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/*
 * Copyright (c) 2015 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.
 */
/*
 * vnet/buffer.h: vnet buffer flags
 *
 * Copyright (c) 2008 Eliot Dresselhaus
 *
 * Permission is hereby granted, free of charge, to any person obtaining
 * a copy of this software and associated documentation files (the
 * "Software"), to deal in the Software without restriction, including
 * without limitation the rights to use, copy, modify, merge, publish,
 * distribute, sublicense, and/or sell copies of the Software, and to
 * permit persons to whom the Software is furnished to do so, subject to
 * the following conditions:
 *
 * The above copyright notice and this permission notice shall be
 * included in all copies or substantial portions of the Software.
 *
 *  THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
 *  EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
 *  MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
 *  NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS BE
 *  LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN ACTION
 *  OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN CONNECTION
 *  WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE SOFTWARE.
 */

#ifndef included_vnet_buffer_h
#define included_vnet_buffer_h

#include <vlib/vlib.h>

/**
 * Flags that are set in the high order bits of ((vlib_buffer*)b)->flags
 *
 */
#define foreach_vnet_buffer_flag                        \
  _( 1, L4_CHECKSUM_COMPUTED, "l4-cksum-computed", 1)	\
  _( 2, L4_CHECKSUM_CORRECT, "l4-cksum-correct", 1)	\
  _( 3, VLAN_2_DEEP, "vlan-2-deep", 1)			\
  _( 4, VLAN_1_DEEP, "vlan-1-deep", 1)			\
  _( 5, SPAN_CLONE, "span-clone", 1)                    \
  _( 6, LOOP_COUNTER_VALID, "loop-counter-valid", 0)    \
  _( 7, LOCALLY_ORIGINATED, "local", 1)                 \
  _( 8, IS_IP4, "ip4", 1)                               \
  _( 9, IS_IP6, "ip6", 1)                               \
  _(10, OFFLOAD_IP_CKSUM, "offload-ip-cksum", 1)        \
  _(11, OFFLOAD_TCP_CKSUM, "offload-tcp-cksum", 1)      \
  _(12, OFFLOAD_UDP_CKSUM, "offload-udp-cksum", 1)      \
  _(13, IS_NATED, "natted", 1)                          \
  _(14, L2_HDR_OFFSET_VALID, "l2_hdr_offset_valid", 0)  \
  _(15, L3_HDR_OFFSET_VALID, "l3_hdr_offset_valid", 0)  \
  _(16, L4_HDR_OFFSET_VALID, "l4_hdr_offset_valid", 0)  \
  _(17, FLOW_REPORT, "flow-report", 1)                  \
  _(18, IS_DVR, "dvr", 1)                               \
  _(19, QOS_DATA_VALID, "qos-data-valid", 0)            \
  _(20, GSO, "gso", 0)                                  \
  _(21, AVAIL1, "avail1", 1)                            \
  _(22, AVAIL2, "avail2", 1)                            \
  _(23, AVAIL3, "avail3", 1)                            \
  _(24, AVAIL4, "avail4", 1)                            \
  _(25, AVAIL5, "avail5", 1)                            \
  _(26, AVAIL6, "avail6", 1)                            \
  _(27, AVAIL7, "avail7", 1)

/*
 * Please allocate the FIRST available bit, redefine
 * AVAIL 1 ... AVAILn-1, and remove AVAILn. Please maintain the
 * VNET_BUFFER_FLAGS_ALL_AVAIL definition.
 */

#define VNET_BUFFER_FLAGS_ALL_AVAIL                                     \
  (VNET_BUFFER_F_AVAIL1 | VNET_BUFFER_F_AVAIL2 | VNET_BUFFER_F_AVAIL3 | \
   VNET_BUFFER_F_AVAIL4 | VNET_BUFFER_F_AVAIL5 | VNET_BUFFER_F_AVAIL6 | \
   VNET_BUFFER_F_AVAIL7)

#define VNET_BUFFER_FLAGS_VLAN_BITS \
  (VNET_BUFFER_F_VLAN_1_DEEP | VNET_BUFFER_F_VLAN_2_DEEP)

enum
{
#define _(bit, name, s, v) VNET_BUFFER_F_##name  = (1 << LOG2_VLIB_BUFFER_FLAG_USER(bit)),
  foreach_vnet_buffer_flag
#undef _
};

enum
{
#define _(bit, name, s, v) VNET_BUFFER_F_LOG2_##name  = LOG2_VLIB_BUFFER_FLAG_USER(bit),
  foreach_vnet_buffer_flag
#undef _
};

/* Make sure that the vnet and vlib bits are disjoint */
STATIC_ASSERT (((VNET_BUFFER_FLAGS_ALL_AVAIL & VLIB_BUFFER_FLAGS_ALL) == 0),
	       "VLIB / VNET buffer flags overlap");

#define foreach_buffer_opaque_union_subtype     \
_(ip)                                           \
_(l2)                                           \
_(l2t)                                          \
_(l2_classify)                                  \
_(policer)                                      \
_(ipsec)					\
_(map)						\
_(map_t)					\
_(ip_frag)					\
_(mpls)					        \
_(tcp)

/*
 * vnet stack buffer opaque array overlay structure.
 * The vnet_buffer_opaque_t *must* be the same size as the
 * vlib_buffer_t "opaque" structure member, 32 bytes.
 *
 * When adding a union type, please add a stanza to
 * foreach_buffer_opaque_union_subtype (directly above).
 * Code in vnet_interface_init(...) verifies the size
 * of the union, and will announce any deviations in an
 * impossible-to-miss manner.
 */
typedef struct
{
  u32 sw_if_index[VLIB_N_RX_TX];
  i16 l2_hdr_offset;
  i16 l3_hdr_offset;
  i16 l4_hdr_offset;
  u8 feature_arc_index;
  u8 dont_waste_me;

  union
  {
    /* IP4/6 buffer opaque. */
    struct
    {
      /* Adjacency from destination IP address lookup [VLIB_TX].
         Adjacency from source IP address lookup [VLIB_RX].
         This gets set to ~0 until source lookup is performed. */
      u32 adj_index[VLIB_N_RX_TX];

      union
      {
	struct
	{
	  /* Flow hash value for this packet computed from IP src/dst address
	     protocol and ports. */
	  u32 flow_hash;

	  union
	  {
	    /* next protocol */
	    u32 save_protocol;

