1 // SPDX-License-Identifier: GPL-2.0-only
3 * Copyright (c) 2009, Microsoft Corporation.
9 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
11 #include <linux/init.h>
12 #include <linux/atomic.h>
13 #include <linux/ethtool.h>
14 #include <linux/module.h>
15 #include <linux/highmem.h>
16 #include <linux/device.h>
18 #include <linux/delay.h>
19 #include <linux/netdevice.h>
20 #include <linux/inetdevice.h>
21 #include <linux/etherdevice.h>
22 #include <linux/pci.h>
23 #include <linux/skbuff.h>
24 #include <linux/if_vlan.h>
26 #include <linux/slab.h>
27 #include <linux/rtnetlink.h>
28 #include <linux/netpoll.h>
29 #include <linux/bpf.h>
32 #include <net/route.h>
34 #include <net/pkt_sched.h>
35 #include <net/checksum.h>
36 #include <net/ip6_checksum.h>
38 #include "hyperv_net.h"
40 #define RING_SIZE_MIN 64
42 #define LINKCHANGE_INT (2 * HZ)
43 #define VF_TAKEOVER_INT (HZ / 10)
45 static unsigned int ring_size __ro_after_init = 128;
46 module_param(ring_size, uint, 0444);
47 MODULE_PARM_DESC(ring_size, "Ring buffer size (# of pages)");
48 unsigned int netvsc_ring_bytes __ro_after_init;
50 static const u32 default_msg = NETIF_MSG_DRV | NETIF_MSG_PROBE |
51 NETIF_MSG_LINK | NETIF_MSG_IFUP |
52 NETIF_MSG_IFDOWN | NETIF_MSG_RX_ERR |
55 static int debug = -1;
56 module_param(debug, int, 0444);
57 MODULE_PARM_DESC(debug, "Debug level (0=none,...,16=all)");
59 static LIST_HEAD(netvsc_dev_list);
61 static void netvsc_change_rx_flags(struct net_device *net, int change)
63 struct net_device_context *ndev_ctx = netdev_priv(net);
64 struct net_device *vf_netdev = rtnl_dereference(ndev_ctx->vf_netdev);
70 if (change & IFF_PROMISC) {
71 inc = (net->flags & IFF_PROMISC) ? 1 : -1;
72 dev_set_promiscuity(vf_netdev, inc);
75 if (change & IFF_ALLMULTI) {
76 inc = (net->flags & IFF_ALLMULTI) ? 1 : -1;
77 dev_set_allmulti(vf_netdev, inc);
81 static void netvsc_set_rx_mode(struct net_device *net)
83 struct net_device_context *ndev_ctx = netdev_priv(net);
84 struct net_device *vf_netdev;
85 struct netvsc_device *nvdev;
88 vf_netdev = rcu_dereference(ndev_ctx->vf_netdev);
90 dev_uc_sync(vf_netdev, net);
91 dev_mc_sync(vf_netdev, net);
94 nvdev = rcu_dereference(ndev_ctx->nvdev);
96 rndis_filter_update(nvdev);
100 static void netvsc_tx_enable(struct netvsc_device *nvscdev,
101 struct net_device *ndev)
103 nvscdev->tx_disable = false;
104 virt_wmb(); /* ensure queue wake up mechanism is on */
106 netif_tx_wake_all_queues(ndev);
109 static int netvsc_open(struct net_device *net)
111 struct net_device_context *ndev_ctx = netdev_priv(net);
112 struct net_device *vf_netdev = rtnl_dereference(ndev_ctx->vf_netdev);
113 struct netvsc_device *nvdev = rtnl_dereference(ndev_ctx->nvdev);
114 struct rndis_device *rdev;
117 netif_carrier_off(net);
119 /* Open up the device */
120 ret = rndis_filter_open(nvdev);
122 netdev_err(net, "unable to open device (ret %d).\n", ret);
126 rdev = nvdev->extension;
127 if (!rdev->link_state) {
128 netif_carrier_on(net);
129 netvsc_tx_enable(nvdev, net);
133 /* Setting synthetic device up transparently sets
134 * slave as up. If open fails, then slave will be
135 * still be offline (and not used).
137 ret = dev_open(vf_netdev, NULL);
140 "unable to open slave: %s: %d\n",
141 vf_netdev->name, ret);
146 static int netvsc_wait_until_empty(struct netvsc_device *nvdev)
148 unsigned int retry = 0;
151 /* Ensure pending bytes in ring are read */
155 for (i = 0; i < nvdev->num_chn; i++) {
156 struct vmbus_channel *chn
157 = nvdev->chan_table[i].channel;
162 /* make sure receive not running now */
163 napi_synchronize(&nvdev->chan_table[i].napi);
165 aread = hv_get_bytes_to_read(&chn->inbound);
169 aread = hv_get_bytes_to_read(&chn->outbound);
177 if (++retry > RETRY_MAX)
180 usleep_range(RETRY_US_LO, RETRY_US_HI);
184 static void netvsc_tx_disable(struct netvsc_device *nvscdev,
185 struct net_device *ndev)
188 nvscdev->tx_disable = true;
189 virt_wmb(); /* ensure txq will not wake up after stop */
192 netif_tx_disable(ndev);
195 static int netvsc_close(struct net_device *net)
197 struct net_device_context *net_device_ctx = netdev_priv(net);
198 struct net_device *vf_netdev
199 = rtnl_dereference(net_device_ctx->vf_netdev);
200 struct netvsc_device *nvdev = rtnl_dereference(net_device_ctx->nvdev);
203 netvsc_tx_disable(nvdev, net);
205 /* No need to close rndis filter if it is removed already */
209 ret = rndis_filter_close(nvdev);
211 netdev_err(net, "unable to close device (ret %d).\n", ret);
215 ret = netvsc_wait_until_empty(nvdev);
217 netdev_err(net, "Ring buffer not empty after closing rndis\n");
220 dev_close(vf_netdev);
225 static inline void *init_ppi_data(struct rndis_message *msg,
226 u32 ppi_size, u32 pkt_type)
228 struct rndis_packet *rndis_pkt = &msg->msg.pkt;
229 struct rndis_per_packet_info *ppi;
231 rndis_pkt->data_offset += ppi_size;
232 ppi = (void *)rndis_pkt + rndis_pkt->per_pkt_info_offset
233 + rndis_pkt->per_pkt_info_len;
235 ppi->size = ppi_size;
236 ppi->type = pkt_type;
238 ppi->ppi_offset = sizeof(struct rndis_per_packet_info);
240 rndis_pkt->per_pkt_info_len += ppi_size;
245 static inline int netvsc_get_tx_queue(struct net_device *ndev,
246 struct sk_buff *skb, int old_idx)
248 const struct net_device_context *ndc = netdev_priv(ndev);
249 struct sock *sk = skb->sk;
252 q_idx = ndc->tx_table[netvsc_get_hash(skb, ndc) &
253 (VRSS_SEND_TAB_SIZE - 1)];
255 /* If queue index changed record the new value */
256 if (q_idx != old_idx &&
257 sk && sk_fullsock(sk) && rcu_access_pointer(sk->sk_dst_cache))
258 sk_tx_queue_set(sk, q_idx);
264 * Select queue for transmit.
266 * If a valid queue has already been assigned, then use that.
267 * Otherwise compute tx queue based on hash and the send table.
269 * This is basically similar to default (netdev_pick_tx) with the added step
270 * of using the host send_table when no other queue has been assigned.
272 * TODO support XPS - but get_xps_queue not exported
274 static u16 netvsc_pick_tx(struct net_device *ndev, struct sk_buff *skb)
276 int q_idx = sk_tx_queue_get(skb->sk);
278 if (q_idx < 0 || skb->ooo_okay || q_idx >= ndev->real_num_tx_queues) {
279 /* If forwarding a packet, we use the recorded queue when
280 * available for better cache locality.
282 if (skb_rx_queue_recorded(skb))
283 q_idx = skb_get_rx_queue(skb);
285 q_idx = netvsc_get_tx_queue(ndev, skb, q_idx);
291 static u16 netvsc_select_queue(struct net_device *ndev, struct sk_buff *skb,
292 struct net_device *sb_dev)
294 struct net_device_context *ndc = netdev_priv(ndev);
295 struct net_device *vf_netdev;
299 vf_netdev = rcu_dereference(ndc->vf_netdev);
301 const struct net_device_ops *vf_ops = vf_netdev->netdev_ops;
303 if (vf_ops->ndo_select_queue)
304 txq = vf_ops->ndo_select_queue(vf_netdev, skb, sb_dev);
306 txq = netdev_pick_tx(vf_netdev, skb, NULL);
308 /* Record the queue selected by VF so that it can be
309 * used for common case where VF has more queues than
310 * the synthetic device.
312 qdisc_skb_cb(skb)->slave_dev_queue_mapping = txq;
314 txq = netvsc_pick_tx(ndev, skb);
318 while (txq >= ndev->real_num_tx_queues)
319 txq -= ndev->real_num_tx_queues;
324 static u32 fill_pg_buf(unsigned long hvpfn, u32 offset, u32 len,
325 struct hv_page_buffer *pb)
329 hvpfn += offset >> HV_HYP_PAGE_SHIFT;
330 offset = offset & ~HV_HYP_PAGE_MASK;
335 bytes = HV_HYP_PAGE_SIZE - offset;
339 pb[j].offset = offset;
345 if (offset == HV_HYP_PAGE_SIZE && len) {
355 static u32 init_page_array(void *hdr, u32 len, struct sk_buff *skb,
356 struct hv_netvsc_packet *packet,
357 struct hv_page_buffer *pb)
360 char *data = skb->data;
361 int frags = skb_shinfo(skb)->nr_frags;
364 /* The packet is laid out thus:
365 * 1. hdr: RNDIS header and PPI
367 * 3. skb fragment data
369 slots_used += fill_pg_buf(virt_to_hvpfn(hdr),
370 offset_in_hvpage(hdr),
374 packet->rmsg_size = len;
375 packet->rmsg_pgcnt = slots_used;
377 slots_used += fill_pg_buf(virt_to_hvpfn(data),
378 offset_in_hvpage(data),
382 for (i = 0; i < frags; i++) {
383 skb_frag_t *frag = skb_shinfo(skb)->frags + i;
385 slots_used += fill_pg_buf(page_to_hvpfn(skb_frag_page(frag)),
393 static int count_skb_frag_slots(struct sk_buff *skb)
395 int i, frags = skb_shinfo(skb)->nr_frags;
398 for (i = 0; i < frags; i++) {
399 skb_frag_t *frag = skb_shinfo(skb)->frags + i;
400 unsigned long size = skb_frag_size(frag);
401 unsigned long offset = skb_frag_off(frag);
403 /* Skip unused frames from start of page */
404 offset &= ~HV_HYP_PAGE_MASK;
405 pages += HVPFN_UP(offset + size);
410 static int netvsc_get_slots(struct sk_buff *skb)
412 char *data = skb->data;
413 unsigned int offset = offset_in_hvpage(data);
414 unsigned int len = skb_headlen(skb);
418 slots = DIV_ROUND_UP(offset + len, HV_HYP_PAGE_SIZE);
419 frag_slots = count_skb_frag_slots(skb);
420 return slots + frag_slots;
423 static u32 net_checksum_info(struct sk_buff *skb)
425 if (skb->protocol == htons(ETH_P_IP)) {
426 struct iphdr *ip = ip_hdr(skb);
428 if (ip->protocol == IPPROTO_TCP)
429 return TRANSPORT_INFO_IPV4_TCP;
430 else if (ip->protocol == IPPROTO_UDP)
431 return TRANSPORT_INFO_IPV4_UDP;
433 struct ipv6hdr *ip6 = ipv6_hdr(skb);
435 if (ip6->nexthdr == IPPROTO_TCP)
436 return TRANSPORT_INFO_IPV6_TCP;
437 else if (ip6->nexthdr == IPPROTO_UDP)
438 return TRANSPORT_INFO_IPV6_UDP;
441 return TRANSPORT_INFO_NOT_IP;
444 /* Send skb on the slave VF device. */
445 static int netvsc_vf_xmit(struct net_device *net, struct net_device *vf_netdev,
448 struct net_device_context *ndev_ctx = netdev_priv(net);
449 unsigned int len = skb->len;
452 skb->dev = vf_netdev;
453 skb_record_rx_queue(skb, qdisc_skb_cb(skb)->slave_dev_queue_mapping);
455 rc = dev_queue_xmit(skb);
456 if (likely(rc == NET_XMIT_SUCCESS || rc == NET_XMIT_CN)) {
457 struct netvsc_vf_pcpu_stats *pcpu_stats
458 = this_cpu_ptr(ndev_ctx->vf_stats);
460 u64_stats_update_begin(&pcpu_stats->syncp);
461 pcpu_stats->tx_packets++;
462 pcpu_stats->tx_bytes += len;
463 u64_stats_update_end(&pcpu_stats->syncp);
465 this_cpu_inc(ndev_ctx->vf_stats->tx_dropped);
471 static int netvsc_xmit(struct sk_buff *skb, struct net_device *net, bool xdp_tx)
473 struct net_device_context *net_device_ctx = netdev_priv(net);
474 struct hv_netvsc_packet *packet = NULL;
476 unsigned int num_data_pgs;
477 struct rndis_message *rndis_msg;
478 struct net_device *vf_netdev;
481 struct hv_page_buffer pb[MAX_PAGE_BUFFER_COUNT];
483 /* If VF is present and up then redirect packets to it.
