1 // SPDX-License-Identifier: GPL-2.0-only
2 /* Copyright (C) 2023 Intel Corporation */
3 
4 #include "idpf.h"
5 #include "idpf_virtchnl.h"
6 
7 static const struct net_device_ops idpf_netdev_ops;
8 
9 /**
10  * idpf_init_vector_stack - Fill the MSIX vector stack with vector index
11  * @adapter: private data struct
12  *
13  * Return 0 on success, error on failure
14  */
idpf_init_vector_stack(struct idpf_adapter * adapter)15 static int idpf_init_vector_stack(struct idpf_adapter *adapter)
16 {
17 	struct idpf_vector_lifo *stack;
18 	u16 min_vec;
19 	u32 i;
20 
21 	mutex_lock(&adapter->vector_lock);
22 	min_vec = adapter->num_msix_entries - adapter->num_avail_msix;
23 	stack = &adapter->vector_stack;
24 	stack->size = adapter->num_msix_entries;
25 	/* set the base and top to point at start of the 'free pool' to
26 	 * distribute the unused vectors on-demand basis
27 	 */
28 	stack->base = min_vec;
29 	stack->top = min_vec;
30 
31 	stack->vec_idx = kcalloc(stack->size, sizeof(u16), GFP_KERNEL);
32 	if (!stack->vec_idx) {
33 		mutex_unlock(&adapter->vector_lock);
34 
35 		return -ENOMEM;
36 	}
37 
38 	for (i = 0; i < stack->size; i++)
39 		stack->vec_idx[i] = i;
40 
41 	mutex_unlock(&adapter->vector_lock);
42 
43 	return 0;
44 }
45 
46 /**
47  * idpf_deinit_vector_stack - zero out the MSIX vector stack
48  * @adapter: private data struct
49  */
idpf_deinit_vector_stack(struct idpf_adapter * adapter)50 static void idpf_deinit_vector_stack(struct idpf_adapter *adapter)
51 {
52 	struct idpf_vector_lifo *stack;
53 
54 	mutex_lock(&adapter->vector_lock);
55 	stack = &adapter->vector_stack;
56 	kfree(stack->vec_idx);
57 	stack->vec_idx = NULL;
58 	mutex_unlock(&adapter->vector_lock);
59 }
60 
61 /**
62  * idpf_mb_intr_rel_irq - Free the IRQ association with the OS
63  * @adapter: adapter structure
64  *
65  * This will also disable interrupt mode and queue up mailbox task. Mailbox
66  * task will reschedule itself if not in interrupt mode.
67  */
idpf_mb_intr_rel_irq(struct idpf_adapter * adapter)68 static void idpf_mb_intr_rel_irq(struct idpf_adapter *adapter)
69 {
70 	clear_bit(IDPF_MB_INTR_MODE, adapter->flags);
71 	kfree(free_irq(adapter->msix_entries[0].vector, adapter));
72 	queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task, 0);
73 }
74 
75 /**
76  * idpf_intr_rel - Release interrupt capabilities and free memory
77  * @adapter: adapter to disable interrupts on
78  */
idpf_intr_rel(struct idpf_adapter * adapter)79 void idpf_intr_rel(struct idpf_adapter *adapter)
80 {
81 	if (!adapter->msix_entries)
82 		return;
83 
84 	idpf_mb_intr_rel_irq(adapter);
85 	pci_free_irq_vectors(adapter->pdev);
86 	idpf_send_dealloc_vectors_msg(adapter);
87 	idpf_deinit_vector_stack(adapter);
88 	kfree(adapter->msix_entries);
89 	adapter->msix_entries = NULL;
90 }
91 
92 /**
93  * idpf_mb_intr_clean - Interrupt handler for the mailbox
94  * @irq: interrupt number
95  * @data: pointer to the adapter structure
96  */
idpf_mb_intr_clean(int __always_unused irq,void * data)97 static irqreturn_t idpf_mb_intr_clean(int __always_unused irq, void *data)
98 {
99 	struct idpf_adapter *adapter = (struct idpf_adapter *)data;
100 
101 	queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task, 0);
102 
103 	return IRQ_HANDLED;
104 }
105 
106 /**
107  * idpf_mb_irq_enable - Enable MSIX interrupt for the mailbox
108  * @adapter: adapter to get the hardware address for register write
109  */
idpf_mb_irq_enable(struct idpf_adapter * adapter)110 static void idpf_mb_irq_enable(struct idpf_adapter *adapter)
111 {
112 	struct idpf_intr_reg *intr = &adapter->mb_vector.intr_reg;
113 	u32 val;
114 
115 	val = intr->dyn_ctl_intena_m | intr->dyn_ctl_itridx_m;
116 	writel(val, intr->dyn_ctl);
117 	writel(intr->icr_ena_ctlq_m, intr->icr_ena);
118 }
119 
120 /**
121  * idpf_mb_intr_req_irq - Request irq for the mailbox interrupt
122  * @adapter: adapter structure to pass to the mailbox irq handler
123  */
idpf_mb_intr_req_irq(struct idpf_adapter * adapter)124 static int idpf_mb_intr_req_irq(struct idpf_adapter *adapter)
125 {
126 	int irq_num, mb_vidx = 0, err;
127 	char *name;
128 
129 	irq_num = adapter->msix_entries[mb_vidx].vector;
130 	name = kasprintf(GFP_KERNEL, "%s-%s-%d",
131 			 dev_driver_string(&adapter->pdev->dev),
132 			 "Mailbox", mb_vidx);
133 	err = request_irq(irq_num, adapter->irq_mb_handler, 0, name, adapter);
134 	if (err) {
135 		dev_err(&adapter->pdev->dev,
136 			"IRQ request for mailbox failed, error: %d\n", err);
137 
138 		return err;
139 	}
140 
141 	set_bit(IDPF_MB_INTR_MODE, adapter->flags);
142 
143 	return 0;
144 }
145 
146 /**
147  * idpf_set_mb_vec_id - Set vector index for mailbox
148  * @adapter: adapter structure to access the vector chunks
149  *
150  * The first vector id in the requested vector chunks from the CP is for
151  * the mailbox
152  */
idpf_set_mb_vec_id(struct idpf_adapter * adapter)153 static void idpf_set_mb_vec_id(struct idpf_adapter *adapter)
154 {
155 	if (adapter->req_vec_chunks)
156 		adapter->mb_vector.v_idx =
157 			le16_to_cpu(adapter->caps.mailbox_vector_id);
158 	else
159 		adapter->mb_vector.v_idx = 0;
160 }
161 
162 /**
163  * idpf_mb_intr_init - Initialize the mailbox interrupt
164  * @adapter: adapter structure to store the mailbox vector
165  */
idpf_mb_intr_init(struct idpf_adapter * adapter)166 static int idpf_mb_intr_init(struct idpf_adapter *adapter)
167 {
168 	adapter->dev_ops.reg_ops.mb_intr_reg_init(adapter);
169 	adapter->irq_mb_handler = idpf_mb_intr_clean;
170 
171 	return idpf_mb_intr_req_irq(adapter);
172 }
173 
174 /**
175  * idpf_vector_lifo_push - push MSIX vector index onto stack
176  * @adapter: private data struct
177  * @vec_idx: vector index to store
178  */
idpf_vector_lifo_push(struct idpf_adapter * adapter,u16 vec_idx)179 static int idpf_vector_lifo_push(struct idpf_adapter *adapter, u16 vec_idx)
180 {
181 	struct idpf_vector_lifo *stack = &adapter->vector_stack;
182 
183 	lockdep_assert_held(&adapter->vector_lock);
184 
185 	if (stack->top == stack->base) {
186 		dev_err(&adapter->pdev->dev, "Exceeded the vector stack limit: %d\n",
187 			stack->top);
188 		return -EINVAL;
189 	}
190 
191 	stack->vec_idx[--stack->top] = vec_idx;
192 
193 	return 0;
194 }
195 
196 /**
197  * idpf_vector_lifo_pop - pop MSIX vector index from stack
198  * @adapter: private data struct
199  */
idpf_vector_lifo_pop(struct idpf_adapter * adapter)200 static int idpf_vector_lifo_pop(struct idpf_adapter *adapter)
201 {
202 	struct idpf_vector_lifo *stack = &adapter->vector_stack;
203 
204 	lockdep_assert_held(&adapter->vector_lock);
205 
206 	if (stack->top == stack->size) {
207 		dev_err(&adapter->pdev->dev, "No interrupt vectors are available to distribute!\n");
208 
209 		return -EINVAL;
210 	}
211 
212 	return stack->vec_idx[stack->top++];
213 }
214 
215 /**
216  * idpf_vector_stash - Store the vector indexes onto the stack
217  * @adapter: private data struct
218  * @q_vector_idxs: vector index array
219  * @vec_info: info related to the number of vectors
220  *
221  * This function is a no-op if there are no vectors indexes to be stashed
222  */
idpf_vector_stash(struct idpf_adapter * adapter,u16 * q_vector_idxs,struct idpf_vector_info * vec_info)223 static void idpf_vector_stash(struct idpf_adapter *adapter, u16 *q_vector_idxs,
224 			      struct idpf_vector_info *vec_info)
225 {
226 	int i, base = 0;
227 	u16 vec_idx;
228 
229 	lockdep_assert_held(&adapter->vector_lock);
230 
231 	if (!vec_info->num_curr_vecs)
232 		return;
233 
234 	/* For default vports, no need to stash vector allocated from the
235 	 * default pool onto the stack
236 	 */
237 	if (vec_info->default_vport)
238 		base = IDPF_MIN_Q_VEC;
239 
240 	for (i = vec_info->num_curr_vecs - 1; i >= base ; i--) {
241 		vec_idx = q_vector_idxs[i];
242 		idpf_vector_lifo_push(adapter, vec_idx);
243 		adapter->num_avail_msix++;
244 	}
245 }
246 
247 /**
248  * idpf_req_rel_vector_indexes - Request or release MSIX vector indexes
249  * @adapter: driver specific private structure
250  * @q_vector_idxs: vector index array
251  * @vec_info: info related to the number of vectors
252  *
253  * This is the core function to distribute the MSIX vectors acquired from the
254  * OS. It expects the caller to pass the number of vectors required and
255  * also previously allocated. First, it stashes previously allocated vector
256  * indexes on to the stack and then figures out if it can allocate requested
257  * vectors. It can wait on acquiring the mutex lock. If the caller passes 0 as
258  * requested vectors, then this function just stashes the already allocated
259  * vectors and returns 0.
