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path: root/extras/vom/vom/acl_l2_list.cpp
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/*
 * Copyright (c) 2017 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 "vom/acl_l2_list.hpp"
#include "vom/acl_list_cmds.hpp"
#include "vom/logger.hpp"
#include "vom/singular_db_funcs.hpp"

namespace VOM {
namespace ACL {

/**
 * Definition of the static singular_db for ACL Lists
 */
singular_db<l2_list::key_t, l2_list> l2_list::m_db;

/**
 * Definition of the static per-handle DB for ACL Lists
 */
std::map<handle_t, std::weak_ptr<l2_list>> l2_list::m_hdl_db;

l2_list::event_handler l2_list::m_evh;

l2_list::event_handler::event_handler()
{
  OM::register_listener(this);
  inspect::register_handler({ "l2-acl-list" }, "L2 ACL lists", this);
}

l2_list::l2_list(const key_t& key)
  : m_hdl(handle_t::INVALID)
  , m_key(key)
{}

l2_list::l2_list(const handle_t& hdl, const key_t& key)
  : m_hdl(hdl)
  , m_key(key)
{}

l2_list::l2_list(const key_t& key, const rules_t& rules)
  : m_hdl(handle_t::INVALID)
  , m_key(key)
  , m_rules(rules)
{}

l2_list::l2_list(const l2_list& o)
  : m_hdl(o.m_hdl)
  , m_key(o.m_key)
  , m_rules(o.m_rules)
{}

l2_list::~l2_list()
{
  sweep();
  m_db.release(m_key, this);
}

std::shared_ptr<l2_list>
l2_list::singular() const
{
  return find_or_add(*this);
}

/**
 * Dump all ACLs into the stream provided
 */
void
l2_list::dump(std::ostream& os)
{
  db_dump(m_db, os);
}

/**
 * convert to string format for debug purposes
 */
std::string
l2_list::to_string() const
{
  std::ostringstream s;
  s << "acl-list:[" << m_key << " " << m_hdl.to_string() << " rules:[";

  for (auto rule : m_rules) {
    s << rule.to_string() << " ";
  }

  s << "]]";

  return (s.str());
}

void
l2_list::insert(const l2_rule& rule)
{
  m_rules.insert(rule);
}

void
l2_list::remove(const l2_rule& rule)
{
  m_rules.erase(rule);
}

const handle_t&
l2_list::handle() const
{
  return (singular()->handle_i());
}

std::shared_ptr<l2_list>
l2_list::find(const handle_t& handle)
{
  return (m_hdl_db[handle].lock());
}

std::shared_ptr<l2_list>
l2_list::find(const key_t& key)
{
  return (m_db.find(key));
}

std::shared_ptr<l2_list>
l2_list::find_or_add(const l2_list& temp)
{
  return (m_db.find_or_add(temp.key(), temp));
}

const handle_t&
l2_list::handle_i() const
{
  return (m_hdl.data());
}

void
l2_list::add(const key_t& key, const HW::item<handle_t>& item)
{
  std::shared_ptr<l2_list> sp = find(key);

  if (sp && item) {
    m_hdl_db[item.data()] = sp;
  }
}

void
l2_list::remove(const HW::item<handle_t>& item)
{
  m_hdl_db.erase(item.data());
}

const l2_list::key_t&
l2_list::key() const
{
  return m_key;
}

const l2_list::rules_t&
l2_list::rules() const
{
  return m_rules;
}

bool
l2_list::operator==(const l2_list& l) const
{
  return (key() == l.key() && rules() == l.rules());
}

void
l2_list::event_handler::handle_populate(const client_db::key_t& key)
{
  /*
   * dump L2 ACLs
   */
  std::shared_ptr<list_cmds::l2_dump_cmd> cmd =
    std::make_shared<list_cmds::l2_dump_cmd>();

  HW::enqueue(cmd);
  HW::write();

  for (auto& record : *cmd) {
    auto& payload = record.get_payload();

    const handle_t hdl(payload.acl_index);
    l2_list acl(hdl, std::string(reinterpret_cast<const char*>(payload.tag)));

    for (unsigned int ii = 0; ii < payload.count; ii++) {
      const route::prefix_t pfx(payload.r[ii].is_ipv6,
                                payload.r[ii].src_ip_addr,
                                payload.r[ii].src_ip_prefix_len);
      l2_rule rule(ii,
                   action_t::from_int(payload.r[ii].is_permit),
                   pfx,
                   { payload.r[ii].src_mac },
                   { payload.r[ii].src_mac_mask });

      acl.insert(rule);
    }
    VOM_LOG(log_level_t::DEBUG) << "dump: " << acl.to_string();