484 * Skip the VF if it is marked down or has no carrier.
485 * If netpoll is in uses, then VF can not be used either.
487 vf_netdev = rcu_dereference_bh(net_device_ctx->vf_netdev);
488 if (vf_netdev && netif_running(vf_netdev) &&
489 netif_carrier_ok(vf_netdev) && !netpoll_tx_running(net) &&
490 net_device_ctx->data_path_is_vf)
491 return netvsc_vf_xmit(net, vf_netdev, skb);
493 /* We will atmost need two pages to describe the rndis
494 * header. We can only transmit MAX_PAGE_BUFFER_COUNT number
495 * of pages in a single packet. If skb is scattered around
496 * more pages we try linearizing it.
499 num_data_pgs = netvsc_get_slots(skb) + 2;
501 if (unlikely(num_data_pgs > MAX_PAGE_BUFFER_COUNT)) {
502 ++net_device_ctx->eth_stats.tx_scattered;
504 if (skb_linearize(skb))
507 num_data_pgs = netvsc_get_slots(skb) + 2;
508 if (num_data_pgs > MAX_PAGE_BUFFER_COUNT) {
509 ++net_device_ctx->eth_stats.tx_too_big;
515 * Place the rndis header in the skb head room and
516 * the skb->cb will be used for hv_netvsc_packet
519 ret = skb_cow_head(skb, RNDIS_AND_PPI_SIZE);
523 /* Use the skb control buffer for building up the packet */
524 BUILD_BUG_ON(sizeof(struct hv_netvsc_packet) >
525 sizeof_field(struct sk_buff, cb));
526 packet = (struct hv_netvsc_packet *)skb->cb;
528 packet->q_idx = skb_get_queue_mapping(skb);
530 packet->total_data_buflen = skb->len;
531 packet->total_bytes = skb->len;
532 packet->total_packets = 1;
534 rndis_msg = (struct rndis_message *)skb->head;
536 /* Add the rndis header */
537 rndis_msg->ndis_msg_type = RNDIS_MSG_PACKET;
538 rndis_msg->msg_len = packet->total_data_buflen;
540 rndis_msg->msg.pkt = (struct rndis_packet) {
541 .data_offset = sizeof(struct rndis_packet),
542 .data_len = packet->total_data_buflen,
543 .per_pkt_info_offset = sizeof(struct rndis_packet),
546 rndis_msg_size = RNDIS_MESSAGE_SIZE(struct rndis_packet);
548 hash = skb_get_hash_raw(skb);
549 if (hash != 0 && net->real_num_tx_queues > 1) {
552 rndis_msg_size += NDIS_HASH_PPI_SIZE;
553 hash_info = init_ppi_data(rndis_msg, NDIS_HASH_PPI_SIZE,
558 /* When using AF_PACKET we need to drop VLAN header from
559 * the frame and update the SKB to allow the HOST OS
560 * to transmit the 802.1Q packet
562 if (skb->protocol == htons(ETH_P_8021Q)) {
565 skb_reset_mac_header(skb);
566 if (eth_type_vlan(eth_hdr(skb)->h_proto)) {
567 if (unlikely(__skb_vlan_pop(skb, &vlan_tci) != 0)) {
568 ++net_device_ctx->eth_stats.vlan_error;
572 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q), vlan_tci);
573 /* Update the NDIS header pkt lengths */
574 packet->total_data_buflen -= VLAN_HLEN;
575 packet->total_bytes -= VLAN_HLEN;
576 rndis_msg->msg_len = packet->total_data_buflen;
577 rndis_msg->msg.pkt.data_len = packet->total_data_buflen;
581 if (skb_vlan_tag_present(skb)) {
582 struct ndis_pkt_8021q_info *vlan;
584 rndis_msg_size += NDIS_VLAN_PPI_SIZE;
585 vlan = init_ppi_data(rndis_msg, NDIS_VLAN_PPI_SIZE,
589 vlan->vlanid = skb_vlan_tag_get_id(skb);
590 vlan->cfi = skb_vlan_tag_get_cfi(skb);
591 vlan->pri = skb_vlan_tag_get_prio(skb);
594 if (skb_is_gso(skb)) {
595 struct ndis_tcp_lso_info *lso_info;
597 rndis_msg_size += NDIS_LSO_PPI_SIZE;
598 lso_info = init_ppi_data(rndis_msg, NDIS_LSO_PPI_SIZE,
599 TCP_LARGESEND_PKTINFO);
602 lso_info->lso_v2_transmit.type = NDIS_TCP_LARGE_SEND_OFFLOAD_V2_TYPE;
603 if (skb->protocol == htons(ETH_P_IP)) {
604 lso_info->lso_v2_transmit.ip_version =
605 NDIS_TCP_LARGE_SEND_OFFLOAD_IPV4;
606 ip_hdr(skb)->tot_len = 0;
607 ip_hdr(skb)->check = 0;
608 tcp_hdr(skb)->check =
609 ~csum_tcpudp_magic(ip_hdr(skb)->saddr,
610 ip_hdr(skb)->daddr, 0, IPPROTO_TCP, 0);
612 lso_info->lso_v2_transmit.ip_version =
613 NDIS_TCP_LARGE_SEND_OFFLOAD_IPV6;
614 tcp_v6_gso_csum_prep(skb);
616 lso_info->lso_v2_transmit.tcp_header_offset = skb_transport_offset(skb);
617 lso_info->lso_v2_transmit.mss = skb_shinfo(skb)->gso_size;
618 } else if (skb->ip_summed == CHECKSUM_PARTIAL) {
619 if (net_checksum_info(skb) & net_device_ctx->tx_checksum_mask) {
620 struct ndis_tcp_ip_checksum_info *csum_info;
622 rndis_msg_size += NDIS_CSUM_PPI_SIZE;
623 csum_info = init_ppi_data(rndis_msg, NDIS_CSUM_PPI_SIZE,
624 TCPIP_CHKSUM_PKTINFO);
626 csum_info->value = 0;
627 csum_info->transmit.tcp_header_offset = skb_transport_offset(skb);
629 if (skb->protocol == htons(ETH_P_IP)) {
630 csum_info->transmit.is_ipv4 = 1;
632 if (ip_hdr(skb)->protocol == IPPROTO_TCP)
633 csum_info->transmit.tcp_checksum = 1;
635 csum_info->transmit.udp_checksum = 1;
637 csum_info->transmit.is_ipv6 = 1;
639 if (ipv6_hdr(skb)->nexthdr == IPPROTO_TCP)
640 csum_info->transmit.tcp_checksum = 1;
642 csum_info->transmit.udp_checksum = 1;
645 /* Can't do offload of this type of checksum */
646 if (skb_checksum_help(skb))
651 /* Start filling in the page buffers with the rndis hdr */
652 rndis_msg->msg_len += rndis_msg_size;
653 packet->total_data_buflen = rndis_msg->msg_len;
654 packet->page_buf_cnt = init_page_array(rndis_msg, rndis_msg_size,
657 /* timestamp packet in software */
658 skb_tx_timestamp(skb);
660 ret = netvsc_send(net, packet, rndis_msg, pb, skb, xdp_tx);
661 if (likely(ret == 0))
664 if (ret == -EAGAIN) {
665 ++net_device_ctx->eth_stats.tx_busy;
666 return NETDEV_TX_BUSY;
670 ++net_device_ctx->eth_stats.tx_no_space;
673 dev_kfree_skb_any(skb);
674 net->stats.tx_dropped++;
679 ++net_device_ctx->eth_stats.tx_no_memory;
683 static netdev_tx_t netvsc_start_xmit(struct sk_buff *skb,
684 struct net_device *ndev)
686 return netvsc_xmit(skb, ndev, false);
690 * netvsc_linkstatus_callback - Link up/down notification
692 void netvsc_linkstatus_callback(struct net_device *net,
693 struct rndis_message *resp,
694 void *data, u32 data_buflen)
696 struct rndis_indicate_status *indicate = &resp->msg.indicate_status;
697 struct net_device_context *ndev_ctx = netdev_priv(net);
698 struct netvsc_reconfig *event;
701 /* Ensure the packet is big enough to access its fields */
702 if (resp->msg_len - RNDIS_HEADER_SIZE < sizeof(struct rndis_indicate_status)) {
703 netdev_err(net, "invalid rndis_indicate_status packet, len: %u\n",
708 /* Copy the RNDIS indicate status into nvchan->recv_buf */
709 memcpy(indicate, data + RNDIS_HEADER_SIZE, sizeof(*indicate));
711 /* Update the physical link speed when changing to another vSwitch */
712 if (indicate->status == RNDIS_STATUS_LINK_SPEED_CHANGE) {
715 /* Validate status_buf_offset and status_buflen.
