dst_id = vnic->fw_vnic_id;
2997                 for (i = 0; i < RTE_ETHER_ADDR_LEN; i++)
2998                         if (filter->dst_macaddr[i] == 0x00)
2999                                 filter1 = STAILQ_FIRST(&vnic0->filter);
3000                         else
3001                                 filter1 = bnxt_get_l2_filter(bp, filter, vnic);
3002         }
3003
3004         if (filter1 == NULL)
3005                 return -EINVAL;
3006
3007         en |= HWRM_CFA_NTUPLE_FILTER_ALLOC_INPUT_ENABLES_L2_FILTER_ID;
3008         filter->fw_l2_filter_id = filter1->fw_l2_filter_id;
3009
3010         filter->enables = en;
3011
3012         return 0;
3013 }
3014
3015 static struct bnxt_filter_info *
3016 bnxt_match_fdir(struct bnxt *bp, struct bnxt_filter_info *nf,
3017                 struct bnxt_vnic_info **mvnic)
3018 {
3019         struct bnxt_filter_info *mf = NULL;
3020         int i;
3021
3022         for (i = bp->nr_vnics - 1; i >= 0; i--) {
3023                 struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
3024
3025                 STAILQ_FOREACH(mf, &vnic->filter, next) {
3026                         if (mf->filter_type == nf->filter_type &&
3027                             mf->flags == nf->flags &&
3028                             mf->src_port == nf->src_port &&
3029                             mf->src_port_mask == nf->src_port_mask &&
3030                             mf->dst_port == nf->dst_port &&
3031                             mf->dst_port_mask == nf->dst_port_mask &&
3032                             mf->ip_protocol == nf->ip_protocol &&
3033                             mf->ip_addr_type == nf->ip_addr_type &&
3034                             mf->ethertype == nf->ethertype &&
3035                             mf->vni == nf->vni &&
3036                             mf->tunnel_type == nf->tunnel_type &&
3037                             mf->l2_ovlan == nf->l2_ovlan &&
3038                             mf->l2_ovlan_mask == nf->l2_ovlan_mask &&
3039                             mf->l2_ivlan == nf->l2_ivlan &&
3040                             mf->l2_ivlan_mask == nf->l2_ivlan_mask &&
3041                             !memcmp(mf->l2_addr, nf->l2_addr,
3042                                     RTE_ETHER_ADDR_LEN) &&
3043                             !memcmp(mf->l2_addr_mask, nf->l2_addr_mask,
3044                                     RTE_ETHER_ADDR_LEN) &&
3045                             !memcmp(mf->src_macaddr, nf->src_macaddr,
3046                                     RTE_ETHER_ADDR_LEN) &&
3047                             !memcmp(mf->dst_macaddr, nf->dst_macaddr,
3048                                     RTE_ETHER_ADDR_LEN) &&
3049                             !memcmp(mf->src_ipaddr, nf->src_ipaddr,
3050                                     sizeof(nf->src_ipaddr)) &&
3051                             !memcmp(mf->src_ipaddr_mask, nf->src_ipaddr_mask,
3052                                     sizeof(nf->src_ipaddr_mask)) &&
3053                             !memcmp(mf->dst_ipaddr, nf->dst_ipaddr,
3054                                     sizeof(nf->dst_ipaddr)) &&
3055                             !memcmp(mf->dst_ipaddr_mask, nf->dst_ipaddr_mask,
3056                                     sizeof(nf->dst_ipaddr_mask))) {
3057                                 if (mvnic)
3058                                         *mvnic = vnic;
3059                                 return mf;
3060                         }
3061                 }
3062         }
3063         return NULL;
3064 }
3065
3066 static int
3067 bnxt_fdir_filter(struct rte_eth_dev *dev,
3068                  enum rte_filter_op filter_op,
3069                  void *arg)
3070 {
3071         struct bnxt *bp = dev->data->dev_private;
3072         struct rte_eth_fdir_filter *fdir  = (struct rte_eth_fdir_filter *)arg;
3073         struct bnxt_filter_info *filter, *match;
3074         struct bnxt_vnic_info *vnic, *mvnic;
3075         int ret = 0, i;
3076
3077         if (filter_op == RTE_ETH_FILTER_NOP)
3078                 return 0;
3079
3080         if (arg == NULL && filter_op != RTE_ETH_FILTER_FLUSH)
3081                 return -EINVAL;
3082
3083         switch (filter_op) {
3084         case RTE_ETH_FILTER_ADD:
3085         case RTE_ETH_FILTER_DELETE:
3086                 /* FALLTHROUGH */
3087                 filter = bnxt_get_unused_filter(bp);
3088                 if (filter == NULL) {
3089                         PMD_DRV_LOG(ERR,
3090                                 "Not enough resources for a new flow.\n");
3091                         return -ENOMEM;
3092                 }
3093
3094                 ret = bnxt_parse_fdir_filter(bp, fdir, filter);
3095                 if (ret != 0)
3096                         goto free_filter;
3097                 filter->filter_type = HWRM_CFA_NTUPLE_FILTER;
3098
3099                 if (fdir->action.behavior == RTE_ETH_FDIR_REJECT)
3100                         vnic = &bp->vnic_info[0];
3101                 else
3102                         vnic = &bp->vnic_info[fdir->action.rx_queue];
3103
3104                 match = bnxt_match_fdir(bp, filter, &mvnic);
3105                 if (match != NULL && filter_op == RTE_ETH_FILTER_ADD) {
3106                         if (match->dst_id == vnic->fw_vnic_id) {
3107                                 PMD_DRV_LOG(ERR, "Flow already exists.\n");
3108                                 ret = -EEXIST;
3109                                 goto free_filter;
3110                         } else {
3111                                 match->dst_id = vnic->fw_vnic_id;
3112                                 ret = bnxt_hwrm_set_ntuple_filter(bp,
3113                                                                   match->dst_id,
3114                                                                   match);
3115                                 STAILQ_REMOVE(&mvnic->filter, match,
3116                                               bnxt_filter_info, next);
3117                                 STAILQ_INSERT_TAIL(&vnic->filter, match, next);
3118                                 PMD_DRV_LOG(ERR,
3119                                         "Filter with matching pattern exist\n");
3120                                 PMD_DRV_LOG(ERR,
3121                                         "Updated it to new destination q\n");
3122                                 goto free_filter;
3123                         }
3124                 }
3125                 if (match == NULL && filter_op == RTE_ETH_FILTER_DELETE) {
3126                         PMD_DRV_LOG(ERR, "Flow does not exist.\n");
3127                         ret = -ENOENT;
3128                         goto free_filter;
3129                 }
3130
3131                 if (filter_op == RTE_ETH_FILTER_ADD) {
3132                         ret = bnxt_hwrm_set_ntuple_filter(bp,
3133                                                           filter->dst_id,
3134                                                           filter);
3135                         if (ret)
3136                                 goto free_filter;
3137                         STAILQ_INSERT_TAIL(&vnic->filter, filter, next);
3138                 } else {
3139                         ret = bnxt_hwrm_clear_ntuple_filter(bp, match);
3140                         STAILQ_REMOVE(&vnic->filter, match,
3141                                       bnxt_filter_info, next);
3142                         bnxt_free_filter(bp, match);
3143                         filter->fw_l2_filter_id = -1;
3144                         bnxt_free_filter(bp, filter);
3145                 }
3146                 break;
3147         case RTE_ETH_FILTER_FLUSH:
3148                 for (i = bp->nr_vnics - 1; i >= 0; i--) {
3149                         struct bnxt_vnic_info *vnic = &bp->vnic_info[i];
3150
3151                         STAILQ_FOREACH(filter, &vnic->filter, next) {
3152                                 if (filter->filter_type ==
3153                                     HWRM_CFA_NTUPLE_FILTER) {
3154                                         ret =
3155                                         bnxt_hwrm_clear_ntuple_filter(bp,
3156                                                                       filter);
3157                                         STAILQ_REMOVE(&vnic->filter, filter,
3158                                                       bnxt_filter_info, next);
3159                                 }
3160                         }
3161                 }
3162                 return ret;
3163         case RTE_ETH_FILTER_UPDATE:
3164         case RTE_ETH_FILTER_STATS:
3165         case RTE_ETH_FILTER_INFO:
3166                 PMD_DRV_LOG(ERR, "operation %u not implemented", filter_op);
3167                 break;
3168         default:
3169                 PMD_DRV_LOG(ERR, "unknown operation %u", filter_op);
3170                 ret = -EINVAL;
3171                 break;
3172         }
3173         return ret;
3174
3175 free_filter:
3176         filter->fw_l2_filter_id = -1;
3177         bnxt_free_filter(bp, filter);
3178         return ret;
3179 }
3180
3181 static int
3182 bnxt_filter_ctrl_op(struct rte_eth_dev *dev __rte_unused,
3183                     enum rte_filter_type filter_type,
3184                     enum rte_filter_op filter_op, void *arg)
3185 {
3186         int ret = 0;
3187
3188         ret = is_bnxt_in_error(dev->data->dev_private);
3189         if (ret)
3190                 return ret;
3191
3192         switch (filter_type) {
3193         case RTE_ETH_FILTER_TUNNEL:
3194                 PMD_DRV_LOG(ERR,
3195                         "filter type: %d: To be implemented\n", filter_type);
3196                 break;
3197         case RTE_ETH_FILTER_FDIR:
3198                 ret = bnxt_fdir_filter(dev, filter_op, arg);
3199                 break;
3200         case RTE_ETH_FILTER_NTUPLE:
