1873c74638cd0d284688e65522be51e097a84a8e
[cascardo/linux.git] / drivers / net / ethernet / emulex / benet / be_main.c
1 /*
2  * Copyright (C) 2005 - 2016 Broadcom
3  * All rights reserved.
4  *
5  * This program is free software; you can redistribute it and/or
6  * modify it under the terms of the GNU General Public License version 2
7  * as published by the Free Software Foundation.  The full GNU General
8  * Public License is included in this distribution in the file called COPYING.
9  *
10  * Contact Information:
11  * linux-drivers@emulex.com
12  *
13  * Emulex
14  * 3333 Susan Street
15  * Costa Mesa, CA 92626
16  */
17
18 #include <linux/prefetch.h>
19 #include <linux/module.h>
20 #include "be.h"
21 #include "be_cmds.h"
22 #include <asm/div64.h>
23 #include <linux/aer.h>
24 #include <linux/if_bridge.h>
25 #include <net/busy_poll.h>
26 #include <net/vxlan.h>
27
28 MODULE_VERSION(DRV_VER);
29 MODULE_DESCRIPTION(DRV_DESC " " DRV_VER);
30 MODULE_AUTHOR("Emulex Corporation");
31 MODULE_LICENSE("GPL");
32
33 /* num_vfs module param is obsolete.
34  * Use sysfs method to enable/disable VFs.
35  */
36 static unsigned int num_vfs;
37 module_param(num_vfs, uint, S_IRUGO);
38 MODULE_PARM_DESC(num_vfs, "Number of PCI VFs to initialize");
39
40 static ushort rx_frag_size = 2048;
41 module_param(rx_frag_size, ushort, S_IRUGO);
42 MODULE_PARM_DESC(rx_frag_size, "Size of a fragment that holds rcvd data.");
43
44 static const struct pci_device_id be_dev_ids[] = {
45         { PCI_DEVICE(BE_VENDOR_ID, BE_DEVICE_ID1) },
46         { PCI_DEVICE(BE_VENDOR_ID, BE_DEVICE_ID2) },
47         { PCI_DEVICE(BE_VENDOR_ID, OC_DEVICE_ID1) },
48         { PCI_DEVICE(BE_VENDOR_ID, OC_DEVICE_ID2) },
49         { PCI_DEVICE(EMULEX_VENDOR_ID, OC_DEVICE_ID3)},
50         { PCI_DEVICE(EMULEX_VENDOR_ID, OC_DEVICE_ID4)},
51         { PCI_DEVICE(EMULEX_VENDOR_ID, OC_DEVICE_ID5)},
52         { PCI_DEVICE(EMULEX_VENDOR_ID, OC_DEVICE_ID6)},
53         { 0 }
54 };
55 MODULE_DEVICE_TABLE(pci, be_dev_ids);
56 /* UE Status Low CSR */
57 static const char * const ue_status_low_desc[] = {
58         "CEV",
59         "CTX",
60         "DBUF",
61         "ERX",
62         "Host",
63         "MPU",
64         "NDMA",
65         "PTC ",
66         "RDMA ",
67         "RXF ",
68         "RXIPS ",
69         "RXULP0 ",
70         "RXULP1 ",
71         "RXULP2 ",
72         "TIM ",
73         "TPOST ",
74         "TPRE ",
75         "TXIPS ",
76         "TXULP0 ",
77         "TXULP1 ",
78         "UC ",
79         "WDMA ",
80         "TXULP2 ",
81         "HOST1 ",
82         "P0_OB_LINK ",
83         "P1_OB_LINK ",
84         "HOST_GPIO ",
85         "MBOX ",
86         "ERX2 ",
87         "SPARE ",
88         "JTAG ",
89         "MPU_INTPEND "
90 };
91
92 /* UE Status High CSR */
93 static const char * const ue_status_hi_desc[] = {
94         "LPCMEMHOST",
95         "MGMT_MAC",
96         "PCS0ONLINE",
97         "MPU_IRAM",
98         "PCS1ONLINE",
99         "PCTL0",
100         "PCTL1",
101         "PMEM",
102         "RR",
103         "TXPB",
104         "RXPP",
105         "XAUI",
106         "TXP",
107         "ARM",
108         "IPC",
109         "HOST2",
110         "HOST3",
111         "HOST4",
112         "HOST5",
113         "HOST6",
114         "HOST7",
115         "ECRC",
116         "Poison TLP",
117         "NETC",
118         "PERIPH",
119         "LLTXULP",
120         "D2P",
121         "RCON",
122         "LDMA",
123         "LLTXP",
124         "LLTXPB",
125         "Unknown"
126 };
127
128 #define BE_VF_IF_EN_FLAGS       (BE_IF_FLAGS_UNTAGGED | \
129                                  BE_IF_FLAGS_BROADCAST | \
130                                  BE_IF_FLAGS_MULTICAST | \
131                                  BE_IF_FLAGS_PASS_L3L4_ERRORS)
132
133 static void be_queue_free(struct be_adapter *adapter, struct be_queue_info *q)
134 {
135         struct be_dma_mem *mem = &q->dma_mem;
136
137         if (mem->va) {
138                 dma_free_coherent(&adapter->pdev->dev, mem->size, mem->va,
139                                   mem->dma);
140                 mem->va = NULL;
141         }
142 }
143
144 static int be_queue_alloc(struct be_adapter *adapter, struct be_queue_info *q,
145                           u16 len, u16 entry_size)
146 {
147         struct be_dma_mem *mem = &q->dma_mem;
148
149         memset(q, 0, sizeof(*q));
150         q->len = len;
151         q->entry_size = entry_size;
152         mem->size = len * entry_size;
153         mem->va = dma_zalloc_coherent(&adapter->pdev->dev, mem->size, &mem->dma,
154                                       GFP_KERNEL);
155         if (!mem->va)
156                 return -ENOMEM;
157         return 0;
158 }
159
160 static void be_reg_intr_set(struct be_adapter *adapter, bool enable)
161 {
162         u32 reg, enabled;
163
164         pci_read_config_dword(adapter->pdev, PCICFG_MEMBAR_CTRL_INT_CTRL_OFFSET,
165                               &reg);
166         enabled = reg & MEMBAR_CTRL_INT_CTRL_HOSTINTR_MASK;
167
168         if (!enabled && enable)
169                 reg |= MEMBAR_CTRL_INT_CTRL_HOSTINTR_MASK;
170         else if (enabled && !enable)
171                 reg &= ~MEMBAR_CTRL_INT_CTRL_HOSTINTR_MASK;
172         else
173                 return;
174
175         pci_write_config_dword(adapter->pdev,
176                                PCICFG_MEMBAR_CTRL_INT_CTRL_OFFSET, reg);
177 }
178
179 static void be_intr_set(struct be_adapter *adapter, bool enable)
180 {
181         int status = 0;
182
183         /* On lancer interrupts can't be controlled via this register */
184         if (lancer_chip(adapter))
185                 return;
186
187         if (be_check_error(adapter, BE_ERROR_EEH))
188                 return;
189
190         status = be_cmd_intr_set(adapter, enable);
191         if (status)
192                 be_reg_intr_set(adapter, enable);
193 }
194
195 static void be_rxq_notify(struct be_adapter *adapter, u16 qid, u16 posted)
196 {
197         u32 val = 0;
198
199         if (be_check_error(adapter, BE_ERROR_HW))
200                 return;
201
202         val |= qid & DB_RQ_RING_ID_MASK;
203         val |= posted << DB_RQ_NUM_POSTED_SHIFT;
204
205         wmb();
206         iowrite32(val, adapter->db + DB_RQ_OFFSET);
207 }
208
209 static void be_txq_notify(struct be_adapter *adapter, struct be_tx_obj *txo,
210                           u16 posted)
211 {
212         u32 val = 0;
213
214         if (be_check_error(adapter, BE_ERROR_HW))
215                 return;
216
217         val |= txo->q.id & DB_TXULP_RING_ID_MASK;
218         val |= (posted & DB_TXULP_NUM_POSTED_MASK) << DB_TXULP_NUM_POSTED_SHIFT;
219
220         wmb();
221         iowrite32(val, adapter->db + txo->db_offset);
222 }
223
224 static void be_eq_notify(struct be_adapter *adapter, u16 qid,
225                          bool arm, bool clear_int, u16 num_popped,
226                          u32 eq_delay_mult_enc)
227 {
228         u32 val = 0;
229
230         val |= qid & DB_EQ_RING_ID_MASK;
231         val |= ((qid & DB_EQ_RING_ID_EXT_MASK) << DB_EQ_RING_ID_EXT_MASK_SHIFT);
232
233         if (be_check_error(adapter, BE_ERROR_HW))
234                 return;
235
236         if (arm)
237                 val |= 1 << DB_EQ_REARM_SHIFT;
238         if (clear_int)
239                 val |= 1 << DB_EQ_CLR_SHIFT;
240         val |= 1 << DB_EQ_EVNT_SHIFT;
241         val |= num_popped << DB_EQ_NUM_POPPED_SHIFT;
242         val |= eq_delay_mult_enc << DB_EQ_R2I_DLY_SHIFT;
243         iowrite32(val, adapter->db + DB_EQ_OFFSET);
244 }
245
246 void be_cq_notify(struct be_adapter *adapter, u16 qid, bool arm, u16 num_popped)
247 {
248         u32 val = 0;
249
250         val |= qid & DB_CQ_RING_ID_MASK;
251         val |= ((qid & DB_CQ_RING_ID_EXT_MASK) <<
252                         DB_CQ_RING_ID_EXT_MASK_SHIFT);
253
254         if (be_check_error(adapter, BE_ERROR_HW))
255                 return;
256
257         if (arm)
258                 val |= 1 << DB_CQ_REARM_SHIFT;
259         val |= num_popped << DB_CQ_NUM_POPPED_SHIFT;
260         iowrite32(val, adapter->db + DB_CQ_OFFSET);
261 }
262
263 static int be_mac_addr_set(struct net_device *netdev, void *p)
264 {
265         struct be_adapter *adapter = netdev_priv(netdev);
266         struct device *dev = &adapter->pdev->dev;
267         struct sockaddr *addr = p;
268         int status;
269         u8 mac[ETH_ALEN];
270         u32 old_pmac_id = adapter->pmac_id[0], curr_pmac_id = 0;
271
272         if (!is_valid_ether_addr(addr->sa_data))
273                 return -EADDRNOTAVAIL;
274
275         /* Proceed further only if, User provided MAC is different
276          * from active MAC
277          */
278         if (ether_addr_equal(addr->sa_data, netdev->dev_addr))
279                 return 0;
280
281         /* if device is not running, copy MAC to netdev->dev_addr */
282         if (!netif_running(netdev))
283                 goto done;
284
285         /* The PMAC_ADD cmd may fail if the VF doesn't have FILTMGMT
286          * privilege or if PF did not provision the new MAC address.
287          * On BE3, this cmd will always fail if the VF doesn't have the
288          * FILTMGMT privilege. This failure is OK, only if the PF programmed
289          * the MAC for the VF.
290          */
291         status = be_cmd_pmac_add(adapter, (u8 *)addr->sa_data,
292                                  adapter->if_handle, &adapter->pmac_id[0], 0);
293         if (!status) {
294                 curr_pmac_id = adapter->pmac_id[0];
295
296                 /* Delete the old programmed MAC. This call may fail if the
297                  * old MAC was already deleted by the PF driver.
298                  */
299                 if (adapter->pmac_id[0] != old_pmac_id)
300                         be_cmd_pmac_del(adapter, adapter->if_handle,
301                                         old_pmac_id, 0);
302         }
303
304         /* Decide if the new MAC is successfully activated only after
305          * querying the FW
306          */
307         status = be_cmd_get_active_mac(adapter, curr_pmac_id, mac,
308                                        adapter->if_handle, true, 0);
309         if (status)
310                 goto err;
311
312         /* The MAC change did not happen, either due to lack of privilege
313          * or PF didn't pre-provision.
314          */
315         if (!ether_addr_equal(addr->sa_data, mac)) {
316                 status = -EPERM;
317                 goto err;
318         }
319 done:
320         ether_addr_copy(netdev->dev_addr, addr->sa_data);
321         dev_info(dev, "MAC address changed to %pM\n", addr->sa_data);
322         return 0;
323 err:
324         dev_warn(dev, "MAC address change to %pM failed\n", addr->sa_data);
325         return status;
326 }
327
328 /* BE2 supports only v0 cmd */
329 static void *hw_stats_from_cmd(struct be_adapter *adapter)
330 {
331         if (BE2_chip(adapter)) {
332                 struct be_cmd_resp_get_stats_v0 *cmd = adapter->stats_cmd.va;
333
334                 return &cmd->hw_stats;
335         } else if (BE3_chip(adapter)) {
336                 struct be_cmd_resp_get_stats_v1 *cmd = adapter->stats_cmd.va;
337
338                 return &cmd->hw_stats;
339         } else {
340                 struct be_cmd_resp_get_stats_v2 *cmd = adapter->stats_cmd.va;
341
342                 return &cmd->hw_stats;
343         }
344 }
345
346 /* BE2 supports only v0 cmd */
347 static void *be_erx_stats_from_cmd(struct be_adapter *adapter)
348 {
349         if (BE2_chip(adapter)) {
350                 struct be_hw_stats_v0 *hw_stats = hw_stats_from_cmd(adapter);
351
352                 return &hw_stats->erx;
353         } else if (BE3_chip(adapter)) {
354                 struct be_hw_stats_v1 *hw_stats = hw_stats_from_cmd(adapter);
355
356                 return &hw_stats->erx;
357         } else {
358                 struct be_hw_stats_v2 *hw_stats = hw_stats_from_cmd(adapter);
359
360                 return &hw_stats->erx;
361         }
362 }
363
364 static void populate_be_v0_stats(struct be_adapter *adapter)
365 {
366         struct be_hw_stats_v0 *hw_stats = hw_stats_from_cmd(adapter);
367         struct be_pmem_stats *pmem_sts = &hw_stats->pmem;
368         struct be_rxf_stats_v0 *rxf_stats = &hw_stats->rxf;
369         struct be_port_rxf_stats_v0 *port_stats =
370                                         &rxf_stats->port[adapter->port_num];
371         struct be_drv_stats *drvs = &adapter->drv_stats;
372
373         be_dws_le_to_cpu(hw_stats, sizeof(*hw_stats));
374         drvs->rx_pause_frames = port_stats->rx_pause_frames;
375         drvs->rx_crc_errors = port_stats->rx_crc_errors;
376         drvs->rx_control_frames = port_stats->rx_control_frames;
377         drvs->rx_in_range_errors = port_stats->rx_in_range_errors;
378         drvs->rx_frame_too_long = port_stats->rx_frame_too_long;
379         drvs->rx_dropped_runt = port_stats->rx_dropped_runt;
380         drvs->rx_ip_checksum_errs = port_stats->rx_ip_checksum_errs;
381         drvs->rx_tcp_checksum_errs = port_stats->rx_tcp_checksum_errs;
382         drvs->rx_udp_checksum_errs = port_stats->rx_udp_checksum_errs;
383         drvs->rxpp_fifo_overflow_drop = port_stats->rx_fifo_overflow;
384         drvs->rx_dropped_tcp_length = port_stats->rx_dropped_tcp_length;
385         drvs->rx_dropped_too_small = port_stats->rx_dropped_too_small;
386         drvs->rx_dropped_too_short = port_stats->rx_dropped_too_short;
387         drvs->rx_out_range_errors = port_stats->rx_out_range_errors;
388         drvs->rx_input_fifo_overflow_drop = port_stats->rx_input_fifo_overflow;
389         drvs->rx_dropped_header_too_small =
390                 port_stats->rx_dropped_header_too_small;
391         drvs->rx_address_filtered =
392                                         port_stats->rx_address_filtered +
393                                         port_stats->rx_vlan_filtered;
394         drvs->rx_alignment_symbol_errors =
395                 port_stats->rx_alignment_symbol_errors;
396
397         drvs->tx_pauseframes = port_stats->tx_pauseframes;
398         drvs->tx_controlframes = port_stats->tx_controlframes;
399
400         if (adapter->port_num)
401                 drvs->jabber_events = rxf_stats->port1_jabber_events;
402         else
403                 drvs->jabber_events = rxf_stats->port0_jabber_events;
404         drvs->rx_drops_no_pbuf = rxf_stats->rx_drops_no_pbuf;
405         drvs->rx_drops_no_erx_descr = rxf_stats->rx_drops_no_erx_descr;
406         drvs->forwarded_packets = rxf_stats->forwarded_packets;
407         drvs->rx_drops_mtu = rxf_stats->rx_drops_mtu;
408         drvs->rx_drops_no_tpre_descr = rxf_stats->rx_drops_no_tpre_descr;
409         drvs->rx_drops_too_many_frags = rxf_stats->rx_drops_too_many_frags;
410         adapter->drv_stats.eth_red_drops = pmem_sts->eth_red_drops;
411 }
412
413 static void populate_be_v1_stats(struct be_adapter *adapter)
414 {
415         struct be_hw_stats_v1 *hw_stats = hw_stats_from_cmd(adapter);
416         struct be_pmem_stats *pmem_sts = &hw_stats->pmem;
417         struct be_rxf_stats_v1 *rxf_stats = &hw_stats->rxf;
418         struct be_port_rxf_stats_v1 *port_stats =
419                                         &rxf_stats->port[adapter->port_num];
420         struct be_drv_stats *drvs = &adapter->drv_stats;
421
422         be_dws_le_to_cpu(hw_stats, sizeof(*hw_stats));
423         drvs->pmem_fifo_overflow_drop = port_stats->pmem_fifo_overflow_drop;
424         drvs->rx_priority_pause_frames = port_stats->rx_priority_pause_frames;
425         drvs->rx_pause_frames = port_stats->rx_pause_frames;
426         drvs->rx_crc_errors = port_stats->rx_crc_errors;
427         drvs->rx_control_frames = port_stats->rx_control_frames;
428         drvs->rx_in_range_errors = port_stats->rx_in_range_errors;
429         drvs->rx_frame_too_long = port_stats->rx_frame_too_long;
430         drvs->rx_dropped_runt = port_stats->rx_dropped_runt;
431         drvs->rx_ip_checksum_errs = port_stats->rx_ip_checksum_errs;
432         drvs->rx_tcp_checksum_errs = port_stats->rx_tcp_checksum_errs;
433         drvs->rx_udp_checksum_errs = port_stats->rx_udp_checksum_errs;
434         drvs->rx_dropped_tcp_length = port_stats->rx_dropped_tcp_length;
435         drvs->rx_dropped_too_small = port_stats->rx_dropped_too_small;
436         drvs->rx_dropped_too_short = port_stats->rx_dropped_too_short;
437         drvs->rx_out_range_errors = port_stats->rx_out_range_errors;
438         drvs->rx_dropped_header_too_small =
439                 port_stats->rx_dropped_header_too_small;
440         drvs->rx_input_fifo_overflow_drop =
441                 port_stats->rx_input_fifo_overflow_drop;
442         drvs->rx_address_filtered = port_stats->rx_address_filtered;
443         drvs->rx_alignment_symbol_errors =
444                 port_stats->rx_alignment_symbol_errors;
445         drvs->rxpp_fifo_overflow_drop = port_stats->rxpp_fifo_overflow_drop;
446         drvs->tx_pauseframes = port_stats->tx_pauseframes;
447         drvs->tx_controlframes = port_stats->tx_controlframes;
448         drvs->tx_priority_pauseframes = port_stats->tx_priority_pauseframes;
449         drvs->jabber_events = port_stats->jabber_events;
450         drvs->rx_drops_no_pbuf = rxf_stats->rx_drops_no_pbuf;
451         drvs->rx_drops_no_erx_descr = rxf_stats->rx_drops_no_erx_descr;
452         drvs->forwarded_packets = rxf_stats->forwarded_packets;
453         drvs->rx_drops_mtu = rxf_stats->rx_drops_mtu;
454         drvs->rx_drops_no_tpre_descr = rxf_stats->rx_drops_no_tpre_descr;
455         drvs->rx_drops_too_many_frags = rxf_stats->rx_drops_too_many_frags;
456         adapter->drv_stats.eth_red_drops = pmem_sts->eth_red_drops;
457 }
458
459 static void populate_be_v2_stats(struct be_adapter *adapter)
460 {
461         struct be_hw_stats_v2 *hw_stats = hw_stats_from_cmd(adapter);
462         struct be_pmem_stats *pmem_sts = &hw_stats->pmem;
463         struct be_rxf_stats_v2 *rxf_stats = &hw_stats->rxf;
464         struct be_port_rxf_stats_v2 *port_stats =
465                                         &rxf_stats->port[adapter->port_num];
466         struct be_drv_stats *drvs = &adapter->drv_stats;
467
468         be_dws_le_to_cpu(hw_stats, sizeof(*hw_stats));
469         drvs->pmem_fifo_overflow_drop = port_stats->pmem_fifo_overflow_drop;
470         drvs->rx_priority_pause_frames = port_stats->rx_priority_pause_frames;
471         drvs->rx_pause_frames = port_stats->rx_pause_frames;
472         drvs->rx_crc_errors = port_stats->rx_crc_errors;
473         drvs->rx_control_frames = port_stats->rx_control_frames;
474         drvs->rx_in_range_errors = port_stats->rx_in_range_errors;
475         drvs->rx_frame_too_long = port_stats->rx_frame_too_long;
476         drvs->rx_dropped_runt = port_stats->rx_dropped_runt;
477         drvs->rx_ip_checksum_errs = port_stats->rx_ip_checksum_errs;
478         drvs->rx_tcp_checksum_errs = port_stats->rx_tcp_checksum_errs;
479         drvs->rx_udp_checksum_errs = port_stats->rx_udp_checksum_errs;
480         drvs->rx_dropped_tcp_length = port_stats->rx_dropped_tcp_length;
481         drvs->rx_dropped_too_small = port_stats->rx_dropped_too_small;
482         drvs->rx_dropped_too_short = port_stats->rx_dropped_too_short;
483         drvs->rx_out_range_errors = port_stats->rx_out_range_errors;
484         drvs->rx_dropped_header_too_small =
485                 port_stats->rx_dropped_header_too_small;
486         drvs->rx_input_fifo_overflow_drop =
487                 port_stats->rx_input_fifo_overflow_drop;
488         drvs->rx_address_filtered = port_stats->rx_address_filtered;
489         drvs->rx_alignment_symbol_errors =
490                 port_stats->rx_alignment_symbol_errors;
491         drvs->rxpp_fifo_overflow_drop = port_stats->rxpp_fifo_overflow_drop;
492         drvs->tx_pauseframes = port_stats->tx_pauseframes;
493         drvs->tx_controlframes = port_stats->tx_controlframes;
494         drvs->tx_priority_pauseframes = port_stats->tx_priority_pauseframes;
495         drvs->jabber_events = port_stats->jabber_events;
496         drvs->rx_drops_no_pbuf = rxf_stats->rx_drops_no_pbuf;
497         drvs->rx_drops_no_erx_descr = rxf_stats->rx_drops_no_erx_descr;
498         drvs->forwarded_packets = rxf_stats->forwarded_packets;
499         drvs->rx_drops_mtu = rxf_stats->rx_drops_mtu;
500         drvs->rx_drops_no_tpre_descr = rxf_stats->rx_drops_no_tpre_descr;
501         drvs->rx_drops_too_many_frags = rxf_stats->rx_drops_too_many_frags;
502         adapter->drv_stats.eth_red_drops = pmem_sts->eth_red_drops;
503         if (be_roce_supported(adapter)) {
504                 drvs->rx_roce_bytes_lsd = port_stats->roce_bytes_received_lsd;
505                 drvs->rx_roce_bytes_msd = port_stats->roce_bytes_received_msd;
506                 drvs->rx_roce_frames = port_stats->roce_frames_received;
507                 drvs->roce_drops_crc = port_stats->roce_drops_crc;
508                 drvs->roce_drops_payload_len =
509                         port_stats->roce_drops_payload_len;
510         }
511 }
512
513 static void populate_lancer_stats(struct be_adapter *adapter)
514 {
515         struct be_drv_stats *drvs = &adapter->drv_stats;
516         struct lancer_pport_stats *pport_stats = pport_stats_from_cmd(adapter);
517
518         be_dws_le_to_cpu(pport_stats, sizeof(*pport_stats));
519         drvs->rx_pause_frames = pport_stats->rx_pause_frames_lo;
520         drvs->rx_crc_errors = pport_stats->rx_crc_errors_lo;
521         drvs->rx_control_frames = pport_stats->rx_control_frames_lo;
522         drvs->rx_in_range_errors = pport_stats->rx_in_range_errors;
523         drvs->rx_frame_too_long = pport_stats->rx_frames_too_long_lo;
524         drvs->rx_dropped_runt = pport_stats->rx_dropped_runt;
525         drvs->rx_ip_checksum_errs = pport_stats->rx_ip_checksum_errors;
526         drvs->rx_tcp_checksum_errs = pport_stats->rx_tcp_checksum_errors;
527         drvs->rx_udp_checksum_errs = pport_stats->rx_udp_checksum_errors;
528         drvs->rx_dropped_tcp_length =
529                                 pport_stats->rx_dropped_invalid_tcp_length;
530         drvs->rx_dropped_too_small = pport_stats->rx_dropped_too_small;
531         drvs->rx_dropped_too_short = pport_stats->rx_dropped_too_short;
532         drvs->rx_out_range_errors = pport_stats->rx_out_of_range_errors;
533         drvs->rx_dropped_header_too_small =
534                                 pport_stats->rx_dropped_header_too_small;
535         drvs->rx_input_fifo_overflow_drop = pport_stats->rx_fifo_overflow;
536         drvs->rx_address_filtered =
537                                         pport_stats->rx_address_filtered +
538                                         pport_stats->rx_vlan_filtered;
539         drvs->rx_alignment_symbol_errors = pport_stats->rx_symbol_errors_lo;
540         drvs->rxpp_fifo_overflow_drop = pport_stats->rx_fifo_overflow;
541         drvs->tx_pauseframes = pport_stats->tx_pause_frames_lo;
542         drvs->tx_controlframes = pport_stats->tx_control_frames_lo;
543         drvs->jabber_events = pport_stats->rx_jabbers;
544         drvs->forwarded_packets = pport_stats->num_forwards_lo;
545         drvs->rx_drops_mtu = pport_stats->rx_drops_mtu_lo;
546         drvs->rx_drops_too_many_frags =
547                                 pport_stats->rx_drops_too_many_frags_lo;
548 }
549
550 static void accumulate_16bit_val(u32 *acc, u16 val)
551 {
552 #define lo(x)                   (x & 0xFFFF)
553 #define hi(x)                   (x & 0xFFFF0000)
554         bool wrapped = val < lo(*acc);
555         u32 newacc = hi(*acc) + val;
556
557         if (wrapped)
558                 newacc += 65536;
559         ACCESS_ONCE(*acc) = newacc;
560 }
561
562 static void populate_erx_stats(struct be_adapter *adapter,
563                                struct be_rx_obj *rxo, u32 erx_stat)
564 {
565         if (!BEx_chip(adapter))
566                 rx_stats(rxo)->rx_drops_no_frags = erx_stat;
567         else
568                 /* below erx HW counter can actually wrap around after
569                  * 65535. Driver accumulates a 32-bit value
570                  */
571                 accumulate_16bit_val(&rx_stats(rxo)->rx_drops_no_frags,
572                                      (u16)erx_stat);
573 }
574
575 void be_parse_stats(struct be_adapter *adapter)
576 {
577         struct be_erx_stats_v2 *erx = be_erx_stats_from_cmd(adapter);
578         struct be_rx_obj *rxo;
579         int i;
580         u32 erx_stat;
581
582         if (lancer_chip(adapter)) {
583                 populate_lancer_stats(adapter);
584         } else {
585                 if (BE2_chip(adapter))
586                         populate_be_v0_stats(adapter);
587                 else if (BE3_chip(adapter))
588                         /* for BE3 */
589                         populate_be_v1_stats(adapter);
590                 else
591                         populate_be_v2_stats(adapter);
592
593                 /* erx_v2 is longer than v0, v1. use v2 for v0, v1 access */
594                 for_all_rx_queues(adapter, rxo, i) {
595                         erx_stat = erx->rx_drops_no_fragments[rxo->q.id];
596                         populate_erx_stats(adapter, rxo, erx_stat);
597                 }
598         }
599 }
600
601 static struct rtnl_link_stats64 *be_get_stats64(struct net_device *netdev,
602                                                 struct rtnl_link_stats64 *stats)
603 {
604         struct be_adapter *adapter = netdev_priv(netdev);
605         struct be_drv_stats *drvs = &adapter->drv_stats;
606         struct be_rx_obj *rxo;
607         struct be_tx_obj *txo;
608         u64 pkts, bytes;
609         unsigned int start;
610         int i;
611
612         for_all_rx_queues(adapter, rxo, i) {
613                 const struct be_rx_stats *rx_stats = rx_stats(rxo);
614
615                 do {
616                         start = u64_stats_fetch_begin_irq(&rx_stats->sync);
617                         pkts = rx_stats(rxo)->rx_pkts;
618                         bytes = rx_stats(rxo)->rx_bytes;
619                 } while (u64_stats_fetch_retry_irq(&rx_stats->sync, start));
620                 stats->rx_packets += pkts;
621                 stats->rx_bytes += bytes;
622                 stats->multicast += rx_stats(rxo)->rx_mcast_pkts;
623                 stats->rx_dropped += rx_stats(rxo)->rx_drops_no_skbs +
624                                         rx_stats(rxo)->rx_drops_no_frags;
625         }
626
627         for_all_tx_queues(adapter, txo, i) {
628                 const struct be_tx_stats *tx_stats = tx_stats(txo);
629
630                 do {
631                         start = u64_stats_fetch_begin_irq(&tx_stats->sync);
632                         pkts = tx_stats(txo)->tx_pkts;
633                         bytes = tx_stats(txo)->tx_bytes;
634                 } while (u64_stats_fetch_retry_irq(&tx_stats->sync, start));
635                 stats->tx_packets += pkts;
636                 stats->tx_bytes += bytes;
637         }
638
639         /* bad pkts received */
640         stats->rx_errors = drvs->rx_crc_errors +
641                 drvs->rx_alignment_symbol_errors +
642                 drvs->rx_in_range_errors +
643                 drvs->rx_out_range_errors +
644                 drvs->rx_frame_too_long +
645                 drvs->rx_dropped_too_small +
646                 drvs->rx_dropped_too_short +
647                 drvs->rx_dropped_header_too_small +
648                 drvs->rx_dropped_tcp_length +
649                 drvs->rx_dropped_runt;
650
651         /* detailed rx errors */
652         stats->rx_length_errors = drvs->rx_in_range_errors +
653                 drvs->rx_out_range_errors +
654                 drvs->rx_frame_too_long;
655
656         stats->rx_crc_errors = drvs->rx_crc_errors;
657
658         /* frame alignment errors */
659         stats->rx_frame_errors = drvs->rx_alignment_symbol_errors;
660
661         /* receiver fifo overrun */
662         /* drops_no_pbuf is no per i/f, it's per BE card */
663         stats->rx_fifo_errors = drvs->rxpp_fifo_overflow_drop +
664                                 drvs->rx_input_fifo_overflow_drop +
665                                 drvs->rx_drops_no_pbuf;
666         return stats;
667 }
668
669 void be_link_status_update(struct be_adapter *adapter, u8 link_status)
670 {
671         struct net_device *netdev = adapter->netdev;
672
673         if (!(adapter->flags & BE_FLAGS_LINK_STATUS_INIT)) {
674                 netif_carrier_off(netdev);
675                 adapter->flags |= BE_FLAGS_LINK_STATUS_INIT;
676         }
677
678         if (link_status)
679                 netif_carrier_on(netdev);
680         else
681                 netif_carrier_off(netdev);
682
683         netdev_info(netdev, "Link is %s\n", link_status ? "Up" : "Down");
684 }
685
686 static void be_tx_stats_update(struct be_tx_obj *txo, struct sk_buff *skb)
687 {
688         struct be_tx_stats *stats = tx_stats(txo);
689         u64 tx_pkts = skb_shinfo(skb)->gso_segs ? : 1;
690
691         u64_stats_update_begin(&stats->sync);
692         stats->tx_reqs++;
693         stats->tx_bytes += skb->len;
694         stats->tx_pkts += tx_pkts;
695         if (skb->encapsulation && skb->ip_summed == CHECKSUM_PARTIAL)
696                 stats->tx_vxlan_offload_pkts += tx_pkts;
697         u64_stats_update_end(&stats->sync);
698 }
699
700 /* Returns number of WRBs needed for the skb */
701 static u32 skb_wrb_cnt(struct sk_buff *skb)
702 {
703         /* +1 for the header wrb */
704         return 1 + (skb_headlen(skb) ? 1 : 0) + skb_shinfo(skb)->nr_frags;
705 }
706
707 static inline void wrb_fill(struct be_eth_wrb *wrb, u64 addr, int len)
708 {
709         wrb->frag_pa_hi = cpu_to_le32(upper_32_bits(addr));
710         wrb->frag_pa_lo = cpu_to_le32(lower_32_bits(addr));
711         wrb->frag_len = cpu_to_le32(len & ETH_WRB_FRAG_LEN_MASK);
712         wrb->rsvd0 = 0;
713 }
714
715 /* A dummy wrb is just all zeros. Using a separate routine for dummy-wrb
716  * to avoid the swap and shift/mask operations in wrb_fill().
