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/highmem.h> 16 #include <linux/delay.h> 17 #include <linux/io.h> 18 #include <linux/slab.h> 19 #include <linux/netdevice.h> 20 #include <linux/if_ether.h> 21 #include <linux/vmalloc.h> 22 #include <linux/rtnetlink.h> 23 #include <linux/prefetch.h> 24 #include <linux/filter.h> 25 26 #include <asm/sync_bitops.h> 27 #include <asm/mshyperv.h> 28 29 #include "hyperv_net.h" 30 #include "netvsc_trace.h" 31 32 static struct workqueue_struct *netvsc_wq; 33 34 /* 35 * Switch the data path from the synthetic interface to the VF 36 * interface. 37 */ 38 int netvsc_switch_datapath(struct net_device *ndev, bool vf) 39 { 40 struct net_device_context *net_device_ctx = netdev_priv(ndev); 41 struct hv_device *dev = net_device_ctx->device_ctx; 42 struct netvsc_device *nv_dev = rtnl_dereference(net_device_ctx->nvdev); 43 struct nvsp_message *init_pkt = &nv_dev->channel_init_pkt; 44 int ret, retry = 0; 45 46 /* Block sending traffic to VF if it's about to be gone */ 47 if (!vf) 48 net_device_ctx->data_path_is_vf = vf; 49 50 memset(init_pkt, 0, sizeof(struct nvsp_message)); 51 init_pkt->hdr.msg_type = NVSP_MSG4_TYPE_SWITCH_DATA_PATH; 52 if (vf) 53 init_pkt->msg.v4_msg.active_dp.active_datapath = 54 NVSP_DATAPATH_VF; 55 else 56 init_pkt->msg.v4_msg.active_dp.active_datapath = 57 NVSP_DATAPATH_SYNTHETIC; 58 59 again: 60 trace_nvsp_send(ndev, init_pkt); 61 62 ret = vmbus_sendpacket(dev->channel, init_pkt, 63 sizeof(struct nvsp_message), 64 (unsigned long)init_pkt, VM_PKT_DATA_INBAND, 65 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED); 66 67 /* If failed to switch to/from VF, let data_path_is_vf stay false, 68 * so we use synthetic path to send data. 69 */ 70 if (ret) { 71 if (ret != -EAGAIN) { 72 netdev_err(ndev, 73 "Unable to send sw datapath msg, err: %d\n", 74 ret); 75 return ret; 76 } 77 78 if (retry++ < RETRY_MAX) { 79 usleep_range(RETRY_US_LO, RETRY_US_HI); 80 goto again; 81 } else { 82 netdev_err( 83 ndev, 84 "Retry failed to send sw datapath msg, err: %d\n", 85 ret); 86 return ret; 87 } 88 } 89 90 wait_for_completion(&nv_dev->channel_init_wait); 91 net_device_ctx->data_path_is_vf = vf; 92 93 return 0; 94 } 95 96 /* Worker to setup sub channels on initial setup 97 * Initial hotplug event occurs in softirq context 98 * and can't wait for channels. 99 */ 100 static void netvsc_subchan_work(struct work_struct *w) 101 { 102 struct netvsc_device *nvdev = 103 container_of(w, struct netvsc_device, subchan_work); 104 struct rndis_device *rdev; 105 int i, ret; 106 107 /* Avoid deadlock with device removal already under RTNL */ 108 if (!rtnl_trylock()) { 109 schedule_work(w); 110 return; 111 } 112 113 rdev = nvdev->extension; 114 if (rdev) { 115 ret = rndis_set_subchannel(rdev->ndev, nvdev, NULL); 116 if (ret == 0) { 117 netif_device_attach(rdev->ndev); 118 } else { 119 /* fallback to only primary channel */ 120 for (i = 1; i < nvdev->num_chn; i++) 121 netif_napi_del(&nvdev->chan_table[i].napi); 122 123 nvdev->max_chn = 1; 124 nvdev->num_chn = 1; 125 } 126 } 127 128 rtnl_unlock(); 129 } 130 131 static void __free_netvsc_device(struct netvsc_device *nvdev) 132 { 133 int i; 134 135 kfree(nvdev->extension); 136 137 vmbus_free_buffer(nvdev->recv_buf, nvdev->recv_buf_chunks, 138 nvdev->recv_buf_chunk_cnt); 139 vmbus_free_buffer(nvdev->send_buf, nvdev->send_buf_chunks, 140 nvdev->send_buf_chunk_cnt); 141 bitmap_free(nvdev->send_section_map); 142 143 for (i = 0; i < VRSS_CHANNEL_MAX; i++) { 144 xdp_rxq_info_unreg(&nvdev->chan_table[i].xdp_rxq); 145 kfree(nvdev->chan_table[i].recv_buf); 146 vfree(nvdev->chan_table[i].mrc.slots); 147 } 148 149 kfree(nvdev); 150 } 151 152 static void free_netvsc_device(struct work_struct *w) 153 { 154 struct rcu_work *rwork = to_rcu_work(w); 155 156 __free_netvsc_device(container_of(rwork, struct netvsc_device, rwork)); 157 } 158 159 int netvsc_workqueue_init(void) 160 { 161 netvsc_wq = alloc_workqueue("hv_netvsc", WQ_UNBOUND, 0); 162 163 return netvsc_wq ? 0 : -ENOMEM; 164 } 165 166 void netvsc_workqueue_destroy(void) 167 { 168 rcu_barrier(); 169 destroy_workqueue(netvsc_wq); 170 } 171 172 static struct netvsc_device *alloc_net_device(void) 173 { 174 struct netvsc_device *net_device; 175 176 net_device = kzalloc_obj(struct netvsc_device); 177 if (!net_device) 178 return NULL; 179 180 init_waitqueue_head(&net_device->wait_drain); 181 net_device->destroy = false; 182 net_device->tx_disable = true; 183 184 net_device->max_pkt = RNDIS_MAX_PKT_DEFAULT; 185 net_device->pkt_align = RNDIS_PKT_ALIGN_DEFAULT; 186 187 init_completion(&net_device->channel_init_wait); 188 init_waitqueue_head(&net_device->subchan_open); 189 INIT_WORK(&net_device->subchan_work, netvsc_subchan_work); 190 INIT_RCU_WORK(&net_device->rwork, free_netvsc_device); 191 192 return net_device; 193 } 194 195 static void free_netvsc_device_rcu(struct netvsc_device *nvdev) 196 { 197 /* 198 * Defer the actual free to process context: vunmap() and 199 * set_memory_encrypted() cannot run from RCU softirq context. 200 */ 201 queue_rcu_work(netvsc_wq, &nvdev->rwork); 202 } 203 204 static void netvsc_revoke_recv_buf(struct hv_device *device, 205 struct netvsc_device *net_device, 206 struct net_device *ndev) 207 { 208 struct nvsp_message *revoke_packet; 209 int ret; 210 211 /* 212 * If we got a section count, it means we received a 213 * SendReceiveBufferComplete msg (ie sent 214 * NvspMessage1TypeSendReceiveBuffer msg) therefore, we need 215 * to send a revoke msg here 216 */ 217 if (net_device->recv_section_cnt) { 218 /* Send the revoke receive buffer */ 219 revoke_packet = &net_device->revoke_packet; 220 memset(revoke_packet, 0, sizeof(struct nvsp_message)); 221 222 revoke_packet->hdr.msg_type = 223 NVSP_MSG1_TYPE_REVOKE_RECV_BUF; 224 revoke_packet->msg.v1_msg. 225 revoke_recv_buf.id = NETVSC_RECEIVE_BUFFER_ID; 226 227 trace_nvsp_send(ndev, revoke_packet); 228 229 ret = vmbus_sendpacket(device->channel, 230 revoke_packet, 231 sizeof(struct nvsp_message), 232 VMBUS_RQST_ID_NO_RESPONSE, 233 VM_PKT_DATA_INBAND, 0); 234 /* If the failure is because the channel is rescinded; 235 * ignore the failure since we cannot send on a rescinded 236 * channel. This would allow us to properly cleanup 237 * even when the channel is rescinded. 238 */ 239 if (device->channel->rescind) 240 ret = 0; 241 /* 242 * If we failed here, we might as well return and 243 * have a leak rather than continue and a bugchk 244 */ 245 if (ret != 0) { 246 netdev_err(ndev, "unable to send " 247 "revoke receive buffer to netvsp\n"); 248 return; 249 } 250 net_device->recv_section_cnt = 0; 251 } 252 } 253 254 static void netvsc_revoke_send_buf(struct hv_device *device, 255 struct netvsc_device *net_device, 256 struct net_device *ndev) 257 { 258 struct nvsp_message *revoke_packet; 259 int ret; 260 261 /* Deal with the send buffer we may have setup. 262 * If we got a send section size, it means we received a 263 * NVSP_MSG1_TYPE_SEND_SEND_BUF_COMPLETE msg (ie sent 264 * NVSP_MSG1_TYPE_SEND_SEND_BUF msg) therefore, we need 265 * to send a revoke msg here 266 */ 267 if (net_device->send_section_cnt) { 268 /* Send the revoke receive buffer */ 269 revoke_packet = &net_device->revoke_packet; 270 memset(revoke_packet, 0, sizeof(struct nvsp_message)); 271 272 revoke_packet->hdr.msg_type = 273 NVSP_MSG1_TYPE_REVOKE_SEND_BUF; 274 revoke_packet->msg.v1_msg.revoke_send_buf.id = 275 NETVSC_SEND_BUFFER_ID; 276 277 trace_nvsp_send(ndev, revoke_packet); 278 279 ret = vmbus_sendpacket(device->channel, 280 revoke_packet, 281 sizeof(struct nvsp_message), 282 VMBUS_RQST_ID_NO_RESPONSE, 283 VM_PKT_DATA_INBAND, 0); 284 285 /* If the failure is because the channel is rescinded; 286 * ignore the failure since we cannot send on a rescinded 287 * channel. This would allow us to properly cleanup 288 * even when the channel is rescinded. 