linux/net/openvswitch/conntrack.c
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   1/*
   2 * Copyright (c) 2015 Nicira, Inc.
   3 *
   4 * This program is free software; you can redistribute it and/or
   5 * modify it under the terms of version 2 of the GNU General Public
   6 * License as published by the Free Software Foundation.
   7 *
   8 * This program is distributed in the hope that it will be useful, but
   9 * WITHOUT ANY WARRANTY; without even the implied warranty of
  10 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
  11 * General Public License for more details.
  12 */
  13
  14#include <linux/module.h>
  15#include <linux/openvswitch.h>
  16#include <linux/tcp.h>
  17#include <linux/udp.h>
  18#include <linux/sctp.h>
  19#include <linux/static_key.h>
  20#include <net/ip.h>
  21#include <net/genetlink.h>
  22#include <net/netfilter/nf_conntrack_core.h>
  23#include <net/netfilter/nf_conntrack_count.h>
  24#include <net/netfilter/nf_conntrack_helper.h>
  25#include <net/netfilter/nf_conntrack_labels.h>
  26#include <net/netfilter/nf_conntrack_seqadj.h>
  27#include <net/netfilter/nf_conntrack_zones.h>
  28#include <net/netfilter/ipv6/nf_defrag_ipv6.h>
  29#include <net/ipv6_frag.h>
  30
  31#ifdef CONFIG_NF_NAT_NEEDED
  32#include <linux/netfilter/nf_nat.h>
  33#include <net/netfilter/nf_nat_core.h>
  34#include <net/netfilter/nf_nat_l3proto.h>
  35#endif
  36
  37#include "datapath.h"
  38#include "conntrack.h"
  39#include "flow.h"
  40#include "flow_netlink.h"
  41
  42struct ovs_ct_len_tbl {
  43        int maxlen;
  44        int minlen;
  45};
  46
  47/* Metadata mark for masked write to conntrack mark */
  48struct md_mark {
  49        u32 value;
  50        u32 mask;
  51};
  52
  53/* Metadata label for masked write to conntrack label. */
  54struct md_labels {
  55        struct ovs_key_ct_labels value;
  56        struct ovs_key_ct_labels mask;
  57};
  58
  59enum ovs_ct_nat {
  60        OVS_CT_NAT = 1 << 0,     /* NAT for committed connections only. */
  61        OVS_CT_SRC_NAT = 1 << 1, /* Source NAT for NEW connections. */
  62        OVS_CT_DST_NAT = 1 << 2, /* Destination NAT for NEW connections. */
  63};
  64
  65/* Conntrack action context for execution. */
  66struct ovs_conntrack_info {
  67        struct nf_conntrack_helper *helper;
  68        struct nf_conntrack_zone zone;
  69        struct nf_conn *ct;
  70        u8 commit : 1;
  71        u8 nat : 3;                 /* enum ovs_ct_nat */
  72        u8 force : 1;
  73        u8 have_eventmask : 1;
  74        u16 family;
  75        u32 eventmask;              /* Mask of 1 << IPCT_*. */
  76        struct md_mark mark;
  77        struct md_labels labels;
  78#ifdef CONFIG_NF_NAT_NEEDED
  79        struct nf_nat_range2 range;  /* Only present for SRC NAT and DST NAT. */
  80#endif
  81};
  82
  83#if     IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
  84#define OVS_CT_LIMIT_UNLIMITED  0
  85#define OVS_CT_LIMIT_DEFAULT OVS_CT_LIMIT_UNLIMITED
  86#define CT_LIMIT_HASH_BUCKETS 512
  87static DEFINE_STATIC_KEY_FALSE(ovs_ct_limit_enabled);
  88
  89struct ovs_ct_limit {
  90        /* Elements in ovs_ct_limit_info->limits hash table */
  91        struct hlist_node hlist_node;
  92        struct rcu_head rcu;
  93        u16 zone;
  94        u32 limit;
  95};
  96
  97struct ovs_ct_limit_info {
  98        u32 default_limit;
  99        struct hlist_head *limits;
 100        struct nf_conncount_data *data;
 101};
 102
 103static const struct nla_policy ct_limit_policy[OVS_CT_LIMIT_ATTR_MAX + 1] = {
 104        [OVS_CT_LIMIT_ATTR_ZONE_LIMIT] = { .type = NLA_NESTED, },
 105};
 106#endif
 107
 108static bool labels_nonzero(const struct ovs_key_ct_labels *labels);
 109
 110static void __ovs_ct_free_action(struct ovs_conntrack_info *ct_info);
 111
 112static u16 key_to_nfproto(const struct sw_flow_key *key)
 113{
 114        switch (ntohs(key->eth.type)) {
 115        case ETH_P_IP:
 116                return NFPROTO_IPV4;
 117        case ETH_P_IPV6:
 118                return NFPROTO_IPV6;
 119        default:
 120                return NFPROTO_UNSPEC;
 121        }
 122}
 123
 124/* Map SKB connection state into the values used by flow definition. */
 125static u8 ovs_ct_get_state(enum ip_conntrack_info ctinfo)
 126{
 127        u8 ct_state = OVS_CS_F_TRACKED;
 128
 129        switch (ctinfo) {
 130        case IP_CT_ESTABLISHED_REPLY:
 131        case IP_CT_RELATED_REPLY:
 132                ct_state |= OVS_CS_F_REPLY_DIR;
 133                break;
 134        default:
 135                break;
 136        }
 137
 138        switch (ctinfo) {
 139        case IP_CT_ESTABLISHED:
 140        case IP_CT_ESTABLISHED_REPLY:
 141                ct_state |= OVS_CS_F_ESTABLISHED;
 142                break;
 143        case IP_CT_RELATED:
 144        case IP_CT_RELATED_REPLY:
 145                ct_state |= OVS_CS_F_RELATED;
 146                break;
 147        case IP_CT_NEW:
 148                ct_state |= OVS_CS_F_NEW;
 149                break;
 150        default:
 151                break;
 152        }
 153
 154        return ct_state;
 155}
 156
 157static u32 ovs_ct_get_mark(const struct nf_conn *ct)
 158{
 159#if IS_ENABLED(CONFIG_NF_CONNTRACK_MARK)
 160        return ct ? ct->mark : 0;
 161#else
 162        return 0;
 163#endif
 164}
 165
 166/* Guard against conntrack labels max size shrinking below 128 bits. */
 167#if NF_CT_LABELS_MAX_SIZE < 16
 168#error NF_CT_LABELS_MAX_SIZE must be at least 16 bytes
 169#endif
 170
 171static void ovs_ct_get_labels(const struct nf_conn *ct,
 172                              struct ovs_key_ct_labels *labels)
 173{
 174        struct nf_conn_labels *cl = ct ? nf_ct_labels_find(ct) : NULL;
 175
 176        if (cl)
 177                memcpy(labels, cl->bits, OVS_CT_LABELS_LEN);
 178        else
 179                memset(labels, 0, OVS_CT_LABELS_LEN);
 180}
 181
 182static void __ovs_ct_update_key_orig_tp(struct sw_flow_key *key,
 183                                        const struct nf_conntrack_tuple *orig,
 184                                        u8 icmp_proto)
 185{
 186        key->ct_orig_proto = orig->dst.protonum;
 187        if (orig->dst.protonum == icmp_proto) {
 188                key->ct.orig_tp.src = htons(orig->dst.u.icmp.type);
 189                key->ct.orig_tp.dst = htons(orig->dst.u.icmp.code);
 190        } else {
 191                key->ct.orig_tp.src = orig->src.u.all;
 192                key->ct.orig_tp.dst = orig->dst.u.all;
 193        }
 194}
 195
 196static void __ovs_ct_update_key(struct sw_flow_key *key, u8 state,
 197                                const struct nf_conntrack_zone *zone,
 198                                const struct nf_conn *ct)
 199{
 200        key->ct_state = state;
 201        key->ct_zone = zone->id;
 202        key->ct.mark = ovs_ct_get_mark(ct);
 203        ovs_ct_get_labels(ct, &key->ct.labels);
 204
 205        if (ct) {
 206                const struct nf_conntrack_tuple *orig;
 207
 208                /* Use the master if we have one. */
 209                if (ct->master)
 210                        ct = ct->master;
 211                orig = &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple;
 212
 213                /* IP version must match with the master connection. */
 214                if (key->eth.type == htons(ETH_P_IP) &&
 215                    nf_ct_l3num(ct) == NFPROTO_IPV4) {
 216                        key->ipv4.ct_orig.src = orig->src.u3.ip;
 217                        key->ipv4.ct_orig.dst = orig->dst.u3.ip;
 218                        __ovs_ct_update_key_orig_tp(key, orig, IPPROTO_ICMP);
 219                        return;
 220                } else if (key->eth.type == htons(ETH_P_IPV6) &&
 221                           !sw_flow_key_is_nd(key) &&
 222                           nf_ct_l3num(ct) == NFPROTO_IPV6) {
 223                        key->ipv6.ct_orig.src = orig->src.u3.in6;
 224                        key->ipv6.ct_orig.dst = orig->dst.u3.in6;
 225                        __ovs_ct_update_key_orig_tp(key, orig, NEXTHDR_ICMP);
 226                        return;
 227                }
 228        }
 229        /* Clear 'ct_orig_proto' to mark the non-existence of conntrack
 230         * original direction key fields.
 231         */
 232        key->ct_orig_proto = 0;
 233}
 234
 235/* Update 'key' based on skb->_nfct.  If 'post_ct' is true, then OVS has
 236 * previously sent the packet to conntrack via the ct action.  If
 237 * 'keep_nat_flags' is true, the existing NAT flags retained, else they are
 238 * initialized from the connection status.
 239 */
 240static void ovs_ct_update_key(const struct sk_buff *skb,
 241                              const struct ovs_conntrack_info *info,
 242                              struct sw_flow_key *key, bool post_ct,
 243                              bool keep_nat_flags)
 244{
 245        const struct nf_conntrack_zone *zone = &nf_ct_zone_dflt;
 246        enum ip_conntrack_info ctinfo;
 247        struct nf_conn *ct;
 248        u8 state = 0;
 249
 250        ct = nf_ct_get(skb, &ctinfo);
 251        if (ct) {
 252                state = ovs_ct_get_state(ctinfo);
 253                /* All unconfirmed entries are NEW connections. */
 254                if (!nf_ct_is_confirmed(ct))
 255                        state |= OVS_CS_F_NEW;
 256                /* OVS persists the related flag for the duration of the
 257                 * connection.
 258                 */
 259                if (ct->master)
 260                        state |= OVS_CS_F_RELATED;
 261                if (keep_nat_flags) {
 262                        state |= key->ct_state & OVS_CS_F_NAT_MASK;
 263                } else {
 264                        if (ct->status & IPS_SRC_NAT)
 265                                state |= OVS_CS_F_SRC_NAT;
 266                        if (ct->status & IPS_DST_NAT)
 267                                state |= OVS_CS_F_DST_NAT;
 268                }
 269                zone = nf_ct_zone(ct);
 270        } else if (post_ct) {
 271                state = OVS_CS_F_TRACKED | OVS_CS_F_INVALID;
 272                if (info)
 273                        zone = &info->zone;
 274        }
 275        __ovs_ct_update_key(key, state, zone, ct);
 276}
 277
 278/* This is called to initialize CT key fields possibly coming in from the local
 279 * stack.
