mirror of
https://github.com/AuxXxilium/linux_dsm_epyc7002.git
synced 2024-12-18 11:47:28 +07:00
cxgb4: add basic tc flower offload support
Add support to add/remove flows for offload. Following match and action are supported for offloading a flow: Match: ether-protocol, IPv4/IPv6 addresses, L4 ports (TCP/UDP) Action: drop, redirect to another port on the device. The qualifying flows can have accompanying mask information. Signed-off-by: Kumar Sanghvi <kumaras@chelsio.com> Signed-off-by: Rahul Lakkireddy <rahul.lakkireddy@chelsio.com> Signed-off-by: Ganesh Goudar <ganeshgr@chelsio.com> Signed-off-by: David S. Miller <davem@davemloft.net>
This commit is contained in:
parent
6a345b3dbd
commit
62488e4b53
@ -905,6 +905,9 @@ struct adapter {
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/* TC u32 offload */
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struct cxgb4_tc_u32_table *tc_u32;
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struct chcr_stats_debug chcr_stats;
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/* TC flower offload */
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DECLARE_HASHTABLE(flower_anymatch_tbl, 9);
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};
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/* Support for "sched-class" command to allow a TX Scheduling Class to be
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@ -148,6 +148,30 @@ static int get_filter_steerq(struct net_device *dev,
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return iq;
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}
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int cxgb4_get_free_ftid(struct net_device *dev, int family)
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{
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struct adapter *adap = netdev2adap(dev);
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struct tid_info *t = &adap->tids;
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int ftid;
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spin_lock_bh(&t->ftid_lock);
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if (family == PF_INET) {
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ftid = find_first_zero_bit(t->ftid_bmap, t->nftids);
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if (ftid >= t->nftids)
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ftid = -1;
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} else {
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ftid = bitmap_find_free_region(t->ftid_bmap, t->nftids, 2);
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if (ftid < 0)
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goto out_unlock;
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/* this is only a lookup, keep the found region unallocated */
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bitmap_release_region(t->ftid_bmap, ftid, 2);
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}
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out_unlock:
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spin_unlock_bh(&t->ftid_lock);
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return ftid;
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}
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static int cxgb4_set_ftid(struct tid_info *t, int fidx, int family)
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{
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spin_lock_bh(&t->ftid_lock);
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@ -5105,6 +5105,8 @@ static int init_one(struct pci_dev *pdev, const struct pci_device_id *ent)
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if (!adapter->tc_u32)
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dev_warn(&pdev->dev,
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"could not offload tc u32, continuing\n");
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cxgb4_init_tc_flower(adapter);
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}
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if (is_offload(adapter)) {
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@ -38,16 +38,287 @@
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#include "cxgb4.h"
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#include "cxgb4_tc_flower.h"
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static struct ch_tc_flower_entry *allocate_flower_entry(void)
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{
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struct ch_tc_flower_entry *new = kzalloc(sizeof(*new), GFP_KERNEL);
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return new;
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}
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/* Must be called with either RTNL or rcu_read_lock */
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static struct ch_tc_flower_entry *ch_flower_lookup(struct adapter *adap,
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unsigned long flower_cookie)
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{
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struct ch_tc_flower_entry *flower_entry;
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hash_for_each_possible_rcu(adap->flower_anymatch_tbl, flower_entry,
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link, flower_cookie)
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if (flower_entry->tc_flower_cookie == flower_cookie)
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return flower_entry;
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return NULL;
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}
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static void cxgb4_process_flow_match(struct net_device *dev,
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struct tc_cls_flower_offload *cls,
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struct ch_filter_specification *fs)
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{
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u16 addr_type = 0;
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if (dissector_uses_key(cls->dissector, FLOW_DISSECTOR_KEY_CONTROL)) {
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struct flow_dissector_key_control *key =
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skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_CONTROL,
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cls->key);
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addr_type = key->addr_type;
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}
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if (dissector_uses_key(cls->dissector, FLOW_DISSECTOR_KEY_BASIC)) {
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struct flow_dissector_key_basic *key =
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skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_BASIC,
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cls->key);
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struct flow_dissector_key_basic *mask =
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skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_BASIC,
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cls->mask);
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u16 ethtype_key = ntohs(key->n_proto);
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u16 ethtype_mask = ntohs(mask->n_proto);
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if (ethtype_key == ETH_P_ALL) {
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ethtype_key = 0;
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ethtype_mask = 0;
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}
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fs->val.ethtype = ethtype_key;
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fs->mask.ethtype = ethtype_mask;
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fs->val.proto = key->ip_proto;
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fs->mask.proto = mask->ip_proto;
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}
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if (addr_type == FLOW_DISSECTOR_KEY_IPV4_ADDRS) {
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struct flow_dissector_key_ipv4_addrs *key =
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skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_IPV4_ADDRS,
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cls->key);
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struct flow_dissector_key_ipv4_addrs *mask =
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skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_IPV4_ADDRS,
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cls->mask);
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fs->type = 0;
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memcpy(&fs->val.lip[0], &key->dst, sizeof(key->dst));