3201                 ret = bnxt_ntuple_filter(dev, filter_op, arg);
3202                 break;
3203         case RTE_ETH_FILTER_ETHERTYPE:
3204                 ret = bnxt_ethertype_filter(dev, filter_op, arg);
3205                 break;
3206         case RTE_ETH_FILTER_GENERIC:
3207                 if (filter_op != RTE_ETH_FILTER_GET)
3208                         return -EINVAL;
3209                 *(const void **)arg = &bnxt_flow_ops;
3210                 break;
3211         default:
3212                 PMD_DRV_LOG(ERR,
3213                         "Filter type (%d) not supported", filter_type);
3214                 ret = -EINVAL;
3215                 break;
3216         }
3217         return ret;
3218 }
3219
3220 static const uint32_t *
3221 bnxt_dev_supported_ptypes_get_op(struct rte_eth_dev *dev)
3222 {
3223         static const uint32_t ptypes[] = {
3224                 RTE_PTYPE_L2_ETHER_VLAN,
3225                 RTE_PTYPE_L3_IPV4_EXT_UNKNOWN,
3226                 RTE_PTYPE_L3_IPV6_EXT_UNKNOWN,
3227                 RTE_PTYPE_L4_ICMP,
3228                 RTE_PTYPE_L4_TCP,
3229                 RTE_PTYPE_L4_UDP,
3230                 RTE_PTYPE_INNER_L3_IPV4_EXT_UNKNOWN,
3231                 RTE_PTYPE_INNER_L3_IPV6_EXT_UNKNOWN,
3232                 RTE_PTYPE_INNER_L4_ICMP,
3233                 RTE_PTYPE_INNER_L4_TCP,
3234                 RTE_PTYPE_INNER_L4_UDP,
3235                 RTE_PTYPE_UNKNOWN
3236         };
3237
3238         if (!dev->rx_pkt_burst)
3239                 return NULL;
3240
3241         return ptypes;
3242 }
3243
3244 static int bnxt_map_regs(struct bnxt *bp, uint32_t *reg_arr, int count,
3245                          int reg_win)
3246 {
3247         uint32_t reg_base = *reg_arr & 0xfffff000;
3248         uint32_t win_off;
3249         int i;
3250
3251         for (i = 0; i < count; i++) {
3252                 if ((reg_arr[i] & 0xfffff000) != reg_base)
3253                         return -ERANGE;
3254         }
3255         win_off = BNXT_GRCPF_REG_WINDOW_BASE_OUT + (reg_win - 1) * 4;
3256         rte_write32(reg_base, (uint8_t *)bp->bar0 + win_off);
3257         return 0;
3258 }
3259
3260 static int bnxt_map_ptp_regs(struct bnxt *bp)
3261 {
3262         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3263         uint32_t *reg_arr;
3264         int rc, i;
3265
3266         reg_arr = ptp->rx_regs;
3267         rc = bnxt_map_regs(bp, reg_arr, BNXT_PTP_RX_REGS, 5);
3268         if (rc)
3269                 return rc;
3270
3271         reg_arr = ptp->tx_regs;
3272         rc = bnxt_map_regs(bp, reg_arr, BNXT_PTP_TX_REGS, 6);
3273         if (rc)
3274                 return rc;
3275
3276         for (i = 0; i < BNXT_PTP_RX_REGS; i++)
3277                 ptp->rx_mapped_regs[i] = 0x5000 + (ptp->rx_regs[i] & 0xfff);
3278
3279         for (i = 0; i < BNXT_PTP_TX_REGS; i++)
3280                 ptp->tx_mapped_regs[i] = 0x6000 + (ptp->tx_regs[i] & 0xfff);
3281
3282         return 0;
3283 }
3284
3285 static void bnxt_unmap_ptp_regs(struct bnxt *bp)
3286 {
3287         rte_write32(0, (uint8_t *)bp->bar0 +
3288                          BNXT_GRCPF_REG_WINDOW_BASE_OUT + 16);
3289         rte_write32(0, (uint8_t *)bp->bar0 +
3290                          BNXT_GRCPF_REG_WINDOW_BASE_OUT + 20);
3291 }
3292
3293 static uint64_t bnxt_cc_read(struct bnxt *bp)
3294 {
3295         uint64_t ns;
3296
3297         ns = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3298                               BNXT_GRCPF_REG_SYNC_TIME));
3299         ns |= (uint64_t)(rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3300                                           BNXT_GRCPF_REG_SYNC_TIME + 4))) << 32;
3301         return ns;
3302 }
3303
3304 static int bnxt_get_tx_ts(struct bnxt *bp, uint64_t *ts)
3305 {
3306         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3307         uint32_t fifo;
3308
3309         fifo = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3310                                 ptp->tx_mapped_regs[BNXT_PTP_TX_FIFO]));
3311         if (fifo & BNXT_PTP_TX_FIFO_EMPTY)
3312                 return -EAGAIN;
3313
3314         fifo = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3315                                 ptp->tx_mapped_regs[BNXT_PTP_TX_FIFO]));
3316         *ts = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3317                                 ptp->tx_mapped_regs[BNXT_PTP_TX_TS_L]));
3318         *ts |= (uint64_t)rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3319                                 ptp->tx_mapped_regs[BNXT_PTP_TX_TS_H])) << 32;
3320
3321         return 0;
3322 }
3323
3324 static int bnxt_get_rx_ts(struct bnxt *bp, uint64_t *ts)
3325 {
3326         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3327         struct bnxt_pf_info *pf = &bp->pf;
3328         uint16_t port_id;
3329         uint32_t fifo;
3330
3331         if (!ptp)
3332                 return -ENODEV;
3333
3334         fifo = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3335                                 ptp->rx_mapped_regs[BNXT_PTP_RX_FIFO]));
3336         if (!(fifo & BNXT_PTP_RX_FIFO_PENDING))
3337                 return -EAGAIN;
3338
3339         port_id = pf->port_id;
3340         rte_write32(1 << port_id, (uint8_t *)bp->bar0 +
3341                ptp->rx_mapped_regs[BNXT_PTP_RX_FIFO_ADV]);
3342
3343         fifo = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3344                                    ptp->rx_mapped_regs[BNXT_PTP_RX_FIFO]));
3345         if (fifo & BNXT_PTP_RX_FIFO_PENDING) {
3346 /*              bnxt_clr_rx_ts(bp);       TBD  */
3347                 return -EBUSY;
3348         }
3349
3350         *ts = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3351                                 ptp->rx_mapped_regs[BNXT_PTP_RX_TS_L]));
3352         *ts |= (uint64_t)rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3353                                 ptp->rx_mapped_regs[BNXT_PTP_RX_TS_H])) << 32;
3354
3355         return 0;
3356 }
3357
3358 static int
3359 bnxt_timesync_write_time(struct rte_eth_dev *dev, const struct timespec *ts)
3360 {
3361         uint64_t ns;
3362         struct bnxt *bp = dev->data->dev_private;
3363         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3364
3365         if (!ptp)
3366                 return 0;
3367
3368         ns = rte_timespec_to_ns(ts);
3369         /* Set the timecounters to a new value. */
3370         ptp->tc.nsec = ns;
3371
3372         return 0;
3373 }
3374
3375 static int
3376 bnxt_timesync_read_time(struct rte_eth_dev *dev, struct timespec *ts)
3377 {
3378         struct bnxt *bp = dev->data->dev_private;
3379         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3380         uint64_t ns, systime_cycles = 0;
3381         int rc = 0;
3382
3383         if (!ptp)
3384                 return 0;
3385
3386         if (BNXT_CHIP_THOR(bp))
3387                 rc = bnxt_hwrm_port_ts_query(bp, BNXT_PTP_FLAGS_CURRENT_TIME,
3388                                              &systime_cycles);
3389         else
3390                 systime_cycles = bnxt_cc_read(bp);
3391
3392         ns = rte_timecounter_update(&ptp->tc, systime_cycles);
3393         *ts = rte_ns_to_timespec(ns);
3394
3395         return rc;
3396 }
3397 static int
3398 bnxt_timesync_enable(struct rte_eth_dev *dev)
3399 {
3400         struct bnxt *bp = dev->data->dev_private;
3401         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3402         uint32_t shift = 0;
3403         int rc;
3404
3405         if (!ptp)
3406                 return 0;
3407
3408         ptp->rx_filter = 1;
3409         ptp->tx_tstamp_en = 1;
3410         ptp->rxctl = BNXT_PTP_MSG_EVENTS;
3411
3412         rc = bnxt_hwrm_ptp_cfg(bp);
3413         if (rc)
3414                 return rc;
3415
3416         memset(&ptp->tc, 0, sizeof(struct rte_timecounter));
3417         memset(&ptp->rx_tstamp_tc, 0, sizeof(struct rte_timecounter));
3418         memset(&ptp->tx_tstamp_tc, 0, sizeof(struct rte_timecounter));
3419
3420         ptp->tc.cc_mask = BNXT_CYCLECOUNTER_MASK;
3421         ptp->tc.cc_shift = shift;
3422         ptp->tc.nsec_mask = (1ULL << shift) - 1;
3423
3424         ptp->rx_tstamp_tc.cc_mask = BNXT_CYCLECOUNTER_MASK;
3425         ptp->rx_tstamp_tc.cc_shift = shift;
3426         ptp->rx_tstamp_tc.nsec_mask = (1ULL << shift) - 1;
3427
3428         ptp->tx_tstamp_tc.cc_mask = BNXT_CYCLECOUNTER_MASK;
3429         ptp->tx_tstamp_tc.cc_shift = shift;
3430         ptp->tx_tstamp_tc.nsec_mask = (1ULL << shift) - 1;
3431
3432         if (!BNXT_CHIP_THOR(bp))
3433                 bnxt_map_ptp_regs(bp);
3434
3435         return 0;
3436 }
3437
3438 static int
3439 bnxt_timesync_disable(struct rte_eth_dev *dev)
3440 {
3441         struct bnxt *bp = dev->data->dev_private;
3442         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3443
3444         if (!ptp)
3445                 return 0;
3446
3447         ptp->rx_filter = 0;
3448         ptp->tx_tstamp_en = 0;
3449         ptp->rxctl = 0;
3450
3451         bnxt_hwrm_ptp_cfg(bp);
3452
3453         if (!BNXT_CHIP_THOR(bp))
3454                 bnxt_unmap_ptp_regs(bp);
3455
3456         return 0;
3457 }
3458
3459 static int
3460 bnxt_timesync_read_rx_timestamp(struct rte_eth_dev *dev,
3461                                  struct timespec *timestamp,
3462                                  uint32_t flags __rte_unused)
3463 {
3464         struct bnxt *bp = dev->data->dev_private;
3465         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3466         uint64_t rx_tstamp_cycles = 0;
3467         uint64_t ns;
3468
3469         if (!ptp)
3470                 return 0;
3471
3472         if (BNXT_CHIP_THOR(bp))
3473                 rx_tstamp_cycles = ptp->rx_timestamp;
3474         else
3475                 bnxt_get_rx_ts(bp, &rx_tstamp_cycles);
3476
3477         ns = rte_timecounter_update(&ptp->rx_tstamp_tc, rx_tstamp_cycles);
