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/*
 * Copyright (c) 2016 Cisco and/or its affiliates.
 * 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.
 */
#ifndef included_acl_h
#define included_acl_h

#include <vnet/vnet.h>
#include <vnet/ip/ip.h>
#include <vnet/l2/l2_output.h>


#include <vppinfra/hash.h>
#include <vppinfra/error.h>
#include <vppinfra/bitmap.h>
#include <vppinfra/elog.h>
#include <vppinfra/bihash_48_8.h>
#include <vppinfra/bihash_40_8.h>

#include "fa_node.h"
#include "hash_lookup_types.h"
#include "lookup_context.h"

#define  ACL_PLUGIN_VERSION_MAJOR 1
#define  ACL_PLUGIN_VERSION_MINOR 3

#define UDP_SESSION_IDLE_TIMEOUT_SEC 600
#define TCP_SESSION_IDLE_TIMEOUT_SEC (3600*24)
#define TCP_SESSION_TRANSIENT_TIMEOUT_SEC 120

#define SESSION_PURGATORY_TIMEOUT_USEC 10

#define ACL_PLUGIN_HASH_LOOKUP_HEAP_SIZE (2 << 25)
#define ACL_PLUGIN_HASH_LOOKUP_HASH_BUCKETS 65536
#define ACL_PLUGIN_HASH_LOOKUP_HASH_MEMORY (2 << 25)

extern vlib_node_registration_t acl_in_node;
extern vlib_node_registration_t acl_out_node;

void input_acl_packet_match(u32 sw_if_index, vlib_buffer_t * b0, u32 *nextp, u32 *acl_match_p, u32 *rule_match_p, u32 *trace_bitmap);
void output_acl_packet_match(u32 sw_if_index, vlib_buffer_t * b0, u32 *nextp, u32 *acl_match_p, u32 *rule_match_p, u32 *trace_bitmap);

enum acl_timeout_e {
  ACL_TIMEOUT_UNUSED = 0,
  ACL_TIMEOUT_UDP_IDLE,
  ACL_TIMEOUT_TCP_IDLE,
  ACL_TIMEOUT_TCP_TRANSIENT,
  ACL_N_USER_TIMEOUTS,
  ACL_TIMEOUT_PURGATORY = ACL_N_USER_TIMEOUTS, /* a special-case queue for deletion-in-progress sessions */
  ACL_N_TIMEOUTS
};


enum address_e { IP4, IP6 };
typedef struct
{
  enum address_e type;
  union {
    ip6_address_t ip6;
    ip4_address_t ip4;
  } addr;
} address_t;

/*
 * ACL rules
 */
typedef struct
{
  u8 is_permit;
  u8 is_ipv6;
  ip46_address_t src;
  u8 src_prefixlen;
  ip46_address_t dst;
  u8 dst_prefixlen;
  u8 proto;
  u16 src_port_or_type_first;
  u16 src_port_or_type_last;
  u16 dst_port_or_code_first;
  u16 dst_port_or_code_last;
  u8 tcp_flags_value;
  u8 tcp_flags_mask;
} acl_rule_t;

typedef struct
{
  u8 is_permit;
  u8 is_ipv6;
  u8 src_mac[6];
  u8 src_mac_mask[6];
  ip46_address_t src_ip_addr;
  u8 src_prefixlen;
} macip_acl_rule_t;

/*
 * ACL
 */
typedef struct
{
  /** Required for pool_get_aligned */
  CLIB_CACHE_LINE_ALIGN_MARK(cacheline0);
  u8 tag[64];
  u32 count;
  acl_rule_t *rules;
} acl_list_t;

typedef struct
{
  /** Required for pool_get_aligned */
  CLIB_CACHE_LINE_ALIGN_MARK(cacheline0);
  u8 tag[64];
  u32 count;
  macip_acl_rule_t *rules;
  /* References to the classifier tables that will enforce the rules */
  u32 ip4_table_index;
  u32 ip6_table_index;
  u32 l2_table_index;
  /* outacl classifier tables */
  u32 out_ip4_table_index;
  u32 out_ip6_table_index;
  u32 out_l2_table_index;
} macip_acl_list_t;

/*
 * An element describing a particular configuration fo the mask,
 * and how many times it has been used.
 */
typedef struct
{
  /** Required for pool_get_aligned */
  CLIB_CACHE_LINE_ALIGN_MARK(cacheline0);
  fa_5tuple_t mask;
  u32 refcount;
} ace_mask_type_entry_t;

typedef struct {
  /* mheap to hold all the ACL module related allocations, other than hash */
  void *acl_mheap;
  uword acl_mheap_size;

  /* API message ID base */
  u16 msg_id_base;

  /* The pool of users of ACL lookup contexts */
  acl_lookup_context_user_t *acl_users;
  /* The pool of ACL lookup contexts */
  acl_lookup_context_t *acl_lookup_contexts;

  acl_list_t *acls;	/* Pool of ACLs */
  hash_acl_info_t *hash_acl_infos; /* corresponding hash matching housekeeping info */
  clib_bihash_48_8_t acl_lookup_hash; /* ACL lookup hash table. */
  u32 hash_lookup_hash_buckets;
  u32 hash_lookup_hash_memory;

  /* mheap to hold all the miscellaneous allocations related to hash-based lookups */
  void *hash_lookup_mheap;
  uword hash_lookup_mheap_size;
  int acl_lookup_hash_initialized;
/*
  applied_hash_ace_entry_t **input_hash_entry_vec_by_sw_if_index;
  applied_hash_ace_entry_t **output_hash_entry_vec_by_sw_if_index;
  applied_hash_acl_info_t *input_applied_hash_acl_info_by_sw_if_index;
  applied_hash_acl_info_t *output_applied_hash_acl_info_by_sw_if_index;
*/
  applied_hash_ace_entry_t **hash_entry_vec_by_lc_index;
  applied_hash_acl_info_t *applied_hash_acl_info_by_lc_index;

  /* Corresponding lookup context indices for in/out lookups per sw_if_index */
  u32 *input_lc_index_by_sw_if_index;
  u32 *output_lc_index_by_sw_if_index;
  /* context user id for interface ACLs */
  u32 interface_acl_user_id;

  macip_acl_list_t *macip_acls;	/* Pool of MAC-IP ACLs */

  /* ACLs associated with interfaces */
  u32 **input_acl_vec_by_sw_if_index;
  u32 **output_acl_vec_by_sw_if_index;

  /* interfaces on which given ACLs are applied */
  u32 **input_sw_if_index_vec_by_acl;
  u32 **output_sw_if_index_vec_by_acl;

  /* bitmaps 1=sw_if_index has in/out ACL processing enabled */
  uword *in_acl_on_sw_if_index;
  uword *out_acl_on_sw_if_index;

  /* lookup contexts where a given ACL is used */
  u32 **lc_index_vec_by_acl;

  /* input and output policy epochs by interface */
  u32 *input_policy_epoch_by_sw_if_index;
  u32 *output_policy_epoch_by_sw_if_index;

  /* whether we need to take the epoch of the session into account */
  int reclassify_sessions;



  /* Total count of interface+direction pairs enabled */
  u32 fa_total_enabled_count;

  /* Do we use hash-based ACL matching or linear */
  int use_hash_acl_matching;

  /* a pool of all mask types present in all ACEs */
  ace_mask_type_entry_t *ace_mask_type_pool;

