1 // SPDX-License-Identifier: GPL-2.0
2 /* Copyright (c) 2018 Intel Corporation */
3
4 #include <linux/module.h>
5 #include <linux/types.h>
6 #include <linux/if_vlan.h>
7 #include <linux/tcp.h>
8 #include <linux/udp.h>
9 #include <linux/ip.h>
10 #include <linux/pm_runtime.h>
11 #include <net/pkt_sched.h>
12 #include <linux/bpf_trace.h>
13 #include <net/xdp_sock_drv.h>
14 #include <linux/pci.h>
15 #include <linux/mdio.h>
16
17 #include <net/ipv6.h>
18
19 #include "igc.h"
20 #include "igc_hw.h"
21 #include "igc_tsn.h"
22 #include "igc_xdp.h"
23
24 #define DRV_SUMMARY "Intel(R) 2.5G Ethernet Linux Driver"
25
26 #define DEFAULT_MSG_ENABLE (NETIF_MSG_DRV | NETIF_MSG_PROBE | NETIF_MSG_LINK)
27
28 #define IGC_XDP_PASS 0
29 #define IGC_XDP_CONSUMED BIT(0)
30 #define IGC_XDP_TX BIT(1)
31 #define IGC_XDP_REDIRECT BIT(2)
32
33 static int debug = -1;
34
35 MODULE_DESCRIPTION(DRV_SUMMARY);
36 MODULE_LICENSE("GPL v2");
37 module_param(debug, int, 0);
38 MODULE_PARM_DESC(debug, "Debug level (0=none,...,16=all)");
39
40 char igc_driver_name[] = "igc";
41 static const char igc_driver_string[] = DRV_SUMMARY;
42 static const char igc_copyright[] =
43 "Copyright(c) 2018 Intel Corporation.";
44
45 static const struct igc_info *igc_info_tbl[] = {
46 [board_base] = &igc_base_info,
47 };
48
49 static const struct pci_device_id igc_pci_tbl[] = {
50 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_LM), .driver_data = board_base },
51 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_V), .driver_data = board_base },
52 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_I), .driver_data = board_base },
53 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I220_V), .driver_data = board_base },
54 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_K), .driver_data = board_base },
55 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_K2), .driver_data = board_base },
56 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I226_K), .driver_data = board_base },
57 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_LMVP), .driver_data = board_base },
58 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I226_LMVP), .driver_data = board_base },
59 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_IT), .driver_data = board_base },
60 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I226_LM), .driver_data = board_base },
61 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I226_V), .driver_data = board_base },
62 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I226_IT), .driver_data = board_base },
63 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I221_V), .driver_data = board_base },
64 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I226_BLANK_NVM), .driver_data = board_base },
65 { PCI_VDEVICE(INTEL, IGC_DEV_ID_I225_BLANK_NVM), .driver_data = board_base },
66 /* required last entry */
67 { }
68 };
69
70 MODULE_DEVICE_TABLE(pci, igc_pci_tbl);
71
72 enum latency_range {
73 lowest_latency = 0,
74 low_latency = 1,
75 bulk_latency = 2,
76 latency_invalid = 255
77 };
78
igc_reset(struct igc_adapter * adapter)79 void igc_reset(struct igc_adapter *adapter)
80 {
81 struct net_device *dev = adapter->netdev;
82 struct igc_hw *hw = &adapter->hw;
83 struct igc_fc_info *fc = &hw->fc;
84 u32 pba, hwm;
85
86 /* Repartition PBA for greater than 9k MTU if required */
87 pba = IGC_PBA_34K;
88
89 /* flow control settings
90 * The high water mark must be low enough to fit one full frame
91 * after transmitting the pause frame. As such we must have enough
92 * space to allow for us to complete our current transmit and then
93 * receive the frame that is in progress from the link partner.
94 * Set it to:
95 * - the full Rx FIFO size minus one full Tx plus one full Rx frame
96 */
97 hwm = (pba << 10) - (adapter->max_frame_size + MAX_JUMBO_FRAME_SIZE);
98
99 fc->high_water = hwm & 0xFFFFFFF0; /* 16-byte granularity */
100 fc->low_water = fc->high_water - 16;
101 fc->pause_time = 0xFFFF;
102 fc->send_xon = 1;
103 fc->current_mode = fc->requested_mode;
104
105 hw->mac.ops.reset_hw(hw);
106
107 if (hw->mac.ops.init_hw(hw))
108 netdev_err(dev, "Error on hardware initialization\n");
109
110 /* Re-establish EEE setting */
111 igc_set_eee_i225(hw, true, true, true);
112
113 if (!netif_running(adapter->netdev))
114 igc_power_down_phy_copper_base(&adapter->hw);
115
116 /* Enable HW to recognize an 802.1Q VLAN Ethernet packet */
117 wr32(IGC_VET, ETH_P_8021Q);
118
119 /* Re-enable PTP, where applicable. */
120 igc_ptp_reset(adapter);
121
122 /* Re-enable TSN offloading, where applicable. */
123 igc_tsn_reset(adapter);
124
125 igc_get_phy_info(hw);
126 }
127
128 /**
129 * igc_power_up_link - Power up the phy link
130 * @adapter: address of board private structure
131 */
igc_power_up_link(struct igc_adapter * adapter)132 static void igc_power_up_link(struct igc_adapter *adapter)
133 {
134 igc_reset_phy(&adapter->hw);
135
136 igc_power_up_phy_copper(&adapter->hw);
137
138 igc_setup_link(&adapter->hw);
139 }
140
141 /**
142 * igc_release_hw_control - release control of the h/w to f/w
143 * @adapter: address of board private structure
144 *
145 * igc_release_hw_control resets CTRL_EXT:DRV_LOAD bit.
146 * For ASF and Pass Through versions of f/w this means that the
147 * driver is no longer loaded.
148 */
igc_release_hw_control(struct igc_adapter * adapter)149 static void igc_release_hw_control(struct igc_adapter *adapter)
150 {
151 struct igc_hw *hw = &adapter->hw;
152 u32 ctrl_ext;
153
154 if (!pci_device_is_present(adapter->pdev))
155 return;
156
157 /* Let firmware take over control of h/w */
158 ctrl_ext = rd32(IGC_CTRL_EXT);
159 wr32(IGC_CTRL_EXT,
160 ctrl_ext & ~IGC_CTRL_EXT_DRV_LOAD);
161 }
162
163 /**
164 * igc_get_hw_control - get control of the h/w from f/w
165 * @adapter: address of board private structure
166 *
167 * igc_get_hw_control sets CTRL_EXT:DRV_LOAD bit.
168 * For ASF and Pass Through versions of f/w this means that
169 * the driver is loaded.
170 */
igc_get_hw_control(struct igc_adapter * adapter)171 static void igc_get_hw_control(struct igc_adapter *adapter)
172 {
173 struct igc_hw *hw = &adapter->hw;
174 u32 ctrl_ext;
175
176 /* Let firmware know the driver has taken over */
177 ctrl_ext = rd32(IGC_CTRL_EXT);
178 wr32(IGC_CTRL_EXT,
179 ctrl_ext | IGC_CTRL_EXT_DRV_LOAD);
180 }
181
igc_unmap_tx_buffer(struct device * dev,struct igc_tx_buffer * buf)182 static void igc_unmap_tx_buffer(struct device *dev, struct igc_tx_buffer *buf)
183 {
184 dma_unmap_single(dev, dma_unmap_addr(buf, dma),
185 dma_unmap_len(buf, len), DMA_TO_DEVICE);
186
187 dma_unmap_len_set(buf, len, 0);
188 }
189
190 /**
191 * igc_clean_tx_ring - Free Tx Buffers
192 * @tx_ring: ring to be cleaned
193 */
igc_clean_tx_ring(struct igc_ring * tx_ring)194 static void igc_clean_tx_ring(struct igc_ring *tx_ring)
195 {
196 u16 i = tx_ring->next_to_clean;
197 struct igc_tx_buffer *tx_buffer = &tx_ring->tx_buffer_info[i];
198 u32 xsk_frames = 0;
199
200 while (i != tx_ring->next_to_use) {
201 union igc_adv_tx_desc *eop_desc, *tx_desc;
202
203 switch (tx_buffer->type) {
204 case IGC_TX_BUFFER_TYPE_XSK:
205 xsk_frames++;
206 break;
207 case IGC_TX_BUFFER_TYPE_XDP:
208 xdp_return_frame(tx_buffer->xdpf);
209 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
210 break;
211 case IGC_TX_BUFFER_TYPE_SKB:
212 dev_kfree_skb_any(tx_buffer->skb);
213 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
214 break;
215 default:
216 netdev_warn_once(tx_ring->netdev, "Unknown Tx buffer type\n");
217 break;
218 }
219
220 /* check for eop_desc to determine the end of the packet */
221 eop_desc = tx_buffer->next_to_watch;
222 tx_desc = IGC_TX_DESC(tx_ring, i);
223
224 /* unmap remaining buffers */
225 while (tx_desc != eop_desc) {
226 tx_buffer++;
227 tx_desc++;
228 i++;
229 if (unlikely(i == tx_ring->count)) {
230 i = 0;
231 tx_buffer = tx_ring->tx_buffer_info;
232 tx_desc = IGC_TX_DESC(tx_ring, 0);
233 }
234
235 /* unmap any remaining paged data */
236 if (dma_unmap_len(tx_buffer, len))
237 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
238 }
239
240 tx_buffer->next_to_watch = NULL;
241
242 /* move us one more past the eop_desc for start of next pkt */
243 tx_buffer++;
244 i++;
245 if (unlikely(i == tx_ring->count)) {
246 i = 0;
247 tx_buffer = tx_ring->tx_buffer_info;
248 }
249 }
250
251 if (tx_ring->xsk_pool && xsk_frames)
252 xsk_tx_completed(tx_ring->xsk_pool, xsk_frames);
253
254 /* reset BQL for queue */
255 netdev_tx_reset_queue(txring_txq(tx_ring));
256
257 /* Zero out the buffer ring */
258 memset(tx_ring->tx_buffer_info, 0,
259 sizeof(*tx_ring->tx_buffer_info) * tx_ring->count);
260
261 /* Zero out the descriptor ring */
262 memset(tx_ring->desc, 0, tx_ring->size);
263
264 /* reset next_to_use and next_to_clean */
265 tx_ring->next_to_use = 0;
266 tx_ring->next_to_clean = 0;
267
268 /* Clear any lingering XSK TX timestamp requests */
269 if (test_bit(IGC_RING_FLAG_TX_HWTSTAMP, &tx_ring->flags)) {
270 struct igc_adapter *adapter = netdev_priv(tx_ring->netdev);
271
272 igc_ptp_clear_xsk_tx_tstamp_queue(adapter, tx_ring->queue_index);
273 }
274 }
275
276 /**
277 * igc_free_tx_resources - Free Tx Resources per Queue
278 * @tx_ring: Tx descriptor ring for a specific queue
279 *
280 * Free all transmit software resources
281 */
igc_free_tx_resources(struct igc_ring * tx_ring)282 void igc_free_tx_resources(struct igc_ring *tx_ring)
283 {
284 igc_disable_tx_ring(tx_ring);
285
286 vfree(tx_ring->tx_buffer_info);
287 tx_ring->tx_buffer_info = NULL;
288
289 /* if not set, then don't free */
290 if (!tx_ring->desc)
291 return;
292
293 dma_free_coherent(tx_ring->dev, tx_ring->size,
294 tx_ring->desc, tx_ring->dma);
295
296 tx_ring->desc = NULL;
297 }
298
299 /**
300 * igc_free_all_tx_resources - Free Tx Resources for All Queues
301 * @adapter: board private structure
302 *
303 * Free all transmit software resources
304 */
igc_free_all_tx_resources(struct igc_adapter * adapter)305 static void igc_free_all_tx_resources(struct igc_adapter *adapter)
306 {
307 int i;
308
309 for (i = 0; i < adapter->num_tx_queues; i++)
310 igc_free_tx_resources(adapter->tx_ring[i]);
311 }
312
313 /**
314 * igc_clean_all_tx_rings - Free Tx Buffers for all queues
315 * @adapter: board private structure
316 */
igc_clean_all_tx_rings(struct igc_adapter * adapter)317 static void igc_clean_all_tx_rings(struct igc_adapter *adapter)
318 {
319 int i;
320
321 for (i = 0; i < adapter->num_tx_queues; i++)
322 if (adapter->tx_ring[i])
323 igc_clean_tx_ring(adapter->tx_ring[i]);
324 }
325
igc_disable_tx_ring_hw(struct igc_ring * ring)326 static void igc_disable_tx_ring_hw(struct igc_ring *ring)
327 {
328 struct igc_hw *hw = &ring->q_vector->adapter->hw;
329 u8 idx = ring->reg_idx;
330 u32 txdctl;
331
332 txdctl = rd32(IGC_TXDCTL(idx));
333 txdctl &= ~IGC_TXDCTL_QUEUE_ENABLE;
334 txdctl |= IGC_TXDCTL_SWFLUSH;
335 wr32(IGC_TXDCTL(idx), txdctl);
336 }
337
338 /**
339 * igc_disable_all_tx_rings_hw - Disable all transmit queue operation
340 * @adapter: board private structure
341 */
igc_disable_all_tx_rings_hw(struct igc_adapter * adapter)342 static void igc_disable_all_tx_rings_hw(struct igc_adapter *adapter)
343 {
344 int i;
345
346 for (i = 0; i < adapter->num_tx_queues; i++) {
347 struct igc_ring *tx_ring = adapter->tx_ring[i];
348
349 igc_disable_tx_ring_hw(tx_ring);
350 }
351 }
352
353 /**
354 * igc_setup_tx_resources - allocate Tx resources (Descriptors)
355 * @tx_ring: tx descriptor ring (for a specific queue) to setup
356 *
357 * Return 0 on success, negative on failure
358 */
igc_setup_tx_resources(struct igc_ring * tx_ring)359 int igc_setup_tx_resources(struct igc_ring *tx_ring)
360 {
361 struct net_device *ndev = tx_ring->netdev;
362 struct device *dev = tx_ring->dev;
363 int size = 0;
364
365 size = sizeof(struct igc_tx_buffer) * tx_ring->count;
366 tx_ring->tx_buffer_info = vzalloc(size);
367 if (!tx_ring->tx_buffer_info)
368 goto err;
369
370 /* round up to nearest 4K */
371 tx_ring->size = tx_ring->count * sizeof(union igc_adv_tx_desc);
372 tx_ring->size = ALIGN(tx_ring->size, 4096);
373
374 tx_ring->desc = dma_alloc_coherent(dev, tx_ring->size,
375 &tx_ring->dma, GFP_KERNEL);
376
377 if (!tx_ring->desc)
378 goto err;
379
380 tx_ring->next_to_use = 0;
381 tx_ring->next_to_clean = 0;
382
383 return 0;
384
385 err:
386 vfree(tx_ring->tx_buffer_info);
387 netdev_err(ndev, "Unable to allocate memory for Tx descriptor ring\n");
388 return -ENOMEM;
389 }
390
391 /**
392 * igc_setup_all_tx_resources - wrapper to allocate Tx resources for all queues
393 * @adapter: board private structure
394 *
395 * Return 0 on success, negative on failure
396 */
igc_setup_all_tx_resources(struct igc_adapter * adapter)397 static int igc_setup_all_tx_resources(struct igc_adapter *adapter)
398 {
399 struct net_device *dev = adapter->netdev;
400 int i, err = 0;
401
402 for (i = 0; i < adapter->num_tx_queues; i++) {
403 err = igc_setup_tx_resources(adapter->tx_ring[i]);
404 if (err) {
405 netdev_err(dev, "Error on Tx queue %u setup\n", i);
406 for (i--; i >= 0; i--)
407 igc_free_tx_resources(adapter->tx_ring[i]);
408 break;
409 }
410 }
411
412 return err;
413 }
414
igc_clean_rx_ring_page_shared(struct igc_ring * rx_ring)415 static void igc_clean_rx_ring_page_shared(struct igc_ring *rx_ring)
416 {
417 u16 i = rx_ring->next_to_clean;
418
419 dev_kfree_skb(rx_ring->skb);
420 rx_ring->skb = NULL;
421
422 /* Free all the Rx ring sk_buffs */
423 while (i != rx_ring->next_to_alloc) {
424 struct igc_rx_buffer *buffer_info = &rx_ring->rx_buffer_info[i];
425
426 /* Invalidate cache lines that may have been written to by
427 * device so that we avoid corrupting memory.
428 */
429 dma_sync_single_range_for_cpu(rx_ring->dev,
430 buffer_info->dma,
431 buffer_info->page_offset,
432 igc_rx_bufsz(rx_ring),
433 DMA_FROM_DEVICE);
434
435 /* free resources associated with mapping */
436 dma_unmap_page_attrs(rx_ring->dev,
437 buffer_info->dma,
438 igc_rx_pg_size(rx_ring),
439 DMA_FROM_DEVICE,
440 IGC_RX_DMA_ATTR);
441 __page_frag_cache_drain(buffer_info->page,
442 buffer_info->pagecnt_bias);
443
444 i++;
445 if (i == rx_ring->count)
446 i = 0;
447 }
448 }
449
igc_clean_rx_ring_xsk_pool(struct igc_ring * ring)450 static void igc_clean_rx_ring_xsk_pool(struct igc_ring *ring)
451 {
452 struct igc_rx_buffer *bi;
453 u16 i;
454
455 for (i = 0; i < ring->count; i++) {
456 bi = &ring->rx_buffer_info[i];
457 if (!bi->xdp)
458 continue;
459
460 xsk_buff_free(bi->xdp);
461 bi->xdp = NULL;
462 }
463 }
464
465 /**
466 * igc_clean_rx_ring - Free Rx Buffers per Queue
467 * @ring: ring to free buffers from
468 */
igc_clean_rx_ring(struct igc_ring * ring)469 static void igc_clean_rx_ring(struct igc_ring *ring)
470 {
471 if (ring->xsk_pool)
472 igc_clean_rx_ring_xsk_pool(ring);
473 else
474 igc_clean_rx_ring_page_shared(ring);
475
476 clear_ring_uses_large_buffer(ring);
477
478 ring->next_to_alloc = 0;
479 ring->next_to_clean = 0;
480 ring->next_to_use = 0;
481 }
482
483 /**
484 * igc_clean_all_rx_rings - Free Rx Buffers for all queues
485 * @adapter: board private structure
486 */
igc_clean_all_rx_rings(struct igc_adapter * adapter)487 static void igc_clean_all_rx_rings(struct igc_adapter *adapter)
488 {
489 int i;
490
491 for (i = 0; i < adapter->num_rx_queues; i++)
492 if (adapter->rx_ring[i])
493 igc_clean_rx_ring(adapter->rx_ring[i]);
494 }
495
496 /**
497 * igc_free_rx_resources - Free Rx Resources
498 * @rx_ring: ring to clean the resources from
499 *
500 * Free all receive software resources
501 */
igc_free_rx_resources(struct igc_ring * rx_ring)502 void igc_free_rx_resources(struct igc_ring *rx_ring)
503 {
504 igc_clean_rx_ring(rx_ring);
505
506 xdp_rxq_info_unreg(&rx_ring->xdp_rxq);
507
508 vfree(rx_ring->rx_buffer_info);
509 rx_ring->rx_buffer_info = NULL;
510
511 /* if not set, then don't free */
512 if (!rx_ring->desc)
513 return;
514
515 dma_free_coherent(rx_ring->dev, rx_ring->size,
516 rx_ring->desc, rx_ring->dma);
517
518 rx_ring->desc = NULL;
519 }
520
521 /**
522 * igc_free_all_rx_resources - Free Rx Resources for All Queues
523 * @adapter: board private structure
524 *
525 * Free all receive software resources
526 */
igc_free_all_rx_resources(struct igc_adapter * adapter)527 static void igc_free_all_rx_resources(struct igc_adapter *adapter)
528 {
529 int i;
530
531 for (i = 0; i < adapter->num_rx_queues; i++)
532 igc_free_rx_resources(adapter->rx_ring[i]);
533 }
534
535 /**
536 * igc_setup_rx_resources - allocate Rx resources (Descriptors)
537 * @rx_ring: rx descriptor ring (for a specific queue) to setup
538 *
539 * Returns 0 on success, negative on failure
540 */
igc_setup_rx_resources(struct igc_ring * rx_ring)541 int igc_setup_rx_resources(struct igc_ring *rx_ring)
542 {
543 struct net_device *ndev = rx_ring->netdev;
544 struct device *dev = rx_ring->dev;
545 u8 index = rx_ring->queue_index;
546 int size, desc_len, res;
547
548 /* XDP RX-queue info */
549 if (xdp_rxq_info_is_reg(&rx_ring->xdp_rxq))
550 xdp_rxq_info_unreg(&rx_ring->xdp_rxq);
551 res = xdp_rxq_info_reg(&rx_ring->xdp_rxq, ndev, index,
552 rx_ring->q_vector->napi.napi_id);
553 if (res < 0) {
554 netdev_err(ndev, "Failed to register xdp_rxq index %u\n",
555 index);
556 return res;
557 }
558
559 size = sizeof(struct igc_rx_buffer) * rx_ring->count;
560 rx_ring->rx_buffer_info = vzalloc(size);
561 if (!rx_ring->rx_buffer_info)
562 goto err;
563
564 desc_len = sizeof(union igc_adv_rx_desc);
565
566 /* Round up to nearest 4K */
567 rx_ring->size = rx_ring->count * desc_len;
568 rx_ring->size = ALIGN(rx_ring->size, 4096);
569
570 rx_ring->desc = dma_alloc_coherent(dev, rx_ring->size,
571 &rx_ring->dma, GFP_KERNEL);
572
573 if (!rx_ring->desc)
574 goto err;
575
576 rx_ring->next_to_alloc = 0;
577 rx_ring->next_to_clean = 0;
578 rx_ring->next_to_use = 0;
579
580 return 0;
581
582 err:
583 xdp_rxq_info_unreg(&rx_ring->xdp_rxq);
584 vfree(rx_ring->rx_buffer_info);
585 rx_ring->rx_buffer_info = NULL;
586 netdev_err(ndev, "Unable to allocate memory for Rx descriptor ring\n");
587 return -ENOMEM;
588 }
589
590 /**
591 * igc_setup_all_rx_resources - wrapper to allocate Rx resources
592 * (Descriptors) for all queues
593 * @adapter: board private structure
594 *
595 * Return 0 on success, negative on failure
596 */
igc_setup_all_rx_resources(struct igc_adapter * adapter)597 static int igc_setup_all_rx_resources(struct igc_adapter *adapter)
598 {
599 struct net_device *dev = adapter->netdev;
600 int i, err = 0;
601
602 for (i = 0; i < adapter->num_rx_queues; i++) {
603 err = igc_setup_rx_resources(adapter->rx_ring[i]);
604 if (err) {
605 netdev_err(dev, "Error on Rx queue %u setup\n", i);
606 for (i--; i >= 0; i--)
607 igc_free_rx_resources(adapter->rx_ring[i]);
608 break;
609 }
610 }
611
612 return err;
613 }
614
igc_get_xsk_pool(struct igc_adapter * adapter,struct igc_ring * ring)615 static struct xsk_buff_pool *igc_get_xsk_pool(struct igc_adapter *adapter,
616 struct igc_ring *ring)
617 {
618 if (!igc_xdp_is_enabled(adapter) ||
619 !test_bit(IGC_RING_FLAG_AF_XDP_ZC, &ring->flags))
620 return NULL;
621
622 return xsk_get_pool_from_qid(ring->netdev, ring->queue_index);
623 }
624
625 /**
626 * igc_configure_rx_ring - Configure a receive ring after Reset
627 * @adapter: board private structure
628 * @ring: receive ring to be configured
629 *
630 * Configure the Rx unit of the MAC after a reset.
631 */
igc_configure_rx_ring(struct igc_adapter * adapter,struct igc_ring * ring)632 static void igc_configure_rx_ring(struct igc_adapter *adapter,
633 struct igc_ring *ring)
634 {
635 struct igc_hw *hw = &adapter->hw;
636 union igc_adv_rx_desc *rx_desc;
637 int reg_idx = ring->reg_idx;
638 u32 srrctl = 0, rxdctl = 0;
639 u64 rdba = ring->dma;
640 u32 buf_size;
641
642 xdp_rxq_info_unreg_mem_model(&ring->xdp_rxq);
643 ring->xsk_pool = igc_get_xsk_pool(adapter, ring);
644 if (ring->xsk_pool) {
645 WARN_ON(xdp_rxq_info_reg_mem_model(&ring->xdp_rxq,
646 MEM_TYPE_XSK_BUFF_POOL,
647 NULL));
648 xsk_pool_set_rxq_info(ring->xsk_pool, &ring->xdp_rxq);
649 } else {
650 WARN_ON(xdp_rxq_info_reg_mem_model(&ring->xdp_rxq,
651 MEM_TYPE_PAGE_SHARED,
652 NULL));
653 }
654
655 if (igc_xdp_is_enabled(adapter))
656 set_ring_uses_large_buffer(ring);
657
658 /* disable the queue */
659 wr32(IGC_RXDCTL(reg_idx), 0);
660
661 /* Set DMA base address registers */
662 wr32(IGC_RDBAL(reg_idx),
663 rdba & 0x00000000ffffffffULL);
664 wr32(IGC_RDBAH(reg_idx), rdba >> 32);
665 wr32(IGC_RDLEN(reg_idx),
666 ring->count * sizeof(union igc_adv_rx_desc));
667
668 /* initialize head and tail */
669 ring->tail = adapter->io_addr + IGC_RDT(reg_idx);
670 wr32(IGC_RDH(reg_idx), 0);
671 writel(0, ring->tail);
672
673 /* reset next-to- use/clean to place SW in sync with hardware */
674 ring->next_to_clean = 0;
675 ring->next_to_use = 0;
676
677 if (ring->xsk_pool)
678 buf_size = xsk_pool_get_rx_frame_size(ring->xsk_pool);
679 else if (ring_uses_large_buffer(ring))
680 buf_size = IGC_RXBUFFER_3072;
681 else
682 buf_size = IGC_RXBUFFER_2048;
683
684 srrctl = rd32(IGC_SRRCTL(reg_idx));
685 srrctl &= ~(IGC_SRRCTL_BSIZEPKT_MASK | IGC_SRRCTL_BSIZEHDR_MASK |
686 IGC_SRRCTL_DESCTYPE_MASK);
687 srrctl |= IGC_SRRCTL_BSIZEHDR(IGC_RX_HDR_LEN);
688 srrctl |= IGC_SRRCTL_BSIZEPKT(buf_size);
689 srrctl |= IGC_SRRCTL_DESCTYPE_ADV_ONEBUF;
690
691 wr32(IGC_SRRCTL(reg_idx), srrctl);
692
693 rxdctl |= IGC_RXDCTL_PTHRESH;
694 rxdctl |= IGC_RXDCTL_HTHRESH << 8;
695 rxdctl |= IGC_RXDCTL_WTHRESH << 16;
696
697 /* initialize rx_buffer_info */
698 memset(ring->rx_buffer_info, 0,
699 sizeof(struct igc_rx_buffer) * ring->count);
700
701 /* initialize Rx descriptor 0 */
702 rx_desc = IGC_RX_DESC(ring, 0);
703 rx_desc->wb.upper.length = 0;
704
705 /* enable receive descriptor fetching */
706 rxdctl |= IGC_RXDCTL_QUEUE_ENABLE;
707
708 wr32(IGC_RXDCTL(reg_idx), rxdctl);
709 }
710
711 /**
712 * igc_configure_rx - Configure receive Unit after Reset
713 * @adapter: board private structure
714 *
715 * Configure the Rx unit of the MAC after a reset.
716 */
igc_configure_rx(struct igc_adapter * adapter)717 static void igc_configure_rx(struct igc_adapter *adapter)
718 {
719 int i;
720
721 /* Setup the HW Rx Head and Tail Descriptor Pointers and
722 * the Base and Length of the Rx Descriptor Ring
723 */
724 for (i = 0; i < adapter->num_rx_queues; i++)
725 igc_configure_rx_ring(adapter, adapter->rx_ring[i]);
726 }
727
728 /**
729 * igc_configure_tx_ring - Configure transmit ring after Reset
730 * @adapter: board private structure
731 * @ring: tx ring to configure
732 *
733 * Configure a transmit ring after a reset.
734 */
igc_configure_tx_ring(struct igc_adapter * adapter,struct igc_ring * ring)735 static void igc_configure_tx_ring(struct igc_adapter *adapter,
736 struct igc_ring *ring)
737 {
738 struct igc_hw *hw = &adapter->hw;
739 int reg_idx = ring->reg_idx;
740 u64 tdba = ring->dma;
741 u32 txdctl = 0;
742
743 ring->xsk_pool = igc_get_xsk_pool(adapter, ring);
744
745 /* disable the queue */
746 wr32(IGC_TXDCTL(reg_idx), 0);
747 wrfl();
748
749 wr32(IGC_TDLEN(reg_idx),
750 ring->count * sizeof(union igc_adv_tx_desc));
751 wr32(IGC_TDBAL(reg_idx),
752 tdba & 0x00000000ffffffffULL);
753 wr32(IGC_TDBAH(reg_idx), tdba >> 32);
754
755 ring->tail = adapter->io_addr + IGC_TDT(reg_idx);
756 wr32(IGC_TDH(reg_idx), 0);
757 writel(0, ring->tail);
758
759 txdctl |= IGC_TXDCTL_PTHRESH(8) | IGC_TXDCTL_HTHRESH(1) |
760 IGC_TXDCTL_WTHRESH(16) | IGC_TXDCTL_QUEUE_ENABLE;
761
762 wr32(IGC_TXDCTL(reg_idx), txdctl);
763 }
764
765 /**
766 * igc_configure_tx - Configure transmit Unit after Reset
767 * @adapter: board private structure
768 *
769 * Configure the Tx unit of the MAC after a reset.
770 */
igc_configure_tx(struct igc_adapter * adapter)771 static void igc_configure_tx(struct igc_adapter *adapter)
772 {
773 int i;
774
775 for (i = 0; i < adapter->num_tx_queues; i++)
776 igc_configure_tx_ring(adapter, adapter->tx_ring[i]);
777 }
778
779 /**
780 * igc_setup_mrqc - configure the multiple receive queue control registers
781 * @adapter: Board private structure
782 */
igc_setup_mrqc(struct igc_adapter * adapter)783 static void igc_setup_mrqc(struct igc_adapter *adapter)
784 {
785 struct igc_hw *hw = &adapter->hw;
786 u32 j, num_rx_queues;
787 u32 mrqc, rxcsum;
788
789 igc_write_rss_key(adapter);
790
791 num_rx_queues = adapter->rss_queues;
792
793 if (adapter->rss_indir_tbl_init != num_rx_queues) {
794 for (j = 0; j < IGC_RETA_SIZE; j++)
795 adapter->rss_indir_tbl[j] =
796 (j * num_rx_queues) / IGC_RETA_SIZE;
797 adapter->rss_indir_tbl_init = num_rx_queues;
798 }
799 igc_write_rss_indir_tbl(adapter);
800
801 /* Disable raw packet checksumming so that RSS hash is placed in
802 * descriptor on writeback. No need to enable TCP/UDP/IP checksum
803 * offloads as they are enabled by default
804 */
805 rxcsum = rd32(IGC_RXCSUM);
806 rxcsum |= IGC_RXCSUM_PCSD;
807
808 /* Enable Receive Checksum Offload for SCTP */
809 rxcsum |= IGC_RXCSUM_CRCOFL;
810
811 /* Don't need to set TUOFL or IPOFL, they default to 1 */
812 wr32(IGC_RXCSUM, rxcsum);
813
814 /* Generate RSS hash based on packet types, TCP/UDP
815 * port numbers and/or IPv4/v6 src and dst addresses
816 */
817 mrqc = IGC_MRQC_RSS_FIELD_IPV4 |
818 IGC_MRQC_RSS_FIELD_IPV4_TCP |
819 IGC_MRQC_RSS_FIELD_IPV6 |
820 IGC_MRQC_RSS_FIELD_IPV6_TCP |
821 IGC_MRQC_RSS_FIELD_IPV6_TCP_EX;
822
823 if (adapter->flags & IGC_FLAG_RSS_FIELD_IPV4_UDP)
824 mrqc |= IGC_MRQC_RSS_FIELD_IPV4_UDP;
825 if (adapter->flags & IGC_FLAG_RSS_FIELD_IPV6_UDP)
826 mrqc |= IGC_MRQC_RSS_FIELD_IPV6_UDP;
827
828 mrqc |= IGC_MRQC_ENABLE_RSS_MQ;
829
830 wr32(IGC_MRQC, mrqc);
831 }
832
833 /**
834 * igc_setup_rctl - configure the receive control registers
835 * @adapter: Board private structure
836 */
igc_setup_rctl(struct igc_adapter * adapter)837 static void igc_setup_rctl(struct igc_adapter *adapter)
838 {
839 struct igc_hw *hw = &adapter->hw;
840 u32 rctl;
841
842 rctl = rd32(IGC_RCTL);
843
844 rctl &= ~(3 << IGC_RCTL_MO_SHIFT);
845 rctl &= ~(IGC_RCTL_LBM_TCVR | IGC_RCTL_LBM_MAC);
846
847 rctl |= IGC_RCTL_EN | IGC_RCTL_BAM | IGC_RCTL_RDMTS_HALF |
848 (hw->mac.mc_filter_type << IGC_RCTL_MO_SHIFT);
849
850 /* enable stripping of CRC. Newer features require
851 * that the HW strips the CRC.
852 */
853 rctl |= IGC_RCTL_SECRC;
854
855 /* disable store bad packets and clear size bits. */
856 rctl &= ~(IGC_RCTL_SBP | IGC_RCTL_SZ_256);
857
858 /* enable LPE to allow for reception of jumbo frames */
859 rctl |= IGC_RCTL_LPE;
860
861 /* disable queue 0 to prevent tail write w/o re-config */
862 wr32(IGC_RXDCTL(0), 0);
863
864 /* This is useful for sniffing bad packets. */
865 if (adapter->netdev->features & NETIF_F_RXALL) {
866 /* UPE and MPE will be handled by normal PROMISC logic
867 * in set_rx_mode
868 */
869 rctl |= (IGC_RCTL_SBP | /* Receive bad packets */
870 IGC_RCTL_BAM | /* RX All Bcast Pkts */
871 IGC_RCTL_PMCF); /* RX All MAC Ctrl Pkts */
872
873 rctl &= ~(IGC_RCTL_DPF | /* Allow filtered pause */
874 IGC_RCTL_CFIEN); /* Disable VLAN CFIEN Filter */
875 }
876
877 wr32(IGC_RCTL, rctl);
878 }
879
880 /**
881 * igc_setup_tctl - configure the transmit control registers
882 * @adapter: Board private structure
883 */
igc_setup_tctl(struct igc_adapter * adapter)884 static void igc_setup_tctl(struct igc_adapter *adapter)
885 {
886 struct igc_hw *hw = &adapter->hw;
887 u32 tctl;
888
889 /* disable queue 0 which icould be enabled by default */
890 wr32(IGC_TXDCTL(0), 0);
891
892 /* Program the Transmit Control Register */
893 tctl = rd32(IGC_TCTL);
894 tctl &= ~IGC_TCTL_CT;
895 tctl |= IGC_TCTL_PSP | IGC_TCTL_RTLC |
896 (IGC_COLLISION_THRESHOLD << IGC_CT_SHIFT);
897
898 /* Enable transmits */
899 tctl |= IGC_TCTL_EN;
900
901 wr32(IGC_TCTL, tctl);
902 }
903
904 /**
905 * igc_set_mac_filter_hw() - Set MAC address filter in hardware
906 * @adapter: Pointer to adapter where the filter should be set
907 * @index: Filter index
908 * @type: MAC address filter type (source or destination)
909 * @addr: MAC address
910 * @queue: If non-negative, queue assignment feature is enabled and frames
911 * matching the filter are enqueued onto 'queue'. Otherwise, queue
912 * assignment is disabled.
913 */
igc_set_mac_filter_hw(struct igc_adapter * adapter,int index,enum igc_mac_filter_type type,const u8 * addr,int queue)914 static void igc_set_mac_filter_hw(struct igc_adapter *adapter, int index,
915 enum igc_mac_filter_type type,
916 const u8 *addr, int queue)
917 {
918 struct net_device *dev = adapter->netdev;
919 struct igc_hw *hw = &adapter->hw;
920 u32 ral, rah;
921
922 if (WARN_ON(index >= hw->mac.rar_entry_count))
923 return;
924
925 ral = le32_to_cpup((__le32 *)(addr));
926 rah = le16_to_cpup((__le16 *)(addr + 4));
927
928 if (type == IGC_MAC_FILTER_TYPE_SRC) {
929 rah &= ~IGC_RAH_ASEL_MASK;
930 rah |= IGC_RAH_ASEL_SRC_ADDR;
931 }
932
933 if (queue >= 0) {
934 rah &= ~IGC_RAH_QSEL_MASK;
935 rah |= (queue << IGC_RAH_QSEL_SHIFT);
936 rah |= IGC_RAH_QSEL_ENABLE;
937 }
938
939 rah |= IGC_RAH_AV;
940
941 wr32(IGC_RAL(index), ral);
942 wr32(IGC_RAH(index), rah);
943
944 netdev_dbg(dev, "MAC address filter set in HW: index %d", index);
945 }
946
947 /**
948 * igc_clear_mac_filter_hw() - Clear MAC address filter in hardware
949 * @adapter: Pointer to adapter where the filter should be cleared
950 * @index: Filter index
951 */
igc_clear_mac_filter_hw(struct igc_adapter * adapter,int index)952 static void igc_clear_mac_filter_hw(struct igc_adapter *adapter, int index)
953 {
954 struct net_device *dev = adapter->netdev;
955 struct igc_hw *hw = &adapter->hw;
956
957 if (WARN_ON(index >= hw->mac.rar_entry_count))
958 return;
959
960 wr32(IGC_RAL(index), 0);
961 wr32(IGC_RAH(index), 0);
962
963 netdev_dbg(dev, "MAC address filter cleared in HW: index %d", index);
964 }
965
966 /* Set default MAC address for the PF in the first RAR entry */
igc_set_default_mac_filter(struct igc_adapter * adapter)967 static void igc_set_default_mac_filter(struct igc_adapter *adapter)
968 {
969 struct net_device *dev = adapter->netdev;
970 u8 *addr = adapter->hw.mac.addr;
971
972 netdev_dbg(dev, "Set default MAC address filter: address %pM", addr);
973
974 igc_set_mac_filter_hw(adapter, 0, IGC_MAC_FILTER_TYPE_DST, addr, -1);
975 }
976
977 /**
978 * igc_set_mac - Change the Ethernet Address of the NIC
979 * @netdev: network interface device structure
980 * @p: pointer to an address structure
981 *
982 * Returns 0 on success, negative on failure
983 */
igc_set_mac(struct net_device * netdev,void * p)984 static int igc_set_mac(struct net_device *netdev, void *p)
985 {
986 struct igc_adapter *adapter = netdev_priv(netdev);
987 struct igc_hw *hw = &adapter->hw;
988 struct sockaddr *addr = p;
989
990 if (!is_valid_ether_addr(addr->sa_data))
991 return -EADDRNOTAVAIL;
992
993 eth_hw_addr_set(netdev, addr->sa_data);
994 memcpy(hw->mac.addr, addr->sa_data, netdev->addr_len);
995
996 /* set the correct pool for the new PF MAC address in entry 0 */
997 igc_set_default_mac_filter(adapter);
998
999 return 0;
1000 }
1001
1002 /**
1003 * igc_write_mc_addr_list - write multicast addresses to MTA
1004 * @netdev: network interface device structure
1005 *
1006 * Writes multicast address list to the MTA hash table.