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memcpy(&fs->val.fip[0], &key->src, sizeof(key->src));
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memcpy(&fs->mask.lip[0], &mask->dst, sizeof(mask->dst));
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memcpy(&fs->mask.fip[0], &mask->src, sizeof(mask->src));
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}
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if (addr_type == FLOW_DISSECTOR_KEY_IPV6_ADDRS) {
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struct flow_dissector_key_ipv6_addrs *key =
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skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_IPV6_ADDRS,
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cls->key);
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struct flow_dissector_key_ipv6_addrs *mask =
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skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_IPV6_ADDRS,
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cls->mask);
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fs->type = 1;
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memcpy(&fs->val.lip[0], key->dst.s6_addr, sizeof(key->dst));
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memcpy(&fs->val.fip[0], key->src.s6_addr, sizeof(key->src));
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memcpy(&fs->mask.lip[0], mask->dst.s6_addr, sizeof(mask->dst));
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memcpy(&fs->mask.fip[0], mask->src.s6_addr, sizeof(mask->src));
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}
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if (dissector_uses_key(cls->dissector, FLOW_DISSECTOR_KEY_PORTS)) {
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struct flow_dissector_key_ports *key, *mask;
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key = skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_PORTS,
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cls->key);
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mask = skb_flow_dissector_target(cls->dissector,
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FLOW_DISSECTOR_KEY_PORTS,
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cls->mask);
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fs->val.lport = cpu_to_be16(key->dst);
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fs->mask.lport = cpu_to_be16(mask->dst);
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fs->val.fport = cpu_to_be16(key->src);
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fs->mask.fport = cpu_to_be16(mask->src);
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}
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/* Match only packets coming from the ingress port where this
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* filter will be created.
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*/
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fs->val.iport = netdev2pinfo(dev)->port_id;
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fs->mask.iport = ~0;
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}
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static int cxgb4_validate_flow_match(struct net_device *dev,
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struct tc_cls_flower_offload *cls)
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{
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if (cls->dissector->used_keys &
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~(BIT(FLOW_DISSECTOR_KEY_CONTROL) |
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BIT(FLOW_DISSECTOR_KEY_BASIC) |
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BIT(FLOW_DISSECTOR_KEY_IPV4_ADDRS) |
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BIT(FLOW_DISSECTOR_KEY_IPV6_ADDRS) |
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BIT(FLOW_DISSECTOR_KEY_PORTS))) {
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netdev_warn(dev, "Unsupported key used: 0x%x\n",
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cls->dissector->used_keys);
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return -EOPNOTSUPP;
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}
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return 0;
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}
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static void cxgb4_process_flow_actions(struct net_device *in,
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struct tc_cls_flower_offload *cls,
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struct ch_filter_specification *fs)
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{
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const struct tc_action *a;
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LIST_HEAD(actions);
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tcf_exts_to_list(cls->exts, &actions);
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list_for_each_entry(a, &actions, list) {
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if (is_tcf_gact_shot(a)) {
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fs->action = FILTER_DROP;
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} else if (is_tcf_mirred_egress_redirect(a)) {
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int ifindex = tcf_mirred_ifindex(a);
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struct net_device *out = __dev_get_by_index(dev_net(in),
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ifindex);
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struct port_info *pi = netdev_priv(out);
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fs->action = FILTER_SWITCH;
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fs->eport = pi->port_id;
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}
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}
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}
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static int cxgb4_validate_flow_actions(struct net_device *dev,
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struct tc_cls_flower_offload *cls)
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{
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const struct tc_action *a;
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LIST_HEAD(actions);
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tcf_exts_to_list(cls->exts, &actions);
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list_for_each_entry(a, &actions, list) {
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if (is_tcf_gact_shot(a)) {
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/* Do nothing */
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} else if (is_tcf_mirred_egress_redirect(a)) {
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struct adapter *adap = netdev2adap(dev);
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struct net_device *n_dev;
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unsigned int i, ifindex;
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bool found = false;
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ifindex = tcf_mirred_ifindex(a);
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for_each_port(adap, i) {
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n_dev = adap->port[i];
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if (ifindex == n_dev->ifindex) {
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found = true;
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break;
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}
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}
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/* If interface doesn't belong to our hw, then
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* the provided output port is not valid
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*/
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if (!found) {
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netdev_err(dev, "%s: Out port invalid\n",
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__func__);
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return -EINVAL;
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}
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} else {
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netdev_err(dev, "%s: Unsupported action\n", __func__);
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return -EOPNOTSUPP;
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}
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}
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return 0;
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}
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int cxgb4_tc_flower_replace(struct net_device *dev,
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struct tc_cls_flower_offload *cls)