717 * Certain (pre-Fe) implementations of Hyper-V's vSwitch didn't account
718 * for the status buffer field in resp->msg_len; perform the validation
719 * using data_buflen (>= resp->msg_len).
721 if (indicate->status_buflen < sizeof(speed) ||
722 indicate->status_buf_offset < sizeof(*indicate) ||
723 data_buflen - RNDIS_HEADER_SIZE < indicate->status_buf_offset ||
724 data_buflen - RNDIS_HEADER_SIZE - indicate->status_buf_offset
725 < indicate->status_buflen) {
726 netdev_err(net, "invalid rndis_indicate_status packet\n");
730 speed = *(u32 *)(data + RNDIS_HEADER_SIZE + indicate->status_buf_offset) / 10000;
731 ndev_ctx->speed = speed;
735 /* Handle these link change statuses below */
736 if (indicate->status != RNDIS_STATUS_NETWORK_CHANGE &&
737 indicate->status != RNDIS_STATUS_MEDIA_CONNECT &&
738 indicate->status != RNDIS_STATUS_MEDIA_DISCONNECT)
741 if (net->reg_state != NETREG_REGISTERED)
744 event = kzalloc(sizeof(*event), GFP_ATOMIC);
747 event->event = indicate->status;
749 spin_lock_irqsave(&ndev_ctx->lock, flags);
750 list_add_tail(&event->list, &ndev_ctx->reconfig_events);
751 spin_unlock_irqrestore(&ndev_ctx->lock, flags);
753 schedule_delayed_work(&ndev_ctx->dwork, 0);
756 /* This function should only be called after skb_record_rx_queue() */
757 void netvsc_xdp_xmit(struct sk_buff *skb, struct net_device *ndev)
761 skb->queue_mapping = skb_get_rx_queue(skb);
762 __skb_push(skb, ETH_HLEN);
764 rc = netvsc_xmit(skb, ndev, true);
766 if (dev_xmit_complete(rc))
769 dev_kfree_skb_any(skb);
770 ndev->stats.tx_dropped++;
773 static void netvsc_comp_ipcsum(struct sk_buff *skb)
775 struct iphdr *iph = (struct iphdr *)skb->data;
778 iph->check = ip_fast_csum(iph, iph->ihl);
781 static struct sk_buff *netvsc_alloc_recv_skb(struct net_device *net,
782 struct netvsc_channel *nvchan,
783 struct xdp_buff *xdp)
785 struct napi_struct *napi = &nvchan->napi;
786 const struct ndis_pkt_8021q_info *vlan = &nvchan->rsc.vlan;
787 const struct ndis_tcp_ip_checksum_info *csum_info =
788 &nvchan->rsc.csum_info;
789 const u32 *hash_info = &nvchan->rsc.hash_info;
790 u8 ppi_flags = nvchan->rsc.ppi_flags;
792 void *xbuf = xdp->data_hard_start;
796 unsigned int hdroom = xdp->data - xdp->data_hard_start;
797 unsigned int xlen = xdp->data_end - xdp->data;
798 unsigned int frag_size = xdp->frame_sz;
800 skb = build_skb(xbuf, frag_size);
803 __free_page(virt_to_page(xbuf));
807 skb_reserve(skb, hdroom);
809 skb->dev = napi->dev;
811 skb = napi_alloc_skb(napi, nvchan->rsc.pktlen);
816 /* Copy to skb. This copy is needed here since the memory
817 * pointed by hv_netvsc_packet cannot be deallocated.
819 for (i = 0; i < nvchan->rsc.cnt; i++)
820 skb_put_data(skb, nvchan->rsc.data[i],
824 skb->protocol = eth_type_trans(skb, net);
826 /* skb is already created with CHECKSUM_NONE */
827 skb_checksum_none_assert(skb);
829 /* Incoming packets may have IP header checksum verified by the host.
830 * They may not have IP header checksum computed after coalescing.
831 * We compute it here if the flags are set, because on Linux, the IP
832 * checksum is always checked.
834 if ((ppi_flags & NVSC_RSC_CSUM_INFO) && csum_info->receive.ip_checksum_value_invalid &&
835 csum_info->receive.ip_checksum_succeeded &&
836 skb->protocol == htons(ETH_P_IP)) {
837 /* Check that there is enough space to hold the IP header. */
838 if (skb_headlen(skb) < sizeof(struct iphdr)) {
842 netvsc_comp_ipcsum(skb);
845 /* Do L4 checksum offload if enabled and present. */
846 if ((ppi_flags & NVSC_RSC_CSUM_INFO) && (net->features & NETIF_F_RXCSUM)) {
847 if (csum_info->receive.tcp_checksum_succeeded ||
848 csum_info->receive.udp_checksum_succeeded)
849 skb->ip_summed = CHECKSUM_UNNECESSARY;
852 if ((ppi_flags & NVSC_RSC_HASH_INFO) && (net->features & NETIF_F_RXHASH))
853 skb_set_hash(skb, *hash_info, PKT_HASH_TYPE_L4);
855 if (ppi_flags & NVSC_RSC_VLAN) {
856 u16 vlan_tci = vlan->vlanid | (vlan->pri << VLAN_PRIO_SHIFT) |
857 (vlan->cfi ? VLAN_CFI_MASK : 0);
859 __vlan_hwaccel_put_tag(skb, htons(ETH_P_8021Q),
867 * netvsc_recv_callback - Callback when we receive a packet from the
868 * "wire" on the specified device.
870 int netvsc_recv_callback(struct net_device *net,
871 struct netvsc_device *net_device,
872 struct netvsc_channel *nvchan)
874 struct net_device_context *net_device_ctx = netdev_priv(net);
875 struct vmbus_channel *channel = nvchan->channel;
876 u16 q_idx = channel->offermsg.offer.sub_channel_index;
878 struct netvsc_stats_rx *rx_stats = &nvchan->rx_stats;
882 if (net->reg_state != NETREG_REGISTERED)
883 return NVSP_STAT_FAIL;
885 act = netvsc_run_xdp(net, nvchan, &xdp);
887 if (act == XDP_REDIRECT)
888 return NVSP_STAT_SUCCESS;
890 if (act != XDP_PASS && act != XDP_TX) {
891 u64_stats_update_begin(&rx_stats->syncp);
892 rx_stats->xdp_drop++;
893 u64_stats_update_end(&rx_stats->syncp);
895 return NVSP_STAT_SUCCESS; /* consumed by XDP */
898 /* Allocate a skb - TODO direct I/O to pages? */
899 skb = netvsc_alloc_recv_skb(net, nvchan, &xdp);
901 if (unlikely(!skb)) {
902 ++net_device_ctx->eth_stats.rx_no_memory;
903 return NVSP_STAT_FAIL;
906 skb_record_rx_queue(skb, q_idx);
909 * Even if injecting the packet, record the statistics
910 * on the synthetic device because modifying the VF device
911 * statistics will not work correctly.
913 u64_stats_update_begin(&rx_stats->syncp);
918 rx_stats->bytes += nvchan->rsc.pktlen;
920 if (skb->pkt_type == PACKET_BROADCAST)
921 ++rx_stats->broadcast;
922 else if (skb->pkt_type == PACKET_MULTICAST)
923 ++rx_stats->multicast;
924 u64_stats_update_end(&rx_stats->syncp);
927 netvsc_xdp_xmit(skb, net);
928 return NVSP_STAT_SUCCESS;
931 napi_gro_receive(&nvchan->napi, skb);
932 return NVSP_STAT_SUCCESS;
935 static void netvsc_get_drvinfo(struct net_device *net,
936 struct ethtool_drvinfo *info)
938 strscpy(info->driver, KBUILD_MODNAME, sizeof(info->driver));
939 strscpy(info->fw_version, "N/A", sizeof(info->fw_version));
942 static void netvsc_get_channels(struct net_device *net,
943 struct ethtool_channels *channel)
945 struct net_device_context *net_device_ctx = netdev_priv(net);
946 struct netvsc_device *nvdev = rtnl_dereference(net_device_ctx->nvdev);
949 channel->max_combined = nvdev->max_chn;
950 channel->combined_count = nvdev->num_chn;
954 /* Alloc struct netvsc_device_info, and initialize it from either existing
955 * struct netvsc_device, or from default values.