1007 * Returns: -ENOMEM on failure
1008 * 0 on no addresses written
1009 * X on writing X addresses to MTA
1010 **/
igc_write_mc_addr_list(struct net_device * netdev)1011 static int igc_write_mc_addr_list(struct net_device *netdev)
1012 {
1013 struct igc_adapter *adapter = netdev_priv(netdev);
1014 struct igc_hw *hw = &adapter->hw;
1015 struct netdev_hw_addr *ha;
1016 u8 *mta_list;
1017 int i;
1018
1019 if (netdev_mc_empty(netdev)) {
1020 /* nothing to program, so clear mc list */
1021 igc_update_mc_addr_list(hw, NULL, 0);
1022 return 0;
1023 }
1024
1025 mta_list = kcalloc(netdev_mc_count(netdev), 6, GFP_ATOMIC);
1026 if (!mta_list)
1027 return -ENOMEM;
1028
1029 /* The shared function expects a packed array of only addresses. */
1030 i = 0;
1031 netdev_for_each_mc_addr(ha, netdev)
1032 memcpy(mta_list + (i++ * ETH_ALEN), ha->addr, ETH_ALEN);
1033
1034 igc_update_mc_addr_list(hw, mta_list, i);
1035 kfree(mta_list);
1036
1037 return netdev_mc_count(netdev);
1038 }
1039
igc_tx_launchtime(struct igc_ring * ring,ktime_t txtime,bool * first_flag,bool * insert_empty)1040 static __le32 igc_tx_launchtime(struct igc_ring *ring, ktime_t txtime,
1041 bool *first_flag, bool *insert_empty)
1042 {
1043 struct igc_adapter *adapter = netdev_priv(ring->netdev);
1044 ktime_t cycle_time = adapter->cycle_time;
1045 ktime_t base_time = adapter->base_time;
1046 ktime_t now = ktime_get_clocktai();
1047 ktime_t baset_est, end_of_cycle;
1048 s32 launchtime;
1049 s64 n;
1050
1051 n = div64_s64(ktime_sub_ns(now, base_time), cycle_time);
1052
1053 baset_est = ktime_add_ns(base_time, cycle_time * (n));
1054 end_of_cycle = ktime_add_ns(baset_est, cycle_time);
1055
1056 if (ktime_compare(txtime, end_of_cycle) >= 0) {
1057 if (baset_est != ring->last_ff_cycle) {
1058 *first_flag = true;
1059 ring->last_ff_cycle = baset_est;
1060
1061 if (ktime_compare(end_of_cycle, ring->last_tx_cycle) > 0)
1062 *insert_empty = true;
1063 }
1064 }
1065
1066 /* Introducing a window at end of cycle on which packets
1067 * potentially not honor launchtime. Window of 5us chosen
1068 * considering software update the tail pointer and packets
1069 * are dma'ed to packet buffer.
1070 */
1071 if ((ktime_sub_ns(end_of_cycle, now) < 5 * NSEC_PER_USEC))
1072 netdev_warn(ring->netdev, "Packet with txtime=%llu may not be honoured\n",
1073 txtime);
1074
1075 ring->last_tx_cycle = end_of_cycle;
1076
1077 launchtime = ktime_sub_ns(txtime, baset_est);
1078 if (launchtime > 0)
1079 div_s64_rem(launchtime, cycle_time, &launchtime);
1080 else
1081 launchtime = 0;
1082
1083 return cpu_to_le32(launchtime);
1084 }
1085
igc_init_empty_frame(struct igc_ring * ring,struct igc_tx_buffer * buffer,struct sk_buff * skb)1086 static int igc_init_empty_frame(struct igc_ring *ring,
1087 struct igc_tx_buffer *buffer,
1088 struct sk_buff *skb)
1089 {
1090 unsigned int size;
1091 dma_addr_t dma;
1092
1093 size = skb_headlen(skb);
1094
1095 dma = dma_map_single(ring->dev, skb->data, size, DMA_TO_DEVICE);
1096 if (dma_mapping_error(ring->dev, dma)) {
1097 net_err_ratelimited("%s: DMA mapping error for empty frame\n",
1098 netdev_name(ring->netdev));
1099 return -ENOMEM;
1100 }
1101
1102 buffer->type = IGC_TX_BUFFER_TYPE_SKB;
1103 buffer->skb = skb;
1104 buffer->protocol = 0;
1105 buffer->bytecount = skb->len;
1106 buffer->gso_segs = 1;
1107 buffer->time_stamp = jiffies;
1108 dma_unmap_len_set(buffer, len, skb->len);
1109 dma_unmap_addr_set(buffer, dma, dma);
1110
1111 return 0;
1112 }
1113
igc_init_tx_empty_descriptor(struct igc_ring * ring,struct sk_buff * skb,struct igc_tx_buffer * first)1114 static void igc_init_tx_empty_descriptor(struct igc_ring *ring,
1115 struct sk_buff *skb,
1116 struct igc_tx_buffer *first)
1117 {
1118 union igc_adv_tx_desc *desc;
1119 u32 cmd_type, olinfo_status;
1120
1121 cmd_type = IGC_ADVTXD_DTYP_DATA | IGC_ADVTXD_DCMD_DEXT |
1122 IGC_ADVTXD_DCMD_IFCS | IGC_TXD_DCMD |
1123 first->bytecount;
1124 olinfo_status = first->bytecount << IGC_ADVTXD_PAYLEN_SHIFT;
1125
1126 desc = IGC_TX_DESC(ring, ring->next_to_use);
1127 desc->read.cmd_type_len = cpu_to_le32(cmd_type);
1128 desc->read.olinfo_status = cpu_to_le32(olinfo_status);
1129 desc->read.buffer_addr = cpu_to_le64(dma_unmap_addr(first, dma));
1130
1131 netdev_tx_sent_queue(txring_txq(ring), skb->len);
1132
1133 first->next_to_watch = desc;
1134
1135 ring->next_to_use++;
1136 if (ring->next_to_use == ring->count)
1137 ring->next_to_use = 0;
1138 }
1139
1140 #define IGC_EMPTY_FRAME_SIZE 60
1141
igc_tx_ctxtdesc(struct igc_ring * tx_ring,__le32 launch_time,bool first_flag,u32 vlan_macip_lens,u32 type_tucmd,u32 mss_l4len_idx)1142 static void igc_tx_ctxtdesc(struct igc_ring *tx_ring,
1143 __le32 launch_time, bool first_flag,
1144 u32 vlan_macip_lens, u32 type_tucmd,
1145 u32 mss_l4len_idx)
1146 {
1147 struct igc_adv_tx_context_desc *context_desc;
1148 u16 i = tx_ring->next_to_use;
1149
1150 context_desc = IGC_TX_CTXTDESC(tx_ring, i);
1151
1152 i++;
1153 tx_ring->next_to_use = (i < tx_ring->count) ? i : 0;
1154
1155 /* set bits to identify this as an advanced context descriptor */
1156 type_tucmd |= IGC_TXD_CMD_DEXT | IGC_ADVTXD_DTYP_CTXT;
1157
1158 /* For i225, context index must be unique per ring. */
1159 if (test_bit(IGC_RING_FLAG_TX_CTX_IDX, &tx_ring->flags))
1160 mss_l4len_idx |= tx_ring->reg_idx << 4;
1161
1162 if (first_flag)
1163 mss_l4len_idx |= IGC_ADVTXD_TSN_CNTX_FIRST;
1164
1165 context_desc->vlan_macip_lens = cpu_to_le32(vlan_macip_lens);
1166 context_desc->type_tucmd_mlhl = cpu_to_le32(type_tucmd);
1167 context_desc->mss_l4len_idx = cpu_to_le32(mss_l4len_idx);
1168 context_desc->launch_time = launch_time;
1169 }
1170
igc_tx_csum(struct igc_ring * tx_ring,struct igc_tx_buffer * first,__le32 launch_time,bool first_flag)1171 static void igc_tx_csum(struct igc_ring *tx_ring, struct igc_tx_buffer *first,
1172 __le32 launch_time, bool first_flag)
1173 {
1174 struct sk_buff *skb = first->skb;
1175 u32 vlan_macip_lens = 0;
1176 u32 type_tucmd = 0;
1177
1178 if (skb->ip_summed != CHECKSUM_PARTIAL) {
1179 csum_failed:
1180 if (!(first->tx_flags & IGC_TX_FLAGS_VLAN) &&
1181 !tx_ring->launchtime_enable)
1182 return;
1183 goto no_csum;
1184 }
1185
1186 switch (skb->csum_offset) {
1187 case offsetof(struct tcphdr, check):
1188 type_tucmd = IGC_ADVTXD_TUCMD_L4T_TCP;
1189 fallthrough;
1190 case offsetof(struct udphdr, check):
1191 break;
1192 case offsetof(struct sctphdr, checksum):
1193 /* validate that this is actually an SCTP request */
1194 if (skb_csum_is_sctp(skb)) {
1195 type_tucmd = IGC_ADVTXD_TUCMD_L4T_SCTP;
1196 break;
1197 }
1198 fallthrough;
1199 default:
1200 skb_checksum_help(skb);
1201 goto csum_failed;
1202 }
1203
1204 /* update TX checksum flag */
1205 first->tx_flags |= IGC_TX_FLAGS_CSUM;
1206 vlan_macip_lens = skb_checksum_start_offset(skb) -
1207 skb_network_offset(skb);
1208 no_csum:
1209 vlan_macip_lens |= skb_network_offset(skb) << IGC_ADVTXD_MACLEN_SHIFT;
1210 vlan_macip_lens |= first->tx_flags & IGC_TX_FLAGS_VLAN_MASK;
1211
1212 igc_tx_ctxtdesc(tx_ring, launch_time, first_flag,
1213 vlan_macip_lens, type_tucmd, 0);
1214 }
1215
__igc_maybe_stop_tx(struct igc_ring * tx_ring,const u16 size)1216 static int __igc_maybe_stop_tx(struct igc_ring *tx_ring, const u16 size)
1217 {
1218 struct net_device *netdev = tx_ring->netdev;
1219
1220 netif_stop_subqueue(netdev, tx_ring->queue_index);
1221
1222 /* memory barriier comment */
1223 smp_mb();
1224
1225 /* We need to check again in a case another CPU has just
1226 * made room available.
1227 */
1228 if (igc_desc_unused(tx_ring) < size)
1229 return -EBUSY;
1230
1231 /* A reprieve! */
1232 netif_wake_subqueue(netdev, tx_ring->queue_index);
1233
1234 u64_stats_update_begin(&tx_ring->tx_syncp2);
1235 tx_ring->tx_stats.restart_queue2++;
1236 u64_stats_update_end(&tx_ring->tx_syncp2);
1237
1238 return 0;
1239 }
1240
igc_maybe_stop_tx(struct igc_ring * tx_ring,const u16 size)1241 static inline int igc_maybe_stop_tx(struct igc_ring *tx_ring, const u16 size)
1242 {
1243 if (igc_desc_unused(tx_ring) >= size)
1244 return 0;
1245 return __igc_maybe_stop_tx(tx_ring, size);
1246 }
1247
1248 #define IGC_SET_FLAG(_input, _flag, _result) \
1249 (((_flag) <= (_result)) ? \
1250 ((u32)((_input) & (_flag)) * ((_result) / (_flag))) : \
1251 ((u32)((_input) & (_flag)) / ((_flag) / (_result))))
1252
igc_tx_cmd_type(struct sk_buff * skb,u32 tx_flags)1253 static u32 igc_tx_cmd_type(struct sk_buff *skb, u32 tx_flags)
1254 {
1255 /* set type for advanced descriptor with frame checksum insertion */
1256 u32 cmd_type = IGC_ADVTXD_DTYP_DATA |
1257 IGC_ADVTXD_DCMD_DEXT |
1258 IGC_ADVTXD_DCMD_IFCS;
1259
1260 /* set HW vlan bit if vlan is present */
1261 cmd_type |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_VLAN,
1262 IGC_ADVTXD_DCMD_VLE);
1263
1264 /* set segmentation bits for TSO */
1265 cmd_type |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_TSO,
1266 (IGC_ADVTXD_DCMD_TSE));
1267
1268 /* set timestamp bit if present, will select the register set
1269 * based on the _TSTAMP(_X) bit.
1270 */
1271 cmd_type |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_TSTAMP,
1272 (IGC_ADVTXD_MAC_TSTAMP));
1273
1274 cmd_type |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_TSTAMP_1,
1275 (IGC_ADVTXD_TSTAMP_REG_1));
1276
1277 cmd_type |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_TSTAMP_2,
1278 (IGC_ADVTXD_TSTAMP_REG_2));
1279
1280 cmd_type |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_TSTAMP_3,
1281 (IGC_ADVTXD_TSTAMP_REG_3));
1282
1283 /* insert frame checksum */
1284 cmd_type ^= IGC_SET_FLAG(skb->no_fcs, 1, IGC_ADVTXD_DCMD_IFCS);
1285
1286 return cmd_type;
1287 }
1288
igc_tx_olinfo_status(struct igc_ring * tx_ring,union igc_adv_tx_desc * tx_desc,u32 tx_flags,unsigned int paylen)1289 static void igc_tx_olinfo_status(struct igc_ring *tx_ring,
1290 union igc_adv_tx_desc *tx_desc,
1291 u32 tx_flags, unsigned int paylen)
1292 {
1293 u32 olinfo_status = paylen << IGC_ADVTXD_PAYLEN_SHIFT;
1294
1295 /* insert L4 checksum */
1296 olinfo_status |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_CSUM,
1297 (IGC_TXD_POPTS_TXSM << 8));
1298
1299 /* insert IPv4 checksum */
1300 olinfo_status |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_IPV4,
1301 (IGC_TXD_POPTS_IXSM << 8));
1302
1303 /* Use the second timer (free running, in general) for the timestamp */
1304 olinfo_status |= IGC_SET_FLAG(tx_flags, IGC_TX_FLAGS_TSTAMP_TIMER_1,
1305 IGC_TXD_PTP2_TIMER_1);
1306
1307 tx_desc->read.olinfo_status = cpu_to_le32(olinfo_status);
1308 }
1309
igc_tx_map(struct igc_ring * tx_ring,struct igc_tx_buffer * first,const u8 hdr_len)1310 static int igc_tx_map(struct igc_ring *tx_ring,
1311 struct igc_tx_buffer *first,
1312 const u8 hdr_len)
1313 {
1314 struct sk_buff *skb = first->skb;
1315 struct igc_tx_buffer *tx_buffer;
1316 union igc_adv_tx_desc *tx_desc;
1317 u32 tx_flags = first->tx_flags;
1318 skb_frag_t *frag;
1319 u16 i = tx_ring->next_to_use;
1320 unsigned int data_len, size;
1321 dma_addr_t dma;
1322 u32 cmd_type;
1323
1324 cmd_type = igc_tx_cmd_type(skb, tx_flags);
1325 tx_desc = IGC_TX_DESC(tx_ring, i);
1326
1327 igc_tx_olinfo_status(tx_ring, tx_desc, tx_flags, skb->len - hdr_len);
1328
1329 size = skb_headlen(skb);
1330 data_len = skb->data_len;
1331
1332 dma = dma_map_single(tx_ring->dev, skb->data, size, DMA_TO_DEVICE);
1333
1334 tx_buffer = first;
1335
1336 for (frag = &skb_shinfo(skb)->frags[0];; frag++) {
1337 if (dma_mapping_error(tx_ring->dev, dma))
1338 goto dma_error;
1339
1340 /* record length, and DMA address */
1341 dma_unmap_len_set(tx_buffer, len, size);
1342 dma_unmap_addr_set(tx_buffer, dma, dma);
1343
1344 tx_desc->read.buffer_addr = cpu_to_le64(dma);
1345
1346 while (unlikely(size > IGC_MAX_DATA_PER_TXD)) {
1347 tx_desc->read.cmd_type_len =
1348 cpu_to_le32(cmd_type ^ IGC_MAX_DATA_PER_TXD);
1349
1350 i++;
1351 tx_desc++;
1352 if (i == tx_ring->count) {
1353 tx_desc = IGC_TX_DESC(tx_ring, 0);
1354 i = 0;
1355 }
1356 tx_desc->read.olinfo_status = 0;
1357
1358 dma += IGC_MAX_DATA_PER_TXD;
1359 size -= IGC_MAX_DATA_PER_TXD;
1360
1361 tx_desc->read.buffer_addr = cpu_to_le64(dma);
1362 }
1363
1364 if (likely(!data_len))
1365 break;
1366
1367 tx_desc->read.cmd_type_len = cpu_to_le32(cmd_type ^ size);
1368
1369 i++;
1370 tx_desc++;
1371 if (i == tx_ring->count) {
1372 tx_desc = IGC_TX_DESC(tx_ring, 0);
1373 i = 0;
1374 }
1375 tx_desc->read.olinfo_status = 0;
1376
1377 size = skb_frag_size(frag);
1378 data_len -= size;
1379
1380 dma = skb_frag_dma_map(tx_ring->dev, frag, 0,
1381 size, DMA_TO_DEVICE);
1382
1383 tx_buffer = &tx_ring->tx_buffer_info[i];
1384 }
1385
1386 /* write last descriptor with RS and EOP bits */
1387 cmd_type |= size | IGC_TXD_DCMD;
1388 tx_desc->read.cmd_type_len = cpu_to_le32(cmd_type);
1389
1390 netdev_tx_sent_queue(txring_txq(tx_ring), first->bytecount);
1391
1392 /* set the timestamp */
1393 first->time_stamp = jiffies;
1394
1395 skb_tx_timestamp(skb);
1396
1397 /* Force memory writes to complete before letting h/w know there
1398 * are new descriptors to fetch. (Only applicable for weak-ordered
1399 * memory model archs, such as IA-64).
1400 *
1401 * We also need this memory barrier to make certain all of the
1402 * status bits have been updated before next_to_watch is written.
1403 */
1404 wmb();
1405
1406 /* set next_to_watch value indicating a packet is present */
1407 first->next_to_watch = tx_desc;
1408
1409 i++;
1410 if (i == tx_ring->count)
1411 i = 0;
1412
1413 tx_ring->next_to_use = i;
1414
1415 /* Make sure there is space in the ring for the next send. */
1416 igc_maybe_stop_tx(tx_ring, DESC_NEEDED);
1417
1418 if (netif_xmit_stopped(txring_txq(tx_ring)) || !netdev_xmit_more()) {
1419 writel(i, tx_ring->tail);
1420 }
1421
1422 return 0;
1423 dma_error:
1424 netdev_err(tx_ring->netdev, "TX DMA map failed\n");
1425 tx_buffer = &tx_ring->tx_buffer_info[i];
1426
1427 /* clear dma mappings for failed tx_buffer_info map */
1428 while (tx_buffer != first) {
1429 if (dma_unmap_len(tx_buffer, len))
1430 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
1431
1432 if (i-- == 0)
1433 i += tx_ring->count;
1434 tx_buffer = &tx_ring->tx_buffer_info[i];
1435 }
1436
1437 if (dma_unmap_len(tx_buffer, len))
1438 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
1439
1440 dev_kfree_skb_any(tx_buffer->skb);
1441 tx_buffer->skb = NULL;
1442
1443 tx_ring->next_to_use = i;
1444
1445 return -1;
1446 }
1447
igc_tso(struct igc_ring * tx_ring,struct igc_tx_buffer * first,__le32 launch_time,bool first_flag,u8 * hdr_len)1448 static int igc_tso(struct igc_ring *tx_ring,
1449 struct igc_tx_buffer *first,
1450 __le32 launch_time, bool first_flag,
1451 u8 *hdr_len)
1452 {
1453 u32 vlan_macip_lens, type_tucmd, mss_l4len_idx;
1454 struct sk_buff *skb = first->skb;
1455 union {
1456 struct iphdr *v4;
1457 struct ipv6hdr *v6;
1458 unsigned char *hdr;
1459 } ip;
1460 union {
1461 struct tcphdr *tcp;
1462 struct udphdr *udp;
1463 unsigned char *hdr;
1464 } l4;
1465 u32 paylen, l4_offset;
1466 int err;
1467
1468 if (skb->ip_summed != CHECKSUM_PARTIAL)
1469 return 0;
1470
1471 if (!skb_is_gso(skb))
1472 return 0;
1473
1474 err = skb_cow_head(skb, 0);
1475 if (err < 0)
1476 return err;
1477
1478 ip.hdr = skb_network_header(skb);
1479 l4.hdr = skb_checksum_start(skb);
1480
1481 /* ADV DTYP TUCMD MKRLOC/ISCSIHEDLEN */
1482 type_tucmd = IGC_ADVTXD_TUCMD_L4T_TCP;
1483
1484 /* initialize outer IP header fields */
1485 if (ip.v4->version == 4) {
1486 unsigned char *csum_start = skb_checksum_start(skb);
1487 unsigned char *trans_start = ip.hdr + (ip.v4->ihl * 4);
1488
1489 /* IP header will have to cancel out any data that
1490 * is not a part of the outer IP header
1491 */
1492 ip.v4->check = csum_fold(csum_partial(trans_start,
1493 csum_start - trans_start,
1494 0));
1495 type_tucmd |= IGC_ADVTXD_TUCMD_IPV4;
1496
1497 ip.v4->tot_len = 0;
1498 first->tx_flags |= IGC_TX_FLAGS_TSO |
1499 IGC_TX_FLAGS_CSUM |
1500 IGC_TX_FLAGS_IPV4;
1501 } else {
1502 ip.v6->payload_len = 0;
1503 first->tx_flags |= IGC_TX_FLAGS_TSO |
1504 IGC_TX_FLAGS_CSUM;
1505 }
1506
1507 /* determine offset of inner transport header */
1508 l4_offset = l4.hdr - skb->data;
1509
1510 /* remove payload length from inner checksum */
1511 paylen = skb->len - l4_offset;
1512 if (type_tucmd & IGC_ADVTXD_TUCMD_L4T_TCP) {
1513 /* compute length of segmentation header */
1514 *hdr_len = (l4.tcp->doff * 4) + l4_offset;
1515 csum_replace_by_diff(&l4.tcp->check,
1516 (__force __wsum)htonl(paylen));
1517 } else {
1518 /* compute length of segmentation header */
1519 *hdr_len = sizeof(*l4.udp) + l4_offset;
1520 csum_replace_by_diff(&l4.udp->check,
1521 (__force __wsum)htonl(paylen));
1522 }
1523
1524 /* update gso size and bytecount with header size */
1525 first->gso_segs = skb_shinfo(skb)->gso_segs;
1526 first->bytecount += (first->gso_segs - 1) * *hdr_len;
1527
1528 /* MSS L4LEN IDX */
1529 mss_l4len_idx = (*hdr_len - l4_offset) << IGC_ADVTXD_L4LEN_SHIFT;
1530 mss_l4len_idx |= skb_shinfo(skb)->gso_size << IGC_ADVTXD_MSS_SHIFT;
1531
1532 /* VLAN MACLEN IPLEN */
1533 vlan_macip_lens = l4.hdr - ip.hdr;
1534 vlan_macip_lens |= (ip.hdr - skb->data) << IGC_ADVTXD_MACLEN_SHIFT;
1535 vlan_macip_lens |= first->tx_flags & IGC_TX_FLAGS_VLAN_MASK;
1536
1537 igc_tx_ctxtdesc(tx_ring, launch_time, first_flag,
1538 vlan_macip_lens, type_tucmd, mss_l4len_idx);
1539
1540 return 1;
1541 }
1542
igc_request_tx_tstamp(struct igc_adapter * adapter,struct sk_buff * skb,u32 * flags)1543 static bool igc_request_tx_tstamp(struct igc_adapter *adapter, struct sk_buff *skb, u32 *flags)
1544 {
1545 int i;
1546
1547 for (i = 0; i < IGC_MAX_TX_TSTAMP_REGS; i++) {
1548 struct igc_tx_timestamp_request *tstamp = &adapter->tx_tstamp[i];
1549
1550 if (tstamp->skb)
1551 continue;
1552
1553 tstamp->skb = skb_get(skb);
1554 tstamp->start = jiffies;
1555 *flags = tstamp->flags;
1556
1557 return true;
1558 }
1559
1560 return false;
1561 }
1562
igc_insert_empty_frame(struct igc_ring * tx_ring)1563 static int igc_insert_empty_frame(struct igc_ring *tx_ring)
1564 {
1565 struct igc_tx_buffer *empty_info;
1566 struct sk_buff *empty_skb;
1567 void *data;
1568 int ret;
1569
1570 empty_info = &tx_ring->tx_buffer_info[tx_ring->next_to_use];
1571 empty_skb = alloc_skb(IGC_EMPTY_FRAME_SIZE, GFP_ATOMIC);
1572 if (unlikely(!empty_skb)) {
1573 net_err_ratelimited("%s: skb alloc error for empty frame\n",
1574 netdev_name(tx_ring->netdev));
1575 return -ENOMEM;
1576 }
1577
1578 data = skb_put(empty_skb, IGC_EMPTY_FRAME_SIZE);
1579 memset(data, 0, IGC_EMPTY_FRAME_SIZE);
1580
1581 /* Prepare DMA mapping and Tx buffer information */
1582 ret = igc_init_empty_frame(tx_ring, empty_info, empty_skb);
1583 if (unlikely(ret)) {
1584 dev_kfree_skb_any(empty_skb);
1585 return ret;
1586 }
1587
1588 /* Prepare advanced context descriptor for empty packet */
1589 igc_tx_ctxtdesc(tx_ring, 0, false, 0, 0, 0);
1590
1591 /* Prepare advanced data descriptor for empty packet */
1592 igc_init_tx_empty_descriptor(tx_ring, empty_skb, empty_info);
1593
1594 return 0;
1595 }
1596
igc_xmit_frame_ring(struct sk_buff * skb,struct igc_ring * tx_ring)1597 static netdev_tx_t igc_xmit_frame_ring(struct sk_buff *skb,
1598 struct igc_ring *tx_ring)
1599 {
1600 struct igc_adapter *adapter = netdev_priv(tx_ring->netdev);
1601 bool first_flag = false, insert_empty = false;
1602 u16 count = TXD_USE_COUNT(skb_headlen(skb));
1603 __be16 protocol = vlan_get_protocol(skb);
1604 struct igc_tx_buffer *first;
1605 __le32 launch_time = 0;
1606 u32 tx_flags = 0;
1607 unsigned short f;
1608 ktime_t txtime;
1609 u8 hdr_len = 0;
1610 int tso = 0;
1611
1612 /* need: 1 descriptor per page * PAGE_SIZE/IGC_MAX_DATA_PER_TXD,
1613 * + 1 desc for skb_headlen/IGC_MAX_DATA_PER_TXD,
1614 * + 2 desc gap to keep tail from touching head,
1615 * + 1 desc for context descriptor,
1616 * + 2 desc for inserting an empty packet for launch time,
1617 * otherwise try next time
1618 */
1619 for (f = 0; f < skb_shinfo(skb)->nr_frags; f++)
1620 count += TXD_USE_COUNT(skb_frag_size(
1621 &skb_shinfo(skb)->frags[f]));
1622
1623 if (igc_maybe_stop_tx(tx_ring, count + 5)) {
1624 /* this is a hard error */
1625 return NETDEV_TX_BUSY;
1626 }
1627
1628 if (!tx_ring->launchtime_enable)
1629 goto done;
1630
1631 txtime = skb->tstamp;
1632 skb->tstamp = ktime_set(0, 0);
1633 launch_time = igc_tx_launchtime(tx_ring, txtime, &first_flag, &insert_empty);
1634
1635 if (insert_empty) {
1636 /* Reset the launch time if the required empty frame fails to
1637 * be inserted. However, this packet is not dropped, so it
1638 * "dirties" the current Qbv cycle. This ensures that the
1639 * upcoming packet, which is scheduled in the next Qbv cycle,
1640 * does not require an empty frame. This way, the launch time
1641 * continues to function correctly despite the current failure
1642 * to insert the empty frame.
1643 */
1644 if (igc_insert_empty_frame(tx_ring))
1645 launch_time = 0;
1646 }
1647
1648 done:
1649 /* record the location of the first descriptor for this packet */
1650 first = &tx_ring->tx_buffer_info[tx_ring->next_to_use];
1651 first->type = IGC_TX_BUFFER_TYPE_SKB;
1652 first->skb = skb;
1653 first->bytecount = skb->len;
1654 first->gso_segs = 1;
1655
1656 if (adapter->qbv_transition || tx_ring->oper_gate_closed)
1657 goto out_drop;
1658
1659 if (tx_ring->max_sdu > 0 && first->bytecount > tx_ring->max_sdu) {
1660 adapter->stats.txdrop++;
1661 goto out_drop;
1662 }
1663
1664 if (unlikely(test_bit(IGC_RING_FLAG_TX_HWTSTAMP, &tx_ring->flags) &&
1665 skb_shinfo(skb)->tx_flags & SKBTX_HW_TSTAMP)) {
1666 unsigned long flags;
1667 u32 tstamp_flags;
1668
1669 spin_lock_irqsave(&adapter->ptp_tx_lock, flags);
1670 if (igc_request_tx_tstamp(adapter, skb, &tstamp_flags)) {
1671 skb_shinfo(skb)->tx_flags |= SKBTX_IN_PROGRESS;
1672 tx_flags |= IGC_TX_FLAGS_TSTAMP | tstamp_flags;
1673 if (skb->sk &&
1674 READ_ONCE(skb->sk->sk_tsflags) & SOF_TIMESTAMPING_BIND_PHC)
1675 tx_flags |= IGC_TX_FLAGS_TSTAMP_TIMER_1;
1676 } else {
1677 adapter->tx_hwtstamp_skipped++;
1678 }
1679
1680 spin_unlock_irqrestore(&adapter->ptp_tx_lock, flags);
1681 }
1682
1683 if (skb_vlan_tag_present(skb)) {
1684 tx_flags |= IGC_TX_FLAGS_VLAN;
1685 tx_flags |= (skb_vlan_tag_get(skb) << IGC_TX_FLAGS_VLAN_SHIFT);
1686 }
1687
1688 /* record initial flags and protocol */
1689 first->tx_flags = tx_flags;
1690 first->protocol = protocol;
1691
1692 /* For preemptible queue, manually pad the skb so that HW includes
1693 * padding bytes in mCRC calculation
1694 */
1695 if (tx_ring->preemptible && skb->len < ETH_ZLEN) {
1696 if (skb_padto(skb, ETH_ZLEN))
1697 goto out_drop;
1698 skb_put(skb, ETH_ZLEN - skb->len);
1699 }
1700
1701 tso = igc_tso(tx_ring, first, launch_time, first_flag, &hdr_len);
1702 if (tso < 0)
1703 goto out_drop;
1704 else if (!tso)
1705 igc_tx_csum(tx_ring, first, launch_time, first_flag);
1706
1707 igc_tx_map(tx_ring, first, hdr_len);
1708
1709 return NETDEV_TX_OK;
1710
1711 out_drop:
1712 dev_kfree_skb_any(first->skb);
1713 first->skb = NULL;
1714
1715 return NETDEV_TX_OK;
1716 }
1717
igc_tx_queue_mapping(struct igc_adapter * adapter,struct sk_buff * skb)1718 static inline struct igc_ring *igc_tx_queue_mapping(struct igc_adapter *adapter,
1719 struct sk_buff *skb)
1720 {
1721 unsigned int r_idx = skb->queue_mapping;
1722
1723 if (r_idx >= adapter->num_tx_queues)
1724 r_idx = r_idx % adapter->num_tx_queues;
1725
1726 return adapter->tx_ring[r_idx];
1727 }
1728
igc_xmit_frame(struct sk_buff * skb,struct net_device * netdev)1729 static netdev_tx_t igc_xmit_frame(struct sk_buff *skb,
1730 struct net_device *netdev)
1731 {
1732 struct igc_adapter *adapter = netdev_priv(netdev);
1733
1734 /* The minimum packet size with TCTL.PSP set is 17 so pad the skb
1735 * in order to meet this minimum size requirement.
1736 */
1737 if (skb_put_padto(skb, 17))
1738 return NETDEV_TX_OK;
1739
1740 return igc_xmit_frame_ring(skb, igc_tx_queue_mapping(adapter, skb));
1741 }
1742
igc_rx_checksum(struct igc_ring * ring,union igc_adv_rx_desc * rx_desc,struct sk_buff * skb)1743 static void igc_rx_checksum(struct igc_ring *ring,
1744 union igc_adv_rx_desc *rx_desc,
1745 struct sk_buff *skb)
1746 {
1747 skb_checksum_none_assert(skb);
1748
1749 /* Ignore Checksum bit is set */
1750 if (igc_test_staterr(rx_desc, IGC_RXD_STAT_IXSM))
1751 return;
1752
1753 /* Rx checksum disabled via ethtool */
1754 if (!(ring->netdev->features & NETIF_F_RXCSUM))
1755 return;
1756
1757 /* TCP/UDP checksum error bit is set */
1758 if (igc_test_staterr(rx_desc,
1759 IGC_RXDEXT_STATERR_L4E |
1760 IGC_RXDEXT_STATERR_IPE)) {
1761 /* work around errata with sctp packets where the TCPE aka
1762 * L4E bit is set incorrectly on 64 byte (60 byte w/o crc)
1763 * packets (aka let the stack check the crc32c)
1764 */
1765 if (!(skb->len == 60 &&
1766 test_bit(IGC_RING_FLAG_RX_SCTP_CSUM, &ring->flags))) {
1767 u64_stats_update_begin(&ring->rx_syncp);
1768 ring->rx_stats.csum_err++;
1769 u64_stats_update_end(&ring->rx_syncp);
1770 }
1771 /* let the stack verify checksum errors */
1772 return;
1773 }
1774 /* It must be a TCP or UDP packet with a valid checksum */
1775 if (igc_test_staterr(rx_desc, IGC_RXD_STAT_TCPCS |
1776 IGC_RXD_STAT_UDPCS))
1777 skb->ip_summed = CHECKSUM_UNNECESSARY;
1778
1779 netdev_dbg(ring->netdev, "cksum success: bits %08X\n",
1780 le32_to_cpu(rx_desc->wb.upper.status_error));
1781 }
1782
1783 /* Mapping HW RSS Type to enum pkt_hash_types */
1784 static const enum pkt_hash_types igc_rss_type_table[IGC_RSS_TYPE_MAX_TABLE] = {
1785 [IGC_RSS_TYPE_NO_HASH] = PKT_HASH_TYPE_L2,
1786 [IGC_RSS_TYPE_HASH_TCP_IPV4] = PKT_HASH_TYPE_L4,
1787 [IGC_RSS_TYPE_HASH_IPV4] = PKT_HASH_TYPE_L3,
1788 [IGC_RSS_TYPE_HASH_TCP_IPV6] = PKT_HASH_TYPE_L4,
1789 [IGC_RSS_TYPE_HASH_IPV6_EX] = PKT_HASH_TYPE_L3,
1790 [IGC_RSS_TYPE_HASH_IPV6] = PKT_HASH_TYPE_L3,
1791 [IGC_RSS_TYPE_HASH_TCP_IPV6_EX] = PKT_HASH_TYPE_L4,
1792 [IGC_RSS_TYPE_HASH_UDP_IPV4] = PKT_HASH_TYPE_L4,
1793 [IGC_RSS_TYPE_HASH_UDP_IPV6] = PKT_HASH_TYPE_L4,
1794 [IGC_RSS_TYPE_HASH_UDP_IPV6_EX] = PKT_HASH_TYPE_L4,
1795 [10] = PKT_HASH_TYPE_NONE, /* RSS Type above 9 "Reserved" by HW */
1796 [11] = PKT_HASH_TYPE_NONE, /* keep array sized for SW bit-mask */
1797 [12] = PKT_HASH_TYPE_NONE, /* to handle future HW revisions */
1798 [13] = PKT_HASH_TYPE_NONE,
1799 [14] = PKT_HASH_TYPE_NONE,
1800 [15] = PKT_HASH_TYPE_NONE,
1801 };
1802
igc_rx_hash(struct igc_ring * ring,union igc_adv_rx_desc * rx_desc,struct sk_buff * skb)1803 static inline void igc_rx_hash(struct igc_ring *ring,
1804 union igc_adv_rx_desc *rx_desc,
1805 struct sk_buff *skb)
1806 {
1807 if (ring->netdev->features & NETIF_F_RXHASH) {
1808 u32 rss_hash = le32_to_cpu(rx_desc->wb.lower.hi_dword.rss);
1809 u32 rss_type = igc_rss_type(rx_desc);
1810
1811 skb_set_hash(skb, rss_hash, igc_rss_type_table[rss_type]);
1812 }
1813 }
1814
igc_rx_vlan(struct igc_ring * rx_ring,union igc_adv_rx_desc * rx_desc,struct sk_buff * skb)1815 static void igc_rx_vlan(struct igc_ring *rx_ring,
1816 union igc_adv_rx_desc *rx_desc,
1817 struct sk_buff *skb)
1818 {
1819 struct net_device *dev = rx_ring->netdev;
1820 u16 vid;
1821
1822 if ((dev->features & NETIF_F_HW_VLAN_CTAG_RX) &&
1823 igc_test_staterr(rx_desc, IGC_RXD_STAT_VP)) {
1824 if (igc_test_staterr(rx_desc, IGC_RXDEXT_STATERR_LB) &&
1825 test_bit(IGC_RING_FLAG_RX_LB_VLAN_BSWAP, &rx_ring->flags))
1826 vid = be16_to_cpu((__force __be16)rx_desc->wb.upper.vlan);
1827 else
1828 vid = le16_to_cpu(rx_desc->wb.upper.vlan);
1829
1830 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), vid);
1831 }
1832 }
1833
1834 /**
1835 * igc_process_skb_fields - Populate skb header fields from Rx descriptor
1836 * @rx_ring: rx descriptor ring packet is being transacted on
1837 * @rx_desc: pointer to the EOP Rx descriptor
1838 * @skb: pointer to current skb being populated
1839 *
1840 * This function checks the ring, descriptor, and packet information in order
1841 * to populate the hash, checksum, VLAN, protocol, and other fields within the
1842 * skb.
1843 */
igc_process_skb_fields(struct igc_ring * rx_ring,union igc_adv_rx_desc * rx_desc,struct sk_buff * skb)1844 static void igc_process_skb_fields(struct igc_ring *rx_ring,
1845 union igc_adv_rx_desc *rx_desc,
1846 struct sk_buff *skb)
1847 {
1848 igc_rx_hash(rx_ring, rx_desc, skb);
1849
1850 igc_rx_checksum(rx_ring, rx_desc, skb);
1851
1852 igc_rx_vlan(rx_ring, rx_desc, skb);
1853
1854 skb_record_rx_queue(skb, rx_ring->queue_index);
1855
1856 skb->protocol = eth_type_trans(skb, rx_ring->netdev);
1857 }
1858
igc_vlan_mode(struct net_device * netdev,netdev_features_t features)1859 static void igc_vlan_mode(struct net_device *netdev, netdev_features_t features)
1860 {
1861 bool enable = !!(features & NETIF_F_HW_VLAN_CTAG_RX);
1862 struct igc_adapter *adapter = netdev_priv(netdev);
1863 struct igc_hw *hw = &adapter->hw;
1864 u32 ctrl;
1865
1866 ctrl = rd32(IGC_CTRL);
1867
1868 if (enable) {
1869 /* enable VLAN tag insert/strip */
1870 ctrl |= IGC_CTRL_VME;
1871 } else {
1872 /* disable VLAN tag insert/strip */
1873 ctrl &= ~IGC_CTRL_VME;
1874 }
1875 wr32(IGC_CTRL, ctrl);
1876 }
1877
igc_restore_vlan(struct igc_adapter * adapter)1878 static void igc_restore_vlan(struct igc_adapter *adapter)
1879 {
1880 igc_vlan_mode(adapter->netdev, adapter->netdev->features);
1881 }
1882
igc_get_rx_buffer(struct igc_ring * rx_ring,const unsigned int size,int * rx_buffer_pgcnt)1883 static struct igc_rx_buffer *igc_get_rx_buffer(struct igc_ring *rx_ring,
1884 const unsigned int size,
1885 int *rx_buffer_pgcnt)
1886 {
1887 struct igc_rx_buffer *rx_buffer;
1888
1889 rx_buffer = &rx_ring->rx_buffer_info[rx_ring->next_to_clean];
1890 *rx_buffer_pgcnt =
1891 #if (PAGE_SIZE < 8192)
1892 page_count(rx_buffer->page);
1893 #else
1894 0;
1895 #endif
1896 prefetchw(rx_buffer->page);
1897
1898 /* we are reusing so sync this buffer for CPU use */
1899 dma_sync_single_range_for_cpu(rx_ring->dev,
1900 rx_buffer->dma,
1901 rx_buffer->page_offset,
1902 size,
1903 DMA_FROM_DEVICE);
1904
1905 rx_buffer->pagecnt_bias--;
1906
1907 return rx_buffer;
1908 }
1909
igc_rx_buffer_flip(struct igc_rx_buffer * buffer,unsigned int truesize)1910 static void igc_rx_buffer_flip(struct igc_rx_buffer *buffer,
1911 unsigned int truesize)
1912 {
1913 #if (PAGE_SIZE < 8192)
1914 buffer->page_offset ^= truesize;
1915 #else
1916 buffer->page_offset += truesize;
1917 #endif
1918 }
1919
igc_get_rx_frame_truesize(struct igc_ring * ring,unsigned int size)1920 static unsigned int igc_get_rx_frame_truesize(struct igc_ring *ring,
1921 unsigned int size)
1922 {
1923 unsigned int truesize;
1924
1925 #if (PAGE_SIZE < 8192)
1926 truesize = igc_rx_pg_size(ring) / 2;
1927 #else
1928 truesize = ring_uses_build_skb(ring) ?