  /*
   * Classify tables used to grab the packets for the ACL check,
   * and serving as the 5-tuple session tables at the same time
   */
  u32 *acl_ip4_input_classify_table_by_sw_if_index;
  u32 *acl_ip6_input_classify_table_by_sw_if_index;
  u32 *acl_ip4_output_classify_table_by_sw_if_index;
  u32 *acl_ip6_output_classify_table_by_sw_if_index;

  u32 *acl_dot1q_input_classify_table_by_sw_if_index;
  u32 *acl_dot1ad_input_classify_table_by_sw_if_index;
  u32 *acl_dot1q_output_classify_table_by_sw_if_index;
  u32 *acl_dot1ad_output_classify_table_by_sw_if_index;

  u32 *acl_etype_input_classify_table_by_sw_if_index;
  u32 *acl_etype_output_classify_table_by_sw_if_index;

  u16 **input_etype_whitelist_by_sw_if_index;
  u16 **output_etype_whitelist_by_sw_if_index;

  /* MACIP (input) ACLs associated with the interfaces */
  u32 *macip_acl_by_sw_if_index;

  /* Vector of interfaces on which given MACIP ACLs are applied */
  u32 **sw_if_index_vec_by_macip_acl;

  /* bitmaps when set the processing is enabled on the interface */
  uword *fa_in_acl_on_sw_if_index;
  uword *fa_out_acl_on_sw_if_index;
  /* bihash holding all of the sessions */
  int fa_sessions_hash_is_initialized;
  clib_bihash_40_8_t fa_sessions_hash;
  /* The process node which orcherstrates the cleanup */
  u32 fa_cleaner_node_index;
  /* FA session timeouts, in seconds */
  u32 session_timeout_sec[ACL_N_TIMEOUTS];
  /* total session adds/dels */
  u64 fa_session_total_adds;
  u64 fa_session_total_dels;
  /* how many sessions went into purgatory */
  u64 fa_session_total_deactivations;

  /* L2 datapath glue */

  /* next indices within L2 classifiers for ip4/ip6 fa L2 nodes */
  u32 l2_input_classify_next_acl_ip4;
  u32 l2_input_classify_next_acl_ip6;
  u32 l2_output_classify_next_acl_ip4;
  u32 l2_output_classify_next_acl_ip6;
  /* next node indices for L2 dispatch */
  u32 fa_acl_in_ip4_l2_node_feat_next_node_index[32];
  u32 fa_acl_in_ip6_l2_node_feat_next_node_index[32];
  u32 fa_acl_out_ip4_l2_node_feat_next_node_index[32];
  u32 fa_acl_out_ip6_l2_node_feat_next_node_index[32];

  /* EH values that we can skip over */
  uword *fa_ipv6_known_eh_bitmap;

  /* whether to match L4 ACEs with ports on the non-initial fragment */
  int l4_match_nonfirst_fragment;

  /* conn table per-interface conn table parameters */
  u32 fa_conn_table_hash_num_buckets;
  uword fa_conn_table_hash_memory_size;
  u64 fa_conn_table_max_entries;

  int trace_sessions;
  int trace_acl;

  /*
   * If the cleaner has to delete more than this number
   * of connections, it halves the sleep time.
   */

#define ACL_FA_DEFAULT_MAX_DELETED_SESSIONS_PER_INTERVAL 100
  u64 fa_max_deleted_sessions_per_interval;

  /*
   * If the cleaner deletes less than these connections,
   * it increases the wait time by the "increment"
   */

#define ACL_FA_DEFAULT_MIN_DELETED_SESSIONS_PER_INTERVAL 1
  u64 fa_min_deleted_sessions_per_interval;

#define ACL_FA_DEFAULT_CLEANER_WAIT_TIME_INCREMENT 0.1
  f64 fa_cleaner_wait_time_increment;

  u64 fa_current_cleaner_timer_wait_interval;

  int fa_interrupt_generation;

  /* per-worker data related t conn management */
  acl_fa_per_worker_data_t *per_worker_data;

  /* Configured session timeout */
  u64 session_timeout[ACL_N_TIMEOUTS];


  /* Counters for the cleaner thread */

#define foreach_fa_cleaner_counter                                         \
  _(fa_cleaner_cnt_delete_by_sw_index, "delete_by_sw_index events")        \
  _(fa_cleaner_cnt_delete_by_sw_index_ok, "delete_by_sw_index handled ok") \
  _(fa_cleaner_cnt_unknown_event, "unknown events received")               \
  _(fa_cleaner_cnt_timer_restarted, "session idle timers restarted")       \
  _(fa_cleaner_cnt_wait_with_timeout, "event wait with timeout called")    \
  _(fa_cleaner_cnt_wait_without_timeout, "event wait w/o timeout called")  \
  _(fa_cleaner_cnt_event_cycles, "total event cycles")                     \
/* end of counters */
#define _(id, desc) u32 id;
  foreach_fa_cleaner_counter
#undef _

  /* convenience */
  vlib_main_t * vlib_main;
  vnet_main_t * vnet_main;
  /* logging */
  vlib_log_class_t log_default;
} acl_main_t;

#define acl_log_err(...) \
  vlib_log(VLIB_LOG_LEVEL_ERR, acl_main.log_default, __VA_ARGS__)
#define acl_log_warn(...) \
  vlib_log(VLIB_LOG_LEVEL_WARNING, acl_main.log_default, __VA_ARGS__)
#define acl_log_notice(...) \
  vlib_log(VLIB_LOG_LEVEL_NOTICE, acl_main.log_default, __VA_ARGS__)
#define acl_log_info(...) \
  vlib_log(VLIB_LOG_LEVEL_INFO, acl_main.log_default, __VA_ARGS__)



#define foreach_acl_eh                                          \
   _(HOPBYHOP , 0  , "IPv6ExtHdrHopByHop")                      \
   _(ROUTING  , 43 , "IPv6ExtHdrRouting")                       \
   _(DESTOPT  , 60 , "IPv6ExtHdrDestOpt")                       \
   _(FRAGMENT , 44 , "IPv6ExtHdrFragment")                      \
   _(MOBILITY , 135, "Mobility Header")                         \
   _(HIP      , 139, "Experimental use Host Identity Protocol") \
   _(SHIM6    , 140, "Shim6 Protocol")                          \
   _(EXP1     , 253, "Use for experimentation and testing")     \
   _(EXP2     , 254, "Use for experimentation and testing")

/*

 "No Next Header" is not a header.
 Also, Fragment header needs special processing.

   _(NONEXT   , 59 , "NoNextHdr")                               \


ESP is hiding its internal format, so no point in trying to go past it.

   _(ESP      , 50 , "EncapsulatingSecurityPayload")            \


AH has a special treatment of its length, it is in 32-bit words, not 64-bit words like the rest.