958 struct netvsc_device_info *netvsc_devinfo_get(struct netvsc_device *nvdev)
960 struct netvsc_device_info *dev_info;
961 struct bpf_prog *prog;
963 dev_info = kzalloc(sizeof(*dev_info), GFP_ATOMIC);
971 dev_info->num_chn = nvdev->num_chn;
972 dev_info->send_sections = nvdev->send_section_cnt;
973 dev_info->send_section_size = nvdev->send_section_size;
974 dev_info->recv_sections = nvdev->recv_section_cnt;
975 dev_info->recv_section_size = nvdev->recv_section_size;
977 memcpy(dev_info->rss_key, nvdev->extension->rss_key,
980 prog = netvsc_xdp_get(nvdev);
983 dev_info->bprog = prog;
986 dev_info->num_chn = VRSS_CHANNEL_DEFAULT;
987 dev_info->send_sections = NETVSC_DEFAULT_TX;
988 dev_info->send_section_size = NETVSC_SEND_SECTION_SIZE;
989 dev_info->recv_sections = NETVSC_DEFAULT_RX;
990 dev_info->recv_section_size = NETVSC_RECV_SECTION_SIZE;
996 /* Free struct netvsc_device_info */
997 static void netvsc_devinfo_put(struct netvsc_device_info *dev_info)
999 if (dev_info->bprog) {
1001 bpf_prog_put(dev_info->bprog);
1007 static int netvsc_detach(struct net_device *ndev,
1008 struct netvsc_device *nvdev)
1010 struct net_device_context *ndev_ctx = netdev_priv(ndev);
1011 struct hv_device *hdev = ndev_ctx->device_ctx;
1014 /* Don't try continuing to try and setup sub channels */
1015 if (cancel_work_sync(&nvdev->subchan_work))
1018 netvsc_xdp_set(ndev, NULL, NULL, nvdev);
1020 /* If device was up (receiving) then shutdown */
1021 if (netif_running(ndev)) {
1022 netvsc_tx_disable(nvdev, ndev);
1024 ret = rndis_filter_close(nvdev);
1027 "unable to close device (ret %d).\n", ret);
1031 ret = netvsc_wait_until_empty(nvdev);
1034 "Ring buffer not empty after closing rndis\n");
1039 netif_device_detach(ndev);
1041 rndis_filter_device_remove(hdev, nvdev);
1046 static int netvsc_attach(struct net_device *ndev,
1047 struct netvsc_device_info *dev_info)
1049 struct net_device_context *ndev_ctx = netdev_priv(ndev);
1050 struct hv_device *hdev = ndev_ctx->device_ctx;
1051 struct netvsc_device *nvdev;
1052 struct rndis_device *rdev;
1053 struct bpf_prog *prog;
1056 nvdev = rndis_filter_device_add(hdev, dev_info);
1058 return PTR_ERR(nvdev);
1060 if (nvdev->num_chn > 1) {
1061 ret = rndis_set_subchannel(ndev, nvdev, dev_info);
1063 /* if unavailable, just proceed with one queue */
1070 prog = dev_info->bprog;
1073 ret = netvsc_xdp_set(ndev, prog, NULL, nvdev);
1080 /* In any case device is now ready */
1081 nvdev->tx_disable = false;
1082 netif_device_attach(ndev);
1084 /* Note: enable and attach happen when sub-channels setup */
1085 netif_carrier_off(ndev);
1087 if (netif_running(ndev)) {
1088 ret = rndis_filter_open(nvdev);
1092 rdev = nvdev->extension;
1093 if (!rdev->link_state)
1094 netif_carrier_on(ndev);
1100 netif_device_detach(ndev);
1103 rndis_filter_device_remove(hdev, nvdev);
1108 static int netvsc_set_channels(struct net_device *net,
1109 struct ethtool_channels *channels)
1111 struct net_device_context *net_device_ctx = netdev_priv(net);
1112 struct netvsc_device *nvdev = rtnl_dereference(net_device_ctx->nvdev);
1113 unsigned int orig, count = channels->combined_count;
1114 struct netvsc_device_info *device_info;
1117 /* We do not support separate count for rx, tx, or other */
1119 channels->rx_count || channels->tx_count || channels->other_count)
1122 if (!nvdev || nvdev->destroy)
1125 if (nvdev->nvsp_version < NVSP_PROTOCOL_VERSION_5)
1128 if (count > nvdev->max_chn)
1131 orig = nvdev->num_chn;
1133 device_info = netvsc_devinfo_get(nvdev);
1138 device_info->num_chn = count;
1140 ret = netvsc_detach(net, nvdev);
1144 ret = netvsc_attach(net, device_info);
1146 device_info->num_chn = orig;
1147 if (netvsc_attach(net, device_info))
1148 netdev_err(net, "restoring channel setting failed\n");
1152 netvsc_devinfo_put(device_info);
1156 static void netvsc_init_settings(struct net_device *dev)
1158 struct net_device_context *ndc = netdev_priv(dev);
1160 ndc->l4_hash = HV_DEFAULT_L4HASH;
1162 ndc->speed = SPEED_UNKNOWN;
1163 ndc->duplex = DUPLEX_FULL;
1165 dev->features = NETIF_F_LRO;
1168 static int netvsc_get_link_ksettings(struct net_device *dev,
1169 struct ethtool_link_ksettings *cmd)
1171 struct net_device_context *ndc = netdev_priv(dev);
1172 struct net_device *vf_netdev;
1174 vf_netdev = rtnl_dereference(ndc->vf_netdev);
1177 return __ethtool_get_link_ksettings(vf_netdev, cmd);
1179 cmd->base.speed = ndc->speed;
1180 cmd->base.duplex = ndc->duplex;
1181 cmd->base.port = PORT_OTHER;
1186 static int netvsc_set_link_ksettings(struct net_device *dev,
1187 const struct ethtool_link_ksettings *cmd)
1189 struct net_device_context *ndc = netdev_priv(dev);
1190 struct net_device *vf_netdev = rtnl_dereference(ndc->vf_netdev);
1193 if (!vf_netdev->ethtool_ops->set_link_ksettings)
1196 return vf_netdev->ethtool_ops->set_link_ksettings(vf_netdev,
1200 return ethtool_virtdev_set_link_ksettings(dev, cmd,
1201 &ndc->speed, &ndc->duplex);
1204 static int netvsc_change_mtu(struct net_device *ndev, int mtu)
1206 struct net_device_context *ndevctx = netdev_priv(ndev);
1207 struct net_device *vf_netdev = rtnl_dereference(ndevctx->vf_netdev);
1208 struct netvsc_device *nvdev = rtnl_dereference(ndevctx->nvdev);
1209 int orig_mtu = ndev->mtu;
1210 struct netvsc_device_info *device_info;
1213 if (!nvdev || nvdev->destroy)
1216 device_info = netvsc_devinfo_get(nvdev);
1221 /* Change MTU of underlying VF netdev first. */
1223 ret = dev_set_mtu(vf_netdev, mtu);
1228 ret = netvsc_detach(ndev, nvdev);
1234 ret = netvsc_attach(ndev, device_info);
1238 /* Attempt rollback to original MTU */
1239 ndev->mtu = orig_mtu;
1241 if (netvsc_attach(ndev, device_info))
1242 netdev_err(ndev, "restoring mtu failed\n");
1245 dev_set_mtu(vf_netdev, orig_mtu);
1248 netvsc_devinfo_put(device_info);
1252 static void netvsc_get_vf_stats(struct net_device *net,
1253 struct netvsc_vf_pcpu_stats *tot)
1255 struct net_device_context *ndev_ctx = netdev_priv(net);
1258 memset(tot, 0, sizeof(*tot));
1260 for_each_possible_cpu(i) {
1261 const struct netvsc_vf_pcpu_stats *stats
1262 = per_cpu_ptr(ndev_ctx->vf_stats, i);
1263 u64 rx_packets, rx_bytes, tx_packets, tx_bytes;
1267 start = u64_stats_fetch_begin(&stats->syncp);
1268 rx_packets = stats->rx_packets;
1269 tx_packets = stats->tx_packets;
1270 rx_bytes = stats->rx_bytes;
1271 tx_bytes = stats->tx_bytes;
1272 } while (u64_stats_fetch_retry(&stats->syncp, start));
1274 tot->rx_packets += rx_packets;
1275 tot->tx_packets += tx_packets;
1276 tot->rx_bytes += rx_bytes;
1277 tot->tx_bytes += tx_bytes;
1278 tot->tx_dropped += stats->tx_dropped;
1282 static void netvsc_get_pcpu_stats(struct net_device *net,
1283 struct netvsc_ethtool_pcpu_stats *pcpu_tot)
1285 struct net_device_context *ndev_ctx = netdev_priv(net);
1286 struct netvsc_device *nvdev = rcu_dereference_rtnl(ndev_ctx->nvdev);
1289 /* fetch percpu stats of vf */
1290 for_each_possible_cpu(i) {
1291 const struct netvsc_vf_pcpu_stats *stats =
1292 per_cpu_ptr(ndev_ctx->vf_stats, i);
1293 struct netvsc_ethtool_pcpu_stats *this_tot = &pcpu_tot[i];
1297 start = u64_stats_fetch_begin(&stats->syncp);
1298 this_tot->vf_rx_packets = stats->rx_packets;
1299 this_tot->vf_tx_packets = stats->tx_packets;
1300 this_tot->vf_rx_bytes = stats->rx_bytes;
1301 this_tot->vf_tx_bytes = stats->tx_bytes;
1302 } while (u64_stats_fetch_retry(&stats->syncp, start));
1303 this_tot->rx_packets = this_tot->vf_rx_packets;
1304 this_tot->tx_packets = this_tot->vf_tx_packets;
1305 this_tot->rx_bytes = this_tot->vf_rx_bytes;
1306 this_tot->tx_bytes = this_tot->vf_tx_bytes;
1309 /* fetch percpu stats of netvsc */
1310 for (i = 0; i < nvdev->num_chn; i++) {
1311 const struct netvsc_channel *nvchan = &nvdev->chan_table[i];
1312 const struct netvsc_stats_tx *tx_stats;
1313 const struct netvsc_stats_rx *rx_stats;
1314 struct netvsc_ethtool_pcpu_stats *this_tot =
1315 &pcpu_tot[nvchan->channel->target_cpu];
1319 tx_stats = &nvchan->tx_stats;
1321 start = u64_stats_fetch_begin(&tx_stats->syncp);
1322 packets = tx_stats->packets;
1323 bytes = tx_stats->bytes;
1324 } while (u64_stats_fetch_retry(&tx_stats->syncp, start));
1326 this_tot->tx_bytes += bytes;
1327 this_tot->tx_packets += packets;
1329 rx_stats = &nvchan->rx_stats;
1331 start = u64_stats_fetch_begin(&rx_stats->syncp);
1332 packets = rx_stats->packets;
1333 bytes = rx_stats->bytes;
1334 } while (u64_stats_fetch_retry(&rx_stats->syncp, start));
1336 this_tot->rx_bytes += bytes;
1337 this_tot->rx_packets += packets;
1341 static void netvsc_get_stats64(struct net_device *net,
1342 struct rtnl_link_stats64 *t)
1344 struct net_device_context *ndev_ctx = netdev_priv(net);
1345 struct netvsc_device *nvdev;
1346 struct netvsc_vf_pcpu_stats vf_tot;
1351 nvdev = rcu_dereference(ndev_ctx->nvdev);
1355 netdev_stats_to_stats64(t, &net->stats);
1357 netvsc_get_vf_stats(net, &vf_tot);
1358 t->rx_packets += vf_tot.rx_packets;
1359 t->tx_packets += vf_tot.tx_packets;
1360 t->rx_bytes += vf_tot.rx_bytes;
1361 t->tx_bytes += vf_tot.tx_bytes;
1362 t->tx_dropped += vf_tot.tx_dropped;
1364 for (i = 0; i < nvdev->num_chn; i++) {
1365 const struct netvsc_channel *nvchan = &nvdev->chan_table[i];
1366 const struct netvsc_stats_tx *tx_stats;
1367 const struct netvsc_stats_rx *rx_stats;
1368 u64 packets, bytes, multicast;
1371 tx_stats = &nvchan->tx_stats;
1373 start = u64_stats_fetch_begin(&tx_stats->syncp);
1374 packets = tx_stats->packets;
1375 bytes = tx_stats->bytes;
1376 } while (u64_stats_fetch_retry(&tx_stats->syncp, start));
1378 t->tx_bytes += bytes;
1379 t->tx_packets += packets;
1381 rx_stats = &nvchan->rx_stats;
1383 start = u64_stats_fetch_begin(&rx_stats->syncp);