260  *
261  * Returns actual number of vectors allocated on success, error value on failure
262  * If 0 is returned, implies the stack has no vectors to allocate which is also
263  * a failure case for the caller
264  */
idpf_req_rel_vector_indexes(struct idpf_adapter * adapter,u16 * q_vector_idxs,struct idpf_vector_info * vec_info)265 int idpf_req_rel_vector_indexes(struct idpf_adapter *adapter,
266 				u16 *q_vector_idxs,
267 				struct idpf_vector_info *vec_info)
268 {
269 	u16 num_req_vecs, num_alloc_vecs = 0, max_vecs;
270 	struct idpf_vector_lifo *stack;
271 	int i, j, vecid;
272 
273 	mutex_lock(&adapter->vector_lock);
274 	stack = &adapter->vector_stack;
275 	num_req_vecs = vec_info->num_req_vecs;
276 
277 	/* Stash interrupt vector indexes onto the stack if required */
278 	idpf_vector_stash(adapter, q_vector_idxs, vec_info);
279 
280 	if (!num_req_vecs)
281 		goto rel_lock;
282 
283 	if (vec_info->default_vport) {
284 		/* As IDPF_MIN_Q_VEC per default vport is put aside in the
285 		 * default pool of the stack, use them for default vports
286 		 */
287 		j = vec_info->index * IDPF_MIN_Q_VEC + IDPF_MBX_Q_VEC;
288 		for (i = 0; i < IDPF_MIN_Q_VEC; i++) {
289 			q_vector_idxs[num_alloc_vecs++] = stack->vec_idx[j++];
290 			num_req_vecs--;
291 		}
292 	}
293 
294 	/* Find if stack has enough vector to allocate */
295 	max_vecs = min(adapter->num_avail_msix, num_req_vecs);
296 
297 	for (j = 0; j < max_vecs; j++) {
298 		vecid = idpf_vector_lifo_pop(adapter);
299 		q_vector_idxs[num_alloc_vecs++] = vecid;
300 	}
301 	adapter->num_avail_msix -= max_vecs;
302 
303 rel_lock:
304 	mutex_unlock(&adapter->vector_lock);
305 
306 	return num_alloc_vecs;
307 }
308 
309 /**
310  * idpf_intr_req - Request interrupt capabilities
311  * @adapter: adapter to enable interrupts on
312  *
313  * Returns 0 on success, negative on failure
314  */
idpf_intr_req(struct idpf_adapter * adapter)315 int idpf_intr_req(struct idpf_adapter *adapter)
316 {
317 	u16 default_vports = idpf_get_default_vports(adapter);
318 	int num_q_vecs, total_vecs, num_vec_ids;
319 	int min_vectors, v_actual, err;
320 	unsigned int vector;
321 	u16 *vecids;
322 
323 	total_vecs = idpf_get_reserved_vecs(adapter);
324 	num_q_vecs = total_vecs - IDPF_MBX_Q_VEC;
325 
326 	err = idpf_send_alloc_vectors_msg(adapter, num_q_vecs);
327 	if (err) {
328 		dev_err(&adapter->pdev->dev,
329 			"Failed to allocate %d vectors: %d\n", num_q_vecs, err);
330 
331 		return -EAGAIN;
332 	}
333 
334 	min_vectors = IDPF_MBX_Q_VEC + IDPF_MIN_Q_VEC * default_vports;
335 	v_actual = pci_alloc_irq_vectors(adapter->pdev, min_vectors,
336 					 total_vecs, PCI_IRQ_MSIX);
337 	if (v_actual < min_vectors) {
338 		dev_err(&adapter->pdev->dev, "Failed to allocate MSIX vectors: %d\n",
339 			v_actual);
340 		err = -EAGAIN;
341 		goto send_dealloc_vecs;
342 	}
343 
344 	adapter->msix_entries = kcalloc(v_actual, sizeof(struct msix_entry),
345 					GFP_KERNEL);
346 
347 	if (!adapter->msix_entries) {
348 		err = -ENOMEM;
349 		goto free_irq;
350 	}
351 
352 	idpf_set_mb_vec_id(adapter);
353 
354 	vecids = kcalloc(total_vecs, sizeof(u16), GFP_KERNEL);
355 	if (!vecids) {
356 		err = -ENOMEM;
357 		goto free_msix;
358 	}
359 
360 	num_vec_ids = idpf_get_vec_ids(adapter, vecids, total_vecs,
361 				       &adapter->req_vec_chunks->vchunks);
362 	if (num_vec_ids < v_actual) {
363 		err = -EINVAL;
364 		goto free_vecids;
365 	}
366 
367 	for (vector = 0; vector < v_actual; vector++) {
368 		adapter->msix_entries[vector].entry = vecids[vector];
369 		adapter->msix_entries[vector].vector =
370 			pci_irq_vector(adapter->pdev, vector);
371 	}
372 
373 	adapter->num_req_msix = total_vecs;
374 	adapter->num_msix_entries = v_actual;
375 	/* 'num_avail_msix' is used to distribute excess vectors to the vports
376 	 * after considering the minimum vectors required per each default
377 	 * vport
378 	 */
379 	adapter->num_avail_msix = v_actual - min_vectors;
380 
381 	/* Fill MSIX vector lifo stack with vector indexes */
382 	err = idpf_init_vector_stack(adapter);
383 	if (err)
384 		goto free_vecids;
385 
386 	err = idpf_mb_intr_init(adapter);
387 	if (err)
388 		goto deinit_vec_stack;
389 	idpf_mb_irq_enable(adapter);
390 	kfree(vecids);
391 
392 	return 0;
393 
394 deinit_vec_stack:
395 	idpf_deinit_vector_stack(adapter);
396 free_vecids:
397 	kfree(vecids);
398 free_msix:
399 	kfree(adapter->msix_entries);
400 	adapter->msix_entries = NULL;
401 free_irq:
402 	pci_free_irq_vectors(adapter->pdev);
403 send_dealloc_vecs:
404 	idpf_send_dealloc_vectors_msg(adapter);
405 
406 	return err;
407 }
408 
409 /**
410  * idpf_find_mac_filter - Search filter list for specific mac filter
411  * @vconfig: Vport config structure
412  * @macaddr: The MAC address
413  *
414  * Returns ptr to the filter object or NULL. Must be called while holding the
415  * mac_filter_list_lock.
416  **/
idpf_find_mac_filter(struct idpf_vport_config * vconfig,const u8 * macaddr)417 static struct idpf_mac_filter *idpf_find_mac_filter(struct idpf_vport_config *vconfig,
418 						    const u8 *macaddr)
419 {
420 	struct idpf_mac_filter *f;
421 
422 	if (!macaddr)
423 		return NULL;
424 
425 	list_for_each_entry(f, &vconfig->user_config.mac_filter_list, list) {
426 		if (ether_addr_equal(macaddr, f->macaddr))
427 			return f;
428 	}
429 
430 	return NULL;
431 }
432 
433 /**
434  * __idpf_del_mac_filter - Delete a MAC filter from the filter list
435  * @vport_config: Vport config structure
436  * @macaddr: The MAC address
437  *
438  * Returns 0 on success, error value on failure
439  **/
__idpf_del_mac_filter(struct idpf_vport_config * vport_config,const u8 * macaddr)440 static int __idpf_del_mac_filter(struct idpf_vport_config *vport_config,
441 				 const u8 *macaddr)
442 {
443 	struct idpf_mac_filter *f;
444 
445 	spin_lock_bh(&vport_config->mac_filter_list_lock);
446 	f = idpf_find_mac_filter(vport_config, macaddr);
447 	if (f) {
448 		list_del(&f->list);
449 		kfree(f);
450 	}
451 	spin_unlock_bh(&vport_config->mac_filter_list_lock);
452 
453 	return 0;
454 }
455 
456 /**
457  * idpf_del_mac_filter - Delete a MAC filter from the filter list
458  * @vport: Main vport structure
459  * @np: Netdev private structure
460  * @macaddr: The MAC address
461  * @async: Don't wait for return message
462  *
463  * Removes filter from list and if interface is up, tells hardware about the
464  * removed filter.
465  **/
idpf_del_mac_filter(struct idpf_vport * vport,struct idpf_netdev_priv * np,const u8 * macaddr,bool async)466 static int idpf_del_mac_filter(struct idpf_vport *vport,
467 			       struct idpf_netdev_priv *np,
468 			       const u8 *macaddr, bool async)
469 {
470 	struct idpf_vport_config *vport_config;
471 	struct idpf_mac_filter *f;
472 
473 	vport_config = np->adapter->vport_config[np->vport_idx];
474 
475 	spin_lock_bh(&vport_config->mac_filter_list_lock);
476 	f = idpf_find_mac_filter(vport_config, macaddr);
477 	if (f) {
478 		f->remove = true;
479 	} else {
480 		spin_unlock_bh(&vport_config->mac_filter_list_lock);
481 
482 		return -EINVAL;
483 	}
484 	spin_unlock_bh(&vport_config->mac_filter_list_lock);
485 
486 	if (np->state == __IDPF_VPORT_UP) {
487 		int err;
488 
489 		err = idpf_add_del_mac_filters(vport, np, false, async);
490 		if (err)
491 			return err;
492 	}
493 
494 	return  __idpf_del_mac_filter(vport_config, macaddr);
495 }
496 
497 /**
498  * __idpf_add_mac_filter - Add mac filter helper function
499  * @vport_config: Vport config structure
500  * @macaddr: Address to add
501  *
502  * Takes mac_filter_list_lock spinlock to add new filter to list.
503  */
__idpf_add_mac_filter(struct idpf_vport_config * vport_config,const u8 * macaddr)504 static int __idpf_add_mac_filter(struct idpf_vport_config *vport_config,
505 				 const u8 *macaddr)
506 {
507 	struct idpf_mac_filter *f;
508 
509 	spin_lock_bh(&vport_config->mac_filter_list_lock);
510 
511 	f = idpf_find_mac_filter(vport_config, macaddr);
512 	if (f) {
513 		f->remove = false;
514 		spin_unlock_bh(&vport_config->mac_filter_list_lock);
515 
516 		return 0;
517 	}
518 
519 	f = kzalloc(sizeof(*f), GFP_ATOMIC);
520 	if (!f) {
521 		spin_unlock_bh(&vport_config->mac_filter_list_lock);
522 
523 		return -ENOMEM;
524 	}
525 
526 	ether_addr_copy(f->macaddr, macaddr);
527 	list_add_tail(&f->list, &vport_config->user_config.mac_filter_list);
528 	f->add = true;
529 
530 	spin_unlock_bh(&vport_config->mac_filter_list_lock);
531 
532 	return 0;
533 }
534 
535 /**
536  * idpf_add_mac_filter - Add a mac filter to the filter list
537  * @vport: Main vport structure
538  * @np: Netdev private structure
539  * @macaddr: The MAC address
540  * @async: Don't wait for return message
541  *
542  * Returns 0 on success or error on failure. If interface is up, we'll also
543  * send the virtchnl message to tell hardware about the filter.
544  **/
idpf_add_mac_filter(struct idpf_vport * vport,struct idpf_netdev_priv * np,const u8 * macaddr,bool async)545 static int idpf_add_mac_filter(struct idpf_vport *vport,
546 			       struct idpf_netdev_priv *np,
547 			       const u8 *macaddr, bool async)
548 {
549 	struct idpf_vport_config *vport_config;
550 	int err;
551 
552 	vport_config = np->adapter->vport_config[np->vport_idx];
553 	err = __idpf_add_mac_filter(vport_config, macaddr);
554 	if (err)
555 		return err;
556 
557 	if (np->state == __IDPF_VPORT_UP)
558 		err = idpf_add_del_mac_filters(vport, np, true, async);
559 
560 	return err;
561 }
562 
563 /**
564  * idpf_del_all_mac_filters - Delete all MAC filters in list
565  * @vport: main vport struct
566  *
567  * Takes mac_filter_list_lock spinlock.  Deletes all filters
568  */
idpf_del_all_mac_filters(struct idpf_vport * vport)569 static void idpf_del_all_mac_filters(struct idpf_vport *vport)
570 {
571 	struct idpf_vport_config *vport_config;
572 	struct idpf_mac_filter *f, *ftmp;
573 
574 	vport_config = vport->adapter->vport_config[vport->idx];
575 	spin_lock_bh(&vport_config->mac_filter_list_lock);
576 
577 	list_for_each_entry_safe(f, ftmp, &vport_config->user_config.mac_filter_list,
578 				 list) {
579 		list_del(&f->list);
580 		kfree(f);
581 	}
582 
583 	spin_unlock_bh(&vport_config->mac_filter_list_lock);
584 }
585 
586 /**
587  * idpf_restore_mac_filters - Re-add all MAC filters in list
588  * @vport: main vport struct
589  *
590  * Takes mac_filter_list_lock spinlock.  Sets add field to true for filters to
591  * resync filters back to HW.
592  */
idpf_restore_mac_filters(struct idpf_vport * vport)593 static void idpf_restore_mac_filters(struct idpf_vport *vport)
594 {
595 	struct idpf_vport_config *vport_config;
596 	struct idpf_mac_filter *f;
597 
598 	vport_config = vport->adapter->vport_config[vport->idx];
599 	spin_lock_bh(&vport_config->mac_filter_list_lock);
600 
601 	list_for_each_entry(f, &vport_config->user_config.mac_filter_list, list)
602 		f->add = true;
603 
604 	spin_unlock_bh(&vport_config->mac_filter_list_lock);
605 
606 	idpf_add_del_mac_filters(vport, netdev_priv(vport->netdev),
607 				 true, false);
608 }
609 
610 /**
611  * idpf_remove_mac_filters - Remove all MAC filters in list
612  * @vport: main vport struct
613  *
614  * Takes mac_filter_list_lock spinlock. Sets remove field to true for filters
615  * to remove filters in HW.