   _(AUTH     , 51 , "Authentication Header")                   \


*/


 typedef enum {
 #define _(N, v, s) ACL_EH_##N = v,
	 foreach_acl_eh
 #undef _
 } acl_eh_t;



extern acl_main_t acl_main;
/*
 * pointer to the above.
 * Needed for some gymnastics to be able to provide
 * the inline functions from this plugin to other plugins.
 */

extern acl_main_t *p_acl_main;

void *acl_plugin_set_heap();


#endif
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#!/usr/bin/env python

import unittest
from socket import AF_INET, AF_INET6, inet_pton

from framework import VppTestCase, VppTestRunner
from vpp_neighbor import VppNeighbor, find_nbr
from vpp_ip_route import VppIpRoute, VppRoutePath, find_route, \
    VppIpTable, DpoProto
from vpp_papi import VppEnum

from scapy.packet import Raw
from scapy.layers.l2 import Ether, ARP, Dot1Q
from scapy.layers.inet import IP, UDP
from scapy.layers.inet6 import IPv6
from scapy.contrib.mpls import MPLS
from scapy.layers.inet6 import IPv6

# not exported by scapy, so redefined here
arp_opts = {"who-has": 1, "is-at": 2}


class ARPTestCase(VppTestCase):
    """ ARP Test Case """

    def setUp(self):
        super(ARPTestCase, self).setUp()

        # create 3 pg interfaces
        self.create_pg_interfaces(range(4))

        # pg0 configured with ip4 and 6 addresses used for input
        # pg1 configured with ip4 and 6 addresses used for output
        # pg2 is unnumbered to pg0
        for i in self.pg_interfaces:
            i.admin_up()

        self.pg0.config_ip4()
        self.pg0.config_ip6()
        self.pg0.resolve_arp()

        self.pg1.config_ip4()
        self.pg1.config_ip6()

        # pg3 in a different VRF
        self.tbl = VppIpTable(self, 1)
        self.tbl.add_vpp_config()

        self.pg3.set_table_ip4(1)
        self.pg3.config_ip4()

    def tearDown(self):
        self.pg0.unconfig_ip4()
        self.pg0.unconfig_ip6()

        self.pg1.unconfig_ip4()
        self.pg1.unconfig_ip6()

        self.pg3.unconfig_ip4()
        self.pg3.set_table_ip4(0)

        for i in self.pg_interfaces:
            i.admin_down()

        super(ARPTestCase, self).tearDown()

    def verify_arp_req(self, rx, smac, sip, dip):
        ether = rx[Ether]
        self.assertEqual(ether.dst, "ff:ff:ff:ff:ff:ff")
        self.assertEqual(ether.src, smac)

        arp = rx[ARP]
        self.assertEqual(arp.hwtype, 1)
        self.assertEqual(arp.ptype, 0x800)
        self.assertEqual(arp.hwlen, 6)
        self.assertEqual(arp.plen, 4)
        self.assertEqual(arp.op, arp_opts["who-has"])
        self.assertEqual(arp.hwsrc, smac)
        self.assertEqual(arp.hwdst, "00:00:00:00:00:00")
        self.assertEqual(arp.psrc, sip)
        self.assertEqual(arp.pdst, dip)

    def verify_arp_resp(self, rx, smac, dmac, sip, dip):
        ether = rx[Ether]
        self.assertEqual(ether.dst, dmac)
        self.assertEqual(ether.src, smac)

        arp = rx[ARP]
        self.assertEqual(arp.hwtype, 1)
        self.assertEqual(arp.ptype, 0x800)
        self.assertEqual(arp.hwlen, 6)
        self.assertEqual(arp.plen, 4)
        self.assertEqual(arp.op, arp_opts["is-at"])
        self.assertEqual(arp.hwsrc, smac)
        self.assertEqual(arp.hwdst, dmac)
        self.assertEqual(arp.psrc, sip)
        self.assertEqual(arp.pdst, dip)

    def verify_arp_vrrp_resp(self, rx, smac, dmac, sip, dip):
        ether = rx[Ether]
        self.assertEqual(ether.dst, dmac)
        self.assertEqual(ether.src, smac)

        arp = rx[ARP]
        self.assertEqual(arp.hwtype, 1)
        self.assertEqual(arp.ptype, 0x800)
        self.assertEqual(arp.hwlen, 6)
        self.assertEqual(arp.plen, 4)
        self.assertEqual(arp.op, arp_opts["is-at"])
        self.assertNotEqual(arp.hwsrc, smac)
        self.assertTrue("00:00:5e:00:01" in arp.hwsrc or
                        "00:00:5E:00:01" in arp.hwsrc)
        self.assertEqual(arp.hwdst, dmac)
        self.assertEqual(arp.psrc, sip)
        self.assertEqual(arp.pdst, dip)

    def verify_ip(self, rx, smac, dmac, sip, dip):
        ether = rx[Ether]
        self.assertEqual(ether.dst, dmac)
        self.assertEqual(ether.src, smac)

        ip = rx[IP]
        self.assertEqual(ip.src, sip)
        self.assertEqual(ip.dst, dip)

    def verify_ip_o_mpls(self, rx, smac, dmac, label, sip, dip):
        ether = rx[Ether]
        self.assertEqual(ether.dst, dmac)
        self.assertEqual(ether.src, smac)

        mpls = rx[MPLS]
        self.assertTrue(mpls.label, label)

        ip = rx[IP]
        self.assertEqual(ip.src, sip)
        self.assertEqual(ip.dst, dip)

    def test_arp(self):
        """ ARP """

        #
        # Generate some hosts on the LAN
        #
        self.pg1.generate_remote_hosts(11)

        #
        # Send IP traffic to one of these unresolved hosts.
        #  expect the generation of an ARP request
        #
        p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
             IP(src=self.pg0.remote_ip4, dst=self.pg1._remote_hosts[1].ip4) /
             UDP(sport=1234, dport=1234) /
             Raw())

        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg1.get_capture(1)

        self.verify_arp_req(rx[0],
                            self.pg1.local_mac,
                            self.pg1.local_ip4,
                            self.pg1._remote_hosts[1].ip4)

        #
        # And a dynamic ARP entry for host 1
        #
        dyn_arp = VppNeighbor(self,
                              self.pg1.sw_if_index,
                              self.pg1.remote_hosts[1].mac,
                              self.pg1.remote_hosts[1].ip4)
        dyn_arp.add_vpp_config()

        #
        # now we expect IP traffic forwarded
        #
        dyn_p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
                 IP(src=self.pg0.remote_ip4,
                    dst=self.pg1._remote_hosts[1].ip4) /
                 UDP(sport=1234, dport=1234) /
                 Raw())

        self.pg0.add_stream(dyn_p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg1.get_capture(1)

        self.verify_ip(rx[0],
                       self.pg1.local_mac,
                       self.pg1.remote_hosts[1].mac,
                       self.pg0.remote_ip4,
                       self.pg1._remote_hosts[1].ip4)

        #
        # And a Static ARP entry for host 2
        #
        static_arp = VppNeighbor(self,
                                 self.pg1.sw_if_index,
                                 self.pg1.remote_hosts[2].mac,
                                 self.pg1.remote_hosts[2].ip4,
                                 is_static=1)
        static_arp.add_vpp_config()

        static_p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
                    IP(src=self.pg0.remote_ip4,
                       dst=self.pg1._remote_hosts[2].ip4) /
                    UDP(sport=1234, dport=1234) /
                    Raw())

        self.pg0.add_stream(static_p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg1.get_capture(1)

        self.verify_ip(rx[0],
                       self.pg1.local_mac,
                       self.pg1.remote_hosts[2].mac,
                       self.pg0.remote_ip4,
                       self.pg1._remote_hosts[2].ip4)

        #
        # flap the link. dynamic ARPs get flush, statics don't
        #
        self.pg1.admin_down()
        self.pg1.admin_up()

        self.pg0.add_stream(static_p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()
        rx = self.pg1.get_capture(1)

        self.verify_ip(rx[0],
                       self.pg1.local_mac,
                       self.pg1.remote_hosts[2].mac,
                       self.pg0.remote_ip4,
                       self.pg1._remote_hosts[2].ip4)

        self.pg0.add_stream(dyn_p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg1.get_capture(1)
        self.verify_arp_req(rx[0],
                            self.pg1.local_mac,
                            self.pg1.local_ip4,
                            self.pg1._remote_hosts[1].ip4)

