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RDMA/i40iw: Add qp table lock around AE processing
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1 /*******************************************************************************
2 *
3 * Copyright (c) 2015-2016 Intel Corporation.  All rights reserved.
4 *
5 * This software is available to you under a choice of one of two
6 * licenses.  You may choose to be licensed under the terms of the GNU
7 * General Public License (GPL) Version 2, available from the file
8 * COPYING in the main directory of this source tree, or the
9 * OpenFabrics.org BSD license below:
10 *
11 *   Redistribution and use in source and binary forms, with or
12 *   without modification, are permitted provided that the following
13 *   conditions are met:
14 *
15 *    - Redistributions of source code must retain the above
16 *       copyright notice, this list of conditions and the following
17 *       disclaimer.
18 *
19 *    - Redistributions in binary form must reproduce the above
20 *       copyright notice, this list of conditions and the following
21 *       disclaimer in the documentation and/or other materials
22 *       provided with the distribution.
23 *
24 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
25 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
26 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
27 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
28 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
29 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
30 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
31 * SOFTWARE.
32 *
33 *******************************************************************************/
34
35 #include <linux/module.h>
36 #include <linux/moduleparam.h>
37 #include <linux/netdevice.h>
38 #include <linux/etherdevice.h>
39 #include <linux/ethtool.h>
40 #include <linux/mii.h>
41 #include <linux/if_vlan.h>
42 #include <linux/crc32.h>
43 #include <linux/in.h>
44 #include <linux/ip.h>
45 #include <linux/tcp.h>
46 #include <linux/init.h>
47 #include <linux/io.h>
48 #include <asm/irq.h>
49 #include <asm/byteorder.h>
50 #include <net/netevent.h>
51 #include <net/neighbour.h>
52 #include "i40iw.h"
53
54 /**
55  * i40iw_arp_table - manage arp table
56  * @iwdev: iwarp device
57  * @ip_addr: ip address for device
58  * @mac_addr: mac address ptr
59  * @action: modify, delete or add
60  */
61 int i40iw_arp_table(struct i40iw_device *iwdev,
62                     __be32 *ip_addr,
63                     bool ipv4,
64                     u8 *mac_addr,
65                     u32 action)
66 {
67         int arp_index;
68         int err;
69         u32 ip[4];
70
71         if (ipv4) {
72                 memset(ip, 0, sizeof(ip));
73                 ip[0] = *ip_addr;
74         } else {
75                 memcpy(ip, ip_addr, sizeof(ip));
76         }
77
78         for (arp_index = 0; (u32)arp_index < iwdev->arp_table_size; arp_index++)
79                 if (memcmp(iwdev->arp_table[arp_index].ip_addr, ip, sizeof(ip)) == 0)
80                         break;
81         switch (action) {
82         case I40IW_ARP_ADD:
83                 if (arp_index != iwdev->arp_table_size)
84                         return -1;
85
86                 arp_index = 0;
87                 err = i40iw_alloc_resource(iwdev, iwdev->allocated_arps,
88                                            iwdev->arp_table_size,
89                                            (u32 *)&arp_index,
90                                            &iwdev->next_arp_index);
91
92                 if (err)
93                         return err;
94
95                 memcpy(iwdev->arp_table[arp_index].ip_addr, ip, sizeof(ip));
96                 ether_addr_copy(iwdev->arp_table[arp_index].mac_addr, mac_addr);
97                 break;
98         case I40IW_ARP_RESOLVE:
99                 if (arp_index == iwdev->arp_table_size)
100                         return -1;
101                 break;
102         case I40IW_ARP_DELETE:
103                 if (arp_index == iwdev->arp_table_size)
104                         return -1;
105                 memset(iwdev->arp_table[arp_index].ip_addr, 0,
106                        sizeof(iwdev->arp_table[arp_index].ip_addr));
107                 eth_zero_addr(iwdev->arp_table[arp_index].mac_addr);
108                 i40iw_free_resource(iwdev, iwdev->allocated_arps, arp_index);
109                 break;
110         default:
111                 return -1;
112         }
113         return arp_index;
114 }
115
116 /**
117  * i40iw_wr32 - write 32 bits to hw register
118  * @hw: hardware information including registers
119  * @reg: register offset
120  * @value: vvalue to write to register
121  */
122 inline void i40iw_wr32(struct i40iw_hw *hw, u32 reg, u32 value)
123 {
124         writel(value, hw->hw_addr + reg);
125 }
126
127 /**
128  * i40iw_rd32 - read a 32 bit hw register
129  * @hw: hardware information including registers
130  * @reg: register offset
131  *
132  * Return value of register content
133  */
134 inline u32 i40iw_rd32(struct i40iw_hw *hw, u32 reg)
135 {
136         return readl(hw->hw_addr + reg);
137 }
138
139 /**
140  * i40iw_inetaddr_event - system notifier for netdev events
141  * @notfier: not used
142  * @event: event for notifier
143  * @ptr: if address
144  */
145 int i40iw_inetaddr_event(struct notifier_block *notifier,
146                          unsigned long event,
147                          void *ptr)
148 {
149         struct in_ifaddr *ifa = ptr;
150         struct net_device *event_netdev = ifa->ifa_dev->dev;
151         struct net_device *netdev;
152         struct net_device *upper_dev;
153         struct i40iw_device *iwdev;
154         struct i40iw_handler *hdl;
155         __be32 local_ipaddr;
156
157         hdl = i40iw_find_netdev(event_netdev);
158         if (!hdl)
159                 return NOTIFY_DONE;
160
161         iwdev = &hdl->device;
162         netdev = iwdev->ldev->netdev;
163         upper_dev = netdev_master_upper_dev_get(netdev);
