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[net-next-2.6.git] / drivers / net / benet / be_main.c
1 /*
2  * Copyright (C) 2005 - 2009 ServerEngines
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@serverengines.com
12  *
13  * ServerEngines
14  * 209 N. Fair Oaks Ave
15  * Sunnyvale, CA 94085
16  */
17
18 #include "be.h"
19 #include "be_cmds.h"
20 #include <asm/div64.h>
21
22 MODULE_VERSION(DRV_VER);
23 MODULE_DEVICE_TABLE(pci, be_dev_ids);
24 MODULE_DESCRIPTION(DRV_DESC " " DRV_VER);
25 MODULE_AUTHOR("ServerEngines Corporation");
26 MODULE_LICENSE("GPL");
27
28 static unsigned int rx_frag_size = 2048;
29 module_param(rx_frag_size, uint, S_IRUGO);
30 MODULE_PARM_DESC(rx_frag_size, "Size of a fragment that holds rcvd data.");
31
32 static DEFINE_PCI_DEVICE_TABLE(be_dev_ids) = {
33         { PCI_DEVICE(BE_VENDOR_ID, BE_DEVICE_ID1) },
34         { PCI_DEVICE(BE_VENDOR_ID, OC_DEVICE_ID1) },
35         { PCI_DEVICE(BE_VENDOR_ID, OC_DEVICE_ID2) },
36         { 0 }
37 };
38 MODULE_DEVICE_TABLE(pci, be_dev_ids);
39
40 static void be_queue_free(struct be_adapter *adapter, struct be_queue_info *q)
41 {
42         struct be_dma_mem *mem = &q->dma_mem;
43         if (mem->va)
44                 pci_free_consistent(adapter->pdev, mem->size,
45                         mem->va, mem->dma);
46 }
47
48 static int be_queue_alloc(struct be_adapter *adapter, struct be_queue_info *q,
49                 u16 len, u16 entry_size)
50 {
51         struct be_dma_mem *mem = &q->dma_mem;
52
53         memset(q, 0, sizeof(*q));
54         q->len = len;
55         q->entry_size = entry_size;
56         mem->size = len * entry_size;
57         mem->va = pci_alloc_consistent(adapter->pdev, mem->size, &mem->dma);
58         if (!mem->va)
59                 return -1;
60         memset(mem->va, 0, mem->size);
61         return 0;
62 }
63
64 static void be_intr_set(struct be_adapter *adapter, bool enable)
65 {
66         u8 __iomem *addr = adapter->pcicfg + PCICFG_MEMBAR_CTRL_INT_CTRL_OFFSET;
67         u32 reg = ioread32(addr);
68         u32 enabled = reg & MEMBAR_CTRL_INT_CTRL_HOSTINTR_MASK;
69
70         if (!enabled && enable)
71                 reg |= MEMBAR_CTRL_INT_CTRL_HOSTINTR_MASK;
72         else if (enabled && !enable)
73                 reg &= ~MEMBAR_CTRL_INT_CTRL_HOSTINTR_MASK;
74         else
75                 return;
76
77         iowrite32(reg, addr);
78 }
79
80 static void be_rxq_notify(struct be_adapter *adapter, u16 qid, u16 posted)
81 {
82         u32 val = 0;
83         val |= qid & DB_RQ_RING_ID_MASK;
84         val |= posted << DB_RQ_NUM_POSTED_SHIFT;
85         iowrite32(val, adapter->db + DB_RQ_OFFSET);
86 }
87
88 static void be_txq_notify(struct be_adapter *adapter, u16 qid, u16 posted)
89 {
90         u32 val = 0;
91         val |= qid & DB_TXULP_RING_ID_MASK;
92         val |= (posted & DB_TXULP_NUM_POSTED_MASK) << DB_TXULP_NUM_POSTED_SHIFT;
93         iowrite32(val, adapter->db + DB_TXULP1_OFFSET);
94 }
95
96 static void be_eq_notify(struct be_adapter *adapter, u16 qid,
97                 bool arm, bool clear_int, u16 num_popped)
98 {
99         u32 val = 0;
100         val |= qid & DB_EQ_RING_ID_MASK;
101         if (arm)
102                 val |= 1 << DB_EQ_REARM_SHIFT;
103         if (clear_int)
104                 val |= 1 << DB_EQ_CLR_SHIFT;
105         val |= 1 << DB_EQ_EVNT_SHIFT;
106         val |= num_popped << DB_EQ_NUM_POPPED_SHIFT;
107         iowrite32(val, adapter->db + DB_EQ_OFFSET);
108 }
109
110 void be_cq_notify(struct be_adapter *adapter, u16 qid, bool arm, u16 num_popped)
111 {
112         u32 val = 0;
113         val |= qid & DB_CQ_RING_ID_MASK;
114         if (arm)
115                 val |= 1 << DB_CQ_REARM_SHIFT;
116         val |= num_popped << DB_CQ_NUM_POPPED_SHIFT;
117         iowrite32(val, adapter->db + DB_CQ_OFFSET);
118 }
119
120 static int be_mac_addr_set(struct net_device *netdev, void *p)
121 {
122         struct be_adapter *adapter = netdev_priv(netdev);
123         struct sockaddr *addr = p;
124         int status = 0;
125
126         status = be_cmd_pmac_del(adapter, adapter->if_handle, adapter->pmac_id);
127         if (status)
128                 return status;
129
130         status = be_cmd_pmac_add(adapter, (u8 *)addr->sa_data,
131                         adapter->if_handle, &adapter->pmac_id);
132         if (!status)
133                 memcpy(netdev->dev_addr, addr->sa_data, netdev->addr_len);
134
135         return status;
136 }
137
138 void netdev_stats_update(struct be_adapter *adapter)
139 {
140         struct be_hw_stats *hw_stats = hw_stats_from_cmd(adapter->stats.cmd.va);
141         struct be_rxf_stats *rxf_stats = &hw_stats->rxf;
142         struct be_port_rxf_stats *port_stats =
143                         &rxf_stats->port[adapter->port_num];
144         struct net_device_stats *dev_stats = &adapter->netdev->stats;
145         struct be_erx_stats *erx_stats = &hw_stats->erx;
146
147         dev_stats->rx_packets = port_stats->rx_total_frames;
148         dev_stats->tx_packets = port_stats->tx_unicastframes +
149                 port_stats->tx_multicastframes + port_stats->tx_broadcastframes;
150         dev_stats->rx_bytes = (u64) port_stats->rx_bytes_msd << 32 |
151                                 (u64) port_stats->rx_bytes_lsd;
152         dev_stats->tx_bytes = (u64) port_stats->tx_bytes_msd << 32 |
153                                 (u64) port_stats->tx_bytes_lsd;
154
155         /* bad pkts received */
156         dev_stats->rx_errors = port_stats->rx_crc_errors +
157                 port_stats->rx_alignment_symbol_errors +
158                 port_stats->rx_in_range_errors +
159                 port_stats->rx_out_range_errors +
160                 port_stats->rx_frame_too_long +
161                 port_stats->rx_dropped_too_small +
162                 port_stats->rx_dropped_too_short +
163                 port_stats->rx_dropped_header_too_small +
164                 port_stats->rx_dropped_tcp_length +
165                 port_stats->rx_dropped_runt +
166                 port_stats->rx_tcp_checksum_errs +
167                 port_stats->rx_ip_checksum_errs +
168                 port_stats->rx_udp_checksum_errs;
169
170         /*  no space in linux buffers: best possible approximation */
171         dev_stats->rx_dropped = erx_stats->rx_drops_no_fragments[0];
172
173         /* detailed rx errors */
174         dev_stats->rx_length_errors = port_stats->rx_in_range_errors +
175                 port_stats->rx_out_range_errors +
176                 port_stats->rx_frame_too_long;
177
178         /* receive ring buffer overflow */
179         dev_stats->rx_over_errors = 0;
180
181         dev_stats->rx_crc_errors = port_stats->rx_crc_errors;
182
183         /* frame alignment errors */
184         dev_stats->rx_frame_errors = port_stats->rx_alignment_symbol_errors;
185
186         /* receiver fifo overrun */
187         /* drops_no_pbuf is no per i/f, it's per BE card */
188         dev_stats->rx_fifo_errors = port_stats->rx_fifo_overflow +
189                                         port_stats->rx_input_fifo_overflow +
190                                         rxf_stats->rx_drops_no_pbuf;
191         /* receiver missed packetd */
192         dev_stats->rx_missed_errors = 0;
193
194         /*  packet transmit problems */
195         dev_stats->tx_errors = 0;
196
197         /* no space available in linux */
198         dev_stats->tx_dropped = 0;
199
200         dev_stats->multicast = port_stats->rx_multicast_frames;
201         dev_stats->collisions = 0;
202
203         /* detailed tx_errors */
204         dev_stats->tx_aborted_errors = 0;
205         dev_stats->tx_carrier_errors = 0;
206         dev_stats->tx_fifo_errors = 0;
207         dev_stats->tx_heartbeat_errors = 0;
208         dev_stats->tx_window_errors = 0;
209 }
210
211 void be_link_status_update(struct be_adapter *adapter, bool link_up)
212 {
213         struct net_device *netdev = adapter->netdev;
214
215         /* If link came up or went down */
216         if (adapter->link_up != link_up) {
217                 if (link_up) {
218                         netif_start_queue(netdev);
219                         netif_carrier_on(netdev);
220                         printk(KERN_INFO "%s: Link up\n", netdev->name);
221                 } else {
222                         netif_stop_queue(netdev);
223                         netif_carrier_off(netdev);
224                         printk(KERN_INFO "%s: Link down\n", netdev->name);
225                 }
226                 adapter->link_up = link_up;
227         }
228 }
229
230 /* Update the EQ delay n BE based on the RX frags consumed / sec */
231 static void be_rx_eqd_update(struct be_adapter *adapter)
232 {
233         struct be_eq_obj *rx_eq = &adapter->rx_eq;
234         struct be_drvr_stats *stats = &adapter->stats.drvr_stats;
235         ulong now = jiffies;
236         u32 eqd;
237
238         if (!rx_eq->enable_aic)
239                 return;
240
241         /* Wrapped around */
242         if (time_before(now, stats->rx_fps_jiffies)) {
243                 stats->rx_fps_jiffies = now;
244                 return;
245         }
246
247         /* Update once a second */
