xref: /linux/drivers/net/ethernet/intel/idpf/idpf_singleq_txrx.c (revision 2c7e4a2663a1ab5a740c59c31991579b6b865a26)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /* Copyright (C) 2023 Intel Corporation */
3 
4 #include <net/libeth/rx.h>
5 #include <net/libeth/tx.h>
6 
7 #include "idpf.h"
8 
9 /**
10  * idpf_tx_singleq_csum - Enable tx checksum offloads
11  * @skb: pointer to skb
12  * @off: pointer to struct that holds offload parameters
13  *
14  * Returns 0 or error (negative) if checksum offload cannot be executed, 1
15  * otherwise.
16  */
idpf_tx_singleq_csum(struct sk_buff * skb,struct idpf_tx_offload_params * off)17 static int idpf_tx_singleq_csum(struct sk_buff *skb,
18 				struct idpf_tx_offload_params *off)
19 {
20 	u32 l4_len, l3_len, l2_len;
21 	union {
22 		struct iphdr *v4;
23 		struct ipv6hdr *v6;
24 		unsigned char *hdr;
25 	} ip;
26 	union {
27 		struct tcphdr *tcp;
28 		unsigned char *hdr;
29 	} l4;
30 	u32 offset, cmd = 0;
31 	u8 l4_proto = 0;
32 	__be16 frag_off;
33 	bool is_tso;
34 
35 	if (skb->ip_summed != CHECKSUM_PARTIAL)
36 		return 0;
37 
38 	ip.hdr = skb_network_header(skb);
39 	l4.hdr = skb_transport_header(skb);
40 
41 	/* compute outer L2 header size */
42 	l2_len = ip.hdr - skb->data;
43 	offset = FIELD_PREP(0x3F << IDPF_TX_DESC_LEN_MACLEN_S, l2_len / 2);
44 	is_tso = !!(off->tx_flags & IDPF_TX_FLAGS_TSO);
45 	if (skb->encapsulation) {
46 		u32 tunnel = 0;
47 
48 		/* define outer network header type */
49 		if (off->tx_flags & IDPF_TX_FLAGS_IPV4) {
50 			/* The stack computes the IP header already, the only
51 			 * time we need the hardware to recompute it is in the
52 			 * case of TSO.
53 			 */
54 			tunnel |= is_tso ?
55 				  IDPF_TX_CTX_EXT_IP_IPV4 :
56 				  IDPF_TX_CTX_EXT_IP_IPV4_NO_CSUM;
57 
58 			l4_proto = ip.v4->protocol;
59 		} else if (off->tx_flags & IDPF_TX_FLAGS_IPV6) {
60 			tunnel |= IDPF_TX_CTX_EXT_IP_IPV6;
61 
62 			l4_proto = ip.v6->nexthdr;
63 			if (ipv6_ext_hdr(l4_proto))
64 				ipv6_skip_exthdr(skb, skb_network_offset(skb) +
65 						 sizeof(*ip.v6),
66 						 &l4_proto, &frag_off);
67 		}
68 
69 		/* define outer transport */
70 		switch (l4_proto) {
71 		case IPPROTO_UDP:
72 			tunnel |= IDPF_TXD_CTX_UDP_TUNNELING;
73 			break;
74 		case IPPROTO_GRE:
75 			tunnel |= IDPF_TXD_CTX_GRE_TUNNELING;
76 			break;
77 		case IPPROTO_IPIP:
78 		case IPPROTO_IPV6:
79 			l4.hdr = skb_inner_network_header(skb);
80 			break;
81 		default:
82 			if (is_tso)
83 				return -1;
84 
85 			skb_checksum_help(skb);
86 
87 			return 0;
88 		}
89 		off->tx_flags |= IDPF_TX_FLAGS_TUNNEL;
90 
91 		/* compute outer L3 header size */
92 		tunnel |= FIELD_PREP(IDPF_TXD_CTX_QW0_TUNN_EXT_IPLEN_M,
93 				     (l4.hdr - ip.hdr) / 4);
94 
95 		/* switch IP header pointer from outer to inner header */
96 		ip.hdr = skb_inner_network_header(skb);
97 
98 		/* compute tunnel header size */
99 		tunnel |= FIELD_PREP(IDPF_TXD_CTX_QW0_TUNN_NATLEN_M,
100 				     (ip.hdr - l4.hdr) / 2);
101 
102 		/* indicate if we need to offload outer UDP header */
103 		if (is_tso &&
104 		    !(skb_shinfo(skb)->gso_type & SKB_GSO_PARTIAL) &&
105 		    (skb_shinfo(skb)->gso_type & SKB_GSO_UDP_TUNNEL_CSUM))
106 			tunnel |= IDPF_TXD_CTX_QW0_TUNN_L4T_CS_M;
107 
108 		/* record tunnel offload values */
109 		off->cd_tunneling |= tunnel;
110 
111 		/* switch L4 header pointer from outer to inner */
112 		l4.hdr = skb_inner_transport_header(skb);
113 		l4_proto = 0;
114 
115 		/* reset type as we transition from outer to inner headers */
116 		off->tx_flags &= ~(IDPF_TX_FLAGS_IPV4 | IDPF_TX_FLAGS_IPV6);
117 		if (ip.v4->version == 4)
118 			off->tx_flags |= IDPF_TX_FLAGS_IPV4;
119 		if (ip.v6->version == 6)
120 			off->tx_flags |= IDPF_TX_FLAGS_IPV6;
121 	}
122 
123 	/* Enable IP checksum offloads */
124 	if (off->tx_flags & IDPF_TX_FLAGS_IPV4) {
125 		l4_proto = ip.v4->protocol;
126 		/* See comment above regarding need for HW to recompute IP
127 		 * header checksum in the case of TSO.