3478         *timestamp = rte_ns_to_timespec(ns);
3479         return  0;
3480 }
3481
3482 static int
3483 bnxt_timesync_read_tx_timestamp(struct rte_eth_dev *dev,
3484                                  struct timespec *timestamp)
3485 {
3486         struct bnxt *bp = dev->data->dev_private;
3487         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3488         uint64_t tx_tstamp_cycles = 0;
3489         uint64_t ns;
3490         int rc = 0;
3491
3492         if (!ptp)
3493                 return 0;
3494
3495         if (BNXT_CHIP_THOR(bp))
3496                 rc = bnxt_hwrm_port_ts_query(bp, BNXT_PTP_FLAGS_PATH_TX,
3497                                              &tx_tstamp_cycles);
3498         else
3499                 rc = bnxt_get_tx_ts(bp, &tx_tstamp_cycles);
3500
3501         ns = rte_timecounter_update(&ptp->tx_tstamp_tc, tx_tstamp_cycles);
3502         *timestamp = rte_ns_to_timespec(ns);
3503
3504         return rc;
3505 }
3506
3507 static int
3508 bnxt_timesync_adjust_time(struct rte_eth_dev *dev, int64_t delta)
3509 {
3510         struct bnxt *bp = dev->data->dev_private;
3511         struct bnxt_ptp_cfg *ptp = bp->ptp_cfg;
3512
3513         if (!ptp)
3514                 return 0;
3515
3516         ptp->tc.nsec += delta;
3517
3518         return 0;
3519 }
3520
3521 static int
3522 bnxt_get_eeprom_length_op(struct rte_eth_dev *dev)
3523 {
3524         struct bnxt *bp = dev->data->dev_private;
3525         int rc;
3526         uint32_t dir_entries;
3527         uint32_t entry_length;
3528
3529         rc = is_bnxt_in_error(bp);
3530         if (rc)
3531                 return rc;
3532
3533         PMD_DRV_LOG(INFO, "%04x:%02x:%02x:%02x\n",
3534                 bp->pdev->addr.domain, bp->pdev->addr.bus,
3535                 bp->pdev->addr.devid, bp->pdev->addr.function);
3536
3537         rc = bnxt_hwrm_nvm_get_dir_info(bp, &dir_entries, &entry_length);
3538         if (rc != 0)
3539                 return rc;
3540
3541         return dir_entries * entry_length;
3542 }
3543
3544 static int
3545 bnxt_get_eeprom_op(struct rte_eth_dev *dev,
3546                 struct rte_dev_eeprom_info *in_eeprom)
3547 {
3548         struct bnxt *bp = dev->data->dev_private;
3549         uint32_t index;
3550         uint32_t offset;
3551         int rc;
3552
3553         rc = is_bnxt_in_error(bp);
3554         if (rc)
3555                 return rc;
3556
3557         PMD_DRV_LOG(INFO, "%04x:%02x:%02x:%02x in_eeprom->offset = %d "
3558                 "len = %d\n", bp->pdev->addr.domain,
3559                 bp->pdev->addr.bus, bp->pdev->addr.devid,
3560                 bp->pdev->addr.function, in_eeprom->offset, in_eeprom->length);
3561
3562         if (in_eeprom->offset == 0) /* special offset value to get directory */
3563                 return bnxt_get_nvram_directory(bp, in_eeprom->length,
3564                                                 in_eeprom->data);
3565
3566         index = in_eeprom->offset >> 24;
3567         offset = in_eeprom->offset & 0xffffff;
3568
3569         if (index != 0)
3570                 return bnxt_hwrm_get_nvram_item(bp, index - 1, offset,
3571                                            in_eeprom->length, in_eeprom->data);
3572
3573         return 0;
3574 }
3575
3576 static bool bnxt_dir_type_is_ape_bin_format(uint16_t dir_type)
3577 {
3578         switch (dir_type) {
3579         case BNX_DIR_TYPE_CHIMP_PATCH:
3580         case BNX_DIR_TYPE_BOOTCODE:
3581         case BNX_DIR_TYPE_BOOTCODE_2:
3582         case BNX_DIR_TYPE_APE_FW:
3583         case BNX_DIR_TYPE_APE_PATCH:
3584         case BNX_DIR_TYPE_KONG_FW:
3585         case BNX_DIR_TYPE_KONG_PATCH:
3586         case BNX_DIR_TYPE_BONO_FW:
3587         case BNX_DIR_TYPE_BONO_PATCH:
3588                 /* FALLTHROUGH */
3589                 return true;
3590         }
3591
3592         return false;
3593 }
3594
3595 static bool bnxt_dir_type_is_other_exec_format(uint16_t dir_type)
3596 {
3597         switch (dir_type) {
3598         case BNX_DIR_TYPE_AVS:
3599         case BNX_DIR_TYPE_EXP_ROM_MBA:
3600         case BNX_DIR_TYPE_PCIE:
3601         case BNX_DIR_TYPE_TSCF_UCODE:
3602         case BNX_DIR_TYPE_EXT_PHY:
3603         case BNX_DIR_TYPE_CCM:
3604         case BNX_DIR_TYPE_ISCSI_BOOT:
3605         case BNX_DIR_TYPE_ISCSI_BOOT_IPV6:
3606         case BNX_DIR_TYPE_ISCSI_BOOT_IPV4N6:
3607                 /* FALLTHROUGH */
3608                 return true;
3609         }
3610
3611         return false;
3612 }
3613
3614 static bool bnxt_dir_type_is_executable(uint16_t dir_type)
3615 {
3616         return bnxt_dir_type_is_ape_bin_format(dir_type) ||
3617                 bnxt_dir_type_is_other_exec_format(dir_type);
3618 }
3619
3620 static int
3621 bnxt_set_eeprom_op(struct rte_eth_dev *dev,
3622                 struct rte_dev_eeprom_info *in_eeprom)
3623 {
3624         struct bnxt *bp = dev->data->dev_private;
3625         uint8_t index, dir_op;
3626         uint16_t type, ext, ordinal, attr;
3627         int rc;
3628
3629         rc = is_bnxt_in_error(bp);
3630         if (rc)
3631                 return rc;
3632
3633         PMD_DRV_LOG(INFO, "%04x:%02x:%02x:%02x in_eeprom->offset = %d "
3634                 "len = %d\n", bp->pdev->addr.domain,
3635                 bp->pdev->addr.bus, bp->pdev->addr.devid,
3636                 bp->pdev->addr.function, in_eeprom->offset, in_eeprom->length);
3637
3638         if (!BNXT_PF(bp)) {
3639                 PMD_DRV_LOG(ERR, "NVM write not supported from a VF\n");
3640                 return -EINVAL;
3641         }
3642
3643         type = in_eeprom->magic >> 16;
3644
3645         if (type == 0xffff) { /* special value for directory operations */
3646                 index = in_eeprom->magic & 0xff;
3647                 dir_op = in_eeprom->magic >> 8;
3648                 if (index == 0)
3649                         return -EINVAL;
3650                 switch (dir_op) {
3651                 case 0x0e: /* erase */
3652                         if (in_eeprom->offset != ~in_eeprom->magic)
3653                                 return -EINVAL;
3654                         return bnxt_hwrm_erase_nvram_directory(bp, index - 1);
3655                 default:
3656                         return -EINVAL;
3657                 }
3658         }
3659
3660         /* Create or re-write an NVM item: */
3661         if (bnxt_dir_type_is_executable(type) == true)
3662                 return -EOPNOTSUPP;
3663         ext = in_eeprom->magic & 0xffff;
3664         ordinal = in_eeprom->offset >> 16;
3665         attr = in_eeprom->offset & 0xffff;
3666
3667         return bnxt_hwrm_flash_nvram(bp, type, ordinal, ext, attr,
3668                                      in_eeprom->data, in_eeprom->length);
3669 }
3670
3671 /*
3672  * Initialization
3673  */
3674
3675 static const struct eth_dev_ops bnxt_dev_ops = {
3676         .dev_infos_get = bnxt_dev_info_get_op,
3677         .dev_close = bnxt_dev_close_op,
3678         .dev_configure = bnxt_dev_configure_op,
3679         .dev_start = bnxt_dev_start_op,
3680         .dev_stop = bnxt_dev_stop_op,
3681         .dev_set_link_up = bnxt_dev_set_link_up_op,
3682         .dev_set_link_down = bnxt_dev_set_link_down_op,
3683         .stats_get = bnxt_stats_get_op,
3684         .stats_reset = bnxt_stats_reset_op,
3685         .rx_queue_setup = bnxt_rx_queue_setup_op,
3686         .rx_queue_release = bnxt_rx_queue_release_op,
3687         .tx_queue_setup = bnxt_tx_queue_setup_op,
3688         .tx_queue_release = bnxt_tx_queue_release_op,
3689         .rx_queue_intr_enable = bnxt_rx_queue_intr_enable_op,
3690         .rx_queue_intr_disable = bnxt_rx_queue_intr_disable_op,
3691         .reta_update = bnxt_reta_update_op,
3692         .reta_query = bnxt_reta_query_op,
3693         .rss_hash_update = bnxt_rss_hash_update_op,
3694         .rss_hash_conf_get = bnxt_rss_hash_conf_get_op,
3695         .link_update = bnxt_link_update_op,
3696         .promiscuous_enable = bnxt_promiscuous_enable_op,
3697         .promiscuous_disable = bnxt_promiscuous_disable_op,
3698         .allmulticast_enable = bnxt_allmulticast_enable_op,
3699         .allmulticast_disable = bnxt_allmulticast_disable_op,
3700         .mac_addr_add = bnxt_mac_addr_add_op,
3701         .mac_addr_remove = bnxt_mac_addr_remove_op,
3702         .flow_ctrl_get = bnxt_flow_ctrl_get_op,
3703         .flow_ctrl_set = bnxt_flow_ctrl_set_op,
3704         .udp_tunnel_port_add  = bnxt_udp_tunnel_port_add_op,
3705         .udp_tunnel_port_del  = bnxt_udp_tunnel_port_del_op,
3706         .vlan_filter_set = bnxt_vlan_filter_set_op,
3707         .vlan_offload_set = bnxt_vlan_offload_set_op,
3708         .vlan_tpid_set = bnxt_vlan_tpid_set_op,
3709         .vlan_pvid_set = bnxt_vlan_pvid_set_op,
3710         .mtu_set = bnxt_mtu_set_op,
3711         .mac_addr_set = bnxt_set_default_mac_addr_op,
3712         .xstats_get = bnxt_dev_xstats_get_op,
3713         .xstats_get_names = bnxt_dev_xstats_get_names_op,
3714         .xstats_reset = bnxt_dev_xstats_reset_op,
3715         .fw_version_get = bnxt_fw_version_get,
3716         .set_mc_addr_list = bnxt_dev_set_mc_addr_list_op,
3717         .rxq_info_get = bnxt_rxq_info_get_op,
3718         .txq_info_get = bnxt_txq_info_get_op,
3719         .dev_led_on = bnxt_dev_led_on_op,
3720         .dev_led_off = bnxt_dev_led_off_op,
3721         .xstats_get_by_id = bnxt_dev_xstats_get_by_id_op,
3722         .xstats_get_names_by_id = bnxt_dev_xstats_get_names_by_id_op,
3723         .rx_queue_count = bnxt_rx_queue_count_op,
3724         .rx_descriptor_status = bnxt_rx_descriptor_status_op,
3725         .tx_descriptor_status = bnxt_tx_descriptor_status_op,
3726         .rx_queue_start = bnxt_rx_queue_start,
3727         .rx_queue_stop = bnxt_rx_queue_stop,
3728         .tx_queue_start = bnxt_tx_queue_start,
3729         .tx_queue_stop = bnxt_tx_queue_stop,