248         if ((now - stats->rx_fps_jiffies) < HZ)
249                 return;
250
251         stats->be_rx_fps = (stats->be_rx_frags - stats->be_prev_rx_frags) /
252                         ((now - stats->rx_fps_jiffies) / HZ);
253
254         stats->rx_fps_jiffies = now;
255         stats->be_prev_rx_frags = stats->be_rx_frags;
256         eqd = stats->be_rx_fps / 110000;
257         eqd = eqd << 3;
258         if (eqd > rx_eq->max_eqd)
259                 eqd = rx_eq->max_eqd;
260         if (eqd < rx_eq->min_eqd)
261                 eqd = rx_eq->min_eqd;
262         if (eqd < 10)
263                 eqd = 0;
264         if (eqd != rx_eq->cur_eqd)
265                 be_cmd_modify_eqd(adapter, rx_eq->q.id, eqd);
266
267         rx_eq->cur_eqd = eqd;
268 }
269
270 static struct net_device_stats *be_get_stats(struct net_device *dev)
271 {
272         return &dev->stats;
273 }
274
275 static u32 be_calc_rate(u64 bytes, unsigned long ticks)
276 {
277         u64 rate = bytes;
278
279         do_div(rate, ticks / HZ);
280         rate <<= 3;                     /* bytes/sec -> bits/sec */
281         do_div(rate, 1000000ul);        /* MB/Sec */
282
283         return rate;
284 }
285
286 static void be_tx_rate_update(struct be_adapter *adapter)
287 {
288         struct be_drvr_stats *stats = drvr_stats(adapter);
289         ulong now = jiffies;
290
291         /* Wrapped around? */
292         if (time_before(now, stats->be_tx_jiffies)) {
293                 stats->be_tx_jiffies = now;
294                 return;
295         }
296
297         /* Update tx rate once in two seconds */
298         if ((now - stats->be_tx_jiffies) > 2 * HZ) {
299                 stats->be_tx_rate = be_calc_rate(stats->be_tx_bytes
300                                                   - stats->be_tx_bytes_prev,
301                                                  now - stats->be_tx_jiffies);
302                 stats->be_tx_jiffies = now;
303                 stats->be_tx_bytes_prev = stats->be_tx_bytes;
304         }
305 }
306
307 static void be_tx_stats_update(struct be_adapter *adapter,
308                         u32 wrb_cnt, u32 copied, bool stopped)
309 {
310         struct be_drvr_stats *stats = drvr_stats(adapter);
311         stats->be_tx_reqs++;
312         stats->be_tx_wrbs += wrb_cnt;
313         stats->be_tx_bytes += copied;
314         if (stopped)
315                 stats->be_tx_stops++;
316 }
317
318 /* Determine number of WRB entries needed to xmit data in an skb */
319 static u32 wrb_cnt_for_skb(struct sk_buff *skb, bool *dummy)
320 {
321         int cnt = (skb->len > skb->data_len);
322
323         cnt += skb_shinfo(skb)->nr_frags;
324
325         /* to account for hdr wrb */
326         cnt++;
327         if (cnt & 1) {
328                 /* add a dummy to make it an even num */
329                 cnt++;
330                 *dummy = true;
331         } else
332                 *dummy = false;
333         BUG_ON(cnt > BE_MAX_TX_FRAG_COUNT);
334         return cnt;
335 }
336
337 static inline void wrb_fill(struct be_eth_wrb *wrb, u64 addr, int len)
338 {
339         wrb->frag_pa_hi = upper_32_bits(addr);
340         wrb->frag_pa_lo = addr & 0xFFFFFFFF;
341         wrb->frag_len = len & ETH_WRB_FRAG_LEN_MASK;
342 }
343
344 static void wrb_fill_hdr(struct be_eth_hdr_wrb *hdr, struct sk_buff *skb,
345                 bool vlan, u32 wrb_cnt, u32 len)
346 {
347         memset(hdr, 0, sizeof(*hdr));
348
349         AMAP_SET_BITS(struct amap_eth_hdr_wrb, crc, hdr, 1);
350
351         if (skb_shinfo(skb)->gso_segs > 1 && skb_shinfo(skb)->gso_size) {
352                 AMAP_SET_BITS(struct amap_eth_hdr_wrb, lso, hdr, 1);
353                 AMAP_SET_BITS(struct amap_eth_hdr_wrb, lso_mss,
354                         hdr, skb_shinfo(skb)->gso_size);
355         } else if (skb->ip_summed == CHECKSUM_PARTIAL) {
356                 if (is_tcp_pkt(skb))
357                         AMAP_SET_BITS(struct amap_eth_hdr_wrb, tcpcs, hdr, 1);
358                 else if (is_udp_pkt(skb))
359                         AMAP_SET_BITS(struct amap_eth_hdr_wrb, udpcs, hdr, 1);
360         }
361
362         if (vlan && vlan_tx_tag_present(skb)) {
363                 AMAP_SET_BITS(struct amap_eth_hdr_wrb, vlan, hdr, 1);
364                 AMAP_SET_BITS(struct amap_eth_hdr_wrb, vlan_tag,
365                         hdr, vlan_tx_tag_get(skb));
366         }
367
368         AMAP_SET_BITS(struct amap_eth_hdr_wrb, event, hdr, 1);
369         AMAP_SET_BITS(struct amap_eth_hdr_wrb, complete, hdr, 1);
370         AMAP_SET_BITS(struct amap_eth_hdr_wrb, num_wrb, hdr, wrb_cnt);
371         AMAP_SET_BITS(struct amap_eth_hdr_wrb, len, hdr, len);
372 }
373
374
375 static int make_tx_wrbs(struct be_adapter *adapter,
376                 struct sk_buff *skb, u32 wrb_cnt, bool dummy_wrb)
377 {
378         u64 busaddr;
379         u32 i, copied = 0;
380         struct pci_dev *pdev = adapter->pdev;
381         struct sk_buff *first_skb = skb;
382         struct be_queue_info *txq = &adapter->tx_obj.q;
383         struct be_eth_wrb *wrb;
384         struct be_eth_hdr_wrb *hdr;
385
386         hdr = queue_head_node(txq);
387         atomic_add(wrb_cnt, &txq->used);
388         queue_head_inc(txq);
389
390         if (skb_dma_map(&pdev->dev, skb, DMA_TO_DEVICE)) {
391                 dev_err(&pdev->dev, "TX DMA mapping failed\n");
392                 return 0;
393         }
394
395         if (skb->len > skb->data_len) {
396                 int len = skb->len - skb->data_len;
397                 wrb = queue_head_node(txq);
398                 busaddr = skb_shinfo(skb)->dma_head;
399                 wrb_fill(wrb, busaddr, len);
400                 be_dws_cpu_to_le(wrb, sizeof(*wrb));
401                 queue_head_inc(txq);
402                 copied += len;
403         }
404
405         for (i = 0; i < skb_shinfo(skb)->nr_frags; i++) {
406                 struct skb_frag_struct *frag =
407                         &skb_shinfo(skb)->frags[i];
408
409                 busaddr = skb_shinfo(skb)->dma_maps[i];
410                 wrb = queue_head_node(txq);
411                 wrb_fill(wrb, busaddr, frag->size);
412                 be_dws_cpu_to_le(wrb, sizeof(*wrb));
413                 queue_head_inc(txq);
414                 copied += frag->size;
415         }
416
417         if (dummy_wrb) {
418                 wrb = queue_head_node(txq);
419                 wrb_fill(wrb, 0, 0);
420                 be_dws_cpu_to_le(wrb, sizeof(*wrb));
421                 queue_head_inc(txq);
422         }
423
424         wrb_fill_hdr(hdr, first_skb, adapter->vlan_grp ? true : false,
425                 wrb_cnt, copied);
426         be_dws_cpu_to_le(hdr, sizeof(*hdr));
427
428         return copied;
429 }
430
431 static netdev_tx_t be_xmit(struct sk_buff *skb,
432                         struct net_device *netdev)
433 {
434         struct be_adapter *adapter = netdev_priv(netdev);
435         struct be_tx_obj *tx_obj = &adapter->tx_obj;
436         struct be_queue_info *txq = &tx_obj->q;
437         u32 wrb_cnt = 0, copied = 0;
438         u32 start = txq->head;
439         bool dummy_wrb, stopped = false;
440
441         wrb_cnt = wrb_cnt_for_skb(skb, &dummy_wrb);
442
443         copied = make_tx_wrbs(adapter, skb, wrb_cnt, dummy_wrb);
444         if (copied) {
445                 /* record the sent skb in the sent_skb table */
446                 BUG_ON(tx_obj->sent_skb_list[start]);
447                 tx_obj->sent_skb_list[start] = skb;
448
449                 /* Ensure txq has space for the next skb; Else stop the queue
450                  * *BEFORE* ringing the tx doorbell, so that we serialze the
451                  * tx compls of the current transmit which'll wake up the queue
452                  */
453                 if ((BE_MAX_TX_FRAG_COUNT + atomic_read(&txq->used)) >=
454                                                                 txq->len) {
455                         netif_stop_queue(netdev);
456                         stopped = true;
457                 }
458
459                 be_txq_notify(adapter, txq->id, wrb_cnt);
460
461                 be_tx_stats_update(adapter, wrb_cnt, copied, stopped);
462         } else {
463                 txq->head = start;
464                 dev_kfree_skb_any(skb);
465         }
466         return NETDEV_TX_OK;
467 }
468
469 static int be_change_mtu(struct net_device *netdev, int new_mtu)
470 {
471         struct be_adapter *adapter = netdev_priv(netdev);
472         if (new_mtu < BE_MIN_MTU ||
473                         new_mtu > BE_MAX_JUMBO_FRAME_SIZE) {
474                 dev_info(&adapter->pdev->dev,
475                         "MTU must be between %d and %d bytes\n",
476                         BE_MIN_MTU, BE_MAX_JUMBO_FRAME_SIZE);
477                 return -EINVAL;
478         }
479         dev_info(&adapter->pdev->dev, "MTU changed from %d to %d bytes\n",
480                         netdev->mtu, new_mtu);
481         netdev->mtu = new_mtu;
482         return 0;
483 }
484
485 /*
486  * if there are BE_NUM_VLANS_SUPPORTED or lesser number of VLANS configured,
487  * program them in BE.  If more than BE_NUM_VLANS_SUPPORTED are configured,
488  * set the BE in promiscuous VLAN mode.
