xref: /f-stack/dpdk/kernel/linux/kni/kni_net.c (revision 851ac5c0)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  * Copyright(c) 2010-2014 Intel Corporation.
4  */
5 
6 /*
7  * This code is inspired from the book "Linux Device Drivers" by
8  * Alessandro Rubini and Jonathan Corbet, published by O'Reilly & Associates
9  */
10 
11 #include <linux/device.h>
12 #include <linux/module.h>
13 #include <linux/version.h>
14 #include <linux/netdevice.h>
15 #include <linux/etherdevice.h> /* eth_type_trans */
16 #include <linux/skbuff.h>
17 #include <linux/kthread.h>
18 #include <linux/delay.h>
19 
20 #include <exec-env/rte_kni_common.h>
21 #include <kni_fifo.h>
22 
23 #include "compat.h"
24 #include "kni_dev.h"
25 
26 #define WD_TIMEOUT 5 /*jiffies */
27 
28 #define KNI_WAIT_RESPONSE_TIMEOUT 300 /* 3 seconds */
29 
30 /* typedef for rx function */
31 typedef void (*kni_net_rx_t)(struct kni_dev *kni);
32 
33 static void kni_net_rx_normal(struct kni_dev *kni);
34 
35 /* kni rx function pointer, with default to normal rx */
36 static kni_net_rx_t kni_net_rx_func = kni_net_rx_normal;
37 
38 /* physical address to kernel virtual address */
39 static void *
40 pa2kva(void *pa)
41 {
42 	return phys_to_virt((unsigned long)pa);
43 }
44 
45 /* physical address to virtual address */
46 static void *
47 pa2va(void *pa, struct rte_kni_mbuf *m)
48 {
49 	void *va;
50 
51 	va = (void *)((unsigned long)pa +
52 			(unsigned long)m->buf_addr -
53 			(unsigned long)m->buf_physaddr);
54 	return va;
55 }
56 
57 /* mbuf data kernel virtual address from mbuf kernel virtual address */
58 static void *
59 kva2data_kva(struct rte_kni_mbuf *m)
60 {
61 	return phys_to_virt(m->buf_physaddr + m->data_off);
62 }
63 
64 /*
65  * It can be called to process the request.
66  */
67 static int
68 kni_net_process_request(struct kni_dev *kni, struct rte_kni_request *req)
69 {
70 	int ret = -1;
71 	void *resp_va;
72 	uint32_t num;
73 	int ret_val;
74 
75 	if (!kni || !req) {
76 		pr_err("No kni instance or request\n");
77 		return -EINVAL;
78 	}
79 
80 	mutex_lock(&kni->sync_lock);
81 
82 	/* Construct data */
83 	memcpy(kni->sync_kva, req, sizeof(struct rte_kni_request));
84 	num = kni_fifo_put(kni->req_q, &kni->sync_va, 1);
85 	if (num < 1) {
86 		pr_err("Cannot send to req_q\n");
87 		ret = -EBUSY;
88 		goto fail;
89 	}
90 
91 	ret_val = wait_event_interruptible_timeout(kni->wq,
92 			kni_fifo_count(kni->resp_q), 3 * HZ);
93 	if (signal_pending(current) || ret_val <= 0) {
94 		ret = -ETIME;
95 		goto fail;
96 	}
97 	num = kni_fifo_get(kni->resp_q, (void **)&resp_va, 1);
98 	if (num != 1 || resp_va != kni->sync_va) {
99 		/* This should never happen */
100 		pr_err("No data in resp_q\n");
101 		ret = -ENODATA;
102 		goto fail;
103 	}
104 
105 	memcpy(req, kni->sync_kva, sizeof(struct rte_kni_request));
106 	ret = 0;
107 
108 fail:
109 	mutex_unlock(&kni->sync_lock);
110 	return ret;
111 }
112 
113 /*
114  * Open and close
115  */
116 static int
117 kni_net_open(struct net_device *dev)
118 {
119 	int ret;
120 	struct rte_kni_request req;
121 	struct kni_dev *kni = netdev_priv(dev);
122 
123 	netif_start_queue(dev);
124 	if (dflt_carrier == 1)
125 		netif_carrier_on(dev);
126 	else
127 		netif_carrier_off(dev);
128 
129 	memset(&req, 0, sizeof(req));