	    /* Hint for transport protocols */
	    u32 fib_index;
	  };

	  /* Rewrite length */
	  u8 save_rewrite_length;

	  /* MFIB RPF ID */
	  u32 rpf_id;
	};

	/* ICMP */
	struct
	{
	  u8 type;
	  u8 code;
	  u32 data;
	} icmp;

	/* reassembly */
	union
	{
	  /* group input/output to simplify the code, this way
	   * we can handoff while keeping input variables intact */
	  struct
	  {
	    /* input variables */
	    struct
	    {
	      u32 next_index;	/* index of next node - used by custom apps */
	      u32 error_next_index;	/* index of next node if error - used by custom apps */
	    };
	    /* handoff variables */
	    struct
	    {
	      u16 owner_thread_index;
	    };
	  };
	  /* output variables */
	  struct
	  {
	    union
	    {
	      /* shallow virtual reassembly output variables */
	      struct
	      {
		u16 l4_src_port;	/* tcp/udp/icmp src port */
		u16 l4_dst_port;	/* tcp/udp/icmp dst port */
		u32 tcp_ack_number;
		u8 save_rewrite_length;
		u8 ip_proto;	/* protocol in ip header */
		u8 icmp_type_or_tcp_flags;
		u8 is_non_first_fragment;
		u32 tcp_seq_number;
	      };
	      /* full reassembly output variables */
	      struct
	      {
		u16 estimated_mtu;	/* estimated MTU calculated during reassembly */
	      };
	    };
	  };
	  /* internal variables used during reassembly */
	  struct
	  {
	    u16 fragment_first;
	    u16 fragment_last;
	    u16 range_first;
	    u16 range_last;
	    u32 next_range_bi;
	    u16 ip6_frag_hdr_offset;
	  };
	} reass;
      };
    } ip;

    /*
     * MPLS:
     * data copied from the MPLS header that was popped from the packet
     * during the look-up.
     */
    struct
    {
      /* do not overlay w/ ip.adj_index[0,1] nor flow hash */
      u32 pad[VLIB_N_RX_TX + 1];
      u8 ttl;
      u8 exp;
      u8 first;
      u8 pyld_proto:3;		/* dpo_proto_t */
      u8 rsvd:5;
      /* Rewrite length */
      u8 save_rewrite_length;
      /* Save the mpls header length including all label stack */
      u8 mpls_hdr_length;
      /*
       * BIER - the number of bytes in the header.
       *  the len field in the header is not authoritative. It's the
       * value in the table that counts.
       */
      struct
      {
	u8 n_bytes;
      } bier;
    } mpls;

    /* l2 bridging path, only valid there */
    struct opaque_l2
    {
      u32 feature_bitmap;
      u16 bd_index;		/* bridge-domain index */
      u16 l2fib_sn;		/* l2fib bd/int seq_num */
      u8 l2_len;		/* ethernet header length */
      u8 shg;			/* split-horizon group */
      u8 bd_age;		/* aging enabled */
    } l2;

    /* l2tpv3 softwire encap, only valid there */
    struct
    {
      u32 pad[4];		/* do not overlay w/ ip.adj_index[0,1] */
      u8 next_index;
      u32 session_index;
    } l2t;

    /* L2 classify */
    struct
    {
      struct opaque_l2 pad;
      union
      {
	u32 table_index;
	u32 opaque_index;
      };
      u64 hash;
    } l2_classify;

    /* vnet policer */
    struct
    {
      u32 pad[8 - VLIB_N_RX_TX - 1];	/* to end of opaque */
      u32 index;
    } policer;

    /* interface output features */
    struct
    {
      u32 sad_index;
      u32 protect_index;
    } ipsec;

    /* MAP */
    struct
    {
      u16 mtu;
    } map;

    /* MAP-T */
    struct
    {
      u32 map_domain_index;
      struct
      {
	u32 saddr, daddr;
	u16 frag_offset;	//Fragmentation header offset
	u16 l4_offset;		//L4 header overall offset
	u8 l4_protocol;		//The final protocol number
      } v6;			//Used by ip6_map_t only
      u16 checksum_offset;	//L4 checksum overall offset
      u16 mtu;			//Exit MTU
    } map_t;

    /* IP Fragmentation */
    struct
    {
      u32 pad[2];		/* do not overlay w/ ip.adj_index[0,1] */
      u16 mtu;
      u8 next_index;
      u8 flags;			//See ip_frag.h
    } ip_frag;

    /* COP - configurable junk filter(s) */
    struct
    {
      /* Current configuration index. */
      u32 current_config_index;
    } cop;

    /* LISP */
    struct
    {
      /* overlay address family */
      u16 overlay_afi;
    } lisp;

    /* TCP */
    struct
    {
      u32 connection_index;
      union
      {
	u32 seq_number;
	u32 next_node_opaque;
      };
      u32 seq_end;
      u32 ack_number;
      u16 hdr_offset;		/**< offset relative to ip hdr */
      u16 data_offset;		/**< offset relative to ip hdr */
      u16 data_len;		/**< data len */
      u8 flags;
    } tcp;

    /* SNAT */
    struct
    {
      u32 flags;
    } snat;

    u32 unused[6];
  };
} vnet_buffer_opaque_t;

#define VNET_REWRITE_TOTAL_BYTES (VLIB_BUFFER_PRE_DATA_SIZE)