489  */
490 static int be_vid_config(struct be_adapter *adapter)
491 {
492         u16 vtag[BE_NUM_VLANS_SUPPORTED];
493         u16 ntags = 0, i;
494         int status;
495
496         if (adapter->num_vlans <= BE_NUM_VLANS_SUPPORTED)  {
497                 /* Construct VLAN Table to give to HW */
498                 for (i = 0; i < VLAN_GROUP_ARRAY_LEN; i++) {
499                         if (adapter->vlan_tag[i]) {
500                                 vtag[ntags] = cpu_to_le16(i);
501                                 ntags++;
502                         }
503                 }
504                 status = be_cmd_vlan_config(adapter, adapter->if_handle,
505                                         vtag, ntags, 1, 0);
506         } else {
507                 status = be_cmd_vlan_config(adapter, adapter->if_handle,
508                                         NULL, 0, 1, 1);
509         }
510         return status;
511 }
512
513 static void be_vlan_register(struct net_device *netdev, struct vlan_group *grp)
514 {
515         struct be_adapter *adapter = netdev_priv(netdev);
516         struct be_eq_obj *rx_eq = &adapter->rx_eq;
517         struct be_eq_obj *tx_eq = &adapter->tx_eq;
518
519         be_eq_notify(adapter, rx_eq->q.id, false, false, 0);
520         be_eq_notify(adapter, tx_eq->q.id, false, false, 0);
521         adapter->vlan_grp = grp;
522         be_eq_notify(adapter, rx_eq->q.id, true, false, 0);
523         be_eq_notify(adapter, tx_eq->q.id, true, false, 0);
524 }
525
526 static void be_vlan_add_vid(struct net_device *netdev, u16 vid)
527 {
528         struct be_adapter *adapter = netdev_priv(netdev);
529
530         adapter->num_vlans++;
531         adapter->vlan_tag[vid] = 1;
532
533         be_vid_config(adapter);
534 }
535
536 static void be_vlan_rem_vid(struct net_device *netdev, u16 vid)
537 {
538         struct be_adapter *adapter = netdev_priv(netdev);
539
540         adapter->num_vlans--;
541         adapter->vlan_tag[vid] = 0;
542
543         vlan_group_set_device(adapter->vlan_grp, vid, NULL);
544         be_vid_config(adapter);
545 }
546
547 static void be_set_multicast_list(struct net_device *netdev)
548 {
549         struct be_adapter *adapter = netdev_priv(netdev);
550
551         if (netdev->flags & IFF_PROMISC) {
552                 be_cmd_promiscuous_config(adapter, adapter->port_num, 1);
553                 adapter->promiscuous = true;
554                 goto done;
555         }
556
557         /* BE was previously in promiscous mode; disable it */
558         if (adapter->promiscuous) {
559                 adapter->promiscuous = false;
560                 be_cmd_promiscuous_config(adapter, adapter->port_num, 0);
561         }
562
563         if (netdev->flags & IFF_ALLMULTI) {
564                 be_cmd_multicast_set(adapter, adapter->if_handle, NULL, 0);
565                 goto done;
566         }
567
568         be_cmd_multicast_set(adapter, adapter->if_handle, netdev->mc_list,
569                 netdev->mc_count);
570 done:
571         return;
572 }
573
574 static void be_rx_rate_update(struct be_adapter *adapter)
575 {
576         struct be_drvr_stats *stats = drvr_stats(adapter);
577         ulong now = jiffies;
578
579         /* Wrapped around */
580         if (time_before(now, stats->be_rx_jiffies)) {
581                 stats->be_rx_jiffies = now;
582                 return;
583         }
584
585         /* Update the rate once in two seconds */
586         if ((now - stats->be_rx_jiffies) < 2 * HZ)
587                 return;
588
589         stats->be_rx_rate = be_calc_rate(stats->be_rx_bytes
590                                           - stats->be_rx_bytes_prev,
591                                          now - stats->be_rx_jiffies);
592         stats->be_rx_jiffies = now;
593         stats->be_rx_bytes_prev = stats->be_rx_bytes;
594 }
595
596 static void be_rx_stats_update(struct be_adapter *adapter,
597                 u32 pktsize, u16 numfrags)
598 {
599         struct be_drvr_stats *stats = drvr_stats(adapter);
600
601         stats->be_rx_compl++;
602         stats->be_rx_frags += numfrags;
603         stats->be_rx_bytes += pktsize;
604 }
605
606 static inline bool do_pkt_csum(struct be_eth_rx_compl *rxcp, bool cso)
607 {
608         u8 l4_cksm, ip_version, ipcksm, tcpf = 0, udpf = 0, ipv6_chk;
609
610         l4_cksm = AMAP_GET_BITS(struct amap_eth_rx_compl, l4_cksm, rxcp);
611         ipcksm = AMAP_GET_BITS(struct amap_eth_rx_compl, ipcksm, rxcp);
612         ip_version = AMAP_GET_BITS(struct amap_eth_rx_compl, ip_version, rxcp);
613         if (ip_version) {
614                 tcpf = AMAP_GET_BITS(struct amap_eth_rx_compl, tcpf, rxcp);
615                 udpf = AMAP_GET_BITS(struct amap_eth_rx_compl, udpf, rxcp);
616         }
617         ipv6_chk = (ip_version && (tcpf || udpf));
618
619         return ((l4_cksm && ipv6_chk && ipcksm) && cso) ? false : true;
620 }
621
622 static struct be_rx_page_info *
623 get_rx_page_info(struct be_adapter *adapter, u16 frag_idx)
624 {
625         struct be_rx_page_info *rx_page_info;
626         struct be_queue_info *rxq = &adapter->rx_obj.q;
627
628         rx_page_info = &adapter->rx_obj.page_info_tbl[frag_idx];
629         BUG_ON(!rx_page_info->page);
630
631         if (rx_page_info->last_page_user)
632                 pci_unmap_page(adapter->pdev, pci_unmap_addr(rx_page_info, bus),
633                         adapter->big_page_size, PCI_DMA_FROMDEVICE);
634
635         atomic_dec(&rxq->used);
636         return rx_page_info;
637 }
638
639 /* Throwaway the data in the Rx completion */
640 static void be_rx_compl_discard(struct be_adapter *adapter,
641                         struct be_eth_rx_compl *rxcp)
642 {
643         struct be_queue_info *rxq = &adapter->rx_obj.q;
644         struct be_rx_page_info *page_info;
645         u16 rxq_idx, i, num_rcvd;
646
647         rxq_idx = AMAP_GET_BITS(struct amap_eth_rx_compl, fragndx, rxcp);
648         num_rcvd = AMAP_GET_BITS(struct amap_eth_rx_compl, numfrags, rxcp);
649
650         for (i = 0; i < num_rcvd; i++) {
651                 page_info = get_rx_page_info(adapter, rxq_idx);
652                 put_page(page_info->page);
653                 memset(page_info, 0, sizeof(*page_info));
654                 index_inc(&rxq_idx, rxq->len);
655         }
656 }
657
658 /*
659  * skb_fill_rx_data forms a complete skb for an ether frame
660  * indicated by rxcp.
661  */
662 static void skb_fill_rx_data(struct be_adapter *adapter,
663                         struct sk_buff *skb, struct be_eth_rx_compl *rxcp)
664 {
665         struct be_queue_info *rxq = &adapter->rx_obj.q;
666         struct be_rx_page_info *page_info;
667         u16 rxq_idx, i, num_rcvd, j;
668         u32 pktsize, hdr_len, curr_frag_len, size;
669         u8 *start;
670
671         rxq_idx = AMAP_GET_BITS(struct amap_eth_rx_compl, fragndx, rxcp);
672         pktsize = AMAP_GET_BITS(struct amap_eth_rx_compl, pktsize, rxcp);
673         num_rcvd = AMAP_GET_BITS(struct amap_eth_rx_compl, numfrags, rxcp);
674
675         page_info = get_rx_page_info(adapter, rxq_idx);
676
677         start = page_address(page_info->page) + page_info->page_offset;
678         prefetch(start);
679
680         /* Copy data in the first descriptor of this completion */
681         curr_frag_len = min(pktsize, rx_frag_size);
682
683         /* Copy the header portion into skb_data */
684         hdr_len = min((u32)BE_HDR_LEN, curr_frag_len);
685         memcpy(skb->data, start, hdr_len);
686         skb->len = curr_frag_len;
687         if (curr_frag_len <= BE_HDR_LEN) { /* tiny packet */
688                 /* Complete packet has now been moved to data */
689                 put_page(page_info->page);
690                 skb->data_len = 0;
691                 skb->tail += curr_frag_len;
692         } else {
693                 skb_shinfo(skb)->nr_frags = 1;
694                 skb_shinfo(skb)->frags[0].page = page_info->page;
695                 skb_shinfo(skb)->frags[0].page_offset =
696                                         page_info->page_offset + hdr_len;
697                 skb_shinfo(skb)->frags[0].size = curr_frag_len - hdr_len;
698                 skb->data_len = curr_frag_len - hdr_len;
699                 skb->tail += hdr_len;
700         }
701         memset(page_info, 0, sizeof(*page_info));
702
703         if (pktsize <= rx_frag_size) {
704                 BUG_ON(num_rcvd != 1);
705                 goto done;
706         }
707
708         /* More frags present for this completion */
709         size = pktsize;
710         for (i = 1, j = 0; i < num_rcvd; i++) {
711                 size -= curr_frag_len;
712                 index_inc(&rxq_idx, rxq->len);
713                 page_info = get_rx_page_info(adapter, rxq_idx);
714
715                 curr_frag_len = min(size, rx_frag_size);
716
717                 /* Coalesce all frags from the same physical page in one slot */
718                 if (page_info->page_offset == 0) {
719                         /* Fresh page */
720                         j++;
721                         skb_shinfo(skb)->frags[j].page = page_info->page;
722                         skb_shinfo(skb)->frags[j].page_offset =
723                                                         page_info->page_offset;
724                         skb_shinfo(skb)->frags[j].size = 0;
725                         skb_shinfo(skb)->nr_frags++;
726                 } else {
727                         put_page(page_info->page);
728                 }
729
730                 skb_shinfo(skb)->frags[j].size += curr_frag_len;
731                 skb->len += curr_frag_len;
732                 skb->data_len += curr_frag_len;
733
734                 memset(page_info, 0, sizeof(*page_info));
735         }
736         BUG_ON(j > MAX_SKB_FRAGS);
737
738 done:
739         be_rx_stats_update(adapter, pktsize, num_rcvd);
740         return;
741 }
742
743 /* Process the RX completion indicated by rxcp when GRO is disabled */
744 static void be_rx_compl_process(struct be_adapter *adapter,
745                         struct be_eth_rx_compl *rxcp)
746 {
747         struct sk_buff *skb;
748         u32 vlanf, vid;
749         u8 vtm;
750
751         vlanf = AMAP_GET_BITS(struct amap_eth_rx_compl, vtp, rxcp);
752         vtm = AMAP_GET_BITS(struct amap_eth_rx_compl, vtm, rxcp);
753
754         /* vlanf could be wrongly set in some cards.
755          * ignore if vtm is not set */
756         if ((adapter->cap == 0x400) && !vtm)
757                 vlanf = 0;
758
759         skb = netdev_alloc_skb_ip_align(adapter->netdev, BE_HDR_LEN);
760         if (!skb) {
761                 if (net_ratelimit())
762                         dev_warn(&adapter->pdev->dev, "skb alloc failed\n");
763                 be_rx_compl_discard(adapter, rxcp);
764                 return;
765         }
766
767         skb_fill_rx_data(adapter, skb, rxcp);
768
769         if (do_pkt_csum(rxcp, adapter->rx_csum))
770                 skb->ip_summed = CHECKSUM_NONE;
771         else
772                 skb->ip_summed = CHECKSUM_UNNECESSARY;
773
774         skb->truesize = skb->len + sizeof(struct sk_buff);
775         skb->protocol = eth_type_trans(skb, adapter->netdev);
776         skb->dev = adapter->netdev;
777
778         if (vlanf) {
779                 if (!adapter->vlan_grp || adapter->num_vlans == 0) {
780                         kfree_skb(skb);
781                         return;
782                 }
783                 vid = AMAP_GET_BITS(struct amap_eth_rx_compl, vlan_tag, rxcp);
784                 vid = be16_to_cpu(vid);
785                 vlan_hwaccel_receive_skb(skb, adapter->vlan_grp, vid);
786         } else {
787                 netif_receive_skb(skb);
788         }
789
790         return;
791 }
792
793 /* Process the RX completion indicated by rxcp when GRO is enabled */
794 static void be_rx_compl_process_gro(struct be_adapter *adapter,
795                         struct be_eth_rx_compl *rxcp)
796 {
797         struct be_rx_page_info *page_info;
798         struct sk_buff *skb = NULL;
799         struct be_queue_info *rxq = &adapter->rx_obj.q;
800         struct be_eq_obj *eq_obj =  &adapter->rx_eq;
801         u32 num_rcvd, pkt_size, remaining, vlanf, curr_frag_len;
802         u16 i, rxq_idx = 0, vid, j;
803         u8 vtm;
804
805         num_rcvd = AMAP_GET_BITS(struct amap_eth_rx_compl, numfrags, rxcp);
806         pkt_size = AMAP_GET_BITS(struct amap_eth_rx_compl, pktsize, rxcp);
807         vlanf = AMAP_GET_BITS(struct amap_eth_rx_compl, vtp, rxcp);
808         rxq_idx = AMAP_GET_BITS(struct amap_eth_rx_compl, fragndx, rxcp);
809         vtm = AMAP_GET_BITS(struct amap_eth_rx_compl, vtm, rxcp);
810
811         /* vlanf could be wrongly set in some cards.
