1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3 * Copyright (c) 2009, Microsoft Corporation.
4 *
5 * Authors:
6 * Haiyang Zhang <haiyangz@microsoft.com>
7 * Hank Janssen <hjanssen@microsoft.com>
8 */
9 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
10
11 #include <linux/kernel.h>
12 #include <linux/sched.h>
13 #include <linux/wait.h>
14 #include <linux/mm.h>
15 #include <linux/delay.h>
16 #include <linux/io.h>
17 #include <linux/slab.h>
18 #include <linux/netdevice.h>
19 #include <linux/if_ether.h>
20 #include <linux/vmalloc.h>
21 #include <linux/rtnetlink.h>
22 #include <linux/prefetch.h>
23 #include <linux/filter.h>
24
25 #include <asm/sync_bitops.h>
26 #include <asm/mshyperv.h>
27
28 #include "hyperv_net.h"
29 #include "netvsc_trace.h"
30
31 /*
32 * Switch the data path from the synthetic interface to the VF
33 * interface.
34 */
netvsc_switch_datapath(struct net_device * ndev,bool vf)35 int netvsc_switch_datapath(struct net_device *ndev, bool vf)
36 {
37 struct net_device_context *net_device_ctx = netdev_priv(ndev);
38 struct hv_device *dev = net_device_ctx->device_ctx;
39 struct netvsc_device *nv_dev = rtnl_dereference(net_device_ctx->nvdev);
40 struct nvsp_message *init_pkt = &nv_dev->channel_init_pkt;
41 int ret, retry = 0;
42
43 /* Block sending traffic to VF if it's about to be gone */
44 if (!vf)
45 net_device_ctx->data_path_is_vf = vf;
46
47 memset(init_pkt, 0, sizeof(struct nvsp_message));
48 init_pkt->hdr.msg_type = NVSP_MSG4_TYPE_SWITCH_DATA_PATH;
49 if (vf)
50 init_pkt->msg.v4_msg.active_dp.active_datapath =
51 NVSP_DATAPATH_VF;
52 else
53 init_pkt->msg.v4_msg.active_dp.active_datapath =
54 NVSP_DATAPATH_SYNTHETIC;
55
56 again:
57 trace_nvsp_send(ndev, init_pkt);
58
59 ret = vmbus_sendpacket(dev->channel, init_pkt,
60 sizeof(struct nvsp_message),
61 (unsigned long)init_pkt, VM_PKT_DATA_INBAND,
62 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED);
63
64 /* If failed to switch to/from VF, let data_path_is_vf stay false,
65 * so we use synthetic path to send data.
66 */
67 if (ret) {
68 if (ret != -EAGAIN) {
69 netdev_err(ndev,
70 "Unable to send sw datapath msg, err: %d\n",
71 ret);
72 return ret;
73 }
74
75 if (retry++ < RETRY_MAX) {
76 usleep_range(RETRY_US_LO, RETRY_US_HI);
77 goto again;
78 } else {
79 netdev_err(
80 ndev,
81 "Retry failed to send sw datapath msg, err: %d\n",
82 ret);
83 return ret;
84 }
85 }
86
87 wait_for_completion(&nv_dev->channel_init_wait);
88 net_device_ctx->data_path_is_vf = vf;
89
90 return 0;
91 }
92
93 /* Worker to setup sub channels on initial setup
94 * Initial hotplug event occurs in softirq context
95 * and can't wait for channels.
96 */
netvsc_subchan_work(struct work_struct * w)97 static void netvsc_subchan_work(struct work_struct *w)
98 {
99 struct netvsc_device *nvdev =
100 container_of(w, struct netvsc_device, subchan_work);
101 struct rndis_device *rdev;
102 int i, ret;
103
104 /* Avoid deadlock with device removal already under RTNL */
105 if (!rtnl_trylock()) {
106 schedule_work(w);
107 return;
108 }
109
110 rdev = nvdev->extension;
111 if (rdev) {
112 ret = rndis_set_subchannel(rdev->ndev, nvdev, NULL);
113 if (ret == 0) {
114 netif_device_attach(rdev->ndev);
115 } else {
116 /* fallback to only primary channel */
117 for (i = 1; i < nvdev->num_chn; i++)
118 netif_napi_del(&nvdev->chan_table[i].napi);
119
120 nvdev->max_chn = 1;
121 nvdev->num_chn = 1;
122 }
123 }
124
125 rtnl_unlock();
126 }
127
alloc_net_device(void)128 static struct netvsc_device *alloc_net_device(void)
129 {
130 struct netvsc_device *net_device;
131
132 net_device = kzalloc(sizeof(struct netvsc_device), GFP_KERNEL);
133 if (!net_device)
134 return NULL;
135
136 init_waitqueue_head(&net_device->wait_drain);
137 net_device->destroy = false;
138 net_device->tx_disable = true;
139
140 net_device->max_pkt = RNDIS_MAX_PKT_DEFAULT;
141 net_device->pkt_align = RNDIS_PKT_ALIGN_DEFAULT;
142
143 init_completion(&net_device->channel_init_wait);
144 init_waitqueue_head(&net_device->subchan_open);
145 INIT_WORK(&net_device->subchan_work, netvsc_subchan_work);
146
147 return net_device;
148 }
149
free_netvsc_device(struct rcu_head * head)150 static void free_netvsc_device(struct rcu_head *head)
151 {
152 struct netvsc_device *nvdev
153 = container_of(head, struct netvsc_device, rcu);
154 int i;
155
156 kfree(nvdev->extension);
157 vfree(nvdev->recv_buf);
158 vfree(nvdev->send_buf);
159 bitmap_free(nvdev->send_section_map);
160
161 for (i = 0; i < VRSS_CHANNEL_MAX; i++) {
162 xdp_rxq_info_unreg(&nvdev->chan_table[i].xdp_rxq);
163 kfree(nvdev->chan_table[i].recv_buf);
164 vfree(nvdev->chan_table[i].mrc.slots);
165 }
166
167 kfree(nvdev);
168 }
169
free_netvsc_device_rcu(struct netvsc_device * nvdev)170 static void free_netvsc_device_rcu(struct netvsc_device *nvdev)
171 {
172 call_rcu(&nvdev->rcu, free_netvsc_device);
173 }
174
netvsc_revoke_recv_buf(struct hv_device * device,struct netvsc_device * net_device,struct net_device * ndev)175 static void netvsc_revoke_recv_buf(struct hv_device *device,
176 struct netvsc_device *net_device,
177 struct net_device *ndev)
178 {
179 struct nvsp_message *revoke_packet;
180 int ret;
181
182 /*
183 * If we got a section count, it means we received a
184 * SendReceiveBufferComplete msg (ie sent
185 * NvspMessage1TypeSendReceiveBuffer msg) therefore, we need
186 * to send a revoke msg here
187 */
188 if (net_device->recv_section_cnt) {
189 /* Send the revoke receive buffer */
190 revoke_packet = &net_device->revoke_packet;
191 memset(revoke_packet, 0, sizeof(struct nvsp_message));
192
193 revoke_packet->hdr.msg_type =
194 NVSP_MSG1_TYPE_REVOKE_RECV_BUF;
195 revoke_packet->msg.v1_msg.
196 revoke_recv_buf.id = NETVSC_RECEIVE_BUFFER_ID;
197
198 trace_nvsp_send(ndev, revoke_packet);
199
200 ret = vmbus_sendpacket(device->channel,
201 revoke_packet,
202 sizeof(struct nvsp_message),
203 VMBUS_RQST_ID_NO_RESPONSE,
204 VM_PKT_DATA_INBAND, 0);
205 /* If the failure is because the channel is rescinded;
206 * ignore the failure since we cannot send on a rescinded
207 * channel. This would allow us to properly cleanup
208 * even when the channel is rescinded.
209 */
210 if (device->channel->rescind)
211 ret = 0;
212 /*
213 * If we failed here, we might as well return and
214 * have a leak rather than continue and a bugchk
215 */
216 if (ret != 0) {
217 netdev_err(ndev, "unable to send "
218 "revoke receive buffer to netvsp\n");
219 return;
220 }
221 net_device->recv_section_cnt = 0;
222 }
223 }
224
netvsc_revoke_send_buf(struct hv_device * device,struct netvsc_device * net_device,struct net_device * ndev)225 static void netvsc_revoke_send_buf(struct hv_device *device,
226 struct netvsc_device *net_device,
227 struct net_device *ndev)
228 {
229 struct nvsp_message *revoke_packet;
230 int ret;
231
232 /* Deal with the send buffer we may have setup.
233 * If we got a send section size, it means we received a
234 * NVSP_MSG1_TYPE_SEND_SEND_BUF_COMPLETE msg (ie sent
235 * NVSP_MSG1_TYPE_SEND_SEND_BUF msg) therefore, we need
236 * to send a revoke msg here
237 */
238 if (net_device->send_section_cnt) {
239 /* Send the revoke receive buffer */
240 revoke_packet = &net_device->revoke_packet;
241 memset(revoke_packet, 0, sizeof(struct nvsp_message));
242
243 revoke_packet->hdr.msg_type =
244 NVSP_MSG1_TYPE_REVOKE_SEND_BUF;
245 revoke_packet->msg.v1_msg.revoke_send_buf.id =
246 NETVSC_SEND_BUFFER_ID;
247
248 trace_nvsp_send(ndev, revoke_packet);
249
250 ret = vmbus_sendpacket(device->channel,
251 revoke_packet,
252 sizeof(struct nvsp_message),
253 VMBUS_RQST_ID_NO_RESPONSE,
254 VM_PKT_DATA_INBAND, 0);
255
256 /* If the failure is because the channel is rescinded;
257 * ignore the failure since we cannot send on a rescinded
258 * channel. This would allow us to properly cleanup
259 * even when the channel is rescinded.