1929 SKB_DATA_ALIGN(sizeof(struct skb_shared_info)) +
1930 SKB_DATA_ALIGN(IGC_SKB_PAD + size) :
1931 SKB_DATA_ALIGN(size);
1932 #endif
1933 return truesize;
1934 }
1935
1936 /**
1937 * igc_add_rx_frag - Add contents of Rx buffer to sk_buff
1938 * @rx_ring: rx descriptor ring to transact packets on
1939 * @rx_buffer: buffer containing page to add
1940 * @skb: sk_buff to place the data into
1941 * @size: size of buffer to be added
1942 *
1943 * This function will add the data contained in rx_buffer->page to the skb.
1944 */
igc_add_rx_frag(struct igc_ring * rx_ring,struct igc_rx_buffer * rx_buffer,struct sk_buff * skb,unsigned int size)1945 static void igc_add_rx_frag(struct igc_ring *rx_ring,
1946 struct igc_rx_buffer *rx_buffer,
1947 struct sk_buff *skb,
1948 unsigned int size)
1949 {
1950 unsigned int truesize;
1951
1952 #if (PAGE_SIZE < 8192)
1953 truesize = igc_rx_pg_size(rx_ring) / 2;
1954 #else
1955 truesize = ring_uses_build_skb(rx_ring) ?
1956 SKB_DATA_ALIGN(IGC_SKB_PAD + size) :
1957 SKB_DATA_ALIGN(size);
1958 #endif
1959 skb_add_rx_frag(skb, skb_shinfo(skb)->nr_frags, rx_buffer->page,
1960 rx_buffer->page_offset, size, truesize);
1961
1962 igc_rx_buffer_flip(rx_buffer, truesize);
1963 }
1964
igc_build_skb(struct igc_ring * rx_ring,struct igc_rx_buffer * rx_buffer,struct xdp_buff * xdp)1965 static struct sk_buff *igc_build_skb(struct igc_ring *rx_ring,
1966 struct igc_rx_buffer *rx_buffer,
1967 struct xdp_buff *xdp)
1968 {
1969 unsigned int size = xdp->data_end - xdp->data;
1970 unsigned int truesize = igc_get_rx_frame_truesize(rx_ring, size);
1971 unsigned int metasize = xdp->data - xdp->data_meta;
1972 struct sk_buff *skb;
1973
1974 /* prefetch first cache line of first page */
1975 net_prefetch(xdp->data_meta);
1976
1977 /* build an skb around the page buffer */
1978 skb = napi_build_skb(xdp->data_hard_start, truesize);
1979 if (unlikely(!skb))
1980 return NULL;
1981
1982 /* update pointers within the skb to store the data */
1983 skb_reserve(skb, xdp->data - xdp->data_hard_start);
1984 __skb_put(skb, size);
1985 if (metasize)
1986 skb_metadata_set(skb, metasize);
1987
1988 igc_rx_buffer_flip(rx_buffer, truesize);
1989 return skb;
1990 }
1991
igc_construct_skb(struct igc_ring * rx_ring,struct igc_rx_buffer * rx_buffer,struct igc_xdp_buff * ctx)1992 static struct sk_buff *igc_construct_skb(struct igc_ring *rx_ring,
1993 struct igc_rx_buffer *rx_buffer,
1994 struct igc_xdp_buff *ctx)
1995 {
1996 struct xdp_buff *xdp = &ctx->xdp;
1997 unsigned int metasize = xdp->data - xdp->data_meta;
1998 unsigned int size = xdp->data_end - xdp->data;
1999 unsigned int truesize = igc_get_rx_frame_truesize(rx_ring, size);
2000 void *va = xdp->data;
2001 unsigned int headlen;
2002 struct sk_buff *skb;
2003
2004 /* prefetch first cache line of first page */
2005 net_prefetch(xdp->data_meta);
2006
2007 /* allocate a skb to store the frags */
2008 skb = napi_alloc_skb(&rx_ring->q_vector->napi,
2009 IGC_RX_HDR_LEN + metasize);
2010 if (unlikely(!skb))
2011 return NULL;
2012
2013 if (ctx->rx_ts) {
2014 skb_shinfo(skb)->tx_flags |= SKBTX_HW_TSTAMP_NETDEV;
2015 skb_hwtstamps(skb)->netdev_data = ctx->rx_ts;
2016 }
2017
2018 /* Determine available headroom for copy */
2019 headlen = size;
2020 if (headlen > IGC_RX_HDR_LEN)
2021 headlen = eth_get_headlen(skb->dev, va, IGC_RX_HDR_LEN);
2022
2023 /* align pull length to size of long to optimize memcpy performance */
2024 memcpy(__skb_put(skb, headlen + metasize), xdp->data_meta,
2025 ALIGN(headlen + metasize, sizeof(long)));
2026
2027 if (metasize) {
2028 skb_metadata_set(skb, metasize);
2029 __skb_pull(skb, metasize);
2030 }
2031
2032 /* update all of the pointers */
2033 size -= headlen;
2034 if (size) {
2035 skb_add_rx_frag(skb, 0, rx_buffer->page,
2036 (va + headlen) - page_address(rx_buffer->page),
2037 size, truesize);
2038 igc_rx_buffer_flip(rx_buffer, truesize);
2039 } else {
2040 rx_buffer->pagecnt_bias++;
2041 }
2042
2043 return skb;
2044 }
2045
2046 /**
2047 * igc_reuse_rx_page - page flip buffer and store it back on the ring
2048 * @rx_ring: rx descriptor ring to store buffers on
2049 * @old_buff: donor buffer to have page reused
2050 *
2051 * Synchronizes page for reuse by the adapter
2052 */
igc_reuse_rx_page(struct igc_ring * rx_ring,struct igc_rx_buffer * old_buff)2053 static void igc_reuse_rx_page(struct igc_ring *rx_ring,
2054 struct igc_rx_buffer *old_buff)
2055 {
2056 u16 nta = rx_ring->next_to_alloc;
2057 struct igc_rx_buffer *new_buff;
2058
2059 new_buff = &rx_ring->rx_buffer_info[nta];
2060
2061 /* update, and store next to alloc */
2062 nta++;
2063 rx_ring->next_to_alloc = (nta < rx_ring->count) ? nta : 0;
2064
2065 /* Transfer page from old buffer to new buffer.
2066 * Move each member individually to avoid possible store
2067 * forwarding stalls.
2068 */
2069 new_buff->dma = old_buff->dma;
2070 new_buff->page = old_buff->page;
2071 new_buff->page_offset = old_buff->page_offset;
2072 new_buff->pagecnt_bias = old_buff->pagecnt_bias;
2073 }
2074
igc_can_reuse_rx_page(struct igc_rx_buffer * rx_buffer,int rx_buffer_pgcnt)2075 static bool igc_can_reuse_rx_page(struct igc_rx_buffer *rx_buffer,
2076 int rx_buffer_pgcnt)
2077 {
2078 unsigned int pagecnt_bias = rx_buffer->pagecnt_bias;
2079 struct page *page = rx_buffer->page;
2080
2081 /* avoid re-using remote and pfmemalloc pages */
2082 if (!dev_page_is_reusable(page))
2083 return false;
2084
2085 #if (PAGE_SIZE < 8192)
2086 /* if we are only owner of page we can reuse it */
2087 if (unlikely((rx_buffer_pgcnt - pagecnt_bias) > 1))
2088 return false;
2089 #else
2090 #define IGC_LAST_OFFSET \
2091 (SKB_WITH_OVERHEAD(PAGE_SIZE) - IGC_RXBUFFER_2048)
2092
2093 if (rx_buffer->page_offset > IGC_LAST_OFFSET)
2094 return false;
2095 #endif
2096
2097 /* If we have drained the page fragment pool we need to update
2098 * the pagecnt_bias and page count so that we fully restock the
2099 * number of references the driver holds.
2100 */
2101 if (unlikely(pagecnt_bias == 1)) {
2102 page_ref_add(page, USHRT_MAX - 1);
2103 rx_buffer->pagecnt_bias = USHRT_MAX;
2104 }
2105
2106 return true;
2107 }
2108
2109 /**
2110 * igc_is_non_eop - process handling of non-EOP buffers
2111 * @rx_ring: Rx ring being processed
2112 * @rx_desc: Rx descriptor for current buffer
2113 *
2114 * This function updates next to clean. If the buffer is an EOP buffer
2115 * this function exits returning false, otherwise it will place the
2116 * sk_buff in the next buffer to be chained and return true indicating
2117 * that this is in fact a non-EOP buffer.
2118 */
igc_is_non_eop(struct igc_ring * rx_ring,union igc_adv_rx_desc * rx_desc)2119 static bool igc_is_non_eop(struct igc_ring *rx_ring,
2120 union igc_adv_rx_desc *rx_desc)
2121 {
2122 u32 ntc = rx_ring->next_to_clean + 1;
2123
2124 /* fetch, update, and store next to clean */
2125 ntc = (ntc < rx_ring->count) ? ntc : 0;
2126 rx_ring->next_to_clean = ntc;
2127
2128 prefetch(IGC_RX_DESC(rx_ring, ntc));
2129
2130 if (likely(igc_test_staterr(rx_desc, IGC_RXD_STAT_EOP)))
2131 return false;
2132
2133 return true;
2134 }
2135
2136 /**
2137 * igc_cleanup_headers - Correct corrupted or empty headers
2138 * @rx_ring: rx descriptor ring packet is being transacted on
2139 * @rx_desc: pointer to the EOP Rx descriptor
2140 * @skb: pointer to current skb being fixed
2141 *
2142 * Address the case where we are pulling data in on pages only
2143 * and as such no data is present in the skb header.
2144 *
2145 * In addition if skb is not at least 60 bytes we need to pad it so that
2146 * it is large enough to qualify as a valid Ethernet frame.
2147 *
2148 * Returns true if an error was encountered and skb was freed.
2149 */
igc_cleanup_headers(struct igc_ring * rx_ring,union igc_adv_rx_desc * rx_desc,struct sk_buff * skb)2150 static bool igc_cleanup_headers(struct igc_ring *rx_ring,
2151 union igc_adv_rx_desc *rx_desc,
2152 struct sk_buff *skb)
2153 {
2154 if (unlikely(igc_test_staterr(rx_desc, IGC_RXDEXT_STATERR_RXE))) {
2155 struct net_device *netdev = rx_ring->netdev;
2156
2157 if (!(netdev->features & NETIF_F_RXALL)) {
2158 dev_kfree_skb_any(skb);
2159 return true;
2160 }
2161 }
2162
2163 /* if eth_skb_pad returns an error the skb was freed */
2164 if (eth_skb_pad(skb))
2165 return true;
2166
2167 return false;
2168 }
2169
igc_put_rx_buffer(struct igc_ring * rx_ring,struct igc_rx_buffer * rx_buffer,int rx_buffer_pgcnt)2170 static void igc_put_rx_buffer(struct igc_ring *rx_ring,
2171 struct igc_rx_buffer *rx_buffer,
2172 int rx_buffer_pgcnt)
2173 {
2174 if (igc_can_reuse_rx_page(rx_buffer, rx_buffer_pgcnt)) {
2175 /* hand second half of page back to the ring */
2176 igc_reuse_rx_page(rx_ring, rx_buffer);
2177 } else {
2178 /* We are not reusing the buffer so unmap it and free
2179 * any references we are holding to it
2180 */
2181 dma_unmap_page_attrs(rx_ring->dev, rx_buffer->dma,
2182 igc_rx_pg_size(rx_ring), DMA_FROM_DEVICE,
2183 IGC_RX_DMA_ATTR);
2184 __page_frag_cache_drain(rx_buffer->page,
2185 rx_buffer->pagecnt_bias);
2186 }
2187
2188 /* clear contents of rx_buffer */
2189 rx_buffer->page = NULL;
2190 }
2191
igc_rx_offset(struct igc_ring * rx_ring)2192 static inline unsigned int igc_rx_offset(struct igc_ring *rx_ring)
2193 {
2194 struct igc_adapter *adapter = rx_ring->q_vector->adapter;
2195
2196 if (ring_uses_build_skb(rx_ring))
2197 return IGC_SKB_PAD;
2198 if (igc_xdp_is_enabled(adapter))
2199 return XDP_PACKET_HEADROOM;
2200
2201 return 0;
2202 }
2203
igc_alloc_mapped_page(struct igc_ring * rx_ring,struct igc_rx_buffer * bi)2204 static bool igc_alloc_mapped_page(struct igc_ring *rx_ring,
2205 struct igc_rx_buffer *bi)
2206 {
2207 struct page *page = bi->page;
2208 dma_addr_t dma;
2209
2210 /* since we are recycling buffers we should seldom need to alloc */
2211 if (likely(page))
2212 return true;
2213
2214 /* alloc new page for storage */
2215 page = dev_alloc_pages(igc_rx_pg_order(rx_ring));
2216 if (unlikely(!page)) {
2217 rx_ring->rx_stats.alloc_failed++;
2218 set_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &rx_ring->flags);
2219 return false;
2220 }
2221
2222 /* map page for use */
2223 dma = dma_map_page_attrs(rx_ring->dev, page, 0,
2224 igc_rx_pg_size(rx_ring),
2225 DMA_FROM_DEVICE,
2226 IGC_RX_DMA_ATTR);
2227
2228 /* if mapping failed free memory back to system since
2229 * there isn't much point in holding memory we can't use
2230 */
2231 if (dma_mapping_error(rx_ring->dev, dma)) {
2232 __free_page(page);
2233
2234 rx_ring->rx_stats.alloc_failed++;
2235 set_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &rx_ring->flags);
2236 return false;
2237 }
2238
2239 bi->dma = dma;
2240 bi->page = page;
2241 bi->page_offset = igc_rx_offset(rx_ring);
2242 page_ref_add(page, USHRT_MAX - 1);
2243 bi->pagecnt_bias = USHRT_MAX;
2244
2245 return true;
2246 }
2247
2248 /**
2249 * igc_alloc_rx_buffers - Replace used receive buffers; packet split
2250 * @rx_ring: rx descriptor ring
2251 * @cleaned_count: number of buffers to clean
2252 */
igc_alloc_rx_buffers(struct igc_ring * rx_ring,u16 cleaned_count)2253 static void igc_alloc_rx_buffers(struct igc_ring *rx_ring, u16 cleaned_count)
2254 {
2255 union igc_adv_rx_desc *rx_desc;
2256 u16 i = rx_ring->next_to_use;
2257 struct igc_rx_buffer *bi;
2258 u16 bufsz;
2259
2260 /* nothing to do */
2261 if (!cleaned_count)
2262 return;
2263
2264 rx_desc = IGC_RX_DESC(rx_ring, i);
2265 bi = &rx_ring->rx_buffer_info[i];
2266 i -= rx_ring->count;
2267
2268 bufsz = igc_rx_bufsz(rx_ring);
2269
2270 do {
2271 if (!igc_alloc_mapped_page(rx_ring, bi))
2272 break;
2273
2274 /* sync the buffer for use by the device */
2275 dma_sync_single_range_for_device(rx_ring->dev, bi->dma,
2276 bi->page_offset, bufsz,
2277 DMA_FROM_DEVICE);
2278
2279 /* Refresh the desc even if buffer_addrs didn't change
2280 * because each write-back erases this info.
2281 */
2282 rx_desc->read.pkt_addr = cpu_to_le64(bi->dma + bi->page_offset);
2283
2284 rx_desc++;
2285 bi++;
2286 i++;
2287 if (unlikely(!i)) {
2288 rx_desc = IGC_RX_DESC(rx_ring, 0);
2289 bi = rx_ring->rx_buffer_info;
2290 i -= rx_ring->count;
2291 }
2292
2293 /* clear the length for the next_to_use descriptor */
2294 rx_desc->wb.upper.length = 0;
2295
2296 cleaned_count--;
2297 } while (cleaned_count);
2298
2299 i += rx_ring->count;
2300
2301 if (rx_ring->next_to_use != i) {
2302 /* record the next descriptor to use */
2303 rx_ring->next_to_use = i;
2304
2305 /* update next to alloc since we have filled the ring */
2306 rx_ring->next_to_alloc = i;
2307
2308 /* Force memory writes to complete before letting h/w
2309 * know there are new descriptors to fetch. (Only
2310 * applicable for weak-ordered memory model archs,
2311 * such as IA-64).
2312 */
2313 wmb();
2314 writel(i, rx_ring->tail);
2315 }
2316 }
2317
igc_alloc_rx_buffers_zc(struct igc_ring * ring,u16 count)2318 static bool igc_alloc_rx_buffers_zc(struct igc_ring *ring, u16 count)
2319 {
2320 union igc_adv_rx_desc *desc;
2321 u16 i = ring->next_to_use;
2322 struct igc_rx_buffer *bi;
2323 dma_addr_t dma;
2324 bool ok = true;
2325
2326 if (!count)
2327 return ok;
2328
2329 XSK_CHECK_PRIV_TYPE(struct igc_xdp_buff);
2330
2331 desc = IGC_RX_DESC(ring, i);
2332 bi = &ring->rx_buffer_info[i];
2333 i -= ring->count;
2334
2335 do {
2336 bi->xdp = xsk_buff_alloc(ring->xsk_pool);
2337 if (!bi->xdp) {
2338 ok = false;
2339 break;
2340 }
2341
2342 dma = xsk_buff_xdp_get_dma(bi->xdp);
2343 desc->read.pkt_addr = cpu_to_le64(dma);
2344
2345 desc++;
2346 bi++;
2347 i++;
2348 if (unlikely(!i)) {
2349 desc = IGC_RX_DESC(ring, 0);
2350 bi = ring->rx_buffer_info;
2351 i -= ring->count;
2352 }
2353
2354 /* Clear the length for the next_to_use descriptor. */
2355 desc->wb.upper.length = 0;
2356
2357 count--;
2358 } while (count);
2359
2360 i += ring->count;
2361
2362 if (ring->next_to_use != i) {
2363 ring->next_to_use = i;
2364
2365 /* Force memory writes to complete before letting h/w
2366 * know there are new descriptors to fetch. (Only
2367 * applicable for weak-ordered memory model archs,
2368 * such as IA-64).
2369 */
2370 wmb();
2371 writel(i, ring->tail);
2372 }
2373
2374 return ok;
2375 }
2376
2377 /* This function requires __netif_tx_lock is held by the caller. */
igc_xdp_init_tx_descriptor(struct igc_ring * ring,struct xdp_frame * xdpf)2378 static int igc_xdp_init_tx_descriptor(struct igc_ring *ring,
2379 struct xdp_frame *xdpf)
2380 {
2381 struct skb_shared_info *sinfo = xdp_get_shared_info_from_frame(xdpf);
2382 u8 nr_frags = unlikely(xdp_frame_has_frags(xdpf)) ? sinfo->nr_frags : 0;
2383 u16 count, index = ring->next_to_use;
2384 struct igc_tx_buffer *head = &ring->tx_buffer_info[index];
2385 struct igc_tx_buffer *buffer = head;
2386 union igc_adv_tx_desc *desc = IGC_TX_DESC(ring, index);
2387 u32 olinfo_status, len = xdpf->len, cmd_type;
2388 void *data = xdpf->data;
2389 u16 i;
2390
2391 count = TXD_USE_COUNT(len);
2392 for (i = 0; i < nr_frags; i++)
2393 count += TXD_USE_COUNT(skb_frag_size(&sinfo->frags[i]));
2394
2395 if (igc_maybe_stop_tx(ring, count + 3)) {
2396 /* this is a hard error */
2397 return -EBUSY;
2398 }
2399
2400 i = 0;
2401 head->bytecount = xdp_get_frame_len(xdpf);
2402 head->type = IGC_TX_BUFFER_TYPE_XDP;
2403 head->gso_segs = 1;
2404 head->xdpf = xdpf;
2405
2406 olinfo_status = head->bytecount << IGC_ADVTXD_PAYLEN_SHIFT;
2407 desc->read.olinfo_status = cpu_to_le32(olinfo_status);
2408
2409 for (;;) {
2410 dma_addr_t dma;
2411
2412 dma = dma_map_single(ring->dev, data, len, DMA_TO_DEVICE);
2413 if (dma_mapping_error(ring->dev, dma)) {
2414 netdev_err_once(ring->netdev,
2415 "Failed to map DMA for TX\n");
2416 goto unmap;
2417 }
2418
2419 dma_unmap_len_set(buffer, len, len);
2420 dma_unmap_addr_set(buffer, dma, dma);
2421
2422 cmd_type = IGC_ADVTXD_DTYP_DATA | IGC_ADVTXD_DCMD_DEXT |
2423 IGC_ADVTXD_DCMD_IFCS | len;
2424
2425 desc->read.cmd_type_len = cpu_to_le32(cmd_type);
2426 desc->read.buffer_addr = cpu_to_le64(dma);
2427
2428 buffer->protocol = 0;
2429
2430 if (++index == ring->count)
2431 index = 0;
2432
2433 if (i == nr_frags)
2434 break;
2435
2436 buffer = &ring->tx_buffer_info[index];
2437 desc = IGC_TX_DESC(ring, index);
2438 desc->read.olinfo_status = 0;
2439
2440 data = skb_frag_address(&sinfo->frags[i]);
2441 len = skb_frag_size(&sinfo->frags[i]);
2442 i++;
2443 }
2444 desc->read.cmd_type_len |= cpu_to_le32(IGC_TXD_DCMD);
2445
2446 netdev_tx_sent_queue(txring_txq(ring), head->bytecount);
2447 /* set the timestamp */
2448 head->time_stamp = jiffies;
2449 /* set next_to_watch value indicating a packet is present */
2450 head->next_to_watch = desc;
2451 ring->next_to_use = index;
2452
2453 return 0;
2454
2455 unmap:
2456 for (;;) {
2457 buffer = &ring->tx_buffer_info[index];
2458 if (dma_unmap_len(buffer, len))
2459 dma_unmap_page(ring->dev,
2460 dma_unmap_addr(buffer, dma),
2461 dma_unmap_len(buffer, len),
2462 DMA_TO_DEVICE);
2463 dma_unmap_len_set(buffer, len, 0);
2464 if (buffer == head)
2465 break;
2466
2467 if (!index)
2468 index += ring->count;
2469 index--;
2470 }
2471
2472 return -ENOMEM;
2473 }
2474
igc_get_tx_ring(struct igc_adapter * adapter,int cpu)2475 struct igc_ring *igc_get_tx_ring(struct igc_adapter *adapter, int cpu)
2476 {
2477 int index = cpu;
2478
2479 if (unlikely(index < 0))
2480 index = 0;
2481
2482 while (index >= adapter->num_tx_queues)
2483 index -= adapter->num_tx_queues;
2484
2485 return adapter->tx_ring[index];
2486 }
2487
igc_xdp_xmit_back(struct igc_adapter * adapter,struct xdp_buff * xdp)2488 static int igc_xdp_xmit_back(struct igc_adapter *adapter, struct xdp_buff *xdp)
2489 {
2490 struct xdp_frame *xdpf = xdp_convert_buff_to_frame(xdp);
2491 int cpu = smp_processor_id();
2492 struct netdev_queue *nq;
2493 struct igc_ring *ring;
2494 int res;
2495
2496 if (unlikely(!xdpf))
2497 return -EFAULT;
2498
2499 ring = igc_get_tx_ring(adapter, cpu);
2500 nq = txring_txq(ring);
2501
2502 __netif_tx_lock(nq, cpu);
2503 /* Avoid transmit queue timeout since we share it with the slow path */
2504 txq_trans_cond_update(nq);
2505 res = igc_xdp_init_tx_descriptor(ring, xdpf);
2506 __netif_tx_unlock(nq);
2507 return res;
2508 }
2509
2510 /* This function assumes rcu_read_lock() is held by the caller. */
__igc_xdp_run_prog(struct igc_adapter * adapter,struct bpf_prog * prog,struct xdp_buff * xdp)2511 static int __igc_xdp_run_prog(struct igc_adapter *adapter,
2512 struct bpf_prog *prog,
2513 struct xdp_buff *xdp)
2514 {
2515 u32 act = bpf_prog_run_xdp(prog, xdp);
2516
2517 switch (act) {
2518 case XDP_PASS:
2519 return IGC_XDP_PASS;
2520 case XDP_TX:
2521 if (igc_xdp_xmit_back(adapter, xdp) < 0)
2522 goto out_failure;
2523 return IGC_XDP_TX;
2524 case XDP_REDIRECT:
2525 if (xdp_do_redirect(adapter->netdev, xdp, prog) < 0)
2526 goto out_failure;
2527 return IGC_XDP_REDIRECT;
2528 break;
2529 default:
2530 bpf_warn_invalid_xdp_action(adapter->netdev, prog, act);
2531 fallthrough;
2532 case XDP_ABORTED:
2533 out_failure:
2534 trace_xdp_exception(adapter->netdev, prog, act);
2535 fallthrough;
2536 case XDP_DROP:
2537 return IGC_XDP_CONSUMED;
2538 }
2539 }
2540
igc_xdp_run_prog(struct igc_adapter * adapter,struct xdp_buff * xdp)2541 static int igc_xdp_run_prog(struct igc_adapter *adapter, struct xdp_buff *xdp)
2542 {
2543 struct bpf_prog *prog;
2544 int res;
2545
2546 prog = READ_ONCE(adapter->xdp_prog);
2547 if (!prog) {
2548 res = IGC_XDP_PASS;
2549 goto out;
2550 }
2551
2552 res = __igc_xdp_run_prog(adapter, prog, xdp);
2553
2554 out:
2555 return res;
2556 }
2557
2558 /* This function assumes __netif_tx_lock is held by the caller. */
igc_flush_tx_descriptors(struct igc_ring * ring)2559 void igc_flush_tx_descriptors(struct igc_ring *ring)
2560 {
2561 /* Once tail pointer is updated, hardware can fetch the descriptors
2562 * any time so we issue a write membar here to ensure all memory
2563 * writes are complete before the tail pointer is updated.
2564 */
2565 wmb();
2566 writel(ring->next_to_use, ring->tail);
2567 }
2568
igc_finalize_xdp(struct igc_adapter * adapter,int status)2569 static void igc_finalize_xdp(struct igc_adapter *adapter, int status)
2570 {
2571 int cpu = smp_processor_id();
2572 struct netdev_queue *nq;
2573 struct igc_ring *ring;
2574
2575 if (status & IGC_XDP_TX) {
2576 ring = igc_get_tx_ring(adapter, cpu);
2577 nq = txring_txq(ring);
2578
2579 __netif_tx_lock(nq, cpu);
2580 igc_flush_tx_descriptors(ring);
2581 __netif_tx_unlock(nq);
2582 }
2583
2584 if (status & IGC_XDP_REDIRECT)
2585 xdp_do_flush();
2586 }
2587
igc_update_rx_stats(struct igc_q_vector * q_vector,unsigned int packets,unsigned int bytes)2588 static void igc_update_rx_stats(struct igc_q_vector *q_vector,
2589 unsigned int packets, unsigned int bytes)
2590 {
2591 struct igc_ring *ring = q_vector->rx.ring;
2592
2593 u64_stats_update_begin(&ring->rx_syncp);
2594 ring->rx_stats.packets += packets;
2595 ring->rx_stats.bytes += bytes;
2596 u64_stats_update_end(&ring->rx_syncp);
2597
2598 q_vector->rx.total_packets += packets;
2599 q_vector->rx.total_bytes += bytes;
2600 }
2601
igc_clean_rx_irq(struct igc_q_vector * q_vector,const int budget)2602 static int igc_clean_rx_irq(struct igc_q_vector *q_vector, const int budget)
2603 {
2604 unsigned int total_bytes = 0, total_packets = 0;
2605 struct igc_adapter *adapter = q_vector->adapter;
2606 struct igc_ring *rx_ring = q_vector->rx.ring;
2607 struct sk_buff *skb = rx_ring->skb;
2608 u16 cleaned_count = igc_desc_unused(rx_ring);
2609 int xdp_status = 0, rx_buffer_pgcnt;
2610 int xdp_res = 0;
2611
2612 while (likely(total_packets < budget)) {
2613 struct igc_xdp_buff ctx = { .rx_ts = NULL };
2614 struct igc_rx_buffer *rx_buffer;
2615 union igc_adv_rx_desc *rx_desc;
2616 unsigned int size, truesize;
2617 int pkt_offset = 0;
2618 void *pktbuf;
2619
2620 /* return some buffers to hardware, one at a time is too slow */
2621 if (cleaned_count >= IGC_RX_BUFFER_WRITE) {
2622 igc_alloc_rx_buffers(rx_ring, cleaned_count);
2623 cleaned_count = 0;
2624 }
2625
2626 rx_desc = IGC_RX_DESC(rx_ring, rx_ring->next_to_clean);
2627 size = le16_to_cpu(rx_desc->wb.upper.length);
2628 if (!size)
2629 break;
2630
2631 /* This memory barrier is needed to keep us from reading
2632 * any other fields out of the rx_desc until we know the
2633 * descriptor has been written back
2634 */
2635 dma_rmb();
2636
2637 rx_buffer = igc_get_rx_buffer(rx_ring, size, &rx_buffer_pgcnt);
2638 truesize = igc_get_rx_frame_truesize(rx_ring, size);
2639
2640 pktbuf = page_address(rx_buffer->page) + rx_buffer->page_offset;
2641
2642 if (igc_test_staterr(rx_desc, IGC_RXDADV_STAT_TSIP)) {
2643 ctx.rx_ts = pktbuf;
2644 pkt_offset = IGC_TS_HDR_LEN;
2645 size -= IGC_TS_HDR_LEN;
2646 }
2647
2648 if (igc_fpe_is_pmac_enabled(adapter) &&
2649 igc_fpe_handle_mpacket(adapter, rx_desc, size, pktbuf + pkt_offset)) {
2650 /* Advance the ring next-to-clean */
2651 igc_is_non_eop(rx_ring, rx_desc);
2652 cleaned_count++;
2653 continue;
2654 }
2655
2656 if (!skb) {
2657 xdp_init_buff(&ctx.xdp, truesize, &rx_ring->xdp_rxq);
2658 xdp_prepare_buff(&ctx.xdp, pktbuf - igc_rx_offset(rx_ring),
2659 igc_rx_offset(rx_ring) + pkt_offset,
2660 size, true);
2661 xdp_buff_clear_frags_flag(&ctx.xdp);
2662 ctx.rx_desc = rx_desc;
2663
2664 xdp_res = igc_xdp_run_prog(adapter, &ctx.xdp);
2665 }
2666
2667 if (xdp_res) {
2668 switch (xdp_res) {
2669 case IGC_XDP_CONSUMED:
2670 rx_buffer->pagecnt_bias++;
2671 break;
2672 case IGC_XDP_TX:
2673 case IGC_XDP_REDIRECT:
2674 igc_rx_buffer_flip(rx_buffer, truesize);
2675 xdp_status |= xdp_res;
2676 break;
2677 }
2678
2679 total_packets++;
2680 total_bytes += size;
2681 } else if (skb)
2682 igc_add_rx_frag(rx_ring, rx_buffer, skb, size);
2683 else if (ring_uses_build_skb(rx_ring))
2684 skb = igc_build_skb(rx_ring, rx_buffer, &ctx.xdp);
2685 else
2686 skb = igc_construct_skb(rx_ring, rx_buffer, &ctx);
2687
2688 /* exit if we failed to retrieve a buffer */
2689 if (!xdp_res && !skb) {
2690 rx_ring->rx_stats.alloc_failed++;
2691 rx_buffer->pagecnt_bias++;
2692 set_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &rx_ring->flags);
2693 break;
2694 }
2695
2696 igc_put_rx_buffer(rx_ring, rx_buffer, rx_buffer_pgcnt);
2697 cleaned_count++;
2698
2699 /* fetch next buffer in frame if non-eop */
2700 if (igc_is_non_eop(rx_ring, rx_desc))
2701 continue;
2702
2703 /* verify the packet layout is correct */
2704 if (xdp_res || igc_cleanup_headers(rx_ring, rx_desc, skb)) {
2705 skb = NULL;
2706 continue;
2707 }
2708
2709 /* probably a little skewed due to removing CRC */
2710 total_bytes += skb->len;
2711
2712 /* populate checksum, VLAN, and protocol */
2713 igc_process_skb_fields(rx_ring, rx_desc, skb);
2714
2715 napi_gro_receive(&q_vector->napi, skb);
2716
2717 /* reset skb pointer */
2718 skb = NULL;
2719
2720 /* update budget accounting */
2721 total_packets++;
2722 }
2723
2724 if (xdp_status)
2725 igc_finalize_xdp(adapter, xdp_status);
2726
2727 /* place incomplete frames back on ring for completion */
2728 rx_ring->skb = skb;
2729
2730 igc_update_rx_stats(q_vector, total_packets, total_bytes);
2731
2732 if (cleaned_count)
2733 igc_alloc_rx_buffers(rx_ring, cleaned_count);
2734
2735 return total_packets;
2736 }
2737
igc_construct_skb_zc(struct igc_ring * ring,struct igc_xdp_buff * ctx)2738 static struct sk_buff *igc_construct_skb_zc(struct igc_ring *ring,
2739 struct igc_xdp_buff *ctx)
2740 {
2741 struct xdp_buff *xdp = &ctx->xdp;
2742 unsigned int totalsize = xdp->data_end - xdp->data_meta;
2743 unsigned int metasize = xdp->data - xdp->data_meta;
2744 struct sk_buff *skb;
2745
2746 net_prefetch(xdp->data_meta);
2747
2748 skb = napi_alloc_skb(&ring->q_vector->napi, totalsize);
2749 if (unlikely(!skb))
2750 return NULL;
2751
2752 memcpy(__skb_put(skb, totalsize), xdp->data_meta,
2753 ALIGN(totalsize, sizeof(long)));
2754
2755 if (metasize) {
2756 skb_metadata_set(skb, metasize);
2757 __skb_pull(skb, metasize);
2758 }
2759
2760 if (ctx->rx_ts) {
2761 skb_shinfo(skb)->tx_flags |= SKBTX_HW_TSTAMP_NETDEV;
2762 skb_hwtstamps(skb)->netdev_data = ctx->rx_ts;
2763 }
2764
2765 return skb;
2766 }
2767
igc_dispatch_skb_zc(struct igc_q_vector * q_vector,union igc_adv_rx_desc * desc,struct igc_xdp_buff * ctx)2768 static void igc_dispatch_skb_zc(struct igc_q_vector *q_vector,
2769 union igc_adv_rx_desc *desc,
2770 struct igc_xdp_buff *ctx)
2771 {
2772 struct igc_ring *ring = q_vector->rx.ring;
2773 struct sk_buff *skb;
2774
2775 skb = igc_construct_skb_zc(ring, ctx);
2776 if (!skb) {
2777 ring->rx_stats.alloc_failed++;
2778 set_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &ring->flags);
2779 return;
2780 }
2781
2782 if (igc_cleanup_headers(ring, desc, skb))
2783 return;
2784
2785 igc_process_skb_fields(ring, desc, skb);
2786 napi_gro_receive(&q_vector->napi, skb);
2787 }
2788
xsk_buff_to_igc_ctx(struct xdp_buff * xdp)2789 static struct igc_xdp_buff *xsk_buff_to_igc_ctx(struct xdp_buff *xdp)
2790 {
2791 /* xdp_buff pointer used by ZC code path is alloc as xdp_buff_xsk. The
2792 * igc_xdp_buff shares its layout with xdp_buff_xsk and private
2793 * igc_xdp_buff fields fall into xdp_buff_xsk->cb
2794 */
2795 return (struct igc_xdp_buff *)xdp;
2796 }
2797
igc_clean_rx_irq_zc(struct igc_q_vector * q_vector,const int budget)2798 static int igc_clean_rx_irq_zc(struct igc_q_vector *q_vector, const int budget)
2799 {
2800 struct igc_adapter *adapter = q_vector->adapter;
2801 struct igc_ring *ring = q_vector->rx.ring;
2802 u16 cleaned_count = igc_desc_unused(ring);
2803 int total_bytes = 0, total_packets = 0;
2804 u16 ntc = ring->next_to_clean;
2805 struct bpf_prog *prog;
2806 bool failure = false;
2807 int xdp_status = 0;
2808
2809 rcu_read_lock();
2810
2811 prog = READ_ONCE(adapter->xdp_prog);
2812
2813 while (likely(total_packets < budget)) {
2814 union igc_adv_rx_desc *desc;
2815 struct igc_rx_buffer *bi;
2816 struct igc_xdp_buff *ctx;
2817 unsigned int size;
2818 int res;
2819
2820 desc = IGC_RX_DESC(ring, ntc);
2821 size = le16_to_cpu(desc->wb.upper.length);
2822 if (!size)
2823 break;
2824
2825 /* This memory barrier is needed to keep us from reading
2826 * any other fields out of the rx_desc until we know the
2827 * descriptor has been written back
2828 */
2829 dma_rmb();
2830
2831 bi = &ring->rx_buffer_info[ntc];
2832
2833 ctx = xsk_buff_to_igc_ctx(bi->xdp);
2834 ctx->rx_desc = desc;
2835
2836 if (igc_test_staterr(desc, IGC_RXDADV_STAT_TSIP)) {
2837 ctx->rx_ts = bi->xdp->data;
2838
2839 bi->xdp->data += IGC_TS_HDR_LEN;
2840
2841 /* HW timestamp has been copied into local variable. Metadata
2842 * length when XDP program is called should be 0.
2843 */
2844 bi->xdp->data_meta += IGC_TS_HDR_LEN;
2845 size -= IGC_TS_HDR_LEN;
2846 } else {
2847 ctx->rx_ts = NULL;
2848 }
2849
2850 bi->xdp->data_end = bi->xdp->data + size;
2851 xsk_buff_dma_sync_for_cpu(bi->xdp);
2852
2853 res = __igc_xdp_run_prog(adapter, prog, bi->xdp);
2854 switch (res) {
2855 case IGC_XDP_PASS:
2856 igc_dispatch_skb_zc(q_vector, desc, ctx);
2857 fallthrough;
2858 case IGC_XDP_CONSUMED:
2859 xsk_buff_free(bi->xdp);
2860 break;
2861 case IGC_XDP_TX:
2862 case IGC_XDP_REDIRECT:
2863 xdp_status |= res;
2864 break;
2865 }
2866
2867 bi->xdp = NULL;
2868 total_bytes += size;
2869 total_packets++;
2870 cleaned_count++;
2871 ntc++;
2872 if (ntc == ring->count)
2873 ntc = 0;
2874 }
2875
2876 ring->next_to_clean = ntc;
2877 rcu_read_unlock();
2878
2879 if (cleaned_count >= IGC_RX_BUFFER_WRITE)
2880 failure = !igc_alloc_rx_buffers_zc(ring, cleaned_count);
2881
2882 if (xdp_status)
2883 igc_finalize_xdp(adapter, xdp_status);
2884
2885 igc_update_rx_stats(q_vector, total_packets, total_bytes);
2886
2887 if (xsk_uses_need_wakeup(ring->xsk_pool)) {
2888 if (failure || ring->next_to_clean == ring->next_to_use)
2889 xsk_set_rx_need_wakeup(ring->xsk_pool);
2890 else
2891 xsk_clear_rx_need_wakeup(ring->xsk_pool);
2892 return total_packets;
2893 }
2894
2895 return failure ? budget : total_packets;
2896 }
2897
igc_update_tx_stats(struct igc_q_vector * q_vector,unsigned int packets,unsigned int bytes)2898 static void igc_update_tx_stats(struct igc_q_vector *q_vector,
2899 unsigned int packets, unsigned int bytes)
2900 {
2901 struct igc_ring *ring = q_vector->tx.ring;
2902
2903 u64_stats_update_begin(&ring->tx_syncp);
2904 ring->tx_stats.bytes += bytes;
2905 ring->tx_stats.packets += packets;
2906 u64_stats_update_end(&ring->tx_syncp);
2907
2908 q_vector->tx.total_bytes += bytes;
2909 q_vector->tx.total_packets += packets;
2910 }
2911
igc_xsk_request_timestamp(void * _priv)2912 static void igc_xsk_request_timestamp(void *_priv)
2913 {
2914 struct igc_metadata_request *meta_req = _priv;
2915 struct igc_ring *tx_ring = meta_req->tx_ring;
2916 struct igc_tx_timestamp_request *tstamp;
2917 u32 tx_flags = IGC_TX_FLAGS_TSTAMP;
2918 struct igc_adapter *adapter;
2919 unsigned long lock_flags;
2920 bool found = false;
2921 int i;
2922
2923 if (test_bit(IGC_RING_FLAG_TX_HWTSTAMP, &tx_ring->flags)) {
2924 adapter = netdev_priv(tx_ring->netdev);
2925
2926 spin_lock_irqsave(&adapter->ptp_tx_lock, lock_flags);
2927
2928 /* Search for available tstamp regs */
2929 for (i = 0; i < IGC_MAX_TX_TSTAMP_REGS; i++) {
2930 tstamp = &adapter->tx_tstamp[i];
2931
2932 /* tstamp->skb and tstamp->xsk_tx_buffer are in union.