289 */ 290 if (device->channel->rescind) 291 ret = 0; 292 293 /* If we failed here, we might as well return and 294 * have a leak rather than continue and a bugchk 295 */ 296 if (ret != 0) { 297 netdev_err(ndev, "unable to send " 298 "revoke send buffer to netvsp\n"); 299 return; 300 } 301 net_device->send_section_cnt = 0; 302 } 303 } 304 305 static void netvsc_teardown_recv_gpadl(struct hv_device *device, 306 struct netvsc_device *net_device, 307 struct net_device *ndev) 308 { 309 int ret; 310 311 if (net_device->recv_buf_gpadl_handle.gpadl_handle) { 312 ret = vmbus_teardown_gpadl(device->channel, 313 &net_device->recv_buf_gpadl_handle); 314 315 /* If we failed here, we might as well return and have a leak 316 * rather than continue and a bugchk 317 */ 318 if (ret != 0) { 319 netdev_err(ndev, 320 "unable to teardown receive buffer's gpadl\n"); 321 return; 322 } 323 } 324 } 325 326 static void netvsc_teardown_send_gpadl(struct hv_device *device, 327 struct netvsc_device *net_device, 328 struct net_device *ndev) 329 { 330 int ret; 331 332 if (net_device->send_buf_gpadl_handle.gpadl_handle) { 333 ret = vmbus_teardown_gpadl(device->channel, 334 &net_device->send_buf_gpadl_handle); 335 336 /* If we failed here, we might as well return and have a leak 337 * rather than continue and a bugchk 338 */ 339 if (ret != 0) { 340 netdev_err(ndev, 341 "unable to teardown send buffer's gpadl\n"); 342 return; 343 } 344 } 345 } 346 347 int netvsc_alloc_recv_comp_ring(struct netvsc_device *net_device, u32 q_idx) 348 { 349 struct netvsc_channel *nvchan = &net_device->chan_table[q_idx]; 350 int node = cpu_to_node(nvchan->channel->target_cpu); 351 size_t size; 352 353 size = net_device->recv_completion_cnt * sizeof(struct recv_comp_data); 354 nvchan->mrc.slots = vzalloc_node(size, node); 355 if (!nvchan->mrc.slots) 356 nvchan->mrc.slots = vzalloc(size); 357 358 return nvchan->mrc.slots ? 0 : -ENOMEM; 359 } 360 361 static int netvsc_init_buf(struct hv_device *device, 362 struct netvsc_device *net_device, 363 const struct netvsc_device_info *device_info) 364 { 365 struct nvsp_1_message_send_receive_buffer_complete *resp; 366 struct net_device *ndev = hv_get_drvdata(device); 367 struct nvsp_message *init_packet; 368 unsigned int buf_size; 369 int i, ret = 0; 370 371 /* Get receive buffer area. */ 372 buf_size = device_info->recv_sections * device_info->recv_section_size; 373 buf_size = roundup(buf_size, PAGE_SIZE); 374 375 /* Legacy hosts only allow smaller receive buffer */ 376 if (net_device->nvsp_version <= NVSP_PROTOCOL_VERSION_2) 377 buf_size = min_t(unsigned int, buf_size, 378 NETVSC_RECEIVE_BUFFER_SIZE_LEGACY); 379 380 net_device->recv_buf = 381 vmbus_alloc_buffer(device->channel, buf_size, 382 &net_device->recv_buf_chunks, 383 &net_device->recv_buf_chunk_cnt); 384 if (!net_device->recv_buf) { 385 netdev_err(ndev, 386 "unable to allocate receive buffer of size %u\n", 387 buf_size); 388 ret = -ENOMEM; 389 goto cleanup; 390 } 391 392 net_device->recv_buf_size = buf_size; 393 394 /* 395 * Establish the gpadl handle for this buffer on this 396 * channel. Note: This call uses the vmbus connection rather 397 * than the channel to establish the gpadl handle. 398 */ 399 ret = vmbus_establish_gpadl_caller_decrypted(device->channel, 400 net_device->recv_buf, 401 buf_size, 402 &net_device->recv_buf_gpadl_handle); 403 if (ret != 0) { 404 netdev_err(ndev, 405 "unable to establish receive buffer's gpadl\n"); 406 goto cleanup; 407 } 408 409 /* Notify the NetVsp of the gpadl handle */ 410 init_packet = &net_device->channel_init_pkt; 411 memset(init_packet, 0, sizeof(struct nvsp_message)); 412 init_packet->hdr.msg_type = NVSP_MSG1_TYPE_SEND_RECV_BUF; 413 init_packet->msg.v1_msg.send_recv_buf. 414 gpadl_handle = net_device->recv_buf_gpadl_handle.gpadl_handle; 415 init_packet->msg.v1_msg. 416 send_recv_buf.id = NETVSC_RECEIVE_BUFFER_ID; 417 418 trace_nvsp_send(ndev, init_packet); 419 420 /* Send the gpadl notification request */ 421 ret = vmbus_sendpacket(device->channel, init_packet, 422 sizeof(struct nvsp_message), 423 (unsigned long)init_packet, 424 VM_PKT_DATA_INBAND, 425 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED); 426 if (ret != 0) { 427 netdev_err(ndev, 428 "unable to send receive buffer's gpadl to netvsp\n"); 429 goto cleanup; 430 } 431 432 wait_for_completion(&net_device->channel_init_wait); 433 434 /* Check the response */ 435 resp = &init_packet->msg.v1_msg.send_recv_buf_complete; 436 if (resp->status != NVSP_STAT_SUCCESS) { 437 netdev_err(ndev, 438 "Unable to complete receive buffer initialization with NetVsp - status %d\n", 439 resp->status); 440 ret = -EINVAL; 441 goto cleanup; 442 } 443 444 /* Parse the response */ 445 netdev_dbg(ndev, "Receive sections: %u sub_allocs: size %u count: %u\n", 446 resp->num_sections, resp->sections[0].sub_alloc_size, 447 resp->sections[0].num_sub_allocs); 448 449 /* There should only be one section for the entire receive buffer */ 450 if (resp->num_sections != 1 || resp->sections[0].offset != 0) { 451 ret = -EINVAL; 452 goto cleanup; 453 } 454 455 net_device->recv_section_size = resp->sections[0].sub_alloc_size; 456 net_device->recv_section_cnt = resp->sections[0].num_sub_allocs; 457 458 /* Ensure buffer will not overflow */ 459 if (net_device->recv_section_size < NETVSC_MTU_MIN || (u64)net_device->recv_section_size * 460 (u64)net_device->recv_section_cnt > (u64)buf_size) { 461 netdev_err(ndev, "invalid recv_section_size %u\n", 462 net_device->recv_section_size); 463 ret = -EINVAL; 464 goto cleanup; 465 } 466 467 for (i = 0; i < VRSS_CHANNEL_MAX; i++) { 468 struct netvsc_channel *nvchan = &net_device->chan_table[i]; 469 470 nvchan->recv_buf = kzalloc(net_device->recv_section_size, GFP_KERNEL); 471 if (nvchan->recv_buf == NULL) { 472 ret = -ENOMEM; 473 goto cleanup; 474 } 475 } 476 477 /* Setup receive completion ring. 478 * Add 1 to the recv_section_cnt because at least one entry in a 479 * ring buffer has to be empty. 480 */ 481 net_device->recv_completion_cnt = net_device->recv_section_cnt + 1; 482 ret = netvsc_alloc_recv_comp_ring(net_device, 0); 483 if (ret) 484 goto cleanup; 485 486 /* Now setup the send buffer. */ 487 buf_size = device_info->send_sections * device_info->send_section_size; 488 buf_size = round_up(buf_size, PAGE_SIZE); 489 490 net_device->send_buf = 491 vmbus_alloc_buffer(device->channel, buf_size, 492 &net_device->send_buf_chunks, 493 &net_device->send_buf_chunk_cnt); 494 if (!net_device->send_buf) { 495 netdev_err(ndev, "unable to allocate send buffer of size %u\n", 496 buf_size); 497 ret = -ENOMEM; 498 goto cleanup; 499 } 500 net_device->send_buf_size = buf_size; 501 502 /* Establish the gpadl handle for this buffer on this 503 * channel. Note: This call uses the vmbus connection rather 504 * than the channel to establish the gpadl handle. 