xref: /linux/drivers/net/ethernet/wangxun/libwx/wx_lib.c (revision 3173cba1170131816972ed2b6185cb970ba8b747)
1 // SPDX-License-Identifier: GPL-2.0
2 /* Copyright (c) 2019 - 2022 Beijing WangXun Technology Co., Ltd. */
3 
4 #include <linux/etherdevice.h>
5 #include <net/ip6_checksum.h>
6 #include <net/page_pool/helpers.h>
7 #include <net/inet_ecn.h>
8 #include <linux/workqueue.h>
9 #include <linux/iopoll.h>
10 #include <linux/sctp.h>
11 #include <linux/pci.h>
12 #include <net/tcp.h>
13 #include <net/ip.h>
14 
15 #include "wx_type.h"
16 #include "wx_lib.h"
17 #include "wx_err.h"
18 #include "wx_ptp.h"
19 #include "wx_hw.h"
20 #include "wx_vf_lib.h"
21 
22 /* Lookup table mapping the HW PTYPE to the bit field for decoding */
23 static struct wx_dec_ptype wx_ptype_lookup[256] = {
24 	/* L2: mac */
25 	[0x11] = WX_PTT(L2, NONE, NONE, NONE, NONE, PAY2),
26 	[0x12] = WX_PTT(L2, NONE, NONE, NONE, TS,   PAY2),
27 	[0x13] = WX_PTT(L2, NONE, NONE, NONE, NONE, PAY2),
28 	[0x14] = WX_PTT(L2, NONE, NONE, NONE, NONE, PAY2),
29 	[0x15] = WX_PTT(L2, NONE, NONE, NONE, NONE, NONE),
30 	[0x16] = WX_PTT(L2, NONE, NONE, NONE, NONE, PAY2),
31 	[0x17] = WX_PTT(L2, NONE, NONE, NONE, NONE, NONE),
32 
33 	/* L2: ethertype filter */
34 	[0x18 ... 0x1F] = WX_PTT(L2, NONE, NONE, NONE, NONE, NONE),
35 
36 	/* L3: ip non-tunnel */
37 	[0x21] = WX_PTT(IP, FGV4, NONE, NONE, NONE, PAY3),
38 	[0x22] = WX_PTT(IP, IPV4, NONE, NONE, NONE, PAY3),
39 	[0x23] = WX_PTT(IP, IPV4, NONE, NONE, UDP,  PAY4),
40 	[0x24] = WX_PTT(IP, IPV4, NONE, NONE, TCP,  PAY4),
41 	[0x25] = WX_PTT(IP, IPV4, NONE, NONE, SCTP, PAY4),
42 	[0x29] = WX_PTT(IP, FGV6, NONE, NONE, NONE, PAY3),
43 	[0x2A] = WX_PTT(IP, IPV6, NONE, NONE, NONE, PAY3),
44 	[0x2B] = WX_PTT(IP, IPV6, NONE, NONE, UDP,  PAY3),
45 	[0x2C] = WX_PTT(IP, IPV6, NONE, NONE, TCP,  PAY4),
46 	[0x2D] = WX_PTT(IP, IPV6, NONE, NONE, SCTP, PAY4),
47 
48 	/* L2: fcoe */
49 	[0x30 ... 0x34] = WX_PTT(FCOE, NONE, NONE, NONE, NONE, PAY3),
50 	[0x38 ... 0x3C] = WX_PTT(FCOE, NONE, NONE, NONE, NONE, PAY3),
51 
52 	/* IPv4 --> IPv4/IPv6 */
53 	[0x81] = WX_PTT(IP, IPV4, IPIP, FGV4, NONE, PAY3),
54 	[0x82] = WX_PTT(IP, IPV4, IPIP, IPV4, NONE, PAY3),
55 	[0x83] = WX_PTT(IP, IPV4, IPIP, IPV4, UDP,  PAY4),
56 	[0x84] = WX_PTT(IP, IPV4, IPIP, IPV4, TCP,  PAY4),
57 	[0x85] = WX_PTT(IP, IPV4, IPIP, IPV4, SCTP, PAY4),
58 	[0x89] = WX_PTT(IP, IPV4, IPIP, FGV6, NONE, PAY3),
59 	[0x8A] = WX_PTT(IP, IPV4, IPIP, IPV6, NONE, PAY3),
60 	[0x8B] = WX_PTT(IP, IPV4, IPIP, IPV6, UDP,  PAY4),
61 	[0x8C] = WX_PTT(IP, IPV4, IPIP, IPV6, TCP,  PAY4),
62 	[0x8D] = WX_PTT(IP, IPV4, IPIP, IPV6, SCTP, PAY4),
63 
64 	/* IPv4 --> GRE/NAT --> NONE/IPv4/IPv6 */
65 	[0x90] = WX_PTT(IP, IPV4, IG, NONE, NONE, PAY3),
66 	[0x91] = WX_PTT(IP, IPV4, IG, FGV4, NONE, PAY3),
67 	[0x92] = WX_PTT(IP, IPV4, IG, IPV4, NONE, PAY3),
68 	[0x93] = WX_PTT(IP, IPV4, IG, IPV4, UDP,  PAY4),
69 	[0x94] = WX_PTT(IP, IPV4, IG, IPV4, TCP,  PAY4),
70 	[0x95] = WX_PTT(IP, IPV4, IG, IPV4, SCTP, PAY4),
71 	[0x99] = WX_PTT(IP, IPV4, IG, FGV6, NONE, PAY3),
72 	[0x9A] = WX_PTT(IP, IPV4, IG, IPV6, NONE, PAY3),
73 	[0x9B] = WX_PTT(IP, IPV4, IG, IPV6, UDP,  PAY4),
74 	[0x9C] = WX_PTT(IP, IPV4, IG, IPV6, TCP,  PAY4),
75 	[0x9D] = WX_PTT(IP, IPV4, IG, IPV6, SCTP, PAY4),
76 
77 	/* IPv4 --> GRE/NAT --> MAC --> NONE/IPv4/IPv6 */
78 	[0xA0] = WX_PTT(IP, IPV4, IGM, NONE, NONE, PAY3),
79 	[0xA1] = WX_PTT(IP, IPV4, IGM, FGV4, NONE, PAY3),
80 	[0xA2] = WX_PTT(IP, IPV4, IGM, IPV4, NONE, PAY3),
81 	[0xA3] = WX_PTT(IP, IPV4, IGM, IPV4, UDP,  PAY4),
82 	[0xA4] = WX_PTT(IP, IPV4, IGM, IPV4, TCP,  PAY4),
83 	[0xA5] = WX_PTT(IP, IPV4, IGM, IPV4, SCTP, PAY4),
84 	[0xA9] = WX_PTT(IP, IPV4, IGM, FGV6, NONE, PAY3),
85 	[0xAA] = WX_PTT(IP, IPV4, IGM, IPV6, NONE, PAY3),
86 	[0xAB] = WX_PTT(IP, IPV4, IGM, IPV6, UDP,  PAY4),
87 	[0xAC] = WX_PTT(IP, IPV4, IGM, IPV6, TCP,  PAY4),
88 	[0xAD] = WX_PTT(IP, IPV4, IGM, IPV6, SCTP, PAY4),
89 
90 	/* IPv4 --> GRE/NAT --> MAC+VLAN --> NONE/IPv4/IPv6 */
91 	[0xB0] = WX_PTT(IP, IPV4, IGMV, NONE, NONE, PAY3),
92 	[0xB1] = WX_PTT(IP, IPV4, IGMV, FGV4, NONE, PAY3),
93 	[0xB2] = WX_PTT(IP, IPV4, IGMV, IPV4, NONE, PAY3),
94 	[0xB3] = WX_PTT(IP, IPV4, IGMV, IPV4, UDP,  PAY4),
95 	[0xB4] = WX_PTT(IP, IPV4, IGMV, IPV4, TCP,  PAY4),
96 	[0xB5] = WX_PTT(IP, IPV4, IGMV, IPV4, SCTP, PAY4),
97 	[0xB9] = WX_PTT(IP, IPV4, IGMV, FGV6, NONE, PAY3),
98 	[0xBA] = WX_PTT(IP, IPV4, IGMV, IPV6, NONE, PAY3),
99 	[0xBB] = WX_PTT(IP, IPV4, IGMV, IPV6, UDP,  PAY4),
100 	[0xBC] = WX_PTT(IP, IPV4, IGMV, IPV6, TCP,  PAY4),
101 	[0xBD] = WX_PTT(IP, IPV4, IGMV, IPV6, SCTP, PAY4),
102 
103 	/* IPv6 --> IPv4/IPv6 */
104 	[0xC1] = WX_PTT(IP, IPV6, IPIP, FGV4, NONE, PAY3),
105 	[0xC2] = WX_PTT(IP, IPV6, IPIP, IPV4, NONE, PAY3),
106 	[0xC3] = WX_PTT(IP, IPV6, IPIP, IPV4, UDP,  PAY4),
107 	[0xC4] = WX_PTT(IP, IPV6, IPIP, IPV4, TCP,  PAY4),
108 	[0xC5] = WX_PTT(IP, IPV6, IPIP, IPV4, SCTP, PAY4),
109 	[0xC9] = WX_PTT(IP, IPV6, IPIP, FGV6, NONE, PAY3),
110 	[0xCA] = WX_PTT(IP, IPV6, IPIP, IPV6, NONE, PAY3),
111 	[0xCB] = WX_PTT(IP, IPV6, IPIP, IPV6, UDP,  PAY4),
112 	[0xCC] = WX_PTT(IP, IPV6, IPIP, IPV6, TCP,  PAY4),
113 	[0xCD] = WX_PTT(IP, IPV6, IPIP, IPV6, SCTP, PAY4),
114 
115 	/* IPv6 --> GRE/NAT -> NONE/IPv4/IPv6 */
116 	[0xD0] = WX_PTT(IP, IPV6, IG, NONE, NONE, PAY3),
117 	[0xD1] = WX_PTT(IP, IPV6, IG, FGV4, NONE, PAY3),
118 	[0xD2] = WX_PTT(IP, IPV6, IG, IPV4, NONE, PAY3),
119 	[0xD3] = WX_PTT(IP, IPV6, IG, IPV4, UDP,  PAY4),
120 	[0xD4] = WX_PTT(IP, IPV6, IG, IPV4, TCP,  PAY4),
121 	[0xD5] = WX_PTT(IP, IPV6, IG, IPV4, SCTP, PAY4),
122 	[0xD9] = WX_PTT(IP, IPV6, IG, FGV6, NONE, PAY3),
123 	[0xDA] = WX_PTT(IP, IPV6, IG, IPV6, NONE, PAY3),
124 	[0xDB] = WX_PTT(IP, IPV6, IG, IPV6, UDP,  PAY4),
125 	[0xDC] = WX_PTT(IP, IPV6, IG, IPV6, TCP,  PAY4),
126 	[0xDD] = WX_PTT(IP, IPV6, IG, IPV6, SCTP, PAY4),
127 
128 	/* IPv6 --> GRE/NAT -> MAC -> NONE/IPv4/IPv6 */
129 	[0xE0] = WX_PTT(IP, IPV6, IGM, NONE, NONE, PAY3),
130 	[0xE1] = WX_PTT(IP, IPV6, IGM, FGV4, NONE, PAY3),
131 	[0xE2] = WX_PTT(IP, IPV6, IGM, IPV4, NONE, PAY3),
132 	[0xE3] = WX_PTT(IP, IPV6, IGM, IPV4, UDP,  PAY4),
133 	[0xE4] = WX_PTT(IP, IPV6, IGM, IPV4, TCP,  PAY4),
134 	[0xE5] = WX_PTT(IP, IPV6, IGM, IPV4, SCTP, PAY4),
135 	[0xE9] = WX_PTT(IP, IPV6, IGM, FGV6, NONE, PAY3),
136 	[0xEA] = WX_PTT(IP, IPV6, IGM, IPV6, NONE, PAY3),
137 	[0xEB] = WX_PTT(IP, IPV6, IGM, IPV6, UDP,  PAY4),
138 	[0xEC] = WX_PTT(IP, IPV6, IGM, IPV6, TCP,  PAY4),
139 	[0xED] = WX_PTT(IP, IPV6, IGM, IPV6, SCTP, PAY4),
140 
141 	/* IPv6 --> GRE/NAT -> MAC--> NONE/IPv */
142 	[0xF0] = WX_PTT(IP, IPV6, IGMV, NONE, NONE, PAY3),
143 	[0xF1] = WX_PTT(IP, IPV6, IGMV, FGV4, NONE, PAY3),
144 	[0xF2] = WX_PTT(IP, IPV6, IGMV, IPV4, NONE, PAY3),
145 	[0xF3] = WX_PTT(IP, IPV6, IGMV, IPV4, UDP,  PAY4),
146 	[0xF4] = WX_PTT(IP, IPV6, IGMV, IPV4, TCP,  PAY4),
147 	[0xF5] = WX_PTT(IP, IPV6, IGMV, IPV4, SCTP, PAY4),
148 	[0xF9] = WX_PTT(IP, IPV6, IGMV, FGV6, NONE, PAY3),
149 	[0xFA] = WX_PTT(IP, IPV6, IGMV, IPV6, NONE, PAY3),
150 	[0xFB] = WX_PTT(IP, IPV6, IGMV, IPV6, UDP,  PAY4),
151 	[0xFC] = WX_PTT(IP, IPV6, IGMV, IPV6, TCP,  PAY4),
152 	[0xFD] = WX_PTT(IP, IPV6, IGMV, IPV6, SCTP, PAY4),
153 };
154 
155 struct wx_dec_ptype wx_decode_ptype(const u8 ptype)
156 {
157 	return wx_ptype_lookup[ptype];
158 }
159 EXPORT_SYMBOL(wx_decode_ptype);
160 
161 /* wx_test_staterr - tests bits in Rx descriptor status and error fields */
162 static __le32 wx_test_staterr(union wx_rx_desc *rx_desc,
163 			      const u32 stat_err_bits)
164 {
165 	return rx_desc->wb.upper.status_error & cpu_to_le32(stat_err_bits);
166 }
167 
168 static void wx_dma_sync_frag(struct wx_ring *rx_ring,
169 			     struct wx_rx_buffer *rx_buffer)
170 {
171 	struct sk_buff *skb = rx_buffer->skb;
172 	skb_frag_t *frag = &skb_shinfo(skb)->frags[0];
173 
174 	dma_sync_single_range_for_cpu(rx_ring->dev,
175 				      WX_CB(skb)->dma,
176 				      skb_frag_off(frag),
177 				      skb_frag_size(frag),
178 				      DMA_FROM_DEVICE);
179 }
180 
181 static struct wx_rx_buffer *wx_get_rx_buffer(struct wx_ring *rx_ring,
182 					     union wx_rx_desc *rx_desc,
183 					     struct sk_buff **skb)
184 {
185 	struct wx_rx_buffer *rx_buffer;
186 	unsigned int size;
187 
188 	rx_buffer = &rx_ring->rx_buffer_info[rx_ring->next_to_clean];
189 	size = le16_to_cpu(rx_desc->wb.upper.length);
190 
191 	prefetchw(rx_buffer->page);
192 	*skb = rx_buffer->skb;
193 
194 	/* Delay unmapping of the first packet. It carries the header
195 	 * information, HW may still access the header after the writeback.
196 	 * Only unmap it when EOP is reached
197 	 */
198 	if (!wx_test_staterr(rx_desc, WX_RXD_STAT_EOP)) {
199 		if (!*skb)
200 			goto skip_sync;
201 	} else {
202 		if (*skb)
203 			wx_dma_sync_frag(rx_ring, rx_buffer);
204 	}
205 
206 	/* we are reusing so sync this buffer for CPU use */
207 	dma_sync_single_range_for_cpu(rx_ring->dev,
208 				      rx_buffer->dma,
209 				      rx_buffer->page_offset,
210 				      size,
211 				      DMA_FROM_DEVICE);
212 skip_sync:
213 	return rx_buffer;
214 }
215 
216 static void wx_put_rx_buffer(struct wx_ring *rx_ring,
217 			     struct wx_rx_buffer *rx_buffer,
218 			     struct sk_buff *skb)
219 {
220 	/* clear contents of rx_buffer */
221 	rx_buffer->page = NULL;
222 	rx_buffer->skb = NULL;
223 }
224 
225 static struct sk_buff *wx_build_skb(struct wx_ring *rx_ring,
226 				    struct wx_rx_buffer *rx_buffer,
227 				    union wx_rx_desc *rx_desc)
228 {
229 	unsigned int size = le16_to_cpu(rx_desc->wb.upper.length);
230 #if (PAGE_SIZE < 8192)
231 	unsigned int truesize = wx_rx_pg_size(rx_ring) / 2;
232 #else
233 	unsigned int truesize = ALIGN(size, L1_CACHE_BYTES);
234 #endif
235 	struct sk_buff *skb = rx_buffer->skb;
236 
237 	if (!skb) {
238 		void *page_addr = page_address(rx_buffer->page) +
239 				  rx_buffer->page_offset;
240 
241 		/* prefetch first cache line of first page */
242 		net_prefetch(page_addr);
243 
244 		/* allocate a skb to store the frags */
245 		skb = napi_alloc_skb(&rx_ring->q_vector->napi, WX_RXBUFFER_256);
246 		if (unlikely(!skb))
247 			return NULL;
248 
249 		/* we will be copying header into skb->data in
250 		 * pskb_may_pull so it is in our interest to prefetch
251 		 * it now to avoid a possible cache miss
252 		 */
253 		prefetchw(skb->data);
254 
255 		if (size <= WX_RXBUFFER_256) {
256 			memcpy(__skb_put(skb, size), page_addr,
257 			       ALIGN(size, sizeof(long)));
258 			page_pool_put_full_page(rx_ring->page_pool, rx_buffer->page, true);
259 			return skb;
260 		}
261 
262 		skb_mark_for_recycle(skb);
263 
264 		if (!wx_test_staterr(rx_desc, WX_RXD_STAT_EOP))
265 			WX_CB(skb)->dma = rx_buffer->dma;
266 
267 		skb_add_rx_frag(skb, 0, rx_buffer->page,
268 				rx_buffer->page_offset,
269 				size, truesize);
270 		goto out;
271 
272 	} else {
273 		skb_add_rx_frag(skb, skb_shinfo(skb)->nr_frags, rx_buffer->page,
274 				rx_buffer->page_offset, size, truesize);
275 	}
276 
277 out:
278 #if (PAGE_SIZE < 8192)
279 	/* flip page offset to other buffer */
280 	rx_buffer->page_offset ^= truesize;
281 #else
282 	/* move offset up to the next cache line */
283 	rx_buffer->page_offset += truesize;
284 #endif
285 
286 	return skb;
287 }
288 
289 static bool wx_alloc_mapped_page(struct wx_ring *rx_ring,
290 				 struct wx_rx_buffer *bi)
291 {
292 	struct page *page = bi->page;
293 	dma_addr_t dma;
294 
295 	/* since we are recycling buffers we should seldom need to alloc */
296 	if (likely(page))
297 		return true;
298 
299 	page = page_pool_dev_alloc_pages(rx_ring->page_pool);
300 	if (unlikely(!page))
301 		return false;
302 	dma = page_pool_get_dma_addr(page);
303 
304 	bi->dma = dma;
305 	bi->page = page;
306 	bi->page_offset = 0;
307 
308 	return true;
309 }
310 
311 /**
312  * wx_alloc_rx_buffers - Replace used receive buffers
313  * @rx_ring: ring to place buffers on
314  * @cleaned_count: number of buffers to replace
315  **/
316 void wx_alloc_rx_buffers(struct wx_ring *rx_ring, u16 cleaned_count)
317 {
318 	u16 i = rx_ring->next_to_use;
319 	union wx_rx_desc *rx_desc;
320 	struct wx_rx_buffer *bi;
321 
322 	/* nothing to do */
323 	if (!cleaned_count)
324 		return;
325 
326 	rx_desc = WX_RX_DESC(rx_ring, i);
327 	bi = &rx_ring->rx_buffer_info[i];
328 	i -= rx_ring->count;
329 
330 	do {
331 		if (!wx_alloc_mapped_page(rx_ring, bi))
332 			break;
333 
334 		/* sync the buffer for use by the device */
335 		dma_sync_single_range_for_device(rx_ring->dev, bi->dma,
336 						 bi->page_offset,
337 						 rx_ring->rx_buf_len,
338 						 DMA_FROM_DEVICE);
339 
340 		rx_desc->read.pkt_addr =
341 			cpu_to_le64(bi->dma + bi->page_offset);
342 
343 		rx_desc++;
344 		bi++;
345 		i++;
346 		if (unlikely(!i)) {
347 			rx_desc = WX_RX_DESC(rx_ring, 0);
348 			bi = rx_ring->rx_buffer_info;
349 			i -= rx_ring->count;
350 		}
351 
352 		/* clear the status bits for the next_to_use descriptor */
353 		rx_desc->wb.upper.status_error = 0;
354 		/* clear the length for the next_to_use descriptor */
355 		rx_desc->wb.upper.length = 0;
356 
357 		cleaned_count--;
358 	} while (cleaned_count);
359 
360 	i += rx_ring->count;
361 
362 	if (rx_ring->next_to_use != i) {
363 		rx_ring->next_to_use = i;
364 		/* update next to alloc since we have filled the ring */
365 		rx_ring->next_to_alloc = i;
366 
367 		/* Force memory writes to complete before letting h/w
368 		 * know there are new descriptors to fetch.  (Only
369 		 * applicable for weak-ordered memory model archs,
370 		 * such as IA-64).