2933 * When tstamp->skb is equal to NULL,
2934 * tstamp->xsk_tx_buffer is equal to NULL as well.
2935 * This condition means that the particular tstamp reg
2936 * is not occupied by other packet.
2937 */
2938 if (!tstamp->skb) {
2939 found = true;
2940 break;
2941 }
2942 }
2943
2944 /* Return if no available tstamp regs */
2945 if (!found) {
2946 adapter->tx_hwtstamp_skipped++;
2947 spin_unlock_irqrestore(&adapter->ptp_tx_lock,
2948 lock_flags);
2949 return;
2950 }
2951
2952 tstamp->start = jiffies;
2953 tstamp->xsk_queue_index = tx_ring->queue_index;
2954 tstamp->xsk_tx_buffer = meta_req->tx_buffer;
2955 tstamp->buffer_type = IGC_TX_BUFFER_TYPE_XSK;
2956
2957 /* Hold the transmit completion until timestamp is ready */
2958 meta_req->tx_buffer->xsk_pending_ts = true;
2959
2960 /* Keep the pointer to tx_timestamp, which is located in XDP
2961 * metadata area. It is the location to store the value of
2962 * tx hardware timestamp.
2963 */
2964 xsk_tx_metadata_to_compl(meta_req->meta, &tstamp->xsk_meta);
2965
2966 /* Set timestamp bit based on the _TSTAMP(_X) bit. */
2967 tx_flags |= tstamp->flags;
2968 meta_req->cmd_type |= IGC_SET_FLAG(tx_flags,
2969 IGC_TX_FLAGS_TSTAMP,
2970 (IGC_ADVTXD_MAC_TSTAMP));
2971 meta_req->cmd_type |= IGC_SET_FLAG(tx_flags,
2972 IGC_TX_FLAGS_TSTAMP_1,
2973 (IGC_ADVTXD_TSTAMP_REG_1));
2974 meta_req->cmd_type |= IGC_SET_FLAG(tx_flags,
2975 IGC_TX_FLAGS_TSTAMP_2,
2976 (IGC_ADVTXD_TSTAMP_REG_2));
2977 meta_req->cmd_type |= IGC_SET_FLAG(tx_flags,
2978 IGC_TX_FLAGS_TSTAMP_3,
2979 (IGC_ADVTXD_TSTAMP_REG_3));
2980
2981 spin_unlock_irqrestore(&adapter->ptp_tx_lock, lock_flags);
2982 }
2983 }
2984
igc_xsk_fill_timestamp(void * _priv)2985 static u64 igc_xsk_fill_timestamp(void *_priv)
2986 {
2987 return *(u64 *)_priv;
2988 }
2989
igc_xsk_request_launch_time(u64 launch_time,void * _priv)2990 static void igc_xsk_request_launch_time(u64 launch_time, void *_priv)
2991 {
2992 struct igc_metadata_request *meta_req = _priv;
2993 struct igc_ring *tx_ring = meta_req->tx_ring;
2994 __le32 launch_time_offset;
2995 bool insert_empty = false;
2996 bool first_flag = false;
2997 u16 used_desc = 0;
2998
2999 if (!tx_ring->launchtime_enable)
3000 return;
3001
3002 launch_time_offset = igc_tx_launchtime(tx_ring,
3003 ns_to_ktime(launch_time),
3004 &first_flag, &insert_empty);
3005 if (insert_empty) {
3006 /* Disregard the launch time request if the required empty frame
3007 * fails to be inserted.
3008 */
3009 if (igc_insert_empty_frame(tx_ring))
3010 return;
3011
3012 meta_req->tx_buffer =
3013 &tx_ring->tx_buffer_info[tx_ring->next_to_use];
3014 /* Inserting an empty packet requires two descriptors:
3015 * one data descriptor and one context descriptor.
3016 */
3017 used_desc += 2;
3018 }
3019
3020 /* Use one context descriptor to specify launch time and first flag. */
3021 igc_tx_ctxtdesc(tx_ring, launch_time_offset, first_flag, 0, 0, 0);
3022 used_desc += 1;
3023
3024 /* Update the number of used descriptors in this request */
3025 meta_req->used_desc += used_desc;
3026 }
3027
3028 const struct xsk_tx_metadata_ops igc_xsk_tx_metadata_ops = {
3029 .tmo_request_timestamp = igc_xsk_request_timestamp,
3030 .tmo_fill_timestamp = igc_xsk_fill_timestamp,
3031 .tmo_request_launch_time = igc_xsk_request_launch_time,
3032 };
3033
igc_xdp_xmit_zc(struct igc_ring * ring)3034 static void igc_xdp_xmit_zc(struct igc_ring *ring)
3035 {
3036 struct xsk_buff_pool *pool = ring->xsk_pool;
3037 struct netdev_queue *nq = txring_txq(ring);
3038 union igc_adv_tx_desc *tx_desc = NULL;
3039 int cpu = smp_processor_id();
3040 struct xdp_desc xdp_desc;
3041 u16 budget, ntu;
3042
3043 if (!netif_carrier_ok(ring->netdev))
3044 return;
3045
3046 __netif_tx_lock(nq, cpu);
3047
3048 /* Avoid transmit queue timeout since we share it with the slow path */
3049 txq_trans_cond_update(nq);
3050
3051 ntu = ring->next_to_use;
3052 budget = igc_desc_unused(ring);
3053
3054 /* Packets with launch time require one data descriptor and one context
3055 * descriptor. When the launch time falls into the next Qbv cycle, we
3056 * may need to insert an empty packet, which requires two more
3057 * descriptors. Therefore, to be safe, we always ensure we have at least
3058 * 4 descriptors available.
3059 */
3060 while (budget >= 4 && xsk_tx_peek_desc(pool, &xdp_desc)) {
3061 struct igc_metadata_request meta_req;
3062 struct xsk_tx_metadata *meta = NULL;
3063 struct igc_tx_buffer *bi;
3064 u32 olinfo_status;
3065 dma_addr_t dma;
3066
3067 meta_req.cmd_type = IGC_ADVTXD_DTYP_DATA |
3068 IGC_ADVTXD_DCMD_DEXT |
3069 IGC_ADVTXD_DCMD_IFCS |
3070 IGC_TXD_DCMD | xdp_desc.len;
3071 olinfo_status = xdp_desc.len << IGC_ADVTXD_PAYLEN_SHIFT;
3072
3073 dma = xsk_buff_raw_get_dma(pool, xdp_desc.addr);
3074 meta = xsk_buff_get_metadata(pool, xdp_desc.addr,
3075 xdp_desc.options);
3076 xsk_buff_raw_dma_sync_for_device(pool, dma, xdp_desc.len);
3077 bi = &ring->tx_buffer_info[ntu];
3078
3079 meta_req.tx_ring = ring;
3080 meta_req.tx_buffer = bi;
3081 meta_req.meta = meta;
3082 meta_req.used_desc = 0;
3083 xsk_tx_metadata_request(pool, &meta, &igc_xsk_tx_metadata_ops,
3084 &meta_req);
3085
3086 /* xsk_tx_metadata_request() may have updated next_to_use */
3087 ntu = ring->next_to_use;
3088
3089 /* xsk_tx_metadata_request() may have updated Tx buffer info */
3090 bi = meta_req.tx_buffer;
3091
3092 /* xsk_tx_metadata_request() may use a few descriptors */
3093 budget -= meta_req.used_desc;
3094
3095 tx_desc = IGC_TX_DESC(ring, ntu);
3096 tx_desc->read.cmd_type_len = cpu_to_le32(meta_req.cmd_type);
3097 tx_desc->read.olinfo_status = cpu_to_le32(olinfo_status);
3098 tx_desc->read.buffer_addr = cpu_to_le64(dma);
3099
3100 bi->type = IGC_TX_BUFFER_TYPE_XSK;
3101 bi->protocol = 0;
3102 bi->bytecount = xdp_desc.len;
3103 bi->gso_segs = 1;
3104 bi->time_stamp = jiffies;
3105 bi->next_to_watch = tx_desc;
3106
3107 netdev_tx_sent_queue(txring_txq(ring), xdp_desc.len);
3108
3109 ntu++;
3110 if (ntu == ring->count)
3111 ntu = 0;
3112
3113 ring->next_to_use = ntu;
3114 budget--;
3115 }
3116
3117 if (tx_desc) {
3118 igc_flush_tx_descriptors(ring);
3119 xsk_tx_release(pool);
3120 }
3121
3122 __netif_tx_unlock(nq);
3123 }
3124
3125 /**
3126 * igc_clean_tx_irq - Reclaim resources after transmit completes
3127 * @q_vector: pointer to q_vector containing needed info
3128 * @napi_budget: Used to determine if we are in netpoll
3129 *
3130 * returns true if ring is completely cleaned
3131 */
igc_clean_tx_irq(struct igc_q_vector * q_vector,int napi_budget)3132 static bool igc_clean_tx_irq(struct igc_q_vector *q_vector, int napi_budget)
3133 {
3134 struct igc_adapter *adapter = q_vector->adapter;
3135 unsigned int total_bytes = 0, total_packets = 0;
3136 unsigned int budget = q_vector->tx.work_limit;
3137 struct igc_ring *tx_ring = q_vector->tx.ring;
3138 unsigned int i = tx_ring->next_to_clean;
3139 struct igc_tx_buffer *tx_buffer;
3140 union igc_adv_tx_desc *tx_desc;
3141 u32 xsk_frames = 0;
3142
3143 if (test_bit(__IGC_DOWN, &adapter->state))
3144 return true;
3145
3146 tx_buffer = &tx_ring->tx_buffer_info[i];
3147 tx_desc = IGC_TX_DESC(tx_ring, i);
3148 i -= tx_ring->count;
3149
3150 do {
3151 union igc_adv_tx_desc *eop_desc = tx_buffer->next_to_watch;
3152
3153 /* if next_to_watch is not set then there is no work pending */
3154 if (!eop_desc)
3155 break;
3156
3157 /* prevent any other reads prior to eop_desc */
3158 smp_rmb();
3159
3160 /* if DD is not set pending work has not been completed */
3161 if (!(eop_desc->wb.status & cpu_to_le32(IGC_TXD_STAT_DD)))
3162 break;
3163
3164 if (igc_fpe_is_pmac_enabled(adapter) &&
3165 igc_fpe_transmitted_smd_v(tx_desc))
3166 ethtool_mmsv_event_handle(&adapter->fpe.mmsv,
3167 ETHTOOL_MMSV_LD_SENT_VERIFY_MPACKET);
3168
3169 /* Hold the completions while there's a pending tx hardware
3170 * timestamp request from XDP Tx metadata.
3171 */
3172 if (tx_buffer->type == IGC_TX_BUFFER_TYPE_XSK &&
3173 tx_buffer->xsk_pending_ts)
3174 break;
3175
3176 /* clear next_to_watch to prevent false hangs */
3177 tx_buffer->next_to_watch = NULL;
3178
3179 /* update the statistics for this packet */
3180 total_bytes += tx_buffer->bytecount;
3181 total_packets += tx_buffer->gso_segs;
3182
3183 switch (tx_buffer->type) {
3184 case IGC_TX_BUFFER_TYPE_XSK:
3185 xsk_frames++;
3186 break;
3187 case IGC_TX_BUFFER_TYPE_XDP:
3188 xdp_return_frame(tx_buffer->xdpf);
3189 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
3190 break;
3191 case IGC_TX_BUFFER_TYPE_SKB:
3192 napi_consume_skb(tx_buffer->skb, napi_budget);
3193 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
3194 break;
3195 default:
3196 netdev_warn_once(tx_ring->netdev, "Unknown Tx buffer type\n");
3197 break;
3198 }
3199
3200 /* clear last DMA location and unmap remaining buffers */
3201 while (tx_desc != eop_desc) {
3202 tx_buffer++;
3203 tx_desc++;
3204 i++;
3205 if (unlikely(!i)) {
3206 i -= tx_ring->count;
3207 tx_buffer = tx_ring->tx_buffer_info;
3208 tx_desc = IGC_TX_DESC(tx_ring, 0);
3209 }
3210
3211 /* unmap any remaining paged data */
3212 if (dma_unmap_len(tx_buffer, len))
3213 igc_unmap_tx_buffer(tx_ring->dev, tx_buffer);
3214 }
3215
3216 /* move us one more past the eop_desc for start of next pkt */
3217 tx_buffer++;
3218 tx_desc++;
3219 i++;
3220 if (unlikely(!i)) {
3221 i -= tx_ring->count;
3222 tx_buffer = tx_ring->tx_buffer_info;
3223 tx_desc = IGC_TX_DESC(tx_ring, 0);
3224 }
3225
3226 /* issue prefetch for next Tx descriptor */
3227 prefetch(tx_desc);
3228
3229 /* update budget accounting */
3230 budget--;
3231 } while (likely(budget));
3232
3233 netdev_tx_completed_queue(txring_txq(tx_ring),
3234 total_packets, total_bytes);
3235
3236 i += tx_ring->count;
3237 tx_ring->next_to_clean = i;
3238
3239 igc_update_tx_stats(q_vector, total_packets, total_bytes);
3240
3241 if (tx_ring->xsk_pool) {
3242 if (xsk_frames)
3243 xsk_tx_completed(tx_ring->xsk_pool, xsk_frames);
3244 if (xsk_uses_need_wakeup(tx_ring->xsk_pool))
3245 xsk_set_tx_need_wakeup(tx_ring->xsk_pool);
3246 igc_xdp_xmit_zc(tx_ring);
3247 }
3248
3249 if (test_bit(IGC_RING_FLAG_TX_DETECT_HANG, &tx_ring->flags)) {
3250 struct igc_hw *hw = &adapter->hw;
3251
3252 /* Detect a transmit hang in hardware, this serializes the
3253 * check with the clearing of time_stamp and movement of i
3254 */
3255 clear_bit(IGC_RING_FLAG_TX_DETECT_HANG, &tx_ring->flags);
3256 if (tx_buffer->next_to_watch &&
3257 time_after(jiffies, tx_buffer->time_stamp +
3258 (adapter->tx_timeout_factor * HZ)) &&
3259 !(rd32(IGC_STATUS) & IGC_STATUS_TXOFF) &&
3260 (rd32(IGC_TDH(tx_ring->reg_idx)) != readl(tx_ring->tail)) &&
3261 !tx_ring->oper_gate_closed) {
3262 /* detected Tx unit hang */
3263 netdev_err(tx_ring->netdev,
3264 "Detected Tx Unit Hang\n"
3265 " Tx Queue <%d>\n"
3266 " TDH <%x>\n"
3267 " TDT <%x>\n"
3268 " next_to_use <%x>\n"
3269 " next_to_clean <%x>\n"
3270 "buffer_info[next_to_clean]\n"
3271 " time_stamp <%lx>\n"
3272 " next_to_watch <%p>\n"
3273 " jiffies <%lx>\n"
3274 " desc.status <%x>\n",
3275 tx_ring->queue_index,
3276 rd32(IGC_TDH(tx_ring->reg_idx)),
3277 readl(tx_ring->tail),
3278 tx_ring->next_to_use,
3279 tx_ring->next_to_clean,
3280 tx_buffer->time_stamp,
3281 tx_buffer->next_to_watch,
3282 jiffies,
3283 tx_buffer->next_to_watch->wb.status);
3284 netif_stop_subqueue(tx_ring->netdev,
3285 tx_ring->queue_index);
3286
3287 /* we are about to reset, no point in enabling stuff */
3288 return true;
3289 }
3290 }
3291
3292 #define TX_WAKE_THRESHOLD (DESC_NEEDED * 2)
3293 if (unlikely(total_packets &&
3294 netif_carrier_ok(tx_ring->netdev) &&
3295 igc_desc_unused(tx_ring) >= TX_WAKE_THRESHOLD)) {
3296 /* Make sure that anybody stopping the queue after this
3297 * sees the new next_to_clean.
3298 */
3299 smp_mb();
3300 if (__netif_subqueue_stopped(tx_ring->netdev,
3301 tx_ring->queue_index) &&
3302 !(test_bit(__IGC_DOWN, &adapter->state))) {
3303 netif_wake_subqueue(tx_ring->netdev,
3304 tx_ring->queue_index);
3305
3306 u64_stats_update_begin(&tx_ring->tx_syncp);
3307 tx_ring->tx_stats.restart_queue++;
3308 u64_stats_update_end(&tx_ring->tx_syncp);
3309 }
3310 }
3311
3312 return !!budget;
3313 }
3314
igc_find_mac_filter(struct igc_adapter * adapter,enum igc_mac_filter_type type,const u8 * addr)3315 static int igc_find_mac_filter(struct igc_adapter *adapter,
3316 enum igc_mac_filter_type type, const u8 *addr)
3317 {
3318 struct igc_hw *hw = &adapter->hw;
3319 int max_entries = hw->mac.rar_entry_count;
3320 u32 ral, rah;
3321 int i;
3322
3323 for (i = 0; i < max_entries; i++) {
3324 ral = rd32(IGC_RAL(i));
3325 rah = rd32(IGC_RAH(i));
3326
3327 if (!(rah & IGC_RAH_AV))
3328 continue;
3329 if (!!(rah & IGC_RAH_ASEL_SRC_ADDR) != type)
3330 continue;
3331 if ((rah & IGC_RAH_RAH_MASK) !=
3332 le16_to_cpup((__le16 *)(addr + 4)))
3333 continue;
3334 if (ral != le32_to_cpup((__le32 *)(addr)))
3335 continue;
3336
3337 return i;
3338 }
3339
3340 return -1;
3341 }
3342
igc_get_avail_mac_filter_slot(struct igc_adapter * adapter)3343 static int igc_get_avail_mac_filter_slot(struct igc_adapter *adapter)
3344 {
3345 struct igc_hw *hw = &adapter->hw;
3346 int max_entries = hw->mac.rar_entry_count;
3347 u32 rah;
3348 int i;
3349
3350 for (i = 0; i < max_entries; i++) {
3351 rah = rd32(IGC_RAH(i));
3352
3353 if (!(rah & IGC_RAH_AV))
3354 return i;
3355 }
3356
3357 return -1;
3358 }
3359
3360 /**
3361 * igc_add_mac_filter() - Add MAC address filter
3362 * @adapter: Pointer to adapter where the filter should be added
3363 * @type: MAC address filter type (source or destination)
3364 * @addr: MAC address
3365 * @queue: If non-negative, queue assignment feature is enabled and frames
3366 * matching the filter are enqueued onto 'queue'. Otherwise, queue
3367 * assignment is disabled.
3368 *
3369 * Return: 0 in case of success, negative errno code otherwise.
3370 */
igc_add_mac_filter(struct igc_adapter * adapter,enum igc_mac_filter_type type,const u8 * addr,int queue)3371 static int igc_add_mac_filter(struct igc_adapter *adapter,
3372 enum igc_mac_filter_type type, const u8 *addr,
3373 int queue)
3374 {
3375 struct net_device *dev = adapter->netdev;
3376 int index;
3377
3378 index = igc_find_mac_filter(adapter, type, addr);
3379 if (index >= 0)
3380 goto update_filter;
3381
3382 index = igc_get_avail_mac_filter_slot(adapter);
3383 if (index < 0)
3384 return -ENOSPC;
3385
3386 netdev_dbg(dev, "Add MAC address filter: index %d type %s address %pM queue %d\n",
3387 index, type == IGC_MAC_FILTER_TYPE_DST ? "dst" : "src",
3388 addr, queue);
3389
3390 update_filter:
3391 igc_set_mac_filter_hw(adapter, index, type, addr, queue);
3392 return 0;
3393 }
3394
3395 /**
3396 * igc_del_mac_filter() - Delete MAC address filter
3397 * @adapter: Pointer to adapter where the filter should be deleted from
3398 * @type: MAC address filter type (source or destination)
3399 * @addr: MAC address
3400 */
igc_del_mac_filter(struct igc_adapter * adapter,enum igc_mac_filter_type type,const u8 * addr)3401 static void igc_del_mac_filter(struct igc_adapter *adapter,
3402 enum igc_mac_filter_type type, const u8 *addr)
3403 {
3404 struct net_device *dev = adapter->netdev;
3405 int index;
3406
3407 index = igc_find_mac_filter(adapter, type, addr);
3408 if (index < 0)
3409 return;
3410
3411 if (index == 0) {
3412 /* If this is the default filter, we don't actually delete it.
3413 * We just reset to its default value i.e. disable queue
3414 * assignment.
3415 */
3416 netdev_dbg(dev, "Disable default MAC filter queue assignment");
3417
3418 igc_set_mac_filter_hw(adapter, 0, type, addr, -1);
3419 } else {
3420 netdev_dbg(dev, "Delete MAC address filter: index %d type %s address %pM\n",
3421 index,
3422 type == IGC_MAC_FILTER_TYPE_DST ? "dst" : "src",
3423 addr);
3424
3425 igc_clear_mac_filter_hw(adapter, index);
3426 }
3427 }
3428
3429 /**
3430 * igc_add_vlan_prio_filter() - Add VLAN priority filter
3431 * @adapter: Pointer to adapter where the filter should be added
3432 * @prio: VLAN priority value
3433 * @queue: Queue number which matching frames are assigned to
3434 *
3435 * Return: 0 in case of success, negative errno code otherwise.
3436 */
igc_add_vlan_prio_filter(struct igc_adapter * adapter,int prio,int queue)3437 static int igc_add_vlan_prio_filter(struct igc_adapter *adapter, int prio,
3438 int queue)
3439 {
3440 struct net_device *dev = adapter->netdev;
3441 struct igc_hw *hw = &adapter->hw;
3442 u32 vlanpqf;
3443
3444 vlanpqf = rd32(IGC_VLANPQF);
3445
3446 if (vlanpqf & IGC_VLANPQF_VALID(prio)) {
3447 netdev_dbg(dev, "VLAN priority filter already in use\n");
3448 return -EEXIST;
3449 }
3450
3451 vlanpqf |= IGC_VLANPQF_QSEL(prio, queue);
3452 vlanpqf |= IGC_VLANPQF_VALID(prio);
3453
3454 wr32(IGC_VLANPQF, vlanpqf);
3455
3456 netdev_dbg(dev, "Add VLAN priority filter: prio %d queue %d\n",
3457 prio, queue);
3458 return 0;
3459 }
3460
3461 /**
3462 * igc_del_vlan_prio_filter() - Delete VLAN priority filter
3463 * @adapter: Pointer to adapter where the filter should be deleted from
3464 * @prio: VLAN priority value
3465 */
igc_del_vlan_prio_filter(struct igc_adapter * adapter,int prio)3466 static void igc_del_vlan_prio_filter(struct igc_adapter *adapter, int prio)
3467 {
3468 struct igc_hw *hw = &adapter->hw;
3469 u32 vlanpqf;
3470
3471 vlanpqf = rd32(IGC_VLANPQF);
3472
3473 vlanpqf &= ~IGC_VLANPQF_VALID(prio);
3474 vlanpqf &= ~IGC_VLANPQF_QSEL(prio, IGC_VLANPQF_QUEUE_MASK);
3475
3476 wr32(IGC_VLANPQF, vlanpqf);
3477
3478 netdev_dbg(adapter->netdev, "Delete VLAN priority filter: prio %d\n",
3479 prio);
3480 }
3481
igc_get_avail_etype_filter_slot(struct igc_adapter * adapter)3482 static int igc_get_avail_etype_filter_slot(struct igc_adapter *adapter)
3483 {
3484 struct igc_hw *hw = &adapter->hw;
3485 int i;
3486
3487 for (i = 0; i < MAX_ETYPE_FILTER; i++) {
3488 u32 etqf = rd32(IGC_ETQF(i));
3489
3490 if (!(etqf & IGC_ETQF_FILTER_ENABLE))
3491 return i;
3492 }
3493
3494 return -1;
3495 }
3496
3497 /**
3498 * igc_add_etype_filter() - Add ethertype filter
3499 * @adapter: Pointer to adapter where the filter should be added
3500 * @etype: Ethertype value
3501 * @queue: If non-negative, queue assignment feature is enabled and frames
3502 * matching the filter are enqueued onto 'queue'. Otherwise, queue
3503 * assignment is disabled.
3504 *
3505 * Return: 0 in case of success, negative errno code otherwise.
3506 */
igc_add_etype_filter(struct igc_adapter * adapter,u16 etype,int queue)3507 static int igc_add_etype_filter(struct igc_adapter *adapter, u16 etype,
3508 int queue)
3509 {
3510 struct igc_hw *hw = &adapter->hw;
3511 int index;
3512 u32 etqf;
3513
3514 index = igc_get_avail_etype_filter_slot(adapter);
3515 if (index < 0)
3516 return -ENOSPC;
3517
3518 etqf = rd32(IGC_ETQF(index));
3519
3520 etqf &= ~IGC_ETQF_ETYPE_MASK;
3521 etqf |= etype;
3522
3523 if (queue >= 0) {
3524 etqf &= ~IGC_ETQF_QUEUE_MASK;
3525 etqf |= (queue << IGC_ETQF_QUEUE_SHIFT);
3526 etqf |= IGC_ETQF_QUEUE_ENABLE;
3527 }
3528
3529 etqf |= IGC_ETQF_FILTER_ENABLE;
3530
3531 wr32(IGC_ETQF(index), etqf);
3532
3533 netdev_dbg(adapter->netdev, "Add ethertype filter: etype %04x queue %d\n",
3534 etype, queue);
3535 return 0;
3536 }
3537
igc_find_etype_filter(struct igc_adapter * adapter,u16 etype)3538 static int igc_find_etype_filter(struct igc_adapter *adapter, u16 etype)
3539 {
3540 struct igc_hw *hw = &adapter->hw;
3541 int i;
3542
3543 for (i = 0; i < MAX_ETYPE_FILTER; i++) {
3544 u32 etqf = rd32(IGC_ETQF(i));
3545
3546 if ((etqf & IGC_ETQF_ETYPE_MASK) == etype)
3547 return i;
3548 }
3549
3550 return -1;
3551 }
3552
3553 /**
3554 * igc_del_etype_filter() - Delete ethertype filter
3555 * @adapter: Pointer to adapter where the filter should be deleted from
3556 * @etype: Ethertype value
3557 */
igc_del_etype_filter(struct igc_adapter * adapter,u16 etype)3558 static void igc_del_etype_filter(struct igc_adapter *adapter, u16 etype)
3559 {
3560 struct igc_hw *hw = &adapter->hw;
3561 int index;
3562
3563 index = igc_find_etype_filter(adapter, etype);
3564 if (index < 0)
3565 return;
3566
3567 wr32(IGC_ETQF(index), 0);
3568
3569 netdev_dbg(adapter->netdev, "Delete ethertype filter: etype %04x\n",
3570 etype);
3571 }
3572
igc_flex_filter_select(struct igc_adapter * adapter,struct igc_flex_filter * input,u32 * fhft)3573 static int igc_flex_filter_select(struct igc_adapter *adapter,
3574 struct igc_flex_filter *input,
3575 u32 *fhft)
3576 {
3577 struct igc_hw *hw = &adapter->hw;
3578 u8 fhft_index;
3579 u32 fhftsl;
3580
3581 if (input->index >= MAX_FLEX_FILTER) {
3582 netdev_err(adapter->netdev, "Wrong Flex Filter index selected!\n");
3583 return -EINVAL;
3584 }
3585
3586 /* Indirect table select register */
3587 fhftsl = rd32(IGC_FHFTSL);
3588 fhftsl &= ~IGC_FHFTSL_FTSL_MASK;
3589 switch (input->index) {
3590 case 0 ... 7:
3591 fhftsl |= 0x00;
3592 break;
3593 case 8 ... 15:
3594 fhftsl |= 0x01;
3595 break;
3596 case 16 ... 23:
3597 fhftsl |= 0x02;
3598 break;
3599 case 24 ... 31:
3600 fhftsl |= 0x03;
3601 break;
3602 }
3603 wr32(IGC_FHFTSL, fhftsl);
3604
3605 /* Normalize index down to host table register */
3606 fhft_index = input->index % 8;
3607
3608 *fhft = (fhft_index < 4) ? IGC_FHFT(fhft_index) :
3609 IGC_FHFT_EXT(fhft_index - 4);
3610
3611 return 0;
3612 }
3613
igc_write_flex_filter_ll(struct igc_adapter * adapter,struct igc_flex_filter * input)3614 static int igc_write_flex_filter_ll(struct igc_adapter *adapter,
3615 struct igc_flex_filter *input)
3616 {
3617 struct igc_hw *hw = &adapter->hw;
3618 u8 *data = input->data;
3619 u8 *mask = input->mask;
3620 u32 queuing;
3621 u32 fhft;
3622 u32 wufc;
3623 int ret;
3624 int i;
3625
3626 /* Length has to be aligned to 8. Otherwise the filter will fail. Bail
3627 * out early to avoid surprises later.
3628 */
3629 if (input->length % 8 != 0) {
3630 netdev_err(adapter->netdev, "The length of a flex filter has to be 8 byte aligned!\n");
3631 return -EINVAL;
3632 }
3633
3634 /* Select corresponding flex filter register and get base for host table. */
3635 ret = igc_flex_filter_select(adapter, input, &fhft);
3636 if (ret)
3637 return ret;
3638
3639 /* When adding a filter globally disable flex filter feature. That is
3640 * recommended within the datasheet.
3641 */
3642 wufc = rd32(IGC_WUFC);
3643 wufc &= ~IGC_WUFC_FLEX_HQ;
3644 wr32(IGC_WUFC, wufc);
3645
3646 /* Configure filter */
3647 queuing = input->length & IGC_FHFT_LENGTH_MASK;
3648 queuing |= FIELD_PREP(IGC_FHFT_QUEUE_MASK, input->rx_queue);
3649 queuing |= FIELD_PREP(IGC_FHFT_PRIO_MASK, input->prio);
3650
3651 if (input->immediate_irq)
3652 queuing |= IGC_FHFT_IMM_INT;
3653
3654 if (input->drop)
3655 queuing |= IGC_FHFT_DROP;
3656
3657 wr32(fhft + 0xFC, queuing);
3658
3659 /* Write data (128 byte) and mask (128 bit) */
3660 for (i = 0; i < 16; ++i) {
3661 const size_t data_idx = i * 8;
3662 const size_t row_idx = i * 16;
3663 u32 dw0 =
3664 (data[data_idx + 0] << 0) |
3665 (data[data_idx + 1] << 8) |
3666 (data[data_idx + 2] << 16) |
3667 (data[data_idx + 3] << 24);
3668 u32 dw1 =
3669 (data[data_idx + 4] << 0) |
3670 (data[data_idx + 5] << 8) |
3671 (data[data_idx + 6] << 16) |
3672 (data[data_idx + 7] << 24);
3673 u32 tmp;
3674
3675 /* Write row: dw0, dw1 and mask */
3676 wr32(fhft + row_idx, dw0);
3677 wr32(fhft + row_idx + 4, dw1);
3678
3679 /* mask is only valid for MASK(7, 0) */
3680 tmp = rd32(fhft + row_idx + 8);
3681 tmp &= ~GENMASK(7, 0);
3682 tmp |= mask[i];
3683 wr32(fhft + row_idx + 8, tmp);
3684 }
3685
3686 /* Enable filter. */
3687 wufc |= IGC_WUFC_FLEX_HQ;
3688 if (input->index > 8) {
3689 /* Filter 0-7 are enabled via WUFC. The other 24 filters are not. */
3690 u32 wufc_ext = rd32(IGC_WUFC_EXT);
3691
3692 wufc_ext |= (IGC_WUFC_EXT_FLX8 << (input->index - 8));
3693
3694 wr32(IGC_WUFC_EXT, wufc_ext);
3695 } else {
3696 wufc |= (IGC_WUFC_FLX0 << input->index);
3697 }
3698 wr32(IGC_WUFC, wufc);
3699
3700 netdev_dbg(adapter->netdev, "Added flex filter %u to HW.\n",
3701 input->index);
3702
3703 return 0;
3704 }
3705
igc_flex_filter_add_field(struct igc_flex_filter * flex,const void * src,unsigned int offset,size_t len,const void * mask)3706 static void igc_flex_filter_add_field(struct igc_flex_filter *flex,
3707 const void *src, unsigned int offset,
3708 size_t len, const void *mask)
3709 {
3710 int i;
3711
3712 /* data */
3713 memcpy(&flex->data[offset], src, len);
3714
3715 /* mask */
3716 for (i = 0; i < len; ++i) {
3717 const unsigned int idx = i + offset;
3718 const u8 *ptr = mask;
3719
3720 if (mask) {
3721 if (ptr[i] & 0xff)
3722 flex->mask[idx / 8] |= BIT(idx % 8);
3723
3724 continue;
3725 }
3726
3727 flex->mask[idx / 8] |= BIT(idx % 8);
3728 }
3729 }
3730
igc_find_avail_flex_filter_slot(struct igc_adapter * adapter)3731 static int igc_find_avail_flex_filter_slot(struct igc_adapter *adapter)
3732 {
3733 struct igc_hw *hw = &adapter->hw;
3734 u32 wufc, wufc_ext;
3735 int i;
3736
3737 wufc = rd32(IGC_WUFC);
3738 wufc_ext = rd32(IGC_WUFC_EXT);
3739
3740 for (i = 0; i < MAX_FLEX_FILTER; i++) {
3741 if (i < 8) {
3742 if (!(wufc & (IGC_WUFC_FLX0 << i)))
3743 return i;
3744 } else {
3745 if (!(wufc_ext & (IGC_WUFC_EXT_FLX8 << (i - 8))))
3746 return i;
3747 }
3748 }
3749
3750 return -ENOSPC;
3751 }
3752
igc_flex_filter_in_use(struct igc_adapter * adapter)3753 static bool igc_flex_filter_in_use(struct igc_adapter *adapter)
3754 {
3755 struct igc_hw *hw = &adapter->hw;
3756 u32 wufc, wufc_ext;
3757
3758 wufc = rd32(IGC_WUFC);
3759 wufc_ext = rd32(IGC_WUFC_EXT);
3760
3761 if (wufc & IGC_WUFC_FILTER_MASK)
3762 return true;
3763
3764 if (wufc_ext & IGC_WUFC_EXT_FILTER_MASK)
3765 return true;
3766
3767 return false;
3768 }
3769
igc_add_flex_filter(struct igc_adapter * adapter,struct igc_nfc_rule * rule)3770 static int igc_add_flex_filter(struct igc_adapter *adapter,
3771 struct igc_nfc_rule *rule)
3772 {
3773 struct igc_nfc_filter *filter = &rule->filter;
3774 unsigned int eth_offset, user_offset;
3775 struct igc_flex_filter flex = { };
3776 int ret, index;
3777 bool vlan;
3778
3779 index = igc_find_avail_flex_filter_slot(adapter);
3780 if (index < 0)
3781 return -ENOSPC;
3782
3783 /* Construct the flex filter:
3784 * -> dest_mac [6]
3785 * -> src_mac [6]
3786 * -> tpid [2]
3787 * -> vlan tci [2]
3788 * -> ether type [2]
3789 * -> user data [8]
3790 * -> = 26 bytes => 32 length
3791 */
3792 flex.index = index;
3793 flex.length = 32;
3794 flex.rx_queue = rule->action;
3795
3796 vlan = rule->filter.vlan_tci || rule->filter.vlan_etype;
3797 eth_offset = vlan ? 16 : 12;
3798 user_offset = vlan ? 18 : 14;
3799
3800 /* Add destination MAC */
3801 if (rule->filter.match_flags & IGC_FILTER_FLAG_DST_MAC_ADDR)
3802 igc_flex_filter_add_field(&flex, &filter->dst_addr, 0,
3803 ETH_ALEN, NULL);
3804
3805 /* Add source MAC */
3806 if (rule->filter.match_flags & IGC_FILTER_FLAG_SRC_MAC_ADDR)
3807 igc_flex_filter_add_field(&flex, &filter->src_addr, 6,
3808 ETH_ALEN, NULL);
3809
3810 /* Add VLAN etype */
3811 if (rule->filter.match_flags & IGC_FILTER_FLAG_VLAN_ETYPE) {
3812 __be16 vlan_etype = cpu_to_be16(filter->vlan_etype);
3813
3814 igc_flex_filter_add_field(&flex, &vlan_etype, 12,
3815 sizeof(vlan_etype), NULL);
3816 }
3817
3818 /* Add VLAN TCI */
3819 if (rule->filter.match_flags & IGC_FILTER_FLAG_VLAN_TCI)
3820 igc_flex_filter_add_field(&flex, &filter->vlan_tci, 14,
3821 sizeof(filter->vlan_tci), NULL);
3822
3823 /* Add Ether type */
3824 if (rule->filter.match_flags & IGC_FILTER_FLAG_ETHER_TYPE) {
3825 __be16 etype = cpu_to_be16(filter->etype);
3826
3827 igc_flex_filter_add_field(&flex, &etype, eth_offset,
3828 sizeof(etype), NULL);
3829 }
3830
3831 /* Add user data */
3832 if (rule->filter.match_flags & IGC_FILTER_FLAG_USER_DATA)
3833 igc_flex_filter_add_field(&flex, &filter->user_data,
3834 user_offset,
3835 sizeof(filter->user_data),
3836 filter->user_mask);
3837
3838 /* Add it down to the hardware and enable it. */
3839 ret = igc_write_flex_filter_ll(adapter, &flex);
3840 if (ret)
3841 return ret;
3842
3843 filter->flex_index = index;
3844
3845 return 0;
3846 }
3847
igc_del_flex_filter(struct igc_adapter * adapter,u16 reg_index)3848 static void igc_del_flex_filter(struct igc_adapter *adapter,
3849 u16 reg_index)
3850 {
3851 struct igc_hw *hw = &adapter->hw;
3852 u32 wufc;
3853
3854 /* Just disable the filter. The filter table itself is kept
3855 * intact. Another flex_filter_add() should override the "old" data
3856 * then.
