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path: root/src/vnet/udp/udp_encap.c
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/*
 * Copyright (c) 2017-2019 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.
 */

#include <vnet/udp/udp_encap.h>
#include <vnet/fib/fib_entry.h>
#include <vnet/fib/fib_entry_track.h>
#include <vnet/fib/fib_table.h>
#include <vnet/dpo/drop_dpo.h>

/**
 * Registered DPO types for the IP header encapsulated, v4 or v6.
 */
dpo_type_t udp_encap_dpo_types[FIB_PROTOCOL_MAX];

/**
 * Pool of encaps
 */
udp_encap_t *udp_encap_pool;

/**
 * Stats for each UDP encap object
 */
vlib_combined_counter_main_t udp_encap_counters = {
  /**
   * The counter collection's name.
   */
  .name = "udp-encap",
  /**
   * Name in stat segment directory
   */
  .stat_segment_name = "/net/udp-encap",
};

static void
udp_encap_restack (udp_encap_t * ue)
{
  dpo_stack (udp_encap_dpo_types[ue->ue_ip_proto],
	     fib_proto_to_dpo (ue->ue_ip_proto),
	     &ue->ue_dpo,
	     fib_entry_contribute_ip_forwarding (ue->ue_fib_entry_index));
}

index_t
udp_encap_add_and_lock (fib_protocol_t proto,
			index_t fib_index,
			const ip46_address_t * src_ip,
			const ip46_address_t * dst_ip,
			u16 src_port,
			u16 dst_port, udp_encap_fixup_flags_t flags)
{
  udp_encap_t *ue;
  u8 pfx_len = 0;
  index_t uei;

  pool_get_aligned (udp_encap_pool, ue, CLIB_CACHE_LINE_BYTES);
  uei = ue - udp_encap_pool;

  vlib_validate_combined_counter (&(udp_encap_counters), uei);
  vlib_zero_combined_counter (&(udp_encap_counters), uei);

  fib_node_init (&ue->ue_fib_node, FIB_NODE_TYPE_UDP_ENCAP);
  fib_node_lock (&ue->ue_fib_node);
  ue->ue_fib_index = fib_index;
  ue->ue_flags = flags;
  ue->ue_ip_proto = proto;

  switch (proto)
    {
    case FIB_PROTOCOL_IP4:
      pfx_len = 32;
      ue->ue_hdrs.ip4.ue_ip4.ip_version_and_header_length = 0x45;
      ue->ue_hdrs.ip4.ue_ip4.ttl = 254;
      ue->ue_hdrs.ip4.ue_ip4.protocol = IP_PROTOCOL_UDP;
      ue->ue_hdrs.ip4.ue_ip4.src_address.as_u32 = src_ip->ip4.as_u32;
      ue->ue_hdrs.ip4.ue_ip4.dst_address.as_u32 = dst_ip->ip4.as_u32;
      ue->ue_hdrs.ip4.ue_ip4.checksum =
	ip4_header_checksum (&ue->ue_hdrs.ip4.ue_ip4);
      ue->ue_hdrs.ip4.ue_udp.src_port = clib_host_to_net_u16 (src_port);
      ue->ue_hdrs.ip4.ue_udp.dst_port = clib_host_to_net_u16 (dst_port);

      break;
    case FIB_PROTOCOL_IP6:
      pfx_len = 128;
      ue->ue_hdrs.ip6.ue_ip6.ip_version_traffic_class_and_flow_label =
	clib_host_to_net_u32 (6 << 28);
      ue->ue_hdrs.ip6.ue_ip6.hop_limit = 255;
      ue->ue_hdrs.ip6.ue_ip6.protocol = IP_PROTOCOL_UDP;
      ue->ue_hdrs.ip6.ue_ip6.src_address.as_u64[0] = src_ip->ip6.as_u64[0];
      ue->ue_hdrs.ip6.ue_ip6.src_address.as_u64[1] = src_ip->ip6.as_u64[1];
      ue->ue_hdrs.ip6.ue_ip6.dst_address.as_u64[0] = dst_ip->ip6.as_u64[0];
      ue->ue_hdrs.ip6.ue_ip6.dst_address.as_u64[1] = dst_ip->ip6.as_u64[1];
      ue->ue_hdrs.ip6.ue_udp.src_port = clib_host_to_net_u16 (src_port);
      ue->ue_hdrs.ip6.ue_udp.dst_port = clib_host_to_net_u16 (dst_port);

      break;
    default:
      ASSERT (0);
    }

  /*
   * track the destination address
   */
  fib_prefix_t dst_pfx = {
    .fp_proto = proto,
    .fp_len = pfx_len,
    .fp_addr = *dst_ip,
  };