128 		 */
129 		if (is_tso)
130 			cmd |= IDPF_TX_DESC_CMD_IIPT_IPV4_CSUM;
131 		else
132 			cmd |= IDPF_TX_DESC_CMD_IIPT_IPV4;
133 
134 	} else if (off->tx_flags & IDPF_TX_FLAGS_IPV6) {
135 		cmd |= IDPF_TX_DESC_CMD_IIPT_IPV6;
136 		l4_proto = ip.v6->nexthdr;
137 		if (ipv6_ext_hdr(l4_proto))
138 			ipv6_skip_exthdr(skb, skb_network_offset(skb) +
139 					 sizeof(*ip.v6), &l4_proto,
140 					 &frag_off);
141 	} else {
142 		return -1;
143 	}
144 
145 	/* compute inner L3 header size */
146 	l3_len = l4.hdr - ip.hdr;
147 	offset |= (l3_len / 4) << IDPF_TX_DESC_LEN_IPLEN_S;
148 
149 	/* Enable L4 checksum offloads */
150 	switch (l4_proto) {
151 	case IPPROTO_TCP:
152 		/* enable checksum offloads */
153 		cmd |= IDPF_TX_DESC_CMD_L4T_EOFT_TCP;
154 		l4_len = l4.tcp->doff;
155 		break;
156 	case IPPROTO_UDP:
157 		/* enable UDP checksum offload */
158 		cmd |= IDPF_TX_DESC_CMD_L4T_EOFT_UDP;
159 		l4_len = sizeof(struct udphdr) >> 2;
160 		break;
161 	case IPPROTO_SCTP:
162 		/* enable SCTP checksum offload */
163 		cmd |= IDPF_TX_DESC_CMD_L4T_EOFT_SCTP;
164 		l4_len = sizeof(struct sctphdr) >> 2;
165 		break;
166 	default:
167 		if (is_tso)
168 			return -1;
169 
170 		skb_checksum_help(skb);
171 
172 		return 0;
173 	}
174 
175 	offset |= l4_len << IDPF_TX_DESC_LEN_L4_LEN_S;
176 	off->td_cmd |= cmd;
177 	off->hdr_offsets |= offset;
178 
179 	return 1;
180 }
181 
182 /**
183  * idpf_tx_singleq_map - Build the Tx base descriptor
184  * @tx_q: queue to send buffer on
185  * @first: first buffer info buffer to use
186  * @offloads: pointer to struct that holds offload parameters
187  *
188  * This function loops over the skb data pointed to by *first
189  * and gets a physical address for each memory location and programs
190  * it and the length into the transmit base mode descriptor.
191  */
idpf_tx_singleq_map(struct idpf_tx_queue * tx_q,struct idpf_tx_buf * first,struct idpf_tx_offload_params * offloads)192 static void idpf_tx_singleq_map(struct idpf_tx_queue *tx_q,
193 				struct idpf_tx_buf *first,
194 				struct idpf_tx_offload_params *offloads)
195 {
196 	u32 offsets = offloads->hdr_offsets;
197 	struct idpf_tx_buf *tx_buf = first;
198 	struct idpf_base_tx_desc *tx_desc;
199 	struct sk_buff *skb = first->skb;
200 	u64 td_cmd = offloads->td_cmd;
201 	unsigned int data_len, size;
202 	u16 i = tx_q->next_to_use;
203 	struct netdev_queue *nq;
204 	skb_frag_t *frag;
205 	dma_addr_t dma;
206 	u64 td_tag = 0;
207 
208 	data_len = skb->data_len;
209 	size = skb_headlen(skb);
210 
211 	tx_desc = &tx_q->base_tx[i];
212 
213 	dma = dma_map_single(tx_q->dev, skb->data, size, DMA_TO_DEVICE);
214 
215 	/* write each descriptor with CRC bit */
216 	if (idpf_queue_has(CRC_EN, tx_q))
217 		td_cmd |= IDPF_TX_DESC_CMD_ICRC;
218 
219 	for (frag = &skb_shinfo(skb)->frags[0];; frag++) {
220 		unsigned int max_data = IDPF_TX_MAX_DESC_DATA_ALIGNED;
221 
222 		if (dma_mapping_error(tx_q->dev, dma))
223 			return idpf_tx_dma_map_error(tx_q, skb, first, i);
224 
225 		/* record length, and DMA address */
226 		dma_unmap_len_set(tx_buf, len, size);
227 		dma_unmap_addr_set(tx_buf, dma, dma);
228 		tx_buf->type = LIBETH_SQE_FRAG;
229 
230 		/* align size to end of page */
231 		max_data += -dma & (IDPF_TX_MAX_READ_REQ_SIZE - 1);
232 		tx_desc->buf_addr = cpu_to_le64(dma);
233 
234 		/* account for data chunks larger than the hardware
235 		 * can handle
236 		 */
237 		while (unlikely(size > IDPF_TX_MAX_DESC_DATA)) {
238 			tx_desc->qw1 = idpf_tx_singleq_build_ctob(td_cmd,
239 								  offsets,
240 								  max_data,
241 								  td_tag);
242 			if (unlikely(++i == tx_q->desc_count)) {
243 				tx_buf = &tx_q->tx_buf[0];
244 				tx_desc = &tx_q->base_tx[0];
245 				i = 0;
246 			} else {
247 				tx_buf++;
248 				tx_desc++;
249 			}
250 
251 			tx_buf->type = LIBETH_SQE_EMPTY;
252 
253 			dma += max_data;
254 			size -= max_data;
255 
256 			max_data = IDPF_TX_MAX_DESC_DATA_ALIGNED;
257 			tx_desc->buf_addr = cpu_to_le64(dma);
258 		}
259 
260 		if (!data_len)
261 			break;
262 
263 		tx_desc->qw1 = idpf_tx_singleq_build_ctob(td_cmd, offsets,
264 							  size, td_tag);
265 
266 		if (unlikely(++i == tx_q->desc_count)) {
267 			tx_buf = &tx_q->tx_buf[0];
268 			tx_desc = &tx_q->base_tx[0];
269 			i = 0;
270 		} else {
271 			tx_buf++;
272 			tx_desc++;
273 		}
274 
275 		size = skb_frag_size(frag);
276 		data_len -= size;
277 
278 		dma = skb_frag_dma_map(tx_q->dev, frag, 0, size,
279 				       DMA_TO_DEVICE);
280 	}
281 
282 	skb_tx_timestamp(first->skb);
283 
284 	/* write last descriptor with RS and EOP bits */
285 	td_cmd |= (u64)(IDPF_TX_DESC_CMD_EOP | IDPF_TX_DESC_CMD_RS);
286 
287 	tx_desc->qw1 = idpf_tx_singleq_build_ctob(td_cmd, offsets,
288 						  size, td_tag);
289 
290 	first->type = LIBETH_SQE_SKB;
291 	first->rs_idx = i;
292 
293 	IDPF_SINGLEQ_BUMP_RING_IDX(tx_q, i);
294 
295 	nq = netdev_get_tx_queue(tx_q->netdev, tx_q->idx);
296 	netdev_tx_sent_queue(nq, first->bytes);
297 
298 	idpf_tx_buf_hw_update(tx_q, i, netdev_xmit_more());
299 }
300 
301 /**
302  * idpf_tx_singleq_get_ctx_desc - grab next desc and update buffer ring
