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/*
 *------------------------------------------------------------------
 * svm_queue.c - unidirectional shared-memory queues
 *
 * Copyright (c) 2009 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 <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <pthread.h>
#include <vppinfra/mem.h>
#include <vppinfra/format.h>
#include <vppinfra/cache.h>
#include <svm/queue.h>
#include <vppinfra/time.h>
#include <vppinfra/lock.h>

svm_queue_t *
svm_queue_init (void *base, int nels, int elsize)
{
  svm_queue_t *q;
  pthread_mutexattr_t attr;
  pthread_condattr_t cattr;

  q = (svm_queue_t *) base;
  clib_memset (q, 0, sizeof (*q));

  q->elsize = elsize;
  q->maxsize = nels;
  q->producer_evtfd = -1;
  q->consumer_evtfd = -1;

  clib_memset (&attr, 0, sizeof (attr));
  clib_memset (&cattr, 0, sizeof (cattr));

  if (pthread_mutexattr_init (&attr))
    clib_unix_warning ("mutexattr_init");
  if (pthread_mutexattr_setpshared (&attr, PTHREAD_PROCESS_SHARED))
    clib_unix_warning ("pthread_mutexattr_setpshared");
  if (pthread_mutex_init (&q->mutex, &attr))
    clib_unix_warning ("mutex_init");
  if (pthread_mutexattr_destroy (&attr))
    clib_unix_warning ("mutexattr_destroy");
  if (pthread_condattr_init (&cattr))
    clib_unix_warning ("condattr_init");
  /* prints funny-looking messages in the Linux target */
  if (pthread_condattr_setpshared (&cattr, PTHREAD_PROCESS_SHARED))
    clib_unix_warning ("condattr_setpshared");
  if (pthread_cond_init (&q->condvar, &cattr))
    clib_unix_warning ("cond_init1");
  if (pthread_condattr_destroy (&cattr))
    clib_unix_warning ("cond_init2");

  return (q);
}

svm_queue_t *
svm_queue_alloc_and_init (int nels, int elsize, int consumer_pid)
{
  svm_queue_t *q;

  q = clib_mem_alloc_aligned (sizeof (svm_queue_t)
			      + nels * elsize, CLIB_CACHE_LINE_BYTES);
  clib_memset (q, 0, sizeof (*q));
  q = svm_queue_init (q, nels, elsize);
  q->consumer_pid = consumer_pid;

  return q;
}

/*
 * svm_queue_free
 */
void
svm_queue_free (svm_queue_t * q)
{
  (void) pthread_mutex_destroy (&q->mutex);
  (void) pthread_cond_destroy (&q->condvar);
  clib_mem_free (q);
}

void
svm_queue_lock (svm_queue_t * q)
{
  pthread_mutex_lock (&q->mutex);
}

void
svm_queue_unlock (svm_queue_t * q)
{
  pthread_mutex_unlock (&q->mutex);
}

int
svm_queue_is_full (svm_queue_t * q)
{
  return q->cursize == q->maxsize;
}

static inline void
svm_queue_send_signal (svm_queue_t * q, u8 is_prod)
{
  if (q->producer_evtfd == -1)
    {
      (void) pthread_cond_broadcast (&q->condvar);
    }
  else
    {
      int __clib_unused rv, fd;
      u64 data = 1;
      ASSERT (q->consumer_evtfd > 0 && q->producer_evtfd > 0);
      fd = is_prod ? q->producer_evtfd : q->consumer_evtfd;
      rv = write (fd, &data, sizeof (data));
    }
}

static inline void
svm_queue_wait_inline (svm_queue_t * q)
{
  if (q->producer_evtfd == -1)
    {
      pthread_cond_wait (&q->condvar, &q->mutex);
    }
  else
    {
      /* Fake a wait for event. We could use epoll but that would mean
       * using yet another fd. Should do for now */
      u32 cursize = q->cursize;
      pthread_mutex_unlock (&q->mutex);
      while (q->cursize == cursize)
	CLIB_PAUSE ();
      pthread_mutex_lock (&q->mutex);
    }
}

void
svm_queue_wait (svm_queue_t * q)
{
  svm_queue_wait_inline (q);
}

static inline int
svm_queue_timedwait_inline (svm_queue_t * q, double timeout)
{
  struct timespec ts;
  ts.tv_sec = unix_time_now () + (u32) timeout;
  ts.tv_nsec = (timeout - (u32) timeout) * 1e9;

  if (q->producer_evtfd == -1)
    {
      return pthread_cond_timedwait (&q->condvar, &q->mutex, &ts);
    }
  else
    {
      double max_time = unix_time_now () + timeout;
      u32 cursize = q->cursize;
      int rv;

      pthread_mutex_unlock (&q->mutex);
      while (q->cursize == cursize && unix_time_now () < max_time)
	CLIB_PAUSE ();
      rv = unix_time_now () < max_time ? 0 : ETIMEDOUT;
      pthread_mutex_lock (&q->mutex);
      return rv;
    }
}

int
svm_queue_timedwait (svm_queue_t * q, double timeout)
{
  return svm_queue_timedwait_inline (q, timeout);
}

/*
 * svm_queue_add_nolock
 */
int
svm_queue_add_nolock (svm_queue_t * q, u8 * elem)
{
  i8 *tailp;
  int need_broadcast = 0;

  if (PREDICT_FALSE (q->cursize == q->maxsize))
    {
      while (q->cursize == q->maxsize)
	svm_queue_wait_inline (q);
    }

  tailp = (i8 *) (&q->data[0] + q->elsize * q->tail);
  clib_memcpy_fast (tailp, elem, q->elsize);

  q->tail++;
  q->cursize++;

  need_broadcast = (q->cursize == 1);

  if (q->tail == q->maxsize)
    q->tail = 0;

  if (need_broadcast)
    svm_queue_send_signal (q, 1);
  return 0;
}

void
svm_queue_add_raw (svm_queue_t * q, u8 * elem)
{
  i8 *tailp;

  tailp = (i8 *) (&q->data[0] + q->elsize * q->tail);
  clib_memcpy_fast (tailp, elem, q->elsize);

  q->tail = (q->tail + 1) % q->maxsize;
  q->cursize++;

  if (q->cursize == 1)
    svm_queue_send_signal (q, 1);
}


/*
 * svm_queue_add
 */
int
svm_queue_add (svm_queue_t * q, u8 * elem, int nowait)
{
  i8 *tailp;
  int need_broadcast = 0;

  if (nowait)
    {
      /* zero on success */
      if (pthread_mutex_trylock (&q->mutex))
	{
	  return (-1);
	}
    }
  else
    pthread_mutex_lock (&q->mutex);

  if (PREDICT_FALSE (q->cursize == q->maxsize))
    {
      if (nowait)
	{
	  pthread_mutex_unlock (&q->mutex);
	  return (-2);
	}
      while (q->cursize == q->maxsize)
	svm_queue_wait_inline (q);
    }

  tailp = (i8 *) (&q->data[0] + q->elsize * q->tail);
  clib_memcpy_fast (tailp, elem, q->elsize);

  q->tail++;
  q->cursize++;

  need_broadcast = (q->cursize == 1);

  if (q->tail == q->maxsize)
    q->tail = 0;