260 */
261 if (device->channel->rescind)
262 ret = 0;
263
264 /* If we failed here, we might as well return and
265 * have a leak rather than continue and a bugchk
266 */
267 if (ret != 0) {
268 netdev_err(ndev, "unable to send "
269 "revoke send buffer to netvsp\n");
270 return;
271 }
272 net_device->send_section_cnt = 0;
273 }
274 }
275
netvsc_teardown_recv_gpadl(struct hv_device * device,struct netvsc_device * net_device,struct net_device * ndev)276 static void netvsc_teardown_recv_gpadl(struct hv_device *device,
277 struct netvsc_device *net_device,
278 struct net_device *ndev)
279 {
280 int ret;
281
282 if (net_device->recv_buf_gpadl_handle.gpadl_handle) {
283 ret = vmbus_teardown_gpadl(device->channel,
284 &net_device->recv_buf_gpadl_handle);
285
286 /* If we failed here, we might as well return and have a leak
287 * rather than continue and a bugchk
288 */
289 if (ret != 0) {
290 netdev_err(ndev,
291 "unable to teardown receive buffer's gpadl\n");
292 return;
293 }
294 }
295 }
296
netvsc_teardown_send_gpadl(struct hv_device * device,struct netvsc_device * net_device,struct net_device * ndev)297 static void netvsc_teardown_send_gpadl(struct hv_device *device,
298 struct netvsc_device *net_device,
299 struct net_device *ndev)
300 {
301 int ret;
302
303 if (net_device->send_buf_gpadl_handle.gpadl_handle) {
304 ret = vmbus_teardown_gpadl(device->channel,
305 &net_device->send_buf_gpadl_handle);
306
307 /* If we failed here, we might as well return and have a leak
308 * rather than continue and a bugchk
309 */
310 if (ret != 0) {
311 netdev_err(ndev,
312 "unable to teardown send buffer's gpadl\n");
313 return;
314 }
315 }
316 }
317
netvsc_alloc_recv_comp_ring(struct netvsc_device * net_device,u32 q_idx)318 int netvsc_alloc_recv_comp_ring(struct netvsc_device *net_device, u32 q_idx)
319 {
320 struct netvsc_channel *nvchan = &net_device->chan_table[q_idx];
321 int node = cpu_to_node(nvchan->channel->target_cpu);
322 size_t size;
323
324 size = net_device->recv_completion_cnt * sizeof(struct recv_comp_data);
325 nvchan->mrc.slots = vzalloc_node(size, node);
326 if (!nvchan->mrc.slots)
327 nvchan->mrc.slots = vzalloc(size);
328
329 return nvchan->mrc.slots ? 0 : -ENOMEM;
330 }
331
netvsc_init_buf(struct hv_device * device,struct netvsc_device * net_device,const struct netvsc_device_info * device_info)332 static int netvsc_init_buf(struct hv_device *device,
333 struct netvsc_device *net_device,
334 const struct netvsc_device_info *device_info)
335 {
336 struct nvsp_1_message_send_receive_buffer_complete *resp;
337 struct net_device *ndev = hv_get_drvdata(device);
338 struct nvsp_message *init_packet;
339 unsigned int buf_size;
340 int i, ret = 0;
341
342 /* Get receive buffer area. */
343 buf_size = device_info->recv_sections * device_info->recv_section_size;
344 buf_size = roundup(buf_size, PAGE_SIZE);
345
346 /* Legacy hosts only allow smaller receive buffer */
347 if (net_device->nvsp_version <= NVSP_PROTOCOL_VERSION_2)
348 buf_size = min_t(unsigned int, buf_size,
349 NETVSC_RECEIVE_BUFFER_SIZE_LEGACY);
350
351 net_device->recv_buf = vzalloc(buf_size);
352 if (!net_device->recv_buf) {
353 netdev_err(ndev,
354 "unable to allocate receive buffer of size %u\n",
355 buf_size);
356 ret = -ENOMEM;
357 goto cleanup;
358 }
359
360 net_device->recv_buf_size = buf_size;
361
362 /*
363 * Establish the gpadl handle for this buffer on this
364 * channel. Note: This call uses the vmbus connection rather
365 * than the channel to establish the gpadl handle.
366 */
367 ret = vmbus_establish_gpadl(device->channel, net_device->recv_buf,
368 buf_size,
369 &net_device->recv_buf_gpadl_handle);
370 if (ret != 0) {
371 netdev_err(ndev,
372 "unable to establish receive buffer's gpadl\n");
373 goto cleanup;
374 }
375
376 /* Notify the NetVsp of the gpadl handle */
377 init_packet = &net_device->channel_init_pkt;
378 memset(init_packet, 0, sizeof(struct nvsp_message));
379 init_packet->hdr.msg_type = NVSP_MSG1_TYPE_SEND_RECV_BUF;
380 init_packet->msg.v1_msg.send_recv_buf.
381 gpadl_handle = net_device->recv_buf_gpadl_handle.gpadl_handle;
382 init_packet->msg.v1_msg.
383 send_recv_buf.id = NETVSC_RECEIVE_BUFFER_ID;
384
385 trace_nvsp_send(ndev, init_packet);
386
387 /* Send the gpadl notification request */
388 ret = vmbus_sendpacket(device->channel, init_packet,
389 sizeof(struct nvsp_message),
390 (unsigned long)init_packet,
391 VM_PKT_DATA_INBAND,
392 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED);
393 if (ret != 0) {
394 netdev_err(ndev,
395 "unable to send receive buffer's gpadl to netvsp\n");
396 goto cleanup;
397 }
398
399 wait_for_completion(&net_device->channel_init_wait);
400
401 /* Check the response */
402 resp = &init_packet->msg.v1_msg.send_recv_buf_complete;
403 if (resp->status != NVSP_STAT_SUCCESS) {
404 netdev_err(ndev,
405 "Unable to complete receive buffer initialization with NetVsp - status %d\n",
406 resp->status);
407 ret = -EINVAL;
408 goto cleanup;
409 }
410
411 /* Parse the response */
412 netdev_dbg(ndev, "Receive sections: %u sub_allocs: size %u count: %u\n",
413 resp->num_sections, resp->sections[0].sub_alloc_size,
414 resp->sections[0].num_sub_allocs);
415
416 /* There should only be one section for the entire receive buffer */
417 if (resp->num_sections != 1 || resp->sections[0].offset != 0) {
418 ret = -EINVAL;
419 goto cleanup;
420 }
421
422 net_device->recv_section_size = resp->sections[0].sub_alloc_size;
423 net_device->recv_section_cnt = resp->sections[0].num_sub_allocs;
424
425 /* Ensure buffer will not overflow */
426 if (net_device->recv_section_size < NETVSC_MTU_MIN || (u64)net_device->recv_section_size *
427 (u64)net_device->recv_section_cnt > (u64)buf_size) {
428 netdev_err(ndev, "invalid recv_section_size %u\n",
429 net_device->recv_section_size);
430 ret = -EINVAL;
431 goto cleanup;
432 }
433
434 for (i = 0; i < VRSS_CHANNEL_MAX; i++) {
435 struct netvsc_channel *nvchan = &net_device->chan_table[i];
436
437 nvchan->recv_buf = kzalloc(net_device->recv_section_size, GFP_KERNEL);
438 if (nvchan->recv_buf == NULL) {
439 ret = -ENOMEM;
440 goto cleanup;
441 }
442 }
443
444 /* Setup receive completion ring.
445 * Add 1 to the recv_section_cnt because at least one entry in a
446 * ring buffer has to be empty.
447 */
448 net_device->recv_completion_cnt = net_device->recv_section_cnt + 1;
449 ret = netvsc_alloc_recv_comp_ring(net_device, 0);
450 if (ret)
451 goto cleanup;
452
453 /* Now setup the send buffer. */
454 buf_size = device_info->send_sections * device_info->send_section_size;
455 buf_size = round_up(buf_size, PAGE_SIZE);
456
457 net_device->send_buf = vzalloc(buf_size);
458 if (!net_device->send_buf) {
459 netdev_err(ndev, "unable to allocate send buffer of size %u\n",
460 buf_size);
461 ret = -ENOMEM;
462 goto cleanup;
463 }
464 net_device->send_buf_size = buf_size;
465
466 /* Establish the gpadl handle for this buffer on this
467 * channel. Note: This call uses the vmbus connection rather
468 * than the channel to establish the gpadl handle.