616  */
idpf_remove_mac_filters(struct idpf_vport * vport)617 static void idpf_remove_mac_filters(struct idpf_vport *vport)
618 {
619 	struct idpf_vport_config *vport_config;
620 	struct idpf_mac_filter *f;
621 
622 	vport_config = vport->adapter->vport_config[vport->idx];
623 	spin_lock_bh(&vport_config->mac_filter_list_lock);
624 
625 	list_for_each_entry(f, &vport_config->user_config.mac_filter_list, list)
626 		f->remove = true;
627 
628 	spin_unlock_bh(&vport_config->mac_filter_list_lock);
629 
630 	idpf_add_del_mac_filters(vport, netdev_priv(vport->netdev),
631 				 false, false);
632 }
633 
634 /**
635  * idpf_deinit_mac_addr - deinitialize mac address for vport
636  * @vport: main vport structure
637  */
idpf_deinit_mac_addr(struct idpf_vport * vport)638 static void idpf_deinit_mac_addr(struct idpf_vport *vport)
639 {
640 	struct idpf_vport_config *vport_config;
641 	struct idpf_mac_filter *f;
642 
643 	vport_config = vport->adapter->vport_config[vport->idx];
644 
645 	spin_lock_bh(&vport_config->mac_filter_list_lock);
646 
647 	f = idpf_find_mac_filter(vport_config, vport->default_mac_addr);
648 	if (f) {
649 		list_del(&f->list);
650 		kfree(f);
651 	}
652 
653 	spin_unlock_bh(&vport_config->mac_filter_list_lock);
654 }
655 
656 /**
657  * idpf_init_mac_addr - initialize mac address for vport
658  * @vport: main vport structure
659  * @netdev: pointer to netdev struct associated with this vport
660  */
idpf_init_mac_addr(struct idpf_vport * vport,struct net_device * netdev)661 static int idpf_init_mac_addr(struct idpf_vport *vport,
662 			      struct net_device *netdev)
663 {
664 	struct idpf_netdev_priv *np = netdev_priv(netdev);
665 	struct idpf_adapter *adapter = vport->adapter;
666 	int err;
667 
668 	if (is_valid_ether_addr(vport->default_mac_addr)) {
669 		eth_hw_addr_set(netdev, vport->default_mac_addr);
670 		ether_addr_copy(netdev->perm_addr, vport->default_mac_addr);
671 
672 		return idpf_add_mac_filter(vport, np, vport->default_mac_addr,
673 					   false);
674 	}
675 
676 	if (!idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS,
677 			     VIRTCHNL2_CAP_MACFILTER)) {
678 		dev_err(&adapter->pdev->dev,
679 			"MAC address is not provided and capability is not set\n");
680 
681 		return -EINVAL;
682 	}
683 
684 	eth_hw_addr_random(netdev);
685 	err = idpf_add_mac_filter(vport, np, netdev->dev_addr, false);
686 	if (err)
687 		return err;
688 
689 	dev_info(&adapter->pdev->dev, "Invalid MAC address %pM, using random %pM\n",
690 		 vport->default_mac_addr, netdev->dev_addr);
691 	ether_addr_copy(vport->default_mac_addr, netdev->dev_addr);
692 
693 	return 0;
694 }
695 
696 /**
697  * idpf_cfg_netdev - Allocate, configure and register a netdev
698  * @vport: main vport structure
699  *
700  * Returns 0 on success, negative value on failure.
701  */
idpf_cfg_netdev(struct idpf_vport * vport)702 static int idpf_cfg_netdev(struct idpf_vport *vport)
703 {
704 	struct idpf_adapter *adapter = vport->adapter;
705 	struct idpf_vport_config *vport_config;
706 	netdev_features_t dflt_features;
707 	netdev_features_t offloads = 0;
708 	struct idpf_netdev_priv *np;
709 	struct net_device *netdev;
710 	u16 idx = vport->idx;
711 	int err;
712 
713 	vport_config = adapter->vport_config[idx];
714 
715 	/* It's possible we already have a netdev allocated and registered for
716 	 * this vport
717 	 */
718 	if (test_bit(IDPF_VPORT_REG_NETDEV, vport_config->flags)) {
719 		netdev = adapter->netdevs[idx];
720 		np = netdev_priv(netdev);
721 		np->vport = vport;
722 		np->vport_idx = vport->idx;
723 		np->vport_id = vport->vport_id;
724 		vport->netdev = netdev;
725 
726 		return idpf_init_mac_addr(vport, netdev);
727 	}
728 
729 	netdev = alloc_etherdev_mqs(sizeof(struct idpf_netdev_priv),
730 				    vport_config->max_q.max_txq,
731 				    vport_config->max_q.max_rxq);
732 	if (!netdev)
733 		return -ENOMEM;
734 
735 	vport->netdev = netdev;
736 	np = netdev_priv(netdev);
737 	np->vport = vport;
738 	np->adapter = adapter;
739 	np->vport_idx = vport->idx;
740 	np->vport_id = vport->vport_id;
741 
742 	spin_lock_init(&np->stats_lock);
743 
744 	err = idpf_init_mac_addr(vport, netdev);
745 	if (err) {
746 		free_netdev(vport->netdev);
747 		vport->netdev = NULL;
748 
749 		return err;
750 	}
751 
752 	/* assign netdev_ops */
753 	netdev->netdev_ops = &idpf_netdev_ops;
754 
755 	/* setup watchdog timeout value to be 5 second */
756 	netdev->watchdog_timeo = 5 * HZ;
757 
758 	netdev->dev_port = idx;
759 
760 	/* configure default MTU size */
761 	netdev->min_mtu = ETH_MIN_MTU;
762 	netdev->max_mtu = vport->max_mtu;
763 
764 	dflt_features = NETIF_F_SG	|
765 			NETIF_F_HIGHDMA;
766 
767 	if (idpf_is_cap_ena_all(adapter, IDPF_RSS_CAPS, IDPF_CAP_RSS))
768 		dflt_features |= NETIF_F_RXHASH;
769 	if (idpf_is_cap_ena_all(adapter, IDPF_CSUM_CAPS, IDPF_CAP_RX_CSUM_L4V4))
770 		dflt_features |= NETIF_F_IP_CSUM;
771 	if (idpf_is_cap_ena_all(adapter, IDPF_CSUM_CAPS, IDPF_CAP_RX_CSUM_L4V6))
772 		dflt_features |= NETIF_F_IPV6_CSUM;
773 	if (idpf_is_cap_ena(adapter, IDPF_CSUM_CAPS, IDPF_CAP_RX_CSUM))
774 		dflt_features |= NETIF_F_RXCSUM;
775 	if (idpf_is_cap_ena_all(adapter, IDPF_CSUM_CAPS, IDPF_CAP_SCTP_CSUM))
776 		dflt_features |= NETIF_F_SCTP_CRC;
777 
778 	if (idpf_is_cap_ena(adapter, IDPF_SEG_CAPS, VIRTCHNL2_CAP_SEG_IPV4_TCP))
779 		dflt_features |= NETIF_F_TSO;
780 	if (idpf_is_cap_ena(adapter, IDPF_SEG_CAPS, VIRTCHNL2_CAP_SEG_IPV6_TCP))
781 		dflt_features |= NETIF_F_TSO6;
782 	if (idpf_is_cap_ena_all(adapter, IDPF_SEG_CAPS,
783 				VIRTCHNL2_CAP_SEG_IPV4_UDP |
784 				VIRTCHNL2_CAP_SEG_IPV6_UDP))
785 		dflt_features |= NETIF_F_GSO_UDP_L4;
786 	if (idpf_is_cap_ena_all(adapter, IDPF_RSC_CAPS, IDPF_CAP_RSC))
787 		offloads |= NETIF_F_GRO_HW;
788 	/* advertise to stack only if offloads for encapsulated packets is
789 	 * supported
790 	 */
791 	if (idpf_is_cap_ena(vport->adapter, IDPF_SEG_CAPS,
792 			    VIRTCHNL2_CAP_SEG_TX_SINGLE_TUNNEL)) {
793 		offloads |= NETIF_F_GSO_UDP_TUNNEL	|
794 			    NETIF_F_GSO_GRE		|
795 			    NETIF_F_GSO_GRE_CSUM	|
796 			    NETIF_F_GSO_PARTIAL		|
797 			    NETIF_F_GSO_UDP_TUNNEL_CSUM	|
798 			    NETIF_F_GSO_IPXIP4		|
799 			    NETIF_F_GSO_IPXIP6		|
800 			    0;
801 
802 		if (!idpf_is_cap_ena_all(vport->adapter, IDPF_CSUM_CAPS,
803 					 IDPF_CAP_TUNNEL_TX_CSUM))
804 			netdev->gso_partial_features |=
805 				NETIF_F_GSO_UDP_TUNNEL_CSUM;
806 
807 		netdev->gso_partial_features |= NETIF_F_GSO_GRE_CSUM;
808 		offloads |= NETIF_F_TSO_MANGLEID;
809 	}
810 	if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_LOOPBACK))
811 		offloads |= NETIF_F_LOOPBACK;
812 
813 	netdev->features |= dflt_features;
814 	netdev->hw_features |= dflt_features | offloads;
815 	netdev->hw_enc_features |= dflt_features | offloads;
816 	idpf_set_ethtool_ops(netdev);
817 	SET_NETDEV_DEV(netdev, &adapter->pdev->dev);
818 
819 	/* carrier off on init to avoid Tx hangs */
820 	netif_carrier_off(netdev);
821 
822 	/* make sure transmit queues start off as stopped */
823 	netif_tx_stop_all_queues(netdev);
824 
825 	/* The vport can be arbitrarily released so we need to also track
826 	 * netdevs in the adapter struct
827 	 */
828 	adapter->netdevs[idx] = netdev;
829 
830 	return 0;
831 }
832 
833 /**
834  * idpf_get_free_slot - get the next non-NULL location index in array
835  * @adapter: adapter in which to look for a free vport slot
836  */
idpf_get_free_slot(struct idpf_adapter * adapter)837 static int idpf_get_free_slot(struct idpf_adapter *adapter)
838 {
839 	unsigned int i;
840 
841 	for (i = 0; i < adapter->max_vports; i++) {
842 		if (!adapter->vports[i])
843 			return i;
844 	}
845 
846 	return IDPF_NO_FREE_SLOT;
847 }
848 
849 /**
850  * idpf_remove_features - Turn off feature configs
851  * @vport: virtual port structure
852  */
idpf_remove_features(struct idpf_vport * vport)853 static void idpf_remove_features(struct idpf_vport *vport)
854 {
855 	struct idpf_adapter *adapter = vport->adapter;
856 
857 	if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_MACFILTER))
858 		idpf_remove_mac_filters(vport);
859 }
860 
861 /**
862  * idpf_vport_stop - Disable a vport
863  * @vport: vport to disable
864  */
idpf_vport_stop(struct idpf_vport * vport)865 static void idpf_vport_stop(struct idpf_vport *vport)
866 {
867 	struct idpf_netdev_priv *np = netdev_priv(vport->netdev);
868 
869 	if (np->state <= __IDPF_VPORT_DOWN)
870 		return;
871 
872 	netif_carrier_off(vport->netdev);
873 	netif_tx_disable(vport->netdev);
874 
875 	idpf_send_disable_vport_msg(vport);
876 	idpf_send_disable_queues_msg(vport);
877 	idpf_send_map_unmap_queue_vector_msg(vport, false);
878 	/* Normally we ask for queues in create_vport, but if the number of
879 	 * initially requested queues have changed, for example via ethtool
880 	 * set channels, we do delete queues and then add the queues back
881 	 * instead of deleting and reallocating the vport.
882 	 */
883 	if (test_and_clear_bit(IDPF_VPORT_DEL_QUEUES, vport->flags))
884 		idpf_send_delete_queues_msg(vport);
885 
886 	idpf_remove_features(vport);
887 
888 	vport->link_up = false;
889 	idpf_vport_intr_deinit(vport);
890 	idpf_vport_queues_rel(vport);
891 	idpf_vport_intr_rel(vport);
892 	np->state = __IDPF_VPORT_DOWN;
893 }
894 
895 /**
896  * idpf_stop - Disables a network interface
897  * @netdev: network interface device structure
898  *
899  * The stop entry point is called when an interface is de-activated by the OS,
900  * and the netdevice enters the DOWN state.  The hardware is still under the
901  * driver's control, but the netdev interface is disabled.