303  * @txq: queue to put context descriptor on
304  *
305  * Since the TX buffer rings mimics the descriptor ring, update the tx buffer
306  * ring entry to reflect that this index is a context descriptor
307  */
308 static struct idpf_base_tx_ctx_desc *
idpf_tx_singleq_get_ctx_desc(struct idpf_tx_queue * txq)309 idpf_tx_singleq_get_ctx_desc(struct idpf_tx_queue *txq)
310 {
311 	struct idpf_base_tx_ctx_desc *ctx_desc;
312 	int ntu = txq->next_to_use;
313 
314 	txq->tx_buf[ntu].type = LIBETH_SQE_CTX;
315 
316 	ctx_desc = &txq->base_ctx[ntu];
317 
318 	IDPF_SINGLEQ_BUMP_RING_IDX(txq, ntu);
319 	txq->next_to_use = ntu;
320 
321 	return ctx_desc;
322 }
323 
324 /**
325  * idpf_tx_singleq_build_ctx_desc - populate context descriptor
326  * @txq: queue to send buffer on
327  * @offload: offload parameter structure
328  **/
idpf_tx_singleq_build_ctx_desc(struct idpf_tx_queue * txq,struct idpf_tx_offload_params * offload)329 static void idpf_tx_singleq_build_ctx_desc(struct idpf_tx_queue *txq,
330 					   struct idpf_tx_offload_params *offload)
331 {
332 	struct idpf_base_tx_ctx_desc *desc = idpf_tx_singleq_get_ctx_desc(txq);
333 	u64 qw1 = (u64)IDPF_TX_DESC_DTYPE_CTX;
334 
335 	if (offload->tso_segs) {
336 		qw1 |= IDPF_TX_CTX_DESC_TSO << IDPF_TXD_CTX_QW1_CMD_S;
337 		qw1 |= FIELD_PREP(IDPF_TXD_CTX_QW1_TSO_LEN_M,
338 				  offload->tso_len);
339 		qw1 |= FIELD_PREP(IDPF_TXD_CTX_QW1_MSS_M, offload->mss);
340 
341 		u64_stats_update_begin(&txq->stats_sync);
342 		u64_stats_inc(&txq->q_stats.lso_pkts);
343 		u64_stats_update_end(&txq->stats_sync);
344 	}
345 
346 	desc->qw0.tunneling_params = cpu_to_le32(offload->cd_tunneling);
347 
348 	desc->qw0.l2tag2 = 0;
349 	desc->qw0.rsvd1 = 0;
350 	desc->qw1 = cpu_to_le64(qw1);
351 }
352 
353 /**
354  * idpf_tx_singleq_frame - Sends buffer on Tx ring using base descriptors
355  * @skb: send buffer
356  * @tx_q: queue to send buffer on
357  *
358  * Returns NETDEV_TX_OK if sent, else an error code
359  */
idpf_tx_singleq_frame(struct sk_buff * skb,struct idpf_tx_queue * tx_q)360 netdev_tx_t idpf_tx_singleq_frame(struct sk_buff *skb,
361 				  struct idpf_tx_queue *tx_q)
362 {
363 	struct idpf_tx_offload_params offload = { };
364 	struct idpf_tx_buf *first;
365 	int csum, tso, needed;
366 	unsigned int count;
367 	__be16 protocol;
368 
369 	count = idpf_tx_desc_count_required(tx_q, skb);
370 	if (unlikely(!count))
371 		return idpf_tx_drop_skb(tx_q, skb);
372 
373 	needed = count + IDPF_TX_DESCS_PER_CACHE_LINE + IDPF_TX_DESCS_FOR_CTX;
374 	if (!netif_subqueue_maybe_stop(tx_q->netdev, tx_q->idx,
375 				       IDPF_DESC_UNUSED(tx_q),
376 				       needed, needed)) {
377 		idpf_tx_buf_hw_update(tx_q, tx_q->next_to_use, false);
378 
379 		u64_stats_update_begin(&tx_q->stats_sync);
380 		u64_stats_inc(&tx_q->q_stats.q_busy);
381 		u64_stats_update_end(&tx_q->stats_sync);
382 
383 		return NETDEV_TX_BUSY;
384 	}
385 
386 	protocol = vlan_get_protocol(skb);
387 	if (protocol == htons(ETH_P_IP))
388 		offload.tx_flags |= IDPF_TX_FLAGS_IPV4;
389 	else if (protocol == htons(ETH_P_IPV6))
390 		offload.tx_flags |= IDPF_TX_FLAGS_IPV6;
391 
392 	tso = idpf_tso(skb, &offload);
393 	if (tso < 0)
394 		goto out_drop;
395 
396 	csum = idpf_tx_singleq_csum(skb, &offload);
397 	if (csum < 0)
398 		goto out_drop;
399 
400 	if (tso || offload.cd_tunneling)
401 		idpf_tx_singleq_build_ctx_desc(tx_q, &offload);
402 
403 	/* record the location of the first descriptor for this packet */
404 	first = &tx_q->tx_buf[tx_q->next_to_use];
405 	first->skb = skb;
406 
407 	if (tso) {
408 		first->packets = offload.tso_segs;
409 		first->bytes = skb->len + ((first->packets - 1) * offload.tso_hdr_len);
410 	} else {
411 		first->bytes = max_t(unsigned int, skb->len, ETH_ZLEN);
412 		first->packets = 1;
413 	}
414 	idpf_tx_singleq_map(tx_q, first, &offload);
415 
416 	return NETDEV_TX_OK;
417 
418 out_drop:
419 	return idpf_tx_drop_skb(tx_q, skb);
420 }
421 
422 /**
423  * idpf_tx_singleq_clean - Reclaim resources from queue
424  * @tx_q: Tx queue to clean
425  * @napi_budget: Used to determine if we are in netpoll
426  * @cleaned: returns number of packets cleaned
427  *
428  */
idpf_tx_singleq_clean(struct idpf_tx_queue * tx_q,int napi_budget,int * cleaned)429 static bool idpf_tx_singleq_clean(struct idpf_tx_queue *tx_q, int napi_budget,
430 				  int *cleaned)
431 {
432 	struct libeth_sq_napi_stats ss = { };
433 	struct idpf_base_tx_desc *tx_desc;
434 	u32 budget = tx_q->clean_budget;
435 	s16 ntc = tx_q->next_to_clean;
436 	struct libeth_cq_pp cp = {
437 		.dev	= tx_q->dev,
438 		.ss	= &ss,
439 		.napi	= napi_budget,
440 	};
441 	struct idpf_netdev_priv *np;
442 	struct idpf_tx_buf *tx_buf;
443 	struct netdev_queue *nq;
444 	bool dont_wake;
445 
446 	tx_desc = &tx_q->base_tx[ntc];
447 	tx_buf = &tx_q->tx_buf[ntc];
448 	ntc -= tx_q->desc_count;
449 
450 	do {
451 		struct idpf_base_tx_desc *eop_desc;
452 
453 		/* If this entry in the ring was used as a context descriptor,
454 		 * it's corresponding entry in the buffer ring will indicate as
455 		 * such. We can skip this descriptor since there is no buffer
456 		 * to clean.