812          * ignore if vtm is not set */
813         if ((adapter->cap == 0x400) && !vtm)
814                 vlanf = 0;
815
816         skb = napi_get_frags(&eq_obj->napi);
817         if (!skb) {
818                 be_rx_compl_discard(adapter, rxcp);
819                 return;
820         }
821
822         remaining = pkt_size;
823         for (i = 0, j = -1; i < num_rcvd; i++) {
824                 page_info = get_rx_page_info(adapter, rxq_idx);
825
826                 curr_frag_len = min(remaining, rx_frag_size);
827
828                 /* Coalesce all frags from the same physical page in one slot */
829                 if (i == 0 || page_info->page_offset == 0) {
830                         /* First frag or Fresh page */
831                         j++;
832                         skb_shinfo(skb)->frags[j].page = page_info->page;
833                         skb_shinfo(skb)->frags[j].page_offset =
834                                                         page_info->page_offset;
835                         skb_shinfo(skb)->frags[j].size = 0;
836                 } else {
837                         put_page(page_info->page);
838                 }
839                 skb_shinfo(skb)->frags[j].size += curr_frag_len;
840
841                 remaining -= curr_frag_len;
842                 index_inc(&rxq_idx, rxq->len);
843                 memset(page_info, 0, sizeof(*page_info));
844         }
845         BUG_ON(j > MAX_SKB_FRAGS);
846
847         skb_shinfo(skb)->nr_frags = j + 1;
848         skb->len = pkt_size;
849         skb->data_len = pkt_size;
850         skb->truesize += pkt_size;
851         skb->ip_summed = CHECKSUM_UNNECESSARY;
852
853         if (likely(!vlanf)) {
854                 napi_gro_frags(&eq_obj->napi);
855         } else {
856                 vid = AMAP_GET_BITS(struct amap_eth_rx_compl, vlan_tag, rxcp);
857                 vid = be16_to_cpu(vid);
858
859                 if (!adapter->vlan_grp || adapter->num_vlans == 0)
860                         return;
861
862                 vlan_gro_frags(&eq_obj->napi, adapter->vlan_grp, vid);
863         }
864
865         be_rx_stats_update(adapter, pkt_size, num_rcvd);
866         return;
867 }
868
869 static struct be_eth_rx_compl *be_rx_compl_get(struct be_adapter *adapter)
870 {
871         struct be_eth_rx_compl *rxcp = queue_tail_node(&adapter->rx_obj.cq);
872
873         if (rxcp->dw[offsetof(struct amap_eth_rx_compl, valid) / 32] == 0)
874                 return NULL;
875
876         be_dws_le_to_cpu(rxcp, sizeof(*rxcp));
877
878         queue_tail_inc(&adapter->rx_obj.cq);
879         return rxcp;
880 }
881
882 /* To reset the valid bit, we need to reset the whole word as
883  * when walking the queue the valid entries are little-endian
884  * and invalid entries are host endian
885  */
886 static inline void be_rx_compl_reset(struct be_eth_rx_compl *rxcp)
887 {
888         rxcp->dw[offsetof(struct amap_eth_rx_compl, valid) / 32] = 0;
889 }
890
891 static inline struct page *be_alloc_pages(u32 size)
892 {
893         gfp_t alloc_flags = GFP_ATOMIC;
894         u32 order = get_order(size);
895         if (order > 0)
896                 alloc_flags |= __GFP_COMP;
897         return  alloc_pages(alloc_flags, order);
898 }
899
900 /*
901  * Allocate a page, split it to fragments of size rx_frag_size and post as
902  * receive buffers to BE
903  */
904 static void be_post_rx_frags(struct be_adapter *adapter)
905 {
906         struct be_rx_page_info *page_info_tbl = adapter->rx_obj.page_info_tbl;
907         struct be_rx_page_info *page_info = NULL;
908         struct be_queue_info *rxq = &adapter->rx_obj.q;
909         struct page *pagep = NULL;
910         struct be_eth_rx_d *rxd;
911         u64 page_dmaaddr = 0, frag_dmaaddr;
912         u32 posted, page_offset = 0;
913
914         page_info = &page_info_tbl[rxq->head];
915         for (posted = 0; posted < MAX_RX_POST && !page_info->page; posted++) {
916                 if (!pagep) {
917                         pagep = be_alloc_pages(adapter->big_page_size);
918                         if (unlikely(!pagep)) {
919                                 drvr_stats(adapter)->be_ethrx_post_fail++;
920                                 break;
921                         }
922                         page_dmaaddr = pci_map_page(adapter->pdev, pagep, 0,
923                                                 adapter->big_page_size,
924                                                 PCI_DMA_FROMDEVICE);
925                         page_info->page_offset = 0;
926                 } else {
927                         get_page(pagep);
928                         page_info->page_offset = page_offset + rx_frag_size;
929                 }
930                 page_offset = page_info->page_offset;
931                 page_info->page = pagep;
932                 pci_unmap_addr_set(page_info, bus, page_dmaaddr);
933                 frag_dmaaddr = page_dmaaddr + page_info->page_offset;
934
935                 rxd = queue_head_node(rxq);
936                 rxd->fragpa_lo = cpu_to_le32(frag_dmaaddr & 0xFFFFFFFF);
937                 rxd->fragpa_hi = cpu_to_le32(upper_32_bits(frag_dmaaddr));
938                 queue_head_inc(rxq);
939
940                 /* Any space left in the current big page for another frag? */
941                 if ((page_offset + rx_frag_size + rx_frag_size) >
942                                         adapter->big_page_size) {
943                         pagep = NULL;
944                         page_info->last_page_user = true;
945                 }
946                 page_info = &page_info_tbl[rxq->head];
947         }
948         if (pagep)
949                 page_info->last_page_user = true;
950
951         if (posted) {
952                 atomic_add(posted, &rxq->used);
953                 be_rxq_notify(adapter, rxq->id, posted);
954         } else if (atomic_read(&rxq->used) == 0) {
955                 /* Let be_worker replenish when memory is available */
956                 adapter->rx_post_starved = true;
957         }
958
959         return;
960 }
961
962 static struct be_eth_tx_compl *be_tx_compl_get(struct be_queue_info *tx_cq)
963 {
964         struct be_eth_tx_compl *txcp = queue_tail_node(tx_cq);
965
966         if (txcp->dw[offsetof(struct amap_eth_tx_compl, valid) / 32] == 0)
967                 return NULL;
968
969         be_dws_le_to_cpu(txcp, sizeof(*txcp));
970
971         txcp->dw[offsetof(struct amap_eth_tx_compl, valid) / 32] = 0;
972
973         queue_tail_inc(tx_cq);
974         return txcp;
975 }
976
977 static void be_tx_compl_process(struct be_adapter *adapter, u16 last_index)
978 {
979         struct be_queue_info *txq = &adapter->tx_obj.q;
980         struct sk_buff **sent_skbs = adapter->tx_obj.sent_skb_list;
981         struct sk_buff *sent_skb;
982         u16 cur_index, num_wrbs = 0;
983
984         cur_index = txq->tail;
985         sent_skb = sent_skbs[cur_index];
986         BUG_ON(!sent_skb);
987         sent_skbs[cur_index] = NULL;
988
989         do {
990                 cur_index = txq->tail;
991                 num_wrbs++;
992                 queue_tail_inc(txq);
993         } while (cur_index != last_index);
994
995         atomic_sub(num_wrbs, &txq->used);
996         skb_dma_unmap(&adapter->pdev->dev, sent_skb, DMA_TO_DEVICE);
997         kfree_skb(sent_skb);
998 }
999
1000 static inline struct be_eq_entry *event_get(struct be_eq_obj *eq_obj)
1001 {
1002         struct be_eq_entry *eqe = queue_tail_node(&eq_obj->q);
1003
1004         if (!eqe->evt)
1005                 return NULL;
1006
1007         eqe->evt = le32_to_cpu(eqe->evt);
1008         queue_tail_inc(&eq_obj->q);
1009         return eqe;
1010 }
1011
1012 static int event_handle(struct be_adapter *adapter,
1013                         struct be_eq_obj *eq_obj)
1014 {
1015         struct be_eq_entry *eqe;
1016         u16 num = 0;
1017
1018         while ((eqe = event_get(eq_obj)) != NULL) {
1019                 eqe->evt = 0;
1020                 num++;
1021         }
1022
1023         /* Deal with any spurious interrupts that come
1024          * without events
1025          */
1026         be_eq_notify(adapter, eq_obj->q.id, true, true, num);
1027         if (num)
1028                 napi_schedule(&eq_obj->napi);
1029
1030         return num;
1031 }
1032
1033 /* Just read and notify events without processing them.