        #
        # Send an ARP request from one of the so-far unlearned remote hosts
        #
        p = (Ether(dst="ff:ff:ff:ff:ff:ff",
                   src=self.pg1._remote_hosts[3].mac) /
             ARP(op="who-has",
                 hwsrc=self.pg1._remote_hosts[3].mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg1._remote_hosts[3].ip4))

        self.pg1.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg1.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg1.local_mac,
                             self.pg1._remote_hosts[3].mac,
                             self.pg1.local_ip4,
                             self.pg1._remote_hosts[3].ip4)

        #
        # VPP should have learned the mapping for the remote host
        #
        self.assertTrue(find_nbr(self,
                                 self.pg1.sw_if_index,
                                 self.pg1._remote_hosts[3].ip4))
        #
        # Fire in an ARP request before the interface becomes IP enabled
        #
        self.pg2.generate_remote_hosts(4)

        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg2.remote_mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg2.remote_hosts[3].ip4))
        pt = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) /
              Dot1Q(vlan=0) /
              ARP(op="who-has",
                  hwsrc=self.pg2.remote_mac,
                  pdst=self.pg1.local_ip4,
                  psrc=self.pg2.remote_hosts[3].ip4))
        self.send_and_assert_no_replies(self.pg2, p,
                                        "interface not IP enabled")

        #
        # Make pg2 un-numbered to pg1
        #
        self.pg2.set_unnumbered(self.pg1.sw_if_index)

        unnum = self.vapi.ip_unnumbered_dump()
        self.assertEqual(unnum[0].ip_sw_if_index, self.pg1.sw_if_index)
        self.assertEqual(unnum[0].sw_if_index, self.pg2.sw_if_index)

        #
        # We should respond to ARP requests for the unnumbered to address
        # once an attached route to the source is known
        #
        self.send_and_assert_no_replies(
            self.pg2, p,
            "ARP req for unnumbered address - no source")

        attached_host = VppIpRoute(self, self.pg2.remote_hosts[3].ip4, 32,
                                   [VppRoutePath("0.0.0.0",
                                                 self.pg2.sw_if_index)])
        attached_host.add_vpp_config()

        self.pg2.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg2.local_mac,
                             self.pg2.remote_mac,
                             self.pg1.local_ip4,
                             self.pg2.remote_hosts[3].ip4)

        self.pg2.add_stream(pt)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg2.local_mac,
                             self.pg2.remote_mac,
                             self.pg1.local_ip4,
                             self.pg2.remote_hosts[3].ip4)

        #
        # A neighbor entry that has no associated FIB-entry
        #
        arp_no_fib = VppNeighbor(self,
                                 self.pg1.sw_if_index,
                                 self.pg1.remote_hosts[4].mac,
                                 self.pg1.remote_hosts[4].ip4,
                                 is_no_fib_entry=1)
        arp_no_fib.add_vpp_config()

        #
        # check we have the neighbor, but no route
        #
        self.assertTrue(find_nbr(self,
                                 self.pg1.sw_if_index,
                                 self.pg1._remote_hosts[4].ip4))
        self.assertFalse(find_route(self,
                                    self.pg1._remote_hosts[4].ip4,
                                    32))
        #
        # pg2 is unnumbered to pg1, so we can form adjacencies out of pg2
        # from within pg1's subnet
        #
        arp_unnum = VppNeighbor(self,
                                self.pg2.sw_if_index,
                                self.pg1.remote_hosts[5].mac,
                                self.pg1.remote_hosts[5].ip4)
        arp_unnum.add_vpp_config()

        p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
             IP(src=self.pg0.remote_ip4,
                dst=self.pg1._remote_hosts[5].ip4) /
             UDP(sport=1234, dport=1234) /
             Raw())

        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)

        self.verify_ip(rx[0],
                       self.pg2.local_mac,
                       self.pg1.remote_hosts[5].mac,
                       self.pg0.remote_ip4,
                       self.pg1._remote_hosts[5].ip4)

        #
        # ARP requests from hosts in pg1's subnet sent on pg2 are replied to
        # with the unnumbered interface's address as the source
        #
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg2.remote_mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg1.remote_hosts[6].ip4))

        self.pg2.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg2.local_mac,
                             self.pg2.remote_mac,
                             self.pg1.local_ip4,
                             self.pg1.remote_hosts[6].ip4)

        #
        # An attached host route out of pg2 for an undiscovered hosts generates
        # an ARP request with the unnumbered address as the source
        #
        att_unnum = VppIpRoute(self, self.pg1.remote_hosts[7].ip4, 32,
                               [VppRoutePath("0.0.0.0",
                                             self.pg2.sw_if_index)])
        att_unnum.add_vpp_config()

        p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
             IP(src=self.pg0.remote_ip4,
                dst=self.pg1._remote_hosts[7].ip4) /
             UDP(sport=1234, dport=1234) /
             Raw())

        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)

        self.verify_arp_req(rx[0],
                            self.pg2.local_mac,
                            self.pg1.local_ip4,
                            self.pg1._remote_hosts[7].ip4)

        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg2.remote_mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg1.remote_hosts[7].ip4))

        self.pg2.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg2.local_mac,
                             self.pg2.remote_mac,
                             self.pg1.local_ip4,
                             self.pg1.remote_hosts[7].ip4)

        #
        # An attached host route as yet unresolved out of pg2 for an
        # undiscovered host, an ARP requests begets a response.
        #
        att_unnum1 = VppIpRoute(self, self.pg1.remote_hosts[8].ip4, 32,
                                [VppRoutePath("0.0.0.0",
                                              self.pg2.sw_if_index)])
        att_unnum1.add_vpp_config()

        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg2.remote_mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg1.remote_hosts[8].ip4))

        self.pg2.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg2.local_mac,
                             self.pg2.remote_mac,
                             self.pg1.local_ip4,
                             self.pg1.remote_hosts[8].ip4)

        #
        # Send an ARP request from one of the so-far unlearned remote hosts
        # with a VLAN0 tag
        #
        p = (Ether(dst="ff:ff:ff:ff:ff:ff",
                   src=self.pg1._remote_hosts[9].mac) /
             Dot1Q(vlan=0) /
             ARP(op="who-has",
                 hwsrc=self.pg1._remote_hosts[9].mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg1._remote_hosts[9].ip4))

        self.pg1.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg1.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg1.local_mac,
                             self.pg1._remote_hosts[9].mac,
                             self.pg1.local_ip4,
                             self.pg1._remote_hosts[9].ip4)

        #
        # Add a hierachy of routes for a host in the sub-net.
        # Should still get an ARP resp since the cover is attached
        #
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg1.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg1.remote_mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg1.remote_hosts[10].ip4))

        r1 = VppIpRoute(self, self.pg1.remote_hosts[10].ip4, 30,
                        [VppRoutePath(self.pg1.remote_hosts[10].ip4,
                                      self.pg1.sw_if_index)])
        r1.add_vpp_config()

        self.pg1.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()
        rx = self.pg1.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg1.local_mac,
                             self.pg1.remote_mac,
                             self.pg1.local_ip4,
                             self.pg1.remote_hosts[10].ip4)

        r2 = VppIpRoute(self, self.pg1.remote_hosts[10].ip4, 32,
                        [VppRoutePath(self.pg1.remote_hosts[10].ip4,
                                      self.pg1.sw_if_index)])
        r2.add_vpp_config()

        self.pg1.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()
        rx = self.pg1.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg1.local_mac,
                             self.pg1.remote_mac,
                             self.pg1.local_ip4,
                             self.pg1.remote_hosts[10].ip4)