3857 */
3858 if (reg_index > 8) {
3859 u32 wufc_ext = rd32(IGC_WUFC_EXT);
3860
3861 wufc_ext &= ~(IGC_WUFC_EXT_FLX8 << (reg_index - 8));
3862 wr32(IGC_WUFC_EXT, wufc_ext);
3863 } else {
3864 wufc = rd32(IGC_WUFC);
3865
3866 wufc &= ~(IGC_WUFC_FLX0 << reg_index);
3867 wr32(IGC_WUFC, wufc);
3868 }
3869
3870 if (igc_flex_filter_in_use(adapter))
3871 return;
3872
3873 /* No filters are in use, we may disable flex filters */
3874 wufc = rd32(IGC_WUFC);
3875 wufc &= ~IGC_WUFC_FLEX_HQ;
3876 wr32(IGC_WUFC, wufc);
3877 }
3878
igc_set_default_queue_filter(struct igc_adapter * adapter,u32 queue)3879 static void igc_set_default_queue_filter(struct igc_adapter *adapter, u32 queue)
3880 {
3881 struct igc_hw *hw = &adapter->hw;
3882 u32 mrqc = rd32(IGC_MRQC);
3883
3884 mrqc &= ~IGC_MRQC_DEFAULT_QUEUE_MASK;
3885 mrqc |= FIELD_PREP(IGC_MRQC_DEFAULT_QUEUE_MASK, queue);
3886 wr32(IGC_MRQC, mrqc);
3887 }
3888
igc_reset_default_queue_filter(struct igc_adapter * adapter)3889 static void igc_reset_default_queue_filter(struct igc_adapter *adapter)
3890 {
3891 /* Reset the default queue to its default value which is Queue 0 */
3892 igc_set_default_queue_filter(adapter, 0);
3893 }
3894
igc_enable_nfc_rule(struct igc_adapter * adapter,struct igc_nfc_rule * rule)3895 static int igc_enable_nfc_rule(struct igc_adapter *adapter,
3896 struct igc_nfc_rule *rule)
3897 {
3898 int err;
3899
3900 if (rule->flex) {
3901 return igc_add_flex_filter(adapter, rule);
3902 }
3903
3904 if (rule->filter.match_flags & IGC_FILTER_FLAG_ETHER_TYPE) {
3905 err = igc_add_etype_filter(adapter, rule->filter.etype,
3906 rule->action);
3907 if (err)
3908 return err;
3909 }
3910
3911 if (rule->filter.match_flags & IGC_FILTER_FLAG_SRC_MAC_ADDR) {
3912 err = igc_add_mac_filter(adapter, IGC_MAC_FILTER_TYPE_SRC,
3913 rule->filter.src_addr, rule->action);
3914 if (err)
3915 return err;
3916 }
3917
3918 if (rule->filter.match_flags & IGC_FILTER_FLAG_DST_MAC_ADDR) {
3919 err = igc_add_mac_filter(adapter, IGC_MAC_FILTER_TYPE_DST,
3920 rule->filter.dst_addr, rule->action);
3921 if (err)
3922 return err;
3923 }
3924
3925 if (rule->filter.match_flags & IGC_FILTER_FLAG_VLAN_TCI) {
3926 int prio = FIELD_GET(VLAN_PRIO_MASK, rule->filter.vlan_tci);
3927
3928 err = igc_add_vlan_prio_filter(adapter, prio, rule->action);
3929 if (err)
3930 return err;
3931 }
3932
3933 if (rule->filter.match_flags & IGC_FILTER_FLAG_DEFAULT_QUEUE)
3934 igc_set_default_queue_filter(adapter, rule->action);
3935
3936 return 0;
3937 }
3938
igc_disable_nfc_rule(struct igc_adapter * adapter,const struct igc_nfc_rule * rule)3939 static void igc_disable_nfc_rule(struct igc_adapter *adapter,
3940 const struct igc_nfc_rule *rule)
3941 {
3942 if (rule->flex) {
3943 igc_del_flex_filter(adapter, rule->filter.flex_index);
3944 return;
3945 }
3946
3947 if (rule->filter.match_flags & IGC_FILTER_FLAG_ETHER_TYPE)
3948 igc_del_etype_filter(adapter, rule->filter.etype);
3949
3950 if (rule->filter.match_flags & IGC_FILTER_FLAG_VLAN_TCI) {
3951 int prio = FIELD_GET(VLAN_PRIO_MASK, rule->filter.vlan_tci);
3952
3953 igc_del_vlan_prio_filter(adapter, prio);
3954 }
3955
3956 if (rule->filter.match_flags & IGC_FILTER_FLAG_SRC_MAC_ADDR)
3957 igc_del_mac_filter(adapter, IGC_MAC_FILTER_TYPE_SRC,
3958 rule->filter.src_addr);
3959
3960 if (rule->filter.match_flags & IGC_FILTER_FLAG_DST_MAC_ADDR)
3961 igc_del_mac_filter(adapter, IGC_MAC_FILTER_TYPE_DST,
3962 rule->filter.dst_addr);
3963
3964 if (rule->filter.match_flags & IGC_FILTER_FLAG_DEFAULT_QUEUE)
3965 igc_reset_default_queue_filter(adapter);
3966 }
3967
3968 /**
3969 * igc_get_nfc_rule() - Get NFC rule
3970 * @adapter: Pointer to adapter
3971 * @location: Rule location
3972 *
3973 * Context: Expects adapter->nfc_rule_lock to be held by caller.
3974 *
3975 * Return: Pointer to NFC rule at @location. If not found, NULL.
3976 */
igc_get_nfc_rule(struct igc_adapter * adapter,u32 location)3977 struct igc_nfc_rule *igc_get_nfc_rule(struct igc_adapter *adapter,
3978 u32 location)
3979 {
3980 struct igc_nfc_rule *rule;
3981
3982 list_for_each_entry(rule, &adapter->nfc_rule_list, list) {
3983 if (rule->location == location)
3984 return rule;
3985 if (rule->location > location)
3986 break;
3987 }
3988
3989 return NULL;
3990 }
3991
3992 /**
3993 * igc_del_nfc_rule() - Delete NFC rule
3994 * @adapter: Pointer to adapter
3995 * @rule: Pointer to rule to be deleted
3996 *
3997 * Disable NFC rule in hardware and delete it from adapter.
3998 *
3999 * Context: Expects adapter->nfc_rule_lock to be held by caller.
4000 */
igc_del_nfc_rule(struct igc_adapter * adapter,struct igc_nfc_rule * rule)4001 void igc_del_nfc_rule(struct igc_adapter *adapter, struct igc_nfc_rule *rule)
4002 {
4003 igc_disable_nfc_rule(adapter, rule);
4004
4005 list_del(&rule->list);
4006 adapter->nfc_rule_count--;
4007
4008 kfree(rule);
4009 }
4010
igc_flush_nfc_rules(struct igc_adapter * adapter)4011 static void igc_flush_nfc_rules(struct igc_adapter *adapter)
4012 {
4013 struct igc_nfc_rule *rule, *tmp;
4014
4015 mutex_lock(&adapter->nfc_rule_lock);
4016
4017 list_for_each_entry_safe(rule, tmp, &adapter->nfc_rule_list, list)
4018 igc_del_nfc_rule(adapter, rule);
4019
4020 mutex_unlock(&adapter->nfc_rule_lock);
4021 }
4022
4023 /**
4024 * igc_add_nfc_rule() - Add NFC rule
4025 * @adapter: Pointer to adapter
4026 * @rule: Pointer to rule to be added
4027 *
4028 * Enable NFC rule in hardware and add it to adapter.
4029 *
4030 * Context: Expects adapter->nfc_rule_lock to be held by caller.
4031 *
4032 * Return: 0 on success, negative errno on failure.
4033 */
igc_add_nfc_rule(struct igc_adapter * adapter,struct igc_nfc_rule * rule)4034 int igc_add_nfc_rule(struct igc_adapter *adapter, struct igc_nfc_rule *rule)
4035 {
4036 struct igc_nfc_rule *pred, *cur;
4037 int err;
4038
4039 err = igc_enable_nfc_rule(adapter, rule);
4040 if (err)
4041 return err;
4042
4043 pred = NULL;
4044 list_for_each_entry(cur, &adapter->nfc_rule_list, list) {
4045 if (cur->location >= rule->location)
4046 break;
4047 pred = cur;
4048 }
4049
4050 list_add(&rule->list, pred ? &pred->list : &adapter->nfc_rule_list);
4051 adapter->nfc_rule_count++;
4052 return 0;
4053 }
4054
igc_restore_nfc_rules(struct igc_adapter * adapter)4055 static void igc_restore_nfc_rules(struct igc_adapter *adapter)
4056 {
4057 struct igc_nfc_rule *rule;
4058
4059 mutex_lock(&adapter->nfc_rule_lock);
4060
4061 list_for_each_entry_reverse(rule, &adapter->nfc_rule_list, list)
4062 igc_enable_nfc_rule(adapter, rule);
4063
4064 mutex_unlock(&adapter->nfc_rule_lock);
4065 }
4066
igc_uc_sync(struct net_device * netdev,const unsigned char * addr)4067 static int igc_uc_sync(struct net_device *netdev, const unsigned char *addr)
4068 {
4069 struct igc_adapter *adapter = netdev_priv(netdev);
4070
4071 return igc_add_mac_filter(adapter, IGC_MAC_FILTER_TYPE_DST, addr, -1);
4072 }
4073
igc_uc_unsync(struct net_device * netdev,const unsigned char * addr)4074 static int igc_uc_unsync(struct net_device *netdev, const unsigned char *addr)
4075 {
4076 struct igc_adapter *adapter = netdev_priv(netdev);
4077
4078 igc_del_mac_filter(adapter, IGC_MAC_FILTER_TYPE_DST, addr);
4079 return 0;
4080 }
4081
4082 /**
4083 * igc_enable_empty_addr_recv - Enable Rx of packets with all-zeroes MAC address
4084 * @adapter: Pointer to the igc_adapter structure.
4085 *
4086 * Frame preemption verification requires that packets with the all-zeroes
4087 * MAC address are allowed to be received by the driver. This function adds the
4088 * all-zeroes destination address to the list of acceptable addresses.
4089 *
4090 * Return: 0 on success, negative value otherwise.
4091 */
igc_enable_empty_addr_recv(struct igc_adapter * adapter)4092 int igc_enable_empty_addr_recv(struct igc_adapter *adapter)
4093 {
4094 u8 empty[ETH_ALEN] = {};
4095
4096 return igc_add_mac_filter(adapter, IGC_MAC_FILTER_TYPE_DST, empty, -1);
4097 }
4098
igc_disable_empty_addr_recv(struct igc_adapter * adapter)4099 void igc_disable_empty_addr_recv(struct igc_adapter *adapter)
4100 {
4101 u8 empty[ETH_ALEN] = {};
4102
4103 igc_del_mac_filter(adapter, IGC_MAC_FILTER_TYPE_DST, empty);
4104 }
4105
4106 /**
4107 * igc_set_rx_mode - Secondary Unicast, Multicast and Promiscuous mode set
4108 * @netdev: network interface device structure
4109 *
4110 * The set_rx_mode entry point is called whenever the unicast or multicast
4111 * address lists or the network interface flags are updated. This routine is
4112 * responsible for configuring the hardware for proper unicast, multicast,
4113 * promiscuous mode, and all-multi behavior.
4114 */
igc_set_rx_mode(struct net_device * netdev)4115 static void igc_set_rx_mode(struct net_device *netdev)
4116 {
4117 struct igc_adapter *adapter = netdev_priv(netdev);
4118 struct igc_hw *hw = &adapter->hw;
4119 u32 rctl = 0, rlpml = MAX_JUMBO_FRAME_SIZE;
4120 int count;
4121
4122 /* Check for Promiscuous and All Multicast modes */
4123 if (netdev->flags & IFF_PROMISC) {
4124 rctl |= IGC_RCTL_UPE | IGC_RCTL_MPE;
4125 } else {
4126 if (netdev->flags & IFF_ALLMULTI) {
4127 rctl |= IGC_RCTL_MPE;
4128 } else {
4129 /* Write addresses to the MTA, if the attempt fails
4130 * then we should just turn on promiscuous mode so
4131 * that we can at least receive multicast traffic
4132 */
4133 count = igc_write_mc_addr_list(netdev);
4134 if (count < 0)
4135 rctl |= IGC_RCTL_MPE;
4136 }
4137 }
4138
4139 /* Write addresses to available RAR registers, if there is not
4140 * sufficient space to store all the addresses then enable
4141 * unicast promiscuous mode
4142 */
4143 if (__dev_uc_sync(netdev, igc_uc_sync, igc_uc_unsync))
4144 rctl |= IGC_RCTL_UPE;
4145
4146 /* update state of unicast and multicast */
4147 rctl |= rd32(IGC_RCTL) & ~(IGC_RCTL_UPE | IGC_RCTL_MPE);
4148 wr32(IGC_RCTL, rctl);
4149
4150 #if (PAGE_SIZE < 8192)
4151 if (adapter->max_frame_size <= IGC_MAX_FRAME_BUILD_SKB)
4152 rlpml = IGC_MAX_FRAME_BUILD_SKB;
4153 #endif
4154 wr32(IGC_RLPML, rlpml);
4155 }
4156
4157 /**
4158 * igc_configure - configure the hardware for RX and TX
4159 * @adapter: private board structure
4160 */
igc_configure(struct igc_adapter * adapter)4161 static void igc_configure(struct igc_adapter *adapter)
4162 {
4163 struct net_device *netdev = adapter->netdev;
4164 int i = 0;
4165
4166 igc_get_hw_control(adapter);
4167 igc_set_rx_mode(netdev);
4168
4169 igc_restore_vlan(adapter);
4170
4171 igc_setup_tctl(adapter);
4172 igc_setup_mrqc(adapter);
4173 igc_setup_rctl(adapter);
4174
4175 igc_set_default_mac_filter(adapter);
4176 igc_restore_nfc_rules(adapter);
4177
4178 igc_configure_tx(adapter);
4179 igc_configure_rx(adapter);
4180
4181 igc_rx_fifo_flush_base(&adapter->hw);
4182
4183 /* call igc_desc_unused which always leaves
4184 * at least 1 descriptor unused to make sure
4185 * next_to_use != next_to_clean
4186 */
4187 for (i = 0; i < adapter->num_rx_queues; i++) {
4188 struct igc_ring *ring = adapter->rx_ring[i];
4189
4190 if (ring->xsk_pool)
4191 igc_alloc_rx_buffers_zc(ring, igc_desc_unused(ring));
4192 else
4193 igc_alloc_rx_buffers(ring, igc_desc_unused(ring));
4194 }
4195 }
4196
4197 /**
4198 * igc_write_ivar - configure ivar for given MSI-X vector
4199 * @hw: pointer to the HW structure
4200 * @msix_vector: vector number we are allocating to a given ring
4201 * @index: row index of IVAR register to write within IVAR table
4202 * @offset: column offset of in IVAR, should be multiple of 8
4203 *
4204 * The IVAR table consists of 2 columns,
4205 * each containing an cause allocation for an Rx and Tx ring, and a
4206 * variable number of rows depending on the number of queues supported.
4207 */
igc_write_ivar(struct igc_hw * hw,int msix_vector,int index,int offset)4208 static void igc_write_ivar(struct igc_hw *hw, int msix_vector,
4209 int index, int offset)
4210 {
4211 u32 ivar = array_rd32(IGC_IVAR0, index);
4212
4213 /* clear any bits that are currently set */
4214 ivar &= ~((u32)0xFF << offset);
4215
4216 /* write vector and valid bit */
4217 ivar |= (msix_vector | IGC_IVAR_VALID) << offset;
4218
4219 array_wr32(IGC_IVAR0, index, ivar);
4220 }
4221
igc_assign_vector(struct igc_q_vector * q_vector,int msix_vector)4222 static void igc_assign_vector(struct igc_q_vector *q_vector, int msix_vector)
4223 {
4224 struct igc_adapter *adapter = q_vector->adapter;
4225 struct igc_hw *hw = &adapter->hw;
4226 int rx_queue = IGC_N0_QUEUE;
4227 int tx_queue = IGC_N0_QUEUE;
4228
4229 if (q_vector->rx.ring)
4230 rx_queue = q_vector->rx.ring->reg_idx;
4231 if (q_vector->tx.ring)
4232 tx_queue = q_vector->tx.ring->reg_idx;
4233
4234 switch (hw->mac.type) {
4235 case igc_i225:
4236 if (rx_queue > IGC_N0_QUEUE)
4237 igc_write_ivar(hw, msix_vector,
4238 rx_queue >> 1,
4239 (rx_queue & 0x1) << 4);
4240 if (tx_queue > IGC_N0_QUEUE)
4241 igc_write_ivar(hw, msix_vector,
4242 tx_queue >> 1,
4243 ((tx_queue & 0x1) << 4) + 8);
4244 q_vector->eims_value = BIT(msix_vector);
4245 break;
4246 default:
4247 WARN_ONCE(hw->mac.type != igc_i225, "Wrong MAC type\n");
4248 break;
4249 }
4250
4251 /* add q_vector eims value to global eims_enable_mask */
4252 adapter->eims_enable_mask |= q_vector->eims_value;
4253
4254 /* configure q_vector to set itr on first interrupt */
4255 q_vector->set_itr = 1;
4256 }
4257
4258 /**
4259 * igc_configure_msix - Configure MSI-X hardware
4260 * @adapter: Pointer to adapter structure
4261 *
4262 * igc_configure_msix sets up the hardware to properly
4263 * generate MSI-X interrupts.
4264 */
igc_configure_msix(struct igc_adapter * adapter)4265 static void igc_configure_msix(struct igc_adapter *adapter)
4266 {
4267 struct igc_hw *hw = &adapter->hw;
4268 int i, vector = 0;
4269 u32 tmp;
4270
4271 adapter->eims_enable_mask = 0;
4272
4273 /* set vector for other causes, i.e. link changes */
4274 switch (hw->mac.type) {
4275 case igc_i225:
4276 /* Turn on MSI-X capability first, or our settings
4277 * won't stick. And it will take days to debug.
4278 */
4279 wr32(IGC_GPIE, IGC_GPIE_MSIX_MODE |
4280 IGC_GPIE_PBA | IGC_GPIE_EIAME |
4281 IGC_GPIE_NSICR);
4282
4283 /* enable msix_other interrupt */
4284 adapter->eims_other = BIT(vector);
4285 tmp = (vector++ | IGC_IVAR_VALID) << 8;
4286
4287 wr32(IGC_IVAR_MISC, tmp);
4288 break;
4289 default:
4290 /* do nothing, since nothing else supports MSI-X */
4291 break;
4292 } /* switch (hw->mac.type) */
4293
4294 adapter->eims_enable_mask |= adapter->eims_other;
4295
4296 for (i = 0; i < adapter->num_q_vectors; i++)
4297 igc_assign_vector(adapter->q_vector[i], vector++);
4298
4299 wrfl();
4300 }
4301
4302 /**
4303 * igc_irq_enable - Enable default interrupt generation settings
4304 * @adapter: board private structure
4305 */
igc_irq_enable(struct igc_adapter * adapter)4306 static void igc_irq_enable(struct igc_adapter *adapter)
4307 {
4308 struct igc_hw *hw = &adapter->hw;
4309
4310 if (adapter->msix_entries) {
4311 u32 ims = IGC_IMS_LSC | IGC_IMS_DOUTSYNC | IGC_IMS_DRSTA;
4312 u32 regval = rd32(IGC_EIAC);
4313
4314 wr32(IGC_EIAC, regval | adapter->eims_enable_mask);
4315 regval = rd32(IGC_EIAM);
4316 wr32(IGC_EIAM, regval | adapter->eims_enable_mask);
4317 wr32(IGC_EIMS, adapter->eims_enable_mask);
4318 wr32(IGC_IMS, ims);
4319 } else {
4320 wr32(IGC_IMS, IMS_ENABLE_MASK | IGC_IMS_DRSTA);
4321 wr32(IGC_IAM, IMS_ENABLE_MASK | IGC_IMS_DRSTA);
4322 }
4323 }
4324
4325 /**
4326 * igc_irq_disable - Mask off interrupt generation on the NIC
4327 * @adapter: board private structure
4328 */
igc_irq_disable(struct igc_adapter * adapter)4329 static void igc_irq_disable(struct igc_adapter *adapter)
4330 {
4331 struct igc_hw *hw = &adapter->hw;
4332
4333 if (adapter->msix_entries) {
4334 u32 regval = rd32(IGC_EIAM);
4335
4336 wr32(IGC_EIAM, regval & ~adapter->eims_enable_mask);
4337 wr32(IGC_EIMC, adapter->eims_enable_mask);
4338 regval = rd32(IGC_EIAC);
4339 wr32(IGC_EIAC, regval & ~adapter->eims_enable_mask);
4340 }
4341
4342 wr32(IGC_IAM, 0);
4343 wr32(IGC_IMC, ~0);
4344 wrfl();
4345
4346 if (adapter->msix_entries) {
4347 int vector = 0, i;
4348
4349 synchronize_irq(adapter->msix_entries[vector++].vector);
4350
4351 for (i = 0; i < adapter->num_q_vectors; i++)
4352 synchronize_irq(adapter->msix_entries[vector++].vector);
4353 } else {
4354 synchronize_irq(adapter->pdev->irq);
4355 }
4356 }
4357
igc_set_flag_queue_pairs(struct igc_adapter * adapter,const u32 max_rss_queues)4358 void igc_set_flag_queue_pairs(struct igc_adapter *adapter,
4359 const u32 max_rss_queues)
4360 {
4361 /* Determine if we need to pair queues. */
4362 /* If rss_queues > half of max_rss_queues, pair the queues in
4363 * order to conserve interrupts due to limited supply.
4364 */
4365 if (adapter->rss_queues > (max_rss_queues / 2))
4366 adapter->flags |= IGC_FLAG_QUEUE_PAIRS;
4367 else
4368 adapter->flags &= ~IGC_FLAG_QUEUE_PAIRS;
4369 }
4370
igc_get_max_rss_queues(struct igc_adapter * adapter)4371 unsigned int igc_get_max_rss_queues(struct igc_adapter *adapter)
4372 {
4373 return IGC_MAX_RX_QUEUES;
4374 }
4375
igc_init_queue_configuration(struct igc_adapter * adapter)4376 static void igc_init_queue_configuration(struct igc_adapter *adapter)
4377 {
4378 u32 max_rss_queues;
4379
4380 max_rss_queues = igc_get_max_rss_queues(adapter);
4381 adapter->rss_queues = min_t(u32, max_rss_queues, num_online_cpus());
4382
4383 igc_set_flag_queue_pairs(adapter, max_rss_queues);
4384 }
4385
4386 /**
4387 * igc_reset_q_vector - Reset config for interrupt vector
4388 * @adapter: board private structure to initialize
4389 * @v_idx: Index of vector to be reset
4390 *
4391 * If NAPI is enabled it will delete any references to the
4392 * NAPI struct. This is preparation for igc_free_q_vector.
4393 */
igc_reset_q_vector(struct igc_adapter * adapter,int v_idx)4394 static void igc_reset_q_vector(struct igc_adapter *adapter, int v_idx)
4395 {
4396 struct igc_q_vector *q_vector = adapter->q_vector[v_idx];
4397
4398 /* if we're coming from igc_set_interrupt_capability, the vectors are
4399 * not yet allocated
4400 */
4401 if (!q_vector)
4402 return;
4403
4404 if (q_vector->tx.ring)
4405 adapter->tx_ring[q_vector->tx.ring->queue_index] = NULL;
4406
4407 if (q_vector->rx.ring)
4408 adapter->rx_ring[q_vector->rx.ring->queue_index] = NULL;
4409
4410 netif_napi_del(&q_vector->napi);
4411 }
4412
4413 /**
4414 * igc_free_q_vector - Free memory allocated for specific interrupt vector
4415 * @adapter: board private structure to initialize
4416 * @v_idx: Index of vector to be freed
4417 *
4418 * This function frees the memory allocated to the q_vector.
4419 */
igc_free_q_vector(struct igc_adapter * adapter,int v_idx)4420 static void igc_free_q_vector(struct igc_adapter *adapter, int v_idx)
4421 {
4422 struct igc_q_vector *q_vector = adapter->q_vector[v_idx];
4423
4424 adapter->q_vector[v_idx] = NULL;
4425
4426 /* igc_get_stats64() might access the rings on this vector,
4427 * we must wait a grace period before freeing it.
4428 */
4429 if (q_vector)
4430 kfree_rcu(q_vector, rcu);
4431 }
4432
4433 /**
4434 * igc_free_q_vectors - Free memory allocated for interrupt vectors
4435 * @adapter: board private structure to initialize
4436 *
4437 * This function frees the memory allocated to the q_vectors. In addition if
4438 * NAPI is enabled it will delete any references to the NAPI struct prior
4439 * to freeing the q_vector.
4440 */
igc_free_q_vectors(struct igc_adapter * adapter)4441 static void igc_free_q_vectors(struct igc_adapter *adapter)
4442 {
4443 int v_idx = adapter->num_q_vectors;
4444
4445 adapter->num_tx_queues = 0;
4446 adapter->num_rx_queues = 0;
4447 adapter->num_q_vectors = 0;
4448
4449 while (v_idx--) {
4450 igc_reset_q_vector(adapter, v_idx);
4451 igc_free_q_vector(adapter, v_idx);
4452 }
4453 }
4454
4455 /**
4456 * igc_update_itr - update the dynamic ITR value based on statistics
4457 * @q_vector: pointer to q_vector
4458 * @ring_container: ring info to update the itr for
4459 *
4460 * Stores a new ITR value based on packets and byte
4461 * counts during the last interrupt. The advantage of per interrupt
4462 * computation is faster updates and more accurate ITR for the current
4463 * traffic pattern. Constants in this function were computed
4464 * based on theoretical maximum wire speed and thresholds were set based
4465 * on testing data as well as attempting to minimize response time
4466 * while increasing bulk throughput.
4467 * NOTE: These calculations are only valid when operating in a single-
4468 * queue environment.
4469 */
igc_update_itr(struct igc_q_vector * q_vector,struct igc_ring_container * ring_container)4470 static void igc_update_itr(struct igc_q_vector *q_vector,
4471 struct igc_ring_container *ring_container)
4472 {
4473 unsigned int packets = ring_container->total_packets;
4474 unsigned int bytes = ring_container->total_bytes;
4475 u8 itrval = ring_container->itr;
4476
4477 /* no packets, exit with status unchanged */
4478 if (packets == 0)
4479 return;
4480
4481 switch (itrval) {
4482 case lowest_latency:
4483 /* handle TSO and jumbo frames */
4484 if (bytes / packets > 8000)
4485 itrval = bulk_latency;
4486 else if ((packets < 5) && (bytes > 512))
4487 itrval = low_latency;
4488 break;
4489 case low_latency: /* 50 usec aka 20000 ints/s */
4490 if (bytes > 10000) {
4491 /* this if handles the TSO accounting */
4492 if (bytes / packets > 8000)
4493 itrval = bulk_latency;
4494 else if ((packets < 10) || ((bytes / packets) > 1200))
4495 itrval = bulk_latency;
4496 else if ((packets > 35))
4497 itrval = lowest_latency;
4498 } else if (bytes / packets > 2000) {
4499 itrval = bulk_latency;
4500 } else if (packets <= 2 && bytes < 512) {
4501 itrval = lowest_latency;
4502 }
4503 break;
4504 case bulk_latency: /* 250 usec aka 4000 ints/s */
4505 if (bytes > 25000) {
4506 if (packets > 35)
4507 itrval = low_latency;
4508 } else if (bytes < 1500) {
4509 itrval = low_latency;
4510 }
4511 break;
4512 }
4513
4514 /* clear work counters since we have the values we need */
4515 ring_container->total_bytes = 0;
4516 ring_container->total_packets = 0;
4517
4518 /* write updated itr to ring container */
4519 ring_container->itr = itrval;
4520 }
4521
igc_set_itr(struct igc_q_vector * q_vector)4522 static void igc_set_itr(struct igc_q_vector *q_vector)
4523 {
4524 struct igc_adapter *adapter = q_vector->adapter;
4525 u32 new_itr = q_vector->itr_val;
4526 u8 current_itr = 0;
4527
4528 /* for non-gigabit speeds, just fix the interrupt rate at 4000 */
4529 switch (adapter->link_speed) {
4530 case SPEED_10:
4531 case SPEED_100:
4532 current_itr = 0;
4533 new_itr = IGC_4K_ITR;
4534 goto set_itr_now;
4535 default:
4536 break;
4537 }
4538
4539 igc_update_itr(q_vector, &q_vector->tx);
4540 igc_update_itr(q_vector, &q_vector->rx);
4541
4542 current_itr = max(q_vector->rx.itr, q_vector->tx.itr);
4543
4544 /* conservative mode (itr 3) eliminates the lowest_latency setting */
4545 if (current_itr == lowest_latency &&
4546 ((q_vector->rx.ring && adapter->rx_itr_setting == 3) ||
4547 (!q_vector->rx.ring && adapter->tx_itr_setting == 3)))
4548 current_itr = low_latency;
4549
4550 switch (current_itr) {
4551 /* counts and packets in update_itr are dependent on these numbers */
4552 case lowest_latency:
4553 new_itr = IGC_70K_ITR; /* 70,000 ints/sec */
4554 break;
4555 case low_latency:
4556 new_itr = IGC_20K_ITR; /* 20,000 ints/sec */
4557 break;
4558 case bulk_latency:
4559 new_itr = IGC_4K_ITR; /* 4,000 ints/sec */
4560 break;
4561 default:
4562 break;
4563 }
4564
4565 set_itr_now:
4566 if (new_itr != q_vector->itr_val) {
4567 /* this attempts to bias the interrupt rate towards Bulk
4568 * by adding intermediate steps when interrupt rate is
4569 * increasing
4570 */
4571 new_itr = new_itr > q_vector->itr_val ?
4572 max((new_itr * q_vector->itr_val) /
4573 (new_itr + (q_vector->itr_val >> 2)),
4574 new_itr) : new_itr;
4575 /* Don't write the value here; it resets the adapter's
4576 * internal timer, and causes us to delay far longer than
4577 * we should between interrupts. Instead, we write the ITR
4578 * value at the beginning of the next interrupt so the timing
4579 * ends up being correct.
4580 */
4581 q_vector->itr_val = new_itr;
4582 q_vector->set_itr = 1;
4583 }
4584 }
4585
igc_reset_interrupt_capability(struct igc_adapter * adapter)4586 static void igc_reset_interrupt_capability(struct igc_adapter *adapter)
4587 {
4588 int v_idx = adapter->num_q_vectors;
4589
4590 if (adapter->msix_entries) {
4591 pci_disable_msix(adapter->pdev);
4592 kfree(adapter->msix_entries);
4593 adapter->msix_entries = NULL;
4594 } else if (adapter->flags & IGC_FLAG_HAS_MSI) {
4595 pci_disable_msi(adapter->pdev);
4596 }
4597
4598 while (v_idx--)
4599 igc_reset_q_vector(adapter, v_idx);
4600 }
4601
4602 /**
4603 * igc_set_interrupt_capability - set MSI or MSI-X if supported
4604 * @adapter: Pointer to adapter structure
4605 * @msix: boolean value for MSI-X capability
4606 *
4607 * Attempt to configure interrupts using the best available
4608 * capabilities of the hardware and kernel.
4609 */
igc_set_interrupt_capability(struct igc_adapter * adapter,bool msix)4610 static void igc_set_interrupt_capability(struct igc_adapter *adapter,
4611 bool msix)
4612 {
4613 int numvecs, i;
4614 int err;
4615
4616 if (!msix)
4617 goto msi_only;
4618 adapter->flags |= IGC_FLAG_HAS_MSIX;
4619
4620 /* Number of supported queues. */
4621 adapter->num_rx_queues = adapter->rss_queues;
4622
4623 adapter->num_tx_queues = adapter->rss_queues;
4624
4625 /* start with one vector for every Rx queue */
4626 numvecs = adapter->num_rx_queues;
4627
4628 /* if Tx handler is separate add 1 for every Tx queue */
4629 if (!(adapter->flags & IGC_FLAG_QUEUE_PAIRS))
4630 numvecs += adapter->num_tx_queues;
4631
4632 /* store the number of vectors reserved for queues */
4633 adapter->num_q_vectors = numvecs;
4634
4635 /* add 1 vector for link status interrupts */
4636 numvecs++;
4637
4638 adapter->msix_entries = kzalloc_objs(struct msix_entry, numvecs);
4639
4640 if (!adapter->msix_entries)
4641 return;
4642
4643 /* populate entry values */
4644 for (i = 0; i < numvecs; i++)
4645 adapter->msix_entries[i].entry = i;
4646
4647 err = pci_enable_msix_range(adapter->pdev,
4648 adapter->msix_entries,
4649 numvecs,
4650 numvecs);
4651 if (err > 0)
4652 return;
4653
4654 kfree(adapter->msix_entries);
4655 adapter->msix_entries = NULL;
4656
4657 igc_reset_interrupt_capability(adapter);
4658
4659 msi_only:
4660 adapter->flags &= ~IGC_FLAG_HAS_MSIX;
4661
4662 adapter->rss_queues = 1;
4663 adapter->flags |= IGC_FLAG_QUEUE_PAIRS;
4664 adapter->num_rx_queues = 1;
4665 adapter->num_tx_queues = 1;
4666 adapter->num_q_vectors = 1;
4667 if (!pci_enable_msi(adapter->pdev))
4668 adapter->flags |= IGC_FLAG_HAS_MSI;
4669 }
4670
4671 /**
4672 * igc_update_ring_itr - update the dynamic ITR value based on packet size
4673 * @q_vector: pointer to q_vector
4674 *
4675 * Stores a new ITR value based on strictly on packet size. This
4676 * algorithm is less sophisticated than that used in igc_update_itr,
4677 * due to the difficulty of synchronizing statistics across multiple
4678 * receive rings. The divisors and thresholds used by this function
4679 * were determined based on theoretical maximum wire speed and testing
4680 * data, in order to minimize response time while increasing bulk
4681 * throughput.
4682 * NOTE: This function is called only when operating in a multiqueue
4683 * receive environment.
4684 */
igc_update_ring_itr(struct igc_q_vector * q_vector)4685 static void igc_update_ring_itr(struct igc_q_vector *q_vector)
4686 {
4687 struct igc_adapter *adapter = q_vector->adapter;
4688 int new_val = q_vector->itr_val;
4689 int avg_wire_size = 0;
4690 unsigned int packets;
4691
4692 /* For non-gigabit speeds, just fix the interrupt rate at 4000
4693 * ints/sec - ITR timer value of 120 ticks.
4694 */
4695 switch (adapter->link_speed) {
4696 case SPEED_10:
4697 case SPEED_100:
4698 new_val = IGC_4K_ITR;
4699 goto set_itr_val;
4700 default:
4701 break;
4702 }
4703
4704 packets = q_vector->rx.total_packets;
4705 if (packets)
4706 avg_wire_size = q_vector->rx.total_bytes / packets;
4707
4708 packets = q_vector->tx.total_packets;
4709 if (packets)
4710 avg_wire_size = max_t(u32, avg_wire_size,
4711 q_vector->tx.total_bytes / packets);
4712
4713 /* if avg_wire_size isn't set no work was done */
4714 if (!avg_wire_size)
4715 goto clear_counts;
4716
4717 /* Add 24 bytes to size to account for CRC, preamble, and gap */
4718 avg_wire_size += 24;
4719
4720 /* Don't starve jumbo frames */
4721 avg_wire_size = min(avg_wire_size, 3000);
4722
4723 /* Give a little boost to mid-size frames */
4724 if (avg_wire_size > 300 && avg_wire_size < 1200)
4725 new_val = avg_wire_size / 3;
4726 else
4727 new_val = avg_wire_size / 2;
4728
4729 /* conservative mode (itr 3) eliminates the lowest_latency setting */
4730 if (new_val < IGC_20K_ITR &&
4731 ((q_vector->rx.ring && adapter->rx_itr_setting == 3) ||
4732 (!q_vector->rx.ring && adapter->tx_itr_setting == 3)))
4733 new_val = IGC_20K_ITR;
4734
4735 set_itr_val:
4736 if (new_val != q_vector->itr_val) {
4737 q_vector->itr_val = new_val;
4738 q_vector->set_itr = 1;
4739 }
4740 clear_counts:
4741 q_vector->rx.total_bytes = 0;
4742 q_vector->rx.total_packets = 0;
4743 q_vector->tx.total_bytes = 0;
4744 q_vector->tx.total_packets = 0;
4745 }
4746
igc_ring_irq_enable(struct igc_q_vector * q_vector)4747 static void igc_ring_irq_enable(struct igc_q_vector *q_vector)
4748 {
4749 struct igc_adapter *adapter = q_vector->adapter;
4750 struct igc_hw *hw = &adapter->hw;
4751
4752 if ((q_vector->rx.ring && (adapter->rx_itr_setting & 3)) ||
4753 (!q_vector->rx.ring && (adapter->tx_itr_setting & 3))) {
4754 if (adapter->num_q_vectors == 1)
4755 igc_set_itr(q_vector);
4756 else
4757 igc_update_ring_itr(q_vector);
4758 }
4759
4760 if (!test_bit(__IGC_DOWN, &adapter->state)) {
4761 if (adapter->msix_entries)
4762 wr32(IGC_EIMS, q_vector->eims_value);
4763 else
4764 igc_irq_enable(adapter);
4765 }
4766 }
4767
igc_add_ring(struct igc_ring * ring,struct igc_ring_container * head)4768 static void igc_add_ring(struct igc_ring *ring,
4769 struct igc_ring_container *head)
4770 {
4771 head->ring = ring;
4772 head->count++;
4773 }
4774
4775 /**
4776 * igc_cache_ring_register - Descriptor ring to register mapping
4777 * @adapter: board private structure to initialize
4778 *
4779 * Once we know the feature-set enabled for the device, we'll cache
4780 * the register offset the descriptor ring is assigned to.
4781 */
igc_cache_ring_register(struct igc_adapter * adapter)4782 static void igc_cache_ring_register(struct igc_adapter *adapter)
4783 {
4784 int i = 0, j = 0;
4785
4786 switch (adapter->hw.mac.type) {
4787 case igc_i225:
4788 default:
4789 for (; i < adapter->num_rx_queues; i++)
4790 adapter->rx_ring[i]->reg_idx = i;
4791 for (; j < adapter->num_tx_queues; j++)
4792 adapter->tx_ring[j]->reg_idx = j;
4793 break;
4794 }
4795 }
4796
4797 /**
4798 * igc_poll - NAPI Rx polling callback
4799 * @napi: napi polling structure
4800 * @budget: count of how many packets we should handle
4801 */
igc_poll(struct napi_struct * napi,int budget)4802 static int igc_poll(struct napi_struct *napi, int budget)
4803 {
4804 struct igc_q_vector *q_vector = container_of(napi,
4805 struct igc_q_vector,
4806 napi);
4807 struct igc_ring *rx_ring = q_vector->rx.ring;
4808 bool clean_complete = true;
4809 int work_done = 0;
4810
4811 if (q_vector->tx.ring)
4812 clean_complete = igc_clean_tx_irq(q_vector, budget);
4813
4814 if (rx_ring) {
4815 int cleaned = rx_ring->xsk_pool ?
4816 igc_clean_rx_irq_zc(q_vector, budget) :
4817 igc_clean_rx_irq(q_vector, budget);
4818
4819 work_done += cleaned;
4820 if (cleaned >= budget)
4821 clean_complete = false;
4822 }
4823
4824 /* If all work not completed, return budget and keep polling */
4825 if (!clean_complete)
4826 return budget;
4827
4828 /* Exit the polling mode, but don't re-enable interrupts if stack might
4829 * poll us due to busy-polling
4830 */
4831 if (likely(napi_complete_done(napi, work_done)))
4832 igc_ring_irq_enable(q_vector);
4833
4834 return min(work_done, budget - 1);
4835 }
4836
4837 /**
4838 * igc_alloc_q_vector - Allocate memory for a single interrupt vector
4839 * @adapter: board private structure to initialize
4840 * @v_count: q_vectors allocated on adapter, used for ring interleaving
4841 * @v_idx: index of vector in adapter struct
4842 * @txr_count: total number of Tx rings to allocate
4843 * @txr_idx: index of first Tx ring to allocate
4844 * @rxr_count: total number of Rx rings to allocate
4845 * @rxr_idx: index of first Rx ring to allocate
4846 *
4847 * We allocate one q_vector. If allocation fails we return -ENOMEM.