  ue->ue_fib_entry_index = fib_entry_track (fib_index,
					    &dst_pfx,
					    FIB_NODE_TYPE_UDP_ENCAP,
					    uei, &ue->ue_fib_sibling);
  udp_encap_restack (ue);

  return (uei);
}

void
udp_encap_contribute_forwarding (index_t uei, dpo_proto_t proto,
				 dpo_id_t * dpo)
{
  if (INDEX_INVALID == uei)
    {
      dpo_copy (dpo, drop_dpo_get (proto));
    }
  else
    {
      udp_encap_t *ue;

      ue = udp_encap_get (uei);

      dpo_set (dpo, udp_encap_dpo_types[ue->ue_ip_proto], proto, uei);
    }
}

void
udp_encap_lock (index_t uei)
{
  udp_encap_t *ue;

  ue = udp_encap_get (uei);

  if (NULL != ue)
    {
      fib_node_lock (&ue->ue_fib_node);
    }
}

void
udp_encap_unlock (index_t uei)
{
  udp_encap_t *ue;

  if (INDEX_INVALID == uei)
    {
      return;
    }

  ue = udp_encap_get (uei);

  if (NULL != ue)
    {
      fib_node_unlock (&ue->ue_fib_node);
    }
}

static void
udp_encap_dpo_lock (dpo_id_t * dpo)
{
  udp_encap_t *ue;

  ue = udp_encap_get (dpo->dpoi_index);

  fib_node_lock (&ue->ue_fib_node);
}

static void
udp_encap_dpo_unlock (dpo_id_t * dpo)
{
  udp_encap_t *ue;

  ue = udp_encap_get (dpo->dpoi_index);

  fib_node_unlock (&ue->ue_fib_node);
}

static u8 *
format_udp_encap_i (u8 * s, va_list * args)
{
  index_t uei = va_arg (*args, index_t);
  u32 indent = va_arg (*args, u32);
  u32 details = va_arg (*args, u32);
  vlib_counter_t to;
  udp_encap_t *ue;

  ue = udp_encap_get (uei);

  // FIXME
  s = format (s, "udp-encap:[%d]: ip-fib-index:%d ", uei, ue->ue_fib_index);
  if (FIB_PROTOCOL_IP4 == ue->ue_ip_proto)
    {
      s = format (s, "ip:[src:%U, dst:%U] udp:[src:%d, dst:%d]",
		  format_ip4_address,
		  &ue->ue_hdrs.ip4.ue_ip4.src_address,
		  format_ip4_address,
		  &ue->ue_hdrs.ip4.ue_ip4.dst_address,
		  clib_net_to_host_u16 (ue->ue_hdrs.ip4.ue_udp.src_port),
		  clib_net_to_host_u16 (ue->ue_hdrs.ip4.ue_udp.dst_port));
    }
  else
    {
      s = format (s, "ip:[src:%U, dst:%U] udp:[src:%d dst:%d]",
		  format_ip6_address,
		  &ue->ue_hdrs.ip6.ue_ip6.src_address,
		  format_ip6_address,
		  &ue->ue_hdrs.ip6.ue_ip6.dst_address,
		  clib_net_to_host_u16 (ue->ue_hdrs.ip6.ue_udp.src_port),
		  clib_net_to_host_u16 (ue->ue_hdrs.ip6.ue_udp.dst_port));
    }
  vlib_get_combined_counter (&(udp_encap_counters), uei, &to);
  s = format (s, " to:[%Ld:%Ld]]", to.packets, to.bytes);

  if (details)
    {
      s = format (s, " locks:%d", ue->ue_fib_node.fn_locks);
      s = format (s, "\n%UStacked on:", format_white_space, indent + 1);
      s = format (s, "\n%U%U",
		  format_white_space, indent + 2,
		  format_dpo_id, &ue->ue_dpo, indent + 3);
    }
  return (s);
}

void
udp_encap_get_stats (index_t uei, u64 * packets, u64 * bytes)
{
  vlib_counter_t to;

  vlib_get_combined_counter (&(udp_encap_counters), uei, &to);

  *packets = to.packets;
  *bytes = to.bytes;
}

static u8 *
format_udp_encap_dpo (u8 * s, va_list * args)
{
  index_t uei = va_arg (*args, index_t);
  u32 indent = va_arg (*args, u32);

  return (format (s, "%U", format_udp_encap_i, uei, indent, 1));
}

u8 *
format_udp_encap (u8 * s, va_list * args)
{
  index_t uei = va_arg (*args, u32);
  u32 details = va_arg (*args, u32);

  return (format (s, "%U", format_udp_encap_i, uei, 0, details));
}

static udp_encap_t *
udp_encap_from_fib_node (fib_node_t * node)
{
  ASSERT (FIB_NODE_TYPE_UDP_ENCAP == node->fn_type);
  return ((udp_encap_t *) (((char *) node) -
			   STRUCT_OFFSET_OF (udp_encap_t, ue_fib_node)));
}