469 */
470 ret = vmbus_establish_gpadl(device->channel, net_device->send_buf,
471 buf_size,
472 &net_device->send_buf_gpadl_handle);
473 if (ret != 0) {
474 netdev_err(ndev,
475 "unable to establish send buffer's gpadl\n");
476 goto cleanup;
477 }
478
479 /* Notify the NetVsp of the gpadl handle */
480 init_packet = &net_device->channel_init_pkt;
481 memset(init_packet, 0, sizeof(struct nvsp_message));
482 init_packet->hdr.msg_type = NVSP_MSG1_TYPE_SEND_SEND_BUF;
483 init_packet->msg.v1_msg.send_send_buf.gpadl_handle =
484 net_device->send_buf_gpadl_handle.gpadl_handle;
485 init_packet->msg.v1_msg.send_send_buf.id = NETVSC_SEND_BUFFER_ID;
486
487 trace_nvsp_send(ndev, init_packet);
488
489 /* Send the gpadl notification request */
490 ret = vmbus_sendpacket(device->channel, init_packet,
491 sizeof(struct nvsp_message),
492 (unsigned long)init_packet,
493 VM_PKT_DATA_INBAND,
494 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED);
495 if (ret != 0) {
496 netdev_err(ndev,
497 "unable to send send buffer's gpadl to netvsp\n");
498 goto cleanup;
499 }
500
501 wait_for_completion(&net_device->channel_init_wait);
502
503 /* Check the response */
504 if (init_packet->msg.v1_msg.
505 send_send_buf_complete.status != NVSP_STAT_SUCCESS) {
506 netdev_err(ndev, "Unable to complete send buffer "
507 "initialization with NetVsp - status %d\n",
508 init_packet->msg.v1_msg.
509 send_send_buf_complete.status);
510 ret = -EINVAL;
511 goto cleanup;
512 }
513
514 /* Parse the response */
515 net_device->send_section_size = init_packet->msg.
516 v1_msg.send_send_buf_complete.section_size;
517 if (net_device->send_section_size < NETVSC_MTU_MIN) {
518 netdev_err(ndev, "invalid send_section_size %u\n",
519 net_device->send_section_size);
520 ret = -EINVAL;
521 goto cleanup;
522 }
523
524 /* Section count is simply the size divided by the section size. */
525 net_device->send_section_cnt = buf_size / net_device->send_section_size;
526
527 netdev_dbg(ndev, "Send section size: %d, Section count:%d\n",
528 net_device->send_section_size, net_device->send_section_cnt);
529
530 /* Setup state for managing the send buffer. */
531 net_device->send_section_map = bitmap_zalloc(net_device->send_section_cnt,
532 GFP_KERNEL);
533 if (!net_device->send_section_map) {
534 ret = -ENOMEM;
535 goto cleanup;
536 }
537
538 goto exit;
539
540 cleanup:
541 netvsc_revoke_recv_buf(device, net_device, ndev);
542 netvsc_revoke_send_buf(device, net_device, ndev);
543 netvsc_teardown_recv_gpadl(device, net_device, ndev);
544 netvsc_teardown_send_gpadl(device, net_device, ndev);
545
546 exit:
547 return ret;
548 }
549
550 /* Negotiate NVSP protocol version */
negotiate_nvsp_ver(struct hv_device * device,struct netvsc_device * net_device,struct nvsp_message * init_packet,u32 nvsp_ver)551 static int negotiate_nvsp_ver(struct hv_device *device,
552 struct netvsc_device *net_device,
553 struct nvsp_message *init_packet,
554 u32 nvsp_ver)
555 {
556 struct net_device *ndev = hv_get_drvdata(device);
557 int ret;
558
559 memset(init_packet, 0, sizeof(struct nvsp_message));
560 init_packet->hdr.msg_type = NVSP_MSG_TYPE_INIT;
561 init_packet->msg.init_msg.init.min_protocol_ver = nvsp_ver;
562 init_packet->msg.init_msg.init.max_protocol_ver = nvsp_ver;
563 trace_nvsp_send(ndev, init_packet);
564
565 /* Send the init request */
566 ret = vmbus_sendpacket(device->channel, init_packet,
567 sizeof(struct nvsp_message),
568 (unsigned long)init_packet,
569 VM_PKT_DATA_INBAND,
570 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED);
571
572 if (ret != 0)
573 return ret;
574
575 wait_for_completion(&net_device->channel_init_wait);
576
577 if (init_packet->msg.init_msg.init_complete.status !=
578 NVSP_STAT_SUCCESS)
579 return -EINVAL;
580
581 if (nvsp_ver == NVSP_PROTOCOL_VERSION_1)
582 return 0;
583
584 /* NVSPv2 or later: Send NDIS config */
585 memset(init_packet, 0, sizeof(struct nvsp_message));
586 init_packet->hdr.msg_type = NVSP_MSG2_TYPE_SEND_NDIS_CONFIG;
587 init_packet->msg.v2_msg.send_ndis_config.mtu = ndev->mtu + ETH_HLEN;
588 init_packet->msg.v2_msg.send_ndis_config.capability.ieee8021q = 1;
589
590 if (nvsp_ver >= NVSP_PROTOCOL_VERSION_5) {
591 if (hv_is_isolation_supported())
592 netdev_info(ndev, "SR-IOV not advertised by guests on the host supporting isolation\n");
593 else
594 init_packet->msg.v2_msg.send_ndis_config.capability.sriov = 1;
595
596 /* Teaming bit is needed to receive link speed updates */
597 init_packet->msg.v2_msg.send_ndis_config.capability.teaming = 1;
598 }
599
600 if (nvsp_ver >= NVSP_PROTOCOL_VERSION_61)
601 init_packet->msg.v2_msg.send_ndis_config.capability.rsc = 1;
602
603 trace_nvsp_send(ndev, init_packet);
604
605 ret = vmbus_sendpacket(device->channel, init_packet,
606 sizeof(struct nvsp_message),
607 VMBUS_RQST_ID_NO_RESPONSE,
608 VM_PKT_DATA_INBAND, 0);
609
610 return ret;
611 }
612
netvsc_connect_vsp(struct hv_device * device,struct netvsc_device * net_device,const struct netvsc_device_info * device_info)613 static int netvsc_connect_vsp(struct hv_device *device,
614 struct netvsc_device *net_device,
615 const struct netvsc_device_info *device_info)
616 {
617 struct net_device *ndev = hv_get_drvdata(device);
618 static const u32 ver_list[] = {
619 NVSP_PROTOCOL_VERSION_1, NVSP_PROTOCOL_VERSION_2,
620 NVSP_PROTOCOL_VERSION_4, NVSP_PROTOCOL_VERSION_5,
621 NVSP_PROTOCOL_VERSION_6, NVSP_PROTOCOL_VERSION_61
622 };
623 struct nvsp_message *init_packet;
624 int ndis_version, i, ret;
625
626 init_packet = &net_device->channel_init_pkt;
627
628 /* Negotiate the latest NVSP protocol supported */
629 for (i = ARRAY_SIZE(ver_list) - 1; i >= 0; i--)
630 if (negotiate_nvsp_ver(device, net_device, init_packet,
631 ver_list[i]) == 0) {
632 net_device->nvsp_version = ver_list[i];
633 break;
634 }
635
636 if (i < 0) {
637 ret = -EPROTO;
638 goto cleanup;
639 }
640
641 if (hv_is_isolation_supported() && net_device->nvsp_version < NVSP_PROTOCOL_VERSION_61) {
642 netdev_err(ndev, "Invalid NVSP version 0x%x (expected >= 0x%x) from the host supporting isolation\n",
643 net_device->nvsp_version, NVSP_PROTOCOL_VERSION_61);
644 ret = -EPROTO;
645 goto cleanup;
646 }
647
648 pr_debug("Negotiated NVSP version:%x\n", net_device->nvsp_version);
649
650 /* Send the ndis version */
651 memset(init_packet, 0, sizeof(struct nvsp_message));
652
653 if (net_device->nvsp_version <= NVSP_PROTOCOL_VERSION_4)
654 ndis_version = 0x00060001;
655 else
656 ndis_version = 0x0006001e;
657
658 init_packet->hdr.msg_type = NVSP_MSG1_TYPE_SEND_NDIS_VER;
659 init_packet->msg.v1_msg.
660 send_ndis_ver.ndis_major_ver =
661 (ndis_version & 0xFFFF0000) >> 16;
662 init_packet->msg.v1_msg.
663 send_ndis_ver.ndis_minor_ver =
664 ndis_version & 0xFFFF;
665
666 trace_nvsp_send(ndev, init_packet);
667
668 /* Send the init request */
669 ret = vmbus_sendpacket(device->channel, init_packet,
670 sizeof(struct nvsp_message),
671 VMBUS_RQST_ID_NO_RESPONSE,
672 VM_PKT_DATA_INBAND, 0);
673 if (ret != 0)
674 goto cleanup;
675
676
677 ret = netvsc_init_buf(device, net_device, device_info);
678
679 cleanup:
680 return ret;
681 }
682
683 /*
684 * netvsc_device_remove - Callback when the root bus device is removed
685 */
netvsc_device_remove(struct hv_device * device)686 void netvsc_device_remove(struct hv_device *device)
687 {
688 struct net_device *ndev = hv_get_drvdata(device);
689 struct net_device_context *net_device_ctx = netdev_priv(ndev);
690 struct netvsc_device *net_device
691 = rtnl_dereference(net_device_ctx->nvdev);
692 int i;
693
694 /*
695 * Revoke receive buffer. If host is pre-Win2016 then tear down
696 * receive buffer GPADL. Do the same for send buffer.