    /*
     * Write each of the discovered ACLs into the OM,
     * but disable the HW Command q whilst we do, so that no
     * commands are sent to VPP
     */
    OM::commit(key, acl);
  }
}

void
l2_list::event_handler::show(std::ostream& os)
{
  db_dump(m_db, os);
}

dependency_t
l2_list::event_handler::order() const
{
  return (dependency_t::ACL);
}

void
l2_list::event_handler::handle_replay()
{
  m_db.replay();
}

void
l2_list::update(const l2_list& obj)
{
  /*
   * always update the instance with the latest rule set
   */
  if (rc_t::OK != m_hdl.rc() || obj.m_rules != m_rules) {
    HW::enqueue(new list_cmds::l2_update_cmd(m_hdl, m_key, m_rules));
  }
  /*
   * We don't, can't, read the priority from VPP,
   * so the is equals check above does not include the priorty.
   * but we save it now.
   */
  m_rules = obj.m_rules;
}

void
l2_list::sweep(void)
{
  if (m_hdl) {
    HW::enqueue(new list_cmds::l2_delete_cmd(m_hdl));
  }
  HW::write();
}

void
l2_list::replay(void)
{
  if (m_hdl) {
    m_hdl.data().reset();
    HW::enqueue(new list_cmds::l2_update_cmd(m_hdl, m_key, m_rules));
  }
}