457 		 */
458 		if (unlikely(tx_buf->type <= LIBETH_SQE_CTX)) {
459 			tx_buf->type = LIBETH_SQE_EMPTY;
460 			goto fetch_next_txq_desc;
461 		}
462 
463 		if (unlikely(tx_buf->type != LIBETH_SQE_SKB))
464 			break;
465 
466 		/* prevent any other reads prior to type */
467 		smp_rmb();
468 
469 		eop_desc = &tx_q->base_tx[tx_buf->rs_idx];
470 
471 		/* if the descriptor isn't done, no work yet to do */
472 		if (!(eop_desc->qw1 &
473 		      cpu_to_le64(IDPF_TX_DESC_DTYPE_DESC_DONE)))
474 			break;
475 
476 		/* update the statistics for this packet */
477 		libeth_tx_complete(tx_buf, &cp);
478 
479 		/* unmap remaining buffers */
480 		while (tx_desc != eop_desc) {
481 			tx_buf++;
482 			tx_desc++;
483 			ntc++;
484 			if (unlikely(!ntc)) {
485 				ntc -= tx_q->desc_count;
486 				tx_buf = tx_q->tx_buf;
487 				tx_desc = &tx_q->base_tx[0];
488 			}
489 
490 			/* unmap any remaining paged data */
491 			libeth_tx_complete(tx_buf, &cp);
492 		}
493 
494 		/* update budget only if we did something */
495 		budget--;
496 
497 fetch_next_txq_desc:
498 		tx_buf++;
499 		tx_desc++;
500 		ntc++;
501 		if (unlikely(!ntc)) {
502 			ntc -= tx_q->desc_count;
503 			tx_buf = tx_q->tx_buf;
504 			tx_desc = &tx_q->base_tx[0];
505 		}
506 	} while (likely(budget));
507 
508 	ntc += tx_q->desc_count;
509 	tx_q->next_to_clean = ntc;
510 
511 	*cleaned += ss.packets;
512 
513 	u64_stats_update_begin(&tx_q->stats_sync);
514 	u64_stats_add(&tx_q->q_stats.packets, ss.packets);
515 	u64_stats_add(&tx_q->q_stats.bytes, ss.bytes);
516 	u64_stats_update_end(&tx_q->stats_sync);
517 
518 	np = netdev_priv(tx_q->netdev);
519 	nq = netdev_get_tx_queue(tx_q->netdev, tx_q->idx);
520 
521 	dont_wake = np->state != __IDPF_VPORT_UP ||
522 		    !netif_carrier_ok(tx_q->netdev);
523 	__netif_txq_completed_wake(nq, ss.packets, ss.bytes,
524 				   IDPF_DESC_UNUSED(tx_q), IDPF_TX_WAKE_THRESH,
525 				   dont_wake);
526 
527 	return !!budget;
528 }
529 
530 /**
531  * idpf_tx_singleq_clean_all - Clean all Tx queues
532  * @q_vec: queue vector
533  * @budget: Used to determine if we are in netpoll
534  * @cleaned: returns number of packets cleaned
535  *
536  * Returns false if clean is not complete else returns true
537  */
idpf_tx_singleq_clean_all(struct idpf_q_vector * q_vec,int budget,int * cleaned)538 static bool idpf_tx_singleq_clean_all(struct idpf_q_vector *q_vec, int budget,
539 				      int *cleaned)
540 {
541 	u16 num_txq = q_vec->num_txq;
542 	bool clean_complete = true;
543 	int i, budget_per_q;
544 
545 	budget_per_q = num_txq ? max(budget / num_txq, 1) : 0;
546 	for (i = 0; i < num_txq; i++) {
547 		struct idpf_tx_queue *q;
548 
549 		q = q_vec->tx[i];
550 		clean_complete &= idpf_tx_singleq_clean(q, budget_per_q,
551 							cleaned);
552 	}
553 
554 	return clean_complete;
555 }
556 
557 /**
558  * idpf_rx_singleq_test_staterr - tests bits in Rx descriptor
559  * status and error fields
560  * @rx_desc: pointer to receive descriptor (in le64 format)
561  * @stat_err_bits: value to mask
562  *
563  * This function does some fast chicanery in order to return the
564  * value of the mask which is really only used for boolean tests.
565  * The status_error_ptype_len doesn't need to be shifted because it begins
566  * at offset zero.