902  *
903  * Returns success only - not allowed to fail
904  */
idpf_stop(struct net_device * netdev)905 static int idpf_stop(struct net_device *netdev)
906 {
907 	struct idpf_netdev_priv *np = netdev_priv(netdev);
908 	struct idpf_vport *vport;
909 
910 	if (test_bit(IDPF_REMOVE_IN_PROG, np->adapter->flags))
911 		return 0;
912 
913 	idpf_vport_ctrl_lock(netdev);
914 	vport = idpf_netdev_to_vport(netdev);
915 
916 	idpf_vport_stop(vport);
917 
918 	idpf_vport_ctrl_unlock(netdev);
919 
920 	return 0;
921 }
922 
923 /**
924  * idpf_decfg_netdev - Unregister the netdev
925  * @vport: vport for which netdev to be unregistered
926  */
idpf_decfg_netdev(struct idpf_vport * vport)927 static void idpf_decfg_netdev(struct idpf_vport *vport)
928 {
929 	struct idpf_adapter *adapter = vport->adapter;
930 	u16 idx = vport->idx;
931 
932 	kfree(vport->rx_ptype_lkup);
933 	vport->rx_ptype_lkup = NULL;
934 
935 	if (test_and_clear_bit(IDPF_VPORT_REG_NETDEV,
936 			       adapter->vport_config[idx]->flags)) {
937 		unregister_netdev(vport->netdev);
938 		free_netdev(vport->netdev);
939 	}
940 	vport->netdev = NULL;
941 
942 	adapter->netdevs[idx] = NULL;
943 }
944 
945 /**
946  * idpf_vport_rel - Delete a vport and free its resources
947  * @vport: the vport being removed
948  */
idpf_vport_rel(struct idpf_vport * vport)949 static void idpf_vport_rel(struct idpf_vport *vport)
950 {
951 	struct idpf_adapter *adapter = vport->adapter;
952 	struct idpf_vport_config *vport_config;
953 	struct idpf_vector_info vec_info;
954 	struct idpf_rss_data *rss_data;
955 	struct idpf_vport_max_q max_q;
956 	u16 idx = vport->idx;
957 
958 	vport_config = adapter->vport_config[vport->idx];
959 	idpf_deinit_rss(vport);
960 	rss_data = &vport_config->user_config.rss_data;
961 	kfree(rss_data->rss_key);
962 	rss_data->rss_key = NULL;
963 
964 	idpf_send_destroy_vport_msg(vport);
965 
966 	/* Release all max queues allocated to the adapter's pool */
967 	max_q.max_rxq = vport_config->max_q.max_rxq;
968 	max_q.max_txq = vport_config->max_q.max_txq;
969 	max_q.max_bufq = vport_config->max_q.max_bufq;
970 	max_q.max_complq = vport_config->max_q.max_complq;
971 	idpf_vport_dealloc_max_qs(adapter, &max_q);
972 
973 	/* Release all the allocated vectors on the stack */
974 	vec_info.num_req_vecs = 0;
975 	vec_info.num_curr_vecs = vport->num_q_vectors;
976 	vec_info.default_vport = vport->default_vport;
977 
978 	idpf_req_rel_vector_indexes(adapter, vport->q_vector_idxs, &vec_info);
979 
980 	kfree(vport->q_vector_idxs);
981 	vport->q_vector_idxs = NULL;
982 
983 	kfree(adapter->vport_params_recvd[idx]);
984 	adapter->vport_params_recvd[idx] = NULL;
985 	kfree(adapter->vport_params_reqd[idx]);
986 	adapter->vport_params_reqd[idx] = NULL;
987 	if (adapter->vport_config[idx]) {
988 		kfree(adapter->vport_config[idx]->req_qs_chunks);
989 		adapter->vport_config[idx]->req_qs_chunks = NULL;
990 	}
991 	kfree(vport);
992 	adapter->num_alloc_vports--;
993 }
994 
995 /**
996  * idpf_vport_dealloc - cleanup and release a given vport
997  * @vport: pointer to idpf vport structure
998  *
999  * returns nothing
1000  */
idpf_vport_dealloc(struct idpf_vport * vport)1001 static void idpf_vport_dealloc(struct idpf_vport *vport)
1002 {
1003 	struct idpf_adapter *adapter = vport->adapter;
1004 	unsigned int i = vport->idx;
1005 
1006 	idpf_deinit_mac_addr(vport);
1007 	idpf_vport_stop(vport);
1008 
1009 	if (!test_bit(IDPF_HR_RESET_IN_PROG, adapter->flags))
1010 		idpf_decfg_netdev(vport);
1011 	if (test_bit(IDPF_REMOVE_IN_PROG, adapter->flags))
1012 		idpf_del_all_mac_filters(vport);
1013 
1014 	if (adapter->netdevs[i]) {
1015 		struct idpf_netdev_priv *np = netdev_priv(adapter->netdevs[i]);
1016 
1017 		np->vport = NULL;
1018 	}
1019 
1020 	idpf_vport_rel(vport);
1021 
1022 	adapter->vports[i] = NULL;
1023 	adapter->next_vport = idpf_get_free_slot(adapter);
1024 }
1025 
1026 /**
1027  * idpf_is_hsplit_supported - check whether the header split is supported
1028  * @vport: virtual port to check the capability for
1029  *
1030  * Return: true if it's supported by the HW/FW, false if not.
1031  */
idpf_is_hsplit_supported(const struct idpf_vport * vport)1032 static bool idpf_is_hsplit_supported(const struct idpf_vport *vport)
1033 {
1034 	return idpf_is_queue_model_split(vport->rxq_model) &&
1035 	       idpf_is_cap_ena_all(vport->adapter, IDPF_HSPLIT_CAPS,
1036 				   IDPF_CAP_HSPLIT);
1037 }
1038 
1039 /**
1040  * idpf_vport_get_hsplit - get the current header split feature state
1041  * @vport: virtual port to query the state for
1042  *
1043  * Return: ``ETHTOOL_TCP_DATA_SPLIT_UNKNOWN`` if not supported,
1044  *         ``ETHTOOL_TCP_DATA_SPLIT_DISABLED`` if disabled,
1045  *         ``ETHTOOL_TCP_DATA_SPLIT_ENABLED`` if active.
1046  */
idpf_vport_get_hsplit(const struct idpf_vport * vport)1047 u8 idpf_vport_get_hsplit(const struct idpf_vport *vport)
1048 {
1049 	const struct idpf_vport_user_config_data *config;
1050 
1051 	if (!idpf_is_hsplit_supported(vport))
1052 		return ETHTOOL_TCP_DATA_SPLIT_UNKNOWN;
1053 
1054 	config = &vport->adapter->vport_config[vport->idx]->user_config;
1055 
1056 	return test_bit(__IDPF_USER_FLAG_HSPLIT, config->user_flags) ?
1057 	       ETHTOOL_TCP_DATA_SPLIT_ENABLED :
1058 	       ETHTOOL_TCP_DATA_SPLIT_DISABLED;
1059 }
1060 
1061 /**
1062  * idpf_vport_set_hsplit - enable or disable header split on a given vport
1063  * @vport: virtual port to configure
1064  * @val: Ethtool flag controlling the header split state
1065  *
1066  * Return: true on success, false if not supported by the HW.
1067  */
idpf_vport_set_hsplit(const struct idpf_vport * vport,u8 val)1068 bool idpf_vport_set_hsplit(const struct idpf_vport *vport, u8 val)
1069 {
1070 	struct idpf_vport_user_config_data *config;
1071 
1072 	if (!idpf_is_hsplit_supported(vport))
1073 		return val == ETHTOOL_TCP_DATA_SPLIT_UNKNOWN;
1074 
1075 	config = &vport->adapter->vport_config[vport->idx]->user_config;
1076 
1077 	switch (val) {
1078 	case ETHTOOL_TCP_DATA_SPLIT_UNKNOWN:
1079 		/* Default is to enable */
1080 	case ETHTOOL_TCP_DATA_SPLIT_ENABLED:
1081 		__set_bit(__IDPF_USER_FLAG_HSPLIT, config->user_flags);
1082 		return true;
1083 	case ETHTOOL_TCP_DATA_SPLIT_DISABLED:
1084 		__clear_bit(__IDPF_USER_FLAG_HSPLIT, config->user_flags);
1085 		return true;
1086 	default:
1087 		return false;
1088 	}
1089 }
1090 
1091 /**
1092  * idpf_vport_alloc - Allocates the next available struct vport in the adapter
1093  * @adapter: board private structure
1094  * @max_q: vport max queue info
1095  *
1096  * returns a pointer to a vport on success, NULL on failure.
1097  */
idpf_vport_alloc(struct idpf_adapter * adapter,struct idpf_vport_max_q * max_q)1098 static struct idpf_vport *idpf_vport_alloc(struct idpf_adapter *adapter,
1099 					   struct idpf_vport_max_q *max_q)
1100 {
1101 	struct idpf_rss_data *rss_data;
1102 	u16 idx = adapter->next_vport;
1103 	struct idpf_vport *vport;
1104 	u16 num_max_q;
1105 
1106 	if (idx == IDPF_NO_FREE_SLOT)
1107 		return NULL;
1108 
1109 	vport = kzalloc(sizeof(*vport), GFP_KERNEL);
1110 	if (!vport)
1111 		return vport;
1112 
1113 	if (!adapter->vport_config[idx]) {
1114 		struct idpf_vport_config *vport_config;
1115 
1116 		vport_config = kzalloc(sizeof(*vport_config), GFP_KERNEL);
1117 		if (!vport_config) {
1118 			kfree(vport);
1119 
1120 			return NULL;
1121 		}
1122 
1123 		adapter->vport_config[idx] = vport_config;
1124 	}
1125 
1126 	vport->idx = idx;
1127 	vport->adapter = adapter;
1128 	vport->compln_clean_budget = IDPF_TX_COMPLQ_CLEAN_BUDGET;
1129 	vport->default_vport = adapter->num_alloc_vports <
1130 			       idpf_get_default_vports(adapter);
1131 
1132 	num_max_q = max(max_q->max_txq, max_q->max_rxq);
1133 	vport->q_vector_idxs = kcalloc(num_max_q, sizeof(u16), GFP_KERNEL);
1134 	if (!vport->q_vector_idxs) {
1135 		kfree(vport);
1136 
1137 		return NULL;
1138 	}
1139 	idpf_vport_init(vport, max_q);
1140 
1141 	/* This alloc is done separate from the LUT because it's not strictly
1142 	 * dependent on how many queues we have. If we change number of queues
1143 	 * and soft reset we'll need a new LUT but the key can remain the same
1144 	 * for as long as the vport exists.