717  */
718 static inline void wrb_fill_dummy(struct be_eth_wrb *wrb)
719 {
720         wrb->frag_pa_hi = 0;
721         wrb->frag_pa_lo = 0;
722         wrb->frag_len = 0;
723         wrb->rsvd0 = 0;
724 }
725
726 static inline u16 be_get_tx_vlan_tag(struct be_adapter *adapter,
727                                      struct sk_buff *skb)
728 {
729         u8 vlan_prio;
730         u16 vlan_tag;
731
732         vlan_tag = skb_vlan_tag_get(skb);
733         vlan_prio = (vlan_tag & VLAN_PRIO_MASK) >> VLAN_PRIO_SHIFT;
734         /* If vlan priority provided by OS is NOT in available bmap */
735         if (!(adapter->vlan_prio_bmap & (1 << vlan_prio)))
736                 vlan_tag = (vlan_tag & ~VLAN_PRIO_MASK) |
737                                 adapter->recommended_prio_bits;
738
739         return vlan_tag;
740 }
741
742 /* Used only for IP tunnel packets */
743 static u16 skb_inner_ip_proto(struct sk_buff *skb)
744 {
745         return (inner_ip_hdr(skb)->version == 4) ?
746                 inner_ip_hdr(skb)->protocol : inner_ipv6_hdr(skb)->nexthdr;
747 }
748
749 static u16 skb_ip_proto(struct sk_buff *skb)
750 {
751         return (ip_hdr(skb)->version == 4) ?
752                 ip_hdr(skb)->protocol : ipv6_hdr(skb)->nexthdr;
753 }
754
755 static inline bool be_is_txq_full(struct be_tx_obj *txo)
756 {
757         return atomic_read(&txo->q.used) + BE_MAX_TX_FRAG_COUNT >= txo->q.len;
758 }
759
760 static inline bool be_can_txq_wake(struct be_tx_obj *txo)
761 {
762         return atomic_read(&txo->q.used) < txo->q.len / 2;
763 }
764
765 static inline bool be_is_tx_compl_pending(struct be_tx_obj *txo)
766 {
767         return atomic_read(&txo->q.used) > txo->pend_wrb_cnt;
768 }
769
770 static void be_get_wrb_params_from_skb(struct be_adapter *adapter,
771                                        struct sk_buff *skb,
772                                        struct be_wrb_params *wrb_params)
773 {
774         u16 proto;
775
776         if (skb_is_gso(skb)) {
777                 BE_WRB_F_SET(wrb_params->features, LSO, 1);
778                 wrb_params->lso_mss = skb_shinfo(skb)->gso_size;
779                 if (skb_is_gso_v6(skb) && !lancer_chip(adapter))
780                         BE_WRB_F_SET(wrb_params->features, LSO6, 1);
781         } else if (skb->ip_summed == CHECKSUM_PARTIAL) {
782                 if (skb->encapsulation) {
783                         BE_WRB_F_SET(wrb_params->features, IPCS, 1);
784                         proto = skb_inner_ip_proto(skb);
785                 } else {
786                         proto = skb_ip_proto(skb);
787                 }
788                 if (proto == IPPROTO_TCP)
789                         BE_WRB_F_SET(wrb_params->features, TCPCS, 1);
790                 else if (proto == IPPROTO_UDP)
791                         BE_WRB_F_SET(wrb_params->features, UDPCS, 1);
792         }
793
794         if (skb_vlan_tag_present(skb)) {
795                 BE_WRB_F_SET(wrb_params->features, VLAN, 1);
796                 wrb_params->vlan_tag = be_get_tx_vlan_tag(adapter, skb);
797         }
798
799         BE_WRB_F_SET(wrb_params->features, CRC, 1);
800 }
801
802 static void wrb_fill_hdr(struct be_adapter *adapter,
803                          struct be_eth_hdr_wrb *hdr,
804                          struct be_wrb_params *wrb_params,
805                          struct sk_buff *skb)
806 {
807         memset(hdr, 0, sizeof(*hdr));
808
809         SET_TX_WRB_HDR_BITS(crc, hdr,
810                             BE_WRB_F_GET(wrb_params->features, CRC));
811         SET_TX_WRB_HDR_BITS(ipcs, hdr,
812                             BE_WRB_F_GET(wrb_params->features, IPCS));
813         SET_TX_WRB_HDR_BITS(tcpcs, hdr,
814                             BE_WRB_F_GET(wrb_params->features, TCPCS));
815         SET_TX_WRB_HDR_BITS(udpcs, hdr,
816                             BE_WRB_F_GET(wrb_params->features, UDPCS));
817
818         SET_TX_WRB_HDR_BITS(lso, hdr,
819                             BE_WRB_F_GET(wrb_params->features, LSO));
820         SET_TX_WRB_HDR_BITS(lso6, hdr,
821                             BE_WRB_F_GET(wrb_params->features, LSO6));
822         SET_TX_WRB_HDR_BITS(lso_mss, hdr, wrb_params->lso_mss);
823
824         /* Hack to skip HW VLAN tagging needs evt = 1, compl = 0. When this
825          * hack is not needed, the evt bit is set while ringing DB.
826          */
827         SET_TX_WRB_HDR_BITS(event, hdr,
828                             BE_WRB_F_GET(wrb_params->features, VLAN_SKIP_HW));
829         SET_TX_WRB_HDR_BITS(vlan, hdr,
830                             BE_WRB_F_GET(wrb_params->features, VLAN));
831         SET_TX_WRB_HDR_BITS(vlan_tag, hdr, wrb_params->vlan_tag);
832
833         SET_TX_WRB_HDR_BITS(num_wrb, hdr, skb_wrb_cnt(skb));
834         SET_TX_WRB_HDR_BITS(len, hdr, skb->len);
835         SET_TX_WRB_HDR_BITS(mgmt, hdr,
836                             BE_WRB_F_GET(wrb_params->features, OS2BMC));
837 }
838
839 static void unmap_tx_frag(struct device *dev, struct be_eth_wrb *wrb,
840                           bool unmap_single)
841 {
842         dma_addr_t dma;
843         u32 frag_len = le32_to_cpu(wrb->frag_len);
844
845
846         dma = (u64)le32_to_cpu(wrb->frag_pa_hi) << 32 |
847                 (u64)le32_to_cpu(wrb->frag_pa_lo);
848         if (frag_len) {
849                 if (unmap_single)
850                         dma_unmap_single(dev, dma, frag_len, DMA_TO_DEVICE);
851                 else
852                         dma_unmap_page(dev, dma, frag_len, DMA_TO_DEVICE);
853         }
854 }
855
856 /* Grab a WRB header for xmit */
857 static u32 be_tx_get_wrb_hdr(struct be_tx_obj *txo)
858 {
859         u32 head = txo->q.head;
860
861         queue_head_inc(&txo->q);
862         return head;
863 }
864
865 /* Set up the WRB header for xmit */
866 static void be_tx_setup_wrb_hdr(struct be_adapter *adapter,
867                                 struct be_tx_obj *txo,
868                                 struct be_wrb_params *wrb_params,
869                                 struct sk_buff *skb, u16 head)
870 {
871         u32 num_frags = skb_wrb_cnt(skb);
872         struct be_queue_info *txq = &txo->q;
873         struct be_eth_hdr_wrb *hdr = queue_index_node(txq, head);
874
875         wrb_fill_hdr(adapter, hdr, wrb_params, skb);
876         be_dws_cpu_to_le(hdr, sizeof(*hdr));
877
878         BUG_ON(txo->sent_skb_list[head]);
879         txo->sent_skb_list[head] = skb;
880         txo->last_req_hdr = head;
881         atomic_add(num_frags, &txq->used);
882         txo->last_req_wrb_cnt = num_frags;
883         txo->pend_wrb_cnt += num_frags;
884 }
885
886 /* Setup a WRB fragment (buffer descriptor) for xmit */
887 static void be_tx_setup_wrb_frag(struct be_tx_obj *txo, dma_addr_t busaddr,
888                                  int len)
889 {
890         struct be_eth_wrb *wrb;
891         struct be_queue_info *txq = &txo->q;
892
893         wrb = queue_head_node(txq);
894         wrb_fill(wrb, busaddr, len);
895         queue_head_inc(txq);
896 }
897
898 /* Bring the queue back to the state it was in before be_xmit_enqueue() routine
899  * was invoked. The producer index is restored to the previous packet and the
900  * WRBs of the current packet are unmapped. Invoked to handle tx setup errors.
901  */
902 static void be_xmit_restore(struct be_adapter *adapter,
903                             struct be_tx_obj *txo, u32 head, bool map_single,
904                             u32 copied)
905 {
906         struct device *dev;
907         struct be_eth_wrb *wrb;
908         struct be_queue_info *txq = &txo->q;
909
910         dev = &adapter->pdev->dev;
911         txq->head = head;
912
913         /* skip the first wrb (hdr); it's not mapped */
914         queue_head_inc(txq);
915         while (copied) {
916                 wrb = queue_head_node(txq);
917                 unmap_tx_frag(dev, wrb, map_single);
918                 map_single = false;
919                 copied -= le32_to_cpu(wrb->frag_len);
920                 queue_head_inc(txq);
921         }
922
923         txq->head = head;
924 }
925
926 /* Enqueue the given packet for transmit. This routine allocates WRBs for the
927  * packet, dma maps the packet buffers and sets up the WRBs. Returns the number
928  * of WRBs used up by the packet.
929  */
930 static u32 be_xmit_enqueue(struct be_adapter *adapter, struct be_tx_obj *txo,
931                            struct sk_buff *skb,
932                            struct be_wrb_params *wrb_params)
933 {
934         u32 i, copied = 0, wrb_cnt = skb_wrb_cnt(skb);
935         struct device *dev = &adapter->pdev->dev;
936         struct be_queue_info *txq = &txo->q;
937         bool map_single = false;
938         u32 head = txq->head;
939         dma_addr_t busaddr;
940         int len;
941
942         head = be_tx_get_wrb_hdr(txo);
943
944         if (skb->len > skb->data_len) {
945                 len = skb_headlen(skb);
946
947                 busaddr = dma_map_single(dev, skb->data, len, DMA_TO_DEVICE);
948                 if (dma_mapping_error(dev, busaddr))
949                         goto dma_err;
950                 map_single = true;
951                 be_tx_setup_wrb_frag(txo, busaddr, len);
952                 copied += len;
953         }
954
955         for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
956                 const struct skb_frag_struct *frag = &skb_shinfo(skb)->frags[i];
957                 len = skb_frag_size(frag);
958
959                 busaddr = skb_frag_dma_map(dev, frag, 0, len, DMA_TO_DEVICE);
960                 if (dma_mapping_error(dev, busaddr))
961                         goto dma_err;
962                 be_tx_setup_wrb_frag(txo, busaddr, len);
963                 copied += len;
964         }
965
966         be_tx_setup_wrb_hdr(adapter, txo, wrb_params, skb, head);
967
968         be_tx_stats_update(txo, skb);
969         return wrb_cnt;
970
971 dma_err:
972         adapter->drv_stats.dma_map_errors++;
973         be_xmit_restore(adapter, txo, head, map_single, copied);
974         return 0;
975 }
976
977 static inline int qnq_async_evt_rcvd(struct be_adapter *adapter)
978 {
979         return adapter->flags & BE_FLAGS_QNQ_ASYNC_EVT_RCVD;
980 }
981
982 static struct sk_buff *be_insert_vlan_in_pkt(struct be_adapter *adapter,
983                                              struct sk_buff *skb,
984                                              struct be_wrb_params
985                                              *wrb_params)
986 {
987         u16 vlan_tag = 0;
988
989         skb = skb_share_check(skb, GFP_ATOMIC);
990         if (unlikely(!skb))
991                 return skb;
992
993         if (skb_vlan_tag_present(skb))
994                 vlan_tag = be_get_tx_vlan_tag(adapter, skb);
995
996         if (qnq_async_evt_rcvd(adapter) && adapter->pvid) {
997                 if (!vlan_tag)
998                         vlan_tag = adapter->pvid;
999                 /* f/w workaround to set skip_hw_vlan = 1, informs the F/W to
1000                  * skip VLAN insertion
1001                  */
1002                 BE_WRB_F_SET(wrb_params->features, VLAN_SKIP_HW, 1);
1003         }
1004
1005         if (vlan_tag) {
1006                 skb = vlan_insert_tag_set_proto(skb, htons(ETH_P_8021Q),
1007                                                 vlan_tag);
1008                 if (unlikely(!skb))
1009                         return skb;
1010                 skb->vlan_tci = 0;
1011         }
1012
1013         /* Insert the outer VLAN, if any */
1014         if (adapter->qnq_vid) {
1015                 vlan_tag = adapter->qnq_vid;
1016                 skb = vlan_insert_tag_set_proto(skb, htons(ETH_P_8021Q),
1017                                                 vlan_tag);
1018                 if (unlikely(!skb))
1019                         return skb;
1020                 BE_WRB_F_SET(wrb_params->features, VLAN_SKIP_HW, 1);
1021         }
1022
1023         return skb;
1024 }
1025
1026 static bool be_ipv6_exthdr_check(struct sk_buff *skb)
1027 {
1028         struct ethhdr *eh = (struct ethhdr *)skb->data;
1029         u16 offset = ETH_HLEN;
1030
1031         if (eh->h_proto == htons(ETH_P_IPV6)) {
1032                 struct ipv6hdr *ip6h = (struct ipv6hdr *)(skb->data + offset);
1033
1034                 offset += sizeof(struct ipv6hdr);
1035                 if (ip6h->nexthdr != NEXTHDR_TCP &&
1036                     ip6h->nexthdr != NEXTHDR_UDP) {
1037                         struct ipv6_opt_hdr *ehdr =
1038                                 (struct ipv6_opt_hdr *)(skb->data + offset);
1039
1040                         /* offending pkt: 2nd byte following IPv6 hdr is 0xff */
1041                         if (ehdr->hdrlen == 0xff)
1042                                 return true;
1043                 }
1044         }
1045         return false;
1046 }
1047
1048 static int be_vlan_tag_tx_chk(struct be_adapter *adapter, struct sk_buff *skb)
1049 {
1050         return skb_vlan_tag_present(skb) || adapter->pvid || adapter->qnq_vid;
1051 }
1052
1053 static int be_ipv6_tx_stall_chk(struct be_adapter *adapter, struct sk_buff *skb)
1054 {
1055         return BE3_chip(adapter) && be_ipv6_exthdr_check(skb);
1056 }
1057
1058 static struct sk_buff *be_lancer_xmit_workarounds(struct be_adapter *adapter,
1059                                                   struct sk_buff *skb,
1060                                                   struct be_wrb_params
1061                                                   *wrb_params)
1062 {
1063         struct vlan_ethhdr *veh = (struct vlan_ethhdr *)skb->data;
1064         unsigned int eth_hdr_len;
1065         struct iphdr *ip;
1066
1067         /* For padded packets, BE HW modifies tot_len field in IP header
1068          * incorrecly when VLAN tag is inserted by HW.
1069          * For padded packets, Lancer computes incorrect checksum.
1070          */
1071         eth_hdr_len = ntohs(skb->protocol) == ETH_P_8021Q ?
1072                                                 VLAN_ETH_HLEN : ETH_HLEN;
1073         if (skb->len <= 60 &&
1074             (lancer_chip(adapter) || skb_vlan_tag_present(skb)) &&
1075             is_ipv4_pkt(skb)) {
1076                 ip = (struct iphdr *)ip_hdr(skb);
1077                 pskb_trim(skb, eth_hdr_len + ntohs(ip->tot_len));
1078         }
1079
1080         /* If vlan tag is already inlined in the packet, skip HW VLAN
1081          * tagging in pvid-tagging mode
1082          */
1083         if (be_pvid_tagging_enabled(adapter) &&
1084             veh->h_vlan_proto == htons(ETH_P_8021Q))
1085                 BE_WRB_F_SET(wrb_params->features, VLAN_SKIP_HW, 1);
1086
1087         /* HW has a bug wherein it will calculate CSUM for VLAN
1088          * pkts even though it is disabled.
1089          * Manually insert VLAN in pkt.
1090          */
1091         if (skb->ip_summed != CHECKSUM_PARTIAL &&
1092             skb_vlan_tag_present(skb)) {
1093                 skb = be_insert_vlan_in_pkt(adapter, skb, wrb_params);
1094                 if (unlikely(!skb))
1095                         goto err;
1096         }
1097
1098         /* HW may lockup when VLAN HW tagging is requested on
1099          * certain ipv6 packets. Drop such pkts if the HW workaround to
1100          * skip HW tagging is not enabled by FW.
1101          */
1102         if (unlikely(be_ipv6_tx_stall_chk(adapter, skb) &&
1103                      (adapter->pvid || adapter->qnq_vid) &&
1104                      !qnq_async_evt_rcvd(adapter)))
1105                 goto tx_drop;
1106
1107         /* Manual VLAN tag insertion to prevent:
1108          * ASIC lockup when the ASIC inserts VLAN tag into
1109          * certain ipv6 packets. Insert VLAN tags in driver,
1110          * and set event, completion, vlan bits accordingly
1111          * in the Tx WRB.
1112          */
1113         if (be_ipv6_tx_stall_chk(adapter, skb) &&
1114             be_vlan_tag_tx_chk(adapter, skb)) {
1115                 skb = be_insert_vlan_in_pkt(adapter, skb, wrb_params);
1116                 if (unlikely(!skb))
1117                         goto err;
1118         }
1119
1120         return skb;
1121 tx_drop:
1122         dev_kfree_skb_any(skb);
1123 err:
1124         return NULL;
1125 }
1126
1127 static struct sk_buff *be_xmit_workarounds(struct be_adapter *adapter,
1128                                            struct sk_buff *skb,
1129                                            struct be_wrb_params *wrb_params)
1130 {
1131         int err;
1132
1133         /* Lancer, SH and BE3 in SRIOV mode have a bug wherein
1134          * packets that are 32b or less may cause a transmit stall
1135          * on that port. The workaround is to pad such packets
1136          * (len <= 32 bytes) to a minimum length of 36b.
1137          */
1138         if (skb->len <= 32) {
1139                 if (skb_put_padto(skb, 36))
1140                         return NULL;
1141         }
1142
1143         if (BEx_chip(adapter) || lancer_chip(adapter)) {
1144                 skb = be_lancer_xmit_workarounds(adapter, skb, wrb_params);
1145                 if (!skb)
1146                         return NULL;
1147         }
1148
1149         /* The stack can send us skbs with length greater than
1150          * what the HW can handle. Trim the extra bytes.
1151          */
1152         WARN_ON_ONCE(skb->len > BE_MAX_GSO_SIZE);
1153         err = pskb_trim(skb, BE_MAX_GSO_SIZE);
1154         WARN_ON(err);
1155
1156         return skb;
1157 }
1158
1159 static void be_xmit_flush(struct be_adapter *adapter, struct be_tx_obj *txo)
1160 {
1161         struct be_queue_info *txq = &txo->q;
1162         struct be_eth_hdr_wrb *hdr = queue_index_node(txq, txo->last_req_hdr);
1163
1164         /* Mark the last request eventable if it hasn't been marked already */
1165         if (!(hdr->dw[2] & cpu_to_le32(TX_HDR_WRB_EVT)))
1166                 hdr->dw[2] |= cpu_to_le32(TX_HDR_WRB_EVT | TX_HDR_WRB_COMPL);
1167
1168         /* compose a dummy wrb if there are odd set of wrbs to notify */
1169         if (!lancer_chip(adapter) && (txo->pend_wrb_cnt & 1)) {
1170                 wrb_fill_dummy(queue_head_node(txq));
1171                 queue_head_inc(txq);
1172                 atomic_inc(&txq->used);
1173                 txo->pend_wrb_cnt++;
1174                 hdr->dw[2] &= ~cpu_to_le32(TX_HDR_WRB_NUM_MASK <<
1175                                            TX_HDR_WRB_NUM_SHIFT);
1176                 hdr->dw[2] |= cpu_to_le32((txo->last_req_wrb_cnt + 1) <<
1177                                           TX_HDR_WRB_NUM_SHIFT);
1178         }
1179         be_txq_notify(adapter, txo, txo->pend_wrb_cnt);
1180         txo->pend_wrb_cnt = 0;
1181 }
1182
1183 /* OS2BMC related */
1184
1185 #define DHCP_CLIENT_PORT        68
1186 #define DHCP_SERVER_PORT        67
1187 #define NET_BIOS_PORT1          137
1188 #define NET_BIOS_PORT2          138
1189 #define DHCPV6_RAS_PORT         547
1190
1191 #define is_mc_allowed_on_bmc(adapter, eh)       \
1192         (!is_multicast_filt_enabled(adapter) && \
1193          is_multicast_ether_addr(eh->h_dest) && \
1194          !is_broadcast_ether_addr(eh->h_dest))
1195
1196 #define is_bc_allowed_on_bmc(adapter, eh)       \
1197         (!is_broadcast_filt_enabled(adapter) && \
1198          is_broadcast_ether_addr(eh->h_dest))
1199
1200 #define is_arp_allowed_on_bmc(adapter, skb)     \
1201         (is_arp(skb) && is_arp_filt_enabled(adapter))
1202
1203 #define is_broadcast_packet(eh, adapter)        \
1204                 (is_multicast_ether_addr(eh->h_dest) && \
1205                 !compare_ether_addr(eh->h_dest, adapter->netdev->broadcast))
1206
1207 #define is_arp(skb)     (skb->protocol == htons(ETH_P_ARP))
1208
1209 #define is_arp_filt_enabled(adapter)    \
1210                 (adapter->bmc_filt_mask & (BMC_FILT_BROADCAST_ARP))
1211
1212 #define is_dhcp_client_filt_enabled(adapter)    \
1213                 (adapter->bmc_filt_mask & BMC_FILT_BROADCAST_DHCP_CLIENT)
1214
1215 #define is_dhcp_srvr_filt_enabled(adapter)      \
1216                 (adapter->bmc_filt_mask & BMC_FILT_BROADCAST_DHCP_SERVER)
1217
1218 #define is_nbios_filt_enabled(adapter)  \
1219                 (adapter->bmc_filt_mask & BMC_FILT_BROADCAST_NET_BIOS)
1220
1221 #define is_ipv6_na_filt_enabled(adapter)        \
1222                 (adapter->bmc_filt_mask &       \
1223                         BMC_FILT_MULTICAST_IPV6_NEIGH_ADVER)
1224
1225 #define is_ipv6_ra_filt_enabled(adapter)        \
1226                 (adapter->bmc_filt_mask & BMC_FILT_MULTICAST_IPV6_RA)
1227
1228 #define is_ipv6_ras_filt_enabled(adapter)       \
1229                 (adapter->bmc_filt_mask & BMC_FILT_MULTICAST_IPV6_RAS)
1230
1231 #define is_broadcast_filt_enabled(adapter)      \
1232                 (adapter->bmc_filt_mask & BMC_FILT_BROADCAST)
1233
1234 #define is_multicast_filt_enabled(adapter)      \
1235                 (adapter->bmc_filt_mask & BMC_FILT_MULTICAST)
1236
1237 static bool be_send_pkt_to_bmc(struct be_adapter *adapter,
1238                                struct sk_buff **skb)
1239 {
1240         struct ethhdr *eh = (struct ethhdr *)(*skb)->data;
1241         bool os2bmc = false;
1242
1243         if (!be_is_os2bmc_enabled(adapter))
1244                 goto done;
1245
1246         if (!is_multicast_ether_addr(eh->h_dest))
1247                 goto done;
1248
1249         if (is_mc_allowed_on_bmc(adapter, eh) ||
1250             is_bc_allowed_on_bmc(adapter, eh) ||
1251             is_arp_allowed_on_bmc(adapter, (*skb))) {
1252                 os2bmc = true;
1253                 goto done;
1254         }
1255
1256         if ((*skb)->protocol == htons(ETH_P_IPV6)) {
1257                 struct ipv6hdr *hdr = ipv6_hdr((*skb));
1258                 u8 nexthdr = hdr->nexthdr;
1259
1260                 if (nexthdr == IPPROTO_ICMPV6) {
1261                         struct icmp6hdr *icmp6 = icmp6_hdr((*skb));
1262
1263                         switch (icmp6->icmp6_type) {
1264                         case NDISC_ROUTER_ADVERTISEMENT:
1265                                 os2bmc = is_ipv6_ra_filt_enabled(adapter);
1266                                 goto done;
1267                         case NDISC_NEIGHBOUR_ADVERTISEMENT:
1268                                 os2bmc = is_ipv6_na_filt_enabled(adapter);
1269                                 goto done;
1270                         default:
1271                                 break;
1272                         }
1273                 }
1274         }
1275
1276         if (is_udp_pkt((*skb))) {
1277                 struct udphdr *udp = udp_hdr((*skb));
1278
1279                 switch (ntohs(udp->dest)) {
1280                 case DHCP_CLIENT_PORT:
1281                         os2bmc = is_dhcp_client_filt_enabled(adapter);
1282                         goto done;
1283                 case DHCP_SERVER_PORT:
1284                         os2bmc = is_dhcp_srvr_filt_enabled(adapter);
1285                         goto done;
1286                 case NET_BIOS_PORT1:
1287                 case NET_BIOS_PORT2:
1288                         os2bmc = is_nbios_filt_enabled(adapter);
1289                         goto done;
1290                 case DHCPV6_RAS_PORT:
1291                         os2bmc = is_ipv6_ras_filt_enabled(adapter);
1292                         goto done;
1293                 default:
1294                         break;
1295                 }
1296         }
1297 done:
1298         /* For packets over a vlan, which are destined
1299          * to BMC, asic expects the vlan to be inline in the packet.