130 	req.req_id = RTE_KNI_REQ_CFG_NETWORK_IF;
131 
132 	/* Setting if_up to non-zero means up */
133 	req.if_up = 1;
134 	ret = kni_net_process_request(kni, &req);
135 
136 	return (ret == 0) ? req.result : ret;
137 }
138 
139 static int
140 kni_net_release(struct net_device *dev)
141 {
142 	int ret;
143 	struct rte_kni_request req;
144 	struct kni_dev *kni = netdev_priv(dev);
145 
146 	netif_stop_queue(dev); /* can't transmit any more */
147 	netif_carrier_off(dev);
148 
149 	memset(&req, 0, sizeof(req));
150 	req.req_id = RTE_KNI_REQ_CFG_NETWORK_IF;
151 
152 	/* Setting if_up to 0 means down */
153 	req.if_up = 0;
154 	ret = kni_net_process_request(kni, &req);
155 
156 	return (ret == 0) ? req.result : ret;
157 }
158 
159 static void
160 kni_fifo_trans_pa2va(struct kni_dev *kni,
161 	struct rte_kni_fifo *src_pa, struct rte_kni_fifo *dst_va)
162 {
163 	uint32_t ret, i, num_dst, num_rx;
164 	struct rte_kni_mbuf *kva, *prev_kva;
165 	int nb_segs;
166 	int kva_nb_segs;
167 
168 	do {
169 		num_dst = kni_fifo_free_count(dst_va);
170 		if (num_dst == 0)
171 			return;
172 
173 		num_rx = min_t(uint32_t, num_dst, MBUF_BURST_SZ);
174 
175 		num_rx = kni_fifo_get(src_pa, kni->pa, num_rx);
176 		if (num_rx == 0)
177 			return;
178 
179 		for (i = 0; i < num_rx; i++) {
180 			kva = pa2kva(kni->pa[i]);
181 			kni->va[i] = pa2va(kni->pa[i], kva);
182 
183 			kva_nb_segs = kva->nb_segs;
184 			for (nb_segs = 0; nb_segs < kva_nb_segs; nb_segs++) {
185 				if (!kva->next)
186 					break;
187 
188 				prev_kva = kva;
189 				kva = pa2kva(kva->next);
190 				/* Convert physical address to virtual address */
191 				prev_kva->next = pa2va(prev_kva->next, kva);
192 			}
193 		}
194 
195 		ret = kni_fifo_put(dst_va, kni->va, num_rx);
196 		if (ret != num_rx) {
197 			/* Failing should not happen */
198 			pr_err("Fail to enqueue entries into dst_va\n");
199 			return;
200 		}
201 	} while (1);
202 }
203 
204 /* Try to release mbufs when kni release */
205 void kni_net_release_fifo_phy(struct kni_dev *kni)
206 {
207 	/* release rx_q first, because it can't release in userspace */
208 	kni_fifo_trans_pa2va(kni, kni->rx_q, kni->free_q);
209 	/* release alloc_q for speeding up kni release in userspace */
210 	kni_fifo_trans_pa2va(kni, kni->alloc_q, kni->free_q);
211 }
212 
213 /*
214  * Configuration changes (passed on by ifconfig)
215  */
216 static int
217 kni_net_config(struct net_device *dev, struct ifmap *map)
218 {
219 	if (dev->flags & IFF_UP) /* can't act on a running interface */
220 		return -EBUSY;
221 
222 	/* ignore other fields */
223 	return 0;
224 }
225 
226 /*
227  * Transmit a packet (called by the kernel)
228  */
229 static int
230 kni_net_tx(struct sk_buff *skb, struct net_device *dev)
231 {
232 	int len = 0;
233 	uint32_t ret;
234 	struct kni_dev *kni = netdev_priv(dev);
235 	struct rte_kni_mbuf *pkt_kva = NULL;
236 	void *pkt_pa = NULL;
237 	void *pkt_va = NULL;
238 
239 	/* save the timestamp */
240 #ifdef HAVE_TRANS_START_HELPER
241 	netif_trans_update(dev);
242 #else
243 	dev->trans_start = jiffies;
244 #endif
245 
246 	/* Check if the length of skb is less than mbuf size */
247 	if (skb->len > kni->mbuf_size)
248 		goto drop;
249 
250 	/**
251 	 * Check if it has at least one free entry in tx_q and
252 	 * one entry in alloc_q.