505 */ 506 ret = vmbus_establish_gpadl_caller_decrypted(device->channel, 507 net_device->send_buf, 508 buf_size, 509 &net_device->send_buf_gpadl_handle); 510 if (ret != 0) { 511 netdev_err(ndev, 512 "unable to establish send buffer's gpadl\n"); 513 goto cleanup; 514 } 515 516 /* Notify the NetVsp of the gpadl handle */ 517 init_packet = &net_device->channel_init_pkt; 518 memset(init_packet, 0, sizeof(struct nvsp_message)); 519 init_packet->hdr.msg_type = NVSP_MSG1_TYPE_SEND_SEND_BUF; 520 init_packet->msg.v1_msg.send_send_buf.gpadl_handle = 521 net_device->send_buf_gpadl_handle.gpadl_handle; 522 init_packet->msg.v1_msg.send_send_buf.id = NETVSC_SEND_BUFFER_ID; 523 524 trace_nvsp_send(ndev, init_packet); 525 526 /* Send the gpadl notification request */ 527 ret = vmbus_sendpacket(device->channel, init_packet, 528 sizeof(struct nvsp_message), 529 (unsigned long)init_packet, 530 VM_PKT_DATA_INBAND, 531 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED); 532 if (ret != 0) { 533 netdev_err(ndev, 534 "unable to send send buffer's gpadl to netvsp\n"); 535 goto cleanup; 536 } 537 538 wait_for_completion(&net_device->channel_init_wait); 539 540 /* Check the response */ 541 if (init_packet->msg.v1_msg. 542 send_send_buf_complete.status != NVSP_STAT_SUCCESS) { 543 netdev_err(ndev, "Unable to complete send buffer " 544 "initialization with NetVsp - status %d\n", 545 init_packet->msg.v1_msg. 546 send_send_buf_complete.status); 547 ret = -EINVAL; 548 goto cleanup; 549 } 550 551 /* Parse the response */ 552 net_device->send_section_size = init_packet->msg. 553 v1_msg.send_send_buf_complete.section_size; 554 if (net_device->send_section_size < NETVSC_MTU_MIN) { 555 netdev_err(ndev, "invalid send_section_size %u\n", 556 net_device->send_section_size); 557 ret = -EINVAL; 558 goto cleanup; 559 } 560 561 /* Section count is simply the size divided by the section size. */ 562 net_device->send_section_cnt = buf_size / net_device->send_section_size; 563 564 netdev_dbg(ndev, "Send section size: %d, Section count:%d\n", 565 net_device->send_section_size, net_device->send_section_cnt); 566 567 /* Setup state for managing the send buffer. */ 568 net_device->send_section_map = bitmap_zalloc(net_device->send_section_cnt, 569 GFP_KERNEL); 570 if (!net_device->send_section_map) { 571 ret = -ENOMEM; 572 goto cleanup; 573 } 574 575 goto exit; 576 577 cleanup: 578 netvsc_revoke_recv_buf(device, net_device, ndev); 579 netvsc_revoke_send_buf(device, net_device, ndev); 580 netvsc_teardown_recv_gpadl(device, net_device, ndev); 581 netvsc_teardown_send_gpadl(device, net_device, ndev); 582 583 exit: 584 return ret; 585 } 586 587 /* Negotiate NVSP protocol version */ 588 static int negotiate_nvsp_ver(struct hv_device *device, 589 struct netvsc_device *net_device, 590 struct nvsp_message *init_packet, 591 u32 nvsp_ver) 592 { 593 struct net_device *ndev = hv_get_drvdata(device); 594 int ret; 595 596 memset(init_packet, 0, sizeof(struct nvsp_message)); 597 init_packet->hdr.msg_type = NVSP_MSG_TYPE_INIT; 598 init_packet->msg.init_msg.init.min_protocol_ver = nvsp_ver; 599 init_packet->msg.init_msg.init.max_protocol_ver = nvsp_ver; 600 trace_nvsp_send(ndev, init_packet); 601 602 /* Send the init request */ 603 ret = vmbus_sendpacket(device->channel, init_packet, 604 sizeof(struct nvsp_message), 605 (unsigned long)init_packet, 606 VM_PKT_DATA_INBAND, 607 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED); 608 609 if (ret != 0) 610 return ret; 611 612 wait_for_completion(&net_device->channel_init_wait); 613 614 if (init_packet->msg.init_msg.init_complete.status != 615 NVSP_STAT_SUCCESS) 616 return -EINVAL; 617 618 if (nvsp_ver == NVSP_PROTOCOL_VERSION_1) 619 return 0; 620 621 /* NVSPv2 or later: Send NDIS config */ 622 memset(init_packet, 0, sizeof(struct nvsp_message)); 623 init_packet->hdr.msg_type = NVSP_MSG2_TYPE_SEND_NDIS_CONFIG; 624 init_packet->msg.v2_msg.send_ndis_config.mtu = ndev->mtu + ETH_HLEN; 625 init_packet->msg.v2_msg.send_ndis_config.capability.ieee8021q = 1; 626 627 if (nvsp_ver >= NVSP_PROTOCOL_VERSION_5) { 628 if (hv_is_isolation_supported()) 629 netdev_info(ndev, "SR-IOV not advertised by guests on the host supporting isolation\n"); 630 else 631 init_packet->msg.v2_msg.send_ndis_config.capability.sriov = 1; 632 633 /* Teaming bit is needed to receive link speed updates */ 634 init_packet->msg.v2_msg.send_ndis_config.capability.teaming = 1; 635 } 636 637 if (nvsp_ver >= NVSP_PROTOCOL_VERSION_61) 638 init_packet->msg.v2_msg.send_ndis_config.capability.rsc = 1; 639 640 trace_nvsp_send(ndev, init_packet); 641 642 ret = vmbus_sendpacket(device->channel, init_packet, 643 sizeof(struct nvsp_message), 644 VMBUS_RQST_ID_NO_RESPONSE, 645 VM_PKT_DATA_INBAND, 0); 646 647 return ret; 648 } 649 650 static int netvsc_connect_vsp(struct hv_device *device, 651 struct netvsc_device *net_device, 652 const struct netvsc_device_info *device_info) 653 { 654 struct net_device *ndev = hv_get_drvdata(device); 655 static const u32 ver_list[] = { 656 NVSP_PROTOCOL_VERSION_1, NVSP_PROTOCOL_VERSION_2, 657 NVSP_PROTOCOL_VERSION_4, NVSP_PROTOCOL_VERSION_5, 658 NVSP_PROTOCOL_VERSION_6, NVSP_PROTOCOL_VERSION_61 659 }; 660 struct nvsp_message *init_packet; 661 int ndis_version, i, ret; 662 663 init_packet = &net_device->channel_init_pkt; 664 665 /* Negotiate the latest NVSP protocol supported */ 666 for (i = ARRAY_SIZE(ver_list) - 1; i >= 0; i--) 667 if (negotiate_nvsp_ver(device, net_device, init_packet, 668 ver_list[i]) == 0) { 669 net_device->nvsp_version = ver_list[i]; 670 break; 671 } 672 673 if (i < 0) { 674 ret = -EPROTO; 675 goto cleanup; 676 } 677 678 if (hv_is_isolation_supported() && net_device->nvsp_version < NVSP_PROTOCOL_VERSION_61) { 679 netdev_err(ndev, "Invalid NVSP version 0x%x (expected >= 0x%x) from the host supporting isolation\n", 680 net_device->nvsp_version, NVSP_PROTOCOL_VERSION_61); 681 ret = -EPROTO; 682 goto cleanup; 683 } 684 685 pr_debug("Negotiated NVSP version:%x\n", net_device->nvsp_version); 686 687 /* Send the ndis version */ 688 memset(init_packet, 0, sizeof(struct nvsp_message)); 689 690 if (net_device->nvsp_version <= NVSP_PROTOCOL_VERSION_4) 691 ndis_version = 0x00060001; 692 else 693 ndis_version = 0x0006001e; 694 695 init_packet->hdr.msg_type = NVSP_MSG1_TYPE_SEND_NDIS_VER; 696 init_packet->msg.v1_msg. 697 send_ndis_ver.ndis_major_ver = 698 (ndis_version & 0xFFFF0000) >> 16; 699 init_packet->msg.v1_msg. 700 send_ndis_ver.ndis_minor_ver = 701 ndis_version & 0xFFFF; 702 703 trace_nvsp_send(ndev, init_packet); 704 705 /* Send the init request */ 706 ret = vmbus_sendpacket(device->channel, init_packet, 707 sizeof(struct nvsp_message), 708 VMBUS_RQST_ID_NO_RESPONSE, 709 VM_PKT_DATA_INBAND, 0); 710 if (ret != 0) 711 goto cleanup; 712 713 714 ret = netvsc_init_buf(device, net_device, device_info); 715 716 cleanup: 717 return ret; 718 } 719 720 /* 721 * netvsc_device_remove - Callback when the root bus device is removed 722 */ 723 void netvsc_device_remove(struct hv_device *device) 724 { 725 struct net_device *ndev = hv_get_drvdata(device); 726 struct net_device_context *net_device_ctx = netdev_priv(ndev); 727 struct netvsc_device *net_device 728 = rtnl_dereference(net_device_ctx->nvdev); 729 int i; 730 731 netvsc_revoke_recv_buf(device, net_device, ndev); 732 netvsc_revoke_send_buf(device, net_device, ndev); 733 734 RCU_INIT_POINTER(net_device_ctx->nvdev, NULL); 735 736 /* Disable NAPI and disassociate its context from the device. */ 737 for (i = 0; i < net_device->num_chn; i++) { 738 /* See also vmbus_reset_channel_cb(). */ 739 /* only disable