This file is indexed.

/usr/src/openvswitch-1.4.0/lib/flow.c is in openvswitch-datapath-dkms 1.4.0-1ubuntu1.

This file is owned by root:root, with mode 0o644.

The actual contents of the file can be viewed below.

   1
   2
   3
   4
   5
   6
   7
   8
   9
  10
  11
  12
  13
  14
  15
  16
  17
  18
  19
  20
  21
  22
  23
  24
  25
  26
  27
  28
  29
  30
  31
  32
  33
  34
  35
  36
  37
  38
  39
  40
  41
  42
  43
  44
  45
  46
  47
  48
  49
  50
  51
  52
  53
  54
  55
  56
  57
  58
  59
  60
  61
  62
  63
  64
  65
  66
  67
  68
  69
  70
  71
  72
  73
  74
  75
  76
  77
  78
  79
  80
  81
  82
  83
  84
  85
  86
  87
  88
  89
  90
  91
  92
  93
  94
  95
  96
  97
  98
  99
 100
 101
 102
 103
 104
 105
 106
 107
 108
 109
 110
 111
 112
 113
 114
 115
 116
 117
 118
 119
 120
 121
 122
 123
 124
 125
 126
 127
 128
 129
 130
 131
 132
 133
 134
 135
 136
 137
 138
 139
 140
 141
 142
 143
 144
 145
 146
 147
 148
 149
 150
 151
 152
 153
 154
 155
 156
 157
 158
 159
 160
 161
 162
 163
 164
 165
 166
 167
 168
 169
 170
 171
 172
 173
 174
 175
 176
 177
 178
 179
 180
 181
 182
 183
 184
 185
 186
 187
 188
 189
 190
 191
 192
 193
 194
 195
 196
 197
 198
 199
 200
 201
 202
 203
 204
 205
 206
 207
 208
 209
 210
 211
 212
 213
 214
 215
 216
 217
 218
 219
 220
 221
 222
 223
 224
 225
 226
 227
 228
 229
 230
 231
 232
 233
 234
 235
 236
 237
 238
 239
 240
 241
 242
 243
 244
 245
 246
 247
 248
 249
 250
 251
 252
 253
 254
 255
 256
 257
 258
 259
 260
 261
 262
 263
 264
 265
 266
 267
 268
 269
 270
 271
 272
 273
 274
 275
 276
 277
 278
 279
 280
 281
 282
 283
 284
 285
 286
 287
 288
 289
 290
 291
 292
 293
 294
 295
 296
 297
 298
 299
 300
 301
 302
 303
 304
 305
 306
 307
 308
 309
 310
 311
 312
 313
 314
 315
 316
 317
 318
 319
 320
 321
 322
 323
 324
 325
 326
 327
 328
 329
 330
 331
 332
 333
 334
 335
 336
 337
 338
 339
 340
 341
 342
 343
 344
 345
 346
 347
 348
 349
 350
 351
 352
 353
 354
 355
 356
 357
 358
 359
 360
 361
 362
 363
 364
 365
 366
 367
 368
 369
 370
 371
 372
 373
 374
 375
 376
 377
 378
 379
 380
 381
 382
 383
 384
 385
 386
 387
 388
 389
 390
 391
 392
 393
 394
 395
 396
 397
 398
 399
 400
 401
 402
 403
 404
 405
 406
 407
 408
 409
 410
 411
 412
 413
 414
 415
 416
 417
 418
 419
 420
 421
 422
 423
 424
 425
 426
 427
 428
 429
 430
 431
 432
 433
 434
 435
 436
 437
 438
 439
 440
 441
 442
 443
 444
 445
 446
 447
 448
 449
 450
 451
 452
 453
 454
 455
 456
 457
 458
 459
 460
 461
 462
 463
 464
 465
 466
 467
 468
 469
 470
 471
 472
 473
 474
 475
 476
 477
 478
 479
 480
 481
 482
 483
 484
 485
 486
 487
 488
 489
 490
 491
 492
 493
 494
 495
 496
 497
 498
 499
 500
 501
 502
 503
 504
 505
 506
 507
 508
 509
 510
 511
 512
 513
 514
 515
 516
 517
 518
 519
 520
 521
 522
 523
 524
 525
 526
 527
 528
 529
 530
 531
 532
 533
 534
 535
 536
 537
 538
 539
 540
 541
 542
 543
 544
 545
 546
 547
 548
 549
 550
 551
 552
 553
 554
 555
 556
 557
 558
 559
 560
 561
 562
 563
 564
 565
 566
 567
 568
 569
 570
 571
 572
 573
 574
 575
 576
 577
 578
 579
 580
 581
 582
 583
 584
 585
 586
 587
 588
 589
 590
 591
 592
 593
 594
 595
 596
 597
 598
 599
 600
 601
 602
 603
 604
 605
 606
 607
 608
 609
 610
 611
 612
 613
 614
 615
 616
 617
 618
 619
 620
 621
 622
 623
 624
 625
 626
 627
 628
 629
 630
 631
 632
 633
 634
 635
 636
 637
 638
 639
 640
 641
 642
 643
 644
 645
 646
 647
 648
 649
 650
 651
 652
 653
 654
 655
 656
 657
 658
 659
 660
 661
 662
 663
 664
 665
 666
 667
 668
 669
 670
 671
 672
 673
 674
 675
 676
 677
 678
 679
 680
 681
 682
 683
 684
 685
 686
 687
 688
 689
 690
 691
 692
 693
 694
 695
 696
 697
 698
 699
 700
 701
 702
 703
 704
 705
 706
 707
 708
 709
 710
 711
 712
 713
 714
 715
 716
 717
 718
 719
 720
 721
 722
 723
 724
 725
 726
 727
 728
 729
 730
 731
 732
 733
 734
 735
 736
 737
 738
 739
 740
 741
 742
 743
 744
 745
 746
 747
 748
 749
 750
 751
 752
 753
 754
 755
 756
 757
 758
 759
 760
 761
 762
 763
 764
 765
 766
 767
 768
 769
 770
 771
 772
 773
 774
 775
 776
 777
 778
 779
 780
 781
 782
 783
 784
 785
 786
 787
 788
 789
 790
 791
 792
 793
 794
 795
 796
 797
 798
 799
 800
 801
 802
 803
 804
 805
 806
 807
 808
 809
 810
 811
 812
 813
 814
 815
 816
 817
 818
 819
 820
 821
 822
 823
 824
 825
 826
 827
 828
 829
 830
 831
 832
 833
 834
 835
 836
 837
 838
 839
 840
 841
 842
 843
 844
 845
 846
 847
 848
 849
 850
 851
 852
 853
 854
 855
 856
 857
 858
 859
 860
 861
 862
 863
 864
 865
 866
 867
 868
 869
 870
 871
 872
 873
 874
 875
 876
 877
 878
 879
 880
 881
 882
 883
 884
 885
 886
 887
 888
 889
 890
 891
 892
 893
 894
 895
 896
 897
 898
 899
 900
 901
 902
 903
 904
 905
 906
 907
 908
 909
 910
 911
 912
 913
 914
 915
 916
 917
 918
 919
 920
 921
 922
 923
 924
 925
 926
 927
 928
 929
 930
 931
 932
 933
 934
 935
 936
 937
 938
 939
 940
 941
 942
 943
 944
 945
 946
 947
 948
 949
 950
 951
 952
 953
 954
 955
 956
 957
 958
 959
 960
 961
 962
 963
 964
 965
 966
 967
 968
 969
 970
 971
 972
 973
 974
 975
 976
 977
 978
 979
 980
 981
 982
 983
 984
 985
 986
 987
 988
 989
 990
 991
 992
 993
 994
 995
 996
 997
 998
 999
1000
1001
1002
1003
1004
1005
1006
1007
1008
1009
1010
1011
1012
1013
1014
1015
1016
1017
1018
1019
1020
1021
1022
1023
1024
1025
1026
1027
1028
1029
1030
1031
1032
1033
1034
1035
1036
1037
1038
1039
1040
1041
1042
1043
1044
1045
1046
1047
1048
1049
1050
1051
1052
1053
1054
/*
 * Copyright (c) 2008, 2009, 2010, 2011 Nicira Networks.
 *
 * Licensed under the Apache License, Version 2.0 (the "License");
 * you may not use this file except in compliance with the License.
 * You may obtain a copy of the License at:
 *
 *     http://www.apache.org/licenses/LICENSE-2.0
 *
 * Unless required by applicable law or agreed to in writing, software
 * distributed under the License is distributed on an "AS IS" BASIS,
 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
 * See the License for the specific language governing permissions and
 * limitations under the License.
 */
#include <config.h>
#include <sys/types.h>
#include "flow.h"
#include <assert.h>
#include <errno.h>
#include <inttypes.h>
#include <netinet/in.h>
#include <netinet/icmp6.h>
#include <netinet/ip6.h>
#include <stdlib.h>
#include <string.h>
#include "byte-order.h"
#include "coverage.h"
#include "dynamic-string.h"
#include "hash.h"
#include "ofpbuf.h"
#include "openflow/openflow.h"
#include "packets.h"
#include "unaligned.h"
#include "vlog.h"

