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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.
 */

#include <vnet/vnet.h>
#include <vnet/devices/devices.h>
#include <vnet/feature/feature.h>
#include <vnet/ip/ip.h>
#include <vnet/ethernet/ethernet.h>

vnet_device_main_t vnet_device_main;

static uword
device_input_fn (vlib_main_t * vm, vlib_node_runtime_t * node,
		 vlib_frame_t * frame)
{
  return 0;
}

/* *INDENT-OFF* */
VLIB_REGISTER_NODE (device_input_node) = {
  .function = device_input_fn,
  .name = "device-input",
  .runtime_data_bytes = sizeof (vnet_hw_if_rx_node_runtime_t),
  .type = VLIB_NODE_TYPE_INPUT,
  .state = VLIB_NODE_STATE_DISABLED,
  .n_next_nodes = VNET_DEVICE_INPUT_N_NEXT_NODES,
  .next_nodes = VNET_DEVICE_INPUT_NEXT_NODES,
};

/* Table defines how much we need to advance current data pointer
   in the buffer if we shortcut to l3 nodes */

const u32 __attribute__((aligned (CLIB_CACHE_LINE_BYTES)))
device_input_next_node_advance[((VNET_DEVICE_INPUT_N_NEXT_NODES /
				CLIB_CACHE_LINE_BYTES) +1) * CLIB_CACHE_LINE_BYTES] =
{
      [VNET_DEVICE_INPUT_NEXT_IP4_INPUT] = sizeof (ethernet_header_t),
      [VNET_DEVICE_INPUT_NEXT_IP4_NCS_INPUT] = sizeof (ethernet_header_t),
      [VNET_DEVICE_INPUT_NEXT_IP6_INPUT] = sizeof (ethernet_header_t),
      [VNET_DEVICE_INPUT_NEXT_MPLS_INPUT] = sizeof (ethernet_header_t),
};

const u32 __attribute__((aligned (CLIB_CACHE_LINE_BYTES)))
device_input_next_node_flags[((VNET_DEVICE_INPUT_N_NEXT_NODES /
				CLIB_CACHE_LINE_BYTES) +1) * CLIB_CACHE_LINE_BYTES] =
{
      [VNET_DEVICE_INPUT_NEXT_IP4_INPUT] = VNET_BUFFER_F_L3_HDR_OFFSET_VALID,
      [VNET_DEVICE_INPUT_NEXT_IP4_NCS_INPUT] = VNET_BUFFER_F_L3_HDR_OFFSET_VALID,
      [VNET_DEVICE_INPUT_NEXT_IP6_INPUT] = VNET_BUFFER_F_L3_HDR_OFFSET_VALID,
      [VNET_DEVICE_INPUT_NEXT_MPLS_INPUT] = VNET_BUFFER_F_L3_HDR_OFFSET_VALID,
};

VNET_FEATURE_ARC_INIT (device_input, static) =
{
  .arc_name  = "device-input",
  .start_nodes = VNET_FEATURES ("device-input"),
  .last_in_arc = "ethernet-input",
  .arc_index_ptr = &feature_main.device_input_feature_arc_index,
};

VNET_FEATURE_INIT (l2_patch, static) = {
  .arc_name = "device-input",
  .node_name = "l2-patch",
  .runs_before = VNET_FEATURES ("ethernet-input"),
};

VNET_FEATURE_INIT (worker_handoff, static) = {
  .arc_name = "device-input",
  .node_name = "worker-handoff",
  .runs_before = VNET_FEATURES ("ethernet-input"),
};

VNET_FEATURE_INIT (span_input, static) = {
  .arc_name = "device-input",
  .node_name = "span-input",
  .runs_before = VNET_FEATURES ("ethernet-input"),
};

VNET_FEATURE_INIT (p2p_ethernet_node, static) = {
  .arc_name = "device-input",
  .node_name = "p2p-ethernet-input",
  .runs_before = VNET_FEATURES ("ethernet-input"),
};