1384 packets = rx_stats->packets;
1385 bytes = rx_stats->bytes;
1386 multicast = rx_stats->multicast + rx_stats->broadcast;
1387 } while (u64_stats_fetch_retry(&rx_stats->syncp, start));
1389 t->rx_bytes += bytes;
1390 t->rx_packets += packets;
1391 t->multicast += multicast;
1397 static int netvsc_set_mac_addr(struct net_device *ndev, void *p)
1399 struct net_device_context *ndc = netdev_priv(ndev);
1400 struct net_device *vf_netdev = rtnl_dereference(ndc->vf_netdev);
1401 struct netvsc_device *nvdev = rtnl_dereference(ndc->nvdev);
1402 struct sockaddr *addr = p;
1405 err = eth_prepare_mac_addr_change(ndev, p);
1413 err = dev_set_mac_address(vf_netdev, addr, NULL);
1418 err = rndis_filter_set_device_mac(nvdev, addr->sa_data);
1420 eth_commit_mac_addr_change(ndev, p);
1421 } else if (vf_netdev) {
1422 /* rollback change on VF */
1423 memcpy(addr->sa_data, ndev->dev_addr, ETH_ALEN);
1424 dev_set_mac_address(vf_netdev, addr, NULL);
1430 static const struct {
1431 char name[ETH_GSTRING_LEN];
1433 } netvsc_stats[] = {
1434 { "tx_scattered", offsetof(struct netvsc_ethtool_stats, tx_scattered) },
1435 { "tx_no_memory", offsetof(struct netvsc_ethtool_stats, tx_no_memory) },
1436 { "tx_no_space", offsetof(struct netvsc_ethtool_stats, tx_no_space) },
1437 { "tx_too_big", offsetof(struct netvsc_ethtool_stats, tx_too_big) },
1438 { "tx_busy", offsetof(struct netvsc_ethtool_stats, tx_busy) },
1439 { "tx_send_full", offsetof(struct netvsc_ethtool_stats, tx_send_full) },
1440 { "rx_comp_busy", offsetof(struct netvsc_ethtool_stats, rx_comp_busy) },
1441 { "rx_no_memory", offsetof(struct netvsc_ethtool_stats, rx_no_memory) },
1442 { "stop_queue", offsetof(struct netvsc_ethtool_stats, stop_queue) },
1443 { "wake_queue", offsetof(struct netvsc_ethtool_stats, wake_queue) },
1444 { "vlan_error", offsetof(struct netvsc_ethtool_stats, vlan_error) },
1446 { "cpu%u_rx_packets",
1447 offsetof(struct netvsc_ethtool_pcpu_stats, rx_packets) },
1449 offsetof(struct netvsc_ethtool_pcpu_stats, rx_bytes) },
1450 { "cpu%u_tx_packets",
1451 offsetof(struct netvsc_ethtool_pcpu_stats, tx_packets) },
1453 offsetof(struct netvsc_ethtool_pcpu_stats, tx_bytes) },
1454 { "cpu%u_vf_rx_packets",
1455 offsetof(struct netvsc_ethtool_pcpu_stats, vf_rx_packets) },
1456 { "cpu%u_vf_rx_bytes",
1457 offsetof(struct netvsc_ethtool_pcpu_stats, vf_rx_bytes) },
1458 { "cpu%u_vf_tx_packets",
1459 offsetof(struct netvsc_ethtool_pcpu_stats, vf_tx_packets) },
1460 { "cpu%u_vf_tx_bytes",
1461 offsetof(struct netvsc_ethtool_pcpu_stats, vf_tx_bytes) },
1463 { "vf_rx_packets", offsetof(struct netvsc_vf_pcpu_stats, rx_packets) },
1464 { "vf_rx_bytes", offsetof(struct netvsc_vf_pcpu_stats, rx_bytes) },
1465 { "vf_tx_packets", offsetof(struct netvsc_vf_pcpu_stats, tx_packets) },
1466 { "vf_tx_bytes", offsetof(struct netvsc_vf_pcpu_stats, tx_bytes) },
1467 { "vf_tx_dropped", offsetof(struct netvsc_vf_pcpu_stats, tx_dropped) },
1470 #define NETVSC_GLOBAL_STATS_LEN ARRAY_SIZE(netvsc_stats)
1471 #define NETVSC_VF_STATS_LEN ARRAY_SIZE(vf_stats)
1473 /* statistics per queue (rx/tx packets/bytes) */
1474 #define NETVSC_PCPU_STATS_LEN (num_present_cpus() * ARRAY_SIZE(pcpu_stats))
1476 /* 8 statistics per queue (rx/tx packets/bytes, XDP actions) */
1477 #define NETVSC_QUEUE_STATS_LEN(dev) ((dev)->num_chn * 8)
1479 static int netvsc_get_sset_count(struct net_device *dev, int string_set)
1481 struct net_device_context *ndc = netdev_priv(dev);
1482 struct netvsc_device *nvdev = rtnl_dereference(ndc->nvdev);
1487 switch (string_set) {
1489 return NETVSC_GLOBAL_STATS_LEN
1490 + NETVSC_VF_STATS_LEN
1491 + NETVSC_QUEUE_STATS_LEN(nvdev)
1492 + NETVSC_PCPU_STATS_LEN;
1498 static void netvsc_get_ethtool_stats(struct net_device *dev,
1499 struct ethtool_stats *stats, u64 *data)
1501 struct net_device_context *ndc = netdev_priv(dev);
1502 struct netvsc_device *nvdev = rtnl_dereference(ndc->nvdev);
1503 const void *nds = &ndc->eth_stats;
1504 const struct netvsc_stats_tx *tx_stats;
1505 const struct netvsc_stats_rx *rx_stats;
1506 struct netvsc_vf_pcpu_stats sum;
1507 struct netvsc_ethtool_pcpu_stats *pcpu_sum;
1519 for (i = 0; i < NETVSC_GLOBAL_STATS_LEN; i++)
1520 data[i] = *(unsigned long *)(nds + netvsc_stats[i].offset);
1522 netvsc_get_vf_stats(dev, &sum);
1523 for (j = 0; j < NETVSC_VF_STATS_LEN; j++)
1524 data[i++] = *(u64 *)((void *)&sum + vf_stats[j].offset);
1526 for (j = 0; j < nvdev->num_chn; j++) {
1527 tx_stats = &nvdev->chan_table[j].tx_stats;
1530 start = u64_stats_fetch_begin(&tx_stats->syncp);
1531 packets = tx_stats->packets;
1532 bytes = tx_stats->bytes;
1533 xdp_xmit = tx_stats->xdp_xmit;
1534 } while (u64_stats_fetch_retry(&tx_stats->syncp, start));
1535 data[i++] = packets;
1537 data[i++] = xdp_xmit;
1539 rx_stats = &nvdev->chan_table[j].rx_stats;
1541 start = u64_stats_fetch_begin(&rx_stats->syncp);
1542 packets = rx_stats->packets;
1543 bytes = rx_stats->bytes;
1544 xdp_drop = rx_stats->xdp_drop;
1545 xdp_redirect = rx_stats->xdp_redirect;
1546 xdp_tx = rx_stats->xdp_tx;
1547 } while (u64_stats_fetch_retry(&rx_stats->syncp, start));
1548 data[i++] = packets;
1550 data[i++] = xdp_drop;
1551 data[i++] = xdp_redirect;
1555 pcpu_sum = kvmalloc_array(num_possible_cpus(),
1556 sizeof(struct netvsc_ethtool_pcpu_stats),
1561 netvsc_get_pcpu_stats(dev, pcpu_sum);
1562 for_each_present_cpu(cpu) {
1563 struct netvsc_ethtool_pcpu_stats *this_sum = &pcpu_sum[cpu];
1565 for (j = 0; j < ARRAY_SIZE(pcpu_stats); j++)
1566 data[i++] = *(u64 *)((void *)this_sum
1567 + pcpu_stats[j].offset);
1572 static void netvsc_get_strings(struct net_device *dev, u32 stringset, u8 *data)
1574 struct net_device_context *ndc = netdev_priv(dev);
1575 struct netvsc_device *nvdev = rtnl_dereference(ndc->nvdev);
1582 switch (stringset) {
1584 for (i = 0; i < ARRAY_SIZE(netvsc_stats); i++)
1585 ethtool_sprintf(&p, netvsc_stats[i].name);
1587 for (i = 0; i < ARRAY_SIZE(vf_stats); i++)
1588 ethtool_sprintf(&p, vf_stats[i].name);
1590 for (i = 0; i < nvdev->num_chn; i++) {
1591 ethtool_sprintf(&p, "tx_queue_%u_packets", i);
1592 ethtool_sprintf(&p, "tx_queue_%u_bytes", i);
1593 ethtool_sprintf(&p, "tx_queue_%u_xdp_xmit", i);
1594 ethtool_sprintf(&p, "rx_queue_%u_packets", i);
1595 ethtool_sprintf(&p, "rx_queue_%u_bytes", i);
1596 ethtool_sprintf(&p, "rx_queue_%u_xdp_drop", i);
1597 ethtool_sprintf(&p, "rx_queue_%u_xdp_redirect", i);
1598 ethtool_sprintf(&p, "rx_queue_%u_xdp_tx", i);
1601 for_each_present_cpu(cpu) {
1602 for (i = 0; i < ARRAY_SIZE(pcpu_stats); i++)
1603 ethtool_sprintf(&p, pcpu_stats[i].name, cpu);
1611 netvsc_get_rss_hash_opts(struct net_device_context *ndc,
1612 struct ethtool_rxnfc *info)
1614 const u32 l4_flag = RXH_L4_B_0_1 | RXH_L4_B_2_3;
1616 info->data = RXH_IP_SRC | RXH_IP_DST;
1618 switch (info->flow_type) {
1620 if (ndc->l4_hash & HV_TCP4_L4HASH)
1621 info->data |= l4_flag;
1626 if (ndc->l4_hash & HV_TCP6_L4HASH)
1627 info->data |= l4_flag;
1632 if (ndc->l4_hash & HV_UDP4_L4HASH)
1633 info->data |= l4_flag;
1638 if (ndc->l4_hash & HV_UDP6_L4HASH)
1639 info->data |= l4_flag;
1655 netvsc_get_rxnfc(struct net_device *dev, struct ethtool_rxnfc *info,
1658 struct net_device_context *ndc = netdev_priv(dev);
1659 struct netvsc_device *nvdev = rtnl_dereference(ndc->nvdev);
1664 switch (info->cmd) {
1665 case ETHTOOL_GRXRINGS:
1666 info->data = nvdev->num_chn;
1670 return netvsc_get_rss_hash_opts(ndc, info);
1675 static int netvsc_set_rss_hash_opts(struct net_device_context *ndc,
1676 struct ethtool_rxnfc *info)
1678 if (info->data == (RXH_IP_SRC | RXH_IP_DST |
1679 RXH_L4_B_0_1 | RXH_L4_B_2_3)) {
1680 switch (info->flow_type) {
1682 ndc->l4_hash |= HV_TCP4_L4HASH;
1686 ndc->l4_hash |= HV_TCP6_L4HASH;
1690 ndc->l4_hash |= HV_UDP4_L4HASH;
1694 ndc->l4_hash |= HV_UDP6_L4HASH;
1704 if (info->data == (RXH_IP_SRC | RXH_IP_DST)) {
1705 switch (info->flow_type) {
1707 ndc->l4_hash &= ~HV_TCP4_L4HASH;
1711 ndc->l4_hash &= ~HV_TCP6_L4HASH;
1715 ndc->l4_hash &= ~HV_UDP4_L4HASH;
1719 ndc->l4_hash &= ~HV_UDP6_L4HASH;
1733 netvsc_set_rxnfc(struct net_device *ndev, struct ethtool_rxnfc *info)
1735 struct net_device_context *ndc = netdev_priv(ndev);
1737 if (info->cmd == ETHTOOL_SRXFH)
1738 return netvsc_set_rss_hash_opts(ndc, info);
1743 static u32 netvsc_get_rxfh_key_size(struct net_device *dev)
1745 return NETVSC_HASH_KEYLEN;
1748 static u32 netvsc_rss_indir_size(struct net_device *dev)
1750 struct net_device_context *ndc = netdev_priv(dev);
1752 return ndc->rx_table_sz;
1755 static int netvsc_get_rxfh(struct net_device *dev, u32 *indir, u8 *key,
1758 struct net_device_context *ndc = netdev_priv(dev);
1759 struct netvsc_device *ndev = rtnl_dereference(ndc->nvdev);
1760 struct rndis_device *rndis_dev;
1767 *hfunc = ETH_RSS_HASH_TOP; /* Toeplitz */
1769 rndis_dev = ndev->extension;
1771 for (i = 0; i < ndc->rx_table_sz; i++)
1772 indir[i] = ndc->rx_table[i];
1776 memcpy(key, rndis_dev->rss_key, NETVSC_HASH_KEYLEN);
1781 static int netvsc_set_rxfh(struct net_device *dev, const u32 *indir,
1782 const u8 *key, const u8 hfunc)
1784 struct net_device_context *ndc = netdev_priv(dev);
1785 struct netvsc_device *ndev = rtnl_dereference(ndc->nvdev);
1786 struct rndis_device *rndis_dev;
1792 if (hfunc != ETH_RSS_HASH_NO_CHANGE && hfunc != ETH_RSS_HASH_TOP)
1795 rndis_dev = ndev->extension;
1797 for (i = 0; i < ndc->rx_table_sz; i++)
1798 if (indir[i] >= ndev->num_chn)
1801 for (i = 0; i < ndc->rx_table_sz; i++)
1802 ndc->rx_table[i] = indir[i];
1809 key = rndis_dev->rss_key;
1812 return rndis_filter_set_rss_param(rndis_dev, key);
1815 /* Hyper-V RNDIS protocol does not have ring in the HW sense.