enabled NAPI channel */ 740 if (i < ndev->real_num_rx_queues) { 741 netif_queue_set_napi(ndev, i, NETDEV_QUEUE_TYPE_TX, 742 NULL); 743 netif_queue_set_napi(ndev, i, NETDEV_QUEUE_TYPE_RX, 744 NULL); 745 napi_disable(&net_device->chan_table[i].napi); 746 } 747 748 netif_napi_del(&net_device->chan_table[i].napi); 749 } 750 751 /* 752 * At this point, no one should be accessing net_device 753 * except in here 754 */ 755 netdev_dbg(ndev, "net device safe to remove\n"); 756 757 /* Now, we can close the channel safely */ 758 vmbus_close(device->channel); 759 760 /* Must do the GPADL teardown after channel is closed */ 761 netvsc_teardown_recv_gpadl(device, net_device, ndev); 762 netvsc_teardown_send_gpadl(device, net_device, ndev); 763 764 /* Release all resources */ 765 free_netvsc_device_rcu(net_device); 766 } 767 768 #define RING_AVAIL_PERCENT_HIWATER 20 769 #define RING_AVAIL_PERCENT_LOWATER 10 770 771 static inline void netvsc_free_send_slot(struct netvsc_device *net_device, 772 u32 index) 773 { 774 sync_change_bit(index, net_device->send_section_map); 775 } 776 777 static void netvsc_send_tx_complete(struct net_device *ndev, 778 struct netvsc_device *net_device, 779 struct vmbus_channel *channel, 780 const struct vmpacket_descriptor *desc, 781 int budget) 782 { 783 struct net_device_context *ndev_ctx = netdev_priv(ndev); 784 struct sk_buff *skb; 785 u16 q_idx = 0; 786 int queue_sends; 787 u64 cmd_rqst; 788 789 cmd_rqst = channel->request_addr_callback(channel, desc->trans_id); 790 if (cmd_rqst == VMBUS_RQST_ERROR) { 791 netdev_err(ndev, "Invalid transaction ID %llx\n", desc->trans_id); 792 return; 793 } 794 795 skb = (struct sk_buff *)(unsigned long)cmd_rqst; 796 797 /* Notify the layer above us */ 798 if (likely(skb)) { 799 struct hv_netvsc_packet *packet 800 = (struct hv_netvsc_packet *)skb->cb; 801 u32 send_index = packet->send_buf_index; 802 struct netvsc_stats_tx *tx_stats; 803 804 if (send_index != NETVSC_INVALID_INDEX) 805 netvsc_free_send_slot(net_device, send_index); 806 q_idx = packet->q_idx; 807 808 tx_stats = &net_device->chan_table[q_idx].tx_stats; 809 810 u64_stats_update_begin(&tx_stats->syncp); 811 tx_stats->packets += packet->total_packets; 812 tx_stats->bytes += packet->total_bytes; 813 u64_stats_update_end(&tx_stats->syncp); 814 815 netvsc_dma_unmap(ndev_ctx->device_ctx, packet); 816 napi_consume_skb(skb, budget); 817 } 818 819 queue_sends = 820 atomic_dec_return(&net_device->chan_table[q_idx].queue_sends); 821 822 if (unlikely(net_device->destroy)) { 823 if (queue_sends == 0) 824 wake_up(&net_device->wait_drain); 825 } else { 826 struct netdev_queue *txq = netdev_get_tx_queue(ndev, q_idx); 827 828 if (netif_tx_queue_stopped(txq) && !net_device->tx_disable && 829 (hv_get_avail_to_write_percent(&channel->outbound) > 830 RING_AVAIL_PERCENT_HIWATER || queue_sends < 1)) { 831 netif_tx_wake_queue(txq); 832 ndev_ctx->eth_stats.wake_queue++; 833 } 834 } 835 } 836 837 static void netvsc_send_completion(struct net_device *ndev, 838 struct netvsc_device *net_device, 839 struct vmbus_channel *incoming_channel, 840 const struct vmpacket_descriptor *desc, 841 int budget) 842 { 843 const struct nvsp_message *nvsp_packet; 844 u32 msglen = hv_pkt_datalen(desc); 845 struct nvsp_message *pkt_rqst; 846 u64 cmd_rqst; 847 u32 status; 848 849 /* First check if this is a VMBUS completion without data payload */ 850 if (!msglen) { 851 cmd_rqst = incoming_channel->request_addr_callback(incoming_channel, 852 desc->trans_id); 853 if (cmd_rqst == VMBUS_RQST_ERROR) { 854 netdev_err(ndev, "Invalid transaction ID %llx\n", desc->trans_id); 855 return; 856 } 857 858 pkt_rqst = (struct nvsp_message *)(uintptr_t)cmd_rqst; 859 switch (pkt_rqst->hdr.msg_type) { 860 case NVSP_MSG4_TYPE_SWITCH_DATA_PATH: 861 complete(&net_device->channel_init_wait); 862 break; 863 864 default: 865 netdev_err(ndev, "Unexpected VMBUS completion!!\n"); 866 } 867 return; 868 } 869 870 /* Ensure packet is big enough to read header fields */ 871 if (msglen < sizeof(struct nvsp_message_header)) { 872 netdev_err(ndev, "nvsp_message length too small: %u\n", msglen); 873 return; 874 } 875 876 nvsp_packet = hv_pkt_data(desc); 877 switch (nvsp_packet->hdr.msg_type) { 878 case NVSP_MSG_TYPE_INIT_COMPLETE: 879 if (msglen < sizeof(struct nvsp_message_header) + 880 sizeof(struct nvsp_message_init_complete)) { 881 netdev_err(ndev, "nvsp_msg length too small: %u\n", 882 msglen); 883 return; 884 } 885 break; 886 887 case NVSP_MSG1_TYPE_SEND_RECV_BUF_COMPLETE: 888 if (msglen < sizeof(struct nvsp_message_header) + 889 struct_size_t(struct nvsp_1_message_send_receive_buffer_complete, 890 sections, 1)) { 891 netdev_err(ndev, "nvsp_msg1 length too small: %u\n", 892 msglen); 893 return; 894 } 895 break; 896 897 case NVSP_MSG1_TYPE_SEND_SEND_BUF_COMPLETE: 898 if (msglen < sizeof(struct nvsp_message_header) + 899 sizeof(struct nvsp_1_message_send_send_buffer_complete)) { 900 netdev_err(ndev, "nvsp_msg1 length too small: %u\n", 901 msglen); 902 return; 903 } 904 break; 905 906 case NVSP_MSG5_TYPE_SUBCHANNEL: 907 if (msglen < sizeof(struct nvsp_message_header) + 908 sizeof(struct nvsp_5_subchannel_complete)) { 909 netdev_err(ndev, "nvsp_msg5 length too small: %u\n", 910 msglen); 911 return; 912 } 913 break; 914 915 case NVSP_MSG1_TYPE_SEND_RNDIS_PKT_COMPLETE: 916 if (msglen < sizeof(struct nvsp_message_header) + 917 sizeof(struct nvsp_1_message_send_rndis_packet_complete)) { 918 if (net_ratelimit()) 919 netdev_err(ndev, "nvsp_rndis_pkt_complete length too small: %u\n", 920 msglen); 921 return; 922 } 923 924 /* If status indicates an error, output a message so we know 925 * there's a problem. But process the completion anyway so the 926 * resources are released. 927 */ 928 status = nvsp_packet->msg.v1_msg.send_rndis_pkt_complete.status; 929 if (status != NVSP_STAT_SUCCESS && net_ratelimit()) 930 netdev_err(ndev, "nvsp_rndis_pkt_complete error status: %x\n", 931 status); 932 933 netvsc_send_tx_complete(ndev, net_device, incoming_channel, 934 desc, budget); 935 return; 936 937 default: 938 netdev_err(ndev, 939 "Unknown send completion type %d received!!\n", 940 nvsp_packet->hdr.msg_type); 941 return; 942 } 943 944 /* Copy the response back */ 945 memcpy(&net_device->channel_init_pkt, nvsp_packet, 946 sizeof(struct nvsp_message)); 947 complete(&net_device->channel_init_wait); 948 } 949 950 static u32 netvsc_get_next_send_section(struct netvsc_device *net_device) 951 { 952 unsigned long *map_addr = net_device->send_section_map; 953 unsigned int i; 954 955 for_each_clear_bit(i, map_addr, net_device->send_section_cnt) { 956 if (sync_test_and_set_bit(i, map_addr) == 0) 957 return i; 958 } 959 960 return NETVSC_INVALID_INDEX; 961 } 962 963 static void netvsc_copy_to_send_buf(struct netvsc_device *net_device, 964 unsigned int section_index, 965 u32 pend_size, 966 struct hv_netvsc_packet *packet, 967 struct rndis_message *rndis_msg, 968 struct hv_page_buffer *pb, 969 bool xmit_more) 970 { 971 char *start = net_device->send_buf; 972 char *dest = start + (section_index * net_device->send_section_size) 973 + pend_size; 974 int i; 975 u32 padding = 0; 976 u32 page_count = packet->cp_partial ? 