1300          */
1301         if (os2bmc)
1302                 *skb = be_insert_vlan_in_pkt(adapter, *skb, NULL);
1303
1304         return os2bmc;
1305 }
1306
1307 static netdev_tx_t be_xmit(struct sk_buff *skb, struct net_device *netdev)
1308 {
1309         struct be_adapter *adapter = netdev_priv(netdev);
1310         u16 q_idx = skb_get_queue_mapping(skb);
1311         struct be_tx_obj *txo = &adapter->tx_obj[q_idx];
1312         struct be_wrb_params wrb_params = { 0 };
1313         bool flush = !skb->xmit_more;
1314         u16 wrb_cnt;
1315
1316         skb = be_xmit_workarounds(adapter, skb, &wrb_params);
1317         if (unlikely(!skb))
1318                 goto drop;
1319
1320         be_get_wrb_params_from_skb(adapter, skb, &wrb_params);
1321
1322         wrb_cnt = be_xmit_enqueue(adapter, txo, skb, &wrb_params);
1323         if (unlikely(!wrb_cnt)) {
1324                 dev_kfree_skb_any(skb);
1325                 goto drop;
1326         }
1327
1328         /* if os2bmc is enabled and if the pkt is destined to bmc,
1329          * enqueue the pkt a 2nd time with mgmt bit set.
1330          */
1331         if (be_send_pkt_to_bmc(adapter, &skb)) {
1332                 BE_WRB_F_SET(wrb_params.features, OS2BMC, 1);
1333                 wrb_cnt = be_xmit_enqueue(adapter, txo, skb, &wrb_params);
1334                 if (unlikely(!wrb_cnt))
1335                         goto drop;
1336                 else
1337                         skb_get(skb);
1338         }
1339
1340         if (be_is_txq_full(txo)) {
1341                 netif_stop_subqueue(netdev, q_idx);
1342                 tx_stats(txo)->tx_stops++;
1343         }
1344
1345         if (flush || __netif_subqueue_stopped(netdev, q_idx))
1346                 be_xmit_flush(adapter, txo);
1347
1348         return NETDEV_TX_OK;
1349 drop:
1350         tx_stats(txo)->tx_drv_drops++;
1351         /* Flush the already enqueued tx requests */
1352         if (flush && txo->pend_wrb_cnt)
1353                 be_xmit_flush(adapter, txo);
1354
1355         return NETDEV_TX_OK;
1356 }
1357
1358 static int be_change_mtu(struct net_device *netdev, int new_mtu)
1359 {
1360         struct be_adapter *adapter = netdev_priv(netdev);
1361         struct device *dev = &adapter->pdev->dev;
1362
1363         if (new_mtu < BE_MIN_MTU || new_mtu > BE_MAX_MTU) {
1364                 dev_info(dev, "MTU must be between %d and %d bytes\n",
1365                          BE_MIN_MTU, BE_MAX_MTU);
1366                 return -EINVAL;
1367         }
1368
1369         dev_info(dev, "MTU changed from %d to %d bytes\n",
1370                  netdev->mtu, new_mtu);
1371         netdev->mtu = new_mtu;
1372         return 0;
1373 }
1374
1375 static inline bool be_in_all_promisc(struct be_adapter *adapter)
1376 {
1377         return (adapter->if_flags & BE_IF_FLAGS_ALL_PROMISCUOUS) ==
1378                         BE_IF_FLAGS_ALL_PROMISCUOUS;
1379 }
1380
1381 static int be_set_vlan_promisc(struct be_adapter *adapter)
1382 {
1383         struct device *dev = &adapter->pdev->dev;
1384         int status;
1385
1386         if (adapter->if_flags & BE_IF_FLAGS_VLAN_PROMISCUOUS)
1387                 return 0;
1388
1389         status = be_cmd_rx_filter(adapter, BE_IF_FLAGS_VLAN_PROMISCUOUS, ON);
1390         if (!status) {
1391                 dev_info(dev, "Enabled VLAN promiscuous mode\n");
1392                 adapter->if_flags |= BE_IF_FLAGS_VLAN_PROMISCUOUS;
1393         } else {
1394                 dev_err(dev, "Failed to enable VLAN promiscuous mode\n");
1395         }
1396         return status;
1397 }
1398
1399 static int be_clear_vlan_promisc(struct be_adapter *adapter)
1400 {
1401         struct device *dev = &adapter->pdev->dev;
1402         int status;
1403
1404         status = be_cmd_rx_filter(adapter, BE_IF_FLAGS_VLAN_PROMISCUOUS, OFF);
1405         if (!status) {
1406                 dev_info(dev, "Disabling VLAN promiscuous mode\n");
1407                 adapter->if_flags &= ~BE_IF_FLAGS_VLAN_PROMISCUOUS;
1408         }
1409         return status;
1410 }
1411
1412 /*
1413  * A max of 64 (BE_NUM_VLANS_SUPPORTED) vlans can be configured in BE.
1414  * If the user configures more, place BE in vlan promiscuous mode.
1415  */
1416 static int be_vid_config(struct be_adapter *adapter)
1417 {
1418         struct device *dev = &adapter->pdev->dev;
1419         u16 vids[BE_NUM_VLANS_SUPPORTED];
1420         u16 num = 0, i = 0;
1421         int status = 0;
1422
1423         /* No need to further configure vids if in promiscuous mode */
1424         if (be_in_all_promisc(adapter))
1425                 return 0;
1426
1427         if (adapter->vlans_added > be_max_vlans(adapter))
1428                 return be_set_vlan_promisc(adapter);
1429
1430         /* Construct VLAN Table to give to HW */
1431         for_each_set_bit(i, adapter->vids, VLAN_N_VID)
1432                 vids[num++] = cpu_to_le16(i);
1433
1434         status = be_cmd_vlan_config(adapter, adapter->if_handle, vids, num, 0);
1435         if (status) {
1436                 dev_err(dev, "Setting HW VLAN filtering failed\n");
1437                 /* Set to VLAN promisc mode as setting VLAN filter failed */
1438                 if (addl_status(status) == MCC_ADDL_STATUS_INSUFFICIENT_VLANS ||
1439                     addl_status(status) ==
1440                                 MCC_ADDL_STATUS_INSUFFICIENT_RESOURCES)
1441                         return be_set_vlan_promisc(adapter);
1442         } else if (adapter->if_flags & BE_IF_FLAGS_VLAN_PROMISCUOUS) {
1443                 status = be_clear_vlan_promisc(adapter);
1444         }
1445         return status;
1446 }
1447
1448 static int be_vlan_add_vid(struct net_device *netdev, __be16 proto, u16 vid)
1449 {
1450         struct be_adapter *adapter = netdev_priv(netdev);
1451         int status = 0;
1452
1453         /* Packets with VID 0 are always received by Lancer by default */
1454         if (lancer_chip(adapter) && vid == 0)
1455                 return status;
1456
1457         if (test_bit(vid, adapter->vids))
1458                 return status;
1459
1460         set_bit(vid, adapter->vids);
1461         adapter->vlans_added++;
1462
1463         status = be_vid_config(adapter);
1464         if (status) {
1465                 adapter->vlans_added--;
1466                 clear_bit(vid, adapter->vids);
1467         }
1468
1469         return status;
1470 }
1471
1472 static int be_vlan_rem_vid(struct net_device *netdev, __be16 proto, u16 vid)
1473 {
1474         struct be_adapter *adapter = netdev_priv(netdev);
1475
1476         /* Packets with VID 0 are always received by Lancer by default */
1477         if (lancer_chip(adapter) && vid == 0)
1478                 return 0;
1479
1480         if (!test_bit(vid, adapter->vids))
1481                 return 0;
1482
1483         clear_bit(vid, adapter->vids);
1484         adapter->vlans_added--;
1485
1486         return be_vid_config(adapter);
1487 }
1488
1489 static void be_clear_all_promisc(struct be_adapter *adapter)
1490 {
1491         be_cmd_rx_filter(adapter, BE_IF_FLAGS_ALL_PROMISCUOUS, OFF);
1492         adapter->if_flags &= ~BE_IF_FLAGS_ALL_PROMISCUOUS;
1493 }
1494
1495 static void be_set_all_promisc(struct be_adapter *adapter)
1496 {
1497         be_cmd_rx_filter(adapter, BE_IF_FLAGS_ALL_PROMISCUOUS, ON);
1498         adapter->if_flags |= BE_IF_FLAGS_ALL_PROMISCUOUS;
1499 }
1500
1501 static void be_set_mc_promisc(struct be_adapter *adapter)
1502 {
1503         int status;
1504
1505         if (adapter->if_flags & BE_IF_FLAGS_MCAST_PROMISCUOUS)
1506                 return;
1507
1508         status = be_cmd_rx_filter(adapter, BE_IF_FLAGS_MCAST_PROMISCUOUS, ON);
1509         if (!status)
1510                 adapter->if_flags |= BE_IF_FLAGS_MCAST_PROMISCUOUS;
1511 }
1512
1513 static void be_set_mc_list(struct be_adapter *adapter)
1514 {
1515         int status;
1516
1517         status = be_cmd_rx_filter(adapter, BE_IF_FLAGS_MULTICAST, ON);
1518         if (!status)
1519                 adapter->if_flags &= ~BE_IF_FLAGS_MCAST_PROMISCUOUS;
1520         else
1521                 be_set_mc_promisc(adapter);
1522 }
1523
1524 static void be_set_uc_list(struct be_adapter *adapter)
1525 {
1526         struct netdev_hw_addr *ha;
1527         int i = 1; /* First slot is claimed by the Primary MAC */
1528
1529         for (; adapter->uc_macs > 0; adapter->uc_macs--, i++)
1530                 be_cmd_pmac_del(adapter, adapter->if_handle,
1531                                 adapter->pmac_id[i], 0);
1532
1533         if (netdev_uc_count(adapter->netdev) > be_max_uc(adapter)) {
1534                 be_set_all_promisc(adapter);
1535                 return;
1536         }
1537
1538         netdev_for_each_uc_addr(ha, adapter->netdev) {
1539                 adapter->uc_macs++; /* First slot is for Primary MAC */
1540                 be_cmd_pmac_add(adapter, (u8 *)ha->addr, adapter->if_handle,
1541                                 &adapter->pmac_id[adapter->uc_macs], 0);
1542         }
1543 }
1544
1545 static void be_clear_uc_list(struct be_adapter *adapter)
1546 {
1547         int i;
1548
1549         for (i = 1; i < (adapter->uc_macs + 1); i++)
1550                 be_cmd_pmac_del(adapter, adapter->if_handle,
1551                                 adapter->pmac_id[i], 0);
1552         adapter->uc_macs = 0;
1553 }
1554
1555 static void be_set_rx_mode(struct net_device *netdev)
1556 {
1557         struct be_adapter *adapter = netdev_priv(netdev);
1558
1559         if (netdev->flags & IFF_PROMISC) {
1560                 be_set_all_promisc(adapter);
1561                 return;
1562         }
1563
1564         /* Interface was previously in promiscuous mode; disable it */
1565         if (be_in_all_promisc(adapter)) {
1566                 be_clear_all_promisc(adapter);
1567                 if (adapter->vlans_added)
1568                         be_vid_config(adapter);
1569         }
1570
1571         /* Enable multicast promisc if num configured exceeds what we support */
1572         if (netdev->flags & IFF_ALLMULTI ||
1573             netdev_mc_count(netdev) > be_max_mc(adapter)) {
1574                 be_set_mc_promisc(adapter);
1575                 return;
1576         }
1577
1578         if (netdev_uc_count(netdev) != adapter->uc_macs)
1579                 be_set_uc_list(adapter);
1580
1581         be_set_mc_list(adapter);
1582 }
1583
1584 static int be_set_vf_mac(struct net_device *netdev, int vf, u8 *mac)
1585 {
1586         struct be_adapter *adapter = netdev_priv(netdev);
1587         struct be_vf_cfg *vf_cfg = &adapter->vf_cfg[vf];
1588         int status;
1589
1590         if (!sriov_enabled(adapter))
1591                 return -EPERM;
1592
1593         if (!is_valid_ether_addr(mac) || vf >= adapter->num_vfs)
1594                 return -EINVAL;
1595
1596         /* Proceed further only if user provided MAC is different
1597          * from active MAC
1598          */
1599         if (ether_addr_equal(mac, vf_cfg->mac_addr))
1600                 return 0;
1601
1602         if (BEx_chip(adapter)) {
1603                 be_cmd_pmac_del(adapter, vf_cfg->if_handle, vf_cfg->pmac_id,
1604                                 vf + 1);
1605
1606                 status = be_cmd_pmac_add(adapter, mac, vf_cfg->if_handle,
1607                                          &vf_cfg->pmac_id, vf + 1);
1608         } else {
1609                 status = be_cmd_set_mac(adapter, mac, vf_cfg->if_handle,
1610                                         vf + 1);
1611         }
1612
1613         if (status) {
1614                 dev_err(&adapter->pdev->dev, "MAC %pM set on VF %d Failed: %#x",
1615                         mac, vf, status);
1616                 return be_cmd_status(status);
1617         }
1618
1619         ether_addr_copy(vf_cfg->mac_addr, mac);
1620
1621         return 0;
1622 }
1623
1624 static int be_get_vf_config(struct net_device *netdev, int vf,
1625                             struct ifla_vf_info *vi)
1626 {
1627         struct be_adapter *adapter = netdev_priv(netdev);
1628         struct be_vf_cfg *vf_cfg = &adapter->vf_cfg[vf];
1629
1630         if (!sriov_enabled(adapter))
1631                 return -EPERM;
1632
1633         if (vf >= adapter->num_vfs)
1634                 return -EINVAL;
1635
1636         vi->vf = vf;
1637         vi->max_tx_rate = vf_cfg->tx_rate;
1638         vi->min_tx_rate = 0;
1639         vi->vlan = vf_cfg->vlan_tag & VLAN_VID_MASK;
1640         vi->qos = vf_cfg->vlan_tag >> VLAN_PRIO_SHIFT;
1641         memcpy(&vi->mac, vf_cfg->mac_addr, ETH_ALEN);
1642         vi->linkstate = adapter->vf_cfg[vf].plink_tracking;
1643         vi->spoofchk = adapter->vf_cfg[vf].spoofchk;
1644
1645         return 0;
1646 }
1647
1648 static int be_set_vf_tvt(struct be_adapter *adapter, int vf, u16 vlan)
1649 {
1650         struct be_vf_cfg *vf_cfg = &adapter->vf_cfg[vf];
1651         u16 vids[BE_NUM_VLANS_SUPPORTED];
1652         int vf_if_id = vf_cfg->if_handle;
1653         int status;
1654
1655         /* Enable Transparent VLAN Tagging */
1656         status = be_cmd_set_hsw_config(adapter, vlan, vf + 1, vf_if_id, 0, 0);
1657         if (status)
1658                 return status;
1659
1660         /* Clear pre-programmed VLAN filters on VF if any, if TVT is enabled */
1661         vids[0] = 0;
1662         status = be_cmd_vlan_config(adapter, vf_if_id, vids, 1, vf + 1);
1663         if (!status)
1664                 dev_info(&adapter->pdev->dev,
1665                          "Cleared guest VLANs on VF%d", vf);
1666
1667         /* After TVT is enabled, disallow VFs to program VLAN filters */
1668         if (vf_cfg->privileges & BE_PRIV_FILTMGMT) {
1669                 status = be_cmd_set_fn_privileges(adapter, vf_cfg->privileges &
1670                                                   ~BE_PRIV_FILTMGMT, vf + 1);
1671                 if (!status)
1672                         vf_cfg->privileges &= ~BE_PRIV_FILTMGMT;
1673         }
1674         return 0;
1675 }
1676
1677 static int be_clear_vf_tvt(struct be_adapter *adapter, int vf)
1678 {
1679         struct be_vf_cfg *vf_cfg = &adapter->vf_cfg[vf];
1680         struct device *dev = &adapter->pdev->dev;
1681         int status;
1682
1683         /* Reset Transparent VLAN Tagging. */
1684         status = be_cmd_set_hsw_config(adapter, BE_RESET_VLAN_TAG_ID, vf + 1,
1685                                        vf_cfg->if_handle, 0, 0);
1686         if (status)
1687                 return status;
1688
1689         /* Allow VFs to program VLAN filtering */
1690         if (!(vf_cfg->privileges & BE_PRIV_FILTMGMT)) {
1691                 status = be_cmd_set_fn_privileges(adapter, vf_cfg->privileges |
1692                                                   BE_PRIV_FILTMGMT, vf + 1);
1693                 if (!status) {
1694                         vf_cfg->privileges |= BE_PRIV_FILTMGMT;
1695                         dev_info(dev, "VF%d: FILTMGMT priv enabled", vf);
1696                 }
1697         }
1698
1699         dev_info(dev,
1700                  "Disable/re-enable i/f in VM to clear Transparent VLAN tag");
1701         return 0;
1702 }
1703
1704 static int be_set_vf_vlan(struct net_device *netdev, int vf, u16 vlan, u8 qos)
1705 {
1706         struct be_adapter *adapter = netdev_priv(netdev);
1707         struct be_vf_cfg *vf_cfg = &adapter->vf_cfg[vf];
1708         int status;
1709
1710         if (!sriov_enabled(adapter))
1711                 return -EPERM;
1712
1713         if (vf >= adapter->num_vfs || vlan > 4095 || qos > 7)
1714                 return -EINVAL;
1715
1716         if (vlan || qos) {
1717                 vlan |= qos << VLAN_PRIO_SHIFT;
1718                 status = be_set_vf_tvt(adapter, vf, vlan);
1719         } else {
1720                 status = be_clear_vf_tvt(adapter, vf);
1721         }
1722
1723         if (status) {
1724                 dev_err(&adapter->pdev->dev,
1725                         "VLAN %d config on VF %d failed : %#x\n", vlan, vf,
1726                         status);
1727                 return be_cmd_status(status);
1728         }
1729
1730         vf_cfg->vlan_tag = vlan;
1731         return 0;
1732 }
1733
1734 static int be_set_vf_tx_rate(struct net_device *netdev, int vf,
1735                              int min_tx_rate, int max_tx_rate)
1736 {
1737         struct be_adapter *adapter = netdev_priv(netdev);
1738         struct device *dev = &adapter->pdev->dev;
1739         int percent_rate, status = 0;
1740         u16 link_speed = 0;
1741         u8 link_status;
1742
1743         if (!sriov_enabled(adapter))
1744                 return -EPERM;
1745
1746         if (vf >= adapter->num_vfs)
1747                 return -EINVAL;
1748
1749         if (min_tx_rate)
1750                 return -EINVAL;
1751
1752         if (!max_tx_rate)
1753                 goto config_qos;
1754
1755         status = be_cmd_link_status_query(adapter, &link_speed,
1756                                           &link_status, 0);
1757         if (status)
1758                 goto err;
1759
1760         if (!link_status) {
1761                 dev_err(dev, "TX-rate setting not allowed when link is down\n");
1762                 status = -ENETDOWN;
1763                 goto err;
1764         }
1765
1766         if (max_tx_rate < 100 || max_tx_rate > link_speed) {
1767                 dev_err(dev, "TX-rate must be between 100 and %d Mbps\n",
1768                         link_speed);
1769                 status = -EINVAL;
1770                 goto err;
1771         }
1772
1773         /* On Skyhawk the QOS setting must be done only as a % value */
1774         percent_rate = link_speed / 100;
1775         if (skyhawk_chip(adapter) && (max_tx_rate % percent_rate)) {
1776                 dev_err(dev, "TX-rate must be a multiple of %d Mbps\n",
1777                         percent_rate);
1778                 status = -EINVAL;
1779                 goto err;
1780         }
1781
1782 config_qos:
1783         status = be_cmd_config_qos(adapter, max_tx_rate, link_speed, vf + 1);
1784         if (status)
1785                 goto err;
1786
1787         adapter->vf_cfg[vf].tx_rate = max_tx_rate;
1788         return 0;
1789
1790 err:
1791         dev_err(dev, "TX-rate setting of %dMbps on VF%d failed\n",
1792                 max_tx_rate, vf);
1793         return be_cmd_status(status);
1794 }
1795
1796 static int be_set_vf_link_state(struct net_device *netdev, int vf,
1797                                 int link_state)
1798 {
1799         struct be_adapter *adapter = netdev_priv(netdev);
1800         int status;
1801
1802         if (!sriov_enabled(adapter))
1803                 return -EPERM;
1804
1805         if (vf >= adapter->num_vfs)
1806                 return -EINVAL;
1807
1808         status = be_cmd_set_logical_link_config(adapter, link_state, vf+1);
1809         if (status) {
1810                 dev_err(&adapter->pdev->dev,
1811                         "Link state change on VF %d failed: %#x\n", vf, status);
1812                 return be_cmd_status(status);
1813         }
1814
1815         adapter->vf_cfg[vf].plink_tracking = link_state;
1816
1817         return 0;
1818 }
1819
1820 static int be_set_vf_spoofchk(struct net_device *netdev, int vf, bool enable)
1821 {
1822         struct be_adapter *adapter = netdev_priv(netdev);
1823         struct be_vf_cfg *vf_cfg = &adapter->vf_cfg[vf];
1824         u8 spoofchk;
1825         int status;
1826
1827         if (!sriov_enabled(adapter))
1828                 return -EPERM;
1829
1830         if (vf >= adapter->num_vfs)
1831                 return -EINVAL;
1832
1833         if (BEx_chip(adapter))
1834                 return -EOPNOTSUPP;
1835
1836         if (enable == vf_cfg->spoofchk)
1837                 return 0;
1838
1839         spoofchk = enable ? ENABLE_MAC_SPOOFCHK : DISABLE_MAC_SPOOFCHK;
1840
1841         status = be_cmd_set_hsw_config(adapter, 0, vf + 1, vf_cfg->if_handle,
1842                                        0, spoofchk);
1843         if (status) {
1844                 dev_err(&adapter->pdev->dev,
1845                         "Spoofchk change on VF %d failed: %#x\n", vf, status);
1846                 return be_cmd_status(status);
1847         }
1848
1849         vf_cfg->spoofchk = enable;
1850         return 0;
1851 }
1852
1853 static void be_aic_update(struct be_aic_obj *aic, u64 rx_pkts, u64 tx_pkts,
1854                           ulong now)
1855 {
1856         aic->rx_pkts_prev = rx_pkts;
1857         aic->tx_reqs_prev = tx_pkts;
1858         aic->jiffies = now;
1859 }
1860
1861 static int be_get_new_eqd(struct be_eq_obj *eqo)
1862 {
1863         struct be_adapter *adapter = eqo->adapter;
1864         int eqd, start;
1865         struct be_aic_obj *aic;
1866         struct be_rx_obj *rxo;
1867         struct be_tx_obj *txo;
1868         u64 rx_pkts = 0, tx_pkts = 0;
1869         ulong now;
1870         u32 pps, delta;
1871         int i;
1872
1873         aic = &adapter->aic_obj[eqo->idx];
1874         if (!aic->enable) {
1875                 if (aic->jiffies)
1876                         aic->jiffies = 0;
1877                 eqd = aic->et_eqd;
1878                 return eqd;
1879         }
1880
1881         for_all_rx_queues_on_eq(adapter, eqo, rxo, i) {
1882                 do {
1883                         start = u64_stats_fetch_begin_irq(&rxo->stats.sync);
1884                         rx_pkts += rxo->stats.rx_pkts;
1885                 } while (u64_stats_fetch_retry_irq(&rxo->stats.sync, start));
1886         }
1887
1888         for_all_tx_queues_on_eq(adapter, eqo, txo, i) {
1889                 do {
1890                         start = u64_stats_fetch_begin_irq(&txo->stats.sync);
1891                         tx_pkts += txo->stats.tx_reqs;
1892                 } while (u64_stats_fetch_retry_irq(&txo->stats.sync, start));
1893         }
1894
1895         /* Skip, if wrapped around or first calculation */
1896         now = jiffies;
1897         if (!aic->jiffies || time_before(now, aic->jiffies) ||
1898             rx_pkts < aic->rx_pkts_prev ||
1899             tx_pkts < aic->tx_reqs_prev) {
1900                 be_aic_update(aic, rx_pkts, tx_pkts, now);
1901                 return aic->prev_eqd;
1902         }
1903
1904         delta = jiffies_to_msecs(now - aic->jiffies);
1905         if (delta == 0)
1906                 return aic->prev_eqd;
1907
1908         pps = (((u32)(rx_pkts - aic->rx_pkts_prev) * 1000) / delta) +
1909                 (((u32)(tx_pkts - aic->tx_reqs_prev) * 1000) / delta);
1910         eqd = (pps / 15000) << 2;
1911
1912         if (eqd < 8)
1913                 eqd = 0;
1914         eqd = min_t(u32, eqd, aic->max_eqd);
1915         eqd = max_t(u32, eqd, aic->min_eqd);
1916
1917         be_aic_update(aic, rx_pkts, tx_pkts, now);
1918
1919         return eqd;
1920 }
1921
1922 /* For Skyhawk-R only */
1923 static u32 be_get_eq_delay_mult_enc(struct be_eq_obj *eqo)
1924 {
1925         struct be_adapter *adapter = eqo->adapter;
1926         struct be_aic_obj *aic = &adapter->aic_obj[eqo->idx];
1927         ulong now = jiffies;
1928         int eqd;
1929         u32 mult_enc;
1930
1931         if (!aic->enable)
1932                 return 0;
1933
1934         if (jiffies_to_msecs(now - aic->jiffies) < 1)
1935                 eqd = aic->prev_eqd;
1936         else
1937                 eqd = be_get_new_eqd(eqo);
1938
1939         if (eqd > 100)
1940                 mult_enc = R2I_DLY_ENC_1;
1941         else if (eqd > 60)
1942                 mult_enc = R2I_DLY_ENC_2;
1943         else if (eqd > 20)
1944                 mult_enc = R2I_DLY_ENC_3;
1945         else
1946                 mult_enc = R2I_DLY_ENC_0;
1947
1948         aic->prev_eqd = eqd;
1949
1950         return mult_enc;
1951 }
1952
1953 void be_eqd_update(struct be_adapter *adapter, bool force_update)
1954 {
1955         struct be_set_eqd set_eqd[MAX_EVT_QS];
1956         struct be_aic_obj *aic;
1957         struct be_eq_obj *eqo;
1958         int i, num = 0, eqd;
1959
1960         for_all_evt_queues(adapter, eqo, i) {
1961                 aic = &adapter->aic_obj[eqo->idx];
1962                 eqd = be_get_new_eqd(eqo);
1963                 if (force_update || eqd != aic->prev_eqd) {
1964                         set_eqd[num].delay_multiplier = (eqd * 65)/100;
1965                         set_eqd[num].eq_id = eqo->q.id;
1966                         aic->prev_eqd = eqd;
1967                         num++;
1968                 }
1969         }
1970
1971         if (num)
1972                 be_cmd_modify_eqd(adapter, set_eqd, num);
1973 }
1974
1975 static void be_rx_stats_update(struct be_rx_obj *rxo,
1976                                struct be_rx_compl_info *rxcp)
1977 {
1978         struct be_rx_stats *stats = rx_stats(rxo);
1979
1980         u64_stats_update_begin(&stats->sync);
1981         stats->rx_compl++;
1982         stats->rx_bytes += rxcp->pkt_size;
1983         stats->rx_pkts++;
1984         if (rxcp->tunneled)
1985                 stats->rx_vxlan_offload_pkts++;
1986         if (rxcp->pkt_type == BE_MULTICAST_PACKET)
1987                 stats->rx_mcast_pkts++;
1988         if (rxcp->err)
1989                 stats->rx_compl_err++;
1990         u64_stats_update_end(&stats->sync);
1991 }
1992
1993 static inline bool csum_passed(struct be_rx_compl_info *rxcp)
1994 {
1995         /* L4 checksum is not reliable for non TCP/UDP packets.
1996          * Also ignore ipcksm for ipv6 pkts
1997          */
1998         return (rxcp->tcpf || rxcp->udpf) && rxcp->l4_csum &&
1999                 (rxcp->ip_csum || rxcp->ipv6) && !rxcp->err;
2000 }
2001
2002 static struct be_rx_page_info *get_rx_page_info(struct be_rx_obj *rxo)
2003 {
2004         struct be_adapter *adapter = rxo->adapter;
2005         struct be_rx_page_info *rx_page_info;
2006         struct be_queue_info *rxq = &rxo->q;
2007         u32 frag_idx = rxq->tail;
2008
2009         rx_page_info = &rxo->page_info_tbl[frag_idx];
2010         BUG_ON(!rx_page_info->page);
2011
2012         if (rx_page_info->last_frag) {
2013                 dma_unmap_page(&adapter->pdev->dev,
2014                                dma_unmap_addr(rx_page_info, bus),
2015                                adapter->big_page_size, DMA_FROM_DEVICE);
2016                 rx_page_info->last_frag = false;
2017         } else {
2018                 dma_sync_single_for_cpu(&adapter->pdev->dev,
2019                                         dma_unmap_addr(rx_page_info, bus),
2020                                         rx_frag_size, DMA_FROM_DEVICE);
2021         }
2022
2023         queue_tail_inc(rxq);
2024         atomic_dec(&rxq->used);
2025         return rx_page_info;
2026 }
2027
2028 /* Throwaway the data in the Rx completion */
2029 static void be_rx_compl_discard(struct be_rx_obj *rxo,
2030                                 struct be_rx_compl_info *rxcp)
2031 {
2032         struct be_rx_page_info *page_info;
2033         u16 i, num_rcvd = rxcp->num_rcvd;
2034
2035         for (i = 0; i < num_rcvd; i++) {
2036                 page_info = get_rx_page_info(rxo);
2037                 put_page(page_info->page);
2038                 memset(page_info, 0, sizeof(*page_info));
2039         }
2040 }
2041
2042 /*
2043  * skb_fill_rx_data forms a complete skb for an ether frame
2044  * indicated by rxcp.