/**
 * Function definition to backwalk a FIB node
 */
static fib_node_back_walk_rc_t
udp_encap_fib_back_walk (fib_node_t * node, fib_node_back_walk_ctx_t * ctx)
{
  udp_encap_restack (udp_encap_from_fib_node (node));

  return (FIB_NODE_BACK_WALK_CONTINUE);
}

/**
 * Function definition to get a FIB node from its index
 */
static fib_node_t *
udp_encap_fib_node_get (fib_node_index_t index)
{
  udp_encap_t *ue;

  ue = pool_elt_at_index (udp_encap_pool, index);

  return (&ue->ue_fib_node);
}

/**
 * Function definition to inform the FIB node that its last lock has gone.
 */
static void
udp_encap_fib_last_lock_gone (fib_node_t * node)
{
  udp_encap_t *ue;

  ue = udp_encap_from_fib_node (node);

    /**
     * reset the stacked DPO to unlock it
     */
  dpo_reset (&ue->ue_dpo);

  fib_entry_untrack (ue->ue_fib_entry_index, ue->ue_fib_sibling);

  pool_put (udp_encap_pool, ue);
}

const static char *const udp4_encap_ip4_nodes[] = {
  "udp4-encap",
  NULL,
};

const static char *const udp4_encap_ip6_nodes[] = {
  "udp4-encap",
  NULL,
};

const static char *const udp4_encap_mpls_nodes[] = {
  "udp4-encap",
  NULL,
};

const static char *const udp4_encap_bier_nodes[] = {
  "udp4-encap",
  NULL,
};

const static char *const udp6_encap_ip4_nodes[] = {
  "udp6-encap",
  NULL,
};

const static char *const udp6_encap_ip6_nodes[] = {
  "udp6-encap",
  NULL,
};

const static char *const udp6_encap_mpls_nodes[] = {
  "udp6-encap",
  NULL,
};

const static char *const udp6_encap_bier_nodes[] = {
  "udp6-encap",
  NULL,
};

const static char *const *const udp4_encap_nodes[DPO_PROTO_NUM] = {
  [DPO_PROTO_IP4] = udp4_encap_ip4_nodes,
  [DPO_PROTO_IP6] = udp4_encap_ip6_nodes,
  [DPO_PROTO_MPLS] = udp4_encap_mpls_nodes,
  [DPO_PROTO_BIER] = udp4_encap_bier_nodes,
};

const static char *const *const udp6_encap_nodes[DPO_PROTO_NUM] = {
  [DPO_PROTO_IP4] = udp6_encap_ip4_nodes,
  [DPO_PROTO_IP6] = udp6_encap_ip6_nodes,
  [DPO_PROTO_MPLS] = udp6_encap_mpls_nodes,
  [DPO_PROTO_BIER] = udp6_encap_bier_nodes,
};

/*
 * Virtual function table registered by UDP encaps
 * for participation in the FIB object graph.
 */
const static fib_node_vft_t udp_encap_fib_vft = {
  .fnv_get = udp_encap_fib_node_get,
  .fnv_last_lock = udp_encap_fib_last_lock_gone,
  .fnv_back_walk = udp_encap_fib_back_walk,
};

const static dpo_vft_t udp_encap_dpo_vft = {
  .dv_lock = udp_encap_dpo_lock,
  .dv_unlock = udp_encap_dpo_unlock,
  .dv_format = format_udp_encap_dpo,
};

clib_error_t *
udp_encap_init (vlib_main_t * vm)
{
  fib_node_register_type (FIB_NODE_TYPE_UDP_ENCAP, &udp_encap_fib_vft);

  udp_encap_dpo_types[FIB_PROTOCOL_IP4] =
    dpo_register_new_type (&udp_encap_dpo_vft, udp4_encap_nodes);
  udp_encap_dpo_types[FIB_PROTOCOL_IP6] =
    dpo_register_new_type (&udp_encap_dpo_vft, udp6_encap_nodes);

  return (NULL);
}

VLIB_INIT_FUNCTION (udp_encap_init);

clib_error_t *
udp_encap_cli (vlib_main_t * vm,
	       unformat_input_t * main_input, vlib_cli_command_t * cmd)
{
  unformat_input_t _line_input, *line_input = &_line_input;
  clib_error_t *error = NULL;
  ip46_address_t src_ip, dst_ip;
  u32 table_id, src_port, dst_port;
  udp_encap_fixup_flags_t flags;
  fib_protocol_t fproto;
  index_t uei;
  u8 is_del;

  is_del = 0;
  table_id = 0;
  flags = UDP_ENCAP_FIXUP_NONE;
  fproto = FIB_PROTOCOL_MAX;
  dst_port = 0;
  uei = ~0;