1 : packet->page_buf_cnt; 977 u32 remain; 978 979 /* Add padding */ 980 remain = packet->total_data_buflen & (net_device->pkt_align - 1); 981 if (xmit_more && remain) { 982 padding = net_device->pkt_align - remain; 983 rndis_msg->msg_len += padding; 984 packet->total_data_buflen += padding; 985 } 986 987 for (i = 0; i < page_count; i++) { 988 phys_addr_t paddr = (pb[i].pfn << HV_HYP_PAGE_SHIFT) + 989 pb[i].offset; 990 u32 len = pb[i].len; 991 992 while (len) { 993 struct page *page = phys_to_page(paddr); 994 u32 off = offset_in_page(paddr); 995 u32 chunk = min_t(u32, len, PAGE_SIZE - off); 996 char *src = kmap_local_page(page); 997 998 memcpy(dest, src + off, chunk); 999 kunmap_local(src); 1000 dest += chunk; 1001 paddr += chunk; 1002 len -= chunk; 1003 } 1004 } 1005 1006 if (padding) 1007 memset(dest, 0, padding); 1008 } 1009 1010 void netvsc_dma_unmap(struct hv_device *hv_dev, 1011 struct hv_netvsc_packet *packet) 1012 { 1013 int i; 1014 1015 if (!hv_is_isolation_supported()) 1016 return; 1017 1018 if (!packet->dma_range) 1019 return; 1020 1021 for (i = 0; i < packet->page_buf_cnt; i++) 1022 dma_unmap_single(&hv_dev->device, packet->dma_range[i].dma, 1023 packet->dma_range[i].mapping_size, 1024 DMA_TO_DEVICE); 1025 1026 kfree(packet->dma_range); 1027 } 1028 1029 /* netvsc_dma_map - Map swiotlb bounce buffer with data page of 1030 * packet sent by vmbus_sendpacket_pagebuffer() in the Isolation 1031 * VM. 1032 * 1033 * In isolation VM, netvsc send buffer has been marked visible to 1034 * host and so the data copied to send buffer doesn't need to use 1035 * bounce buffer. The data pages handled by vmbus_sendpacket_pagebuffer() 1036 * may not be copied to send buffer and so these pages need to be 1037 * mapped with swiotlb bounce buffer. netvsc_dma_map() is to do 1038 * that. The pfns in the struct hv_page_buffer need to be converted 1039 * to bounce buffer's pfn. The loop here is necessary because the 1040 * entries in the page buffer array are not necessarily full 1041 * pages of data. Each entry in the array has a separate offset and 1042 * len that may be non-zero, even for entries in the middle of the 1043 * array. And the entries are not physically contiguous. So each 1044 * entry must be individually mapped rather than as a contiguous unit. 1045 * So not use dma_map_sg() here. 1046 */ 1047 static int netvsc_dma_map(struct hv_device *hv_dev, 1048 struct hv_netvsc_packet *packet, 1049 struct hv_page_buffer *pb) 1050 { 1051 u32 page_count = packet->page_buf_cnt; 1052 dma_addr_t dma; 1053 int i; 1054 1055 if (!hv_is_isolation_supported()) 1056 return 0; 1057 1058 packet->dma_range = kzalloc_objs(*packet->dma_range, page_count, 1059 GFP_ATOMIC); 1060 if (!packet->dma_range) 1061 return -ENOMEM; 1062 1063 for (i = 0; i < page_count; i++) { 1064 char *src = phys_to_virt((pb[i].pfn << HV_HYP_PAGE_SHIFT) 1065 + pb[i].offset); 1066 u32 len = pb[i].len; 1067 1068 dma = dma_map_single(&hv_dev->device, src, len, 1069 DMA_TO_DEVICE); 1070 if (dma_mapping_error(&hv_dev->device, dma)) { 1071 kfree(packet->dma_range); 1072 return -ENOMEM; 1073 } 1074 1075 /* pb[].offset and pb[].len are not changed during dma mapping 1076 * and so not reassign. 1077 */ 1078 packet->dma_range[i].dma = dma; 1079 packet->dma_range[i].mapping_size = len; 1080 pb[i].pfn = dma >> HV_HYP_PAGE_SHIFT; 1081 } 1082 1083 return 0; 1084 } 1085 1086 /* Build an "array" of mpb entries describing the data to be transferred 1087 * over VMBus. After the desc header fields, each "array" entry is variable 1088 * size, and each entry starts after the end of the previous entry. The 1089 * "offset" and "len" fields for each entry imply the size of the entry. 1090 * 1091 * The pfns are in HV_HYP_PAGE_SIZE, because all communication with Hyper-V 1092 * uses that granularity, even if the system page size of the guest is larger. 1093 * Each entry in the input "pb" array must describe a contiguous range of 1094 * guest physical memory so that the pfns are sequential if the range crosses 1095 * a page boundary. The offset field must be < HV_HYP_PAGE_SIZE. 1096 */ 1097 static inline void netvsc_build_mpb_array(struct hv_page_buffer *pb, 1098 u32 page_buffer_count, 1099 struct vmbus_packet_mpb_array *desc, 1100 u32 *desc_size) 1101 { 1102 struct hv_mpb_array *mpb_entry = &desc->range; 1103 int i, j; 1104 1105 for (i = 0; i < page_buffer_count; i++) { 1106 u32 offset = pb[i].offset; 1107 u32 len = pb[i].len; 1108 1109 mpb_entry->offset = offset; 1110 mpb_entry->len = len; 1111 1112 for (j = 0; j < HVPFN_UP(offset + len); j++) 1113 mpb_entry->pfn_array[j] = pb[i].pfn + j; 1114 1115 mpb_entry = (struct hv_mpb_array *)&mpb_entry->pfn_array[j]; 1116 } 1117 1118 desc->rangecount = page_buffer_count; 1119 *desc_size = (char *)mpb_entry - (char *)desc; 1120 } 1121 1122 static inline int netvsc_send_pkt( 1123 struct hv_device *device, 1124 struct hv_netvsc_packet *packet, 1125 struct netvsc_device *net_device, 1126 struct hv_page_buffer *pb, 1127 struct sk_buff *skb) 1128 { 1129 struct nvsp_message nvmsg; 1130 struct nvsp_1_message_send_rndis_packet *rpkt = 1131 &nvmsg.msg.v1_msg.send_rndis_pkt; 1132 struct netvsc_channel * const nvchan = 1133 &net_device->chan_table[packet->q_idx]; 1134 struct vmbus_channel *out_channel = nvchan->channel; 1135 struct net_device *ndev = hv_get_drvdata(device); 1136 struct net_device_context *ndev_ctx = netdev_priv(ndev); 1137 struct netdev_queue *txq = netdev_get_tx_queue(ndev, packet->q_idx); 1138 u64 req_id; 1139 int ret; 1140 u32 ring_avail = hv_get_avail_to_write_percent(&out_channel->outbound); 1141 1142 memset(&nvmsg, 0, sizeof(struct nvsp_message)); 1143 nvmsg.hdr.msg_type = NVSP_MSG1_TYPE_SEND_RNDIS_PKT; 1144 if (skb) 1145 rpkt->channel_type = 0; /* 0 is RMC_DATA */ 1146 else 1147 rpkt->channel_type = 1; /* 1 is RMC_CONTROL */ 1148 1149 rpkt->send_buf_section_index = packet->send_buf_index; 1150 if (packet->send_buf_index == NETVSC_INVALID_INDEX) 1151 rpkt->send_buf_section_size = 0; 1152 else 1153 rpkt->send_buf_section_size = packet->total_data_buflen; 1154 1155 req_id = (ulong)skb; 1156 1157 if (out_channel->rescind) 1158 return -ENODEV; 1159 1160 trace_nvsp_send_pkt(ndev, out_channel, rpkt); 1161 1162 packet->dma_range = NULL; 1163 if (packet->page_buf_cnt) { 1164 struct vmbus_channel_packet_page_buffer desc; 1165 u32 desc_size; 1166 1167 if (packet->cp_partial) 1168 pb++; 1169 1170 ret = netvsc_dma_map(ndev_ctx->device_ctx, packet, pb); 1171 if (ret) { 1172 ret = -EAGAIN; 1173 goto exit; 1174 } 1175 1176 netvsc_build_mpb_array(pb, packet->page_buf_cnt, 1177 (struct vmbus_packet_mpb_array *)&desc, 1178 &desc_size); 1179 ret = vmbus_sendpacket_mpb_desc(out_channel, 1180 (struct vmbus_packet_mpb_array *)&desc, 1181 desc_size, &nvmsg, sizeof(nvmsg), req_id); 1182 if (ret) 1183 netvsc_dma_unmap(ndev_ctx->device_ctx, packet); 1184 } else { 1185 ret = vmbus_sendpacket(out_channel, 1186 &nvmsg, sizeof(nvmsg), 1187 req_id, VM_PKT_DATA_INBAND, 1188 VMBUS_DATA_PACKET_FLAG_COMPLETION_REQUESTED); 1189 } 1190 1191 exit: 1192 if (ret == 0) { 1193 atomic_inc_return(&nvchan->queue_sends); 1194 1195 if (ring_avail < RING_AVAIL_PERCENT_LOWATER) { 1196 netif_tx_stop_queue(txq); 1197 ndev_ctx->eth_stats.stop_queue++; 1198 } 1199 } else if (ret == -EAGAIN) { 1200 netif_tx_stop_queue(txq); 1201 ndev_ctx->eth_stats.stop_queue++; 1202 } else { 1203 netdev_err(ndev, 1204 "Unable to send packet pages %u len %u, ret %d\n", 1205 packet->page_buf_cnt, packet->total_data_buflen, 1206 ret); 1207 } 1208 1209 if (netif_tx_queue_stopped(txq) && 1210 atomic_read(&nvchan->queue_sends) < 1 && 1211 !net_device->tx_disable) { 1212 netif_tx_wake_queue(txq); 1213 ndev_ctx->eth_stats.wake_queue++; 1214 if (ret == -EAGAIN) 1215 ret = -ENOSPC; 1216 } 1217 1218 return ret; 1219 } 1220 1221 /* Move packet out of multi send data (msd), and clear msd */ 1222 static inline void move_pkt_msd(struct hv_netvsc_packet **msd_send, 1223 struct sk_buff **msd_skb, 1224 struct multi_send_data *msdp) 1225 { 1226 *msd_skb = msdp->skb; 1227 *msd_send = msdp->pkt; 1228 msdp->skb = NULL; 1229 msdp->pkt = NULL; 1230 msdp->count = 0; 1231 } 1232 1233 /* RCU already held by caller */ 1234 /* Batching/bouncing logic is designed to attempt to optimize 1235 * performance. 