371 		 */
372 		wmb();
373 		writel(i, rx_ring->tail);
374 	}
375 }
376 
377 u16 wx_desc_unused(struct wx_ring *ring)
378 {
379 	u16 ntc = ring->next_to_clean;
380 	u16 ntu = ring->next_to_use;
381 
382 	return ((ntc > ntu) ? 0 : ring->count) + ntc - ntu - 1;
383 }
384 
385 /**
386  * wx_is_non_eop - process handling of non-EOP buffers
387  * @rx_ring: Rx ring being processed
388  * @rx_desc: Rx descriptor for current buffer
389  * @skb: Current socket buffer containing buffer in progress
390  *
391  * This function updates next to clean. If the buffer is an EOP buffer
392  * this function exits returning false, otherwise it will place the
393  * sk_buff in the next buffer to be chained and return true indicating
394  * that this is in fact a non-EOP buffer.
395  **/
396 static bool wx_is_non_eop(struct wx_ring *rx_ring,
397 			  union wx_rx_desc *rx_desc,
398 			  struct sk_buff *skb)
399 {
400 	struct wx *wx = rx_ring->q_vector->wx;
401 	u32 ntc = rx_ring->next_to_clean + 1;
402 
403 	/* fetch, update, and store next to clean */
404 	ntc = (ntc < rx_ring->count) ? ntc : 0;
405 	rx_ring->next_to_clean = ntc;
406 
407 	prefetch(WX_RX_DESC(rx_ring, ntc));
408 
409 	/* update RSC append count if present */
410 	if (test_bit(WX_FLAG_RSC_ENABLED, wx->flags)) {
411 		__le32 rsc_enabled = rx_desc->wb.lower.lo_dword.data &
412 				     cpu_to_le32(WX_RXD_RSCCNT_MASK);
413 
414 		if (unlikely(rsc_enabled)) {
415 			u32 rsc_cnt = le32_to_cpu(rsc_enabled);
416 
417 			rsc_cnt >>= WX_RXD_RSCCNT_SHIFT;
418 			WX_CB(skb)->append_cnt += rsc_cnt - 1;
419 
420 			/* update ntc based on RSC value */
421 			ntc = le32_to_cpu(rx_desc->wb.upper.status_error);
422 			ntc &= WX_RXD_NEXTP_MASK;
423 			ntc >>= WX_RXD_NEXTP_SHIFT;
424 		}
425 	}
426 
427 	/* if we are the last buffer then there is nothing else to do */
428 	if (likely(wx_test_staterr(rx_desc, WX_RXD_STAT_EOP)))
429 		return false;
430 
431 	rx_ring->rx_buffer_info[ntc].skb = skb;
432 	rx_ring->rx_stats.non_eop_descs++;
433 
434 	return true;
435 }
436 
437 static void wx_pull_tail(struct sk_buff *skb)
438 {
439 	skb_frag_t *frag = &skb_shinfo(skb)->frags[0];
440 	unsigned int pull_len;
441 	unsigned char *va;
442 
443 	/* it is valid to use page_address instead of kmap since we are
444 	 * working with pages allocated out of the lomem pool per
445 	 * alloc_page(GFP_ATOMIC)
446 	 */
447 	va = skb_frag_address(frag);
448 
449 	/* we need the header to contain the greater of either ETH_HLEN or
450 	 * 60 bytes if the skb->len is less than 60 for skb_pad.
451 	 */
452 	pull_len = eth_get_headlen(skb->dev, va, WX_RXBUFFER_256);
453 
454 	/* align pull length to size of long to optimize memcpy performance */
455 	skb_copy_to_linear_data(skb, va, ALIGN(pull_len, sizeof(long)));
456 
457 	/* update all of the pointers */
458 	skb_frag_size_sub(frag, pull_len);
459 	skb_frag_off_add(frag, pull_len);
460 	skb->data_len -= pull_len;
461 	skb->tail += pull_len;
462 }
463 
464 /**
465  * wx_cleanup_headers - Correct corrupted or empty headers
466  * @rx_ring: rx descriptor ring packet is being transacted on
467  * @rx_desc: pointer to the EOP Rx descriptor
468  * @skb: pointer to current skb being fixed
469  *
470  * Check for corrupted packet headers caused by senders on the local L2
471  * embedded NIC switch not setting up their Tx Descriptors right.  These
472  * should be very rare.
473  *
474  * Also address the case where we are pulling data in on pages only
475  * and as such no data is present in the skb header.
476  *
477  * In addition if skb is not at least 60 bytes we need to pad it so that
478  * it is large enough to qualify as a valid Ethernet frame.
479  *
480  * Returns true if an error was encountered and skb was freed.
481  **/
482 static bool wx_cleanup_headers(struct wx_ring *rx_ring,
483 			       union wx_rx_desc *rx_desc,
484 			       struct sk_buff *skb)
485 {
486 	struct net_device *netdev = rx_ring->netdev;
487 
488 	/* verify that the packet does not have any known errors */
489 	if (!netdev ||
490 	    unlikely(wx_test_staterr(rx_desc, WX_RXD_ERR_RXE) &&
491 		     !(netdev->features & NETIF_F_RXALL))) {
492 		dev_kfree_skb_any(skb);
493 		return true;
494 	}
495 
496 	/* place header in linear portion of buffer */
497 	if (!skb_headlen(skb))
498 		wx_pull_tail(skb);
499 
500 	/* if eth_skb_pad returns an error the skb was freed */
501 	if (eth_skb_pad(skb))
502 		return true;
503 
504 	return false;
505 }
506 
507 static void wx_rx_hash(struct wx_ring *ring,
508 		       union wx_rx_desc *rx_desc,
509 		       struct sk_buff *skb)
510 {
511 	u16 rss_type;
512 
513 	if (!(ring->netdev->features & NETIF_F_RXHASH))
514 		return;
515 
516 	rss_type = le16_to_cpu(rx_desc->wb.lower.lo_dword.hs_rss.pkt_info) &
517 			       WX_RXD_RSSTYPE_MASK;
518 
519 	if (!rss_type)
520 		return;
521 
522 	skb_set_hash(skb, le32_to_cpu(rx_desc->wb.lower.hi_dword.rss),
523 		     (WX_RSS_L4_TYPES_MASK & (1ul << rss_type)) ?
524 		     PKT_HASH_TYPE_L4 : PKT_HASH_TYPE_L3);
525 }
526 
527 /**
528  * wx_rx_checksum - indicate in skb if hw indicated a good cksum
529  * @ring: structure containing ring specific data
530  * @rx_desc: current Rx descriptor being processed
531  * @skb: skb currently being received and modified
532  **/
533 static void wx_rx_checksum(struct wx_ring *ring,
534 			   union wx_rx_desc *rx_desc,
535 			   struct sk_buff *skb)
536 {
537 	struct wx_dec_ptype dptype = wx_decode_ptype(WX_RXD_PKTTYPE(rx_desc));
538 
539 	skb_checksum_none_assert(skb);
540 	/* Rx csum disabled */
541 	if (!(ring->netdev->features & NETIF_F_RXCSUM))
542 		return;
543 
544 	/* if IPv4 header checksum error */
545 	if ((wx_test_staterr(rx_desc, WX_RXD_STAT_IPCS) &&
546 	     wx_test_staterr(rx_desc, WX_RXD_ERR_IPE)) ||
547 	    (wx_test_staterr(rx_desc, WX_RXD_STAT_OUTERIPCS) &&
548 	     wx_test_staterr(rx_desc, WX_RXD_ERR_OUTERIPER))) {
549 		ring->rx_stats.csum_err++;
550 		return;
551 	}
552 
553 	/* L4 checksum offload flag must set for the below code to work */
554 	if (!wx_test_staterr(rx_desc, WX_RXD_STAT_L4CS))
555 		return;
556 
557 	/* Hardware can't guarantee csum if IPv6 Dest Header found */
558 	if (dptype.prot != WX_DEC_PTYPE_PROT_SCTP &&
559 	    wx_test_staterr(rx_desc, WX_RXD_STAT_IPV6EX))
560 		return;
561 
562 	/* if L4 checksum error */
563 	if (wx_test_staterr(rx_desc, WX_RXD_ERR_TCPE)) {
564 		ring->rx_stats.csum_err++;
565 		return;
566 	}
567 
568 	/* It must be a TCP or UDP or SCTP packet with a valid checksum */
569 	skb->ip_summed = CHECKSUM_UNNECESSARY;
570 
571 	/* If there is an outer header present that might contain a checksum
572 	 * we need to bump the checksum level by 1 to reflect the fact that
573 	 * we are indicating we validated the inner checksum.
574 	 */
575 	if (dptype.etype >= WX_DEC_PTYPE_ETYPE_IG)
576 		__skb_incr_checksum_unnecessary(skb);
577 	ring->rx_stats.csum_good_cnt++;
578 }
579 
580 static void wx_rx_vlan(struct wx_ring *ring, union wx_rx_desc *rx_desc,
581 		       struct sk_buff *skb)
582 {
583 	u16 ethertype;
584 	u8 idx = 0;
585 
586 	if ((ring->netdev->features &
587 	     (NETIF_F_HW_VLAN_CTAG_RX | NETIF_F_HW_VLAN_STAG_RX)) &&
588 	    wx_test_staterr(rx_desc, WX_RXD_STAT_VP)) {
589 		idx = (le16_to_cpu(rx_desc->wb.lower.lo_dword.hs_rss.pkt_info) &
590 		       0x1c0) >> 6;
591 		ethertype = ring->q_vector->wx->tpid[idx];
592 		__vlan_hwaccel_put_tag(skb, htons(ethertype),
593 				       le16_to_cpu(rx_desc->wb.upper.vlan));
594 	}
595 }
596 
597 static void wx_set_rsc_gso_size(struct wx_ring *ring,
598 				struct sk_buff *skb)
599 {
600 	u16 hdr_len = skb_headlen(skb);
601 
602 	/* set gso_size to avoid messing up TCP MSS */
603 	skb_shinfo(skb)->gso_size = DIV_ROUND_UP((skb->len - hdr_len),
604 						 WX_CB(skb)->append_cnt);
605 	skb_shinfo(skb)->gso_type = SKB_GSO_TCPV4;
606 }
607 
608 static void wx_update_rsc_stats(struct wx_ring *rx_ring,
609 				struct sk_buff *skb)
610 {
611 	/* if append_cnt is 0 then frame is not RSC */
612 	if (!WX_CB(skb)->append_cnt)
613 		return;
614 
615 	rx_ring->rx_stats.rsc_count += WX_CB(skb)->append_cnt;
616 	rx_ring->rx_stats.rsc_flush++;
617 
618 	wx_set_rsc_gso_size(rx_ring, skb);
619 
620 	/* gso_size is computed using append_cnt so always clear it last */
621 	WX_CB(skb)->append_cnt = 0;
622 }
623 
624 /**
625  * wx_process_skb_fields - Populate skb header fields from Rx descriptor
626  * @rx_ring: rx descriptor ring packet is being transacted on
627  * @rx_desc: pointer to the EOP Rx descriptor
628  * @skb: pointer to current skb being populated
629  *
630  * This function checks the ring, descriptor, and packet information in
631  * order to populate the hash, checksum, protocol, and
632  * other fields within the skb.
633  **/
634 static void wx_process_skb_fields(struct wx_ring *rx_ring,
635 				  union wx_rx_desc *rx_desc,
636 				  struct sk_buff *skb)
637 {
638 	struct wx *wx = netdev_priv(rx_ring->netdev);
639 
640 	if (test_bit(WX_FLAG_RSC_CAPABLE, wx->flags))
641 		wx_update_rsc_stats(rx_ring, skb);
642 
643 	wx_rx_hash(rx_ring, rx_desc, skb);
644 	wx_rx_checksum(rx_ring, rx_desc, skb);
645 
646 	if (unlikely(test_bit(WX_FLAG_RX_HWTSTAMP_ENABLED, wx->flags)) &&
647 	    unlikely(wx_test_staterr(rx_desc, WX_RXD_STAT_TS))) {
648 		wx_ptp_rx_hwtstamp(rx_ring->q_vector->wx, skb);
649 		rx_ring->last_rx_timestamp = jiffies;
650 	}
651 
652 	wx_rx_vlan(rx_ring, rx_desc, skb);
653 	skb_record_rx_queue(skb, rx_ring->queue_index);
654 	skb->protocol = eth_type_trans(skb, rx_ring->netdev);
655 }
656 
657 /**
658  * wx_clean_rx_irq - Clean completed descriptors from Rx ring - bounce buf
659  * @q_vector: structure containing interrupt and ring information
660  * @rx_ring: rx descriptor ring to transact packets on
661  * @budget: Total limit on number of packets to process
662  *
663  * This function provides a "bounce buffer" approach to Rx interrupt
664  * processing.  The advantage to this is that on systems that have
665  * expensive overhead for IOMMU access this provides a means of avoiding
666  * it by maintaining the mapping of the page to the system.
667  *
668  * Returns amount of work completed.