        #
        # add an ARP entry that's not on the sub-net and so whose
        # adj-fib fails the refinement check. then send an ARP request
        # from that source
        #
        a1 = VppNeighbor(self,
                         self.pg0.sw_if_index,
                         self.pg0.remote_mac,
                         "100.100.100.50")
        a1.add_vpp_config()

        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg0.remote_mac,
                 psrc="100.100.100.50",
                 pdst=self.pg0.remote_ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req for from failed adj-fib")

        #
        # ERROR Cases
        #  1 - don't respond to ARP request for address not within the
        #      interface's sub-net
        #  1b - nor within the unnumbered subnet
        #  1c - nor within the subnet of a different interface
        #
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg0.remote_mac,
                 pdst="10.10.10.3",
                 psrc=self.pg0.remote_ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req for non-local destination")
        self.assertFalse(find_nbr(self,
                                  self.pg0.sw_if_index,
                                  "10.10.10.3"))

        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg2.remote_mac,
                 pdst="10.10.10.3",
                 psrc=self.pg1.remote_hosts[7].ip4))
        self.send_and_assert_no_replies(
            self.pg0, p,
            "ARP req for non-local destination - unnum")

        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg0.remote_mac,
                 pdst=self.pg1.local_ip4,
                 psrc=self.pg1.remote_ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req diff sub-net")
        self.assertFalse(find_nbr(self,
                                  self.pg0.sw_if_index,
                                  self.pg1.remote_ip4))

        #
        #  2 - don't respond to ARP request from an address not within the
        #      interface's sub-net
        #   2b - to a prxied address
        #   2c - not within a differents interface's sub-net
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg0.remote_mac,
                 psrc="10.10.10.3",
                 pdst=self.pg0.local_ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req for non-local source")
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg2.remote_mac,
                 psrc="10.10.10.3",
                 pdst=self.pg0.local_ip4))
        self.send_and_assert_no_replies(
            self.pg0, p,
            "ARP req for non-local source - unnum")
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg0.remote_mac,
                 psrc=self.pg1.remote_ip4,
                 pdst=self.pg0.local_ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req for non-local source 2c")

        #
        #  3 - don't respond to ARP request from an address that belongs to
        #      the router
        #
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg0.remote_mac,
                 psrc=self.pg0.local_ip4,
                 pdst=self.pg0.local_ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req for non-local source")

        #
        #  4 - don't respond to ARP requests that has mac source different
        #      from ARP request HW source
        #
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc="00:00:00:DE:AD:BE",
                 psrc=self.pg0.remote_ip4,
                 pdst=self.pg0.local_ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req for non-local source")

        #
        #  5 - don't respond to ARP requests for address within the
        #      interface's sub-net but not the interface's address
        #
        self.pg0.generate_remote_hosts(2)
        p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwsrc=self.pg0.remote_mac,
                 psrc=self.pg0.remote_hosts[0].ip4,
                 pdst=self.pg0.remote_hosts[1].ip4))
        self.send_and_assert_no_replies(self.pg0, p,
                                        "ARP req for non-local destination")

        #
        # cleanup
        #
        dyn_arp.remove_vpp_config()
        static_arp.remove_vpp_config()
        self.pg2.unset_unnumbered(self.pg1.sw_if_index)

        # need this to flush the adj-fibs
        self.pg2.unset_unnumbered(self.pg1.sw_if_index)
        self.pg2.admin_down()
        self.pg1.admin_down()

    def test_proxy_mirror_arp(self):
        """ Interface Mirror Proxy ARP """

        #
        # When VPP has an interface whose address is also applied to a TAP
        # interface on the host, then VPP's TAP interface will be unnumbered
        # to the 'real' interface and do proxy ARP from the host.
        # the curious aspect of this setup is that ARP requests from the host
        # will come from the VPP's own address.
        #
        self.pg0.generate_remote_hosts(2)

        arp_req_from_me = (Ether(src=self.pg2.remote_mac,
                                 dst="ff:ff:ff:ff:ff:ff") /
                           ARP(op="who-has",
                               hwsrc=self.pg2.remote_mac,
                               pdst=self.pg0.remote_hosts[1].ip4,
                               psrc=self.pg0.local_ip4))

        #
        # Configure Proxy ARP for the subnet on PG0addresses on pg0
        #
        self.vapi.proxy_arp_add_del(self.pg0._local_ip4_subnet,
                                    self.pg0._local_ip4_bcast)

        # Make pg2 un-numbered to pg0
        #
        self.pg2.set_unnumbered(self.pg0.sw_if_index)

        #
        # Enable pg2 for proxy ARP
        #
        self.pg2.set_proxy_arp()

        #
        # Send the ARP request with an originating address that
        # is VPP's own address
        #
        self.pg2.add_stream(arp_req_from_me)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg2.local_mac,
                             self.pg2.remote_mac,
                             self.pg0.remote_hosts[1].ip4,
                             self.pg0.local_ip4)

        #
        # validate we have not learned an ARP entry as a result of this
        #
        self.assertFalse(find_nbr(self,
                                  self.pg2.sw_if_index,
                                  self.pg0.local_ip4))

        #
        # cleanup
        #
        self.pg2.set_proxy_arp(0)
        self.vapi.proxy_arp_add_del(self.pg0._local_ip4_subnet,
                                    self.pg0._local_ip4_bcast,
                                    is_add=0)

    def test_proxy_arp(self):
        """ Proxy ARP """

        self.pg1.generate_remote_hosts(2)

        #
        # Proxy ARP rewquest packets for each interface
        #
        arp_req_pg0 = (Ether(src=self.pg0.remote_mac,
                             dst="ff:ff:ff:ff:ff:ff") /
                       ARP(op="who-has",
                           hwsrc=self.pg0.remote_mac,
                           pdst="10.10.10.3",
                           psrc=self.pg0.remote_ip4))
        arp_req_pg0_tagged = (Ether(src=self.pg0.remote_mac,
                                    dst="ff:ff:ff:ff:ff:ff") /
                              Dot1Q(vlan=0) /
                              ARP(op="who-has",
                                  hwsrc=self.pg0.remote_mac,
                                  pdst="10.10.10.3",
                                  psrc=self.pg0.remote_ip4))
        arp_req_pg1 = (Ether(src=self.pg1.remote_mac,
                             dst="ff:ff:ff:ff:ff:ff") /
                       ARP(op="who-has",
                           hwsrc=self.pg1.remote_mac,
                           pdst="10.10.10.3",
                           psrc=self.pg1.remote_ip4))
        arp_req_pg2 = (Ether(src=self.pg2.remote_mac,
                             dst="ff:ff:ff:ff:ff:ff") /
                       ARP(op="who-has",
                           hwsrc=self.pg2.remote_mac,
                           pdst="10.10.10.3",
                           psrc=self.pg1.remote_hosts[1].ip4))
        arp_req_pg3 = (Ether(src=self.pg3.remote_mac,
                             dst="ff:ff:ff:ff:ff:ff") /
                       ARP(op="who-has",
                           hwsrc=self.pg3.remote_mac,
                           pdst="10.10.10.3",
                           psrc=self.pg3.remote_ip4))

        #
        # Configure Proxy ARP for 10.10.10.0 -> 10.10.10.124
        #
        self.vapi.proxy_arp_add_del(inet_pton(AF_INET, "10.10.10.2"),
                                    inet_pton(AF_INET, "10.10.10.124"))

        #
        # No responses are sent when the interfaces are not enabled for proxy
        # ARP
        #
        self.send_and_assert_no_replies(self.pg0, arp_req_pg0,
                                        "ARP req from unconfigured interface")
        self.send_and_assert_no_replies(self.pg2, arp_req_pg2,
                                        "ARP req from unconfigured interface")