567  */
idpf_rx_singleq_test_staterr(const union virtchnl2_rx_desc * rx_desc,const u64 stat_err_bits)568 static bool idpf_rx_singleq_test_staterr(const union virtchnl2_rx_desc *rx_desc,
569 					 const u64 stat_err_bits)
570 {
571 	return !!(rx_desc->base_wb.qword1.status_error_ptype_len &
572 		  cpu_to_le64(stat_err_bits));
573 }
574 
575 /**
576  * idpf_rx_singleq_is_non_eop - process handling of non-EOP buffers
577  * @rx_desc: Rx descriptor for current buffer
578  */
idpf_rx_singleq_is_non_eop(const union virtchnl2_rx_desc * rx_desc)579 static bool idpf_rx_singleq_is_non_eop(const union virtchnl2_rx_desc *rx_desc)
580 {
581 	/* if we are the last buffer then there is nothing else to do */
582 	if (likely(idpf_rx_singleq_test_staterr(rx_desc, IDPF_RXD_EOF_SINGLEQ)))
583 		return false;
584 
585 	return true;
586 }
587 
588 /**
589  * idpf_rx_singleq_csum - Indicate in skb if checksum is good
590  * @rxq: Rx ring being processed
591  * @skb: skb currently being received and modified
592  * @csum_bits: checksum bits from descriptor
593  * @decoded: the packet type decoded by hardware
594  *
595  * skb->protocol must be set before this function is called
596  */
idpf_rx_singleq_csum(struct idpf_rx_queue * rxq,struct sk_buff * skb,struct libeth_rx_csum csum_bits,struct libeth_rx_pt decoded)597 static void idpf_rx_singleq_csum(struct idpf_rx_queue *rxq,
598 				 struct sk_buff *skb,
599 				 struct libeth_rx_csum csum_bits,
600 				 struct libeth_rx_pt decoded)
601 {
602 	bool ipv4, ipv6;
603 
604 	/* check if Rx checksum is enabled */
605 	if (!libeth_rx_pt_has_checksum(rxq->netdev, decoded))
606 		return;
607 
608 	/* check if HW has decoded the packet and checksum */
609 	if (unlikely(!csum_bits.l3l4p))
610 		return;
611 
612 	ipv4 = libeth_rx_pt_get_ip_ver(decoded) == LIBETH_RX_PT_OUTER_IPV4;
613 	ipv6 = libeth_rx_pt_get_ip_ver(decoded) == LIBETH_RX_PT_OUTER_IPV6;
614 
615 	/* Check if there were any checksum errors */
616 	if (unlikely(ipv4 && (csum_bits.ipe || csum_bits.eipe)))
617 		goto checksum_fail;
618 
619 	/* Device could not do any checksum offload for certain extension
620 	 * headers as indicated by setting IPV6EXADD bit
621 	 */
622 	if (unlikely(ipv6 && csum_bits.ipv6exadd))
623 		return;
624 
625 	/* check for L4 errors and handle packets that were not able to be
626 	 * checksummed due to arrival speed
627 	 */
628 	if (unlikely(csum_bits.l4e))
629 		goto checksum_fail;
630 
631 	if (unlikely(csum_bits.nat && csum_bits.eudpe))
632 		goto checksum_fail;
633 
634 	/* Handle packets that were not able to be checksummed due to arrival
635 	 * speed, in this case the stack can compute the csum.
636 	 */
637 	if (unlikely(csum_bits.pprs))
638 		return;
639 
640 	/* If there is an outer header present that might contain a checksum
641 	 * we need to bump the checksum level by 1 to reflect the fact that
642 	 * we are indicating we validated the inner checksum.
643 	 */
644 	if (decoded.tunnel_type >= LIBETH_RX_PT_TUNNEL_IP_GRENAT)
645 		skb->csum_level = 1;
646 
647 	skb->ip_summed = CHECKSUM_UNNECESSARY;
648 	return;
649 
650 checksum_fail:
651 	u64_stats_update_begin(&rxq->stats_sync);
652 	u64_stats_inc(&rxq->q_stats.hw_csum_err);
653 	u64_stats_update_end(&rxq->stats_sync);
654 }
655 
656 /**
657  * idpf_rx_singleq_base_csum - Indicate in skb if hw indicated a good cksum
658  * @rx_desc: the receive descriptor
659  *
660  * This function only operates on the VIRTCHNL2_RXDID_1_32B_BASE_M base 32byte
661  * descriptor writeback format.
662  *
663  * Return: parsed checksum status.
664  **/
665 static struct libeth_rx_csum
idpf_rx_singleq_base_csum(const union virtchnl2_rx_desc * rx_desc)666 idpf_rx_singleq_base_csum(const union virtchnl2_rx_desc *rx_desc)
667 {
668 	struct libeth_rx_csum csum_bits = { };
669 	u32 rx_error, rx_status;
670 	u64 qword;
671 
672 	qword = le64_to_cpu(rx_desc->base_wb.qword1.status_error_ptype_len);
673 
674 	rx_status = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_QW1_STATUS_M, qword);
675 	rx_error = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_QW1_ERROR_M, qword);
676 
677 	csum_bits.ipe = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_ERROR_IPE_M, rx_error);
678 	csum_bits.eipe = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_ERROR_EIPE_M,
679 				   rx_error);
680 	csum_bits.l4e = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_ERROR_L4E_M, rx_error);
681 	csum_bits.pprs = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_ERROR_PPRS_M,
682 				   rx_error);
683 	csum_bits.l3l4p = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_STATUS_L3L4P_M,
684 				    rx_status);
685 	csum_bits.ipv6exadd = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_STATUS_IPV6EXADD_M,
686 					rx_status);
687 
688 	return csum_bits;
689 }
690 
691 /**
692  * idpf_rx_singleq_flex_csum - Indicate in skb if hw indicated a good cksum
693  * @rx_desc: the receive descriptor
694  *
695  * This function only operates on the VIRTCHNL2_RXDID_2_FLEX_SQ_NIC flexible
696  * descriptor writeback format.
697  *
698  * Return: parsed checksum status.
699  **/
700 static struct libeth_rx_csum
idpf_rx_singleq_flex_csum(const union virtchnl2_rx_desc * rx_desc)701 idpf_rx_singleq_flex_csum(const union virtchnl2_rx_desc *rx_desc)
702 {
703 	struct libeth_rx_csum csum_bits = { };
704 	u16 rx_status0, rx_status1;
705 
706 	rx_status0 = le16_to_cpu(rx_desc->flex_nic_wb.status_error0);
707 	rx_status1 = le16_to_cpu(rx_desc->flex_nic_wb.status_error1);
708 
709 	csum_bits.ipe = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS0_XSUM_IPE_M,
710 				  rx_status0);
711 	csum_bits.eipe = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS0_XSUM_EIPE_M,
712 				   rx_status0);
713 	csum_bits.l4e = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS0_XSUM_L4E_M,
714 				  rx_status0);
715 	csum_bits.eudpe = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS0_XSUM_EUDPE_M,
716 				    rx_status0);
717 	csum_bits.l3l4p = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS0_L3L4P_M,
718 				    rx_status0);
719 	csum_bits.ipv6exadd = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS0_IPV6EXADD_M,
720 					rx_status0);
721 	csum_bits.nat = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS1_NAT_M,
722 				  rx_status1);
723 
724 	return csum_bits;
725 }
726 
727 /**
728  * idpf_rx_singleq_base_hash - set the hash value in the skb
729  * @rx_q: Rx completion queue
730  * @skb: skb currently being received and modified
731  * @rx_desc: specific descriptor
732  * @decoded: Decoded Rx packet type related fields
733  *
734  * This function only operates on the VIRTCHNL2_RXDID_1_32B_BASE_M base 32byte
735  * descriptor writeback format.
