summaryrefslogtreecommitdiffstats
path: root/src/vlib/parse.h
blob: 036e744723bc7f2acab4731dd6a67f3fc7d4d7bf (plain)
1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
200
201
202
203
204
205
206
207
208
209
210
211
212
213
214
215
216
217
218
219
220
221
/*
 * 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.
 */
#ifndef included_vlib_parse_h
#define included_vlib_parse_h

#include <vlib/vlib.h>
#include <vlib/lex.h>
#include <vppinfra/mhash.h>

typedef struct
{
  /* Word aligned value. */
  union
  {
    u8 as_u8[32 - 1 * sizeof (u16)];
    void *as_pointer;
    uword as_uword;
    word as_word;
    u64 as_u64;
  } value;

  /* 16 bit type at end so that 30 bytes of value are aligned. */
  u16 type;
} __attribute ((packed))
  vlib_parse_value_t;

/* Instance of a type. */
     typedef struct
     {
       u32
	 type;

       u32
	 origin;

       u32
	 help_index;

       union
       {
	 void *
	   as_pointer;
	 uword
	   as_uword;
       } value;
     } vlib_parse_item_t;

     typedef struct
     {
       /* Index of item for this node. */
       u32
	 item;

       /* Graph index of peer (sibling) node (linked list of peers). */
       u32
	 peer;

       /* Graph index of deeper (child) node (linked list of children). */
       u32
	 deeper;
     } vlib_parse_graph_t;

#define foreach_parse_match_type                \
  _(MATCH_DONE)					\
  _(MATCH_RULE)					\
  _(MATCH_FAIL)					\
  _(MATCH_FULL)					\
  _(MATCH_VALUE)				\
  _(MATCH_PARTIAL)				\
  _(MATCH_AMBIGUOUS)				\
  _(MATCH_EVAL_FAIL)

     typedef enum
     {
#define _(a) VLIB_PARSE_##a,
       foreach_parse_match_type
#undef _
     } vlib_parse_match_t;

     struct vlib_parse_type;
     struct vlib_parse_main;

     typedef
     vlib_parse_match_t (vlib_parse_match_function_t)
  (struct vlib_parse_main *,
   struct vlib_parse_type *, vlib_lex_token_t *, vlib_parse_value_t *);
     typedef void (vlib_parse_value_cleanup_function_t) (vlib_parse_value_t
							 *);

     typedef struct vlib_parse_type
     {
       /* Type name. */
       char *
	 name;

       vlib_parse_match_function_t *
	 match_function;

       vlib_parse_value_cleanup_function_t *
	 value_cleanup_function;

       format_function_t *
	 format_value;

       u32
	 rule_index;
     } vlib_parse_type_t;

     typedef struct
     {
       char *
	 initializer;
       void *
	 eof_match;
       int
	 rule_length;
     } parse_registration_t;

     typedef struct vlib_parse_main
     {
       /* (type, origin, help, value) tuples */
       vlib_parse_item_t *
	 parse_items;
       mhash_t
	 parse_item_hash;

       /* (item, peer, deeper) tuples */
       vlib_parse_graph_t *
	 parse_graph;
       u32
	 root_index;

       u8 *
	 register_input;

       /* parser types */
       vlib_parse_type_t *
	 parse_types;
       uword *
	 parse_type_by_name_hash;

       /* Vector of MATCH_VALUEs */
       vlib_parse_value_t *
	 parse_value;
       u32 *
	 match_items;

       /* Parse registrations */
       parse_registration_t **
	 parse_registrations;

       /* Token vector */
       vlib_lex_token_t *
	 tokens;
       u32
	 current_token_index;

       vlib_lex_main_t *
	 lex_main;
       vlib_main_t *
	 vlib_main;
     } vlib_parse_main_t;

     vlib_parse_main_t
       vlib_parse_main;

     typedef
     vlib_parse_match_t (vlib_parse_eval_function_t)
  (vlib_parse_main_t *, vlib_parse_item_t *, vlib_parse_value_t *);

vlib_parse_match_t
vlib_parse_eval (u8 * input);

     format_function_t format_vlib_parse_value;