  /* Get a line of input. */
  if (!unformat_user (main_input, unformat_line_input, line_input))
    return 0;

  while (unformat_check_input (line_input) != UNFORMAT_END_OF_INPUT)
    {
      if (unformat (line_input, "index %d", &uei))
	;
      else if (unformat (line_input, "add"))
	is_del = 0;
      else if (unformat (line_input, "del"))
	is_del = 1;
      else if (unformat (line_input, "%U %U",
			 unformat_ip4_address,
			 &src_ip.ip4, unformat_ip4_address, &dst_ip.ip4))
	fproto = FIB_PROTOCOL_IP4;
      else if (unformat (line_input, "%U %U",
			 unformat_ip6_address,
			 &src_ip.ip6, unformat_ip6_address, &dst_ip.ip6))
	fproto = FIB_PROTOCOL_IP6;
      else if (unformat (line_input, "%d %d", &src_port, &dst_port))
	;
      else if (unformat (line_input, "%d", &dst_port))
	;
      else if (unformat (line_input, "table-id %d", &table_id))
	;
      else if (unformat (line_input, "src-port-is-entropy"))
	flags |= UDP_ENCAP_FIXUP_UDP_SRC_PORT_ENTROPY;
      else
	{
	  error = unformat_parse_error (line_input);
	  goto done;
	}
    }

  if (!is_del && fproto != FIB_PROTOCOL_MAX)
    {
      u32 fib_index;
      index_t uei;

      fib_index = fib_table_find (fproto, table_id);

      if (~0 == fib_index)
	{
	  error = clib_error_return (0, "Nonexistent table id %d", table_id);
	  goto done;
	}

      uei = udp_encap_add_and_lock (fproto, fib_index,
				    &src_ip, &dst_ip,
				    src_port, dst_port, flags);

      vlib_cli_output (vm, "udp-encap: %d\n", uei);
    }
  else if (is_del)
    {
      if (INDEX_INVALID == uei)
	{
	  error = clib_error_return (0, "specify udp-encap object index");
	  goto done;
	}
      udp_encap_unlock (uei);
    }
  else
    {
      error = clib_error_return (0, "specify some IP addresses");
    }

done:
  unformat_free (line_input);
  return error;
}

void
udp_encap_walk (udp_encap_walk_cb_t cb, void *ctx)
{
  index_t uei;

  /* *INDENT-OFF* */
  pool_foreach_index(uei, udp_encap_pool,
  ({
    if (WALK_STOP == cb(uei, ctx))
      break;
  }));
  /* *INDENT-ON* */
}

clib_error_t *
udp_encap_show (vlib_main_t * vm,
		unformat_input_t * input, vlib_cli_command_t * cmd)
{
  index_t uei;

  uei = INDEX_INVALID;

  /* Get a line of input. */
  while (unformat_check_input (input) != UNFORMAT_END_OF_INPUT)
    {
      if (unformat (input, "%d", &uei))
	;
      else
	return clib_error_return (0, "unknown input `%U'",
				  format_unformat_error, input);
    }

  if (INDEX_INVALID == uei)
    {
      /* *INDENT-OFF* */
      pool_foreach_index(uei, udp_encap_pool,
      ({
        vlib_cli_output(vm, "%U", format_udp_encap, uei, 0);
      }));
      /* *INDENT-ON* */
    }
  else
    {
      vlib_cli_output (vm, "%U", format_udp_encap, uei, 1);
    }

  return NULL;
}

/* *INDENT-OFF* */
VLIB_CLI_COMMAND (udp_encap_add_command, static) = {
  .path = "udp encap",
  .short_help = "udp encap [add|del] <id ID> <src-ip> <dst-ip> [<src-port>] <dst-port>  [src-port-is-entropy] [table-id <table>]",
  .function = udp_encap_cli,
  .is_mp_safe = 1,
};
VLIB_CLI_COMMAND (udp_encap_show_command, static) = {
  .path = "show udp encap",
  .short_help = "show udp encap [ID]",
  .function = udp_encap_show,
  .is_mp_safe = 1,
};
/* *INDENT-ON* */