STATIC_ASSERT (STRUCT_SIZE_OF (vnet_buffer_opaque_t, ip.save_rewrite_length)
	       == STRUCT_SIZE_OF (vnet_buffer_opaque_t,
				  ip.reass.save_rewrite_length)
	       && STRUCT_SIZE_OF (vnet_buffer_opaque_t,
				  ip.reass.save_rewrite_length) ==
	       STRUCT_SIZE_OF (vnet_buffer_opaque_t, mpls.save_rewrite_length)
	       && STRUCT_SIZE_OF (vnet_buffer_opaque_t,
				  mpls.save_rewrite_length) == 1
	       && VNET_REWRITE_TOTAL_BYTES < UINT8_MAX,
	       "save_rewrite_length member must be able to hold the max value of rewrite length");

STATIC_ASSERT (STRUCT_OFFSET_OF (vnet_buffer_opaque_t, ip.save_rewrite_length)
	       == STRUCT_OFFSET_OF (vnet_buffer_opaque_t,
				    ip.reass.save_rewrite_length)
	       && STRUCT_OFFSET_OF (vnet_buffer_opaque_t,
				    mpls.save_rewrite_length) ==
	       STRUCT_OFFSET_OF (vnet_buffer_opaque_t,
				 ip.reass.save_rewrite_length),
	       "save_rewrite_length must be aligned so that reass doesn't overwrite it");

/*
 * The opaque field of the vlib_buffer_t is interpreted as a
 * vnet_buffer_opaque_t. Hence it should be big enough to accommodate one.
 */
STATIC_ASSERT (sizeof (vnet_buffer_opaque_t) <=
	       STRUCT_SIZE_OF (vlib_buffer_t, opaque),
	       "VNET buffer meta-data too large for vlib_buffer");

#define vnet_buffer(b) ((vnet_buffer_opaque_t *) (b)->opaque)

/* Full cache line (64 bytes) of additional space */
typedef struct
{
  /**
   * QoS marking data that needs to persist from the recording nodes
   * (nominally in the ingress path) to the marking node (in the
   * egress path)
   */
  struct
  {
    u8 bits;
    u8 source;
  } qos;

  u8 loop_counter;
  u8 __unused[1];

  /* Group Based Policy */
  struct
  {
    u8 __unused;
    u8 flags;
    u16 sclass;
  } gbp;

  /**
   * The L4 payload size set on input on GSO enabled interfaces
   * when we receive a GSO packet (a chain of buffers with the first one
   * having GSO bit set), and needs to persist all the way to the interface-output,
   * in case the egress interface is not GSO-enabled - then we need to perform
   * the segmentation, and use this value to cut the payload appropriately.
   */
  u16 gso_size;
  /* size of L4 prototol header */
  u16 gso_l4_hdr_sz;

  /* The union below has a u64 alignment, so this space is unused */
  u32 __unused2[1];

  union
  {
    struct
    {
#if VLIB_BUFFER_TRACE_TRAJECTORY > 0
      /* buffer trajectory tracing */
      u16 *trajectory_trace;
#endif
    };
    struct
    {
      u64 pad[1];
      u64 pg_replay_timestamp;
    };
    u32 unused[8];
  };
} vnet_buffer_opaque2_t;

#define vnet_buffer2(b) ((vnet_buffer_opaque2_t *) (b)->opaque2)

/*
 * The opaque2 field of the vlib_buffer_t is interpreted as a
 * vnet_buffer_opaque2_t. Hence it should be big enough to accommodate one.
 */
STATIC_ASSERT (sizeof (vnet_buffer_opaque2_t) <=
	       STRUCT_SIZE_OF (vlib_buffer_t, opaque2),
	       "VNET buffer opaque2 meta-data too large for vlib_buffer");

#define gso_mtu_sz(b) (vnet_buffer2(b)->gso_size + \
                       vnet_buffer2(b)->gso_l4_hdr_sz + \
                       vnet_buffer(b)->l4_hdr_offset - \
                       vnet_buffer (b)->l3_hdr_offset)


format_function_t format_vnet_buffer;

#endif /* included_vnet_buffer_h */

/*
 * fd.io coding-style-patch-verification: ON
 *
 * Local Variables:
 * eval: (c-set-style "gnu")
 * End:
 */
='n1748' href='#n1748'>1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831 1832 1833 1834 1835 1836 1837 1838 1839 1840 1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866 1867 1868 1869 1870 1871 1872 1873 1874 1875 1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894 1895 1896 1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070 2071 2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110 2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176 2177 2178 2179 2180 2181 2182 2183 2184 2185 2186 2187 2188 2189 2190 2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226 2227 2228 2229 2230 2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249 2250 2251 2252 2253 2254 2255 2256 2257 2258 2259 2260 2261 2262 2263 2264 2265 2266 2267 2268 2269 2270 2271 2272 2273 2274 2275 2276 2277 2278 2279 2280 2281 2282 2283 2284 2285 2286 2287 2288 2289 2290 2291 2292 2293 2294 2295 2296 2297 2298 2299 2300 2301 2302 2303 2304 2305 2306 2307 2308 2309 2310 2311 2312 2313 2314 2315 2316 2317 2318 2319 2320 2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331 2332 2333 2334 2335 2336 2337 2338 2339 2340 2341 2342 2343 2344 2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356 2357 2358 2359 2360 2361 2362 2363 2364 2365 2366 2367 2368 2369 2370 2371 2372 2373 2374 2375 2376 2377 2378 2379 2380 2381 2382 2383 2384 2385 2386 2387 2388 2389 2390 2391 2392
#!/usr/bin/env python3

import unittest
import os
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, FibPathType, VppIpInterfaceAddress
from vpp_papi import VppEnum
from vpp_ip import VppIpPuntRedirect

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


NUM_PKTS = 67

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


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

    @classmethod
    def setUpClass(cls):
        super(ARPTestCase, cls).setUpClass()

    @classmethod
    def tearDownClass(cls):
        super(ARPTestCase, cls).tearDownClass()

    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)
        self.assertEqual(ether.type, 0x0806)