}; // namespace ACL
}; // namespace VOM

/*
 * fd.io coding-style-patch-verification: ON
 *
 * Local Variables:
 * eval: (c-set-style "mozilla")
 * End:
 */
lass="o">.spd_policy_out_any = VppIpsecSpdEntry(self, self.tun_spd, vpp_tun_sa_id, addr_any, addr_bcast, addr_any, addr_bcast, socket.IPPROTO_AH, is_outbound=0) objs.append(params.spd_policy_out_any) objs.append(params.spd_policy_in_any) e1 = VppIpsecSpdEntry(self, self.tun_spd, vpp_tun_sa_id, remote_tun_if_host, remote_tun_if_host, self.pg1.remote_addr[addr_type], self.pg1.remote_addr[addr_type], 0, priority=10, policy=e.IPSEC_API_SPD_ACTION_PROTECT, is_outbound=0) e2 = VppIpsecSpdEntry(self, self.tun_spd, scapy_tun_sa_id, self.pg1.remote_addr[addr_type], self.pg1.remote_addr[addr_type], remote_tun_if_host, remote_tun_if_host, 0, policy=e.IPSEC_API_SPD_ACTION_PROTECT, priority=10) e3 = VppIpsecSpdEntry(self, self.tun_spd, vpp_tun_sa_id, remote_tun_if_host, remote_tun_if_host, self.pg0.local_addr[addr_type], self.pg0.local_addr[addr_type], 0, priority=20, policy=e.IPSEC_API_SPD_ACTION_PROTECT, is_outbound=0) e4 = VppIpsecSpdEntry(self, self.tun_spd, scapy_tun_sa_id, self.pg0.local_addr[addr_type], self.pg0.local_addr[addr_type], remote_tun_if_host, remote_tun_if_host, 0, policy=e.IPSEC_API_SPD_ACTION_PROTECT, priority=20) objs = objs + [e1, e2, e3, e4] for o in objs: o.add_vpp_config() self.net_objs = self.net_objs + objs def config_ah_tra(self, params): addr_type = params.addr_type scapy_tra_sa_id = params.scapy_tra_sa_id scapy_tra_spi = params.scapy_tra_spi vpp_tra_sa_id = params.vpp_tra_sa_id vpp_tra_spi = params.vpp_tra_spi auth_algo_vpp_id = params.auth_algo_vpp_id auth_key = params.auth_key crypt_algo_vpp_id = params.crypt_algo_vpp_id crypt_key = params.crypt_key addr_any = params.addr_any addr_bcast = params.addr_bcast flags = params.flags | (VppEnum.vl_api_ipsec_sad_flags_t. IPSEC_API_SAD_FLAG_USE_ANTI_REPLAY) e = VppEnum.vl_api_ipsec_spd_action_t objs = [] params.tra_sa_in = VppIpsecSA(self, scapy_tra_sa_id, scapy_tra_spi, auth_algo_vpp_id, auth_key, crypt_algo_vpp_id, crypt_key, self.vpp_ah_protocol, flags=flags) params.tra_sa_out = VppIpsecSA(self, vpp_tra_sa_id, vpp_tra_spi, auth_algo_vpp_id, auth_key, crypt_algo_vpp_id, crypt_key, self.vpp_ah_protocol, flags=flags) objs.append(params.tra_sa_in) objs.append(params.tra_sa_out) objs.append(VppIpsecSpdEntry(self, self.tra_spd, vpp_tra_sa_id, addr_any, addr_bcast, addr_any, addr_bcast, socket.IPPROTO_AH)) objs.append(VppIpsecSpdEntry(self, self.tra_spd, scapy_tra_sa_id, addr_any, addr_bcast, addr_any, addr_bcast, socket.IPPROTO_AH, is_outbound=0)) objs.append(VppIpsecSpdEntry(self, self.tra_spd, vpp_tra_sa_id, self.tra_if.local_addr[addr_type], self.tra_if.local_addr[addr_type], self.tra_if.remote_addr[addr_type], self.tra_if.remote_addr[addr_type], 0, priority=10, policy=e.IPSEC_API_SPD_ACTION_PROTECT, is_outbound=0)) objs.append(VppIpsecSpdEntry(self, self.tra_spd, scapy_tra_sa_id, self.tra_if.local_addr[addr_type], self.tra_if.local_addr[addr_type], self.tra_if.remote_addr[addr_type], self.tra_if.remote_addr[addr_type], 0, policy=e.IPSEC_API_SPD_ACTION_PROTECT, priority=10)) for o in objs: o.add_vpp_config() self.net_objs = self.net_objs + objs class TemplateIpsecAh(ConfigIpsecAH): """ Basic test for IPSEC using AH transport and Tunnel mode TRANSPORT MODE: --- encrypt --- |pg2| <-------> |VPP| --- decrypt --- TUNNEL MODE: --- encrypt --- plain --- |pg0| <------- |VPP| <------ |pg1| --- --- --- --- decrypt --- plain --- |pg0| -------> |VPP| ------> |pg1| --- --- --- """ @classmethod def setUpClass(cls): super(TemplateIpsecAh, cls).setUpClass() @classmethod def tearDownClass(cls): super(TemplateIpsecAh, cls).tearDownClass() def setUp(self): super(TemplateIpsecAh, self).setUp() self.config_network(self.params.values()) def tearDown(self): self.unconfig_network() super(TemplateIpsecAh, self).tearDown() class TestIpsecAh1(TemplateIpsecAh, IpsecTcpTests): """ Ipsec AH - TCP tests """ pass class TestIpsecAh2(TemplateIpsecAh, IpsecTra46Tests, IpsecTun46Tests): """ Ipsec AH w/ SHA1 """ pass class TestIpsecAhTun(TemplateIpsecAh, IpsecTun46Tests): """ Ipsec AH - TUN encap tests """ def setUp(self): self.ipv4_params = IPsecIPv4Params() self.ipv6_params = IPsecIPv6Params() c = (VppEnum.vl_api_tunnel_encap_decap_flags_t. TUNNEL_API_ENCAP_DECAP_FLAG_ENCAP_COPY_DSCP) c1 = c | (VppEnum.vl_api_tunnel_encap_decap_flags_t. TUNNEL_API_ENCAP_DECAP_FLAG_ENCAP_COPY_ECN) self.ipv4_params.tun_flags = c self.ipv6_params.tun_flags = c1 super(TestIpsecAhTun, self).setUp() def gen_pkts(self, sw_intf, src, dst, count=1, payload_size=54): # set the DSCP + ECN - flags are set to copy only DSCP return [Ether(src=sw_intf.remote_mac, dst=sw_intf.local_mac) / IP(src=src, dst=dst, tos=5) / UDP(sport=4444, dport=4444) / Raw(b'X' * payload_size) for i in range(count)] def gen_pkts6(self, p, sw_intf, src, dst, count=1, payload_size=54): # set the DSCP + ECN - flags are set to copy both return [Ether(src=sw_intf.remote_mac, dst=sw_intf.local_mac) / IPv6(src=src, dst=dst, tc=5) / UDP(sport=4444, dport=4444) / Raw(b'X' * payload_size) for i in range(count)] def verify_encrypted(self, p, sa, rxs): # just check that only the DSCP is copied for rx in rxs: self.assertEqual(rx[IP].tos, 4) def verify_encrypted6(self, p, sa, rxs): # just check that the DSCP & ECN are copied for rx in rxs: self.assertEqual(rx[IPv6].tc, 5) class TestIpsecAhTun2(TemplateIpsecAh, IpsecTun46Tests): """ Ipsec AH - TUN encap tests """ def setUp(self): self.ipv4_params = IPsecIPv4Params() self.ipv6_params = IPsecIPv6Params() self.ipv4_params.dscp = 3 self.ipv6_params.dscp = 4 super(TestIpsecAhTun2, self).setUp() def gen_pkts(self, sw_intf, src, dst, count=1, payload_size=54): # set the DSCP + ECN - flags are set to copy only DSCP return [Ether(src=sw_intf.remote_mac, dst=sw_intf.local_mac) / IP(src=src, dst=dst, tos=0) / UDP(sport=4444, dport=4444) / Raw(b'X' * payload_size) for i in range(count)] def gen_pkts6(self, p, sw_intf, src, dst, count=1, payload_size=54): # set the DSCP + ECN - flags are set to copy both return [Ether(src=sw_intf.remote_mac, dst=sw_intf.local_mac) / IPv6(src=src, dst=dst, tc=0) / UDP(sport=4444, dport=4444) / Raw(b'X' * payload_size) for i in range(count)] def verify_encrypted(self, p, sa, rxs): # just check that only the DSCP is copied for rx in rxs: self.assertEqual(rx[IP].tos, 0xc) def verify_encrypted6(self, p, sa, rxs): # just check that the DSCP & ECN are copied for rx in rxs: self.assertEqual(rx[IPv6].tc, 0x10) class TestIpsecAhHandoff(TemplateIpsecAh, IpsecTun6HandoffTests, IpsecTun4HandoffTests): """ Ipsec AH Handoff """ pass class TestIpsecAhAll(ConfigIpsecAH, IpsecTra4, IpsecTra6, IpsecTun4, IpsecTun6): """ Ipsec AH all Algos """ def setUp(self): super(TestIpsecAhAll, self).setUp() def tearDown(self): super(TestIpsecAhAll, self).tearDown() def test_integ_algs(self): """All Engines SHA[1_96, 256, 384, 512] w/ & w/o ESN""" # foreach VPP crypto engine engines = ["ia32", "ipsecmb", "openssl"] algos = [{'vpp': VppEnum.vl_api_ipsec_integ_alg_t. IPSEC_API_INTEG_ALG_SHA1_96, 'scapy': "HMAC-SHA1-96"}, {'vpp': VppEnum.vl_api_ipsec_integ_alg_t. IPSEC_API_INTEG_ALG_SHA_256_128, 'scapy': "SHA2-256-128"}, {'vpp': VppEnum.vl_api_ipsec_integ_alg_t. IPSEC_API_INTEG_ALG_SHA_384_192, 'scapy': "SHA2-384-192"}, {'vpp': VppEnum.vl_api_ipsec_integ_alg_t. IPSEC_API_INTEG_ALG_SHA_512_256, 'scapy': "SHA2-512-256"}] flags = [0, (VppEnum.vl_api_ipsec_sad_flags_t. IPSEC_API_SAD_FLAG_USE_ESN)] # # loop through the VPP engines # for engine in engines: self.vapi.cli("set crypto handler all %s" % engine) # # loop through each of the algorithms # for algo in algos: # with self.subTest(algo=algo['scapy']): for flag in flags: # # setup up the config paramters # self.ipv4_params = IPsecIPv4Params() self.ipv6_params = IPsecIPv6Params() self.params = {self.ipv4_params.addr_type: self.ipv4_params, self.ipv6_params.addr_type: self.ipv6_params} for _, p in self.params.items(): p.auth_algo_vpp_id = algo['vpp'] p.auth_algo = algo['scapy'] p.flags = p.flags | flag # # configure the SPDs. SAs, etc # self.config_network(self.params.values()) # # run some traffic. # An exhautsive 4o6, 6o4 is not necessary for each algo # self.verify_tra_basic6(count=17) self.verify_tra_basic4(count=17) self.verify_tun_66(self.params[socket.AF_INET6], count=17) self.verify_tun_44(self.params[socket.AF_INET], count=17) # # remove the SPDs, SAs, etc # self.unconfig_network() if __name__ == '__main__': unittest.main(testRunner=VppTestRunner)