1145 	 */
1146 	rss_data = &adapter->vport_config[idx]->user_config.rss_data;
1147 	rss_data->rss_key = kzalloc(rss_data->rss_key_size, GFP_KERNEL);
1148 	if (!rss_data->rss_key) {
1149 		kfree(vport);
1150 
1151 		return NULL;
1152 	}
1153 	/* Initialize default rss key */
1154 	netdev_rss_key_fill((void *)rss_data->rss_key, rss_data->rss_key_size);
1155 
1156 	/* fill vport slot in the adapter struct */
1157 	adapter->vports[idx] = vport;
1158 	adapter->vport_ids[idx] = idpf_get_vport_id(vport);
1159 
1160 	adapter->num_alloc_vports++;
1161 	/* prepare adapter->next_vport for next use */
1162 	adapter->next_vport = idpf_get_free_slot(adapter);
1163 
1164 	return vport;
1165 }
1166 
1167 /**
1168  * idpf_get_stats64 - get statistics for network device structure
1169  * @netdev: network interface device structure
1170  * @stats: main device statistics structure
1171  */
idpf_get_stats64(struct net_device * netdev,struct rtnl_link_stats64 * stats)1172 static void idpf_get_stats64(struct net_device *netdev,
1173 			     struct rtnl_link_stats64 *stats)
1174 {
1175 	struct idpf_netdev_priv *np = netdev_priv(netdev);
1176 
1177 	spin_lock_bh(&np->stats_lock);
1178 	*stats = np->netstats;
1179 	spin_unlock_bh(&np->stats_lock);
1180 }
1181 
1182 /**
1183  * idpf_statistics_task - Delayed task to get statistics over mailbox
1184  * @work: work_struct handle to our data
1185  */
idpf_statistics_task(struct work_struct * work)1186 void idpf_statistics_task(struct work_struct *work)
1187 {
1188 	struct idpf_adapter *adapter;
1189 	int i;
1190 
1191 	adapter = container_of(work, struct idpf_adapter, stats_task.work);
1192 
1193 	for (i = 0; i < adapter->max_vports; i++) {
1194 		struct idpf_vport *vport = adapter->vports[i];
1195 
1196 		if (vport && !test_bit(IDPF_HR_RESET_IN_PROG, adapter->flags))
1197 			idpf_send_get_stats_msg(vport);
1198 	}
1199 
1200 	queue_delayed_work(adapter->stats_wq, &adapter->stats_task,
1201 			   msecs_to_jiffies(10000));
1202 }
1203 
1204 /**
1205  * idpf_mbx_task - Delayed task to handle mailbox responses
1206  * @work: work_struct handle
1207  */
idpf_mbx_task(struct work_struct * work)1208 void idpf_mbx_task(struct work_struct *work)
1209 {
1210 	struct idpf_adapter *adapter;
1211 
1212 	adapter = container_of(work, struct idpf_adapter, mbx_task.work);
1213 
1214 	if (test_bit(IDPF_MB_INTR_MODE, adapter->flags))
1215 		idpf_mb_irq_enable(adapter);
1216 	else
1217 		queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task,
1218 				   msecs_to_jiffies(300));
1219 
1220 	idpf_recv_mb_msg(adapter);
1221 }
1222 
1223 /**
1224  * idpf_service_task - Delayed task for handling mailbox responses
1225  * @work: work_struct handle to our data
1226  *
1227  */
idpf_service_task(struct work_struct * work)1228 void idpf_service_task(struct work_struct *work)
1229 {
1230 	struct idpf_adapter *adapter;
1231 
1232 	adapter = container_of(work, struct idpf_adapter, serv_task.work);
1233 
1234 	if (idpf_is_reset_detected(adapter) &&
1235 	    !idpf_is_reset_in_prog(adapter) &&
1236 	    !test_bit(IDPF_REMOVE_IN_PROG, adapter->flags)) {
1237 		dev_info(&adapter->pdev->dev, "HW reset detected\n");
1238 		set_bit(IDPF_HR_FUNC_RESET, adapter->flags);
1239 		queue_delayed_work(adapter->vc_event_wq,
1240 				   &adapter->vc_event_task,
1241 				   msecs_to_jiffies(10));
1242 	}
1243 
1244 	queue_delayed_work(adapter->serv_wq, &adapter->serv_task,
1245 			   msecs_to_jiffies(300));
1246 }
1247 
1248 /**
1249  * idpf_restore_features - Restore feature configs
1250  * @vport: virtual port structure
1251  */
idpf_restore_features(struct idpf_vport * vport)1252 static void idpf_restore_features(struct idpf_vport *vport)
1253 {
1254 	struct idpf_adapter *adapter = vport->adapter;
1255 
1256 	if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_MACFILTER))
1257 		idpf_restore_mac_filters(vport);
1258 }
1259 
1260 /**
1261  * idpf_set_real_num_queues - set number of queues for netdev
1262  * @vport: virtual port structure
1263  *
1264  * Returns 0 on success, negative on failure.
1265  */
idpf_set_real_num_queues(struct idpf_vport * vport)1266 static int idpf_set_real_num_queues(struct idpf_vport *vport)
1267 {
1268 	int err;
1269 
1270 	err = netif_set_real_num_rx_queues(vport->netdev, vport->num_rxq);
1271 	if (err)
1272 		return err;
1273 
1274 	return netif_set_real_num_tx_queues(vport->netdev, vport->num_txq);
1275 }
1276 
1277 /**
1278  * idpf_up_complete - Complete interface up sequence
1279  * @vport: virtual port structure
1280  *
1281  * Returns 0 on success, negative on failure.
1282  */
idpf_up_complete(struct idpf_vport * vport)1283 static int idpf_up_complete(struct idpf_vport *vport)
1284 {
1285 	struct idpf_netdev_priv *np = netdev_priv(vport->netdev);
1286 
1287 	if (vport->link_up && !netif_carrier_ok(vport->netdev)) {
1288 		netif_carrier_on(vport->netdev);
1289 		netif_tx_start_all_queues(vport->netdev);
1290 	}
1291 
1292 	np->state = __IDPF_VPORT_UP;
1293 
1294 	return 0;
1295 }
1296 
1297 /**
1298  * idpf_rx_init_buf_tail - Write initial buffer ring tail value
1299  * @vport: virtual port struct
1300  */
idpf_rx_init_buf_tail(struct idpf_vport * vport)1301 static void idpf_rx_init_buf_tail(struct idpf_vport *vport)
1302 {
1303 	int i, j;
1304 
1305 	for (i = 0; i < vport->num_rxq_grp; i++) {
1306 		struct idpf_rxq_group *grp = &vport->rxq_grps[i];
1307 
1308 		if (idpf_is_queue_model_split(vport->rxq_model)) {
1309 			for (j = 0; j < vport->num_bufqs_per_qgrp; j++) {
1310 				const struct idpf_buf_queue *q =
1311 					&grp->splitq.bufq_sets[j].bufq;
1312 
1313 				writel(q->next_to_alloc, q->tail);
1314 			}
1315 		} else {
1316 			for (j = 0; j < grp->singleq.num_rxq; j++) {
1317 				const struct idpf_rx_queue *q =
1318 					grp->singleq.rxqs[j];
1319 
1320 				writel(q->next_to_alloc, q->tail);
1321 			}
1322 		}
1323 	}
1324 }
1325 
1326 /**
1327  * idpf_vport_open - Bring up a vport
1328  * @vport: vport to bring up
1329  */
idpf_vport_open(struct idpf_vport * vport)1330 static int idpf_vport_open(struct idpf_vport *vport)
1331 {
1332 	struct idpf_netdev_priv *np = netdev_priv(vport->netdev);
1333 	struct idpf_adapter *adapter = vport->adapter;
1334 	struct idpf_vport_config *vport_config;
1335 	int err;
1336 
1337 	if (np->state != __IDPF_VPORT_DOWN)
1338 		return -EBUSY;
1339 
1340 	/* we do not allow interface up just yet */
1341 	netif_carrier_off(vport->netdev);
1342 
1343 	err = idpf_vport_intr_alloc(vport);
1344 	if (err) {
1345 		dev_err(&adapter->pdev->dev, "Failed to allocate interrupts for vport %u: %d\n",
1346 			vport->vport_id, err);
1347 		return err;
1348 	}
1349 
1350 	err = idpf_vport_queues_alloc(vport);
1351 	if (err)
1352 		goto intr_rel;
1353 
1354 	err = idpf_vport_queue_ids_init(vport);
1355 	if (err) {
1356 		dev_err(&adapter->pdev->dev, "Failed to initialize queue ids for vport %u: %d\n",
1357 			vport->vport_id, err);
1358 		goto queues_rel;
1359 	}
1360 
1361 	err = idpf_vport_intr_init(vport);
1362 	if (err) {
1363 		dev_err(&adapter->pdev->dev, "Failed to initialize interrupts for vport %u: %d\n",
1364 			vport->vport_id, err);
1365 		goto queues_rel;
1366 	}
1367 
1368 	err = idpf_rx_bufs_init_all(vport);
1369 	if (err) {
1370 		dev_err(&adapter->pdev->dev, "Failed to initialize RX buffers for vport %u: %d\n",
1371 			vport->vport_id, err);
1372 		goto queues_rel;
1373 	}
1374 
1375 	err = idpf_queue_reg_init(vport);
1376 	if (err) {
1377 		dev_err(&adapter->pdev->dev, "Failed to initialize queue registers for vport %u: %d\n",
1378 			vport->vport_id, err);
1379 		goto queues_rel;
1380 	}
1381 
1382 	idpf_rx_init_buf_tail(vport);
1383 	idpf_vport_intr_ena(vport);
1384 
1385 	err = idpf_send_config_queues_msg(vport);
1386 	if (err) {
1387 		dev_err(&adapter->pdev->dev, "Failed to configure queues for vport %u, %d\n",
1388 			vport->vport_id, err);
1389 		goto intr_deinit;
1390 	}
1391 
1392 	err = idpf_send_map_unmap_queue_vector_msg(vport, true);
1393 	if (err) {
1394 		dev_err(&adapter->pdev->dev, "Failed to map queue vectors for vport %u: %d\n",
1395 			vport->vport_id, err);
1396 		goto intr_deinit;
1397 	}
1398 
1399 	err = idpf_send_enable_queues_msg(vport);
1400 	if (err) {
1401 		dev_err(&adapter->pdev->dev, "Failed to enable queues for vport %u: %d\n",
1402 			vport->vport_id, err);
1403 		goto unmap_queue_vectors;
1404 	}
1405 
1406 	err = idpf_send_enable_vport_msg(vport);
1407 	if (err) {
1408 		dev_err(&adapter->pdev->dev, "Failed to enable vport %u: %d\n",
1409 			vport->vport_id, err);
1410 		err = -EAGAIN;
1411 		goto disable_queues;
1412 	}
1413 
1414 	idpf_restore_features(vport);
1415 
1416 	vport_config = adapter->vport_config[vport->idx];
1417 	if (vport_config->user_config.rss_data.rss_lut)
1418 		err = idpf_config_rss(vport);
1419 	else
1420 		err = idpf_init_rss(vport);
1421 	if (err) {
1422 		dev_err(&adapter->pdev->dev, "Failed to initialize RSS for vport %u: %d\n",
1423 			vport->vport_id, err);
1424 		goto disable_vport;
1425 	}
1426 
1427 	err = idpf_up_complete(vport);
1428 	if (err) {
1429 		dev_err(&adapter->pdev->dev, "Failed to complete interface up for vport %u: %d\n",
1430 			vport->vport_id, err);
1431 		goto deinit_rss;
1432 	}
1433 
1434 	return 0;
1435 
1436 deinit_rss:
1437 	idpf_deinit_rss(vport);
1438 disable_vport:
1439 	idpf_send_disable_vport_msg(vport);
1440 disable_queues:
1441 	idpf_send_disable_queues_msg(vport);
1442 unmap_queue_vectors:
1443 	idpf_send_map_unmap_queue_vector_msg(vport, false);
1444 intr_deinit:
1445 	idpf_vport_intr_deinit(vport);
1446 queues_rel:
1447 	idpf_vport_queues_rel(vport);
1448 intr_rel:
1449 	idpf_vport_intr_rel(vport);
1450 
1451 	return err;
1452 }
1453 
1454 /**
1455  * idpf_init_task - Delayed initialization task
1456  * @work: work_struct handle to our data
1457  *
1458  * Init task finishes up pending work started in probe. Due to the asynchronous
1459  * nature in which the device communicates with hardware, we may have to wait
1460  * several milliseconds to get a response.  Instead of busy polling in probe,
1461  * pulling it out into a delayed work task prevents us from bogging down the
1462  * whole system waiting for a response from hardware.