VLOG_DEFINE_THIS_MODULE(flow);

COVERAGE_DEFINE(flow_extract);

static struct arp_eth_header *
pull_arp(struct ofpbuf *packet)
{
    return ofpbuf_try_pull(packet, ARP_ETH_HEADER_LEN);
}

static struct ip_header *
pull_ip(struct ofpbuf *packet)
{
    if (packet->size >= IP_HEADER_LEN) {
        struct ip_header *ip = packet->data;
        int ip_len = IP_IHL(ip->ip_ihl_ver) * 4;
        if (ip_len >= IP_HEADER_LEN && packet->size >= ip_len) {
            return ofpbuf_pull(packet, ip_len);
        }
    }
    return NULL;
}

static struct tcp_header *
pull_tcp(struct ofpbuf *packet)
{
    if (packet->size >= TCP_HEADER_LEN) {
        struct tcp_header *tcp = packet->data;
        int tcp_len = TCP_OFFSET(tcp->tcp_ctl) * 4;
        if (tcp_len >= TCP_HEADER_LEN && packet->size >= tcp_len) {
            return ofpbuf_pull(packet, tcp_len);
        }
    }
    return NULL;
}

static struct udp_header *
pull_udp(struct ofpbuf *packet)
{
    return ofpbuf_try_pull(packet, UDP_HEADER_LEN);
}

static struct icmp_header *
pull_icmp(struct ofpbuf *packet)
{
    return ofpbuf_try_pull(packet, ICMP_HEADER_LEN);
}

static struct icmp6_hdr *
pull_icmpv6(struct ofpbuf *packet)
{
    return ofpbuf_try_pull(packet, sizeof(struct icmp6_hdr));
}

static void
parse_vlan(struct ofpbuf *b, struct flow *flow)
{
    struct qtag_prefix {
        ovs_be16 eth_type;      /* ETH_TYPE_VLAN */
        ovs_be16 tci;
    };

    if (b->size >= sizeof(struct qtag_prefix) + sizeof(ovs_be16)) {
        struct qtag_prefix *qp = ofpbuf_pull(b, sizeof *qp);
        flow->vlan_tci = qp->tci | htons(VLAN_CFI);
    }
}

static ovs_be16
parse_ethertype(struct ofpbuf *b)
{
    struct llc_snap_header *llc;
    ovs_be16 proto;

    proto = *(ovs_be16 *) ofpbuf_pull(b, sizeof proto);
    if (ntohs(proto) >= ETH_TYPE_MIN) {
        return proto;
    }

    if (b->size < sizeof *llc) {
        return htons(FLOW_DL_TYPE_NONE);
    }

    llc = b->data;
    if (llc->llc.llc_dsap != LLC_DSAP_SNAP
        || llc->llc.llc_ssap != LLC_SSAP_SNAP
        || llc->llc.llc_cntl != LLC_CNTL_SNAP
        || memcmp(llc->snap.snap_org, SNAP_ORG_ETHERNET,
                  sizeof llc->snap.snap_org)) {
        return htons(FLOW_DL_TYPE_NONE);
    }