164         if (netdev != event_netdev)
165                 return NOTIFY_DONE;
166
167         switch (event) {
168         case NETDEV_DOWN:
169                 if (upper_dev)
170                         local_ipaddr =
171                                 ((struct in_device *)upper_dev->ip_ptr)->ifa_list->ifa_address;
172                 else
173                         local_ipaddr = ifa->ifa_address;
174                 local_ipaddr = ntohl(local_ipaddr);
175                 i40iw_manage_arp_cache(iwdev,
176                                        netdev->dev_addr,
177                                        &local_ipaddr,
178                                        true,
179                                        I40IW_ARP_DELETE);
180                 return NOTIFY_OK;
181         case NETDEV_UP:
182                 if (upper_dev)
183                         local_ipaddr =
184                                 ((struct in_device *)upper_dev->ip_ptr)->ifa_list->ifa_address;
185                 else
186                         local_ipaddr = ifa->ifa_address;
187                 local_ipaddr = ntohl(local_ipaddr);
188                 i40iw_manage_arp_cache(iwdev,
189                                        netdev->dev_addr,
190                                        &local_ipaddr,
191                                        true,
192                                        I40IW_ARP_ADD);
193                 break;
194         case NETDEV_CHANGEADDR:
195                 /* Add the address to the IP table */
196                 if (upper_dev)
197                         local_ipaddr =
198                                 ((struct in_device *)upper_dev->ip_ptr)->ifa_list->ifa_address;
199                 else
200                         local_ipaddr = ifa->ifa_address;
201
202                 local_ipaddr = ntohl(local_ipaddr);
203                 i40iw_manage_arp_cache(iwdev,
204                                        netdev->dev_addr,
205                                        &local_ipaddr,
206                                        true,
207                                        I40IW_ARP_ADD);
208                 break;
209         default:
210                 break;
211         }
212         return NOTIFY_DONE;
213 }
214
215 /**
216  * i40iw_inet6addr_event - system notifier for ipv6 netdev events
217  * @notfier: not used
218  * @event: event for notifier
219  * @ptr: if address
220  */
221 int i40iw_inet6addr_event(struct notifier_block *notifier,
222                           unsigned long event,
223                           void *ptr)
224 {
225         struct inet6_ifaddr *ifa = (struct inet6_ifaddr *)ptr;
226         struct net_device *event_netdev = ifa->idev->dev;
227         struct net_device *netdev;
228         struct i40iw_device *iwdev;
229         struct i40iw_handler *hdl;
230         __be32 local_ipaddr6[4];
231
232         hdl = i40iw_find_netdev(event_netdev);
233         if (!hdl)
234                 return NOTIFY_DONE;
235
236         iwdev = &hdl->device;
237         netdev = iwdev->ldev->netdev;
238         if (netdev != event_netdev)
239                 return NOTIFY_DONE;
240
241         switch (event) {
242         case NETDEV_DOWN:
243                 i40iw_copy_ip_ntohl(local_ipaddr6, ifa->addr.in6_u.u6_addr32);
244                 i40iw_manage_arp_cache(iwdev,
245                                        netdev->dev_addr,
246                                        local_ipaddr6,
247                                        false,
248                                        I40IW_ARP_DELETE);
249                 return NOTIFY_OK;
250         case NETDEV_UP:
251                 /* Fall through */
252         case NETDEV_CHANGEADDR:
253                 i40iw_copy_ip_ntohl(local_ipaddr6, ifa->addr.in6_u.u6_addr32);
254                 i40iw_manage_arp_cache(iwdev,
255                                        netdev->dev_addr,
256                                        local_ipaddr6,
257                                        false,
258                                        I40IW_ARP_ADD);
259                 break;
260         default:
261                 break;
262         }
263         return NOTIFY_DONE;
264 }
265
266 /**
267  * i40iw_net_event - system notifier for net events
268  * @notfier: not used
269  * @event: event for notifier
270  * @ptr: neighbor
271  */
272 int i40iw_net_event(struct notifier_block *notifier, unsigned long event, void *ptr)
273 {
274         struct neighbour *neigh = ptr;
275         struct i40iw_device *iwdev;
276         struct i40iw_handler *iwhdl;
277         __be32 *p;
278         u32 local_ipaddr[4];
279
280         switch (event) {
281         case NETEVENT_NEIGH_UPDATE:
282                 iwhdl = i40iw_find_netdev((struct net_device *)neigh->dev);
283                 if (!iwhdl)
284                         return NOTIFY_DONE;
285                 iwdev = &iwhdl->device;
286                 p = (__be32 *)neigh->primary_key;
287                 i40iw_copy_ip_ntohl(local_ipaddr, p);
288                 if (neigh->nud_state & NUD_VALID) {
289                         i40iw_manage_arp_cache(iwdev,
290                                                neigh->ha,
291                                                local_ipaddr,
292                                                false,
293                                                I40IW_ARP_ADD);
294
295                 } else {
296                         i40iw_manage_arp_cache(iwdev,
297                                                neigh->ha,
298                                                local_ipaddr,
299                                                false,
300                                                I40IW_ARP_DELETE);
301                 }
302                 break;
303         default:
304                 break;
305         }
306         return NOTIFY_DONE;
307 }
308
309 /**
310  * i40iw_get_cqp_request - get cqp struct
311  * @cqp: device cqp ptr
312  * @wait: cqp to be used in wait mode
313  */
314 struct i40iw_cqp_request *i40iw_get_cqp_request(struct i40iw_cqp *cqp, bool wait)