3730         .filter_ctrl = bnxt_filter_ctrl_op,
3731         .dev_supported_ptypes_get = bnxt_dev_supported_ptypes_get_op,
3732         .get_eeprom_length    = bnxt_get_eeprom_length_op,
3733         .get_eeprom           = bnxt_get_eeprom_op,
3734         .set_eeprom           = bnxt_set_eeprom_op,
3735         .timesync_enable      = bnxt_timesync_enable,
3736         .timesync_disable     = bnxt_timesync_disable,
3737         .timesync_read_time   = bnxt_timesync_read_time,
3738         .timesync_write_time   = bnxt_timesync_write_time,
3739         .timesync_adjust_time = bnxt_timesync_adjust_time,
3740         .timesync_read_rx_timestamp = bnxt_timesync_read_rx_timestamp,
3741         .timesync_read_tx_timestamp = bnxt_timesync_read_tx_timestamp,
3742 };
3743
3744 static uint32_t bnxt_map_reset_regs(struct bnxt *bp, uint32_t reg)
3745 {
3746         uint32_t offset;
3747
3748         /* Only pre-map the reset GRC registers using window 3 */
3749         rte_write32(reg & 0xfffff000, (uint8_t *)bp->bar0 +
3750                     BNXT_GRCPF_REG_WINDOW_BASE_OUT + 8);
3751
3752         offset = BNXT_GRCP_WINDOW_3_BASE + (reg & 0xffc);
3753
3754         return offset;
3755 }
3756
3757 int bnxt_map_fw_health_status_regs(struct bnxt *bp)
3758 {
3759         struct bnxt_error_recovery_info *info = bp->recovery_info;
3760         uint32_t reg_base = 0xffffffff;
3761         int i;
3762
3763         /* Only pre-map the monitoring GRC registers using window 2 */
3764         for (i = 0; i < BNXT_FW_STATUS_REG_CNT; i++) {
3765                 uint32_t reg = info->status_regs[i];
3766
3767                 if (BNXT_FW_STATUS_REG_TYPE(reg) != BNXT_FW_STATUS_REG_TYPE_GRC)
3768                         continue;
3769
3770                 if (reg_base == 0xffffffff)
3771                         reg_base = reg & 0xfffff000;
3772                 if ((reg & 0xfffff000) != reg_base)
3773                         return -ERANGE;
3774
3775                 /* Use mask 0xffc as the Lower 2 bits indicates
3776                  * address space location
3777                  */
3778                 info->mapped_status_regs[i] = BNXT_GRCP_WINDOW_2_BASE +
3779                                                 (reg & 0xffc);
3780         }
3781
3782         if (reg_base == 0xffffffff)
3783                 return 0;
3784
3785         rte_write32(reg_base, (uint8_t *)bp->bar0 +
3786                     BNXT_GRCPF_REG_WINDOW_BASE_OUT + 4);
3787
3788         return 0;
3789 }
3790
3791 static void bnxt_write_fw_reset_reg(struct bnxt *bp, uint32_t index)
3792 {
3793         struct bnxt_error_recovery_info *info = bp->recovery_info;
3794         uint32_t delay = info->delay_after_reset[index];
3795         uint32_t val = info->reset_reg_val[index];
3796         uint32_t reg = info->reset_reg[index];
3797         uint32_t type, offset;
3798
3799         type = BNXT_FW_STATUS_REG_TYPE(reg);
3800         offset = BNXT_FW_STATUS_REG_OFF(reg);
3801
3802         switch (type) {
3803         case BNXT_FW_STATUS_REG_TYPE_CFG:
3804                 rte_pci_write_config(bp->pdev, &val, sizeof(val), offset);
3805                 break;
3806         case BNXT_FW_STATUS_REG_TYPE_GRC:
3807                 offset = bnxt_map_reset_regs(bp, offset);
3808                 rte_write32(val, (uint8_t *)bp->bar0 + offset);
3809                 break;
3810         case BNXT_FW_STATUS_REG_TYPE_BAR0:
3811                 rte_write32(val, (uint8_t *)bp->bar0 + offset);
3812                 break;
3813         }
3814         /* wait on a specific interval of time until core reset is complete */
3815         if (delay)
3816                 rte_delay_ms(delay);
3817 }
3818
3819 static void bnxt_dev_cleanup(struct bnxt *bp)
3820 {
3821         bnxt_set_hwrm_link_config(bp, false);
3822         bp->link_info.link_up = 0;
3823         if (bp->dev_stopped == 0)
3824                 bnxt_dev_stop_op(bp->eth_dev);
3825
3826         bnxt_uninit_resources(bp, true);
3827 }
3828
3829 static int bnxt_restore_filters(struct bnxt *bp)
3830 {
3831         struct rte_eth_dev *dev = bp->eth_dev;
3832         int ret = 0;
3833
3834         if (dev->data->all_multicast)
3835                 ret = bnxt_allmulticast_enable_op(dev);
3836         if (dev->data->promiscuous)
3837                 ret = bnxt_promiscuous_enable_op(dev);
3838
3839         /* TODO restore other filters as well */
3840         return ret;
3841 }
3842
3843 static void bnxt_dev_recover(void *arg)
3844 {
3845         struct bnxt *bp = arg;
3846         int timeout = bp->fw_reset_max_msecs;
3847         int rc = 0;
3848
3849         /* Clear Error flag so that device re-init should happen */
3850         bp->flags &= ~BNXT_FLAG_FATAL_ERROR;
3851
3852         do {
3853                 rc = bnxt_hwrm_ver_get(bp);
3854                 if (rc == 0)
3855                         break;
3856                 rte_delay_ms(BNXT_FW_READY_WAIT_INTERVAL);
3857                 timeout -= BNXT_FW_READY_WAIT_INTERVAL;
3858         } while (rc && timeout);
3859
3860         if (rc) {
3861                 PMD_DRV_LOG(ERR, "FW is not Ready after reset\n");
3862                 goto err;
3863         }
3864
3865         rc = bnxt_init_resources(bp, true);
3866         if (rc) {
3867                 PMD_DRV_LOG(ERR,
3868                             "Failed to initialize resources after reset\n");
3869                 goto err;
3870         }
3871         /* clear reset flag as the device is initialized now */
3872         bp->flags &= ~BNXT_FLAG_FW_RESET;
3873
3874         rc = bnxt_dev_start_op(bp->eth_dev);
3875         if (rc) {
3876                 PMD_DRV_LOG(ERR, "Failed to start port after reset\n");
3877                 goto err;
3878         }
3879
3880         rc = bnxt_restore_filters(bp);
3881         if (rc)
3882                 goto err;
3883
3884         PMD_DRV_LOG(INFO, "Recovered from FW reset\n");
3885         return;
3886 err:
3887         bp->flags |= BNXT_FLAG_FATAL_ERROR;
3888         bnxt_uninit_resources(bp, false);
3889         PMD_DRV_LOG(ERR, "Failed to recover from FW reset\n");
3890 }
3891
3892 void bnxt_dev_reset_and_resume(void *arg)
3893 {
3894         struct bnxt *bp = arg;
3895         int rc;
3896
3897         bnxt_dev_cleanup(bp);
3898
3899         bnxt_wait_for_device_shutdown(bp);
3900
3901         rc = rte_eal_alarm_set(US_PER_MS * bp->fw_reset_min_msecs,
3902                                bnxt_dev_recover, (void *)bp);
3903         if (rc)
3904                 PMD_DRV_LOG(ERR, "Error setting recovery alarm");
3905 }
3906
3907 uint32_t bnxt_read_fw_status_reg(struct bnxt *bp, uint32_t index)
3908 {
3909         struct bnxt_error_recovery_info *info = bp->recovery_info;
3910         uint32_t reg = info->status_regs[index];
3911         uint32_t type, offset, val = 0;
3912
3913         type = BNXT_FW_STATUS_REG_TYPE(reg);
3914         offset = BNXT_FW_STATUS_REG_OFF(reg);
3915
3916         switch (type) {
3917         case BNXT_FW_STATUS_REG_TYPE_CFG:
3918                 rte_pci_read_config(bp->pdev, &val, sizeof(val), offset);
3919                 break;
3920         case BNXT_FW_STATUS_REG_TYPE_GRC:
3921                 offset = info->mapped_status_regs[index];
3922                 /* FALLTHROUGH */
3923         case BNXT_FW_STATUS_REG_TYPE_BAR0:
3924                 val = rte_le_to_cpu_32(rte_read32((uint8_t *)bp->bar0 +
3925                                        offset));
3926                 break;
3927         }
3928
3929         return val;
3930 }
3931
3932 static int bnxt_fw_reset_all(struct bnxt *bp)
3933 {
3934         struct bnxt_error_recovery_info *info = bp->recovery_info;
3935         uint32_t i;
3936         int rc = 0;
3937
3938         if (info->flags & BNXT_FLAG_ERROR_RECOVERY_HOST) {
3939                 /* Reset through master function driver */
3940                 for (i = 0; i < info->reg_array_cnt; i++)
3941                         bnxt_write_fw_reset_reg(bp, i);
3942                 /* Wait for time specified by FW after triggering reset */
3943                 rte_delay_ms(info->master_func_wait_period_after_reset);
3944         } else if (info->flags & BNXT_FLAG_ERROR_RECOVERY_CO_CPU) {
3945                 /* Reset with the help of Kong processor */
3946                 rc = bnxt_hwrm_fw_reset(bp);
3947                 if (rc)
3948                         PMD_DRV_LOG(ERR, "Failed to reset FW\n");
3949         }
3950
3951         return rc;
3952 }
3953
3954 static void bnxt_fw_reset_cb(void *arg)
3955 {
3956         struct bnxt *bp = arg;
3957         struct bnxt_error_recovery_info *info = bp->recovery_info;
3958         int rc = 0;
3959
3960         /* Only Master function can do FW reset */
3961         if (bnxt_is_master_func(bp) &&
3962             bnxt_is_recovery_enabled(bp)) {
3963                 rc = bnxt_fw_reset_all(bp);
3964                 if (rc) {
3965                         PMD_DRV_LOG(ERR, "Adapter recovery failed\n");
3966                         return;
3967                 }
3968         }
3969
3970         /* if recovery method is ERROR_RECOVERY_CO_CPU, KONG will send
3971          * EXCEPTION_FATAL_ASYNC event to all the functions
3972          * (including MASTER FUNC). After receiving this Async, all the active
3973          * drivers should treat this case as FW initiated recovery
3974          */
3975         if (info->flags & BNXT_FLAG_ERROR_RECOVERY_HOST) {
3976                 bp->fw_reset_min_msecs = BNXT_MIN_FW_READY_TIMEOUT;
3977                 bp->fw_reset_max_msecs = BNXT_MAX_FW_RESET_TIMEOUT;
3978
3979                 /* To recover from error */
3980                 rte_eal_alarm_set(US_PER_MS, bnxt_dev_reset_and_resume,
3981                                   (void *)bp);
3982         }
3983 }
3984
3985 /* Driver should poll FW heartbeat, reset_counter with the frequency
3986  * advertised by FW in HWRM_ERROR_RECOVERY_QCFG.