4848 */
igc_alloc_q_vector(struct igc_adapter * adapter,unsigned int v_count,unsigned int v_idx,unsigned int txr_count,unsigned int txr_idx,unsigned int rxr_count,unsigned int rxr_idx)4849 static int igc_alloc_q_vector(struct igc_adapter *adapter,
4850 unsigned int v_count, unsigned int v_idx,
4851 unsigned int txr_count, unsigned int txr_idx,
4852 unsigned int rxr_count, unsigned int rxr_idx)
4853 {
4854 struct igc_q_vector *q_vector;
4855 struct igc_ring *ring;
4856 int ring_count;
4857
4858 /* igc only supports 1 Tx and/or 1 Rx queue per vector */
4859 if (txr_count > 1 || rxr_count > 1)
4860 return -ENOMEM;
4861
4862 ring_count = txr_count + rxr_count;
4863
4864 /* allocate q_vector and rings */
4865 q_vector = adapter->q_vector[v_idx];
4866 if (!q_vector)
4867 q_vector = kzalloc_flex(*q_vector, ring, ring_count);
4868 else
4869 memset(q_vector, 0, struct_size(q_vector, ring, ring_count));
4870 if (!q_vector)
4871 return -ENOMEM;
4872
4873 /* initialize NAPI */
4874 netif_napi_add(adapter->netdev, &q_vector->napi, igc_poll);
4875
4876 /* tie q_vector and adapter together */
4877 adapter->q_vector[v_idx] = q_vector;
4878 q_vector->adapter = adapter;
4879
4880 /* initialize work limits */
4881 q_vector->tx.work_limit = adapter->tx_work_limit;
4882
4883 /* initialize ITR configuration */
4884 q_vector->itr_register = adapter->io_addr + IGC_EITR(0);
4885 q_vector->itr_val = IGC_START_ITR;
4886
4887 /* initialize pointer to rings */
4888 ring = q_vector->ring;
4889
4890 /* initialize ITR */
4891 if (rxr_count) {
4892 /* rx or rx/tx vector */
4893 if (!adapter->rx_itr_setting || adapter->rx_itr_setting > 3)
4894 q_vector->itr_val = adapter->rx_itr_setting;
4895 } else {
4896 /* tx only vector */
4897 if (!adapter->tx_itr_setting || adapter->tx_itr_setting > 3)
4898 q_vector->itr_val = adapter->tx_itr_setting;
4899 }
4900
4901 if (txr_count) {
4902 /* assign generic ring traits */
4903 ring->dev = &adapter->pdev->dev;
4904 ring->netdev = adapter->netdev;
4905
4906 /* configure backlink on ring */
4907 ring->q_vector = q_vector;
4908
4909 /* update q_vector Tx values */
4910 igc_add_ring(ring, &q_vector->tx);
4911
4912 /* apply Tx specific ring traits */
4913 ring->count = adapter->tx_ring_count;
4914 ring->queue_index = txr_idx;
4915
4916 /* assign ring to adapter */
4917 adapter->tx_ring[txr_idx] = ring;
4918
4919 /* push pointer to next ring */
4920 ring++;
4921 }
4922
4923 if (rxr_count) {
4924 /* assign generic ring traits */
4925 ring->dev = &adapter->pdev->dev;
4926 ring->netdev = adapter->netdev;
4927
4928 /* configure backlink on ring */
4929 ring->q_vector = q_vector;
4930
4931 /* update q_vector Rx values */
4932 igc_add_ring(ring, &q_vector->rx);
4933
4934 /* apply Rx specific ring traits */
4935 ring->count = adapter->rx_ring_count;
4936 ring->queue_index = rxr_idx;
4937
4938 /* assign ring to adapter */
4939 adapter->rx_ring[rxr_idx] = ring;
4940 }
4941
4942 return 0;
4943 }
4944
4945 /**
4946 * igc_alloc_q_vectors - Allocate memory for interrupt vectors
4947 * @adapter: board private structure to initialize
4948 *
4949 * We allocate one q_vector per queue interrupt. If allocation fails we
4950 * return -ENOMEM.
4951 */
igc_alloc_q_vectors(struct igc_adapter * adapter)4952 static int igc_alloc_q_vectors(struct igc_adapter *adapter)
4953 {
4954 int rxr_remaining = adapter->num_rx_queues;
4955 int txr_remaining = adapter->num_tx_queues;
4956 int rxr_idx = 0, txr_idx = 0, v_idx = 0;
4957 int q_vectors = adapter->num_q_vectors;
4958 int err;
4959
4960 if (q_vectors >= (rxr_remaining + txr_remaining)) {
4961 for (; rxr_remaining; v_idx++) {
4962 err = igc_alloc_q_vector(adapter, q_vectors, v_idx,
4963 0, 0, 1, rxr_idx);
4964
4965 if (err)
4966 goto err_out;
4967
4968 /* update counts and index */
4969 rxr_remaining--;
4970 rxr_idx++;
4971 }
4972 }
4973
4974 for (; v_idx < q_vectors; v_idx++) {
4975 int rqpv = DIV_ROUND_UP(rxr_remaining, q_vectors - v_idx);
4976 int tqpv = DIV_ROUND_UP(txr_remaining, q_vectors - v_idx);
4977
4978 err = igc_alloc_q_vector(adapter, q_vectors, v_idx,
4979 tqpv, txr_idx, rqpv, rxr_idx);
4980
4981 if (err)
4982 goto err_out;
4983
4984 /* update counts and index */
4985 rxr_remaining -= rqpv;
4986 txr_remaining -= tqpv;
4987 rxr_idx++;
4988 txr_idx++;
4989 }
4990
4991 return 0;
4992
4993 err_out:
4994 adapter->num_tx_queues = 0;
4995 adapter->num_rx_queues = 0;
4996 adapter->num_q_vectors = 0;
4997
4998 while (v_idx--)
4999 igc_free_q_vector(adapter, v_idx);
5000
5001 return -ENOMEM;
5002 }
5003
5004 /**
5005 * igc_init_interrupt_scheme - initialize interrupts, allocate queues/vectors
5006 * @adapter: Pointer to adapter structure
5007 * @msix: boolean for MSI-X capability
5008 *
5009 * This function initializes the interrupts and allocates all of the queues.
5010 */
igc_init_interrupt_scheme(struct igc_adapter * adapter,bool msix)5011 static int igc_init_interrupt_scheme(struct igc_adapter *adapter, bool msix)
5012 {
5013 struct net_device *dev = adapter->netdev;
5014 int err = 0;
5015
5016 igc_set_interrupt_capability(adapter, msix);
5017
5018 err = igc_alloc_q_vectors(adapter);
5019 if (err) {
5020 netdev_err(dev, "Unable to allocate memory for vectors\n");
5021 goto err_alloc_q_vectors;
5022 }
5023
5024 igc_cache_ring_register(adapter);
5025
5026 return 0;
5027
5028 err_alloc_q_vectors:
5029 igc_reset_interrupt_capability(adapter);
5030 return err;
5031 }
5032
5033 /**
5034 * igc_sw_init - Initialize general software structures (struct igc_adapter)
5035 * @adapter: board private structure to initialize
5036 *
5037 * igc_sw_init initializes the Adapter private data structure.
5038 * Fields are initialized based on PCI device information and
5039 * OS network device settings (MTU size).
5040 */
igc_sw_init(struct igc_adapter * adapter)5041 static int igc_sw_init(struct igc_adapter *adapter)
5042 {
5043 struct net_device *netdev = adapter->netdev;
5044 struct pci_dev *pdev = adapter->pdev;
5045 struct igc_hw *hw = &adapter->hw;
5046
5047 pci_read_config_word(pdev, PCI_COMMAND, &hw->bus.pci_cmd_word);
5048
5049 /* init RSS key */
5050 netdev_rss_key_fill(adapter->rss_key, sizeof(adapter->rss_key));
5051
5052 /* set default ring sizes */
5053 adapter->tx_ring_count = IGC_DEFAULT_TXD;
5054 adapter->rx_ring_count = IGC_DEFAULT_RXD;
5055
5056 /* set default ITR values */
5057 adapter->rx_itr_setting = IGC_DEFAULT_ITR;
5058 adapter->tx_itr_setting = IGC_DEFAULT_ITR;
5059
5060 /* set default work limits */
5061 adapter->tx_work_limit = IGC_DEFAULT_TX_WORK;
5062
5063 /* adjust max frame to be at least the size of a standard frame */
5064 adapter->max_frame_size = netdev->mtu + ETH_HLEN + ETH_FCS_LEN +
5065 VLAN_HLEN;
5066 adapter->min_frame_size = ETH_ZLEN + ETH_FCS_LEN;
5067
5068 mutex_init(&adapter->nfc_rule_lock);
5069 INIT_LIST_HEAD(&adapter->nfc_rule_list);
5070 adapter->nfc_rule_count = 0;
5071
5072 spin_lock_init(&adapter->stats64_lock);
5073 spin_lock_init(&adapter->qbv_tx_lock);
5074 /* Assume MSI-X interrupts, will be checked during IRQ allocation */
5075 adapter->flags |= IGC_FLAG_HAS_MSIX;
5076
5077 igc_init_queue_configuration(adapter);
5078
5079 /* This call may decrease the number of queues */
5080 if (igc_init_interrupt_scheme(adapter, true)) {
5081 netdev_err(netdev, "Unable to allocate memory for queues\n");
5082 return -ENOMEM;
5083 }
5084
5085 /* Explicitly disable IRQ since the NIC can be in any state. */
5086 igc_irq_disable(adapter);
5087
5088 set_bit(__IGC_DOWN, &adapter->state);
5089
5090 return 0;
5091 }
5092
igc_set_queue_napi(struct igc_adapter * adapter,int vector,struct napi_struct * napi)5093 static void igc_set_queue_napi(struct igc_adapter *adapter, int vector,
5094 struct napi_struct *napi)
5095 {
5096 struct igc_q_vector *q_vector = adapter->q_vector[vector];
5097
5098 if (q_vector->rx.ring)
5099 netif_queue_set_napi(adapter->netdev,
5100 q_vector->rx.ring->queue_index,
5101 NETDEV_QUEUE_TYPE_RX, napi);
5102
5103 if (q_vector->tx.ring)
5104 netif_queue_set_napi(adapter->netdev,
5105 q_vector->tx.ring->queue_index,
5106 NETDEV_QUEUE_TYPE_TX, napi);
5107 }
5108
5109 /**
5110 * igc_up - Open the interface and prepare it to handle traffic
5111 * @adapter: board private structure
5112 */
igc_up(struct igc_adapter * adapter)5113 void igc_up(struct igc_adapter *adapter)
5114 {
5115 struct igc_hw *hw = &adapter->hw;
5116 struct napi_struct *napi;
5117 int i = 0;
5118
5119 /* hardware has been reset, we need to reload some things */
5120 igc_configure(adapter);
5121
5122 clear_bit(__IGC_DOWN, &adapter->state);
5123
5124 for (i = 0; i < adapter->num_q_vectors; i++) {
5125 napi = &adapter->q_vector[i]->napi;
5126 napi_enable(napi);
5127 igc_set_queue_napi(adapter, i, napi);
5128 }
5129
5130 if (adapter->msix_entries)
5131 igc_configure_msix(adapter);
5132 else
5133 igc_assign_vector(adapter->q_vector[0], 0);
5134
5135 /* Clear any pending interrupts. */
5136 rd32(IGC_ICR);
5137 igc_irq_enable(adapter);
5138
5139 netif_tx_start_all_queues(adapter->netdev);
5140
5141 /* start the watchdog. */
5142 hw->mac.get_link_status = true;
5143 schedule_work(&adapter->watchdog_task);
5144 }
5145
5146 /**
5147 * igc_update_stats - Update the board statistics counters
5148 * @adapter: board private structure
5149 */
igc_update_stats(struct igc_adapter * adapter)5150 void igc_update_stats(struct igc_adapter *adapter)
5151 {
5152 struct rtnl_link_stats64 *net_stats = &adapter->stats64;
5153 struct pci_dev *pdev = adapter->pdev;
5154 struct igc_hw *hw = &adapter->hw;
5155 u64 _bytes, _packets;
5156 u64 bytes, packets;
5157 unsigned int start;
5158 u32 mpc;
5159 int i;
5160
5161 /* Prevent stats update while adapter is being reset, or if the pci
5162 * connection is down.
5163 */
5164 if (adapter->link_speed == 0)
5165 return;
5166 if (pci_channel_offline(pdev))
5167 return;
5168
5169 packets = 0;
5170 bytes = 0;
5171
5172 rcu_read_lock();
5173 for (i = 0; i < adapter->num_rx_queues; i++) {
5174 struct igc_ring *ring = adapter->rx_ring[i];
5175 u32 rqdpc = rd32(IGC_RQDPC(i));
5176
5177 if (hw->mac.type >= igc_i225)
5178 wr32(IGC_RQDPC(i), 0);
5179
5180 if (rqdpc) {
5181 ring->rx_stats.drops += rqdpc;
5182 net_stats->rx_fifo_errors += rqdpc;
5183 }
5184
5185 do {
5186 start = u64_stats_fetch_begin(&ring->rx_syncp);
5187 _bytes = ring->rx_stats.bytes;
5188 _packets = ring->rx_stats.packets;
5189 } while (u64_stats_fetch_retry(&ring->rx_syncp, start));
5190 bytes += _bytes;
5191 packets += _packets;
5192 }
5193
5194 net_stats->rx_bytes = bytes;
5195 net_stats->rx_packets = packets;
5196
5197 packets = 0;
5198 bytes = 0;
5199 for (i = 0; i < adapter->num_tx_queues; i++) {
5200 struct igc_ring *ring = adapter->tx_ring[i];
5201
5202 do {
5203 start = u64_stats_fetch_begin(&ring->tx_syncp);
5204 _bytes = ring->tx_stats.bytes;
5205 _packets = ring->tx_stats.packets;
5206 } while (u64_stats_fetch_retry(&ring->tx_syncp, start));
5207 bytes += _bytes;
5208 packets += _packets;
5209 }
5210 net_stats->tx_bytes = bytes;
5211 net_stats->tx_packets = packets;
5212 rcu_read_unlock();
5213
5214 /* read stats registers */
5215 adapter->stats.crcerrs += rd32(IGC_CRCERRS);
5216 adapter->stats.gprc += rd32(IGC_GPRC);
5217 adapter->stats.gorc += rd32(IGC_GORCL);
5218 rd32(IGC_GORCH); /* clear GORCL */
5219 adapter->stats.bprc += rd32(IGC_BPRC);
5220 adapter->stats.mprc += rd32(IGC_MPRC);
5221 adapter->stats.roc += rd32(IGC_ROC);
5222
5223 adapter->stats.prc64 += rd32(IGC_PRC64);
5224 adapter->stats.prc127 += rd32(IGC_PRC127);
5225 adapter->stats.prc255 += rd32(IGC_PRC255);
5226 adapter->stats.prc511 += rd32(IGC_PRC511);
5227 adapter->stats.prc1023 += rd32(IGC_PRC1023);
5228 adapter->stats.prc1522 += rd32(IGC_PRC1522);
5229 adapter->stats.tlpic += rd32(IGC_TLPIC);
5230 adapter->stats.rlpic += rd32(IGC_RLPIC);
5231 adapter->stats.hgptc += rd32(IGC_HGPTC);
5232
5233 mpc = rd32(IGC_MPC);
5234 adapter->stats.mpc += mpc;
5235 net_stats->rx_fifo_errors += mpc;
5236 adapter->stats.scc += rd32(IGC_SCC);
5237 adapter->stats.ecol += rd32(IGC_ECOL);
5238 adapter->stats.mcc += rd32(IGC_MCC);
5239 adapter->stats.latecol += rd32(IGC_LATECOL);
5240 adapter->stats.dc += rd32(IGC_DC);
5241 adapter->stats.rlec += rd32(IGC_RLEC);
5242 adapter->stats.xonrxc += rd32(IGC_XONRXC);
5243 adapter->stats.xontxc += rd32(IGC_XONTXC);
5244 adapter->stats.xoffrxc += rd32(IGC_XOFFRXC);
5245 adapter->stats.xofftxc += rd32(IGC_XOFFTXC);
5246 adapter->stats.fcruc += rd32(IGC_FCRUC);
5247 adapter->stats.gptc += rd32(IGC_GPTC);
5248 adapter->stats.gotc += rd32(IGC_GOTCL);
5249 rd32(IGC_GOTCH); /* clear GOTCL */
5250 adapter->stats.rnbc += rd32(IGC_RNBC);
5251 adapter->stats.ruc += rd32(IGC_RUC);
5252 adapter->stats.rfc += rd32(IGC_RFC);
5253 adapter->stats.rjc += rd32(IGC_RJC);
5254 adapter->stats.tor += rd32(IGC_TORH);
5255 adapter->stats.tot += rd32(IGC_TOTH);
5256 adapter->stats.tpr += rd32(IGC_TPR);
5257
5258 adapter->stats.ptc64 += rd32(IGC_PTC64);
5259 adapter->stats.ptc127 += rd32(IGC_PTC127);
5260 adapter->stats.ptc255 += rd32(IGC_PTC255);
5261 adapter->stats.ptc511 += rd32(IGC_PTC511);
5262 adapter->stats.ptc1023 += rd32(IGC_PTC1023);
5263 adapter->stats.ptc1522 += rd32(IGC_PTC1522);
5264
5265 adapter->stats.mptc += rd32(IGC_MPTC);
5266 adapter->stats.bptc += rd32(IGC_BPTC);
5267
5268 adapter->stats.tpt += rd32(IGC_TPT);
5269 adapter->stats.colc += rd32(IGC_COLC);
5270 adapter->stats.colc += rd32(IGC_RERC);
5271
5272 adapter->stats.algnerrc += rd32(IGC_ALGNERRC);
5273
5274 adapter->stats.tsctc += rd32(IGC_TSCTC);
5275
5276 adapter->stats.iac += rd32(IGC_IAC);
5277
5278 /* Fill out the OS statistics structure */
5279 net_stats->multicast = adapter->stats.mprc;
5280 net_stats->collisions = adapter->stats.colc;
5281
5282 /* Rx Errors */
5283
5284 /* RLEC on some newer hardware can be incorrect so build
5285 * our own version based on RUC and ROC
5286 */
5287 net_stats->rx_errors = adapter->stats.rxerrc +
5288 adapter->stats.crcerrs + adapter->stats.algnerrc +
5289 adapter->stats.ruc + adapter->stats.roc +
5290 adapter->stats.cexterr;
5291 net_stats->rx_length_errors = adapter->stats.ruc +
5292 adapter->stats.roc;
5293 net_stats->rx_crc_errors = adapter->stats.crcerrs;
5294 net_stats->rx_frame_errors = adapter->stats.algnerrc;
5295 net_stats->rx_missed_errors = adapter->stats.mpc;
5296
5297 /* Tx Errors */
5298 net_stats->tx_errors = adapter->stats.ecol +
5299 adapter->stats.latecol;
5300 net_stats->tx_aborted_errors = adapter->stats.ecol;
5301 net_stats->tx_window_errors = adapter->stats.latecol;
5302 net_stats->tx_carrier_errors = adapter->stats.tncrs;
5303
5304 /* Tx Dropped */
5305 net_stats->tx_dropped = adapter->stats.txdrop;
5306
5307 /* Management Stats */
5308 adapter->stats.mgptc += rd32(IGC_MGTPTC);
5309 adapter->stats.mgprc += rd32(IGC_MGTPRC);
5310 adapter->stats.mgpdc += rd32(IGC_MGTPDC);
5311 }
5312
5313 /**
5314 * igc_down - Close the interface
5315 * @adapter: board private structure
5316 */
igc_down(struct igc_adapter * adapter)5317 void igc_down(struct igc_adapter *adapter)
5318 {
5319 struct net_device *netdev = adapter->netdev;
5320 struct igc_hw *hw = &adapter->hw;
5321 u32 tctl, rctl;
5322 int i = 0;
5323
5324 set_bit(__IGC_DOWN, &adapter->state);
5325
5326 igc_ptp_suspend(adapter);
5327
5328 if (pci_device_is_present(adapter->pdev)) {
5329 /* disable receives in the hardware */
5330 rctl = rd32(IGC_RCTL);
5331 wr32(IGC_RCTL, rctl & ~IGC_RCTL_EN);
5332 /* flush and sleep below */
5333 }
5334 /* set trans_start so we don't get spurious watchdogs during reset */
5335 netif_trans_update(netdev);
5336
5337 netif_carrier_off(netdev);
5338 netif_tx_stop_all_queues(netdev);
5339
5340 if (pci_device_is_present(adapter->pdev)) {
5341 /* disable transmits in the hardware */
5342 tctl = rd32(IGC_TCTL);
5343 tctl &= ~IGC_TCTL_EN;
5344 wr32(IGC_TCTL, tctl);
5345 /* flush both disables and wait for them to finish */
5346 wrfl();
5347 usleep_range(10000, 20000);
5348
5349 igc_irq_disable(adapter);
5350 }
5351
5352 adapter->flags &= ~IGC_FLAG_NEED_LINK_UPDATE;
5353
5354 for (i = 0; i < adapter->num_q_vectors; i++) {
5355 if (adapter->q_vector[i]) {
5356 napi_disable(&adapter->q_vector[i]->napi);
5357 igc_set_queue_napi(adapter, i, NULL);
5358 }
5359 }
5360
5361 timer_delete_sync(&adapter->watchdog_timer);
5362 timer_delete_sync(&adapter->phy_info_timer);
5363
5364 /* record the stats before reset*/
5365 spin_lock(&adapter->stats64_lock);
5366 igc_update_stats(adapter);
5367 spin_unlock(&adapter->stats64_lock);
5368
5369 adapter->link_speed = 0;
5370 adapter->link_duplex = 0;
5371
5372 if (!pci_channel_offline(adapter->pdev))
5373 igc_reset(adapter);
5374
5375 /* clear VLAN promisc flag so VFTA will be updated if necessary */
5376 adapter->flags &= ~IGC_FLAG_VLAN_PROMISC;
5377
5378 igc_disable_all_tx_rings_hw(adapter);
5379 igc_clean_all_tx_rings(adapter);
5380 igc_clean_all_rx_rings(adapter);
5381
5382 if (adapter->fpe.mmsv.pmac_enabled)
5383 ethtool_mmsv_stop(&adapter->fpe.mmsv);
5384 }
5385
igc_reinit_locked(struct igc_adapter * adapter)5386 void igc_reinit_locked(struct igc_adapter *adapter)
5387 {
5388 while (test_and_set_bit(__IGC_RESETTING, &adapter->state))
5389 usleep_range(1000, 2000);
5390 igc_down(adapter);
5391 igc_up(adapter);
5392 clear_bit(__IGC_RESETTING, &adapter->state);
5393 }
5394
igc_reset_task(struct work_struct * work)5395 static void igc_reset_task(struct work_struct *work)
5396 {
5397 struct igc_adapter *adapter;
5398
5399 adapter = container_of(work, struct igc_adapter, reset_task);
5400
5401 rtnl_lock();
5402 /* If we're already down or resetting, just bail */
5403 if (test_bit(__IGC_DOWN, &adapter->state) ||
5404 test_bit(__IGC_RESETTING, &adapter->state)) {
5405 rtnl_unlock();
5406 return;
5407 }
5408
5409 igc_rings_dump(adapter);
5410 igc_regs_dump(adapter);
5411 netdev_err(adapter->netdev, "Reset adapter\n");
5412 igc_reinit_locked(adapter);
5413 rtnl_unlock();
5414 }
5415
5416 /**
5417 * igc_change_mtu - Change the Maximum Transfer Unit
5418 * @netdev: network interface device structure
5419 * @new_mtu: new value for maximum frame size
5420 *
5421 * Returns 0 on success, negative on failure
5422 */
igc_change_mtu(struct net_device * netdev,int new_mtu)5423 static int igc_change_mtu(struct net_device *netdev, int new_mtu)
5424 {
5425 int max_frame = new_mtu + ETH_HLEN + ETH_FCS_LEN + VLAN_HLEN;
5426 struct igc_adapter *adapter = netdev_priv(netdev);
5427
5428 if (igc_xdp_is_enabled(adapter) && new_mtu > ETH_DATA_LEN) {
5429 netdev_dbg(netdev, "Jumbo frames not supported with XDP");
5430 return -EINVAL;
5431 }
5432
5433 /* adjust max frame to be at least the size of a standard frame */
5434 if (max_frame < (ETH_FRAME_LEN + ETH_FCS_LEN))
5435 max_frame = ETH_FRAME_LEN + ETH_FCS_LEN;
5436
5437 while (test_and_set_bit(__IGC_RESETTING, &adapter->state))
5438 usleep_range(1000, 2000);
5439
5440 /* igc_down has a dependency on max_frame_size */
5441 adapter->max_frame_size = max_frame;
5442
5443 if (netif_running(netdev))
5444 igc_down(adapter);
5445
5446 netdev_dbg(netdev, "changing MTU from %d to %d\n", netdev->mtu, new_mtu);
5447 WRITE_ONCE(netdev->mtu, new_mtu);
5448
5449 if (netif_running(netdev))
5450 igc_up(adapter);
5451 else
5452 igc_reset(adapter);
5453
5454 clear_bit(__IGC_RESETTING, &adapter->state);
5455
5456 return 0;
5457 }
5458
5459 /**
5460 * igc_tx_timeout - Respond to a Tx Hang
5461 * @netdev: network interface device structure
5462 * @txqueue: queue number that timed out
5463 **/
igc_tx_timeout(struct net_device * netdev,unsigned int __always_unused txqueue)5464 static void igc_tx_timeout(struct net_device *netdev,
5465 unsigned int __always_unused txqueue)
5466 {
5467 struct igc_adapter *adapter = netdev_priv(netdev);
5468 struct igc_hw *hw = &adapter->hw;
5469
5470 /* Do the reset outside of interrupt context */
5471 adapter->tx_timeout_count++;
5472 schedule_work(&adapter->reset_task);
5473 wr32(IGC_EICS,
5474 (adapter->eims_enable_mask & ~adapter->eims_other));
5475 }
5476
5477 /**
5478 * igc_get_stats64 - Get System Network Statistics
5479 * @netdev: network interface device structure
5480 * @stats: rtnl_link_stats64 pointer
5481 *
5482 * Returns the address of the device statistics structure.
5483 * The statistics are updated here and also from the timer callback.
5484 */
igc_get_stats64(struct net_device * netdev,struct rtnl_link_stats64 * stats)5485 static void igc_get_stats64(struct net_device *netdev,
5486 struct rtnl_link_stats64 *stats)
5487 {
5488 struct igc_adapter *adapter = netdev_priv(netdev);
5489
5490 spin_lock(&adapter->stats64_lock);
5491 if (!test_bit(__IGC_RESETTING, &adapter->state))
5492 igc_update_stats(adapter);
5493 memcpy(stats, &adapter->stats64, sizeof(*stats));
5494 spin_unlock(&adapter->stats64_lock);
5495 }
5496
igc_fix_features(struct net_device * netdev,netdev_features_t features)5497 static netdev_features_t igc_fix_features(struct net_device *netdev,
5498 netdev_features_t features)
5499 {
5500 /* Since there is no support for separate Rx/Tx vlan accel
5501 * enable/disable make sure Tx flag is always in same state as Rx.
5502 */
5503 if (features & NETIF_F_HW_VLAN_CTAG_RX)
5504 features |= NETIF_F_HW_VLAN_CTAG_TX;
5505 else
5506 features &= ~NETIF_F_HW_VLAN_CTAG_TX;
5507
5508 return features;
5509 }
5510
igc_set_features(struct net_device * netdev,netdev_features_t features)5511 static int igc_set_features(struct net_device *netdev,
5512 netdev_features_t features)
5513 {
5514 netdev_features_t changed = netdev->features ^ features;
5515 struct igc_adapter *adapter = netdev_priv(netdev);
5516
5517 if (changed & NETIF_F_HW_VLAN_CTAG_RX)
5518 igc_vlan_mode(netdev, features);
5519
5520 /* Add VLAN support */
5521 if (!(changed & (NETIF_F_RXALL | NETIF_F_NTUPLE)))
5522 return 0;
5523
5524 if (!(features & NETIF_F_NTUPLE))
5525 igc_flush_nfc_rules(adapter);
5526
5527 netdev->features = features;
5528
5529 if (netif_running(netdev))
5530 igc_reinit_locked(adapter);
5531 else
5532 igc_reset(adapter);
5533
5534 return 1;
5535 }
5536
5537 static netdev_features_t
igc_features_check(struct sk_buff * skb,struct net_device * dev,netdev_features_t features)5538 igc_features_check(struct sk_buff *skb, struct net_device *dev,
5539 netdev_features_t features)
5540 {
5541 unsigned int network_hdr_len, mac_hdr_len;
5542
5543 /* Make certain the headers can be described by a context descriptor */
5544 mac_hdr_len = skb_network_offset(skb);
5545 if (unlikely(mac_hdr_len > IGC_MAX_MAC_HDR_LEN))
5546 return features & ~(NETIF_F_HW_CSUM |
5547 NETIF_F_SCTP_CRC |
5548 NETIF_F_HW_VLAN_CTAG_TX |
5549 NETIF_F_TSO |
5550 NETIF_F_TSO6);
5551
5552 network_hdr_len = skb_checksum_start(skb) - skb_network_header(skb);
5553 if (unlikely(network_hdr_len > IGC_MAX_NETWORK_HDR_LEN))
5554 return features & ~(NETIF_F_HW_CSUM |
5555 NETIF_F_SCTP_CRC |
5556 NETIF_F_TSO |
5557 NETIF_F_TSO6);
5558
5559 /* We can only support IPv4 TSO in tunnels if we can mangle the
5560 * inner IP ID field, so strip TSO if MANGLEID is not supported.
5561 */
5562 if (skb->encapsulation && !(features & NETIF_F_TSO_MANGLEID))
5563 features &= ~NETIF_F_TSO;
5564
5565 return features;
5566 }
5567
igc_tsync_interrupt(struct igc_adapter * adapter)5568 static void igc_tsync_interrupt(struct igc_adapter *adapter)
5569 {
5570 struct igc_hw *hw = &adapter->hw;
5571 u32 tsauxc, sec, nsec, tsicr;
5572 struct ptp_clock_event event;
5573 struct timespec64 ts;
5574
5575 tsicr = rd32(IGC_TSICR);
5576
5577 if (tsicr & IGC_TSICR_SYS_WRAP) {
5578 event.type = PTP_CLOCK_PPS;
5579 if (adapter->ptp_caps.pps)
5580 ptp_clock_event(adapter->ptp_clock, &event);
5581 }
5582
5583 if (tsicr & IGC_TSICR_TXTS) {
5584 /* retrieve hardware timestamp */
5585 igc_ptp_tx_tstamp_event(adapter);
5586 }
5587
5588 if (tsicr & IGC_TSICR_TT0) {
5589 spin_lock(&adapter->tmreg_lock);
5590 ts = timespec64_add(adapter->perout[0].start,
5591 adapter->perout[0].period);
5592 wr32(IGC_TRGTTIML0, ts.tv_nsec | IGC_TT_IO_TIMER_SEL_SYSTIM0);
5593 wr32(IGC_TRGTTIMH0, (u32)ts.tv_sec);
5594 tsauxc = rd32(IGC_TSAUXC);
5595 tsauxc |= IGC_TSAUXC_EN_TT0;
5596 wr32(IGC_TSAUXC, tsauxc);
5597 adapter->perout[0].start = ts;
5598 spin_unlock(&adapter->tmreg_lock);
5599 }
5600
5601 if (tsicr & IGC_TSICR_TT1) {
5602 spin_lock(&adapter->tmreg_lock);
5603 ts = timespec64_add(adapter->perout[1].start,
5604 adapter->perout[1].period);
5605 wr32(IGC_TRGTTIML1, ts.tv_nsec | IGC_TT_IO_TIMER_SEL_SYSTIM0);
5606 wr32(IGC_TRGTTIMH1, (u32)ts.tv_sec);
5607 tsauxc = rd32(IGC_TSAUXC);
5608 tsauxc |= IGC_TSAUXC_EN_TT1;
5609 wr32(IGC_TSAUXC, tsauxc);
5610 adapter->perout[1].start = ts;
5611 spin_unlock(&adapter->tmreg_lock);
5612 }
5613
5614 if (tsicr & IGC_TSICR_AUTT0) {
5615 nsec = rd32(IGC_AUXSTMPL0);
5616 sec = rd32(IGC_AUXSTMPH0);
5617 event.type = PTP_CLOCK_EXTTS;
5618 event.index = 0;
5619 event.timestamp = sec * NSEC_PER_SEC + nsec;
5620 ptp_clock_event(adapter->ptp_clock, &event);
5621 }
5622
5623 if (tsicr & IGC_TSICR_AUTT1) {
5624 nsec = rd32(IGC_AUXSTMPL1);
5625 sec = rd32(IGC_AUXSTMPH1);
5626 event.type = PTP_CLOCK_EXTTS;
5627 event.index = 1;
5628 event.timestamp = sec * NSEC_PER_SEC + nsec;
5629 ptp_clock_event(adapter->ptp_clock, &event);
5630 }
5631 }
5632
5633 /**
5634 * igc_msix_other - msix other interrupt handler
5635 * @irq: interrupt number
5636 * @data: pointer to a q_vector
5637 */
igc_msix_other(int irq,void * data)5638 static irqreturn_t igc_msix_other(int irq, void *data)
5639 {
5640 struct igc_adapter *adapter = data;
5641 struct igc_hw *hw = &adapter->hw;
5642 u32 icr = rd32(IGC_ICR);
5643
5644 /* reading ICR causes bit 31 of EICR to be cleared */
5645 if (icr & IGC_ICR_DRSTA)
5646 schedule_work(&adapter->reset_task);
5647
5648 if (icr & IGC_ICR_DOUTSYNC) {
5649 /* HW is reporting DMA is out of sync */
5650 adapter->stats.doosync++;
5651 }
5652
5653 if (icr & IGC_ICR_LSC) {
5654 hw->mac.get_link_status = true;
5655 /* guard against interrupt when we're going down */
5656 if (!test_bit(__IGC_DOWN, &adapter->state))
5657 mod_timer(&adapter->watchdog_timer, jiffies + 1);
5658 }
5659
5660 if (icr & IGC_ICR_TS)
5661 igc_tsync_interrupt(adapter);
5662
5663 wr32(IGC_EIMS, adapter->eims_other);
5664
5665 return IRQ_HANDLED;
5666 }
5667
igc_write_itr(struct igc_q_vector * q_vector)5668 static void igc_write_itr(struct igc_q_vector *q_vector)
5669 {
5670 u32 itr_val = q_vector->itr_val & IGC_QVECTOR_MASK;
5671
5672 if (!q_vector->set_itr)
5673 return;
5674
5675 if (!itr_val)
5676 itr_val = IGC_ITR_VAL_MASK;
5677
5678 itr_val |= IGC_EITR_CNT_IGNR;
5679
5680 writel(itr_val, q_vector->itr_register);
5681 q_vector->set_itr = 0;
5682 }
5683
igc_msix_ring(int irq,void * data)5684 static irqreturn_t igc_msix_ring(int irq, void *data)
5685 {
5686 struct igc_q_vector *q_vector = data;
5687
5688 /* Write the ITR value calculated from the previous interrupt. */
5689 igc_write_itr(q_vector);
5690
5691 napi_schedule_irqoff(&q_vector->napi);
5692
5693 return IRQ_HANDLED;
5694 }
5695
5696 /**
5697 * igc_request_msix - Initialize MSI-X interrupts
5698 * @adapter: Pointer to adapter structure
5699 *
5700 * igc_request_msix allocates MSI-X vectors and requests interrupts from the
5701 * kernel.
5702 */
igc_request_msix(struct igc_adapter * adapter)5703 static int igc_request_msix(struct igc_adapter *adapter)
5704 {
5705 unsigned int num_q_vectors = adapter->num_q_vectors;
5706 int i = 0, err = 0, vector = 0, free_vector = 0;
5707 struct net_device *netdev = adapter->netdev;
5708
5709 err = request_irq(adapter->msix_entries[vector].vector,
5710 &igc_msix_other, 0, netdev->name, adapter);
5711 if (err)
5712 goto err_out;
5713
5714 if (num_q_vectors > MAX_Q_VECTORS) {
5715 num_q_vectors = MAX_Q_VECTORS;
5716 dev_warn(&adapter->pdev->dev,
5717 "The number of queue vectors (%d) is higher than max allowed (%d)\n",
5718 adapter->num_q_vectors, MAX_Q_VECTORS);
5719 }
5720 for (i = 0; i < num_q_vectors; i++) {
5721 struct igc_q_vector *q_vector = adapter->q_vector[i];
5722
5723 vector++;
5724
5725 q_vector->itr_register = adapter->io_addr + IGC_EITR(vector);
5726
5727 if (q_vector->rx.ring && q_vector->tx.ring)
5728 sprintf(q_vector->name, "%s-TxRx-%u", netdev->name,
5729 q_vector->rx.ring->queue_index);
5730 else if (q_vector->tx.ring)
5731 sprintf(q_vector->name, "%s-tx-%u", netdev->name,
5732 q_vector->tx.ring->queue_index);
5733 else if (q_vector->rx.ring)
5734 sprintf(q_vector->name, "%s-rx-%u", netdev->name,
5735 q_vector->rx.ring->queue_index);
5736 else
5737 sprintf(q_vector->name, "%s-unused", netdev->name);
5738
5739 err = request_irq(adapter->msix_entries[vector].vector,
5740 igc_msix_ring, 0, q_vector->name,
5741 q_vector);
5742 if (err)
5743 goto err_free;
5744
5745 netif_napi_set_irq(&q_vector->napi,
5746 adapter->msix_entries[vector].vector);
5747 }
5748
5749 igc_configure_msix(adapter);
5750 return 0;
5751
5752 err_free:
5753 /* free already assigned IRQs */
5754 free_irq(adapter->msix_entries[free_vector++].vector, adapter);
5755
5756 vector--;
5757 for (i = 0; i < vector; i++) {
5758 free_irq(adapter->msix_entries[free_vector++].vector,
5759 adapter->q_vector[i]);
5760 }
5761 err_out:
5762 return err;
5763 }
5764
5765 /**
5766 * igc_clear_interrupt_scheme - reset the device to a state of no interrupts
5767 * @adapter: Pointer to adapter structure
5768 *
5769 * This function resets the device so that it has 0 rx queues, tx queues, and
5770 * MSI-X interrupts allocated.
5771 */
igc_clear_interrupt_scheme(struct igc_adapter * adapter)5772 static void igc_clear_interrupt_scheme(struct igc_adapter *adapter)
5773 {
5774 igc_free_q_vectors(adapter);
5775 igc_reset_interrupt_capability(adapter);
5776 }
5777
5778 /* Need to wait a few seconds after link up to get diagnostic information from
5779 * the phy
5780 */
igc_update_phy_info(struct timer_list * t)5781 static void igc_update_phy_info(struct timer_list *t)
5782 {
5783 struct igc_adapter *adapter = timer_container_of(adapter, t,
5784 phy_info_timer);
5785
5786 igc_get_phy_info(&adapter->hw);
5787 }
5788
5789 /**
5790 * igc_has_link - check shared code for link and determine up/down
5791 * @adapter: pointer to driver private info
5792 */
igc_has_link(struct igc_adapter * adapter)5793 bool igc_has_link(struct igc_adapter *adapter)
5794 {
5795 struct igc_hw *hw = &adapter->hw;
5796 bool link_active = false;
5797
5798 /* get_link_status is set on LSC (link status) interrupt or
5799 * rx sequence error interrupt. get_link_status will stay
5800 * false until the igc_check_for_link establishes link
5801 * for copper adapters ONLY
5802 */
5803 if (!hw->mac.get_link_status)
5804 return true;
5805 hw->mac.ops.check_for_link(hw);
5806 link_active = !hw->mac.get_link_status;
5807
5808 if (hw->mac.type == igc_i225) {
5809 if (!netif_carrier_ok(adapter->netdev)) {
5810 adapter->flags &= ~IGC_FLAG_NEED_LINK_UPDATE;
5811 } else if (!(adapter->flags & IGC_FLAG_NEED_LINK_UPDATE)) {
5812 adapter->flags |= IGC_FLAG_NEED_LINK_UPDATE;
5813 adapter->link_check_timeout = jiffies;
5814 }
5815 }
5816
5817 return link_active;
5818 }
5819
5820 /**
5821 * igc_watchdog - Timer Call-back
5822 * @t: timer for the watchdog
5823 */
igc_watchdog(struct timer_list * t)5824 static void igc_watchdog(struct timer_list *t)
5825 {
5826 struct igc_adapter *adapter = timer_container_of(adapter, t,
5827 watchdog_timer);
5828 /* Do the rest outside of interrupt context */
5829 schedule_work(&adapter->watchdog_task);
5830 }
5831
igc_watchdog_task(struct work_struct * work)5832 static void igc_watchdog_task(struct work_struct *work)
5833 {
5834 struct igc_adapter *adapter = container_of(work,
5835 struct igc_adapter,
5836 watchdog_task);
5837 struct net_device *netdev = adapter->netdev;
5838 struct igc_hw *hw = &adapter->hw;
5839 struct igc_phy_info *phy = &hw->phy;
5840 u16 phy_data, retry_count = 20;
5841 u32 link;
5842 int i;
5843
5844 link = igc_has_link(adapter);
5845
5846 if (adapter->flags & IGC_FLAG_NEED_LINK_UPDATE) {
5847 if (time_after(jiffies, (adapter->link_check_timeout + HZ)))
5848 adapter->flags &= ~IGC_FLAG_NEED_LINK_UPDATE;
5849 else
5850 link = false;
5851 }
5852
5853 if (link) {
5854 /* Cancel scheduled suspend requests. */
5855 pm_runtime_resume(netdev->dev.parent);
5856
5857 if (!netif_carrier_ok(netdev)) {
5858 u32 ctrl;
5859
5860 hw->mac.ops.get_speed_and_duplex(hw,
5861 &adapter->link_speed,
5862 &adapter->link_duplex);
5863
5864 ctrl = rd32(IGC_CTRL);
5865 /* Link status message must follow this format */
5866 netdev_info(netdev,
5867 "NIC Link is Up %d Mbps %s Duplex, Flow Control: %s\n",
5868 adapter->link_speed,
5869 adapter->link_duplex == FULL_DUPLEX ?