 280 */
 281void ovs_ct_fill_key(const struct sk_buff *skb, struct sw_flow_key *key)
 282{
 283        ovs_ct_update_key(skb, NULL, key, false, false);
 284}
 285
 286#define IN6_ADDR_INITIALIZER(ADDR) \
 287        { (ADDR).s6_addr32[0], (ADDR).s6_addr32[1], \
 288          (ADDR).s6_addr32[2], (ADDR).s6_addr32[3] }
 289
 290int ovs_ct_put_key(const struct sw_flow_key *swkey,
 291                   const struct sw_flow_key *output, struct sk_buff *skb)
 292{
 293        if (nla_put_u32(skb, OVS_KEY_ATTR_CT_STATE, output->ct_state))
 294                return -EMSGSIZE;
 295
 296        if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) &&
 297            nla_put_u16(skb, OVS_KEY_ATTR_CT_ZONE, output->ct_zone))
 298                return -EMSGSIZE;
 299
 300        if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) &&
 301            nla_put_u32(skb, OVS_KEY_ATTR_CT_MARK, output->ct.mark))
 302                return -EMSGSIZE;
 303
 304        if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) &&
 305            nla_put(skb, OVS_KEY_ATTR_CT_LABELS, sizeof(output->ct.labels),
 306                    &output->ct.labels))
 307                return -EMSGSIZE;
 308
 309        if (swkey->ct_orig_proto) {
 310                if (swkey->eth.type == htons(ETH_P_IP)) {
 311                        struct ovs_key_ct_tuple_ipv4 orig = {
 312                                output->ipv4.ct_orig.src,
 313                                output->ipv4.ct_orig.dst,
 314                                output->ct.orig_tp.src,
 315                                output->ct.orig_tp.dst,
 316                                output->ct_orig_proto,
 317                        };
 318                        if (nla_put(skb, OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV4,
 319                                    sizeof(orig), &orig))
 320                                return -EMSGSIZE;
 321                } else if (swkey->eth.type == htons(ETH_P_IPV6)) {
 322                        struct ovs_key_ct_tuple_ipv6 orig = {
 323                                IN6_ADDR_INITIALIZER(output->ipv6.ct_orig.src),
 324                                IN6_ADDR_INITIALIZER(output->ipv6.ct_orig.dst),
 325                                output->ct.orig_tp.src,
 326                                output->ct.orig_tp.dst,
 327                                output->ct_orig_proto,
 328                        };
 329                        if (nla_put(skb, OVS_KEY_ATTR_CT_ORIG_TUPLE_IPV6,
 330                                    sizeof(orig), &orig))
 331                                return -EMSGSIZE;
 332                }
 333        }
 334
 335        return 0;
 336}
 337
 338static int ovs_ct_set_mark(struct nf_conn *ct, struct sw_flow_key *key,
 339                           u32 ct_mark, u32 mask)
 340{
 341#if IS_ENABLED(CONFIG_NF_CONNTRACK_MARK)
 342        u32 new_mark;
 343
 344        new_mark = ct_mark | (ct->mark & ~(mask));
 345        if (ct->mark != new_mark) {
 346                ct->mark = new_mark;
 347                if (nf_ct_is_confirmed(ct))
 348                        nf_conntrack_event_cache(IPCT_MARK, ct);
 349                key->ct.mark = new_mark;
 350        }
 351
 352        return 0;
 353#else
 354        return -ENOTSUPP;
 355#endif
 356}
 357
 358static struct nf_conn_labels *ovs_ct_get_conn_labels(struct nf_conn *ct)
 359{
 360        struct nf_conn_labels *cl;
 361
 362        cl = nf_ct_labels_find(ct);
 363        if (!cl) {
 364                nf_ct_labels_ext_add(ct);
 365                cl = nf_ct_labels_find(ct);
 366        }
 367
 368        return cl;
 369}
 370
 371/* Initialize labels for a new, yet to be committed conntrack entry.  Note that
 372 * since the new connection is not yet confirmed, and thus no-one else has
 373 * access to it's labels, we simply write them over.
 374 */
 375static int ovs_ct_init_labels(struct nf_conn *ct, struct sw_flow_key *key,
 376                              const struct ovs_key_ct_labels *labels,
 377                              const struct ovs_key_ct_labels *mask)
 378{
 379        struct nf_conn_labels *cl, *master_cl;
 380        bool have_mask = labels_nonzero(mask);
 381
 382        /* Inherit master's labels to the related connection? */
 383        master_cl = ct->master ? nf_ct_labels_find(ct->master) : NULL;
 384
 385        if (!master_cl && !have_mask)
 386                return 0;   /* Nothing to do. */
 387
 388        cl = ovs_ct_get_conn_labels(ct);
 389        if (!cl)
 390                return -ENOSPC;
 391
 392        /* Inherit the master's labels, if any. */
 393        if (master_cl)
 394                *cl = *master_cl;
 395
 396        if (have_mask) {
 397                u32 *dst = (u32 *)cl->bits;
 398                int i;
 399
 400                for (i = 0; i < OVS_CT_LABELS_LEN_32; i++)
 401                        dst[i] = (dst[i] & ~mask->ct_labels_32[i]) |
 402                                (labels->ct_labels_32[i]
 403                                 & mask->ct_labels_32[i]);
 404        }
 405
 406        /* Labels are included in the IPCTNL_MSG_CT_NEW event only if the
 407         * IPCT_LABEL bit is set in the event cache.
 408         */
 409        nf_conntrack_event_cache(IPCT_LABEL, ct);
 410
 411        memcpy(&key->ct.labels, cl->bits, OVS_CT_LABELS_LEN);
 412
 413        return 0;
 414}
 415
 416static int ovs_ct_set_labels(struct nf_conn *ct, struct sw_flow_key *key,
 417                             const struct ovs_key_ct_labels *labels,
 418                             const struct ovs_key_ct_labels *mask)
 419{
 420        struct nf_conn_labels *cl;
 421        int err;
 422
 423        cl = ovs_ct_get_conn_labels(ct);
 424        if (!cl)
 425                return -ENOSPC;
 426
 427        err = nf_connlabels_replace(ct, labels->ct_labels_32,
 428                                    mask->ct_labels_32,
 429                                    OVS_CT_LABELS_LEN_32);
 430        if (err)
 431                return err;
 432
 433        memcpy(&key->ct.labels, cl->bits, OVS_CT_LABELS_LEN);
 434
 435        return 0;
 436}
 437
 438/* 'skb' should already be pulled to nh_ofs. */
 439static int ovs_ct_helper(struct sk_buff *skb, u16 proto)
 440{
 441        const struct nf_conntrack_helper *helper;
 442        const struct nf_conn_help *help;
 443        enum ip_conntrack_info ctinfo;
 444        unsigned int protoff;
 445        struct nf_conn *ct;
 446        int err;
 447
 448        ct = nf_ct_get(skb, &ctinfo);
 449        if (!ct || ctinfo == IP_CT_RELATED_REPLY)
 450                return NF_ACCEPT;
 451
 452        help = nfct_help(ct);
 453        if (!help)
 454                return NF_ACCEPT;
 455
 456        helper = rcu_dereference(help->helper);
 457        if (!helper)
 458                return NF_ACCEPT;
 459
 460        switch (proto) {
 461        case NFPROTO_IPV4:
 462                protoff = ip_hdrlen(skb);
 463                break;
 464        case NFPROTO_IPV6: {
 465                u8 nexthdr = ipv6_hdr(skb)->nexthdr;
 466                __be16 frag_off;
 467                int ofs;
 468
 469                ofs = ipv6_skip_exthdr(skb, sizeof(struct ipv6hdr), &nexthdr,
 470                                       &frag_off);
 471                if (ofs < 0 || (frag_off & htons(~0x7)) != 0) {
 472                        pr_debug("proto header not found\n");
 473                        return NF_ACCEPT;
 474                }
 475                protoff = ofs;
 476                break;
 477        }
 478        default:
 479                WARN_ONCE(1, "helper invoked on non-IP family!");
 480                return NF_DROP;
 481        }
 482
 483        err = helper->help(skb, protoff, ct, ctinfo);
 484        if (err != NF_ACCEPT)
 485                return err;
 486
 487        /* Adjust seqs after helper.  This is needed due to some helpers (e.g.,
 488         * FTP with NAT) adusting the TCP payload size when mangling IP
 489         * addresses and/or port numbers in the text-based control connection.
 490         */
 491        if (test_bit(IPS_SEQ_ADJUST_BIT, &ct->status) &&
 492            !nf_ct_seq_adjust(skb, ct, ctinfo, protoff))
 493                return NF_DROP;
 494        return NF_ACCEPT;
 495}
 496
 497/* Returns 0 on success, -EINPROGRESS if 'skb' is stolen, or other nonzero
 498 * value if 'skb' is freed.
 499 */
 500static int handle_fragments(struct net *net, struct sw_flow_key *key,
 501                            u16 zone, struct sk_buff *skb)
 502{
 503        struct ovs_skb_cb ovs_cb = *OVS_CB(skb);
 504        int err;
 505
 506        if (key->eth.type == htons(ETH_P_IP)) {
 507                enum ip_defrag_users user = IP_DEFRAG_CONNTRACK_IN + zone;
 508
 509                memset(IPCB(skb), 0, sizeof(struct inet_skb_parm));
 510                err = ip_defrag(net, skb, user);
 511                if (err)
 512                        return err;
 513
 514                ovs_cb.mru = IPCB(skb)->frag_max_size;
 515#if IS_ENABLED(CONFIG_NF_DEFRAG_IPV6)
 516        } else if (key->eth.type == htons(ETH_P_IPV6)) {
 517                enum ip6_defrag_users user = IP6_DEFRAG_CONNTRACK_IN + zone;
 518
 519                memset(IP6CB(skb), 0, sizeof(struct inet6_skb_parm));
 520                err = nf_ct_frag6_gather(net, skb, user);
 521                if (err) {
 522                        if (err != -EINPROGRESS)
 523                                kfree_skb(skb);
 524                        return err;
 525                }
 526
 527                key->ip.proto = ipv6_hdr(skb)->nexthdr;
 528                ovs_cb.mru = IP6CB(skb)->frag_max_size;
 529#endif
 530        } else {
 531                kfree_skb(skb);
 532                return -EPFNOSUPPORT;
 533        }
 534
 535        key->ip.frag = OVS_FRAG_TYPE_NONE;
 536        skb_clear_hash(skb);
 537        skb->ignore_df = 1;
 538        *OVS_CB(skb) = ovs_cb;
 539
 540        return 0;
 541}
 542
 543static struct nf_conntrack_expect *
 544ovs_ct_expect_find(struct net *net, const struct nf_conntrack_zone *zone,
 545                   u16 proto, const struct sk_buff *skb)
 546{
 547        struct nf_conntrack_tuple tuple;
 548        struct nf_conntrack_expect *exp;
 549
 550        if (!nf_ct_get_tuplepr(skb, skb_network_offset(skb), proto, net, &tuple))
 551                return NULL;
 552
 553        exp = __nf_ct_expect_find(net, zone, &tuple);
 554        if (exp) {
 555                struct nf_conntrack_tuple_hash *h;
 556
 557                /* Delete existing conntrack entry, if it clashes with the
 558                 * expectation.  This can happen since conntrack ALGs do not
 559                 * check for clashes between (new) expectations and existing
 560                 * conntrack entries.  nf_conntrack_in() will check the
 561                 * expectations only if a conntrack entry can not be found,
 562                 * which can lead to OVS finding the expectation (here) in the
 563                 * init direction, but which will not be removed by the
 564                 * nf_conntrack_in() call, if a matching conntrack entry is
 565                 * found instead.  In this case all init direction packets
 566                 * would be reported as new related packets, while reply
 567                 * direction packets would be reported as un-related
 568                 * established packets.