        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)
        self.assertEqual(ether.type, 0x0806)

        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)
        self.assertEqual(ether.type, 0x0800)

        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)
        self.assertEqual(ether.type, 0x8847)

        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)

        #
        # watch for:
        #  - all neighbour events
        #  - all neighbor events on pg1
        #  - neighbor events for host[1] on pg1
        #
        self.vapi.want_ip_neighbor_events(enable=1,
                                          pid=os.getpid())
        self.vapi.want_ip_neighbor_events(enable=1,
                                          pid=os.getpid(),
                                          sw_if_index=self.pg1.sw_if_index)
        self.vapi.want_ip_neighbor_events(enable=1,
                                          pid=os.getpid(),
                                          sw_if_index=self.pg1.sw_if_index,
                                          ip=self.pg1.remote_hosts[1].ip4)

        self.logger.info(self.vapi.cli("sh ip neighbor-watcher"))

        #
        # 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()
        self.assertTrue(dyn_arp.query_vpp_config())

        self.logger.info(self.vapi.cli("show ip neighbor-watcher"))

        # this matches all of the listnerers
        es = [self.vapi.wait_for_event(1, "ip_neighbor_event")
              for i in range(3)]
        for e in es:
            self.assertEqual(str(e.neighbor.ip_address),
                             self.pg1.remote_hosts[1].ip4)

        #
        # 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()
        es = [self.vapi.wait_for_event(1, "ip_neighbor_event")
              for i in range(2)]
        for e in es:
            self.assertEqual(str(e.neighbor.ip_address),
                             self.pg1.remote_hosts[2].ip4)

        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)

        #
        # remove all the listeners
        #
        self.vapi.want_ip_neighbor_events(enable=0,
                                          pid=os.getpid())
        self.vapi.want_ip_neighbor_events(enable=0,
                                          pid=os.getpid(),
                                          sw_if_index=self.pg1.sw_if_index)
        self.vapi.want_ip_neighbor_events(enable=0,
                                          pid=os.getpid(),
                                          sw_if_index=self.pg1.sw_if_index,
                                          ip=self.pg1.remote_hosts[1].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)

        self.assertFalse(dyn_arp.query_vpp_config())
        self.assertTrue(static_arp.query_vpp_config())
        #
        # 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)

        #
        # test the unnumbered dump both by all interfaces and just the enabled
        # one
        #
        unnum = self.vapi.ip_unnumbered_dump()
        self.assertTrue(len(unnum))
        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)
        unnum = self.vapi.ip_unnumbered_dump(self.pg2.sw_if_index)
        self.assertTrue(len(unnum))
        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 hierarchy 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 proxied address
        #   2c - not within a different 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
        #
        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(proxy={'table_id': 0,
                                           'low': self.pg0._local_ip4_subnet,
                                           'hi': self.pg0._local_ip4_bcast},
                                    is_add=1)

        # 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
        #
        rx = self.send_and_expect(self.pg2, [arp_req_from_me], self.pg2)
        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))

        #
        # setup a punt redirect so packets from the uplink go to the tap
        #
        redirect = VppIpPuntRedirect(self, self.pg0.sw_if_index,
                                     self.pg2.sw_if_index, self.pg0.local_ip4)
        redirect.add_vpp_config()

        p_tcp = (Ether(src=self.pg0.remote_mac,
                       dst=self.pg0.local_mac,) /
                 IP(src=self.pg0.remote_ip4,
                    dst=self.pg0.local_ip4) /
                 TCP(sport=80, dport=80) /
                 Raw())
        rx = self.send_and_expect(self.pg0, [p_tcp], self.pg2)

        # there's no ARP entry so this is an ARP req
        self.assertTrue(rx[0].haslayer(ARP))

        # and ARP entry for VPP's pg0 address on the host interface
        n1 = VppNeighbor(self,
                         self.pg2.sw_if_index,
                         self.pg2.remote_mac,
                         self.pg0.local_ip4,
                         is_no_fib_entry=True).add_vpp_config()
        # now the packets shold forward
        rx = self.send_and_expect(self.pg0, [p_tcp], self.pg2)
        self.assertFalse(rx[0].haslayer(ARP))
        self.assertEqual(rx[0][Ether].dst, self.pg2.remote_mac)

        #
        # flush the neighbor cache on the uplink
        #
        af = VppEnum.vl_api_address_family_t
        self.vapi.ip_neighbor_flush(af.ADDRESS_IP4, self.pg0.sw_if_index)

        # ensure we can still resolve the ARPs on the uplink
        self.pg0.resolve_arp()

        self.assertTrue(find_nbr(self,
                                 self.pg0.sw_if_index,
                                 self.pg0.remote_ip4))

        #
        # cleanup
        #
        self.vapi.proxy_arp_add_del(proxy={'table_id': 0,
                                           'low': self.pg0._local_ip4_subnet,
                                           'hi': self.pg0._local_ip4_bcast},
                                    is_add=0)
        redirect.remove_vpp_config()

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

        self.pg1.generate_remote_hosts(2)

        #
        # Proxy ARP request 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(proxy={'table_id': 0,
                                           'low': "10.10.10.2",
                                           'hi': "10.10.10.124"},
                                    is_add=1)

        #
        # 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 route 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(b'\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 should 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()
        static_arp.remove_vpp_config()
        self.pg2.set_table_ip4(0)

    def test_arp_static_replace_dynamic_same_mac(self):
        """ ARP Static can replace Dynamic (same mac) """
        self.pg2.generate_remote_hosts(1)

        dyn_arp = VppNeighbor(self,
                              self.pg2.sw_if_index,
                              self.pg2.remote_hosts[0].mac,
                              self.pg2.remote_hosts[0].ip4)
        static_arp = VppNeighbor(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[0].mac,
                                 self.pg2.remote_hosts[0].ip4,
                                 is_static=1)