5870 "Full" : "Half",
5871 (ctrl & IGC_CTRL_TFCE) &&
5872 (ctrl & IGC_CTRL_RFCE) ? "RX/TX" :
5873 (ctrl & IGC_CTRL_RFCE) ? "RX" :
5874 (ctrl & IGC_CTRL_TFCE) ? "TX" : "None");
5875
5876 /* disable EEE if enabled */
5877 if ((adapter->flags & IGC_FLAG_EEE) &&
5878 adapter->link_duplex == HALF_DUPLEX) {
5879 netdev_info(netdev,
5880 "EEE Disabled: unsupported at half duplex. Re-enable using ethtool when at full duplex\n");
5881 adapter->hw.dev_spec._base.eee_enable = false;
5882 adapter->flags &= ~IGC_FLAG_EEE;
5883 }
5884
5885 /* check if SmartSpeed worked */
5886 igc_check_downshift(hw);
5887 if (phy->speed_downgraded)
5888 netdev_warn(netdev, "Link Speed was downgraded by SmartSpeed\n");
5889
5890 /* adjust timeout factor according to speed/duplex */
5891 adapter->tx_timeout_factor = 1;
5892 switch (adapter->link_speed) {
5893 case SPEED_10:
5894 adapter->tx_timeout_factor = 14;
5895 break;
5896 case SPEED_100:
5897 case SPEED_1000:
5898 case SPEED_2500:
5899 adapter->tx_timeout_factor = 1;
5900 break;
5901 }
5902
5903 /* Once the launch time has been set on the wire, there
5904 * is a delay before the link speed can be determined
5905 * based on link-up activity. Write into the register
5906 * as soon as we know the correct link speed.
5907 */
5908 igc_tsn_adjust_txtime_offset(adapter);
5909
5910 if (adapter->fpe.mmsv.pmac_enabled)
5911 ethtool_mmsv_link_state_handle(&adapter->fpe.mmsv,
5912 true);
5913
5914 if (adapter->link_speed != SPEED_1000)
5915 goto no_wait;
5916
5917 /* wait for Remote receiver status OK */
5918 retry_read_status:
5919 if (!igc_read_phy_reg(hw, PHY_1000T_STATUS,
5920 &phy_data)) {
5921 if (!(phy_data & SR_1000T_REMOTE_RX_STATUS) &&
5922 retry_count) {
5923 msleep(100);
5924 retry_count--;
5925 goto retry_read_status;
5926 } else if (!retry_count) {
5927 netdev_err(netdev, "exceed max 2 second\n");
5928 }
5929 } else {
5930 netdev_err(netdev, "read 1000Base-T Status Reg\n");
5931 }
5932 no_wait:
5933 netif_carrier_on(netdev);
5934
5935 /* link state has changed, schedule phy info update */
5936 if (!test_bit(__IGC_DOWN, &adapter->state))
5937 mod_timer(&adapter->phy_info_timer,
5938 round_jiffies(jiffies + 2 * HZ));
5939 }
5940 } else {
5941 if (netif_carrier_ok(netdev)) {
5942 adapter->link_speed = 0;
5943 adapter->link_duplex = 0;
5944
5945 /* Links status message must follow this format */
5946 netdev_info(netdev, "NIC Link is Down\n");
5947 netif_carrier_off(netdev);
5948
5949 if (adapter->fpe.mmsv.pmac_enabled)
5950 ethtool_mmsv_link_state_handle(&adapter->fpe.mmsv,
5951 false);
5952
5953 /* link state has changed, schedule phy info update */
5954 if (!test_bit(__IGC_DOWN, &adapter->state))
5955 mod_timer(&adapter->phy_info_timer,
5956 round_jiffies(jiffies + 2 * HZ));
5957
5958 pm_schedule_suspend(netdev->dev.parent,
5959 MSEC_PER_SEC * 5);
5960 }
5961 }
5962
5963 spin_lock(&adapter->stats64_lock);
5964 igc_update_stats(adapter);
5965 spin_unlock(&adapter->stats64_lock);
5966
5967 for (i = 0; i < adapter->num_tx_queues; i++) {
5968 struct igc_ring *tx_ring = adapter->tx_ring[i];
5969
5970 if (!netif_carrier_ok(netdev)) {
5971 /* We've lost link, so the controller stops DMA,
5972 * but we've got queued Tx work that's never going
5973 * to get done, so reset controller to flush Tx.
5974 * (Do the reset outside of interrupt context).
5975 */
5976 if (igc_desc_unused(tx_ring) + 1 < tx_ring->count) {
5977 adapter->tx_timeout_count++;
5978 schedule_work(&adapter->reset_task);
5979 /* return immediately since reset is imminent */
5980 return;
5981 }
5982 }
5983
5984 /* Force detection of hung controller every watchdog period */
5985 set_bit(IGC_RING_FLAG_TX_DETECT_HANG, &tx_ring->flags);
5986 }
5987
5988 /* Cause software interrupt to ensure Rx ring is cleaned */
5989 if (adapter->flags & IGC_FLAG_HAS_MSIX) {
5990 u32 eics = 0;
5991
5992 for (i = 0; i < adapter->num_q_vectors; i++) {
5993 struct igc_q_vector *q_vector = adapter->q_vector[i];
5994 struct igc_ring *rx_ring;
5995
5996 if (!q_vector->rx.ring)
5997 continue;
5998
5999 rx_ring = adapter->rx_ring[q_vector->rx.ring->queue_index];
6000
6001 if (test_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &rx_ring->flags)) {
6002 eics |= q_vector->eims_value;
6003 clear_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &rx_ring->flags);
6004 }
6005 }
6006 if (eics)
6007 wr32(IGC_EICS, eics);
6008 } else {
6009 struct igc_ring *rx_ring = adapter->rx_ring[0];
6010
6011 if (test_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &rx_ring->flags)) {
6012 clear_bit(IGC_RING_FLAG_RX_ALLOC_FAILED, &rx_ring->flags);
6013 wr32(IGC_ICS, IGC_ICS_RXDMT0);
6014 }
6015 }
6016
6017 igc_ptp_tx_hang(adapter);
6018
6019 /* Reset the timer */
6020 if (!test_bit(__IGC_DOWN, &adapter->state)) {
6021 if (adapter->flags & IGC_FLAG_NEED_LINK_UPDATE)
6022 mod_timer(&adapter->watchdog_timer,
6023 round_jiffies(jiffies + HZ));
6024 else
6025 mod_timer(&adapter->watchdog_timer,
6026 round_jiffies(jiffies + 2 * HZ));
6027 }
6028 }
6029
6030 /**
6031 * igc_intr_msi - Interrupt Handler
6032 * @irq: interrupt number
6033 * @data: pointer to a network interface device structure
6034 */
igc_intr_msi(int irq,void * data)6035 static irqreturn_t igc_intr_msi(int irq, void *data)
6036 {
6037 struct igc_adapter *adapter = data;
6038 struct igc_q_vector *q_vector = adapter->q_vector[0];
6039 struct igc_hw *hw = &adapter->hw;
6040 /* read ICR disables interrupts using IAM */
6041 u32 icr = rd32(IGC_ICR);
6042
6043 igc_write_itr(q_vector);
6044
6045 if (icr & IGC_ICR_DRSTA)
6046 schedule_work(&adapter->reset_task);
6047
6048 if (icr & IGC_ICR_DOUTSYNC) {
6049 /* HW is reporting DMA is out of sync */
6050 adapter->stats.doosync++;
6051 }
6052
6053 if (icr & (IGC_ICR_RXSEQ | IGC_ICR_LSC)) {
6054 hw->mac.get_link_status = true;
6055 if (!test_bit(__IGC_DOWN, &adapter->state))
6056 mod_timer(&adapter->watchdog_timer, jiffies + 1);
6057 }
6058
6059 if (icr & IGC_ICR_TS)
6060 igc_tsync_interrupt(adapter);
6061
6062 napi_schedule_irqoff(&q_vector->napi);
6063
6064 return IRQ_HANDLED;
6065 }
6066
6067 /**
6068 * igc_intr - Legacy Interrupt Handler
6069 * @irq: interrupt number
6070 * @data: pointer to a network interface device structure
6071 */
igc_intr(int irq,void * data)6072 static irqreturn_t igc_intr(int irq, void *data)
6073 {
6074 struct igc_adapter *adapter = data;
6075 struct igc_q_vector *q_vector = adapter->q_vector[0];
6076 struct igc_hw *hw = &adapter->hw;
6077 /* Interrupt Auto-Mask...upon reading ICR, interrupts are masked. No
6078 * need for the IMC write
6079 */
6080 u32 icr = rd32(IGC_ICR);
6081
6082 /* IMS will not auto-mask if INT_ASSERTED is not set, and if it is
6083 * not set, then the adapter didn't send an interrupt
6084 */
6085 if (!(icr & IGC_ICR_INT_ASSERTED))
6086 return IRQ_NONE;
6087
6088 igc_write_itr(q_vector);
6089
6090 if (icr & IGC_ICR_DRSTA)
6091 schedule_work(&adapter->reset_task);
6092
6093 if (icr & IGC_ICR_DOUTSYNC) {
6094 /* HW is reporting DMA is out of sync */
6095 adapter->stats.doosync++;
6096 }
6097
6098 if (icr & (IGC_ICR_RXSEQ | IGC_ICR_LSC)) {
6099 hw->mac.get_link_status = true;
6100 /* guard against interrupt when we're going down */
6101 if (!test_bit(__IGC_DOWN, &adapter->state))
6102 mod_timer(&adapter->watchdog_timer, jiffies + 1);
6103 }
6104
6105 if (icr & IGC_ICR_TS)
6106 igc_tsync_interrupt(adapter);
6107
6108 napi_schedule_irqoff(&q_vector->napi);
6109
6110 return IRQ_HANDLED;
6111 }
6112
igc_free_irq(struct igc_adapter * adapter)6113 static void igc_free_irq(struct igc_adapter *adapter)
6114 {
6115 if (adapter->msix_entries) {
6116 int vector = 0, i;
6117
6118 free_irq(adapter->msix_entries[vector++].vector, adapter);
6119
6120 for (i = 0; i < adapter->num_q_vectors; i++)
6121 free_irq(adapter->msix_entries[vector++].vector,
6122 adapter->q_vector[i]);
6123 } else {
6124 free_irq(adapter->pdev->irq, adapter);
6125 }
6126 }
6127
6128 /**
6129 * igc_request_irq - initialize interrupts
6130 * @adapter: Pointer to adapter structure
6131 *
6132 * Attempts to configure interrupts using the best available
6133 * capabilities of the hardware and kernel.
6134 */
igc_request_irq(struct igc_adapter * adapter)6135 static int igc_request_irq(struct igc_adapter *adapter)
6136 {
6137 struct net_device *netdev = adapter->netdev;
6138 struct pci_dev *pdev = adapter->pdev;
6139 int err = 0;
6140
6141 if (adapter->flags & IGC_FLAG_HAS_MSIX) {
6142 err = igc_request_msix(adapter);
6143 if (!err)
6144 goto request_done;
6145 /* fall back to MSI */
6146 igc_free_all_tx_resources(adapter);
6147 igc_free_all_rx_resources(adapter);
6148
6149 igc_clear_interrupt_scheme(adapter);
6150 err = igc_init_interrupt_scheme(adapter, false);
6151 if (err)
6152 goto request_done;
6153 igc_setup_all_tx_resources(adapter);
6154 igc_setup_all_rx_resources(adapter);
6155 igc_configure(adapter);
6156 }
6157
6158 igc_assign_vector(adapter->q_vector[0], 0);
6159
6160 if (adapter->flags & IGC_FLAG_HAS_MSI) {
6161 err = request_irq(pdev->irq, &igc_intr_msi, 0,
6162 netdev->name, adapter);
6163 if (!err)
6164 goto request_done;
6165
6166 /* fall back to legacy interrupts */
6167 igc_reset_interrupt_capability(adapter);
6168 adapter->flags &= ~IGC_FLAG_HAS_MSI;
6169 }
6170
6171 err = request_irq(pdev->irq, &igc_intr, IRQF_SHARED,
6172 netdev->name, adapter);
6173
6174 if (err)
6175 netdev_err(netdev, "Error %d getting interrupt\n", err);
6176
6177 request_done:
6178 return err;
6179 }
6180
6181 /**
6182 * __igc_open - Called when a network interface is made active
6183 * @netdev: network interface device structure
6184 * @resuming: boolean indicating if the device is resuming
6185 *
6186 * Returns 0 on success, negative value on failure
6187 *
6188 * The open entry point is called when a network interface is made
6189 * active by the system (IFF_UP). At this point all resources needed
6190 * for transmit and receive operations are allocated, the interrupt
6191 * handler is registered with the OS, the watchdog timer is started,
6192 * and the stack is notified that the interface is ready.
6193 */
__igc_open(struct net_device * netdev,bool resuming)6194 static int __igc_open(struct net_device *netdev, bool resuming)
6195 {
6196 struct igc_adapter *adapter = netdev_priv(netdev);
6197 struct pci_dev *pdev = adapter->pdev;
6198 struct igc_hw *hw = &adapter->hw;
6199 struct napi_struct *napi;
6200 int err = 0;
6201 int i = 0;
6202
6203 /* disallow open during test */
6204
6205 if (test_bit(__IGC_TESTING, &adapter->state)) {
6206 WARN_ON(resuming);
6207 return -EBUSY;
6208 }
6209
6210 if (!resuming)
6211 pm_runtime_get_sync(&pdev->dev);
6212
6213 netif_carrier_off(netdev);
6214
6215 /* allocate transmit descriptors */
6216 err = igc_setup_all_tx_resources(adapter);
6217 if (err)
6218 goto err_setup_tx;
6219
6220 /* allocate receive descriptors */
6221 err = igc_setup_all_rx_resources(adapter);
6222 if (err)
6223 goto err_setup_rx;
6224
6225 igc_power_up_link(adapter);
6226
6227 igc_configure(adapter);
6228
6229 err = igc_request_irq(adapter);
6230 if (err)
6231 goto err_req_irq;
6232
6233 clear_bit(__IGC_DOWN, &adapter->state);
6234
6235 for (i = 0; i < adapter->num_q_vectors; i++) {
6236 napi = &adapter->q_vector[i]->napi;
6237 napi_enable(napi);
6238 igc_set_queue_napi(adapter, i, napi);
6239 }
6240
6241 /* Clear any pending interrupts. */
6242 rd32(IGC_ICR);
6243 igc_irq_enable(adapter);
6244
6245 if (!resuming)
6246 pm_runtime_put(&pdev->dev);
6247
6248 netif_tx_start_all_queues(netdev);
6249
6250 /* start the watchdog. */
6251 hw->mac.get_link_status = true;
6252 schedule_work(&adapter->watchdog_task);
6253
6254 return IGC_SUCCESS;
6255
6256 err_req_irq:
6257 igc_release_hw_control(adapter);
6258 igc_power_down_phy_copper_base(&adapter->hw);
6259 igc_free_all_rx_resources(adapter);
6260 err_setup_rx:
6261 igc_free_all_tx_resources(adapter);
6262 err_setup_tx:
6263 igc_reset(adapter);
6264 if (!resuming)
6265 pm_runtime_put(&pdev->dev);
6266
6267 return err;
6268 }
6269
igc_open(struct net_device * netdev)6270 int igc_open(struct net_device *netdev)
6271 {
6272 struct igc_adapter *adapter = netdev_priv(netdev);
6273 int err;
6274
6275 /* Notify the stack of the actual queue counts. */
6276 err = netif_set_real_num_queues(netdev, adapter->num_tx_queues,
6277 adapter->num_rx_queues);
6278 if (err) {
6279 netdev_err(netdev, "error setting real queue count\n");
6280 return err;
6281 }
6282
6283 return __igc_open(netdev, false);
6284 }
6285
6286 /**
6287 * __igc_close - Disables a network interface
6288 * @netdev: network interface device structure
6289 * @suspending: boolean indicating the device is suspending
6290 *
6291 * Returns 0, this is not allowed to fail
6292 *
6293 * The close entry point is called when an interface is de-activated
6294 * by the OS. The hardware is still under the driver's control, but
6295 * needs to be disabled. A global MAC reset is issued to stop the
6296 * hardware, and all transmit and receive resources are freed.
6297 */
__igc_close(struct net_device * netdev,bool suspending)6298 static int __igc_close(struct net_device *netdev, bool suspending)
6299 {
6300 struct igc_adapter *adapter = netdev_priv(netdev);
6301 struct pci_dev *pdev = adapter->pdev;
6302
6303 WARN_ON(test_bit(__IGC_RESETTING, &adapter->state));
6304
6305 if (!suspending)
6306 pm_runtime_get_sync(&pdev->dev);
6307
6308 igc_down(adapter);
6309
6310 igc_release_hw_control(adapter);
6311
6312 igc_free_irq(adapter);
6313
6314 igc_free_all_tx_resources(adapter);
6315 igc_free_all_rx_resources(adapter);
6316
6317 if (!suspending)
6318 pm_runtime_put_sync(&pdev->dev);
6319
6320 return 0;
6321 }
6322
igc_close(struct net_device * netdev)6323 int igc_close(struct net_device *netdev)
6324 {
6325 if (netif_device_present(netdev) || netdev->dismantle)
6326 return __igc_close(netdev, false);
6327 return 0;
6328 }
6329
igc_save_launchtime_params(struct igc_adapter * adapter,int queue,bool enable)6330 static int igc_save_launchtime_params(struct igc_adapter *adapter, int queue,
6331 bool enable)
6332 {
6333 struct igc_ring *ring;
6334
6335 if (queue < 0 || queue >= adapter->num_tx_queues)
6336 return -EINVAL;
6337
6338 ring = adapter->tx_ring[queue];
6339 ring->launchtime_enable = enable;
6340
6341 return 0;
6342 }
6343
is_base_time_past(ktime_t base_time,const struct timespec64 * now)6344 static bool is_base_time_past(ktime_t base_time, const struct timespec64 *now)
6345 {
6346 struct timespec64 b;
6347
6348 b = ktime_to_timespec64(base_time);
6349
6350 return timespec64_compare(now, &b) > 0;
6351 }
6352
validate_schedule(struct igc_adapter * adapter,const struct tc_taprio_qopt_offload * qopt)6353 static bool validate_schedule(struct igc_adapter *adapter,
6354 const struct tc_taprio_qopt_offload *qopt)
6355 {
6356 int queue_uses[IGC_MAX_TX_QUEUES] = { };
6357 struct igc_hw *hw = &adapter->hw;
6358 struct timespec64 now;
6359 size_t n;
6360
6361 if (qopt->cycle_time_extension)
6362 return false;
6363
6364 igc_ptp_read(adapter, &now);
6365
6366 /* If we program the controller's BASET registers with a time
6367 * in the future, it will hold all the packets until that
6368 * time, causing a lot of TX Hangs, so to avoid that, we
6369 * reject schedules that would start in the future.
6370 * Note: Limitation above is no longer in i226.
6371 */
6372 if (!is_base_time_past(qopt->base_time, &now) &&
6373 igc_is_device_id_i225(hw))
6374 return false;
6375
6376 for (n = 0; n < qopt->num_entries; n++) {
6377 const struct tc_taprio_sched_entry *e, *prev;
6378 int i;
6379
6380 prev = n ? &qopt->entries[n - 1] : NULL;
6381 e = &qopt->entries[n];
6382
6383 /* i225 only supports "global" frame preemption
6384 * settings.
6385 */
6386 if (e->command != TC_TAPRIO_CMD_SET_GATES)
6387 return false;
6388
6389 for (i = 0; i < adapter->num_tx_queues; i++)
6390 if (e->gate_mask & BIT(i)) {
6391 queue_uses[i]++;
6392
6393 /* There are limitations: A single queue cannot
6394 * be opened and closed multiple times per cycle
6395 * unless the gate stays open. Check for it.
6396 */
6397 if (queue_uses[i] > 1 &&
6398 !(prev->gate_mask & BIT(i)))
6399 return false;
6400 }
6401 }
6402
6403 return true;
6404 }
6405
igc_tsn_enable_launchtime(struct igc_adapter * adapter,struct tc_etf_qopt_offload * qopt)6406 static int igc_tsn_enable_launchtime(struct igc_adapter *adapter,
6407 struct tc_etf_qopt_offload *qopt)
6408 {
6409 struct igc_hw *hw = &adapter->hw;
6410 int err;
6411
6412 if (hw->mac.type != igc_i225)
6413 return -EOPNOTSUPP;
6414
6415 err = igc_save_launchtime_params(adapter, qopt->queue, qopt->enable);
6416 if (err)
6417 return err;
6418
6419 return igc_tsn_offload_apply(adapter);
6420 }
6421
igc_qbv_clear_schedule(struct igc_adapter * adapter)6422 static int igc_qbv_clear_schedule(struct igc_adapter *adapter)
6423 {
6424 unsigned long flags;
6425 int i;
6426
6427 adapter->base_time = 0;
6428 adapter->cycle_time = NSEC_PER_SEC;
6429 adapter->taprio_offload_enable = false;
6430 adapter->qbv_config_change_errors = 0;
6431 adapter->qbv_count = 0;
6432
6433 for (i = 0; i < adapter->num_tx_queues; i++) {
6434 struct igc_ring *ring = adapter->tx_ring[i];
6435
6436 ring->start_time = 0;
6437 ring->end_time = NSEC_PER_SEC;
6438 ring->max_sdu = 0;
6439 ring->preemptible = false;
6440 }
6441
6442 spin_lock_irqsave(&adapter->qbv_tx_lock, flags);
6443
6444 adapter->qbv_transition = false;
6445
6446 for (i = 0; i < adapter->num_tx_queues; i++) {
6447 struct igc_ring *ring = adapter->tx_ring[i];
6448
6449 ring->oper_gate_closed = false;
6450 ring->admin_gate_closed = false;
6451 }
6452
6453 spin_unlock_irqrestore(&adapter->qbv_tx_lock, flags);
6454
6455 return 0;
6456 }
6457
igc_tsn_clear_schedule(struct igc_adapter * adapter)6458 static int igc_tsn_clear_schedule(struct igc_adapter *adapter)
6459 {
6460 igc_qbv_clear_schedule(adapter);
6461
6462 return 0;
6463 }
6464
igc_taprio_stats(struct net_device * dev,struct tc_taprio_qopt_stats * stats)6465 static void igc_taprio_stats(struct net_device *dev,
6466 struct tc_taprio_qopt_stats *stats)
6467 {
6468 /* When Strict_End is enabled, the tx_overruns counter
6469 * will always be zero.
6470 */
6471 stats->tx_overruns = 0;
6472 }
6473
igc_taprio_queue_stats(struct net_device * dev,struct tc_taprio_qopt_queue_stats * queue_stats)6474 static void igc_taprio_queue_stats(struct net_device *dev,
6475 struct tc_taprio_qopt_queue_stats *queue_stats)
6476 {
6477 struct tc_taprio_qopt_stats *stats = &queue_stats->stats;
6478
6479 /* When Strict_End is enabled, the tx_overruns counter
6480 * will always be zero.
6481 */
6482 stats->tx_overruns = 0;
6483 }
6484
igc_save_qbv_schedule(struct igc_adapter * adapter,struct tc_taprio_qopt_offload * qopt)6485 static int igc_save_qbv_schedule(struct igc_adapter *adapter,
6486 struct tc_taprio_qopt_offload *qopt)
6487 {
6488 bool queue_configured[IGC_MAX_TX_QUEUES] = { };
6489 struct igc_hw *hw = &adapter->hw;
6490 u32 start_time = 0, end_time = 0;
6491 struct timespec64 now;
6492 unsigned long flags;
6493 size_t n;
6494 int i;
6495
6496 if (qopt->base_time < 0)
6497 return -ERANGE;
6498
6499 if (igc_is_device_id_i225(hw) && adapter->taprio_offload_enable)
6500 return -EALREADY;
6501
6502 if (!validate_schedule(adapter, qopt))
6503 return -EINVAL;
6504
6505 if (qopt->mqprio.preemptible_tcs &&
6506 !(adapter->flags & IGC_FLAG_TSN_REVERSE_TXQ_PRIO)) {
6507 NL_SET_ERR_MSG_MOD(qopt->extack,
6508 "reverse-tsn-txq-prio private flag must be enabled before setting preemptible tc");
6509 return -ENODEV;
6510 }
6511
6512 igc_ptp_read(adapter, &now);
6513
6514 if (igc_tsn_is_taprio_activated_by_user(adapter) &&
6515 is_base_time_past(qopt->base_time, &now))
6516 adapter->qbv_config_change_errors++;
6517
6518 adapter->cycle_time = qopt->cycle_time;
6519 adapter->base_time = qopt->base_time;
6520 adapter->taprio_offload_enable = true;
6521
6522 for (n = 0; n < qopt->num_entries; n++) {
6523 struct tc_taprio_sched_entry *e = &qopt->entries[n];
6524
6525 end_time += e->interval;
6526
6527 /* If any of the conditions below are true, we need to manually
6528 * control the end time of the cycle.
6529 * 1. Qbv users can specify a cycle time that is not equal
6530 * to the total GCL intervals. Hence, recalculation is
6531 * necessary here to exclude the time interval that
6532 * exceeds the cycle time.
6533 * 2. According to IEEE Std. 802.1Q-2018 section 8.6.9.2,
6534 * once the end of the list is reached, it will switch
6535 * to the END_OF_CYCLE state and leave the gates in the
6536 * same state until the next cycle is started.
6537 */
6538 if (end_time > adapter->cycle_time ||
6539 n + 1 == qopt->num_entries)
6540 end_time = adapter->cycle_time;
6541
6542 for (i = 0; i < adapter->num_tx_queues; i++) {
6543 struct igc_ring *ring = adapter->tx_ring[i];
6544
6545 if (!(e->gate_mask & BIT(i)))
6546 continue;
6547
6548 /* Check whether a queue stays open for more than one
6549 * entry. If so, keep the start and advance the end
6550 * time.
6551 */
6552 if (!queue_configured[i])
6553 ring->start_time = start_time;
6554 ring->end_time = end_time;
6555
6556 if (ring->start_time >= adapter->cycle_time)
6557 queue_configured[i] = false;
6558 else
6559 queue_configured[i] = true;
6560 }
6561
6562 start_time += e->interval;
6563 }
6564
6565 spin_lock_irqsave(&adapter->qbv_tx_lock, flags);
6566
6567 /* Check whether a queue gets configured.
6568 * If not, set the start and end time to be end time.
6569 */
6570 for (i = 0; i < adapter->num_tx_queues; i++) {
6571 struct igc_ring *ring = adapter->tx_ring[i];
6572
6573 if (!is_base_time_past(qopt->base_time, &now)) {
6574 ring->admin_gate_closed = false;
6575 } else {
6576 ring->oper_gate_closed = false;
6577 ring->admin_gate_closed = false;
6578 }
6579
6580 if (!queue_configured[i]) {
6581 if (!is_base_time_past(qopt->base_time, &now))
6582 ring->admin_gate_closed = true;
6583 else
6584 ring->oper_gate_closed = true;
6585
6586 ring->start_time = end_time;
6587 ring->end_time = end_time;
6588 }
6589 }
6590
6591 spin_unlock_irqrestore(&adapter->qbv_tx_lock, flags);
6592
6593 for (i = 0; i < adapter->num_tx_queues; i++) {
6594 struct igc_ring *ring = adapter->tx_ring[i];
6595 struct net_device *dev = adapter->netdev;
6596
6597 if (qopt->max_sdu[i])
6598 ring->max_sdu = qopt->max_sdu[i] + dev->hard_header_len - ETH_TLEN;
6599 else
6600 ring->max_sdu = 0;
6601 }
6602
6603 igc_fpe_save_preempt_queue(adapter, &qopt->mqprio);
6604
6605 return 0;
6606 }
6607
igc_tsn_enable_qbv_scheduling(struct igc_adapter * adapter,struct tc_taprio_qopt_offload * qopt)6608 static int igc_tsn_enable_qbv_scheduling(struct igc_adapter *adapter,
6609 struct tc_taprio_qopt_offload *qopt)
6610 {
6611 struct igc_hw *hw = &adapter->hw;
6612 int err;
6613
6614 if (hw->mac.type != igc_i225)
6615 return -EOPNOTSUPP;
6616
6617 switch (qopt->cmd) {
6618 case TAPRIO_CMD_REPLACE:
6619 err = igc_save_qbv_schedule(adapter, qopt);
6620 break;
6621 case TAPRIO_CMD_DESTROY:
6622 err = igc_tsn_clear_schedule(adapter);
6623 break;
6624 case TAPRIO_CMD_STATS:
6625 igc_taprio_stats(adapter->netdev, &qopt->stats);
6626 return 0;
6627 case TAPRIO_CMD_QUEUE_STATS:
6628 igc_taprio_queue_stats(adapter->netdev, &qopt->queue_stats);
6629 return 0;
6630 default:
6631 return -EOPNOTSUPP;
6632 }
6633
6634 if (err)
6635 return err;
6636
6637 return igc_tsn_offload_apply(adapter);
6638 }
6639
igc_save_cbs_params(struct igc_adapter * adapter,int queue,bool enable,int idleslope,int sendslope,int hicredit,int locredit)6640 static int igc_save_cbs_params(struct igc_adapter *adapter, int queue,
6641 bool enable, int idleslope, int sendslope,
6642 int hicredit, int locredit)
6643 {
6644 bool cbs_status[IGC_MAX_SR_QUEUES] = { false };
6645 struct net_device *netdev = adapter->netdev;
6646 struct igc_ring *ring;
6647 int i;
6648
6649 /* i225 has two sets of credit-based shaper logic.
6650 * Supporting it only on the top two priority queues
6651 */
6652 if (queue < 0 || queue > 1)
6653 return -EINVAL;
6654
6655 ring = adapter->tx_ring[queue];
6656
6657 for (i = 0; i < IGC_MAX_SR_QUEUES; i++)
6658 if (adapter->tx_ring[i])
6659 cbs_status[i] = adapter->tx_ring[i]->cbs_enable;
6660
6661 /* CBS should be enabled on the highest priority queue first in order
6662 * for the CBS algorithm to operate as intended.
6663 */
6664 if (enable) {
6665 if (queue == 1 && !cbs_status[0]) {
6666 netdev_err(netdev,
6667 "Enabling CBS on queue1 before queue0\n");
6668 return -EINVAL;
6669 }
6670 } else {
6671 if (queue == 0 && cbs_status[1]) {
6672 netdev_err(netdev,
6673 "Disabling CBS on queue0 before queue1\n");
6674 return -EINVAL;
6675 }
6676 }
6677
6678 ring->cbs_enable = enable;
6679 ring->idleslope = idleslope;
6680 ring->sendslope = sendslope;
6681 ring->hicredit = hicredit;
6682 ring->locredit = locredit;
6683
6684 return 0;
6685 }
6686
igc_tsn_enable_cbs(struct igc_adapter * adapter,struct tc_cbs_qopt_offload * qopt)6687 static int igc_tsn_enable_cbs(struct igc_adapter *adapter,
6688 struct tc_cbs_qopt_offload *qopt)
6689 {
6690 struct igc_hw *hw = &adapter->hw;
6691 int err;
6692
6693 if (hw->mac.type != igc_i225)
6694 return -EOPNOTSUPP;
6695
6696 if (qopt->queue < 0 || qopt->queue > 1)
6697 return -EINVAL;
6698
6699 err = igc_save_cbs_params(adapter, qopt->queue, qopt->enable,
6700 qopt->idleslope, qopt->sendslope,
6701 qopt->hicredit, qopt->locredit);
6702 if (err)
6703 return err;
6704
6705 return igc_tsn_offload_apply(adapter);
6706 }
6707
igc_tc_query_caps(struct igc_adapter * adapter,struct tc_query_caps_base * base)6708 static int igc_tc_query_caps(struct igc_adapter *adapter,
6709 struct tc_query_caps_base *base)
6710 {
6711 struct igc_hw *hw = &adapter->hw;
6712
6713 switch (base->type) {
6714 case TC_SETUP_QDISC_MQPRIO: {
6715 struct tc_mqprio_caps *caps = base->caps;
6716
6717 caps->validate_queue_counts = true;
6718
6719 return 0;
6720 }
6721 case TC_SETUP_QDISC_TAPRIO: {
6722 struct tc_taprio_caps *caps = base->caps;
6723
6724 if (!(adapter->flags & IGC_FLAG_TSN_REVERSE_TXQ_PRIO))
6725 caps->broken_mqprio = true;
6726
6727 if (hw->mac.type == igc_i225) {
6728 caps->supports_queue_max_sdu = true;
6729 caps->gate_mask_per_txq = true;
6730 }
6731
6732 return 0;
6733 }
6734 default:
6735 return -EOPNOTSUPP;
6736 }
6737 }
6738
igc_save_mqprio_params(struct igc_adapter * adapter,u8 num_tc,u16 * offset)6739 static void igc_save_mqprio_params(struct igc_adapter *adapter, u8 num_tc,
6740 u16 *offset)
6741 {
6742 int i;
6743
6744 adapter->strict_priority_enable = true;
6745 adapter->num_tc = num_tc;
6746
6747 for (i = 0; i < num_tc; i++)
6748 adapter->queue_per_tc[i] = offset[i];
6749 }
6750
6751 static bool
igc_tsn_is_tc_to_queue_priority_ordered(struct tc_mqprio_qopt_offload * mqprio)6752 igc_tsn_is_tc_to_queue_priority_ordered(struct tc_mqprio_qopt_offload *mqprio)
6753 {
6754 int num_tc = mqprio->qopt.num_tc;
6755 int i;
6756
6757 for (i = 1; i < num_tc; i++) {
6758 if (mqprio->qopt.offset[i - 1] > mqprio->qopt.offset[i])
6759 return false;
6760 }
6761
6762 return true;
6763 }
6764
igc_tsn_enable_mqprio(struct igc_adapter * adapter,struct tc_mqprio_qopt_offload * mqprio)6765 static int igc_tsn_enable_mqprio(struct igc_adapter *adapter,
6766 struct tc_mqprio_qopt_offload *mqprio)
6767 {
6768 struct igc_hw *hw = &adapter->hw;
6769 int err, i;
6770
6771 if (hw->mac.type != igc_i225)
6772 return -EOPNOTSUPP;
6773
6774 if (!mqprio->qopt.num_tc) {
6775 adapter->strict_priority_enable = false;
6776 igc_fpe_clear_preempt_queue(adapter);
6777 netdev_reset_tc(adapter->netdev);
6778 goto apply;
6779 }
6780
6781 /* There are as many TCs as Tx queues. */
6782 if (mqprio->qopt.num_tc != adapter->num_tx_queues) {
6783 NL_SET_ERR_MSG_FMT_MOD(mqprio->extack,
6784 "Only %d traffic classes supported",
6785 adapter->num_tx_queues);
6786 return -EOPNOTSUPP;
6787 }
6788
6789 /* Only one queue per TC is supported. */
6790 for (i = 0; i < mqprio->qopt.num_tc; i++) {
6791 if (mqprio->qopt.count[i] != 1) {
6792 NL_SET_ERR_MSG_MOD(mqprio->extack,
6793 "Only one queue per TC supported");
6794 return -EOPNOTSUPP;
6795 }
6796 }
6797
6798 if (!igc_tsn_is_tc_to_queue_priority_ordered(mqprio)) {
6799 NL_SET_ERR_MSG_MOD(mqprio->extack,
6800 "tc to queue mapping must preserve increasing priority (higher tc -> higher queue)");
6801 return -EOPNOTSUPP;
6802 }
6803
6804 igc_save_mqprio_params(adapter, mqprio->qopt.num_tc,
6805 mqprio->qopt.offset);
6806
6807 err = netdev_set_num_tc(adapter->netdev, adapter->num_tc);
6808 if (err)
6809 return err;
6810
6811 for (i = 0; i < adapter->num_tc; i++) {
6812 err = netdev_set_tc_queue(adapter->netdev, i, 1,
6813 adapter->queue_per_tc[i]);
6814 if (err)
6815 return err;
6816 }
6817
6818 /* In case the card is configured with less than four queues. */
6819 for (; i < IGC_MAX_TX_QUEUES; i++)
6820 adapter->queue_per_tc[i] = i;
6821
6822 mqprio->qopt.hw = TC_MQPRIO_HW_OFFLOAD_TCS;
6823 igc_fpe_save_preempt_queue(adapter, mqprio);
6824
6825 apply:
6826 return igc_tsn_offload_apply(adapter);
6827 }
6828
igc_setup_tc(struct net_device * dev,enum tc_setup_type type,void * type_data)6829 static int igc_setup_tc(struct net_device *dev, enum tc_setup_type type,
6830 void *type_data)
6831 {
6832 struct igc_adapter *adapter = netdev_priv(dev);
6833
6834 adapter->tc_setup_type = type;
6835
6836 switch (type) {
6837 case TC_QUERY_CAPS:
6838 return igc_tc_query_caps(adapter, type_data);
6839 case TC_SETUP_QDISC_TAPRIO:
6840 return igc_tsn_enable_qbv_scheduling(adapter, type_data);
6841
6842 case TC_SETUP_QDISC_ETF:
6843 return igc_tsn_enable_launchtime(adapter, type_data);
6844
6845 case TC_SETUP_QDISC_CBS:
6846 return igc_tsn_enable_cbs(adapter, type_data);
6847
6848 case TC_SETUP_QDISC_MQPRIO:
6849 return igc_tsn_enable_mqprio(adapter, type_data);
6850
6851 default:
6852 return -EOPNOTSUPP;
6853 }
6854 }
6855
igc_bpf(struct net_device * dev,struct netdev_bpf * bpf)6856 static int igc_bpf(struct net_device *dev, struct netdev_bpf *bpf)
6857 {
6858 struct igc_adapter *adapter = netdev_priv(dev);
6859
6860 switch (bpf->command) {
6861 case XDP_SETUP_PROG:
6862 return igc_xdp_set_prog(adapter, bpf->prog, bpf->extack);
6863 case XDP_SETUP_XSK_POOL:
6864 return igc_xdp_setup_pool(adapter, bpf->xsk.pool,
6865 bpf->xsk.queue_id);
6866 default:
6867 return -EOPNOTSUPP;
6868 }
6869 }
6870
igc_xdp_xmit(struct net_device * dev,int num_frames,struct xdp_frame ** frames,u32 flags)6871 static int igc_xdp_xmit(struct net_device *dev, int num_frames,
6872 struct xdp_frame **frames, u32 flags)
6873 {
6874 struct igc_adapter *adapter = netdev_priv(dev);
6875 int cpu = smp_processor_id();
6876 struct netdev_queue *nq;
6877 struct igc_ring *ring;
6878 int i, nxmit;
6879
6880 if (unlikely(!netif_carrier_ok(dev)))
6881 return -ENETDOWN;
6882
6883 if (unlikely(flags & ~XDP_XMIT_FLAGS_MASK))
6884 return -EINVAL;
6885
6886 ring = igc_get_tx_ring(adapter, cpu);
6887 nq = txring_txq(ring);
6888
6889 __netif_tx_lock(nq, cpu);
6890
6891 /* Avoid transmit queue timeout since we share it with the slow path */
6892 txq_trans_cond_update(nq);
6893
6894 nxmit = 0;
6895 for (i = 0; i < num_frames; i++) {
6896 int err;
6897 struct xdp_frame *xdpf = frames[i];
6898
6899 err = igc_xdp_init_tx_descriptor(ring, xdpf);
6900 if (err)
6901 break;
6902 nxmit++;
6903 }
6904
6905 if (flags & XDP_XMIT_FLUSH)
6906 igc_flush_tx_descriptors(ring);
6907
6908 __netif_tx_unlock(nq);
6909
6910 return nxmit;
6911 }
6912
igc_sw_irq_prep(struct igc_q_vector * q_vector)6913 static u32 igc_sw_irq_prep(struct igc_q_vector *q_vector)
6914 {
6915 u32 eics = 0;
6916
6917 if (!napi_if_scheduled_mark_missed(&q_vector->napi))
6918 eics = q_vector->eims_value;
6919
6920 return eics;
6921 }
6922
igc_xsk_wakeup(struct net_device * dev,u32 queue_id,u32 flags)6923 int igc_xsk_wakeup(struct net_device *dev, u32 queue_id, u32 flags)
6924 {
6925 struct igc_adapter *adapter = netdev_priv(dev);
6926 struct igc_hw *hw = &adapter->hw;
6927 struct igc_ring *ring;
6928 u32 eics = 0;
6929
6930 if (test_bit(__IGC_DOWN, &adapter->state))
6931 return -ENETDOWN;
6932
6933 if (!igc_xdp_is_enabled(adapter))
6934 return -ENXIO;
6935 /* Check if queue_id is valid. Tx and Rx queue numbers are always same */
6936 if (queue_id >= adapter->num_rx_queues)
6937 return -EINVAL;
6938
6939 ring = adapter->rx_ring[queue_id];
6940
6941 if (!ring->xsk_pool)
6942 return -ENXIO;
6943
6944 if (flags & XDP_WAKEUP_RX)
6945 eics |= igc_sw_irq_prep(ring->q_vector);
6946
6947 if (flags & XDP_WAKEUP_TX) {
6948 /* If IGC_FLAG_QUEUE_PAIRS is active, the q_vector
6949 * and NAPI is shared between RX and TX.