3987  * When the driver detects heartbeat stop or change in reset_counter,
3988  * it has to trigger a reset to recover from the error condition.
3989  * A “master PF” is the function who will have the privilege to
3990  * initiate the chimp reset. The master PF will be elected by the
3991  * firmware and will be notified through async message.
3992  */
3993 static void bnxt_check_fw_health(void *arg)
3994 {
3995         struct bnxt *bp = arg;
3996         struct bnxt_error_recovery_info *info = bp->recovery_info;
3997         uint32_t val = 0, wait_msec;
3998
3999         if (!info || !bnxt_is_recovery_enabled(bp) ||
4000             is_bnxt_in_error(bp))
4001                 return;
4002
4003         val = bnxt_read_fw_status_reg(bp, BNXT_FW_HEARTBEAT_CNT_REG);
4004         if (val == info->last_heart_beat)
4005                 goto reset;
4006
4007         info->last_heart_beat = val;
4008
4009         val = bnxt_read_fw_status_reg(bp, BNXT_FW_RECOVERY_CNT_REG);
4010         if (val != info->last_reset_counter)
4011                 goto reset;
4012
4013         info->last_reset_counter = val;
4014
4015         rte_eal_alarm_set(US_PER_MS * info->driver_polling_freq,
4016                           bnxt_check_fw_health, (void *)bp);
4017
4018         return;
4019 reset:
4020         /* Stop DMA to/from device */
4021         bp->flags |= BNXT_FLAG_FATAL_ERROR;
4022         bp->flags |= BNXT_FLAG_FW_RESET;
4023
4024         PMD_DRV_LOG(ERR, "Detected FW dead condition\n");
4025
4026         if (bnxt_is_master_func(bp))
4027                 wait_msec = info->master_func_wait_period;
4028         else
4029                 wait_msec = info->normal_func_wait_period;
4030
4031         rte_eal_alarm_set(US_PER_MS * wait_msec,
4032                           bnxt_fw_reset_cb, (void *)bp);
4033 }
4034
4035 void bnxt_schedule_fw_health_check(struct bnxt *bp)
4036 {
4037         uint32_t polling_freq;
4038
4039         if (!bnxt_is_recovery_enabled(bp))
4040                 return;
4041
4042         if (bp->flags & BNXT_FLAG_FW_HEALTH_CHECK_SCHEDULED)
4043                 return;
4044
4045         polling_freq = bp->recovery_info->driver_polling_freq;
4046
4047         rte_eal_alarm_set(US_PER_MS * polling_freq,
4048                           bnxt_check_fw_health, (void *)bp);
4049         bp->flags |= BNXT_FLAG_FW_HEALTH_CHECK_SCHEDULED;
4050 }
4051
4052 static void bnxt_cancel_fw_health_check(struct bnxt *bp)
4053 {
4054         if (!bnxt_is_recovery_enabled(bp))
4055                 return;
4056
4057         rte_eal_alarm_cancel(bnxt_check_fw_health, (void *)bp);
4058         bp->flags &= ~BNXT_FLAG_FW_HEALTH_CHECK_SCHEDULED;
4059 }
4060
4061 static bool bnxt_vf_pciid(uint16_t id)
4062 {
4063         if (id == BROADCOM_DEV_ID_57304_VF ||
4064             id == BROADCOM_DEV_ID_57406_VF ||
4065             id == BROADCOM_DEV_ID_5731X_VF ||
4066             id == BROADCOM_DEV_ID_5741X_VF ||
4067             id == BROADCOM_DEV_ID_57414_VF ||
4068             id == BROADCOM_DEV_ID_STRATUS_NIC_VF1 ||
4069             id == BROADCOM_DEV_ID_STRATUS_NIC_VF2 ||
4070             id == BROADCOM_DEV_ID_58802_VF ||
4071             id == BROADCOM_DEV_ID_57500_VF1 ||
4072             id == BROADCOM_DEV_ID_57500_VF2)
4073                 return true;
4074         return false;
4075 }
4076
4077 static bool bnxt_thor_device(uint16_t id)
4078 {
4079         if (id == BROADCOM_DEV_ID_57508 ||
4080             id == BROADCOM_DEV_ID_57504 ||
4081             id == BROADCOM_DEV_ID_57502 ||
4082             id == BROADCOM_DEV_ID_57508_MF1 ||
4083             id == BROADCOM_DEV_ID_57504_MF1 ||
4084             id == BROADCOM_DEV_ID_57502_MF1 ||
4085             id == BROADCOM_DEV_ID_57508_MF2 ||
4086             id == BROADCOM_DEV_ID_57504_MF2 ||
4087             id == BROADCOM_DEV_ID_57502_MF2 ||
4088             id == BROADCOM_DEV_ID_57500_VF1 ||
4089             id == BROADCOM_DEV_ID_57500_VF2)
4090                 return true;
4091
4092         return false;
4093 }
4094
4095 bool bnxt_stratus_device(struct bnxt *bp)
4096 {
4097         uint16_t id = bp->pdev->id.device_id;
4098
4099         if (id == BROADCOM_DEV_ID_STRATUS_NIC ||
4100             id == BROADCOM_DEV_ID_STRATUS_NIC_VF1 ||
4101             id == BROADCOM_DEV_ID_STRATUS_NIC_VF2)
4102                 return true;
4103         return false;
4104 }
4105
4106 static int bnxt_init_board(struct rte_eth_dev *eth_dev)
4107 {
4108         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(eth_dev);
4109         struct bnxt *bp = eth_dev->data->dev_private;
4110
4111         /* enable device (incl. PCI PM wakeup), and bus-mastering */
4112         bp->bar0 = (void *)pci_dev->mem_resource[0].addr;
4113         bp->doorbell_base = (void *)pci_dev->mem_resource[2].addr;
4114         if (!bp->bar0 || !bp->doorbell_base) {
4115                 PMD_DRV_LOG(ERR, "Unable to access Hardware\n");
4116                 return -ENODEV;
4117         }
4118
4119         bp->eth_dev = eth_dev;
4120         bp->pdev = pci_dev;
4121
4122         return 0;
4123 }
4124
4125 static int bnxt_alloc_ctx_mem_blk(__rte_unused struct bnxt *bp,
4126                                   struct bnxt_ctx_pg_info *ctx_pg,
4127                                   uint32_t mem_size,
4128                                   const char *suffix,
4129                                   uint16_t idx)
4130 {
4131         struct bnxt_ring_mem_info *rmem = &ctx_pg->ring_mem;
4132         const struct rte_memzone *mz = NULL;
4133         char mz_name[RTE_MEMZONE_NAMESIZE];
4134         rte_iova_t mz_phys_addr;
4135         uint64_t valid_bits = 0;
4136         uint32_t sz;
4137         int i;
4138
4139         if (!mem_size)
4140                 return 0;
4141
4142         rmem->nr_pages = RTE_ALIGN_MUL_CEIL(mem_size, BNXT_PAGE_SIZE) /
4143                          BNXT_PAGE_SIZE;
4144         rmem->page_size = BNXT_PAGE_SIZE;
4145         rmem->pg_arr = ctx_pg->ctx_pg_arr;
4146         rmem->dma_arr = ctx_pg->ctx_dma_arr;
4147         rmem->flags = BNXT_RMEM_VALID_PTE_FLAG;
4148
4149         valid_bits = PTU_PTE_VALID;
4150
4151         if (rmem->nr_pages > 1) {
4152                 snprintf(mz_name, RTE_MEMZONE_NAMESIZE,
4153                          "bnxt_ctx_pg_tbl%s_%x_%d",
4154                          suffix, idx, bp->eth_dev->data->port_id);
4155                 mz_name[RTE_MEMZONE_NAMESIZE - 1] = 0;
4156                 mz = rte_memzone_lookup(mz_name);
4157                 if (!mz) {
4158                         mz = rte_memzone_reserve_aligned(mz_name,
4159                                                 rmem->nr_pages * 8,
4160                                                 SOCKET_ID_ANY,
4161                                                 RTE_MEMZONE_2MB |
4162                                                 RTE_MEMZONE_SIZE_HINT_ONLY |
4163                                                 RTE_MEMZONE_IOVA_CONTIG,
4164                                                 BNXT_PAGE_SIZE);
4165                         if (mz == NULL)
4166                                 return -ENOMEM;
4167                 }
4168
4169                 memset(mz->addr, 0, mz->len);
4170                 mz_phys_addr = mz->iova;
4171                 if ((unsigned long)mz->addr == mz_phys_addr) {
4172                         PMD_DRV_LOG(DEBUG,
4173                                     "physical address same as virtual\n");
4174                         PMD_DRV_LOG(DEBUG, "Using rte_mem_virt2iova()\n");
4175                         mz_phys_addr = rte_mem_virt2iova(mz->addr);
4176                         if (mz_phys_addr == RTE_BAD_IOVA) {
4177                                 PMD_DRV_LOG(ERR,
4178                                         "unable to map addr to phys memory\n");
4179                                 return -ENOMEM;
4180                         }
4181                 }
4182                 rte_mem_lock_page(((char *)mz->addr));
4183
4184                 rmem->pg_tbl = mz->addr;
4185                 rmem->pg_tbl_map = mz_phys_addr;
4186                 rmem->pg_tbl_mz = mz;
4187         }
4188
4189         snprintf(mz_name, RTE_MEMZONE_NAMESIZE, "bnxt_ctx_%s_%x_%d",
4190                  suffix, idx, bp->eth_dev->data->port_id);
4191         mz = rte_memzone_lookup(mz_name);
4192         if (!mz) {
4193                 mz = rte_memzone_reserve_aligned(mz_name,
4194                                                  mem_size,
4195                                                  SOCKET_ID_ANY,
4196                                                  RTE_MEMZONE_1GB |
4197                                                  RTE_MEMZONE_SIZE_HINT_ONLY |