    ofpbuf_pull(b, sizeof *llc);
    return llc->snap.snap_type;
}

static int
parse_ipv6(struct ofpbuf *packet, struct flow *flow)
{
    const struct ip6_hdr *nh;
    ovs_be32 tc_flow;
    int nexthdr;

    nh = ofpbuf_try_pull(packet, sizeof *nh);
    if (!nh) {
        return EINVAL;
    }

    nexthdr = nh->ip6_nxt;

    flow->ipv6_src = nh->ip6_src;
    flow->ipv6_dst = nh->ip6_dst;

    tc_flow = get_unaligned_be32(&nh->ip6_flow);
    flow->nw_tos = ntohl(tc_flow) >> 20;
    flow->ipv6_label = tc_flow & htonl(IPV6_LABEL_MASK);
    flow->nw_ttl = nh->ip6_hlim;
    flow->nw_proto = IPPROTO_NONE;

    while (1) {
        if ((nexthdr != IPPROTO_HOPOPTS)
                && (nexthdr != IPPROTO_ROUTING)
                && (nexthdr != IPPROTO_DSTOPTS)
                && (nexthdr != IPPROTO_AH)
                && (nexthdr != IPPROTO_FRAGMENT)) {
            /* It's either a terminal header (e.g., TCP, UDP) or one we
             * don't understand.  In either case, we're done with the
             * packet, so use it to fill in 'nw_proto'. */
            break;
        }

        /* We only verify that at least 8 bytes of the next header are
         * available, but many of these headers are longer.  Ensure that
         * accesses within the extension header are within those first 8
         * bytes. All extension headers are required to be at least 8
         * bytes. */
        if (packet->size < 8) {
            return EINVAL;
        }

        if ((nexthdr == IPPROTO_HOPOPTS)
                || (nexthdr == IPPROTO_ROUTING)
                || (nexthdr == IPPROTO_DSTOPTS)) {
            /* These headers, while different, have the fields we care about
             * in the same location and with the same interpretation. */
            const struct ip6_ext *ext_hdr = (struct ip6_ext *)packet->data;
            nexthdr = ext_hdr->ip6e_nxt;
            if (!ofpbuf_try_pull(packet, (ext_hdr->ip6e_len + 1) * 8)) {
                return EINVAL;
            }
        } else if (nexthdr == IPPROTO_AH) {
            /* A standard AH definition isn't available, but the fields
             * we care about are in the same location as the generic
             * option header--only the header length is calculated
             * differently. */
            const struct ip6_ext *ext_hdr = (struct ip6_ext *)packet->data;
            nexthdr = ext_hdr->ip6e_nxt;
            if (!ofpbuf_try_pull(packet, (ext_hdr->ip6e_len + 2) * 4)) {
               return EINVAL;
            }
        } else if (nexthdr == IPPROTO_FRAGMENT) {
            const struct ip6_frag *frag_hdr = (struct ip6_frag *)packet->data;

            nexthdr = frag_hdr->ip6f_nxt;
            if (!ofpbuf_try_pull(packet, sizeof *frag_hdr)) {
                return EINVAL;
            }

            /* We only process the first fragment. */
            flow->nw_frag = FLOW_NW_FRAG_ANY;
            if ((frag_hdr->ip6f_offlg & IP6F_OFF_MASK) != htons(0)) {
                flow->nw_frag |= FLOW_NW_FRAG_LATER;
                nexthdr = IPPROTO_FRAGMENT;
                break;
            }
        }
    }

    flow->nw_proto = nexthdr;
    return 0;
}

static void
parse_tcp(struct ofpbuf *packet, struct ofpbuf *b, struct flow *flow)
{
    const struct tcp_header *tcp = pull_tcp(b);
    if (tcp) {
        flow->tp_src = tcp->tcp_src;
        flow->tp_dst = tcp->tcp_dst;
        packet->l7 = b->data;
    }
}

static void
parse_udp(struct ofpbuf *packet, struct ofpbuf *b, struct flow *flow)
{
    const struct udp_header *udp = pull_udp(b);
    if (udp) {
        flow->tp_src = udp->udp_src;
        flow->tp_dst = udp->udp_dst;
        packet->l7 = b->data;
    }
}

static bool
parse_icmpv6(struct ofpbuf *b, struct flow *flow)
{
    const struct icmp6_hdr *icmp = pull_icmpv6(b);

    if (!icmp) {
        return false;
    }

    /* The ICMPv6 type and code fields use the 16-bit transport port
     * fields, so we need to store them in 16-bit network byte order. */
    flow->tp_src = htons(icmp->icmp6_type);
    flow->tp_dst = htons(icmp->icmp6_code);

    if (icmp->icmp6_code == 0 &&
        (icmp->icmp6_type == ND_NEIGHBOR_SOLICIT ||
         icmp->icmp6_type == ND_NEIGHBOR_ADVERT)) {
        const struct in6_addr *nd_target;

        nd_target = ofpbuf_try_pull(b, sizeof *nd_target);
        if (!nd_target) {
            return false;
        }
        flow->nd_target = *nd_target;

        while (b->size >= 8) {
            /* The minimum size of an option is 8 bytes, which also is
             * the size of Ethernet link-layer options. */
            const struct nd_opt_hdr *nd_opt = b->data;
            int opt_len = nd_opt->nd_opt_len * 8;

            if (!opt_len || opt_len > b->size) {
                goto invalid;
            }

            /* Store the link layer address if the appropriate option is
             * provided.  It is considered an error if the same link
             * layer option is specified twice. */
            if (nd_opt->nd_opt_type == ND_OPT_SOURCE_LINKADDR
                    && opt_len == 8) {
                if (eth_addr_is_zero(flow->arp_sha)) {
                    memcpy(flow->arp_sha, nd_opt + 1, ETH_ADDR_LEN);
                } else {
                    goto invalid;
                }
            } else if (nd_opt->nd_opt_type == ND_OPT_TARGET_LINKADDR
                    && opt_len == 8) {
                if (eth_addr_is_zero(flow->arp_tha)) {
                    memcpy(flow->arp_tha, nd_opt + 1, ETH_ADDR_LEN);
                } else {
                    goto invalid;
                }
            }

            if (!ofpbuf_try_pull(b, opt_len)) {
                goto invalid;
            }
        }
    }

    return true;

invalid:
    memset(&flow->nd_target, 0, sizeof(flow->nd_target));
    memset(flow->arp_sha, 0, sizeof(flow->arp_sha));
    memset(flow->arp_tha, 0, sizeof(flow->arp_tha));

    return false;