315 {
316         struct i40iw_cqp_request *cqp_request = NULL;
317         unsigned long flags;
318
319         spin_lock_irqsave(&cqp->req_lock, flags);
320         if (!list_empty(&cqp->cqp_avail_reqs)) {
321                 cqp_request = list_entry(cqp->cqp_avail_reqs.next,
322                                          struct i40iw_cqp_request, list);
323                 list_del_init(&cqp_request->list);
324         }
325         spin_unlock_irqrestore(&cqp->req_lock, flags);
326         if (!cqp_request) {
327                 cqp_request = kzalloc(sizeof(*cqp_request), GFP_ATOMIC);
328                 if (cqp_request) {
329                         cqp_request->dynamic = true;
330                         INIT_LIST_HEAD(&cqp_request->list);
331                         init_waitqueue_head(&cqp_request->waitq);
332                 }
333         }
334         if (!cqp_request) {
335                 i40iw_pr_err("CQP Request Fail: No Memory");
336                 return NULL;
337         }
338
339         if (wait) {
340                 atomic_set(&cqp_request->refcount, 2);
341                 cqp_request->waiting = true;
342         } else {
343                 atomic_set(&cqp_request->refcount, 1);
344         }
345         return cqp_request;
346 }
347
348 /**
349  * i40iw_free_cqp_request - free cqp request
350  * @cqp: cqp ptr
351  * @cqp_request: to be put back in cqp list
352  */
353 void i40iw_free_cqp_request(struct i40iw_cqp *cqp, struct i40iw_cqp_request *cqp_request)
354 {
355         unsigned long flags;
356
357         if (cqp_request->dynamic) {
358                 kfree(cqp_request);
359         } else {
360                 cqp_request->request_done = false;
361                 cqp_request->callback_fcn = NULL;
362                 cqp_request->waiting = false;
363
364                 spin_lock_irqsave(&cqp->req_lock, flags);
365                 list_add_tail(&cqp_request->list, &cqp->cqp_avail_reqs);
366                 spin_unlock_irqrestore(&cqp->req_lock, flags);
367         }
368 }
369
370 /**
371  * i40iw_put_cqp_request - dec ref count and free if 0
372  * @cqp: cqp ptr
373  * @cqp_request: to be put back in cqp list
374  */
375 void i40iw_put_cqp_request(struct i40iw_cqp *cqp,
376                            struct i40iw_cqp_request *cqp_request)
377 {
378         if (atomic_dec_and_test(&cqp_request->refcount))
379                 i40iw_free_cqp_request(cqp, cqp_request);
380 }
381
382 /**
383  * i40iw_free_qp - callback after destroy cqp completes
384  * @cqp_request: cqp request for destroy qp
385  * @num: not used
386  */
387 static void i40iw_free_qp(struct i40iw_cqp_request *cqp_request, u32 num)
388 {
389         struct i40iw_sc_qp *qp = (struct i40iw_sc_qp *)cqp_request->param;
390         struct i40iw_qp *iwqp = (struct i40iw_qp *)qp->back_qp;
391         struct i40iw_device *iwdev;
392         u32 qp_num = iwqp->ibqp.qp_num;
393
394         iwdev = iwqp->iwdev;
395
396         i40iw_rem_pdusecount(iwqp->iwpd, iwdev);
397         i40iw_free_qp_resources(iwdev, iwqp, qp_num);
398 }
399
400 /**
401  * i40iw_wait_event - wait for completion
402  * @iwdev: iwarp device
403  * @cqp_request: cqp request to wait
404  */
405 static int i40iw_wait_event(struct i40iw_device *iwdev,
406                             struct i40iw_cqp_request *cqp_request)
407 {
408         struct cqp_commands_info *info = &cqp_request->info;
409         struct i40iw_cqp *iwcqp = &iwdev->cqp;
410         bool cqp_error = false;
411         int err_code = 0;
412         int timeout_ret = 0;
413
414         timeout_ret = wait_event_timeout(cqp_request->waitq,
415                                          cqp_request->request_done,
416                                          I40IW_EVENT_TIMEOUT);
417         if (!timeout_ret) {
418                 i40iw_pr_err("error cqp command 0x%x timed out ret = %d\n",
419                              info->cqp_cmd, timeout_ret);
420                 err_code = -ETIME;
421                 i40iw_request_reset(iwdev);
422                 goto done;
423         }
424         cqp_error = cqp_request->compl_info.error;
425         if (cqp_error) {
426                 i40iw_pr_err("error cqp command 0x%x completion maj = 0x%x min=0x%x\n",
427                              info->cqp_cmd, cqp_request->compl_info.maj_err_code,
428                              cqp_request->compl_info.min_err_code);
429                 err_code = -EPROTO;
430                 goto done;
431         }
432 done:
433         i40iw_put_cqp_request(iwcqp, cqp_request);
434         return err_code;
435 }
436
437 /**
438  * i40iw_handle_cqp_op - process cqp command
439  * @iwdev: iwarp device
440  * @cqp_request: cqp request to process
441  */
442 enum i40iw_status_code i40iw_handle_cqp_op(struct i40iw_device *iwdev,
443                                            struct i40iw_cqp_request
444                                            *cqp_request)
445 {
446         struct i40iw_sc_dev *dev = &iwdev->sc_dev;
447         enum i40iw_status_code status;
448         struct cqp_commands_info *info = &cqp_request->info;
449         int err_code = 0;
450
451         status = i40iw_process_cqp_cmd(dev, info);
452         if (status) {
453                 i40iw_pr_err("error cqp command 0x%x failed\n", info->cqp_cmd);
454                 i40iw_free_cqp_request(&iwdev->cqp, cqp_request);
455                 return status;
456         }
457         if (cqp_request->waiting)
458                 err_code = i40iw_wait_event(iwdev, cqp_request);
459         if (err_code)
460                 status = I40IW_ERR_CQP_COMPL_ERROR;
461         return status;
462 }
463
464 /**
465  * i40iw_add_pdusecount - add pd refcount
466  * @iwpd: pd for refcount
467  */
468 void i40iw_add_pdusecount(struct i40iw_pd *iwpd)
469 {
470         atomic_inc(&iwpd->usecount);
471 }
472
473 /**
474  * i40iw_rem_pdusecount - decrement refcount for pd and free if 0
475  * @iwpd: pd for refcount
476  * @iwdev: iwarp device
477  */