        #
        # Add a dynamic ARP entry
        #
        dyn_arp.add_vpp_config()

        #
        # We should find the dynamic nbr
        #
        self.assertFalse(find_nbr(self,
                                  self.pg2.sw_if_index,
                                  self.pg2.remote_hosts[0].ip4,
                                  is_static=1))
        self.assertTrue(find_nbr(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[0].ip4,
                                 is_static=0,
                                 mac=self.pg2.remote_hosts[0].mac))

        #
        # Add a static ARP entry with the same mac
        #
        static_arp.add_vpp_config()

        #
        # We should now find the static nbr with the same mac
        #
        self.assertFalse(find_nbr(self,
                                  self.pg2.sw_if_index,
                                  self.pg2.remote_hosts[0].ip4,
                                  is_static=0))
        self.assertTrue(find_nbr(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[0].ip4,
                                 is_static=1,
                                 mac=self.pg2.remote_hosts[0].mac))

        #
        # clean-up
        #
        static_arp.remove_vpp_config()

    def test_arp_static_replace_dynamic_diff_mac(self):
        """ ARP Static can replace Dynamic (diff mac) """
        self.pg2.generate_remote_hosts(2)

        dyn_arp = VppNeighbor(self,
                              self.pg2.sw_if_index,
                              self.pg2.remote_hosts[0].mac,
                              self.pg2.remote_hosts[0].ip4)
        static_arp = VppNeighbor(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[1].mac,
                                 self.pg2.remote_hosts[0].ip4,
                                 is_static=1)

        #
        # Add a dynamic ARP entry
        #
        dyn_arp.add_vpp_config()

        #
        # We should find the dynamic nbr
        #
        self.assertFalse(find_nbr(self,
                                  self.pg2.sw_if_index,
                                  self.pg2.remote_hosts[0].ip4,
                                  is_static=1))
        self.assertTrue(find_nbr(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[0].ip4,
                                 is_static=0,
                                 mac=self.pg2.remote_hosts[0].mac))

        #
        # Add a static ARP entry with a changed mac
        #
        static_arp.add_vpp_config()

        #
        # We should now find the static nbr with a changed mac
        #
        self.assertFalse(find_nbr(self,
                                  self.pg2.sw_if_index,
                                  self.pg2.remote_hosts[0].ip4,
                                  is_static=0))
        self.assertTrue(find_nbr(self,
                                 self.pg2.sw_if_index,
                                 self.pg2.remote_hosts[0].ip4,
                                 is_static=1,
                                 mac=self.pg2.remote_hosts[1].mac))

        #
        # clean-up
        #
        static_arp.remove_vpp_config()

    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
        #
        self.vapi.sw_interface_set_mac_address(self.pg1.sw_if_index,
                                               "00:00:00:33:33:33")

        #
        # 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 interface that does not have a
        # configured subnet and thus no glean
        #
        self.vapi.sw_interface_set_mac_address(self.pg2.sw_if_index,
                                               "00:00:00:33:33:33")

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

        #
        # Generate some hosts on the LAN
        #
        self.pg1.generate_remote_hosts(4)
        self.pg2.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 (request 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))

        #
        # IP address in different subnets are not learnt
        #
        self.pg2.configure_ipv4_neighbors()

        for op in ["is-at", "who-has"]:
            p1 = [(Ether(dst="ff:ff:ff:ff:ff:ff",
                         src=self.pg2.remote_hosts[1].mac) /
                   ARP(op=op,
                       hwdst=self.pg2.local_mac,
                       hwsrc=self.pg2.remote_hosts[1].mac,
                       pdst=self.pg2.remote_hosts[1].ip4,
                       psrc=self.pg2.remote_hosts[1].ip4)),
                  (Ether(dst="ff:ff:ff:ff:ff:ff",
                         src=self.pg2.remote_hosts[1].mac) /
                   ARP(op=op,
                       hwdst="ff:ff:ff:ff:ff:ff",
                       hwsrc=self.pg2.remote_hosts[1].mac,
                       pdst=self.pg2.remote_hosts[1].ip4,
                       psrc=self.pg2.remote_hosts[1].ip4))]

            self.send_and_assert_no_replies(self.pg1, p1)
            self.assertFalse(find_nbr(self,
                                      self.pg1.sw_if_index,
                                      self.pg2.remote_hosts[1].ip4))

        # they are all dropped because the subnet's don't match
        self.assertEqual(4, self.statistics.get_err_counter(
            "/err/arp-reply/IP4 destination address not local to subnet"))

    def test_arp_incomplete2(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)])
        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 secondary
        # address added to an interface
        #
        self.pg0.generate_remote_hosts(2)

        forus = VppIpRoute(
            self, self.pg0.remote_hosts[1].ip4, 32,
            [VppRoutePath("0.0.0.0",
                          self.pg0.sw_if_index,
                          type=FibPathType.FIB_PATH_TYPE_LOCAL)])
        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)

    def test_arp_table_swap(self):
        #
        # Generate some hosts on the LAN
        #
        N_NBRS = 4
        self.pg1.generate_remote_hosts(N_NBRS)

        for n in range(N_NBRS):
            # a route thru each neighbour
            VppIpRoute(self, "10.0.0.%d" % n, 32,
                       [VppRoutePath(self.pg1.remote_hosts[n].ip4,
                                     self.pg1.sw_if_index)]).add_vpp_config()

            # resolve each neighbour
            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_hosts[n].ip4))

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

        self.logger.info(self.vapi.cli("sh ip neighbors"))

        #
        # swap the table pg1 is in
        #
        table = VppIpTable(self, 100).add_vpp_config()

        self.pg1.unconfig_ip4()
        self.pg1.set_table_ip4(100)
        self.pg1.config_ip4()

        #
        # all neighbours are cleared
        #
        for n in range(N_NBRS):
            self.assertFalse(find_nbr(self,
                                      self.pg1.sw_if_index,
                                      self.pg1.remote_hosts[n].ip4))