VNET_FEATURE_INIT (ethernet_input, static) = {
  .arc_name = "device-input",
  .node_name = "ethernet-input",
  .runs_before = 0, /* not before any other features */
};
/* *INDENT-ON* */

static clib_error_t *
vnet_device_init (vlib_main_t * vm)
{
  vnet_device_main_t *vdm = &vnet_device_main;
  vlib_thread_main_t *tm = vlib_get_thread_main ();
  vlib_thread_registration_t *tr;
  uword *p;

  vec_validate_aligned (vdm->workers, tm->n_vlib_mains - 1,
			CLIB_CACHE_LINE_BYTES);

  p = hash_get_mem (tm->thread_registrations_by_name, "workers");
  tr = p ? (vlib_thread_registration_t *) p[0] : 0;
  if (tr && tr->count > 0)
    {
      vdm->first_worker_thread_index = tr->first_index;
      vdm->next_worker_thread_index = tr->first_index;
      vdm->last_worker_thread_index = tr->first_index + tr->count - 1;
    }
  return 0;
}

VLIB_INIT_FUNCTION (vnet_device_init);

/*
 * fd.io coding-style-patch-verification: ON
 *
 * Local Variables:
 * eval: (c-set-style "gnu")
 * End:
 */
class="p">)) except Exception: super(TestL2bd, cls).tearDownClass() raise @classmethod def tearDownClass(cls): super(TestL2bd, cls).tearDownClass() def setUp(self): """ Clear trace and packet infos before running each test. """ super(TestL2bd, self).setUp() self.reset_packet_infos() def tearDown(self): """ Show various debug prints after each test. """ super(TestL2bd, self).tearDown() if not self.vpp_dead: self.logger.info(self.vapi.ppcli("show l2fib verbose")) self.logger.info(self.vapi.ppcli("show bridge-domain %s detail" % self.bd_id)) @classmethod def create_hosts_and_learn(cls, count): """ Create required number of host MAC addresses and distribute them among interfaces. Create host IPv4 address for every host MAC address. Create L2 MAC packet stream with host MAC addresses per interface to let the bridge domain learn these MAC addresses. :param count: Integer number of hosts to create MAC/IPv4 addresses for. """ n_int = len(cls.pg_interfaces) macs_per_if = count // n_int i = -1 for pg_if in cls.pg_interfaces: i += 1 start_nr = macs_per_if * i end_nr = count if i == (n_int - 1) else macs_per_if * (i + 1) cls.hosts_by_pg_idx[pg_if.sw_if_index] = [] hosts = cls.hosts_by_pg_idx[pg_if.sw_if_index] packets = [] for j in range(start_nr, end_nr): host = Host( "00:00:00:ff:%02x:%02x" % (pg_if.sw_if_index, j), "172.17.1%02x.%u" % (pg_if.sw_if_index, j)) packet = (Ether(dst="ff:ff:ff:ff:ff:ff", src=host.mac)) hosts.append(host) if hasattr(pg_if, 'sub_if'): packet = pg_if.sub_if.add_dot1_layer(packet) packets.append(packet) pg_if.add_stream(packets) cls.logger.info("Sending broadcast eth frames for MAC learning") cls.pg_start() def create_stream(self, src_if, packet_sizes, packets_per_burst): """ Create input packet stream for defined interface. :param object src_if: Interface to create packet stream for. :param list packet_sizes: List of required packet sizes. :param int packets_per_burst: Number of packets in burst. :return: Stream of packets. """ pkts = [] for i in range(0, packets_per_burst): dst_if = self.flows[src_if][i % 2] dst_host = random.choice(self.hosts_by_pg_idx[dst_if.sw_if_index]) src_host = random.choice(self.hosts_by_pg_idx[src_if.sw_if_index]) pkt_info = self.create_packet_info(src_if, dst_if) payload = self.info_to_payload(pkt_info) p = (Ether(dst=dst_host.mac, src=src_host.mac) / IP(src=src_host.ip4, dst=dst_host.ip4) / UDP(sport=1234, dport=1234) / Raw(payload)) pkt_info.data = p.copy() if