  if (need_broadcast)
    svm_queue_send_signal (q, 1);

  pthread_mutex_unlock (&q->mutex);

  return 0;
}

/*
 * svm_queue_add2
 */
int
svm_queue_add2 (svm_queue_t * q, u8 * elem, u8 * elem2, int nowait)
{
  i8 *tailp;
  int need_broadcast = 0;

  if (nowait)
    {
      /* zero on success */
      if (pthread_mutex_trylock (&q->mutex))
	{
	  return (-1);
	}
    }
  else
    pthread_mutex_lock (&q->mutex);

  if (PREDICT_FALSE (q->cursize + 1 == q->maxsize))
    {
      if (nowait)
	{
	  pthread_mutex_unlock (&q->mutex);
	  return (-2);
	}
      while (q->cursize + 1 == q->maxsize)
	svm_queue_wait_inline (q);
    }

  tailp = (i8 *) (&q->data[0] + q->elsize * q->tail);
  clib_memcpy_fast (tailp, elem, q->elsize);

  q->tail++;
  q->cursize++;

  if (q->tail == q->maxsize)
    q->tail = 0;

  need_broadcast = (q->cursize == 1);

  tailp = (i8 *) (&q->data[0] + q->elsize * q->tail);
  clib_memcpy_fast (tailp, elem2, q->elsize);

  q->tail++;
  q->cursize++;

  if (q->tail == q->maxsize)
    q->tail = 0;

  if (need_broadcast)
    svm_queue_send_signal (q, 1);

  pthread_mutex_unlock (&q->mutex);

  return 0;
}

/*
 * svm_queue_sub
 */
int
svm_queue_sub (svm_queue_t * q, u8 * elem, svm_q_conditional_wait_t cond,
	       u32 time)
{
  i8 *headp;
  int need_broadcast = 0;
  int rc = 0;

  if (cond == SVM_Q_NOWAIT)
    {
      /* zero on success */
      if (pthread_mutex_trylock (&q->mutex))
	{
	  return (-1);
	}
    }
  else
    pthread_mutex_lock (&q->mutex);

  if (PREDICT_FALSE (q->cursize == 0))
    {
      if (cond == SVM_Q_NOWAIT)
	{
	  pthread_mutex_unlock (&q->mutex);
	  return (-2);
	}
      else if (cond == SVM_Q_TIMEDWAIT)
	{
	  while (q->cursize == 0 && rc == 0)
	    rc = svm_queue_timedwait_inline (q, time);

	  if (rc == ETIMEDOUT)
	    {
	      pthread_mutex_unlock (&q->mutex);
	      return ETIMEDOUT;
	    }
	}
      else
	{
	  while (q->cursize == 0)
	    svm_queue_wait_inline (q);
	}
    }

  headp = (i8 *) (&q->data[0] + q->elsize * q->head);
  clib_memcpy_fast (elem, headp, q->elsize);

  q->head++;
  /* $$$$ JFC shouldn't this be == 0? */
  if (q->cursize == q->maxsize)
    need_broadcast = 1;

  q->cursize--;

  if (q->head == q->maxsize)
    q->head = 0;

  if (need_broadcast)
    svm_queue_send_signal (q, 0);

  pthread_mutex_unlock (&q->mutex);

  return 0;
}

int
svm_queue_sub2 (svm_queue_t * q, u8 * elem)
{
  int need_broadcast;
  i8 *headp;

  pthread_mutex_lock (&q->mutex);
  if (q->cursize == 0)
    {
      pthread_mutex_unlock (&q->mutex);
      return -1;
    }

  headp = (i8 *) (&q->data[0] + q->elsize * q->head);
  clib_memcpy_fast (elem, headp, q->elsize);

  q->head++;
  need_broadcast = (q->cursize == q->maxsize / 2);
  q->cursize--;

  if (PREDICT_FALSE (q->head == q->maxsize))
    q->head = 0;
  pthread_mutex_unlock (&q->mutex);

  if (need_broadcast)
    svm_queue_send_signal (q, 0);

  return 0;
}

int
svm_queue_sub_raw (svm_queue_t * q, u8 * elem)
{
  i8 *headp;

  if (PREDICT_FALSE (q->cursize == 0))
    {
      while (q->cursize == 0)
	;
    }

  headp = (i8 *) (&q->data[0] + q->elsize * q->head);
  clib_memcpy_fast (elem, headp, q->elsize);

  q->head = (q->head + 1) % q->maxsize;
  q->cursize--;

  return 0;
}

void
svm_queue_set_producer_event_fd (svm_queue_t * q, int fd)
{
  q->producer_evtfd = fd;
}

void
svm_queue_set_consumer_event_fd (svm_queue_t * q, int fd)
{
  q->consumer_evtfd = fd;
}