1463  */
idpf_init_task(struct work_struct * work)1464 void idpf_init_task(struct work_struct *work)
1465 {
1466 	struct idpf_vport_config *vport_config;
1467 	struct idpf_vport_max_q max_q;
1468 	struct idpf_adapter *adapter;
1469 	struct idpf_netdev_priv *np;
1470 	struct idpf_vport *vport;
1471 	u16 num_default_vports;
1472 	struct pci_dev *pdev;
1473 	bool default_vport;
1474 	int index, err;
1475 
1476 	adapter = container_of(work, struct idpf_adapter, init_task.work);
1477 
1478 	num_default_vports = idpf_get_default_vports(adapter);
1479 	if (adapter->num_alloc_vports < num_default_vports)
1480 		default_vport = true;
1481 	else
1482 		default_vport = false;
1483 
1484 	err = idpf_vport_alloc_max_qs(adapter, &max_q);
1485 	if (err)
1486 		goto unwind_vports;
1487 
1488 	err = idpf_send_create_vport_msg(adapter, &max_q);
1489 	if (err) {
1490 		idpf_vport_dealloc_max_qs(adapter, &max_q);
1491 		goto unwind_vports;
1492 	}
1493 
1494 	pdev = adapter->pdev;
1495 	vport = idpf_vport_alloc(adapter, &max_q);
1496 	if (!vport) {
1497 		err = -EFAULT;
1498 		dev_err(&pdev->dev, "failed to allocate vport: %d\n",
1499 			err);
1500 		idpf_vport_dealloc_max_qs(adapter, &max_q);
1501 		goto unwind_vports;
1502 	}
1503 
1504 	index = vport->idx;
1505 	vport_config = adapter->vport_config[index];
1506 
1507 	init_waitqueue_head(&vport->sw_marker_wq);
1508 
1509 	spin_lock_init(&vport_config->mac_filter_list_lock);
1510 
1511 	INIT_LIST_HEAD(&vport_config->user_config.mac_filter_list);
1512 
1513 	err = idpf_check_supported_desc_ids(vport);
1514 	if (err) {
1515 		dev_err(&pdev->dev, "failed to get required descriptor ids\n");
1516 		goto cfg_netdev_err;
1517 	}
1518 
1519 	if (idpf_cfg_netdev(vport))
1520 		goto cfg_netdev_err;
1521 
1522 	err = idpf_send_get_rx_ptype_msg(vport);
1523 	if (err)
1524 		goto handle_err;
1525 
1526 	/* Once state is put into DOWN, driver is ready for dev_open */
1527 	np = netdev_priv(vport->netdev);
1528 	np->state = __IDPF_VPORT_DOWN;
1529 	if (test_and_clear_bit(IDPF_VPORT_UP_REQUESTED, vport_config->flags))
1530 		idpf_vport_open(vport);
1531 
1532 	/* Spawn and return 'idpf_init_task' work queue until all the
1533 	 * default vports are created
1534 	 */
1535 	if (adapter->num_alloc_vports < num_default_vports) {
1536 		queue_delayed_work(adapter->init_wq, &adapter->init_task,
1537 				   msecs_to_jiffies(5 * (adapter->pdev->devfn & 0x07)));
1538 
1539 		return;
1540 	}
1541 
1542 	for (index = 0; index < adapter->max_vports; index++) {
1543 		struct net_device *netdev = adapter->netdevs[index];
1544 		struct idpf_vport_config *vport_config;
1545 
1546 		vport_config = adapter->vport_config[index];
1547 
1548 		if (!netdev ||
1549 		    test_bit(IDPF_VPORT_REG_NETDEV, vport_config->flags))
1550 			continue;
1551 
1552 		err = register_netdev(netdev);
1553 		if (err) {
1554 			dev_err(&pdev->dev, "failed to register netdev for vport %d: %pe\n",
1555 				index, ERR_PTR(err));
1556 			continue;
1557 		}
1558 		set_bit(IDPF_VPORT_REG_NETDEV, vport_config->flags);
1559 	}
1560 
1561 	/* As all the required vports are created, clear the reset flag
1562 	 * unconditionally here in case we were in reset and the link was down.
1563 	 */
1564 	clear_bit(IDPF_HR_RESET_IN_PROG, adapter->flags);
1565 	/* Start the statistics task now */
1566 	queue_delayed_work(adapter->stats_wq, &adapter->stats_task,
1567 			   msecs_to_jiffies(10 * (pdev->devfn & 0x07)));
1568 
1569 	return;
1570 
1571 handle_err:
1572 	idpf_decfg_netdev(vport);
1573 cfg_netdev_err:
1574 	idpf_vport_rel(vport);
1575 	adapter->vports[index] = NULL;
1576 unwind_vports:
1577 	if (default_vport) {
1578 		for (index = 0; index < adapter->max_vports; index++) {
1579 			if (adapter->vports[index])
1580 				idpf_vport_dealloc(adapter->vports[index]);
1581 		}
1582 	}
1583 	clear_bit(IDPF_HR_RESET_IN_PROG, adapter->flags);
1584 }
1585 
1586 /**
1587  * idpf_sriov_ena - Enable or change number of VFs
1588  * @adapter: private data struct
1589  * @num_vfs: number of VFs to allocate
1590  */
idpf_sriov_ena(struct idpf_adapter * adapter,int num_vfs)1591 static int idpf_sriov_ena(struct idpf_adapter *adapter, int num_vfs)
1592 {
1593 	struct device *dev = &adapter->pdev->dev;
1594 	int err;
1595 
1596 	err = idpf_send_set_sriov_vfs_msg(adapter, num_vfs);
1597 	if (err) {
1598 		dev_err(dev, "Failed to allocate VFs: %d\n", err);
1599 
1600 		return err;
1601 	}
1602 
1603 	err = pci_enable_sriov(adapter->pdev, num_vfs);
1604 	if (err) {
1605 		idpf_send_set_sriov_vfs_msg(adapter, 0);
1606 		dev_err(dev, "Failed to enable SR-IOV: %d\n", err);
1607 
1608 		return err;
1609 	}
1610 
1611 	adapter->num_vfs = num_vfs;
1612 
1613 	return num_vfs;
1614 }
1615 
1616 /**
1617  * idpf_sriov_configure - Configure the requested VFs
1618  * @pdev: pointer to a pci_dev structure
1619  * @num_vfs: number of vfs to allocate
1620  *
1621  * Enable or change the number of VFs. Called when the user updates the number
1622  * of VFs in sysfs.
1623  **/
idpf_sriov_configure(struct pci_dev * pdev,int num_vfs)1624 int idpf_sriov_configure(struct pci_dev *pdev, int num_vfs)
1625 {
1626 	struct idpf_adapter *adapter = pci_get_drvdata(pdev);
1627 
1628 	if (!idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_SRIOV)) {
1629 		dev_info(&pdev->dev, "SR-IOV is not supported on this device\n");
1630 
1631 		return -EOPNOTSUPP;
1632 	}
1633 
1634 	if (num_vfs)
1635 		return idpf_sriov_ena(adapter, num_vfs);
1636 
1637 	if (pci_vfs_assigned(pdev)) {
1638 		dev_warn(&pdev->dev, "Unable to free VFs because some are assigned to VMs\n");
1639 
1640 		return -EBUSY;
1641 	}
1642 
1643 	pci_disable_sriov(adapter->pdev);
1644 	idpf_send_set_sriov_vfs_msg(adapter, 0);
1645 	adapter->num_vfs = 0;
1646 
1647 	return 0;
1648 }
1649 
1650 /**
1651  * idpf_deinit_task - Device deinit routine
1652  * @adapter: Driver specific private structure
1653  *
1654  * Extended remove logic which will be used for
1655  * hard reset as well
1656  */
idpf_deinit_task(struct idpf_adapter * adapter)1657 void idpf_deinit_task(struct idpf_adapter *adapter)
1658 {
1659 	unsigned int i;
1660 
1661 	/* Wait until the init_task is done else this thread might release
1662 	 * the resources first and the other thread might end up in a bad state
1663 	 */
1664 	cancel_delayed_work_sync(&adapter->init_task);
1665 
1666 	if (!adapter->vports)
1667 		return;
1668 
1669 	cancel_delayed_work_sync(&adapter->stats_task);
1670 
1671 	for (i = 0; i < adapter->max_vports; i++) {
1672 		if (adapter->vports[i])
1673 			idpf_vport_dealloc(adapter->vports[i]);
1674 	}
1675 }
1676 
1677 /**
1678  * idpf_check_reset_complete - check that reset is complete
1679  * @hw: pointer to hw struct
1680  * @reset_reg: struct with reset registers
1681  *
1682  * Returns 0 if device is ready to use, or -EBUSY if it's in reset.
1683  **/
idpf_check_reset_complete(struct idpf_hw * hw,struct idpf_reset_reg * reset_reg)1684 static int idpf_check_reset_complete(struct idpf_hw *hw,
1685 				     struct idpf_reset_reg *reset_reg)
1686 {
1687 	struct idpf_adapter *adapter = hw->back;
1688 	int i;
1689 
1690 	for (i = 0; i < 2000; i++) {
1691 		u32 reg_val = readl(reset_reg->rstat);
1692 
1693 		/* 0xFFFFFFFF might be read if other side hasn't cleared the
1694 		 * register for us yet and 0xFFFFFFFF is not a valid value for
1695 		 * the register, so treat that as invalid.
1696 		 */
1697 		if (reg_val != 0xFFFFFFFF && (reg_val & reset_reg->rstat_m))
1698 			return 0;
1699 
1700 		usleep_range(5000, 10000);
1701 	}
1702 
1703 	dev_warn(&adapter->pdev->dev, "Device reset timeout!\n");
1704 	/* Clear the reset flag unconditionally here since the reset
1705 	 * technically isn't in progress anymore from the driver's perspective
1706 	 */
1707 	clear_bit(IDPF_HR_RESET_IN_PROG, adapter->flags);
1708 
1709 	return -EBUSY;
1710 }
1711 
1712 /**
1713  * idpf_set_vport_state - Set the vport state to be after the reset
1714  * @adapter: Driver specific private structure
1715  */
idpf_set_vport_state(struct idpf_adapter * adapter)1716 static void idpf_set_vport_state(struct idpf_adapter *adapter)
1717 {
1718 	u16 i;
1719 
1720 	for (i = 0; i < adapter->max_vports; i++) {
1721 		struct idpf_netdev_priv *np;
1722 
1723 		if (!adapter->netdevs[i])
1724 			continue;
1725 
1726 		np = netdev_priv(adapter->netdevs[i]);
1727 		if (np->state == __IDPF_VPORT_UP)
1728 			set_bit(IDPF_VPORT_UP_REQUESTED,
1729 				adapter->vport_config[i]->flags);
1730 	}
1731 }
1732 
1733 /**
1734  * idpf_init_hard_reset - Initiate a hardware reset
1735  * @adapter: Driver specific private structure
1736  *
1737  * Deallocate the vports and all the resources associated with them and
1738  * reallocate. Also reinitialize the mailbox. Return 0 on success,
1739  * negative on failure.
1740  */
idpf_init_hard_reset(struct idpf_adapter * adapter)1741 static int idpf_init_hard_reset(struct idpf_adapter *adapter)
1742 {
1743 	struct idpf_reg_ops *reg_ops = &adapter->dev_ops.reg_ops;
1744 	struct device *dev = &adapter->pdev->dev;
1745 	struct net_device *netdev;
1746 	int err;
1747 	u16 i;
1748 
1749 	mutex_lock(&adapter->vport_ctrl_lock);
1750 
1751 	dev_info(dev, "Device HW Reset initiated\n");
1752 
1753 	/* Avoid TX hangs on reset */
1754 	for (i = 0; i < adapter->max_vports; i++) {
1755 		netdev = adapter->netdevs[i];
1756 		if (!netdev)
1757 			continue;
1758 
1759 		netif_carrier_off(netdev);
1760 		netif_tx_disable(netdev);
1761 	}
1762 
1763 	/* Prepare for reset */
1764 	if (test_and_clear_bit(IDPF_HR_DRV_LOAD, adapter->flags)) {
1765 		reg_ops->trigger_reset(adapter, IDPF_HR_DRV_LOAD);
1766 	} else if (test_and_clear_bit(IDPF_HR_FUNC_RESET, adapter->flags)) {
1767 		bool is_reset = idpf_is_reset_detected(adapter);
1768 
1769 		idpf_set_vport_state(adapter);
1770 		idpf_vc_core_deinit(adapter);
1771 		if (!is_reset)
1772 			reg_ops->trigger_reset(adapter, IDPF_HR_FUNC_RESET);
1773 		idpf_deinit_dflt_mbx(adapter);
1774 	} else {
1775 		dev_err(dev, "Unhandled hard reset cause\n");
1776 		err = -EBADRQC;
1777 		goto unlock_mutex;
1778 	}
1779 
1780 	/* Wait for reset to complete */
1781 	err = idpf_check_reset_complete(&adapter->hw, &adapter->reset_reg);
1782 	if (err) {
1783 		dev_err(dev, "The driver was unable to contact the device's firmware. Check that the FW is running. Driver state= 0x%x\n",
1784 			adapter->state);
1785 		goto unlock_mutex;
1786 	}
1787 
1788 	/* Reset is complete and so start building the driver resources again */
1789 	err = idpf_init_dflt_mbx(adapter);
1790 	if (err) {
1791 		dev_err(dev, "Failed to initialize default mailbox: %d\n", err);
1792 		goto unlock_mutex;
1793 	}
1794 
1795 	queue_delayed_work(adapter->mbx_wq, &adapter->mbx_task, 0);
1796 
1797 	/* Initialize the state machine, also allocate memory and request
1798 	 * resources
1799 	 */
1800 	err = idpf_vc_core_init(adapter);
1801 	if (err) {
1802 		cancel_delayed_work_sync(&adapter->mbx_task);
1803 		idpf_deinit_dflt_mbx(adapter);
1804 		goto unlock_mutex;
1805 	}
1806 
1807 	/* Wait till all the vports are initialized to release the reset lock,
1808 	 * else user space callbacks may access uninitialized vports
1809 	 */
1810 	while (test_bit(IDPF_HR_RESET_IN_PROG, adapter->flags))
1811 		msleep(100);
1812 
1813 unlock_mutex:
1814 	mutex_unlock(&adapter->vport_ctrl_lock);
1815 
1816 	return err;
1817 }
1818 
1819 /**
1820  * idpf_vc_event_task - Handle virtchannel event logic
1821  * @work: work queue struct
1822  */
idpf_vc_event_task(struct work_struct * work)1823 void idpf_vc_event_task(struct work_struct *work)
1824 {
1825 	struct idpf_adapter *adapter;
1826 
1827 	adapter = container_of(work, struct idpf_adapter, vc_event_task.work);
1828 
1829 	if (test_bit(IDPF_REMOVE_IN_PROG, adapter->flags))
1830 		return;
1831 
1832 	if (test_bit(IDPF_HR_FUNC_RESET, adapter->flags) ||
1833 	    test_bit(IDPF_HR_DRV_LOAD, adapter->flags)) {
1834 		set_bit(IDPF_HR_RESET_IN_PROG, adapter->flags);
1835 		idpf_init_hard_reset(adapter);
1836 	}
1837 }
1838 
1839 /**
1840  * idpf_initiate_soft_reset - Initiate a software reset
1841  * @vport: virtual port data struct
1842  * @reset_cause: reason for the soft reset
1843  *
1844  * Soft reset only reallocs vport queue resources. Returns 0 on success,
1845  * negative on failure.