669  **/
670 static int wx_clean_rx_irq(struct wx_q_vector *q_vector,
671 			   struct wx_ring *rx_ring,
672 			   int budget)
673 {
674 	unsigned int total_rx_bytes = 0, total_rx_packets = 0;
675 	u16 cleaned_count = wx_desc_unused(rx_ring);
676 
677 	do {
678 		struct wx_rx_buffer *rx_buffer;
679 		union wx_rx_desc *rx_desc;
680 		struct sk_buff *skb;
681 
682 		/* return some buffers to hardware, one at a time is too slow */
683 		if (cleaned_count >= WX_RX_BUFFER_WRITE) {
684 			wx_alloc_rx_buffers(rx_ring, cleaned_count);
685 			cleaned_count = 0;
686 		}
687 
688 		rx_desc = WX_RX_DESC(rx_ring, rx_ring->next_to_clean);
689 		if (!wx_test_staterr(rx_desc, WX_RXD_STAT_DD))
690 			break;
691 
692 		/* This memory barrier is needed to keep us from reading
693 		 * any other fields out of the rx_desc until we know the
694 		 * descriptor has been written back
695 		 */
696 		dma_rmb();
697 
698 		rx_buffer = wx_get_rx_buffer(rx_ring, rx_desc, &skb);
699 
700 		/* retrieve a buffer from the ring */
701 		skb = wx_build_skb(rx_ring, rx_buffer, rx_desc);
702 
703 		/* exit if we failed to retrieve a buffer */
704 		if (!skb) {
705 			rx_ring->rx_stats.alloc_rx_buff_failed++;
706 			break;
707 		}
708 
709 		wx_put_rx_buffer(rx_ring, rx_buffer, skb);
710 		cleaned_count++;
711 
712 		/* place incomplete frames back on ring for completion */
713 		if (wx_is_non_eop(rx_ring, rx_desc, skb))
714 			continue;
715 
716 		/* verify the packet layout is correct */
717 		if (wx_cleanup_headers(rx_ring, rx_desc, skb))
718 			continue;
719 
720 		/* probably a little skewed due to removing CRC */
721 		total_rx_bytes += skb->len;
722 
723 		/* populate checksum, timestamp, VLAN, and protocol */
724 		wx_process_skb_fields(rx_ring, rx_desc, skb);
725 		napi_gro_receive(&q_vector->napi, skb);
726 
727 		/* update budget accounting */
728 		total_rx_packets++;
729 	} while (likely(total_rx_packets < budget));
730 
731 	u64_stats_update_begin(&rx_ring->syncp);
732 	rx_ring->stats.packets += total_rx_packets;
733 	rx_ring->stats.bytes += total_rx_bytes;
734 	u64_stats_update_end(&rx_ring->syncp);
735 	q_vector->rx.total_packets += total_rx_packets;
736 	q_vector->rx.total_bytes += total_rx_bytes;
737 
738 	return total_rx_packets;
739 }
740 
741 static struct netdev_queue *wx_txring_txq(const struct wx_ring *ring)
742 {
743 	return netdev_get_tx_queue(ring->netdev, ring->queue_index);
744 }
745 
746 static u32 wx_get_tx_pending(struct wx_ring *ring)
747 {
748 	unsigned int head, tail;
749 
750 	head = ring->next_to_clean;
751 	tail = ring->next_to_use;
752 
753 	return ((head <= tail) ? tail : tail + ring->count) - head;
754 }
755 
756 static bool wx_check_tx_hang(struct wx_ring *ring)
757 {
758 	u32 tx_done_old = ring->tx_stats.tx_done_old;
759 	u32 tx_pending = wx_get_tx_pending(ring);
760 	u32 tx_done = ring->stats.packets;
761 
762 	if (!test_and_clear_bit(WX_TX_DETECT_HANG, ring->state))
763 		return false;
764 
765 	if (tx_done_old == tx_done && tx_pending)
766 		/* make sure it is true for two checks in a row */
767 		return test_and_set_bit(WX_HANG_CHECK_ARMED, ring->state);
768 
769 	/* update completed stats and continue */
770 	ring->tx_stats.tx_done_old = tx_done;
771 	/* reset the countdown */
772 	clear_bit(WX_HANG_CHECK_ARMED, ring->state);
773 
774 	return false;
775 }
776 
777 /**
778  * wx_clean_tx_irq - Reclaim resources after transmit completes
779  * @q_vector: structure containing interrupt and ring information
780  * @tx_ring: tx ring to clean
781  * @napi_budget: Used to determine if we are in netpoll
782  **/
783 static bool wx_clean_tx_irq(struct wx_q_vector *q_vector,
784 			    struct wx_ring *tx_ring, int napi_budget)
785 {
786 	unsigned int budget = q_vector->wx->tx_work_limit;
787 	unsigned int total_bytes = 0, total_packets = 0;
788 	struct wx *wx = netdev_priv(tx_ring->netdev);
789 	unsigned int i = tx_ring->next_to_clean;
790 	struct wx_tx_buffer *tx_buffer;
791 	union wx_tx_desc *tx_desc;
792 
793 	if (!netif_carrier_ok(tx_ring->netdev))
794 		return true;
795 
796 	tx_buffer = &tx_ring->tx_buffer_info[i];
797 	tx_desc = WX_TX_DESC(tx_ring, i);
798 	i -= tx_ring->count;
799 
800 	do {
801 		union wx_tx_desc *eop_desc = tx_buffer->next_to_watch;
802 
803 		/* if next_to_watch is not set then there is no work pending */
804 		if (!eop_desc)
805 			break;
806 
807 		/* prevent any other reads prior to eop_desc */
808 		smp_rmb();
809 
810 		if (tx_ring->headwb_mem) {
811 			u32 head = *tx_ring->headwb_mem;
812 
813 			if (head == tx_ring->next_to_clean)
814 				break;
815 			else if (head > tx_ring->next_to_clean &&
816 				 !(tx_buffer->next_eop >= tx_ring->next_to_clean &&
817 				   tx_buffer->next_eop < head))
818 				break;
819 			else if (!(tx_buffer->next_eop >= tx_ring->next_to_clean ||
820 				   tx_buffer->next_eop < head))
821 				break;
822 		} else if (!(eop_desc->wb.status & cpu_to_le32(WX_TXD_STAT_DD))) {
823 			/* if DD is not set pending work has not been completed */
824 			break;
825 		}
826 
827 		/* clear next_to_watch to prevent false hangs */
828 		tx_buffer->next_to_watch = NULL;
829 
830 		/* update the statistics for this packet */
831 		total_bytes += tx_buffer->bytecount;
832 		total_packets += tx_buffer->gso_segs;
833 
834 		/* schedule check for Tx timestamp */
835 		if (unlikely(test_bit(WX_STATE_PTP_TX_IN_PROGRESS, wx->state)) &&
836 		    skb_shinfo(tx_buffer->skb)->tx_flags & SKBTX_IN_PROGRESS)
837 			ptp_schedule_worker(wx->ptp_clock, 0);
838 
839 		/* free the skb */
840 		napi_consume_skb(tx_buffer->skb, napi_budget);
841 
842 		/* unmap skb header data */
843 		dma_unmap_single(tx_ring->dev,
844 				 dma_unmap_addr(tx_buffer, dma),
845 				 dma_unmap_len(tx_buffer, len),
846 				 DMA_TO_DEVICE);
847 
848 		/* clear tx_buffer data */
849 		dma_unmap_len_set(tx_buffer, len, 0);
850 
851 		/* unmap remaining buffers */
852 		while (tx_desc != eop_desc) {
853 			tx_buffer++;
854 			tx_desc++;
855 			i++;
856 			if (unlikely(!i)) {
857 				i -= tx_ring->count;
858 				tx_buffer = tx_ring->tx_buffer_info;
859 				tx_desc = WX_TX_DESC(tx_ring, 0);
860 			}
861 
862 			/* unmap any remaining paged data */
863 			if (dma_unmap_len(tx_buffer, len)) {
864 				dma_unmap_page(tx_ring->dev,
865 					       dma_unmap_addr(tx_buffer, dma),
866 					       dma_unmap_len(tx_buffer, len),
867 					       DMA_TO_DEVICE);
868 				dma_unmap_len_set(tx_buffer, len, 0);
869 			}
870 		}
871 
872 		/* move us one more past the eop_desc for start of next pkt */
873 		tx_buffer++;
874 		tx_desc++;
875 		i++;
876 		if (unlikely(!i)) {
877 			i -= tx_ring->count;
878 			tx_buffer = tx_ring->tx_buffer_info;
879 			tx_desc = WX_TX_DESC(tx_ring, 0);
880 		}
881 
882 		/* issue prefetch for next Tx descriptor */
883 		prefetch(tx_desc);
884 
885 		/* update budget accounting */
886 		budget--;
887 	} while (likely(budget));
888 
889 	i += tx_ring->count;
890 	tx_ring->next_to_clean = i;
891 	u64_stats_update_begin(&tx_ring->syncp);
892 	tx_ring->stats.bytes += total_bytes;
893 	tx_ring->stats.packets += total_packets;
894 	u64_stats_update_end(&tx_ring->syncp);
895 	q_vector->tx.total_bytes += total_bytes;
896 	q_vector->tx.total_packets += total_packets;
897 
898 	netdev_tx_completed_queue(wx_txring_txq(tx_ring),
899 				  total_packets, total_bytes);
900 
901 	if (wx_check_tx_hang(tx_ring)) {
902 		wx_handle_tx_hang(tx_ring, i);
903 		return true;
904 	}
905 
906 #define TX_WAKE_THRESHOLD (DESC_NEEDED * 2)
907 	if (unlikely(total_packets && netif_carrier_ok(tx_ring->netdev) &&
908 		     (wx_desc_unused(tx_ring) >= TX_WAKE_THRESHOLD))) {
909 		/* Make sure that anybody stopping the queue after this
910 		 * sees the new next_to_clean.
911 		 */
912 		smp_mb();
913 
914 		if (__netif_subqueue_stopped(tx_ring->netdev,
915 					     tx_ring->queue_index) &&
916 		    !test_bit(WX_STATE_DOWN, wx->state)) {
917 			netif_wake_subqueue(tx_ring->netdev,
918 					    tx_ring->queue_index);
919 			++tx_ring->tx_stats.restart_queue;
920 		}
921 	}
922 
923 	return !!budget;
924 }
925 
926 static void wx_update_rx_dim_sample(struct wx_q_vector *q_vector)
927 {
928 	struct dim_sample sample = {};
929 
930 	dim_update_sample(q_vector->total_events,
931 			  q_vector->rx.total_packets,
932 			  q_vector->rx.total_bytes,
933 			  &sample);
934 
935 	net_dim(&q_vector->rx.dim, &sample);
936 }
937 
938 static void wx_update_tx_dim_sample(struct wx_q_vector *q_vector)
939 {
940 	struct dim_sample sample = {};
941 
942 	dim_update_sample(q_vector->total_events,
943 			  q_vector->tx.total_packets,
944 			  q_vector->tx.total_bytes,
945 			  &sample);
946 
947 	net_dim(&q_vector->tx.dim, &sample);
948 }
949 
950 static void wx_update_dim_sample(struct wx_q_vector *q_vector)
951 {
952 	wx_update_rx_dim_sample(q_vector);
953 	wx_update_tx_dim_sample(q_vector);
954 }
955 
956 /**
957  * wx_poll - NAPI polling RX/TX cleanup routine
958  * @napi: napi struct with our devices info in it
959  * @budget: amount of work driver is allowed to do this pass, in packets
960  *
961  * This function will clean all queues associated with a q_vector.
962  **/
963 static int wx_poll(struct napi_struct *napi, int budget)
964 {
965 	struct wx_q_vector *q_vector = container_of(napi, struct wx_q_vector, napi);
966 	int per_ring_budget, work_done = 0;
967 	struct wx *wx = q_vector->wx;
968 	bool clean_complete = true;
969 	struct wx_ring *ring;
970 
971 	wx_for_each_ring(ring, q_vector->tx) {
972 		if (!wx_clean_tx_irq(q_vector, ring, budget))
973 			clean_complete = false;
974 	}
975 
976 	/* Exit if we are called by netpoll */
977 	if (budget <= 0)
978 		return budget;
979 
980 	/* attempt to distribute budget to each queue fairly, but don't allow
981 	 * the budget to go below 1 because we'll exit polling
982 	 */
983 	if (q_vector->rx.count > 1)
984 		per_ring_budget = max(budget / q_vector->rx.count, 1);
985 	else
986 		per_ring_budget = budget;
987 
988 	wx_for_each_ring(ring, q_vector->rx) {
989 		int cleaned = wx_clean_rx_irq(q_vector, ring, per_ring_budget);
990 
991 		work_done += cleaned;
992 		if (cleaned >= per_ring_budget)
993 			clean_complete = false;
994 	}
995 
996 	/* If all work not completed, return budget and keep polling */
997 	if (!clean_complete)
998 		return budget;
999 
1000 	/* all work done, exit the polling mode */
1001 	if (likely(napi_complete_done(napi, work_done))) {
1002 		if (wx->adaptive_itr)
1003 			wx_update_dim_sample(q_vector);
1004 		if (!test_bit(WX_STATE_DOWN, wx->state))
1005 			wx_intr_enable(wx, WX_INTR_Q(q_vector->v_idx));
1006 	}
1007 
1008 	return min(work_done, budget - 1);
1009 }
1010 
1011 static int wx_maybe_stop_tx(struct wx_ring *tx_ring, u16 size)
1012 {
1013 	if (likely(wx_desc_unused(tx_ring) >= size))
1014 		return 0;
1015 
1016 	netif_stop_subqueue(tx_ring->netdev, tx_ring->queue_index);
1017 
1018 	/* For the next check */
1019 	smp_mb();
1020 
1021 	/* We need to check again in a case another CPU has just
1022 	 * made room available.
1023 	 */
1024 	if (likely(wx_desc_unused(tx_ring) < size))
1025 		return -EBUSY;
1026 
1027 	/* A reprieve! - use start_queue because it doesn't call schedule */
1028 	netif_start_subqueue(tx_ring->netdev, tx_ring->queue_index);
1029 	++tx_ring->tx_stats.restart_queue;
1030 
1031 	return 0;
1032 }
1033 
1034 static u32 wx_tx_cmd_type(u32 tx_flags)
1035 {
1036 	/* set type for advanced descriptor with frame checksum insertion */
1037 	u32 cmd_type = WX_TXD_DTYP_DATA | WX_TXD_IFCS;
1038 
1039 	/* set HW vlan bit if vlan is present */
1040 	cmd_type |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_HW_VLAN, WX_TXD_VLE);
1041 	/* set segmentation enable bits for TSO/FSO */
1042 	cmd_type |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_TSO, WX_TXD_TSE);
1043 	/* set timestamp bit if present */
1044 	cmd_type |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_TSTAMP, WX_TXD_MAC_TSTAMP);
1045 	cmd_type |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_LINKSEC, WX_TXD_LINKSEC);
1046 
1047 	return cmd_type;
1048 }
1049 
1050 static void wx_tx_olinfo_status(union wx_tx_desc *tx_desc,
1051 				u32 tx_flags, unsigned int paylen)
1052 {
1053 	u32 olinfo_status = paylen << WX_TXD_PAYLEN_SHIFT;
1054 
1055 	/* enable L4 checksum for TSO and TX checksum offload */
1056 	olinfo_status |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_CSUM, WX_TXD_L4CS);
1057 	/* enable IPv4 checksum for TSO */
1058 	olinfo_status |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_IPV4, WX_TXD_IIPCS);
1059 	/* enable outer IPv4 checksum for TSO */
1060 	olinfo_status |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_OUTER_IPV4,
1061 				     WX_TXD_EIPCS);
1062 	/* Check Context must be set if Tx switch is enabled, which it
1063 	 * always is for case where virtual functions are running
1064 	 */
1065 	olinfo_status |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_CC, WX_TXD_CC);
1066 	olinfo_status |= WX_SET_FLAG(tx_flags, WX_TX_FLAGS_IPSEC,
1067 				     WX_TXD_IPSEC);
1068 	tx_desc->read.olinfo_status = cpu_to_le32(olinfo_status);
1069 }
1070 
1071 static int wx_tx_map(struct wx_ring *tx_ring,
1072 		     struct wx_tx_buffer *first,
1073 		     const u8 hdr_len)
1074 {
1075 	struct sk_buff *skb = first->skb;
1076 	struct wx_tx_buffer *tx_buffer;
1077 	u32 tx_flags = first->tx_flags;
1078 	u16 i = tx_ring->next_to_use;
1079 	unsigned int data_len, size;
1080 	union wx_tx_desc *tx_desc;
1081 	skb_frag_t *frag;
1082 	dma_addr_t dma;
1083 	u32 cmd_type;
1084 
1085 	cmd_type = wx_tx_cmd_type(tx_flags);
1086 	tx_desc = WX_TX_DESC(tx_ring, i);
1087 	wx_tx_olinfo_status(tx_desc, tx_flags, skb->len - hdr_len);
1088 
1089 	size = skb_headlen(skb);
1090 	data_len = skb->data_len;
1091 	dma = dma_map_single(tx_ring->dev, skb->data, size, DMA_TO_DEVICE);
1092 
1093 	tx_buffer = first;
1094 
1095 	for (frag = &skb_shinfo(skb)->frags[0];; frag++) {
1096 		if (dma_mapping_error(tx_ring->dev, dma))
1097 			goto dma_error;
1098 
1099 		/* record length, and DMA address */
1100 		dma_unmap_len_set(tx_buffer, len, size);
1101 		dma_unmap_addr_set(tx_buffer, dma, dma);
1102 
1103 		tx_desc->read.buffer_addr = cpu_to_le64(dma);
1104 
1105 		while (unlikely(size > WX_MAX_DATA_PER_TXD)) {
1106 			tx_desc->read.cmd_type_len =
1107 				cpu_to_le32(cmd_type ^ WX_MAX_DATA_PER_TXD);
1108 
1109 			i++;
1110 			tx_desc++;
1111 			if (i == tx_ring->count) {
1112 				tx_desc = WX_TX_DESC(tx_ring, 0);
1113 				i = 0;
1114 			}
1115 			tx_desc->read.olinfo_status = 0;
1116 
1117 			dma += WX_MAX_DATA_PER_TXD;
1118 			size -= WX_MAX_DATA_PER_TXD;
1119 
1120 			tx_desc->read.buffer_addr = cpu_to_le64(dma);
1121 		}
1122 
1123 		if (likely(!data_len))
1124 			break;
1125 
1126 		tx_desc->read.cmd_type_len = cpu_to_le32(cmd_type ^ size);
1127 
1128 		i++;
1129 		tx_desc++;
1130 		if (i == tx_ring->count) {
1131 			tx_desc = WX_TX_DESC(tx_ring, 0);
1132 			i = 0;
1133 		}
1134 		tx_desc->read.olinfo_status = 0;
1135 
1136 		size = skb_frag_size(frag);
1137 
1138 		data_len -= size;
1139 
1140 		dma = skb_frag_dma_map(tx_ring->dev, frag, 0, size,
1141 				       DMA_TO_DEVICE);
1142 
1143 		tx_buffer = &tx_ring->tx_buffer_info[i];
1144 	}
1145 
1146 	/* write last descriptor with RS and EOP bits */
1147 	cmd_type |= size | WX_TXD_EOP | WX_TXD_RS;
1148 	tx_desc->read.cmd_type_len = cpu_to_le32(cmd_type);
1149 
1150 	netdev_tx_sent_queue(wx_txring_txq(tx_ring), first->bytecount);
1151 
1152 	/* set the timestamp */
1153 	first->time_stamp = jiffies;
1154 	skb_tx_timestamp(skb);
1155 
1156 	/* Force memory writes to complete before letting h/w know there
1157 	 * are new descriptors to fetch.  (Only applicable for weak-ordered
1158 	 * memory model archs, such as IA-64).
1159 	 *
1160 	 * We also need this memory barrier to make certain all of the
1161 	 * status bits have been updated before next_to_watch is written.
1162 	 */
1163 	wmb();
1164 
1165 	/* set next_to_watch value indicating a packet is present */
1166 	first->next_to_watch = tx_desc;
1167 
1168 	/* set next_eop for amlite tx head wb */
1169 	if (tx_ring->headwb_mem)
1170 		first->next_eop = i;
1171 
1172 	i++;
1173 	if (i == tx_ring->count)
1174 		i = 0;
1175 
1176 	tx_ring->next_to_use = i;
1177 
1178 	wx_maybe_stop_tx(tx_ring, DESC_NEEDED);
1179 
1180 	if (netif_xmit_stopped(wx_txring_txq(tx_ring)) || !netdev_xmit_more())
1181 		writel(i, tx_ring->tail);
1182 
1183 	return 0;
1184 dma_error:
1185 	dev_err(tx_ring->dev, "TX DMA map failed\n");
1186 
1187 	/* clear dma mappings for failed tx_buffer_info map */
1188 	for (;;) {
1189 		tx_buffer = &tx_ring->tx_buffer_info[i];
1190 		if (dma_unmap_len(tx_buffer, len))
1191 			dma_unmap_page(tx_ring->dev,
1192 				       dma_unmap_addr(tx_buffer, dma),
1193 				       dma_unmap_len(tx_buffer, len),
1194 				       DMA_TO_DEVICE);
1195 		dma_unmap_len_set(tx_buffer, len, 0);
1196 		if (tx_buffer == first)
1197 			break;
1198 		if (i == 0)
1199 			i += tx_ring->count;
1200 		i--;
1201 	}
1202 
1203 	/* first->skb is released by the caller, which keeps a reference on it
1204 	 * until the PTP cleanup has compared it against wx->ptp_tx_skb. That
1205 	 * prevents the address from being reused by a newer request while the
1206 	 * comparison is pending.