1236 * 1237 * For small, non-LSO packets we copy the packet to a send buffer 1238 * which is pre-registered with the Hyper-V side. This enables the 1239 * hypervisor to avoid remapping the aperture to access the packet 1240 * descriptor and data. 1241 * 1242 * If we already started using a buffer and the netdev is transmitting 1243 * a burst of packets, keep on copying into the buffer until it is 1244 * full or we are done collecting a burst. If there is an existing 1245 * buffer with space for the RNDIS descriptor but not the packet, copy 1246 * the RNDIS descriptor to the buffer, keeping the packet in place. 1247 * 1248 * If we do batching and send more than one packet using a single 1249 * NetVSC message, free the SKBs of the packets copied, except for the 1250 * last packet. This is done to streamline the handling of the case 1251 * where the last packet only had the RNDIS descriptor copied to the 1252 * send buffer, with the data pointers included in the NetVSC message. 1253 */ 1254 int netvsc_send(struct net_device *ndev, 1255 struct hv_netvsc_packet *packet, 1256 struct rndis_message *rndis_msg, 1257 struct hv_page_buffer *pb, 1258 struct sk_buff *skb, 1259 bool xdp_tx) 1260 { 1261 struct net_device_context *ndev_ctx = netdev_priv(ndev); 1262 struct netvsc_device *net_device 1263 = rcu_dereference_bh(ndev_ctx->nvdev); 1264 struct hv_device *device = ndev_ctx->device_ctx; 1265 int ret = 0; 1266 struct netvsc_channel *nvchan; 1267 u32 pktlen = packet->total_data_buflen, msd_len = 0; 1268 unsigned int section_index = NETVSC_INVALID_INDEX; 1269 struct multi_send_data *msdp; 1270 struct hv_netvsc_packet *msd_send = NULL, *cur_send = NULL; 1271 struct sk_buff *msd_skb = NULL; 1272 bool try_batch, xmit_more; 1273 1274 /* If device is rescinded, return error and packet will get dropped. */ 1275 if (unlikely(!net_device || net_device->destroy)) 1276 return -ENODEV; 1277 1278 nvchan = &net_device->chan_table[packet->q_idx]; 1279 packet->send_buf_index = NETVSC_INVALID_INDEX; 1280 packet->cp_partial = false; 1281 1282 /* Send a control message or XDP packet directly without accessing 1283 * msd (Multi-Send Data) field which may be changed during data packet 1284 * processing. 1285 */ 1286 if (!skb || xdp_tx) 1287 return netvsc_send_pkt(device, packet, net_device, pb, skb); 1288 1289 /* batch packets in send buffer if possible */ 1290 msdp = &nvchan->msd; 1291 if (msdp->pkt) 1292 msd_len = msdp->pkt->total_data_buflen; 1293 1294 try_batch = msd_len > 0 && msdp->count < net_device->max_pkt; 1295 if (try_batch && msd_len + pktlen + net_device->pkt_align < 1296 net_device->send_section_size) { 1297 section_index = msdp->pkt->send_buf_index; 1298 1299 } else if (try_batch && msd_len + packet->rmsg_size < 1300 net_device->send_section_size) { 1301 section_index = msdp->pkt->send_buf_index; 1302 packet->cp_partial = true; 1303 1304 } else if (pktlen + net_device->pkt_align < 1305 net_device->send_section_size) { 1306 section_index = netvsc_get_next_send_section(net_device); 1307 if (unlikely(section_index == NETVSC_INVALID_INDEX)) { 1308 ++ndev_ctx->eth_stats.tx_send_full; 1309 } else { 1310 move_pkt_msd(&msd_send, &msd_skb, msdp); 1311 msd_len = 0; 1312 } 1313 } 1314 1315 /* Keep aggregating only if stack says more data is coming 1316 * and not doing mixed modes send and not flow blocked 1317 */ 1318 xmit_more = netdev_xmit_more() && 1319 !packet->cp_partial && 1320 !netif_xmit_stopped(netdev_get_tx_queue(ndev, packet->q_idx)); 1321 1322 if (section_index != NETVSC_INVALID_INDEX) { 1323 netvsc_copy_to_send_buf(net_device, 1324 section_index, msd_len, 1325 packet, rndis_msg, pb, xmit_more); 1326 1327 packet->send_buf_index = section_index; 1328 1329 if (packet->cp_partial) { 1330 packet->page_buf_cnt--; 1331 packet->total_data_buflen = msd_len + packet->rmsg_size; 1332 } else { 1333 packet->page_buf_cnt = 0; 1334 packet->total_data_buflen += msd_len; 1335 } 1336 1337 if (msdp->pkt) { 1338 packet->total_packets += msdp->pkt->total_packets; 1339 packet->total_bytes += msdp->pkt->total_bytes; 1340 } 1341 1342 if (msdp->skb) 1343 dev_consume_skb_any(msdp->skb); 1344 1345 if (xmit_more) { 1346 msdp->skb = skb; 1347 msdp->pkt = packet; 1348 msdp->count++; 1349 } else { 1350 cur_send = packet; 1351 msdp->skb = NULL; 1352 msdp->pkt = NULL; 1353 msdp->count = 0; 1354 } 1355 } else { 1356 move_pkt_msd(&msd_send, &msd_skb, msdp); 1357 cur_send = packet; 1358 } 1359 1360 if (msd_send) { 1361 int m_ret = netvsc_send_pkt(device, msd_send, net_device, 1362 NULL, msd_skb); 1363 1364 if (m_ret != 0) { 1365 netvsc_free_send_slot(net_device, 1366 msd_send->send_buf_index); 1367 dev_kfree_skb_any(msd_skb); 1368 } 1369 } 1370 1371 if (cur_send) 1372 ret = netvsc_send_pkt(device, cur_send, net_device, pb, skb); 1373 1374 if (ret != 0 && section_index != NETVSC_INVALID_INDEX) 1375 netvsc_free_send_slot(net_device, section_index); 1376 1377 return ret; 1378 } 1379 1380 /* Send pending recv completions */ 1381 static int send_recv_completions(struct net_device *ndev, 1382 struct netvsc_device *nvdev, 1383 struct netvsc_channel *nvchan) 1384 { 1385 struct multi_recv_comp *mrc = &nvchan->mrc; 1386 struct recv_comp_msg { 1387 struct nvsp_message_header hdr; 1388 u32 status; 1389 } __packed; 1390 struct recv_comp_msg msg = { 1391 .hdr.msg_type = NVSP_MSG1_TYPE_SEND_RNDIS_PKT_COMPLETE, 1392 }; 1393 int ret; 1394 1395 while (mrc->first != mrc->next) { 1396 const struct recv_comp_data *rcd 1397 = mrc->slots + mrc->first; 1398 1399 msg.status = rcd->status; 1400 ret = vmbus_sendpacket(nvchan->channel, &msg, sizeof(msg), 1401 rcd->tid, VM_PKT_COMP, 0); 1402 if (unlikely(ret)) { 1403 struct net_device_context *ndev_ctx = netdev_priv(ndev); 1404 1405 ++ndev_ctx->eth_stats.rx_comp_busy; 1406 return ret; 1407 } 1408 1409 if (++mrc->first == nvdev->recv_completion_cnt) 1410 mrc->first = 0; 1411 } 1412 1413 /* receive completion ring has been emptied */ 1414 if (unlikely(nvdev->destroy)) 1415 wake_up(&nvdev->wait_drain); 1416 1417 return 0; 1418 } 1419 1420 /* Count how many receive completions are outstanding */ 1421 static void recv_comp_slot_avail(const struct netvsc_device *nvdev, 1422 const struct multi_recv_comp *mrc, 1423 u32 *filled, u32 *avail) 1424 { 1425 u32 count = nvdev->recv_completion_cnt; 1426 1427 if (mrc->next >= mrc->first) 1428 *filled = mrc->next - mrc->first; 1429 else 1430 *filled = (count - mrc->first) + mrc->next; 1431 1432 *avail = count - *filled - 1; 1433 } 1434 1435 /* Add receive complete to ring to send to host. */ 1436 static void enq_receive_complete(struct net_device *ndev, 1437 struct netvsc_device *nvdev, u16 q_idx, 1438 u64 tid, u32 status) 1439 { 1440 struct netvsc_channel *nvchan = &nvdev->chan_table[q_idx]; 1441 struct multi_recv_comp *mrc = &nvchan->mrc; 1442 struct recv_comp_data *rcd; 1443 u32 filled, avail; 