697 */
698 netvsc_revoke_recv_buf(device, net_device, ndev);
699 if (vmbus_proto_version < VERSION_WIN10)
700 netvsc_teardown_recv_gpadl(device, net_device, ndev);
701
702 netvsc_revoke_send_buf(device, net_device, ndev);
703 if (vmbus_proto_version < VERSION_WIN10)
704 netvsc_teardown_send_gpadl(device, net_device, ndev);
705
706 RCU_INIT_POINTER(net_device_ctx->nvdev, NULL);
707
708 /* Disable NAPI and disassociate its context from the device. */
709 for (i = 0; i < net_device->num_chn; i++) {
710 /* See also vmbus_reset_channel_cb(). */
711 napi_disable(&net_device->chan_table[i].napi);
712 netif_napi_del(&net_device->chan_table[i].napi);
713 }
714
715 /*
716 * At this point, no one should be accessing net_device
717 * except in here
718 */
719 netdev_dbg(ndev, "net device safe to remove\n");
720
721 /* Now, we can close the channel safely */
722 vmbus_close(device->channel);
723
724 /*
725 * If host is Win2016 or higher then we do the GPADL tear down
726 * here after VMBus is closed.
727 */
728 if (vmbus_proto_version >= VERSION_WIN10) {
729 netvsc_teardown_recv_gpadl(device, net_device, ndev);
730 netvsc_teardown_send_gpadl(device, net_device, ndev);
731 }
732
733 /* Release all resources */
734 free_netvsc_device_rcu(net_device);
735 }
736
737 #define RING_AVAIL_PERCENT_HIWATER 20
738 #define RING_AVAIL_PERCENT_LOWATER 10
739
netvsc_free_send_slot(struct netvsc_device * net_device,u32 index)740 static inline void netvsc_free_send_slot(struct netvsc_device *net_device,
741 u32 index)
742 {
743 sync_change_bit(index, net_device->send_section_map);
744 }
745
netvsc_send_tx_complete(struct net_device * ndev,struct netvsc_device * net_device,struct vmbus_channel * channel,const struct vmpacket_descriptor * desc,int budget)746 static void netvsc_send_tx_complete(struct net_device *ndev,
747 struct netvsc_device *net_device,
748 struct vmbus_channel *channel,
749 const struct vmpacket_descriptor *desc,
750 int budget)
751 {
752 struct net_device_context *ndev_ctx = netdev_priv(ndev);
753 struct sk_buff *skb;
754 u16 q_idx = 0;
755 int queue_sends;
756 u64 cmd_rqst;
757
758 cmd_rqst = channel->request_addr_callback(channel, desc->trans_id);
759 if (cmd_rqst == VMBUS_RQST_ERROR) {
760 netdev_err(ndev, "Invalid transaction ID %llx\n", desc->trans_id);
761 return;
762 }
763
764 skb = (struct sk_buff *)(unsigned long)cmd_rqst;
765
766 /* Notify the layer above us */
767 if (likely(skb)) {
768 struct hv_netvsc_packet *packet
769 = (struct hv_netvsc_packet *)skb->cb;
770 u32 send_index = packet->send_buf_index;
771 struct netvsc_stats_tx *tx_stats;
772
773 if (send_index != NETVSC_INVALID_INDEX)
774 netvsc_free_send_slot(net_device, send_index);
775 q_idx = packet->q_idx;
776
777 tx_stats = &net_device->chan_table[q_idx].tx_stats;
778
779 u64_stats_update_begin(&tx_stats->syncp);
780 tx_stats->packets += packet->total_packets;
781 tx_stats->bytes += packet->total_bytes;
782 u64_stats_update_end(&tx_stats->syncp);
783
784 netvsc_dma_unmap(ndev_ctx->device_ctx, packet);
785 napi_consume_skb(skb, budget);
786 }
787
788 queue_sends =
789 atomic_dec_return(&net_device->chan_table[q_idx].queue_sends);
790
791 if (unlikely(net_device->destroy)) {
792 if (queue_sends == 0)
793 wake_up(&net_device->wait_drain);
794 } else {
795 struct netdev_queue *txq = netdev_get_tx_queue(ndev, q_idx);
796
797 if (netif_tx_queue_stopped(txq) && !net_device->tx_disable &&
798 (hv_get_avail_to_write_percent(&channel->outbound) >
799 RING_AVAIL_PERCENT_HIWATER || queue_sends < 1)) {
800 netif_tx_wake_queue(txq);
801 ndev_ctx->eth_stats.wake_queue++;
802 }
803 }
804 }
805
netvsc_send_completion(struct net_device * ndev,struct netvsc_device * net_device,struct vmbus_channel * incoming_channel,const struct vmpacket_descriptor * desc,int budget)806 static void netvsc_send_completion(struct net_device *ndev,
807 struct netvsc_device *net_device,
808 struct vmbus_channel *incoming_channel,
809 const struct vmpacket_descriptor *desc,
810 int budget)
811 {
812 const struct nvsp_message *nvsp_packet;
813 u32 msglen = hv_pkt_datalen(desc);
814 struct nvsp_message *pkt_rqst;
815 u64 cmd_rqst;
816 u32 status;
817
818 /* First check if this is a VMBUS completion without data payload */
819 if (!msglen) {
820 cmd_rqst = incoming_channel->request_addr_callback(incoming_channel,
821 desc->trans_id);
822 if (cmd_rqst == VMBUS_RQST_ERROR) {
823 netdev_err(ndev, "Invalid transaction ID %llx\n", desc->trans_id);
824 return;
825 }
826
827 pkt_rqst = (struct nvsp_message *)(uintptr_t)cmd_rqst;
828 switch (pkt_rqst->hdr.msg_type) {
829 case NVSP_MSG4_TYPE_SWITCH_DATA_PATH:
830 complete(&net_device->channel_init_wait);
831 break;
832
833 default:
834 netdev_err(ndev, "Unexpected VMBUS completion!!\n");
835 }
836 return;
837 }
838
839 /* Ensure packet is big enough to read header fields */
840 if (msglen < sizeof(struct nvsp_message_header)) {
841 netdev_err(ndev, "nvsp_message length too small: %u\n", msglen);
842 return;
843 }
844
845 nvsp_packet = hv_pkt_data(desc);
846 switch (nvsp_packet->hdr.msg_type) {
847 case NVSP_MSG_TYPE_INIT_COMPLETE:
848 if (msglen < sizeof(struct nvsp_message_header) +
849 sizeof(struct nvsp_message_init_complete)) {
850 netdev_err(ndev, "nvsp_msg length too small: %u\n",
851 msglen);
852 return;
853 }
854 fallthrough;
855
856 case NVSP_MSG1_TYPE_SEND_RECV_BUF_COMPLETE:
857 if (msglen < sizeof(struct nvsp_message_header) +
858 sizeof(struct nvsp_1_message_send_receive_buffer_complete)) {
859 netdev_err(ndev, "nvsp_msg1 length too small: %u\n",
860 msglen);
861 return;
862 }
863 fallthrough;
864
865 case NVSP_MSG1_TYPE_SEND_SEND_BUF_COMPLETE:
866 if (msglen < sizeof(struct nvsp_message_header) +
867 sizeof(struct nvsp_1_message_send_send_buffer_complete)) {
868 netdev_err(ndev, "nvsp_msg1 length too small: %u\n",
869 msglen);
870 return;
871 }
872 fallthrough;
873
874 case NVSP_MSG5_TYPE_SUBCHANNEL:
875 if (msglen < sizeof(struct nvsp_message_header) +
876 sizeof(struct nvsp_5_subchannel_complete)) {
877 netdev_err(ndev, "nvsp_msg5 length too small: %u\n",
878 msglen);
879 return;
880 }
881 /* Copy the response back */
882 memcpy(&net_device->channel_init_pkt, nvsp_packet,
883 sizeof(struct nvsp_message));
884 complete(&net_device->channel_init_wait);
885 break;
886
887 case NVSP_MSG1_TYPE_SEND_RNDIS_PKT_COMPLETE:
888 if (msglen < sizeof(struct nvsp_message_header) +
889 sizeof(struct nvsp_1_message_send_rndis_packet_complete)) {
890 if (net_ratelimit())
891 netdev_err(ndev, "nvsp_rndis_pkt_complete length too small: %u\n",
892 msglen);
893 return;
894 }
895
896 /* If status indicates an error, output a message so we know
897 * there's a problem. But process the completion anyway so the
898 * resources are released.