1846  */
idpf_initiate_soft_reset(struct idpf_vport * vport,enum idpf_vport_reset_cause reset_cause)1847 int idpf_initiate_soft_reset(struct idpf_vport *vport,
1848 			     enum idpf_vport_reset_cause reset_cause)
1849 {
1850 	struct idpf_netdev_priv *np = netdev_priv(vport->netdev);
1851 	enum idpf_vport_state current_state = np->state;
1852 	struct idpf_adapter *adapter = vport->adapter;
1853 	struct idpf_vport *new_vport;
1854 	int err;
1855 
1856 	/* If the system is low on memory, we can end up in bad state if we
1857 	 * free all the memory for queue resources and try to allocate them
1858 	 * again. Instead, we can pre-allocate the new resources before doing
1859 	 * anything and bailing if the alloc fails.
1860 	 *
1861 	 * Make a clone of the existing vport to mimic its current
1862 	 * configuration, then modify the new structure with any requested
1863 	 * changes. Once the allocation of the new resources is done, stop the
1864 	 * existing vport and copy the configuration to the main vport. If an
1865 	 * error occurred, the existing vport will be untouched.
1866 	 *
1867 	 */
1868 	new_vport = kzalloc(sizeof(*vport), GFP_KERNEL);
1869 	if (!new_vport)
1870 		return -ENOMEM;
1871 
1872 	/* This purposely avoids copying the end of the struct because it
1873 	 * contains wait_queues and mutexes and other stuff we don't want to
1874 	 * mess with. Nothing below should use those variables from new_vport
1875 	 * and should instead always refer to them in vport if they need to.
1876 	 */
1877 	memcpy(new_vport, vport, offsetof(struct idpf_vport, link_up));
1878 
1879 	/* Adjust resource parameters prior to reallocating resources */
1880 	switch (reset_cause) {
1881 	case IDPF_SR_Q_CHANGE:
1882 		err = idpf_vport_adjust_qs(new_vport);
1883 		if (err)
1884 			goto free_vport;
1885 		break;
1886 	case IDPF_SR_Q_DESC_CHANGE:
1887 		/* Update queue parameters before allocating resources */
1888 		idpf_vport_calc_num_q_desc(new_vport);
1889 		break;
1890 	case IDPF_SR_MTU_CHANGE:
1891 	case IDPF_SR_RSC_CHANGE:
1892 		break;
1893 	default:
1894 		dev_err(&adapter->pdev->dev, "Unhandled soft reset cause\n");
1895 		err = -EINVAL;
1896 		goto free_vport;
1897 	}
1898 
1899 	if (current_state <= __IDPF_VPORT_DOWN) {
1900 		idpf_send_delete_queues_msg(vport);
1901 	} else {
1902 		set_bit(IDPF_VPORT_DEL_QUEUES, vport->flags);
1903 		idpf_vport_stop(vport);
1904 	}
1905 
1906 	idpf_deinit_rss(vport);
1907 	/* We're passing in vport here because we need its wait_queue
1908 	 * to send a message and it should be getting all the vport
1909 	 * config data out of the adapter but we need to be careful not
1910 	 * to add code to add_queues to change the vport config within
1911 	 * vport itself as it will be wiped with a memcpy later.
1912 	 */
1913 	err = idpf_send_add_queues_msg(vport, new_vport->num_txq,
1914 				       new_vport->num_complq,
1915 				       new_vport->num_rxq,
1916 				       new_vport->num_bufq);
1917 	if (err)
1918 		goto err_reset;
1919 
1920 	/* Same comment as above regarding avoiding copying the wait_queues and
1921 	 * mutexes applies here. We do not want to mess with those if possible.
1922 	 */
1923 	memcpy(vport, new_vport, offsetof(struct idpf_vport, link_up));
1924 
1925 	if (reset_cause == IDPF_SR_Q_CHANGE)
1926 		idpf_vport_alloc_vec_indexes(vport);
1927 
1928 	err = idpf_set_real_num_queues(vport);
1929 	if (err)
1930 		goto err_open;
1931 
1932 	if (current_state == __IDPF_VPORT_UP)
1933 		err = idpf_vport_open(vport);
1934 
1935 	kfree(new_vport);
1936 
1937 	return err;
1938 
1939 err_reset:
1940 	idpf_send_add_queues_msg(vport, vport->num_txq, vport->num_complq,
1941 				 vport->num_rxq, vport->num_bufq);
1942 
1943 err_open:
1944 	if (current_state == __IDPF_VPORT_UP)
1945 		idpf_vport_open(vport);
1946 
1947 free_vport:
1948 	kfree(new_vport);
1949 
1950 	return err;
1951 }
1952 
1953 /**
1954  * idpf_addr_sync - Callback for dev_(mc|uc)_sync to add address
1955  * @netdev: the netdevice
1956  * @addr: address to add
1957  *
1958  * Called by __dev_(mc|uc)_sync when an address needs to be added. We call
1959  * __dev_(uc|mc)_sync from .set_rx_mode. Kernel takes addr_list_lock spinlock
1960  * meaning we cannot sleep in this context. Due to this, we have to add the
1961  * filter and send the virtchnl message asynchronously without waiting for the
1962  * response from the other side. We won't know whether or not the operation
1963  * actually succeeded until we get the message back.  Returns 0 on success,
1964  * negative on failure.
1965  */
idpf_addr_sync(struct net_device * netdev,const u8 * addr)1966 static int idpf_addr_sync(struct net_device *netdev, const u8 *addr)
1967 {
1968 	struct idpf_netdev_priv *np = netdev_priv(netdev);
1969 
1970 	return idpf_add_mac_filter(np->vport, np, addr, true);
1971 }
1972 
1973 /**
1974  * idpf_addr_unsync - Callback for dev_(mc|uc)_sync to remove address
1975  * @netdev: the netdevice
1976  * @addr: address to add
1977  *
1978  * Called by __dev_(mc|uc)_sync when an address needs to be added. We call
1979  * __dev_(uc|mc)_sync from .set_rx_mode. Kernel takes addr_list_lock spinlock
1980  * meaning we cannot sleep in this context. Due to this we have to delete the
1981  * filter and send the virtchnl message asynchronously without waiting for the
1982  * return from the other side.  We won't know whether or not the operation
1983  * actually succeeded until we get the message back. Returns 0 on success,
1984  * negative on failure.
1985  */
idpf_addr_unsync(struct net_device * netdev,const u8 * addr)1986 static int idpf_addr_unsync(struct net_device *netdev, const u8 *addr)
1987 {
1988 	struct idpf_netdev_priv *np = netdev_priv(netdev);
1989 
1990 	/* Under some circumstances, we might receive a request to delete
1991 	 * our own device address from our uc list. Because we store the
1992 	 * device address in the VSI's MAC filter list, we need to ignore
1993 	 * such requests and not delete our device address from this list.
1994 	 */
1995 	if (ether_addr_equal(addr, netdev->dev_addr))
1996 		return 0;
1997 
1998 	idpf_del_mac_filter(np->vport, np, addr, true);
1999 
2000 	return 0;
2001 }
2002 
2003 /**
2004  * idpf_set_rx_mode - NDO callback to set the netdev filters
2005  * @netdev: network interface device structure
2006  *
2007  * Stack takes addr_list_lock spinlock before calling our .set_rx_mode.  We
2008  * cannot sleep in this context.
2009  */
idpf_set_rx_mode(struct net_device * netdev)2010 static void idpf_set_rx_mode(struct net_device *netdev)
2011 {
2012 	struct idpf_netdev_priv *np = netdev_priv(netdev);
2013 	struct idpf_vport_user_config_data *config_data;
2014 	struct idpf_adapter *adapter;
2015 	bool changed = false;
2016 	struct device *dev;
2017 	int err;
2018 
2019 	adapter = np->adapter;
2020 	dev = &adapter->pdev->dev;
2021 
2022 	if (idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_MACFILTER)) {
2023 		__dev_uc_sync(netdev, idpf_addr_sync, idpf_addr_unsync);
2024 		__dev_mc_sync(netdev, idpf_addr_sync, idpf_addr_unsync);
2025 	}
2026 
2027 	if (!idpf_is_cap_ena(adapter, IDPF_OTHER_CAPS, VIRTCHNL2_CAP_PROMISC))
2028 		return;
2029 
2030 	config_data = &adapter->vport_config[np->vport_idx]->user_config;
2031 	/* IFF_PROMISC enables both unicast and multicast promiscuous,
2032 	 * while IFF_ALLMULTI only enables multicast such that:
2033 	 *
2034 	 * promisc  + allmulti		= unicast | multicast
2035 	 * promisc  + !allmulti		= unicast | multicast
2036 	 * !promisc + allmulti		= multicast
2037 	 */
2038 	if ((netdev->flags & IFF_PROMISC) &&
2039 	    !test_and_set_bit(__IDPF_PROMISC_UC, config_data->user_flags)) {
2040 		changed = true;
2041 		dev_info(&adapter->pdev->dev, "Entering promiscuous mode\n");
2042 		if (!test_and_set_bit(__IDPF_PROMISC_MC, adapter->flags))
2043 			dev_info(dev, "Entering multicast promiscuous mode\n");
2044 	}
2045 
2046 	if (!(netdev->flags & IFF_PROMISC) &&
2047 	    test_and_clear_bit(__IDPF_PROMISC_UC, config_data->user_flags)) {
2048 		changed = true;
2049 		dev_info(dev, "Leaving promiscuous mode\n");
2050 	}
2051 
2052 	if (netdev->flags & IFF_ALLMULTI &&
2053 	    !test_and_set_bit(__IDPF_PROMISC_MC, config_data->user_flags)) {
2054 		changed = true;
2055 		dev_info(dev, "Entering multicast promiscuous mode\n");
2056 	}
2057 
2058 	if (!(netdev->flags & (IFF_ALLMULTI | IFF_PROMISC)) &&
2059 	    test_and_clear_bit(__IDPF_PROMISC_MC, config_data->user_flags)) {
2060 		changed = true;
2061 		dev_info(dev, "Leaving multicast promiscuous mode\n");
2062 	}
2063 
2064 	if (!changed)
2065 		return;
2066 
2067 	err = idpf_set_promiscuous(adapter, config_data, np->vport_id);
2068 	if (err)
2069 		dev_err(dev, "Failed to set promiscuous mode: %d\n", err);
2070 }
2071 
2072 /**
2073  * idpf_vport_manage_rss_lut - disable/enable RSS
2074  * @vport: the vport being changed
2075  *
2076  * In the event of disable request for RSS, this function will zero out RSS
2077  * LUT, while in the event of enable request for RSS, it will reconfigure RSS
2078  * LUT with the default LUT configuration.