1444 1445 recv_comp_slot_avail(nvdev, mrc, &filled, &avail); 1446 1447 if (unlikely(filled > NAPI_POLL_WEIGHT)) { 1448 send_recv_completions(ndev, nvdev, nvchan); 1449 recv_comp_slot_avail(nvdev, mrc, &filled, &avail); 1450 } 1451 1452 if (unlikely(!avail)) { 1453 netdev_err(ndev, "Recv_comp full buf q:%hd, tid:%llx\n", 1454 q_idx, tid); 1455 return; 1456 } 1457 1458 rcd = mrc->slots + mrc->next; 1459 rcd->tid = tid; 1460 rcd->status = status; 1461 1462 if (++mrc->next == nvdev->recv_completion_cnt) 1463 mrc->next = 0; 1464 } 1465 1466 static int netvsc_receive(struct net_device *ndev, 1467 struct netvsc_device *net_device, 1468 struct netvsc_channel *nvchan, 1469 const struct vmpacket_descriptor *desc) 1470 { 1471 struct net_device_context *net_device_ctx = netdev_priv(ndev); 1472 struct vmbus_channel *channel = nvchan->channel; 1473 const struct vmtransfer_page_packet_header *vmxferpage_packet 1474 = container_of(desc, const struct vmtransfer_page_packet_header, d); 1475 const struct nvsp_message *nvsp = hv_pkt_data(desc); 1476 u32 msglen = hv_pkt_datalen(desc); 1477 u16 q_idx = channel->offermsg.offer.sub_channel_index; 1478 char *recv_buf = net_device->recv_buf; 1479 u32 status = NVSP_STAT_SUCCESS; 1480 int i; 1481 int count = 0; 1482 1483 /* Ensure packet is big enough to read header fields */ 1484 if (msglen < sizeof(struct nvsp_message_header)) { 1485 netif_err(net_device_ctx, rx_err, ndev, 1486 "invalid nvsp header, length too small: %u\n", 1487 msglen); 1488 return 0; 1489 } 1490 1491 /* Make sure this is a valid nvsp packet */ 1492 if (unlikely(nvsp->hdr.msg_type != NVSP_MSG1_TYPE_SEND_RNDIS_PKT)) { 1493 netif_err(net_device_ctx, rx_err, ndev, 1494 "Unknown nvsp packet type received %u\n", 1495 nvsp->hdr.msg_type); 1496 return 0; 1497 } 1498 1499 /* Validate xfer page pkt header */ 1500 if ((desc->offset8 << 3) < sizeof(struct vmtransfer_page_packet_header)) { 1501 netif_err(net_device_ctx, rx_err, ndev, 1502 "Invalid xfer page pkt, offset too small: %u\n", 1503 desc->offset8 << 3); 1504 return 0; 1505 } 1506 1507 if (unlikely(vmxferpage_packet->xfer_pageset_id != NETVSC_RECEIVE_BUFFER_ID)) { 1508 netif_err(net_device_ctx, rx_err, ndev, 1509 "Invalid xfer page set id - expecting %x got %x\n", 1510 NETVSC_RECEIVE_BUFFER_ID, 1511 vmxferpage_packet->xfer_pageset_id); 1512 return 0; 1513 } 1514 1515 count = vmxferpage_packet->range_cnt; 1516 1517 /* Check count for a valid value */ 1518 if (NETVSC_XFER_HEADER_SIZE(count) > desc->offset8 << 3) { 1519 netif_err(net_device_ctx, rx_err, ndev, 1520 "Range count is not valid: %d\n", 1521 count); 1522 return 0; 1523 } 1524 1525 /* Each range represents 1 RNDIS pkt that contains 1 ethernet frame */ 1526 for (i = 0; i < count; i++) { 1527 u32 offset = vmxferpage_packet->ranges[i].byte_offset; 1528 u32 buflen = vmxferpage_packet->ranges[i].byte_count; 1529 void *data; 1530 int ret; 1531 1532 if (unlikely(offset > net_device->recv_buf_size || 1533 buflen > net_device->recv_buf_size - offset)) { 1534 nvchan->rsc.cnt = 0; 1535 status = NVSP_STAT_FAIL; 1536 netif_err(net_device_ctx, rx_err, ndev, 1537 "Packet offset:%u + len:%u too big\n", 1538 offset, buflen); 1539 1540 continue; 1541 } 1542 1543 /* We're going to copy (sections of) the packet into nvchan->recv_buf; 1544 * make sure that nvchan->recv_buf is large enough to hold the packet. 1545 */ 1546 if (unlikely(buflen > net_device->recv_section_size)) { 1547 nvchan->rsc.cnt = 0; 1548 status = NVSP_STAT_FAIL; 1549 netif_err(net_device_ctx, rx_err, ndev, 1550 "Packet too big: buflen=%u recv_section_size=%u\n", 1551 buflen, net_device->recv_section_size); 1552 1553 continue; 1554 } 1555 1556 data = recv_buf + offset; 1557 1558 nvchan->rsc.is_last = (i == count - 1); 1559 1560 trace_rndis_recv(ndev, q_idx, data); 1561 1562 /* Pass it to the upper layer */ 1563 ret = rndis_filter_receive(ndev, net_device, 1564 nvchan, data, buflen); 1565 1566 if (unlikely(ret != NVSP_STAT_SUCCESS)) { 1567 /* Drop incomplete packet */ 1568 nvchan->rsc.cnt = 0; 1569 status = NVSP_STAT_FAIL; 1570 } 1571 } 1572 1573 enq_receive_complete(ndev, net_device, q_idx, 1574 vmxferpage_packet->d.trans_id, status); 1575 1576 return count; 1577 } 1578 1579 static void netvsc_send_table(struct net_device *ndev, 1580 struct netvsc_device *nvscdev, 1581 const struct nvsp_message *nvmsg, 1582 u32 msglen) 1583 { 1584 struct net_device_context *net_device_ctx = netdev_priv(ndev); 1585 u32 count, offset, *tab; 1586 int i; 1587 1588 /* Ensure packet is big enough to read send_table fields */ 1589 if (msglen < sizeof(struct nvsp_message_header) + 1590 sizeof(struct nvsp_5_send_indirect_table)) { 1591 netdev_err(ndev, "nvsp_v5_msg length too small: %u\n", msglen); 1592 return; 1593 } 1594 1595 count = nvmsg->msg.v5_msg.send_table.count; 1596 offset = nvmsg->msg.v5_msg.send_table.offset; 1597 1598 if (count != VRSS_SEND_TAB_SIZE) { 1599 netdev_err(ndev, "Received wrong send-table size:%u\n", count); 1600 return; 1601 } 1602 1603 /* If negotiated version <= NVSP_PROTOCOL_VERSION_6, the offset may be 1604 * wrong due to a host bug. So fix the offset here. 1605 */ 1606 if (nvscdev->nvsp_version <= NVSP_PROTOCOL_VERSION_6 && 1607 msglen >= sizeof(struct nvsp_message_header) + 1608 sizeof(union nvsp_6_message_uber) + count * sizeof(u32)) 1609 offset = sizeof(struct nvsp_message_header) + 1610 sizeof(union nvsp_6_message_uber); 1611 1612 /* Boundary check for all versions */ 1613 if (msglen < count * sizeof(u32) || offset > msglen - count * sizeof(u32)) { 1614 netdev_err(ndev, "Received send-table offset too big:%u\n", 1615 offset); 1616 return; 1617 } 1618 1619 tab = (void *)nvmsg + offset; 1620 1621 for (i = 0; i < count; i++) 1622 net_device_ctx->tx_table[i] = tab[i]; 1623 } 1624 1625 static void netvsc_send_vf(struct net_device *ndev, 1626 const struct nvsp_message *nvmsg, 1627 u32 msglen) 1628 { 1629 struct net_device_context *net_device_ctx = netdev_priv(ndev); 1630 1631 /* Ensure packet is big enough to read its fields */ 1632 if (msglen < sizeof(struct nvsp_message_header) + 1633 sizeof(struct nvsp_4_send_vf_association)) { 1634 netdev_err(ndev, "nvsp_v4_msg length too small: %u\n", msglen); 1635 return; 1636 } 1637 1638 net_device_ctx->vf_alloc = nvmsg->msg.v4_msg.vf_assoc.allocated; 1639 net_device_ctx->vf_serial = nvmsg->msg.v4_msg.vf_assoc.serial; 1640 1641 if (net_device_ctx->vf_alloc) 1642 complete(&net_device_ctx->vf_add); 1643 1644 netdev_info(ndev, "VF slot %u %s\n", 1645 net_device_ctx->vf_serial, 1646 net_device_ctx->vf_alloc ? "added" : "removed"); 1647 } 1648 1649 static void netvsc_receive_inband(struct net_device *ndev, 1650 struct netvsc_device *nvscdev, 1651 const struct vmpacket_descriptor *desc) 1652 { 1653 const struct nvsp_message *nvmsg = hv_pkt_data(desc); 1654 u32 msglen = hv_pkt_datalen(desc); 1655 1656 /* Ensure packet is big enough to read header fields */ 1657 if (msglen < sizeof(struct nvsp_message_header)) { 1658 netdev_err(ndev, "inband nvsp_message length too small: %u\n", msglen); 1659 return; 1660 } 1661 1662 switch (nvmsg->hdr.msg_type) { 1663 case NVSP_MSG5_TYPE_SEND_INDIRECTION_TABLE: 1664 netvsc_send_table(ndev, nvscdev, nvmsg, msglen); 1665 break; 1666 1667 case NVSP_MSG4_TYPE_SEND_VF_ASSOCIATION: 1668 if (hv_is_isolation_supported()) 1669 netdev_err(ndev, "Ignore VF_ASSOCIATION msg from the host supporting isolation\n"); 1670 else 1671 netvsc_send_vf(ndev, nvmsg, msglen); 1672 