899 */
900 status = nvsp_packet->msg.v1_msg.send_rndis_pkt_complete.status;
901 if (status != NVSP_STAT_SUCCESS && net_ratelimit())
902 netdev_err(ndev, "nvsp_rndis_pkt_complete error status: %x\n",
903 status);
904
905 netvsc_send_tx_complete(ndev, net_device, incoming_channel,
906 desc, budget);
907 break;
908
909 default:
910 netdev_err(ndev,
911 "Unknown send completion type %d received!!\n",
912 nvsp_packet->hdr.msg_type);
913 }
914 }
915
netvsc_get_next_send_section(struct netvsc_device * net_device)916 static u32 netvsc_get_next_send_section(struct netvsc_device *net_device)
917 {
918 unsigned long *map_addr = net_device->send_section_map;
919 unsigned int i;
920
921 for_each_clear_bit(i, map_addr, net_device->send_section_cnt) {
922 if (sync_test_and_set_bit(i, map_addr) == 0)
923 return i;
924 }
925
926 return NETVSC_INVALID_INDEX;
927 }
928
netvsc_copy_to_send_buf(struct netvsc_device * net_device,unsigned int section_index,u32 pend_size,struct hv_netvsc_packet * packet,struct rndis_message * rndis_msg,struct hv_page_buffer * pb,bool xmit_more)929 static void netvsc_copy_to_send_buf(struct netvsc_device *net_device,
930 unsigned int section_index,
931 u32 pend_size,
932 struct hv_netvsc_packet *packet,
933 struct rndis_message *rndis_msg,
934 struct hv_page_buffer *pb,
935 bool xmit_more)
936 {
937 char *start = net_device->send_buf;
938 char *dest = start + (section_index * net_device->send_section_size)
939 + pend_size;
940 int i;
941 u32 padding = 0;
942 u32 page_count = packet->cp_partial ? packet->rmsg_pgcnt :
943 packet->page_buf_cnt;
944 u32 remain;
945
946 /* Add padding */
947 remain = packet->total_data_buflen & (net_device->pkt_align - 1);
948 if (xmit_more && remain) {
949 padding = net_device->pkt_align - remain;
950 rndis_msg->msg_len += padding;
951 packet->total_data_buflen += padding;
952 }
953
954 for (i = 0; i < page_count; i++) {
955 char *src = phys_to_virt(pb[i].pfn << HV_HYP_PAGE_SHIFT);
956 u32 offset = pb[i].offset;
957 u32 len = pb[i].len;
958
959 memcpy(dest, (src + offset), len);
960 dest += len;
961 }
962
963 if (padding)
964 memset(dest, 0, padding);
965 }
966
netvsc_dma_unmap(struct hv_device * hv_dev,struct hv_netvsc_packet * packet)967 void netvsc_dma_unmap(struct hv_device *hv_dev,
968 struct hv_netvsc_packet *packet)
969 {
970 int i;
971
972 if (!hv_is_isolation_supported())
973 return;
974
975 if (!packet->dma_range)
976 return;
977
978 for (i = 0; i < packet->page_buf_cnt; i++)
979 dma_unmap_single(&hv_dev->device, packet->dma_range[i].dma,
980 packet->dma_range[i].mapping_size,
981 DMA_TO_DEVICE);
982
983 kfree(packet->dma_range);
984 }
985
986 /* netvsc_dma_map - Map swiotlb bounce buffer with data page of
987 * packet sent by vmbus_sendpacket_pagebuffer() in the Isolation
988 * VM.
989 *
990 * In isolation VM, netvsc send buffer has been marked visible to
991 * host and so the data copied to send buffer doesn't need to use
992 * bounce buffer. The data pages handled by vmbus_sendpacket_pagebuffer()
993 * may not be copied to send buffer and so these pages need to be
994 * mapped with swiotlb bounce buffer. netvsc_dma_map() is to do
995 * that. The pfns in the struct hv_page_buffer need to be converted
996 * to bounce buffer's pfn. The loop here is necessary because the
997 * entries in the page buffer array are not necessarily full
998 * pages of data. Each entry in the array has a separate offset and
999 * len that may be non-zero, even for entries in the middle of the
1000 * array. And the entries are not physically contiguous. So each
1001 * entry must be individually mapped rather than as a contiguous unit.
1002 * So not use dma_map_sg() here.
1003 */
netvsc_dma_map(struct hv_device * hv_dev,struct hv_netvsc_packet * packet,struct hv_page_buffer * pb)1004 static int netvsc_dma_map(struct hv_device *hv_dev,
1005 struct hv_netvsc_packet *packet,
1006 struct hv_page_buffer *pb)
1007 {
1008 u32 page_count = packet->page_buf_cnt;
1009 dma_addr_t dma;
1010 int i;
1011
1012 if (!hv_is_isolation_supported())
1013 return 0;
1014
1015 packet->dma_range = kcalloc(page_count,
1016 sizeof(*packet->dma_range),
1017 GFP_ATOMIC);
1018 if (!packet->dma_range)
1019 return -ENOMEM;
1020
1021 for (i = 0; i < page_count; i++) {
1022 char *src = phys_to_virt((pb[i].pfn << HV_HYP_PAGE_SHIFT)
1023 + pb[i].offset);
1024 u32 len = pb[i].len;
1025
1026 dma = dma_map_single(&hv_dev->device, src, len,
1027 DMA_TO_DEVICE);
1028 if (dma_mapping_error(&hv_dev->device, dma)) {
1029 kfree(packet->dma_range);
1030 return -ENOMEM;
1031 }
1032
1033 /* pb[].offset and pb[].len are not changed during dma mapping
1034 * and so not reassign.
1035 */
1036 packet->dma_range[i].dma = dma;
1037 packet->dma_range[i].mapping_size = len;
1038 pb[i].pfn = dma >> HV_HYP_PAGE_SHIFT;
1039 }
1040
1041 return 0;
1042 }
1043
netvsc_send_pkt(struct hv_device * device,struct hv_netvsc_packet * packet,struct netvsc_device * net_device,struct hv_page_buffer * pb,struct sk_buff * skb)1044 static inline int netvsc_send_pkt(
1045 struct hv_device *device,
1046 struct hv_netvsc_packet *packet,
1047 struct netvsc_device *net_device,
1048 struct hv_page_buffer *pb,
1049 struct sk_buff *skb)
1050 {
1051 struct nvsp_message nvmsg;
1052 struct nvsp_1_message_send_rndis_packet *rpkt =
1053 &nvmsg.msg.v1_msg.send_rndis_pkt;
1054 struct netvsc_channel * const nvchan =
1055 &net_device->chan_table[packet->q_idx];
1056 struct vmbus_channel *out_channel = nvchan->channel;
1057 struct net_device *ndev = hv_get_drvdata(device);
1058 struct net_device_context *ndev_ctx = netdev_priv(ndev);
1059 struct netdev_queue *txq = netdev_get_tx_queue(ndev, packet->q_idx);
1060 u64 req_id;
1061 int ret;
1062 u32 ring_avail = hv_get_avail_to_write_percent(&out_channel->outbound);
1063
1064 memset(&nvmsg, 0, sizeof(struct nvsp_message));
1065 nvmsg.hdr.msg_type = NVSP_MSG1_TYPE_SEND_RNDIS_PKT;
1066 if (skb)
1067 rpkt->channel_type = 0; /* 0 is RMC_DATA */
1068 else
1069 rpkt->channel_type = 1; /* 1 is RMC_CONTROL */
1070
1071 rpkt->send_buf_section_index = packet->send_buf_index;
1072 if (packet->send_buf_index == NETVSC_INVALID_INDEX)
1073 rpkt->send_buf_section_size = 0;
1074 else
1075 rpkt->send_buf_section_size = packet->total_data_buflen;
1076
1077 req_id = (ulong)skb;
1078
1079 if (out_channel->rescind)
1080 return -ENODEV;
1081
1082 trace_nvsp_send_pkt(ndev, out_channel, rpkt);
1083
1084 packet->dma_range = NULL;
1085 if (packet->page_buf_cnt) {
1086 if (packet->cp_partial)
1087 pb += packet->rmsg_pgcnt;
1088
1089 ret = netvsc_dma_map(ndev_ctx->device_ctx, packet, pb);
1090 if (ret) {
1091 ret = -EAGAIN;
1092 goto exit;
1093 }
1094
1095 ret = vmbus_sendpacket_pagebuffer(out_channel,
1096 pb, packet->page_buf_cnt,
1097 &nvmsg, sizeof(nvmsg),
1098 req_id);
1099
1100 if (ret)
1101 netvsc_dma_unmap(ndev_ctx->device_ctx, packet);
1102 } else {
1103 ret = vmbus_sendpacket(out_channel,
1104 &nvmsg, sizeof(nvmsg),
1105 req_id, VM_PKT_DATA_INBAND,
1106 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED);
1107 }
1108
1109 exit:
1110 if (ret == 0) {
1111 atomic_inc_return(&nvchan->queue_sends);
1112
1113 if (ring_avail < RING_AVAIL_PERCENT_LOWATER) {
1114 netif_tx_stop_queue(txq);
1115 ndev_ctx->eth_stats.stop_queue++;
1116 }
1117 } else if (ret == -EAGAIN) {
1118 netif_tx_stop_queue(txq);
1119 ndev_ctx->eth_stats.stop_queue++;
1120 } else {
1121 netdev_err(ndev,
1122 "Unable to send packet pages %u len %u, ret %d\n",
1123 packet->page_buf_cnt, packet->total_data_buflen,
1124 ret);
1125 }
1126
1127 if (netif_tx_queue_stopped(txq) &&
1128 atomic_read(&nvchan->queue_sends) < 1 &&
1129 !net_device->tx_disable) {
1130 netif_tx_wake_queue(txq);
1131 ndev_ctx->eth_stats.wake_queue++;
1132 if (ret == -EAGAIN)
1133 ret = -ENOSPC;
1134 }
1135
1136 return ret;
1137 }
1138
1139 /* Move packet out of multi send data (msd), and clear msd */
move_pkt_msd(struct hv_netvsc_packet ** msd_send,struct sk_buff ** msd_skb,struct multi_send_data * msdp)1140 static inline void move_pkt_msd(struct hv_netvsc_packet **msd_send,
1141 struct sk_buff **msd_skb,
1142 struct multi_send_data *msdp)
1143 {
1144 *msd_skb = msdp->skb;
1145 *msd_send = msdp->pkt;
1146 msdp->skb = NULL;
1147 msdp->pkt = NULL;
1148 msdp->count = 0;
1149 }
1150
1151 /* RCU already held by caller */
1152 /* Batching/bouncing logic is designed to attempt to optimize
1153 * performance.
1154 *
1155 * For small, non-LSO packets we copy the packet to a send buffer
1156 * which is pre-registered with the Hyper-V side. This enables the
1157 * hypervisor to avoid remapping the aperture to access the packet
1158 * descriptor and data.