 569                 */
 570                h = nf_conntrack_find_get(net, zone, &tuple);
 571                if (h) {
 572                        struct nf_conn *ct = nf_ct_tuplehash_to_ctrack(h);
 573
 574                        nf_ct_delete(ct, 0, 0);
 575                        nf_conntrack_put(&ct->ct_general);
 576                }
 577        }
 578
 579        return exp;
 580}
 581
 582/* This replicates logic from nf_conntrack_core.c that is not exported. */
 583static enum ip_conntrack_info
 584ovs_ct_get_info(const struct nf_conntrack_tuple_hash *h)
 585{
 586        const struct nf_conn *ct = nf_ct_tuplehash_to_ctrack(h);
 587
 588        if (NF_CT_DIRECTION(h) == IP_CT_DIR_REPLY)
 589                return IP_CT_ESTABLISHED_REPLY;
 590        /* Once we've had two way comms, always ESTABLISHED. */
 591        if (test_bit(IPS_SEEN_REPLY_BIT, &ct->status))
 592                return IP_CT_ESTABLISHED;
 593        if (test_bit(IPS_EXPECTED_BIT, &ct->status))
 594                return IP_CT_RELATED;
 595        return IP_CT_NEW;
 596}
 597
 598/* Find an existing connection which this packet belongs to without
 599 * re-attributing statistics or modifying the connection state.  This allows an
 600 * skb->_nfct lost due to an upcall to be recovered during actions execution.
 601 *
 602 * Must be called with rcu_read_lock.
 603 *
 604 * On success, populates skb->_nfct and returns the connection.  Returns NULL
 605 * if there is no existing entry.
 606 */
 607static struct nf_conn *
 608ovs_ct_find_existing(struct net *net, const struct nf_conntrack_zone *zone,
 609                     u8 l3num, struct sk_buff *skb, bool natted)
 610{
 611        struct nf_conntrack_tuple tuple;
 612        struct nf_conntrack_tuple_hash *h;
 613        struct nf_conn *ct;
 614
 615        if (!nf_ct_get_tuplepr(skb, skb_network_offset(skb), l3num,
 616                               net, &tuple)) {
 617                pr_debug("ovs_ct_find_existing: Can't get tuple\n");
 618                return NULL;
 619        }
 620
 621        /* Must invert the tuple if skb has been transformed by NAT. */
 622        if (natted) {
 623                struct nf_conntrack_tuple inverse;
 624
 625                if (!nf_ct_invert_tuplepr(&inverse, &tuple)) {
 626                        pr_debug("ovs_ct_find_existing: Inversion failed!\n");
 627                        return NULL;
 628                }
 629                tuple = inverse;
 630        }
 631
 632        /* look for tuple match */
 633        h = nf_conntrack_find_get(net, zone, &tuple);
 634        if (!h)
 635                return NULL;   /* Not found. */
 636
 637        ct = nf_ct_tuplehash_to_ctrack(h);
 638
 639        /* Inverted packet tuple matches the reverse direction conntrack tuple,
 640         * select the other tuplehash to get the right 'ctinfo' bits for this
 641         * packet.
 642         */
 643        if (natted)
 644                h = &ct->tuplehash[!h->tuple.dst.dir];
 645
 646        nf_ct_set(skb, ct, ovs_ct_get_info(h));
 647        return ct;
 648}
 649
 650static
 651struct nf_conn *ovs_ct_executed(struct net *net,
 652                                const struct sw_flow_key *key,
 653                                const struct ovs_conntrack_info *info,
 654                                struct sk_buff *skb,
 655                                bool *ct_executed)
 656{
 657        struct nf_conn *ct = NULL;
 658
 659        /* If no ct, check if we have evidence that an existing conntrack entry
 660         * might be found for this skb.  This happens when we lose a skb->_nfct
 661         * due to an upcall, or if the direction is being forced.  If the
 662         * connection was not confirmed, it is not cached and needs to be run
 663         * through conntrack again.
 664         */
 665        *ct_executed = (key->ct_state & OVS_CS_F_TRACKED) &&
 666                       !(key->ct_state & OVS_CS_F_INVALID) &&
 667                       (key->ct_zone == info->zone.id);
 668
 669        if (*ct_executed || (!key->ct_state && info->force)) {
 670                ct = ovs_ct_find_existing(net, &info->zone, info->family, skb,
 671                                          !!(key->ct_state &
 672                                          OVS_CS_F_NAT_MASK));
 673        }
 674
 675        return ct;
 676}
 677
 678/* Determine whether skb->_nfct is equal to the result of conntrack lookup. */
 679static bool skb_nfct_cached(struct net *net,
 680                            const struct sw_flow_key *key,
 681                            const struct ovs_conntrack_info *info,
 682                            struct sk_buff *skb)
 683{
 684        enum ip_conntrack_info ctinfo;
 685        struct nf_conn *ct;
 686        bool ct_executed = true;
 687
 688        ct = nf_ct_get(skb, &ctinfo);
 689        if (!ct)
 690                ct = ovs_ct_executed(net, key, info, skb, &ct_executed);
 691
 692        if (ct)
 693                nf_ct_get(skb, &ctinfo);
 694        else
 695                return false;
 696
 697        if (!net_eq(net, read_pnet(&ct->ct_net)))
 698                return false;
 699        if (!nf_ct_zone_equal_any(info->ct, nf_ct_zone(ct)))
 700                return false;
 701        if (info->helper) {
 702                struct nf_conn_help *help;
 703
 704                help = nf_ct_ext_find(ct, NF_CT_EXT_HELPER);
 705                if (help && rcu_access_pointer(help->helper) != info->helper)
 706                        return false;
 707        }
 708        /* Force conntrack entry direction to the current packet? */
 709        if (info->force && CTINFO2DIR(ctinfo) != IP_CT_DIR_ORIGINAL) {
 710                /* Delete the conntrack entry if confirmed, else just release
 711                 * the reference.
 712                 */
 713                if (nf_ct_is_confirmed(ct))
 714                        nf_ct_delete(ct, 0, 0);
 715
 716                nf_conntrack_put(&ct->ct_general);
 717                nf_ct_set(skb, NULL, 0);
 718                return false;
 719        }
 720
 721        return ct_executed;
 722}
 723
 724#ifdef CONFIG_NF_NAT_NEEDED
 725/* Modelled after nf_nat_ipv[46]_fn().
 726 * range is only used for new, uninitialized NAT state.
 727 * Returns either NF_ACCEPT or NF_DROP.
 728 */
 729static int ovs_ct_nat_execute(struct sk_buff *skb, struct nf_conn *ct,
 730                              enum ip_conntrack_info ctinfo,
 731                              const struct nf_nat_range2 *range,
 732                              enum nf_nat_manip_type maniptype)
 733{
 734        int hooknum, nh_off, err = NF_ACCEPT;
 735
 736        nh_off = skb_network_offset(skb);
 737        skb_pull_rcsum(skb, nh_off);
 738
 739        /* See HOOK2MANIP(). */
 740        if (maniptype == NF_NAT_MANIP_SRC)
 741                hooknum = NF_INET_LOCAL_IN; /* Source NAT */
 742        else
 743                hooknum = NF_INET_LOCAL_OUT; /* Destination NAT */
 744
 745        switch (ctinfo) {
 746        case IP_CT_RELATED:
 747        case IP_CT_RELATED_REPLY:
 748                if (IS_ENABLED(CONFIG_NF_NAT_IPV4) &&
 749                    skb->protocol == htons(ETH_P_IP) &&
 750                    ip_hdr(skb)->protocol == IPPROTO_ICMP) {
 751                        if (!nf_nat_icmp_reply_translation(skb, ct, ctinfo,
 752                                                           hooknum))
 753                                err = NF_DROP;
 754                        goto push;
 755                } else if (IS_ENABLED(CONFIG_NF_NAT_IPV6) &&
 756                           skb->protocol == htons(ETH_P_IPV6)) {
 757                        __be16 frag_off;
 758                        u8 nexthdr = ipv6_hdr(skb)->nexthdr;
 759                        int hdrlen = ipv6_skip_exthdr(skb,
 760                                                      sizeof(struct ipv6hdr),
 761                                                      &nexthdr, &frag_off);
 762
 763                        if (hdrlen >= 0 && nexthdr == IPPROTO_ICMPV6) {
 764                                if (!nf_nat_icmpv6_reply_translation(skb, ct,
 765                                                                     ctinfo,
 766                                                                     hooknum,
 767                                                                     hdrlen))
 768                                        err = NF_DROP;
 769                                goto push;
 770                        }
 771                }
 772                /* Non-ICMP, fall thru to initialize if needed. */
 773                /* fall through */
 774        case IP_CT_NEW:
 775                /* Seen it before?  This can happen for loopback, retrans,
 776                 * or local packets.
 777                 */
 778                if (!nf_nat_initialized(ct, maniptype)) {
 779                        /* Initialize according to the NAT action. */
 780                        err = (range && range->flags & NF_NAT_RANGE_MAP_IPS)
 781                                /* Action is set up to establish a new
 782                                 * mapping.
 783                                 */
 784                                ? nf_nat_setup_info(ct, range, maniptype)
 785                                : nf_nat_alloc_null_binding(ct, hooknum);
 786                        if (err != NF_ACCEPT)
 787                                goto push;
 788                }
 789                break;
 790
 791        case IP_CT_ESTABLISHED:
 792        case IP_CT_ESTABLISHED_REPLY:
 793                break;
 794
 795        default:
 796                err = NF_DROP;
 797                goto push;
 798        }
 799
 800        err = nf_nat_packet(ct, ctinfo, hooknum, skb);
 801push:
 802        skb_push(skb, nh_off);
 803        skb_postpush_rcsum(skb, skb->data, nh_off);
 804
 805        return err;
 806}
 807
 808static void ovs_nat_update_key(struct sw_flow_key *key,
 809                               const struct sk_buff *skb,
 810                               enum nf_nat_manip_type maniptype)
 811{
 812        if (maniptype == NF_NAT_MANIP_SRC) {
 813                __be16 src;
 814
 815                key->ct_state |= OVS_CS_F_SRC_NAT;
 816                if (key->eth.type == htons(ETH_P_IP))
 817                        key->ipv4.addr.src = ip_hdr(skb)->saddr;
 818                else if (key->eth.type == htons(ETH_P_IPV6))
 819                        memcpy(&key->ipv6.addr.src, &ipv6_hdr(skb)->saddr,
 820                               sizeof(key->ipv6.addr.src));
 821                else
 822                        return;
 823
 824                if (key->ip.proto == IPPROTO_UDP)
 825                        src = udp_hdr(skb)->source;
 826                else if (key->ip.proto == IPPROTO_TCP)
 827                        src = tcp_hdr(skb)->source;
 828                else if (key->ip.proto == IPPROTO_SCTP)
 829                        src = sctp_hdr(skb)->source;
 830                else
 831                        return;
 832
 833                key->tp.src = src;
 834        } else {
 835                __be16 dst;
 836
 837                key->ct_state |= OVS_CS_F_DST_NAT;
 838                if (key->eth.type == htons(ETH_P_IP))
 839                        key->ipv4.addr.dst = ip_hdr(skb)->daddr;
 840                else if (key->eth.type == htons(ETH_P_IPV6))
 841                        memcpy(&key->ipv6.addr.dst, &ipv6_hdr(skb)->daddr,
 842                               sizeof(key->ipv6.addr.dst));
 843                else
 844                        return;
 845
 846                if (key->ip.proto == IPPROTO_UDP)
 847                        dst = udp_hdr(skb)->dest;
 848                else if (key->ip.proto == IPPROTO_TCP)
 849                        dst = tcp_hdr(skb)->dest;
 850                else if (key->ip.proto == IPPROTO_SCTP)
 851                        dst = sctp_hdr(skb)->dest;
 852                else
 853                        return;
 854
 855                key->tp.dst = dst;
 856        }
 857}
 858
 859/* Returns NF_DROP if the packet should be dropped, NF_ACCEPT otherwise. */
 860static int ovs_ct_nat(struct net *net, struct sw_flow_key *key,
 861                      const struct ovs_conntrack_info *info,
 862                      struct sk_buff *skb, struct nf_conn *ct,
 863                      enum ip_conntrack_info ctinfo)
 864{
 865        enum nf_nat_manip_type maniptype;
 866        int err;
 867
 868        /* Add NAT extension if not confirmed yet. */
 869        if (!nf_ct_is_confirmed(ct) && !nf_ct_nat_ext_add(ct))
 870                return NF_ACCEPT;   /* Can't NAT. */
 871
 872        /* Determine NAT type.