/*
 * fd.io coding-style-patch-verification: ON
 *
 * Local Variables:
 * eval: (c-set-style "gnu")
 * End:
 */
[self.pg0, self.pg1.sub_if] # packet sizes self.pg_if_packet_sizes = [64, 1500, 9020] self.interfaces = list(self.pg_interfaces) self.interfaces.extend(self.sub_interfaces) # setup all interfaces for i in self.interfaces: i.admin_up() i.config_ip4() i.resolve_arp() # config 2M FIB entries def tearDown(self): """Run standard test teardown and log ``show ip arp``.""" super(TestIPv4, self).tearDown() def show_commands_at_teardown(self): self.logger.info(self.vapi.cli("show ip arp")) # info(self.vapi.cli("show ip fib")) # many entries def modify_packet(self, src_if, packet_size, pkt): """Add load, set destination IP and extend packet to required packet size for defined interface. :param VppInterface src_if: Interface to create packet for. :param int packet_size: Required packet size. :param Scapy pkt: Packet to be modified. """ dst_if_idx = packet_size / 10 % 2 dst_if = self.flows[src_if][dst_if_idx] info = self.create_packet_info(src_if, dst_if) payload = self.info_to_payload(info) p = pkt/Raw(payload) p[IP].dst = dst_if.remote_ip4 info.data = p.copy() if isinstance(src_if, VppSubInterface): p = src_if.add_dot1_layer(p) self.extend_packet(p, packet_size) return p def create_stream(self, src_if): """Create input packet stream for defined interface. :param VppInterface src_if: Interface to create packet stream for. """ hdr_ext = 4 if isinstance(src_if, VppSubInterface) else 0 pkt_tmpl = (Ether(dst=src_if.local_mac, src=src_if.remote_mac) / IP(src=src_if.remote_ip4) / UDP(sport=1234, dport=1234)) pkts = [self.modify_packet(src_if, i, pkt_tmpl) for i in moves.range(self.pg_if_packet_sizes[0], self.pg_if_packet_sizes[1], 10)] pkts_b = [self.modify_packet(src_if, i, pkt_tmpl) for i in moves.range(self.pg_if_packet_sizes[1] + hdr_ext, self.pg_if_packet_sizes[2] + hdr_ext, 50)] pkts.extend(pkts_b) return pkts def verify_capture(self, dst_if, capture): """Verify captured input packet stream for defined interface. :param VppInterface dst_if: Interface to verify captured packet stream for. :param list capture: Captured packet stream. """ self.logger.info("Verifying capture on interface %s" % dst_if.name) last_info = dict() for i in self.interfaces: last_info[i.sw_if_index] = None is_sub_if = False dst_sw_if_index = dst_if.sw_if_index if hasattr(dst_if, 'parent'): is_sub_if = True for packet in capture: if is_sub_if: # Check VLAN tags and Ethernet header packet = dst_if.remove_dot1_layer(packet) self.assertTrue(Dot1Q not in packet) try: ip = packet[IP] udp = packet[UDP] payload_info = self.payload_to_info(packet[Raw]) 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)" % (dst_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.interfaces: remaining_packet = self.get_next_packet_info_for_interface2( i.sw_if_index, dst_sw_if_index, last_info[i.sw_if_index]) self.assertTrue(remaining_packet is None, "Interface %s: Packet expected from interface %s " "didn't arrive" % (dst_if.name, i.name)) def test_fib(self): """ IPv4 FIB test Test scenario: - Create IPv4 stream for pg0 interface - Create IPv4 tagged streams for pg1's and pg2's sub-interface. - Send and verify received packets on each interface. """ pkts = self.create_stream(self.pg0) self.pg0.add_stream(pkts) for i in self.sub_interfaces: pkts = self.create_stream(i) i.parent.add_stream(pkts) self.pg_enable_capture(self.pg_interfaces) self.pg_start() pkts = self.pg0.get_capture() self.verify_capture(self.pg0, pkts) for i in self.sub_interfaces: pkts = i.parent.get_capture() self.verify_capture(i, pkts) class TestICMPEcho(VppTestCase): """ ICMP Echo Test Case """ @classmethod def setUpClass(cls): super(TestICMPEcho, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestICMPEcho, cls).tearDownClass() def setUp(self): super(TestICMPEcho, self).setUp() # create 1 pg interface self.create_pg_interfaces(range(1)) for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() def tearDown(self): super(TestICMPEcho, self).tearDown() for i in self.pg_interfaces: i.unconfig_ip4() i.admin_down() def test_icmp_echo(self): """ VPP replies to ICMP Echo Request Test scenario: - Receive ICMP Echo Request message on pg0 interface. - Check outgoing ICMP Echo Reply message on pg0 interface. """ icmp_id = 0xb icmp_seq = 5 icmp_load = '\x0a' * 18 p_echo_request = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg0.local_ip4) / ICMP(id=icmp_id, seq=icmp_seq) / Raw(load=icmp_load)) self.pg0.add_stream(p_echo_request) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) rx = rx[0] ether = rx[Ether] ipv4 = rx[IP] icmp = rx[ICMP] self.assertEqual(ether.src, self.pg0.local_mac) self.assertEqual(ether.dst, self.pg0.remote_mac) self.assertEqual(ipv4.src, self.pg0.local_ip4) self.assertEqual(ipv4.dst, self.pg0.remote_ip4) self.assertEqual(icmptypes[icmp.type], "echo-reply") self.assertEqual(icmp.id, icmp_id) self.assertEqual(icmp.seq, icmp_seq) self.assertEqual(icmp[Raw].load, icmp_load) class TestIPv4FibCrud(VppTestCase): """ FIB - add/update/delete - ip4 routes Test scenario: - add 1k, - del 100, - add new 1k, - del 1.5k ..note:: Python API is too slow to add many routes, needs replacement. """ def config_fib_many_to_one(self, start_dest_addr, next_hop_addr, count, start=0): """ :param start_dest_addr: :param next_hop_addr: :param count: :return list: added ips with 32 prefix """ routes = [] for i in range(count): r = VppIpRoute(self, start_dest_addr % (i + start), 32, [VppRoutePath(next_hop_addr, 0xffffffff)]) r.add_vpp_config() routes.append(r) return routes def unconfig_fib_many_to_one(self, start_dest_addr, next_hop_addr, count, start=0): routes = [] for i in range(count): r = VppIpRoute(self, start_dest_addr % (i + start), 32, [VppRoutePath(next_hop_addr, 0xffffffff)]) r.remove_vpp_config() routes.append(r) return routes def create_stream(self, src_if, dst_if, routes, count): pkts = [] for _ in range(count): dst_addr = random.choice(routes).prefix.address info = self.create_packet_info(src_if, dst_if) payload = self.info_to_payload(info) p = (Ether(dst=src_if.local_mac, src=src_if.remote_mac) / IP(src=src_if.remote_ip4, dst=dst_addr) / UDP(sport=1234, dport=1234) / Raw(payload)) info.data = p.copy() self.extend_packet(p, random.choice(self.pg_if_packet_sizes)) pkts.append(p) return pkts def _find_ip_match(self, find_in, pkt): for p in find_in: if self.payload_to_info(p[Raw]) == \ self.payload_to_info(pkt[Raw]): if p[IP].src != pkt[IP].src: break if p[IP].dst != pkt[IP].dst: break if p[UDP].sport != pkt[UDP].sport: break if p[UDP].dport != pkt[UDP].dport: break return p return None def verify_capture(self, dst_interface, received_pkts, expected_pkts): self.assertEqual(len(received_pkts), len(expected_pkts)) to_verify = list(expected_pkts) for p in received_pkts: self.assertEqual(p.src, dst_interface.local_mac) self.assertEqual(p.dst, dst_interface.remote_mac) x = self._find_ip_match(to_verify, p) to_verify.remove(x) self.assertListEqual(to_verify, []) def verify_route_dump(self, routes): for r in routes: self.assertTrue(find_route(self, r.prefix.address, r.prefix.len)) def verify_not_in_route_dump(self, routes): for r in routes: self.assertFalse(find_route(self, r.prefix.address, r.prefix.len)) @classmethod def setUpClass(cls): """ #. Create and initialize 3 pg interfaces. #. initialize class attributes configured_routes and deleted_routes to store information between tests. """ super(TestIPv4FibCrud, cls).setUpClass() try: # create 3 pg interfaces cls.create_pg_interfaces(range(3)) cls.interfaces = list(cls.pg_interfaces) # setup all interfaces for i in cls.interfaces: i.admin_up() i.config_ip4() i.resolve_arp() cls.configured_routes = [] cls.deleted_routes = [] cls.pg_if_packet_sizes = [64, 512, 1518, 9018] except Exception: super(TestIPv4FibCrud, cls).tearDownClass() raise @classmethod def tearDownClass(cls): super(TestIPv4FibCrud, cls).tearDownClass() def setUp(self): super(TestIPv4FibCrud, self).setUp() self.reset_packet_infos() self.configured_routes = [] self.deleted_routes = [] def test_1_add_routes(self): """ Add 1k routes """ # add 100 routes check with traffic script. self.configured_routes.extend(self.config_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 100)) self.verify_route_dump(self.configured_routes) self.stream_1 = self.create_stream( self.pg1, self.pg0, self.configured_routes, 100) self.stream_2 = self.create_stream( self.pg2, self.pg0, self.configured_routes, 100) self.pg1.add_stream(self.stream_1) self.pg2.add_stream(self.stream_2) self.pg_enable_capture(self.pg_interfaces) self.pg_start() pkts = self.pg0.get_capture(len(self.stream_1) + len(self.stream_2)) self.verify_capture(self.pg0, pkts, self.stream_1 + self.stream_2) def test_2_del_routes(self): """ Delete 100 routes - delete 10 routes check with traffic script. """ # config 1M FIB entries self.configured_routes.extend(self.config_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 100)) self.deleted_routes.extend(self.unconfig_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 10, start=10)) for x in self.deleted_routes: self.configured_routes.remove(x) self.verify_route_dump(self.configured_routes) self.stream_1 = self.create_stream( self.pg1, self.pg0, self.configured_routes, 100) self.stream_2 = self.create_stream( self.pg2, self.pg0, self.configured_routes, 100) self.stream_3 = self.create_stream( self.pg1, self.pg0, self.deleted_routes, 100) self.stream_4 = self.create_stream( self.pg2, self.pg0, self.deleted_routes, 100) self.pg1.add_stream(self.stream_1 + self.stream_3) self.pg2.add_stream(self.stream_2 + self.stream_4) self.pg_enable_capture(self.pg_interfaces) self.pg_start() pkts = self.pg0.get_capture(len(self.stream_1) + len(self.stream_2)) self.verify_capture(self.pg0, pkts, self.stream_1 + self.stream_2) def test_3_add_new_routes(self): """ Add 1k routes - re-add 5 routes check with traffic script. - add 100 routes check with traffic script. """ # config 1M FIB entries self.configured_routes.extend(self.config_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 100)) self.deleted_routes.extend(self.unconfig_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 10, start=10)) for x in self.deleted_routes: self.configured_routes.remove(x) tmp = self.config_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 5, start=10) self.configured_routes.extend(tmp) for x in tmp: self.deleted_routes.remove(x) self.configured_routes.extend(self.config_fib_many_to_one( "10.0.1.%d", self.pg0.remote_ip4, 100)) self.verify_route_dump(self.configured_routes) self.stream_1 = self.create_stream( self.pg1, self.pg0, self.configured_routes, 300) self.stream_2 = self.create_stream( self.pg2, self.pg0, self.configured_routes, 300) self.stream_3 = self.create_stream( self.pg1, self.pg0, self.deleted_routes, 100) self.stream_4 = self.create_stream( self.pg2, self.pg0, self.deleted_routes, 100) self.pg1.add_stream(self.stream_1 + self.stream_3) self.pg2.add_stream(self.stream_2 + self.stream_4) self.pg_enable_capture(self.pg_interfaces) self.pg_start() pkts = self.pg0.get_capture(len(self.stream_1) + len(self.stream_2)) self.verify_capture(self.pg0, pkts, self.stream_1 + self.stream_2) # delete 5 routes check with traffic script. # add 100 routes check with traffic script. self.deleted_routes.extend(self.unconfig_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 15)) self.deleted_routes.extend(self.unconfig_fib_many_to_one( "10.0.0.%d", self.pg0.remote_ip4, 85)) self.deleted_routes.extend(self.unconfig_fib_many_to_one( "10.0.1.%d", self.pg0.remote_ip4, 100)) self.verify_not_in_route_dump(self.deleted_routes) class TestIPNull(VppTestCase): """ IPv4 routes via NULL """ @classmethod def setUpClass(cls): super(TestIPNull, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPNull, cls).tearDownClass() def setUp(self): super(TestIPNull, self).setUp() # create 2 pg interfaces self.create_pg_interfaces(range(2)) for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() def tearDown(self): super(TestIPNull, self).tearDown() for i in self.pg_interfaces: i.unconfig_ip4() i.admin_down() def test_ip_null(self): """ IP NULL route """ # # A route via IP NULL that will reply with ICMP unreachables # ip_unreach = VppIpRoute( self, "10.0.0.1", 32, [VppRoutePath("0.0.0.0", 0xffffffff, type=FibPathType.FIB_PATH_TYPE_ICMP_UNREACH)]) ip_unreach.add_vpp_config() p_unreach = (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_unreach) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) rx = rx[0] icmp = rx[ICMP] self.assertEqual(icmptypes[icmp.type], "dest-unreach") self.assertEqual(icmpcodes[icmp.type][icmp.code], "host-unreachable") self.assertEqual(icmp.src, self.pg0.remote_ip4) self.assertEqual(icmp.dst, "10.0.0.1") # # ICMP replies are rate limited. so sit and spin. # self.sleep(1) # # A route via IP NULL that will reply with ICMP prohibited # ip_prohibit = VppIpRoute( self, "10.0.0.2", 32, [VppRoutePath("0.0.0.0", 0xffffffff, type=FibPathType.FIB_PATH_TYPE_ICMP_PROHIBIT)]) ip_prohibit.add_vpp_config() p_prohibit = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst="10.0.0.2") / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) self.pg0.add_stream(p_prohibit) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) rx = rx[0] icmp = rx[ICMP] self.assertEqual(icmptypes[icmp.type], "dest-unreach") self.assertEqual(icmpcodes[icmp.type][icmp.code], "host-prohibited") self.assertEqual(icmp.src, self.pg0.remote_ip4) self.assertEqual(icmp.dst, "10.0.0.2") def test_ip_drop(self): """ IP Drop Routes """ p = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst="1.1.1.1") / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) r1 = VppIpRoute(self, "1.1.1.0", 24, [VppRoutePath(self.pg1.remote_ip4, self.pg1.sw_if_index)]) r1.add_vpp_config() rx = self.send_and_expect(self.pg0, p * NUM_PKTS, self.pg1) # # insert a more specific as a drop # r2 = VppIpRoute(self, "1.1.1.1", 32, [VppRoutePath("0.0.0.0", 0xffffffff, type=FibPathType.FIB_PATH_TYPE_DROP)]) r2.add_vpp_config() self.send_and_assert_no_replies(self.pg0, p * NUM_PKTS, "Drop Route") r2.remove_vpp_config() rx = self.send_and_expect(self.pg0, p * NUM_PKTS, self.pg1) class TestIPDisabled(VppTestCase): """ IPv4 disabled """ @classmethod def setUpClass(cls): super(TestIPDisabled, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPDisabled, cls).tearDownClass() def setUp(self): super(TestIPDisabled, self).setUp() # create 2 pg interfaces self.create_pg_interfaces(range(2)) # PG0 is IP enalbed self.pg0.admin_up() self.pg0.config_ip4() self.pg0.resolve_arp() # PG 1 is not IP enabled self.pg1.admin_up() def tearDown(self): super(TestIPDisabled, self).tearDown() for i in self.pg_interfaces: i.unconfig_ip4() i.admin_down() def test_ip_disabled(self): """ IP Disabled """ # # An (S,G). # one accepting interface, pg0, 2 forwarding interfaces # route_232_1_1_1 = VppIpMRoute( self, "0.0.0.0", "232.1.1.1", 32, MRouteEntryFlags.MFIB_ENTRY_FLAG_NONE, [VppMRoutePath(self.pg1.sw_if_index, MRouteItfFlags.MFIB_ITF_FLAG_ACCEPT), VppMRoutePath(self.pg0.sw_if_index, MRouteItfFlags.MFIB_ITF_FLAG_FORWARD)]) route_232_1_1_1.add_vpp_config() pu = (Ether(src=self.pg1.remote_mac, dst=self.pg1.local_mac) / IP(src="10.10.10.10", dst=self.pg0.remote_ip4) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) pm = (Ether(src=self.pg1.remote_mac, dst=self.pg1.local_mac) / IP(src="10.10.10.10", dst="232.1.1.1") / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) # # PG1 does not forward IP traffic # self.send_and_assert_no_replies(self.pg1, pu, "IP disabled") self.send_and_assert_no_replies(self.pg1, pm, "IP disabled") # # IP enable PG1 # self.pg1.config_ip4() # # Now we get packets through # self.pg1.add_stream(pu) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) self.pg1.add_stream(pm) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) # # Disable PG1 # self.pg1.unconfig_ip4() # # PG1 does not forward IP traffic # self.send_and_assert_no_replies(self.pg1, pu, "IP disabled") self.send_and_assert_no_replies(self.pg1, pm, "IP disabled") class TestIPSubNets(VppTestCase): """ IPv4 Subnets """ @classmethod def setUpClass(cls): super(TestIPSubNets, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPSubNets, cls).tearDownClass() def setUp(self): super(TestIPSubNets, self).setUp() # create a 2 pg interfaces self.create_pg_interfaces(range(2)) # pg0 we will use to experiment self.pg0.admin_up() # pg1 is setup normally self.pg1.admin_up() self.pg1.config_ip4() self.pg1.resolve_arp() def tearDown(self): super(TestIPSubNets, self).tearDown() for i in self.pg_interfaces: i.admin_down() def test_ip_sub_nets(self): """ IP Sub Nets """ # # Configure a covering route to forward so we know # when we are dropping # cover_route = VppIpRoute(self, "10.0.0.0", 8, [VppRoutePath(self.pg1.remote_ip4, self.pg1.sw_if_index)]) cover_route.add_vpp_config() p = (Ether(src=self.pg1.remote_mac, dst=self.pg1.local_mac) / IP(dst="10.10.10.10", src=self.pg0.local_ip4) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) self.pg1.add_stream(p) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) # # Configure some non-/24 subnets on an IP interface # ip_addr_n = socket.inet_pton(socket.AF_INET, "10.10.10.10") self.vapi.sw_interface_add_del_address( sw_if_index=self.pg0.sw_if_index, address=ip_addr_n, address_length=16) pn = (Ether(src=self.pg1.remote_mac, dst=self.pg1.local_mac) / IP(dst="10.10.0.0", src=self.pg0.local_ip4) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) pb = (Ether(src=self.pg1.remote_mac, dst=self.pg1.local_mac) / IP(dst="10.10.255.255", src=self.pg0.local_ip4) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) self.send_and_assert_no_replies(self.pg1, pn, "IP Network address") self.send_and_assert_no_replies(self.pg1, pb, "IP Broadcast address") # remove the sub-net and we are forwarding via the cover again self.vapi.sw_interface_add_del_address( sw_if_index=self.pg0.sw_if_index, address=ip_addr_n, address_length=16, is_add=0) self.pg1.add_stream(pn) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) self.pg1.add_stream(pb) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) # # A /31 is a special case where the 'other-side' is an attached host # packets to that peer generate ARP requests # ip_addr_n = socket.inet_pton(socket.AF_INET, "10.10.10.10") self.vapi.sw_interface_add_del_address( sw_if_index=self.pg0.sw_if_index, address=ip_addr_n, address_length=31) pn = (Ether(src=self.pg1.remote_mac, dst=self.pg1.local_mac) / IP(dst="10.10.10.11", src=self.pg0.local_ip4) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) self.pg1.add_stream(pn) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg0.get_capture(1) rx[ARP] # remove the sub-net and we are forwarding via the cover again self.vapi.sw_interface_add_del_address( sw_if_index=self.pg0.sw_if_index, address=ip_addr_n, address_length=31, is_add=0) self.pg1.add_stream(pn) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = self.pg1.get_capture(1) class TestIPLoadBalance(VppTestCase): """ IPv4 Load-Balancing """ @classmethod def setUpClass(cls): super(TestIPLoadBalance, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPLoadBalance, cls).tearDownClass() def setUp(self): super(TestIPLoadBalance, self).setUp() self.create_pg_interfaces(range(5)) mpls_tbl = VppMplsTable(self, 0) mpls_tbl.add_vpp_config() for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() i.enable_mpls() def tearDown(self): for i in self.pg_interfaces: i.disable_mpls() i.unconfig_ip4() i.admin_down() super(TestIPLoadBalance, self).tearDown() def send_and_expect_load_balancing(self, input, pkts, outputs): input.add_stream(pkts) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rxs = [] for oo in outputs: rx = oo._get_capture(1) self.assertNotEqual(0, len(rx)) for r in rx: rxs.append(r) return rxs def send_and_expect_one_itf(self, input, pkts, itf): input.add_stream(pkts) self.pg_enable_capture(self.pg_interfaces) self.pg_start() rx = itf.get_capture(len(pkts)) def test_ip_load_balance(self): """ IP Load-Balancing """ # # An array of packets that differ only in the destination port # port_ip_pkts = [] port_mpls_pkts = [] # # An array of packets that differ only in the source address # src_ip_pkts = [] src_mpls_pkts = [] for ii in range(NUM_PKTS): port_ip_hdr = (IP(dst="10.0.0.1", src="20.0.0.1") / UDP(sport=1234, dport=1234 + ii) / Raw('\xa5' * 100)) port_ip_pkts.append((Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / port_ip_hdr)) port_mpls_pkts.append((Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / MPLS(label=66, ttl=2) / port_ip_hdr)) src_ip_hdr = (IP(dst="10.0.0.1", src="20.0.0.