478 void i40iw_rem_pdusecount(struct i40iw_pd *iwpd, struct i40iw_device *iwdev)
479 {
480         if (!atomic_dec_and_test(&iwpd->usecount))
481                 return;
482         i40iw_free_resource(iwdev, iwdev->allocated_pds, iwpd->sc_pd.pd_id);
483         kfree(iwpd);
484 }
485
486 /**
487  * i40iw_add_ref - add refcount for qp
488  * @ibqp: iqarp qp
489  */
490 void i40iw_add_ref(struct ib_qp *ibqp)
491 {
492         struct i40iw_qp *iwqp = (struct i40iw_qp *)ibqp;
493
494         atomic_inc(&iwqp->refcount);
495 }
496
497 /**
498  * i40iw_rem_ref - rem refcount for qp and free if 0
499  * @ibqp: iqarp qp
500  */
501 void i40iw_rem_ref(struct ib_qp *ibqp)
502 {
503         struct i40iw_qp *iwqp;
504         enum i40iw_status_code status;
505         struct i40iw_cqp_request *cqp_request;
506         struct cqp_commands_info *cqp_info;
507         struct i40iw_device *iwdev;
508         u32 qp_num;
509         unsigned long flags;
510
511         iwqp = to_iwqp(ibqp);
512         iwdev = iwqp->iwdev;
513         spin_lock_irqsave(&iwdev->qptable_lock, flags);
514         if (!atomic_dec_and_test(&iwqp->refcount)) {
515                 spin_unlock_irqrestore(&iwdev->qptable_lock, flags);
516                 return;
517         }
518
519         qp_num = iwqp->ibqp.qp_num;
520         iwdev->qp_table[qp_num] = NULL;
521         spin_unlock_irqrestore(&iwdev->qptable_lock, flags);
522         cqp_request = i40iw_get_cqp_request(&iwdev->cqp, false);
523         if (!cqp_request)
524                 return;
525
526         cqp_request->callback_fcn = i40iw_free_qp;
527         cqp_request->param = (void *)&iwqp->sc_qp;
528         cqp_info = &cqp_request->info;
529         cqp_info->cqp_cmd = OP_QP_DESTROY;
530         cqp_info->post_sq = 1;
531         cqp_info->in.u.qp_destroy.qp = &iwqp->sc_qp;
532         cqp_info->in.u.qp_destroy.scratch = (uintptr_t)cqp_request;
533         cqp_info->in.u.qp_destroy.remove_hash_idx = true;
534         status = i40iw_handle_cqp_op(iwdev, cqp_request);
535         if (status)
536                 i40iw_pr_err("CQP-OP Destroy QP fail");
537 }
538
539 /**
540  * i40iw_get_qp - get qp address
541  * @device: iwarp device
542  * @qpn: qp number
543  */
544 struct ib_qp *i40iw_get_qp(struct ib_device *device, int qpn)
545 {
546         struct i40iw_device *iwdev = to_iwdev(device);
547
548         if ((qpn < IW_FIRST_QPN) || (qpn >= iwdev->max_qp))
549                 return NULL;
550
551         return &iwdev->qp_table[qpn]->ibqp;
552 }
553
554 /**
555  * i40iw_debug_buf - print debug msg and buffer is mask set
556  * @dev: hardware control device structure
557  * @mask: mask to compare if to print debug buffer
558  * @buf: points buffer addr
559  * @size: saize of buffer to print
560  */
561 void i40iw_debug_buf(struct i40iw_sc_dev *dev,
562                      enum i40iw_debug_flag mask,
563                      char *desc,
564                      u64 *buf,
565                      u32 size)
566 {
567         u32 i;
568
569         if (!(dev->debug_mask & mask))
570                 return;
571         i40iw_debug(dev, mask, "%s\n", desc);
572         i40iw_debug(dev, mask, "starting address virt=%p phy=%llxh\n", buf,
573                     (unsigned long long)virt_to_phys(buf));
574
575         for (i = 0; i < size; i += 8)
576                 i40iw_debug(dev, mask, "index %03d val: %016llx\n", i, buf[i / 8]);
577 }
578
579 /**
580  * i40iw_get_hw_addr - return hw addr
581  * @par: points to shared dev
582  */
583 u8 __iomem *i40iw_get_hw_addr(void *par)
584 {
585         struct i40iw_sc_dev *dev = (struct i40iw_sc_dev *)par;
586
587         return dev->hw->hw_addr;
588 }
589
590 /**
591  * i40iw_remove_head - return head entry and remove from list
592  * @list: list for entry
593  */
594 void *i40iw_remove_head(struct list_head *list)
595 {
596         struct list_head *entry;
597
598         if (list_empty(list))
599                 return NULL;
600
601         entry = (void *)list->next;
602         list_del(entry);
603         return (void *)entry;
604 }
605
606 /**
607  * i40iw_allocate_dma_mem - Memory alloc helper fn
608  * @hw:   pointer to the HW structure
609  * @mem:  ptr to mem struct to fill out
610  * @size: size of memory requested
611  * @alignment: what to align the allocation to
612  */
613 enum i40iw_status_code i40iw_allocate_dma_mem(struct i40iw_hw *hw,
614                                               struct i40iw_dma_mem *mem,
615                                               u64 size,
616                                               u32 alignment)
617 {
618         struct pci_dev *pcidev = (struct pci_dev *)hw->dev_context;
619
620         if (!mem)
621                 return I40IW_ERR_PARAM;
622         mem->size = ALIGN(size, alignment);
623         mem->va = dma_zalloc_coherent(&pcidev->dev, mem->size,
624                                       (dma_addr_t *)&mem->pa, GFP_KERNEL);
625         if (!mem->va)
626                 return I40IW_ERR_NO_MEMORY;
627         return 0;
628 }
629
630 /**
631  * i40iw_free_dma_mem - Memory free helper fn
632  * @hw:   pointer to the HW structure
633  * @mem:  ptr to mem struct to free
634  */
635 void i40iw_free_dma_mem(struct i40iw_hw *hw, struct i40iw_dma_mem *mem)
636 {
637         struct pci_dev *pcidev = (struct pci_dev *)hw->dev_context;
638
639         if (!mem || !mem->va)
640                 return;
641
642         dma_free_coherent(&pcidev->dev, mem->size,
643                           mem->va, (dma_addr_t)mem->pa);
644         mem->va = NULL;
645 }
646
647 /**
648  * i40iw_allocate_virt_mem - virtual memory alloc helper fn
649  * @hw:   pointer to the HW structure
650  * @mem:  ptr to mem struct to fill out
651  * @size: size of memory requested
652  */
653 enum i40iw_status_code i40iw_allocate_virt_mem(struct i40iw_hw *hw,
654                                                struct i40iw_virt_mem *mem,
655                                                u32 size)
656 {
657         if (!mem)
658                 return I40IW_ERR_PARAM;
659
660         mem->size = size;