1207 	 */
1208 	tx_ring->next_to_use = i;
1209 
1210 	return -ENOMEM;
1211 }
1212 
1213 static void wx_tx_ctxtdesc(struct wx_ring *tx_ring, u32 vlan_macip_lens,
1214 			   u32 fcoe_sof_eof, u32 type_tucmd, u32 mss_l4len_idx)
1215 {
1216 	struct wx_tx_context_desc *context_desc;
1217 	u16 i = tx_ring->next_to_use;
1218 
1219 	context_desc = WX_TX_CTXTDESC(tx_ring, i);
1220 	i++;
1221 	tx_ring->next_to_use = (i < tx_ring->count) ? i : 0;
1222 
1223 	/* set bits to identify this as an advanced context descriptor */
1224 	type_tucmd |= WX_TXD_DTYP_CTXT;
1225 	context_desc->vlan_macip_lens   = cpu_to_le32(vlan_macip_lens);
1226 	context_desc->seqnum_seed       = cpu_to_le32(fcoe_sof_eof);
1227 	context_desc->type_tucmd_mlhl   = cpu_to_le32(type_tucmd);
1228 	context_desc->mss_l4len_idx     = cpu_to_le32(mss_l4len_idx);
1229 }
1230 
1231 union network_header {
1232 	struct iphdr *ipv4;
1233 	struct ipv6hdr *ipv6;
1234 	void *raw;
1235 };
1236 
1237 static u8 wx_encode_tx_desc_ptype(const struct wx_tx_buffer *first)
1238 {
1239 	u8 tun_prot = 0, l4_prot = 0, ptype = 0;
1240 	struct sk_buff *skb = first->skb;
1241 	unsigned char *exthdr, *l4_hdr;
1242 	__be16 frag_off;
1243 
1244 	if (skb->encapsulation) {
1245 		union network_header hdr;
1246 
1247 		switch (first->protocol) {
1248 		case htons(ETH_P_IP):
1249 			tun_prot = ip_hdr(skb)->protocol;
1250 			ptype = WX_PTYPE_TUN_IPV4;
1251 			break;
1252 		case htons(ETH_P_IPV6):
1253 			l4_hdr = skb_transport_header(skb);
1254 			exthdr = skb_network_header(skb) + sizeof(struct ipv6hdr);
1255 			tun_prot = ipv6_hdr(skb)->nexthdr;
1256 			if (l4_hdr != exthdr)
1257 				ipv6_skip_exthdr(skb, exthdr - skb->data, &tun_prot, &frag_off);
1258 			ptype = WX_PTYPE_TUN_IPV6;
1259 			break;
1260 		default:
1261 			return ptype;
1262 		}
1263 
1264 		if (tun_prot == IPPROTO_IPIP || tun_prot == IPPROTO_IPV6) {
1265 			hdr.raw = (void *)inner_ip_hdr(skb);
1266 			ptype |= WX_PTYPE_PKT_IPIP;
1267 		} else if (tun_prot == IPPROTO_UDP) {
1268 			hdr.raw = (void *)inner_ip_hdr(skb);
1269 			if (skb->inner_protocol_type != ENCAP_TYPE_ETHER ||
1270 			    skb->inner_protocol != htons(ETH_P_TEB)) {
1271 				ptype |= WX_PTYPE_PKT_IG;
1272 			} else {
1273 				if (((struct ethhdr *)skb_inner_mac_header(skb))->h_proto
1274 				     == htons(ETH_P_8021Q))
1275 					ptype |= WX_PTYPE_PKT_IGMV;
1276 				else
1277 					ptype |= WX_PTYPE_PKT_IGM;
1278 			}
1279 
1280 		} else if (tun_prot == IPPROTO_GRE) {
1281 			hdr.raw = (void *)inner_ip_hdr(skb);
1282 			if (skb->inner_protocol ==  htons(ETH_P_IP) ||
1283 			    skb->inner_protocol ==  htons(ETH_P_IPV6)) {
1284 				ptype |= WX_PTYPE_PKT_IG;
1285 			} else {
1286 				if (((struct ethhdr *)skb_inner_mac_header(skb))->h_proto
1287 				    == htons(ETH_P_8021Q))
1288 					ptype |= WX_PTYPE_PKT_IGMV;
1289 				else
1290 					ptype |= WX_PTYPE_PKT_IGM;
1291 			}
1292 		} else {
1293 			return ptype;
1294 		}
1295 
1296 		switch (hdr.ipv4->version) {
1297 		case IPVERSION:
1298 			l4_prot = hdr.ipv4->protocol;
1299 			break;
1300 		case 6:
1301 			l4_hdr = skb_inner_transport_header(skb);
1302 			exthdr = skb_inner_network_header(skb) + sizeof(struct ipv6hdr);
1303 			l4_prot = inner_ipv6_hdr(skb)->nexthdr;
1304 			if (l4_hdr != exthdr)
1305 				ipv6_skip_exthdr(skb, exthdr - skb->data, &l4_prot, &frag_off);
1306 			ptype |= WX_PTYPE_PKT_IPV6;
1307 			break;
1308 		default:
1309 			return ptype;
1310 		}
1311 	} else {
1312 		switch (first->protocol) {
1313 		case htons(ETH_P_IP):
1314 			l4_prot = ip_hdr(skb)->protocol;
1315 			ptype = WX_PTYPE_PKT_IP;
1316 			break;
1317 		case htons(ETH_P_IPV6):
1318 			l4_hdr = skb_transport_header(skb);
1319 			exthdr = skb_network_header(skb) + sizeof(struct ipv6hdr);
1320 			l4_prot = ipv6_hdr(skb)->nexthdr;
1321 			if (l4_hdr != exthdr)
1322 				ipv6_skip_exthdr(skb, exthdr - skb->data, &l4_prot, &frag_off);
1323 			ptype = WX_PTYPE_PKT_IP | WX_PTYPE_PKT_IPV6;
1324 			break;
1325 		default:
1326 			return WX_PTYPE_PKT_MAC | WX_PTYPE_TYP_MAC;
1327 		}
1328 	}
1329 	switch (l4_prot) {
1330 	case IPPROTO_TCP:
1331 		ptype |= WX_PTYPE_TYP_TCP;
1332 		break;
1333 	case IPPROTO_UDP:
1334 		ptype |= WX_PTYPE_TYP_UDP;
1335 		break;
1336 	case IPPROTO_SCTP:
1337 		ptype |= WX_PTYPE_TYP_SCTP;
1338 		break;
1339 	default:
1340 		ptype |= WX_PTYPE_TYP_IP;
1341 		break;
1342 	}
1343 
1344 	return ptype;
1345 }
1346 
1347 static int wx_tso(struct wx_ring *tx_ring, struct wx_tx_buffer *first,
1348 		  u8 *hdr_len, u8 ptype)
1349 {
1350 	u32 vlan_macip_lens, type_tucmd, mss_l4len_idx;
1351 	struct net_device *netdev = tx_ring->netdev;
1352 	u32 l4len, tunhdr_eiplen_tunlen = 0;
1353 	struct sk_buff *skb = first->skb;
1354 	bool enc = skb->encapsulation;
1355 	struct ipv6hdr *ipv6h;
1356 	struct tcphdr *tcph;
1357 	struct iphdr *iph;
1358 	u8 tun_prot = 0;
1359 	int err;
1360 
1361 	if (skb->ip_summed != CHECKSUM_PARTIAL)
1362 		return 0;
1363 
1364 	if (!skb_is_gso(skb))
1365 		return 0;
1366 
1367 	err = skb_cow_head(skb, 0);
1368 	if (err < 0)
1369 		return err;
1370 
1371 	/* indicates the inner headers in the skbuff are valid. */
1372 	iph = enc ? inner_ip_hdr(skb) : ip_hdr(skb);
1373 	if (iph->version == 4) {
1374 		tcph = enc ? inner_tcp_hdr(skb) : tcp_hdr(skb);
1375 		iph->tot_len = 0;
1376 		iph->check = 0;
1377 		tcph->check = ~csum_tcpudp_magic(iph->saddr,
1378 						 iph->daddr, 0,
1379 						 IPPROTO_TCP, 0);
1380 		first->tx_flags |= WX_TX_FLAGS_TSO |
1381 				   WX_TX_FLAGS_CSUM |
1382 				   WX_TX_FLAGS_IPV4 |
1383 				   WX_TX_FLAGS_CC;
1384 	} else if (iph->version == 6 && skb_is_gso_v6(skb)) {
1385 		ipv6h = enc ? inner_ipv6_hdr(skb) : ipv6_hdr(skb);
1386 		tcph = enc ? inner_tcp_hdr(skb) : tcp_hdr(skb);
1387 		ipv6h->payload_len = 0;
1388 		tcph->check = ~csum_ipv6_magic(&ipv6h->saddr,
1389 					       &ipv6h->daddr, 0,
1390 					       IPPROTO_TCP, 0);
1391 		first->tx_flags |= WX_TX_FLAGS_TSO |
1392 				   WX_TX_FLAGS_CSUM |
1393 				   WX_TX_FLAGS_CC;
1394 	}
1395 
1396 	/* compute header lengths */
1397 	l4len = enc ? inner_tcp_hdrlen(skb) : tcp_hdrlen(skb);
1398 	*hdr_len = enc ? skb_inner_transport_offset(skb) :
1399 			 skb_transport_offset(skb);
1400 	*hdr_len += l4len;
1401 
1402 	/* update gso size and bytecount with header size */
1403 	first->gso_segs = skb_shinfo(skb)->gso_segs;
1404 	first->bytecount += (first->gso_segs - 1) * *hdr_len;
1405 
1406 	/* mss_l4len_id: use 0 as index for TSO */
1407 	mss_l4len_idx = l4len << WX_TXD_L4LEN_SHIFT;
1408 	mss_l4len_idx |= skb_shinfo(skb)->gso_size << WX_TXD_MSS_SHIFT;
1409 
1410 	/* vlan_macip_lens: HEADLEN, MACLEN, VLAN tag */
1411 	if (enc) {
1412 		unsigned char *exthdr, *l4_hdr;
1413 		__be16 frag_off;
1414 
1415 		switch (first->protocol) {
1416 		case htons(ETH_P_IP):
1417 			tun_prot = ip_hdr(skb)->protocol;
1418 			first->tx_flags |= WX_TX_FLAGS_OUTER_IPV4;
1419 			break;
1420 		case htons(ETH_P_IPV6):
1421 			l4_hdr = skb_transport_header(skb);
1422 			exthdr = skb_network_header(skb) + sizeof(struct ipv6hdr);
1423 			tun_prot = ipv6_hdr(skb)->nexthdr;
1424 			if (l4_hdr != exthdr)
1425 				ipv6_skip_exthdr(skb, exthdr - skb->data, &tun_prot, &frag_off);
1426 			break;
1427 		default:
1428 			break;
1429 		}
1430 		switch (tun_prot) {
1431 		case IPPROTO_UDP:
1432 			tunhdr_eiplen_tunlen = WX_TXD_TUNNEL_UDP;
1433 			tunhdr_eiplen_tunlen |= ((skb_network_header_len(skb) >> 2) <<
1434 						 WX_TXD_OUTER_IPLEN_SHIFT) |
1435 						(((skb_inner_mac_header(skb) -
1436 						skb_transport_header(skb)) >> 1) <<
1437 						WX_TXD_TUNNEL_LEN_SHIFT);
1438 			break;
1439 		case IPPROTO_GRE:
1440 			tunhdr_eiplen_tunlen = WX_TXD_TUNNEL_GRE;
1441 			tunhdr_eiplen_tunlen |= ((skb_network_header_len(skb) >> 2) <<
1442 						 WX_TXD_OUTER_IPLEN_SHIFT) |
1443 						(((skb_inner_mac_header(skb) -
1444 						skb_transport_header(skb)) >> 1) <<
1445 						WX_TXD_TUNNEL_LEN_SHIFT);
1446 			break;
1447 		case IPPROTO_IPIP:
1448 		case IPPROTO_IPV6:
1449 			tunhdr_eiplen_tunlen = (((char *)inner_ip_hdr(skb) -
1450 						(char *)ip_hdr(skb)) >> 2) <<
1451 						WX_TXD_OUTER_IPLEN_SHIFT;
1452 			break;
1453 		default:
1454 			break;
1455 		}
1456 		vlan_macip_lens = skb_inner_network_header_len(skb) >> 1;
1457 	} else {
1458 		vlan_macip_lens = skb_network_header_len(skb) >> 1;
1459 	}
1460 
1461 	vlan_macip_lens |= skb_network_offset(skb) << WX_TXD_MACLEN_SHIFT;
1462 	vlan_macip_lens |= first->tx_flags & WX_TX_FLAGS_VLAN_MASK;
1463 
1464 	type_tucmd = ptype << 24;
1465 	if (skb->vlan_proto == htons(ETH_P_8021AD) &&
1466 	    netdev->features & NETIF_F_HW_VLAN_STAG_TX)
1467 		type_tucmd |= WX_SET_FLAG(first->tx_flags,
1468 					  WX_TX_FLAGS_HW_VLAN,
1469 					  0x1 << WX_TXD_TAG_TPID_SEL_SHIFT);
1470 	wx_tx_ctxtdesc(tx_ring, vlan_macip_lens, tunhdr_eiplen_tunlen,
1471 		       type_tucmd, mss_l4len_idx);
1472 
1473 	return 1;
1474 }
1475 
1476 static void wx_tx_csum(struct wx_ring *tx_ring, struct wx_tx_buffer *first,
1477 		       u8 ptype)
1478 {
1479 	u32 tunhdr_eiplen_tunlen = 0, vlan_macip_lens = 0;
1480 	struct net_device *netdev = tx_ring->netdev;
1481 	u32 mss_l4len_idx = 0, type_tucmd;
1482 	struct sk_buff *skb = first->skb;
1483 	u8 tun_prot = 0;
1484 
1485 	if (skb->ip_summed != CHECKSUM_PARTIAL) {
1486 csum_failed:
1487 		if (!(first->tx_flags & WX_TX_FLAGS_HW_VLAN) &&
1488 		    !(first->tx_flags & WX_TX_FLAGS_CC))
1489 			return;
1490 		vlan_macip_lens = skb_network_offset(skb) <<
1491 				  WX_TXD_MACLEN_SHIFT;
1492 	} else {
1493 		unsigned char *exthdr, *l4_hdr;
1494 		__be16 frag_off;
1495 		u8 l4_prot = 0;
1496 		union {
1497 			struct iphdr *ipv4;
1498 			struct ipv6hdr *ipv6;
1499 			u8 *raw;
1500 		} network_hdr;
1501 		union {
1502 			struct tcphdr *tcphdr;
1503 			u8 *raw;
1504 		} transport_hdr;
1505 
1506 		if (skb->encapsulation) {
1507 			network_hdr.raw = skb_inner_network_header(skb);
1508 			transport_hdr.raw = skb_inner_transport_header(skb);
1509 			vlan_macip_lens = skb_network_offset(skb) <<
1510 					  WX_TXD_MACLEN_SHIFT;
1511 			switch (first->protocol) {
1512 			case htons(ETH_P_IP):
1513 				tun_prot = ip_hdr(skb)->protocol;
1514 				break;
1515 			case htons(ETH_P_IPV6):
1516 				l4_hdr = skb_transport_header(skb);
1517 				exthdr = skb_network_header(skb) + sizeof(struct ipv6hdr);
1518 				tun_prot = ipv6_hdr(skb)->nexthdr;
1519 				if (l4_hdr != exthdr)
1520 					ipv6_skip_exthdr(skb, exthdr - skb->data,
1521 							 &tun_prot, &frag_off);
1522 				break;
1523 			default:
1524 				return;
1525 			}
1526 			switch (tun_prot) {
1527 			case IPPROTO_UDP:
1528 				tunhdr_eiplen_tunlen = WX_TXD_TUNNEL_UDP;
1529 				tunhdr_eiplen_tunlen |=
1530 					((skb_network_header_len(skb) >> 2) <<
1531 					WX_TXD_OUTER_IPLEN_SHIFT) |
1532 					(((skb_inner_mac_header(skb) -
1533 					skb_transport_header(skb)) >> 1) <<
1534 					WX_TXD_TUNNEL_LEN_SHIFT);
1535 				break;
1536 			case IPPROTO_GRE:
1537 				tunhdr_eiplen_tunlen = WX_TXD_TUNNEL_GRE;
1538 				tunhdr_eiplen_tunlen |= ((skb_network_header_len(skb) >> 2) <<
1539 							 WX_TXD_OUTER_IPLEN_SHIFT) |
1540 							 (((skb_inner_mac_header(skb) -
1541 							    skb_transport_header(skb)) >> 1) <<
1542 							  WX_TXD_TUNNEL_LEN_SHIFT);
1543 				break;
1544 			case IPPROTO_IPIP:
1545 			case IPPROTO_IPV6:
1546 				tunhdr_eiplen_tunlen = (((char *)inner_ip_hdr(skb) -
1547 							(char *)ip_hdr(skb)) >> 2) <<
1548 							WX_TXD_OUTER_IPLEN_SHIFT;
1549 				break;
1550 			default:
1551 				break;
1552 			}
1553 
1554 		} else {
1555 			network_hdr.raw = skb_network_header(skb);
1556 			transport_hdr.raw = skb_transport_header(skb);
1557 			vlan_macip_lens = skb_network_offset(skb) <<
1558 					  WX_TXD_MACLEN_SHIFT;
1559 		}
1560 
1561 		switch (network_hdr.ipv4->version) {
1562 		case IPVERSION:
1563 			vlan_macip_lens |= (transport_hdr.raw - network_hdr.raw) >> 1;
1564 			l4_prot = network_hdr.ipv4->protocol;
1565 			break;
1566 		case 6:
1567 			vlan_macip_lens |= (transport_hdr.raw - network_hdr.raw) >> 1;
1568 			exthdr = network_hdr.raw + sizeof(struct ipv6hdr);
1569 			l4_prot = network_hdr.ipv6->nexthdr;
1570 			if (transport_hdr.raw != exthdr)
1571 				ipv6_skip_exthdr(skb, exthdr - skb->data, &l4_prot, &frag_off);
1572 			break;
1573 		default:
1574 			break;
1575 		}
1576 
1577 		switch (l4_prot) {
1578 		case IPPROTO_TCP:
1579 		mss_l4len_idx = (transport_hdr.tcphdr->doff * 4) <<
1580 				WX_TXD_L4LEN_SHIFT;
1581 			break;
1582 		case IPPROTO_SCTP:
1583 			mss_l4len_idx = sizeof(struct sctphdr) <<
1584 					WX_TXD_L4LEN_SHIFT;
1585 			break;
1586 		case IPPROTO_UDP:
1587 			mss_l4len_idx = sizeof(struct udphdr) <<
1588 					WX_TXD_L4LEN_SHIFT;
1589 			break;
1590 		default:
1591 			skb_checksum_help(skb);
1592 			goto csum_failed;
1593 		}
1594 
1595 		/* update TX checksum flag */
1596 		first->tx_flags |= WX_TX_FLAGS_CSUM;
1597 	}
1598 	first->tx_flags |= WX_TX_FLAGS_CC;
1599 	/* vlan_macip_lens: MACLEN, VLAN tag */
1600 	vlan_macip_lens |= first->tx_flags & WX_TX_FLAGS_VLAN_MASK;
1601 
1602 	type_tucmd = ptype << 24;
1603 	if (skb->vlan_proto == htons(ETH_P_8021AD) &&
1604 	    netdev->features & NETIF_F_HW_VLAN_STAG_TX)
1605 		type_tucmd |= WX_SET_FLAG(first->tx_flags,
1606 					  WX_TX_FLAGS_HW_VLAN,
1607 					  0x1 << WX_TXD_TAG_TPID_SEL_SHIFT);
1608 	wx_tx_ctxtdesc(tx_ring, vlan_macip_lens, tunhdr_eiplen_tunlen,
1609 		       type_tucmd, mss_l4len_idx);
1610 }
1611 
1612 static netdev_tx_t wx_xmit_frame_ring(struct sk_buff *skb,
1613 				      struct wx_ring *tx_ring)
1614 {
1615 	struct wx *wx = netdev_priv(tx_ring->netdev);
1616 	u16 count = TXD_USE_COUNT(skb_headlen(skb));
1617 	struct wx_tx_buffer *first;
1618 	u8 hdr_len = 0, ptype;
1619 	unsigned short f;
1620 	u32 tx_flags = 0;
1621 	int tso;
1622 
1623 	/* need: 1 descriptor per page * PAGE_SIZE/WX_MAX_DATA_PER_TXD,
1624 	 *       + 1 desc for skb_headlen/WX_MAX_DATA_PER_TXD,
1625 	 *       + 2 desc gap to keep tail from touching head,
1626 	 *       + 1 desc for context descriptor,
1627 	 * otherwise try next time
1628 	 */
1629 	for (f = 0; f < skb_shinfo(skb)->nr_frags; f++)
1630 		count += TXD_USE_COUNT(skb_frag_size(&skb_shinfo(skb)->
1631 						     frags[f]));
1632 
1633 	if (wx_maybe_stop_tx(tx_ring, count + 3)) {
1634 		tx_ring->tx_stats.tx_busy++;
1635 		return NETDEV_TX_BUSY;
1636 	}
1637 
1638 	/* record the location of the first descriptor for this packet */
1639 	first = &tx_ring->tx_buffer_info[tx_ring->next_to_use];
1640 	first->skb = skb;
1641 	first->bytecount = skb->len;
1642 	first->gso_segs = 1;
1643 
1644 	/* if we have a HW VLAN tag being added default to the HW one */
1645 	if (skb_vlan_tag_present(skb)) {
1646 		tx_flags |= skb_vlan_tag_get(skb) << WX_TX_FLAGS_VLAN_SHIFT;
1647 		tx_flags |= WX_TX_FLAGS_HW_VLAN;
1648 	} else if (eth_type_vlan(skb->protocol)) {
1649 		tx_flags |= WX_TX_FLAGS_SW_VLAN;
1650 	}
1651 
1652 	if (unlikely(skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP) &&
1653 	    wx->ptp_clock) {
1654 		unsigned long flags;
1655 
1656 		spin_lock_irqsave(&wx->ptp_tx_lock, flags);
1657 		if (wx->tstamp_config.tx_type == HWTSTAMP_TX_ON &&
1658 		    !test_and_set_bit(WX_STATE_PTP_TX_IN_PROGRESS, wx->state)) {
1659 			skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
1660 			tx_flags |= WX_TX_FLAGS_TSTAMP;
1661 			wx->ptp_tx_skb = skb_get(skb);
1662 			wx->ptp_tx_start = jiffies;
1663 		} else {
1664 			wx->tx_hwtstamp_skipped++;
1665 		}
1666 		spin_unlock_irqrestore(&wx->ptp_tx_lock, flags);
1667 	}
1668 
1669 	/* record initial flags and protocol */
1670 	first->tx_flags = tx_flags;
1671 	first->protocol = vlan_get_protocol(skb);
1672 
1673 	ptype = wx_encode_tx_desc_ptype(first);
1674 
1675 	tso = wx_tso(tx_ring, first, &hdr_len, ptype);
1676 	if (tso < 0)
1677 		goto out_drop;
1678 	else if (!tso)
1679 		wx_tx_csum(tx_ring, first, ptype);
1680 
1681 	if (test_bit(WX_FLAG_FDIR_CAPABLE, wx->flags) && tx_ring->atr_sample_rate)
1682 		wx->atr(tx_ring, first, ptype);
1683 
1684 	if (wx_tx_map(tx_ring, first, hdr_len))
1685 		goto out_drop;
1686 
1687 	return NETDEV_TX_OK;
1688 out_drop:
1689 	/* The frame never reached the hardware, so no timestamp will ever be
1690 	 * reported for it and the request has to be cancelled. The slot is
1691 	 * shared, though: wx_ptp_clear_tx_timestamp() or wx_ptp_tx_hang() may
1692 	 * have dropped our request already, and a transmit on another queue
1693 	 * can have claimed the slot since. Only cancel it while it is still
1694 	 * ours, otherwise we would free somebody else's skb and release their
1695 	 * in-progress bit.