253 	 */
254 	if (kni_fifo_free_count(kni->tx_q) == 0 ||
255 			kni_fifo_count(kni->alloc_q) == 0) {
256 		/**
257 		 * If no free entry in tx_q or no entry in alloc_q,
258 		 * drops skb and goes out.
259 		 */
260 		goto drop;
261 	}
262 
263 	/* dequeue a mbuf from alloc_q */
264 	ret = kni_fifo_get(kni->alloc_q, &pkt_pa, 1);
265 	if (likely(ret == 1)) {
266 		void *data_kva;
267 
268 		pkt_kva = pa2kva(pkt_pa);
269 		data_kva = kva2data_kva(pkt_kva);
270 		pkt_va = pa2va(pkt_pa, pkt_kva);
271 
272 		len = skb->len;
273 		memcpy(data_kva, skb->data, len);
274 		if (unlikely(len < ETH_ZLEN)) {
275 			memset(data_kva + len, 0, ETH_ZLEN - len);
276 			len = ETH_ZLEN;
277 		}
278 		pkt_kva->pkt_len = len;
279 		pkt_kva->data_len = len;
280 
281 		/* enqueue mbuf into tx_q */
282 		ret = kni_fifo_put(kni->tx_q, &pkt_va, 1);
283 		if (unlikely(ret != 1)) {
284 			/* Failing should not happen */
285 			pr_err("Fail to enqueue mbuf into tx_q\n");
286 			goto drop;
287 		}
288 	} else {
289 		/* Failing should not happen */
290 		pr_err("Fail to dequeue mbuf from alloc_q\n");
291 		goto drop;
292 	}
293 
294 	/* Free skb and update statistics */
295 	dev_kfree_skb(skb);
296 	kni->stats.tx_bytes += len;
297 	kni->stats.tx_packets++;
298 
299 	return NETDEV_TX_OK;
300 
301 drop:
302 	/* Free skb and update statistics */
303 	dev_kfree_skb(skb);
304 	kni->stats.tx_dropped++;
305 
306 	return NETDEV_TX_OK;
307 }
308 
309 /*
310  * RX: normal working mode
311  */
312 static void
313 kni_net_rx_normal(struct kni_dev *kni)
314 {
315 	uint32_t ret;
316 	uint32_t len;
317 	uint32_t i, num_rx, num_fq;
318 	struct rte_kni_mbuf *kva, *prev_kva;
319 	void *data_kva;
320 	struct sk_buff *skb;
321 	struct net_device *dev = kni->net_dev;
322 
323 	/* Get the number of free entries in free_q */
324 	num_fq = kni_fifo_free_count(kni->free_q);
325 	if (num_fq == 0) {
326 		/* No room on the free_q, bail out */
327 		return;
328 	}
329 
330 	/* Calculate the number of entries to dequeue from rx_q */
331 	num_rx = min_t(uint32_t, num_fq, MBUF_BURST_SZ);
332 
333 	/* Burst dequeue from rx_q */
334 	num_rx = kni_fifo_get(kni->rx_q, kni->pa, num_rx);
335 	if (num_rx == 0)
336 		return;
337 
338 	/* Transfer received packets to netif */
339 	for (i = 0; i < num_rx; i++) {
340 		kva = pa2kva(kni->pa[i]);
341 		len = kva->pkt_len;
342 		data_kva = kva2data_kva(kva);
343 		kni->va[i] = pa2va(kni->pa[i], kva);
344 
345 		skb = dev_alloc_skb(len + 2);
346 		if (!skb) {
347 			/* Update statistics */
348 			kni->stats.rx_dropped++;
349 			continue;
350 		}
351 
352 		/* Align IP on 16B boundary */
353 		skb_reserve(skb, 2);
354 
355 		if (kva->nb_segs == 1) {
356 			memcpy(skb_put(skb, len), data_kva, len);
357 		} else {
358 			int nb_segs;
359 			int kva_nb_segs = kva->nb_segs;
360 
361 			for (nb_segs = 0; nb_segs < kva_nb_segs; nb_segs++) {
362 				memcpy(skb_put(skb, kva->data_len),
363 					data_kva, kva->data_len);
364 
365 				if (!kva->next)
366 					break;
367 
368 				prev_kva = kva;
369 				kva = pa2kva(kva->next);
370 				data_kva = kva2data_kva(kva);
371 				/* Convert physical address to virtual address */
372 				prev_kva->next = pa2va(prev_kva->next, kva);
373 			}
374 		}
375 
376 		skb->dev = dev;
377 		skb->protocol = eth_type_trans(skb, dev);
378 		skb->ip_summed = CHECKSUM_UNNECESSARY;
379 
380 		/* Call netif interface */
381 		netif_rx_ni(skb);
382 
383 		/* Update statistics */
384 		kni->stats.rx_bytes += len;
385 		kni->stats.rx_packets++;
386 	}
387 
388 	/* Burst enqueue mbufs into free_q */
389 	ret = kni_fifo_put(kni->free_q, kni->va, num_rx);
390 	if (ret != num_rx)
391 		/* Failing should not happen */
392 		pr_err("Fail to enqueue entries into free_q\n");
393 }
394 
395 /*
396  * RX: loopback with enqueue/dequeue fifos.