1034  * Used at the time of destroying event queues */
1035 static void be_eq_clean(struct be_adapter *adapter,
1036                         struct be_eq_obj *eq_obj)
1037 {
1038         struct be_eq_entry *eqe;
1039         u16 num = 0;
1040
1041         while ((eqe = event_get(eq_obj)) != NULL) {
1042                 eqe->evt = 0;
1043                 num++;
1044         }
1045
1046         if (num)
1047                 be_eq_notify(adapter, eq_obj->q.id, false, true, num);
1048 }
1049
1050 static void be_rx_q_clean(struct be_adapter *adapter)
1051 {
1052         struct be_rx_page_info *page_info;
1053         struct be_queue_info *rxq = &adapter->rx_obj.q;
1054         struct be_queue_info *rx_cq = &adapter->rx_obj.cq;
1055         struct be_eth_rx_compl *rxcp;
1056         u16 tail;
1057
1058         /* First cleanup pending rx completions */
1059         while ((rxcp = be_rx_compl_get(adapter)) != NULL) {
1060                 be_rx_compl_discard(adapter, rxcp);
1061                 be_rx_compl_reset(rxcp);
1062                 be_cq_notify(adapter, rx_cq->id, true, 1);
1063         }
1064
1065         /* Then free posted rx buffer that were not used */
1066         tail = (rxq->head + rxq->len - atomic_read(&rxq->used)) % rxq->len;
1067         for (; atomic_read(&rxq->used) > 0; index_inc(&tail, rxq->len)) {
1068                 page_info = get_rx_page_info(adapter, tail);
1069                 put_page(page_info->page);
1070                 memset(page_info, 0, sizeof(*page_info));
1071         }
1072         BUG_ON(atomic_read(&rxq->used));
1073 }
1074
1075 static void be_tx_compl_clean(struct be_adapter *adapter)
1076 {
1077         struct be_queue_info *tx_cq = &adapter->tx_obj.cq;
1078         struct be_queue_info *txq = &adapter->tx_obj.q;
1079         struct be_eth_tx_compl *txcp;
1080         u16 end_idx, cmpl = 0, timeo = 0;
1081
1082         /* Wait for a max of 200ms for all the tx-completions to arrive. */
1083         do {
1084                 while ((txcp = be_tx_compl_get(tx_cq))) {
1085                         end_idx = AMAP_GET_BITS(struct amap_eth_tx_compl,
1086                                         wrb_index, txcp);
1087                         be_tx_compl_process(adapter, end_idx);
1088                         cmpl++;
1089                 }
1090                 if (cmpl) {
1091                         be_cq_notify(adapter, tx_cq->id, false, cmpl);
1092                         cmpl = 0;
1093                 }
1094
1095                 if (atomic_read(&txq->used) == 0 || ++timeo > 200)
1096                         break;
1097
1098                 mdelay(1);
1099         } while (true);
1100
1101         if (atomic_read(&txq->used))
1102                 dev_err(&adapter->pdev->dev, "%d pending tx-completions\n",
1103                         atomic_read(&txq->used));
1104 }
1105
1106 static void be_mcc_queues_destroy(struct be_adapter *adapter)
1107 {
1108         struct be_queue_info *q;
1109
1110         q = &adapter->mcc_obj.q;
1111         if (q->created)
1112                 be_cmd_q_destroy(adapter, q, QTYPE_MCCQ);
1113         be_queue_free(adapter, q);
1114
1115         q = &adapter->mcc_obj.cq;
1116         if (q->created)
1117                 be_cmd_q_destroy(adapter, q, QTYPE_CQ);
1118         be_queue_free(adapter, q);
1119 }
1120
1121 /* Must be called only after TX qs are created as MCC shares TX EQ */
1122 static int be_mcc_queues_create(struct be_adapter *adapter)
1123 {
1124         struct be_queue_info *q, *cq;
1125
1126         /* Alloc MCC compl queue */
1127         cq = &adapter->mcc_obj.cq;
1128         if (be_queue_alloc(adapter, cq, MCC_CQ_LEN,
1129                         sizeof(struct be_mcc_compl)))
1130                 goto err;
1131
1132         /* Ask BE to create MCC compl queue; share TX's eq */
1133         if (be_cmd_cq_create(adapter, cq, &adapter->tx_eq.q, false, true, 0))
1134                 goto mcc_cq_free;
1135
1136         /* Alloc MCC queue */
1137         q = &adapter->mcc_obj.q;
1138         if (be_queue_alloc(adapter, q, MCC_Q_LEN, sizeof(struct be_mcc_wrb)))
1139                 goto mcc_cq_destroy;
1140
1141         /* Ask BE to create MCC queue */
1142         if (be_cmd_mccq_create(adapter, q, cq))
1143                 goto mcc_q_free;
1144
1145         return 0;
1146
1147 mcc_q_free:
1148         be_queue_free(adapter, q);
1149 mcc_cq_destroy:
1150         be_cmd_q_destroy(adapter, cq, QTYPE_CQ);
1151 mcc_cq_free:
1152         be_queue_free(adapter, cq);
1153 err:
1154         return -1;
1155 }
1156
1157 static void be_tx_queues_destroy(struct be_adapter *adapter)
1158 {
1159         struct be_queue_info *q;
1160
1161         q = &adapter->tx_obj.q;
1162         if (q->created)
1163                 be_cmd_q_destroy(adapter, q, QTYPE_TXQ);
1164         be_queue_free(adapter, q);
1165
1166         q = &adapter->tx_obj.cq;
1167         if (q->created)
1168                 be_cmd_q_destroy(adapter, q, QTYPE_CQ);
1169         be_queue_free(adapter, q);
1170
1171         /* Clear any residual events */
1172         be_eq_clean(adapter, &adapter->tx_eq);
1173
1174         q = &adapter->tx_eq.q;
1175         if (q->created)
1176                 be_cmd_q_destroy(adapter, q, QTYPE_EQ);
1177         be_queue_free(adapter, q);
1178 }
1179
1180 static int be_tx_queues_create(struct be_adapter *adapter)
1181 {
1182         struct be_queue_info *eq, *q, *cq;
1183
1184         adapter->tx_eq.max_eqd = 0;
1185         adapter->tx_eq.min_eqd = 0;
1186         adapter->tx_eq.cur_eqd = 96;
1187         adapter->tx_eq.enable_aic = false;
1188         /* Alloc Tx Event queue */
1189         eq = &adapter->tx_eq.q;
1190         if (be_queue_alloc(adapter, eq, EVNT_Q_LEN, sizeof(struct be_eq_entry)))
1191                 return -1;
1192
1193         /* Ask BE to create Tx Event queue */
1194         if (be_cmd_eq_create(adapter, eq, adapter->tx_eq.cur_eqd))
1195                 goto tx_eq_free;
1196         /* Alloc TX eth compl queue */
1197         cq = &adapter->tx_obj.cq;
1198         if (be_queue_alloc(adapter, cq, TX_CQ_LEN,
1199                         sizeof(struct be_eth_tx_compl)))
1200                 goto tx_eq_destroy;
1201
1202         /* Ask BE to create Tx eth compl queue */
1203         if (be_cmd_cq_create(adapter, cq, eq, false, false, 3))
1204                 goto tx_cq_free;
1205
1206         /* Alloc TX eth queue */
1207         q = &adapter->tx_obj.q;
1208         if (be_queue_alloc(adapter, q, TX_Q_LEN, sizeof(struct be_eth_wrb)))
1209                 goto tx_cq_destroy;
1210
1211         /* Ask BE to create Tx eth queue */
1212         if (be_cmd_txq_create(adapter, q, cq))
1213                 goto tx_q_free;
1214         return 0;
1215
1216 tx_q_free:
1217         be_queue_free(adapter, q);
1218 tx_cq_destroy:
1219         be_cmd_q_destroy(adapter, cq, QTYPE_CQ);
1220 tx_cq_free:
1221         be_queue_free(adapter, cq);
1222 tx_eq_destroy:
1223         be_cmd_q_destroy(adapter, eq, QTYPE_EQ);
1224 tx_eq_free:
1225         be_queue_free(adapter, eq);
1226         return -1;
1227 }
1228
1229 static void be_rx_queues_destroy(struct be_adapter *adapter)
1230 {
1231         struct be_queue_info *q;
1232
1233         q = &adapter->rx_obj.q;
1234         if (q->created) {
1235                 be_cmd_q_destroy(adapter, q, QTYPE_RXQ);
1236                 be_rx_q_clean(adapter);
1237         }
1238         be_queue_free(adapter, q);
1239
1240         q = &adapter->rx_obj.cq;
1241         if (q->created)
1242                 be_cmd_q_destroy(adapter, q, QTYPE_CQ);
1243         be_queue_free(adapter, q);
1244
1245         /* Clear any residual events */
1246         be_eq_clean(adapter, &adapter->rx_eq);
1247
1248         q = &adapter->rx_eq.q;
1249         if (q->created)
1250                 be_cmd_q_destroy(adapter, q, QTYPE_EQ);
1251         be_queue_free(adapter, q);
1252 }
1253
1254 static int be_rx_queues_create(struct be_adapter *adapter)
1255 {
1256         struct be_queue_info *eq, *q, *cq;
1257         int rc;
1258
1259         adapter->big_page_size = (1 << get_order(rx_frag_size)) * PAGE_SIZE;
1260         adapter->rx_eq.max_eqd = BE_MAX_EQD;
1261         adapter->rx_eq.min_eqd = 0;
1262         adapter->rx_eq.cur_eqd = 0;
1263         adapter->rx_eq.enable_aic = true;
1264
1265         /* Alloc Rx Event queue */
1266         eq = &adapter->rx_eq.q;
1267         rc = be_queue_alloc(adapter, eq, EVNT_Q_LEN,
1268                                 sizeof(struct be_eq_entry));
1269         if (rc)
1270                 return rc;
1271
1272         /* Ask BE to create Rx Event queue */
1273         rc = be_cmd_eq_create(adapter, eq, adapter->rx_eq.cur_eqd);
1274         if (rc)
1275                 goto rx_eq_free;
1276
1277         /* Alloc RX eth compl queue */
1278         cq = &adapter->rx_obj.cq;
1279         rc = be_queue_alloc(adapter, cq, RX_CQ_LEN,
1280                         sizeof(struct be_eth_rx_compl));
1281         if (rc)
1282                 goto rx_eq_destroy;
1283
1284         /* Ask BE to create Rx eth compl queue */
1285         rc = be_cmd_cq_create(adapter, cq, eq, false, false, 3);
1286         if (rc)
1287                 goto rx_cq_free;
1288
1289         /* Alloc RX eth queue */
1290         q = &adapter->rx_obj.q;
1291         rc = be_queue_alloc(adapter, q, RX_Q_LEN, sizeof(struct be_eth_rx_d));
1292         if (rc)
1293                 goto rx_cq_destroy;
1294
1295         /* Ask BE to create Rx eth queue */
1296         rc = be_cmd_rxq_create(adapter, q, cq->id, rx_frag_size,
1297                 BE_MAX_JUMBO_FRAME_SIZE, adapter->if_handle, false);
1298         if (rc)
1299                 goto rx_q_free;
1300
1301         return 0;
1302 rx_q_free:
1303         be_queue_free(adapter, q);
1304 rx_cq_destroy:
1305         be_cmd_q_destroy(adapter, cq, QTYPE_CQ);
1306 rx_cq_free:
1307         be_queue_free(adapter, cq);
1308 rx_eq_destroy:
1309         be_cmd_q_destroy(adapter, eq, QTYPE_EQ);
1310 rx_eq_free:
1311         be_queue_free(adapter, eq);
1312         return rc;
1313 }
1314
1315 /* There are 8 evt ids per func. Retruns the evt id's bit number */
1316 static inline int be_evt_bit_get(struct be_adapter *adapter, u32 eq_id)
1317 {
1318         return eq_id - 8 * be_pci_func(adapter);
1319 }
1320
1321 static irqreturn_t be_intx(int irq, void *dev)
1322 {
1323         struct be_adapter *adapter = dev;
1324         int isr;
1325
1326         isr = ioread32(adapter->csr + CEV_ISR0_OFFSET +
1327                         be_pci_func(adapter) * CEV_ISR_SIZE);
1328         if (!isr)
1329                 return IRQ_NONE;
1330
1331         event_handle(adapter, &adapter->tx_eq);
1332         event_handle(adapter, &adapter->rx_eq);
1333
1334         return IRQ_HANDLED;
1335 }
1336
1337 static irqreturn_t be_msix_rx(int irq, void *dev)
1338 {
1339         struct be_adapter *adapter = dev;
1340
1341         event_handle(adapter, &adapter->rx_eq);
1342
1343         return IRQ_HANDLED;
1344 }
1345
1346 static irqreturn_t be_msix_tx_mcc(int irq, void *dev)
1347 {
1348         struct be_adapter *adapter = dev;
1349
1350         event_handle(adapter, &adapter->tx_eq);
1351
1352         return IRQ_HANDLED;
1353 }
1354
1355 static inline bool do_gro(struct be_adapter *adapter,
1356                         struct be_eth_rx_compl *rxcp)
1357 {
1358         int err = AMAP_GET_BITS(struct amap_eth_rx_compl, err, rxcp);
1359         int tcp_frame = AMAP_GET_BITS(struct amap_eth_rx_compl, tcpf, rxcp);
1360
1361         if (err)
1362                 drvr_stats(adapter)->be_rxcp_err++;
1363
1364         return (tcp_frame && !err) ? true : false;
1365 }
1366
1367 int be_poll_rx(struct napi_struct *napi, int budget)
1368 {
1369         struct be_eq_obj *rx_eq = container_of(napi, struct be_eq_obj, napi);
1370         struct be_adapter *adapter =
1371                 container_of(rx_eq, struct be_adapter, rx_eq);
1372         struct be_queue_info *rx_cq = &adapter->rx_obj.cq;
1373         struct be_eth_rx_compl *rxcp;
1374         u32 work_done;
1375
1376         for (work_done = 0; work_done < budget; work_done++) {
1377                 rxcp = be_rx_compl_get(adapter);
1378                 if (!rxcp)
1379                         break;
1380
1381                 if (do_gro(adapter, rxcp))
1382                         be_rx_compl_process_gro(adapter, rxcp);
1383                 else
1384                         be_rx_compl_process(adapter, rxcp);
1385
1386                 be_rx_compl_reset(rxcp);
1387         }
1388
1389         /* Refill the queue */
1390         if (atomic_read(&adapter->rx_obj.q.used) < RX_FRAGS_REFILL_WM)
1391                 be_post_rx_frags(adapter);
1392
1393         /* All consumed */
1394         if (work_done < budget) {
1395                 napi_complete(napi);
1396                 be_cq_notify(adapter, rx_cq->id, true, work_done);
1397         } else {
1398                 /* More to be consumed; continue with interrupts disabled */
1399                 be_cq_notify(adapter, rx_cq->id, false, work_done);
1400         }
1401         return work_done;
1402 }
1403
1404 void be_process_tx(struct be_adapter *adapter)
1405 {
1406         struct be_queue_info *txq = &adapter->tx_obj.q;
1407         struct be_queue_info *tx_cq = &adapter->tx_obj.cq;
1408         struct be_eth_tx_compl *txcp;
1409         u32 num_cmpl = 0;
1410         u16 end_idx;
1411
1412         while ((txcp = be_tx_compl_get(tx_cq))) {
1413                 end_idx = AMAP_GET_BITS(struct amap_eth_tx_compl,
1414                                         wrb_index, txcp);
1415                 be_tx_compl_process(adapter, end_idx);
1416                 num_cmpl++;
1417         }
1418
1419         if (num_cmpl) {
1420                 be_cq_notify(adapter, tx_cq->id, true, num_cmpl);
1421
1422                 /* As Tx wrbs have been freed up, wake up netdev queue if
1423                  * it was stopped due to lack of tx wrbs.