1159 *
1160 * If we already started using a buffer and the netdev is transmitting
1161 * a burst of packets, keep on copying into the buffer until it is
1162 * full or we are done collecting a burst. If there is an existing
1163 * buffer with space for the RNDIS descriptor but not the packet, copy
1164 * the RNDIS descriptor to the buffer, keeping the packet in place.
1165 *
1166 * If we do batching and send more than one packet using a single
1167 * NetVSC message, free the SKBs of the packets copied, except for the
1168 * last packet. This is done to streamline the handling of the case
1169 * where the last packet only had the RNDIS descriptor copied to the
1170 * send buffer, with the data pointers included in the NetVSC message.
1171 */
netvsc_send(struct net_device * ndev,struct hv_netvsc_packet * packet,struct rndis_message * rndis_msg,struct hv_page_buffer * pb,struct sk_buff * skb,bool xdp_tx)1172 int netvsc_send(struct net_device *ndev,
1173 struct hv_netvsc_packet *packet,
1174 struct rndis_message *rndis_msg,
1175 struct hv_page_buffer *pb,
1176 struct sk_buff *skb,
1177 bool xdp_tx)
1178 {
1179 struct net_device_context *ndev_ctx = netdev_priv(ndev);
1180 struct netvsc_device *net_device
1181 = rcu_dereference_bh(ndev_ctx->nvdev);
1182 struct hv_device *device = ndev_ctx->device_ctx;
1183 int ret = 0;
1184 struct netvsc_channel *nvchan;
1185 u32 pktlen = packet->total_data_buflen, msd_len = 0;
1186 unsigned int section_index = NETVSC_INVALID_INDEX;
1187 struct multi_send_data *msdp;
1188 struct hv_netvsc_packet *msd_send = NULL, *cur_send = NULL;
1189 struct sk_buff *msd_skb = NULL;
1190 bool try_batch, xmit_more;
1191
1192 /* If device is rescinded, return error and packet will get dropped. */
1193 if (unlikely(!net_device || net_device->destroy))
1194 return -ENODEV;
1195
1196 nvchan = &net_device->chan_table[packet->q_idx];
1197 packet->send_buf_index = NETVSC_INVALID_INDEX;
1198 packet->cp_partial = false;
1199
1200 /* Send a control message or XDP packet directly without accessing
1201 * msd (Multi-Send Data) field which may be changed during data packet
1202 * processing.
1203 */
1204 if (!skb || xdp_tx)
1205 return netvsc_send_pkt(device, packet, net_device, pb, skb);
1206
1207 /* batch packets in send buffer if possible */
1208 msdp = &nvchan->msd;
1209 if (msdp->pkt)
1210 msd_len = msdp->pkt->total_data_buflen;
1211
1212 try_batch = msd_len > 0 && msdp->count < net_device->max_pkt;
1213 if (try_batch && msd_len + pktlen + net_device->pkt_align <
1214 net_device->send_section_size) {
1215 section_index = msdp->pkt->send_buf_index;
1216
1217 } else if (try_batch && msd_len + packet->rmsg_size <
1218 net_device->send_section_size) {
1219 section_index = msdp->pkt->send_buf_index;
1220 packet->cp_partial = true;
1221
1222 } else if (pktlen + net_device->pkt_align <
1223 net_device->send_section_size) {
1224 section_index = netvsc_get_next_send_section(net_device);
1225 if (unlikely(section_index == NETVSC_INVALID_INDEX)) {
1226 ++ndev_ctx->eth_stats.tx_send_full;
1227 } else {
1228 move_pkt_msd(&msd_send, &msd_skb, msdp);
1229 msd_len = 0;
1230 }
1231 }
1232
1233 /* Keep aggregating only if stack says more data is coming
1234 * and not doing mixed modes send and not flow blocked
1235 */
1236 xmit_more = netdev_xmit_more() &&
1237 !packet->cp_partial &&
1238 !netif_xmit_stopped(netdev_get_tx_queue(ndev, packet->q_idx));
1239
1240 if (section_index != NETVSC_INVALID_INDEX) {
1241 netvsc_copy_to_send_buf(net_device,
1242 section_index, msd_len,
1243 packet, rndis_msg, pb, xmit_more);
1244
1245 packet->send_buf_index = section_index;
1246
1247 if (packet->cp_partial) {
1248 packet->page_buf_cnt -= packet->rmsg_pgcnt;
1249 packet->total_data_buflen = msd_len + packet->rmsg_size;
1250 } else {
1251 packet->page_buf_cnt = 0;
1252 packet->total_data_buflen += msd_len;
1253 }
1254
1255 if (msdp->pkt) {
1256 packet->total_packets += msdp->pkt->total_packets;
1257 packet->total_bytes += msdp->pkt->total_bytes;
1258 }
1259
1260 if (msdp->skb)
1261 dev_consume_skb_any(msdp->skb);
1262
1263 if (xmit_more) {
1264 msdp->skb = skb;
1265 msdp->pkt = packet;
1266 msdp->count++;
1267 } else {
1268 cur_send = packet;
1269 msdp->skb = NULL;
1270 msdp->pkt = NULL;
1271 msdp->count = 0;
1272 }
1273 } else {
1274 move_pkt_msd(&msd_send, &msd_skb, msdp);
1275 cur_send = packet;
1276 }
1277
1278 if (msd_send) {
1279 int m_ret = netvsc_send_pkt(device, msd_send, net_device,
1280 NULL, msd_skb);
1281
1282 if (m_ret != 0) {
1283 netvsc_free_send_slot(net_device,
1284 msd_send->send_buf_index);
1285 dev_kfree_skb_any(msd_skb);
1286 }
1287 }
1288
1289 if (cur_send)
1290 ret = netvsc_send_pkt(device, cur_send, net_device, pb, skb);
1291
1292 if (ret != 0 && section_index != NETVSC_INVALID_INDEX)
1293 netvsc_free_send_slot(net_device, section_index);
1294
1295 return ret;
1296 }
1297
1298 /* Send pending recv completions */
send_recv_completions(struct net_device * ndev,struct netvsc_device * nvdev,struct netvsc_channel * nvchan)1299 static int send_recv_completions(struct net_device *ndev,
1300 struct netvsc_device *nvdev,
1301 struct netvsc_channel *nvchan)
1302 {
1303 struct multi_recv_comp *mrc = &nvchan->mrc;
1304 struct recv_comp_msg {
1305 struct nvsp_message_header hdr;
1306 u32 status;
1307 } __packed;
1308 struct recv_comp_msg msg = {
1309 .hdr.msg_type = NVSP_MSG1_TYPE_SEND_RNDIS_PKT_COMPLETE,
1310 };
1311 int ret;
1312
1313 while (mrc->first != mrc->next) {
1314 const struct recv_comp_data *rcd
1315 = mrc->slots + mrc->first;
1316
1317 msg.status = rcd->status;
1318 ret = vmbus_sendpacket(nvchan->channel, &msg, sizeof(msg),
1319 rcd->tid, VM_PKT_COMP, 0);
1320 if (unlikely(ret)) {
1321 struct net_device_context *ndev_ctx = netdev_priv(ndev);
1322
1323 ++ndev_ctx->eth_stats.rx_comp_busy;
1324 return ret;
1325 }
1326
1327 if (++mrc->first == nvdev->recv_completion_cnt)
1328 mrc->first = 0;
1329 }
1330
1331 /* receive completion ring has been emptied */
1332 if (unlikely(nvdev->destroy))
1333 wake_up(&nvdev->wait_drain);
1334
1335 return 0;
1336 }
1337
1338 /* Count how many receive completions are outstanding */
recv_comp_slot_avail(const struct netvsc_device * nvdev,const struct multi_recv_comp * mrc,u32 * filled,u32 * avail)1339 static void recv_comp_slot_avail(const struct netvsc_device *nvdev,
1340 const struct multi_recv_comp *mrc,
1341 u32 *filled, u32 *avail)
1342 {
1343 u32 count = nvdev->recv_completion_cnt;
1344
1345 if (mrc->next >= mrc->first)
1346 *filled = mrc->next - mrc->first;
1347 else
1348 *filled = (count - mrc->first) + mrc->next;
1349
1350 *avail = count - *filled - 1;
1351 }
1352
1353 /* Add receive complete to ring to send to host. */
enq_receive_complete(struct net_device * ndev,struct netvsc_device * nvdev,u16 q_idx,u64 tid,u32 status)1354 static void enq_receive_complete(struct net_device *ndev,
1355 struct netvsc_device *nvdev, u16 q_idx,
1356 u64 tid, u32 status)
1357 {
1358 struct netvsc_channel *nvchan = &nvdev->chan_table[q_idx];
1359 struct multi_recv_comp *mrc = &nvchan->mrc;
1360 struct recv_comp_data *rcd;
1361 u32 filled, avail;
1362
1363 recv_comp_slot_avail(nvdev, mrc, &filled, &avail);
1364
1365 if (unlikely(filled > NAPI_POLL_WEIGHT)) {
1366 send_recv_completions(ndev, nvdev, nvchan);
1367 recv_comp_slot_avail(nvdev, mrc, &filled, &avail);
1368 }
1369
1370 if (unlikely(!avail)) {
1371 netdev_err(ndev, "Recv_comp full buf q:%hd, tid:%llx\n",
1372 q_idx, tid);
1373 return;
1374 }
1375
1376 rcd = mrc->slots + mrc->next;
1377 rcd->tid = tid;
1378 rcd->status = status;
1379
1380 if (++mrc->next == nvdev->recv_completion_cnt)
1381 mrc->next = 0;
1382 }
1383
netvsc_receive(struct net_device * ndev,struct netvsc_device * net_device,struct netvsc_channel * nvchan,const struct vmpacket_descriptor * desc)1384 static int netvsc_receive(struct net_device *ndev,
1385 struct netvsc_device *net_device,
1386 struct netvsc_channel *nvchan,
1387 const struct vmpacket_descriptor *desc)
1388 {
1389 struct net_device_context *net_device_ctx = netdev_priv(ndev);
1390 struct vmbus_channel *channel = nvchan->channel;
1391 const struct vmtransfer_page_packet_header *vmxferpage_packet
1392 = container_of(desc, const struct vmtransfer_page_packet_header, d);
1393 const struct nvsp_message *nvsp = hv_pkt_data(desc);