%d" % ii) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) src_ip_pkts.append((Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / src_ip_hdr)) src_mpls_pkts.append((Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / MPLS(label=66, ttl=2) / src_ip_hdr)) route_10_0_0_1 = VppIpRoute(self, "10.0.0.1", 32, [VppRoutePath(self.pg1.remote_ip4, self.pg1.sw_if_index), VppRoutePath(self.pg2.remote_ip4, self.pg2.sw_if_index)]) route_10_0_0_1.add_vpp_config() binding = VppMplsIpBind(self, 66, "10.0.0.1", 32) binding.add_vpp_config() # # inject the packet on pg0 - expect load-balancing across the 2 paths # - since the default hash config is to use IP src,dst and port # src,dst # We are not going to ensure equal amounts of packets across each link, # since the hash algorithm is statistical and therefore this can never # be guaranteed. But with 64 different packets we do expect some # balancing. So instead just ensure there is traffic on each link. # self.send_and_expect_load_balancing(self.pg0, port_ip_pkts, [self.pg1, self.pg2]) self.send_and_expect_load_balancing(self.pg0, src_ip_pkts, [self.pg1, self.pg2]) self.send_and_expect_load_balancing(self.pg0, port_mpls_pkts, [self.pg1, self.pg2]) self.send_and_expect_load_balancing(self.pg0, src_mpls_pkts, [self.pg1, self.pg2]) # # change the flow hash config so it's only IP src,dst # - now only the stream with differing source address will # load-balance # self.vapi.set_ip_flow_hash(vrf_id=0, src=1, dst=1, sport=0, dport=0) self.send_and_expect_load_balancing(self.pg0, src_ip_pkts, [self.pg1, self.pg2]) self.send_and_expect_load_balancing(self.pg0, src_mpls_pkts, [self.pg1, self.pg2]) self.send_and_expect_one_itf(self.pg0, port_ip_pkts, self.pg2) # # change the flow hash config back to defaults # self.vapi.set_ip_flow_hash(vrf_id=0, src=1, dst=1, sport=1, dport=1) # # Recursive prefixes # - testing that 2 stages of load-balancing occurs and there is no # polarisation (i.e. only 2 of 4 paths are used) # port_pkts = [] src_pkts = [] for ii in range(257): port_pkts.append((Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(dst="1.1.1.1", src="20.0.0.1") / UDP(sport=1234, dport=1234 + ii) / Raw('\xa5' * 100))) src_pkts.append((Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(dst="1.1.1.1", src="20.0.0.%d" % ii) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100))) route_10_0_0_2 = VppIpRoute(self, "10.0.0.2", 32, [VppRoutePath(self.pg3.remote_ip4, self.pg3.sw_if_index), VppRoutePath(self.pg4.remote_ip4, self.pg4.sw_if_index)]) route_10_0_0_2.add_vpp_config() route_1_1_1_1 = VppIpRoute(self, "1.1.1.1", 32, [VppRoutePath("10.0.0.2", 0xffffffff), VppRoutePath("10.0.0.1", 0xffffffff)]) route_1_1_1_1.add_vpp_config() # # inject the packet on pg0 - expect load-balancing across all 4 paths # self.vapi.cli("clear trace") self.send_and_expect_load_balancing(self.pg0, port_pkts, [self.pg1, self.pg2, self.pg3, self.pg4]) self.send_and_expect_load_balancing(self.pg0, src_pkts, [self.pg1, self.pg2, self.pg3, self.pg4]) # # bring down pg1 expect LB to adjust to use only those that are pu # self.pg1.link_down() rx = self.send_and_expect_load_balancing(self.pg0, src_pkts, [self.pg2, self.pg3, self.pg4]) self.assertEqual(len(src_pkts), len(rx)) # # bring down pg2 expect LB to adjust to use only those that are pu # self.pg2.link_down() rx = self.send_and_expect_load_balancing(self.pg0, src_pkts, [self.pg3, self.pg4]) self.assertEqual(len(src_pkts), len(rx)) # # bring the links back up - expect LB over all again # self.pg1.link_up() self.pg2.link_up() rx = self.send_and_expect_load_balancing(self.pg0, src_pkts, [self.pg1, self.pg2, self.pg3, self.pg4]) self.assertEqual(len(src_pkts), len(rx)) # # The same link-up/down but this time admin state # self.pg1.admin_down() self.pg2.admin_down() rx = self.send_and_expect_load_balancing(self.pg0, src_pkts, [self.pg3, self.pg4]) self.assertEqual(len(src_pkts), len(rx)) self.pg1.admin_up() self.pg2.admin_up() self.pg1.resolve_arp() self.pg2.resolve_arp() rx = self.send_and_expect_load_balancing(self.pg0, src_pkts, [self.pg1, self.pg2, self.pg3, self.pg4]) self.assertEqual(len(src_pkts), len(rx)) # # Recursive prefixes # - testing that 2 stages of load-balancing, no choices # port_pkts = [] for ii in range(257): port_pkts.append((Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(dst="1.1.1.2", src="20.0.0.2") / UDP(sport=1234, dport=1234 + ii) / Raw('\xa5' * 100))) route_10_0_0_3 = VppIpRoute(self, "10.0.0.3", 32, [VppRoutePath(self.pg3.remote_ip4, self.pg3.sw_if_index)]) route_10_0_0_3.add_vpp_config() route_1_1_1_2 = VppIpRoute(self, "1.1.1.2", 32, [VppRoutePath("10.0.0.3", 0xffffffff)]) route_1_1_1_2.add_vpp_config() # # inject the packet on pg0 - rx only on via routes output interface # self.vapi.cli("clear trace") self.send_and_expect_one_itf(self.pg0, port_pkts, self.pg3) # # Add a LB route in the presence of a down link - expect no # packets over the down link # self.pg3.link_down() route_10_0_0_3 = VppIpRoute(self, "10.0.0.3", 32, [VppRoutePath(self.pg3.remote_ip4, self.pg3.sw_if_index), VppRoutePath(self.pg4.remote_ip4, self.pg4.sw_if_index)]) route_10_0_0_3.add_vpp_config() port_pkts = [] for ii in range(257): port_pkts.append(Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(dst="10.0.0.3", src="20.0.0.2") / UDP(sport=1234, dport=1234 + ii) / Raw('\xa5' * 100)) self.send_and_expect_one_itf(self.pg0, port_pkts, self.pg4) # bring the link back up self.pg3.link_up() rx = self.send_and_expect_load_balancing(self.pg0, port_pkts, [self.pg3, self.pg4]) self.assertEqual(len(src_pkts), len(rx)) class TestIPVlan0(VppTestCase): """ IPv4 VLAN-0 """ @classmethod def setUpClass(cls): super(TestIPVlan0, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPVlan0, cls).tearDownClass() def setUp(self): super(TestIPVlan0, self).setUp() self.create_pg_interfaces(range(2)) mpls_tbl = VppMplsTable(self, 0) mpls_tbl.add_vpp_config() for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() i.enable_mpls() def tearDown(self): for i in self.pg_interfaces: i.disable_mpls() i.unconfig_ip4() i.admin_down() super(TestIPVlan0, self).tearDown() def test_ip_vlan_0(self): """ IP VLAN-0 """ pkts = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / Dot1Q(vlan=0) / IP(dst=self.pg1.remote_ip4, src=self.pg0.remote_ip4) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) * NUM_PKTS # # Expect that packets sent on VLAN-0 are forwarded on the # main interface. # self.send_and_expect(self.pg0, pkts, self.pg1) class TestIPPunt(VppTestCase): """ IPv4 Punt Police/Redirect """ @classmethod def setUpClass(cls): super(TestIPPunt, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPPunt, cls).tearDownClass() def