661         mem->va = kzalloc(size, GFP_KERNEL);
662
663         if (mem->va)
664                 return 0;
665         else
666                 return I40IW_ERR_NO_MEMORY;
667 }
668
669 /**
670  * i40iw_free_virt_mem - virtual memory free helper fn
671  * @hw:   pointer to the HW structure
672  * @mem:  ptr to mem struct to free
673  */
674 enum i40iw_status_code i40iw_free_virt_mem(struct i40iw_hw *hw,
675                                            struct i40iw_virt_mem *mem)
676 {
677         if (!mem)
678                 return I40IW_ERR_PARAM;
679         kfree(mem->va);
680         mem->va = NULL;
681         return 0;
682 }
683
684 /**
685  * i40iw_cqp_sds_cmd - create cqp command for sd
686  * @dev: hardware control device structure
687  * @sd_info: information  for sd cqp
688  *
689  */
690 enum i40iw_status_code i40iw_cqp_sds_cmd(struct i40iw_sc_dev *dev,
691                                          struct i40iw_update_sds_info *sdinfo)
692 {
693         enum i40iw_status_code status;
694         struct i40iw_cqp_request *cqp_request;
695         struct cqp_commands_info *cqp_info;
696         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
697
698         cqp_request = i40iw_get_cqp_request(&iwdev->cqp, true);
699         if (!cqp_request)
700                 return I40IW_ERR_NO_MEMORY;
701         cqp_info = &cqp_request->info;
702         memcpy(&cqp_info->in.u.update_pe_sds.info, sdinfo,
703                sizeof(cqp_info->in.u.update_pe_sds.info));
704         cqp_info->cqp_cmd = OP_UPDATE_PE_SDS;
705         cqp_info->post_sq = 1;
706         cqp_info->in.u.update_pe_sds.dev = dev;
707         cqp_info->in.u.update_pe_sds.scratch = (uintptr_t)cqp_request;
708         status = i40iw_handle_cqp_op(iwdev, cqp_request);
709         if (status)
710                 i40iw_pr_err("CQP-OP Update SD's fail");
711         return status;
712 }
713
714 /**
715  * i40iw_term_modify_qp - modify qp for term message
716  * @qp: hardware control qp
717  * @next_state: qp's next state
718  * @term: terminate code
719  * @term_len: length
720  */
721 void i40iw_term_modify_qp(struct i40iw_sc_qp *qp, u8 next_state, u8 term, u8 term_len)
722 {
723         struct i40iw_qp *iwqp;
724
725         iwqp = (struct i40iw_qp *)qp->back_qp;
726         i40iw_next_iw_state(iwqp, next_state, 0, term, term_len);
727 };
728
729 /**
730  * i40iw_terminate_done - after terminate is completed
731  * @qp: hardware control qp
732  * @timeout_occurred: indicates if terminate timer expired
733  */
734 void i40iw_terminate_done(struct i40iw_sc_qp *qp, int timeout_occurred)
735 {
736         struct i40iw_qp *iwqp;
737         u32 next_iwarp_state = I40IW_QP_STATE_ERROR;
738         u8 hte = 0;
739         bool first_time;
740         unsigned long flags;
741
742         iwqp = (struct i40iw_qp *)qp->back_qp;
743         spin_lock_irqsave(&iwqp->lock, flags);
744         if (iwqp->hte_added) {
745                 iwqp->hte_added = 0;
746                 hte = 1;
747         }
748         first_time = !(qp->term_flags & I40IW_TERM_DONE);
749         qp->term_flags |= I40IW_TERM_DONE;
750         spin_unlock_irqrestore(&iwqp->lock, flags);
751         if (first_time) {
752                 if (!timeout_occurred)
753                         i40iw_terminate_del_timer(qp);
754                 else
755                         next_iwarp_state = I40IW_QP_STATE_CLOSING;
756
757                 i40iw_next_iw_state(iwqp, next_iwarp_state, hte, 0, 0);
758                 i40iw_cm_disconn(iwqp);
759         }
760 }
761
762 /**
763  * i40iw_terminate_imeout - timeout happened
764  * @context: points to iwarp qp
765  */
766 static void i40iw_terminate_timeout(unsigned long context)
767 {
768         struct i40iw_qp *iwqp = (struct i40iw_qp *)context;
769         struct i40iw_sc_qp *qp = (struct i40iw_sc_qp *)&iwqp->sc_qp;
770
771         i40iw_terminate_done(qp, 1);
772 }
773
774 /**
775  * i40iw_terminate_start_timer - start terminate timeout
776  * @qp: hardware control qp
777  */
778 void i40iw_terminate_start_timer(struct i40iw_sc_qp *qp)
779 {
780         struct i40iw_qp *iwqp;
781
782         iwqp = (struct i40iw_qp *)qp->back_qp;
783         init_timer(&iwqp->terminate_timer);
784         iwqp->terminate_timer.function = i40iw_terminate_timeout;
785         iwqp->terminate_timer.expires = jiffies + HZ;
786         iwqp->terminate_timer.data = (unsigned long)iwqp;
787         add_timer(&iwqp->terminate_timer);
788 }
789
790 /**
791  * i40iw_terminate_del_timer - delete terminate timeout
792  * @qp: hardware control qp
793  */
794 void i40iw_terminate_del_timer(struct i40iw_sc_qp *qp)
795 {
796         struct i40iw_qp *iwqp;
797
798         iwqp = (struct i40iw_qp *)qp->back_qp;
799         del_timer(&iwqp->terminate_timer);
800 }
801
802 /**
803  * i40iw_cqp_generic_worker - generic worker for cqp
804  * @work: work pointer
805  */
806 static void i40iw_cqp_generic_worker(struct work_struct *work)
807 {
808         struct i40iw_virtchnl_work_info *work_info =
809             &((struct virtchnl_work *)work)->work_info;
810
811         if (work_info->worker_vf_dev)
812                 work_info->callback_fcn(work_info->worker_vf_dev);
813 }
814
815 /**
816  * i40iw_cqp_spawn_worker - spawn worket thread
817  * @iwdev: device struct pointer
818  * @work_info: work request info
819  * @iw_vf_idx: virtual function index
820  */
821 void i40iw_cqp_spawn_worker(struct i40iw_sc_dev *dev,
822                             struct i40iw_virtchnl_work_info *work_info,
823                             u32 iw_vf_idx)
824 {
825         struct virtchnl_work *work;
826         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
827
828         work = &iwdev->virtchnl_w[iw_vf_idx];
829         memcpy(&work->work_info, work_info, sizeof(*work_info));
830         INIT_WORK(&work->work, i40iw_cqp_generic_worker);
831         queue_work(iwdev->virtchnl_wq, &work->work);
832 }
833
834 /**
835  * i40iw_cqp_manage_hmc_fcn_worker -
836  * @work: work pointer for hmc info
837  */