 873         * Check if the NAT type can be deduced from the tracked connection.
 874         * Make sure new expected connections (IP_CT_RELATED) are NATted only
 875         * when committing.
 876         */
 877        if (info->nat & OVS_CT_NAT && ctinfo != IP_CT_NEW &&
 878            ct->status & IPS_NAT_MASK &&
 879            (ctinfo != IP_CT_RELATED || info->commit)) {
 880                /* NAT an established or related connection like before. */
 881                if (CTINFO2DIR(ctinfo) == IP_CT_DIR_REPLY)
 882                        /* This is the REPLY direction for a connection
 883                         * for which NAT was applied in the forward
 884                         * direction.  Do the reverse NAT.
 885                         */
 886                        maniptype = ct->status & IPS_SRC_NAT
 887                                ? NF_NAT_MANIP_DST : NF_NAT_MANIP_SRC;
 888                else
 889                        maniptype = ct->status & IPS_SRC_NAT
 890                                ? NF_NAT_MANIP_SRC : NF_NAT_MANIP_DST;
 891        } else if (info->nat & OVS_CT_SRC_NAT) {
 892                maniptype = NF_NAT_MANIP_SRC;
 893        } else if (info->nat & OVS_CT_DST_NAT) {
 894                maniptype = NF_NAT_MANIP_DST;
 895        } else {
 896                return NF_ACCEPT; /* Connection is not NATed. */
 897        }
 898        err = ovs_ct_nat_execute(skb, ct, ctinfo, &info->range, maniptype);
 899
 900        /* Mark NAT done if successful and update the flow key. */
 901        if (err == NF_ACCEPT)
 902                ovs_nat_update_key(key, skb, maniptype);
 903
 904        return err;
 905}
 906#else /* !CONFIG_NF_NAT_NEEDED */
 907static int ovs_ct_nat(struct net *net, struct sw_flow_key *key,
 908                      const struct ovs_conntrack_info *info,
 909                      struct sk_buff *skb, struct nf_conn *ct,
 910                      enum ip_conntrack_info ctinfo)
 911{
 912        return NF_ACCEPT;
 913}
 914#endif
 915
 916/* Pass 'skb' through conntrack in 'net', using zone configured in 'info', if
 917 * not done already.  Update key with new CT state after passing the packet
 918 * through conntrack.
 919 * Note that if the packet is deemed invalid by conntrack, skb->_nfct will be
 920 * set to NULL and 0 will be returned.
 921 */
 922static int __ovs_ct_lookup(struct net *net, struct sw_flow_key *key,
 923                           const struct ovs_conntrack_info *info,
 924                           struct sk_buff *skb)
 925{
 926        /* If we are recirculating packets to match on conntrack fields and
 927         * committing with a separate conntrack action,  then we don't need to
 928         * actually run the packet through conntrack twice unless it's for a
 929         * different zone.
 930         */
 931        bool cached = skb_nfct_cached(net, key, info, skb);
 932        enum ip_conntrack_info ctinfo;
 933        struct nf_conn *ct;
 934
 935        if (!cached) {
 936                struct nf_conn *tmpl = info->ct;
 937                int err;
 938
 939                /* Associate skb with specified zone. */
 940                if (tmpl) {
 941                        if (skb_nfct(skb))
 942                                nf_conntrack_put(skb_nfct(skb));
 943                        nf_conntrack_get(&tmpl->ct_general);
 944                        nf_ct_set(skb, tmpl, IP_CT_NEW);
 945                }
 946
 947                err = nf_conntrack_in(net, info->family,
 948                                      NF_INET_PRE_ROUTING, skb);
 949                if (err != NF_ACCEPT)
 950                        return -ENOENT;
 951
 952                /* Clear CT state NAT flags to mark that we have not yet done
 953                 * NAT after the nf_conntrack_in() call.  We can actually clear
 954                 * the whole state, as it will be re-initialized below.
 955                 */
 956                key->ct_state = 0;
 957
 958                /* Update the key, but keep the NAT flags. */
 959                ovs_ct_update_key(skb, info, key, true, true);
 960        }
 961
 962        ct = nf_ct_get(skb, &ctinfo);
 963        if (ct) {
 964                /* Packets starting a new connection must be NATted before the
 965                 * helper, so that the helper knows about the NAT.  We enforce
 966                 * this by delaying both NAT and helper calls for unconfirmed
 967                 * connections until the committing CT action.  For later
 968                 * packets NAT and Helper may be called in either order.
 969                 *
 970                 * NAT will be done only if the CT action has NAT, and only
 971                 * once per packet (per zone), as guarded by the NAT bits in
 972                 * the key->ct_state.
 973                 */
 974                if (info->nat && !(key->ct_state & OVS_CS_F_NAT_MASK) &&
 975                    (nf_ct_is_confirmed(ct) || info->commit) &&
 976                    ovs_ct_nat(net, key, info, skb, ct, ctinfo) != NF_ACCEPT) {
 977                        return -EINVAL;
 978                }
 979
 980                /* Userspace may decide to perform a ct lookup without a helper
 981                 * specified followed by a (recirculate and) commit with one.
 982                 * Therefore, for unconfirmed connections which we will commit,
 983                 * we need to attach the helper here.
 984                 */
 985                if (!nf_ct_is_confirmed(ct) && info->commit &&
 986                    info->helper && !nfct_help(ct)) {
 987                        int err = __nf_ct_try_assign_helper(ct, info->ct,
 988                                                            GFP_ATOMIC);
 989                        if (err)
 990                                return err;
 991                }
 992
 993                /* Call the helper only if:
 994                 * - nf_conntrack_in() was executed above ("!cached") for a
 995                 *   confirmed connection, or
 996                 * - When committing an unconfirmed connection.
 997                 */
 998                if ((nf_ct_is_confirmed(ct) ? !cached : info->commit) &&
 999                    ovs_ct_helper(skb, info->family) != NF_ACCEPT) {
1000                        return -EINVAL;
1001                }
1002        }
1003
1004        return 0;
1005}
1006
1007/* Lookup connection and read fields into key. */
1008static int ovs_ct_lookup(struct net *net, struct sw_flow_key *key,
1009                         const struct ovs_conntrack_info *info,
1010                         struct sk_buff *skb)
1011{
1012        struct nf_conntrack_expect *exp;
1013
1014        /* If we pass an expected packet through nf_conntrack_in() the
1015         * expectation is typically removed, but the packet could still be
1016         * lost in upcall processing.  To prevent this from happening we
1017         * perform an explicit expectation lookup.  Expected connections are
1018         * always new, and will be passed through conntrack only when they are
1019         * committed, as it is OK to remove the expectation at that time.
1020         */
1021        exp = ovs_ct_expect_find(net, &info->zone, info->family, skb);
1022        if (exp) {
1023                u8 state;
1024
1025                /* NOTE: New connections are NATted and Helped only when
1026                 * committed, so we are not calling into NAT here.