2045  */
2046 static void skb_fill_rx_data(struct be_rx_obj *rxo, struct sk_buff *skb,
2047                              struct be_rx_compl_info *rxcp)
2048 {
2049         struct be_rx_page_info *page_info;
2050         u16 i, j;
2051         u16 hdr_len, curr_frag_len, remaining;
2052         u8 *start;
2053
2054         page_info = get_rx_page_info(rxo);
2055         start = page_address(page_info->page) + page_info->page_offset;
2056         prefetch(start);
2057
2058         /* Copy data in the first descriptor of this completion */
2059         curr_frag_len = min(rxcp->pkt_size, rx_frag_size);
2060
2061         skb->len = curr_frag_len;
2062         if (curr_frag_len <= BE_HDR_LEN) { /* tiny packet */
2063                 memcpy(skb->data, start, curr_frag_len);
2064                 /* Complete packet has now been moved to data */
2065                 put_page(page_info->page);
2066                 skb->data_len = 0;
2067                 skb->tail += curr_frag_len;
2068         } else {
2069                 hdr_len = ETH_HLEN;
2070                 memcpy(skb->data, start, hdr_len);
2071                 skb_shinfo(skb)->nr_frags = 1;
2072                 skb_frag_set_page(skb, 0, page_info->page);
2073                 skb_shinfo(skb)->frags[0].page_offset =
2074                                         page_info->page_offset + hdr_len;
2075                 skb_frag_size_set(&skb_shinfo(skb)->frags[0],
2076                                   curr_frag_len - hdr_len);
2077                 skb->data_len = curr_frag_len - hdr_len;
2078                 skb->truesize += rx_frag_size;
2079                 skb->tail += hdr_len;
2080         }
2081         page_info->page = NULL;
2082
2083         if (rxcp->pkt_size <= rx_frag_size) {
2084                 BUG_ON(rxcp->num_rcvd != 1);
2085                 return;
2086         }
2087
2088         /* More frags present for this completion */
2089         remaining = rxcp->pkt_size - curr_frag_len;
2090         for (i = 1, j = 0; i < rxcp->num_rcvd; i++) {
2091                 page_info = get_rx_page_info(rxo);
2092                 curr_frag_len = min(remaining, rx_frag_size);
2093
2094                 /* Coalesce all frags from the same physical page in one slot */
2095                 if (page_info->page_offset == 0) {
2096                         /* Fresh page */
2097                         j++;
2098                         skb_frag_set_page(skb, j, page_info->page);
2099                         skb_shinfo(skb)->frags[j].page_offset =
2100                                                         page_info->page_offset;
2101                         skb_frag_size_set(&skb_shinfo(skb)->frags[j], 0);
2102                         skb_shinfo(skb)->nr_frags++;
2103                 } else {
2104                         put_page(page_info->page);
2105                 }
2106
2107                 skb_frag_size_add(&skb_shinfo(skb)->frags[j], curr_frag_len);
2108                 skb->len += curr_frag_len;
2109                 skb->data_len += curr_frag_len;
2110                 skb->truesize += rx_frag_size;
2111                 remaining -= curr_frag_len;
2112                 page_info->page = NULL;
2113         }
2114         BUG_ON(j > MAX_SKB_FRAGS);
2115 }
2116
2117 /* Process the RX completion indicated by rxcp when GRO is disabled */
2118 static void be_rx_compl_process(struct be_rx_obj *rxo, struct napi_struct *napi,
2119                                 struct be_rx_compl_info *rxcp)
2120 {
2121         struct be_adapter *adapter = rxo->adapter;
2122         struct net_device *netdev = adapter->netdev;
2123         struct sk_buff *skb;
2124
2125         skb = netdev_alloc_skb_ip_align(netdev, BE_RX_SKB_ALLOC_SIZE);
2126         if (unlikely(!skb)) {
2127                 rx_stats(rxo)->rx_drops_no_skbs++;
2128                 be_rx_compl_discard(rxo, rxcp);
2129                 return;
2130         }
2131
2132         skb_fill_rx_data(rxo, skb, rxcp);
2133
2134         if (likely((netdev->features & NETIF_F_RXCSUM) && csum_passed(rxcp)))
2135                 skb->ip_summed = CHECKSUM_UNNECESSARY;
2136         else
2137                 skb_checksum_none_assert(skb);
2138
2139         skb->protocol = eth_type_trans(skb, netdev);
2140         skb_record_rx_queue(skb, rxo - &adapter->rx_obj[0]);
2141         if (netdev->features & NETIF_F_RXHASH)
2142                 skb_set_hash(skb, rxcp->rss_hash, PKT_HASH_TYPE_L3);
2143
2144         skb->csum_level = rxcp->tunneled;
2145         skb_mark_napi_id(skb, napi);
2146
2147         if (rxcp->vlanf)
2148                 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), rxcp->vlan_tag);
2149
2150         netif_receive_skb(skb);
2151 }
2152
2153 /* Process the RX completion indicated by rxcp when GRO is enabled */
2154 static void be_rx_compl_process_gro(struct be_rx_obj *rxo,
2155                                     struct napi_struct *napi,
2156                                     struct be_rx_compl_info *rxcp)
2157 {
2158         struct be_adapter *adapter = rxo->adapter;
2159         struct be_rx_page_info *page_info;
2160         struct sk_buff *skb = NULL;
2161         u16 remaining, curr_frag_len;
2162         u16 i, j;
2163
2164         skb = napi_get_frags(napi);
2165         if (!skb) {
2166                 be_rx_compl_discard(rxo, rxcp);
2167                 return;
2168         }
2169
2170         remaining = rxcp->pkt_size;
2171         for (i = 0, j = -1; i < rxcp->num_rcvd; i++) {
2172                 page_info = get_rx_page_info(rxo);
2173
2174                 curr_frag_len = min(remaining, rx_frag_size);
2175
2176                 /* Coalesce all frags from the same physical page in one slot */
2177                 if (i == 0 || page_info->page_offset == 0) {
2178                         /* First frag or Fresh page */
2179                         j++;
2180                         skb_frag_set_page(skb, j, page_info->page);
2181                         skb_shinfo(skb)->frags[j].page_offset =
2182                                                         page_info->page_offset;
2183                         skb_frag_size_set(&skb_shinfo(skb)->frags[j], 0);
2184                 } else {
2185                         put_page(page_info->page);
2186                 }
2187                 skb_frag_size_add(&skb_shinfo(skb)->frags[j], curr_frag_len);
2188                 skb->truesize += rx_frag_size;
2189                 remaining -= curr_frag_len;
2190                 memset(page_info, 0, sizeof(*page_info));
2191         }
2192         BUG_ON(j > MAX_SKB_FRAGS);
2193
2194         skb_shinfo(skb)->nr_frags = j + 1;
2195         skb->len = rxcp->pkt_size;
2196         skb->data_len = rxcp->pkt_size;
2197         skb->ip_summed = CHECKSUM_UNNECESSARY;
2198         skb_record_rx_queue(skb, rxo - &adapter->rx_obj[0]);
2199         if (adapter->netdev->features & NETIF_F_RXHASH)
2200                 skb_set_hash(skb, rxcp->rss_hash, PKT_HASH_TYPE_L3);
2201
2202         skb->csum_level = rxcp->tunneled;
2203
2204         if (rxcp->vlanf)
2205                 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), rxcp->vlan_tag);
2206
2207         napi_gro_frags(napi);
2208 }
2209
2210 static void be_parse_rx_compl_v1(struct be_eth_rx_compl *compl,
2211                                  struct be_rx_compl_info *rxcp)
2212 {
2213         rxcp->pkt_size = GET_RX_COMPL_V1_BITS(pktsize, compl);
2214         rxcp->vlanf = GET_RX_COMPL_V1_BITS(vtp, compl);
2215         rxcp->err = GET_RX_COMPL_V1_BITS(err, compl);
2216         rxcp->tcpf = GET_RX_COMPL_V1_BITS(tcpf, compl);
2217         rxcp->udpf = GET_RX_COMPL_V1_BITS(udpf, compl);
2218         rxcp->ip_csum = GET_RX_COMPL_V1_BITS(ipcksm, compl);
2219         rxcp->l4_csum = GET_RX_COMPL_V1_BITS(l4_cksm, compl);
2220         rxcp->ipv6 = GET_RX_COMPL_V1_BITS(ip_version, compl);
2221         rxcp->num_rcvd = GET_RX_COMPL_V1_BITS(numfrags, compl);
2222         rxcp->pkt_type = GET_RX_COMPL_V1_BITS(cast_enc, compl);
2223         rxcp->rss_hash = GET_RX_COMPL_V1_BITS(rsshash, compl);
2224         if (rxcp->vlanf) {
2225                 rxcp->qnq = GET_RX_COMPL_V1_BITS(qnq, compl);
2226                 rxcp->vlan_tag = GET_RX_COMPL_V1_BITS(vlan_tag, compl);
2227         }
2228         rxcp->port = GET_RX_COMPL_V1_BITS(port, compl);
2229         rxcp->tunneled =
2230                 GET_RX_COMPL_V1_BITS(tunneled, compl);
2231 }
2232
2233 static void be_parse_rx_compl_v0(struct be_eth_rx_compl *compl,
2234                                  struct be_rx_compl_info *rxcp)
2235 {
2236         rxcp->pkt_size = GET_RX_COMPL_V0_BITS(pktsize, compl);
2237         rxcp->vlanf = GET_RX_COMPL_V0_BITS(vtp, compl);
2238         rxcp->err = GET_RX_COMPL_V0_BITS(err, compl);
2239         rxcp->tcpf = GET_RX_COMPL_V0_BITS(tcpf, compl);
2240         rxcp->udpf = GET_RX_COMPL_V0_BITS(udpf, compl);
2241         rxcp->ip_csum = GET_RX_COMPL_V0_BITS(ipcksm, compl);
2242         rxcp->l4_csum = GET_RX_COMPL_V0_BITS(l4_cksm, compl);
2243         rxcp->ipv6 = GET_RX_COMPL_V0_BITS(ip_version, compl);
2244         rxcp->num_rcvd = GET_RX_COMPL_V0_BITS(numfrags, compl);
2245         rxcp->pkt_type = GET_RX_COMPL_V0_BITS(cast_enc, compl);
2246         rxcp->rss_hash = GET_RX_COMPL_V0_BITS(rsshash, compl);
2247         if (rxcp->vlanf) {
2248                 rxcp->qnq = GET_RX_COMPL_V0_BITS(qnq, compl);
2249                 rxcp->vlan_tag = GET_RX_COMPL_V0_BITS(vlan_tag, compl);
2250         }
2251         rxcp->port = GET_RX_COMPL_V0_BITS(port, compl);
2252         rxcp->ip_frag = GET_RX_COMPL_V0_BITS(ip_frag, compl);
2253 }
2254
2255 static struct be_rx_compl_info *be_rx_compl_get(struct be_rx_obj *rxo)
2256 {
2257         struct be_eth_rx_compl *compl = queue_tail_node(&rxo->cq);
2258         struct be_rx_compl_info *rxcp = &rxo->rxcp;
2259         struct be_adapter *adapter = rxo->adapter;
2260
2261         /* For checking the valid bit it is Ok to use either definition as the
2262          * valid bit is at the same position in both v0 and v1 Rx compl */
2263         if (compl->dw[offsetof(struct amap_eth_rx_compl_v1, valid) / 32] == 0)
2264                 return NULL;
2265
2266         rmb();
2267         be_dws_le_to_cpu(compl, sizeof(*compl));
2268
2269         if (adapter->be3_native)
2270                 be_parse_rx_compl_v1(compl, rxcp);
2271         else
2272                 be_parse_rx_compl_v0(compl, rxcp);
2273
2274         if (rxcp->ip_frag)
2275                 rxcp->l4_csum = 0;
2276
2277         if (rxcp->vlanf) {
2278                 /* In QNQ modes, if qnq bit is not set, then the packet was
2279                  * tagged only with the transparent outer vlan-tag and must
2280                  * not be treated as a vlan packet by host
2281                  */
2282                 if (be_is_qnq_mode(adapter) && !rxcp->qnq)
2283                         rxcp->vlanf = 0;
2284
2285                 if (!lancer_chip(adapter))
2286                         rxcp->vlan_tag = swab16(rxcp->vlan_tag);
2287
2288                 if (adapter->pvid == (rxcp->vlan_tag & VLAN_VID_MASK) &&
2289                     !test_bit(rxcp->vlan_tag, adapter->vids))
2290                         rxcp->vlanf = 0;
2291         }
2292
2293         /* As the compl has been parsed, reset it; we wont touch it again */
2294         compl->dw[offsetof(struct amap_eth_rx_compl_v1, valid) / 32] = 0;
2295
2296         queue_tail_inc(&rxo->cq);
2297         return rxcp;
2298 }
2299
2300 static inline struct page *be_alloc_pages(u32 size, gfp_t gfp)
2301 {
2302         u32 order = get_order(size);
2303
2304         if (order > 0)
2305                 gfp |= __GFP_COMP;
2306         return  alloc_pages(gfp, order);
2307 }
2308
2309 /*
2310  * Allocate a page, split it to fragments of size rx_frag_size and post as
2311  * receive buffers to BE
2312  */
2313 static void be_post_rx_frags(struct be_rx_obj *rxo, gfp_t gfp, u32 frags_needed)
2314 {
2315         struct be_adapter *adapter = rxo->adapter;
2316         struct be_rx_page_info *page_info = NULL, *prev_page_info = NULL;
2317         struct be_queue_info *rxq = &rxo->q;
2318         struct page *pagep = NULL;
2319         struct device *dev = &adapter->pdev->dev;
2320         struct be_eth_rx_d *rxd;
2321         u64 page_dmaaddr = 0, frag_dmaaddr;
2322         u32 posted, page_offset = 0, notify = 0;
2323
2324         page_info = &rxo->page_info_tbl[rxq->head];
2325         for (posted = 0; posted < frags_needed && !page_info->page; posted++) {
2326                 if (!pagep) {
2327                         pagep = be_alloc_pages(adapter->big_page_size, gfp);
2328                         if (unlikely(!pagep)) {
2329                                 rx_stats(rxo)->rx_post_fail++;
2330                                 break;
2331                         }
2332                         page_dmaaddr = dma_map_page(dev, pagep, 0,
2333                                                     adapter->big_page_size,
2334                                                     DMA_FROM_DEVICE);
2335                         if (dma_mapping_error(dev, page_dmaaddr)) {
2336                                 put_page(pagep);
2337                                 pagep = NULL;
2338                                 adapter->drv_stats.dma_map_errors++;
2339                                 break;
2340                         }
2341                         page_offset = 0;
2342                 } else {
2343                         get_page(pagep);
2344                         page_offset += rx_frag_size;
2345                 }
2346                 page_info->page_offset = page_offset;
2347                 page_info->page = pagep;
2348
2349                 rxd = queue_head_node(rxq);
2350                 frag_dmaaddr = page_dmaaddr + page_info->page_offset;
2351                 rxd->fragpa_lo = cpu_to_le32(frag_dmaaddr & 0xFFFFFFFF);
2352                 rxd->fragpa_hi = cpu_to_le32(upper_32_bits(frag_dmaaddr));
2353
2354                 /* Any space left in the current big page for another frag? */
2355                 if ((page_offset + rx_frag_size + rx_frag_size) >
2356                                         adapter->big_page_size) {
2357                         pagep = NULL;
2358                         page_info->last_frag = true;
2359                         dma_unmap_addr_set(page_info, bus, page_dmaaddr);
2360                 } else {
2361                         dma_unmap_addr_set(page_info, bus, frag_dmaaddr);
2362                 }
2363
2364                 prev_page_info = page_info;
2365                 queue_head_inc(rxq);
2366                 page_info = &rxo->page_info_tbl[rxq->head];
2367         }
2368
2369         /* Mark the last frag of a page when we break out of the above loop
2370          * with no more slots available in the RXQ
2371          */
2372         if (pagep) {
2373                 prev_page_info->last_frag = true;
2374                 dma_unmap_addr_set(prev_page_info, bus, page_dmaaddr);
2375         }
2376
2377         if (posted) {
2378                 atomic_add(posted, &rxq->used);
2379                 if (rxo->rx_post_starved)
2380                         rxo->rx_post_starved = false;
2381                 do {
2382                         notify = min(MAX_NUM_POST_ERX_DB, posted);
2383                         be_rxq_notify(adapter, rxq->id, notify);
2384                         posted -= notify;
2385                 } while (posted);
2386         } else if (atomic_read(&rxq->used) == 0) {
2387                 /* Let be_worker replenish when memory is available */
2388                 rxo->rx_post_starved = true;
2389         }
2390 }
2391
2392 static struct be_tx_compl_info *be_tx_compl_get(struct be_tx_obj *txo)
2393 {
2394         struct be_queue_info *tx_cq = &txo->cq;
2395         struct be_tx_compl_info *txcp = &txo->txcp;
2396         struct be_eth_tx_compl *compl = queue_tail_node(tx_cq);
2397
2398         if (compl->dw[offsetof(struct amap_eth_tx_compl, valid) / 32] == 0)
2399                 return NULL;
2400
2401         /* Ensure load ordering of valid bit dword and other dwords below */
2402         rmb();
2403         be_dws_le_to_cpu(compl, sizeof(*compl));
2404
2405         txcp->status = GET_TX_COMPL_BITS(status, compl);
2406         txcp->end_index = GET_TX_COMPL_BITS(wrb_index, compl);
2407
2408         compl->dw[offsetof(struct amap_eth_tx_compl, valid) / 32] = 0;
2409         queue_tail_inc(tx_cq);
2410         return txcp;
2411 }
2412
2413 static u16 be_tx_compl_process(struct be_adapter *adapter,
2414                                struct be_tx_obj *txo, u16 last_index)
2415 {
2416         struct sk_buff **sent_skbs = txo->sent_skb_list;
2417         struct be_queue_info *txq = &txo->q;
2418         struct sk_buff *skb = NULL;
2419         bool unmap_skb_hdr = false;
2420         struct be_eth_wrb *wrb;
2421         u16 num_wrbs = 0;
2422         u32 frag_index;
2423
2424         do {
2425                 if (sent_skbs[txq->tail]) {
2426                         /* Free skb from prev req */
2427                         if (skb)
2428                                 dev_consume_skb_any(skb);
2429                         skb = sent_skbs[txq->tail];
2430                         sent_skbs[txq->tail] = NULL;
2431                         queue_tail_inc(txq);  /* skip hdr wrb */
2432                         num_wrbs++;
2433                         unmap_skb_hdr = true;
2434                 }
2435                 wrb = queue_tail_node(txq);
2436                 frag_index = txq->tail;
2437                 unmap_tx_frag(&adapter->pdev->dev, wrb,
2438                               (unmap_skb_hdr && skb_headlen(skb)));
2439                 unmap_skb_hdr = false;
2440                 queue_tail_inc(txq);
2441                 num_wrbs++;
2442         } while (frag_index != last_index);
2443         dev_consume_skb_any(skb);
2444
2445         return num_wrbs;
2446 }
2447
2448 /* Return the number of events in the event queue */
2449 static inline int events_get(struct be_eq_obj *eqo)
2450 {
2451         struct be_eq_entry *eqe;
2452         int num = 0;
2453
2454         do {
2455                 eqe = queue_tail_node(&eqo->q);
2456                 if (eqe->evt == 0)
2457                         break;
2458
2459                 rmb();
2460                 eqe->evt = 0;
2461                 num++;
2462                 queue_tail_inc(&eqo->q);
2463         } while (true);
2464
2465         return num;
2466 }
2467
2468 /* Leaves the EQ is disarmed state */
2469 static void be_eq_clean(struct be_eq_obj *eqo)
2470 {
2471         int num = events_get(eqo);
2472
2473         be_eq_notify(eqo->adapter, eqo->q.id, false, true, num, 0);
2474 }
2475
2476 /* Free posted rx buffers that were not used */
2477 static void be_rxq_clean(struct be_rx_obj *rxo)
2478 {
2479         struct be_queue_info *rxq = &rxo->q;
2480         struct be_rx_page_info *page_info;
2481
2482         while (atomic_read(&rxq->used) > 0) {
2483                 page_info = get_rx_page_info(rxo);
2484                 put_page(page_info->page);
2485                 memset(page_info, 0, sizeof(*page_info));
2486         }
2487         BUG_ON(atomic_read(&rxq->used));
2488         rxq->tail = 0;
2489         rxq->head = 0;
2490 }
2491
2492 static void be_rx_cq_clean(struct be_rx_obj *rxo)
2493 {
2494         struct be_queue_info *rx_cq = &rxo->cq;
2495         struct be_rx_compl_info *rxcp;
2496         struct be_adapter *adapter = rxo->adapter;
2497         int flush_wait = 0;
2498
2499         /* Consume pending rx completions.
2500          * Wait for the flush completion (identified by zero num_rcvd)
2501          * to arrive. Notify CQ even when there are no more CQ entries
2502          * for HW to flush partially coalesced CQ entries.
2503          * In Lancer, there is no need to wait for flush compl.
2504          */
2505         for (;;) {
2506                 rxcp = be_rx_compl_get(rxo);
2507                 if (!rxcp) {
2508                         if (lancer_chip(adapter))
2509                                 break;
2510
2511                         if (flush_wait++ > 50 ||
2512                             be_check_error(adapter,
2513                                            BE_ERROR_HW)) {
2514                                 dev_warn(&adapter->pdev->dev,
2515                                          "did not receive flush compl\n");
2516                                 break;
2517                         }
2518                         be_cq_notify(adapter, rx_cq->id, true, 0);
2519                         mdelay(1);
2520                 } else {
2521                         be_rx_compl_discard(rxo, rxcp);
2522                         be_cq_notify(adapter, rx_cq->id, false, 1);
2523                         if (rxcp->num_rcvd == 0)
2524                                 break;
2525                 }
2526         }
2527
2528         /* After cleanup, leave the CQ in unarmed state */
2529         be_cq_notify(adapter, rx_cq->id, false, 0);
2530 }
2531
2532 static void be_tx_compl_clean(struct be_adapter *adapter)
2533 {
2534         struct device *dev = &adapter->pdev->dev;
2535         u16 cmpl = 0, timeo = 0, num_wrbs = 0;
2536         struct be_tx_compl_info *txcp;
2537         struct be_queue_info *txq;
2538         u32 end_idx, notified_idx;
2539         struct be_tx_obj *txo;
2540         int i, pending_txqs;
2541
2542         /* Stop polling for compls when HW has been silent for 10ms */
2543         do {
2544                 pending_txqs = adapter->num_tx_qs;
2545
2546                 for_all_tx_queues(adapter, txo, i) {
2547                         cmpl = 0;
2548                         num_wrbs = 0;
2549                         txq = &txo->q;
2550                         while ((txcp = be_tx_compl_get(txo))) {
2551                                 num_wrbs +=
2552                                         be_tx_compl_process(adapter, txo,
2553                                                             txcp->end_index);
2554                                 cmpl++;
2555                         }
2556                         if (cmpl) {
2557                                 be_cq_notify(adapter, txo->cq.id, false, cmpl);
2558                                 atomic_sub(num_wrbs, &txq->used);
2559                                 timeo = 0;
2560                         }
2561                         if (!be_is_tx_compl_pending(txo))
2562                                 pending_txqs--;
2563                 }
2564
2565                 if (pending_txqs == 0 || ++timeo > 10 ||
2566                     be_check_error(adapter, BE_ERROR_HW))
2567                         break;
2568
2569                 mdelay(1);
2570         } while (true);
2571
2572         /* Free enqueued TX that was never notified to HW */
2573         for_all_tx_queues(adapter, txo, i) {
2574                 txq = &txo->q;
2575
2576                 if (atomic_read(&txq->used)) {
2577                         dev_info(dev, "txq%d: cleaning %d pending tx-wrbs\n",
2578                                  i, atomic_read(&txq->used));
2579                         notified_idx = txq->tail;
2580                         end_idx = txq->tail;
2581                         index_adv(&end_idx, atomic_read(&txq->used) - 1,
2582                                   txq->len);
2583                         /* Use the tx-compl process logic to handle requests
2584                          * that were not sent to the HW.
2585                          */
2586                         num_wrbs = be_tx_compl_process(adapter, txo, end_idx);
2587                         atomic_sub(num_wrbs, &txq->used);
2588                         BUG_ON(atomic_read(&txq->used));
2589                         txo->pend_wrb_cnt = 0;
2590                         /* Since hw was never notified of these requests,
2591                          * reset TXQ indices
2592                          */
2593                         txq->head = notified_idx;
2594                         txq->tail = notified_idx;
2595                 }
2596         }
2597 }
2598
2599 static void be_evt_queues_destroy(struct be_adapter *adapter)
2600 {
2601         struct be_eq_obj *eqo;
2602         int i;
2603
2604         for_all_evt_queues(adapter, eqo, i) {
2605                 if (eqo->q.created) {
2606                         be_eq_clean(eqo);
2607                         be_cmd_q_destroy(adapter, &eqo->q, QTYPE_EQ);
2608                         napi_hash_del(&eqo->napi);
2609                         netif_napi_del(&eqo->napi);
2610                         free_cpumask_var(eqo->affinity_mask);
2611                 }
2612                 be_queue_free(adapter, &eqo->q);
2613         }
2614 }
2615
2616 static int be_evt_queues_create(struct be_adapter *adapter)
2617 {
2618         struct be_queue_info *eq;
2619         struct be_eq_obj *eqo;
2620         struct be_aic_obj *aic;
2621         int i, rc;
2622
2623         /* need enough EQs to service both RX and TX queues */
2624         adapter->num_evt_qs = min_t(u16, num_irqs(adapter),
2625                                     max(adapter->cfg_num_rx_irqs,
2626                                         adapter->cfg_num_tx_irqs));
2627
2628         for_all_evt_queues(adapter, eqo, i) {
2629                 int numa_node = dev_to_node(&adapter->pdev->dev);
2630
2631                 aic = &adapter->aic_obj[i];
2632                 eqo->adapter = adapter;
2633                 eqo->idx = i;
2634                 aic->max_eqd = BE_MAX_EQD;
2635                 aic->enable = true;
2636
2637                 eq = &eqo->q;
2638                 rc = be_queue_alloc(adapter, eq, EVNT_Q_LEN,
2639                                     sizeof(struct be_eq_entry));
2640                 if (rc)
2641                         return rc;
2642
2643                 rc = be_cmd_eq_create(adapter, eqo);
2644                 if (rc)
2645                         return rc;
2646
2647                 if (!zalloc_cpumask_var(&eqo->affinity_mask, GFP_KERNEL))
2648                         return -ENOMEM;
2649                 cpumask_set_cpu(cpumask_local_spread(i, numa_node),
2650                                 eqo->affinity_mask);
2651                 netif_napi_add(adapter->netdev, &eqo->napi, be_poll,
2652                                BE_NAPI_WEIGHT);
2653         }
2654         return 0;
2655 }
2656
2657 static void be_mcc_queues_destroy(struct be_adapter *adapter)
2658 {
2659         struct be_queue_info *q;
2660
2661         q = &adapter->mcc_obj.q;
2662         if (q->created)
2663                 be_cmd_q_destroy(adapter, q, QTYPE_MCCQ);
2664         be_queue_free(adapter, q);
2665
2666         q = &adapter->mcc_obj.cq;
2667         if (q->created)
2668                 be_cmd_q_destroy(adapter, q, QTYPE_CQ);
2669         be_queue_free(adapter, q);
2670 }
2671
2672 /* Must be called only after TX qs are created as MCC shares TX EQ */
2673 static int be_mcc_queues_create(struct be_adapter *adapter)
2674 {
2675         struct be_queue_info *q, *cq;
2676
2677         cq = &adapter->mcc_obj.cq;
2678         if (be_queue_alloc(adapter, cq, MCC_CQ_LEN,
2679                            sizeof(struct be_mcc_compl)))
2680                 goto err;
2681
2682         /* Use the default EQ for MCC completions */
2683         if (be_cmd_cq_create(adapter, cq, &mcc_eqo(adapter)->q, true, 0))
2684                 goto mcc_cq_free;
2685
2686         q = &adapter->mcc_obj.q;
2687         if (be_queue_alloc(adapter, q, MCC_Q_LEN, sizeof(struct be_mcc_wrb)))
2688                 goto mcc_cq_destroy;
2689
2690         if (be_cmd_mccq_create(adapter, q, cq))
2691                 goto mcc_q_free;
2692
2693         return 0;
2694
2695 mcc_q_free:
2696         be_queue_free(adapter, q);
2697 mcc_cq_destroy:
2698         be_cmd_q_destroy(adapter, cq, QTYPE_CQ);
2699 mcc_cq_free:
2700         be_queue_free(adapter, cq);
2701 err:
2702         return -1;
2703 }
2704
2705 static void be_tx_queues_destroy(struct be_adapter *adapter)
2706 {
2707         struct be_queue_info *q;
2708         struct be_tx_obj *txo;
2709         u8 i;
2710
2711         for_all_tx_queues(adapter, txo, i) {
2712                 q = &txo->q;
2713                 if (q->created)
2714                         be_cmd_q_destroy(adapter, q, QTYPE_TXQ);
2715                 be_queue_free(adapter, q);
2716
2717                 q = &txo->cq;
2718                 if (q->created)
2719                         be_cmd_q_destroy(adapter, q, QTYPE_CQ);
2720                 be_queue_free(adapter, q);
2721         }
2722 }
2723
2724 static int be_tx_qs_create(struct be_adapter *adapter)
2725 {
2726         struct be_queue_info *cq;
2727         struct be_tx_obj *txo;
2728         struct be_eq_obj *eqo;
2729         int status, i;
2730
2731         adapter->num_tx_qs = min(adapter->num_evt_qs, adapter->cfg_num_tx_irqs);
2732
2733         for_all_tx_queues(adapter, txo, i) {
2734                 cq = &txo->cq;
2735                 status = be_queue_alloc(adapter, cq, TX_CQ_LEN,
2736                                         sizeof(struct be_eth_tx_compl));
2737                 if (status)
2738                         return status;
2739
2740                 u64_stats_init(&txo->stats.sync);
2741                 u64_stats_init(&txo->stats.sync_compl);
2742
2743                 /* If num_evt_qs is less than num_tx_qs, then more than
2744                  * one txq share an eq
2745                  */
2746                 eqo = &adapter->eq_obj[i % adapter->num_evt_qs];
2747                 status = be_cmd_cq_create(adapter, cq, &eqo->q, false, 3);
2748                 if (status)
2749                         return status;
2750
2751                 status = be_queue_alloc(adapter, &txo->q, TX_Q_LEN,
2752                                         sizeof(struct be_eth_wrb));
2753                 if (status)
2754                         return status;
2755
2756                 status = be_cmd_txq_create(adapter, txo);
2757                 if (status)
2758                         return status;
2759
2760                 netif_set_xps_queue(adapter->netdev, eqo->affinity_mask,
2761                                     eqo->idx);
2762         }
2763
2764         dev_info(&adapter->pdev->dev, "created %d TX queue(s)\n",
2765                  adapter->num_tx_qs);
2766         return 0;
2767 }
2768
2769 static void be_rx_cqs_destroy(struct be_adapter *adapter)
2770 {
2771         struct be_queue_info *q;
2772         struct be_rx_obj *rxo;
2773         int i;
2774
2775         for_all_rx_queues(adapter, rxo, i) {
2776                 q = &rxo->cq;
2777                 if (q->created)
2778                         be_cmd_q_destroy(adapter, q, QTYPE_CQ);
2779                 be_queue_free(adapter, q);
2780         }
2781 }
2782
2783 static int be_rx_cqs_create(struct be_adapter *adapter)
2784 {
2785         struct be_queue_info *eq, *cq;
2786         struct be_rx_obj *rxo;
2787         int rc, i;
2788
2789         adapter->num_rss_qs =
2790                         min(adapter->num_evt_qs, adapter->cfg_num_rx_irqs);
2791
2792         /* We'll use RSS only if atleast 2 RSS rings are supported. */
2793         if (adapter->num_rss_qs < 2)
2794                 adapter->num_rss_qs = 0;
2795
2796         adapter->num_rx_qs = adapter->num_rss_qs + adapter->need_def_rxq;
2797
2798         /* When the interface is not capable of RSS rings (and there is no
2799          * need to create a default RXQ) we'll still need one RXQ
2800          */
2801         if (adapter->num_rx_qs == 0)
2802                 adapter->num_rx_qs = 1;
2803
2804         adapter->big_page_size = (1 << get_order(rx_frag_size)) * PAGE_SIZE;
2805         for_all_rx_queues(adapter, rxo, i) {
2806                 rxo->adapter = adapter;
2807                 cq = &rxo->cq;
2808                 rc = be_queue_alloc(adapter, cq, RX_CQ_LEN,
2809                                     sizeof(struct be_eth_rx_compl));
2810                 if (rc)
2811                         return rc;
2812
2813                 u64_stats_init(&rxo->stats.sync);
2814                 eq = &adapter->eq_obj[i % adapter->num_evt_qs].q;
2815                 rc = be_cmd_cq_create(adapter, cq, eq, false, 3);
2816                 if (rc)
2817                         return rc;
2818         }
2819
2820         dev_info(&adapter->pdev->dev,
2821                  "created %d RX queue(s)\n", adapter->num_rx_qs);
2822         return 0;
2823 }
2824
2825 static irqreturn_t be_intx(int irq, void *dev)
2826 {
2827         struct be_eq_obj *eqo = dev;
2828         struct be_adapter *adapter = eqo->adapter;
2829         int num_evts = 0;
2830
2831         /* IRQ is not expected when NAPI is scheduled as the EQ
2832          * will not be armed.