        #
        # Make pg2 un-numbered to pg1
        #  still won't reply.
        #
        self.pg2.set_unnumbered(self.pg1.sw_if_index)

        self.send_and_assert_no_replies(self.pg2, arp_req_pg2,
                                        "ARP req from unnumbered interface")

        #
        # Enable each interface to reply to proxy ARPs
        #
        for i in self.pg_interfaces:
            i.set_proxy_arp()

        #
        # Now each of the interfaces should reply to a request to a proxied
        # address
        #
        self.pg0.add_stream(arp_req_pg0)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg0.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg0.local_mac,
                             self.pg0.remote_mac,
                             "10.10.10.3",
                             self.pg0.remote_ip4)

        self.pg0.add_stream(arp_req_pg0_tagged)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg0.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg0.local_mac,
                             self.pg0.remote_mac,
                             "10.10.10.3",
                             self.pg0.remote_ip4)

        self.pg1.add_stream(arp_req_pg1)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg1.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg1.local_mac,
                             self.pg1.remote_mac,
                             "10.10.10.3",
                             self.pg1.remote_ip4)

        self.pg2.add_stream(arp_req_pg2)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_resp(rx[0],
                             self.pg2.local_mac,
                             self.pg2.remote_mac,
                             "10.10.10.3",
                             self.pg1.remote_hosts[1].ip4)

        #
        # A request for an address out of the configured range
        #
        arp_req_pg1_hi = (Ether(src=self.pg1.remote_mac,
                                dst="ff:ff:ff:ff:ff:ff") /
                          ARP(op="who-has",
                              hwsrc=self.pg1.remote_mac,
                              pdst="10.10.10.125",
                              psrc=self.pg1.remote_ip4))
        self.send_and_assert_no_replies(self.pg1, arp_req_pg1_hi,
                                        "ARP req out of range HI")
        arp_req_pg1_low = (Ether(src=self.pg1.remote_mac,
                                 dst="ff:ff:ff:ff:ff:ff") /
                           ARP(op="who-has",
                               hwsrc=self.pg1.remote_mac,
                               pdst="10.10.10.1",
                               psrc=self.pg1.remote_ip4))
        self.send_and_assert_no_replies(self.pg1, arp_req_pg1_low,
                                        "ARP req out of range Low")

        #
        # Request for an address in the proxy range but from an interface
        # in a different VRF
        #
        self.send_and_assert_no_replies(self.pg3, arp_req_pg3,
                                        "ARP req from different VRF")

        #
        # Disable Each interface for proxy ARP
        #  - expect none to respond
        #
        for i in self.pg_interfaces:
            i.set_proxy_arp(0)

        self.send_and_assert_no_replies(self.pg0, arp_req_pg0,
                                        "ARP req from disable")
        self.send_and_assert_no_replies(self.pg1, arp_req_pg1,
                                        "ARP req from disable")
        self.send_and_assert_no_replies(self.pg2, arp_req_pg2,
                                        "ARP req from disable")

        #
        # clean up on interface 2
        #
        self.pg2.unset_unnumbered(self.pg1.sw_if_index)

    def test_mpls(self):
        """ MPLS """

        #
        # Interface 2 does not yet have ip4 config
        #
        self.pg2.config_ip4()
        self.pg2.generate_remote_hosts(2)

        #
        # Add a reoute with out going label via an ARP unresolved next-hop
        #
        ip_10_0_0_1 = VppIpRoute(self, "10.0.0.1", 32,
                                 [VppRoutePath(self.pg2.remote_hosts[1].ip4,
                                               self.pg2.sw_if_index,
                                               labels=[55])])
        ip_10_0_0_1.add_vpp_config()

        #
        # packets should generate an ARP request
        #
        p = (Ether(src=self.pg0.remote_mac,
                   dst=self.pg0.local_mac) /
             IP(src=self.pg0.remote_ip4, dst="10.0.0.1") /
             UDP(sport=1234, dport=1234) /
             Raw('\xa5' * 100))

        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_arp_req(rx[0],
                            self.pg2.local_mac,
                            self.pg2.local_ip4,
                            self.pg2._remote_hosts[1].ip4)

        #
        # now resolve the neighbours
        #
        self.pg2.configure_ipv4_neighbors()

        #
        # Now packet should be properly MPLS encapped.
        #  This verifies that MPLS link-type adjacencies are completed
        #  when the ARP entry resolves
        #
        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx = self.pg2.get_capture(1)
        self.verify_ip_o_mpls(rx[0],
                              self.pg2.local_mac,
                              self.pg2.remote_hosts[1].mac,
                              55,
                              self.pg0.remote_ip4,
                              "10.0.0.1")
        self.pg2.unconfig_ip4()

    def test_arp_vrrp(self):
        """ ARP reply with VRRP virtual src hw addr """

        #
        # IP packet destined for pg1 remote host arrives on pg0 resulting
        # in an ARP request for the address of the remote host on pg1
        #
        p0 = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
              IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4) /
              UDP(sport=1234, dport=1234) /
              Raw())

        rx1 = self.send_and_expect(self.pg0, [p0], self.pg1)

        self.verify_arp_req(rx1[0],
                            self.pg1.local_mac,
                            self.pg1.local_ip4,
                            self.pg1.remote_ip4)

        #
        # ARP reply for address of pg1 remote host arrives on pg1 with
        # the hw src addr set to a value in the VRRP IPv4 range of
        # MAC addresses
        #
        p1 = (Ether(dst=self.pg1.local_mac, src=self.pg1.remote_mac) /
              ARP(op="is-at", hwdst=self.pg1.local_mac,
                  hwsrc="00:00:5e:00:01:09", pdst=self.pg1.local_ip4,
                  psrc=self.pg1.remote_ip4))

        self.send_and_assert_no_replies(self.pg1, p1, "ARP reply")

        #
        # IP packet destined for pg1 remote host arrives on pg0 again.
        # VPP should have an ARP entry for that address now and the packet
        # should be sent out pg1.
        #
        rx1 = self.send_and_expect(self.pg0, [p0], self.pg1)

        self.verify_ip(rx1[0],
                       self.pg1.local_mac,
                       "00:00:5e:00:01:09",
                       self.pg0.remote_ip4,
                       self.pg1.remote_ip4)

        self.pg1.admin_down()
        self.pg1.admin_up()

    def test_arp_duplicates(self):
        """ ARP Duplicates"""

        #
        # Generate some hosts on the LAN
        #
        self.pg1.generate_remote_hosts(3)

        #
        # Add host 1 on pg1 and pg2
        #
        arp_pg1 = VppNeighbor(self,
                              self.pg1.sw_if_index,
                              self.pg1.remote_hosts[1].mac,
                              self.pg1.remote_hosts[1].ip4)
        arp_pg1.add_vpp_config()
        arp_pg2 = VppNeighbor(self,
                              self.pg2.sw_if_index,
                              self.pg2.remote_mac,
                              self.pg1.remote_hosts[1].ip4)
        arp_pg2.add_vpp_config()

        #
        # IP packet destined for pg1 remote host arrives on pg1 again.
        #
        p = (Ether(dst=self.pg0.local_mac,
                   src=self.pg0.remote_mac) /
             IP(src=self.pg0.remote_ip4,
                dst=self.pg1.remote_hosts[1].ip4) /
             UDP(sport=1234, dport=1234) /
             Raw())