838 static void i40iw_cqp_manage_hmc_fcn_worker(struct work_struct *work)
839 {
840         struct i40iw_cqp_request *cqp_request =
841             ((struct virtchnl_work *)work)->cqp_request;
842         struct i40iw_ccq_cqe_info ccq_cqe_info;
843         struct i40iw_hmc_fcn_info *hmcfcninfo =
844                         &cqp_request->info.in.u.manage_hmc_pm.info;
845         struct i40iw_device *iwdev =
846             (struct i40iw_device *)cqp_request->info.in.u.manage_hmc_pm.dev->back_dev;
847
848         ccq_cqe_info.cqp = NULL;
849         ccq_cqe_info.maj_err_code = cqp_request->compl_info.maj_err_code;
850         ccq_cqe_info.min_err_code = cqp_request->compl_info.min_err_code;
851         ccq_cqe_info.op_code = cqp_request->compl_info.op_code;
852         ccq_cqe_info.op_ret_val = cqp_request->compl_info.op_ret_val;
853         ccq_cqe_info.scratch = 0;
854         ccq_cqe_info.error = cqp_request->compl_info.error;
855         hmcfcninfo->callback_fcn(cqp_request->info.in.u.manage_hmc_pm.dev,
856                                  hmcfcninfo->cqp_callback_param, &ccq_cqe_info);
857         i40iw_put_cqp_request(&iwdev->cqp, cqp_request);
858 }
859
860 /**
861  * i40iw_cqp_manage_hmc_fcn_callback - called function after cqp completion
862  * @cqp_request: cqp request info struct for hmc fun
863  * @unused: unused param of callback
864  */
865 static void i40iw_cqp_manage_hmc_fcn_callback(struct i40iw_cqp_request *cqp_request,
866                                               u32 unused)
867 {
868         struct virtchnl_work *work;
869         struct i40iw_hmc_fcn_info *hmcfcninfo =
870             &cqp_request->info.in.u.manage_hmc_pm.info;
871         struct i40iw_device *iwdev =
872             (struct i40iw_device *)cqp_request->info.in.u.manage_hmc_pm.dev->
873             back_dev;
874
875         if (hmcfcninfo && hmcfcninfo->callback_fcn) {
876                 i40iw_debug(&iwdev->sc_dev, I40IW_DEBUG_HMC, "%s1\n", __func__);
877                 atomic_inc(&cqp_request->refcount);
878                 work = &iwdev->virtchnl_w[hmcfcninfo->iw_vf_idx];
879                 work->cqp_request = cqp_request;
880                 INIT_WORK(&work->work, i40iw_cqp_manage_hmc_fcn_worker);
881                 queue_work(iwdev->virtchnl_wq, &work->work);
882                 i40iw_debug(&iwdev->sc_dev, I40IW_DEBUG_HMC, "%s2\n", __func__);
883         } else {
884                 i40iw_debug(&iwdev->sc_dev, I40IW_DEBUG_HMC, "%s: Something wrong\n", __func__);
885         }
886 }
887
888 /**
889  * i40iw_cqp_manage_hmc_fcn_cmd - issue cqp command to manage hmc
890  * @dev: hardware control device structure
891  * @hmcfcninfo: info for hmc
892  */
893 enum i40iw_status_code i40iw_cqp_manage_hmc_fcn_cmd(struct i40iw_sc_dev *dev,
894                                                     struct i40iw_hmc_fcn_info *hmcfcninfo)
895 {
896         enum i40iw_status_code status;
897         struct i40iw_cqp_request *cqp_request;
898         struct cqp_commands_info *cqp_info;
899         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
900
901         i40iw_debug(&iwdev->sc_dev, I40IW_DEBUG_HMC, "%s\n", __func__);
902         cqp_request = i40iw_get_cqp_request(&iwdev->cqp, false);
903         if (!cqp_request)
904                 return I40IW_ERR_NO_MEMORY;
905         cqp_info = &cqp_request->info;
906         cqp_request->callback_fcn = i40iw_cqp_manage_hmc_fcn_callback;
907         cqp_request->param = hmcfcninfo;
908         memcpy(&cqp_info->in.u.manage_hmc_pm.info, hmcfcninfo,
909                sizeof(*hmcfcninfo));
910         cqp_info->in.u.manage_hmc_pm.dev = dev;
911         cqp_info->cqp_cmd = OP_MANAGE_HMC_PM_FUNC_TABLE;
912         cqp_info->post_sq = 1;
913         cqp_info->in.u.manage_hmc_pm.scratch = (uintptr_t)cqp_request;
914         status = i40iw_handle_cqp_op(iwdev, cqp_request);
915         if (status)
916                 i40iw_pr_err("CQP-OP Manage HMC fail");
917         return status;
918 }
919
920 /**
921  * i40iw_cqp_query_fpm_values_cmd - send cqp command for fpm
922  * @iwdev: function device struct
923  * @values_mem: buffer for fpm
924  * @hmc_fn_id: function id for fpm
925  */
926 enum i40iw_status_code i40iw_cqp_query_fpm_values_cmd(struct i40iw_sc_dev *dev,
927                                                       struct i40iw_dma_mem *values_mem,
928                                                       u8 hmc_fn_id)
929 {
930         enum i40iw_status_code status;
931         struct i40iw_cqp_request *cqp_request;
932         struct cqp_commands_info *cqp_info;
933         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
934
935         cqp_request = i40iw_get_cqp_request(&iwdev->cqp, true);
936         if (!cqp_request)
937                 return I40IW_ERR_NO_MEMORY;
938         cqp_info = &cqp_request->info;
939         cqp_request->param = NULL;
940         cqp_info->in.u.query_fpm_values.cqp = dev->cqp;
941         cqp_info->in.u.query_fpm_values.fpm_values_pa = values_mem->pa;
942         cqp_info->in.u.query_fpm_values.fpm_values_va = values_mem->va;
943         cqp_info->in.u.query_fpm_values.hmc_fn_id = hmc_fn_id;
944         cqp_info->cqp_cmd = OP_QUERY_FPM_VALUES;
945         cqp_info->post_sq = 1;
946         cqp_info->in.u.query_fpm_values.scratch = (uintptr_t)cqp_request;
947         status = i40iw_handle_cqp_op(iwdev, cqp_request);
948         if (status)
949                 i40iw_pr_err("CQP-OP Query FPM fail");
950         return status;
951 }
952
953 /**
954  * i40iw_cqp_commit_fpm_values_cmd - commit fpm values in hw
955  * @dev: hardware control device structure
956  * @values_mem: buffer with fpm values
957  * @hmc_fn_id: function id for fpm
958  */
959 enum i40iw_status_code i40iw_cqp_commit_fpm_values_cmd(struct i40iw_sc_dev *dev,
960                                                        struct i40iw_dma_mem *values_mem,
961                                                        u8 hmc_fn_id)
962 {
963         enum i40iw_status_code status;
964         struct i40iw_cqp_request *cqp_request;
965         struct cqp_commands_info *cqp_info;