1424                  */
1425                 if (netif_queue_stopped(adapter->netdev) &&
1426                         atomic_read(&txq->used) < txq->len / 2) {
1427                         netif_wake_queue(adapter->netdev);
1428                 }
1429
1430                 drvr_stats(adapter)->be_tx_events++;
1431                 drvr_stats(adapter)->be_tx_compl += num_cmpl;
1432         }
1433 }
1434
1435 /* As TX and MCC share the same EQ check for both TX and MCC completions.
1436  * For TX/MCC we don't honour budget; consume everything
1437  */
1438 static int be_poll_tx_mcc(struct napi_struct *napi, int budget)
1439 {
1440         struct be_eq_obj *tx_eq = container_of(napi, struct be_eq_obj, napi);
1441         struct be_adapter *adapter =
1442                 container_of(tx_eq, struct be_adapter, tx_eq);
1443
1444         napi_complete(napi);
1445
1446         be_process_tx(adapter);
1447
1448         be_process_mcc(adapter);
1449
1450         return 1;
1451 }
1452
1453 static void be_worker(struct work_struct *work)
1454 {
1455         struct be_adapter *adapter =
1456                 container_of(work, struct be_adapter, work.work);
1457
1458         be_cmd_get_stats(adapter, &adapter->stats.cmd);
1459
1460         /* Set EQ delay */
1461         be_rx_eqd_update(adapter);
1462
1463         be_tx_rate_update(adapter);
1464         be_rx_rate_update(adapter);
1465
1466         if (adapter->rx_post_starved) {
1467                 adapter->rx_post_starved = false;
1468                 be_post_rx_frags(adapter);
1469         }
1470
1471         schedule_delayed_work(&adapter->work, msecs_to_jiffies(1000));
1472 }
1473
1474 static void be_msix_enable(struct be_adapter *adapter)
1475 {
1476         int i, status;
1477
1478         for (i = 0; i < BE_NUM_MSIX_VECTORS; i++)
1479                 adapter->msix_entries[i].entry = i;
1480
1481         status = pci_enable_msix(adapter->pdev, adapter->msix_entries,
1482                 BE_NUM_MSIX_VECTORS);
1483         if (status == 0)
1484                 adapter->msix_enabled = true;
1485         return;
1486 }
1487
1488 static inline int be_msix_vec_get(struct be_adapter *adapter, u32 eq_id)
1489 {
1490         return adapter->msix_entries[
1491                         be_evt_bit_get(adapter, eq_id)].vector;
1492 }
1493
1494 static int be_request_irq(struct be_adapter *adapter,
1495                 struct be_eq_obj *eq_obj,
1496                 void *handler, char *desc)
1497 {
1498         struct net_device *netdev = adapter->netdev;
1499         int vec;
1500
1501         sprintf(eq_obj->desc, "%s-%s", netdev->name, desc);
1502         vec = be_msix_vec_get(adapter, eq_obj->q.id);
1503         return request_irq(vec, handler, 0, eq_obj->desc, adapter);
1504 }
1505
1506 static void be_free_irq(struct be_adapter *adapter, struct be_eq_obj *eq_obj)
1507 {
1508         int vec = be_msix_vec_get(adapter, eq_obj->q.id);
1509         free_irq(vec, adapter);
1510 }
1511
1512 static int be_msix_register(struct be_adapter *adapter)
1513 {
1514         int status;
1515
1516         status = be_request_irq(adapter, &adapter->tx_eq, be_msix_tx_mcc, "tx");
1517         if (status)
1518                 goto err;
1519
1520         status = be_request_irq(adapter, &adapter->rx_eq, be_msix_rx, "rx");
1521         if (status)
1522                 goto free_tx_irq;
1523
1524         return 0;
1525
1526 free_tx_irq:
1527         be_free_irq(adapter, &adapter->tx_eq);
1528 err:
1529         dev_warn(&adapter->pdev->dev,
1530                 "MSIX Request IRQ failed - err %d\n", status);
1531         pci_disable_msix(adapter->pdev);
1532         adapter->msix_enabled = false;
1533         return status;
1534 }
1535
1536 static int be_irq_register(struct be_adapter *adapter)
1537 {
1538         struct net_device *netdev = adapter->netdev;
1539         int status;
1540
1541         if (adapter->msix_enabled) {
1542                 status = be_msix_register(adapter);
1543                 if (status == 0)
1544                         goto done;
1545         }
1546
1547         /* INTx */
1548         netdev->irq = adapter->pdev->irq;
1549         status = request_irq(netdev->irq, be_intx, IRQF_SHARED, netdev->name,
1550                         adapter);
1551         if (status) {
1552                 dev_err(&adapter->pdev->dev,
1553                         "INTx request IRQ failed - err %d\n", status);
1554                 return status;
1555         }
1556 done:
1557         adapter->isr_registered = true;
1558         return 0;
1559 }
1560
1561 static void be_irq_unregister(struct be_adapter *adapter)
1562 {
1563         struct net_device *netdev = adapter->netdev;
1564
1565         if (!adapter->isr_registered)
1566                 return;
1567
1568         /* INTx */
1569         if (!adapter->msix_enabled) {
1570                 free_irq(netdev->irq, adapter);
1571                 goto done;
1572         }
1573
1574         /* MSIx */
1575         be_free_irq(adapter, &adapter->tx_eq);
1576         be_free_irq(adapter, &adapter->rx_eq);
1577 done:
1578         adapter->isr_registered = false;
1579         return;
1580 }
1581
1582 static int be_open(struct net_device *netdev)
1583 {
1584         struct be_adapter *adapter = netdev_priv(netdev);
1585         struct be_eq_obj *rx_eq = &adapter->rx_eq;
1586         struct be_eq_obj *tx_eq = &adapter->tx_eq;
1587         bool link_up;
1588         int status;
1589         u8 mac_speed;
1590         u16 link_speed;
1591
1592         /* First time posting */
1593         be_post_rx_frags(adapter);
1594
1595         napi_enable(&rx_eq->napi);
1596         napi_enable(&tx_eq->napi);
1597
1598         be_irq_register(adapter);
1599
1600         be_intr_set(adapter, true);
1601
1602         /* The evt queues are created in unarmed state; arm them */
1603         be_eq_notify(adapter, rx_eq->q.id, true, false, 0);
1604         be_eq_notify(adapter, tx_eq->q.id, true, false, 0);
1605
1606         /* Rx compl queue may be in unarmed state; rearm it */
1607         be_cq_notify(adapter, adapter->rx_obj.cq.id, true, 0);
1608
1609         status = be_cmd_link_status_query(adapter, &link_up, &mac_speed,
1610                         &link_speed);
1611         if (status)
1612                 return status;
1613         be_link_status_update(adapter, link_up);
1614
1615         schedule_delayed_work(&adapter->work, msecs_to_jiffies(100));
1616         return 0;
1617 }
1618
1619 static int be_setup(struct be_adapter *adapter)
1620 {
1621         struct net_device *netdev = adapter->netdev;
1622         u32 cap_flags, en_flags;
1623         int status;
1624
1625         cap_flags = BE_IF_FLAGS_UNTAGGED | BE_IF_FLAGS_BROADCAST |
1626                         BE_IF_FLAGS_MCAST_PROMISCUOUS |
1627                         BE_IF_FLAGS_PROMISCUOUS |
1628                         BE_IF_FLAGS_PASS_L3L4_ERRORS;
1629         en_flags = BE_IF_FLAGS_UNTAGGED | BE_IF_FLAGS_BROADCAST |
1630                         BE_IF_FLAGS_PASS_L3L4_ERRORS;
1631
1632         status = be_cmd_if_create(adapter, cap_flags, en_flags,
1633                         netdev->dev_addr, false/* pmac_invalid */,
1634                         &adapter->if_handle, &adapter->pmac_id);
1635         if (status != 0)
1636                 goto do_none;
1637
1638         status = be_tx_queues_create(adapter);
1639         if (status != 0)
1640                 goto if_destroy;
1641
1642         status = be_rx_queues_create(adapter);
1643         if (status != 0)
1644                 goto tx_qs_destroy;
1645
1646         status = be_mcc_queues_create(adapter);
1647         if (status != 0)
1648                 goto rx_qs_destroy;
1649
1650         status = be_vid_config(adapter);
1651         if (status != 0)
1652                 goto mccqs_destroy;
1653
1654         status = be_cmd_set_flow_control(adapter, true, true);
1655         if (status != 0)
1656                 goto mccqs_destroy;
1657         return 0;
1658
1659 mccqs_destroy:
1660         be_mcc_queues_destroy(adapter);
1661 rx_qs_destroy:
1662         be_rx_queues_destroy(adapter);
1663 tx_qs_destroy:
1664         be_tx_queues_destroy(adapter);
1665 if_destroy:
1666         be_cmd_if_destroy(adapter, adapter->if_handle);
1667 do_none:
1668         return status;
1669 }
1670
1671 static int be_clear(struct be_adapter *adapter)
1672 {
1673         be_mcc_queues_destroy(adapter);
1674         be_rx_queues_destroy(adapter);
1675         be_tx_queues_destroy(adapter);
1676
1677         be_cmd_if_destroy(adapter, adapter->if_handle);
1678
1679         return 0;
1680 }
1681
1682 static int be_close(struct net_device *netdev)
1683 {
1684         struct be_adapter *adapter = netdev_priv(netdev);
1685         struct be_eq_obj *rx_eq = &adapter->rx_eq;
1686         struct be_eq_obj *tx_eq = &adapter->tx_eq;
1687         int vec;
1688
1689         cancel_delayed_work_sync(&adapter->work);
1690
1691         netif_stop_queue(netdev);
1692         netif_carrier_off(netdev);
1693         adapter->link_up = false;
1694
1695         be_intr_set(adapter, false);
1696
1697         if (adapter->msix_enabled) {
1698                 vec = be_msix_vec_get(adapter, tx_eq->q.id);
1699                 synchronize_irq(vec);
1700                 vec = be_msix_vec_get(adapter, rx_eq->q.id);
1701                 synchronize_irq(vec);
1702         } else {
1703                 synchronize_irq(netdev->irq);
1704         }
1705         be_irq_unregister(adapter);
1706
1707         napi_disable(&rx_eq->napi);
1708         napi_disable(&tx_eq->napi);
1709
1710         /* Wait for all pending tx completions to arrive so that
1711          * all tx skbs are freed.