2833          * But, this can happen on Lancer INTx where it takes
2834          * a while to de-assert INTx or in BE2 where occasionaly
2835          * an interrupt may be raised even when EQ is unarmed.
2836          * If NAPI is already scheduled, then counting & notifying
2837          * events will orphan them.
2838          */
2839         if (napi_schedule_prep(&eqo->napi)) {
2840                 num_evts = events_get(eqo);
2841                 __napi_schedule(&eqo->napi);
2842                 if (num_evts)
2843                         eqo->spurious_intr = 0;
2844         }
2845         be_eq_notify(adapter, eqo->q.id, false, true, num_evts, 0);
2846
2847         /* Return IRQ_HANDLED only for the the first spurious intr
2848          * after a valid intr to stop the kernel from branding
2849          * this irq as a bad one!
2850          */
2851         if (num_evts || eqo->spurious_intr++ == 0)
2852                 return IRQ_HANDLED;
2853         else
2854                 return IRQ_NONE;
2855 }
2856
2857 static irqreturn_t be_msix(int irq, void *dev)
2858 {
2859         struct be_eq_obj *eqo = dev;
2860
2861         be_eq_notify(eqo->adapter, eqo->q.id, false, true, 0, 0);
2862         napi_schedule(&eqo->napi);
2863         return IRQ_HANDLED;
2864 }
2865
2866 static inline bool do_gro(struct be_rx_compl_info *rxcp)
2867 {
2868         return (rxcp->tcpf && !rxcp->err && rxcp->l4_csum) ? true : false;
2869 }
2870
2871 static int be_process_rx(struct be_rx_obj *rxo, struct napi_struct *napi,
2872                          int budget, int polling)
2873 {
2874         struct be_adapter *adapter = rxo->adapter;
2875         struct be_queue_info *rx_cq = &rxo->cq;
2876         struct be_rx_compl_info *rxcp;
2877         u32 work_done;
2878         u32 frags_consumed = 0;
2879
2880         for (work_done = 0; work_done < budget; work_done++) {
2881                 rxcp = be_rx_compl_get(rxo);
2882                 if (!rxcp)
2883                         break;
2884
2885                 /* Is it a flush compl that has no data */
2886                 if (unlikely(rxcp->num_rcvd == 0))
2887                         goto loop_continue;
2888
2889                 /* Discard compl with partial DMA Lancer B0 */
2890                 if (unlikely(!rxcp->pkt_size)) {
2891                         be_rx_compl_discard(rxo, rxcp);
2892                         goto loop_continue;
2893                 }
2894
2895                 /* On BE drop pkts that arrive due to imperfect filtering in
2896                  * promiscuous mode on some skews
2897                  */
2898                 if (unlikely(rxcp->port != adapter->port_num &&
2899                              !lancer_chip(adapter))) {
2900                         be_rx_compl_discard(rxo, rxcp);
2901                         goto loop_continue;
2902                 }
2903
2904                 /* Don't do gro when we're busy_polling */
2905                 if (do_gro(rxcp) && polling != BUSY_POLLING)
2906                         be_rx_compl_process_gro(rxo, napi, rxcp);
2907                 else
2908                         be_rx_compl_process(rxo, napi, rxcp);
2909
2910 loop_continue:
2911                 frags_consumed += rxcp->num_rcvd;
2912                 be_rx_stats_update(rxo, rxcp);
2913         }
2914
2915         if (work_done) {
2916                 be_cq_notify(adapter, rx_cq->id, true, work_done);
2917
2918                 /* When an rx-obj gets into post_starved state, just
2919                  * let be_worker do the posting.
2920                  */
2921                 if (atomic_read(&rxo->q.used) < RX_FRAGS_REFILL_WM &&
2922                     !rxo->rx_post_starved)
2923                         be_post_rx_frags(rxo, GFP_ATOMIC,
2924                                          max_t(u32, MAX_RX_POST,
2925                                                frags_consumed));
2926         }
2927
2928         return work_done;
2929 }
2930
2931 static inline void be_update_tx_err(struct be_tx_obj *txo, u8 status)
2932 {
2933         switch (status) {
2934         case BE_TX_COMP_HDR_PARSE_ERR:
2935                 tx_stats(txo)->tx_hdr_parse_err++;
2936                 break;
2937         case BE_TX_COMP_NDMA_ERR:
2938                 tx_stats(txo)->tx_dma_err++;
2939                 break;
2940         case BE_TX_COMP_ACL_ERR:
2941                 tx_stats(txo)->tx_spoof_check_err++;
2942                 break;
2943         }
2944 }
2945
2946 static inline void lancer_update_tx_err(struct be_tx_obj *txo, u8 status)
2947 {
2948         switch (status) {
2949         case LANCER_TX_COMP_LSO_ERR:
2950                 tx_stats(txo)->tx_tso_err++;
2951                 break;
2952         case LANCER_TX_COMP_HSW_DROP_MAC_ERR:
2953         case LANCER_TX_COMP_HSW_DROP_VLAN_ERR:
2954                 tx_stats(txo)->tx_spoof_check_err++;
2955                 break;
2956         case LANCER_TX_COMP_QINQ_ERR:
2957                 tx_stats(txo)->tx_qinq_err++;
2958                 break;
2959         case LANCER_TX_COMP_PARITY_ERR:
2960                 tx_stats(txo)->tx_internal_parity_err++;
2961                 break;
2962         case LANCER_TX_COMP_DMA_ERR:
2963                 tx_stats(txo)->tx_dma_err++;
2964                 break;
2965         }
2966 }
2967
2968 static void be_process_tx(struct be_adapter *adapter, struct be_tx_obj *txo,
2969                           int idx)
2970 {
2971         int num_wrbs = 0, work_done = 0;
2972         struct be_tx_compl_info *txcp;
2973
2974         while ((txcp = be_tx_compl_get(txo))) {
2975                 num_wrbs += be_tx_compl_process(adapter, txo, txcp->end_index);
2976                 work_done++;
2977
2978                 if (txcp->status) {
2979                         if (lancer_chip(adapter))
2980                                 lancer_update_tx_err(txo, txcp->status);
2981                         else
2982                                 be_update_tx_err(txo, txcp->status);
2983                 }
2984         }
2985
2986         if (work_done) {
2987                 be_cq_notify(adapter, txo->cq.id, true, work_done);
2988                 atomic_sub(num_wrbs, &txo->q.used);
2989
2990                 /* As Tx wrbs have been freed up, wake up netdev queue
2991                  * if it was stopped due to lack of tx wrbs.  */
2992                 if (__netif_subqueue_stopped(adapter->netdev, idx) &&
2993                     be_can_txq_wake(txo)) {
2994                         netif_wake_subqueue(adapter->netdev, idx);
2995                 }
2996
2997                 u64_stats_update_begin(&tx_stats(txo)->sync_compl);
2998                 tx_stats(txo)->tx_compl += work_done;
2999                 u64_stats_update_end(&tx_stats(txo)->sync_compl);
3000         }
3001 }
3002
3003 #ifdef CONFIG_NET_RX_BUSY_POLL
3004 static inline bool be_lock_napi(struct be_eq_obj *eqo)
3005 {
3006         bool status = true;
3007
3008         spin_lock(&eqo->lock); /* BH is already disabled */
3009         if (eqo->state & BE_EQ_LOCKED) {
3010                 WARN_ON(eqo->state & BE_EQ_NAPI);
3011                 eqo->state |= BE_EQ_NAPI_YIELD;
3012                 status = false;
3013         } else {
3014                 eqo->state = BE_EQ_NAPI;
3015         }
3016         spin_unlock(&eqo->lock);
3017         return status;
3018 }
3019
3020 static inline void be_unlock_napi(struct be_eq_obj *eqo)
3021 {
3022         spin_lock(&eqo->lock); /* BH is already disabled */
3023
3024         WARN_ON(eqo->state & (BE_EQ_POLL | BE_EQ_NAPI_YIELD));
3025         eqo->state = BE_EQ_IDLE;
3026
3027         spin_unlock(&eqo->lock);
3028 }
3029
3030 static inline bool be_lock_busy_poll(struct be_eq_obj *eqo)
3031 {
3032         bool status = true;
3033
3034         spin_lock_bh(&eqo->lock);
3035         if (eqo->state & BE_EQ_LOCKED) {
3036                 eqo->state |= BE_EQ_POLL_YIELD;
3037                 status = false;
3038         } else {
3039                 eqo->state |= BE_EQ_POLL;
3040         }
3041         spin_unlock_bh(&eqo->lock);
3042         return status;
3043 }
3044
3045 static inline void be_unlock_busy_poll(struct be_eq_obj *eqo)
3046 {
3047         spin_lock_bh(&eqo->lock);
3048
3049         WARN_ON(eqo->state & (BE_EQ_NAPI));
3050         eqo->state = BE_EQ_IDLE;
3051
3052         spin_unlock_bh(&eqo->lock);
3053 }
3054
3055 static inline void be_enable_busy_poll(struct be_eq_obj *eqo)
3056 {
3057         spin_lock_init(&eqo->lock);
3058         eqo->state = BE_EQ_IDLE;
3059 }
3060
3061 static inline void be_disable_busy_poll(struct be_eq_obj *eqo)
3062 {
3063         local_bh_disable();
3064
3065         /* It's enough to just acquire napi lock on the eqo to stop
3066          * be_busy_poll() from processing any queueus.
3067          */
3068         while (!be_lock_napi(eqo))
3069                 mdelay(1);
3070
3071         local_bh_enable();
3072 }
3073
3074 #else /* CONFIG_NET_RX_BUSY_POLL */
3075
3076 static inline bool be_lock_napi(struct be_eq_obj *eqo)
3077 {
3078         return true;
3079 }
3080
3081 static inline void be_unlock_napi(struct be_eq_obj *eqo)
3082 {
3083 }
3084
3085 static inline bool be_lock_busy_poll(struct be_eq_obj *eqo)
3086 {
3087         return false;
3088 }
3089
3090 static inline void be_unlock_busy_poll(struct be_eq_obj *eqo)
3091 {
3092 }
3093
3094 static inline void be_enable_busy_poll(struct be_eq_obj *eqo)
3095 {
3096 }
3097
3098 static inline void be_disable_busy_poll(struct be_eq_obj *eqo)
3099 {
3100 }
3101 #endif /* CONFIG_NET_RX_BUSY_POLL */
3102
3103 int be_poll(struct napi_struct *napi, int budget)
3104 {
3105         struct be_eq_obj *eqo = container_of(napi, struct be_eq_obj, napi);
3106         struct be_adapter *adapter = eqo->adapter;
3107         int max_work = 0, work, i, num_evts;
3108         struct be_rx_obj *rxo;
3109         struct be_tx_obj *txo;
3110         u32 mult_enc = 0;
3111
3112         num_evts = events_get(eqo);
3113
3114         for_all_tx_queues_on_eq(adapter, eqo, txo, i)
3115                 be_process_tx(adapter, txo, i);
3116
3117         if (be_lock_napi(eqo)) {
3118                 /* This loop will iterate twice for EQ0 in which
3119                  * completions of the last RXQ (default one) are also processed
3120                  * For other EQs the loop iterates only once
3121                  */
3122                 for_all_rx_queues_on_eq(adapter, eqo, rxo, i) {
3123                         work = be_process_rx(rxo, napi, budget, NAPI_POLLING);
3124                         max_work = max(work, max_work);
3125                 }
3126                 be_unlock_napi(eqo);
3127         } else {
3128                 max_work = budget;
3129         }
3130
3131         if (is_mcc_eqo(eqo))
3132                 be_process_mcc(adapter);
3133
3134         if (max_work < budget) {
3135                 napi_complete(napi);
3136
3137                 /* Skyhawk EQ_DB has a provision to set the rearm to interrupt
3138                  * delay via a delay multiplier encoding value
3139                  */
3140                 if (skyhawk_chip(adapter))
3141                         mult_enc = be_get_eq_delay_mult_enc(eqo);
3142
3143                 be_eq_notify(adapter, eqo->q.id, true, false, num_evts,
3144                              mult_enc);
3145         } else {
3146                 /* As we'll continue in polling mode, count and clear events */
3147                 be_eq_notify(adapter, eqo->q.id, false, false, num_evts, 0);
3148         }
3149         return max_work;
3150 }
3151
3152 #ifdef CONFIG_NET_RX_BUSY_POLL
3153 static int be_busy_poll(struct napi_struct *napi)
3154 {
3155         struct be_eq_obj *eqo = container_of(napi, struct be_eq_obj, napi);
3156         struct be_adapter *adapter = eqo->adapter;
3157         struct be_rx_obj *rxo;
3158         int i, work = 0;
3159
3160         if (!be_lock_busy_poll(eqo))
3161                 return LL_FLUSH_BUSY;
3162
3163         for_all_rx_queues_on_eq(adapter, eqo, rxo, i) {
3164                 work = be_process_rx(rxo, napi, 4, BUSY_POLLING);
3165                 if (work)
3166                         break;
3167         }
3168
3169         be_unlock_busy_poll(eqo);
3170         return work;
3171 }
3172 #endif
3173
3174 void be_detect_error(struct be_adapter *adapter)
3175 {
3176         u32 ue_lo = 0, ue_hi = 0, ue_lo_mask = 0, ue_hi_mask = 0;
3177         u32 sliport_status = 0, sliport_err1 = 0, sliport_err2 = 0;
3178         u32 i;
3179         struct device *dev = &adapter->pdev->dev;
3180
3181         if (be_check_error(adapter, BE_ERROR_HW))
3182                 return;
3183
3184         if (lancer_chip(adapter)) {
3185                 sliport_status = ioread32(adapter->db + SLIPORT_STATUS_OFFSET);
3186                 if (sliport_status & SLIPORT_STATUS_ERR_MASK) {
3187                         be_set_error(adapter, BE_ERROR_UE);
3188                         sliport_err1 = ioread32(adapter->db +
3189                                                 SLIPORT_ERROR1_OFFSET);
3190                         sliport_err2 = ioread32(adapter->db +
3191                                                 SLIPORT_ERROR2_OFFSET);
3192                         /* Do not log error messages if its a FW reset */
3193                         if (sliport_err1 == SLIPORT_ERROR_FW_RESET1 &&
3194                             sliport_err2 == SLIPORT_ERROR_FW_RESET2) {
3195                                 dev_info(dev, "Firmware update in progress\n");
3196                         } else {
3197                                 dev_err(dev, "Error detected in the card\n");
3198                                 dev_err(dev, "ERR: sliport status 0x%x\n",
3199                                         sliport_status);
3200                                 dev_err(dev, "ERR: sliport error1 0x%x\n",
3201                                         sliport_err1);
3202                                 dev_err(dev, "ERR: sliport error2 0x%x\n",
3203                                         sliport_err2);
3204                         }
3205                 }
3206         } else {
3207                 ue_lo = ioread32(adapter->pcicfg + PCICFG_UE_STATUS_LOW);
3208                 ue_hi = ioread32(adapter->pcicfg + PCICFG_UE_STATUS_HIGH);
3209                 ue_lo_mask = ioread32(adapter->pcicfg +
3210                                       PCICFG_UE_STATUS_LOW_MASK);
3211                 ue_hi_mask = ioread32(adapter->pcicfg +
3212                                       PCICFG_UE_STATUS_HI_MASK);
3213
3214                 ue_lo = (ue_lo & ~ue_lo_mask);
3215                 ue_hi = (ue_hi & ~ue_hi_mask);
3216
3217                 /* On certain platforms BE hardware can indicate spurious UEs.
3218                  * Allow HW to stop working completely in case of a real UE.
3219                  * Hence not setting the hw_error for UE detection.
3220                  */
3221
3222                 if (ue_lo || ue_hi) {
3223                         dev_err(dev,
3224                                 "Unrecoverable Error detected in the adapter");
3225                         dev_err(dev, "Please reboot server to recover");
3226                         if (skyhawk_chip(adapter))
3227                                 be_set_error(adapter, BE_ERROR_UE);
3228
3229                         for (i = 0; ue_lo; ue_lo >>= 1, i++) {
3230                                 if (ue_lo & 1)
3231                                         dev_err(dev, "UE: %s bit set\n",
3232                                                 ue_status_low_desc[i]);
3233                         }
3234                         for (i = 0; ue_hi; ue_hi >>= 1, i++) {
3235                                 if (ue_hi & 1)
3236                                         dev_err(dev, "UE: %s bit set\n",
3237                                                 ue_status_hi_desc[i]);
3238                         }
3239                 }
3240         }
3241 }
3242
3243 static void be_msix_disable(struct be_adapter *adapter)
3244 {
3245         if (msix_enabled(adapter)) {
3246                 pci_disable_msix(adapter->pdev);
3247                 adapter->num_msix_vec = 0;
3248                 adapter->num_msix_roce_vec = 0;
3249         }
3250 }
3251
3252 static int be_msix_enable(struct be_adapter *adapter)
3253 {
3254         unsigned int i, num_vec, max_roce_eqs;
3255         struct device *dev = &adapter->pdev->dev;
3256
3257         /* If RoCE is supported, program the max number of vectors that
3258          * could be used for NIC and RoCE, else, just program the number
3259          * we'll use initially.
3260          */
3261         if (be_roce_supported(adapter)) {
3262                 max_roce_eqs =
3263                         be_max_func_eqs(adapter) - be_max_nic_eqs(adapter);
3264                 max_roce_eqs = min(max_roce_eqs, num_online_cpus());
3265                 num_vec = be_max_any_irqs(adapter) + max_roce_eqs;
3266         } else {
3267                 num_vec = max(adapter->cfg_num_rx_irqs,
3268                               adapter->cfg_num_tx_irqs);
3269         }
3270
3271         for (i = 0; i < num_vec; i++)
3272                 adapter->msix_entries[i].entry = i;
3273
3274         num_vec = pci_enable_msix_range(adapter->pdev, adapter->msix_entries,
3275                                         MIN_MSIX_VECTORS, num_vec);
3276         if (num_vec < 0)
3277                 goto fail;
3278
3279         if (be_roce_supported(adapter) && num_vec > MIN_MSIX_VECTORS) {
3280                 adapter->num_msix_roce_vec = num_vec / 2;
3281                 dev_info(dev, "enabled %d MSI-x vector(s) for RoCE\n",
3282                          adapter->num_msix_roce_vec);
3283         }
3284
3285         adapter->num_msix_vec = num_vec - adapter->num_msix_roce_vec;
3286
3287         dev_info(dev, "enabled %d MSI-x vector(s) for NIC\n",
3288                  adapter->num_msix_vec);
3289         return 0;
3290
3291 fail:
3292         dev_warn(dev, "MSIx enable failed\n");
3293
3294         /* INTx is not supported in VFs, so fail probe if enable_msix fails */
3295         if (be_virtfn(adapter))
3296                 return num_vec;
3297         return 0;
3298 }
3299
3300 static inline int be_msix_vec_get(struct be_adapter *adapter,
3301                                   struct be_eq_obj *eqo)
3302 {
3303         return adapter->msix_entries[eqo->msix_idx].vector;
3304 }
3305
3306 static int be_msix_register(struct be_adapter *adapter)
3307 {
3308         struct net_device *netdev = adapter->netdev;
3309         struct be_eq_obj *eqo;
3310         int status, i, vec;
3311
3312         for_all_evt_queues(adapter, eqo, i) {
3313                 sprintf(eqo->desc, "%s-q%d", netdev->name, i);
3314                 vec = be_msix_vec_get(adapter, eqo);
3315                 status = request_irq(vec, be_msix, 0, eqo->desc, eqo);
3316                 if (status)
3317                         goto err_msix;
3318
3319                 irq_set_affinity_hint(vec, eqo->affinity_mask);
3320         }
3321
3322         return 0;
3323 err_msix:
3324         for (i--; i >= 0; i--) {
3325                 eqo = &adapter->eq_obj[i];
3326                 free_irq(be_msix_vec_get(adapter, eqo), eqo);
3327         }
3328         dev_warn(&adapter->pdev->dev, "MSIX Request IRQ failed - err %d\n",
3329                  status);
3330         be_msix_disable(adapter);
3331         return status;
3332 }
3333
3334 static int be_irq_register(struct be_adapter *adapter)
3335 {
3336         struct net_device *netdev = adapter->netdev;
3337         int status;
3338
3339         if (msix_enabled(adapter)) {
3340                 status = be_msix_register(adapter);
3341                 if (status == 0)
3342                         goto done;
3343                 /* INTx is not supported for VF */
3344                 if (be_virtfn(adapter))
3345                         return status;
3346         }
3347
3348         /* INTx: only the first EQ is used */
3349         netdev->irq = adapter->pdev->irq;
3350         status = request_irq(netdev->irq, be_intx, IRQF_SHARED, netdev->name,
3351                              &adapter->eq_obj[0]);
3352         if (status) {
3353                 dev_err(&adapter->pdev->dev,
3354                         "INTx request IRQ failed - err %d\n", status);
3355                 return status;
3356         }
3357 done:
3358         adapter->isr_registered = true;
3359         return 0;
3360 }
3361
3362 static void be_irq_unregister(struct be_adapter *adapter)
3363 {
3364         struct net_device *netdev = adapter->netdev;
3365         struct be_eq_obj *eqo;
3366         int i, vec;
3367
3368         if (!adapter->isr_registered)
3369                 return;
3370
3371         /* INTx */
3372         if (!msix_enabled(adapter)) {
3373                 free_irq(netdev->irq, &adapter->eq_obj[0]);
3374                 goto done;
3375         }
3376
3377         /* MSIx */
3378         for_all_evt_queues(adapter, eqo, i) {
3379                 vec = be_msix_vec_get(adapter, eqo);
3380                 irq_set_affinity_hint(vec, NULL);
3381                 free_irq(vec, eqo);
3382         }
3383
3384 done:
3385         adapter->isr_registered = false;
3386 }
3387
3388 static void be_rx_qs_destroy(struct be_adapter *adapter)
3389 {
3390         struct rss_info *rss = &adapter->rss_info;
3391         struct be_queue_info *q;
3392         struct be_rx_obj *rxo;
3393         int i;
3394
3395         for_all_rx_queues(adapter, rxo, i) {
3396                 q = &rxo->q;
3397                 if (q->created) {
3398                         /* If RXQs are destroyed while in an "out of buffer"
3399                          * state, there is a possibility of an HW stall on
3400                          * Lancer. So, post 64 buffers to each queue to relieve
3401                          * the "out of buffer" condition.
3402                          * Make sure there's space in the RXQ before posting.
3403                          */
3404                         if (lancer_chip(adapter)) {
3405                                 be_rx_cq_clean(rxo);
3406                                 if (atomic_read(&q->used) == 0)
3407                                         be_post_rx_frags(rxo, GFP_KERNEL,
3408                                                          MAX_RX_POST);
3409                         }
3410
3411                         be_cmd_rxq_destroy(adapter, q);
3412                         be_rx_cq_clean(rxo);
3413                         be_rxq_clean(rxo);
3414                 }
3415                 be_queue_free(adapter, q);
3416         }
3417
3418         if (rss->rss_flags) {
3419                 rss->rss_flags = RSS_ENABLE_NONE;
3420                 be_cmd_rss_config(adapter, rss->rsstable, rss->rss_flags,
3421                                   128, rss->rss_hkey);
3422         }
3423 }
3424
3425 static void be_disable_if_filters(struct be_adapter *adapter)
3426 {
3427         be_cmd_pmac_del(adapter, adapter->if_handle,
3428                         adapter->pmac_id[0], 0);
3429
3430         be_clear_uc_list(adapter);
3431
3432         /* The IFACE flags are enabled in the open path and cleared
3433          * in the close path. When a VF gets detached from the host and
3434          * assigned to a VM the following happens:
3435          *      - VF's IFACE flags get cleared in the detach path
3436          *      - IFACE create is issued by the VF in the attach path
3437          * Due to a bug in the BE3/Skyhawk-R FW
3438          * (Lancer FW doesn't have the bug), the IFACE capability flags
3439          * specified along with the IFACE create cmd issued by a VF are not
3440          * honoured by FW.  As a consequence, if a *new* driver
3441          * (that enables/disables IFACE flags in open/close)
3442          * is loaded in the host and an *old* driver is * used by a VM/VF,
3443          * the IFACE gets created *without* the needed flags.
3444          * To avoid this, disable RX-filter flags only for Lancer.
3445          */
3446         if (lancer_chip(adapter)) {
3447                 be_cmd_rx_filter(adapter, BE_IF_ALL_FILT_FLAGS, OFF);
3448                 adapter->if_flags &= ~BE_IF_ALL_FILT_FLAGS;
3449         }
3450 }
3451
3452 static int be_close(struct net_device *netdev)
3453 {
3454         struct be_adapter *adapter = netdev_priv(netdev);
3455         struct be_eq_obj *eqo;
3456         int i;
3457
3458         /* This protection is needed as be_close() may be called even when the
3459          * adapter is in cleared state (after eeh perm failure)
3460          */
3461         if (!(adapter->flags & BE_FLAGS_SETUP_DONE))
3462                 return 0;
3463
3464         be_disable_if_filters(adapter);
3465
3466         if (adapter->flags & BE_FLAGS_NAPI_ENABLED) {
3467                 for_all_evt_queues(adapter, eqo, i) {
3468                         napi_disable(&eqo->napi);
3469                         be_disable_busy_poll(eqo);
3470                 }
3471                 adapter->flags &= ~BE_FLAGS_NAPI_ENABLED;
3472         }
3473
3474         be_async_mcc_disable(adapter);
3475
3476         /* Wait for all pending tx completions to arrive so that
3477          * all tx skbs are freed.