4198                                                  RTE_MEMZONE_IOVA_CONTIG,
4199                                                  BNXT_PAGE_SIZE);
4200                 if (mz == NULL)
4201                         return -ENOMEM;
4202         }
4203
4204         memset(mz->addr, 0, mz->len);
4205         mz_phys_addr = mz->iova;
4206         if ((unsigned long)mz->addr == mz_phys_addr) {
4207                 PMD_DRV_LOG(DEBUG,
4208                             "Memzone physical address same as virtual.\n");
4209                 PMD_DRV_LOG(DEBUG, "Using rte_mem_virt2iova()\n");
4210                 for (sz = 0; sz < mem_size; sz += BNXT_PAGE_SIZE)
4211                         rte_mem_lock_page(((char *)mz->addr) + sz);
4212                 mz_phys_addr = rte_mem_virt2iova(mz->addr);
4213                 if (mz_phys_addr == RTE_BAD_IOVA) {
4214                         PMD_DRV_LOG(ERR,
4215                                     "unable to map addr to phys memory\n");
4216                         return -ENOMEM;
4217                 }
4218         }
4219
4220         for (sz = 0, i = 0; sz < mem_size; sz += BNXT_PAGE_SIZE, i++) {
4221                 rte_mem_lock_page(((char *)mz->addr) + sz);
4222                 rmem->pg_arr[i] = ((char *)mz->addr) + sz;
4223                 rmem->dma_arr[i] = mz_phys_addr + sz;
4224
4225                 if (rmem->nr_pages > 1) {
4226                         if (i == rmem->nr_pages - 2 &&
4227                             (rmem->flags & BNXT_RMEM_RING_PTE_FLAG))
4228                                 valid_bits |= PTU_PTE_NEXT_TO_LAST;
4229                         else if (i == rmem->nr_pages - 1 &&
4230                                  (rmem->flags & BNXT_RMEM_RING_PTE_FLAG))
4231                                 valid_bits |= PTU_PTE_LAST;
4232
4233                         rmem->pg_tbl[i] = rte_cpu_to_le_64(rmem->dma_arr[i] |
4234                                                            valid_bits);
4235                 }
4236         }
4237
4238         rmem->mz = mz;
4239         if (rmem->vmem_size)
4240                 rmem->vmem = (void **)mz->addr;
4241         rmem->dma_arr[0] = mz_phys_addr;
4242         return 0;
4243 }
4244
4245 static void bnxt_free_ctx_mem(struct bnxt *bp)
4246 {
4247         int i;
4248
4249         if (!bp->ctx || !(bp->ctx->flags & BNXT_CTX_FLAG_INITED))
4250                 return;
4251
4252         bp->ctx->flags &= ~BNXT_CTX_FLAG_INITED;
4253         rte_memzone_free(bp->ctx->qp_mem.ring_mem.mz);
4254         rte_memzone_free(bp->ctx->srq_mem.ring_mem.mz);
4255         rte_memzone_free(bp->ctx->cq_mem.ring_mem.mz);
4256         rte_memzone_free(bp->ctx->vnic_mem.ring_mem.mz);
4257         rte_memzone_free(bp->ctx->stat_mem.ring_mem.mz);
4258         rte_memzone_free(bp->ctx->qp_mem.ring_mem.pg_tbl_mz);
4259         rte_memzone_free(bp->ctx->srq_mem.ring_mem.pg_tbl_mz);
4260         rte_memzone_free(bp->ctx->cq_mem.ring_mem.pg_tbl_mz);
4261         rte_memzone_free(bp->ctx->vnic_mem.ring_mem.pg_tbl_mz);
4262         rte_memzone_free(bp->ctx->stat_mem.ring_mem.pg_tbl_mz);
4263
4264         for (i = 0; i < BNXT_MAX_Q; i++) {
4265                 if (bp->ctx->tqm_mem[i])
4266                         rte_memzone_free(bp->ctx->tqm_mem[i]->ring_mem.mz);
4267         }
4268
4269         rte_free(bp->ctx);
4270         bp->ctx = NULL;
4271 }
4272
4273 #define bnxt_roundup(x, y)   ((((x) + ((y) - 1)) / (y)) * (y))
4274
4275 #define min_t(type, x, y) ({                    \
4276         type __min1 = (x);                      \
4277         type __min2 = (y);                      \
4278         __min1 < __min2 ? __min1 : __min2; })
4279
4280 #define max_t(type, x, y) ({                    \
4281         type __max1 = (x);                      \
4282         type __max2 = (y);                      \
4283         __max1 > __max2 ? __max1 : __max2; })
4284
4285 #define clamp_t(type, _x, min, max)     min_t(type, max_t(type, _x, min), max)
4286
4287 int bnxt_alloc_ctx_mem(struct bnxt *bp)
4288 {
4289         struct bnxt_ctx_pg_info *ctx_pg;
4290         struct bnxt_ctx_mem_info *ctx;
4291         uint32_t mem_size, ena, entries;
4292         int i, rc;
4293
4294         rc = bnxt_hwrm_func_backing_store_qcaps(bp);
4295         if (rc) {
4296                 PMD_DRV_LOG(ERR, "Query context mem capability failed\n");
4297                 return rc;
4298         }
4299         ctx = bp->ctx;
4300         if (!ctx || (ctx->flags & BNXT_CTX_FLAG_INITED))
4301                 return 0;
4302
4303         ctx_pg = &ctx->qp_mem;
4304         ctx_pg->entries = ctx->qp_min_qp1_entries + ctx->qp_max_l2_entries;
4305         mem_size = ctx->qp_entry_size * ctx_pg->entries;
4306         rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg, mem_size, "qp_mem", 0);
4307         if (rc)
4308                 return rc;
4309
4310         ctx_pg = &ctx->srq_mem;
4311         ctx_pg->entries = ctx->srq_max_l2_entries;
4312         mem_size = ctx->srq_entry_size * ctx_pg->entries;
4313         rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg, mem_size, "srq_mem", 0);
4314         if (rc)
4315                 return rc;
4316
4317         ctx_pg = &ctx->cq_mem;
4318         ctx_pg->entries = ctx->cq_max_l2_entries;
4319         mem_size = ctx->cq_entry_size * ctx_pg->entries;
4320         rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg, mem_size, "cq_mem", 0);
4321         if (rc)
4322                 return rc;
4323
4324         ctx_pg = &ctx->vnic_mem;
4325         ctx_pg->entries = ctx->vnic_max_vnic_entries +
4326                 ctx->vnic_max_ring_table_entries;
4327         mem_size = ctx->vnic_entry_size * ctx_pg->entries;
4328         rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg, mem_size, "vnic_mem", 0);
4329         if (rc)
4330                 return rc;
4331
4332         ctx_pg = &ctx->stat_mem;
4333         ctx_pg->entries = ctx->stat_max_entries;
4334         mem_size = ctx->stat_entry_size * ctx_pg->entries;
4335         rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg, mem_size, "stat_mem", 0);
4336         if (rc)
4337                 return rc;
4338
4339         entries = ctx->qp_max_l2_entries +
4340                   ctx->vnic_max_vnic_entries +
4341                   ctx->tqm_min_entries_per_ring;
4342         entries = bnxt_roundup(entries, ctx->tqm_entries_multiple);
4343         entries = clamp_t(uint32_t, entries, ctx->tqm_min_entries_per_ring,
4344                           ctx->tqm_max_entries_per_ring);
4345         for (i = 0, ena = 0; i < BNXT_MAX_Q; i++) {
4346                 ctx_pg = ctx->tqm_mem[i];
4347                 /* use min tqm entries for now. */
4348                 ctx_pg->entries = entries;
4349                 mem_size = ctx->tqm_entry_size * ctx_pg->entries;
4350                 rc = bnxt_alloc_ctx_mem_blk(bp, ctx_pg, mem_size, "tqm_mem", i);
4351                 if (rc)
4352                         return rc;
4353                 ena |= HWRM_FUNC_BACKING_STORE_CFG_INPUT_ENABLES_TQM_SP << i;
4354         }
4355
4356         ena |= FUNC_BACKING_STORE_CFG_INPUT_DFLT_ENABLES;
4357         rc = bnxt_hwrm_func_backing_store_cfg(bp, ena);
4358         if (rc)
4359                 PMD_DRV_LOG(ERR,
4360                             "Failed to configure context mem: rc = %d\n", rc);
4361         else
4362                 ctx->flags |= BNXT_CTX_FLAG_INITED;
4363
4364         return rc;
4365 }
4366
4367 static int bnxt_alloc_stats_mem(struct bnxt *bp)
4368 {
4369         struct rte_pci_device *pci_dev = bp->pdev;
4370         char mz_name[RTE_MEMZONE_NAMESIZE];
4371         const struct rte_memzone *mz = NULL;
4372         uint32_t total_alloc_len;
4373         rte_iova_t mz_phys_addr;
4374
4375         if (pci_dev->id.device_id == BROADCOM_DEV_ID_NS2)
4376                 return 0;
4377
4378         snprintf(mz_name, RTE_MEMZONE_NAMESIZE,
4379                  "bnxt_" PCI_PRI_FMT "-%s", pci_dev->addr.domain,
4380                  pci_dev->addr.bus, pci_dev->addr.devid,
4381                  pci_dev->addr.function, "rx_port_stats");
4382         mz_name[RTE_MEMZONE_NAMESIZE - 1] = 0;
4383         mz = rte_memzone_lookup(mz_name);
4384         total_alloc_len =
4385                 RTE_CACHE_LINE_ROUNDUP(sizeof(struct rx_port_stats) +
4386                                        sizeof(struct rx_port_stats_ext) + 512);
4387         if (!mz) {
4388                 mz = rte_memzone_reserve(mz_name, total_alloc_len,
4389                                          SOCKET_ID_ANY,
4390                                          RTE_MEMZONE_2MB |
4391                                          RTE_MEMZONE_SIZE_HINT_ONLY |
4392                                          RTE_MEMZONE_IOVA_CONTIG);