}

/* Initializes 'flow' members from 'packet', 'tun_id', and 'ofp_in_port'.
 * Initializes 'packet' header pointers as follows:
 *
 *    - packet->l2 to the start of the Ethernet header.
 *
 *    - packet->l3 to just past the Ethernet header, or just past the
 *      vlan_header if one is present, to the first byte of the payload of the
 *      Ethernet frame.
 *
 *    - packet->l4 to just past the IPv4 header, if one is present and has a
 *      correct length, and otherwise NULL.
 *
 *    - packet->l7 to just past the TCP or UDP or ICMP header, if one is
 *      present and has a correct length, and otherwise NULL.
 */
void
flow_extract(struct ofpbuf *packet, uint32_t priority, ovs_be64 tun_id,
             uint16_t ofp_in_port, struct flow *flow)
{
    struct ofpbuf b = *packet;
    struct eth_header *eth;

    COVERAGE_INC(flow_extract);

    memset(flow, 0, sizeof *flow);
    flow->tun_id = tun_id;
    flow->in_port = ofp_in_port;
    flow->priority = priority;

    packet->l2 = b.data;
    packet->l3 = NULL;
    packet->l4 = NULL;
    packet->l7 = NULL;

    if (b.size < sizeof *eth) {
        return;
    }

    /* Link layer. */
    eth = b.data;
    memcpy(flow->dl_src, eth->eth_src, ETH_ADDR_LEN);
    memcpy(flow->dl_dst, eth->eth_dst, ETH_ADDR_LEN);

    /* dl_type, vlan_tci. */
    ofpbuf_pull(&b, ETH_ADDR_LEN * 2);
    if (eth->eth_type == htons(ETH_TYPE_VLAN)) {
        parse_vlan(&b, flow);
    }
    flow->dl_type = parse_ethertype(&b);

    /* Network layer. */
    packet->l3 = b.data;
    if (flow->dl_type == htons(ETH_TYPE_IP)) {
        const struct ip_header *nh = pull_ip(&b);
        if (nh) {
            packet->l4 = b.data;

            flow->nw_src = get_unaligned_be32(&nh->ip_src);
            flow->nw_dst = get_unaligned_be32(&nh->ip_dst);
            flow->nw_proto = nh->ip_proto;

            flow->nw_tos = nh->ip_tos;
            if (IP_IS_FRAGMENT(nh->ip_frag_off)) {
                flow->nw_frag = FLOW_NW_FRAG_ANY;
                if (nh->ip_frag_off & htons(IP_FRAG_OFF_MASK)) {
                    flow->nw_frag |= FLOW_NW_FRAG_LATER;
                }
            }
            flow->nw_ttl = nh->ip_ttl;

            if (!(nh->ip_frag_off & htons(IP_FRAG_OFF_MASK))) {
                if (flow->nw_proto == IPPROTO_TCP) {
                    parse_tcp(packet, &b, flow);
                } else if (flow->nw_proto == IPPROTO_UDP) {
                    parse_udp(packet, &b, flow);
                } else if (flow->nw_proto == IPPROTO_ICMP) {
                    const struct icmp_header *icmp = pull_icmp(&b);
                    if (icmp) {
                        flow->tp_src = htons(icmp->icmp_type);
                        flow->tp_dst = htons(icmp->icmp_code);
                        packet->l7 = b.data;
                    }
                }
            }
        }
    } else if (flow->dl_type == htons(ETH_TYPE_IPV6)) {
        if (parse_ipv6(&b, flow)) {
            return;
        }

        packet->l4 = b.data;
        if (flow->nw_proto == IPPROTO_TCP) {
            parse_tcp(packet, &b, flow);
        } else if (flow->nw_proto == IPPROTO_UDP) {
            parse_udp(packet, &b, flow);
        } else if (flow->nw_proto == IPPROTO_ICMPV6) {
            if (parse_icmpv6(&b, flow)) {
                packet->l7 = b.data;
            }
        }
    } else if (flow->dl_type == htons(ETH_TYPE_ARP)) {
        const struct arp_eth_header *arp = pull_arp(&b);
        if (arp && arp->ar_hrd == htons(1)
            && arp->ar_pro == htons(ETH_TYPE_IP)
            && arp->ar_hln == ETH_ADDR_LEN
            && arp->ar_pln == 4) {
            /* We only match on the lower 8 bits of the opcode. */
            if (ntohs(arp->ar_op) <= 0xff) {
                flow->nw_proto = ntohs(arp->ar_op);
            }

            if ((flow->nw_proto == ARP_OP_REQUEST)
                || (flow->nw_proto == ARP_OP_REPLY)) {
                flow->nw_src = arp->ar_spa;
                flow->nw_dst = arp->ar_tpa;
                memcpy(flow->arp_sha, arp->ar_sha, ETH_ADDR_LEN);
                memcpy(flow->arp_tha, arp->ar_tha, ETH_ADDR_LEN);
            }
        }
    }
}

/* For every bit of a field that is wildcarded in 'wildcards', sets the
 * corresponding bit in 'flow' to zero. */
void
flow_zero_wildcards(struct flow *flow, const struct flow_wildcards *wildcards)
{
    const flow_wildcards_t wc = wildcards->wildcards;
    int i;