3478          */
3479         netif_tx_disable(netdev);
3480         be_tx_compl_clean(adapter);
3481
3482         be_rx_qs_destroy(adapter);
3483
3484         for_all_evt_queues(adapter, eqo, i) {
3485                 if (msix_enabled(adapter))
3486                         synchronize_irq(be_msix_vec_get(adapter, eqo));
3487                 else
3488                         synchronize_irq(netdev->irq);
3489                 be_eq_clean(eqo);
3490         }
3491
3492         be_irq_unregister(adapter);
3493
3494         return 0;
3495 }
3496
3497 static int be_rx_qs_create(struct be_adapter *adapter)
3498 {
3499         struct rss_info *rss = &adapter->rss_info;
3500         u8 rss_key[RSS_HASH_KEY_LEN];
3501         struct be_rx_obj *rxo;
3502         int rc, i, j;
3503
3504         for_all_rx_queues(adapter, rxo, i) {
3505                 rc = be_queue_alloc(adapter, &rxo->q, RX_Q_LEN,
3506                                     sizeof(struct be_eth_rx_d));
3507                 if (rc)
3508                         return rc;
3509         }
3510
3511         if (adapter->need_def_rxq || !adapter->num_rss_qs) {
3512                 rxo = default_rxo(adapter);
3513                 rc = be_cmd_rxq_create(adapter, &rxo->q, rxo->cq.id,
3514                                        rx_frag_size, adapter->if_handle,
3515                                        false, &rxo->rss_id);
3516                 if (rc)
3517                         return rc;
3518         }
3519
3520         for_all_rss_queues(adapter, rxo, i) {
3521                 rc = be_cmd_rxq_create(adapter, &rxo->q, rxo->cq.id,
3522                                        rx_frag_size, adapter->if_handle,
3523                                        true, &rxo->rss_id);
3524                 if (rc)
3525                         return rc;
3526         }
3527
3528         if (be_multi_rxq(adapter)) {
3529                 for (j = 0; j < RSS_INDIR_TABLE_LEN; j += adapter->num_rss_qs) {
3530                         for_all_rss_queues(adapter, rxo, i) {
3531                                 if ((j + i) >= RSS_INDIR_TABLE_LEN)
3532                                         break;
3533                                 rss->rsstable[j + i] = rxo->rss_id;
3534                                 rss->rss_queue[j + i] = i;
3535                         }
3536                 }
3537                 rss->rss_flags = RSS_ENABLE_TCP_IPV4 | RSS_ENABLE_IPV4 |
3538                         RSS_ENABLE_TCP_IPV6 | RSS_ENABLE_IPV6;
3539
3540                 if (!BEx_chip(adapter))
3541                         rss->rss_flags |= RSS_ENABLE_UDP_IPV4 |
3542                                 RSS_ENABLE_UDP_IPV6;
3543
3544                 netdev_rss_key_fill(rss_key, RSS_HASH_KEY_LEN);
3545                 rc = be_cmd_rss_config(adapter, rss->rsstable, rss->rss_flags,
3546                                        RSS_INDIR_TABLE_LEN, rss_key);
3547                 if (rc) {
3548                         rss->rss_flags = RSS_ENABLE_NONE;
3549                         return rc;
3550                 }
3551
3552                 memcpy(rss->rss_hkey, rss_key, RSS_HASH_KEY_LEN);
3553         } else {
3554                 /* Disable RSS, if only default RX Q is created */
3555                 rss->rss_flags = RSS_ENABLE_NONE;
3556         }
3557
3558
3559         /* Post 1 less than RXQ-len to avoid head being equal to tail,
3560          * which is a queue empty condition
3561          */
3562         for_all_rx_queues(adapter, rxo, i)
3563                 be_post_rx_frags(rxo, GFP_KERNEL, RX_Q_LEN - 1);
3564
3565         return 0;
3566 }
3567
3568 static int be_enable_if_filters(struct be_adapter *adapter)
3569 {
3570         int status;
3571
3572         status = be_cmd_rx_filter(adapter, BE_IF_FILT_FLAGS_BASIC, ON);
3573         if (status)
3574                 return status;
3575
3576         /* For BE3 VFs, the PF programs the initial MAC address */
3577         if (!(BEx_chip(adapter) && be_virtfn(adapter))) {
3578                 status = be_cmd_pmac_add(adapter, adapter->netdev->dev_addr,
3579                                          adapter->if_handle,
3580                                          &adapter->pmac_id[0], 0);
3581                 if (status)
3582                         return status;
3583         }
3584
3585         if (adapter->vlans_added)
3586                 be_vid_config(adapter);
3587
3588         be_set_rx_mode(adapter->netdev);
3589
3590         return 0;
3591 }
3592
3593 static int be_open(struct net_device *netdev)
3594 {
3595         struct be_adapter *adapter = netdev_priv(netdev);
3596         struct be_eq_obj *eqo;
3597         struct be_rx_obj *rxo;
3598         struct be_tx_obj *txo;
3599         u8 link_status;
3600         int status, i;
3601
3602         status = be_rx_qs_create(adapter);
3603         if (status)
3604                 goto err;
3605
3606         status = be_enable_if_filters(adapter);
3607         if (status)
3608                 goto err;
3609
3610         status = be_irq_register(adapter);
3611         if (status)
3612                 goto err;
3613
3614         for_all_rx_queues(adapter, rxo, i)
3615                 be_cq_notify(adapter, rxo->cq.id, true, 0);
3616
3617         for_all_tx_queues(adapter, txo, i)
3618                 be_cq_notify(adapter, txo->cq.id, true, 0);
3619
3620         be_async_mcc_enable(adapter);
3621
3622         for_all_evt_queues(adapter, eqo, i) {
3623                 napi_enable(&eqo->napi);
3624                 be_enable_busy_poll(eqo);
3625                 be_eq_notify(adapter, eqo->q.id, true, true, 0, 0);
3626         }
3627         adapter->flags |= BE_FLAGS_NAPI_ENABLED;
3628
3629         status = be_cmd_link_status_query(adapter, NULL, &link_status, 0);
3630         if (!status)
3631                 be_link_status_update(adapter, link_status);
3632
3633         netif_tx_start_all_queues(netdev);
3634         if (skyhawk_chip(adapter))
3635                 udp_tunnel_get_rx_info(netdev);
3636
3637         return 0;
3638 err:
3639         be_close(adapter->netdev);
3640         return -EIO;
3641 }
3642
3643 static void be_vf_eth_addr_generate(struct be_adapter *adapter, u8 *mac)
3644 {
3645         u32 addr;
3646
3647         addr = jhash(adapter->netdev->dev_addr, ETH_ALEN, 0);
3648
3649         mac[5] = (u8)(addr & 0xFF);
3650         mac[4] = (u8)((addr >> 8) & 0xFF);
3651         mac[3] = (u8)((addr >> 16) & 0xFF);
3652         /* Use the OUI from the current MAC address */
3653         memcpy(mac, adapter->netdev->dev_addr, 3);
3654 }
3655
3656 /*
3657  * Generate a seed MAC address from the PF MAC Address using jhash.
3658  * MAC Address for VFs are assigned incrementally starting from the seed.
3659  * These addresses are programmed in the ASIC by the PF and the VF driver
3660  * queries for the MAC address during its probe.
3661  */
3662 static int be_vf_eth_addr_config(struct be_adapter *adapter)
3663 {
3664         u32 vf;
3665         int status = 0;
3666         u8 mac[ETH_ALEN];
3667         struct be_vf_cfg *vf_cfg;
3668
3669         be_vf_eth_addr_generate(adapter, mac);
3670
3671         for_all_vfs(adapter, vf_cfg, vf) {
3672                 if (BEx_chip(adapter))
3673                         status = be_cmd_pmac_add(adapter, mac,
3674                                                  vf_cfg->if_handle,
3675                                                  &vf_cfg->pmac_id, vf + 1);
3676                 else
3677                         status = be_cmd_set_mac(adapter, mac, vf_cfg->if_handle,
3678                                                 vf + 1);
3679
3680                 if (status)
3681                         dev_err(&adapter->pdev->dev,
3682                                 "Mac address assignment failed for VF %d\n",
3683                                 vf);
3684                 else
3685                         memcpy(vf_cfg->mac_addr, mac, ETH_ALEN);
3686
3687                 mac[5] += 1;
3688         }
3689         return status;
3690 }
3691
3692 static int be_vfs_mac_query(struct be_adapter *adapter)
3693 {
3694         int status, vf;
3695         u8 mac[ETH_ALEN];
3696         struct be_vf_cfg *vf_cfg;
3697
3698         for_all_vfs(adapter, vf_cfg, vf) {
3699                 status = be_cmd_get_active_mac(adapter, vf_cfg->pmac_id,
3700                                                mac, vf_cfg->if_handle,
3701                                                false, vf+1);
3702                 if (status)
3703                         return status;
3704                 memcpy(vf_cfg->mac_addr, mac, ETH_ALEN);
3705         }
3706         return 0;
3707 }
3708
3709 static void be_vf_clear(struct be_adapter *adapter)
3710 {
3711         struct be_vf_cfg *vf_cfg;
3712         u32 vf;
3713
3714         if (pci_vfs_assigned(adapter->pdev)) {
3715                 dev_warn(&adapter->pdev->dev,
3716                          "VFs are assigned to VMs: not disabling VFs\n");
3717                 goto done;
3718         }
3719
3720         pci_disable_sriov(adapter->pdev);
3721
3722         for_all_vfs(adapter, vf_cfg, vf) {
3723                 if (BEx_chip(adapter))
3724                         be_cmd_pmac_del(adapter, vf_cfg->if_handle,
3725                                         vf_cfg->pmac_id, vf + 1);
3726                 else
3727                         be_cmd_set_mac(adapter, NULL, vf_cfg->if_handle,
3728                                        vf + 1);
3729
3730                 be_cmd_if_destroy(adapter, vf_cfg->if_handle, vf + 1);
3731         }
3732
3733         if (BE3_chip(adapter))
3734                 be_cmd_set_hsw_config(adapter, 0, 0,
3735                                       adapter->if_handle,
3736                                       PORT_FWD_TYPE_PASSTHRU, 0);
3737 done:
3738         kfree(adapter->vf_cfg);
3739         adapter->num_vfs = 0;
3740         adapter->flags &= ~BE_FLAGS_SRIOV_ENABLED;
3741 }
3742
3743 static void be_clear_queues(struct be_adapter *adapter)
3744 {
3745         be_mcc_queues_destroy(adapter);
3746         be_rx_cqs_destroy(adapter);
3747         be_tx_queues_destroy(adapter);
3748         be_evt_queues_destroy(adapter);
3749 }
3750
3751 static void be_cancel_worker(struct be_adapter *adapter)
3752 {
3753         if (adapter->flags & BE_FLAGS_WORKER_SCHEDULED) {
3754                 cancel_delayed_work_sync(&adapter->work);
3755                 adapter->flags &= ~BE_FLAGS_WORKER_SCHEDULED;
3756         }
3757 }
3758
3759 static void be_cancel_err_detection(struct be_adapter *adapter)
3760 {
3761         if (adapter->flags & BE_FLAGS_ERR_DETECTION_SCHEDULED) {
3762                 cancel_delayed_work_sync(&adapter->be_err_detection_work);
3763                 adapter->flags &= ~BE_FLAGS_ERR_DETECTION_SCHEDULED;
3764         }
3765 }
3766
3767 static void be_disable_vxlan_offloads(struct be_adapter *adapter)
3768 {
3769         struct net_device *netdev = adapter->netdev;
3770
3771         if (adapter->flags & BE_FLAGS_VXLAN_OFFLOADS)
3772                 be_cmd_manage_iface(adapter, adapter->if_handle,
3773                                     OP_CONVERT_TUNNEL_TO_NORMAL);
3774
3775         if (adapter->vxlan_port)
3776                 be_cmd_set_vxlan_port(adapter, 0);
3777
3778         adapter->flags &= ~BE_FLAGS_VXLAN_OFFLOADS;
3779         adapter->vxlan_port = 0;
3780
3781         netdev->hw_enc_features = 0;
3782         netdev->hw_features &= ~(NETIF_F_GSO_UDP_TUNNEL);
3783         netdev->features &= ~(NETIF_F_GSO_UDP_TUNNEL);
3784 }
3785
3786 static void be_calculate_vf_res(struct be_adapter *adapter, u16 num_vfs,
3787                                 struct be_resources *vft_res)
3788 {
3789         struct be_resources res = adapter->pool_res;
3790         u32 vf_if_cap_flags = res.vf_if_cap_flags;
3791         struct be_resources res_mod = {0};
3792         u16 num_vf_qs = 1;
3793
3794         /* Distribute the queue resources among the PF and it's VFs */
3795         if (num_vfs) {
3796                 /* Divide the rx queues evenly among the VFs and the PF, capped
3797                  * at VF-EQ-count. Any remainder queues belong to the PF.
3798                  */
3799                 num_vf_qs = min(SH_VF_MAX_NIC_EQS,
3800                                 res.max_rss_qs / (num_vfs + 1));
3801
3802                 /* Skyhawk-R chip supports only MAX_PORT_RSS_TABLES
3803                  * RSS Tables per port. Provide RSS on VFs, only if number of
3804                  * VFs requested is less than it's PF Pool's RSS Tables limit.
3805                  */
3806                 if (num_vfs >= be_max_pf_pool_rss_tables(adapter))
3807                         num_vf_qs = 1;
3808         }
3809
3810         /* Resource with fields set to all '1's by GET_PROFILE_CONFIG cmd,
3811          * which are modifiable using SET_PROFILE_CONFIG cmd.
3812          */
3813         be_cmd_get_profile_config(adapter, &res_mod, NULL, ACTIVE_PROFILE_TYPE,
3814                                   RESOURCE_MODIFIABLE, 0);
3815
3816         /* If RSS IFACE capability flags are modifiable for a VF, set the
3817          * capability flag as valid and set RSS and DEFQ_RSS IFACE flags if
3818          * more than 1 RSSQ is available for a VF.
3819          * Otherwise, provision only 1 queue pair for VF.
3820          */
3821         if (res_mod.vf_if_cap_flags & BE_IF_FLAGS_RSS) {
3822                 vft_res->flags |= BIT(IF_CAPS_FLAGS_VALID_SHIFT);
3823                 if (num_vf_qs > 1) {
3824                         vf_if_cap_flags |= BE_IF_FLAGS_RSS;
3825                         if (res.if_cap_flags & BE_IF_FLAGS_DEFQ_RSS)
3826                                 vf_if_cap_flags |= BE_IF_FLAGS_DEFQ_RSS;
3827                 } else {
3828                         vf_if_cap_flags &= ~(BE_IF_FLAGS_RSS |
3829                                              BE_IF_FLAGS_DEFQ_RSS);
3830                 }
3831         } else {
3832                 num_vf_qs = 1;
3833         }
3834
3835         if (res_mod.vf_if_cap_flags & BE_IF_FLAGS_VLAN_PROMISCUOUS) {
3836                 vft_res->flags |= BIT(IF_CAPS_FLAGS_VALID_SHIFT);
3837                 vf_if_cap_flags &= ~BE_IF_FLAGS_VLAN_PROMISCUOUS;
3838         }
3839
3840         vft_res->vf_if_cap_flags = vf_if_cap_flags;
3841         vft_res->max_rx_qs = num_vf_qs;
3842         vft_res->max_rss_qs = num_vf_qs;
3843         vft_res->max_tx_qs = res.max_tx_qs / (num_vfs + 1);
3844         vft_res->max_cq_count = res.max_cq_count / (num_vfs + 1);
3845
3846         /* Distribute unicast MACs, VLANs, IFACE count and MCCQ count equally
3847          * among the PF and it's VFs, if the fields are changeable
3848          */
3849         if (res_mod.max_uc_mac == FIELD_MODIFIABLE)
3850                 vft_res->max_uc_mac = res.max_uc_mac / (num_vfs + 1);
3851
3852         if (res_mod.max_vlans == FIELD_MODIFIABLE)
3853                 vft_res->max_vlans = res.max_vlans / (num_vfs + 1);
3854
3855         if (res_mod.max_iface_count == FIELD_MODIFIABLE)
3856                 vft_res->max_iface_count = res.max_iface_count / (num_vfs + 1);
3857
3858         if (res_mod.max_mcc_count == FIELD_MODIFIABLE)
3859                 vft_res->max_mcc_count = res.max_mcc_count / (num_vfs + 1);
3860 }
3861
3862 static int be_clear(struct be_adapter *adapter)
3863 {
3864         struct pci_dev *pdev = adapter->pdev;
3865         struct  be_resources vft_res = {0};
3866
3867         be_cancel_worker(adapter);
3868
3869         if (sriov_enabled(adapter))
3870                 be_vf_clear(adapter);
3871
3872         /* Re-configure FW to distribute resources evenly across max-supported
3873          * number of VFs, only when VFs are not already enabled.
3874          */
3875         if (skyhawk_chip(adapter) && be_physfn(adapter) &&
3876             !pci_vfs_assigned(pdev)) {
3877                 be_calculate_vf_res(adapter,
3878                                     pci_sriov_get_totalvfs(pdev),
3879                                     &vft_res);
3880                 be_cmd_set_sriov_config(adapter, adapter->pool_res,
3881                                         pci_sriov_get_totalvfs(pdev),
3882                                         &vft_res);
3883         }
3884
3885         be_disable_vxlan_offloads(adapter);
3886         kfree(adapter->pmac_id);
3887         adapter->pmac_id = NULL;
3888
3889         be_cmd_if_destroy(adapter, adapter->if_handle,  0);
3890
3891         be_clear_queues(adapter);
3892
3893         be_msix_disable(adapter);
3894         adapter->flags &= ~BE_FLAGS_SETUP_DONE;
3895         return 0;
3896 }
3897
3898 static int be_vfs_if_create(struct be_adapter *adapter)
3899 {
3900         struct be_resources res = {0};
3901         u32 cap_flags, en_flags, vf;
3902         struct be_vf_cfg *vf_cfg;
3903         int status;
3904
3905         /* If a FW profile exists, then cap_flags are updated */
3906         cap_flags = BE_VF_IF_EN_FLAGS;
3907
3908         for_all_vfs(adapter, vf_cfg, vf) {
3909                 if (!BE3_chip(adapter)) {
3910                         status = be_cmd_get_profile_config(adapter, &res, NULL,
3911                                                            ACTIVE_PROFILE_TYPE,
3912                                                            RESOURCE_LIMITS,
3913                                                            vf + 1);
3914                         if (!status) {
3915                                 cap_flags = res.if_cap_flags;
3916                                 /* Prevent VFs from enabling VLAN promiscuous
3917                                  * mode
3918                                  */
3919                                 cap_flags &= ~BE_IF_FLAGS_VLAN_PROMISCUOUS;
3920                         }
3921                 }
3922
3923                 /* PF should enable IF flags during proxy if_create call */
3924                 en_flags = cap_flags & BE_VF_IF_EN_FLAGS;
3925                 status = be_cmd_if_create(adapter, cap_flags, en_flags,
3926                                           &vf_cfg->if_handle, vf + 1);
3927                 if (status)
3928                         return status;
3929         }
3930
3931         return 0;
3932 }
3933
3934 static int be_vf_setup_init(struct be_adapter *adapter)
3935 {
3936         struct be_vf_cfg *vf_cfg;
3937         int vf;
3938
3939         adapter->vf_cfg = kcalloc(adapter->num_vfs, sizeof(*vf_cfg),
3940                                   GFP_KERNEL);
3941         if (!adapter->vf_cfg)
3942                 return -ENOMEM;
3943
3944         for_all_vfs(adapter, vf_cfg, vf) {
3945                 vf_cfg->if_handle = -1;
3946                 vf_cfg->pmac_id = -1;
3947         }
3948         return 0;
3949 }
3950
3951 static int be_vf_setup(struct be_adapter *adapter)
3952 {
3953         struct device *dev = &adapter->pdev->dev;
3954         struct be_vf_cfg *vf_cfg;
3955         int status, old_vfs, vf;
3956         bool spoofchk;
3957
3958         old_vfs = pci_num_vf(adapter->pdev);
3959
3960         status = be_vf_setup_init(adapter);
3961         if (status)
3962                 goto err;
3963
3964         if (old_vfs) {
3965                 for_all_vfs(adapter, vf_cfg, vf) {
3966                         status = be_cmd_get_if_id(adapter, vf_cfg, vf);
3967                         if (status)
3968                                 goto err;
3969                 }
3970
3971                 status = be_vfs_mac_query(adapter);
3972                 if (status)
3973                         goto err;
3974         } else {
3975                 status = be_vfs_if_create(adapter);
3976                 if (status)
3977                         goto err;
3978
3979                 status = be_vf_eth_addr_config(adapter);
3980                 if (status)
3981                         goto err;
3982         }
3983
3984         for_all_vfs(adapter, vf_cfg, vf) {
3985                 /* Allow VFs to programs MAC/VLAN filters */
3986                 status = be_cmd_get_fn_privileges(adapter, &vf_cfg->privileges,
3987                                                   vf + 1);
3988                 if (!status && !(vf_cfg->privileges & BE_PRIV_FILTMGMT)) {
3989                         status = be_cmd_set_fn_privileges(adapter,
3990                                                           vf_cfg->privileges |
3991                                                           BE_PRIV_FILTMGMT,
3992                                                           vf + 1);
3993                         if (!status) {
3994                                 vf_cfg->privileges |= BE_PRIV_FILTMGMT;
3995                                 dev_info(dev, "VF%d has FILTMGMT privilege\n",
3996                                          vf);
3997                         }
3998                 }
3999
4000                 /* Allow full available bandwidth */
4001                 if (!old_vfs)
4002                         be_cmd_config_qos(adapter, 0, 0, vf + 1);
4003
4004                 status = be_cmd_get_hsw_config(adapter, NULL, vf + 1,
4005                                                vf_cfg->if_handle, NULL,
4006                                                &spoofchk);
4007                 if (!status)
4008                         vf_cfg->spoofchk = spoofchk;
4009
4010                 if (!old_vfs) {
4011                         be_cmd_enable_vf(adapter, vf + 1);
4012                         be_cmd_set_logical_link_config(adapter,
4013                                                        IFLA_VF_LINK_STATE_AUTO,
4014                                                        vf+1);
4015                 }
4016         }
4017
4018         if (!old_vfs) {
4019                 status = pci_enable_sriov(adapter->pdev, adapter->num_vfs);
4020                 if (status) {
4021                         dev_err(dev, "SRIOV enable failed\n");
4022                         adapter->num_vfs = 0;
4023                         goto err;
4024                 }
4025         }
4026
4027         if (BE3_chip(adapter)) {
4028                 /* On BE3, enable VEB only when SRIOV is enabled */
4029                 status = be_cmd_set_hsw_config(adapter, 0, 0,
4030                                                adapter->if_handle,
4031                                                PORT_FWD_TYPE_VEB, 0);
4032                 if (status)
4033                         goto err;
4034         }
4035
4036         adapter->flags |= BE_FLAGS_SRIOV_ENABLED;
4037         return 0;
4038 err:
4039         dev_err(dev, "VF setup failed\n");
4040         be_vf_clear(adapter);
4041         return status;
4042 }
4043
4044 /* Converting function_mode bits on BE3 to SH mc_type enums */
4045
4046 static u8 be_convert_mc_type(u32 function_mode)
4047 {
4048         if (function_mode & VNIC_MODE && function_mode & QNQ_MODE)
4049                 return vNIC1;
4050         else if (function_mode & QNQ_MODE)
4051                 return FLEX10;
4052         else if (function_mode & VNIC_MODE)
4053                 return vNIC2;
4054         else if (function_mode & UMC_ENABLED)
4055                 return UMC;
4056         else
4057                 return MC_NONE;
4058 }
4059
4060 /* On BE2/BE3 FW does not suggest the supported limits */
4061 static void BEx_get_resources(struct be_adapter *adapter,
4062                               struct be_resources *res)
4063 {
4064         bool use_sriov = adapter->num_vfs ? 1 : 0;
4065
4066         if (be_physfn(adapter))
4067                 res->max_uc_mac = BE_UC_PMAC_COUNT;
4068         else
4069                 res->max_uc_mac = BE_VF_UC_PMAC_COUNT;
4070
4071         adapter->mc_type = be_convert_mc_type(adapter->function_mode);
4072
4073         if (be_is_mc(adapter)) {
4074                 /* Assuming that there are 4 channels per port,
4075                  * when multi-channel is enabled
4076                  */
4077                 if (be_is_qnq_mode(adapter))
4078                         res->max_vlans = BE_NUM_VLANS_SUPPORTED/8;
4079                 else
4080                         /* In a non-qnq multichannel mode, the pvid
4081                          * takes up one vlan entry
4082                          */
4083                         res->max_vlans = (BE_NUM_VLANS_SUPPORTED / 4) - 1;
4084         } else {
4085                 res->max_vlans = BE_NUM_VLANS_SUPPORTED;
4086         }
4087
4088         res->max_mcast_mac = BE_MAX_MC;
4089
4090         /* 1) For BE3 1Gb ports, FW does not support multiple TXQs
4091          * 2) Create multiple TX rings on a BE3-R multi-channel interface
4092          *    *only* if it is RSS-capable.
4093          */
4094         if (BE2_chip(adapter) || use_sriov ||  (adapter->port_num > 1) ||
4095             be_virtfn(adapter) ||
4096             (be_is_mc(adapter) &&
4097              !(adapter->function_caps & BE_FUNCTION_CAPS_RSS))) {
4098                 res->max_tx_qs = 1;
4099         } else if (adapter->function_caps & BE_FUNCTION_CAPS_SUPER_NIC) {
4100                 struct be_resources super_nic_res = {0};
4101
4102                 /* On a SuperNIC profile, the driver needs to use the
4103                  * GET_PROFILE_CONFIG cmd to query the per-function TXQ limits
4104                  */
4105                 be_cmd_get_profile_config(adapter, &super_nic_res, NULL,
4106                                           ACTIVE_PROFILE_TYPE, RESOURCE_LIMITS,
4107                                           0);
4108                 /* Some old versions of BE3 FW don't report max_tx_qs value */
4109                 res->max_tx_qs = super_nic_res.max_tx_qs ? : BE3_MAX_TX_QS;
4110         } else {
4111                 res->max_tx_qs = BE3_MAX_TX_QS;
4112         }
4113
4114         if ((adapter->function_caps & BE_FUNCTION_CAPS_RSS) &&
4115             !use_sriov && be_physfn(adapter))
4116                 res->max_rss_qs = (adapter->be3_native) ?
4117                                            BE3_MAX_RSS_QS : BE2_MAX_RSS_QS;
4118         res->max_rx_qs = res->max_rss_qs + 1;
4119
4120         if (be_physfn(adapter))
4121                 res->max_evt_qs = (be_max_vfs(adapter) > 0) ?
4122                                         BE3_SRIOV_MAX_EVT_QS : BE3_MAX_EVT_QS;
4123         else
4124                 res->max_evt_qs = 1;
4125
4126         res->if_cap_flags = BE_IF_CAP_FLAGS_WANT;
4127         res->if_cap_flags &= ~BE_IF_FLAGS_DEFQ_RSS;
4128         if (!(adapter->function_caps & BE_FUNCTION_CAPS_RSS))
4129                 res->if_cap_flags &= ~BE_IF_FLAGS_RSS;
4130 }
4131
4132 static void be_setup_init(struct be_adapter *adapter)
4133 {
4134         adapter->vlan_prio_bmap = 0xff;
4135         adapter->phy.link_speed = -1;
4136         adapter->if_handle = -1;
4137         adapter->be3_native = false;
4138         adapter->if_flags = 0;
4139         adapter->phy_state = BE_UNKNOWN_PHY_STATE;
4140         if (be_physfn(adapter))
4141                 adapter->cmd_privileges = MAX_PRIVILEGES;
4142         else
4143                 adapter->cmd_privileges = MIN_PRIVILEGES;
4144 }
4145
4146 /* HW supports only MAX_PORT_RSS_TABLES RSS Policy Tables per port.
4147  * However, this HW limitation is not exposed to the host via any SLI cmd.
4148  * As a result, in the case of SRIOV and in particular multi-partition configs
4149  * the driver needs to calcuate a proportional share of RSS Tables per PF-pool
4150  * for distribution between the VFs. This self-imposed limit will determine the
4151  * no: of VFs for which RSS can be enabled.