        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx1 = self.pg1.get_capture(1)

        self.verify_ip(rx1[0],
                       self.pg1.local_mac,
                       self.pg1.remote_hosts[1].mac,
                       self.pg0.remote_ip4,
                       self.pg1.remote_hosts[1].ip4)

        #
        # remove the duplicate on pg1
        # packet stream shoud generate ARPs out of pg1
        #
        arp_pg1.remove_vpp_config()

        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx1 = self.pg1.get_capture(1)

        self.verify_arp_req(rx1[0],
                            self.pg1.local_mac,
                            self.pg1.local_ip4,
                            self.pg1.remote_hosts[1].ip4)

        #
        # Add it back
        #
        arp_pg1.add_vpp_config()

        self.pg0.add_stream(p)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        rx1 = self.pg1.get_capture(1)

        self.verify_ip(rx1[0],
                       self.pg1.local_mac,
                       self.pg1.remote_hosts[1].mac,
                       self.pg0.remote_ip4,
                       self.pg1.remote_hosts[1].ip4)

    def test_arp_static(self):
        """ ARP Static"""
        self.pg2.generate_remote_hosts(3)

        #
        # Add a static ARP entry
        #
        static_arp = VppNeighbor(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[1].mac,
                                 self.pg2.remote_hosts[1].ip4,
                                 is_static=1)
        static_arp.add_vpp_config()

        #
        # Add the connected prefix to the interface
        #
        self.pg2.config_ip4()

        #
        # We should now find the adj-fib
        #
        self.assertTrue(find_nbr(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[1].ip4,
                                 is_static=1))
        self.assertTrue(find_route(self,
                                   self.pg2.remote_hosts[1].ip4,
                                   32))

        #
        # remove the connected
        #
        self.pg2.unconfig_ip4()

        #
        # put the interface into table 1
        #
        self.pg2.set_table_ip4(1)

        #
        # configure the same connected and expect to find the
        # adj fib in the new table
        #
        self.pg2.config_ip4()
        self.assertTrue(find_route(self,
                                   self.pg2.remote_hosts[1].ip4,
                                   32,
                                   table_id=1))

        #
        # clean-up
        #
        self.pg2.unconfig_ip4()
        self.pg2.set_table_ip4(0)

    def test_arp_incomplete(self):
        """ ARP Incomplete"""
        self.pg1.generate_remote_hosts(3)

        p0 = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
              IP(src=self.pg0.remote_ip4,
                 dst=self.pg1.remote_hosts[1].ip4) /
              UDP(sport=1234, dport=1234) /
              Raw())
        p1 = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) /
              IP(src=self.pg0.remote_ip4,
                 dst=self.pg1.remote_hosts[2].ip4) /
              UDP(sport=1234, dport=1234) /
              Raw())

        #
        # a packet to an unresolved destination generates an ARP request
        #
        rx = self.send_and_expect(self.pg0, [p0], self.pg1)
        self.verify_arp_req(rx[0],
                            self.pg1.local_mac,
                            self.pg1.local_ip4,
                            self.pg1._remote_hosts[1].ip4)

        #
        # add a neighbour for remote host 1
        #
        static_arp = VppNeighbor(self,
                                 self.pg1.sw_if_index,
                                 self.pg1.remote_hosts[1].mac,
                                 self.pg1.remote_hosts[1].ip4,
                                 is_static=1)
        static_arp.add_vpp_config()

        #
        # change the interface's MAC
        #
        mac = [chr(0x00), chr(0x00), chr(0x00),
               chr(0x33), chr(0x33), chr(0x33)]
        mac_string = ''.join(mac)

        self.vapi.sw_interface_set_mac_address(self.pg1.sw_if_index,
                                               mac_string)

        #
        # now ARP requests come from the new source mac
        #
        rx = self.send_and_expect(self.pg0, [p1], self.pg1)
        self.verify_arp_req(rx[0],
                            "00:00:00:33:33:33",
                            self.pg1.local_ip4,
                            self.pg1._remote_hosts[2].ip4)

        #
        # packets to the resolved host also have the new source mac
        #
        rx = self.send_and_expect(self.pg0, [p0], self.pg1)
        self.verify_ip(rx[0],
                       "00:00:00:33:33:33",
                       self.pg1.remote_hosts[1].mac,
                       self.pg0.remote_ip4,
                       self.pg1.remote_hosts[1].ip4)

        #
        # set the mac address on the inteface that does not have a
        # configured subnet and thus no glean
        #
        self.vapi.sw_interface_set_mac_address(self.pg2.sw_if_index,
                                               mac_string)

    def test_garp(self):
        """ GARP """

        #
        # Generate some hosts on the LAN
        #
        self.pg1.generate_remote_hosts(4)

        #
        # And an ARP entry
        #
        arp = VppNeighbor(self,
                          self.pg1.sw_if_index,
                          self.pg1.remote_hosts[1].mac,
                          self.pg1.remote_hosts[1].ip4)
        arp.add_vpp_config()

        self.assertTrue(find_nbr(self,
                                 self.pg1.sw_if_index,
                                 self.pg1.remote_hosts[1].ip4,
                                 mac=self.pg1.remote_hosts[1].mac))

        #
        # Send a GARP (request) to swap the host 1's address to that of host 2
        #
        p1 = (Ether(dst="ff:ff:ff:ff:ff:ff",
                    src=self.pg1.remote_hosts[2].mac) /
              ARP(op="who-has",
                  hwdst=self.pg1.local_mac,
                  hwsrc=self.pg1.remote_hosts[2].mac,
                  pdst=self.pg1.remote_hosts[1].ip4,
                  psrc=self.pg1.remote_hosts[1].ip4))

        self.pg1.add_stream(p1)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        self.assertTrue(find_nbr(self,
                                 self.pg1.sw_if_index,
                                 self.pg1.remote_hosts[1].ip4,
                                 mac=self.pg1.remote_hosts[2].mac))

        #
        # Send a GARP (reply) to swap the host 1's address to that of host 3
        #
        p1 = (Ether(dst="ff:ff:ff:ff:ff:ff",
                    src=self.pg1.remote_hosts[3].mac) /
              ARP(op="is-at",
                  hwdst=self.pg1.local_mac,
                  hwsrc=self.pg1.remote_hosts[3].mac,
                  pdst=self.pg1.remote_hosts[1].ip4,
                  psrc=self.pg1.remote_hosts[1].ip4))

        self.pg1.add_stream(p1)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        self.assertTrue(find_nbr(self,
                                 self.pg1.sw_if_index,
                                 self.pg1.remote_hosts[1].ip4,
                                 mac=self.pg1.remote_hosts[3].mac))

        #
        # GARPs (requets nor replies) for host we don't know yet
        # don't result in new neighbour entries
        #
        p1 = (Ether(dst="ff:ff:ff:ff:ff:ff",
                    src=self.pg1.remote_hosts[3].mac) /
              ARP(op="who-has",
                  hwdst=self.pg1.local_mac,
                  hwsrc=self.pg1.remote_hosts[3].mac,
                  pdst=self.pg1.remote_hosts[2].ip4,
                  psrc=self.pg1.remote_hosts[2].ip4))

        self.pg1.add_stream(p1)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        self.assertFalse(find_nbr(self,
                                  self.pg1.sw_if_index,
                                  self.pg1.remote_hosts[2].ip4))

        p1 = (Ether(dst="ff:ff:ff:ff:ff:ff",
                    src=self.pg1.remote_hosts[3].mac) /
              ARP(op="is-at",
                  hwdst=self.pg1.local_mac,
                  hwsrc=self.pg1.remote_hosts[3].mac,
                  pdst=self.pg1.remote_hosts[2].ip4,
                  psrc=self.pg1.remote_hosts[2].ip4))

        self.pg1.add_stream(p1)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()

        self.assertFalse(find_nbr(self,
                                  self.pg1.sw_if_index,
                                  self.pg1.remote_hosts[2].ip4))

    def test_arp_incomplete(self):
        """ Incomplete Entries """