/* FIXME need these to be global? */
     vlib_parse_match_function_t rule_match, eof_match, word_match,
       number_match;

#define _PARSE_REGISTRATION_DATA(x) \
VLIB_ELF_SECTION_DATA(x##_registration,parse_registration_t,parse_registrations)

#define PARSE_INIT(x, s, e)                     \
static _PARSE_REGISTRATION_DATA(x) = {          \
    .initializer = s,                           \
    .eof_match = e,                             \
};

#define _PARSE_TYPE_REGISTRATION_DATA(x) \
VLIB_ELF_SECTION_DATA(x##_type_registration,vlib_parse_type_t, \
parse_type_registrations)

#define PARSE_TYPE_INIT(n, m, c, f)             \
static _PARSE_TYPE_REGISTRATION_DATA(n) = {     \
    .name = #n,                                 \
    .match_function = m,			\
    .value_cleanup_function = c,		\
    .format_value = f,				\
};

#endif /* included_vlib_parse_h */

/*
 * fd.io coding-style-patch-verification: ON
 *
 * Local Variables:
 * eval: (c-set-style "gnu")
 * End:
 */
span> assert_has_no_tag(self, rx): for p in rx: self.assertFalse(p.haslayer(Dot1Q)) def test_dvr(self): """ Distributed Virtual Router """ # # A packet destined to an IP address that is L2 bridged via # a non-tag interface # ip_non_tag_bridged = "10.10.10.10" ip_tag_bridged = "10.10.10.11" any_src_addr = "1.1.1.1" pkt_no_tag = (Ether(src=self.pg0.remote_mac, dst=self.loop0.local_mac) / IP(src=any_src_addr, dst=ip_non_tag_bridged) / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) pkt_tag = (Ether(src=self.pg0.remote_mac, dst=self.loop0.local_mac) / IP(src=any_src_addr, dst=ip_tag_bridged) / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) # # Two sub-interfaces so we can test VLAN tag push/pop # sub_if_on_pg2 = VppDot1QSubint(self, self.pg2, 92) sub_if_on_pg3 = VppDot1QSubint(self, self.pg3, 93) sub_if_on_pg2.admin_up() sub_if_on_pg3.admin_up() # # Put all the interfaces into a new bridge domain # self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg0.sw_if_index, bd_id=1) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg1.sw_if_index, bd_id=1) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg2.sw_if_index, bd_id=1) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg3.sw_if_index, bd_id=1) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.loop0.sw_if_index, bd_id=1, port_type=L2_PORT_TYPE.BVI) self.vapi.l2_interface_vlan_tag_rewrite( sw_if_index=sub_if_on_pg2.sw_if_index, vtr_op=L2_VTR_OP.L2_POP_1, push_dot1q=92) self.vapi.l2_interface_vlan_tag_rewrite( sw_if_index=sub_if_on_pg3.sw_if_index, vtr_op=L2_VTR_OP.L2_POP_1, push_dot1q=93) # # Add routes to bridge the traffic via a tagged an nontagged interface # route_no_tag = VppIpRoute( self, ip_non_tag_bridged, 32, [VppRoutePath("0.0.0.0", self.pg1.sw_if_index, type=FibPathType.FIB_PATH_TYPE_DVR)]) route_no_tag.add_vpp_config() # # Inject the packet that arrives and leaves on a non-tagged interface # Since it's 'bridged' expect that the MAC headed is unchanged. # rx = self.send_and_expect(self.pg0, pkt_no_tag * NUM_PKTS, self.pg1) self.assert_same_mac_addr(pkt_no_tag, rx) self.assert_has_no_tag(rx) # # Add routes to bridge the traffic via a tagged interface # route_with_tag = VppIpRoute( self, ip_tag_bridged, 32, [VppRoutePath("0.0.0.0", sub_if_on_pg3.sw_if_index, type=FibPathType.FIB_PATH_TYPE_DVR)]) route_with_tag.add_vpp_config() # # Inject the packet