1816 * It does have pre-allocated receive area which is divided into sections.
1818 static void __netvsc_get_ringparam(struct netvsc_device *nvdev,
1819 struct ethtool_ringparam *ring)
1823 ring->rx_pending = nvdev->recv_section_cnt;
1824 ring->tx_pending = nvdev->send_section_cnt;
1826 if (nvdev->nvsp_version <= NVSP_PROTOCOL_VERSION_2)
1827 max_buf_size = NETVSC_RECEIVE_BUFFER_SIZE_LEGACY;
1829 max_buf_size = NETVSC_RECEIVE_BUFFER_SIZE;
1831 ring->rx_max_pending = max_buf_size / nvdev->recv_section_size;
1832 ring->tx_max_pending = NETVSC_SEND_BUFFER_SIZE
1833 / nvdev->send_section_size;
1836 static void netvsc_get_ringparam(struct net_device *ndev,
1837 struct ethtool_ringparam *ring,
1838 struct kernel_ethtool_ringparam *kernel_ring,
1839 struct netlink_ext_ack *extack)
1841 struct net_device_context *ndevctx = netdev_priv(ndev);
1842 struct netvsc_device *nvdev = rtnl_dereference(ndevctx->nvdev);
1847 __netvsc_get_ringparam(nvdev, ring);
1850 static int netvsc_set_ringparam(struct net_device *ndev,
1851 struct ethtool_ringparam *ring,
1852 struct kernel_ethtool_ringparam *kernel_ring,
1853 struct netlink_ext_ack *extack)
1855 struct net_device_context *ndevctx = netdev_priv(ndev);
1856 struct netvsc_device *nvdev = rtnl_dereference(ndevctx->nvdev);
1857 struct netvsc_device_info *device_info;
1858 struct ethtool_ringparam orig;
1862 if (!nvdev || nvdev->destroy)
1865 memset(&orig, 0, sizeof(orig));
1866 __netvsc_get_ringparam(nvdev, &orig);
1868 new_tx = clamp_t(u32, ring->tx_pending,
1869 NETVSC_MIN_TX_SECTIONS, orig.tx_max_pending);
1870 new_rx = clamp_t(u32, ring->rx_pending,
1871 NETVSC_MIN_RX_SECTIONS, orig.rx_max_pending);
1873 if (new_tx == orig.tx_pending &&
1874 new_rx == orig.rx_pending)
1875 return 0; /* no change */
1877 device_info = netvsc_devinfo_get(nvdev);
1882 device_info->send_sections = new_tx;
1883 device_info->recv_sections = new_rx;
1885 ret = netvsc_detach(ndev, nvdev);
1889 ret = netvsc_attach(ndev, device_info);
1891 device_info->send_sections = orig.tx_pending;
1892 device_info->recv_sections = orig.rx_pending;
1894 if (netvsc_attach(ndev, device_info))
1895 netdev_err(ndev, "restoring ringparam failed");
1899 netvsc_devinfo_put(device_info);
1903 static netdev_features_t netvsc_fix_features(struct net_device *ndev,
1904 netdev_features_t features)
1906 struct net_device_context *ndevctx = netdev_priv(ndev);
1907 struct netvsc_device *nvdev = rtnl_dereference(ndevctx->nvdev);
1909 if (!nvdev || nvdev->destroy)
1912 if ((features & NETIF_F_LRO) && netvsc_xdp_get(nvdev)) {
1913 features ^= NETIF_F_LRO;
1914 netdev_info(ndev, "Skip LRO - unsupported with XDP\n");
1920 static int netvsc_set_features(struct net_device *ndev,
1921 netdev_features_t features)
1923 netdev_features_t change = features ^ ndev->features;
1924 struct net_device_context *ndevctx = netdev_priv(ndev);
1925 struct netvsc_device *nvdev = rtnl_dereference(ndevctx->nvdev);
1926 struct net_device *vf_netdev = rtnl_dereference(ndevctx->vf_netdev);
1927 struct ndis_offload_params offloads;
1930 if (!nvdev || nvdev->destroy)
1933 if (!(change & NETIF_F_LRO))
1936 memset(&offloads, 0, sizeof(struct ndis_offload_params));
1938 if (features & NETIF_F_LRO) {
1939 offloads.rsc_ip_v4 = NDIS_OFFLOAD_PARAMETERS_RSC_ENABLED;
1940 offloads.rsc_ip_v6 = NDIS_OFFLOAD_PARAMETERS_RSC_ENABLED;
1942 offloads.rsc_ip_v4 = NDIS_OFFLOAD_PARAMETERS_RSC_DISABLED;
1943 offloads.rsc_ip_v6 = NDIS_OFFLOAD_PARAMETERS_RSC_DISABLED;
1946 ret = rndis_filter_set_offload_params(ndev, nvdev, &offloads);
1949 features ^= NETIF_F_LRO;
1950 ndev->features = features;
1957 vf_netdev->wanted_features = features;
1958 netdev_update_features(vf_netdev);
1963 static int netvsc_get_regs_len(struct net_device *netdev)
1965 return VRSS_SEND_TAB_SIZE * sizeof(u32);
1968 static void netvsc_get_regs(struct net_device *netdev,
1969 struct ethtool_regs *regs, void *p)
1971 struct net_device_context *ndc = netdev_priv(netdev);
1974 /* increase the version, if buffer format is changed. */
1977 memcpy(regs_buff, ndc->tx_table, VRSS_SEND_TAB_SIZE * sizeof(u32));
1980 static u32 netvsc_get_msglevel(struct net_device *ndev)
1982 struct net_device_context *ndev_ctx = netdev_priv(ndev);
1984 return ndev_ctx->msg_enable;
1987 static void netvsc_set_msglevel(struct net_device *ndev, u32 val)
1989 struct net_device_context *ndev_ctx = netdev_priv(ndev);
1991 ndev_ctx->msg_enable = val;
1994 static const struct ethtool_ops ethtool_ops = {
1995 .get_drvinfo = netvsc_get_drvinfo,
1996 .get_regs_len = netvsc_get_regs_len,
1997 .get_regs = netvsc_get_regs,
1998 .get_msglevel = netvsc_get_msglevel,
1999 .set_msglevel = netvsc_set_msglevel,
2000 .get_link = ethtool_op_get_link,
2001 .get_ethtool_stats = netvsc_get_ethtool_stats,
2002 .get_sset_count = netvsc_get_sset_count,
2003 .get_strings = netvsc_get_strings,
2004 .get_channels = netvsc_get_channels,
2005 .set_channels = netvsc_set_channels,
2006 .get_ts_info = ethtool_op_get_ts_info,
2007 .get_rxnfc = netvsc_get_rxnfc,
2008 .set_rxnfc = netvsc_set_rxnfc,
2009 .get_rxfh_key_size = netvsc_get_rxfh_key_size,
2010 .get_rxfh_indir_size = netvsc_rss_indir_size,
2011 .get_rxfh = netvsc_get_rxfh,
2012 .set_rxfh = netvsc_set_rxfh,
2013 .get_link_ksettings = netvsc_get_link_ksettings,
2014 .set_link_ksettings = netvsc_set_link_ksettings,
2015 .get_ringparam = netvsc_get_ringparam,
2016 .set_ringparam = netvsc_set_ringparam,
2019 static const struct net_device_ops device_ops = {
2020 .ndo_open = netvsc_open,
2021 .ndo_stop = netvsc_close,
2022 .ndo_start_xmit = netvsc_start_xmit,
2023 .ndo_change_rx_flags = netvsc_change_rx_flags,
2024 .ndo_set_rx_mode = netvsc_set_rx_mode,
2025 .ndo_fix_features = netvsc_fix_features,
2026 .ndo_set_features = netvsc_set_features,
2027 .ndo_change_mtu = netvsc_change_mtu,
2028 .ndo_validate_addr = eth_validate_addr,
2029 .ndo_set_mac_address = netvsc_set_mac_addr,
2030 .ndo_select_queue = netvsc_select_queue,
2031 .ndo_get_stats64 = netvsc_get_stats64,
2032 .ndo_bpf = netvsc_bpf,
2033 .ndo_xdp_xmit = netvsc_ndoxdp_xmit,
2037 * Handle link status changes. For RNDIS_STATUS_NETWORK_CHANGE emulate link
2038 * down/up sequence. In case of RNDIS_STATUS_MEDIA_CONNECT when carrier is
2039 * present send GARP packet to network peers with netif_notify_peers().