1712          */
1713         be_tx_compl_clean(adapter);
1714
1715         return 0;
1716 }
1717
1718 #define FW_FILE_HDR_SIGN        "ServerEngines Corp. "
1719 char flash_cookie[2][16] =      {"*** SE FLAS",
1720                                 "H DIRECTORY *** "};
1721 static int be_flash_image(struct be_adapter *adapter,
1722                         const struct firmware *fw,
1723                         struct be_dma_mem *flash_cmd, u32 flash_type)
1724 {
1725         int status;
1726         u32 flash_op, image_offset = 0, total_bytes, image_size = 0;
1727         int num_bytes;
1728         const u8 *p = fw->data;
1729         struct be_cmd_write_flashrom *req = flash_cmd->va;
1730
1731         switch (flash_type) {
1732         case FLASHROM_TYPE_ISCSI_ACTIVE:
1733                 image_offset = FLASH_iSCSI_PRIMARY_IMAGE_START;
1734                 image_size = FLASH_IMAGE_MAX_SIZE;
1735                 break;
1736         case FLASHROM_TYPE_ISCSI_BACKUP:
1737                 image_offset = FLASH_iSCSI_BACKUP_IMAGE_START;
1738                 image_size = FLASH_IMAGE_MAX_SIZE;
1739                 break;
1740         case FLASHROM_TYPE_FCOE_FW_ACTIVE:
1741                 image_offset = FLASH_FCoE_PRIMARY_IMAGE_START;
1742                 image_size = FLASH_IMAGE_MAX_SIZE;
1743                 break;
1744         case FLASHROM_TYPE_FCOE_FW_BACKUP:
1745                 image_offset = FLASH_FCoE_BACKUP_IMAGE_START;
1746                 image_size = FLASH_IMAGE_MAX_SIZE;
1747                 break;
1748         case FLASHROM_TYPE_BIOS:
1749                 image_offset = FLASH_iSCSI_BIOS_START;
1750                 image_size = FLASH_BIOS_IMAGE_MAX_SIZE;
1751                 break;
1752         case FLASHROM_TYPE_FCOE_BIOS:
1753                 image_offset = FLASH_FCoE_BIOS_START;
1754                 image_size = FLASH_BIOS_IMAGE_MAX_SIZE;
1755                 break;
1756         case FLASHROM_TYPE_PXE_BIOS:
1757                 image_offset = FLASH_PXE_BIOS_START;
1758                 image_size = FLASH_BIOS_IMAGE_MAX_SIZE;
1759                 break;
1760         default:
1761                 return 0;
1762         }
1763
1764         p += sizeof(struct flash_file_hdr) + image_offset;
1765         if (p + image_size > fw->data + fw->size)
1766                 return -1;
1767
1768         total_bytes = image_size;
1769
1770         while (total_bytes) {
1771                 if (total_bytes > 32*1024)
1772                         num_bytes = 32*1024;
1773                 else
1774                         num_bytes = total_bytes;
1775                 total_bytes -= num_bytes;
1776
1777                 if (!total_bytes)
1778                         flash_op = FLASHROM_OPER_FLASH;
1779                 else
1780                         flash_op = FLASHROM_OPER_SAVE;
1781                 memcpy(req->params.data_buf, p, num_bytes);
1782                 p += num_bytes;
1783                 status = be_cmd_write_flashrom(adapter, flash_cmd,
1784                                 flash_type, flash_op, num_bytes);
1785                 if (status) {
1786                         dev_err(&adapter->pdev->dev,
1787                         "cmd to write to flash rom failed. type/op %d/%d\n",
1788                         flash_type, flash_op);
1789                         return -1;
1790                 }
1791                 yield();
1792         }
1793
1794         return 0;
1795 }
1796
1797 int be_load_fw(struct be_adapter *adapter, u8 *func)
1798 {
1799         char fw_file[ETHTOOL_FLASH_MAX_FILENAME];
1800         const struct firmware *fw;
1801         struct flash_file_hdr *fhdr;
1802         struct flash_section_info *fsec = NULL;
1803         struct be_dma_mem flash_cmd;
1804         int status;
1805         const u8 *p;
1806         bool entry_found = false;
1807         int flash_type;
1808         char fw_ver[FW_VER_LEN];
1809         char fw_cfg;
1810
1811         status = be_cmd_get_fw_ver(adapter, fw_ver);
1812         if (status)
1813                 return status;
1814
1815         fw_cfg = *(fw_ver + 2);
1816         if (fw_cfg == '0')
1817                 fw_cfg = '1';
1818         strcpy(fw_file, func);
1819
1820         status = request_firmware(&fw, fw_file, &adapter->pdev->dev);
1821         if (status)
1822                 goto fw_exit;
1823
1824         p = fw->data;
1825         fhdr = (struct flash_file_hdr *) p;
1826         if (memcmp(fhdr->sign, FW_FILE_HDR_SIGN, strlen(FW_FILE_HDR_SIGN))) {
1827                 dev_err(&adapter->pdev->dev,
1828                         "Firmware(%s) load error (signature did not match)\n",
1829                                 fw_file);
1830                 status = -1;
1831                 goto fw_exit;
1832         }
1833
1834         dev_info(&adapter->pdev->dev, "Flashing firmware file %s\n", fw_file);
1835
1836         p += sizeof(struct flash_file_hdr);
1837         while (p < (fw->data + fw->size)) {
1838                 fsec = (struct flash_section_info *)p;
1839                 if (!memcmp(flash_cookie, fsec->cookie, sizeof(flash_cookie))) {
1840                         entry_found = true;
1841                         break;
1842                 }
1843                 p += 32;
1844         }
1845
1846         if (!entry_found) {
1847                 status = -1;
1848                 dev_err(&adapter->pdev->dev,
1849                         "Flash cookie not found in firmware image\n");
1850                 goto fw_exit;
1851         }
1852
1853         flash_cmd.size = sizeof(struct be_cmd_write_flashrom) + 32*1024;
1854         flash_cmd.va = pci_alloc_consistent(adapter->pdev, flash_cmd.size,
1855                                         &flash_cmd.dma);
1856         if (!flash_cmd.va) {
1857                 status = -ENOMEM;
1858                 dev_err(&adapter->pdev->dev,
1859                         "Memory allocation failure while flashing\n");
1860                 goto fw_exit;
1861         }
1862
1863         for (flash_type = FLASHROM_TYPE_ISCSI_ACTIVE;
1864                 flash_type <= FLASHROM_TYPE_FCOE_FW_BACKUP; flash_type++) {
1865                 status = be_flash_image(adapter, fw, &flash_cmd,
1866                                 flash_type);
1867                 if (status)
1868                         break;
1869         }
1870
1871         pci_free_consistent(adapter->pdev, flash_cmd.size, flash_cmd.va,
1872                                 flash_cmd.dma);
1873         if (status) {
1874                 dev_err(&adapter->pdev->dev, "Firmware load error\n");
1875                 goto fw_exit;
1876         }
1877
1878         dev_info(&adapter->pdev->dev, "Firmware flashed succesfully\n");
1879
1880 fw_exit:
1881         release_firmware(fw);
1882         return status;
1883 }
1884
1885 static struct net_device_ops be_netdev_ops = {
1886         .ndo_open               = be_open,
1887         .ndo_stop               = be_close,
1888         .ndo_start_xmit         = be_xmit,
1889         .ndo_get_stats          = be_get_stats,
1890         .ndo_set_rx_mode        = be_set_multicast_list,
1891         .ndo_set_mac_address    = be_mac_addr_set,
1892         .ndo_change_mtu         = be_change_mtu,
1893         .ndo_validate_addr      = eth_validate_addr,
1894         .ndo_vlan_rx_register   = be_vlan_register,
1895         .ndo_vlan_rx_add_vid    = be_vlan_add_vid,
1896         .ndo_vlan_rx_kill_vid   = be_vlan_rem_vid,
1897 };
1898
1899 static void be_netdev_init(struct net_device *netdev)
1900 {
1901         struct be_adapter *adapter = netdev_priv(netdev);
1902
1903         netdev->features |= NETIF_F_SG | NETIF_F_HW_VLAN_RX | NETIF_F_TSO |
1904                 NETIF_F_HW_VLAN_TX | NETIF_F_HW_VLAN_FILTER | NETIF_F_HW_CSUM |
1905                 NETIF_F_GRO;
1906
1907         netdev->flags |= IFF_MULTICAST;
1908
1909         adapter->rx_csum = true;
1910
1911         netif_set_gso_max_size(netdev, 65535);
1912
1913         BE_SET_NETDEV_OPS(netdev, &be_netdev_ops);
1914
1915         SET_ETHTOOL_OPS(netdev, &be_ethtool_ops);
1916
1917         netif_napi_add(netdev, &adapter->rx_eq.napi, be_poll_rx,
1918                 BE_NAPI_WEIGHT);
1919         netif_napi_add(netdev, &adapter->tx_eq.napi, be_poll_tx_mcc,
1920                 BE_NAPI_WEIGHT);
1921
1922         netif_carrier_off(netdev);
1923         netif_stop_queue(netdev);
1924 }
1925
1926 static void be_unmap_pci_bars(struct be_adapter *adapter)
1927 {
1928         if (adapter->csr)
1929                 iounmap(adapter->csr);
1930         if (adapter->db)
1931                 iounmap(adapter->db);
1932         if (adapter->pcicfg)
1933                 iounmap(adapter->pcicfg);
1934 }
1935
1936 static int be_map_pci_bars(struct be_adapter *adapter)
1937 {
1938         u8 __iomem *addr;
1939
1940         addr = ioremap_nocache(pci_resource_start(adapter->pdev, 2),
1941                         pci_resource_len(adapter->pdev, 2));
1942         if (addr == NULL)
1943                 return -ENOMEM;
1944         adapter->csr = addr;
1945
1946         addr = ioremap_nocache(pci_resource_start(adapter->pdev, 4),
1947                         128 * 1024);
1948         if (addr == NULL)
1949                 goto pci_map_err;
1950         adapter->db = addr;