setUp(self): super(TestIPPunt, self).setUp() self.create_pg_interfaces(range(4)) for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() def tearDown(self): super(TestIPPunt, self).tearDown() for i in self.pg_interfaces: i.unconfig_ip4() i.admin_down() def test_ip_punt(self): """ IP punt police and redirect """ # use UDP packet that have a port we need to explicitly # register to get punted. pt_l4 = VppEnum.vl_api_punt_type_t.PUNT_API_TYPE_L4 af_ip4 = VppEnum.vl_api_address_family_t.ADDRESS_IP4 udp_proto = VppEnum.vl_api_ip_proto_t.IP_API_PROTO_UDP punt_udp = { 'type': pt_l4, 'punt': { 'l4': { 'af': af_ip4, 'protocol': udp_proto, 'port': 1234, } } } self.vapi.set_punt(is_add=1, punt=punt_udp) p = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg0.local_ip4) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) pkts = p * 1025 # # Configure a punt redirect via pg1. # nh_addr = self.pg1.remote_ip4 self.vapi.ip_punt_redirect(self.pg0.sw_if_index, self.pg1.sw_if_index, nh_addr) self.send_and_expect(self.pg0, pkts, self.pg1) # # add a policer # policer = self.vapi.policer_add_del(b"ip4-punt", 400, 0, 10, 0, rate_type=1) self.vapi.ip_punt_police(policer.policer_index) self.vapi.cli("clear trace") self.pg0.add_stream(pkts) self.pg_enable_capture(self.pg_interfaces) self.pg_start() # # the number of packet received should be greater than 0, # but not equal to the number sent, since some were policed # rx = self.pg1._get_capture(1) self.assertGreater(len(rx), 0) self.assertLess(len(rx), len(pkts)) # # remove the policer. back to full rx # self.vapi.ip_punt_police(policer.policer_index, is_add=0) self.vapi.policer_add_del(b"ip4-punt", 400, 0, 10, 0, rate_type=1, is_add=0) self.send_and_expect(self.pg0, pkts, self.pg1) # # remove the redirect. expect full drop. # self.vapi.ip_punt_redirect(self.pg0.sw_if_index, self.pg1.sw_if_index, nh_addr, is_add=0) self.send_and_assert_no_replies(self.pg0, pkts, "IP no punt config") # # Add a redirect that is not input port selective # self.vapi.ip_punt_redirect(0xffffffff, self.pg1.sw_if_index, nh_addr) self.send_and_expect(self.pg0, pkts, self.pg1) self.vapi.ip_punt_redirect(0xffffffff, self.pg1.sw_if_index, nh_addr, is_add=0) def test_ip_punt_dump(self): """ IP4 punt redirect dump""" # # Configure a punt redirects # nh_address = self.pg3.remote_ip4 self.vapi.ip_punt_redirect(self.pg0.sw_if_index, self.pg3.sw_if_index, nh_address) self.vapi.ip_punt_redirect(self.pg1.sw_if_index, self.pg3.sw_if_index, nh_address) self.vapi.ip_punt_redirect(self.pg2.sw_if_index, self.pg3.sw_if_index, '0.0.0.0') # # Dump pg0 punt redirects # punts = self.vapi.ip_punt_redirect_dump(self.pg0.sw_if_index) for p in punts: self.assertEqual(p.punt.rx_sw_if_index, self.pg0.sw_if_index) # # Dump punt redirects for all interfaces # punts = self.vapi.ip_punt_redirect_dump(0xffffffff) self.assertEqual(len(punts), 3) for p in punts: self.assertEqual(p.punt.tx_sw_if_index, self.pg3.sw_if_index) self.assertNotEqual(punts[1].punt.nh, self.pg3.remote_ip4) self.assertEqual(str(punts[2].punt.nh), '0.0.0.0') class TestIPDeag(VppTestCase): """ IPv4 Deaggregate Routes """ @classmethod def setUpClass(cls): super(TestIPDeag, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPDeag, cls).tearDownClass() def setUp(self): super(TestIPDeag, self).setUp() self.create_pg_interfaces(range(3)) for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() def tearDown(self): super(TestIPDeag, self).tearDown() for i in self.pg_interfaces: i.unconfig_ip4() i.admin_down() def test_ip_deag(self): """ IP Deag Routes """ # # Create a table to be used for: # 1 - another destination address lookup # 2 - a source address lookup # table_dst = VppIpTable(self, 1) table_src = VppIpTable(self, 2) table_dst.add_vpp_config() table_src.add_vpp_config() # # Add a route in the default table to point to a deag/ # second lookup in each of these tables # route_to_dst = VppIpRoute(self, "1.1.1.1", 32, [VppRoutePath("0.0.0.0", 0xffffffff, nh_table_id=1)]) route_to_src = VppIpRoute( self, "1.1.1.2", 32, [VppRoutePath("0.0.0.0", 0xffffffff, nh_table_id=2, type=FibPathType.FIB_PATH_TYPE_SOURCE_LOOKUP)]) route_to_dst.add_vpp_config() route_to_src.add_vpp_config() # # packets to these destination are dropped, since they'll # hit the respective default routes in the second table # p_dst = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="5.5.5.5", dst="1.1.1.1") / TCP(sport=1234, dport=1234) / Raw('\xa5' * 100)) p_src = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="2.2.2.2", dst="1.1.1.2") / TCP(sport=1234, dport=1234) / Raw('\xa5' * 100)) pkts_dst = p_dst * 257 pkts_src = p_src * 257 self.send_and_assert_no_replies(self.pg0, pkts_dst, "IP in dst table") self.send_and_assert_no_replies(self.pg0, pkts_src, "IP in src table") # # add a route in the dst table to forward via pg1 # route_in_dst = VppIpRoute(self, "1.1.1.1", 32, [VppRoutePath(self.pg1.remote_ip4, self.pg1.sw_if_index)], table_id=1) route_in_dst.add_vpp_config() self.send_and_expect(self.pg0, pkts_dst, self.pg1) # # add a route in the src table to forward via pg2 # route_in_src = VppIpRoute(self, "2.2.2.2", 32, [VppRoutePath(self.pg2.remote_ip4, self.pg2.sw_if_index)], table_id=2) route_in_src.add_vpp_config() self.send_and_expect(self.pg0, pkts_src, self.pg2) # # loop in the lookup DP # route_loop = VppIpRoute(self, "2.2.2.3", 32, [VppRoutePath("0.0.0.0", 0xffffffff, nh_table_id=0)]) route_loop.add_vpp_config() p_l = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="2.2.2.4", dst="2.2.2.3") / TCP(sport=1234, dport=1234) / Raw('\xa5' * 100)) self.send_and_assert_no_replies(self.pg0, p_l * 257, "IP lookup loop") class TestIPInput(VppTestCase): """ IPv4 Input Exceptions """ @classmethod def setUpClass(cls): super(TestIPInput, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPInput, cls).tearDownClass() def setUp(self): super(TestIPInput, self).setUp() self.create_pg_interfaces(range(2)) for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() def tearDown(self): super(TestIPInput, self).tearDown() for i in self.pg_interfaces: i.unconfig_ip4() i.admin_down() def test_ip_input(self): """ IP Input Exceptions """ # i can't find a way in scapy to construct an IP packet # with a length less than the IP header length # # Packet too short - this is forwarded # p_short = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4, len=40) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) rx = self.send_and_expect(self.pg0, p_short * NUM_PKTS, self.pg1) # # Packet too long - this is dropped # p_long = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4, len=400) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) rx = self.send_and_assert_no_replies(self.pg0, p_long * NUM_PKTS, "too long") # # bad chksum - this is dropped # p_chksum = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4, chksum=400) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) rx = self.send_and_assert_no_replies(self.pg0, p_chksum * NUM_PKTS, "bad checksum") # # bad version - this is dropped # p_ver = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4, version=3) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) rx = self.send_and_assert_no_replies(self.pg0, p_ver * NUM_PKTS, "funky version") # # fragment offset 1 - this is dropped # p_frag = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4, frag=1) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) rx = self.send_and_assert_no_replies(self.pg0, p_frag * NUM_PKTS, "frag offset") # # TTL expired packet # p_ttl = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4, ttl=1) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 100)) rx = self.send_and_expect(self.pg0, p_ttl * NUM_PKTS, self.pg0) rx = rx[0] icmp = rx[ICMP] self.assertEqual(icmptypes[icmp.type], "time-exceeded") self.assertEqual(icmpcodes[icmp.type][icmp.code], "ttl-zero-during-transit") self.assertEqual(icmp.src, self.pg0.remote_ip4) self.assertEqual(icmp.dst, self.pg1.remote_ip4) # # MTU exceeded # p_mtu = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src=self.pg0.remote_ip4, dst=self.pg1.remote_ip4, ttl=10, flags='DF') / UDP(sport=1234, dport=1234) / Raw('\xa5' * 2000)) self.vapi.sw_interface_set_mtu(self.pg1.sw_if_index, [1500, 0, 0, 0]) rx = self.send_and_expect(self.pg0, p_mtu * NUM_PKTS, self.pg0) rx = rx[0] icmp = rx[ICMP] self.assertEqual(icmptypes[icmp.type], "dest-unreach") self.assertEqual(icmpcodes[icmp.type][icmp.code], "fragmentation-needed") self.assertEqual(icmp.src, self.pg0.remote_ip4) self.assertEqual(icmp.dst, self.pg1.remote_ip4) self.vapi.sw_interface_set_mtu(self.pg1.sw_if_index, [2500, 0, 0, 0]) rx = self.send_and_expect(self.pg0, p_mtu * NUM_PKTS, self.pg1) # Reset MTU for subsequent tests self.vapi.sw_interface_set_mtu(self.pg1.sw_if_index, [9000, 0, 0, 0]) # # source address 0.0.0.0 and 25.255.255.255 and for-us # p_s0 = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="0.0.0.0", dst=self.pg0.local_ip4) / ICMP(id=4, seq=4) / Raw(load='\x0a' * 18)) rx = self.send_and_assert_no_replies(self.pg0, p_s0 * 17) p_s0 = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="255.255.255.255", dst=self.pg0.local_ip4) / ICMP(id=4, seq=4) / Raw(load='\x0a' * 18)) rx = self.send_and_assert_no_replies(self.pg0, p_s0 * 17) class TestIPDirectedBroadcast(VppTestCase): """ IPv4 Directed Broadcast """ @classmethod def setUpClass(cls): super(TestIPDirectedBroadcast, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPDirectedBroadcast, cls).tearDownClass() def setUp(self): super(TestIPDirectedBroadcast, self).setUp() self.create_pg_interfaces(range(2)) for i in self.pg_interfaces: i.admin_up() def tearDown(self): super(TestIPDirectedBroadcast, self).tearDown() for i in self.pg_interfaces: i.admin_down() def test_ip_input(self): """ IP Directed Broadcast """ # # set the directed broadcast on pg0 first, then config IP4 addresses # for pg1 directed broadcast is always disabled self.vapi.sw_interface_set_ip_directed_broadcast( self.pg0.sw_if_index, 1) p0 = (Ether(src=self.pg1.remote_mac, dst=self.pg1.local_mac) / IP(src="1.1.1.1", dst=self.pg0._local_ip4_bcast) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 2000)) p1 = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="1.1.1.1", dst=self.pg1._local_ip4_bcast) / UDP(sport=1234, dport=1234) / Raw('\xa5' * 2000)) self.pg0.config_ip4() self.pg0.resolve_arp() self.pg1.config_ip4() self.pg1.resolve_arp() # # test packet is L2 broadcast # rx = self.send_and_expect(self.pg1, p0 * NUM_PKTS, self.pg0) self.assertTrue(rx[0][Ether].dst, "ff:ff:ff:ff:ff:ff") self.send_and_assert_no_replies(self.pg0, p1 * NUM_PKTS, "directed broadcast disabled") # # toggle directed broadcast on pg0 # self.vapi.sw_interface_set_ip_directed_broadcast( self.pg0.sw_if_index, 0) self.send_and_assert_no_replies(self.pg1, p0 * NUM_PKTS, "directed broadcast disabled") self.vapi.sw_interface_set_ip_directed_broadcast( self.pg0.sw_if_index, 1) rx = self.send_and_expect(self.pg1, p0 * NUM_PKTS, self.pg0) self.pg0.unconfig_ip4() self.pg1.unconfig_ip4() class TestIPLPM(VppTestCase): """ IPv4 longest Prefix Match """ @classmethod def setUpClass(cls): super(TestIPLPM, cls).setUpClass() @classmethod def tearDownClass(cls): super(TestIPLPM, cls).tearDownClass() def setUp(self): super(TestIPLPM, self).setUp() self.create_pg_interfaces(range(4)) for i in self.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() def tearDown(self): super(TestIPLPM, self).tearDown() for i in self.pg_interfaces: i.admin_down() i.unconfig_ip4() def test_ip_lpm(self): """ IP longest Prefix Match """ s_24 = VppIpRoute(self, "10.1.2.0", 24, [VppRoutePath(self.pg1.remote_ip4, self.pg1.sw_if_index)]) s_24.add_vpp_config() s_8 = VppIpRoute(self, "10.0.0.0", 8, [VppRoutePath(self.pg2.remote_ip4, self.pg2.sw_if_index)]) s_8.add_vpp_config() p_8 = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="1.1.1.1", dst="10.1.1.1") / UDP(sport=1234, dport=1234) / Raw('\xa5' * 2000)) p_24 = (Ether(src=self.pg0.remote_mac, dst=self.pg0.local_mac) / IP(src="1.1.1.1", dst="10.1.2.1") / UDP(sport=1234, dport=1234) / Raw('\xa5' * 2000)) self.logger.info(self.vapi.cli("sh ip fib mtrie")) rx = self.send_and_expect(self.pg0, p_8 * NUM_PKTS, self.pg2) rx = self.send_and_expect(self.pg0, p_24 * NUM_PKTS, self.pg1) class TestIPv4Frag(VppTestCase): """ IPv4 fragmentation """ @classmethod def setUpClass(cls): super(TestIPv4Frag, cls).setUpClass() cls.create_pg_interfaces([0, 1]) cls.src_if = cls.pg0 cls.dst_if = cls.pg1 # setup all interfaces for i in cls.pg_interfaces: i.admin_up() i.config_ip4() i.resolve_arp() @classmethod def tearDownClass(cls): super(TestIPv4Frag, cls).tearDownClass() def test_frag_large_packets(self): """ Fragmentation of large packets """ p = (Ether(dst=self.src_if.local_mac, src=self.src_if.remote_mac) / IP(src=self.src_if.remote_ip4, dst=self.dst_if.remote_ip4) / UDP(sport=1234, dport=5678) / Raw()) self.extend_packet(p, 6000, "abcde") saved_payload = p[Raw].load # Force fragmentation by setting MTU of output interface # lower than packet size self.vapi.sw_interface_set_mtu(self.dst_if.sw_if_index, [5000, 0, 0, 0]) self.pg_enable_capture() self.src_if.add_stream(p) self.pg_start() # Expecting 3 fragments because size of created fragments currently # cannot be larger then VPP buffer size (which is 2048) packets = self.dst_if.get_capture(3) # Assume VPP sends the fragments in order payload = '' for p in packets: payload_offset = p.frag * 8 if payload_offset > 0: payload_offset -= 8 # UDP header is not in payload self.assert_equal(payload_offset, len(payload)) payload += p[Raw].load self.assert_equal(payload, saved_payload, "payload") if __name__ == '__main__': unittest.main(testRunner=VppTestRunner)