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{
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return -EOPNOTSUPP;
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struct adapter *adap = netdev2adap(dev);
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struct ch_tc_flower_entry *ch_flower;
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struct ch_filter_specification *fs;
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struct filter_ctx ctx;
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int fidx;
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int ret;
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if (cxgb4_validate_flow_actions(dev, cls))
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return -EOPNOTSUPP;
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if (cxgb4_validate_flow_match(dev, cls))
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return -EOPNOTSUPP;
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ch_flower = allocate_flower_entry();
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if (!ch_flower) {
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netdev_err(dev, "%s: ch_flower alloc failed.\n", __func__);
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return -ENOMEM;
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}
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fs = &ch_flower->fs;
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fs->hitcnts = 1;
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cxgb4_process_flow_actions(dev, cls, fs);
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cxgb4_process_flow_match(dev, cls, fs);
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fidx = cxgb4_get_free_ftid(dev, fs->type ? PF_INET6 : PF_INET);
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if (fidx < 0) {
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netdev_err(dev, "%s: No fidx for offload.\n", __func__);
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ret = -ENOMEM;
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goto free_entry;
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}
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init_completion(&ctx.completion);
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ret = __cxgb4_set_filter(dev, fidx, fs, &ctx);
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if (ret) {
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netdev_err(dev, "%s: filter creation err %d\n",
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__func__, ret);
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goto free_entry;
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}
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/* Wait for reply */
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ret = wait_for_completion_timeout(&ctx.completion, 10 * HZ);
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if (!ret) {
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ret = -ETIMEDOUT;
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goto free_entry;
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}
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ret = ctx.result;
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/* Check if hw returned error for filter creation */
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if (ret) {
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netdev_err(dev, "%s: filter creation err %d\n",
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__func__, ret);
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goto free_entry;
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}
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INIT_HLIST_NODE(&ch_flower->link);
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ch_flower->tc_flower_cookie = cls->cookie;
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ch_flower->filter_id = ctx.tid;
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hash_add_rcu(adap->flower_anymatch_tbl, &ch_flower->link, cls->cookie);
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return ret;
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free_entry:
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kfree(ch_flower);
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return ret;
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}
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int cxgb4_tc_flower_destroy(struct net_device *dev,
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struct tc_cls_flower_offload *cls)
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{
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return -EOPNOTSUPP;
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struct adapter *adap = netdev2adap(dev);
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struct ch_tc_flower_entry *ch_flower;
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int ret;
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ch_flower = ch_flower_lookup(adap, cls->cookie);
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if (!ch_flower)
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return -ENOENT;
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ret = cxgb4_del_filter(dev, ch_flower->filter_id);
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if (ret)
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goto err;
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hash_del_rcu(&ch_flower->link);
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kfree_rcu(ch_flower, rcu);
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err:
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return ret;
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}
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int cxgb4_tc_flower_stats(struct net_device *dev,
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@ -55,3 +326,8 @@ int cxgb4_tc_flower_stats(struct net_device *dev,
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{
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return -EOPNOTSUPP;
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}
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void cxgb4_init_tc_flower(struct adapter *adap)
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{
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hash_init(adap->flower_anymatch_tbl);
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}
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@ -37,10 +37,27 @@
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#include <net/pkt_cls.h>
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struct ch_tc_flower_stats {
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u64 packet_count;
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u64 byte_count;
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u64 last_used;
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};
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struct ch_tc_flower_entry {
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struct ch_filter_specification fs;
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struct ch_tc_flower_stats stats;
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unsigned long tc_flower_cookie;
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struct hlist_node link;
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struct rcu_head rcu;
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u32 filter_id;
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};
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int cxgb4_tc_flower_replace(struct net_device *dev,
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struct tc_cls_flower_offload *cls);
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int cxgb4_tc_flower_destroy(struct net_device *dev,
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struct tc_cls_flower_offload *cls);
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int cxgb4_tc_flower_stats(struct net_device *dev,
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struct tc_cls_flower_offload *cls);
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void cxgb4_init_tc_flower(struct adapter *adap);
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#endif /* __CXGB4_TC_FLOWER_H */
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@ -212,6 +212,7 @@ struct filter_ctx {
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struct ch_filter_specification;
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int cxgb4_get_free_ftid(struct net_device *dev, int family);
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int __cxgb4_set_filter(struct net_device *dev, int filter_id,
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struct ch_filter_specification *fs,
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struct filter_ctx *ctx);
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