/*
 * fd.io coding-style-patch-verification: ON
 *
 * Local Variables:
 * eval: (c-set-style "gnu")
 * End:
 */
pan class="p">, self.pg0.remote_ip4, self.pg1._remote_hosts[1].ip4) # # And a Static ARP entry for host 2 # static_arp = VppNeighbor(self, self.pg1.sw_if_index, self.pg1.remote_hosts[2].mac, self.pg1.remote_hosts[2].ip4, is_static=1) static_arp.add_vpp_config() static_p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1._remote_hosts[2].ip4) / UDP(sport=1234, dport=1234) / Raw()) self.pg0.add_stream(static_p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) self.verify_ip(rx[0], self.pg1.local_mac, self.pg1.remote_hosts[2].mac, self.pg0.remote_ip4, self.pg1._remote_hosts[2].ip4) # # flap the link. dynamic ARPs get flush, statics don't # self.pg1.admin_down() self.pg1.admin_up() self.pg0.add_stream(static_p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) self.verify_ip(rx[0], self.pg1.local_mac, self.pg1.remote_hosts[2].mac, self.pg0.remote_ip4, self.pg1._remote_hosts[2].ip4) self.pg0.add_stream(dyn_p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) self.verify_arp_req(rx[0], self.pg1.local_mac, self.pg1.local_ip4, self.pg1._remote_hosts[1].ip4) # # Send an ARP request from one of the so-far unlearned remote hosts # p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg1._remote_hosts[3].mac) / ARP(op="who-has", hwsrc=self.pg1._remote_hosts[3].mac, pdst=self.pg1.local_ip4, psrc=self.pg1._remote_hosts[3].ip4)) self.pg1.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) self.verify_arp_resp(rx[0], self.pg1.local_mac, self.pg1._remote_hosts[3].mac, self.pg1.local_ip4, self.pg1._remote_hosts[3].ip4) # # VPP should have learned the mapping for the remote host # self.assertTrue(find_nbr(self, self.pg1.sw_if_index, self.pg1._remote_hosts[3].ip4)) # # Fire in an ARP request before the interface becomes IP enabled # self.pg2.generate_remote_hosts(4) p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) / ARP(op="who-has", hwsrc=self.pg2.remote_mac, pdst=self.pg1.local_ip4, psrc=self.pg2.remote_hosts[3].ip4)) pt = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) / Dot1Q(vlan=0) / ARP(op="who-has", hwsrc=self.pg2.remote_mac, pdst=self.pg1.local_ip4, psrc=self.pg2.remote_hosts[3].ip4)) self.send_and_assert_no_replies(self.pg2, p, "interface not IP enabled") # # Make pg2 un-numbered to pg1 # self.pg2.set_unnumbered(self.pg1.sw_if_index) unnum = self.vapi.ip_unnumbered_dump() self.assertEqual(unnum[0].ip_sw_if_index, self.pg1.sw_if_index) self.assertEqual(unnum[0].sw_if_index, self.pg2.sw_if_index) # # We should respond to ARP requests for the unnumbered to address # once an attached route to the source is known # self.send_and_assert_no_replies( self.pg2, p, "ARP req for unnumbered address - no source") attached_host = VppIpRoute(self, self.pg2.remote_hosts[3].ip4, 32, [VppRoutePath("0.0.0.0", self.pg2.sw_if_index)]) attached_host.add_vpp_config() self.pg2.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_resp(rx[0], self.pg2.local_mac, self.pg2.remote_mac, self.pg1.local_ip4, self.pg2.remote_hosts[3].ip4) self.pg2.add_stream(pt) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_resp(rx[0], self.pg2.local_mac, self.pg2.remote_mac, self.pg1.local_ip4, self.pg2.remote_hosts[3].ip4) # # A neighbor entry that has no associated FIB-entry # arp_no_fib = VppNeighbor(self, self.pg1.sw_if_index, self.pg1.remote_hosts[4].mac, self.pg1.remote_hosts[4].ip4, is_no_fib_entry=1) arp_no_fib.add_vpp_config() # # check we have the neighbor, but no route # self.assertTrue(find_nbr(self, self.pg1.sw_if_index, self.pg1._remote_hosts[4].ip4)) self.assertFalse(find_route(self, self.pg1._remote_hosts[4].ip4, 32)) # # pg2 is unnumbered to pg1, so we can form adjacencies out of pg2 # from within pg1's subnet # arp_unnum = VppNeighbor(self, self.pg2.sw_if_index, self.pg1.remote_hosts[5].mac, self.pg1.remote_hosts[5].ip4) arp_unnum.add_vpp_config() p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1._remote_hosts[5].ip4) / UDP(sport=1234, dport=1234) / Raw()) self.pg0.