1394 u32 msglen = hv_pkt_datalen(desc);
1395 u16 q_idx = channel->offermsg.offer.sub_channel_index;
1396 char *recv_buf = net_device->recv_buf;
1397 u32 status = NVSP_STAT_SUCCESS;
1398 int i;
1399 int count = 0;
1400
1401 /* Ensure packet is big enough to read header fields */
1402 if (msglen < sizeof(struct nvsp_message_header)) {
1403 netif_err(net_device_ctx, rx_err, ndev,
1404 "invalid nvsp header, length too small: %u\n",
1405 msglen);
1406 return 0;
1407 }
1408
1409 /* Make sure this is a valid nvsp packet */
1410 if (unlikely(nvsp->hdr.msg_type != NVSP_MSG1_TYPE_SEND_RNDIS_PKT)) {
1411 netif_err(net_device_ctx, rx_err, ndev,
1412 "Unknown nvsp packet type received %u\n",
1413 nvsp->hdr.msg_type);
1414 return 0;
1415 }
1416
1417 /* Validate xfer page pkt header */
1418 if ((desc->offset8 << 3) < sizeof(struct vmtransfer_page_packet_header)) {
1419 netif_err(net_device_ctx, rx_err, ndev,
1420 "Invalid xfer page pkt, offset too small: %u\n",
1421 desc->offset8 << 3);
1422 return 0;
1423 }
1424
1425 if (unlikely(vmxferpage_packet->xfer_pageset_id != NETVSC_RECEIVE_BUFFER_ID)) {
1426 netif_err(net_device_ctx, rx_err, ndev,
1427 "Invalid xfer page set id - expecting %x got %x\n",
1428 NETVSC_RECEIVE_BUFFER_ID,
1429 vmxferpage_packet->xfer_pageset_id);
1430 return 0;
1431 }
1432
1433 count = vmxferpage_packet->range_cnt;
1434
1435 /* Check count for a valid value */
1436 if (NETVSC_XFER_HEADER_SIZE(count) > desc->offset8 << 3) {
1437 netif_err(net_device_ctx, rx_err, ndev,
1438 "Range count is not valid: %d\n",
1439 count);
1440 return 0;
1441 }
1442
1443 /* Each range represents 1 RNDIS pkt that contains 1 ethernet frame */
1444 for (i = 0; i < count; i++) {
1445 u32 offset = vmxferpage_packet->ranges[i].byte_offset;
1446 u32 buflen = vmxferpage_packet->ranges[i].byte_count;
1447 void *data;
1448 int ret;
1449
1450 if (unlikely(offset > net_device->recv_buf_size ||
1451 buflen > net_device->recv_buf_size - offset)) {
1452 nvchan->rsc.cnt = 0;
1453 status = NVSP_STAT_FAIL;
1454 netif_err(net_device_ctx, rx_err, ndev,
1455 "Packet offset:%u + len:%u too big\n",
1456 offset, buflen);
1457
1458 continue;
1459 }
1460
1461 /* We're going to copy (sections of) the packet into nvchan->recv_buf;
1462 * make sure that nvchan->recv_buf is large enough to hold the packet.
1463 */
1464 if (unlikely(buflen > net_device->recv_section_size)) {
1465 nvchan->rsc.cnt = 0;
1466 status = NVSP_STAT_FAIL;
1467 netif_err(net_device_ctx, rx_err, ndev,
1468 "Packet too big: buflen=%u recv_section_size=%u\n",
1469 buflen, net_device->recv_section_size);
1470
1471 continue;
1472 }
1473
1474 data = recv_buf + offset;
1475
1476 nvchan->rsc.is_last = (i == count - 1);
1477
1478 trace_rndis_recv(ndev, q_idx, data);
1479
1480 /* Pass it to the upper layer */
1481 ret = rndis_filter_receive(ndev, net_device,
1482 nvchan, data, buflen);
1483
1484 if (unlikely(ret != NVSP_STAT_SUCCESS)) {
1485 /* Drop incomplete packet */
1486 nvchan->rsc.cnt = 0;
1487 status = NVSP_STAT_FAIL;
1488 }
1489 }
1490
1491 enq_receive_complete(ndev, net_device, q_idx,
1492 vmxferpage_packet->d.trans_id, status);
1493
1494 return count;
1495 }
1496
netvsc_send_table(struct net_device * ndev,struct netvsc_device * nvscdev,const struct nvsp_message * nvmsg,u32 msglen)1497 static void netvsc_send_table(struct net_device *ndev,
1498 struct netvsc_device *nvscdev,
1499 const struct nvsp_message *nvmsg,
1500 u32 msglen)
1501 {
1502 struct net_device_context *net_device_ctx = netdev_priv(ndev);
1503 u32 count, offset, *tab;
1504 int i;
1505
1506 /* Ensure packet is big enough to read send_table fields */
1507 if (msglen < sizeof(struct nvsp_message_header) +
1508 sizeof(struct nvsp_5_send_indirect_table)) {
1509 netdev_err(ndev, "nvsp_v5_msg length too small: %u\n", msglen);
1510 return;
1511 }
1512
1513 count = nvmsg->msg.v5_msg.send_table.count;
1514 offset = nvmsg->msg.v5_msg.send_table.offset;
1515
1516 if (count != VRSS_SEND_TAB_SIZE) {
1517 netdev_err(ndev, "Received wrong send-table size:%u\n", count);
1518 return;
1519 }
1520
1521 /* If negotiated version <= NVSP_PROTOCOL_VERSION_6, the offset may be
1522 * wrong due to a host bug. So fix the offset here.
1523 */
1524 if (nvscdev->nvsp_version <= NVSP_PROTOCOL_VERSION_6 &&
1525 msglen >= sizeof(struct nvsp_message_header) +
1526 sizeof(union nvsp_6_message_uber) + count * sizeof(u32))
1527 offset = sizeof(struct nvsp_message_header) +
1528 sizeof(union nvsp_6_message_uber);
1529
1530 /* Boundary check for all versions */
1531 if (msglen < count * sizeof(u32) || offset > msglen - count * sizeof(u32)) {
1532 netdev_err(ndev, "Received send-table offset too big:%u\n",
1533 offset);
1534 return;
1535 }
1536
1537 tab = (void *)nvmsg + offset;
1538
1539 for (i = 0; i < count; i++)
1540 net_device_ctx->tx_table[i] = tab[i];
1541 }
1542
netvsc_send_vf(struct net_device * ndev,const struct nvsp_message * nvmsg,u32 msglen)1543 static void netvsc_send_vf(struct net_device *ndev,
1544 const struct nvsp_message *nvmsg,
1545 u32 msglen)
1546 {
1547 struct net_device_context *net_device_ctx = netdev_priv(ndev);
1548
1549 /* Ensure packet is big enough to read its fields */
1550 if (msglen < sizeof(struct nvsp_message_header) +
1551 sizeof(struct nvsp_4_send_vf_association)) {
1552 netdev_err(ndev, "nvsp_v4_msg length too small: %u\n", msglen);
1553 return;
1554 }
1555
1556 net_device_ctx->vf_alloc = nvmsg->msg.v4_msg.vf_assoc.allocated;
1557 net_device_ctx->vf_serial = nvmsg->msg.v4_msg.vf_assoc.serial;
1558
1559 if (net_device_ctx->vf_alloc)
1560 complete(&net_device_ctx->vf_add);
1561
1562 netdev_info(ndev, "VF slot %u %s\n",
1563 net_device_ctx->vf_serial,
1564 net_device_ctx->vf_alloc ? "added" : "removed");
1565 }
1566
netvsc_receive_inband(struct net_device * ndev,struct netvsc_device * nvscdev,const struct vmpacket_descriptor * desc)1567 static void netvsc_receive_inband(struct net_device *ndev,
1568 struct netvsc_device *nvscdev,
1569 const struct vmpacket_descriptor *desc)
1570 {
1571 const struct nvsp_message *nvmsg = hv_pkt_data(desc);
1572 u32 msglen = hv_pkt_datalen(desc);
1573
1574 /* Ensure packet is big enough to read header fields */
1575 if (msglen < sizeof(struct nvsp_message_header)) {
1576 netdev_err(ndev, "inband nvsp_message length too small: %u\n", msglen);
1577 return;
1578 }
1579
1580 switch (nvmsg->hdr.msg_type) {
1581 case NVSP_MSG5_TYPE_SEND_INDIRECTION_TABLE:
1582 netvsc_send_table(ndev, nvscdev, nvmsg, msglen);
1583 break;
1584
1585 case NVSP_MSG4_TYPE_SEND_VF_ASSOCIATION:
1586 if (hv_is_isolation_supported())
1587 netdev_err(ndev, "Ignore VF_ASSOCIATION msg from the host supporting isolation\n");
1588 else
1589 netvsc_send_vf(ndev, nvmsg, msglen);
1590 break;
1591 }
1592 }
1593
netvsc_process_raw_pkt(struct hv_device * device,struct netvsc_channel * nvchan,struct netvsc_device * net_device,struct net_device * ndev,const struct vmpacket_descriptor * desc,int budget)1594 static int netvsc_process_raw_pkt(struct hv_device *device,
1595 struct netvsc_channel *nvchan,
1596 struct netvsc_device *net_device,
1597 struct net_device *ndev,
1598 const struct vmpacket_descriptor *desc,
1599 int budget)
1600 {
1601 struct vmbus_channel *channel = nvchan->channel;
1602 const struct nvsp_message *nvmsg = hv_pkt_data(desc);
1603
1604 trace_nvsp_recv(ndev, channel, nvmsg);
1605
1606 switch (desc->type) {
1607 case VM_PKT_COMP:
1608 netvsc_send_completion(ndev, net_device, channel, desc, budget);
1609 break;
1610
1611 case VM_PKT_DATA_USING_XFER_PAGES:
1612 return netvsc_receive(ndev, net_device, nvchan, desc);
1613
1614 case VM_PKT_DATA_INBAND:
1615 netvsc_receive_inband(ndev, net_device, desc);
1616 break;
1617
1618 default:
1619 netdev_err(ndev, "unhandled packet type %d, tid %llx\n",
1620 desc->type, desc->trans_id);
1621 break;
1622 }
1623
1624 return 0;
1625 }
1626
netvsc_channel_to_device(struct vmbus_channel * channel)1627 static struct hv_device *netvsc_channel_to_device(struct vmbus_channel *channel)
1628 {
1629 struct vmbus_channel *primary = channel->primary_channel;
1630
1631 return primary ? primary->device_obj : channel->device_obj;
1632 }
1633
1634 /* Network processing softirq
1635 * Process data in incoming ring buffer from host
1636 * Stops when ring is empty or budget is met or exceeded.