397  */
398 static void
399 kni_net_rx_lo_fifo(struct kni_dev *kni)
400 {
401 	uint32_t ret;
402 	uint32_t len;
403 	uint32_t i, num, num_rq, num_tq, num_aq, num_fq;
404 	struct rte_kni_mbuf *kva, *next_kva;
405 	void *data_kva;
406 	struct rte_kni_mbuf *alloc_kva;
407 	void *alloc_data_kva;
408 
409 	/* Get the number of entries in rx_q */
410 	num_rq = kni_fifo_count(kni->rx_q);
411 
412 	/* Get the number of free entries in tx_q */
413 	num_tq = kni_fifo_free_count(kni->tx_q);
414 
415 	/* Get the number of entries in alloc_q */
416 	num_aq = kni_fifo_count(kni->alloc_q);
417 
418 	/* Get the number of free entries in free_q */
419 	num_fq = kni_fifo_free_count(kni->free_q);
420 
421 	/* Calculate the number of entries to be dequeued from rx_q */
422 	num = min(num_rq, num_tq);
423 	num = min(num, num_aq);
424 	num = min(num, num_fq);
425 	num = min_t(uint32_t, num, MBUF_BURST_SZ);
426 
427 	/* Return if no entry to dequeue from rx_q */
428 	if (num == 0)
429 		return;
430 
431 	/* Burst dequeue from rx_q */
432 	ret = kni_fifo_get(kni->rx_q, kni->pa, num);
433 	if (ret == 0)
434 		return; /* Failing should not happen */
435 
436 	/* Dequeue entries from alloc_q */
437 	ret = kni_fifo_get(kni->alloc_q, kni->alloc_pa, num);
438 	if (ret) {
439 		num = ret;
440 		/* Copy mbufs */
441 		for (i = 0; i < num; i++) {
442 			kva = pa2kva(kni->pa[i]);
443 			len = kva->data_len;
444 			data_kva = kva2data_kva(kva);
445 			kni->va[i] = pa2va(kni->pa[i], kva);
446 
447 			while (kva->next) {
448 				next_kva = pa2kva(kva->next);
449 				/* Convert physical address to virtual address */
450 				kva->next = pa2va(kva->next, next_kva);
451 				kva = next_kva;
452 			}
453 
454 			alloc_kva = pa2kva(kni->alloc_pa[i]);
455 			alloc_data_kva = kva2data_kva(alloc_kva);
456 			kni->alloc_va[i] = pa2va(kni->alloc_pa[i], alloc_kva);
457 
458 			memcpy(alloc_data_kva, data_kva, len);
459 			alloc_kva->pkt_len = len;
460 			alloc_kva->data_len = len;
461 
462 			kni->stats.tx_bytes += len;
463 			kni->stats.rx_bytes += len;
464 		}
465 
466 		/* Burst enqueue mbufs into tx_q */
467 		ret = kni_fifo_put(kni->tx_q, kni->alloc_va, num);
468 		if (ret != num)
469 			/* Failing should not happen */
470 			pr_err("Fail to enqueue mbufs into tx_q\n");
471 	}
472 
473 	/* Burst enqueue mbufs into free_q */
474 	ret = kni_fifo_put(kni->free_q, kni->va, num);
475 	if (ret != num)
476 		/* Failing should not happen */
477 		pr_err("Fail to enqueue mbufs into free_q\n");
478 
479 	/**
480 	 * Update statistic, and enqueue/dequeue failure is impossible,
481 	 * as all queues are checked at first.