break; 1673 } 1674 } 1675 1676 static int netvsc_process_raw_pkt(struct hv_device *device, 1677 struct netvsc_channel *nvchan, 1678 struct netvsc_device *net_device, 1679 struct net_device *ndev, 1680 const struct vmpacket_descriptor *desc, 1681 int budget) 1682 { 1683 struct vmbus_channel *channel = nvchan->channel; 1684 const struct nvsp_message *nvmsg = hv_pkt_data(desc); 1685 1686 trace_nvsp_recv(ndev, channel, nvmsg); 1687 1688 switch (desc->type) { 1689 case VM_PKT_COMP: 1690 netvsc_send_completion(ndev, net_device, channel, desc, budget); 1691 break; 1692 1693 case VM_PKT_DATA_USING_XFER_PAGES: 1694 return netvsc_receive(ndev, net_device, nvchan, desc); 1695 1696 case VM_PKT_DATA_INBAND: 1697 netvsc_receive_inband(ndev, net_device, desc); 1698 break; 1699 1700 default: 1701 netdev_err(ndev, "unhandled packet type %d, tid %llx\n", 1702 desc->type, desc->trans_id); 1703 break; 1704 } 1705 1706 return 0; 1707 } 1708 1709 static struct hv_device *netvsc_channel_to_device(struct vmbus_channel *channel) 1710 { 1711 struct vmbus_channel *primary = channel->primary_channel; 1712 1713 return primary ? primary->device_obj : channel->device_obj; 1714 } 1715 1716 /* Network processing softirq 1717 * Process data in incoming ring buffer from host 1718 * Stops when ring is empty or budget is met or exceeded. 1719 */ 1720 int netvsc_poll(struct napi_struct *napi, int budget) 1721 { 1722 struct netvsc_channel *nvchan 1723 = container_of(napi, struct netvsc_channel, napi); 1724 struct netvsc_device *net_device = nvchan->net_device; 1725 struct vmbus_channel *channel = nvchan->channel; 1726 struct hv_device *device = netvsc_channel_to_device(channel); 1727 struct net_device *ndev = hv_get_drvdata(device); 1728 int work_done = 0; 1729 int ret; 1730 1731 /* If starting a new interval */ 1732 if (!nvchan->desc) 1733 nvchan->desc = hv_pkt_iter_first(channel); 1734 1735 nvchan->xdp_flush = false; 1736 1737 while (nvchan->desc && work_done < budget) { 1738 work_done += netvsc_process_raw_pkt(device, nvchan, net_device, 1739 ndev, nvchan->desc, budget); 1740 nvchan->desc = hv_pkt_iter_next(channel, nvchan->desc); 1741 } 1742 1743 if (nvchan->xdp_flush) 1744 xdp_do_flush(); 1745 1746 /* Send any pending receive completions */ 1747 ret = send_recv_completions(ndev, net_device, nvchan); 1748 1749 /* If it did not exhaust NAPI budget this time 1750 * and not doing busy poll 1751 * then re-enable host interrupts 1752 * and reschedule if ring is not empty 1753 * or sending receive completion failed. 1754 */ 1755 if (work_done < budget && 1756 napi_complete_done(napi, work_done) && 1757 (ret || hv_end_read(&channel->inbound)) && 1758 napi_schedule_prep(napi)) { 1759 hv_begin_read(&channel->inbound); 1760 __napi_schedule(napi); 1761 } 1762 1763 /* Driver may overshoot since multiple packets per descriptor */ 1764 return min(work_done, budget); 1765 } 1766 1767 /* Call back when data is available in host ring buffer. 1768 * Processing is deferred until network softirq (NAPI) 1769 */ 1770 void netvsc_channel_cb(void *context) 1771 { 1772 struct netvsc_channel *nvchan = context; 1773 struct vmbus_channel *channel = nvchan->channel; 1774 struct hv_ring_buffer_info *rbi = &channel->inbound; 1775 1776 /* preload first vmpacket descriptor */ 1777 prefetch(hv_get_ring_buffer(rbi) + rbi->priv_read_index); 1778 1779 if (napi_schedule_prep(&nvchan->napi)) { 1780 /* disable interrupts from host */ 1781 hv_begin_read(rbi); 1782 1783 __napi_schedule_irqoff(&nvchan->napi); 1784 } 1785 } 1786 1787 /* 1788 * netvsc_device_add - Callback when the device belonging to this 1789 * driver is added 1790 */ 1791 struct netvsc_device *netvsc_device_add(struct hv_device *device, 1792 const struct netvsc_device_info *device_info) 1793 { 1794 int i, ret = 0; 1795 struct netvsc_device *net_device; 1796 struct net_device *ndev = hv_get_drvdata(device); 1797 struct net_device_context *net_device_ctx = netdev_priv(ndev); 1798 1799 net_device = alloc_net_device(); 1800 if (!net_device) 1801 return ERR_PTR(-ENOMEM); 1802 1803 for (i = 0; i < VRSS_SEND_TAB_SIZE; i++) 1804 net_device_ctx->tx_table[i] = 0; 1805 1806 /* Because the device uses NAPI, all the interrupt batching and 1807 * control is done via Net softirq, not the channel handling 1808 */ 1809 set_channel_read_mode(device->channel, HV_CALL_ISR); 1810 1811 /* If we're reopening the device we may have multiple queues, fill the 1812 * chn_table with the default channel to use it before subchannels are 1813 * opened. 1814 * Initialize the channel state before we open; 1815 * we can be interrupted as soon as we open the channel. 1816 */ 1817 1818 for (i = 0; i < VRSS_CHANNEL_MAX; i++) { 1819 struct netvsc_channel *nvchan = &net_device->chan_table[i]; 1820 1821 nvchan->channel = device->channel; 1822 nvchan->net_device = net_device; 1823 u64_stats_init(&nvchan->tx_stats.syncp); 1824 u64_stats_init(&nvchan->rx_stats.syncp); 1825 1826 ret = xdp_rxq_info_reg(&nvchan->xdp_rxq, ndev, i, 0); 1827 1828 if (ret) { 1829 netdev_err(ndev, "xdp_rxq_info_reg fail: %d\n", ret); 1830 goto cleanup2; 1831 } 1832 1833 ret = xdp_rxq_info_reg_mem_model(&nvchan->xdp_rxq, 1834 MEM_TYPE_PAGE_SHARED, NULL); 1835 1836 if (ret) { 1837 netdev_err(ndev, "xdp reg_mem_model fail: %d\n", ret); 1838 goto cleanup2; 1839 } 1840 } 1841 1842 /* Enable NAPI handler before init callbacks */ 1843 netif_napi_add(ndev, &net_device->chan_table[0].napi, netvsc_poll); 1844 napi_enable(&net_device->chan_table[0].napi); 1845 netif_queue_set_napi(ndev, 0, NETDEV_QUEUE_TYPE_RX, 1846 &net_device->chan_table[0].napi); 1847 netif_queue_set_napi(ndev, 0, NETDEV_QUEUE_TYPE_TX, 1848 &net_device->chan_table[0].napi); 1849 1850 /* Open the channel */ 1851 device->channel->next_request_id_callback = vmbus_next_request_id; 1852 device->channel->request_addr_callback = vmbus_request_addr; 1853 device->channel->rqstor_size = netvsc_rqstor_size(netvsc_ring_bytes); 1854 device->channel->max_pkt_size = NETVSC_MAX_PKT_SIZE; 1855 1856 ret = vmbus_open(device->channel, netvsc_ring_bytes, 1857 netvsc_ring_bytes, NULL, 0, 1858 netvsc_channel_cb, net_device->chan_table); 1859 1860 if (ret != 0) { 1861 netdev_err(ndev, "unable to open channel: %d\n", ret); 1862 goto cleanup; 1863 } 1864 1865 /* Channel is opened */ 1866 netdev_dbg(ndev, "hv_netvsc channel opened successfully\n"); 1867 1868 /* Connect with the NetVsp */ 1869 ret = netvsc_connect_vsp(device, net_device, device_info); 1870 if (ret != 0) { 1871 netdev_err(ndev, 1872 "unable to connect to NetVSP - %d\n", ret); 1873 goto close; 1874 } 1875 1876 /* Writing nvdev pointer unlocks netvsc_send(), make sure chn_table is 1877 * populated. 1878 */ 1879 rcu_assign_pointer(net_device_ctx->nvdev, net_device); 1880 1881 return net_device; 1882 1883 close: 1884 RCU_INIT_POINTER(net_device_ctx->nvdev, NULL); 1885 1886 /* Now, we can close the channel safely */ 1887 vmbus_close(device->channel); 1888 1889 cleanup: 1890 netif_queue_set_napi(ndev, 0, NETDEV_QUEUE_TYPE_TX, NULL); 1891 netif_queue_set_napi(ndev, 0, NETDEV_QUEUE_TYPE_RX, NULL); 1892 napi_disable(&net_device->chan_table[0].napi); 1893 netif_napi_del(&net_device->chan_table[0].napi); 1894 1895 cleanup2: 1896 /* 1897 * net_device was never published, so we don't need to wait for an 1898 * RCU grace period -- call the free routine synchronously. 1899 */ 1900 __free_netvsc_device(net_device); 1901 1902 return ERR_PTR(ret); 1903 } 1904