1696 	 */
1697 	if (unlikely(tx_flags & WX_TX_FLAGS_TSTAMP)) {
1698 		struct sk_buff *ptp_tx_skb = NULL;
1699 		unsigned long flags;
1700 
1701 		spin_lock_irqsave(&wx->ptp_tx_lock, flags);
1702 		if (wx->ptp_tx_skb == skb) {
1703 			ptp_tx_skb = wx->ptp_tx_skb;
1704 			wx->ptp_tx_skb = NULL;
1705 			clear_bit(WX_STATE_PTP_TX_IN_PROGRESS, wx->state);
1706 			wx->tx_hwtstamp_errors++;
1707 		}
1708 		spin_unlock_irqrestore(&wx->ptp_tx_lock, flags);
1709 
1710 		dev_kfree_skb_any(ptp_tx_skb);
1711 	}
1712 	dev_kfree_skb_any(first->skb);
1713 	first->skb = NULL;
1714 
1715 	return NETDEV_TX_OK;
1716 }
1717 
1718 netdev_tx_t wx_xmit_frame(struct sk_buff *skb,
1719 			  struct net_device *netdev)
1720 {
1721 	unsigned int r_idx = skb->queue_mapping;
1722 	struct wx *wx = netdev_priv(netdev);
1723 	struct wx_ring *tx_ring;
1724 
1725 	if (!netif_carrier_ok(netdev)) {
1726 		dev_kfree_skb_any(skb);
1727 		return NETDEV_TX_OK;
1728 	}
1729 
1730 	/* The minimum packet size for olinfo paylen is 17 so pad the skb
1731 	 * in order to meet this minimum size requirement.
1732 	 */
1733 	if (skb_put_padto(skb, 17))
1734 		return NETDEV_TX_OK;
1735 
1736 	if (r_idx >= wx->num_tx_queues)
1737 		r_idx = r_idx % wx->num_tx_queues;
1738 	tx_ring = wx->tx_ring[r_idx];
1739 
1740 	return wx_xmit_frame_ring(skb, tx_ring);
1741 }
1742 EXPORT_SYMBOL(wx_xmit_frame);
1743 
1744 static void wx_set_itr(struct wx_q_vector *q_vector)
1745 {
1746 	struct wx *wx = q_vector->wx;
1747 	u32 new_itr;
1748 
1749 	if (!wx->adaptive_itr)
1750 		return;
1751 
1752 	/* use the smallest value of new ITR delay calculations */
1753 	new_itr = min(q_vector->rx.itr, q_vector->tx.itr);
1754 	new_itr <<= 2;
1755 
1756 	if (new_itr != q_vector->itr) {
1757 		/* save the algorithm value here */
1758 		q_vector->itr = new_itr;
1759 
1760 		if (wx->pdev->is_virtfn)
1761 			wx_write_eitr_vf(q_vector);
1762 		else
1763 			wx_write_eitr(q_vector);
1764 	}
1765 }
1766 
1767 static void wx_rx_dim_work(struct work_struct *work)
1768 {
1769 	struct dim *dim = container_of(work, struct dim, work);
1770 	struct dim_cq_moder rx_moder;
1771 	struct wx_ring_container *rx;
1772 	struct wx_q_vector *q_vector;
1773 
1774 	rx = container_of(dim, struct wx_ring_container, dim);
1775 
1776 	rx_moder = net_dim_get_rx_moderation(dim->mode, dim->profile_ix);
1777 	rx->itr = rx_moder.usec;
1778 
1779 	q_vector = container_of(rx, struct wx_q_vector, rx);
1780 	wx_set_itr(q_vector);
1781 
1782 	dim->state = DIM_START_MEASURE;
1783 }
1784 
1785 static void wx_tx_dim_work(struct work_struct *work)
1786 {
1787 	struct dim *dim = container_of(work, struct dim, work);
1788 	struct dim_cq_moder tx_moder;
1789 	struct wx_ring_container *tx;
1790 	struct wx_q_vector *q_vector;
1791 
1792 	tx = container_of(dim, struct wx_ring_container, dim);
1793 
1794 	tx_moder = net_dim_get_tx_moderation(dim->mode, dim->profile_ix);
1795 	tx->itr = tx_moder.usec;
1796 
1797 	q_vector = container_of(tx, struct wx_q_vector, tx);
1798 	wx_set_itr(q_vector);
1799 
1800 	dim->state = DIM_START_MEASURE;
1801 }
1802 
1803 void wx_napi_enable_all(struct wx *wx)
1804 {
1805 	struct wx_q_vector *q_vector;
1806 	int q_idx;
1807 
1808 	for (q_idx = 0; q_idx < wx->num_q_vectors; q_idx++) {
1809 		q_vector = wx->q_vector[q_idx];
1810 
1811 		INIT_WORK(&q_vector->rx.dim.work, wx_rx_dim_work);
1812 		INIT_WORK(&q_vector->tx.dim.work, wx_tx_dim_work);
1813 		q_vector->rx.dim.mode = DIM_CQ_PERIOD_MODE_START_FROM_CQE;
1814 		q_vector->tx.dim.mode = DIM_CQ_PERIOD_MODE_START_FROM_CQE;
1815 		napi_enable(&q_vector->napi);
1816 	}
1817 }
1818 EXPORT_SYMBOL(wx_napi_enable_all);
1819 
1820 void wx_napi_disable_all(struct wx *wx)
1821 {
1822 	struct wx_q_vector *q_vector;
1823 	int q_idx;
1824 
1825 	for (q_idx = 0; q_idx < wx->num_q_vectors; q_idx++) {
1826 		q_vector = wx->q_vector[q_idx];
1827 		napi_disable(&q_vector->napi);
1828 		disable_work_sync(&q_vector->rx.dim.work);
1829 		disable_work_sync(&q_vector->tx.dim.work);
1830 	}
1831 }
1832 EXPORT_SYMBOL(wx_napi_disable_all);
1833 
1834 static bool wx_set_vmdq_queues(struct wx *wx)
1835 {
1836 	u16 vmdq_i = wx->ring_feature[RING_F_VMDQ].limit;
1837 	u16 rss_i = wx->ring_feature[RING_F_RSS].limit;
1838 	u16 rss_m = WX_RSS_DISABLED_MASK;
1839 	u16 vmdq_m = 0;
1840 
1841 	/* only proceed if VMDq is enabled */
1842 	if (!test_bit(WX_FLAG_VMDQ_ENABLED, wx->flags))
1843 		return false;
1844 	/* Add starting offset to total pool count */
1845 	vmdq_i += wx->ring_feature[RING_F_VMDQ].offset;
1846 
1847 	if (test_bit(WX_FLAG_MULTI_64_FUNC, wx->flags)) {
1848 		/* double check we are limited to maximum pools */
1849 		vmdq_i = min_t(u16, 64, vmdq_i);
1850 
1851 		/* 64 pool mode with 2 queues per pool, or
1852 		 * 16/32/64 pool mode with 1 queue per pool
1853 		 */
1854 		if (vmdq_i > 32 || rss_i < 4) {
1855 			vmdq_m = WX_VMDQ_2Q_MASK;
1856 			rss_m = WX_RSS_2Q_MASK;
1857 			rss_i = min_t(u16, rss_i, 2);
1858 		/* 32 pool mode with 4 queues per pool */
1859 		} else {
1860 			vmdq_m = WX_VMDQ_4Q_MASK;
1861 			rss_m = WX_RSS_4Q_MASK;
1862 			rss_i = 4;
1863 		}
1864 	} else {
1865 		vmdq_m = WX_VMDQ_1Q_MASK;
1866 		/* double check we are limited to maximum pools */
1867 		vmdq_i = min_t(u16, 8, vmdq_i);
1868 
1869 		/* when VMDQ on, disable RSS */
1870 		rss_i = 1;
1871 	}
1872 
1873 	/* remove the starting offset from the pool count */
1874 	vmdq_i -= wx->ring_feature[RING_F_VMDQ].offset;
1875 
1876 	/* save features for later use */
1877 	wx->ring_feature[RING_F_VMDQ].indices = vmdq_i;
1878 	wx->ring_feature[RING_F_VMDQ].mask = vmdq_m;
1879 
1880 	/* limit RSS based on user input and save for later use */
1881 	wx->ring_feature[RING_F_RSS].indices = rss_i;
1882 	wx->ring_feature[RING_F_RSS].mask = rss_m;
1883 
1884 	wx->queues_per_pool = rss_i;/*maybe same to num_rx_queues_per_pool*/
1885 	wx->num_rx_pools = vmdq_i;
1886 	wx->num_rx_queues_per_pool = rss_i;
1887 
1888 	wx->num_rx_queues = vmdq_i * rss_i;
1889 	wx->num_tx_queues = vmdq_i * rss_i;
1890 
1891 	return true;
1892 }
1893 
1894 /**
1895  * wx_set_rss_queues: Allocate queues for RSS
1896  * @wx: board private structure to initialize
1897  *
1898  * This is our "base" multiqueue mode.  RSS (Receive Side Scaling) will try
1899  * to allocate one Rx queue per CPU, and if available, one Tx queue per CPU.
1900  *
1901  **/
1902 static void wx_set_rss_queues(struct wx *wx)
1903 {
1904 	struct wx_ring_feature *f;
1905 
1906 	/* set mask for 16 queue limit of RSS */
1907 	f = &wx->ring_feature[RING_F_RSS];
1908 	if (test_bit(WX_FLAG_MULTI_64_FUNC, wx->flags))
1909 		f->mask = WX_RSS_64Q_MASK;
1910 	else
1911 		f->mask = WX_RSS_8Q_MASK;
1912 	f->indices = f->limit;
1913 
1914 	if (!(test_bit(WX_FLAG_FDIR_CAPABLE, wx->flags)))
1915 		goto out;
1916 
1917 	clear_bit(WX_FLAG_FDIR_HASH, wx->flags);
1918 
1919 	wx->ring_feature[RING_F_FDIR].indices = 1;
1920 	/* Use Flow Director in addition to RSS to ensure the best
1921 	 * distribution of flows across cores, even when an FDIR flow
1922 	 * isn't matched.
1923 	 */
1924 	if (f->indices > 1) {
1925 		f = &wx->ring_feature[RING_F_FDIR];
1926 
1927 		f->indices = f->limit;
1928 
1929 		if (!(test_bit(WX_FLAG_FDIR_PERFECT, wx->flags)))
1930 			set_bit(WX_FLAG_FDIR_HASH, wx->flags);
1931 	}
1932 
1933 out:
1934 	wx->num_rx_queues = f->indices;
1935 	wx->num_tx_queues = f->indices;
1936 }
1937 
1938 static void wx_set_num_queues(struct wx *wx)
1939 {
1940 	/* Start with base case */
1941 	wx->num_rx_queues = 1;
1942 	wx->num_tx_queues = 1;
1943 	wx->queues_per_pool = 1;
1944 
1945 	if (wx_set_vmdq_queues(wx))
1946 		return;
1947 
1948 	wx_set_rss_queues(wx);
1949 }
1950 
1951 /**
1952  * wx_acquire_msix_vectors - acquire MSI-X vectors
1953  * @wx: board private structure
1954  *
1955  * Attempts to acquire a suitable range of MSI-X vector interrupts. Will
1956  * return a negative error code if unable to acquire MSI-X vectors for any
1957  * reason.
1958  */
1959 static int wx_acquire_msix_vectors(struct wx *wx)
1960 {
1961 	struct irq_affinity affd = { .post_vectors = 1 };
1962 	int nvecs, i;
1963 
1964 	/* We start by asking for one vector per queue pair */
1965 	nvecs = max(wx->num_rx_queues, wx->num_tx_queues);
1966 	nvecs = min_t(int, nvecs, num_online_cpus());
1967 	nvecs = min_t(int, nvecs, wx->mac.max_msix_vectors);
1968 
1969 	wx->msix_q_entries = kzalloc_objs(struct msix_entry, nvecs);
1970 	if (!wx->msix_q_entries)
1971 		return -ENOMEM;
1972 
1973 	/* One for non-queue interrupts */
1974 	nvecs += 1;
1975 
1976 	wx->msix_entry = kzalloc_objs(struct msix_entry, 1);
1977 	if (!wx->msix_entry) {
1978 		kfree(wx->msix_q_entries);
1979 		wx->msix_q_entries = NULL;
1980 		return -ENOMEM;
1981 	}
1982 
1983 	nvecs = pci_alloc_irq_vectors_affinity(wx->pdev, nvecs,
1984 					       nvecs,
1985 					       PCI_IRQ_MSIX | PCI_IRQ_AFFINITY,
1986 					       &affd);
1987 	if (nvecs < 0) {
1988 		wx_err(wx, "Failed to allocate MSI-X interrupts. Err: %d\n", nvecs);
1989 		kfree(wx->msix_q_entries);
1990 		wx->msix_q_entries = NULL;
1991 		kfree(wx->msix_entry);
1992 		wx->msix_entry = NULL;
1993 		return nvecs;
1994 	}
1995 
1996 	nvecs -= 1;
1997 	for (i = 0; i < nvecs; i++) {
1998 		wx->msix_q_entries[i].entry = i;
1999 		wx->msix_q_entries[i].vector = pci_irq_vector(wx->pdev, i);
2000 	}
2001 
2002 	wx->num_q_vectors = nvecs;
2003 
2004 	wx->msix_entry->entry = nvecs;
2005 	wx->msix_entry->vector = pci_irq_vector(wx->pdev, nvecs);
2006 
2007 	if (test_bit(WX_FLAG_IRQ_VECTOR_SHARED, wx->flags)) {
2008 		wx->msix_entry->entry = 0;
2009 		wx->msix_entry->vector = pci_irq_vector(wx->pdev, 0);
2010 		wx->msix_q_entries[0].entry = 0;
2011 		wx->msix_q_entries[0].vector = pci_irq_vector(wx->pdev, 1);
2012 	}
2013 
2014 	return 0;
2015 }
2016 
2017 /**
2018  * wx_set_interrupt_capability - set MSI-X or MSI if supported
2019  * @wx: board private structure to initialize
2020  *
2021  * Attempt to configure the interrupts using the best available
2022  * capabilities of the hardware and the kernel.