        #
        # packets to all neighbours generate ARP requests
        #
        for n in range(N_NBRS):
            # a route thru each neighbour
            VppIpRoute(self, "10.0.0.%d" % n, 32,
                       [VppRoutePath(self.pg1.remote_hosts[n].ip4,
                                     self.pg1.sw_if_index)],
                       table_id=100).add_vpp_config()

            p = (Ether(src=self.pg1.remote_hosts[n].mac,
                       dst=self.pg1.local_mac) /
                 IP(src=self.pg1.remote_hosts[n].ip4,
                    dst="10.0.0.%d" % n) /
                 Raw(b'0x5' * 100))
            rxs = self.send_and_expect(self.pg1, [p], self.pg1)
            for rx in rxs:
                self.verify_arp_req(rx,
                                    self.pg1.local_mac,
                                    self.pg1.local_ip4,
                                    self.pg1.remote_hosts[n].ip4)

        self.pg1.unconfig_ip4()
        self.pg1.set_table_ip4(0)

    def test_glean_src_select(self):
        """ Multi Connecteds """

        #
        # configure multiple connected subnets on an interface
        # and ensure that ARP requests for hosts on those subnets
        # pick up the correct source address
        #
        conn1 = VppIpInterfaceAddress(self, self.pg1,
                                      "10.0.0.1", 24).add_vpp_config()
        conn2 = VppIpInterfaceAddress(self, self.pg1,
                                      "10.0.1.1", 24).add_vpp_config()

        p1 = (Ether(src=self.pg0.remote_mac,
                    dst=self.pg0.local_mac) /
              IP(src=self.pg1.remote_ip4,
                 dst="10.0.0.128") /
              Raw(b'0x5' * 100))

        rxs = self.send_and_expect(self.pg0, [p1], self.pg1)
        for rx in rxs:
            self.verify_arp_req(rx,
                                self.pg1.local_mac,
                                "10.0.0.1",
                                "10.0.0.128")

        p2 = (Ether(src=self.pg0.remote_mac,
                    dst=self.pg0.local_mac) /
              IP(src=self.pg1.remote_ip4,
                 dst="10.0.1.128") /
              Raw(b'0x5' * 100))

        rxs = self.send_and_expect(self.pg0, [p2], self.pg1)
        for rx in rxs:
            self.verify_arp_req(rx,
                                self.pg1.local_mac,
                                "10.0.1.1",
                                "10.0.1.128")

        #
        # add a local address in the same subnet
        #  the source addresses are equivalent. VPP happens to
        #  choose the last one that was added
        conn3 = VppIpInterfaceAddress(self, self.pg1,
                                      "10.0.1.2", 24).add_vpp_config()

        rxs = self.send_and_expect(self.pg0, [p2], self.pg1)
        for rx in rxs:
            self.verify_arp_req(rx,
                                self.pg1.local_mac,
                                "10.0.1.2",
                                "10.0.1.128")

        #
        # remove
        #
        conn3.remove_vpp_config()
        rxs = self.send_and_expect(self.pg0, [p2], self.pg1)
        for rx in rxs:
            self.verify_arp_req(rx,
                                self.pg1.local_mac,
                                "10.0.1.1",
                                "10.0.1.128")

        #
        # add back, this time remove the first one
        #
        conn3 = VppIpInterfaceAddress(self, self.pg1,
                                      "10.0.1.2", 24).add_vpp_config()

        rxs = self.send_and_expect(self.pg0, [p2], self.pg1)
        for rx in rxs:
            self.verify_arp_req(rx,
                                self.pg1.local_mac,
                                "10.0.1.2",
                                "10.0.1.128")

        conn1.remove_vpp_config()
        rxs = self.send_and_expect(self.pg0, [p2], self.pg1)
        for rx in rxs:
            self.verify_arp_req(rx,
                                self.pg1.local_mac,
                                "10.0.1.2",
                                "10.0.1.128")

        # cleanup
        conn3.remove_vpp_config()
        conn2.remove_vpp_config()


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

    @classmethod
    def setUpClass(cls):
        super(NeighborStatsTestCase, cls).setUpClass()

    @classmethod
    def tearDownClass(cls):
        super(NeighborStatsTestCase, cls).tearDownClass()

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

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

        rx = self.send_and_expect(self.pg0, p1 * NUM_PKTS, self.pg1)
        self.assertEqual(NUM_PKTS*2, 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 * NUM_PKTS, self.pg0)
        self.assertEqual(NUM_PKTS+16, nd1.get_stats()['packets'])


class NeighborAgeTestCase(VppTestCase):
    """ ARP/ND Aging """

    @classmethod
    def setUpClass(cls):
        super(NeighborAgeTestCase, cls).setUpClass()

    @classmethod
    def tearDownClass(cls):
        super(NeighborAgeTestCase, cls).tearDownClass()

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

        self.create_pg_interfaces(range(1))

        # 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(NeighborAgeTestCase, self).tearDown()

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

    def wait_for_no_nbr(self, intf, address,
                        n_tries=50, s_time=1):
        while (n_tries):
            if not find_nbr(self, intf, address):
                return True
            n_tries = n_tries - 1
            self.sleep(s_time)

        return False

    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 test_age(self):
        """ Aging/Recycle """

        self.vapi.cli("set logging unthrottle 0")
        self.vapi.cli("set logging size %d" % 0xffff)

        self.pg0.generate_remote_hosts(201)

        vaf = VppEnum.vl_api_address_family_t

        #
        # start listening on all interfaces
        #
        self.pg_enable_capture(self.pg_interfaces)

        #
        # Set the neighbor configuration:
        #   limi = 200
        #   age  = 0 seconds
        #   recycle = false
        #
        self.vapi.ip_neighbor_config(af=vaf.ADDRESS_IP4,
                                     max_number=200,
                                     max_age=0,
                                     recycle=False)

        self.vapi.cli("sh ip neighbor-config")