    BUILD_ASSERT_DECL(FLOW_WC_SEQ == 7);

    for (i = 0; i < FLOW_N_REGS; i++) {
        flow->regs[i] &= wildcards->reg_masks[i];
    }
    flow->tun_id &= wildcards->tun_id_mask;
    flow->nw_src &= wildcards->nw_src_mask;
    flow->nw_dst &= wildcards->nw_dst_mask;
    if (wc & FWW_IN_PORT) {
        flow->in_port = 0;
    }
    flow->vlan_tci &= wildcards->vlan_tci_mask;
    if (wc & FWW_DL_TYPE) {
        flow->dl_type = htons(0);
    }
    if (wc & FWW_TP_SRC) {
        flow->tp_src = htons(0);
    }
    if (wc & FWW_TP_DST) {
        flow->tp_dst = htons(0);
    }
    if (wc & FWW_DL_SRC) {
        memset(flow->dl_src, 0, sizeof flow->dl_src);
    }
    if (wc & FWW_DL_DST) {
        flow->dl_dst[0] &= 0x01;
        memset(&flow->dl_dst[1], 0, 5);
    }
    if (wc & FWW_ETH_MCAST) {
        flow->dl_dst[0] &= 0xfe;
    }
    if (wc & FWW_NW_PROTO) {
        flow->nw_proto = 0;
    }
    if (wc & FWW_IPV6_LABEL) {
        flow->ipv6_label = htonl(0);
    }
    if (wc & FWW_NW_DSCP) {
        flow->nw_tos &= ~IP_DSCP_MASK;
    }
    if (wc & FWW_NW_ECN) {
        flow->nw_tos &= ~IP_ECN_MASK;
    }
    if (wc & FWW_NW_TTL) {
        flow->nw_ttl = 0;
    }
    flow->nw_frag &= wildcards->nw_frag_mask;
    if (wc & FWW_ARP_SHA) {
        memset(flow->arp_sha, 0, sizeof flow->arp_sha);
    }
    if (wc & FWW_ARP_THA) {
        memset(flow->arp_tha, 0, sizeof flow->arp_tha);
    }
    flow->ipv6_src = ipv6_addr_bitand(&flow->ipv6_src,
            &wildcards->ipv6_src_mask);
    flow->ipv6_dst = ipv6_addr_bitand(&flow->ipv6_dst,
            &wildcards->ipv6_dst_mask);
    if (wc & FWW_ND_TARGET) {
        memset(&flow->nd_target, 0, sizeof flow->nd_target);
    }
    flow->priority = 0;
}

char *
flow_to_string(const struct flow *flow)
{
    struct ds ds = DS_EMPTY_INITIALIZER;
    flow_format(&ds, flow);
    return ds_cstr(&ds);
}

void
flow_format(struct ds *ds, const struct flow *flow)
{
    ds_put_format(ds, "priority%"PRIu32
                      ":tunnel%#"PRIx64
                      ":in_port%04"PRIx16,
                      flow->priority,
                      ntohll(flow->tun_id),
                      flow->in_port);

    ds_put_format(ds, ":tci(");
    if (flow->vlan_tci) {
        ds_put_format(ds, "vlan%"PRIu16",pcp%d",
                      vlan_tci_to_vid(flow->vlan_tci),
                      vlan_tci_to_pcp(flow->vlan_tci));
    } else {
        ds_put_char(ds, '0');
    }
    ds_put_format(ds, ") mac"ETH_ADDR_FMT"->"ETH_ADDR_FMT
                      " type%04"PRIx16,
                  ETH_ADDR_ARGS(flow->dl_src),
                  ETH_ADDR_ARGS(flow->dl_dst),
                  ntohs(flow->dl_type));

    if (flow->dl_type == htons(ETH_TYPE_IPV6)) {
        ds_put_format(ds, " label%#"PRIx32" proto%"PRIu8" tos%#"PRIx8
                          " ttl%"PRIu8" ipv6",
                      ntohl(flow->ipv6_label), flow->nw_proto,
                      flow->nw_tos, flow->nw_ttl);
        print_ipv6_addr(ds, &flow->ipv6_src);
        ds_put_cstr(ds, "->");
        print_ipv6_addr(ds, &flow->ipv6_dst);

    } else {
        ds_put_format(ds, " proto%"PRIu8" tos%#"PRIx8" ttl%"PRIu8
                          " ip"IP_FMT"->"IP_FMT,
                      flow->nw_proto, flow->nw_tos, flow->nw_ttl,
                      IP_ARGS(&flow->nw_src), IP_ARGS(&flow->nw_dst));
    }
    if (flow->nw_frag) {
        ds_put_format(ds, " frag(%s)",
                      flow->nw_frag == FLOW_NW_FRAG_ANY ? "first"
                      : flow->nw_frag == (FLOW_NW_FRAG_ANY | FLOW_NW_FRAG_LATER)
                      ? "later" : "<error>");
    }
    if (flow->tp_src || flow->tp_dst) {
        ds_put_format(ds, " port%"PRIu16"->%"PRIu16,
                ntohs(flow->tp_src), ntohs(flow->tp_dst));
    }
    if (!eth_addr_is_zero(flow->arp_sha) || !eth_addr_is_zero(flow->arp_tha)) {
        ds_put_format(ds, " arp_ha"ETH_ADDR_FMT"->"ETH_ADDR_FMT,
                ETH_ADDR_ARGS(flow->arp_sha),
                ETH_ADDR_ARGS(flow->arp_tha));
    }
}

void
flow_print(FILE *stream, const struct flow *flow)
{
    char *s = flow_to_string(flow);
    fputs(s, stream);
    free(s);
}

/* flow_wildcards functions. */

/* Initializes 'wc' as a set of wildcards that matches every packet. */
void
flow_wildcards_init_catchall(struct flow_wildcards *wc)
{
    BUILD_ASSERT_DECL(FLOW_WC_SEQ == 7);

    wc->wildcards = FWW_ALL;
    wc->tun_id_mask = htonll(0);
    wc->nw_src_mask = htonl(0);
    wc->nw_dst_mask = htonl(0);
    wc->ipv6_src_mask = in6addr_any;
    wc->ipv6_dst_mask = in6addr_any;
    memset(wc->reg_masks, 0, sizeof wc->reg_masks);
    wc->vlan_tci_mask = htons(0);
    wc->nw_frag_mask = 0;
    memset(wc->zeros, 0, sizeof wc->zeros);
}