966         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
967
968         cqp_request = i40iw_get_cqp_request(&iwdev->cqp, true);
969         if (!cqp_request)
970                 return I40IW_ERR_NO_MEMORY;
971         cqp_info = &cqp_request->info;
972         cqp_request->param = NULL;
973         cqp_info->in.u.commit_fpm_values.cqp = dev->cqp;
974         cqp_info->in.u.commit_fpm_values.fpm_values_pa = values_mem->pa;
975         cqp_info->in.u.commit_fpm_values.fpm_values_va = values_mem->va;
976         cqp_info->in.u.commit_fpm_values.hmc_fn_id = hmc_fn_id;
977         cqp_info->cqp_cmd = OP_COMMIT_FPM_VALUES;
978         cqp_info->post_sq = 1;
979         cqp_info->in.u.commit_fpm_values.scratch = (uintptr_t)cqp_request;
980         status = i40iw_handle_cqp_op(iwdev, cqp_request);
981         if (status)
982                 i40iw_pr_err("CQP-OP Commit FPM fail");
983         return status;
984 }
985
986 /**
987  * i40iw_vf_wait_vchnl_resp - wait for channel msg
988  * @iwdev: function's device struct
989  */
990 enum i40iw_status_code i40iw_vf_wait_vchnl_resp(struct i40iw_sc_dev *dev)
991 {
992         struct i40iw_device *iwdev = dev->back_dev;
993         enum i40iw_status_code err_code = 0;
994         int timeout_ret;
995
996         i40iw_debug(dev, I40IW_DEBUG_VIRT, "%s[%u] dev %p, iwdev %p\n",
997                     __func__, __LINE__, dev, iwdev);
998         atomic_add(2, &iwdev->vchnl_msgs);
999         timeout_ret = wait_event_timeout(iwdev->vchnl_waitq,
1000                                          (atomic_read(&iwdev->vchnl_msgs) == 1),
1001                                          I40IW_VCHNL_EVENT_TIMEOUT);
1002         atomic_dec(&iwdev->vchnl_msgs);
1003         if (!timeout_ret) {
1004                 i40iw_pr_err("virt channel completion timeout = 0x%x\n", timeout_ret);
1005                 err_code = I40IW_ERR_TIMEOUT;
1006         }
1007         return err_code;
1008 }
1009
1010 /**
1011  * i40iw_ieq_mpa_crc_ae - generate AE for crc error
1012  * @dev: hardware control device structure
1013  * @qp: hardware control qp
1014  */
1015 void i40iw_ieq_mpa_crc_ae(struct i40iw_sc_dev *dev, struct i40iw_sc_qp *qp)
1016 {
1017         struct i40iw_qp_flush_info info;
1018         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
1019
1020         i40iw_debug(dev, I40IW_DEBUG_AEQ, "%s entered\n", __func__);
1021         memset(&info, 0, sizeof(info));
1022         info.ae_code = I40IW_AE_LLP_RECEIVED_MPA_CRC_ERROR;
1023         info.generate_ae = true;
1024         info.ae_source = 0x3;
1025         (void)i40iw_hw_flush_wqes(iwdev, qp, &info, false);
1026 }
1027
1028 /**
1029  * i40iw_init_hash_desc - initialize hash for crc calculation
1030  * @desc: cryption type
1031  */
1032 enum i40iw_status_code i40iw_init_hash_desc(struct shash_desc **desc)
1033 {
1034         struct crypto_shash *tfm;
1035         struct shash_desc *tdesc;
1036
1037         tfm = crypto_alloc_shash("crc32c", 0, 0);
1038         if (IS_ERR(tfm))
1039                 return I40IW_ERR_MPA_CRC;
1040
1041         tdesc = kzalloc(sizeof(*tdesc) + crypto_shash_descsize(tfm),
1042                         GFP_KERNEL);
1043         if (!tdesc) {
1044                 crypto_free_shash(tfm);
1045                 return I40IW_ERR_MPA_CRC;
1046         }
1047         tdesc->tfm = tfm;
1048         *desc = tdesc;
1049
1050         return 0;
1051 }
1052
1053 /**
1054  * i40iw_free_hash_desc - free hash desc
1055  * @desc: to be freed
1056  */
1057 void i40iw_free_hash_desc(struct shash_desc *desc)
1058 {
1059         if (desc) {
1060                 crypto_free_shash(desc->tfm);
1061                 kfree(desc);
1062         }
1063 }
1064
1065 /**
1066  * i40iw_alloc_query_fpm_buf - allocate buffer for fpm
1067  * @dev: hardware control device structure
1068  * @mem: buffer ptr for fpm to be allocated
1069  * @return: memory allocation status
1070  */
1071 enum i40iw_status_code i40iw_alloc_query_fpm_buf(struct i40iw_sc_dev *dev,
1072                                                  struct i40iw_dma_mem *mem)
1073 {
1074         enum i40iw_status_code status;
1075         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
1076
1077         status = i40iw_obj_aligned_mem(iwdev, mem, I40IW_QUERY_FPM_BUF_SIZE,
1078                                        I40IW_FPM_QUERY_BUF_ALIGNMENT_MASK);
1079         return status;
1080 }
1081
1082 /**
1083  * i40iw_ieq_check_mpacrc - check if mpa crc is OK
1084  * @desc: desc for hash
1085  * @addr: address of buffer for crc
1086  * @length: length of buffer
1087  * @value: value to be compared
1088  */
1089 enum i40iw_status_code i40iw_ieq_check_mpacrc(struct shash_desc *desc,
1090                                               void *addr,
1091                                               u32 length,
1092                                               u32 value)
1093 {
1094         u32 crc = 0;
1095         int ret;
1096         enum i40iw_status_code ret_code = 0;
1097
1098         crypto_shash_init(desc);
1099         ret = crypto_shash_update(desc, addr, length);
1100         if (!ret)
1101                 crypto_shash_final(desc, (u8 *)&crc);
1102         if (crc != value) {
1103                 i40iw_pr_err("mpa crc check fail\n");
1104                 ret_code = I40IW_ERR_MPA_CRC;
1105         }
1106         return ret_code;
1107 }
1108
1109 /**
1110  * i40iw_ieq_get_qp - get qp based on quad in puda buffer
1111  * @dev: hardware control device structure
1112  * @buf: receive puda buffer on exception q
1113  */
1114 struct i40iw_sc_qp *i40iw_ieq_get_qp(struct i40iw_sc_dev *dev,
1115                                      struct i40iw_puda_buf *buf)
1116 {
1117         struct i40iw_device *iwdev = (struct i40iw_device *)dev->back_dev;
1118         struct i40iw_qp *iwqp;
1119         struct i40iw_cm_node *cm_node;
1120         u32 loc_addr[4], rem_addr[4];
1121         u16 loc_port, rem_port;
1122         struct ipv6hdr *ip6h;
1123         struct iphdr *iph = (struct iphdr *)buf->iph;