hasattr(src_if, 'sub_if'): p = src_if.sub_if.add_dot1_layer(p) size = random.choice(packet_sizes) self.extend_packet(p, size) pkts.append(p) return pkts def verify_capture(self, pg_if, capture): """ Verify captured input packet stream for defined interface. :param object pg_if: Interface to verify captured packet stream for. :param list capture: Captured packet stream. """ last_info = dict() for i in self.pg_interfaces: last_info[i.sw_if_index] = None dst_sw_if_index = pg_if.sw_if_index for packet in capture: payload_info = self.payload_to_info(packet[Raw]) src_sw_if_index = payload_info.src src_if = None for ifc in self.pg_interfaces: if ifc != pg_if: if ifc.sw_if_index == src_sw_if_index: src_if = ifc break if hasattr(src_if, 'sub_if'): # Check VLAN tags and Ethernet header packet = src_if.sub_if.remove_dot1_layer(packet) self.assertTrue(Dot1Q not in packet) try: ip = packet[IP] udp = packet[UDP] packet_index = payload_info.index self.assertEqual(payload_info.dst, dst_sw_if_index) self.logger.debug("Got packet on port %s: src=%u (id=%u)" % (pg_if.name, payload_info.src, packet_index)) next_info = self.get_next_packet_info_for_interface2( payload_info.src, dst_sw_if_index, last_info[payload_info.src]) last_info[payload_info.src] = next_info self.assertTrue(next_info is not None) self.assertEqual(packet_index, next_info.index) saved_packet = next_info.data # Check standard fields self.assertEqual(ip.src, saved_packet[IP].src) self.assertEqual(ip.dst, saved_packet[IP].dst) self.assertEqual(udp.sport, saved_packet[UDP].sport) self.assertEqual(udp.dport, saved_packet[UDP].dport) except: self.logger.error(ppp("Unexpected or invalid packet:", packet)) raise for i in self.pg_interfaces: remaining_packet = self.get_next_packet_info_for_interface2( i, dst_sw_if_index, last_info[i.sw_if_index]) self.assertTrue( remaining_packet is None, "Port %u: Packet expected from source %u didn't arrive" % (dst_sw_if_index, i.sw_if_index)) def run_l2bd_test(self, pkts_per_burst): """ L2BD MAC learning test """ # Create incoming packet streams for packet-generator interfaces for i in self.pg_interfaces: packet_sizes = self.sub_if_packet_sizes if hasattr(i, 'sub_if') \ else self.pg_if_packet_sizes pkts = self.create_stream(i, packet_sizes, pkts_per_burst) i.add_stream(pkts) # Enable packet capture and start packet sending self.pg_enable_capture(self.pg_interfaces) self.pg_start() # Verify outgoing packet streams per packet-generator interface for i in self.pg_interfaces: capture = i.get_capture() self.logger.info("Verifying capture on interface %s" % i.name) self.verify_capture(i, capture) def test_l2bd_sl(self): """ L2BD MAC learning single-loop test Test scenario: 1.config MAC learning enabled learn 100 MAC entries 3 interfaces: untagged, dot1q, dot1ad (dot1q used instead of dot1ad in the first version) 2.sending l2 eth pkts between 3 interface 64B, 512B, 1518B, 9200B (ether_size) burst of 2 pkts per interface """ self.run_l2bd_test(self.sl_pkts_per_burst) def test_l2bd_dl(self): """ L2BD MAC learning dual-loop test Test scenario: 1.config MAC learning enabled learn 100 MAC entries 3 interfaces: untagged, dot1q, dot1ad (dot1q used instead of dot1ad in the first version) 2.sending l2 eth pkts between 3 interface 64B, 512B, 1518B, 9200B (ether_size) burst of 257 pkts per interface """ self.run_l2bd_test(self.dl_pkts_per_burst) if __name__ == '__main__': unittest.main(testRunner=VppTestRunner)