4152  */
4153 void be_calculate_pf_pool_rss_tables(struct be_adapter *adapter)
4154 {
4155         struct be_port_resources port_res = {0};
4156         u8 rss_tables_on_port;
4157         u16 max_vfs = be_max_vfs(adapter);
4158
4159         be_cmd_get_profile_config(adapter, NULL, &port_res, SAVED_PROFILE_TYPE,
4160                                   RESOURCE_LIMITS, 0);
4161
4162         rss_tables_on_port = MAX_PORT_RSS_TABLES - port_res.nic_pfs;
4163
4164         /* Each PF Pool's RSS Tables limit =
4165          * PF's Max VFs / Total_Max_VFs on Port * RSS Tables on Port
4166          */
4167         adapter->pool_res.max_rss_tables =
4168                 max_vfs * rss_tables_on_port / port_res.max_vfs;
4169 }
4170
4171 static int be_get_sriov_config(struct be_adapter *adapter)
4172 {
4173         struct be_resources res = {0};
4174         int max_vfs, old_vfs;
4175
4176         be_cmd_get_profile_config(adapter, &res, NULL, ACTIVE_PROFILE_TYPE,
4177                                   RESOURCE_LIMITS, 0);
4178
4179         /* Some old versions of BE3 FW don't report max_vfs value */
4180         if (BE3_chip(adapter) && !res.max_vfs) {
4181                 max_vfs = pci_sriov_get_totalvfs(adapter->pdev);
4182                 res.max_vfs = max_vfs > 0 ? min(MAX_VFS, max_vfs) : 0;
4183         }
4184
4185         adapter->pool_res = res;
4186
4187         /* If during previous unload of the driver, the VFs were not disabled,
4188          * then we cannot rely on the PF POOL limits for the TotalVFs value.
4189          * Instead use the TotalVFs value stored in the pci-dev struct.
4190          */
4191         old_vfs = pci_num_vf(adapter->pdev);
4192         if (old_vfs) {
4193                 dev_info(&adapter->pdev->dev, "%d VFs are already enabled\n",
4194                          old_vfs);
4195
4196                 adapter->pool_res.max_vfs =
4197                         pci_sriov_get_totalvfs(adapter->pdev);
4198                 adapter->num_vfs = old_vfs;
4199         }
4200
4201         if (skyhawk_chip(adapter) && be_max_vfs(adapter) && !old_vfs) {
4202                 be_calculate_pf_pool_rss_tables(adapter);
4203                 dev_info(&adapter->pdev->dev,
4204                          "RSS can be enabled for all VFs if num_vfs <= %d\n",
4205                          be_max_pf_pool_rss_tables(adapter));
4206         }
4207         return 0;
4208 }
4209
4210 static void be_alloc_sriov_res(struct be_adapter *adapter)
4211 {
4212         int old_vfs = pci_num_vf(adapter->pdev);
4213         struct  be_resources vft_res = {0};
4214         int status;
4215
4216         be_get_sriov_config(adapter);
4217
4218         if (!old_vfs)
4219                 pci_sriov_set_totalvfs(adapter->pdev, be_max_vfs(adapter));
4220
4221         /* When the HW is in SRIOV capable configuration, the PF-pool
4222          * resources are given to PF during driver load, if there are no
4223          * old VFs. This facility is not available in BE3 FW.
4224          * Also, this is done by FW in Lancer chip.
4225          */
4226         if (skyhawk_chip(adapter) && be_max_vfs(adapter) && !old_vfs) {
4227                 be_calculate_vf_res(adapter, 0, &vft_res);
4228                 status = be_cmd_set_sriov_config(adapter, adapter->pool_res, 0,
4229                                                  &vft_res);
4230                 if (status)
4231                         dev_err(&adapter->pdev->dev,
4232                                 "Failed to optimize SRIOV resources\n");
4233         }
4234 }
4235
4236 static int be_get_resources(struct be_adapter *adapter)
4237 {
4238         struct device *dev = &adapter->pdev->dev;
4239         struct be_resources res = {0};
4240         int status;
4241
4242         /* For Lancer, SH etc read per-function resource limits from FW.
4243          * GET_FUNC_CONFIG returns per function guaranteed limits.
4244          * GET_PROFILE_CONFIG returns PCI-E related limits PF-pool limits
4245          */
4246         if (BEx_chip(adapter)) {
4247                 BEx_get_resources(adapter, &res);
4248         } else {
4249                 status = be_cmd_get_func_config(adapter, &res);
4250                 if (status)
4251                         return status;
4252
4253                 /* If a deafault RXQ must be created, we'll use up one RSSQ*/
4254                 if (res.max_rss_qs && res.max_rss_qs == res.max_rx_qs &&
4255                     !(res.if_cap_flags & BE_IF_FLAGS_DEFQ_RSS))
4256                         res.max_rss_qs -= 1;
4257         }
4258
4259         /* If RoCE is supported stash away half the EQs for RoCE */
4260         res.max_nic_evt_qs = be_roce_supported(adapter) ?
4261                                 res.max_evt_qs / 2 : res.max_evt_qs;
4262         adapter->res = res;
4263
4264         /* If FW supports RSS default queue, then skip creating non-RSS
4265          * queue for non-IP traffic.
4266          */
4267         adapter->need_def_rxq = (be_if_cap_flags(adapter) &
4268                                  BE_IF_FLAGS_DEFQ_RSS) ? 0 : 1;
4269
4270         dev_info(dev, "Max: txqs %d, rxqs %d, rss %d, eqs %d, vfs %d\n",
4271                  be_max_txqs(adapter), be_max_rxqs(adapter),
4272                  be_max_rss(adapter), be_max_nic_eqs(adapter),
4273                  be_max_vfs(adapter));
4274         dev_info(dev, "Max: uc-macs %d, mc-macs %d, vlans %d\n",
4275                  be_max_uc(adapter), be_max_mc(adapter),
4276                  be_max_vlans(adapter));
4277
4278         /* Ensure RX and TX queues are created in pairs at init time */
4279         adapter->cfg_num_rx_irqs =
4280                                 min_t(u16, netif_get_num_default_rss_queues(),
4281                                       be_max_qp_irqs(adapter));
4282         adapter->cfg_num_tx_irqs = adapter->cfg_num_rx_irqs;
4283         return 0;
4284 }
4285
4286 static int be_get_config(struct be_adapter *adapter)
4287 {
4288         int status, level;
4289         u16 profile_id;
4290
4291         status = be_cmd_get_cntl_attributes(adapter);
4292         if (status)
4293                 return status;
4294
4295         status = be_cmd_query_fw_cfg(adapter);
4296         if (status)
4297                 return status;
4298
4299         if (!lancer_chip(adapter) && be_physfn(adapter))
4300                 be_cmd_get_fat_dump_len(adapter, &adapter->fat_dump_len);
4301
4302         if (BEx_chip(adapter)) {
4303                 level = be_cmd_get_fw_log_level(adapter);
4304                 adapter->msg_enable =
4305                         level <= FW_LOG_LEVEL_DEFAULT ? NETIF_MSG_HW : 0;
4306         }
4307
4308         be_cmd_get_acpi_wol_cap(adapter);
4309         pci_enable_wake(adapter->pdev, PCI_D3hot, adapter->wol_en);
4310         pci_enable_wake(adapter->pdev, PCI_D3cold, adapter->wol_en);
4311
4312         be_cmd_query_port_name(adapter);
4313
4314         if (be_physfn(adapter)) {
4315                 status = be_cmd_get_active_profile(adapter, &profile_id);
4316                 if (!status)
4317                         dev_info(&adapter->pdev->dev,
4318                                  "Using profile 0x%x\n", profile_id);
4319         }
4320
4321         return 0;
4322 }
4323
4324 static int be_mac_setup(struct be_adapter *adapter)
4325 {
4326         u8 mac[ETH_ALEN];
4327         int status;
4328
4329         if (is_zero_ether_addr(adapter->netdev->dev_addr)) {
4330                 status = be_cmd_get_perm_mac(adapter, mac);
4331                 if (status)
4332                         return status;
4333
4334                 memcpy(adapter->netdev->dev_addr, mac, ETH_ALEN);
4335                 memcpy(adapter->netdev->perm_addr, mac, ETH_ALEN);
4336         }
4337
4338         return 0;
4339 }
4340
4341 static void be_schedule_worker(struct be_adapter *adapter)
4342 {
4343         schedule_delayed_work(&adapter->work, msecs_to_jiffies(1000));
4344         adapter->flags |= BE_FLAGS_WORKER_SCHEDULED;
4345 }
4346
4347 static void be_schedule_err_detection(struct be_adapter *adapter, u32 delay)
4348 {
4349         schedule_delayed_work(&adapter->be_err_detection_work,
4350                               msecs_to_jiffies(delay));
4351         adapter->flags |= BE_FLAGS_ERR_DETECTION_SCHEDULED;
4352 }
4353
4354 static int be_setup_queues(struct be_adapter *adapter)
4355 {
4356         struct net_device *netdev = adapter->netdev;
4357         int status;
4358
4359         status = be_evt_queues_create(adapter);
4360         if (status)
4361                 goto err;
4362
4363         status = be_tx_qs_create(adapter);
4364         if (status)
4365                 goto err;
4366
4367         status = be_rx_cqs_create(adapter);
4368         if (status)
4369                 goto err;
4370
4371         status = be_mcc_queues_create(adapter);
4372         if (status)
4373                 goto err;
4374
4375         status = netif_set_real_num_rx_queues(netdev, adapter->num_rx_qs);
4376         if (status)
4377                 goto err;
4378
4379         status = netif_set_real_num_tx_queues(netdev, adapter->num_tx_qs);
4380         if (status)
4381                 goto err;
4382
4383         return 0;
4384 err:
4385         dev_err(&adapter->pdev->dev, "queue_setup failed\n");
4386         return status;
4387 }
4388
4389 static int be_if_create(struct be_adapter *adapter)
4390 {
4391         u32 en_flags = BE_IF_FLAGS_RSS | BE_IF_FLAGS_DEFQ_RSS;
4392         u32 cap_flags = be_if_cap_flags(adapter);
4393         int status;
4394
4395         if (adapter->cfg_num_rx_irqs == 1)
4396                 cap_flags &= ~(BE_IF_FLAGS_DEFQ_RSS | BE_IF_FLAGS_RSS);
4397
4398         en_flags &= cap_flags;
4399         /* will enable all the needed filter flags in be_open() */
4400         status = be_cmd_if_create(adapter, be_if_cap_flags(adapter), en_flags,
4401                                   &adapter->if_handle, 0);
4402
4403         return status;
4404 }
4405
4406 int be_update_queues(struct be_adapter *adapter)
4407 {
4408         struct net_device *netdev = adapter->netdev;
4409         int status;
4410
4411         if (netif_running(netdev))
4412                 be_close(netdev);
4413
4414         be_cancel_worker(adapter);
4415
4416         /* If any vectors have been shared with RoCE we cannot re-program
4417          * the MSIx table.
4418          */
4419         if (!adapter->num_msix_roce_vec)
4420                 be_msix_disable(adapter);
4421
4422         be_clear_queues(adapter);
4423         status = be_cmd_if_destroy(adapter, adapter->if_handle,  0);
4424         if (status)
4425                 return status;
4426
4427         if (!msix_enabled(adapter)) {
4428                 status = be_msix_enable(adapter);
4429                 if (status)
4430                         return status;
4431         }
4432
4433         status = be_if_create(adapter);
4434         if (status)
4435                 return status;
4436
4437         status = be_setup_queues(adapter);
4438         if (status)
4439                 return status;
4440
4441         be_schedule_worker(adapter);
4442
4443         if (netif_running(netdev))
4444                 status = be_open(netdev);
4445
4446         return status;
4447 }
4448
4449 static inline int fw_major_num(const char *fw_ver)
4450 {
4451         int fw_major = 0, i;
4452
4453         i = sscanf(fw_ver, "%d.", &fw_major);
4454         if (i != 1)
4455                 return 0;
4456
4457         return fw_major;
4458 }
4459
4460 /* If any VFs are already enabled don't FLR the PF */
4461 static bool be_reset_required(struct be_adapter *adapter)
4462 {
4463         return pci_num_vf(adapter->pdev) ? false : true;
4464 }
4465
4466 /* Wait for the FW to be ready and perform the required initialization */
4467 static int be_func_init(struct be_adapter *adapter)
4468 {
4469         int status;
4470
4471         status = be_fw_wait_ready(adapter);
4472         if (status)
4473                 return status;
4474
4475         if (be_reset_required(adapter)) {
4476                 status = be_cmd_reset_function(adapter);
4477                 if (status)
4478                         return status;
4479
4480                 /* Wait for interrupts to quiesce after an FLR */
4481                 msleep(100);
4482
4483                 /* We can clear all errors when function reset succeeds */
4484                 be_clear_error(adapter, BE_CLEAR_ALL);
4485         }
4486
4487         /* Tell FW we're ready to fire cmds */
4488         status = be_cmd_fw_init(adapter);
4489         if (status)
4490                 return status;
4491
4492         /* Allow interrupts for other ULPs running on NIC function */
4493         be_intr_set(adapter, true);
4494
4495         return 0;
4496 }
4497
4498 static int be_setup(struct be_adapter *adapter)
4499 {
4500         struct device *dev = &adapter->pdev->dev;
4501         int status;
4502
4503         status = be_func_init(adapter);
4504         if (status)
4505                 return status;
4506
4507         be_setup_init(adapter);
4508
4509         if (!lancer_chip(adapter))
4510                 be_cmd_req_native_mode(adapter);
4511
4512         /* invoke this cmd first to get pf_num and vf_num which are needed
4513          * for issuing profile related cmds
4514          */
4515         if (!BEx_chip(adapter)) {
4516                 status = be_cmd_get_func_config(adapter, NULL);
4517                 if (status)
4518                         return status;
4519         }
4520
4521         status = be_get_config(adapter);
4522         if (status)
4523                 goto err;
4524
4525         if (!BE2_chip(adapter) && be_physfn(adapter))
4526                 be_alloc_sriov_res(adapter);
4527
4528         status = be_get_resources(adapter);
4529         if (status)
4530                 goto err;
4531
4532         adapter->pmac_id = kcalloc(be_max_uc(adapter),
4533                                    sizeof(*adapter->pmac_id), GFP_KERNEL);
4534         if (!adapter->pmac_id)
4535                 return -ENOMEM;
4536
4537         status = be_msix_enable(adapter);
4538         if (status)
4539                 goto err;
4540
4541         /* will enable all the needed filter flags in be_open() */
4542         status = be_if_create(adapter);
4543         if (status)
4544                 goto err;
4545
4546         /* Updating real_num_tx/rx_queues() requires rtnl_lock() */
4547         rtnl_lock();
4548         status = be_setup_queues(adapter);
4549         rtnl_unlock();
4550         if (status)
4551                 goto err;
4552
4553         be_cmd_get_fn_privileges(adapter, &adapter->cmd_privileges, 0);
4554
4555         status = be_mac_setup(adapter);
4556         if (status)
4557                 goto err;
4558
4559         be_cmd_get_fw_ver(adapter);
4560         dev_info(dev, "FW version is %s\n", adapter->fw_ver);
4561
4562         if (BE2_chip(adapter) && fw_major_num(adapter->fw_ver) < 4) {
4563                 dev_err(dev, "Firmware on card is old(%s), IRQs may not work",
4564                         adapter->fw_ver);
4565                 dev_err(dev, "Please upgrade firmware to version >= 4.0\n");
4566         }
4567
4568         status = be_cmd_set_flow_control(adapter, adapter->tx_fc,
4569                                          adapter->rx_fc);
4570         if (status)
4571                 be_cmd_get_flow_control(adapter, &adapter->tx_fc,
4572                                         &adapter->rx_fc);
4573
4574         dev_info(&adapter->pdev->dev, "HW Flow control - TX:%d RX:%d\n",
4575                  adapter->tx_fc, adapter->rx_fc);
4576
4577         if (be_physfn(adapter))
4578                 be_cmd_set_logical_link_config(adapter,
4579                                                IFLA_VF_LINK_STATE_AUTO, 0);
4580
4581         /* BE3 EVB echoes broadcast/multicast packets back to PF's vport
4582          * confusing a linux bridge or OVS that it might be connected to.
4583          * Set the EVB to PASSTHRU mode which effectively disables the EVB
4584          * when SRIOV is not enabled.
4585          */
4586         if (BE3_chip(adapter))
4587                 be_cmd_set_hsw_config(adapter, 0, 0, adapter->if_handle,
4588                                       PORT_FWD_TYPE_PASSTHRU, 0);
4589
4590         if (adapter->num_vfs)
4591                 be_vf_setup(adapter);
4592
4593         status = be_cmd_get_phy_info(adapter);
4594         if (!status && be_pause_supported(adapter))
4595                 adapter->phy.fc_autoneg = 1;
4596
4597         be_schedule_worker(adapter);
4598         adapter->flags |= BE_FLAGS_SETUP_DONE;
4599         return 0;
4600 err:
4601         be_clear(adapter);
4602         return status;
4603 }
4604
4605 #ifdef CONFIG_NET_POLL_CONTROLLER
4606 static void be_netpoll(struct net_device *netdev)
4607 {
4608         struct be_adapter *adapter = netdev_priv(netdev);
4609         struct be_eq_obj *eqo;
4610         int i;
4611
4612         for_all_evt_queues(adapter, eqo, i) {
4613                 be_eq_notify(eqo->adapter, eqo->q.id, false, true, 0, 0);
4614                 napi_schedule(&eqo->napi);
4615         }
4616 }
4617 #endif
4618
4619 int be_load_fw(struct be_adapter *adapter, u8 *fw_file)
4620 {
4621         const struct firmware *fw;
4622         int status;
4623
4624         if (!netif_running(adapter->netdev)) {
4625                 dev_err(&adapter->pdev->dev,
4626                         "Firmware load not allowed (interface is down)\n");
4627                 return -ENETDOWN;
4628         }
4629
4630         status = request_firmware(&fw, fw_file, &adapter->pdev->dev);
4631         if (status)
4632                 goto fw_exit;
4633
4634         dev_info(&adapter->pdev->dev, "Flashing firmware file %s\n", fw_file);
4635
4636         if (lancer_chip(adapter))
4637                 status = lancer_fw_download(adapter, fw);
4638         else
4639                 status = be_fw_download(adapter, fw);
4640
4641         if (!status)
4642                 be_cmd_get_fw_ver(adapter);
4643
4644 fw_exit:
4645         release_firmware(fw);
4646         return status;
4647 }
4648
4649 static int be_ndo_bridge_setlink(struct net_device *dev, struct nlmsghdr *nlh,
4650                                  u16 flags)
4651 {
4652         struct be_adapter *adapter = netdev_priv(dev);
4653         struct nlattr *attr, *br_spec;
4654         int rem;
4655         int status = 0;
4656         u16 mode = 0;
4657
4658         if (!sriov_enabled(adapter))
4659                 return -EOPNOTSUPP;
4660
4661         br_spec = nlmsg_find_attr(nlh, sizeof(struct ifinfomsg), IFLA_AF_SPEC);
4662         if (!br_spec)
4663                 return -EINVAL;
4664
4665         nla_for_each_nested(attr, br_spec, rem) {
4666                 if (nla_type(attr) != IFLA_BRIDGE_MODE)
4667                         continue;
4668
4669                 if (nla_len(attr) < sizeof(mode))
4670                         return -EINVAL;
4671
4672                 mode = nla_get_u16(attr);
4673                 if (BE3_chip(adapter) && mode == BRIDGE_MODE_VEPA)
4674                         return -EOPNOTSUPP;
4675
4676                 if (mode != BRIDGE_MODE_VEPA && mode != BRIDGE_MODE_VEB)
4677                         return -EINVAL;
4678
4679                 status = be_cmd_set_hsw_config(adapter, 0, 0,
4680                                                adapter->if_handle,
4681                                                mode == BRIDGE_MODE_VEPA ?
4682                                                PORT_FWD_TYPE_VEPA :
4683                                                PORT_FWD_TYPE_VEB, 0);
4684                 if (status)
4685                         goto err;
4686
4687                 dev_info(&adapter->pdev->dev, "enabled switch mode: %s\n",
4688                          mode == BRIDGE_MODE_VEPA ? "VEPA" : "VEB");
4689
4690                 return status;
4691         }
4692 err:
4693         dev_err(&adapter->pdev->dev, "Failed to set switch mode %s\n",
4694                 mode == BRIDGE_MODE_VEPA ? "VEPA" : "VEB");
4695
4696         return status;
4697 }
4698
4699 static int be_ndo_bridge_getlink(struct sk_buff *skb, u32 pid, u32 seq,
4700                                  struct net_device *dev, u32 filter_mask,
4701                                  int nlflags)
4702 {
4703         struct be_adapter *adapter = netdev_priv(dev);
4704         int status = 0;
4705         u8 hsw_mode;
4706
4707         /* BE and Lancer chips support VEB mode only */
4708         if (BEx_chip(adapter) || lancer_chip(adapter)) {
4709                 /* VEB is disabled in non-SR-IOV profiles on BE3/Lancer */
4710                 if (!pci_sriov_get_totalvfs(adapter->pdev))
4711                         return 0;
4712                 hsw_mode = PORT_FWD_TYPE_VEB;
4713         } else {
4714                 status = be_cmd_get_hsw_config(adapter, NULL, 0,
4715                                                adapter->if_handle, &hsw_mode,
4716                                                NULL);
4717                 if (status)
4718                         return 0;
4719
4720                 if (hsw_mode == PORT_FWD_TYPE_PASSTHRU)
4721                         return 0;
4722         }
4723
4724         return ndo_dflt_bridge_getlink(skb, pid, seq, dev,
4725                                        hsw_mode == PORT_FWD_TYPE_VEPA ?
4726                                        BRIDGE_MODE_VEPA : BRIDGE_MODE_VEB,
4727                                        0, 0, nlflags, filter_mask, NULL);
4728 }
4729
4730 /* VxLAN offload Notes:
4731  *
4732  * The stack defines tunnel offload flags (hw_enc_features) for IP and doesn't
4733  * distinguish various types of transports (VxLAN, GRE, NVGRE ..). So, offload
4734  * is expected to work across all types of IP tunnels once exported. Skyhawk
4735  * supports offloads for either VxLAN or NVGRE, exclusively. So we export VxLAN
4736  * offloads in hw_enc_features only when a VxLAN port is added. If other (non
4737  * VxLAN) tunnels are configured while VxLAN offloads are enabled, offloads for
4738  * those other tunnels are unexported on the fly through ndo_features_check().
4739  *
4740  * Skyhawk supports VxLAN offloads only for one UDP dport. So, if the stack
4741  * adds more than one port, disable offloads and don't re-enable them again
4742  * until after all the tunnels are removed.
4743  */
4744 static void be_add_vxlan_port(struct net_device *netdev,
4745                               struct udp_tunnel_info *ti)
4746 {
4747         struct be_adapter *adapter = netdev_priv(netdev);
4748         struct device *dev = &adapter->pdev->dev;
4749         __be16 port = ti->port;
4750         int status;
4751
4752         if (ti->type != UDP_TUNNEL_TYPE_VXLAN)
4753                 return;
4754
4755         if (lancer_chip(adapter) || BEx_chip(adapter) || be_is_mc(adapter))
4756                 return;
4757
4758         if (adapter->vxlan_port == port && adapter->vxlan_port_count) {
4759                 adapter->vxlan_port_aliases++;
4760                 return;
4761         }
4762
4763         if (adapter->flags & BE_FLAGS_VXLAN_OFFLOADS) {
4764                 dev_info(dev,
4765                          "Only one UDP port supported for VxLAN offloads\n");
4766                 dev_info(dev, "Disabling VxLAN offloads\n");
4767                 adapter->vxlan_port_count++;
4768                 goto err;
4769         }
4770
4771         if (adapter->vxlan_port_count++ >= 1)
4772                 return;
4773
4774         status = be_cmd_manage_iface(adapter, adapter->if_handle,
4775                                      OP_CONVERT_NORMAL_TO_TUNNEL);
4776         if (status) {
4777                 dev_warn(dev, "Failed to convert normal interface to tunnel\n");
4778                 goto err;
4779         }
4780
4781         status = be_cmd_set_vxlan_port(adapter, port);
4782         if (status) {
4783                 dev_warn(dev, "Failed to add VxLAN port\n");
4784                 goto err;
4785         }
4786         adapter->flags |= BE_FLAGS_VXLAN_OFFLOADS;
4787         adapter->vxlan_port = port;
4788
4789         netdev->hw_enc_features |= NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM |
4790                                    NETIF_F_TSO | NETIF_F_TSO6 |
4791                                    NETIF_F_GSO_UDP_TUNNEL;
4792         netdev->hw_features |= NETIF_F_GSO_UDP_TUNNEL;
4793         netdev->features |= NETIF_F_GSO_UDP_TUNNEL;
4794
4795         dev_info(dev, "Enabled VxLAN offloads for UDP port %d\n",
4796                  be16_to_cpu(port));
4797         return;
4798 err:
4799         be_disable_vxlan_offloads(adapter);
4800 }
4801
4802 static void be_del_vxlan_port(struct net_device *netdev,
4803                               struct udp_tunnel_info *ti)
4804 {
4805         struct be_adapter *adapter = netdev_priv(netdev);
4806         __be16 port = ti->port;
4807
4808         if (ti->type != UDP_TUNNEL_TYPE_VXLAN)
4809                 return;
4810
4811         if (lancer_chip(adapter) || BEx_chip(adapter) || be_is_mc(adapter))
4812                 return;
4813
4814         if (adapter->vxlan_port != port)
4815                 goto done;
4816
4817         if (adapter->vxlan_port_aliases) {
4818                 adapter->vxlan_port_aliases--;
4819                 return;
4820         }
4821
4822         be_disable_vxlan_offloads(adapter);
4823
4824         dev_info(&adapter->pdev->dev,
4825                  "Disabled VxLAN offloads for UDP port %d\n",
4826                  be16_to_cpu(port));
4827 done:
4828         adapter->vxlan_port_count--;
4829 }
4830
4831 static netdev_features_t be_features_check(struct sk_buff *skb,
4832                                            struct net_device *dev,
4833                                            netdev_features_t features)
4834 {
4835         struct be_adapter *adapter = netdev_priv(dev);
4836         u8 l4_hdr = 0;
4837
4838         /* The code below restricts offload features for some tunneled packets.
4839          * Offload features for normal (non tunnel) packets are unchanged.
4840          */
4841         if (!skb->encapsulation ||
4842             !(adapter->flags & BE_FLAGS_VXLAN_OFFLOADS))
4843                 return features;
4844
4845         /* It's an encapsulated packet and VxLAN offloads are enabled. We
4846          * should disable tunnel offload features if it's not a VxLAN packet,
4847          * as tunnel offloads have been enabled only for VxLAN. This is done to
4848          * allow other tunneled traffic like GRE work fine while VxLAN
4849          * offloads are configured in Skyhawk-R.