1027                 */
1028                state = OVS_CS_F_TRACKED | OVS_CS_F_NEW | OVS_CS_F_RELATED;
1029                __ovs_ct_update_key(key, state, &info->zone, exp->master);
1030        } else {
1031                struct nf_conn *ct;
1032                int err;
1033
1034                err = __ovs_ct_lookup(net, key, info, skb);
1035                if (err)
1036                        return err;
1037
1038                ct = (struct nf_conn *)skb_nfct(skb);
1039                if (ct)
1040                        nf_ct_deliver_cached_events(ct);
1041        }
1042
1043        return 0;
1044}
1045
1046static bool labels_nonzero(const struct ovs_key_ct_labels *labels)
1047{
1048        size_t i;
1049
1050        for (i = 0; i < OVS_CT_LABELS_LEN_32; i++)
1051                if (labels->ct_labels_32[i])
1052                        return true;
1053
1054        return false;
1055}
1056
1057#if     IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
1058static struct hlist_head *ct_limit_hash_bucket(
1059        const struct ovs_ct_limit_info *info, u16 zone)
1060{
1061        return &info->limits[zone & (CT_LIMIT_HASH_BUCKETS - 1)];
1062}
1063
1064/* Call with ovs_mutex */
1065static void ct_limit_set(const struct ovs_ct_limit_info *info,
1066                         struct ovs_ct_limit *new_ct_limit)
1067{
1068        struct ovs_ct_limit *ct_limit;
1069        struct hlist_head *head;
1070
1071        head = ct_limit_hash_bucket(info, new_ct_limit->zone);
1072        hlist_for_each_entry_rcu(ct_limit, head, hlist_node) {
1073                if (ct_limit->zone == new_ct_limit->zone) {
1074                        hlist_replace_rcu(&ct_limit->hlist_node,
1075                                          &new_ct_limit->hlist_node);
1076                        kfree_rcu(ct_limit, rcu);
1077                        return;
1078                }
1079        }
1080
1081        hlist_add_head_rcu(&new_ct_limit->hlist_node, head);
1082}
1083
1084/* Call with ovs_mutex */
1085static void ct_limit_del(const struct ovs_ct_limit_info *info, u16 zone)
1086{
1087        struct ovs_ct_limit *ct_limit;
1088        struct hlist_head *head;
1089        struct hlist_node *n;
1090
1091        head = ct_limit_hash_bucket(info, zone);
1092        hlist_for_each_entry_safe(ct_limit, n, head, hlist_node) {
1093                if (ct_limit->zone == zone) {
1094                        hlist_del_rcu(&ct_limit->hlist_node);
1095                        kfree_rcu(ct_limit, rcu);
1096                        return;
1097                }
1098        }
1099}
1100
1101/* Call with RCU read lock */
1102static u32 ct_limit_get(const struct ovs_ct_limit_info *info, u16 zone)
1103{
1104        struct ovs_ct_limit *ct_limit;
1105        struct hlist_head *head;
1106
1107        head = ct_limit_hash_bucket(info, zone);
1108        hlist_for_each_entry_rcu(ct_limit, head, hlist_node) {
1109                if (ct_limit->zone == zone)
1110                        return ct_limit->limit;
1111        }
1112
1113        return info->default_limit;
1114}
1115
1116static int ovs_ct_check_limit(struct net *net,
1117                              const struct ovs_conntrack_info *info,
1118                              const struct nf_conntrack_tuple *tuple)
1119{
1120        struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
1121        const struct ovs_ct_limit_info *ct_limit_info = ovs_net->ct_limit_info;
1122        u32 per_zone_limit, connections;
1123        u32 conncount_key;
1124
1125        conncount_key = info->zone.id;
1126
1127        per_zone_limit = ct_limit_get(ct_limit_info, info->zone.id);
1128        if (per_zone_limit == OVS_CT_LIMIT_UNLIMITED)
1129                return 0;
1130
1131        connections = nf_conncount_count(net, ct_limit_info->data,
1132                                         &conncount_key, tuple, &info->zone);
1133        if (connections > per_zone_limit)
1134                return -ENOMEM;
1135
1136        return 0;
1137}
1138#endif
1139
1140/* Lookup connection and confirm if unconfirmed. */
1141static int ovs_ct_commit(struct net *net, struct sw_flow_key *key,
1142                         const struct ovs_conntrack_info *info,
1143                         struct sk_buff *skb)
1144{
1145        enum ip_conntrack_info ctinfo;
1146        struct nf_conn *ct;
1147        int err;
1148
1149        err = __ovs_ct_lookup(net, key, info, skb);
1150        if (err)
1151                return err;
1152
1153        /* The connection could be invalid, in which case this is a no-op.*/
1154        ct = nf_ct_get(skb, &ctinfo);
1155        if (!ct)
1156                return 0;
1157
1158#if     IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
1159        if (static_branch_unlikely(&ovs_ct_limit_enabled)) {
1160                if (!nf_ct_is_confirmed(ct)) {
1161                        err = ovs_ct_check_limit(net, info,
1162                                &ct->tuplehash[IP_CT_DIR_ORIGINAL].tuple);
1163                        if (err) {
1164                                net_warn_ratelimited("openvswitch: zone: %u "
1165                                        "execeeds conntrack limit\n",
1166                                        info->zone.id);
1167                                return err;
1168                        }
1169                }
1170        }
1171#endif
1172
1173        /* Set the conntrack event mask if given.  NEW and DELETE events have
1174         * their own groups, but the NFNLGRP_CONNTRACK_UPDATE group listener
1175         * typically would receive many kinds of updates.  Setting the event
1176         * mask allows those events to be filtered.  The set event mask will
1177         * remain in effect for the lifetime of the connection unless changed
1178         * by a further CT action with both the commit flag and the eventmask
1179         * option. */
1180        if (info->have_eventmask) {
1181                struct nf_conntrack_ecache *cache = nf_ct_ecache_find(ct);
1182
1183                if (cache)
1184                        cache->ctmask = info->eventmask;
1185        }
1186
1187        /* Apply changes before confirming the connection so that the initial
1188         * conntrack NEW netlink event carries the values given in the CT
1189         * action.
1190         */
1191        if (info->mark.mask) {
1192                err = ovs_ct_set_mark(ct, key, info->mark.value,
1193                                      info->mark.mask);
1194                if (err)
1195                        return err;
1196        }
1197        if (!nf_ct_is_confirmed(ct)) {
1198                err = ovs_ct_init_labels(ct, key, &info->labels.value,
1199                                         &info->labels.mask);
1200                if (err)
1201                        return err;
1202        } else if (labels_nonzero(&info->labels.mask)) {
1203                err = ovs_ct_set_labels(ct, key, &info->labels.value,
1204                                        &info->labels.mask);
1205                if (err)
1206                        return err;
1207        }
1208        /* This will take care of sending queued events even if the connection
1209         * is already confirmed.
1210         */
1211        if (nf_conntrack_confirm(skb) != NF_ACCEPT)
1212                return -EINVAL;
1213
1214        return 0;
1215}
1216
1217/* Trim the skb to the length specified by the IP/IPv6 header,
1218 * removing any trailing lower-layer padding. This prepares the skb
1219 * for higher-layer processing that assumes skb->len excludes padding
1220 * (such as nf_ip_checksum). The caller needs to pull the skb to the
1221 * network header, and ensure ip_hdr/ipv6_hdr points to valid data.
1222 */
1223static int ovs_skb_network_trim(struct sk_buff *skb)
1224{
1225        unsigned int len;
1226        int err;
1227
1228        switch (skb->protocol) {
1229        case htons(ETH_P_IP):
1230                len = ntohs(ip_hdr(skb)->tot_len);
1231                break;
1232        case htons(ETH_P_IPV6):
1233                len = sizeof(struct ipv6hdr)
1234                        + ntohs(ipv6_hdr(skb)->payload_len);
1235                break;
1236        default:
1237                len = skb->len;
1238        }
1239
1240        err = pskb_trim_rcsum(skb, len);
1241        if (err)
1242                kfree_skb(skb);
1243
1244        return err;
1245}
1246
1247/* Returns 0 on success, -EINPROGRESS if 'skb' is stolen, or other nonzero
1248 * value if 'skb' is freed.
1249 */
1250int ovs_ct_execute(struct net *net, struct sk_buff *skb,
1251                   struct sw_flow_key *key,
1252                   const struct ovs_conntrack_info *info)
1253{
1254        int nh_ofs;
1255        int err;
1256
1257        /* The conntrack module expects to be working at L3. */
1258        nh_ofs = skb_network_offset(skb);
1259        skb_pull_rcsum(skb, nh_ofs);
1260
1261        err = ovs_skb_network_trim(skb);
1262        if (err)
1263                return err;
1264
1265        if (key->ip.frag != OVS_FRAG_TYPE_NONE) {
1266                err = handle_fragments(net, key, info->zone.id, skb);
1267                if (err)
1268                        return err;
1269        }
1270
1271        if (info->commit)
1272                err = ovs_ct_commit(net, key, info, skb);
1273        else
1274                err = ovs_ct_lookup(net, key, info, skb);
1275
1276        skb_push(skb, nh_ofs);
1277        skb_postpush_rcsum(skb, skb->data, nh_ofs);
1278        if (err)
1279                kfree_skb(skb);
1280        return err;
1281}
1282
1283int ovs_ct_clear(struct sk_buff *skb, struct sw_flow_key *key)
1284{
1285        if (skb_nfct(skb)) {
1286                nf_conntrack_put(skb_nfct(skb));
1287                nf_ct_set(skb, NULL, IP_CT_UNTRACKED);
1288                ovs_ct_fill_key(skb, key);
1289        }
1290
1291        return 0;
1292}
1293
1294static int ovs_ct_add_helper(struct ovs_conntrack_info *info, const char *name,
1295                             const struct sw_flow_key *key, bool log)
1296{
1297        struct nf_conntrack_helper *helper;
1298        struct nf_conn_help *help;
1299
1300        helper = nf_conntrack_helper_try_module_get(name, info->family,
1301                                                    key->ip.proto);
1302        if (!helper) {
1303                OVS_NLERR(log, "Unknown helper \"%s\"", name);
1304                return -EINVAL;
1305        }
1306
1307        help = nf_ct_helper_ext_add(info->ct, GFP_KERNEL);
1308        if (!help) {
1309                nf_conntrack_helper_put(helper);
1310                return -ENOMEM;
1311        }
1312
1313        rcu_assign_pointer(help->helper, helper);
1314        info->helper = helper;
1315
1316        if (info->nat)
1317                request_module("ip_nat_%s", name);
1318
1319        return 0;
1320}
1321
1322#ifdef CONFIG_NF_NAT_NEEDED
1323static int parse_nat(const struct nlattr *attr,
1324                     struct ovs_conntrack_info *info, bool log)
1325{
1326        struct nlattr *a;
1327        int rem;
1328        bool have_ip_max = false;
1329        bool have_proto_max = false;
1330        bool ip_vers = (info->family == NFPROTO_IPV6);
1331
1332        nla_for_each_nested(a, attr, rem) {
1333                static const int ovs_nat_attr_lens[OVS_NAT_ATTR_MAX + 1][2] = {
1334                        [OVS_NAT_ATTR_SRC] = {0, 0},
1335                        [OVS_NAT_ATTR_DST] = {0, 0},
1336                        [OVS_NAT_ATTR_IP_MIN] = {sizeof(struct in_addr),
1337                                                 sizeof(struct in6_addr)},
1338                        [OVS_NAT_ATTR_IP_MAX] = {sizeof(struct in_addr),
1339                                                 sizeof(struct in6_addr)},
1340                        [OVS_NAT_ATTR_PROTO_MIN] = {sizeof(u16), sizeof(u16)},
1341                        [OVS_NAT_ATTR_PROTO_MAX] = {sizeof(u16), sizeof(u16)},
1342                        [OVS_NAT_ATTR_PERSISTENT] = {0, 0},
1343                        [OVS_NAT_ATTR_PROTO_HASH] = {0, 0},
1344                        [OVS_NAT_ATTR_PROTO_RANDOM] = {0, 0},
1345                };
1346                int type = nla_type(a);
1347
1348                if (type > OVS_NAT_ATTR_MAX) {
1349                        OVS_NLERR(log, "Unknown NAT attribute (type=%d, max=%d)",
1350                                  type, OVS_NAT_ATTR_MAX);
1351                        return -EINVAL;
1352                }
1353
1354                if (nla_len(a) != ovs_nat_attr_lens[type][ip_vers]) {
1355                        OVS_NLERR(log, "NAT attribute type %d has unexpected length (%d != %d)",
1356                                  type, nla_len(a),
1357                                  ovs_nat_attr_lens[type][ip_vers]);
1358                        return -EINVAL;
1359                }
1360
1361                switch (type) {
1362                case OVS_NAT_ATTR_SRC:
1363                case OVS_NAT_ATTR_DST:
1364                        if (info->nat) {
1365                                OVS_NLERR(log, "Only one type of NAT may be specified");
1366                                return -ERANGE;
1367                        }
1368                        info->nat |= OVS_CT_NAT;
1369                        info->nat |= ((type == OVS_NAT_ATTR_SRC)
1370                                        ? OVS_CT_SRC_NAT : OVS_CT_DST_NAT);
1371                        break;
1372
1373                case OVS_NAT_ATTR_IP_MIN:
1374                        nla_memcpy(&info->range.min_addr, a,
1375                                   sizeof(info->range.min_addr));
1376                        info->range.flags |= NF_NAT_RANGE_MAP_IPS;
1377                        break;
1378
1379                case OVS_NAT_ATTR_IP_MAX:
1380                        have_ip_max = true;
1381                        nla_memcpy(&info->range.max_addr, a,
1382                                   sizeof(info->range.max_addr));
1383                        info->range.flags |= NF_NAT_RANGE_MAP_IPS;
1384                        break;
1385
1386                case OVS_NAT_ATTR_PROTO_MIN:
1387                        info->range.min_proto.all = htons(nla_get_u16(a));
1388                        info->range.flags |= NF_NAT_RANGE_PROTO_SPECIFIED;
1389                        break;
1390
1391                case OVS_NAT_ATTR_PROTO_MAX:
1392                        have_proto_max = true;
1393                        info->range.max_proto.all = htons(nla_get_u16(a));
1394                        info->range.flags |= NF_NAT_RANGE_PROTO_SPECIFIED;
1395                        break;
1396
1397                case OVS_NAT_ATTR_PERSISTENT:
1398                        info->range.flags |= NF_NAT_RANGE_PERSISTENT;
1399                        break;
1400
1401                case OVS_NAT_ATTR_PROTO_HASH:
1402                        info->range.flags |= NF_NAT_RANGE_PROTO_RANDOM;
1403                        break;
1404
1405                case OVS_NAT_ATTR_PROTO_RANDOM:
1406                        info->range.flags |= NF_NAT_RANGE_PROTO_RANDOM_FULLY;
1407                        break;
1408
1409                default:
1410                        OVS_NLERR(log, "Unknown nat attribute (%d)", type);
1411                        return -EINVAL;
1412                }
1413        }
1414
1415        if (rem > 0) {
1416                OVS_NLERR(log, "NAT attribute has %d unknown bytes", rem);
1417                return -EINVAL;
1418        }
1419        if (!info->nat) {
1420                /* Do not allow flags if no type is given. */
1421                if (info->range.flags) {
1422                        OVS_NLERR(log,
1423                                  "NAT flags may be given only when NAT range (SRC or DST) is also specified."