1951
1952         addr = ioremap_nocache(pci_resource_start(adapter->pdev, 1),
1953                         pci_resource_len(adapter->pdev, 1));
1954         if (addr == NULL)
1955                 goto pci_map_err;
1956         adapter->pcicfg = addr;
1957
1958         return 0;
1959 pci_map_err:
1960         be_unmap_pci_bars(adapter);
1961         return -ENOMEM;
1962 }
1963
1964
1965 static void be_ctrl_cleanup(struct be_adapter *adapter)
1966 {
1967         struct be_dma_mem *mem = &adapter->mbox_mem_alloced;
1968
1969         be_unmap_pci_bars(adapter);
1970
1971         if (mem->va)
1972                 pci_free_consistent(adapter->pdev, mem->size,
1973                         mem->va, mem->dma);
1974 }
1975
1976 static int be_ctrl_init(struct be_adapter *adapter)
1977 {
1978         struct be_dma_mem *mbox_mem_alloc = &adapter->mbox_mem_alloced;
1979         struct be_dma_mem *mbox_mem_align = &adapter->mbox_mem;
1980         int status;
1981
1982         status = be_map_pci_bars(adapter);
1983         if (status)
1984                 return status;
1985
1986         mbox_mem_alloc->size = sizeof(struct be_mcc_mailbox) + 16;
1987         mbox_mem_alloc->va = pci_alloc_consistent(adapter->pdev,
1988                                 mbox_mem_alloc->size, &mbox_mem_alloc->dma);
1989         if (!mbox_mem_alloc->va) {
1990                 be_unmap_pci_bars(adapter);
1991                 return -1;
1992         }
1993         mbox_mem_align->size = sizeof(struct be_mcc_mailbox);
1994         mbox_mem_align->va = PTR_ALIGN(mbox_mem_alloc->va, 16);
1995         mbox_mem_align->dma = PTR_ALIGN(mbox_mem_alloc->dma, 16);
1996         memset(mbox_mem_align->va, 0, sizeof(struct be_mcc_mailbox));
1997         spin_lock_init(&adapter->mbox_lock);
1998         spin_lock_init(&adapter->mcc_lock);
1999         spin_lock_init(&adapter->mcc_cq_lock);
2000
2001         return 0;
2002 }
2003
2004 static void be_stats_cleanup(struct be_adapter *adapter)
2005 {
2006         struct be_stats_obj *stats = &adapter->stats;
2007         struct be_dma_mem *cmd = &stats->cmd;
2008
2009         if (cmd->va)
2010                 pci_free_consistent(adapter->pdev, cmd->size,
2011                         cmd->va, cmd->dma);
2012 }
2013
2014 static int be_stats_init(struct be_adapter *adapter)
2015 {
2016         struct be_stats_obj *stats = &adapter->stats;
2017         struct be_dma_mem *cmd = &stats->cmd;
2018
2019         cmd->size = sizeof(struct be_cmd_req_get_stats);
2020         cmd->va = pci_alloc_consistent(adapter->pdev, cmd->size, &cmd->dma);
2021         if (cmd->va == NULL)
2022                 return -1;
2023         return 0;
2024 }
2025
2026 static void __devexit be_remove(struct pci_dev *pdev)
2027 {
2028         struct be_adapter *adapter = pci_get_drvdata(pdev);
2029         if (!adapter)
2030                 return;
2031
2032         unregister_netdev(adapter->netdev);
2033
2034         be_clear(adapter);
2035
2036         be_stats_cleanup(adapter);
2037
2038         be_ctrl_cleanup(adapter);
2039
2040         if (adapter->msix_enabled) {
2041                 pci_disable_msix(adapter->pdev);
2042                 adapter->msix_enabled = false;
2043         }
2044
2045         pci_set_drvdata(pdev, NULL);
2046         pci_release_regions(pdev);
2047         pci_disable_device(pdev);
2048
2049         free_netdev(adapter->netdev);
2050 }
2051
2052 static int be_hw_up(struct be_adapter *adapter)
2053 {
2054         int status;
2055
2056         status = be_cmd_POST(adapter);
2057         if (status)
2058                 return status;
2059
2060         status = be_cmd_reset_function(adapter);
2061         if (status)
2062                 return status;
2063
2064         status = be_cmd_get_fw_ver(adapter, adapter->fw_ver);
2065         if (status)
2066                 return status;
2067
2068         status = be_cmd_query_fw_cfg(adapter,
2069                                 &adapter->port_num, &adapter->cap);
2070         return status;
2071 }
2072
2073 static int __devinit be_probe(struct pci_dev *pdev,
2074                         const struct pci_device_id *pdev_id)
2075 {
2076         int status = 0;
2077         struct be_adapter *adapter;
2078         struct net_device *netdev;
2079         u8 mac[ETH_ALEN];
2080
2081         status = pci_enable_device(pdev);
2082         if (status)
2083                 goto do_none;
2084
2085         status = pci_request_regions(pdev, DRV_NAME);
2086         if (status)
2087                 goto disable_dev;
2088         pci_set_master(pdev);
2089
2090         netdev = alloc_etherdev(sizeof(struct be_adapter));
2091         if (netdev == NULL) {
2092                 status = -ENOMEM;
2093                 goto rel_reg;
2094         }
2095         adapter = netdev_priv(netdev);
2096         adapter->pdev = pdev;
2097         pci_set_drvdata(pdev, adapter);
2098         adapter->netdev = netdev;
2099
2100         be_msix_enable(adapter);
2101
2102         status = pci_set_dma_mask(pdev, DMA_BIT_MASK(64));
2103         if (!status) {
2104                 netdev->features |= NETIF_F_HIGHDMA;
2105         } else {
2106                 status = pci_set_dma_mask(pdev, DMA_BIT_MASK(32));
2107                 if (status) {
2108                         dev_err(&pdev->dev, "Could not set PCI DMA Mask\n");
2109                         goto free_netdev;
2110                 }
2111         }
2112
2113         status = be_ctrl_init(adapter);
2114         if (status)
2115                 goto free_netdev;
2116
2117         status = be_stats_init(adapter);
2118         if (status)
2119                 goto ctrl_clean;
2120
2121         status = be_hw_up(adapter);
2122         if (status)
2123                 goto stats_clean;
2124
2125         status = be_cmd_mac_addr_query(adapter, mac, MAC_ADDRESS_TYPE_NETWORK,
2126                         true /* permanent */, 0);
2127         if (status)
2128                 goto stats_clean;
2129         memcpy(netdev->dev_addr, mac, ETH_ALEN);
2130
2131         INIT_DELAYED_WORK(&adapter->work, be_worker);
2132         be_netdev_init(netdev);
2133         SET_NETDEV_DEV(netdev, &adapter->pdev->dev);
2134
2135         status = be_setup(adapter);
2136         if (status)
2137                 goto stats_clean;
2138         status = register_netdev(netdev);
2139         if (status != 0)
2140                 goto unsetup;
2141
2142         dev_info(&pdev->dev, "%s port %d\n", nic_name(pdev), adapter->port_num);
2143         return 0;
2144
2145 unsetup:
2146         be_clear(adapter);
2147 stats_clean:
2148         be_stats_cleanup(adapter);
2149 ctrl_clean:
2150         be_ctrl_cleanup(adapter);
2151 free_netdev:
2152         free_netdev(adapter->netdev);
2153 rel_reg:
2154         pci_release_regions(pdev);
2155 disable_dev:
2156         pci_disable_device(pdev);
2157 do_none:
2158         dev_err(&pdev->dev, "%s initialization failed\n", nic_name(pdev));
2159         return status;
2160 }
2161
2162 static int be_suspend(struct pci_dev *pdev, pm_message_t state)
2163 {
2164         struct be_adapter *adapter = pci_get_drvdata(pdev);
2165         struct net_device *netdev =  adapter->netdev;
2166
2167         netif_device_detach(netdev);
2168         if (netif_running(netdev)) {
2169                 rtnl_lock();
2170                 be_close(netdev);
2171                 rtnl_unlock();
2172         }
2173         be_clear(adapter);
2174
2175         pci_save_state(pdev);
2176         pci_disable_device(pdev);
2177         pci_set_power_state(pdev, pci_choose_state(pdev, state));
2178         return 0;
2179 }
2180
2181 static int be_resume(struct pci_dev *pdev)
2182 {
2183         int status = 0;
2184         struct be_adapter *adapter = pci_get_drvdata(pdev);
2185         struct net_device *netdev =  adapter->netdev;
2186
2187         netif_device_detach(netdev);
2188
2189         status = pci_enable_device(pdev);
2190         if (status)
2191                 return status;
2192
2193         pci_set_power_state(pdev, 0);
2194         pci_restore_state(pdev);
2195
2196         be_setup(adapter);
2197         if (netif_running(netdev)) {
2198                 rtnl_lock();
2199                 be_open(netdev);
2200                 rtnl_unlock();
2201         }
2202         netif_device_attach(netdev);
2203         return 0;
2204 }
2205
2206 static struct pci_driver be_driver = {
2207         .name = DRV_NAME,
2208         .id_table = be_dev_ids,
2209         .probe = be_probe,
2210         .remove = be_remove,
2211         .suspend = be_suspend,
2212         .resume = be_resume
2213 };
2214
2215 static int __init be_init_module(void)
2216 {
2217         if (rx_frag_size != 8192 && rx_frag_size != 4096
2218                 && rx_frag_size != 2048) {
2219                 printk(KERN_WARNING DRV_NAME
2220                         " : Module param rx_frag_size must be 2048/4096/8192."
2221                         " Using 2048\n");
2222                 rx_frag_size = 2048;
2223         }
2224
2225         return pci_register_driver(&be_driver);
2226 }
2227 module_init(be_init_module);
2228
2229 static void __exit be_exit_module(void)
2230 {
2231         pci_unregister_driver(&be_driver);
2232 }
2233 module_exit(be_exit_module);