1124         struct tcphdr *tcph = (struct tcphdr *)buf->tcph;
1125
1126         if (iph->version == 4) {
1127                 memset(loc_addr, 0, sizeof(loc_addr));
1128                 loc_addr[0] = ntohl(iph->daddr);
1129                 memset(rem_addr, 0, sizeof(rem_addr));
1130                 rem_addr[0] = ntohl(iph->saddr);
1131         } else {
1132                 ip6h = (struct ipv6hdr *)buf->iph;
1133                 i40iw_copy_ip_ntohl(loc_addr, ip6h->daddr.in6_u.u6_addr32);
1134                 i40iw_copy_ip_ntohl(rem_addr, ip6h->saddr.in6_u.u6_addr32);
1135         }
1136         loc_port = ntohs(tcph->dest);
1137         rem_port = ntohs(tcph->source);
1138
1139         cm_node = i40iw_find_node(&iwdev->cm_core, rem_port, rem_addr, loc_port,
1140                                   loc_addr, false);
1141         if (!cm_node)
1142                 return NULL;
1143         iwqp = cm_node->iwqp;
1144         return &iwqp->sc_qp;
1145 }
1146
1147 /**
1148  * i40iw_ieq_update_tcpip_info - update tcpip in the buffer
1149  * @buf: puda to update
1150  * @length: length of buffer
1151  * @seqnum: seq number for tcp
1152  */
1153 void i40iw_ieq_update_tcpip_info(struct i40iw_puda_buf *buf, u16 length, u32 seqnum)
1154 {
1155         struct tcphdr *tcph;
1156         struct iphdr *iph;
1157         u16 iphlen;
1158         u16 packetsize;
1159         u8 *addr = (u8 *)buf->mem.va;
1160
1161         iphlen = (buf->ipv4) ? 20 : 40;
1162         iph = (struct iphdr *)(addr + buf->maclen);
1163         tcph = (struct tcphdr *)(addr + buf->maclen + iphlen);
1164         packetsize = length + buf->tcphlen + iphlen;
1165
1166         iph->tot_len = htons(packetsize);
1167         tcph->seq = htonl(seqnum);
1168 }
1169
1170 /**
1171  * i40iw_puda_get_tcpip_info - get tcpip info from puda buffer
1172  * @info: to get information
1173  * @buf: puda buffer
1174  */
1175 enum i40iw_status_code i40iw_puda_get_tcpip_info(struct i40iw_puda_completion_info *info,
1176                                                  struct i40iw_puda_buf *buf)
1177 {
1178         struct iphdr *iph;
1179         struct ipv6hdr *ip6h;
1180         struct tcphdr *tcph;
1181         u16 iphlen;
1182         u16 pkt_len;
1183         u8 *mem = (u8 *)buf->mem.va;
1184         struct ethhdr *ethh = (struct ethhdr *)buf->mem.va;
1185
1186         if (ethh->h_proto == htons(0x8100)) {
1187                 info->vlan_valid = true;
1188                 buf->vlan_id = ntohs(((struct vlan_ethhdr *)ethh)->h_vlan_TCI) & VLAN_VID_MASK;
1189         }
1190         buf->maclen = (info->vlan_valid) ? 18 : 14;
1191         iphlen = (info->l3proto) ? 40 : 20;
1192         buf->ipv4 = (info->l3proto) ? false : true;
1193         buf->iph = mem + buf->maclen;
1194         iph = (struct iphdr *)buf->iph;
1195
1196         buf->tcph = buf->iph + iphlen;
1197         tcph = (struct tcphdr *)buf->tcph;
1198
1199         if (buf->ipv4) {
1200                 pkt_len = ntohs(iph->tot_len);
1201         } else {
1202                 ip6h = (struct ipv6hdr *)buf->iph;
1203                 pkt_len = ntohs(ip6h->payload_len) + iphlen;
1204         }
1205
1206         buf->totallen = pkt_len + buf->maclen;
1207
1208         if (info->payload_len < buf->totallen - 4) {
1209                 i40iw_pr_err("payload_len = 0x%x totallen expected0x%x\n",
1210                              info->payload_len, buf->totallen);
1211                 return I40IW_ERR_INVALID_SIZE;
1212         }
1213
1214         buf->tcphlen = (tcph->doff) << 2;
1215         buf->datalen = pkt_len - iphlen - buf->tcphlen;
1216         buf->data = (buf->datalen) ? buf->tcph + buf->tcphlen : NULL;
1217         buf->hdrlen = buf->maclen + iphlen + buf->tcphlen;
1218         buf->seqnum = ntohl(tcph->seq);
1219         return 0;
1220 }
1221
1222 /**
1223  * i40iw_hw_stats_timeout - Stats timer-handler which updates all HW stats
1224  * @dev: hardware control device structure
1225  */
1226 static void i40iw_hw_stats_timeout(unsigned long dev)
1227 {
1228         struct i40iw_sc_dev *pf_dev = (struct i40iw_sc_dev *)dev;
1229         struct i40iw_dev_pestat *pf_devstat = &pf_dev->dev_pestat;
1230         struct i40iw_dev_pestat *vf_devstat = NULL;
1231         u16 iw_vf_idx;
1232         unsigned long flags;
1233
1234         /*PF*/
1235         pf_devstat->ops.iw_hw_stat_read_all(pf_devstat, &pf_devstat->hw_stats);
1236         for (iw_vf_idx = 0; iw_vf_idx < I40IW_MAX_PE_ENABLED_VF_COUNT; iw_vf_idx++) {
1237                 spin_lock_irqsave(&pf_devstat->stats_lock, flags);
1238                 if (pf_dev->vf_dev[iw_vf_idx]) {
1239                         if (pf_dev->vf_dev[iw_vf_idx]->stats_initialized) {
1240                                 vf_devstat = &pf_dev->vf_dev[iw_vf_idx]->dev_pestat;
1241                                 vf_devstat->ops.iw_hw_stat_read_all(vf_devstat, &vf_devstat->hw_stats);
1242                         }
1243                 }
1244                 spin_unlock_irqrestore(&pf_devstat->stats_lock, flags);
1245         }
1246
1247         mod_timer(&pf_devstat->stats_timer,
1248                   jiffies + msecs_to_jiffies(STATS_TIMER_DELAY));
1249 }
1250
1251 /**
1252  * i40iw_hw_stats_start_timer - Start periodic stats timer
1253  * @dev: hardware control device structure
1254  */
1255 void i40iw_hw_stats_start_timer(struct i40iw_sc_dev *dev)
1256 {
1257         struct i40iw_dev_pestat *devstat = &dev->dev_pestat;
1258
1259         init_timer(&devstat->stats_timer);
1260         devstat->stats_timer.function = i40iw_hw_stats_timeout;
1261         devstat->stats_timer.data = (unsigned long)dev;
1262         mod_timer(&devstat->stats_timer,
1263                   jiffies + msecs_to_jiffies(STATS_TIMER_DELAY));
1264 }
1265
1266 /**
1267  * i40iw_hw_stats_del_timer - Delete periodic stats timer
1268  * @dev: hardware control device structure
1269  */
1270 void i40iw_hw_stats_del_timer(struct i40iw_sc_dev *dev)
1271 {
1272         struct i40iw_dev_pestat *devstat = &dev->dev_pestat;
1273
1274         del_timer_sync(&devstat->stats_timer);
1275 }