482 	 */
483 	kni->stats.tx_packets += num;
484 	kni->stats.rx_packets += num;
485 }
486 
487 /*
488  * RX: loopback with enqueue/dequeue fifos and sk buffer copies.
489  */
490 static void
491 kni_net_rx_lo_fifo_skb(struct kni_dev *kni)
492 {
493 	uint32_t ret;
494 	uint32_t len;
495 	uint32_t i, num_rq, num_fq, num;
496 	struct rte_kni_mbuf *kva, *prev_kva;
497 	void *data_kva;
498 	struct sk_buff *skb;
499 	struct net_device *dev = kni->net_dev;
500 
501 	/* Get the number of entries in rx_q */
502 	num_rq = kni_fifo_count(kni->rx_q);
503 
504 	/* Get the number of free entries in free_q */
505 	num_fq = kni_fifo_free_count(kni->free_q);
506 
507 	/* Calculate the number of entries to dequeue from rx_q */
508 	num = min(num_rq, num_fq);
509 	num = min_t(uint32_t, num, MBUF_BURST_SZ);
510 
511 	/* Return if no entry to dequeue from rx_q */
512 	if (num == 0)
513 		return;
514 
515 	/* Burst dequeue mbufs from rx_q */
516 	ret = kni_fifo_get(kni->rx_q, kni->pa, num);
517 	if (ret == 0)
518 		return;
519 
520 	/* Copy mbufs to sk buffer and then call tx interface */
521 	for (i = 0; i < num; i++) {
522 		kva = pa2kva(kni->pa[i]);
523 		len = kva->pkt_len;
524 		data_kva = kva2data_kva(kva);
525 		kni->va[i] = pa2va(kni->pa[i], kva);
526 
527 		skb = dev_alloc_skb(len + 2);
528 		if (skb) {
529 			/* Align IP on 16B boundary */
530 			skb_reserve(skb, 2);
531 			memcpy(skb_put(skb, len), data_kva, len);
532 			skb->dev = dev;
533 			skb->ip_summed = CHECKSUM_UNNECESSARY;
534 			dev_kfree_skb(skb);
535 		}
536 
537 		/* Simulate real usage, allocate/copy skb twice */
538 		skb = dev_alloc_skb(len + 2);
539 		if (skb == NULL) {
540 			kni->stats.rx_dropped++;
541 			continue;
542 		}
543 
544 		/* Align IP on 16B boundary */
545 		skb_reserve(skb, 2);
546 
547 		if (kva->nb_segs == 1) {
548 			memcpy(skb_put(skb, len), data_kva, len);
549 		} else {
550 			int nb_segs;
551 			int kva_nb_segs = kva->nb_segs;
552 
553 			for (nb_segs = 0; nb_segs < kva_nb_segs; nb_segs++) {
554 				memcpy(skb_put(skb, kva->data_len),
555 					data_kva, kva->data_len);
556 
557 				if (!kva->next)
558 					break;
559 
560 				prev_kva = kva;
561 				kva = pa2kva(kva->next);
562 				data_kva = kva2data_kva(kva);
563 				/* Convert physical address to virtual address */
564 				prev_kva->next = pa2va(prev_kva->next, kva);
565 			}
566 		}
567 
568 		skb->dev = dev;
569 		skb->ip_summed = CHECKSUM_UNNECESSARY;
570 
571 		kni->stats.rx_bytes += len;
572 		kni->stats.rx_packets++;
573 
574 		/* call tx interface */
575 		kni_net_tx(skb, dev);
576 	}
577 
578 	/* enqueue all the mbufs from rx_q into free_q */
579 	ret = kni_fifo_put(kni->free_q, kni->va, num);
580 	if (ret != num)
581 		/* Failing should not happen */
582 		pr_err("Fail to enqueue mbufs into free_q\n");
583 }
584 
585 /* rx interface */
586 void
587 kni_net_rx(struct kni_dev *kni)
588 {
589 	/**
590 	 * It doesn't need to check if it is NULL pointer,
591 	 * as it has a default value
592 	 */
593 	(*kni_net_rx_func)(kni);
594 }
595 
596 /*
597  * Deal with a transmit timeout.