6950 * If NAPI is already running it would be marked as missed
6951 * from the RX path, making this TX call a NOP
6952 */
6953 ring = adapter->tx_ring[queue_id];
6954 eics |= igc_sw_irq_prep(ring->q_vector);
6955 }
6956
6957 if (eics)
6958 /* Cause software interrupt */
6959 wr32(IGC_EICS, eics);
6960
6961 return 0;
6962 }
6963
igc_get_tstamp(struct net_device * dev,const struct skb_shared_hwtstamps * hwtstamps,bool cycles)6964 static ktime_t igc_get_tstamp(struct net_device *dev,
6965 const struct skb_shared_hwtstamps *hwtstamps,
6966 bool cycles)
6967 {
6968 struct igc_adapter *adapter = netdev_priv(dev);
6969 struct igc_inline_rx_tstamps *tstamp;
6970 ktime_t timestamp;
6971
6972 tstamp = hwtstamps->netdev_data;
6973
6974 if (cycles)
6975 timestamp = igc_ptp_rx_pktstamp(adapter, tstamp->timer1);
6976 else
6977 timestamp = igc_ptp_rx_pktstamp(adapter, tstamp->timer0);
6978
6979 return timestamp;
6980 }
6981
6982 static const struct net_device_ops igc_netdev_ops = {
6983 .ndo_open = igc_open,
6984 .ndo_stop = igc_close,
6985 .ndo_start_xmit = igc_xmit_frame,
6986 .ndo_set_rx_mode = igc_set_rx_mode,
6987 .ndo_set_mac_address = igc_set_mac,
6988 .ndo_change_mtu = igc_change_mtu,
6989 .ndo_tx_timeout = igc_tx_timeout,
6990 .ndo_get_stats64 = igc_get_stats64,
6991 .ndo_fix_features = igc_fix_features,
6992 .ndo_set_features = igc_set_features,
6993 .ndo_features_check = igc_features_check,
6994 .ndo_setup_tc = igc_setup_tc,
6995 .ndo_bpf = igc_bpf,
6996 .ndo_xdp_xmit = igc_xdp_xmit,
6997 .ndo_xsk_wakeup = igc_xsk_wakeup,
6998 .ndo_get_tstamp = igc_get_tstamp,
6999 .ndo_hwtstamp_get = igc_ptp_hwtstamp_get,
7000 .ndo_hwtstamp_set = igc_ptp_hwtstamp_set,
7001 };
7002
igc_rd32(struct igc_hw * hw,u32 reg)7003 u32 igc_rd32(struct igc_hw *hw, u32 reg)
7004 {
7005 struct igc_adapter *igc = container_of(hw, struct igc_adapter, hw);
7006 u8 __iomem *hw_addr = READ_ONCE(hw->hw_addr);
7007 u32 value = 0;
7008
7009 if (IGC_REMOVED(hw_addr))
7010 return ~value;
7011
7012 value = readl(&hw_addr[reg]);
7013
7014 /* reads should not return all F's */
7015 if (!(~value) && (!reg || !(~readl(hw_addr)))) {
7016 struct net_device *netdev = igc->netdev;
7017
7018 hw->hw_addr = NULL;
7019 netif_device_detach(netdev);
7020 netdev_err(netdev, "PCIe link lost, device now detached\n");
7021 WARN(pci_device_is_present(igc->pdev),
7022 "igc: Failed to read reg 0x%x!\n", reg);
7023 }
7024
7025 return value;
7026 }
7027
7028 /* Mapping HW RSS Type to enum xdp_rss_hash_type */
7029 static enum xdp_rss_hash_type igc_xdp_rss_type[IGC_RSS_TYPE_MAX_TABLE] = {
7030 [IGC_RSS_TYPE_NO_HASH] = XDP_RSS_TYPE_L2,
7031 [IGC_RSS_TYPE_HASH_TCP_IPV4] = XDP_RSS_TYPE_L4_IPV4_TCP,
7032 [IGC_RSS_TYPE_HASH_IPV4] = XDP_RSS_TYPE_L3_IPV4,
7033 [IGC_RSS_TYPE_HASH_TCP_IPV6] = XDP_RSS_TYPE_L4_IPV6_TCP,
7034 [IGC_RSS_TYPE_HASH_IPV6_EX] = XDP_RSS_TYPE_L3_IPV6_EX,
7035 [IGC_RSS_TYPE_HASH_IPV6] = XDP_RSS_TYPE_L3_IPV6,
7036 [IGC_RSS_TYPE_HASH_TCP_IPV6_EX] = XDP_RSS_TYPE_L4_IPV6_TCP_EX,
7037 [IGC_RSS_TYPE_HASH_UDP_IPV4] = XDP_RSS_TYPE_L4_IPV4_UDP,
7038 [IGC_RSS_TYPE_HASH_UDP_IPV6] = XDP_RSS_TYPE_L4_IPV6_UDP,
7039 [IGC_RSS_TYPE_HASH_UDP_IPV6_EX] = XDP_RSS_TYPE_L4_IPV6_UDP_EX,
7040 [10] = XDP_RSS_TYPE_NONE, /* RSS Type above 9 "Reserved" by HW */
7041 [11] = XDP_RSS_TYPE_NONE, /* keep array sized for SW bit-mask */
7042 [12] = XDP_RSS_TYPE_NONE, /* to handle future HW revisions */
7043 [13] = XDP_RSS_TYPE_NONE,
7044 [14] = XDP_RSS_TYPE_NONE,
7045 [15] = XDP_RSS_TYPE_NONE,
7046 };
7047
igc_xdp_rx_hash(const struct xdp_md * _ctx,u32 * hash,enum xdp_rss_hash_type * rss_type)7048 static int igc_xdp_rx_hash(const struct xdp_md *_ctx, u32 *hash,
7049 enum xdp_rss_hash_type *rss_type)
7050 {
7051 const struct igc_xdp_buff *ctx = (void *)_ctx;
7052
7053 if (!(ctx->xdp.rxq->dev->features & NETIF_F_RXHASH))
7054 return -ENODATA;
7055
7056 *hash = le32_to_cpu(ctx->rx_desc->wb.lower.hi_dword.rss);
7057 *rss_type = igc_xdp_rss_type[igc_rss_type(ctx->rx_desc)];
7058
7059 return 0;
7060 }
7061
igc_xdp_rx_timestamp(const struct xdp_md * _ctx,u64 * timestamp)7062 static int igc_xdp_rx_timestamp(const struct xdp_md *_ctx, u64 *timestamp)
7063 {
7064 const struct igc_xdp_buff *ctx = (void *)_ctx;
7065 struct igc_adapter *adapter = netdev_priv(ctx->xdp.rxq->dev);
7066 struct igc_inline_rx_tstamps *tstamp = ctx->rx_ts;
7067
7068 if (igc_test_staterr(ctx->rx_desc, IGC_RXDADV_STAT_TSIP)) {
7069 *timestamp = igc_ptp_rx_pktstamp(adapter, tstamp->timer0);
7070
7071 return 0;
7072 }
7073
7074 return -ENODATA;
7075 }
7076
7077 static const struct xdp_metadata_ops igc_xdp_metadata_ops = {
7078 .xmo_rx_hash = igc_xdp_rx_hash,
7079 .xmo_rx_timestamp = igc_xdp_rx_timestamp,
7080 };
7081
igc_qbv_scheduling_timer(struct hrtimer * timer)7082 static enum hrtimer_restart igc_qbv_scheduling_timer(struct hrtimer *timer)
7083 {
7084 struct igc_adapter *adapter = container_of(timer, struct igc_adapter,
7085 hrtimer);
7086 unsigned long flags;
7087 unsigned int i;
7088
7089 spin_lock_irqsave(&adapter->qbv_tx_lock, flags);
7090
7091 adapter->qbv_transition = true;
7092 for (i = 0; i < adapter->num_tx_queues; i++) {
7093 struct igc_ring *tx_ring = adapter->tx_ring[i];
7094
7095 if (tx_ring->admin_gate_closed) {
7096 tx_ring->admin_gate_closed = false;
7097 tx_ring->oper_gate_closed = true;
7098 } else {
7099 tx_ring->oper_gate_closed = false;
7100 }
7101 }
7102 adapter->qbv_transition = false;
7103
7104 spin_unlock_irqrestore(&adapter->qbv_tx_lock, flags);
7105
7106 return HRTIMER_NORESTART;
7107 }
7108
7109 /**
7110 * igc_probe - Device Initialization Routine
7111 * @pdev: PCI device information struct
7112 * @ent: entry in igc_pci_tbl
7113 *
7114 * Returns 0 on success, negative on failure
7115 *
7116 * igc_probe initializes an adapter identified by a pci_dev structure.
7117 * The OS initialization, configuring the adapter private structure,
7118 * and a hardware reset occur.
7119 */
igc_probe(struct pci_dev * pdev,const struct pci_device_id * ent)7120 static int igc_probe(struct pci_dev *pdev,
7121 const struct pci_device_id *ent)
7122 {
7123 struct igc_adapter *adapter;
7124 struct net_device *netdev;
7125 struct igc_hw *hw;
7126 const struct igc_info *ei = igc_info_tbl[ent->driver_data];
7127 int err;
7128
7129 err = pci_enable_device_mem(pdev);
7130 if (err)
7131 return err;
7132
7133 err = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(64));
7134 if (err) {
7135 dev_err(&pdev->dev,
7136 "No usable DMA configuration, aborting\n");
7137 goto err_dma;
7138 }
7139
7140 err = pci_request_mem_regions(pdev, igc_driver_name);
7141 if (err)
7142 goto err_pci_reg;
7143
7144 err = pci_enable_ptm(pdev);
7145 if (err < 0)
7146 dev_info(&pdev->dev, "PCIe PTM not supported by PCIe bus/controller\n");
7147
7148 pci_set_master(pdev);
7149
7150 err = -ENOMEM;
7151 netdev = alloc_etherdev_mq(sizeof(struct igc_adapter),
7152 IGC_MAX_TX_QUEUES);
7153
7154 if (!netdev)
7155 goto err_alloc_etherdev;
7156
7157 SET_NETDEV_DEV(netdev, &pdev->dev);
7158
7159 pci_set_drvdata(pdev, netdev);
7160 adapter = netdev_priv(netdev);
7161 adapter->netdev = netdev;
7162 adapter->pdev = pdev;
7163 hw = &adapter->hw;
7164 hw->back = adapter;
7165 adapter->port_num = hw->bus.func;
7166 adapter->msg_enable = netif_msg_init(debug, DEFAULT_MSG_ENABLE);
7167
7168 /* PCI config space info */
7169 hw->vendor_id = pdev->vendor;
7170 hw->device_id = pdev->device;
7171 hw->revision_id = pdev->revision;
7172 hw->subsystem_vendor_id = pdev->subsystem_vendor;
7173 hw->subsystem_device_id = pdev->subsystem_device;
7174
7175 /* Disable ASPM L1.2 on I226 devices to avoid packet loss */
7176 if (igc_is_device_id_i226(hw))
7177 pci_disable_link_state(pdev, PCIE_LINK_STATE_L1_2);
7178
7179 err = pci_save_state(pdev);
7180 if (err)
7181 goto err_ioremap;
7182
7183 err = -EIO;
7184 adapter->io_addr = ioremap(pci_resource_start(pdev, 0),
7185 pci_resource_len(pdev, 0));
7186 if (!adapter->io_addr)
7187 goto err_ioremap;
7188
7189 /* hw->hw_addr can be zeroed, so use adapter->io_addr for unmap */
7190 hw->hw_addr = adapter->io_addr;
7191
7192 netdev->netdev_ops = &igc_netdev_ops;
7193 netdev->xdp_metadata_ops = &igc_xdp_metadata_ops;
7194 netdev->xsk_tx_metadata_ops = &igc_xsk_tx_metadata_ops;
7195 igc_ethtool_set_ops(netdev);
7196 netdev->watchdog_timeo = 5 * HZ;
7197
7198 netdev->mem_start = pci_resource_start(pdev, 0);
7199 netdev->mem_end = pci_resource_end(pdev, 0);
7200
7201 /* Copy the default MAC and PHY function pointers */
7202 memcpy(&hw->mac.ops, ei->mac_ops, sizeof(hw->mac.ops));
7203 memcpy(&hw->phy.ops, ei->phy_ops, sizeof(hw->phy.ops));
7204
7205 /* Initialize skew-specific constants */
7206 err = ei->get_invariants(hw);
7207 if (err)
7208 goto err_sw_init;
7209
7210 /* Add supported features to the features list*/
7211 netdev->features |= NETIF_F_SG;
7212 netdev->features |= NETIF_F_TSO;
7213 netdev->features |= NETIF_F_TSO6;
7214 netdev->features |= NETIF_F_TSO_ECN;
7215 netdev->features |= NETIF_F_RXHASH;
7216 netdev->features |= NETIF_F_RXCSUM;
7217 netdev->features |= NETIF_F_HW_CSUM;
7218 netdev->features |= NETIF_F_SCTP_CRC;
7219 netdev->features |= NETIF_F_HW_TC;
7220
7221 #define IGC_GSO_PARTIAL_FEATURES (NETIF_F_GSO_GRE | \
7222 NETIF_F_GSO_GRE_CSUM | \
7223 NETIF_F_GSO_IPXIP4 | \
7224 NETIF_F_GSO_IPXIP6 | \
7225 NETIF_F_GSO_UDP_TUNNEL | \
7226 NETIF_F_GSO_UDP_TUNNEL_CSUM)
7227
7228 netdev->gso_partial_features = IGC_GSO_PARTIAL_FEATURES;
7229 netdev->features |= NETIF_F_GSO_PARTIAL | IGC_GSO_PARTIAL_FEATURES;
7230
7231 /* setup the private structure */
7232 err = igc_sw_init(adapter);
7233 if (err)
7234 goto err_sw_init;
7235
7236 /* copy netdev features into list of user selectable features */
7237 netdev->hw_features |= NETIF_F_NTUPLE;
7238 netdev->hw_features |= NETIF_F_HW_VLAN_CTAG_TX;
7239 netdev->hw_features |= NETIF_F_HW_VLAN_CTAG_RX;
7240 netdev->hw_features |= netdev->features;
7241
7242 netdev->features |= NETIF_F_HIGHDMA;
7243
7244 netdev->vlan_features |= netdev->features | NETIF_F_TSO_MANGLEID;
7245 netdev->mpls_features |= NETIF_F_HW_CSUM;
7246 netdev->hw_enc_features |= netdev->vlan_features;
7247
7248 netdev->xdp_features = NETDEV_XDP_ACT_BASIC | NETDEV_XDP_ACT_REDIRECT |
7249 NETDEV_XDP_ACT_XSK_ZEROCOPY;
7250
7251 /* enable HW vlan tag insertion/stripping by default */
7252 netdev->features |= NETIF_F_HW_VLAN_CTAG_TX | NETIF_F_HW_VLAN_CTAG_RX;
7253
7254 /* MTU range: 68 - 9216 */
7255 netdev->min_mtu = ETH_MIN_MTU;
7256 netdev->max_mtu = MAX_STD_JUMBO_FRAME_SIZE;
7257
7258 /* before reading the NVM, reset the controller to put the device in a
7259 * known good starting state
7260 */
7261 hw->mac.ops.reset_hw(hw);
7262
7263 if (igc_get_flash_presence_i225(hw)) {
7264 if (hw->nvm.ops.validate(hw) < 0) {
7265 dev_err(&pdev->dev, "The NVM Checksum Is Not Valid\n");
7266 err = -EIO;
7267 goto err_eeprom;
7268 }
7269 }
7270
7271 if (eth_platform_get_mac_address(&pdev->dev, hw->mac.addr)) {
7272 /* copy the MAC address out of the NVM */
7273 if (hw->mac.ops.read_mac_addr(hw))
7274 dev_err(&pdev->dev, "NVM Read Error\n");
7275 }
7276
7277 eth_hw_addr_set(netdev, hw->mac.addr);
7278
7279 if (!is_valid_ether_addr(netdev->dev_addr)) {
7280 dev_err(&pdev->dev, "Invalid MAC Address\n");
7281 err = -EIO;
7282 goto err_eeprom;
7283 }
7284
7285 /* configure RXPBSIZE and TXPBSIZE */
7286 wr32(IGC_RXPBS, IGC_RXPBSIZE_EXP_BMC_DEFAULT);
7287 wr32(IGC_TXPBS, IGC_TXPBSIZE_DEFAULT);
7288
7289 timer_setup(&adapter->watchdog_timer, igc_watchdog, 0);
7290 timer_setup(&adapter->phy_info_timer, igc_update_phy_info, 0);
7291
7292 INIT_WORK(&adapter->reset_task, igc_reset_task);
7293 INIT_WORK(&adapter->watchdog_task, igc_watchdog_task);
7294
7295 hrtimer_setup(&adapter->hrtimer, &igc_qbv_scheduling_timer, CLOCK_MONOTONIC,
7296 HRTIMER_MODE_REL);
7297
7298 /* Initialize link properties that are user-changeable */
7299 adapter->fc_autoneg = true;
7300 hw->phy.autoneg_advertised = 0xaf;
7301 hw->mac.autoneg_enabled = true;
7302 hw->fc.requested_mode = igc_fc_default;
7303 hw->fc.current_mode = igc_fc_default;
7304
7305 /* By default, support wake on port A */
7306 adapter->flags |= IGC_FLAG_WOL_SUPPORTED;
7307
7308 /* initialize the wol settings based on the eeprom settings */
7309 if (adapter->flags & IGC_FLAG_WOL_SUPPORTED)
7310 adapter->wol |= IGC_WUFC_MAG;
7311
7312 device_set_wakeup_enable(&adapter->pdev->dev,
7313 adapter->flags & IGC_FLAG_WOL_SUPPORTED);
7314
7315 igc_ptp_init(adapter);
7316
7317 igc_tsn_clear_schedule(adapter);
7318
7319 igc_fpe_init(adapter);
7320
7321 /* reset the hardware with the new settings */
7322 igc_reset(adapter);
7323
7324 /* let the f/w know that the h/w is now under the control of the
7325 * driver.
7326 */
7327 igc_get_hw_control(adapter);
7328
7329 strscpy(netdev->name, "eth%d", sizeof(netdev->name));
7330 err = register_netdev(netdev);
7331 if (err)
7332 goto err_register;
7333
7334 /* carrier off reporting is important to ethtool even BEFORE open */
7335 netif_carrier_off(netdev);
7336
7337 /* Check if Media Autosense is enabled */
7338 adapter->ei = *ei;
7339
7340 /* print pcie link status and MAC address */
7341 pcie_print_link_status(pdev);
7342 netdev_info(netdev, "MAC: %pM\n", netdev->dev_addr);
7343
7344 dev_pm_set_driver_flags(&pdev->dev, DPM_FLAG_NO_DIRECT_COMPLETE);
7345 /* Disable EEE for internal PHY devices */
7346 hw->dev_spec._base.eee_enable = false;
7347 adapter->flags &= ~IGC_FLAG_EEE;
7348 igc_set_eee_i225(hw, false, false, false);
7349
7350 pm_runtime_put_noidle(&pdev->dev);
7351
7352 if (IS_ENABLED(CONFIG_IGC_LEDS)) {
7353 err = igc_led_setup(adapter);
7354 if (err) {
7355 netdev_warn_once(netdev,
7356 "LED init failed (%d); continuing without LED support\n",
7357 err);
7358 adapter->leds_available = false;
7359 } else {
7360 adapter->leds_available = true;
7361 }
7362 }
7363
7364 return 0;
7365
7366 err_register:
7367 igc_release_hw_control(adapter);
7368 igc_ptp_stop(adapter);
7369 err_eeprom:
7370 if (!igc_check_reset_block(hw))
7371 igc_reset_phy(hw);
7372 err_sw_init:
7373 igc_clear_interrupt_scheme(adapter);
7374 iounmap(adapter->io_addr);
7375 err_ioremap:
7376 free_netdev(netdev);
7377 err_alloc_etherdev:
7378 pci_release_mem_regions(pdev);
7379 err_pci_reg:
7380 err_dma:
7381 pci_disable_device(pdev);
7382 return err;
7383 }
7384
7385 /**
7386 * igc_remove - Device Removal Routine
7387 * @pdev: PCI device information struct
7388 *
7389 * igc_remove is called by the PCI subsystem to alert the driver
7390 * that it should release a PCI device. This could be caused by a
7391 * Hot-Plug event, or because the driver is going to be removed from
7392 * memory.
7393 */
igc_remove(struct pci_dev * pdev)7394 static void igc_remove(struct pci_dev *pdev)
7395 {
7396 struct net_device *netdev = pci_get_drvdata(pdev);
7397 struct igc_adapter *adapter = netdev_priv(netdev);
7398
7399 pm_runtime_get_noresume(&pdev->dev);
7400
7401 igc_flush_nfc_rules(adapter);
7402
7403 igc_ptp_stop(adapter);
7404
7405 pci_disable_ptm(pdev);
7406 pci_clear_master(pdev);
7407
7408 set_bit(__IGC_DOWN, &adapter->state);
7409
7410 timer_delete_sync(&adapter->watchdog_timer);
7411 timer_delete_sync(&adapter->phy_info_timer);
7412
7413 cancel_work_sync(&adapter->reset_task);
7414 cancel_work_sync(&adapter->watchdog_task);
7415 hrtimer_cancel(&adapter->hrtimer);
7416
7417 if (IS_ENABLED(CONFIG_IGC_LEDS) && adapter->leds_available)
7418 igc_led_free(adapter);
7419
7420 /* Release control of h/w to f/w. If f/w is AMT enabled, this
7421 * would have already happened in close and is redundant.
7422 */
7423 igc_release_hw_control(adapter);
7424 unregister_netdev(netdev);
7425
7426 igc_clear_interrupt_scheme(adapter);
7427 pci_iounmap(pdev, adapter->io_addr);
7428 pci_release_mem_regions(pdev);
7429
7430 free_netdev(netdev);
7431
7432 pci_disable_device(pdev);
7433 }
7434
__igc_shutdown(struct pci_dev * pdev,bool * enable_wake,bool runtime)7435 static int __igc_shutdown(struct pci_dev *pdev, bool *enable_wake,
7436 bool runtime)
7437 {
7438 struct net_device *netdev = pci_get_drvdata(pdev);
7439 struct igc_adapter *adapter = netdev_priv(netdev);
7440 u32 wufc = runtime ? IGC_WUFC_LNKC : adapter->wol;
7441 struct igc_hw *hw = &adapter->hw;
7442 u32 ctrl, rctl, status;
7443 bool wake;
7444
7445 rtnl_lock();
7446 netif_device_detach(netdev);
7447
7448 if (netif_running(netdev))
7449 __igc_close(netdev, true);
7450
7451 igc_ptp_suspend(adapter);
7452
7453 igc_clear_interrupt_scheme(adapter);
7454 rtnl_unlock();
7455
7456 status = rd32(IGC_STATUS);
7457 if (status & IGC_STATUS_LU)
7458 wufc &= ~IGC_WUFC_LNKC;
7459
7460 if (wufc) {
7461 igc_setup_rctl(adapter);
7462 igc_set_rx_mode(netdev);
7463
7464 /* turn on all-multi mode if wake on multicast is enabled */
7465 if (wufc & IGC_WUFC_MC) {
7466 rctl = rd32(IGC_RCTL);
7467 rctl |= IGC_RCTL_MPE;
7468 wr32(IGC_RCTL, rctl);
7469 }
7470
7471 ctrl = rd32(IGC_CTRL);
7472 ctrl |= IGC_CTRL_ADVD3WUC;
7473 wr32(IGC_CTRL, ctrl);
7474
7475 /* Allow time for pending master requests to run */
7476 igc_disable_pcie_master(hw);
7477
7478 wr32(IGC_WUC, IGC_WUC_PME_EN);
7479 wr32(IGC_WUFC, wufc);
7480 } else {
7481 wr32(IGC_WUC, 0);
7482 wr32(IGC_WUFC, 0);
7483 }
7484
7485 wake = wufc || adapter->en_mng_pt;
7486 if (!wake)
7487 igc_power_down_phy_copper_base(&adapter->hw);
7488 else
7489 igc_power_up_link(adapter);
7490
7491 if (enable_wake)
7492 *enable_wake = wake;
7493
7494 /* Release control of h/w to f/w. If f/w is AMT enabled, this
7495 * would have already happened in close and is redundant.
7496 */
7497 igc_release_hw_control(adapter);
7498
7499 pci_disable_device(pdev);
7500
7501 return 0;
7502 }
7503
igc_runtime_suspend(struct device * dev)7504 static int igc_runtime_suspend(struct device *dev)
7505 {
7506 return __igc_shutdown(to_pci_dev(dev), NULL, 1);
7507 }
7508
igc_deliver_wake_packet(struct net_device * netdev)7509 static void igc_deliver_wake_packet(struct net_device *netdev)
7510 {
7511 struct igc_adapter *adapter = netdev_priv(netdev);
7512 struct igc_hw *hw = &adapter->hw;
7513 struct sk_buff *skb;
7514 u32 wupl;
7515
7516 wupl = rd32(IGC_WUPL) & IGC_WUPL_MASK;
7517
7518 /* WUPM stores only the first 128 bytes of the wake packet.
7519 * Read the packet only if we have the whole thing.
7520 */
7521 if (wupl == 0 || wupl > IGC_WUPM_BYTES)
7522 return;
7523
7524 skb = netdev_alloc_skb_ip_align(netdev, IGC_WUPM_BYTES);
7525 if (!skb)
7526 return;
7527
7528 skb_put(skb, wupl);
7529
7530 /* Ensure reads are 32-bit aligned */
7531 wupl = roundup(wupl, 4);
7532
7533 memcpy_fromio(skb->data, hw->hw_addr + IGC_WUPM_REG(0), wupl);
7534
7535 skb->protocol = eth_type_trans(skb, netdev);
7536 netif_rx(skb);
7537 }
7538
__igc_resume(struct device * dev,bool rpm)7539 static int __igc_resume(struct device *dev, bool rpm)
7540 {
7541 struct pci_dev *pdev = to_pci_dev(dev);
7542 struct net_device *netdev = pci_get_drvdata(pdev);
7543 struct igc_adapter *adapter = netdev_priv(netdev);
7544 struct igc_hw *hw = &adapter->hw;
7545 u32 err, val;
7546
7547 pci_set_power_state(pdev, PCI_D0);
7548 pci_restore_state(pdev);
7549
7550 if (!pci_device_is_present(pdev))
7551 return -ENODEV;
7552 err = pci_enable_device_mem(pdev);
7553 if (err) {
7554 netdev_err(netdev, "Cannot enable PCI device from suspend\n");
7555 return err;
7556 }
7557 pci_set_master(pdev);
7558
7559 pci_enable_wake(pdev, PCI_D3hot, 0);
7560 pci_enable_wake(pdev, PCI_D3cold, 0);
7561
7562 if (igc_is_device_id_i226(hw))
7563 pci_disable_link_state(pdev, PCIE_LINK_STATE_L1_2);
7564
7565 if (igc_init_interrupt_scheme(adapter, true)) {
7566 netdev_err(netdev, "Unable to allocate memory for queues\n");
7567 return -ENOMEM;
7568 }
7569
7570 igc_reset(adapter);
7571
7572 /* let the f/w know that the h/w is now under the control of the
7573 * driver.
7574 */
7575 igc_get_hw_control(adapter);
7576
7577 val = rd32(IGC_WUS);
7578 if (val & WAKE_PKT_WUS)
7579 igc_deliver_wake_packet(netdev);
7580
7581 wr32(IGC_WUS, ~0);
7582
7583 if (netif_running(netdev)) {
7584 if (!rpm)
7585 rtnl_lock();
7586 err = __igc_open(netdev, true);
7587 if (!rpm)
7588 rtnl_unlock();
7589 if (err)
7590 return err;
7591 }
7592
7593 netif_device_attach(netdev);
7594
7595 return 0;
7596 }
7597
igc_resume(struct device * dev)7598 static int igc_resume(struct device *dev)
7599 {
7600 return __igc_resume(dev, false);
7601 }
7602
igc_runtime_resume(struct device * dev)7603 static int igc_runtime_resume(struct device *dev)
7604 {
7605 return __igc_resume(dev, true);
7606 }
7607
igc_suspend(struct device * dev)7608 static int igc_suspend(struct device *dev)
7609 {
7610 return __igc_shutdown(to_pci_dev(dev), NULL, 0);
7611 }
7612
igc_runtime_idle(struct device * dev)7613 static int __maybe_unused igc_runtime_idle(struct device *dev)
7614 {
7615 struct net_device *netdev = dev_get_drvdata(dev);
7616 struct igc_adapter *adapter = netdev_priv(netdev);
7617
7618 if (!igc_has_link(adapter))
7619 pm_schedule_suspend(dev, MSEC_PER_SEC * 5);
7620
7621 return -EBUSY;
7622 }
7623
igc_shutdown(struct pci_dev * pdev)7624 static void igc_shutdown(struct pci_dev *pdev)
7625 {
7626 bool wake;
7627
7628 __igc_shutdown(pdev, &wake, 0);
7629
7630 if (system_state == SYSTEM_POWER_OFF) {
7631 pci_wake_from_d3(pdev, wake);
7632 pci_set_power_state(pdev, PCI_D3hot);
7633 }
7634 }
7635
7636 /**
7637 * igc_io_error_detected - called when PCI error is detected
7638 * @pdev: Pointer to PCI device
7639 * @state: The current PCI connection state
7640 *
7641 * This function is called after a PCI bus error affecting
7642 * this device has been detected.
7643 **/
igc_io_error_detected(struct pci_dev * pdev,pci_channel_state_t state)7644 static pci_ers_result_t igc_io_error_detected(struct pci_dev *pdev,
7645 pci_channel_state_t state)
7646 {
7647 struct net_device *netdev = pci_get_drvdata(pdev);
7648 struct igc_adapter *adapter = netdev_priv(netdev);
7649
7650 rtnl_lock();
7651 netif_device_detach(netdev);
7652
7653 if (state == pci_channel_io_perm_failure) {
7654 rtnl_unlock();
7655 return PCI_ERS_RESULT_DISCONNECT;
7656 }
7657
7658 if (netif_running(netdev))
7659 igc_down(adapter);
7660 pci_disable_device(pdev);
7661 rtnl_unlock();
7662
7663 /* Request a slot reset. */
7664 return PCI_ERS_RESULT_NEED_RESET;
7665 }
7666
7667 /**
7668 * igc_io_slot_reset - called after the PCI bus has been reset.
7669 * @pdev: Pointer to PCI device
7670 *
7671 * Restart the card from scratch, as if from a cold-boot. Implementation
7672 * resembles the first-half of the __igc_resume routine.
7673 **/
igc_io_slot_reset(struct pci_dev * pdev)7674 static pci_ers_result_t igc_io_slot_reset(struct pci_dev *pdev)
7675 {
7676 struct net_device *netdev = pci_get_drvdata(pdev);
7677 struct igc_adapter *adapter = netdev_priv(netdev);
7678 struct igc_hw *hw = &adapter->hw;
7679 pci_ers_result_t result;
7680
7681 if (pci_enable_device_mem(pdev)) {
7682 netdev_err(netdev, "Could not re-enable PCI device after reset\n");
7683 result = PCI_ERS_RESULT_DISCONNECT;
7684 } else {
7685 pci_set_master(pdev);
7686 pci_restore_state(pdev);
7687
7688 pci_enable_wake(pdev, PCI_D3hot, 0);
7689 pci_enable_wake(pdev, PCI_D3cold, 0);
7690
7691 if (igc_is_device_id_i226(hw))
7692 pci_disable_link_state_locked(pdev, PCIE_LINK_STATE_L1_2);
7693
7694 /* In case of PCI error, adapter loses its HW address
7695 * so we should re-assign it here.
7696 */
7697 hw->hw_addr = adapter->io_addr;
7698
7699 igc_reset(adapter);
7700 wr32(IGC_WUS, ~0);
7701 result = PCI_ERS_RESULT_RECOVERED;
7702 }
7703
7704 return result;
7705 }
7706
7707 /**
7708 * igc_io_resume - called when traffic can start to flow again.
7709 * @pdev: Pointer to PCI device
7710 *
7711 * This callback is called when the error recovery driver tells us that
7712 * its OK to resume normal operation. Implementation resembles the
7713 * second-half of the __igc_resume routine.
7714 */
igc_io_resume(struct pci_dev * pdev)7715 static void igc_io_resume(struct pci_dev *pdev)
7716 {
7717 struct net_device *netdev = pci_get_drvdata(pdev);
7718 struct igc_adapter *adapter = netdev_priv(netdev);
7719
7720 rtnl_lock();
7721 if (netif_running(netdev)) {
7722 if (igc_open(netdev)) {
7723 rtnl_unlock();
7724 netdev_err(netdev, "igc_open failed after reset\n");
7725 return;
7726 }
7727 }
7728
7729 netif_device_attach(netdev);
7730
7731 /* let the f/w know that the h/w is now under the control of the
7732 * driver.
7733 */
7734 igc_get_hw_control(adapter);
7735 rtnl_unlock();
7736 }
7737
7738 static const struct pci_error_handlers igc_err_handler = {
7739 .error_detected = igc_io_error_detected,
7740 .slot_reset = igc_io_slot_reset,
7741 .resume = igc_io_resume,
7742 };
7743
7744 static _DEFINE_DEV_PM_OPS(igc_pm_ops, igc_suspend, igc_resume,
7745 igc_runtime_suspend, igc_runtime_resume,
7746 igc_runtime_idle);
7747
7748 static struct pci_driver igc_driver = {
7749 .name = igc_driver_name,
7750 .id_table = igc_pci_tbl,
7751 .probe = igc_probe,
7752 .remove = igc_remove,
7753 .driver.pm = pm_ptr(&igc_pm_ops),
7754 .shutdown = igc_shutdown,
7755 .err_handler = &igc_err_handler,
7756 };
7757
7758 /**
7759 * igc_reinit_queues - return error
7760 * @adapter: pointer to adapter structure
7761 */
igc_reinit_queues(struct igc_adapter * adapter)7762 int igc_reinit_queues(struct igc_adapter *adapter)
7763 {
7764 struct net_device *netdev = adapter->netdev;
7765 int err = 0;
7766
7767 if (netif_running(netdev))
7768 igc_close(netdev);
7769
7770 igc_reset_interrupt_capability(adapter);
7771
7772 if (igc_init_interrupt_scheme(adapter, true)) {
7773 netdev_err(netdev, "Unable to allocate memory for queues\n");
7774 return -ENOMEM;
7775 }
7776
7777 if (netif_running(netdev))
7778 err = igc_open(netdev);
7779
7780 if (!err) {
7781 /* Restore default IEEE 802.1Qbv schedule after queue reinit */
7782 igc_tsn_clear_schedule(adapter);
7783 }
7784
7785 return err;
7786 }
7787
7788 /**
7789 * igc_get_hw_dev - return device
7790 * @hw: pointer to hardware structure
7791 *
7792 * used by hardware layer to print debugging information
7793 */
igc_get_hw_dev(struct igc_hw * hw)7794 struct net_device *igc_get_hw_dev(struct igc_hw *hw)
7795 {
7796 struct igc_adapter *adapter = hw->back;
7797
7798 return adapter->netdev;
7799 }
7800
igc_disable_rx_ring_hw(struct igc_ring * ring)7801 static void igc_disable_rx_ring_hw(struct igc_ring *ring)
7802 {
7803 struct igc_hw *hw = &ring->q_vector->adapter->hw;
7804 u8 idx = ring->reg_idx;
7805 u32 rxdctl;
7806
7807 rxdctl = rd32(IGC_RXDCTL(idx));
7808 rxdctl &= ~IGC_RXDCTL_QUEUE_ENABLE;
7809 rxdctl |= IGC_RXDCTL_SWFLUSH;
7810 wr32(IGC_RXDCTL(idx), rxdctl);
7811 }
7812
igc_disable_rx_ring(struct igc_ring * ring)7813 void igc_disable_rx_ring(struct igc_ring *ring)
7814 {
7815 igc_disable_rx_ring_hw(ring);
7816 igc_clean_rx_ring(ring);
7817 }
7818
igc_enable_rx_ring(struct igc_ring * ring)7819 void igc_enable_rx_ring(struct igc_ring *ring)
7820 {
7821 struct igc_adapter *adapter = ring->q_vector->adapter;
7822
7823 igc_configure_rx_ring(adapter, ring);
7824
7825 if (ring->xsk_pool)
7826 igc_alloc_rx_buffers_zc(ring, igc_desc_unused(ring));
7827 else
7828 igc_alloc_rx_buffers(ring, igc_desc_unused(ring));
7829 }
7830
igc_disable_tx_ring(struct igc_ring * ring)7831 void igc_disable_tx_ring(struct igc_ring *ring)
7832 {
7833 igc_disable_tx_ring_hw(ring);
7834 igc_clean_tx_ring(ring);
7835 }
7836
igc_enable_tx_ring(struct igc_ring * ring)7837 void igc_enable_tx_ring(struct igc_ring *ring)
7838 {
7839 struct igc_adapter *adapter = ring->q_vector->adapter;
7840
7841 igc_configure_tx_ring(adapter, ring);
7842 }
7843
7844 /**
7845 * igc_init_module - Driver Registration Routine
7846 *
7847 * igc_init_module is the first routine called when the driver is
7848 * loaded. All it does is register with the PCI subsystem.
7849 */
igc_init_module(void)7850 static int __init igc_init_module(void)
7851 {
7852 int ret;
7853
7854 pr_info("%s\n", igc_driver_string);
7855 pr_info("%s\n", igc_copyright);
7856
7857 ret = pci_register_driver(&igc_driver);
7858 return ret;
7859 }
7860
7861 module_init(igc_init_module);
7862
7863 /**
7864 * igc_exit_module - Driver Exit Cleanup Routine
7865 *
7866 * igc_exit_module is called just before the driver is removed
7867 * from memory.
7868 */
igc_exit_module(void)7869 static void __exit igc_exit_module(void)
7870 {
7871 pci_unregister_driver(&igc_driver);
7872 }
7873
7874 module_exit(igc_exit_module);
7875 /* igc_main.c */
7876