4850          */
4851         switch (vlan_get_protocol(skb)) {
4852         case htons(ETH_P_IP):
4853                 l4_hdr = ip_hdr(skb)->protocol;
4854                 break;
4855         case htons(ETH_P_IPV6):
4856                 l4_hdr = ipv6_hdr(skb)->nexthdr;
4857                 break;
4858         default:
4859                 return features;
4860         }
4861
4862         if (l4_hdr != IPPROTO_UDP ||
4863             skb->inner_protocol_type != ENCAP_TYPE_ETHER ||
4864             skb->inner_protocol != htons(ETH_P_TEB) ||
4865             skb_inner_mac_header(skb) - skb_transport_header(skb) !=
4866             sizeof(struct udphdr) + sizeof(struct vxlanhdr))
4867                 return features & ~(NETIF_F_CSUM_MASK | NETIF_F_GSO_MASK);
4868
4869         return features;
4870 }
4871
4872 static int be_get_phys_port_id(struct net_device *dev,
4873                                struct netdev_phys_item_id *ppid)
4874 {
4875         int i, id_len = CNTL_SERIAL_NUM_WORDS * CNTL_SERIAL_NUM_WORD_SZ + 1;
4876         struct be_adapter *adapter = netdev_priv(dev);
4877         u8 *id;
4878
4879         if (MAX_PHYS_ITEM_ID_LEN < id_len)
4880                 return -ENOSPC;
4881
4882         ppid->id[0] = adapter->hba_port_num + 1;
4883         id = &ppid->id[1];
4884         for (i = CNTL_SERIAL_NUM_WORDS - 1; i >= 0;
4885              i--, id += CNTL_SERIAL_NUM_WORD_SZ)
4886                 memcpy(id, &adapter->serial_num[i], CNTL_SERIAL_NUM_WORD_SZ);
4887
4888         ppid->id_len = id_len;
4889
4890         return 0;
4891 }
4892
4893 static const struct net_device_ops be_netdev_ops = {
4894         .ndo_open               = be_open,
4895         .ndo_stop               = be_close,
4896         .ndo_start_xmit         = be_xmit,
4897         .ndo_set_rx_mode        = be_set_rx_mode,
4898         .ndo_set_mac_address    = be_mac_addr_set,
4899         .ndo_change_mtu         = be_change_mtu,
4900         .ndo_get_stats64        = be_get_stats64,
4901         .ndo_validate_addr      = eth_validate_addr,
4902         .ndo_vlan_rx_add_vid    = be_vlan_add_vid,
4903         .ndo_vlan_rx_kill_vid   = be_vlan_rem_vid,
4904         .ndo_set_vf_mac         = be_set_vf_mac,
4905         .ndo_set_vf_vlan        = be_set_vf_vlan,
4906         .ndo_set_vf_rate        = be_set_vf_tx_rate,
4907         .ndo_get_vf_config      = be_get_vf_config,
4908         .ndo_set_vf_link_state  = be_set_vf_link_state,
4909         .ndo_set_vf_spoofchk    = be_set_vf_spoofchk,
4910 #ifdef CONFIG_NET_POLL_CONTROLLER
4911         .ndo_poll_controller    = be_netpoll,
4912 #endif
4913         .ndo_bridge_setlink     = be_ndo_bridge_setlink,
4914         .ndo_bridge_getlink     = be_ndo_bridge_getlink,
4915 #ifdef CONFIG_NET_RX_BUSY_POLL
4916         .ndo_busy_poll          = be_busy_poll,
4917 #endif
4918         .ndo_udp_tunnel_add     = be_add_vxlan_port,
4919         .ndo_udp_tunnel_del     = be_del_vxlan_port,
4920         .ndo_features_check     = be_features_check,
4921         .ndo_get_phys_port_id   = be_get_phys_port_id,
4922 };
4923
4924 static void be_netdev_init(struct net_device *netdev)
4925 {
4926         struct be_adapter *adapter = netdev_priv(netdev);
4927
4928         netdev->hw_features |= NETIF_F_SG | NETIF_F_TSO | NETIF_F_TSO6 |
4929                 NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM | NETIF_F_RXCSUM |
4930                 NETIF_F_HW_VLAN_CTAG_TX;
4931         if ((be_if_cap_flags(adapter) & BE_IF_FLAGS_RSS))
4932                 netdev->hw_features |= NETIF_F_RXHASH;
4933
4934         netdev->features |= netdev->hw_features |
4935                 NETIF_F_HW_VLAN_CTAG_RX | NETIF_F_HW_VLAN_CTAG_FILTER;
4936
4937         netdev->vlan_features |= NETIF_F_SG | NETIF_F_TSO | NETIF_F_TSO6 |
4938                 NETIF_F_IP_CSUM | NETIF_F_IPV6_CSUM;
4939
4940         netdev->priv_flags |= IFF_UNICAST_FLT;
4941
4942         netdev->flags |= IFF_MULTICAST;
4943
4944         netif_set_gso_max_size(netdev, BE_MAX_GSO_SIZE - ETH_HLEN);
4945
4946         netdev->netdev_ops = &be_netdev_ops;
4947
4948         netdev->ethtool_ops = &be_ethtool_ops;
4949 }
4950
4951 static void be_cleanup(struct be_adapter *adapter)
4952 {
4953         struct net_device *netdev = adapter->netdev;
4954
4955         rtnl_lock();
4956         netif_device_detach(netdev);
4957         if (netif_running(netdev))
4958                 be_close(netdev);
4959         rtnl_unlock();
4960
4961         be_clear(adapter);
4962 }
4963
4964 static int be_resume(struct be_adapter *adapter)
4965 {
4966         struct net_device *netdev = adapter->netdev;
4967         int status;
4968
4969         status = be_setup(adapter);
4970         if (status)
4971                 return status;
4972
4973         rtnl_lock();
4974         if (netif_running(netdev))
4975                 status = be_open(netdev);
4976         rtnl_unlock();
4977
4978         if (status)
4979                 return status;
4980
4981         netif_device_attach(netdev);
4982
4983         return 0;
4984 }
4985
4986 static int be_err_recover(struct be_adapter *adapter)
4987 {
4988         int status;
4989
4990         /* Error recovery is supported only Lancer as of now */
4991         if (!lancer_chip(adapter))
4992                 return -EIO;
4993
4994         /* Wait for adapter to reach quiescent state before
4995          * destroying queues
4996          */
4997         status = be_fw_wait_ready(adapter);
4998         if (status)
4999                 goto err;
5000
5001         be_cleanup(adapter);
5002
5003         status = be_resume(adapter);
5004         if (status)
5005                 goto err;
5006
5007         return 0;
5008 err:
5009         return status;
5010 }
5011
5012 static void be_err_detection_task(struct work_struct *work)
5013 {
5014         struct be_adapter *adapter =
5015                                 container_of(work, struct be_adapter,
5016                                              be_err_detection_work.work);
5017         struct device *dev = &adapter->pdev->dev;
5018         int recovery_status;
5019         int delay = ERR_DETECTION_DELAY;
5020
5021         be_detect_error(adapter);
5022
5023         if (be_check_error(adapter, BE_ERROR_HW))
5024                 recovery_status = be_err_recover(adapter);
5025         else
5026                 goto reschedule_task;
5027
5028         if (!recovery_status) {
5029                 adapter->recovery_retries = 0;
5030                 dev_info(dev, "Adapter recovery successful\n");
5031                 goto reschedule_task;
5032         } else if (be_virtfn(adapter)) {
5033                 /* For VFs, check if PF have allocated resources
5034                  * every second.
5035                  */
5036                 dev_err(dev, "Re-trying adapter recovery\n");
5037                 goto reschedule_task;
5038         } else if (adapter->recovery_retries++ <
5039                    MAX_ERR_RECOVERY_RETRY_COUNT) {
5040                 /* In case of another error during recovery, it takes 30 sec
5041                  * for adapter to come out of error. Retry error recovery after
5042                  * this time interval.
5043                  */
5044                 dev_err(&adapter->pdev->dev, "Re-trying adapter recovery\n");
5045                 delay = ERR_RECOVERY_RETRY_DELAY;
5046                 goto reschedule_task;
5047         } else {
5048                 dev_err(dev, "Adapter recovery failed\n");
5049         }
5050
5051         return;
5052 reschedule_task:
5053         be_schedule_err_detection(adapter, delay);
5054 }
5055
5056 static void be_log_sfp_info(struct be_adapter *adapter)
5057 {
5058         int status;
5059
5060         status = be_cmd_query_sfp_info(adapter);
5061         if (!status) {
5062                 dev_err(&adapter->pdev->dev,
5063                         "Port %c: %s Vendor: %s part no: %s",
5064                         adapter->port_name,
5065                         be_misconfig_evt_port_state[adapter->phy_state],
5066                         adapter->phy.vendor_name,
5067                         adapter->phy.vendor_pn);
5068         }
5069         adapter->flags &= ~BE_FLAGS_PHY_MISCONFIGURED;
5070 }
5071
5072 static void be_worker(struct work_struct *work)
5073 {
5074         struct be_adapter *adapter =
5075                 container_of(work, struct be_adapter, work.work);
5076         struct be_rx_obj *rxo;
5077         int i;
5078
5079         /* when interrupts are not yet enabled, just reap any pending
5080          * mcc completions
5081          */
5082         if (!netif_running(adapter->netdev)) {
5083                 local_bh_disable();
5084                 be_process_mcc(adapter);
5085                 local_bh_enable();
5086                 goto reschedule;
5087         }
5088
5089         if (!adapter->stats_cmd_sent) {
5090                 if (lancer_chip(adapter))
5091                         lancer_cmd_get_pport_stats(adapter,
5092                                                    &adapter->stats_cmd);
5093                 else
5094                         be_cmd_get_stats(adapter, &adapter->stats_cmd);
5095         }
5096
5097         if (be_physfn(adapter) &&
5098             MODULO(adapter->work_counter, adapter->be_get_temp_freq) == 0)
5099                 be_cmd_get_die_temperature(adapter);
5100
5101         for_all_rx_queues(adapter, rxo, i) {
5102                 /* Replenish RX-queues starved due to memory
5103                  * allocation failures.
5104                  */
5105                 if (rxo->rx_post_starved)
5106                         be_post_rx_frags(rxo, GFP_KERNEL, MAX_RX_POST);
5107         }
5108
5109         /* EQ-delay update for Skyhawk is done while notifying EQ */
5110         if (!skyhawk_chip(adapter))
5111                 be_eqd_update(adapter, false);
5112
5113         if (adapter->flags & BE_FLAGS_PHY_MISCONFIGURED)
5114                 be_log_sfp_info(adapter);
5115
5116 reschedule:
5117         adapter->work_counter++;
5118         schedule_delayed_work(&adapter->work, msecs_to_jiffies(1000));
5119 }
5120
5121 static void be_unmap_pci_bars(struct be_adapter *adapter)
5122 {
5123         if (adapter->csr)
5124                 pci_iounmap(adapter->pdev, adapter->csr);
5125         if (adapter->db)
5126                 pci_iounmap(adapter->pdev, adapter->db);
5127         if (adapter->pcicfg && adapter->pcicfg_mapped)
5128                 pci_iounmap(adapter->pdev, adapter->pcicfg);
5129 }
5130
5131 static int db_bar(struct be_adapter *adapter)
5132 {
5133         if (lancer_chip(adapter) || be_virtfn(adapter))
5134                 return 0;
5135         else
5136                 return 4;
5137 }
5138
5139 static int be_roce_map_pci_bars(struct be_adapter *adapter)
5140 {
5141         if (skyhawk_chip(adapter)) {
5142                 adapter->roce_db.size = 4096;
5143                 adapter->roce_db.io_addr = pci_resource_start(adapter->pdev,
5144                                                               db_bar(adapter));
5145                 adapter->roce_db.total_size = pci_resource_len(adapter->pdev,
5146                                                                db_bar(adapter));
5147         }
5148         return 0;
5149 }
5150
5151 static int be_map_pci_bars(struct be_adapter *adapter)
5152 {
5153         struct pci_dev *pdev = adapter->pdev;
5154         u8 __iomem *addr;
5155         u32 sli_intf;
5156
5157         pci_read_config_dword(adapter->pdev, SLI_INTF_REG_OFFSET, &sli_intf);
5158         adapter->sli_family = (sli_intf & SLI_INTF_FAMILY_MASK) >>
5159                                 SLI_INTF_FAMILY_SHIFT;
5160         adapter->virtfn = (sli_intf & SLI_INTF_FT_MASK) ? 1 : 0;
5161
5162         if (BEx_chip(adapter) && be_physfn(adapter)) {
5163                 adapter->csr = pci_iomap(pdev, 2, 0);
5164                 if (!adapter->csr)
5165                         return -ENOMEM;
5166         }
5167
5168         addr = pci_iomap(pdev, db_bar(adapter), 0);
5169         if (!addr)
5170                 goto pci_map_err;
5171         adapter->db = addr;
5172
5173         if (skyhawk_chip(adapter) || BEx_chip(adapter)) {
5174                 if (be_physfn(adapter)) {
5175                         /* PCICFG is the 2nd BAR in BE2 */
5176                         addr = pci_iomap(pdev, BE2_chip(adapter) ? 1 : 0, 0);
5177                         if (!addr)
5178                                 goto pci_map_err;
5179                         adapter->pcicfg = addr;
5180                         adapter->pcicfg_mapped = true;
5181                 } else {
5182                         adapter->pcicfg = adapter->db + SRIOV_VF_PCICFG_OFFSET;
5183                         adapter->pcicfg_mapped = false;
5184                 }
5185         }
5186
5187         be_roce_map_pci_bars(adapter);
5188         return 0;
5189
5190 pci_map_err:
5191         dev_err(&pdev->dev, "Error in mapping PCI BARs\n");
5192         be_unmap_pci_bars(adapter);
5193         return -ENOMEM;
5194 }
5195
5196 static void be_drv_cleanup(struct be_adapter *adapter)
5197 {
5198         struct be_dma_mem *mem = &adapter->mbox_mem_alloced;
5199         struct device *dev = &adapter->pdev->dev;
5200
5201         if (mem->va)
5202                 dma_free_coherent(dev, mem->size, mem->va, mem->dma);
5203
5204         mem = &adapter->rx_filter;
5205         if (mem->va)
5206                 dma_free_coherent(dev, mem->size, mem->va, mem->dma);
5207
5208         mem = &adapter->stats_cmd;
5209         if (mem->va)
5210                 dma_free_coherent(dev, mem->size, mem->va, mem->dma);
5211 }
5212
5213 /* Allocate and initialize various fields in be_adapter struct */
5214 static int be_drv_init(struct be_adapter *adapter)
5215 {
5216         struct be_dma_mem *mbox_mem_alloc = &adapter->mbox_mem_alloced;
5217         struct be_dma_mem *mbox_mem_align = &adapter->mbox_mem;
5218         struct be_dma_mem *rx_filter = &adapter->rx_filter;
5219         struct be_dma_mem *stats_cmd = &adapter->stats_cmd;
5220         struct device *dev = &adapter->pdev->dev;
5221         int status = 0;
5222
5223         mbox_mem_alloc->size = sizeof(struct be_mcc_mailbox) + 16;
5224         mbox_mem_alloc->va = dma_zalloc_coherent(dev, mbox_mem_alloc->size,
5225                                                  &mbox_mem_alloc->dma,
5226                                                  GFP_KERNEL);
5227         if (!mbox_mem_alloc->va)
5228                 return -ENOMEM;
5229
5230         mbox_mem_align->size = sizeof(struct be_mcc_mailbox);
5231         mbox_mem_align->va = PTR_ALIGN(mbox_mem_alloc->va, 16);
5232         mbox_mem_align->dma = PTR_ALIGN(mbox_mem_alloc->dma, 16);
5233
5234         rx_filter->size = sizeof(struct be_cmd_req_rx_filter);
5235         rx_filter->va = dma_zalloc_coherent(dev, rx_filter->size,
5236                                             &rx_filter->dma, GFP_KERNEL);
5237         if (!rx_filter->va) {
5238                 status = -ENOMEM;
5239                 goto free_mbox;
5240         }
5241
5242         if (lancer_chip(adapter))
5243                 stats_cmd->size = sizeof(struct lancer_cmd_req_pport_stats);
5244         else if (BE2_chip(adapter))
5245                 stats_cmd->size = sizeof(struct be_cmd_req_get_stats_v0);
5246         else if (BE3_chip(adapter))
5247                 stats_cmd->size = sizeof(struct be_cmd_req_get_stats_v1);
5248         else
5249                 stats_cmd->size = sizeof(struct be_cmd_req_get_stats_v2);
5250         stats_cmd->va = dma_zalloc_coherent(dev, stats_cmd->size,
5251                                             &stats_cmd->dma, GFP_KERNEL);
5252         if (!stats_cmd->va) {
5253                 status = -ENOMEM;
5254                 goto free_rx_filter;
5255         }
5256
5257         mutex_init(&adapter->mbox_lock);
5258         spin_lock_init(&adapter->mcc_lock);
5259         spin_lock_init(&adapter->mcc_cq_lock);
5260         init_completion(&adapter->et_cmd_compl);
5261
5262         pci_save_state(adapter->pdev);
5263
5264         INIT_DELAYED_WORK(&adapter->work, be_worker);
5265         INIT_DELAYED_WORK(&adapter->be_err_detection_work,
5266                           be_err_detection_task);
5267
5268         adapter->rx_fc = true;
5269         adapter->tx_fc = true;
5270
5271         /* Must be a power of 2 or else MODULO will BUG_ON */
5272         adapter->be_get_temp_freq = 64;
5273
5274         return 0;
5275
5276 free_rx_filter:
5277         dma_free_coherent(dev, rx_filter->size, rx_filter->va, rx_filter->dma);
5278 free_mbox:
5279         dma_free_coherent(dev, mbox_mem_alloc->size, mbox_mem_alloc->va,
5280                           mbox_mem_alloc->dma);
5281         return status;
5282 }
5283
5284 static void be_remove(struct pci_dev *pdev)
5285 {
5286         struct be_adapter *adapter = pci_get_drvdata(pdev);
5287
5288         if (!adapter)
5289                 return;
5290
5291         be_roce_dev_remove(adapter);
5292         be_intr_set(adapter, false);
5293
5294         be_cancel_err_detection(adapter);
5295
5296         unregister_netdev(adapter->netdev);
5297
5298         be_clear(adapter);
5299
5300         /* tell fw we're done with firing cmds */
5301         be_cmd_fw_clean(adapter);
5302
5303         be_unmap_pci_bars(adapter);
5304         be_drv_cleanup(adapter);
5305
5306         pci_disable_pcie_error_reporting(pdev);
5307
5308         pci_release_regions(pdev);
5309         pci_disable_device(pdev);
5310
5311         free_netdev(adapter->netdev);
5312 }
5313
5314 static ssize_t be_hwmon_show_temp(struct device *dev,
5315                                   struct device_attribute *dev_attr,
5316                                   char *buf)
5317 {
5318         struct be_adapter *adapter = dev_get_drvdata(dev);
5319
5320         /* Unit: millidegree Celsius */
5321         if (adapter->hwmon_info.be_on_die_temp == BE_INVALID_DIE_TEMP)
5322                 return -EIO;
5323         else
5324                 return sprintf(buf, "%u\n",
5325                                adapter->hwmon_info.be_on_die_temp * 1000);
5326 }
5327
5328 static SENSOR_DEVICE_ATTR(temp1_input, S_IRUGO,
5329                           be_hwmon_show_temp, NULL, 1);
5330
5331 static struct attribute *be_hwmon_attrs[] = {
5332         &sensor_dev_attr_temp1_input.dev_attr.attr,
5333         NULL
5334 };
5335
5336 ATTRIBUTE_GROUPS(be_hwmon);
5337
5338 static char *mc_name(struct be_adapter *adapter)
5339 {
5340         char *str = ""; /* default */
5341
5342         switch (adapter->mc_type) {
5343         case UMC:
5344                 str = "UMC";
5345                 break;
5346         case FLEX10:
5347                 str = "FLEX10";
5348                 break;
5349         case vNIC1:
5350                 str = "vNIC-1";
5351                 break;
5352         case nPAR:
5353                 str = "nPAR";
5354                 break;
5355         case UFP:
5356                 str = "UFP";
5357                 break;
5358         case vNIC2:
5359                 str = "vNIC-2";
5360                 break;
5361         default:
5362                 str = "";
5363         }
5364
5365         return str;
5366 }
5367
5368 static inline char *func_name(struct be_adapter *adapter)
5369 {
5370         return be_physfn(adapter) ? "PF" : "VF";
5371 }
5372
5373 static inline char *nic_name(struct pci_dev *pdev)
5374 {
5375         switch (pdev->device) {
5376         case OC_DEVICE_ID1:
5377                 return OC_NAME;
5378         case OC_DEVICE_ID2:
5379                 return OC_NAME_BE;
5380         case OC_DEVICE_ID3:
5381         case OC_DEVICE_ID4:
5382                 return OC_NAME_LANCER;
5383         case BE_DEVICE_ID2:
5384                 return BE3_NAME;
5385         case OC_DEVICE_ID5:
5386         case OC_DEVICE_ID6:
5387                 return OC_NAME_SH;
5388         default:
5389                 return BE_NAME;
5390         }
5391 }
5392
5393 static int be_probe(struct pci_dev *pdev, const struct pci_device_id *pdev_id)
5394 {
5395         struct be_adapter *adapter;
5396         struct net_device *netdev;
5397         int status = 0;
5398
5399         dev_info(&pdev->dev, "%s version is %s\n", DRV_NAME, DRV_VER);
5400
5401         status = pci_enable_device(pdev);
5402         if (status)
5403                 goto do_none;
5404
5405         status = pci_request_regions(pdev, DRV_NAME);
5406         if (status)
5407                 goto disable_dev;
5408         pci_set_master(pdev);
5409
5410         netdev = alloc_etherdev_mqs(sizeof(*adapter), MAX_TX_QS, MAX_RX_QS);
5411         if (!netdev) {
5412                 status = -ENOMEM;
5413                 goto rel_reg;
5414         }
5415         adapter = netdev_priv(netdev);
5416         adapter->pdev = pdev;
5417         pci_set_drvdata(pdev, adapter);
5418         adapter->netdev = netdev;
5419         SET_NETDEV_DEV(netdev, &pdev->dev);
5420
5421         status = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(64));
5422         if (!status) {
5423                 netdev->features |= NETIF_F_HIGHDMA;
5424         } else {
5425                 status = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(32));
5426                 if (status) {
5427                         dev_err(&pdev->dev, "Could not set PCI DMA Mask\n");
5428                         goto free_netdev;
5429                 }
5430         }
5431
5432         status = pci_enable_pcie_error_reporting(pdev);
5433         if (!status)
5434                 dev_info(&pdev->dev, "PCIe error reporting enabled\n");
5435
5436         status = be_map_pci_bars(adapter);
5437         if (status)
5438                 goto free_netdev;
5439
5440         status = be_drv_init(adapter);
5441         if (status)
5442                 goto unmap_bars;
5443
5444         status = be_setup(adapter);
5445         if (status)
5446                 goto drv_cleanup;
5447
5448         be_netdev_init(netdev);
5449         status = register_netdev(netdev);
5450         if (status != 0)
5451                 goto unsetup;
5452
5453         be_roce_dev_add(adapter);
5454
5455         be_schedule_err_detection(adapter, ERR_DETECTION_DELAY);
5456
5457         /* On Die temperature not supported for VF. */
5458         if (be_physfn(adapter) && IS_ENABLED(CONFIG_BE2NET_HWMON)) {
5459                 adapter->hwmon_info.hwmon_dev =
5460                         devm_hwmon_device_register_with_groups(&pdev->dev,
5461                                                                DRV_NAME,
5462                                                                adapter,
5463                                                                be_hwmon_groups);
5464                 adapter->hwmon_info.be_on_die_temp = BE_INVALID_DIE_TEMP;
5465         }
5466
5467         dev_info(&pdev->dev, "%s: %s %s port %c\n", nic_name(pdev),
5468                  func_name(adapter), mc_name(adapter), adapter->port_name);
5469
5470         return 0;
5471
5472 unsetup:
5473         be_clear(adapter);
5474 drv_cleanup:
5475         be_drv_cleanup(adapter);
5476 unmap_bars:
5477         be_unmap_pci_bars(adapter);
5478 free_netdev:
5479         free_netdev(netdev);
5480 rel_reg:
5481         pci_release_regions(pdev);
5482 disable_dev:
5483         pci_disable_device(pdev);
5484 do_none:
5485         dev_err(&pdev->dev, "%s initialization failed\n", nic_name(pdev));
5486         return status;
5487 }
5488
5489 static int be_suspend(struct pci_dev *pdev, pm_message_t state)
5490 {
5491         struct be_adapter *adapter = pci_get_drvdata(pdev);
5492
5493         be_intr_set(adapter, false);
5494         be_cancel_err_detection(adapter);
5495
5496         be_cleanup(adapter);
5497
5498         pci_save_state(pdev);
5499         pci_disable_device(pdev);
5500         pci_set_power_state(pdev, pci_choose_state(pdev, state));
5501         return 0;
5502 }
5503
5504 static int be_pci_resume(struct pci_dev *pdev)
5505 {
5506         struct be_adapter *adapter = pci_get_drvdata(pdev);
5507         int status = 0;
5508
5509         status = pci_enable_device(pdev);
5510         if (status)
5511                 return status;
5512
5513         pci_restore_state(pdev);
5514
5515         status = be_resume(adapter);
5516         if (status)
5517                 return status;
5518
5519         be_schedule_err_detection(adapter, ERR_DETECTION_DELAY);
5520
5521         return 0;
5522 }
5523
5524 /*
5525  * An FLR will stop BE from DMAing any data.
5526  */
5527 static void be_shutdown(struct pci_dev *pdev)
5528 {
5529         struct be_adapter *adapter = pci_get_drvdata(pdev);
5530
5531         if (!adapter)
5532                 return;
5533
5534         be_roce_dev_shutdown(adapter);
5535         cancel_delayed_work_sync(&adapter->work);
5536         be_cancel_err_detection(adapter);
5537
5538         netif_device_detach(adapter->netdev);
5539
5540         be_cmd_reset_function(adapter);
5541
5542         pci_disable_device(pdev);
5543 }
5544
5545 static pci_ers_result_t be_eeh_err_detected(struct pci_dev *pdev,
5546                                             pci_channel_state_t state)
5547 {
5548         struct be_adapter *adapter = pci_get_drvdata(pdev);
5549
5550         dev_err(&adapter->pdev->dev, "EEH error detected\n");
5551
5552         be_roce_dev_remove(adapter);
5553
5554         if (!be_check_error(adapter, BE_ERROR_EEH)) {
5555                 be_set_error(adapter, BE_ERROR_EEH);
5556
5557                 be_cancel_err_detection(adapter);
5558
5559                 be_cleanup(adapter);
5560         }
5561
5562         if (state == pci_channel_io_perm_failure)
5563                 return PCI_ERS_RESULT_DISCONNECT;
5564
5565         pci_disable_device(pdev);
5566
5567         /* The error could cause the FW to trigger a flash debug dump.
5568          * Resetting the card while flash dump is in progress
5569          * can cause it not to recover; wait for it to finish.
5570          * Wait only for first function as it is needed only once per
5571          * adapter.
5572          */
5573         if (pdev->devfn == 0)
5574                 ssleep(30);
5575
5576         return PCI_ERS_RESULT_NEED_RESET;
5577 }
5578
5579 static pci_ers_result_t be_eeh_reset(struct pci_dev *pdev)
5580 {
5581         struct be_adapter *adapter = pci_get_drvdata(pdev);
5582         int status;
5583
5584         dev_info(&adapter->pdev->dev, "EEH reset\n");
5585
5586         status = pci_enable_device(pdev);
5587         if (status)
5588                 return PCI_ERS_RESULT_DISCONNECT;
5589
5590         pci_set_master(pdev);
5591         pci_restore_state(pdev);
5592
5593         /* Check if card is ok and fw is ready */
5594         dev_info(&adapter->pdev->dev,
5595                  "Waiting for FW to be ready after EEH reset\n");
5596         status = be_fw_wait_ready(adapter);
5597         if (status)
5598                 return PCI_ERS_RESULT_DISCONNECT;
5599
5600         pci_cleanup_aer_uncorrect_error_status(pdev);
5601         be_clear_error(adapter, BE_CLEAR_ALL);
5602         return PCI_ERS_RESULT_RECOVERED;
5603 }
5604
5605 static void be_eeh_resume(struct pci_dev *pdev)
5606 {
5607         int status = 0;
5608         struct be_adapter *adapter = pci_get_drvdata(pdev);
5609
5610         dev_info(&adapter->pdev->dev, "EEH resume\n");
5611
5612         pci_save_state(pdev);
5613
5614         status = be_resume(adapter);
5615         if (status)
5616                 goto err;
5617
5618         be_roce_dev_add(adapter);
5619
5620         be_schedule_err_detection(adapter, ERR_DETECTION_DELAY);
5621         return;
5622 err:
5623         dev_err(&adapter->pdev->dev, "EEH resume failed\n");
5624 }
5625
5626 static int be_pci_sriov_configure(struct pci_dev *pdev, int num_vfs)
5627 {
5628         struct be_adapter *adapter = pci_get_drvdata(pdev);
5629         struct be_resources vft_res = {0};
5630         int status;
5631
5632         if (!num_vfs)
5633                 be_vf_clear(adapter);
5634
5635         adapter->num_vfs = num_vfs;
5636
5637         if (adapter->num_vfs == 0 && pci_vfs_assigned(pdev)) {
5638                 dev_warn(&pdev->dev,
5639                          "Cannot disable VFs while they are assigned\n");
5640                 return -EBUSY;
5641         }
5642
5643         /* When the HW is in SRIOV capable configuration, the PF-pool resources
5644          * are equally distributed across the max-number of VFs. The user may
5645          * request only a subset of the max-vfs to be enabled.
5646          * Based on num_vfs, redistribute the resources across num_vfs so that
5647          * each VF will have access to more number of resources.
5648          * This facility is not available in BE3 FW.
5649          * Also, this is done by FW in Lancer chip.
5650          */
5651         if (skyhawk_chip(adapter) && !pci_num_vf(pdev)) {
5652                 be_calculate_vf_res(adapter, adapter->num_vfs,
5653                                     &vft_res);
5654                 status = be_cmd_set_sriov_config(adapter, adapter->pool_res,
5655                                                  adapter->num_vfs, &vft_res);
5656                 if (status)
5657                         dev_err(&pdev->dev,
5658                                 "Failed to optimize SR-IOV resources\n");
5659         }
5660
5661         status = be_get_resources(adapter);
5662         if (status)
5663                 return be_cmd_status(status);
5664
5665         /* Updating real_num_tx/rx_queues() requires rtnl_lock() */
5666         rtnl_lock();
5667         status = be_update_queues(adapter);
5668         rtnl_unlock();
5669         if (status)
5670                 return be_cmd_status(status);
5671
5672         if (adapter->num_vfs)
5673                 status = be_vf_setup(adapter);
5674
5675         if (!status)
5676                 return adapter->num_vfs;
5677
5678         return 0;
5679 }
5680
5681 static const struct pci_error_handlers be_eeh_handlers = {
5682         .error_detected = be_eeh_err_detected,
5683         .slot_reset = be_eeh_reset,
5684         .resume = be_eeh_resume,
5685 };
5686
5687 static struct pci_driver be_driver = {
5688         .name = DRV_NAME,
5689         .id_table = be_dev_ids,
5690         .probe = be_probe,
5691         .remove = be_remove,
5692         .suspend = be_suspend,
5693         .resume = be_pci_resume,
5694         .shutdown = be_shutdown,
5695         .sriov_configure = be_pci_sriov_configure,
5696         .err_handler = &be_eeh_handlers
5697 };
5698
5699 static int __init be_init_module(void)
5700 {
5701         if (rx_frag_size != 8192 && rx_frag_size != 4096 &&
5702             rx_frag_size != 2048) {
5703                 printk(KERN_WARNING DRV_NAME
5704                         " : Module param rx_frag_size must be 2048/4096/8192."
5705                         " Using 2048\n");
5706                 rx_frag_size = 2048;
5707         }
5708
5709         if (num_vfs > 0) {
5710                 pr_info(DRV_NAME " : Module param num_vfs is obsolete.");
5711                 pr_info(DRV_NAME " : Use sysfs method to enable VFs\n");
5712         }
5713
5714         return pci_register_driver(&be_driver);
5715 }
5716 module_init(be_init_module);
5717
5718 static void __exit be_exit_module(void)
5719 {
5720         pci_unregister_driver(&be_driver);
5721 }
5722 module_exit(be_exit_module);