1637 */
netvsc_poll(struct napi_struct * napi,int budget)1638 int netvsc_poll(struct napi_struct *napi, int budget)
1639 {
1640 struct netvsc_channel *nvchan
1641 = container_of(napi, struct netvsc_channel, napi);
1642 struct netvsc_device *net_device = nvchan->net_device;
1643 struct vmbus_channel *channel = nvchan->channel;
1644 struct hv_device *device = netvsc_channel_to_device(channel);
1645 struct net_device *ndev = hv_get_drvdata(device);
1646 int work_done = 0;
1647 int ret;
1648
1649 /* If starting a new interval */
1650 if (!nvchan->desc)
1651 nvchan->desc = hv_pkt_iter_first(channel);
1652
1653 nvchan->xdp_flush = false;
1654
1655 while (nvchan->desc && work_done < budget) {
1656 work_done += netvsc_process_raw_pkt(device, nvchan, net_device,
1657 ndev, nvchan->desc, budget);
1658 nvchan->desc = hv_pkt_iter_next(channel, nvchan->desc);
1659 }
1660
1661 if (nvchan->xdp_flush)
1662 xdp_do_flush();
1663
1664 /* Send any pending receive completions */
1665 ret = send_recv_completions(ndev, net_device, nvchan);
1666
1667 /* If it did not exhaust NAPI budget this time
1668 * and not doing busy poll
1669 * then re-enable host interrupts
1670 * and reschedule if ring is not empty
1671 * or sending receive completion failed.
1672 */
1673 if (work_done < budget &&
1674 napi_complete_done(napi, work_done) &&
1675 (ret || hv_end_read(&channel->inbound)) &&
1676 napi_schedule_prep(napi)) {
1677 hv_begin_read(&channel->inbound);
1678 __napi_schedule(napi);
1679 }
1680
1681 /* Driver may overshoot since multiple packets per descriptor */
1682 return min(work_done, budget);
1683 }
1684
1685 /* Call back when data is available in host ring buffer.
1686 * Processing is deferred until network softirq (NAPI)
1687 */
netvsc_channel_cb(void * context)1688 void netvsc_channel_cb(void *context)
1689 {
1690 struct netvsc_channel *nvchan = context;
1691 struct vmbus_channel *channel = nvchan->channel;
1692 struct hv_ring_buffer_info *rbi = &channel->inbound;
1693
1694 /* preload first vmpacket descriptor */
1695 prefetch(hv_get_ring_buffer(rbi) + rbi->priv_read_index);
1696
1697 if (napi_schedule_prep(&nvchan->napi)) {
1698 /* disable interrupts from host */
1699 hv_begin_read(rbi);
1700
1701 __napi_schedule_irqoff(&nvchan->napi);
1702 }
1703 }
1704
1705 /*
1706 * netvsc_device_add - Callback when the device belonging to this
1707 * driver is added
1708 */
netvsc_device_add(struct hv_device * device,const struct netvsc_device_info * device_info)1709 struct netvsc_device *netvsc_device_add(struct hv_device *device,
1710 const struct netvsc_device_info *device_info)
1711 {
1712 int i, ret = 0;
1713 struct netvsc_device *net_device;
1714 struct net_device *ndev = hv_get_drvdata(device);
1715 struct net_device_context *net_device_ctx = netdev_priv(ndev);
1716
1717 net_device = alloc_net_device();
1718 if (!net_device)
1719 return ERR_PTR(-ENOMEM);
1720
1721 for (i = 0; i < VRSS_SEND_TAB_SIZE; i++)
1722 net_device_ctx->tx_table[i] = 0;
1723
1724 /* Because the device uses NAPI, all the interrupt batching and
1725 * control is done via Net softirq, not the channel handling
1726 */
1727 set_channel_read_mode(device->channel, HV_CALL_ISR);
1728
1729 /* If we're reopening the device we may have multiple queues, fill the
1730 * chn_table with the default channel to use it before subchannels are
1731 * opened.
1732 * Initialize the channel state before we open;
1733 * we can be interrupted as soon as we open the channel.
1734 */
1735
1736 for (i = 0; i < VRSS_CHANNEL_MAX; i++) {
1737 struct netvsc_channel *nvchan = &net_device->chan_table[i];
1738
1739 nvchan->channel = device->channel;
1740 nvchan->net_device = net_device;
1741 u64_stats_init(&nvchan->tx_stats.syncp);
1742 u64_stats_init(&nvchan->rx_stats.syncp);
1743
1744 ret = xdp_rxq_info_reg(&nvchan->xdp_rxq, ndev, i, 0);
1745
1746 if (ret) {
1747 netdev_err(ndev, "xdp_rxq_info_reg fail: %d\n", ret);
1748 goto cleanup2;
1749 }
1750
1751 ret = xdp_rxq_info_reg_mem_model(&nvchan->xdp_rxq,
1752 MEM_TYPE_PAGE_SHARED, NULL);
1753
1754 if (ret) {
1755 netdev_err(ndev, "xdp reg_mem_model fail: %d\n", ret);
1756 goto cleanup2;
1757 }
1758 }
1759
1760 /* Enable NAPI handler before init callbacks */
1761 netif_napi_add(ndev, &net_device->chan_table[0].napi, netvsc_poll);
1762
1763 /* Open the channel */
1764 device->channel->next_request_id_callback = vmbus_next_request_id;
1765 device->channel->request_addr_callback = vmbus_request_addr;
1766 device->channel->rqstor_size = netvsc_rqstor_size(netvsc_ring_bytes);
1767 device->channel->max_pkt_size = NETVSC_MAX_PKT_SIZE;
1768
1769 ret = vmbus_open(device->channel, netvsc_ring_bytes,
1770 netvsc_ring_bytes, NULL, 0,
1771 netvsc_channel_cb, net_device->chan_table);
1772
1773 if (ret != 0) {
1774 netdev_err(ndev, "unable to open channel: %d\n", ret);
1775 goto cleanup;
1776 }
1777
1778 /* Channel is opened */
1779 netdev_dbg(ndev, "hv_netvsc channel opened successfully\n");
1780
1781 napi_enable(&net_device->chan_table[0].napi);
1782
1783 /* Connect with the NetVsp */
1784 ret = netvsc_connect_vsp(device, net_device, device_info);
1785 if (ret != 0) {
1786 netdev_err(ndev,
1787 "unable to connect to NetVSP - %d\n", ret);
1788 goto close;
1789 }
1790
1791 /* Writing nvdev pointer unlocks netvsc_send(), make sure chn_table is
1792 * populated.
1793 */
1794 rcu_assign_pointer(net_device_ctx->nvdev, net_device);
1795
1796 return net_device;
1797
1798 close:
1799 RCU_INIT_POINTER(net_device_ctx->nvdev, NULL);
1800 napi_disable(&net_device->chan_table[0].napi);
1801
1802 /* Now, we can close the channel safely */
1803 vmbus_close(device->channel);
1804
1805 cleanup:
1806 netif_napi_del(&net_device->chan_table[0].napi);
1807
1808 cleanup2:
1809 free_netvsc_device(&net_device->rcu);
1810
1811 return ERR_PTR(ret);
1812 }
1813