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_ip(rx[0], self.pg2.local_mac, self.pg1.remote_hosts[5].mac, self.pg0.remote_ip4, self.pg1._remote_hosts[5].ip4) # # ARP requests from hosts in pg1's subnet sent on pg2 are replied to # with the unnumbered interface's address as the source # p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) / ARP(op="who-has", hwsrc=self.pg2.remote_mac, pdst=self.pg1.local_ip4, psrc=self.pg1.remote_hosts[6].ip4)) self.pg2.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_resp(rx[0], self.pg2.local_mac, self.pg2.remote_mac, self.pg1.local_ip4, self.pg1.remote_hosts[6].ip4) # # An attached host route out of pg2 for an undiscovered hosts generates # an ARP request with the unnumbered address as the source # att_unnum = VppIpRoute(self, self.pg1.remote_hosts[7].ip4, 32, [VppRoutePath("0.0.0.0", self.pg2.sw_if_index)]) att_unnum.add_vpp_config() p = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1._remote_hosts[7].ip4) / UDP(sport=1234, dport=1234) / Raw()) self.pg0.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_req(rx[0], self.pg2.local_mac, self.pg1.local_ip4, self.pg1._remote_hosts[7].ip4) p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) / ARP(op="who-has", hwsrc=self.pg2.remote_mac, pdst=self.pg1.local_ip4, psrc=self.pg1.remote_hosts[7].ip4)) self.pg2.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_resp(rx[0], self.pg2.local_mac, self.pg2.remote_mac, self.pg1.local_ip4, self.pg1.remote_hosts[7].ip4) # # An attached host route as yet unresolved out of pg2 for an # undiscovered host, an ARP requests begets a response. # att_unnum1 = VppIpRoute(self, self.pg1.remote_hosts[8].ip4, 32, [VppRoutePath("0.0.0.0", self.pg2.sw_if_index)]) att_unnum1.add_vpp_config() p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg2.remote_mac) / ARP(op="who-has", hwsrc=self.pg2.remote_mac, pdst=self.pg1.local_ip4, psrc=self.pg1.remote_hosts[8].ip4)) self.pg2.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_resp(rx[0], self.pg2.local_mac, self.pg2.remote_mac, self.pg1.local_ip4, self.pg1.remote_hosts[8].ip4) # # Send an ARP request from one of the so-far unlearned remote hosts # with a VLAN0 tag # p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg1._remote_hosts[9].mac) / Dot1Q(vlan=0) / ARP(op="who-has", hwsrc=self.pg1._remote_hosts[9].mac, pdst=self.pg1.local_ip4, psrc=self.pg1._remote_hosts[9].ip4)) self.pg1.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) self.verify_arp_resp(rx[0], self.pg1.local_mac, self.pg1._remote_hosts[9].mac, self.pg1.local_ip4, self.pg1._remote_hosts[9].ip4) # # Add a 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 # dyn_arp.remove_vpp_config() static_arp.remove_vpp_config() self.pg2.unset_unnumbered(self.pg1.sw_if_index) # need this to flush the adj-fibs self.pg2.unset_unnumbered(self.pg1.sw_if_index) self.pg2.admin_down() self.pg1.admin_down() def test_proxy_mirror_arp(self): """ Interface Mirror Proxy ARP """ # # When VPP has an interface whose address is also applied to a TAP # interface on the host, then VPP's TAP interface will be unnumbered # to the 'real' interface and do proxy ARP from the host. # the curious aspect of this setup is that ARP requests from the host # will come from the VPP's own address. # self.pg0.generate_remote_hosts(2) arp_req_from_me = (Ether(src=self.pg2.remote_mac, dst="ff:ff:ff:ff:ff:ff") / ARP(op="who-has", hwsrc=self.pg2.remote_mac, pdst=self.pg0.remote_hosts[1].ip4, psrc=self.pg0.local_ip4)) # # Configure Proxy ARP for the subnet on PG0addresses on pg0 # self.vapi.proxy_arp_add_del(self.pg0._local_ip4_subnet, self.pg0._local_ip4_bcast) # Make pg2 un-numbered to pg0 # self.pg2.set_unnumbered(self.pg0.sw_if_index) # # Enable pg2 for proxy ARP # self.pg2.set_proxy_arp() # # Send the ARP request with an originating address that # is VPP's own address # self.pg2.add_stream(arp_req_from_me) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_resp(rx[0], self.pg2.local_mac, self.pg2.remote_mac, self.pg0.remote_hosts[1].ip4, self.pg0.local_ip4) # # validate we have not learned an ARP entry as a result of this # self.assertFalse(find_nbr(self, self.pg2.sw_if_index, self.pg0.local_ip4)) # # cleanup # self.pg2.set_proxy_arp(0) self.vapi.proxy_arp_add_del(self.pg0._local_ip4_subnet, self.pg0._local_ip4_bcast, is_add=0) def test_proxy_arp(self): """ Proxy ARP """ self.pg1.generate_remote_hosts(2) # # Proxy ARP 