        # add the 198 neighbours that should pass (-1 for one created in setup)
        for ii in range(200):
            VppNeighbor(self,
                        self.pg0.sw_if_index,
                        self.pg0.remote_hosts[ii].mac,
                        self.pg0.remote_hosts[ii].ip4).add_vpp_config()

        # one more neighbor over the limit should fail
        with self.vapi.assert_negative_api_retval():
            VppNeighbor(self,
                        self.pg0.sw_if_index,
                        self.pg0.remote_hosts[200].mac,
                        self.pg0.remote_hosts[200].ip4).add_vpp_config()

        #
        # change the config to allow recycling the old neighbors
        #
        self.vapi.ip_neighbor_config(af=vaf.ADDRESS_IP4,
                                     max_number=200,
                                     max_age=0,
                                     recycle=True)

        # now new additions are allowed
        VppNeighbor(self,
                    self.pg0.sw_if_index,
                    self.pg0.remote_hosts[200].mac,
                    self.pg0.remote_hosts[200].ip4).add_vpp_config()

        # add the first neighbor we configured has been re-used
        self.assertFalse(find_nbr(self,
                                  self.pg0.sw_if_index,
                                  self.pg0.remote_hosts[0].ip4))
        self.assertTrue(find_nbr(self,
                                 self.pg0.sw_if_index,
                                 self.pg0.remote_hosts[200].ip4))

        #
        # change the config to age old neighbors
        #
        self.vapi.ip_neighbor_config(af=vaf.ADDRESS_IP4,
                                     max_number=200,
                                     max_age=2,
                                     recycle=True)

        self.vapi.cli("sh ip4 neighbor-sorted")

        #
        # expect probes from all these ARP entries as they age
        # 3 probes for each neighbor 3*200 = 600
        rxs = self.pg0.get_capture(600, timeout=8)

        for ii in range(3):
            for jj in range(200):
                rx = rxs[ii*200 + jj]
                # rx.show()

        #
        # 3 probes sent then 1 more second to see if a reply comes, before
        # they age out
        #
        for jj in range(1, 201):
            self.wait_for_no_nbr(self.pg0.sw_if_index,
                                 self.pg0.remote_hosts[jj].ip4)

        self.assertFalse(self.vapi.ip_neighbor_dump(sw_if_index=0xffffffff,
                                                    af=vaf.ADDRESS_IP4))

        #
        # load up some neighbours again with 2s aging enabled
        # they should be removed after 10s (2s age + 4s for probes + gap)
        # check for the add and remove events
        #
        enum = VppEnum.vl_api_ip_neighbor_event_flags_t

        self.vapi.want_ip_neighbor_events_v2(enable=1)
        for ii in range(10):
            VppNeighbor(self,
                        self.pg0.sw_if_index,
                        self.pg0.remote_hosts[ii].mac,
                        self.pg0.remote_hosts[ii].ip4).add_vpp_config()

            e = self.vapi.wait_for_event(1, "ip_neighbor_event_v2")
            self.assertEqual(e.flags,
                             enum.IP_NEIGHBOR_API_EVENT_FLAG_ADDED)
            self.assertEqual(str(e.neighbor.ip_address),
                             self.pg0.remote_hosts[ii].ip4)
            self.assertEqual(e.neighbor.mac_address,
                             self.pg0.remote_hosts[ii].mac)

        self.sleep(10)
        self.assertFalse(self.vapi.ip_neighbor_dump(sw_if_index=0xffffffff,
                                                    af=vaf.ADDRESS_IP4))

        evs = []
        for ii in range(10):
            e = self.vapi.wait_for_event(1, "ip_neighbor_event_v2")
            self.assertEqual(e.flags,
                             enum.IP_NEIGHBOR_API_EVENT_FLAG_REMOVED)
            evs.append(e)

        # check we got the correct mac/ip pairs - done separately
        # because we don't care about the order the remove notifications
        # arrive
        for ii in range(10):
            found = False
            mac = self.pg0.remote_hosts[ii].mac
            ip = self.pg0.remote_hosts[ii].ip4

            for e in evs:
                if (e.neighbor.mac_address == mac and
                   str(e.neighbor.ip_address) == ip):
                    found = True
                    break
            self.assertTrue(found)

        #
        # check if we can set age and recycle with empty neighbor list
        #
        self.vapi.ip_neighbor_config(af=vaf.ADDRESS_IP4,
                                     max_number=200,
                                     max_age=1000,
                                     recycle=True)

        #
        # load up some neighbours again, then disable the aging
        # they should still be there in 10 seconds time
        #
        for ii in range(10):
            VppNeighbor(self,
                        self.pg0.sw_if_index,
                        self.pg0.remote_hosts[ii].mac,
                        self.pg0.remote_hosts[ii].ip4).add_vpp_config()
        self.vapi.ip_neighbor_config(af=vaf.ADDRESS_IP4,
                                     max_number=200,
                                     max_age=0,
                                     recycle=False)

        self.sleep(10)
        self.assertTrue(find_nbr(self,
                                 self.pg0.sw_if_index,
                                 self.pg0.remote_hosts[0].ip4))


class NeighborReplaceTestCase(VppTestCase):
    """ ARP/ND Replacement """

    @classmethod
    def setUpClass(cls):
        super(NeighborReplaceTestCase, cls).setUpClass()

    @classmethod
    def tearDownClass(cls):
        super(NeighborReplaceTestCase, cls).tearDownClass()

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

        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()
            i.config_ip4()
            i.config_ip6()
            i.resolve_arp()
            i.resolve_ndp()

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

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

    def test_replace(self):
        """ replace """

        N_HOSTS = 16

        for i in self.pg_interfaces:
            i.generate_remote_hosts(N_HOSTS)
            i.configure_ipv4_neighbors()
            i.configure_ipv6_neighbors()