1424                                  );
1425                        return -EINVAL;
1426                }
1427                info->nat = OVS_CT_NAT;   /* NAT existing connections. */
1428        } else if (!info->commit) {
1429                OVS_NLERR(log,
1430                          "NAT attributes may be specified only when CT COMMIT flag is also specified."
1431                          );
1432                return -EINVAL;
1433        }
1434        /* Allow missing IP_MAX. */
1435        if (info->range.flags & NF_NAT_RANGE_MAP_IPS && !have_ip_max) {
1436                memcpy(&info->range.max_addr, &info->range.min_addr,
1437                       sizeof(info->range.max_addr));
1438        }
1439        /* Allow missing PROTO_MAX. */
1440        if (info->range.flags & NF_NAT_RANGE_PROTO_SPECIFIED &&
1441            !have_proto_max) {
1442                info->range.max_proto.all = info->range.min_proto.all;
1443        }
1444        return 0;
1445}
1446#endif
1447
1448static const struct ovs_ct_len_tbl ovs_ct_attr_lens[OVS_CT_ATTR_MAX + 1] = {
1449        [OVS_CT_ATTR_COMMIT]    = { .minlen = 0, .maxlen = 0 },
1450        [OVS_CT_ATTR_FORCE_COMMIT]      = { .minlen = 0, .maxlen = 0 },
1451        [OVS_CT_ATTR_ZONE]      = { .minlen = sizeof(u16),
1452                                    .maxlen = sizeof(u16) },
1453        [OVS_CT_ATTR_MARK]      = { .minlen = sizeof(struct md_mark),
1454                                    .maxlen = sizeof(struct md_mark) },
1455        [OVS_CT_ATTR_LABELS]    = { .minlen = sizeof(struct md_labels),
1456                                    .maxlen = sizeof(struct md_labels) },
1457        [OVS_CT_ATTR_HELPER]    = { .minlen = 1,
1458                                    .maxlen = NF_CT_HELPER_NAME_LEN },
1459#ifdef CONFIG_NF_NAT_NEEDED
1460        /* NAT length is checked when parsing the nested attributes. */
1461        [OVS_CT_ATTR_NAT]       = { .minlen = 0, .maxlen = INT_MAX },
1462#endif
1463        [OVS_CT_ATTR_EVENTMASK] = { .minlen = sizeof(u32),
1464                                    .maxlen = sizeof(u32) },
1465};
1466
1467static int parse_ct(const struct nlattr *attr, struct ovs_conntrack_info *info,
1468                    const char **helper, bool log)
1469{
1470        struct nlattr *a;
1471        int rem;
1472
1473        nla_for_each_nested(a, attr, rem) {
1474                int type = nla_type(a);
1475                int maxlen;
1476                int minlen;
1477
1478                if (type > OVS_CT_ATTR_MAX) {
1479                        OVS_NLERR(log,
1480                                  "Unknown conntrack attr (type=%d, max=%d)",
1481                                  type, OVS_CT_ATTR_MAX);
1482                        return -EINVAL;
1483                }
1484
1485                maxlen = ovs_ct_attr_lens[type].maxlen;
1486                minlen = ovs_ct_attr_lens[type].minlen;
1487                if (nla_len(a) < minlen || nla_len(a) > maxlen) {
1488                        OVS_NLERR(log,
1489                                  "Conntrack attr type has unexpected length (type=%d, length=%d, expected=%d)",
1490                                  type, nla_len(a), maxlen);
1491                        return -EINVAL;
1492                }
1493
1494                switch (type) {
1495                case OVS_CT_ATTR_FORCE_COMMIT:
1496                        info->force = true;
1497                        /* fall through. */
1498                case OVS_CT_ATTR_COMMIT:
1499                        info->commit = true;
1500                        break;
1501#ifdef CONFIG_NF_CONNTRACK_ZONES
1502                case OVS_CT_ATTR_ZONE:
1503                        info->zone.id = nla_get_u16(a);
1504                        break;
1505#endif
1506#ifdef CONFIG_NF_CONNTRACK_MARK
1507                case OVS_CT_ATTR_MARK: {
1508                        struct md_mark *mark = nla_data(a);
1509
1510                        if (!mark->mask) {
1511                                OVS_NLERR(log, "ct_mark mask cannot be 0");
1512                                return -EINVAL;
1513                        }
1514                        info->mark = *mark;
1515                        break;
1516                }
1517#endif
1518#ifdef CONFIG_NF_CONNTRACK_LABELS
1519                case OVS_CT_ATTR_LABELS: {
1520                        struct md_labels *labels = nla_data(a);
1521
1522                        if (!labels_nonzero(&labels->mask)) {
1523                                OVS_NLERR(log, "ct_labels mask cannot be 0");
1524                                return -EINVAL;
1525                        }
1526                        info->labels = *labels;
1527                        break;
1528                }
1529#endif
1530                case OVS_CT_ATTR_HELPER:
1531                        *helper = nla_data(a);
1532                        if (!memchr(*helper, '\0', nla_len(a))) {
1533                                OVS_NLERR(log, "Invalid conntrack helper");
1534                                return -EINVAL;
1535                        }
1536                        break;
1537#ifdef CONFIG_NF_NAT_NEEDED
1538                case OVS_CT_ATTR_NAT: {
1539                        int err = parse_nat(a, info, log);
1540
1541                        if (err)
1542                                return err;
1543                        break;
1544                }
1545#endif
1546                case OVS_CT_ATTR_EVENTMASK:
1547                        info->have_eventmask = true;
1548                        info->eventmask = nla_get_u32(a);
1549                        break;
1550
1551                default:
1552                        OVS_NLERR(log, "Unknown conntrack attr (%d)",
1553                                  type);
1554                        return -EINVAL;
1555                }
1556        }
1557
1558#ifdef CONFIG_NF_CONNTRACK_MARK
1559        if (!info->commit && info->mark.mask) {
1560                OVS_NLERR(log,
1561                          "Setting conntrack mark requires 'commit' flag.");
1562                return -EINVAL;
1563        }
1564#endif
1565#ifdef CONFIG_NF_CONNTRACK_LABELS
1566        if (!info->commit && labels_nonzero(&info->labels.mask)) {
1567                OVS_NLERR(log,
1568                          "Setting conntrack labels requires 'commit' flag.");
1569                return -EINVAL;
1570        }
1571#endif
1572        if (rem > 0) {
1573                OVS_NLERR(log, "Conntrack attr has %d unknown bytes", rem);
1574                return -EINVAL;
1575        }
1576
1577        return 0;
1578}
1579
1580bool ovs_ct_verify(struct net *net, enum ovs_key_attr attr)
1581{
1582        if (attr == OVS_KEY_ATTR_CT_STATE)
1583                return true;
1584        if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) &&
1585            attr == OVS_KEY_ATTR_CT_ZONE)
1586                return true;
1587        if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) &&
1588            attr == OVS_KEY_ATTR_CT_MARK)
1589                return true;
1590        if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) &&
1591            attr == OVS_KEY_ATTR_CT_LABELS) {
1592                struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
1593
1594                return ovs_net->xt_label;
1595        }
1596
1597        return false;
1598}
1599
1600int ovs_ct_copy_action(struct net *net, const struct nlattr *attr,
1601                       const struct sw_flow_key *key,
1602                       struct sw_flow_actions **sfa,  bool log)
1603{
1604        struct ovs_conntrack_info ct_info;
1605        const char *helper = NULL;
1606        u16 family;
1607        int err;
1608
1609        family = key_to_nfproto(key);
1610        if (family == NFPROTO_UNSPEC) {
1611                OVS_NLERR(log, "ct family unspecified");
1612                return -EINVAL;
1613        }
1614
1615        memset(&ct_info, 0, sizeof(ct_info));
1616        ct_info.family = family;
1617
1618        nf_ct_zone_init(&ct_info.zone, NF_CT_DEFAULT_ZONE_ID,
1619                        NF_CT_DEFAULT_ZONE_DIR, 0);
1620
1621        err = parse_ct(attr, &ct_info, &helper, log);
1622        if (err)
1623                return err;
1624
1625        /* Set up template for tracking connections in specific zones. */
1626        ct_info.ct = nf_ct_tmpl_alloc(net, &ct_info.zone, GFP_KERNEL);
1627        if (!ct_info.ct) {
1628                OVS_NLERR(log, "Failed to allocate conntrack template");
1629                return -ENOMEM;
1630        }
1631        if (helper) {
1632                err = ovs_ct_add_helper(&ct_info, helper, key, log);
1633                if (err)
1634                        goto err_free_ct;
1635        }
1636
1637        err = ovs_nla_add_action(sfa, OVS_ACTION_ATTR_CT, &ct_info,
1638                                 sizeof(ct_info), log);
1639        if (err)
1640                goto err_free_ct;
1641
1642        __set_bit(IPS_CONFIRMED_BIT, &ct_info.ct->status);
1643        nf_conntrack_get(&ct_info.ct->ct_general);
1644        return 0;
1645err_free_ct:
1646        __ovs_ct_free_action(&ct_info);
1647        return err;
1648}
1649
1650#ifdef CONFIG_NF_NAT_NEEDED
1651static bool ovs_ct_nat_to_attr(const struct ovs_conntrack_info *info,
1652                               struct sk_buff *skb)
1653{
1654        struct nlattr *start;
1655
1656        start = nla_nest_start(skb, OVS_CT_ATTR_NAT);
1657        if (!start)
1658                return false;
1659
1660        if (info->nat & OVS_CT_SRC_NAT) {
1661                if (nla_put_flag(skb, OVS_NAT_ATTR_SRC))
1662                        return false;
1663        } else if (info->nat & OVS_CT_DST_NAT) {
1664                if (nla_put_flag(skb, OVS_NAT_ATTR_DST))
1665                        return false;
1666        } else {
1667                goto out;
1668        }
1669
1670        if (info->range.flags & NF_NAT_RANGE_MAP_IPS) {
1671                if (IS_ENABLED(CONFIG_NF_NAT_IPV4) &&
1672                    info->family == NFPROTO_IPV4) {
1673                        if (nla_put_in_addr(skb, OVS_NAT_ATTR_IP_MIN,
1674                                            info->range.min_addr.ip) ||
1675                            (info->range.max_addr.ip
1676                             != info->range.min_addr.ip &&
1677                             (nla_put_in_addr(skb, OVS_NAT_ATTR_IP_MAX,
1678                                              info->range.max_addr.ip))))
1679                                return false;
1680                } else if (IS_ENABLED(CONFIG_NF_NAT_IPV6) &&
1681                           info->family == NFPROTO_IPV6) {