2023  **/
2024 static int wx_set_interrupt_capability(struct wx *wx)
2025 {
2026 	struct pci_dev *pdev = wx->pdev;
2027 	int nvecs, ret;
2028 
2029 	/* We will try to get MSI-X interrupts first */
2030 	ret = wx_acquire_msix_vectors(wx);
2031 	if (ret == 0 || (ret == -ENOMEM) || pdev->is_virtfn)
2032 		return ret;
2033 
2034 	/* Disable VMDq support */
2035 	dev_warn(&wx->pdev->dev, "Disabling VMQQ support\n");
2036 	clear_bit(WX_FLAG_VMDQ_ENABLED, wx->flags);
2037 
2038 	/* Disable RSS */
2039 	dev_warn(&wx->pdev->dev, "Disabling RSS support\n");
2040 	wx->ring_feature[RING_F_RSS].limit = 1;
2041 
2042 	wx_set_num_queues(wx);
2043 
2044 	/* minmum one for queue, one for misc*/
2045 	nvecs = 1;
2046 	nvecs = pci_alloc_irq_vectors(pdev, nvecs,
2047 				      nvecs, PCI_IRQ_MSI | PCI_IRQ_INTX);
2048 	if (nvecs == 1) {
2049 		if (pdev->msi_enabled)
2050 			wx_err(wx, "Fallback to MSI.\n");
2051 		else
2052 			wx_err(wx, "Fallback to INTx.\n");
2053 	} else {
2054 		wx_err(wx, "Failed to allocate MSI/INTx interrupts. Error: %d\n", nvecs);
2055 		return nvecs;
2056 	}
2057 
2058 	pdev->irq = pci_irq_vector(pdev, 0);
2059 	wx->num_q_vectors = 1;
2060 
2061 	return 0;
2062 }
2063 
2064 static bool wx_cache_ring_vmdq(struct wx *wx)
2065 {
2066 	struct wx_ring_feature *vmdq = &wx->ring_feature[RING_F_VMDQ];
2067 	struct wx_ring_feature *rss = &wx->ring_feature[RING_F_RSS];
2068 	u16 reg_idx;
2069 	int i;
2070 
2071 	/* only proceed if VMDq is enabled */
2072 	if (!test_bit(WX_FLAG_VMDQ_ENABLED, wx->flags))
2073 		return false;
2074 
2075 	if (test_bit(WX_FLAG_MULTI_64_FUNC, wx->flags)) {
2076 		/* start at VMDq register offset for SR-IOV enabled setups */
2077 		reg_idx = vmdq->offset * __ALIGN_MASK(1, ~vmdq->mask);
2078 		for (i = 0; i < wx->num_rx_queues; i++, reg_idx++) {
2079 			/* If we are greater than indices move to next pool */
2080 			if ((reg_idx & ~vmdq->mask) >= rss->indices)
2081 				reg_idx = __ALIGN_MASK(reg_idx, ~vmdq->mask);
2082 			wx->rx_ring[i]->reg_idx = reg_idx;
2083 		}
2084 		reg_idx = vmdq->offset * __ALIGN_MASK(1, ~vmdq->mask);
2085 		for (i = 0; i < wx->num_tx_queues; i++, reg_idx++) {
2086 			/* If we are greater than indices move to next pool */
2087 			if ((reg_idx & rss->mask) >= rss->indices)
2088 				reg_idx = __ALIGN_MASK(reg_idx, ~vmdq->mask);
2089 			wx->tx_ring[i]->reg_idx = reg_idx;
2090 		}
2091 	} else {
2092 		/* start at VMDq register offset for SR-IOV enabled setups */
2093 		reg_idx = vmdq->offset;
2094 		for (i = 0; i < wx->num_rx_queues; i++)
2095 			/* If we are greater than indices move to next pool */
2096 			wx->rx_ring[i]->reg_idx = reg_idx + i;
2097 
2098 		reg_idx = vmdq->offset;
2099 		for (i = 0; i < wx->num_tx_queues; i++)
2100 			/* If we are greater than indices move to next pool */
2101 			wx->tx_ring[i]->reg_idx = reg_idx + i;
2102 	}
2103 
2104 	return true;
2105 }
2106 
2107 /**
2108  * wx_cache_ring_rss - Descriptor ring to register mapping for RSS
2109  * @wx: board private structure to initialize
2110  *
2111  * Cache the descriptor ring offsets for RSS, ATR, FCoE, and SR-IOV.
2112  *
2113  **/
2114 static void wx_cache_ring_rss(struct wx *wx)
2115 {
2116 	u16 i;
2117 
2118 	if (wx_cache_ring_vmdq(wx))
2119 		return;
2120 
2121 	for (i = 0; i < wx->num_rx_queues; i++)
2122 		wx->rx_ring[i]->reg_idx = i;
2123 
2124 	for (i = 0; i < wx->num_tx_queues; i++)
2125 		wx->tx_ring[i]->reg_idx = i;
2126 }
2127 
2128 static void wx_add_ring(struct wx_ring *ring, struct wx_ring_container *head)
2129 {
2130 	ring->next = head->ring;
2131 	head->ring = ring;
2132 	head->count++;
2133 }
2134 
2135 /**
2136  * wx_alloc_q_vector - Allocate memory for a single interrupt vector
2137  * @wx: board private structure to initialize
2138  * @v_count: q_vectors allocated on wx, used for ring interleaving
2139  * @v_idx: index of vector in wx struct
2140  * @txr_count: total number of Tx rings to allocate
2141  * @txr_idx: index of first Tx ring to allocate
2142  * @rxr_count: total number of Rx rings to allocate
2143  * @rxr_idx: index of first Rx ring to allocate
2144  *
2145  * We allocate one q_vector.  If allocation fails we return -ENOMEM.
2146  **/
2147 static int wx_alloc_q_vector(struct wx *wx,
2148 			     unsigned int v_count, unsigned int v_idx,
2149 			     unsigned int txr_count, unsigned int txr_idx,
2150 			     unsigned int rxr_count, unsigned int rxr_idx)
2151 {
2152 	struct wx_q_vector *q_vector;
2153 	int ring_count, default_itr;
2154 	struct wx_ring *ring;
2155 
2156 	/* note this will allocate space for the ring structure as well! */
2157 	ring_count = txr_count + rxr_count;
2158 
2159 	q_vector = kzalloc_flex(*q_vector, ring, ring_count);
2160 	if (!q_vector)
2161 		return -ENOMEM;
2162 
2163 	/* initialize NAPI */
2164 	netif_napi_add(wx->netdev, &q_vector->napi,
2165 		       wx_poll);
2166 
2167 	/* tie q_vector and wx together */
2168 	wx->q_vector[v_idx] = q_vector;
2169 	q_vector->wx = wx;
2170 	q_vector->v_idx = v_idx;
2171 	if (cpu_online(v_idx))
2172 		q_vector->numa_node = cpu_to_node(v_idx);
2173 
2174 	/* initialize pointer to rings */
2175 	ring = q_vector->ring;
2176 
2177 	switch (wx->mac.type) {
2178 	case wx_mac_sp:
2179 	case wx_mac_aml:
2180 	case wx_mac_aml40:
2181 		default_itr = WX_12K_ITR;
2182 		break;
2183 	default:
2184 		default_itr = WX_7K_ITR;
2185 		break;
2186 	}
2187 
2188 	/* initialize ITR */
2189 	if (txr_count && !rxr_count)
2190 		/* tx only vector */
2191 		q_vector->itr = wx->tx_itr_setting ?
2192 				default_itr : wx->tx_itr_setting;
2193 	else
2194 		/* rx or rx/tx vector */
2195 		q_vector->itr = wx->rx_itr_setting ?
2196 				default_itr : wx->rx_itr_setting;
2197 
2198 	while (txr_count) {
2199 		/* assign generic ring traits */
2200 		ring->dev = &wx->pdev->dev;
2201 		ring->netdev = wx->netdev;
2202 
2203 		/* configure backlink on ring */
2204 		ring->q_vector = q_vector;
2205 
2206 		/* update q_vector Tx values */
2207 		wx_add_ring(ring, &q_vector->tx);
2208 
2209 		/* apply Tx specific ring traits */
2210 		ring->count = wx->tx_ring_count;
2211 
2212 		ring->queue_index = txr_idx;
2213 
2214 		/* assign ring to wx */
2215 		wx->tx_ring[txr_idx] = ring;
2216 
2217 		/* update count and index */
2218 		txr_count--;
2219 		txr_idx += v_count;
2220 
2221 		/* push pointer to next ring */
2222 		ring++;
2223 	}
2224 
2225 	while (rxr_count) {
2226 		/* assign generic ring traits */
2227 		ring->dev = &wx->pdev->dev;
2228 		ring->netdev = wx->netdev;
2229 
2230 		/* configure backlink on ring */
2231 		ring->q_vector = q_vector;
2232 
2233 		/* update q_vector Rx values */
2234 		wx_add_ring(ring, &q_vector->rx);
2235 
2236 		/* apply Rx specific ring traits */
2237 		ring->count = wx->rx_ring_count;
2238 		ring->queue_index = rxr_idx;
2239 
2240 		/* assign ring to wx */
2241 		wx->rx_ring[rxr_idx] = ring;
2242 
2243 		/* update count and index */
2244 		rxr_count--;
2245 		rxr_idx += v_count;
2246 
2247 		/* push pointer to next ring */
2248 		ring++;
2249 	}
2250 
2251 	return 0;
2252 }
2253 
2254 /**
2255  * wx_free_q_vector - Free memory allocated for specific interrupt vector
2256  * @wx: board private structure to initialize
2257  * @v_idx: Index of vector to be freed
2258  *
2259  * This function frees the memory allocated to the q_vector.  In addition if
2260  * NAPI is enabled it will delete any references to the NAPI struct prior
2261  * to freeing the q_vector.
2262  **/
2263 static void wx_free_q_vector(struct wx *wx, int v_idx)
2264 {
2265 	struct wx_q_vector *q_vector = wx->q_vector[v_idx];
2266 	struct wx_ring *ring;
2267 
2268 	wx_for_each_ring(ring, q_vector->tx)
2269 		wx->tx_ring[ring->queue_index] = NULL;
2270 
2271 	wx_for_each_ring(ring, q_vector->rx)
2272 		wx->rx_ring[ring->queue_index] = NULL;
2273 
2274 	wx->q_vector[v_idx] = NULL;
2275 	netif_napi_del(&q_vector->napi);
2276 	kfree_rcu(q_vector, rcu);
2277 }
2278 
2279 /**
2280  * wx_alloc_q_vectors - Allocate memory for interrupt vectors
2281  * @wx: board private structure to initialize
2282  *
2283  * We allocate one q_vector per queue interrupt.  If allocation fails we
2284  * return -ENOMEM.
2285  **/
2286 static int wx_alloc_q_vectors(struct wx *wx)
2287 {
2288 	unsigned int rxr_idx = 0, txr_idx = 0, v_idx = 0;
2289 	unsigned int rxr_remaining = wx->num_rx_queues;
2290 	unsigned int txr_remaining = wx->num_tx_queues;
2291 	unsigned int q_vectors = wx->num_q_vectors;
2292 	int rqpv, tqpv;
2293 	int err;
2294 
2295 	for (; v_idx < q_vectors; v_idx++) {
2296 		rqpv = DIV_ROUND_UP(rxr_remaining, q_vectors - v_idx);
2297 		tqpv = DIV_ROUND_UP(txr_remaining, q_vectors - v_idx);
2298 		err = wx_alloc_q_vector(wx, q_vectors, v_idx,
2299 					tqpv, txr_idx,
2300 					rqpv, rxr_idx);
2301 
2302 		if (err)
2303 			goto err_out;
2304 
2305 		/* update counts and index */
2306 		rxr_remaining -= rqpv;
2307 		txr_remaining -= tqpv;
2308 		rxr_idx++;
2309 		txr_idx++;
2310 	}
2311 
2312 	return 0;
2313 
2314 err_out:
2315 	wx->num_tx_queues = 0;
2316 	wx->num_rx_queues = 0;
2317 	wx->num_q_vectors = 0;
2318 
2319 	while (v_idx--)
2320 		wx_free_q_vector(wx, v_idx);
2321 
2322 	return -ENOMEM;
2323 }
2324 
2325 /**
2326  * wx_free_q_vectors - Free memory allocated for interrupt vectors
2327  * @wx: board private structure to initialize
2328  *
2329  * This function frees the memory allocated to the q_vectors.  In addition if
2330  * NAPI is enabled it will delete any references to the NAPI struct prior
2331  * to freeing the q_vector.
2332  **/
2333 static void wx_free_q_vectors(struct wx *wx)
2334 {
2335 	int v_idx = wx->num_q_vectors;
2336 
2337 	wx->num_tx_queues = 0;
2338 	wx->num_rx_queues = 0;
2339 	wx->num_q_vectors = 0;
2340 
2341 	while (v_idx--)
2342 		wx_free_q_vector(wx, v_idx);
2343 }
2344 
2345 void wx_reset_interrupt_capability(struct wx *wx)
2346 {
2347 	struct pci_dev *pdev = wx->pdev;
2348 
2349 	if (!pdev->msi_enabled && !pdev->msix_enabled)
2350 		return;
2351 
2352 	if (pdev->msix_enabled) {
2353 		kfree(wx->msix_q_entries);
2354 		wx->msix_q_entries = NULL;
2355 		kfree(wx->msix_entry);
2356 		wx->msix_entry = NULL;
2357 	}
2358 	pci_free_irq_vectors(wx->pdev);
2359 }
2360 EXPORT_SYMBOL(wx_reset_interrupt_capability);
2361 
2362 /**
2363  * wx_clear_interrupt_scheme - Clear the current interrupt scheme settings
2364  * @wx: board private structure to clear interrupt scheme on
2365  *
2366  * We go through and clear interrupt specific resources and reset the structure
2367  * to pre-load conditions
2368  **/
2369 void wx_clear_interrupt_scheme(struct wx *wx)
2370 {
2371 	wx_free_q_vectors(wx);
2372 	wx_reset_interrupt_capability(wx);
2373 }
2374 EXPORT_SYMBOL(wx_clear_interrupt_scheme);
2375 
2376 int wx_init_interrupt_scheme(struct wx *wx)
2377 {
2378 	int ret;
2379 
2380 	/* Number of supported queues */
2381 	if (wx->pdev->is_virtfn) {
2382 		if (wx->set_num_queues)
2383 			wx->set_num_queues(wx);
2384 	} else {
2385 		wx_set_num_queues(wx);
2386 	}
2387 
2388 	/* Set interrupt mode */
2389 	ret = wx_set_interrupt_capability(wx);
2390 	if (ret) {
2391 		wx_err(wx, "Allocate irq vectors for failed.\n");
2392 		return ret;
2393 	}
2394 
2395 	/* Allocate memory for queues */
2396 	ret = wx_alloc_q_vectors(wx);
2397 	if (ret) {
2398 		wx_err(wx, "Unable to allocate memory for queue vectors.\n");
2399 		wx_reset_interrupt_capability(wx);
2400 		return ret;
2401 	}
2402 
2403 	wx_cache_ring_rss(wx);
2404 
2405 	set_bit(WX_STATE_DOWN, wx->state);
2406 
2407 	return 0;
2408 }
2409 EXPORT_SYMBOL(wx_init_interrupt_scheme);
2410 
2411 irqreturn_t wx_msix_clean_rings(int __always_unused irq, void *data)
2412 {
2413 	struct wx_q_vector *q_vector = data;
2414 
2415 	/* EIAM disabled interrupts (on this vector) for us */
2416 	if (q_vector->rx.ring || q_vector->tx.ring) {
2417 		napi_schedule_irqoff(&q_vector->napi);
2418 		q_vector->total_events++;
2419 	}
2420 
2421 	return IRQ_HANDLED;
2422 }
2423 EXPORT_SYMBOL(wx_msix_clean_rings);
2424 
2425 void wx_free_irq(struct wx *wx)
2426 {
2427 	struct pci_dev *pdev = wx->pdev;
2428 	int vector;
2429 
2430 	if (!(pdev->msix_enabled)) {
2431 		if (!wx->misc_irq_domain)
2432 			free_irq(pdev->irq, wx);
2433 		return;
2434 	}
2435 
2436 	for (vector = 0; vector < wx->num_q_vectors; vector++) {
2437 		struct wx_q_vector *q_vector = wx->q_vector[vector];
2438 		struct msix_entry *entry = &wx->msix_q_entries[vector];
2439 
2440 		/* free only the irqs that were actually requested */
2441 		if (!q_vector->rx.ring && !q_vector->tx.ring)
2442 			continue;
2443 
2444 		free_irq(entry->vector, q_vector);
2445 	}
2446 
2447 	if (!wx->misc_irq_domain)
2448 		free_irq(wx->msix_entry->vector, wx);
2449 }
2450 EXPORT_SYMBOL(wx_free_irq);
2451 
2452 /**
2453  * wx_setup_isb_resources - allocate interrupt status resources
2454  * @wx: board private structure
2455  *
2456  * Return 0 on success, negative on failure
2457  **/
2458 int wx_setup_isb_resources(struct wx *wx)
2459 {
2460 	struct pci_dev *pdev = wx->pdev;
2461 
2462 	if (wx->isb_mem)
2463 		return 0;
2464 
2465 	wx->isb_mem = dma_alloc_coherent(&pdev->dev,
2466 					 sizeof(u32) * 4,
2467 					 &wx->isb_dma,
2468 					 GFP_KERNEL);
2469 	if (!wx->isb_mem) {
2470 		wx_err(wx, "Alloc isb_mem failed\n");
2471 		return -ENOMEM;
2472 	}
2473 
2474 	return 0;
2475 }
2476 EXPORT_SYMBOL(wx_setup_isb_resources);
2477 
2478 /**
2479  * wx_free_isb_resources - allocate all queues Rx resources
2480  * @wx: board private structure
2481  *
2482  * Return 0 on success, negative on failure
2483  **/
2484 void wx_free_isb_resources(struct wx *wx)
2485 {
2486 	struct pci_dev *pdev = wx->pdev;
2487 
2488 	dma_free_coherent(&pdev->dev, sizeof(u32) * 4,
2489 			  wx->isb_mem, wx->isb_dma);
2490 	wx->isb_mem = NULL;
2491 }
2492 EXPORT_SYMBOL(wx_free_isb_resources);
2493 
2494 u32 wx_misc_isb(struct wx *wx, enum wx_isb_idx idx)
2495 {
2496 	u32 cur_tag = 0;
2497 
2498 	cur_tag = wx->isb_mem[WX_ISB_HEADER];
2499 	wx->isb_tag[idx] = cur_tag;
2500 
2501 	return (__force u32)cpu_to_le32(wx->isb_mem[idx]);
2502 }
2503 EXPORT_SYMBOL(wx_misc_isb);
2504 
2505 /**
2506  * wx_set_ivar - set the IVAR registers, mapping interrupt causes to vectors
2507  * @wx: pointer to wx struct
2508  * @direction: 0 for Rx, 1 for Tx, -1 for other causes
2509  * @queue: queue to map the corresponding interrupt to
2510  * @msix_vector: the vector to map to the corresponding queue
2511  *
2512  **/
2513 static void wx_set_ivar(struct wx *wx, s8 direction,
2514 			u16 queue, u16 msix_vector)
2515 {
2516 	u32 ivar, index;
2517 
2518 	if (direction == -1) {
2519 		/* other causes */
2520 		if (test_bit(WX_FLAG_IRQ_VECTOR_SHARED, wx->flags))
2521 			msix_vector = 0;
2522 		msix_vector |= WX_PX_IVAR_ALLOC_VAL;
2523 		index = 0;
2524 		ivar = rd32(wx, WX_PX_MISC_IVAR);
2525 		ivar &= ~(0xFF << index);
2526 		ivar |= (msix_vector << index);
2527 		wr32(wx, WX_PX_MISC_IVAR, ivar);
2528 	} else {
2529 		/* tx or rx causes */
2530 		msix_vector |= WX_PX_IVAR_ALLOC_VAL;
2531 		index = ((16 * (queue & 1)) + (8 * direction));
2532 		ivar = rd32(wx, WX_PX_IVAR(queue >> 1));
2533 		ivar &= ~(0xFF << index);
2534 		ivar |= (msix_vector << index);
2535 		wr32(wx, WX_PX_IVAR(queue >> 1), ivar);
2536 	}
2537 }
2538 
2539 /**
2540  * wx_write_eitr - write EITR register in hardware specific way
2541  * @q_vector: structure containing interrupt and ring information
2542  *
2543  * This function is made to be called by ethtool and by the driver
2544  * when it needs to update EITR registers at runtime.  Hardware
2545  * specific quirks/differences are taken care of here.