/* Initializes 'wc' as an exact-match set of wildcards; that is, 'wc' does not
 * wildcard any bits or fields. */
void
flow_wildcards_init_exact(struct flow_wildcards *wc)
{
    BUILD_ASSERT_DECL(FLOW_WC_SEQ == 7);

    wc->wildcards = 0;
    wc->tun_id_mask = htonll(UINT64_MAX);
    wc->nw_src_mask = htonl(UINT32_MAX);
    wc->nw_dst_mask = htonl(UINT32_MAX);
    wc->ipv6_src_mask = in6addr_exact;
    wc->ipv6_dst_mask = in6addr_exact;
    memset(wc->reg_masks, 0xff, sizeof wc->reg_masks);
    wc->vlan_tci_mask = htons(UINT16_MAX);
    wc->nw_frag_mask = UINT8_MAX;
    memset(wc->zeros, 0, sizeof wc->zeros);
}

/* Returns true if 'wc' is exact-match, false if 'wc' wildcards any bits or
 * fields. */
bool
flow_wildcards_is_exact(const struct flow_wildcards *wc)
{
    int i;

    BUILD_ASSERT_DECL(FLOW_WC_SEQ == 7);

    if (wc->wildcards
        || wc->tun_id_mask != htonll(UINT64_MAX)
        || wc->nw_src_mask != htonl(UINT32_MAX)
        || wc->nw_dst_mask != htonl(UINT32_MAX)
        || wc->vlan_tci_mask != htons(UINT16_MAX)
        || !ipv6_mask_is_exact(&wc->ipv6_src_mask)
        || !ipv6_mask_is_exact(&wc->ipv6_dst_mask)
        || wc->nw_frag_mask != UINT8_MAX) {
        return false;
    }

    for (i = 0; i < FLOW_N_REGS; i++) {
        if (wc->reg_masks[i] != UINT32_MAX) {
            return false;
        }
    }

    return true;
}

/* Returns true if 'wc' matches every packet, false if 'wc' fixes any bits or
 * fields. */
bool
flow_wildcards_is_catchall(const struct flow_wildcards *wc)
{
    int i;

    BUILD_ASSERT_DECL(FLOW_WC_SEQ == 7);

    if (wc->wildcards != FWW_ALL
        || wc->tun_id_mask != htonll(0)
        || wc->nw_src_mask != htonl(0)
        || wc->nw_dst_mask != htonl(0)
        || wc->vlan_tci_mask != htons(0)
        || !ipv6_mask_is_any(&wc->ipv6_src_mask)
        || !ipv6_mask_is_any(&wc->ipv6_dst_mask)
        || wc->nw_frag_mask != 0) {
        return false;
    }

    for (i = 0; i < FLOW_N_REGS; i++) {
        if (wc->reg_masks[i] != 0) {
            return false;
        }
    }

    return true;
}

/* Initializes 'dst' as the combination of wildcards in 'src1' and 'src2'.
 * That is, a bit or a field is wildcarded in 'dst' if it is wildcarded in
 * 'src1' or 'src2' or both.  */
void
flow_wildcards_combine(struct flow_wildcards *dst,
                       const struct flow_wildcards *src1,
                       const struct flow_wildcards *src2)
{
    int i;

    dst->wildcards = src1->wildcards | src2->wildcards;
    dst->tun_id_mask = src1->tun_id_mask & src2->tun_id_mask;
    dst->nw_src_mask = src1->nw_src_mask & src2->nw_src_mask;
    dst->nw_dst_mask = src1->nw_dst_mask & src2->nw_dst_mask;
    dst->ipv6_src_mask = ipv6_addr_bitand(&src1->ipv6_src_mask,
                                        &src2->ipv6_src_mask);
    dst->ipv6_dst_mask = ipv6_addr_bitand(&src1->ipv6_dst_mask,
                                        &src2->ipv6_dst_mask);
    for (i = 0; i < FLOW_N_REGS; i++) {
        dst->reg_masks[i] = src1->reg_masks[i] & src2->reg_masks[i];
    }
    dst->vlan_tci_mask = src1->vlan_tci_mask & src2->vlan_tci_mask;
}

/* Returns a hash of the wildcards in 'wc'. */
uint32_t
flow_wildcards_hash(const struct flow_wildcards *wc, uint32_t basis)
{
    /* If you change struct flow_wildcards and thereby trigger this
     * assertion, please check that the new struct flow_wildcards has no holes
     * in it before you update the assertion. */
    BUILD_ASSERT_DECL(sizeof *wc == 60 + FLOW_N_REGS * 4);
    return hash_bytes(wc, sizeof *wc, basis);
}

/* Returns true if 'a' and 'b' represent the same wildcards, false if they are
 * different. */
bool
flow_wildcards_equal(const struct flow_wildcards *a,
                     const struct flow_wildcards *b)
{
    int i;

    if (a->wildcards != b->wildcards
        || a->tun_id_mask != b->tun_id_mask
        || a->nw_src_mask != b->nw_src_mask
        || a->nw_dst_mask != b->nw_dst_mask
        || a->vlan_tci_mask != b->vlan_tci_mask
        || !ipv6_addr_equals(&a->ipv6_src_mask, &b->ipv6_src_mask)
        || !ipv6_addr_equals(&a->ipv6_dst_mask, &b->ipv6_dst_mask)) {
        return false;
    }

    for (i = 0; i < FLOW_N_REGS; i++) {
        if (a->reg_masks[i] != b->reg_masks[i]) {
            return false;
        }
    }

    return true;
}

/* Returns true if at least one bit or field is wildcarded in 'a' but not in
 * 'b', false otherwise. */
bool
flow_wildcards_has_extra(const struct flow_wildcards *a,
                         const struct flow_wildcards *b)
{
    int i;
    struct in6_addr ipv6_masked;

    for (i = 0; i < FLOW_N_REGS; i++) {
        if ((a->reg_masks[i] & b->reg_masks[i]) != b->reg_masks[i]) {
            return true;
        }
    }

    ipv6_masked = ipv6_addr_bitand(&a->ipv6_src_mask, &b->ipv6_src_mask);
    if (!ipv6_addr_equals(&ipv6_masked, &b->ipv6_src_mask)) {
        return true;
    }

    ipv6_masked = ipv6_addr_bitand(&a->ipv6_dst_mask, &b->ipv6_dst_mask);
    if (!ipv6_addr_equals(&ipv6_masked, &b->ipv6_dst_mask)) {
        return true;
    }

    return (a->wildcards & ~b->wildcards
            || (a->tun_id_mask & b->tun_id_mask) != b->tun_id_mask
            || (a->nw_src_mask & b->nw_src_mask) != b->nw_src_mask
            || (a->nw_dst_mask & b->nw_dst_mask) != b->nw_dst_mask
            || (a->vlan_tci_mask & b->vlan_tci_mask) != b->vlan_tci_mask);
}