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(inet_pton(AF_INET, "10.10.10.2"), inet_pton(AF_INET, "10.10.10.124")) # # No responses are sent when the interfaces are not enabled for proxy # ARP # self.send_and_assert_no_replies(self.pg0, arp_req_pg0, "ARP req from unconfigured interface") self.send_and_assert_no_replies(self.pg2, arp_req_pg2, "ARP req from unconfigured interface") # # Make pg2 un-numbered to pg1 # still won't reply. # self.pg2.set_unnumbered(self.pg1.sw_if_index) self.send_and_assert_no_replies(self.pg2, arp_req_pg2, "ARP req from unnumbered interface") # # Enable each interface to reply to proxy ARPs # for i in self.pg_interfaces: i.set_proxy_arp() # # Now each of the interfaces should reply to a request to a proxied # address # self.pg0.add_stream(arp_req_pg0) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) self.verify_arp_resp(rx[0], self.pg0.local_mac, self.pg0.remote_mac, "10.10.10.3", self.pg0.remote_ip4) self.pg0.add_stream(arp_req_pg0_tagged) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) self.verify_arp_resp(rx[0], self.pg0.local_mac, self.pg0.remote_mac, "10.10.10.3", self.pg0.remote_ip4) self.pg1.add_stream(arp_req_pg1) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) self.verify_arp_resp(rx[0], self.pg1.local_mac, self.pg1.remote_mac, "10.10.10.3", self.pg1.remote_ip4) self.pg2.add_stream(arp_req_pg2) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg2.get_capture(1) self.verify_arp_resp(rx[0], self.pg2.local_mac, self.pg2.remote_mac, "10.10.10.3", self.pg1.remote_hosts[1].ip4) # # A request for an address out of the configured range # arp_req_pg1_hi = (Ether(src=self.pg1.remote_mac, dst="ff:ff:ff:ff:ff:ff") / ARP(op="who-has", hwsrc=self.pg1.remote_mac, pdst="10.10.10.125", psrc=self.pg1.remote_ip4)) self.send_and_assert_no_replies(self.pg1, arp_req_pg1_hi, "ARP req out of range HI") arp_req_pg1_low = (Ether(src=self.pg1.remote_mac, dst="ff:ff:ff:ff:ff:ff") / ARP(op="who-has", hwsrc=self.pg1.remote_mac, pdst="10.10.10.1", psrc=self.pg1.remote_ip4)) self.send_and_assert_no_replies(self.pg1, arp_req_pg1_low, "ARP req out of range Low") # # Request for an address in the proxy range but from an interface # in a different VRF # self.send_and_assert_no_replies(self.pg3, arp_req_pg3, "ARP req from different VRF") # # Disable Each interface for proxy ARP # - expect none to respond # for i in self.pg_interfaces: i.set_proxy_arp(0) self.send_and_assert_no_replies(self.pg0, arp_req_pg0, "ARP req from disable") self.send_and_assert_no_replies(self.pg1, arp_req_pg1, "ARP req from disable") self.send_and_assert_no_replies(self.pg2, arp_req_pg2, "ARP req from disable") # # clean up on interface 2 # self.pg2.unset_unnumbered(self.pg1.sw_if_index) def test_mpls(self): """ MPLS """ # # Interface 2 does not yet have ip4 config # self.pg2.config_ip4() self.pg2.generate_remote_hosts(2) # # Add a 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('\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() self.pg2.set_table_ip4(0) def test_arp_incomplete(self): """ ARP Incomplete""" self.pg1.generate_remote_hosts(3) p0 = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_hosts[1].ip4) / UDP(sport=1234, dport=1234) / Raw()) p1 = (Ether(dst=self.pg0.local_mac, src=self.pg0.remote_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_hosts[2].ip4) / UDP(sport=1234, dport=1234) / Raw()) # # a packet to an unresolved destination generates an ARP request # rx = self.send_and_expect(self.pg0, [p0], self.pg1) self.verify_arp_req(rx[0], self.pg1.local_mac, self.pg1.local_ip4, self.pg1._remote_hosts[1].ip4) # # add a neighbour for remote host 1 # static_arp = VppNeighbor(self, self.pg1.sw_if_index, self.pg1.remote_hosts[1].mac, self.pg1.remote_hosts[1].ip4, is_static=1) static_arp.add_vpp_config() # # change the interface's MAC # mac = [scapy.compat.chb(0x00), scapy.compat.chb(0x00), scapy.compat.chb(0x00), scapy.compat.chb(0x33), scapy.compat.chb(0x33), scapy.compat.chb(0x33)] mac_string = ''.join(mac) self.vapi.sw_interface_set_mac_address(self.pg1.sw_if_index, mac_string) # # now ARP requests come from the new source mac # rx = self.send_and_expect(self.pg0, [p1], self.pg1) self.verify_arp_req(rx[0], "00:00:00:33:33:33", self.pg1.local_ip4, self.pg1._remote_hosts[2].ip4) # # packets