736  **/
idpf_rx_singleq_base_hash(struct idpf_rx_queue * rx_q,struct sk_buff * skb,const union virtchnl2_rx_desc * rx_desc,struct libeth_rx_pt decoded)737 static void idpf_rx_singleq_base_hash(struct idpf_rx_queue *rx_q,
738 				      struct sk_buff *skb,
739 				      const union virtchnl2_rx_desc *rx_desc,
740 				      struct libeth_rx_pt decoded)
741 {
742 	u64 mask, qw1;
743 
744 	if (!libeth_rx_pt_has_hash(rx_q->netdev, decoded))
745 		return;
746 
747 	mask = VIRTCHNL2_RX_BASE_DESC_FLTSTAT_RSS_HASH_M;
748 	qw1 = le64_to_cpu(rx_desc->base_wb.qword1.status_error_ptype_len);
749 
750 	if (FIELD_GET(mask, qw1) == mask) {
751 		u32 hash = le32_to_cpu(rx_desc->base_wb.qword0.hi_dword.rss);
752 
753 		libeth_rx_pt_set_hash(skb, hash, decoded);
754 	}
755 }
756 
757 /**
758  * idpf_rx_singleq_flex_hash - set the hash value in the skb
759  * @rx_q: Rx completion queue
760  * @skb: skb currently being received and modified
761  * @rx_desc: specific descriptor
762  * @decoded: Decoded Rx packet type related fields
763  *
764  * This function only operates on the VIRTCHNL2_RXDID_2_FLEX_SQ_NIC flexible
765  * descriptor writeback format.
766  **/
idpf_rx_singleq_flex_hash(struct idpf_rx_queue * rx_q,struct sk_buff * skb,const union virtchnl2_rx_desc * rx_desc,struct libeth_rx_pt decoded)767 static void idpf_rx_singleq_flex_hash(struct idpf_rx_queue *rx_q,
768 				      struct sk_buff *skb,
769 				      const union virtchnl2_rx_desc *rx_desc,
770 				      struct libeth_rx_pt decoded)
771 {
772 	if (!libeth_rx_pt_has_hash(rx_q->netdev, decoded))
773 		return;
774 
775 	if (FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_STATUS0_RSS_VALID_M,
776 		      le16_to_cpu(rx_desc->flex_nic_wb.status_error0))) {
777 		u32 hash = le32_to_cpu(rx_desc->flex_nic_wb.rss_hash);
778 
779 		libeth_rx_pt_set_hash(skb, hash, decoded);
780 	}
781 }
782 
783 /**
784  * idpf_rx_singleq_process_skb_fields - Populate skb header fields from Rx
785  * descriptor
786  * @rx_q: Rx ring being processed
787  * @skb: pointer to current skb being populated
788  * @rx_desc: descriptor for skb
789  * @ptype: packet type
790  *
791  * This function checks the ring, descriptor, and packet information in
792  * order to populate the hash, checksum, VLAN, protocol, and
793  * other fields within the skb.
794  */
795 static void
idpf_rx_singleq_process_skb_fields(struct idpf_rx_queue * rx_q,struct sk_buff * skb,const union virtchnl2_rx_desc * rx_desc,u16 ptype)796 idpf_rx_singleq_process_skb_fields(struct idpf_rx_queue *rx_q,
797 				   struct sk_buff *skb,
798 				   const union virtchnl2_rx_desc *rx_desc,
799 				   u16 ptype)
800 {
801 	struct libeth_rx_pt decoded = rx_q->rx_ptype_lkup[ptype];
802 	struct libeth_rx_csum csum_bits;
803 
804 	/* modifies the skb - consumes the enet header */
805 	skb->protocol = eth_type_trans(skb, rx_q->netdev);
806 
807 	/* Check if we're using base mode descriptor IDs */
808 	if (rx_q->rxdids == VIRTCHNL2_RXDID_1_32B_BASE_M) {
809 		idpf_rx_singleq_base_hash(rx_q, skb, rx_desc, decoded);
810 		csum_bits = idpf_rx_singleq_base_csum(rx_desc);
811 	} else {
812 		idpf_rx_singleq_flex_hash(rx_q, skb, rx_desc, decoded);
813 		csum_bits = idpf_rx_singleq_flex_csum(rx_desc);
814 	}
815 
816 	idpf_rx_singleq_csum(rx_q, skb, csum_bits, decoded);
817 	skb_record_rx_queue(skb, rx_q->idx);
818 }
819 
820 /**
821  * idpf_rx_buf_hw_update - Store the new tail and head values
822  * @rxq: queue to bump
823  * @val: new head index
824  */
idpf_rx_buf_hw_update(struct idpf_rx_queue * rxq,u32 val)825 static void idpf_rx_buf_hw_update(struct idpf_rx_queue *rxq, u32 val)
826 {
827 	rxq->next_to_use = val;
828 
829 	if (unlikely(!rxq->tail))
830 		return;
831 
832 	/* writel has an implicit memory barrier */
833 	writel(val, rxq->tail);
834 }
835 
836 /**
837  * idpf_rx_singleq_buf_hw_alloc_all - Replace used receive buffers
838  * @rx_q: queue for which the hw buffers are allocated
839  * @cleaned_count: number of buffers to replace
840  *
841  * Returns false if all allocations were successful, true if any fail
842  */
idpf_rx_singleq_buf_hw_alloc_all(struct idpf_rx_queue * rx_q,u16 cleaned_count)843 bool idpf_rx_singleq_buf_hw_alloc_all(struct idpf_rx_queue *rx_q,
844 				      u16 cleaned_count)
845 {
846 	struct virtchnl2_singleq_rx_buf_desc *desc;
847 	const struct libeth_fq_fp fq = {
848 		.pp		= rx_q->pp,
849 		.fqes		= rx_q->rx_buf,
850 		.truesize	= rx_q->truesize,
851 		.count		= rx_q->desc_count,
852 	};
853 	u16 nta = rx_q->next_to_alloc;
854 
855 	if (!cleaned_count)
856 		return false;
857 
858 	desc = &rx_q->single_buf[nta];
859 
860 	do {
861 		dma_addr_t addr;
862 
863 		addr = libeth_rx_alloc(&fq, nta);
864 		if (addr == DMA_MAPPING_ERROR)
865 			break;
866 
867 		/* Refresh the desc even if buffer_addrs didn't change
868 		 * because each write-back erases this info.