598  */
599 static void
600 kni_net_tx_timeout(struct net_device *dev)
601 {
602 	struct kni_dev *kni = netdev_priv(dev);
603 
604 	pr_debug("Transmit timeout at %ld, latency %ld\n", jiffies,
605 			jiffies - dev_trans_start(dev));
606 
607 	kni->stats.tx_errors++;
608 	netif_wake_queue(dev);
609 }
610 
611 /*
612  * Ioctl commands
613  */
614 static int
615 kni_net_ioctl(struct net_device *dev, struct ifreq *rq, int cmd)
616 {
617 	pr_debug("kni_net_ioctl group:%d cmd:%d\n",
618 		((struct kni_dev *)netdev_priv(dev))->group_id, cmd);
619 
620 	return -EOPNOTSUPP;
621 }
622 
623 static void
624 kni_net_set_rx_mode(struct net_device *dev)
625 {
626 }
627 
628 static int
629 kni_net_change_mtu(struct net_device *dev, int new_mtu)
630 {
631 	int ret;
632 	struct rte_kni_request req;
633 	struct kni_dev *kni = netdev_priv(dev);
634 
635 	pr_debug("kni_net_change_mtu new mtu %d to be set\n", new_mtu);
636 
637 	memset(&req, 0, sizeof(req));
638 	req.req_id = RTE_KNI_REQ_CHANGE_MTU;
639 	req.new_mtu = new_mtu;
640 	ret = kni_net_process_request(kni, &req);
641 	if (ret == 0 && req.result == 0)
642 		dev->mtu = new_mtu;
643 
644 	return (ret == 0) ? req.result : ret;
645 }
646 
647 static void
648 kni_net_set_promiscusity(struct net_device *netdev, int flags)
649 {
650 	struct rte_kni_request req;
651 	struct kni_dev *kni = netdev_priv(netdev);
652 
653 	memset(&req, 0, sizeof(req));
654 	req.req_id = RTE_KNI_REQ_CHANGE_PROMISC;
655 
656 	if (netdev->flags & IFF_PROMISC)
657 		req.promiscusity = 1;
658 	else
659 		req.promiscusity = 0;
660 	kni_net_process_request(kni, &req);
661 }
662 
663 /*
664  * Checks if the user space application provided the resp message
665  */
666 void
667 kni_net_poll_resp(struct kni_dev *kni)
668 {
669 	if (kni_fifo_count(kni->resp_q))
670 		wake_up_interruptible(&kni->wq);
671 }
672 
673 /*
674  * Return statistics to the caller
675  */
676 static struct net_device_stats *
677 kni_net_stats(struct net_device *dev)
678 {
679 	struct kni_dev *kni = netdev_priv(dev);
680 
681 	return &kni->stats;
682 }
683 
684 /*
685  *  Fill the eth header
686  */
687 static int
688 kni_net_header(struct sk_buff *skb, struct net_device *dev,
689 		unsigned short type, const void *daddr,
690 		const void *saddr, uint32_t len)
691 {
692 	struct ethhdr *eth = (struct ethhdr *) skb_push(skb, ETH_HLEN);
693 
694 	memcpy(eth->h_source, saddr ? saddr : dev->dev_addr, dev->addr_len);
695 	memcpy(eth->h_dest,   daddr ? daddr : dev->dev_addr, dev->addr_len);
696 	eth->h_proto = htons(type);
697 
698 	return dev->hard_header_len;
699 }
700 
701 /*
702  * Re-fill the eth header
703  */
704 #ifdef HAVE_REBUILD_HEADER
705 static int
706 kni_net_rebuild_header(struct sk_buff *skb)
707 {
708 	struct net_device *dev = skb->dev;
709 	struct ethhdr *eth = (struct ethhdr *) skb->data;
710 
711 	memcpy(eth->h_source, dev->dev_addr, dev->addr_len);
712 	memcpy(eth->h_dest, dev->dev_addr, dev->addr_len);
713 
714 	return 0;
715 }
716 #endif /* < 4.1.0  */