2079  */
idpf_vport_manage_rss_lut(struct idpf_vport * vport)2080 static int idpf_vport_manage_rss_lut(struct idpf_vport *vport)
2081 {
2082 	bool ena = idpf_is_feature_ena(vport, NETIF_F_RXHASH);
2083 	struct idpf_rss_data *rss_data;
2084 	u16 idx = vport->idx;
2085 	int lut_size;
2086 
2087 	rss_data = &vport->adapter->vport_config[idx]->user_config.rss_data;
2088 	lut_size = rss_data->rss_lut_size * sizeof(u32);
2089 
2090 	if (ena) {
2091 		/* This will contain the default or user configured LUT */
2092 		memcpy(rss_data->rss_lut, rss_data->cached_lut, lut_size);
2093 	} else {
2094 		/* Save a copy of the current LUT to be restored later if
2095 		 * requested.
2096 		 */
2097 		memcpy(rss_data->cached_lut, rss_data->rss_lut, lut_size);
2098 
2099 		/* Zero out the current LUT to disable */
2100 		memset(rss_data->rss_lut, 0, lut_size);
2101 	}
2102 
2103 	return idpf_config_rss(vport);
2104 }
2105 
2106 /**
2107  * idpf_set_features - set the netdev feature flags
2108  * @netdev: ptr to the netdev being adjusted
2109  * @features: the feature set that the stack is suggesting
2110  */
idpf_set_features(struct net_device * netdev,netdev_features_t features)2111 static int idpf_set_features(struct net_device *netdev,
2112 			     netdev_features_t features)
2113 {
2114 	netdev_features_t changed = netdev->features ^ features;
2115 	struct idpf_adapter *adapter;
2116 	struct idpf_vport *vport;
2117 	int err = 0;
2118 
2119 	idpf_vport_ctrl_lock(netdev);
2120 	vport = idpf_netdev_to_vport(netdev);
2121 
2122 	adapter = vport->adapter;
2123 
2124 	if (idpf_is_reset_in_prog(adapter)) {
2125 		dev_err(&adapter->pdev->dev, "Device is resetting, changing netdev features temporarily unavailable.\n");
2126 		err = -EBUSY;
2127 		goto unlock_mutex;
2128 	}
2129 
2130 	if (changed & NETIF_F_RXHASH) {
2131 		netdev->features ^= NETIF_F_RXHASH;
2132 		err = idpf_vport_manage_rss_lut(vport);
2133 		if (err)
2134 			goto unlock_mutex;
2135 	}
2136 
2137 	if (changed & NETIF_F_GRO_HW) {
2138 		netdev->features ^= NETIF_F_GRO_HW;
2139 		err = idpf_initiate_soft_reset(vport, IDPF_SR_RSC_CHANGE);
2140 		if (err)
2141 			goto unlock_mutex;
2142 	}
2143 
2144 	if (changed & NETIF_F_LOOPBACK) {
2145 		netdev->features ^= NETIF_F_LOOPBACK;
2146 		err = idpf_send_ena_dis_loopback_msg(vport);
2147 	}
2148 
2149 unlock_mutex:
2150 	idpf_vport_ctrl_unlock(netdev);
2151 
2152 	return err;
2153 }
2154 
2155 /**
2156  * idpf_open - Called when a network interface becomes active
2157  * @netdev: network interface device structure
2158  *
2159  * The open entry point is called when a network interface is made
2160  * active by the system (IFF_UP).  At this point all resources needed
2161  * for transmit and receive operations are allocated, the interrupt
2162  * handler is registered with the OS, the netdev watchdog is enabled,
2163  * and the stack is notified that the interface is ready.
2164  *
2165  * Returns 0 on success, negative value on failure
2166  */
idpf_open(struct net_device * netdev)2167 static int idpf_open(struct net_device *netdev)
2168 {
2169 	struct idpf_vport *vport;
2170 	int err;
2171 
2172 	idpf_vport_ctrl_lock(netdev);
2173 	vport = idpf_netdev_to_vport(netdev);
2174 
2175 	err = idpf_set_real_num_queues(vport);
2176 	if (err)
2177 		goto unlock;
2178 
2179 	err = idpf_vport_open(vport);
2180 
2181 unlock:
2182 	idpf_vport_ctrl_unlock(netdev);
2183 
2184 	return err;
2185 }
2186 
2187 /**
2188  * idpf_change_mtu - NDO callback to change the MTU
2189  * @netdev: network interface device structure
2190  * @new_mtu: new value for maximum frame size
2191  *
2192  * Returns 0 on success, negative on failure
2193  */
idpf_change_mtu(struct net_device * netdev,int new_mtu)2194 static int idpf_change_mtu(struct net_device *netdev, int new_mtu)
2195 {
2196 	struct idpf_vport *vport;
2197 	int err;
2198 
2199 	idpf_vport_ctrl_lock(netdev);
2200 	vport = idpf_netdev_to_vport(netdev);
2201 
2202 	WRITE_ONCE(netdev->mtu, new_mtu);
2203 
2204 	err = idpf_initiate_soft_reset(vport, IDPF_SR_MTU_CHANGE);
2205 
2206 	idpf_vport_ctrl_unlock(netdev);
2207 
2208 	return err;
2209 }
2210 
2211 /**
2212  * idpf_features_check - Validate packet conforms to limits
2213  * @skb: skb buffer
2214  * @netdev: This port's netdev
2215  * @features: Offload features that the stack believes apply
2216  */
idpf_features_check(struct sk_buff * skb,struct net_device * netdev,netdev_features_t features)2217 static netdev_features_t idpf_features_check(struct sk_buff *skb,
2218 					     struct net_device *netdev,
2219 					     netdev_features_t features)
2220 {
2221 	struct idpf_vport *vport = idpf_netdev_to_vport(netdev);
2222 	struct idpf_adapter *adapter = vport->adapter;
2223 	size_t len;
2224 
2225 	/* No point in doing any of this if neither checksum nor GSO are
2226 	 * being requested for this frame.  We can rule out both by just
2227 	 * checking for CHECKSUM_PARTIAL
2228 	 */
2229 	if (skb->ip_summed != CHECKSUM_PARTIAL)
2230 		return features;
2231 
2232 	/* We cannot support GSO if the MSS is going to be less than
2233 	 * 88 bytes. If it is then we need to drop support for GSO.
2234 	 */
2235 	if (skb_is_gso(skb) &&
2236 	    (skb_shinfo(skb)->gso_size < IDPF_TX_TSO_MIN_MSS))
2237 		features &= ~NETIF_F_GSO_MASK;
2238 
2239 	/* Ensure MACLEN is <= 126 bytes (63 words) and not an odd size */
2240 	len = skb_network_offset(skb);
2241 	if (unlikely(len & ~(126)))
2242 		goto unsupported;
2243 
2244 	len = skb_network_header_len(skb);
2245 	if (unlikely(len > idpf_get_max_tx_hdr_size(adapter)))
2246 		goto unsupported;
2247 
2248 	if (!skb->encapsulation)
2249 		return features;
2250 
2251 	/* L4TUNLEN can support 127 words */
2252 	len = skb_inner_network_header(skb) - skb_transport_header(skb);
2253 	if (unlikely(len & ~(127 * 2)))
2254 		goto unsupported;
2255 
2256 	/* IPLEN can support at most 127 dwords */
2257 	len = skb_inner_network_header_len(skb);
2258 	if (unlikely(len > idpf_get_max_tx_hdr_size(adapter)))
2259 		goto unsupported;
2260 
2261 	/* No need to validate L4LEN as TCP is the only protocol with a
2262 	 * a flexible value and we support all possible values supported
2263 	 * by TCP, which is at most 15 dwords
2264 	 */
2265 
2266 	return features;
2267 
2268 unsupported:
2269 	return features & ~(NETIF_F_CSUM_MASK | NETIF_F_GSO_MASK);
2270 }
2271 
2272 /**
2273  * idpf_set_mac - NDO callback to set port mac address
2274  * @netdev: network interface device structure
2275  * @p: pointer to an address structure
2276  *
2277  * Returns 0 on success, negative on failure
2278  **/
idpf_set_mac(struct net_device * netdev,void * p)2279 static int idpf_set_mac(struct net_device *netdev, void *p)
2280 {
2281 	struct idpf_netdev_priv *np = netdev_priv(netdev);
2282 	struct idpf_vport_config *vport_config;
2283 	struct sockaddr *addr = p;
2284 	struct idpf_vport *vport;
2285 	int err = 0;
2286 
2287 	idpf_vport_ctrl_lock(netdev);
2288 	vport = idpf_netdev_to_vport(netdev);
2289 
2290 	if (!idpf_is_cap_ena(vport->adapter, IDPF_OTHER_CAPS,
2291 			     VIRTCHNL2_CAP_MACFILTER)) {
2292 		dev_info(&vport->adapter->pdev->dev, "Setting MAC address is not supported\n");
2293 		err = -EOPNOTSUPP;
2294 		goto unlock_mutex;
2295 	}
2296 
2297 	if (!is_valid_ether_addr(addr->sa_data)) {
2298 		dev_info(&vport->adapter->pdev->dev, "Invalid MAC address: %pM\n",
2299 			 addr->sa_data);
2300 		err = -EADDRNOTAVAIL;
2301 		goto unlock_mutex;
2302 	}
2303 
2304 	if (ether_addr_equal(netdev->dev_addr, addr->sa_data))
2305 		goto unlock_mutex;
2306 
2307 	vport_config = vport->adapter->vport_config[vport->idx];
2308 	err = idpf_add_mac_filter(vport, np, addr->sa_data, false);
2309 	if (err) {
2310 		__idpf_del_mac_filter(vport_config, addr->sa_data);
2311 		goto unlock_mutex;
2312 	}
2313 
2314 	if (is_valid_ether_addr(vport->default_mac_addr))
2315 		idpf_del_mac_filter(vport, np, vport->default_mac_addr, false);
2316 
2317 	ether_addr_copy(vport->default_mac_addr, addr->sa_data);
2318 	eth_hw_addr_set(netdev, addr->sa_data);
2319 
2320 unlock_mutex:
2321 	idpf_vport_ctrl_unlock(netdev);
2322 
2323 	return err;
2324 }
2325 
2326 /**
2327  * idpf_alloc_dma_mem - Allocate dma memory
2328  * @hw: pointer to hw struct
2329  * @mem: pointer to dma_mem struct
2330  * @size: size of the memory to allocate
2331  */
idpf_alloc_dma_mem(struct idpf_hw * hw,struct idpf_dma_mem * mem,u64 size)2332 void *idpf_alloc_dma_mem(struct idpf_hw *hw, struct idpf_dma_mem *mem, u64 size)
2333 {
2334 	struct idpf_adapter *adapter = hw->back;
2335 	size_t sz = ALIGN(size, 4096);
2336 
2337 	mem->va = dma_alloc_coherent(&adapter->pdev->dev, sz,
2338 				     &mem->pa, GFP_KERNEL);
2339 	mem->size = sz;
2340 
2341 	return mem->va;
2342 }
2343 
2344 /**
2345  * idpf_free_dma_mem - Free the allocated dma memory
2346  * @hw: pointer to hw struct
2347  * @mem: pointer to dma_mem struct
2348  */
idpf_free_dma_mem(struct idpf_hw * hw,struct idpf_dma_mem * mem)2349 void idpf_free_dma_mem(struct idpf_hw *hw, struct idpf_dma_mem *mem)
2350 {
2351 	struct idpf_adapter *adapter = hw->back;
2352 
2353 	dma_free_coherent(&adapter->pdev->dev, mem->size,
2354 			  mem->va, mem->pa);
2355 	mem->size = 0;
2356 	mem->va = NULL;
2357 	mem->pa = 0;
2358 }
2359 
2360 static const struct net_device_ops idpf_netdev_ops = {
2361 	.ndo_open = idpf_open,
2362 	.ndo_stop = idpf_stop,
2363 	.ndo_start_xmit = idpf_tx_start,
2364 	.ndo_features_check = idpf_features_check,
2365 	.ndo_set_rx_mode = idpf_set_rx_mode,
2366 	.ndo_validate_addr = eth_validate_addr,
2367 	.ndo_set_mac_address = idpf_set_mac,
2368 	.ndo_change_mtu = idpf_change_mtu,
2369 	.ndo_get_stats64 = idpf_get_stats64,
2370 	.ndo_set_features = idpf_set_features,
2371 	.ndo_tx_timeout = idpf_tx_timeout,
2372 };
2373