1682                        if (nla_put_in6_addr(skb, OVS_NAT_ATTR_IP_MIN,
1683                                             &info->range.min_addr.in6) ||
1684                            (memcmp(&info->range.max_addr.in6,
1685                                    &info->range.min_addr.in6,
1686                                    sizeof(info->range.max_addr.in6)) &&
1687                             (nla_put_in6_addr(skb, OVS_NAT_ATTR_IP_MAX,
1688                                               &info->range.max_addr.in6))))
1689                                return false;
1690                } else {
1691                        return false;
1692                }
1693        }
1694        if (info->range.flags & NF_NAT_RANGE_PROTO_SPECIFIED &&
1695            (nla_put_u16(skb, OVS_NAT_ATTR_PROTO_MIN,
1696                         ntohs(info->range.min_proto.all)) ||
1697             (info->range.max_proto.all != info->range.min_proto.all &&
1698              nla_put_u16(skb, OVS_NAT_ATTR_PROTO_MAX,
1699                          ntohs(info->range.max_proto.all)))))
1700                return false;
1701
1702        if (info->range.flags & NF_NAT_RANGE_PERSISTENT &&
1703            nla_put_flag(skb, OVS_NAT_ATTR_PERSISTENT))
1704                return false;
1705        if (info->range.flags & NF_NAT_RANGE_PROTO_RANDOM &&
1706            nla_put_flag(skb, OVS_NAT_ATTR_PROTO_HASH))
1707                return false;
1708        if (info->range.flags & NF_NAT_RANGE_PROTO_RANDOM_FULLY &&
1709            nla_put_flag(skb, OVS_NAT_ATTR_PROTO_RANDOM))
1710                return false;
1711out:
1712        nla_nest_end(skb, start);
1713
1714        return true;
1715}
1716#endif
1717
1718int ovs_ct_action_to_attr(const struct ovs_conntrack_info *ct_info,
1719                          struct sk_buff *skb)
1720{
1721        struct nlattr *start;
1722
1723        start = nla_nest_start(skb, OVS_ACTION_ATTR_CT);
1724        if (!start)
1725                return -EMSGSIZE;
1726
1727        if (ct_info->commit && nla_put_flag(skb, ct_info->force
1728                                            ? OVS_CT_ATTR_FORCE_COMMIT
1729                                            : OVS_CT_ATTR_COMMIT))
1730                return -EMSGSIZE;
1731        if (IS_ENABLED(CONFIG_NF_CONNTRACK_ZONES) &&
1732            nla_put_u16(skb, OVS_CT_ATTR_ZONE, ct_info->zone.id))
1733                return -EMSGSIZE;
1734        if (IS_ENABLED(CONFIG_NF_CONNTRACK_MARK) && ct_info->mark.mask &&
1735            nla_put(skb, OVS_CT_ATTR_MARK, sizeof(ct_info->mark),
1736                    &ct_info->mark))
1737                return -EMSGSIZE;
1738        if (IS_ENABLED(CONFIG_NF_CONNTRACK_LABELS) &&
1739            labels_nonzero(&ct_info->labels.mask) &&
1740            nla_put(skb, OVS_CT_ATTR_LABELS, sizeof(ct_info->labels),
1741                    &ct_info->labels))
1742                return -EMSGSIZE;
1743        if (ct_info->helper) {
1744                if (nla_put_string(skb, OVS_CT_ATTR_HELPER,
1745                                   ct_info->helper->name))
1746                        return -EMSGSIZE;
1747        }
1748        if (ct_info->have_eventmask &&
1749            nla_put_u32(skb, OVS_CT_ATTR_EVENTMASK, ct_info->eventmask))
1750                return -EMSGSIZE;
1751
1752#ifdef CONFIG_NF_NAT_NEEDED
1753        if (ct_info->nat && !ovs_ct_nat_to_attr(ct_info, skb))
1754                return -EMSGSIZE;
1755#endif
1756        nla_nest_end(skb, start);
1757
1758        return 0;
1759}
1760
1761void ovs_ct_free_action(const struct nlattr *a)
1762{
1763        struct ovs_conntrack_info *ct_info = nla_data(a);
1764
1765        __ovs_ct_free_action(ct_info);
1766}
1767
1768static void __ovs_ct_free_action(struct ovs_conntrack_info *ct_info)
1769{
1770        if (ct_info->helper)
1771                nf_conntrack_helper_put(ct_info->helper);
1772        if (ct_info->ct)
1773                nf_ct_tmpl_free(ct_info->ct);
1774}
1775
1776#if     IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
1777static int ovs_ct_limit_init(struct net *net, struct ovs_net *ovs_net)
1778{
1779        int i, err;
1780
1781        ovs_net->ct_limit_info = kmalloc(sizeof(*ovs_net->ct_limit_info),
1782                                         GFP_KERNEL);
1783        if (!ovs_net->ct_limit_info)
1784                return -ENOMEM;
1785
1786        ovs_net->ct_limit_info->default_limit = OVS_CT_LIMIT_DEFAULT;
1787        ovs_net->ct_limit_info->limits =
1788                kmalloc_array(CT_LIMIT_HASH_BUCKETS, sizeof(struct hlist_head),
1789                              GFP_KERNEL);
1790        if (!ovs_net->ct_limit_info->limits) {
1791                kfree(ovs_net->ct_limit_info);
1792                return -ENOMEM;
1793        }
1794
1795        for (i = 0; i < CT_LIMIT_HASH_BUCKETS; i++)
1796                INIT_HLIST_HEAD(&ovs_net->ct_limit_info->limits[i]);
1797
1798        ovs_net->ct_limit_info->data =
1799                nf_conncount_init(net, NFPROTO_INET, sizeof(u32));
1800
1801        if (IS_ERR(ovs_net->ct_limit_info->data)) {
1802                err = PTR_ERR(ovs_net->ct_limit_info->data);
1803                kfree(ovs_net->ct_limit_info->limits);
1804                kfree(ovs_net->ct_limit_info);
1805                pr_err("openvswitch: failed to init nf_conncount %d\n", err);
1806                return err;
1807        }
1808        return 0;
1809}
1810
1811static void ovs_ct_limit_exit(struct net *net, struct ovs_net *ovs_net)
1812{
1813        const struct ovs_ct_limit_info *info = ovs_net->ct_limit_info;
1814        int i;
1815
1816        nf_conncount_destroy(net, NFPROTO_INET, info->data);
1817        for (i = 0; i < CT_LIMIT_HASH_BUCKETS; ++i) {
1818                struct hlist_head *head = &info->limits[i];
1819                struct ovs_ct_limit *ct_limit;
1820
1821                hlist_for_each_entry_rcu(ct_limit, head, hlist_node)
1822                        kfree_rcu(ct_limit, rcu);
1823        }
1824        kfree(ovs_net->ct_limit_info->limits);
1825        kfree(ovs_net->ct_limit_info);
1826}
1827
1828static struct sk_buff *
1829ovs_ct_limit_cmd_reply_start(struct genl_info *info, u8 cmd,
1830                             struct ovs_header **ovs_reply_header)
1831{
1832        struct ovs_header *ovs_header = info->userhdr;
1833        struct sk_buff *skb;
1834
1835        skb = genlmsg_new(NLMSG_DEFAULT_SIZE, GFP_KERNEL);
1836        if (!skb)
1837                return ERR_PTR(-ENOMEM);
1838
1839        *ovs_reply_header = genlmsg_put(skb, info->snd_portid,
1840                                        info->snd_seq,
1841                                        &dp_ct_limit_genl_family, 0, cmd);
1842
1843        if (!*ovs_reply_header) {
1844                nlmsg_free(skb);
1845                return ERR_PTR(-EMSGSIZE);
1846        }
1847        (*ovs_reply_header)->dp_ifindex = ovs_header->dp_ifindex;
1848
1849        return skb;
1850}
1851
1852static bool check_zone_id(int zone_id, u16 *pzone)
1853{
1854        if (zone_id >= 0 && zone_id <= 65535) {
1855                *pzone = (u16)zone_id;
1856                return true;
1857        }
1858        return false;
1859}
1860
1861static int ovs_ct_limit_set_zone_limit(struct nlattr *nla_zone_limit,
1862                                       struct ovs_ct_limit_info *info)
1863{
1864        struct ovs_zone_limit *zone_limit;
1865        int rem;
1866        u16 zone;
1867
1868        rem = NLA_ALIGN(nla_len(nla_zone_limit));
1869        zone_limit = (struct ovs_zone_limit *)nla_data(nla_zone_limit);
1870
1871        while (rem >= sizeof(*zone_limit)) {
1872                if (unlikely(zone_limit->zone_id ==
1873                                OVS_ZONE_LIMIT_DEFAULT_ZONE)) {
1874                        ovs_lock();
1875                        info->default_limit = zone_limit->limit;
1876                        ovs_unlock();
1877                } else if (unlikely(!check_zone_id(
1878                                zone_limit->zone_id, &zone))) {
1879                        OVS_NLERR(true, "zone id is out of range");
1880                } else {
1881                        struct ovs_ct_limit *ct_limit;
1882
1883                        ct_limit = kmalloc(sizeof(*ct_limit), GFP_KERNEL);
1884                        if (!ct_limit)
1885                                return -ENOMEM;
1886
1887                        ct_limit->zone = zone;
1888                        ct_limit->limit = zone_limit->limit;
1889
1890                        ovs_lock();
1891                        ct_limit_set(info, ct_limit);
1892                        ovs_unlock();
1893                }
1894                rem -= NLA_ALIGN(sizeof(*zone_limit));
1895                zone_limit = (struct ovs_zone_limit *)((u8 *)zone_limit +
1896                                NLA_ALIGN(sizeof(*zone_limit)));
1897        }
1898
1899        if (rem)
1900                OVS_NLERR(true, "set zone limit has %d unknown bytes", rem);
1901
1902        return 0;
1903}
1904
1905static int ovs_ct_limit_del_zone_limit(struct nlattr *nla_zone_limit,
1906                                       struct ovs_ct_limit_info *info)
1907{
1908        struct ovs_zone_limit *zone_limit;
1909        int rem;
1910        u16 zone;
1911
1912        rem = NLA_ALIGN(nla_len(nla_zone_limit));
1913        zone_limit = (struct ovs_zone_limit *)nla_data(nla_zone_limit);
1914
1915        while (rem >= sizeof(*zone_limit)) {
1916                if (unlikely(zone_limit->zone_id ==
1917                                OVS_ZONE_LIMIT_DEFAULT_ZONE)) {
1918                        ovs_lock();
1919                        info->default_limit = OVS_CT_LIMIT_DEFAULT;
1920                        ovs_unlock();
1921                } else if (unlikely(!check_zone_id(
1922                                zone_limit->zone_id, &zone))) {
1923                        OVS_NLERR(true, "zone id is out of range");
1924                } else {
1925                        ovs_lock();
1926                        ct_limit_del(info, zone);
1927                        ovs_unlock();
1928                }
1929                rem -= NLA_ALIGN(sizeof(*zone_limit));
1930                zone_limit = (struct ovs_zone_limit *)((u8 *)zone_limit +
1931                                NLA_ALIGN(sizeof(*zone_limit)));
1932        }
1933
1934        if (rem)
1935                OVS_NLERR(true, "del zone limit has %d unknown bytes", rem);
1936
1937        return 0;
1938}
1939
1940static int ovs_ct_limit_get_default_limit(struct ovs_ct_limit_info *info,
1941                                          struct sk_buff *reply)
1942{