717 
718 /**
719  * kni_net_set_mac - Change the Ethernet Address of the KNI NIC
720  * @netdev: network interface device structure
721  * @p: pointer to an address structure
722  *
723  * Returns 0 on success, negative on failure
724  **/
725 static int
726 kni_net_set_mac(struct net_device *netdev, void *p)
727 {
728 	int ret;
729 	struct rte_kni_request req;
730 	struct kni_dev *kni;
731 	struct sockaddr *addr = p;
732 
733 	memset(&req, 0, sizeof(req));
734 	req.req_id = RTE_KNI_REQ_CHANGE_MAC_ADDR;
735 
736 	if (!is_valid_ether_addr((unsigned char *)(addr->sa_data)))
737 		return -EADDRNOTAVAIL;
738 
739 	memcpy(req.mac_addr, addr->sa_data, netdev->addr_len);
740 	memcpy(netdev->dev_addr, addr->sa_data, netdev->addr_len);
741 
742 	kni = netdev_priv(netdev);
743 	ret = kni_net_process_request(kni, &req);
744 
745 	return (ret == 0 ? req.result : ret);
746 }
747 
748 #ifdef HAVE_CHANGE_CARRIER_CB
749 static int
750 kni_net_change_carrier(struct net_device *dev, bool new_carrier)
751 {
752 	if (new_carrier)
753 		netif_carrier_on(dev);
754 	else
755 		netif_carrier_off(dev);
756 	return 0;
757 }
758 #endif
759 
760 static const struct header_ops kni_net_header_ops = {
761 	.create  = kni_net_header,
762 #ifdef HAVE_REBUILD_HEADER
763 	.rebuild = kni_net_rebuild_header,
764 #endif /* < 4.1.0  */
765 	.cache   = NULL,  /* disable caching */
766 };
767 
768 static const struct net_device_ops kni_net_netdev_ops = {
769 	.ndo_open = kni_net_open,
770 	.ndo_stop = kni_net_release,
771 	.ndo_set_config = kni_net_config,
772 	.ndo_change_rx_flags = kni_net_set_promiscusity,
773 	.ndo_start_xmit = kni_net_tx,
774 	.ndo_change_mtu = kni_net_change_mtu,
775 	.ndo_do_ioctl = kni_net_ioctl,
776 	.ndo_set_rx_mode = kni_net_set_rx_mode,
777 	.ndo_get_stats = kni_net_stats,
778 	.ndo_tx_timeout = kni_net_tx_timeout,
779 	.ndo_set_mac_address = kni_net_set_mac,
780 #ifdef HAVE_CHANGE_CARRIER_CB
781 	.ndo_change_carrier = kni_net_change_carrier,
782 #endif
783 };
784 
785 void
786 kni_net_init(struct net_device *dev)
787 {
788 	struct kni_dev *kni = netdev_priv(dev);
789 
790 	init_waitqueue_head(&kni->wq);
791 	mutex_init(&kni->sync_lock);
792 
793 	ether_setup(dev); /* assign some of the fields */
794 	dev->netdev_ops      = &kni_net_netdev_ops;
795 	dev->header_ops      = &kni_net_header_ops;
796 	dev->watchdog_timeo = WD_TIMEOUT;
797 }
798 
799 void
800 kni_net_config_lo_mode(char *lo_str)
801 {
802 	if (!lo_str) {
803 		pr_debug("loopback disabled");
804 		return;
805 	}
806 
807 	if (!strcmp(lo_str, "lo_mode_none"))
808 		pr_debug("loopback disabled");
809 	else if (!strcmp(lo_str, "lo_mode_fifo")) {
810 		pr_debug("loopback mode=lo_mode_fifo enabled");
811 		kni_net_rx_func = kni_net_rx_lo_fifo;
812 	} else if (!strcmp(lo_str, "lo_mode_fifo_skb")) {
813 		pr_debug("loopback mode=lo_mode_fifo_skb enabled");
814 		kni_net_rx_func = kni_net_rx_lo_fifo_skb;
815 	} else {
816 		pr_debug("Unknown loopback parameter, disabled");
817 	}
818 }
819