869 		 */
870 		desc->pkt_addr = cpu_to_le64(addr);
871 		desc->hdr_addr = 0;
872 		desc++;
873 
874 		nta++;
875 		if (unlikely(nta == rx_q->desc_count)) {
876 			desc = &rx_q->single_buf[0];
877 			nta = 0;
878 		}
879 
880 		cleaned_count--;
881 	} while (cleaned_count);
882 
883 	if (rx_q->next_to_alloc != nta) {
884 		idpf_rx_buf_hw_update(rx_q, nta);
885 		rx_q->next_to_alloc = nta;
886 	}
887 
888 	return !!cleaned_count;
889 }
890 
891 /**
892  * idpf_rx_singleq_extract_base_fields - Extract fields from the Rx descriptor
893  * @rx_desc: the descriptor to process
894  * @fields: storage for extracted values
895  *
896  * Decode the Rx descriptor and extract relevant information including the
897  * size and Rx packet type.
898  *
899  * This function only operates on the VIRTCHNL2_RXDID_1_32B_BASE_M base 32byte
900  * descriptor writeback format.
901  */
902 static void
idpf_rx_singleq_extract_base_fields(const union virtchnl2_rx_desc * rx_desc,struct libeth_rqe_info * fields)903 idpf_rx_singleq_extract_base_fields(const union virtchnl2_rx_desc *rx_desc,
904 				    struct libeth_rqe_info *fields)
905 {
906 	u64 qword;
907 
908 	qword = le64_to_cpu(rx_desc->base_wb.qword1.status_error_ptype_len);
909 
910 	fields->len = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_QW1_LEN_PBUF_M, qword);
911 	fields->ptype = FIELD_GET(VIRTCHNL2_RX_BASE_DESC_QW1_PTYPE_M, qword);
912 }
913 
914 /**
915  * idpf_rx_singleq_extract_flex_fields - Extract fields from the Rx descriptor
916  * @rx_desc: the descriptor to process
917  * @fields: storage for extracted values
918  *
919  * Decode the Rx descriptor and extract relevant information including the
920  * size and Rx packet type.
921  *
922  * This function only operates on the VIRTCHNL2_RXDID_2_FLEX_SQ_NIC flexible
923  * descriptor writeback format.
924  */
925 static void
idpf_rx_singleq_extract_flex_fields(const union virtchnl2_rx_desc * rx_desc,struct libeth_rqe_info * fields)926 idpf_rx_singleq_extract_flex_fields(const union virtchnl2_rx_desc *rx_desc,
927 				    struct libeth_rqe_info *fields)
928 {
929 	fields->len = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_PKT_LEN_M,
930 				le16_to_cpu(rx_desc->flex_nic_wb.pkt_len));
931 	fields->ptype = FIELD_GET(VIRTCHNL2_RX_FLEX_DESC_PTYPE_M,
932 				  le16_to_cpu(rx_desc->flex_nic_wb.ptype_flex_flags0));
933 }
934 
935 /**
936  * idpf_rx_singleq_extract_fields - Extract fields from the Rx descriptor
937  * @rx_q: Rx descriptor queue
938  * @rx_desc: the descriptor to process
939  * @fields: storage for extracted values
940  *
941  */
942 static void
idpf_rx_singleq_extract_fields(const struct idpf_rx_queue * rx_q,const union virtchnl2_rx_desc * rx_desc,struct libeth_rqe_info * fields)943 idpf_rx_singleq_extract_fields(const struct idpf_rx_queue *rx_q,
944 			       const union virtchnl2_rx_desc *rx_desc,
945 			       struct libeth_rqe_info *fields)
946 {
947 	if (rx_q->rxdids == VIRTCHNL2_RXDID_1_32B_BASE_M)
948 		idpf_rx_singleq_extract_base_fields(rx_desc, fields);
949 	else
950 		idpf_rx_singleq_extract_flex_fields(rx_desc, fields);
951 }
952 
953 /**
954  * idpf_rx_singleq_clean - Reclaim resources after receive completes
955  * @rx_q: rx queue to clean
956  * @budget: Total limit on number of packets to process
957  *
958  * Returns true if there's any budget left (e.g. the clean is finished)
959  */
idpf_rx_singleq_clean(struct idpf_rx_queue * rx_q,int budget)960 static int idpf_rx_singleq_clean(struct idpf_rx_queue *rx_q, int budget)
961 {
962 	unsigned int total_rx_bytes = 0, total_rx_pkts = 0;
963 	struct sk_buff *skb = rx_q->skb;
964 	u16 ntc = rx_q->next_to_clean;
965 	u16 cleaned_count = 0;
966 	bool failure = false;
967 
968 	/* Process Rx packets bounded by budget */
969 	while (likely(total_rx_pkts < (unsigned int)budget)) {
970 		struct libeth_rqe_info fields = { };
971 		union virtchnl2_rx_desc *rx_desc;
972 		struct idpf_rx_buf *rx_buf;
973 
974 		/* get the Rx desc from Rx queue based on 'next_to_clean' */
975 		rx_desc = &rx_q->rx[ntc];
976 
977 		/* status_error_ptype_len will always be zero for unused
978 		 * descriptors because it's cleared in cleanup, and overlaps
979 		 * with hdr_addr which is always zero because packet split
980 		 * isn't used, if the hardware wrote DD then the length will be
981 		 * non-zero
982 		 */
983 #define IDPF_RXD_DD VIRTCHNL2_RX_BASE_DESC_STATUS_DD_M
984 		if (!idpf_rx_singleq_test_staterr(rx_desc,
985 						  IDPF_RXD_DD))
986 			break;
987 
988 		/* This memory barrier is needed to keep us from reading
989 		 * any other fields out of the rx_desc
990 		 */
991 		dma_rmb();
992 
993 		idpf_rx_singleq_extract_fields(rx_q, rx_desc, &fields);
994 
995 		rx_buf = &rx_q->rx_buf[ntc];