        #
        # ensure that we throttle the ARP and ND requests
        #
        self.pg0.generate_remote_hosts(2)

        #
        # IPv4/ARP
        #
        ip_10_0_0_1 = VppIpRoute(self, "10.0.0.1", 32,
                                 [VppRoutePath(self.pg0.remote_hosts[1].ip4,
                                               self.pg0.sw_if_index)])
        ip_10_0_0_1.add_vpp_config()

        p1 = (Ether(dst=self.pg1.local_mac,
                    src=self.pg1.remote_mac) /
              IP(src=self.pg1.remote_ip4,
                 dst="10.0.0.1") /
              UDP(sport=1234, dport=1234) /
              Raw())

        self.pg1.add_stream(p1 * 257)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()
        rx = self.pg0._get_capture(1)

        #
        # how many we get is going to be dependent on the time for packet
        # processing but it should be small
        #
        self.assertLess(len(rx), 64)

        #
        # IPv6/ND
        #
        ip_10_1 = VppIpRoute(self, "10::1", 128,
                             [VppRoutePath(self.pg0.remote_hosts[1].ip6,
                                           self.pg0.sw_if_index,
                                           proto=DpoProto.DPO_PROTO_IP6)],
                             is_ip6=1)
        ip_10_1.add_vpp_config()

        p1 = (Ether(dst=self.pg1.local_mac,
                    src=self.pg1.remote_mac) /
              IPv6(src=self.pg1.remote_ip6,
                   dst="10::1") /
              UDP(sport=1234, dport=1234) /
              Raw())

        self.pg1.add_stream(p1 * 257)
        self.pg_enable_capture(self.pg_interfaces)
        self.pg_start()
        rx = self.pg0._get_capture(1)

        #
        # how many we get is going to be dependent on the time for packet
        # processing but it should be small
        #
        self.assertLess(len(rx), 64)

    def test_arp_forus(self):
        """ ARP for for-us """

        #
        # Test that VPP responds with ARP requests to addresses that
        # are connected and local routes.
        # Use one of the 'remote' addresses in the subnet as a local address
        # The intention of this route is that it then acts like a secondardy
        # address added to an interface
        #
        self.pg0.generate_remote_hosts(2)

        forus = VppIpRoute(self, self.pg0.remote_hosts[1].ip4, 32,
                           [VppRoutePath(self.pg0.remote_hosts[1].ip4,
                                         self.pg0.sw_if_index)],
                           is_local=1)
        forus.add_vpp_config()

        p = (Ether(dst="ff:ff:ff:ff:ff:ff",
                   src=self.pg0.remote_mac) /
             ARP(op="who-has",
                 hwdst=self.pg0.local_mac,
                 hwsrc=self.pg0.remote_mac,
                 pdst=self.pg0.remote_hosts[1].ip4,
                 psrc=self.pg0.remote_ip4))

        rx = self.send_and_expect(self.pg0, [p], self.pg0)

        self.verify_arp_resp(rx[0],
                             self.pg0.local_mac,
                             self.pg0.remote_mac,
                             self.pg0.remote_hosts[1].ip4,
                             self.pg0.remote_ip4)


class NeighborStatsTestCase(VppTestCase):
    """ ARP/ND Counters """

    def setUp(self):
        super(NeighborStatsTestCase, self).setUp()

        self.create_pg_interfaces(range(2))

        # pg0 configured with ip4 and 6 addresses used for input
        # pg1 configured with ip4 and 6 addresses used for output
        # pg2 is unnumbered to pg0
        for i in self.pg_interfaces:
            i.admin_up()
            i.config_ip4()
            i.config_ip6()
            i.resolve_arp()
            i.resolve_ndp()

    def tearDown(self):
        super(NeighborStatsTestCase, self).tearDown()

        for i in self.pg_interfaces:
            i.unconfig_ip4()
            i.unconfig_ip6()
            i.admin_down()

    def test_arp_stats(self):
        """ ARP Counters """

        self.vapi.cli("adj counters enable")
        self.pg1.generate_remote_hosts(2)

        arp1 = VppNeighbor(self,
                           self.pg1.sw_if_index,
                           self.pg1.remote_hosts[0].mac,
                           self.pg1.remote_hosts[0].ip4)
        arp1.add_vpp_config()
        arp2 = VppNeighbor(self,
                           self.pg1.sw_if_index,
                           self.pg1.remote_hosts[1].mac,
                           self.pg1.remote_hosts[1].ip4)
        arp2.add_vpp_config()

        p1 = (Ether(dst=self.pg0.local_mac,
                    src=self.pg0.remote_mac) /
              IP(src=self.pg0.remote_ip4,
                 dst=self.pg1.remote_hosts[0].ip4) /
              UDP(sport=1234, dport=1234) /
              Raw())
        p2 = (Ether(dst=self.pg0.local_mac,
                    src=self.pg0.remote_mac) /
              IP(src=self.pg0.remote_ip4,
                 dst=self.pg1.remote_hosts[1].ip4) /
              UDP(sport=1234, dport=1234) /
              Raw())

        rx = self.send_and_expect(self.pg0, p1 * 65, self.pg1)
        rx = self.send_and_expect(self.pg0, p2 * 65, self.pg1)

        self.assertEqual(65, arp1.get_stats()['packets'])
        self.assertEqual(65, arp2.get_stats()['packets'])

        rx = self.send_and_expect(self.pg0, p1 * 65, self.pg1)
        self.assertEqual(130, arp1.get_stats()['packets'])

    def test_nd_stats(self):
        """ ND Counters """

        self.vapi.cli("adj counters enable")
        self.pg0.generate_remote_hosts(3)

        nd1 = VppNeighbor(self,
                          self.pg0.sw_if_index,
                          self.pg0.remote_hosts[1].mac,
                          self.pg0.remote_hosts[1].ip6)
        nd1.add_vpp_config()
        nd2 = VppNeighbor(self,
                          self.pg0.sw_if_index,
                          self.pg0.remote_hosts[2].mac,
                          self.pg0.remote_hosts[2].ip6)
        nd2.add_vpp_config()

        p1 = (Ether(dst=self.pg1.local_mac,
                    src=self.pg1.remote_mac) /
              IPv6(src=self.pg1.remote_ip6,
                   dst=self.pg0.remote_hosts[1].ip6) /
              UDP(sport=1234, dport=1234) /
              Raw())
        p2 = (Ether(dst=self.pg1.local_mac,
                    src=self.pg1.remote_mac) /
              IPv6(src=self.pg1.remote_ip6,
                   dst=self.pg0.remote_hosts[2].ip6) /
              UDP(sport=1234, dport=1234) /
              Raw())

        rx = self.send_and_expect(self.pg1, p1 * 16, self.pg0)
        rx = self.send_and_expect(self.pg1, p2 * 16, self.pg0)

        self.assertEqual(16, nd1.get_stats()['packets'])
        self.assertEqual(16, nd2.get_stats()['packets'])

        rx = self.send_and_expect(self.pg1, p1 * 65, self.pg0)
        self.assertEqual(81, nd1.get_stats()['packets'])


if __name__ == '__main__':
    unittest.main(testRunner=VppTestRunner)