to the resolved host also have the new source mac # rx = self.send_and_expect(self.pg0, [p0], self.pg1) self.verify_ip(rx[0], "00:00:00:33:33:33", self.pg1.remote_hosts[1].mac, self.pg0.remote_ip4, self.pg1.remote_hosts[1].ip4) # # set the mac address on the interface that does not have a # configured subnet and thus no glean # self.vapi.sw_interface_set_mac_address(self.pg2.sw_if_index, mac_string) def test_garp(self): """ GARP """ # # Generate some hosts on the LAN # self.pg1.generate_remote_hosts(4) # # And an ARP entry # arp = VppNeighbor(self, self.pg1.sw_if_index, self.pg1.remote_hosts[1].mac, self.pg1.remote_hosts[1].ip4) arp.add_vpp_config() self.assertTrue(find_nbr(self, self.pg1.sw_if_index, self.pg1.remote_hosts[1].ip4, mac=self.pg1.remote_hosts[1].mac)) # # Send a GARP (request) to swap the host 1's address to that of host 2 # p1 = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg1.remote_hosts[2].mac) / ARP(op="who-has", hwdst=self.pg1.local_mac, hwsrc=self.pg1.remote_hosts[2].mac, pdst=self.pg1.remote_hosts[1].ip4, psrc=self.pg1.remote_hosts[1].ip4)) self.pg1.add_stream(p1) self.pg_enable_capture(self.pg_interfaces) self.pg_start() self.assertTrue(find_nbr(self, self.pg1.sw_if_index, self.pg1.remote_hosts[1].ip4, mac=self.pg1.remote_hosts[2].mac)) # # Send a GARP (reply) to swap the host 1's address to that of host 3 # p1 = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg1.remote_hosts[3].mac) / ARP(op="is-at", hwdst=self.pg1.local_mac, hwsrc=self.pg1.remote_hosts[3].mac, pdst=self.pg1.remote_hosts[1].ip4, psrc=self.pg1.remote_hosts[1].ip4)) self.pg1.add_stream(p1) self.pg_enable_capture(self.pg_interfaces) self.pg_start() self.assertTrue(find_nbr(self, self.pg1.sw_if_index, self.pg1.remote_hosts[1].ip4, mac=self.pg1.remote_hosts[3].mac)) # # GARPs (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)) def test_arp_incomplete(self): """ Incomplete Entries """ # # ensure that we throttle the ARP and ND requests # self.pg0.generate_remote_hosts(2) # # IPv4/ARP # ip_10_0_0_1 = VppIpRoute(self, "10.0.0.1", 32, [VppRoutePath(self.pg0.remote_hosts[1].ip4, self.pg0.sw_if_index)]) ip_10_0_0_1.add_vpp_config() p1 = (Ether(dst=self.pg1.local_mac, src=self.pg1.remote_mac) / IP(src=self.pg1.remote_ip4, dst="10.0.0.1") / UDP(sport=1234, dport=1234) / Raw()) self.pg1.add_stream(p1 * 257) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0._get_capture(1) # # how many we get is going to be dependent on the time for packet # processing but it should be small # self.assertLess(len(rx), 64) # # IPv6/ND # ip_10_1 = VppIpRoute(self, "10::1", 128, [VppRoutePath(self.pg0.remote_hosts[1].ip6, self.pg0.sw_if_index, proto=DpoProto.DPO_PROTO_IP6)], is_ip6=1) ip_10_1.add_vpp_config() p1 = (Ether(dst=self.pg1.local_mac, src=self.pg1.remote_mac) / IPv6(src=self.pg1.remote_ip6, dst="10::1") / UDP(sport=1234, dport=1234) / Raw()) self.pg1.add_stream(p1 * 257) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0._get_capture(1) # # how many we get is going to be dependent on the time for packet # processing but it should be small # self.assertLess(len(rx), 64) def test_arp_forus(self): """ ARP for for-us """ # # Test that VPP responds with ARP requests to addresses that # are connected and local routes. # Use one of the 'remote' addresses in the subnet as a local address # The intention of this route is that it then acts like a secondary # address added to an interface # self.pg0.generate_remote_hosts(2) forus = VppIpRoute(self, self.pg0.remote_hosts[1].ip4, 32, [VppRoutePath(self.pg0.remote_hosts[1].ip4, self.pg0.sw_if_index)], is_local=1) forus.add_vpp_config() p = (Ether(dst="ff:ff:ff:ff:ff:ff", src=self.pg0.remote_mac) / ARP(op="who-has", hwdst=self.pg0.local_mac, hwsrc=self.pg0.remote_mac, pdst=self.pg0.remote_hosts[1].ip4, psrc=self.pg0.remote_ip4)) rx = self.send_and_expect(self.pg0, [p], self.pg0) self.verify_arp_resp(rx[0], self.pg0.local_mac, self.pg0.remote_mac, self.pg0.remote_hosts[1].ip4, self.pg0.remote_ip4) class NeighborStatsTestCase(VppTestCase): """ ARP/ND Counters """ @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']) if __name__ == '__main__': unittest.main(testRunner=VppTestRunner)