996 		if (!libeth_rx_sync_for_cpu(rx_buf, fields.len))
997 			goto skip_data;
998 
999 		if (skb)
1000 			idpf_rx_add_frag(rx_buf, skb, fields.len);
1001 		else
1002 			skb = idpf_rx_build_skb(rx_buf, fields.len);
1003 
1004 		/* exit if we failed to retrieve a buffer */
1005 		if (!skb)
1006 			break;
1007 
1008 skip_data:
1009 		rx_buf->page = NULL;
1010 
1011 		IDPF_SINGLEQ_BUMP_RING_IDX(rx_q, ntc);
1012 		cleaned_count++;
1013 
1014 		/* skip if it is non EOP desc */
1015 		if (idpf_rx_singleq_is_non_eop(rx_desc) || unlikely(!skb))
1016 			continue;
1017 
1018 #define IDPF_RXD_ERR_S FIELD_PREP(VIRTCHNL2_RX_BASE_DESC_QW1_ERROR_M, \
1019 				  VIRTCHNL2_RX_BASE_DESC_ERROR_RXE_M)
1020 		if (unlikely(idpf_rx_singleq_test_staterr(rx_desc,
1021 							  IDPF_RXD_ERR_S))) {
1022 			dev_kfree_skb_any(skb);
1023 			skb = NULL;
1024 			continue;
1025 		}
1026 
1027 		/* pad skb if needed (to make valid ethernet frame) */
1028 		if (eth_skb_pad(skb)) {
1029 			skb = NULL;
1030 			continue;
1031 		}
1032 
1033 		/* probably a little skewed due to removing CRC */
1034 		total_rx_bytes += skb->len;
1035 
1036 		/* protocol */
1037 		idpf_rx_singleq_process_skb_fields(rx_q, skb, rx_desc,
1038 						   fields.ptype);
1039 
1040 		/* send completed skb up the stack */
1041 		napi_gro_receive(rx_q->pp->p.napi, skb);
1042 		skb = NULL;
1043 
1044 		/* update budget accounting */
1045 		total_rx_pkts++;
1046 	}
1047 
1048 	rx_q->skb = skb;
1049 
1050 	rx_q->next_to_clean = ntc;
1051 
1052 	page_pool_nid_changed(rx_q->pp, numa_mem_id());
1053 	if (cleaned_count)
1054 		failure = idpf_rx_singleq_buf_hw_alloc_all(rx_q, cleaned_count);
1055 
1056 	u64_stats_update_begin(&rx_q->stats_sync);
1057 	u64_stats_add(&rx_q->q_stats.packets, total_rx_pkts);
1058 	u64_stats_add(&rx_q->q_stats.bytes, total_rx_bytes);
1059 	u64_stats_update_end(&rx_q->stats_sync);
1060 
1061 	/* guarantee a trip back through this routine if there was a failure */
1062 	return failure ? budget : (int)total_rx_pkts;
1063 }
1064 
1065 /**
1066  * idpf_rx_singleq_clean_all - Clean all Rx queues
1067  * @q_vec: queue vector
1068  * @budget: Used to determine if we are in netpoll
1069  * @cleaned: returns number of packets cleaned
1070  *
1071  * Returns false if clean is not complete else returns true
1072  */
idpf_rx_singleq_clean_all(struct idpf_q_vector * q_vec,int budget,int * cleaned)1073 static bool idpf_rx_singleq_clean_all(struct idpf_q_vector *q_vec, int budget,
1074 				      int *cleaned)
1075 {
1076 	u16 num_rxq = q_vec->num_rxq;
1077 	bool clean_complete = true;
1078 	int budget_per_q, i;
1079 
1080 	/* We attempt to distribute budget to each Rx queue fairly, but don't
1081 	 * allow the budget to go below 1 because that would exit polling early.
1082 	 */
1083 	budget_per_q = num_rxq ? max(budget / num_rxq, 1) : 0;
1084 	for (i = 0; i < num_rxq; i++) {
1085 		struct idpf_rx_queue *rxq = q_vec->rx[i];
1086 		int pkts_cleaned_per_q;
1087 
1088 		pkts_cleaned_per_q = idpf_rx_singleq_clean(rxq, budget_per_q);
1089 
1090 		/* if we clean as many as budgeted, we must not be done */
1091 		if (pkts_cleaned_per_q >= budget_per_q)
1092 			clean_complete = false;
1093 		*cleaned += pkts_cleaned_per_q;
1094 	}
1095 
1096 	return clean_complete;
1097 }
1098 
1099 /**
1100  * idpf_vport_singleq_napi_poll - NAPI handler
1101  * @napi: struct from which you get q_vector
1102  * @budget: budget provided by stack
1103  */
idpf_vport_singleq_napi_poll(struct napi_struct * napi,int budget)1104 int idpf_vport_singleq_napi_poll(struct napi_struct *napi, int budget)
1105 {
1106 	struct idpf_q_vector *q_vector =
1107 				container_of(napi, struct idpf_q_vector, napi);
1108 	bool clean_complete;
1109 	int work_done = 0;
1110 
1111 	/* Handle case where we are called by netpoll with a budget of 0 */
1112 	if (budget <= 0) {
1113 		idpf_tx_singleq_clean_all(q_vector, budget, &work_done);
1114 
1115 		return budget;
1116 	}
1117 
1118 	clean_complete = idpf_rx_singleq_clean_all(q_vector, budget,
1119 						   &work_done);
1120 	clean_complete &= idpf_tx_singleq_clean_all(q_vector, budget,
1121 						    &work_done);
1122 
1123 	/* If work not completed, return budget and polling will return */
1124 	if (!clean_complete) {
1125 		idpf_vport_intr_set_wb_on_itr(q_vector);
1126 		return budget;
1127 	}
1128 
1129 	work_done = min_t(int, work_done, budget - 1);
1130 
1131 	/* Exit the polling mode, but don't re-enable interrupts if stack might
1132 	 * poll us due to busy-polling
1133 	 */
1134 	if (likely(napi_complete_done(napi, work_done)))
1135 		idpf_vport_intr_update_itr_ena_irq(q_vector);
1136 	else
1137 		idpf_vport_intr_set_wb_on_itr(q_vector);
1138 
1139 	return work_done;
1140 }
1141