2041 static void netvsc_link_change(struct work_struct *w)
2043 struct net_device_context *ndev_ctx =
2044 container_of(w, struct net_device_context, dwork.work);
2045 struct hv_device *device_obj = ndev_ctx->device_ctx;
2046 struct net_device *net = hv_get_drvdata(device_obj);
2047 unsigned long flags, next_reconfig, delay;
2048 struct netvsc_reconfig *event = NULL;
2049 struct netvsc_device *net_device;
2050 struct rndis_device *rdev;
2051 bool reschedule = false;
2053 /* if changes are happening, comeback later */
2054 if (!rtnl_trylock()) {
2055 schedule_delayed_work(&ndev_ctx->dwork, LINKCHANGE_INT);
2059 net_device = rtnl_dereference(ndev_ctx->nvdev);
2063 rdev = net_device->extension;
2065 next_reconfig = ndev_ctx->last_reconfig + LINKCHANGE_INT;
2066 if (time_is_after_jiffies(next_reconfig)) {
2067 /* link_watch only sends one notification with current state
2068 * per second, avoid doing reconfig more frequently. Handle
2071 delay = next_reconfig - jiffies;
2072 delay = delay < LINKCHANGE_INT ? delay : LINKCHANGE_INT;
2073 schedule_delayed_work(&ndev_ctx->dwork, delay);
2076 ndev_ctx->last_reconfig = jiffies;
2078 spin_lock_irqsave(&ndev_ctx->lock, flags);
2079 if (!list_empty(&ndev_ctx->reconfig_events)) {
2080 event = list_first_entry(&ndev_ctx->reconfig_events,
2081 struct netvsc_reconfig, list);
2082 list_del(&event->list);
2083 reschedule = !list_empty(&ndev_ctx->reconfig_events);
2085 spin_unlock_irqrestore(&ndev_ctx->lock, flags);
2090 switch (event->event) {
2091 /* Only the following events are possible due to the check in
2092 * netvsc_linkstatus_callback()
2094 case RNDIS_STATUS_MEDIA_CONNECT:
2095 if (rdev->link_state) {
2096 rdev->link_state = false;
2097 netif_carrier_on(net);
2098 netvsc_tx_enable(net_device, net);
2100 __netdev_notify_peers(net);
2104 case RNDIS_STATUS_MEDIA_DISCONNECT:
2105 if (!rdev->link_state) {
2106 rdev->link_state = true;
2107 netif_carrier_off(net);
2108 netvsc_tx_disable(net_device, net);
2112 case RNDIS_STATUS_NETWORK_CHANGE:
2113 /* Only makes sense if carrier is present */
2114 if (!rdev->link_state) {
2115 rdev->link_state = true;
2116 netif_carrier_off(net);
2117 netvsc_tx_disable(net_device, net);
2118 event->event = RNDIS_STATUS_MEDIA_CONNECT;
2119 spin_lock_irqsave(&ndev_ctx->lock, flags);
2120 list_add(&event->list, &ndev_ctx->reconfig_events);
2121 spin_unlock_irqrestore(&ndev_ctx->lock, flags);
2129 /* link_watch only sends one notification with current state per
2130 * second, handle next reconfig event in 2 seconds.
2133 schedule_delayed_work(&ndev_ctx->dwork, LINKCHANGE_INT);
2141 static struct net_device *get_netvsc_byref(struct net_device *vf_netdev)
2143 struct net_device_context *net_device_ctx;
2144 struct net_device *dev;
2146 dev = netdev_master_upper_dev_get(vf_netdev);
2147 if (!dev || dev->netdev_ops != &device_ops)
2148 return NULL; /* not a netvsc device */
2150 net_device_ctx = netdev_priv(dev);
2151 if (!rtnl_dereference(net_device_ctx->nvdev))
2152 return NULL; /* device is removed */
2157 /* Called when VF is injecting data into network stack.
2158 * Change the associated network device from VF to netvsc.
2159 * note: already called with rcu_read_lock
2161 static rx_handler_result_t netvsc_vf_handle_frame(struct sk_buff **pskb)
2163 struct sk_buff *skb = *pskb;
2164 struct net_device *ndev = rcu_dereference(skb->dev->rx_handler_data);
2165 struct net_device_context *ndev_ctx = netdev_priv(ndev);
2166 struct netvsc_vf_pcpu_stats *pcpu_stats
2167 = this_cpu_ptr(ndev_ctx->vf_stats);
2169 skb = skb_share_check(skb, GFP_ATOMIC);
2171 return RX_HANDLER_CONSUMED;
2177 u64_stats_update_begin(&pcpu_stats->syncp);
2178 pcpu_stats->rx_packets++;
2179 pcpu_stats->rx_bytes += skb->len;
2180 u64_stats_update_end(&pcpu_stats->syncp);
2182 return RX_HANDLER_ANOTHER;
2185 static int netvsc_vf_join(struct net_device *vf_netdev,
2186 struct net_device *ndev)
2188 struct net_device_context *ndev_ctx = netdev_priv(ndev);
2191 ret = netdev_rx_handler_register(vf_netdev,
2192 netvsc_vf_handle_frame, ndev);
2194 netdev_err(vf_netdev,
2195 "can not register netvsc VF receive handler (err = %d)\n",
2197 goto rx_handler_failed;
2200 ret = netdev_master_upper_dev_link(vf_netdev, ndev,
2203 netdev_err(vf_netdev,
2204 "can not set master device %s (err = %d)\n",
2206 goto upper_link_failed;
2209 /* set slave flag before open to prevent IPv6 addrconf */
2210 vf_netdev->flags |= IFF_SLAVE;
2212 schedule_delayed_work(&ndev_ctx->vf_takeover, VF_TAKEOVER_INT);
2214 call_netdevice_notifiers(NETDEV_JOIN, vf_netdev);
2216 netdev_info(vf_netdev, "joined to %s\n", ndev->name);
2220 netdev_rx_handler_unregister(vf_netdev);
2225 static void __netvsc_vf_setup(struct net_device *ndev,
2226 struct net_device *vf_netdev)
2230 /* Align MTU of VF with master */
2231 ret = dev_set_mtu(vf_netdev, ndev->mtu);
2233 netdev_warn(vf_netdev,
2234 "unable to change mtu to %u\n", ndev->mtu);
2236 /* set multicast etc flags on VF */
2237 dev_change_flags(vf_netdev, ndev->flags | IFF_SLAVE, NULL);
2239 /* sync address list from ndev to VF */
2240 netif_addr_lock_bh(ndev);
2241 dev_uc_sync(vf_netdev, ndev);
2242 dev_mc_sync(vf_netdev, ndev);
2243 netif_addr_unlock_bh(ndev);
2245 if (netif_running(ndev)) {
2246 ret = dev_open(vf_netdev, NULL);
2248 netdev_warn(vf_netdev,
2249 "unable to open: %d\n", ret);
2253 /* Setup VF as slave of the synthetic device.
2254 * Runs in workqueue to avoid recursion in netlink callbacks.
2256 static void netvsc_vf_setup(struct work_struct *w)
2258 struct net_device_context *ndev_ctx
2259 = container_of(w, struct net_device_context, vf_takeover.work);
2260 struct net_device *ndev = hv_get_drvdata(ndev_ctx->device_ctx);
2261 struct net_device *vf_netdev;
2263 if (!rtnl_trylock()) {
2264 schedule_delayed_work(&ndev_ctx->vf_takeover, 0);
2268 vf_netdev = rtnl_dereference(ndev_ctx->vf_netdev);
2270 __netvsc_vf_setup(ndev, vf_netdev);
2275 /* Find netvsc by VF serial number.
2276 * The PCI hyperv controller records the serial number as the slot kobj name.
2278 static struct net_device *get_netvsc_byslot(const struct net_device *vf_netdev)
2280 struct device *parent = vf_netdev->dev.parent;
2281 struct net_device_context *ndev_ctx;
2282 struct net_device *ndev;
2283 struct pci_dev *pdev;
2286 if (!parent || !dev_is_pci(parent))
2287 return NULL; /* not a PCI device */
2289 pdev = to_pci_dev(parent);
2291 netdev_notice(vf_netdev, "no PCI slot information\n");
2295 if (kstrtou32(pci_slot_name(pdev->slot), 10, &serial)) {
2296 netdev_notice(vf_netdev, "Invalid vf serial:%s\n",
2297 pci_slot_name(pdev->slot));
2301 list_for_each_entry(ndev_ctx, &netvsc_dev_list, list) {
2302 if (!ndev_ctx->vf_alloc)
2305 if (ndev_ctx->vf_serial != serial)
2308 ndev = hv_get_drvdata(ndev_ctx->device_ctx);
2309 if (ndev->addr_len != vf_netdev->addr_len ||
2310 memcmp(ndev->perm_addr, vf_netdev->perm_addr,
2311 ndev->addr_len) != 0)
2318 /* Fallback path to check synthetic vf with
2321 list_for_each_entry(ndev_ctx, &netvsc_dev_list, list) {
2322 ndev = hv_get_drvdata(ndev_ctx->device_ctx);
2323 if (ether_addr_equal(vf_netdev->perm_addr, ndev->perm_addr)) {
2324 netdev_notice(vf_netdev,
2325 "falling back to mac addr based matching\n");
2330 netdev_notice(vf_netdev,
2331 "no netdev found for vf serial:%u\n", serial);
2335 static int netvsc_register_vf(struct net_device *vf_netdev)
2337 struct net_device_context *net_device_ctx;
2338 struct netvsc_device *netvsc_dev;
2339 struct bpf_prog *prog;
2340 struct net_device *ndev;
2343 if (vf_netdev->addr_len != ETH_ALEN)
2346 ndev = get_netvsc_byslot(vf_netdev);
2350 net_device_ctx = netdev_priv(ndev);
2351 netvsc_dev = rtnl_dereference(net_device_ctx->nvdev);
2352 if (!netvsc_dev || rtnl_dereference(net_device_ctx->vf_netdev))
2355 /* if synthetic interface is a different namespace,
2356 * then move the VF to that namespace; join will be
2357 * done again in that context.
2359 if (!net_eq(dev_net(ndev), dev_net(vf_netdev))) {
2360 ret = dev_change_net_namespace(vf_netdev,
2361 dev_net(ndev), "eth%d");
2363 netdev_err(vf_netdev,
2364 "could not move to same namespace as %s: %d\n",
2367 netdev_info(vf_netdev,
2368 "VF moved to namespace with: %s\n",
2373 netdev_info(ndev, "VF registering: %s\n", vf_netdev->name);
2375 if (netvsc_vf_join(vf_netdev, ndev) != 0)
2378 dev_hold(vf_netdev);
2379 rcu_assign_pointer(net_device_ctx->vf_netdev, vf_netdev);
2381 if (ndev->needed_headroom < vf_netdev->needed_headroom)
2382 ndev->needed_headroom = vf_netdev->needed_headroom;
2384 vf_netdev->wanted_features = ndev->features;
2385 netdev_update_features(vf_netdev);
2387 prog = netvsc_xdp_get(netvsc_dev);
2388 netvsc_vf_setxdp(vf_netdev, prog);
2393 /* Change the data path when VF UP/DOWN/CHANGE are detected.
2395 * Typically a UP or DOWN event is followed by a CHANGE event, so
2396 * net_device_ctx->data_path_is_vf is used to cache the current data path
2397 * to avoid the duplicate call of netvsc_switch_datapath() and the duplicate
2400 * During hibernation, if a VF NIC driver (e.g. mlx5) preserves the network
2401 * interface, there is only the CHANGE event and no UP or DOWN event.