4393                 if (mz == NULL)
4394                         return -ENOMEM;
4395         }
4396         memset(mz->addr, 0, mz->len);
4397         mz_phys_addr = mz->iova;
4398         if ((unsigned long)mz->addr == mz_phys_addr) {
4399                 PMD_DRV_LOG(DEBUG,
4400                             "Memzone physical address same as virtual.\n");
4401                 PMD_DRV_LOG(DEBUG,
4402                             "Using rte_mem_virt2iova()\n");
4403                 mz_phys_addr = rte_mem_virt2iova(mz->addr);
4404                 if (mz_phys_addr == RTE_BAD_IOVA) {
4405                         PMD_DRV_LOG(ERR,
4406                                     "Can't map address to physical memory\n");
4407                         return -ENOMEM;
4408                 }
4409         }
4410
4411         bp->rx_mem_zone = (const void *)mz;
4412         bp->hw_rx_port_stats = mz->addr;
4413         bp->hw_rx_port_stats_map = mz_phys_addr;
4414
4415         snprintf(mz_name, RTE_MEMZONE_NAMESIZE,
4416                  "bnxt_" PCI_PRI_FMT "-%s", pci_dev->addr.domain,
4417                  pci_dev->addr.bus, pci_dev->addr.devid,
4418                  pci_dev->addr.function, "tx_port_stats");
4419         mz_name[RTE_MEMZONE_NAMESIZE - 1] = 0;
4420         mz = rte_memzone_lookup(mz_name);
4421         total_alloc_len =
4422                 RTE_CACHE_LINE_ROUNDUP(sizeof(struct tx_port_stats) +
4423                                        sizeof(struct tx_port_stats_ext) + 512);
4424         if (!mz) {
4425                 mz = rte_memzone_reserve(mz_name,
4426                                          total_alloc_len,
4427                                          SOCKET_ID_ANY,
4428                                          RTE_MEMZONE_2MB |
4429                                          RTE_MEMZONE_SIZE_HINT_ONLY |
4430                                          RTE_MEMZONE_IOVA_CONTIG);
4431                 if (mz == NULL)
4432                         return -ENOMEM;
4433         }
4434         memset(mz->addr, 0, mz->len);
4435         mz_phys_addr = mz->iova;
4436         if ((unsigned long)mz->addr == mz_phys_addr) {
4437                 PMD_DRV_LOG(DEBUG,
4438                             "Memzone physical address same as virtual\n");
4439                 PMD_DRV_LOG(DEBUG, "Using rte_mem_virt2iova()\n");
4440                 mz_phys_addr = rte_mem_virt2iova(mz->addr);
4441                 if (mz_phys_addr == RTE_BAD_IOVA) {
4442                         PMD_DRV_LOG(ERR,
4443                                     "Can't map address to physical memory\n");
4444                         return -ENOMEM;
4445                 }
4446         }
4447
4448         bp->tx_mem_zone = (const void *)mz;
4449         bp->hw_tx_port_stats = mz->addr;
4450         bp->hw_tx_port_stats_map = mz_phys_addr;
4451         bp->flags |= BNXT_FLAG_PORT_STATS;
4452
4453         /* Display extended statistics if FW supports it */
4454         if (bp->hwrm_spec_code < HWRM_SPEC_CODE_1_8_4 ||
4455             bp->hwrm_spec_code == HWRM_SPEC_CODE_1_9_0 ||
4456             !(bp->flags & BNXT_FLAG_EXT_STATS_SUPPORTED))
4457                 return 0;
4458
4459         bp->hw_rx_port_stats_ext = (void *)
4460                 ((uint8_t *)bp->hw_rx_port_stats +
4461                  sizeof(struct rx_port_stats));
4462         bp->hw_rx_port_stats_ext_map = bp->hw_rx_port_stats_map +
4463                 sizeof(struct rx_port_stats);
4464         bp->flags |= BNXT_FLAG_EXT_RX_PORT_STATS;
4465
4466         if (bp->hwrm_spec_code < HWRM_SPEC_CODE_1_9_2 ||
4467             bp->flags & BNXT_FLAG_EXT_STATS_SUPPORTED) {
4468                 bp->hw_tx_port_stats_ext = (void *)
4469                         ((uint8_t *)bp->hw_tx_port_stats +
4470                          sizeof(struct tx_port_stats));
4471                 bp->hw_tx_port_stats_ext_map =
4472                         bp->hw_tx_port_stats_map +
4473                         sizeof(struct tx_port_stats);
4474                 bp->flags |= BNXT_FLAG_EXT_TX_PORT_STATS;
4475         }
4476
4477         return 0;
4478 }
4479
4480 static int bnxt_setup_mac_addr(struct rte_eth_dev *eth_dev)
4481 {
4482         struct bnxt *bp = eth_dev->data->dev_private;
4483         int rc = 0;
4484
4485         eth_dev->data->mac_addrs = rte_zmalloc("bnxt_mac_addr_tbl",
4486                                                RTE_ETHER_ADDR_LEN *
4487                                                bp->max_l2_ctx,
4488                                                0);
4489         if (eth_dev->data->mac_addrs == NULL) {
4490                 PMD_DRV_LOG(ERR, "Failed to alloc MAC addr tbl\n");
4491                 return -ENOMEM;
4492         }
4493
4494         if (bnxt_check_zero_bytes(bp->dflt_mac_addr, RTE_ETHER_ADDR_LEN)) {
4495                 if (BNXT_PF(bp))
4496                         return -EINVAL;
4497
4498                 /* Generate a random MAC address, if none was assigned by PF */
4499                 PMD_DRV_LOG(INFO, "VF MAC address not assigned by Host PF\n");
4500                 bnxt_eth_hw_addr_random(bp->mac_addr);
4501                 PMD_DRV_LOG(INFO,
4502                             "Assign random MAC:%02X:%02X:%02X:%02X:%02X:%02X\n",
4503                             bp->mac_addr[0], bp->mac_addr[1], bp->mac_addr[2],
4504                             bp->mac_addr[3], bp->mac_addr[4], bp->mac_addr[5]);
4505
4506                 rc = bnxt_hwrm_set_mac(bp);
4507                 if (!rc)
4508                         memcpy(&bp->eth_dev->data->mac_addrs[0], bp->mac_addr,
4509                                RTE_ETHER_ADDR_LEN);
4510                 return rc;
4511         }
4512
4513         /* Copy the permanent MAC from the FUNC_QCAPS response */
4514         memcpy(bp->mac_addr, bp->dflt_mac_addr, RTE_ETHER_ADDR_LEN);
4515         memcpy(&eth_dev->data->mac_addrs[0], bp->mac_addr, RTE_ETHER_ADDR_LEN);
4516
4517         return rc;
4518 }
4519
4520 static int bnxt_restore_dflt_mac(struct bnxt *bp)
4521 {
4522         int rc = 0;
4523
4524         /* MAC is already configured in FW */
4525         if (!bnxt_check_zero_bytes(bp->dflt_mac_addr, RTE_ETHER_ADDR_LEN))
4526                 return 0;
4527
4528         /* Restore the old MAC configured */
4529         rc = bnxt_hwrm_set_mac(bp);
4530         if (rc)
4531                 PMD_DRV_LOG(ERR, "Failed to restore MAC address\n");
4532
4533         return rc;
4534 }
4535
4536 static void bnxt_config_vf_req_fwd(struct bnxt *bp)
4537 {
4538         if (!BNXT_PF(bp))
4539                 return;
4540
4541 #define ALLOW_FUNC(x)   \
4542         { \
4543                 uint32_t arg = (x); \
4544                 bp->pf.vf_req_fwd[((arg) >> 5)] &= \
4545                 ~rte_cpu_to_le_32(1 << ((arg) & 0x1f)); \
4546         }
4547
4548         /* Forward all requests if firmware is new enough */
4549         if (((bp->fw_ver >= ((20 << 24) | (6 << 16) | (100 << 8))) &&
4550              (bp->fw_ver < ((20 << 24) | (7 << 16)))) ||
4551             ((bp->fw_ver >= ((20 << 24) | (8 << 16))))) {
4552                 memset(bp->pf.vf_req_fwd, 0xff, sizeof(bp->pf.vf_req_fwd));
4553         } else {
4554                 PMD_DRV_LOG(WARNING,
4555                             "Firmware too old for VF mailbox functionality\n");
4556                 memset(bp->pf.vf_req_fwd, 0, sizeof(bp->pf.vf_req_fwd));
4557         }
4558
4559         /*
4560          * The following are used for driver cleanup. If we disallow these,
4561          * VF drivers can't clean up cleanly.
4562          */
4563         ALLOW_FUNC(HWRM_FUNC_DRV_UNRGTR);
4564         ALLOW_FUNC(HWRM_VNIC_FREE);
4565         ALLOW_FUNC(HWRM_RING_FREE);
4566         ALLOW_FUNC(HWRM_RING_GRP_FREE);
4567         ALLOW_FUNC(HWRM_VNIC_RSS_COS_LB_CTX_FREE);
4568         ALLOW_FUNC(HWRM_CFA_L2_FILTER_FREE);
4569         ALLOW_FUNC(HWRM_STAT_CTX_FREE);
4570         ALLOW_FUNC(HWRM_PORT_PHY_QCFG);
4571         ALLOW_FUNC(HWRM_VNIC_TPA_CFG);
4572 }
4573
4574 static int bnxt_init_fw(struct bnxt *bp)
4575 {
4576         uint16_t mtu;
4577         int rc = 0;
4578
4579         rc = bnxt_hwrm_ver_get(bp);
4580         if (rc)
4581                 return rc;
4582
4583         rc = bnxt_hwrm_func_reset(bp);
4584         if (rc)
4585                 return -EIO;
4586
4587         rc = bnxt_hwrm_vnic_qcaps(bp);
4588         if (rc)
4589                 return rc;
4590
4591         rc = bnxt_hwrm_queue_qportcfg(bp);
4592         if (rc)
4593                 return rc;
4594
4595         /* Get the MAX capabilities for this function.
4596          * This function also allocates context memory for TQM rings and
4597          * informs the firmware about this allocated backing store memory.