        # replace them all
        self.vapi.ip_neighbor_replace_begin()
        self.vapi.ip_neighbor_replace_end()

        for i in self.pg_interfaces:
            for h in range(N_HOSTS):
                self.assertFalse(find_nbr(self,
                                          self.pg0.sw_if_index,
                                          self.pg0.remote_hosts[h].ip4))
                self.assertFalse(find_nbr(self,
                                          self.pg0.sw_if_index,
                                          self.pg0.remote_hosts[h].ip6))

        #
        # and them all back via the API
        #
        for i in self.pg_interfaces:
            for h in range(N_HOSTS):
                VppNeighbor(self,
                            i.sw_if_index,
                            i.remote_hosts[h].mac,
                            i.remote_hosts[h].ip4).add_vpp_config()
                VppNeighbor(self,
                            i.sw_if_index,
                            i.remote_hosts[h].mac,
                            i.remote_hosts[h].ip6).add_vpp_config()

        #
        # begin the replacement again, this time touch some
        # the neighbours on pg1 so they are not deleted
        #
        self.vapi.ip_neighbor_replace_begin()

        # update from the API all neighbours on pg1
        for h in range(N_HOSTS):
            VppNeighbor(self,
                        self.pg1.sw_if_index,
                        self.pg1.remote_hosts[h].mac,
                        self.pg1.remote_hosts[h].ip4).add_vpp_config()
            VppNeighbor(self,
                        self.pg1.sw_if_index,
                        self.pg1.remote_hosts[h].mac,
                        self.pg1.remote_hosts[h].ip6).add_vpp_config()

        # update from the data-plane all neighbours on pg3
        self.pg3.configure_ipv4_neighbors()
        self.pg3.configure_ipv6_neighbors()

        # complete the replacement
        self.logger.info(self.vapi.cli("sh ip neighbors"))
        self.vapi.ip_neighbor_replace_end()

        for i in self.pg_interfaces:
            if i == self.pg1 or i == self.pg3:
                # neighbours on pg1 and pg3 are still present
                for h in range(N_HOSTS):
                    self.assertTrue(find_nbr(self,
                                             i.sw_if_index,
                                             i.remote_hosts[h].ip4))
                    self.assertTrue(find_nbr(self,
                                             i.sw_if_index,
                                             i.remote_hosts[h].ip6))
            else:
                # all other neighbours are toast
                for h in range(N_HOSTS):
                    self.assertFalse(find_nbr(self,
                                              i.sw_if_index,
                                              i.remote_hosts[h].ip4))
                    self.assertFalse(find_nbr(self,
                                              i.sw_if_index,
                                              i.remote_hosts[h].ip6))


class NeighborFlush(VppTestCase):
    """ Neighbor Flush """

    @classmethod
    def setUpClass(cls):
        super(NeighborFlush, cls).setUpClass()

    @classmethod
    def tearDownClass(cls):
        super(NeighborFlush, cls).tearDownClass()

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

        self.create_pg_interfaces(range(2))

        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(NeighborFlush, self).tearDown()

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

    def test_flush(self):
        """ Neighbour Flush """

        e = VppEnum
        nf = e.vl_api_ip_neighbor_flags_t
        af = e.vl_api_address_family_t
        N_HOSTS = 16
        static = [False, True]
        self.pg0.generate_remote_hosts(N_HOSTS)
        self.pg1.generate_remote_hosts(N_HOSTS)

        for s in static:
            # a few v4 and v6 dynamic neoghbors
            for n in range(N_HOSTS):
                VppNeighbor(self,
                            self.pg0.sw_if_index,
                            self.pg0.remote_hosts[n].mac,
                            self.pg0.remote_hosts[n].ip4,
                            is_static=s).add_vpp_config()
                VppNeighbor(self,
                            self.pg1.sw_if_index,
                            self.pg1.remote_hosts[n].mac,
                            self.pg1.remote_hosts[n].ip6,
                            is_static=s).add_vpp_config()

            # flush the interfaces individually
            self.vapi.ip_neighbor_flush(af.ADDRESS_IP4, self.pg0.sw_if_index)

            # check we haven't flushed that which we shouldn't
            for n in range(N_HOSTS):
                self.assertTrue(find_nbr(self,
                                         self.pg1.sw_if_index,
                                         self.pg1.remote_hosts[n].ip6,
                                         is_static=s))

            self.vapi.ip_neighbor_flush(af.ADDRESS_IP6, self.pg1.sw_if_index)

            for n in range(N_HOSTS):
                self.assertFalse(find_nbr(self,
                                          self.pg0.sw_if_index,
                                          self.pg0.remote_hosts[n].ip4))
                self.assertFalse(find_nbr(self,
                                          self.pg1.sw_if_index,
                                          self.pg1.remote_hosts[n].ip6))

            # add the nieghbours back
            for n in range(N_HOSTS):
                VppNeighbor(self,
                            self.pg0.sw_if_index,
                            self.pg0.remote_hosts[n].mac,
                            self.pg0.remote_hosts[n].ip4,
                            is_static=s).add_vpp_config()
                VppNeighbor(self,
                            self.pg1.sw_if_index,
                            self.pg1.remote_hosts[n].mac,
                            self.pg1.remote_hosts[n].ip6,
                            is_static=s).add_vpp_config()

            self.logger.info(self.vapi.cli("sh ip neighbor"))

            # flush both interfaces at the same time
            self.vapi.ip_neighbor_flush(af.ADDRESS_IP6, 0xffffffff)

            # check we haven't flushed that which we shouldn't
            for n in range(N_HOSTS):
                self.assertTrue(find_nbr(self,
                                         self.pg0.sw_if_index,
                                         self.pg0.remote_hosts[n].ip4,
                                         is_static=s))

            self.vapi.ip_neighbor_flush(af.ADDRESS_IP4, 0xffffffff)

            for n in range(N_HOSTS):
                self.assertFalse(find_nbr(self,
                                          self.pg0.sw_if_index,
                                          self.pg0.remote_hosts[n].ip4))
                self.assertFalse(find_nbr(self,
                                          self.pg1.sw_if_index,
                                          self.pg1.remote_hosts[n].ip6))


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