2403 static int netvsc_vf_changed(struct net_device *vf_netdev, unsigned long event)
2405 struct net_device_context *net_device_ctx;
2406 struct netvsc_device *netvsc_dev;
2407 struct net_device *ndev;
2408 bool vf_is_up = false;
2411 if (event != NETDEV_GOING_DOWN)
2412 vf_is_up = netif_running(vf_netdev);
2414 ndev = get_netvsc_byref(vf_netdev);
2418 net_device_ctx = netdev_priv(ndev);
2419 netvsc_dev = rtnl_dereference(net_device_ctx->nvdev);
2423 if (net_device_ctx->data_path_is_vf == vf_is_up)
2426 if (vf_is_up && !net_device_ctx->vf_alloc) {
2427 netdev_info(ndev, "Waiting for the VF association from host\n");
2428 wait_for_completion(&net_device_ctx->vf_add);
2431 ret = netvsc_switch_datapath(ndev, vf_is_up);
2435 "Data path failed to switch %s VF: %s, err: %d\n",
2436 vf_is_up ? "to" : "from", vf_netdev->name, ret);
2439 netdev_info(ndev, "Data path switched %s VF: %s\n",
2440 vf_is_up ? "to" : "from", vf_netdev->name);
2446 static int netvsc_unregister_vf(struct net_device *vf_netdev)
2448 struct net_device *ndev;
2449 struct net_device_context *net_device_ctx;
2451 ndev = get_netvsc_byref(vf_netdev);
2455 net_device_ctx = netdev_priv(ndev);
2456 cancel_delayed_work_sync(&net_device_ctx->vf_takeover);
2458 netdev_info(ndev, "VF unregistering: %s\n", vf_netdev->name);
2460 netvsc_vf_setxdp(vf_netdev, NULL);
2462 reinit_completion(&net_device_ctx->vf_add);
2463 netdev_rx_handler_unregister(vf_netdev);
2464 netdev_upper_dev_unlink(vf_netdev, ndev);
2465 RCU_INIT_POINTER(net_device_ctx->vf_netdev, NULL);
2468 ndev->needed_headroom = RNDIS_AND_PPI_SIZE;
2473 static int netvsc_probe(struct hv_device *dev,
2474 const struct hv_vmbus_device_id *dev_id)
2476 struct net_device *net = NULL;
2477 struct net_device_context *net_device_ctx;
2478 struct netvsc_device_info *device_info = NULL;
2479 struct netvsc_device *nvdev;
2482 net = alloc_etherdev_mq(sizeof(struct net_device_context),
2487 netif_carrier_off(net);
2489 netvsc_init_settings(net);
2491 net_device_ctx = netdev_priv(net);
2492 net_device_ctx->device_ctx = dev;
2493 net_device_ctx->msg_enable = netif_msg_init(debug, default_msg);
2494 if (netif_msg_probe(net_device_ctx))
2495 netdev_dbg(net, "netvsc msg_enable: %d\n",
2496 net_device_ctx->msg_enable);
2498 hv_set_drvdata(dev, net);
2500 INIT_DELAYED_WORK(&net_device_ctx->dwork, netvsc_link_change);
2502 init_completion(&net_device_ctx->vf_add);
2503 spin_lock_init(&net_device_ctx->lock);
2504 INIT_LIST_HEAD(&net_device_ctx->reconfig_events);
2505 INIT_DELAYED_WORK(&net_device_ctx->vf_takeover, netvsc_vf_setup);
2507 net_device_ctx->vf_stats
2508 = netdev_alloc_pcpu_stats(struct netvsc_vf_pcpu_stats);
2509 if (!net_device_ctx->vf_stats)
2512 net->netdev_ops = &device_ops;
2513 net->ethtool_ops = ðtool_ops;
2514 SET_NETDEV_DEV(net, &dev->device);
2515 dma_set_min_align_mask(&dev->device, HV_HYP_PAGE_SIZE - 1);
2517 /* We always need headroom for rndis header */
2518 net->needed_headroom = RNDIS_AND_PPI_SIZE;
2520 /* Initialize the number of queues to be 1, we may change it if more
2521 * channels are offered later.
2523 netif_set_real_num_tx_queues(net, 1);
2524 netif_set_real_num_rx_queues(net, 1);
2526 /* Notify the netvsc driver of the new device */
2527 device_info = netvsc_devinfo_get(NULL);
2531 goto devinfo_failed;
2534 nvdev = rndis_filter_device_add(dev, device_info);
2535 if (IS_ERR(nvdev)) {
2536 ret = PTR_ERR(nvdev);
2537 netdev_err(net, "unable to add netvsc device (ret %d)\n", ret);
2541 eth_hw_addr_set(net, device_info->mac_adr);
2543 /* We must get rtnl lock before scheduling nvdev->subchan_work,
2544 * otherwise netvsc_subchan_work() can get rtnl lock first and wait
2545 * all subchannels to show up, but that may not happen because
2546 * netvsc_probe() can't get rtnl lock and as a result vmbus_onoffer()
2547 * -> ... -> device_add() -> ... -> __device_attach() can't get
2548 * the device lock, so all the subchannels can't be processed --
2549 * finally netvsc_subchan_work() hangs forever.
2553 if (nvdev->num_chn > 1)
2554 schedule_work(&nvdev->subchan_work);
2556 /* hw_features computed in rndis_netdev_set_hwcaps() */
2557 net->features = net->hw_features |
2558 NETIF_F_HIGHDMA | NETIF_F_HW_VLAN_CTAG_TX |
2559 NETIF_F_HW_VLAN_CTAG_RX;
2560 net->vlan_features = net->features;
2562 netdev_lockdep_set_classes(net);
2564 net->xdp_features = NETDEV_XDP_ACT_BASIC | NETDEV_XDP_ACT_REDIRECT |
2565 NETDEV_XDP_ACT_NDO_XMIT;
2567 /* MTU range: 68 - 1500 or 65521 */
2568 net->min_mtu = NETVSC_MTU_MIN;
2569 if (nvdev->nvsp_version >= NVSP_PROTOCOL_VERSION_2)
2570 net->max_mtu = NETVSC_MTU - ETH_HLEN;
2572 net->max_mtu = ETH_DATA_LEN;
2574 nvdev->tx_disable = false;
2576 ret = register_netdevice(net);
2578 pr_err("Unable to register netdev.\n");
2579 goto register_failed;
2582 list_add(&net_device_ctx->list, &netvsc_dev_list);
2585 netvsc_devinfo_put(device_info);
2590 rndis_filter_device_remove(dev, nvdev);
2592 netvsc_devinfo_put(device_info);
2594 free_percpu(net_device_ctx->vf_stats);
2596 hv_set_drvdata(dev, NULL);
2602 static void netvsc_remove(struct hv_device *dev)
2604 struct net_device_context *ndev_ctx;
2605 struct net_device *vf_netdev, *net;
2606 struct netvsc_device *nvdev;
2608 net = hv_get_drvdata(dev);
2610 dev_err(&dev->device, "No net device to remove\n");
2614 ndev_ctx = netdev_priv(net);
2616 cancel_delayed_work_sync(&ndev_ctx->dwork);
2619 nvdev = rtnl_dereference(ndev_ctx->nvdev);
2621 cancel_work_sync(&nvdev->subchan_work);
2622 netvsc_xdp_set(net, NULL, NULL, nvdev);
2626 * Call to the vsc driver to let it know that the device is being
2627 * removed. Also blocks mtu and channel changes.
2629 vf_netdev = rtnl_dereference(ndev_ctx->vf_netdev);
2631 netvsc_unregister_vf(vf_netdev);
2634 rndis_filter_device_remove(dev, nvdev);
2636 unregister_netdevice(net);
2637 list_del(&ndev_ctx->list);
2641 hv_set_drvdata(dev, NULL);
2643 free_percpu(ndev_ctx->vf_stats);
2647 static int netvsc_suspend(struct hv_device *dev)
2649 struct net_device_context *ndev_ctx;
2650 struct netvsc_device *nvdev;
2651 struct net_device *net;
2654 net = hv_get_drvdata(dev);
2656 ndev_ctx = netdev_priv(net);
2657 cancel_delayed_work_sync(&ndev_ctx->dwork);
2661 nvdev = rtnl_dereference(ndev_ctx->nvdev);
2662 if (nvdev == NULL) {
2667 /* Save the current config info */
2668 ndev_ctx->saved_netvsc_dev_info = netvsc_devinfo_get(nvdev);
2669 if (!ndev_ctx->saved_netvsc_dev_info) {
2673 ret = netvsc_detach(net, nvdev);
2680 static int netvsc_resume(struct hv_device *dev)
2682 struct net_device *net = hv_get_drvdata(dev);
2683 struct net_device_context *net_device_ctx;
2684 struct netvsc_device_info *device_info;
2689 net_device_ctx = netdev_priv(net);
2691 /* Reset the data path to the netvsc NIC before re-opening the vmbus
2692 * channel. Later netvsc_netdev_event() will switch the data path to
2693 * the VF upon the UP or CHANGE event.
2695 net_device_ctx->data_path_is_vf = false;
2696 device_info = net_device_ctx->saved_netvsc_dev_info;
2698 ret = netvsc_attach(net, device_info);
2700 netvsc_devinfo_put(device_info);
2701 net_device_ctx->saved_netvsc_dev_info = NULL;
2707 static const struct hv_vmbus_device_id id_table[] = {
2713 MODULE_DEVICE_TABLE(vmbus, id_table);
2715 /* The one and only one */
2716 static struct hv_driver netvsc_drv = {
2717 .name = KBUILD_MODNAME,
2718 .id_table = id_table,
2719 .probe = netvsc_probe,
2720 .remove = netvsc_remove,
2721 .suspend = netvsc_suspend,
2722 .resume = netvsc_resume,
2724 .probe_type = PROBE_FORCE_SYNCHRONOUS,
2729 * On Hyper-V, every VF interface is matched with a corresponding
2730 * synthetic interface. The synthetic interface is presented first
2731 * to the guest. When the corresponding VF instance is registered,
2732 * we will take care of switching the data path.
2734 static int netvsc_netdev_event(struct notifier_block *this,
2735 unsigned long event, void *ptr)
2737 struct net_device *event_dev = netdev_notifier_info_to_dev(ptr);
2739 /* Skip our own events */
2740 if (event_dev->netdev_ops == &device_ops)
2743 /* Avoid non-Ethernet type devices */
2744 if (event_dev->type != ARPHRD_ETHER)
2747 /* Avoid Vlan dev with same MAC registering as VF */
2748 if (is_vlan_dev(event_dev))
2751 /* Avoid Bonding master dev with same MAC registering as VF */
2752 if (netif_is_bond_master(event_dev))
2756 case NETDEV_REGISTER:
2757 return netvsc_register_vf(event_dev);
2758 case NETDEV_UNREGISTER:
2759 return netvsc_unregister_vf(event_dev);
2763 case NETDEV_GOING_DOWN:
2764 return netvsc_vf_changed(event_dev, event);
2770 static struct notifier_block netvsc_netdev_notifier = {
2771 .notifier_call = netvsc_netdev_event,
2774 static void __exit netvsc_drv_exit(void)
2776 unregister_netdevice_notifier(&netvsc_netdev_notifier);
2777 vmbus_driver_unregister(&netvsc_drv);
2780 static int __init netvsc_drv_init(void)
2784 if (ring_size < RING_SIZE_MIN) {
2785 ring_size = RING_SIZE_MIN;
2786 pr_info("Increased ring_size to %u (min allowed)\n",
2789 netvsc_ring_bytes = ring_size * PAGE_SIZE;
2791 ret = vmbus_driver_register(&netvsc_drv);
2795 register_netdevice_notifier(&netvsc_netdev_notifier);
2799 MODULE_LICENSE("GPL");
2800 MODULE_DESCRIPTION("Microsoft Hyper-V network driver");
2802 module_init(netvsc_drv_init);
2803 module_exit(netvsc_drv_exit);