2546  */
2547 void wx_write_eitr(struct wx_q_vector *q_vector)
2548 {
2549 	struct wx *wx = q_vector->wx;
2550 	int v_idx = q_vector->v_idx;
2551 	u32 itr_reg;
2552 
2553 	switch (wx->mac.type) {
2554 	case wx_mac_sp:
2555 		itr_reg = q_vector->itr & WX_SP_MAX_EITR;
2556 		break;
2557 	case wx_mac_aml:
2558 	case wx_mac_aml40:
2559 		itr_reg = (q_vector->itr >> 3) & WX_AML_MAX_EITR;
2560 		break;
2561 	default:
2562 		itr_reg = q_vector->itr & WX_EM_MAX_EITR;
2563 		break;
2564 	}
2565 
2566 	itr_reg |= WX_PX_ITR_CNT_WDIS;
2567 
2568 	wr32(wx, WX_PX_ITR(v_idx), itr_reg);
2569 }
2570 
2571 /**
2572  * wx_configure_vectors - Configure vectors for hardware
2573  * @wx: board private structure
2574  *
2575  * wx_configure_vectors sets up the hardware to properly generate MSI-X/MSI/INTx
2576  * interrupts.
2577  **/
2578 void wx_configure_vectors(struct wx *wx)
2579 {
2580 	struct pci_dev *pdev = wx->pdev;
2581 	u32 eitrsel = 0;
2582 	u16 v_idx, i;
2583 
2584 	if (pdev->msix_enabled) {
2585 		/* Populate MSIX to EITR Select */
2586 		if (test_bit(WX_FLAG_MULTI_64_FUNC, wx->flags)) {
2587 			if (wx->num_vfs >= 32)
2588 				eitrsel = BIT(wx->num_vfs % 32) - 1;
2589 		} else {
2590 			for (i = 0; i < wx->num_vfs; i++)
2591 				eitrsel |= BIT(i);
2592 		}
2593 		wr32(wx, WX_PX_ITRSEL, eitrsel);
2594 		/* use EIAM to auto-mask when MSI-X interrupt is asserted
2595 		 * this saves a register write for every interrupt
2596 		 */
2597 		wr32(wx, WX_PX_GPIE, WX_PX_GPIE_MODEL);
2598 	} else {
2599 		/* legacy interrupts, use EIAM to auto-mask when reading EICR,
2600 		 * specifically only auto mask tx and rx interrupts.
2601 		 */
2602 		wr32(wx, WX_PX_GPIE, 0);
2603 	}
2604 
2605 	/* Populate the IVAR table and set the ITR values to the
2606 	 * corresponding register.
2607 	 */
2608 	for (v_idx = 0; v_idx < wx->num_q_vectors; v_idx++) {
2609 		struct wx_q_vector *q_vector = wx->q_vector[v_idx];
2610 		struct wx_ring *ring;
2611 
2612 		wx_for_each_ring(ring, q_vector->rx)
2613 			wx_set_ivar(wx, 0, ring->reg_idx, v_idx);
2614 
2615 		wx_for_each_ring(ring, q_vector->tx)
2616 			wx_set_ivar(wx, 1, ring->reg_idx, v_idx);
2617 
2618 		wx_write_eitr(q_vector);
2619 	}
2620 
2621 	wx_set_ivar(wx, -1, 0, v_idx);
2622 	if (pdev->msix_enabled)
2623 		wr32(wx, WX_PX_ITR(v_idx), 1950);
2624 }
2625 EXPORT_SYMBOL(wx_configure_vectors);
2626 
2627 /**
2628  * wx_clean_rx_ring - Free Rx Buffers per Queue
2629  * @rx_ring: ring to free buffers from
2630  **/
2631 static void wx_clean_rx_ring(struct wx_ring *rx_ring)
2632 {
2633 	struct wx_rx_buffer *rx_buffer;
2634 	u16 i = rx_ring->next_to_clean;
2635 
2636 	rx_buffer = &rx_ring->rx_buffer_info[i];
2637 
2638 	/* Free all the Rx ring sk_buffs */
2639 	while (i != rx_ring->next_to_alloc) {
2640 		if (rx_buffer->skb) {
2641 			struct sk_buff *skb = rx_buffer->skb;
2642 
2643 			dev_kfree_skb(skb);
2644 		}
2645 
2646 		/* Invalidate cache lines that may have been written to by
2647 		 * device so that we avoid corrupting memory.
2648 		 */
2649 		dma_sync_single_range_for_cpu(rx_ring->dev,
2650 					      rx_buffer->dma,
2651 					      rx_buffer->page_offset,
2652 					      rx_ring->rx_buf_len,
2653 					      DMA_FROM_DEVICE);
2654 
2655 		/* free resources associated with mapping */
2656 		page_pool_put_full_page(rx_ring->page_pool, rx_buffer->page, false);
2657 
2658 		i++;
2659 		rx_buffer++;
2660 		if (i == rx_ring->count) {
2661 			i = 0;
2662 			rx_buffer = rx_ring->rx_buffer_info;
2663 		}
2664 	}
2665 
2666 	/* Zero out the descriptor ring */
2667 	memset(rx_ring->desc, 0, rx_ring->size);
2668 
2669 	rx_ring->next_to_alloc = 0;
2670 	rx_ring->next_to_clean = 0;
2671 	rx_ring->next_to_use = 0;
2672 }
2673 
2674 /**
2675  * wx_clean_all_rx_rings - Free Rx Buffers for all queues
2676  * @wx: board private structure
2677  **/
2678 void wx_clean_all_rx_rings(struct wx *wx)
2679 {
2680 	int i;
2681 
2682 	for (i = 0; i < wx->num_rx_queues; i++)
2683 		wx_clean_rx_ring(wx->rx_ring[i]);
2684 }
2685 EXPORT_SYMBOL(wx_clean_all_rx_rings);
2686 
2687 /**
2688  * wx_free_rx_resources - Free Rx Resources
2689  * @rx_ring: ring to clean the resources from
2690  *
2691  * Free all receive software resources
2692  **/
2693 static void wx_free_rx_resources(struct wx_ring *rx_ring)
2694 {
2695 	wx_clean_rx_ring(rx_ring);
2696 	kvfree(rx_ring->rx_buffer_info);
2697 	rx_ring->rx_buffer_info = NULL;
2698 
2699 	/* if not set, then don't free */
2700 	if (!rx_ring->desc)
2701 		return;
2702 
2703 	dma_free_coherent(rx_ring->dev, rx_ring->size,
2704 			  rx_ring->desc, rx_ring->dma);
2705 
2706 	rx_ring->desc = NULL;
2707 
2708 	if (rx_ring->page_pool) {
2709 		page_pool_destroy(rx_ring->page_pool);
2710 		rx_ring->page_pool = NULL;
2711 	}
2712 }
2713 
2714 /**
2715  * wx_free_all_rx_resources - Free Rx Resources for All Queues
2716  * @wx: pointer to hardware structure
2717  *
2718  * Free all receive software resources
2719  **/
2720 static void wx_free_all_rx_resources(struct wx *wx)
2721 {
2722 	int i;
2723 
2724 	for (i = 0; i < wx->num_rx_queues; i++)
2725 		wx_free_rx_resources(wx->rx_ring[i]);
2726 }
2727 
2728 /**
2729  * wx_clean_tx_ring - Free Tx Buffers
2730  * @tx_ring: ring to be cleaned
2731  **/
2732 static void wx_clean_tx_ring(struct wx_ring *tx_ring)
2733 {
2734 	struct wx_tx_buffer *tx_buffer;
2735 	u16 i = tx_ring->next_to_clean;
2736 
2737 	tx_buffer = &tx_ring->tx_buffer_info[i];
2738 
2739 	while (i != tx_ring->next_to_use) {
2740 		union wx_tx_desc *eop_desc, *tx_desc;
2741 
2742 		/* Free all the Tx ring sk_buffs */
2743 		dev_kfree_skb_any(tx_buffer->skb);
2744 
2745 		/* unmap skb header data */
2746 		dma_unmap_single(tx_ring->dev,
2747 				 dma_unmap_addr(tx_buffer, dma),
2748 				 dma_unmap_len(tx_buffer, len),
2749 				 DMA_TO_DEVICE);
2750 
2751 		/* check for eop_desc to determine the end of the packet */
2752 		eop_desc = tx_buffer->next_to_watch;
2753 		tx_desc = WX_TX_DESC(tx_ring, i);
2754 
2755 		/* unmap remaining buffers */
2756 		while (tx_desc != eop_desc) {
2757 			tx_buffer++;
2758 			tx_desc++;
2759 			i++;
2760 			if (unlikely(i == tx_ring->count)) {
2761 				i = 0;
2762 				tx_buffer = tx_ring->tx_buffer_info;
2763 				tx_desc = WX_TX_DESC(tx_ring, 0);
2764 			}
2765 
2766 			/* unmap any remaining paged data */
2767 			if (dma_unmap_len(tx_buffer, len))
2768 				dma_unmap_page(tx_ring->dev,
2769 					       dma_unmap_addr(tx_buffer, dma),
2770 					       dma_unmap_len(tx_buffer, len),
2771 					       DMA_TO_DEVICE);
2772 		}
2773 
2774 		/* move us one more past the eop_desc for start of next pkt */
2775 		tx_buffer++;
2776 		i++;
2777 		if (unlikely(i == tx_ring->count)) {
2778 			i = 0;
2779 			tx_buffer = tx_ring->tx_buffer_info;
2780 		}
2781 	}
2782 
2783 	netdev_tx_reset_queue(wx_txring_txq(tx_ring));
2784 
2785 	/* reset next_to_use and next_to_clean */
2786 	tx_ring->next_to_use = 0;
2787 	tx_ring->next_to_clean = 0;
2788 }
2789 
2790 /**
2791  * wx_clean_all_tx_rings - Free Tx Buffers for all queues
2792  * @wx: board private structure
2793  **/
2794 void wx_clean_all_tx_rings(struct wx *wx)
2795 {
2796 	int i;
2797 
2798 	for (i = 0; i < wx->num_tx_queues; i++)
2799 		wx_clean_tx_ring(wx->tx_ring[i]);
2800 }
2801 EXPORT_SYMBOL(wx_clean_all_tx_rings);
2802 
2803 static void wx_free_headwb_resources(struct wx_ring *tx_ring)
2804 {
2805 	if (!tx_ring->headwb_mem)
2806 		return;
2807 
2808 	dma_free_coherent(tx_ring->dev, sizeof(u32),
2809 			  tx_ring->headwb_mem, tx_ring->headwb_dma);
2810 	tx_ring->headwb_mem = NULL;
2811 }
2812 
2813 /**
2814  * wx_free_tx_resources - Free Tx Resources per Queue
2815  * @tx_ring: Tx descriptor ring for a specific queue
2816  *
2817  * Free all transmit software resources
2818  **/
2819 static void wx_free_tx_resources(struct wx_ring *tx_ring)
2820 {
2821 	wx_clean_tx_ring(tx_ring);
2822 	kvfree(tx_ring->tx_buffer_info);
2823 	tx_ring->tx_buffer_info = NULL;
2824 
2825 	/* if not set, then don't free */
2826 	if (!tx_ring->desc)
2827 		return;
2828 
2829 	dma_free_coherent(tx_ring->dev, tx_ring->size,
2830 			  tx_ring->desc, tx_ring->dma);
2831 	tx_ring->desc = NULL;
2832 
2833 	wx_free_headwb_resources(tx_ring);
2834 }
2835 
2836 /**
2837  * wx_free_all_tx_resources - Free Tx Resources for All Queues
2838  * @wx: pointer to hardware structure
2839  *
2840  * Free all transmit software resources
2841  **/
2842 static void wx_free_all_tx_resources(struct wx *wx)
2843 {
2844 	int i;
2845 
2846 	for (i = 0; i < wx->num_tx_queues; i++)
2847 		wx_free_tx_resources(wx->tx_ring[i]);
2848 }
2849 
2850 void wx_free_resources(struct wx *wx)
2851 {
2852 	wx_free_all_rx_resources(wx);
2853 	wx_free_all_tx_resources(wx);
2854 }
2855 EXPORT_SYMBOL(wx_free_resources);
2856 
2857 static int wx_alloc_page_pool(struct wx_ring *rx_ring)
2858 {
2859 	int ret = 0;
2860 
2861 	struct page_pool_params pp_params = {
2862 		.flags = PP_FLAG_DMA_MAP | PP_FLAG_DMA_SYNC_DEV,
2863 		.order = wx_rx_pg_order(rx_ring),
2864 		.pool_size = rx_ring->count * rx_ring->rx_buf_len /
2865 			     wx_rx_pg_size(rx_ring),
2866 		.nid = dev_to_node(rx_ring->dev),
2867 		.dev = rx_ring->dev,
2868 		.dma_dir = DMA_FROM_DEVICE,
2869 		.offset = 0,
2870 		.max_len = wx_rx_pg_size(rx_ring),
2871 	};
2872 
2873 	rx_ring->page_pool = page_pool_create(&pp_params);
2874 	if (IS_ERR(rx_ring->page_pool)) {
2875 		ret = PTR_ERR(rx_ring->page_pool);
2876 		rx_ring->page_pool = NULL;
2877 	}
2878 
2879 	return ret;
2880 }
2881 
2882 /**
2883  * wx_setup_rx_resources - allocate Rx resources (Descriptors)
2884  * @rx_ring: rx descriptor ring (for a specific queue) to setup
2885  *
2886  * Returns 0 on success, negative on failure
2887  **/
2888 static int wx_setup_rx_resources(struct wx_ring *rx_ring)
2889 {
2890 	struct device *dev = rx_ring->dev;
2891 	int orig_node = dev_to_node(dev);
2892 	int numa_node = NUMA_NO_NODE;
2893 	int size, ret;
2894 
2895 	size = sizeof(struct wx_rx_buffer) * rx_ring->count;
2896 
2897 	if (rx_ring->q_vector)
2898 		numa_node = rx_ring->q_vector->numa_node;
2899 
2900 	rx_ring->rx_buffer_info = kvmalloc_node(size, GFP_KERNEL, numa_node);
2901 	if (!rx_ring->rx_buffer_info)
2902 		rx_ring->rx_buffer_info = kvmalloc(size, GFP_KERNEL);
2903 	if (!rx_ring->rx_buffer_info)
2904 		goto err;
2905 
2906 	/* Round up to nearest 4K */
2907 	rx_ring->size = rx_ring->count * sizeof(union wx_rx_desc);
2908 	rx_ring->size = ALIGN(rx_ring->size, 4096);
2909 
2910 	set_dev_node(dev, numa_node);
2911 	rx_ring->desc = dma_alloc_coherent(dev, rx_ring->size,
2912 					   &rx_ring->dma, GFP_KERNEL);
2913 	if (!rx_ring->desc) {
2914 		set_dev_node(dev, orig_node);
2915 		rx_ring->desc = dma_alloc_coherent(dev, rx_ring->size,
2916 						   &rx_ring->dma, GFP_KERNEL);
2917 	}
2918 
2919 	if (!rx_ring->desc)
2920 		goto err;
2921 
2922 	rx_ring->next_to_clean = 0;
2923 	rx_ring->next_to_use = 0;
2924 
2925 	ret = wx_alloc_page_pool(rx_ring);
2926 	if (ret < 0) {
2927 		dev_err(rx_ring->dev, "Page pool creation failed: %d\n", ret);
2928 		goto err_desc;
2929 	}
2930 
2931 	return 0;
2932 
2933 err_desc:
2934 	dma_free_coherent(dev, rx_ring->size, rx_ring->desc, rx_ring->dma);
2935 err:
2936 	kvfree(rx_ring->rx_buffer_info);
2937 	rx_ring->rx_buffer_info = NULL;
2938 	dev_err(dev, "Unable to allocate memory for the Rx descriptor ring\n");
2939 	return -ENOMEM;
2940 }
2941 
2942 /**
2943  * wx_setup_all_rx_resources - allocate all queues Rx resources
2944  * @wx: pointer to hardware structure
2945  *
2946  * If this function returns with an error, then it's possible one or
2947  * more of the rings is populated (while the rest are not).  It is the
2948  * callers duty to clean those orphaned rings.
2949  *
2950  * Return 0 on success, negative on failure
2951  **/
2952 static int wx_setup_all_rx_resources(struct wx *wx)
2953 {
2954 	int i, err = 0;
2955 
2956 	for (i = 0; i < wx->num_rx_queues; i++) {
2957 		err = wx_setup_rx_resources(wx->rx_ring[i]);
2958 		if (!err)
2959 			continue;
2960 
2961 		wx_err(wx, "Allocation for Rx Queue %u failed\n", i);
2962 		goto err_setup_rx;
2963 	}
2964 
2965 	return 0;
2966 err_setup_rx:
2967 	/* rewind the index freeing the rings as we go */
2968 	while (i--)
2969 		wx_free_rx_resources(wx->rx_ring[i]);
2970 	return err;
2971 }
2972 
2973 static void wx_setup_headwb_resources(struct wx_ring *tx_ring)
2974 {
2975 	struct wx *wx = netdev_priv(tx_ring->netdev);
2976 
2977 	if (!test_bit(WX_FLAG_TXHEAD_WB_ENABLED, wx->flags))
2978 		return;
2979 
2980 	if (!tx_ring->q_vector)
2981 		return;
2982 
2983 	tx_ring->headwb_mem = dma_alloc_coherent(tx_ring->dev,
2984 						 sizeof(u32),
2985 						 &tx_ring->headwb_dma,
2986 						 GFP_KERNEL);
2987 	if (!tx_ring->headwb_mem)
2988 		dev_info(tx_ring->dev, "Allocate headwb memory failed, disable it\n");
2989 }
2990 
2991 /**
2992  * wx_setup_tx_resources - allocate Tx resources (Descriptors)
2993  * @tx_ring: tx descriptor ring (for a specific queue) to setup
2994  *
2995  * Return 0 on success, negative on failure
2996  **/
2997 static int wx_setup_tx_resources(struct wx_ring *tx_ring)
2998 {
2999 	struct device *dev = tx_ring->dev;
3000 	int orig_node = dev_to_node(dev);
3001 	int numa_node = NUMA_NO_NODE;
3002 	int size;
3003 
3004 	size = sizeof(struct wx_tx_buffer) * tx_ring->count;
3005 
3006 	if (tx_ring->q_vector)
3007 		numa_node = tx_ring->q_vector->numa_node;
3008 
3009 	tx_ring->tx_buffer_info = kvmalloc_node(size, GFP_KERNEL, numa_node);
3010 	if (!tx_ring->tx_buffer_info)
3011 		tx_ring->tx_buffer_info = kvmalloc(size, GFP_KERNEL);
3012 	if (!tx_ring->tx_buffer_info)
3013 		goto err;
3014 
3015 	/* round up to nearest 4K */
3016 	tx_ring->size = tx_ring->count * sizeof(union wx_tx_desc);
3017 	tx_ring->size = ALIGN(tx_ring->size, 4096);
3018 
3019 	set_dev_node(dev, numa_node);
3020 	tx_ring->desc = dma_alloc_coherent(dev, tx_ring->size,
3021 					   &tx_ring->dma, GFP_KERNEL);
3022 	if (!tx_ring->desc) {
3023 		set_dev_node(dev, orig_node);
3024 		tx_ring->desc = dma_alloc_coherent(dev, tx_ring->size,
3025 						   &tx_ring->dma, GFP_KERNEL);
3026 	}
3027 
3028 	if (!tx_ring->desc)
3029 		goto err;
3030 
3031 	wx_setup_headwb_resources(tx_ring);
3032 
3033 	tx_ring->next_to_use = 0;
3034 	tx_ring->next_to_clean = 0;
3035 
3036 	return 0;
3037 
3038 err:
3039 	kvfree(tx_ring->tx_buffer_info);
3040 	tx_ring->tx_buffer_info = NULL;
3041 	dev_err(dev, "Unable to allocate memory for the Tx descriptor ring\n");
3042 	return -ENOMEM;
3043 }
3044 
3045 /**
3046  * wx_setup_all_tx_resources - allocate all queues Tx resources
3047  * @wx: pointer to private structure
3048  *
3049  * If this function returns with an error, then it's possible one or
3050  * more of the rings is populated (while the rest are not).  It is the
3051  * callers duty to clean those orphaned rings.