1943        struct ovs_zone_limit zone_limit;
1944        int err;
1945
1946        zone_limit.zone_id = OVS_ZONE_LIMIT_DEFAULT_ZONE;
1947        zone_limit.limit = info->default_limit;
1948        err = nla_put_nohdr(reply, sizeof(zone_limit), &zone_limit);
1949        if (err)
1950                return err;
1951
1952        return 0;
1953}
1954
1955static int __ovs_ct_limit_get_zone_limit(struct net *net,
1956                                         struct nf_conncount_data *data,
1957                                         u16 zone_id, u32 limit,
1958                                         struct sk_buff *reply)
1959{
1960        struct nf_conntrack_zone ct_zone;
1961        struct ovs_zone_limit zone_limit;
1962        u32 conncount_key = zone_id;
1963
1964        zone_limit.zone_id = zone_id;
1965        zone_limit.limit = limit;
1966        nf_ct_zone_init(&ct_zone, zone_id, NF_CT_DEFAULT_ZONE_DIR, 0);
1967
1968        zone_limit.count = nf_conncount_count(net, data, &conncount_key, NULL,
1969                                              &ct_zone);
1970        return nla_put_nohdr(reply, sizeof(zone_limit), &zone_limit);
1971}
1972
1973static int ovs_ct_limit_get_zone_limit(struct net *net,
1974                                       struct nlattr *nla_zone_limit,
1975                                       struct ovs_ct_limit_info *info,
1976                                       struct sk_buff *reply)
1977{
1978        struct ovs_zone_limit *zone_limit;
1979        int rem, err;
1980        u32 limit;
1981        u16 zone;
1982
1983        rem = NLA_ALIGN(nla_len(nla_zone_limit));
1984        zone_limit = (struct ovs_zone_limit *)nla_data(nla_zone_limit);
1985
1986        while (rem >= sizeof(*zone_limit)) {
1987                if (unlikely(zone_limit->zone_id ==
1988                                OVS_ZONE_LIMIT_DEFAULT_ZONE)) {
1989                        err = ovs_ct_limit_get_default_limit(info, reply);
1990                        if (err)
1991                                return err;
1992                } else if (unlikely(!check_zone_id(zone_limit->zone_id,
1993                                                        &zone))) {
1994                        OVS_NLERR(true, "zone id is out of range");
1995                } else {
1996                        rcu_read_lock();
1997                        limit = ct_limit_get(info, zone);
1998                        rcu_read_unlock();
1999
2000                        err = __ovs_ct_limit_get_zone_limit(
2001                                net, info->data, zone, limit, reply);
2002                        if (err)
2003                                return err;
2004                }
2005                rem -= NLA_ALIGN(sizeof(*zone_limit));
2006                zone_limit = (struct ovs_zone_limit *)((u8 *)zone_limit +
2007                                NLA_ALIGN(sizeof(*zone_limit)));
2008        }
2009
2010        if (rem)
2011                OVS_NLERR(true, "get zone limit has %d unknown bytes", rem);
2012
2013        return 0;
2014}
2015
2016static int ovs_ct_limit_get_all_zone_limit(struct net *net,
2017                                           struct ovs_ct_limit_info *info,
2018                                           struct sk_buff *reply)
2019{
2020        struct ovs_ct_limit *ct_limit;
2021        struct hlist_head *head;
2022        int i, err = 0;
2023
2024        err = ovs_ct_limit_get_default_limit(info, reply);
2025        if (err)
2026                return err;
2027
2028        rcu_read_lock();
2029        for (i = 0; i < CT_LIMIT_HASH_BUCKETS; ++i) {
2030                head = &info->limits[i];
2031                hlist_for_each_entry_rcu(ct_limit, head, hlist_node) {
2032                        err = __ovs_ct_limit_get_zone_limit(net, info->data,
2033                                ct_limit->zone, ct_limit->limit, reply);
2034                        if (err)
2035                                goto exit_err;
2036                }
2037        }
2038
2039exit_err:
2040        rcu_read_unlock();
2041        return err;
2042}
2043
2044static int ovs_ct_limit_cmd_set(struct sk_buff *skb, struct genl_info *info)
2045{
2046        struct nlattr **a = info->attrs;
2047        struct sk_buff *reply;
2048        struct ovs_header *ovs_reply_header;
2049        struct ovs_net *ovs_net = net_generic(sock_net(skb->sk), ovs_net_id);
2050        struct ovs_ct_limit_info *ct_limit_info = ovs_net->ct_limit_info;
2051        int err;
2052
2053        reply = ovs_ct_limit_cmd_reply_start(info, OVS_CT_LIMIT_CMD_SET,
2054                                             &ovs_reply_header);
2055        if (IS_ERR(reply))
2056                return PTR_ERR(reply);
2057
2058        if (!a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]) {
2059                err = -EINVAL;
2060                goto exit_err;
2061        }
2062
2063        err = ovs_ct_limit_set_zone_limit(a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT],
2064                                          ct_limit_info);
2065        if (err)
2066                goto exit_err;
2067
2068        static_branch_enable(&ovs_ct_limit_enabled);
2069
2070        genlmsg_end(reply, ovs_reply_header);
2071        return genlmsg_reply(reply, info);
2072
2073exit_err:
2074        nlmsg_free(reply);
2075        return err;
2076}
2077
2078static int ovs_ct_limit_cmd_del(struct sk_buff *skb, struct genl_info *info)
2079{
2080        struct nlattr **a = info->attrs;
2081        struct sk_buff *reply;
2082        struct ovs_header *ovs_reply_header;
2083        struct ovs_net *ovs_net = net_generic(sock_net(skb->sk), ovs_net_id);
2084        struct ovs_ct_limit_info *ct_limit_info = ovs_net->ct_limit_info;
2085        int err;
2086
2087        reply = ovs_ct_limit_cmd_reply_start(info, OVS_CT_LIMIT_CMD_DEL,
2088                                             &ovs_reply_header);
2089        if (IS_ERR(reply))
2090                return PTR_ERR(reply);
2091
2092        if (!a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]) {
2093                err = -EINVAL;
2094                goto exit_err;
2095        }
2096
2097        err = ovs_ct_limit_del_zone_limit(a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT],
2098                                          ct_limit_info);
2099        if (err)
2100                goto exit_err;
2101
2102        genlmsg_end(reply, ovs_reply_header);
2103        return genlmsg_reply(reply, info);
2104
2105exit_err:
2106        nlmsg_free(reply);
2107        return err;
2108}
2109
2110static int ovs_ct_limit_cmd_get(struct sk_buff *skb, struct genl_info *info)
2111{
2112        struct nlattr **a = info->attrs;
2113        struct nlattr *nla_reply;
2114        struct sk_buff *reply;
2115        struct ovs_header *ovs_reply_header;
2116        struct net *net = sock_net(skb->sk);
2117        struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
2118        struct ovs_ct_limit_info *ct_limit_info = ovs_net->ct_limit_info;
2119        int err;
2120
2121        reply = ovs_ct_limit_cmd_reply_start(info, OVS_CT_LIMIT_CMD_GET,
2122                                             &ovs_reply_header);
2123        if (IS_ERR(reply))
2124                return PTR_ERR(reply);
2125
2126        nla_reply = nla_nest_start(reply, OVS_CT_LIMIT_ATTR_ZONE_LIMIT);
2127
2128        if (a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT]) {
2129                err = ovs_ct_limit_get_zone_limit(
2130                        net, a[OVS_CT_LIMIT_ATTR_ZONE_LIMIT], ct_limit_info,
2131                        reply);
2132                if (err)
2133                        goto exit_err;
2134        } else {
2135                err = ovs_ct_limit_get_all_zone_limit(net, ct_limit_info,
2136                                                      reply);
2137                if (err)
2138                        goto exit_err;
2139        }
2140
2141        nla_nest_end(reply, nla_reply);
2142        genlmsg_end(reply, ovs_reply_header);
2143        return genlmsg_reply(reply, info);
2144
2145exit_err:
2146        nlmsg_free(reply);
2147        return err;
2148}
2149
2150static struct genl_ops ct_limit_genl_ops[] = {
2151        { .cmd = OVS_CT_LIMIT_CMD_SET,
2152                .flags = GENL_ADMIN_PERM, /* Requires CAP_NET_ADMIN
2153                                           * privilege. */
2154                .policy = ct_limit_policy,
2155                .doit = ovs_ct_limit_cmd_set,
2156        },
2157        { .cmd = OVS_CT_LIMIT_CMD_DEL,
2158                .flags = GENL_ADMIN_PERM, /* Requires CAP_NET_ADMIN
2159                                           * privilege. */
2160                .policy = ct_limit_policy,
2161                .doit = ovs_ct_limit_cmd_del,
2162        },
2163        { .cmd = OVS_CT_LIMIT_CMD_GET,
2164                .flags = 0,               /* OK for unprivileged users. */
2165                .policy = ct_limit_policy,
2166                .doit = ovs_ct_limit_cmd_get,
2167        },
2168};
2169
2170static const struct genl_multicast_group ovs_ct_limit_multicast_group = {
2171        .name = OVS_CT_LIMIT_MCGROUP,
2172};
2173
2174struct genl_family dp_ct_limit_genl_family __ro_after_init = {
2175        .hdrsize = sizeof(struct ovs_header),
2176        .name = OVS_CT_LIMIT_FAMILY,
2177        .version = OVS_CT_LIMIT_VERSION,
2178        .maxattr = OVS_CT_LIMIT_ATTR_MAX,
2179        .netnsok = true,
2180        .parallel_ops = true,
2181        .ops = ct_limit_genl_ops,
2182        .n_ops = ARRAY_SIZE(ct_limit_genl_ops),
2183        .mcgrps = &ovs_ct_limit_multicast_group,
2184        .n_mcgrps = 1,
2185        .module = THIS_MODULE,
2186};
2187#endif
2188
2189int ovs_ct_init(struct net *net)
2190{
2191        unsigned int n_bits = sizeof(struct ovs_key_ct_labels) * BITS_PER_BYTE;
2192        struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
2193
2194        if (nf_connlabels_get(net, n_bits - 1)) {
2195                ovs_net->xt_label = false;
2196                OVS_NLERR(true, "Failed to set connlabel length");
2197        } else {
2198                ovs_net->xt_label = true;
2199        }
2200
2201#if     IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
2202        return ovs_ct_limit_init(net, ovs_net);
2203#else
2204        return 0;
2205#endif
2206}
2207
2208void ovs_ct_exit(struct net *net)
2209{
2210        struct ovs_net *ovs_net = net_generic(net, ovs_net_id);
2211
2212#if     IS_ENABLED(CONFIG_NETFILTER_CONNCOUNT)
2213        ovs_ct_limit_exit(net, ovs_net);
2214#endif
2215
2216        if (ovs_net->xt_label)
2217                nf_connlabels_put(net);
2218}
2219