4598          */
4599         rc = bnxt_hwrm_func_qcaps(bp);
4600         if (rc)
4601                 return rc;
4602
4603         rc = bnxt_hwrm_func_qcfg(bp, &mtu);
4604         if (rc)
4605                 return rc;
4606
4607         rc = bnxt_hwrm_cfa_adv_flow_mgmt_qcaps(bp);
4608         if (rc)
4609                 return rc;
4610
4611         /* Get the adapter error recovery support info */
4612         rc = bnxt_hwrm_error_recovery_qcfg(bp);
4613         if (rc)
4614                 bp->flags &= ~BNXT_FLAG_FW_CAP_ERROR_RECOVERY;
4615
4616         if (mtu >= RTE_ETHER_MIN_MTU && mtu <= BNXT_MAX_MTU &&
4617             mtu != bp->eth_dev->data->mtu)
4618                 bp->eth_dev->data->mtu = mtu;
4619
4620         bnxt_hwrm_port_led_qcaps(bp);
4621
4622         return 0;
4623 }
4624
4625 static int
4626 bnxt_init_locks(struct bnxt *bp)
4627 {
4628         int err;
4629
4630         err = pthread_mutex_init(&bp->flow_lock, NULL);
4631         if (err) {
4632                 PMD_DRV_LOG(ERR, "Unable to initialize flow_lock\n");
4633                 return err;
4634         }
4635
4636         err = pthread_mutex_init(&bp->def_cp_lock, NULL);
4637         if (err)
4638                 PMD_DRV_LOG(ERR, "Unable to initialize def_cp_lock\n");
4639         return err;
4640 }
4641
4642 static int bnxt_init_resources(struct bnxt *bp, bool reconfig_dev)
4643 {
4644         int rc;
4645
4646         rc = bnxt_init_fw(bp);
4647         if (rc)
4648                 return rc;
4649
4650         if (!reconfig_dev) {
4651                 rc = bnxt_setup_mac_addr(bp->eth_dev);
4652                 if (rc)
4653                         return rc;
4654         } else {
4655                 rc = bnxt_restore_dflt_mac(bp);
4656                 if (rc)
4657                         return rc;
4658         }
4659
4660         bnxt_config_vf_req_fwd(bp);
4661
4662         rc = bnxt_hwrm_func_driver_register(bp);
4663         if (rc) {
4664                 PMD_DRV_LOG(ERR, "Failed to register driver");
4665                 return -EBUSY;
4666         }
4667
4668         if (BNXT_PF(bp)) {
4669                 if (bp->pdev->max_vfs) {
4670                         rc = bnxt_hwrm_allocate_vfs(bp, bp->pdev->max_vfs);
4671                         if (rc) {
4672                                 PMD_DRV_LOG(ERR, "Failed to allocate VFs\n");
4673                                 return rc;
4674                         }
4675                 } else {
4676                         rc = bnxt_hwrm_allocate_pf_only(bp);
4677                         if (rc) {
4678                                 PMD_DRV_LOG(ERR,
4679                                             "Failed to allocate PF resources");
4680                                 return rc;
4681                         }
4682                 }
4683         }
4684
4685         rc = bnxt_alloc_mem(bp, reconfig_dev);
4686         if (rc)
4687                 return rc;
4688
4689         rc = bnxt_setup_int(bp);
4690         if (rc)
4691                 return rc;
4692
4693         bnxt_init_nic(bp);
4694
4695         rc = bnxt_request_int(bp);
4696         if (rc)
4697                 return rc;
4698
4699         rc = bnxt_init_locks(bp);
4700         if (rc)
4701                 return rc;
4702
4703         return 0;
4704 }
4705
4706 static int
4707 bnxt_dev_init(struct rte_eth_dev *eth_dev)
4708 {
4709         struct rte_pci_device *pci_dev = RTE_ETH_DEV_TO_PCI(eth_dev);
4710         static int version_printed;
4711         struct bnxt *bp;
4712         int rc;
4713
4714         if (version_printed++ == 0)
4715                 PMD_DRV_LOG(INFO, "%s\n", bnxt_version);
4716
4717         eth_dev->dev_ops = &bnxt_dev_ops;
4718         eth_dev->rx_pkt_burst = &bnxt_recv_pkts;
4719         eth_dev->tx_pkt_burst = &bnxt_xmit_pkts;
4720
4721         /*
4722          * For secondary processes, we don't initialise any further
4723          * as primary has already done this work.
4724          */
4725         if (rte_eal_process_type() != RTE_PROC_PRIMARY)
4726                 return 0;
4727
4728         rte_eth_copy_pci_info(eth_dev, pci_dev);
4729
4730         bp = eth_dev->data->dev_private;
4731
4732         bp->dev_stopped = 1;
4733
4734         if (bnxt_vf_pciid(pci_dev->id.device_id))
4735                 bp->flags |= BNXT_FLAG_VF;
4736
4737         if (bnxt_thor_device(pci_dev->id.device_id))
4738                 bp->flags |= BNXT_FLAG_THOR_CHIP;
4739
4740         if (pci_dev->id.device_id == BROADCOM_DEV_ID_58802 ||
4741             pci_dev->id.device_id == BROADCOM_DEV_ID_58804 ||
4742             pci_dev->id.device_id == BROADCOM_DEV_ID_58808 ||
4743             pci_dev->id.device_id == BROADCOM_DEV_ID_58802_VF)
4744                 bp->flags |= BNXT_FLAG_STINGRAY;
4745
4746         rc = bnxt_init_board(eth_dev);
4747         if (rc) {
4748                 PMD_DRV_LOG(ERR,
4749                             "Failed to initialize board rc: %x\n", rc);
4750                 return rc;
4751         }
4752
4753         rc = bnxt_alloc_hwrm_resources(bp);
4754         if (rc) {
4755                 PMD_DRV_LOG(ERR,
4756                             "Failed to allocate hwrm resource rc: %x\n", rc);
4757                 goto error_free;
4758         }
4759         rc = bnxt_init_resources(bp, false);
4760         if (rc)
4761                 goto error_free;
4762
4763         rc = bnxt_alloc_stats_mem(bp);
4764         if (rc)
4765                 goto error_free;
4766
4767         PMD_DRV_LOG(INFO,
4768                     DRV_MODULE_NAME "found at mem %" PRIX64 ", node addr %pM\n",
4769                     pci_dev->mem_resource[0].phys_addr,
4770                     pci_dev->mem_resource[0].addr);
4771
4772         return 0;
4773
4774 error_free:
4775         bnxt_dev_uninit(eth_dev);
4776         return rc;
4777 }
4778
4779 static void
4780 bnxt_uninit_locks(struct bnxt *bp)
4781 {
4782         pthread_mutex_destroy(&bp->flow_lock);
4783         pthread_mutex_destroy(&bp->def_cp_lock);
4784 }
4785
4786 static int
4787 bnxt_uninit_resources(struct bnxt *bp, bool reconfig_dev)
4788 {
4789         int rc;
4790
4791         bnxt_free_int(bp);
4792         bnxt_free_mem(bp, reconfig_dev);
4793         bnxt_hwrm_func_buf_unrgtr(bp);
4794         rc = bnxt_hwrm_func_driver_unregister(bp, 0);
4795         bp->flags &= ~BNXT_FLAG_REGISTERED;
4796         bnxt_free_ctx_mem(bp);
4797         if (!reconfig_dev) {
4798                 bnxt_free_hwrm_resources(bp);
4799
4800                 if (bp->recovery_info != NULL) {
4801                         rte_free(bp->recovery_info);
4802                         bp->recovery_info = NULL;
4803                 }
4804         }
4805
4806         bnxt_uninit_locks(bp);
4807         rte_free(bp->ptp_cfg);
4808         bp->ptp_cfg = NULL;
4809         return rc;
4810 }
4811
4812 static int
4813 bnxt_dev_uninit(struct rte_eth_dev *eth_dev)
4814 {
4815         struct bnxt *bp = eth_dev->data->dev_private;
4816         int rc;
4817
4818         if (rte_eal_process_type() != RTE_PROC_PRIMARY)
4819                 return -EPERM;
4820
4821         PMD_DRV_LOG(DEBUG, "Calling Device uninit\n");
4822
4823         rc = bnxt_uninit_resources(bp, false);
4824
4825         if (bp->tx_mem_zone) {
4826                 rte_memzone_free((const struct rte_memzone *)bp->tx_mem_zone);
4827                 bp->tx_mem_zone = NULL;
4828         }
4829
4830         if (bp->rx_mem_zone) {
4831                 rte_memzone_free((const struct rte_memzone *)bp->rx_mem_zone);
4832                 bp->rx_mem_zone = NULL;
4833         }
4834
4835         if (bp->dev_stopped == 0)
4836                 bnxt_dev_close_op(eth_dev);
4837         if (bp->pf.vf_info)
4838                 rte_free(bp->pf.vf_info);
4839         eth_dev->dev_ops = NULL;
4840         eth_dev->rx_pkt_burst = NULL;
4841         eth_dev->tx_pkt_burst = NULL;
4842
4843         return rc;
4844 }
4845
4846 static int bnxt_pci_probe(struct rte_pci_driver *pci_drv __rte_unused,
4847         struct rte_pci_device *pci_dev)
4848 {
4849         return rte_eth_dev_pci_generic_probe(pci_dev, sizeof(struct bnxt),
4850                 bnxt_dev_init);
4851 }
4852
4853 static int bnxt_pci_remove(struct rte_pci_device *pci_dev)
4854 {
4855         if (rte_eal_process_type() == RTE_PROC_PRIMARY)
4856                 return rte_eth_dev_pci_generic_remove(pci_dev,
4857                                 bnxt_dev_uninit);
4858         else
4859                 return rte_eth_dev_pci_generic_remove(pci_dev, NULL);
4860 }
4861
4862 static struct rte_pci_driver bnxt_rte_pmd = {
4863         .id_table = bnxt_pci_id_map,
4864         .drv_flags = RTE_PCI_DRV_NEED_MAPPING | RTE_PCI_DRV_INTR_LSC,
4865         .probe = bnxt_pci_probe,
4866         .remove = bnxt_pci_remove,
4867 };
4868
4869 static bool
4870 is_device_supported(struct rte_eth_dev *dev, struct rte_pci_driver *drv)
4871 {
4872         if (strcmp(dev->device->driver->name, drv->driver.name))
4873                 return false;
4874
4875         return true;
4876 }
4877
4878 bool is_bnxt_supported(struct rte_eth_dev *dev)
4879 {
4880         return is_device_supported(dev, &bnxt_rte_pmd);
4881 }
4882
4883 RTE_INIT(bnxt_init_log)
4884 {
4885         bnxt_logtype_driver = rte_log_register("pmd.net.bnxt.driver");
4886         if (bnxt_logtype_driver >= 0)
4887                 rte_log_set_level(bnxt_logtype_driver, RTE_LOG_NOTICE);
4888 }
4889
4890 RTE_PMD_REGISTER_PCI(net_bnxt, bnxt_rte_pmd);
4891 RTE_PMD_REGISTER_PCI_TABLE(net_bnxt, bnxt_pci_id_map);
4892 RTE_PMD_REGISTER_KMOD_DEP(net_bnxt, "* igb_uio | uio_pci_generic | vfio-pci");