3052  *
3053  * Return 0 on success, negative on failure
3054  **/
3055 static int wx_setup_all_tx_resources(struct wx *wx)
3056 {
3057 	int i, err = 0;
3058 
3059 	for (i = 0; i < wx->num_tx_queues; i++) {
3060 		err = wx_setup_tx_resources(wx->tx_ring[i]);
3061 		if (!err)
3062 			continue;
3063 
3064 		wx_err(wx, "Allocation for Tx Queue %u failed\n", i);
3065 		goto err_setup_tx;
3066 	}
3067 
3068 	return 0;
3069 err_setup_tx:
3070 	/* rewind the index freeing the rings as we go */
3071 	while (i--)
3072 		wx_free_tx_resources(wx->tx_ring[i]);
3073 	return err;
3074 }
3075 
3076 int wx_setup_resources(struct wx *wx)
3077 {
3078 	int err;
3079 
3080 	/* allocate transmit descriptors */
3081 	err = wx_setup_all_tx_resources(wx);
3082 	if (err)
3083 		return err;
3084 
3085 	/* allocate receive descriptors */
3086 	err = wx_setup_all_rx_resources(wx);
3087 	if (err)
3088 		goto err_free_tx;
3089 
3090 	err = wx_setup_isb_resources(wx);
3091 	if (err)
3092 		goto err_free_rx;
3093 
3094 	return 0;
3095 
3096 err_free_rx:
3097 	wx_free_all_rx_resources(wx);
3098 err_free_tx:
3099 	wx_free_all_tx_resources(wx);
3100 
3101 	return err;
3102 }
3103 EXPORT_SYMBOL(wx_setup_resources);
3104 
3105 /**
3106  * wx_get_stats64 - Get System Network Statistics
3107  * @netdev: network interface device structure
3108  * @stats: storage space for 64bit statistics
3109  */
3110 void wx_get_stats64(struct net_device *netdev,
3111 		    struct rtnl_link_stats64 *stats)
3112 {
3113 	struct wx *wx = netdev_priv(netdev);
3114 	struct wx_hw_stats *hwstats;
3115 	int i;
3116 
3117 	wx_update_stats(wx);
3118 
3119 	rcu_read_lock();
3120 	for (i = 0; i < wx->num_rx_queues; i++) {
3121 		struct wx_ring *ring = READ_ONCE(wx->rx_ring[i]);
3122 		u64 bytes, packets;
3123 		unsigned int start;
3124 
3125 		if (ring) {
3126 			do {
3127 				start = u64_stats_fetch_begin(&ring->syncp);
3128 				packets = ring->stats.packets;
3129 				bytes   = ring->stats.bytes;
3130 			} while (u64_stats_fetch_retry(&ring->syncp, start));
3131 			stats->rx_packets += packets;
3132 			stats->rx_bytes   += bytes;
3133 		}
3134 	}
3135 
3136 	for (i = 0; i < wx->num_tx_queues; i++) {
3137 		struct wx_ring *ring = READ_ONCE(wx->tx_ring[i]);
3138 		u64 bytes, packets;
3139 		unsigned int start;
3140 
3141 		if (ring) {
3142 			do {
3143 				start = u64_stats_fetch_begin(&ring->syncp);
3144 				packets = ring->stats.packets;
3145 				bytes   = ring->stats.bytes;
3146 			} while (u64_stats_fetch_retry(&ring->syncp,
3147 							   start));
3148 			stats->tx_packets += packets;
3149 			stats->tx_bytes   += bytes;
3150 		}
3151 	}
3152 
3153 	rcu_read_unlock();
3154 
3155 	hwstats = &wx->stats;
3156 	stats->rx_errors = hwstats->crcerrs + hwstats->rlec;
3157 	stats->multicast = hwstats->qmprc;
3158 	stats->rx_length_errors = hwstats->rlec;
3159 	stats->rx_crc_errors = hwstats->crcerrs;
3160 }
3161 EXPORT_SYMBOL(wx_get_stats64);
3162 
3163 int wx_set_features(struct net_device *netdev, netdev_features_t features)
3164 {
3165 	netdev_features_t changed = netdev->features ^ features;
3166 	struct wx *wx = netdev_priv(netdev);
3167 	bool need_reset = false;
3168 
3169 	wx->rss_enabled = !!(features & NETIF_F_RXHASH);
3170 	wx_enable_rss(wx, wx->rss_enabled);
3171 
3172 	netdev->features = features;
3173 
3174 	if (changed & NETIF_F_HW_VLAN_CTAG_RX && wx->do_reset)
3175 		wx->do_reset(netdev, true);
3176 	else if (changed & (NETIF_F_HW_VLAN_CTAG_RX | NETIF_F_HW_VLAN_CTAG_FILTER))
3177 		wx_set_rx_mode(netdev);
3178 
3179 	if (test_bit(WX_FLAG_RSC_CAPABLE, wx->flags)) {
3180 		if (!(features & NETIF_F_LRO)) {
3181 			if (test_bit(WX_FLAG_RSC_ENABLED, wx->flags))
3182 				need_reset = true;
3183 			clear_bit(WX_FLAG_RSC_ENABLED, wx->flags);
3184 		} else if (!(test_bit(WX_FLAG_RSC_ENABLED, wx->flags))) {
3185 			if (wx->rx_itr_setting == 1 ||
3186 			    wx->rx_itr_setting > WX_MIN_RSC_ITR) {
3187 				set_bit(WX_FLAG_RSC_ENABLED, wx->flags);
3188 				need_reset = true;
3189 			} else if (changed & NETIF_F_LRO) {
3190 				dev_info(&wx->pdev->dev,
3191 					 "rx-usecs set too low, disable RSC\n");
3192 			}
3193 		}
3194 	}
3195 
3196 	if (!(test_bit(WX_FLAG_FDIR_CAPABLE, wx->flags)))
3197 		goto out;
3198 
3199 	/* Check if Flow Director n-tuple support was enabled or disabled.  If
3200 	 * the state changed, we need to reset.
3201 	 */
3202 	switch (features & NETIF_F_NTUPLE) {
3203 	case NETIF_F_NTUPLE:
3204 		/* turn off ATR, enable perfect filters and reset */
3205 		if (!(test_and_set_bit(WX_FLAG_FDIR_PERFECT, wx->flags)))
3206 			need_reset = true;
3207 
3208 		clear_bit(WX_FLAG_FDIR_HASH, wx->flags);
3209 		break;
3210 	default:
3211 		/* turn off perfect filters, enable ATR and reset */
3212 		if (test_and_clear_bit(WX_FLAG_FDIR_PERFECT, wx->flags))
3213 			need_reset = true;
3214 
3215 		/* We cannot enable ATR if RSS is disabled */
3216 		if (wx->ring_feature[RING_F_RSS].limit <= 1)
3217 			break;
3218 
3219 		set_bit(WX_FLAG_FDIR_HASH, wx->flags);
3220 		break;
3221 	}
3222 
3223 out:
3224 	if (need_reset && wx->do_reset)
3225 		wx->do_reset(netdev, true);
3226 
3227 	return 0;
3228 }
3229 EXPORT_SYMBOL(wx_set_features);
3230 
3231 #define NETIF_VLAN_STRIPPING_FEATURES	(NETIF_F_HW_VLAN_CTAG_RX | \
3232 					 NETIF_F_HW_VLAN_STAG_RX)
3233 
3234 #define NETIF_VLAN_INSERTION_FEATURES	(NETIF_F_HW_VLAN_CTAG_TX | \
3235 					 NETIF_F_HW_VLAN_STAG_TX)
3236 
3237 #define NETIF_VLAN_FILTERING_FEATURES	(NETIF_F_HW_VLAN_CTAG_FILTER | \
3238 					 NETIF_F_HW_VLAN_STAG_FILTER)
3239 
3240 netdev_features_t wx_fix_features(struct net_device *netdev,
3241 				  netdev_features_t features)
3242 {
3243 	netdev_features_t changed = netdev->features ^ features;
3244 	struct wx *wx = netdev_priv(netdev);
3245 
3246 	if (changed & NETIF_VLAN_STRIPPING_FEATURES) {
3247 		if ((features & NETIF_VLAN_STRIPPING_FEATURES) != NETIF_VLAN_STRIPPING_FEATURES &&
3248 		    (features & NETIF_VLAN_STRIPPING_FEATURES) != 0) {
3249 			features &= ~NETIF_VLAN_STRIPPING_FEATURES;
3250 			features |= netdev->features & NETIF_VLAN_STRIPPING_FEATURES;
3251 			wx_err(wx, "802.1Q and 802.1ad VLAN stripping must be either both on or both off.");
3252 		}
3253 	}
3254 
3255 	if (changed & NETIF_VLAN_INSERTION_FEATURES) {
3256 		if ((features & NETIF_VLAN_INSERTION_FEATURES) != NETIF_VLAN_INSERTION_FEATURES &&
3257 		    (features & NETIF_VLAN_INSERTION_FEATURES) != 0) {
3258 			features &= ~NETIF_VLAN_INSERTION_FEATURES;
3259 			features |= netdev->features & NETIF_VLAN_INSERTION_FEATURES;
3260 			wx_err(wx, "802.1Q and 802.1ad VLAN insertion must be either both on or both off.");
3261 		}
3262 	}
3263 
3264 	if (changed & NETIF_VLAN_FILTERING_FEATURES) {
3265 		if ((features & NETIF_VLAN_FILTERING_FEATURES) != NETIF_VLAN_FILTERING_FEATURES &&
3266 		    (features & NETIF_VLAN_FILTERING_FEATURES) != 0) {
3267 			features &= ~NETIF_VLAN_FILTERING_FEATURES;
3268 			features |= netdev->features & NETIF_VLAN_FILTERING_FEATURES;
3269 			wx_err(wx, "802.1Q and 802.1ad VLAN filtering must be either both on or both off.");
3270 		}
3271 	}
3272 
3273 	/* If Rx checksum is disabled, then RSC/LRO should also be disabled */
3274 	if (!(features & NETIF_F_RXCSUM))
3275 		features &= ~NETIF_F_LRO;
3276 
3277 	/* Turn off LRO if not RSC capable */
3278 	if (!test_bit(WX_FLAG_RSC_CAPABLE, wx->flags))
3279 		features &= ~NETIF_F_LRO;
3280 
3281 	return features;
3282 }
3283 EXPORT_SYMBOL(wx_fix_features);
3284 
3285 #define WX_MAX_TUNNEL_HDR_LEN	80
3286 netdev_features_t wx_features_check(struct sk_buff *skb,
3287 				    struct net_device *netdev,
3288 				    netdev_features_t features)
3289 {
3290 	struct wx *wx = netdev_priv(netdev);
3291 	__be16 type = skb->protocol;
3292 	u16 vlan_depth = ETH_HLEN;
3293 	u32 vlan_num = 0;
3294 
3295 	if (skb_vlan_tag_present(skb))
3296 		vlan_num++;
3297 
3298 	while (eth_type_vlan(type)) {
3299 		struct vlan_hdr vhdr, *vh;
3300 
3301 		vh = skb_header_pointer(skb, vlan_depth, sizeof(vhdr), &vhdr);
3302 		if (unlikely(!vh))
3303 			break;
3304 
3305 		type = vh->h_vlan_encapsulated_proto;
3306 		vlan_depth += VLAN_HLEN;
3307 		vlan_num++;
3308 
3309 		if (vlan_num > 2) {
3310 			features &= ~(NETIF_F_HW_VLAN_CTAG_TX |
3311 				      NETIF_F_HW_VLAN_STAG_TX);
3312 			break;
3313 		}
3314 	}
3315 
3316 	if (!skb->encapsulation)
3317 		return features;
3318 
3319 	if (wx->mac.type == wx_mac_em)
3320 		return features & ~NETIF_F_CSUM_MASK;
3321 
3322 	if (unlikely(skb_inner_mac_header(skb) - skb_transport_header(skb) >
3323 		     WX_MAX_TUNNEL_HDR_LEN))
3324 		return features & ~NETIF_F_CSUM_MASK;
3325 
3326 	if (skb->inner_protocol_type == ENCAP_TYPE_ETHER &&
3327 	    skb->inner_protocol != htons(ETH_P_IP) &&
3328 	    skb->inner_protocol != htons(ETH_P_IPV6) &&
3329 	    skb->inner_protocol != htons(ETH_P_TEB))
3330 		return features & ~(NETIF_F_CSUM_MASK | NETIF_F_GSO_MASK);
3331 
3332 	return features;
3333 }
3334 EXPORT_SYMBOL(wx_features_check);
3335 
3336 int wx_set_ring(struct wx *wx, u32 new_tx_count,
3337 		u32 new_rx_count, struct wx_ring *temp_ring)
3338 {
3339 	int i, err = 0;
3340 
3341 	/* Setup new Tx resources and free the old Tx resources in that order.
3342 	 * We can then assign the new resources to the rings via a memcpy.
3343 	 * The advantage to this approach is that we are guaranteed to still
3344 	 * have resources even in the case of an allocation failure.
3345 	 */
3346 	if (new_tx_count != wx->tx_ring_count) {
3347 		for (i = 0; i < wx->num_tx_queues; i++) {
3348 			memcpy(&temp_ring[i], wx->tx_ring[i],
3349 			       sizeof(struct wx_ring));
3350 
3351 			temp_ring[i].count = new_tx_count;
3352 			err = wx_setup_tx_resources(&temp_ring[i]);
3353 			if (err) {
3354 				wx_err(wx, "setup new tx resources failed, keep using the old config\n");
3355 				while (i) {
3356 					i--;
3357 					wx_free_tx_resources(&temp_ring[i]);
3358 				}
3359 				return err;
3360 			}
3361 		}
3362 
3363 		for (i = 0; i < wx->num_tx_queues; i++) {
3364 			wx_free_tx_resources(wx->tx_ring[i]);
3365 
3366 			memcpy(wx->tx_ring[i], &temp_ring[i],
3367 			       sizeof(struct wx_ring));
3368 		}
3369 
3370 		wx->tx_ring_count = new_tx_count;
3371 	}
3372 
3373 	/* Repeat the process for the Rx rings if needed */
3374 	if (new_rx_count != wx->rx_ring_count) {
3375 		for (i = 0; i < wx->num_rx_queues; i++) {
3376 			memcpy(&temp_ring[i], wx->rx_ring[i],
3377 			       sizeof(struct wx_ring));
3378 
3379 			temp_ring[i].count = new_rx_count;
3380 			err = wx_setup_rx_resources(&temp_ring[i]);
3381 			if (err) {
3382 				wx_err(wx, "setup new rx resources failed, keep using the old config\n");
3383 				while (i) {
3384 					i--;
3385 					wx_free_rx_resources(&temp_ring[i]);
3386 				}
3387 				return err;
3388 			}
3389 		}
3390 
3391 		for (i = 0; i < wx->num_rx_queues; i++) {
3392 			wx_free_rx_resources(wx->rx_ring[i]);
3393 			memcpy(wx->rx_ring[i], &temp_ring[i],
3394 			       sizeof(struct wx_ring));
3395 		}
3396 
3397 		wx->rx_ring_count = new_rx_count;
3398 	}
3399 	return 0;
3400 }
3401 EXPORT_SYMBOL(wx_set_ring);
3402 
3403 void wx_service_event_schedule(struct wx *wx)
3404 {
3405 	if (!test_bit(WX_STATE_DOWN, wx->state) &&
3406 	    !test_and_set_bit(WX_STATE_SERVICE_SCHED, wx->state))
3407 		queue_work(system_power_efficient_wq, &wx->service_task);
3408 }
3409 EXPORT_SYMBOL(wx_service_event_schedule);
3410 
3411 void wx_service_event_complete(struct wx *wx)
3412 {
3413 	if (WARN_ON(!test_bit(WX_STATE_SERVICE_SCHED, wx->state)))
3414 		return;
3415 
3416 	/* flush memory to make sure state is correct before next watchdog */
3417 	smp_mb__before_atomic();
3418 	clear_bit(WX_STATE_SERVICE_SCHED, wx->state);
3419 }
3420 EXPORT_SYMBOL(wx_service_event_complete);
3421 
3422 void wx_service_timer(struct timer_list *t)
3423 {
3424 	struct wx *wx = timer_container_of(wx, t, service_timer);
3425 	unsigned long next_event_offset = HZ * 2;
3426 
3427 	/* Reset the timer */
3428 	mod_timer(&wx->service_timer, next_event_offset + jiffies);
3429 
3430 	wx_service_event_schedule(wx);
3431 }
3432 EXPORT_SYMBOL(wx_service_timer);
3433 
3434 void wx_soft_quiesce(struct wx *wx)
3435 {
3436 	if (!netif_running(wx->netdev) ||
3437 	    test_and_set_bit(WX_STATE_DOWN, wx->state))
3438 		return;
3439 
3440 	pci_clear_master(wx->pdev);
3441 	netif_tx_stop_all_queues(wx->netdev);
3442 	netif_carrier_off(wx->netdev);
3443 	netif_tx_disable(wx->netdev);
3444 	wx_napi_disable_all(wx);
3445 	wx_ptp_quiesce(wx);
3446 
3447 	clear_bit(WX_FLAG_NEED_DO_RESET, wx->flags);
3448 	timer_delete_sync(&wx->service_timer);
3449 }
3450 EXPORT_SYMBOL(wx_soft_quiesce);
3451 
3452 MODULE_DESCRIPTION("Common library for Wangxun(R) Ethernet drivers.");
3453 MODULE_LICENSE("GPL");
3454