/* Sets the wildcard mask for register 'idx' in 'wc' to 'mask'.
 * (A 0-bit indicates a wildcard bit.) */
void
flow_wildcards_set_reg_mask(struct flow_wildcards *wc, int idx, uint32_t mask)
{
    wc->reg_masks[idx] = mask;
}

/* Returns the wildcard bitmask for the Ethernet destination address
 * that 'wc' specifies.  The bitmask has a 0 in each bit that is wildcarded
 * and a 1 in each bit that must match.  */
const uint8_t *
flow_wildcards_to_dl_dst_mask(flow_wildcards_t wc)
{
    static const uint8_t    no_wild[] = {0xff, 0xff, 0xff, 0xff, 0xff, 0xff};
    static const uint8_t  addr_wild[] = {0x01, 0x00, 0x00, 0x00, 0x00, 0x00};
    static const uint8_t mcast_wild[] = {0xfe, 0xff, 0xff, 0xff, 0xff, 0xff};
    static const uint8_t   all_wild[] = {0x00, 0x00, 0x00, 0x00, 0x00, 0x00};

    switch (wc & (FWW_DL_DST | FWW_ETH_MCAST)) {
    case 0:                             return no_wild;
    case FWW_DL_DST:                    return addr_wild;
    case FWW_ETH_MCAST:                 return mcast_wild;
    case FWW_DL_DST | FWW_ETH_MCAST:    return all_wild;
    }
    NOT_REACHED();
}

/* Returns true if 'mask' is a valid wildcard bitmask for the Ethernet
 * destination address.  Valid bitmasks are either all-bits-0 or all-bits-1,
 * except that the multicast bit may differ from the rest of the bits.  So,
 * there are four possible valid bitmasks:
 *
 *  - 00:00:00:00:00:00
 *  - 01:00:00:00:00:00
 *  - fe:ff:ff:ff:ff:ff
 *  - ff:ff:ff:ff:ff:ff
 *
 * All other bitmasks are invalid. */
bool
flow_wildcards_is_dl_dst_mask_valid(const uint8_t mask[ETH_ADDR_LEN])
{
    switch (mask[0]) {
    case 0x00:
    case 0x01:
        return (mask[1] | mask[2] | mask[3] | mask[4] | mask[5]) == 0x00;

    case 0xfe:
    case 0xff:
        return (mask[1] & mask[2] & mask[3] & mask[4] & mask[5]) == 0xff;

    default:
        return false;
    }
}

/* Returns 'wc' with the FWW_DL_DST and FWW_ETH_MCAST bits modified
 * appropriately to match 'mask'.
 *
 * This function will assert-fail if 'mask' is invalid.  Only 'mask' values
 * accepted by flow_wildcards_is_dl_dst_mask_valid() are allowed. */
flow_wildcards_t
flow_wildcards_set_dl_dst_mask(flow_wildcards_t wc,
                               const uint8_t mask[ETH_ADDR_LEN])
{
    assert(flow_wildcards_is_dl_dst_mask_valid(mask));

    switch (mask[0]) {
    case 0x00:
        return wc | FWW_DL_DST | FWW_ETH_MCAST;

    case 0x01:
        return (wc | FWW_DL_DST) & ~FWW_ETH_MCAST;

    case 0xfe:
        return (wc & ~FWW_DL_DST) | FWW_ETH_MCAST;

    case 0xff:
        return wc & ~(FWW_DL_DST | FWW_ETH_MCAST);

    default:
        NOT_REACHED();
    }
}

/* Hashes 'flow' based on its L2 through L4 protocol information. */
uint32_t
flow_hash_symmetric_l4(const struct flow *flow, uint32_t basis)
{
    struct {
        union {
            ovs_be32 ipv4_addr;
            struct in6_addr ipv6_addr;
        };
        ovs_be16 eth_type;
        ovs_be16 vlan_tci;
        ovs_be16 tp_addr;
        uint8_t eth_addr[ETH_ADDR_LEN];
        uint8_t ip_proto;
    } fields;

    int i;

    memset(&fields, 0, sizeof fields);
    for (i = 0; i < ETH_ADDR_LEN; i++) {
        fields.eth_addr[i] = flow->dl_src[i] ^ flow->dl_dst[i];
    }
    fields.vlan_tci = flow->vlan_tci & htons(VLAN_VID_MASK);
    fields.eth_type = flow->dl_type;

    /* UDP source and destination port are not taken into account because they
     * will not necessarily be symmetric in a bidirectional flow. */
    if (fields.eth_type == htons(ETH_TYPE_IP)) {
        fields.ipv4_addr = flow->nw_src ^ flow->nw_dst;
        fields.ip_proto = flow->nw_proto;
        if (fields.ip_proto == IPPROTO_TCP) {
            fields.tp_addr = flow->tp_src ^ flow->tp_dst;
        }
    } else if (fields.eth_type == htons(ETH_TYPE_IPV6)) {
        const uint8_t *a = &flow->ipv6_src.s6_addr[0];
        const uint8_t *b = &flow->ipv6_dst.s6_addr[0];
        uint8_t *ipv6_addr = &fields.ipv6_addr.s6_addr[0];

        for (i=0; i<16; i++) {
            ipv6_addr[i] = a[i] ^ b[i];
        }
        fields.ip_proto = flow->nw_proto;
        if (fields.ip_proto == IPPROTO_TCP) {
            fields.tp_addr = flow->tp_src ^ flow->tp_dst;
        }
    }
    return hash_bytes(&fields, sizeof fields, basis);
}

/* Hashes the portions of 'flow' designated by 'fields'. */
uint32_t
flow_hash_fields(const struct flow *flow, enum nx_hash_fields fields,
                 uint16_t basis)
{
    switch (fields) {

    case NX_HASH_FIELDS_ETH_SRC:
        return hash_bytes(flow->dl_src, sizeof flow->dl_src, basis);

    case NX_HASH_FIELDS_SYMMETRIC_L4:
        return flow_hash_symmetric_l4(flow, basis);
    }

    NOT_REACHED();
}

/* Returns a string representation of 'fields'. */
const char *
flow_hash_fields_to_str(enum nx_hash_fields fields)
{
    switch (fields) {
    case NX_HASH_FIELDS_ETH_SRC: return "eth_src";
    case NX_HASH_FIELDS_SYMMETRIC_L4: return "symmetric_l4";
    default: return "<unknown>";
    }
}

/* Returns true if the value of 'fields' is supported. Otherwise false. */
bool
flow_hash_fields_valid(enum nx_hash_fields fields)
{
    return fields == NX_HASH_FIELDS_ETH_SRC
        || fields == NX_HASH_FIELDS_SYMMETRIC_L4;
}

/* Sets the VLAN VID that 'flow' matches to 'vid', which is interpreted as an
 * OpenFlow 1.0 "dl_vlan" value:
 *
 *      - If it is in the range 0...4095, 'flow->vlan_tci' is set to match
 *        that VLAN.  Any existing PCP match is unchanged (it becomes 0 if
 *        'flow' previously matched packets without a VLAN header).
 *
 *      - If it is OFP_VLAN_NONE, 'flow->vlan_tci' is set to match a packet
 *        without a VLAN tag.
 *
 *      - Other values of 'vid' should not be used. */
void
flow_set_vlan_vid(struct flow *flow, ovs_be16 vid)
{
    if (vid == htons(OFP_VLAN_NONE)) {
        flow->vlan_tci = htons(0);
    } else {
        vid &= htons(VLAN_VID_MASK);
        flow->vlan_tci &= ~htons(VLAN_VID_MASK);
        flow->vlan_tci |= htons(VLAN_CFI) | vid;
    }
}

/* Sets the VLAN PCP that 'flow' matches to 'pcp', which should be in the
 * range 0...7.
 *
 * This function has no effect on the VLAN ID that 'flow' matches.
 *
 * After calling this function, 'flow' will not match packets without a VLAN
 * header. */
void
flow_set_vlan_pcp(struct flow *flow, uint8_t pcp)
{
    pcp &= 0x07;
    flow->vlan_tci &= ~htons(VLAN_PCP_MASK);
    flow->vlan_tci |= htons((pcp << VLAN_PCP_SHIFT) | VLAN_CFI);
}

/* Puts into 'b' a packet that flow_extract() would parse as having the given
 * 'flow'.
 *
 * (This is useful only for testing, obviously, and the packet isn't really
 * valid.  It hasn't got any checksums filled in, for one, and lots of fields
 * are just zeroed.) */
void
flow_compose(struct ofpbuf *b, const struct flow *flow)
{
    eth_compose(b, flow->dl_dst, flow->dl_src, ntohs(flow->dl_type), 0);
    if (flow->dl_type == htons(FLOW_DL_TYPE_NONE)) {
        struct eth_header *eth = b->l2;
        eth->eth_type = htons(b->size);
        return;
    }

    if (flow->vlan_tci & htons(VLAN_CFI)) {
        eth_push_vlan(b, flow->vlan_tci & ~htons(VLAN_CFI));
    }

    if (flow->dl_type == htons(ETH_TYPE_IP)) {
        struct ip_header *ip;

        b->l3 = ip = ofpbuf_put_zeros(b, sizeof *ip);
        ip->ip_ihl_ver = IP_IHL_VER(5, 4);
        ip->ip_tos = flow->nw_tos;
        ip->ip_proto = flow->nw_proto;
        ip->ip_src = flow->nw_src;
        ip->ip_dst = flow->nw_dst;

        if (flow->nw_frag & FLOW_NW_FRAG_ANY) {
            ip->ip_frag_off |= htons(IP_MORE_FRAGMENTS);
            if (flow->nw_frag & FLOW_NW_FRAG_LATER) {
                ip->ip_frag_off |= htons(100);
            }
        }
        if (!(flow->nw_frag & FLOW_NW_FRAG_ANY)
            || !(flow->nw_frag & FLOW_NW_FRAG_LATER)) {
            if (flow->nw_proto == IPPROTO_TCP) {
                struct tcp_header *tcp;

                b->l4 = tcp = ofpbuf_put_zeros(b, sizeof *tcp);
                tcp->tcp_src = flow->tp_src;
                tcp->tcp_dst = flow->tp_dst;
            } else if (flow->nw_proto == IPPROTO_UDP) {
                struct udp_header *udp;

                b->l4 = udp = ofpbuf_put_zeros(b, sizeof *udp);
                udp->udp_src = flow->tp_src;
                udp->udp_dst = flow->tp_dst;
            } else if (flow->nw_proto == IPPROTO_ICMP) {
                struct icmp_header *icmp;

                b->l4 = icmp = ofpbuf_put_zeros(b, sizeof *icmp);
                icmp->icmp_type = ntohs(flow->tp_src);
                icmp->icmp_code = ntohs(flow->tp_dst);
            }
        }
    } else if (flow->dl_type == htons(ETH_TYPE_IPV6)) {
        /* XXX */
    } else if (flow->dl_type == htons(ETH_TYPE_ARP)) {
        struct arp_eth_header *arp;

        b->l3 = arp = ofpbuf_put_zeros(b, sizeof *arp);
        arp->ar_hrd = htons(1);
        arp->ar_pro = htons(ETH_TYPE_IP);
        arp->ar_hln = ETH_ADDR_LEN;
        arp->ar_pln = 4;
        arp->ar_op = htons(flow->nw_proto);

        if (flow->nw_proto == ARP_OP_REQUEST ||
            flow->nw_proto == ARP_OP_REPLY) {
            arp->ar_spa = flow->nw_src;
            arp->ar_tpa = flow->nw_dst;
            memcpy(arp->ar_sha, flow->arp_sha, ETH_ADDR_LEN);
            memcpy(arp->ar_tha, flow->arp_tha, ETH_ADDR_LEN);
        }
    }
}