that arrives non-tag and leaves on a tagged # interface # rx = self.send_and_expect(self.pg0, pkt_tag * NUM_PKTS, self.pg3) self.assert_same_mac_addr(pkt_tag, rx) self.assert_has_vlan_tag(93, rx) # # Tag to tag # pkt_tag_to_tag = (Ether(src=self.pg2.remote_mac, dst=self.loop0.local_mac) / Dot1Q(vlan=92) / IP(src=any_src_addr, dst=ip_tag_bridged) / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) rx = self.send_and_expect(self.pg2, pkt_tag_to_tag * NUM_PKTS, self.pg3) self.assert_same_mac_addr(pkt_tag_to_tag, rx) self.assert_has_vlan_tag(93, rx) # # Tag to non-Tag # pkt_tag_to_non_tag = (Ether(src=self.pg2.remote_mac, dst=self.loop0.local_mac) / Dot1Q(vlan=92) / IP(src=any_src_addr, dst=ip_non_tag_bridged) / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) rx = self.send_and_expect(self.pg2, pkt_tag_to_non_tag * NUM_PKTS, self.pg1) self.assert_same_mac_addr(pkt_tag_to_tag, rx) self.assert_has_no_tag(rx) # # Add an output L3 ACL that will block the traffic # rule_1 = ({'is_permit': 0, 'is_ipv6': 0, 'proto': 17, 'srcport_or_icmptype_first': 1234, 'srcport_or_icmptype_last': 1234, 'src_ip_prefix_len': 32, 'src_ip_addr': inet_pton(AF_INET, any_src_addr), 'dstport_or_icmpcode_first': 1234, 'dstport_or_icmpcode_last': 1234, 'dst_ip_prefix_len': 32, 'dst_ip_addr': inet_pton(AF_INET, ip_non_tag_bridged)}) acl = self.vapi.acl_add_replace(acl_index=4294967295, r=[rule_1]) # # Apply the ACL on the output interface # self.vapi.acl_interface_set_acl_list(self.pg1.sw_if_index, 0, [acl.acl_index]) # # Send packet's that should match the ACL and be dropped # rx = self.send_and_assert_no_replies(self.pg2, pkt_tag_to_non_tag * NUM_PKTS) # # cleanup # self.vapi.acl_interface_set_acl_list(self.pg1.sw_if_index, 0, []) self.vapi.acl_del(acl.acl_index) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg0.sw_if_index, bd_id=1, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg1.sw_if_index, bd_id=1, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg2.sw_if_index, bd_id=1, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg3.sw_if_index, bd_id=1, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.loop0.sw_if_index, bd_id=1, port_type=L2_PORT_TYPE.BVI, enable=0) # # Do a FIB dump to make sure the paths are correctly reported as DVR # routes = self.vapi.ip_route_dump(0) for r in routes: if (ip_tag_bridged == str(r.route.prefix.network_address)): self.assertEqual(r.route.paths[0].sw_if_index, sub_if_on_pg3.sw_if_index) self.assertEqual(r.route.paths[0].type, FibPathType.FIB_PATH_TYPE_DVR) if (ip_non_tag_bridged == str(r.route.prefix.network_address)): self.assertEqual(r.route.paths[0].sw_if_index, self.pg1.sw_if_index) self.assertEqual(r.route.paths[0].type, FibPathType.FIB_PATH_TYPE_DVR) # # the explicit route delete is require so it happens before # the sbu-interface delete. subinterface delete is required # because that object type does not use the object registry # route_no_tag.remove_vpp_config() route_with_tag.remove_vpp_config() sub_if_on_pg3.remove_vpp_config() sub_if_on_pg2.remove_vpp_config() def test_l2_emulation(self): """ L2 Emulation """ # # non distinct L3 packets, in the tag/non-tag combos # pkt_no_tag = (Ether(src=self.pg0.remote_mac, dst=self.pg1.remote_mac) / IP(src="2.2.2.2", dst="1.1.1.1") / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) pkt_to_tag = (Ether(src=self.pg0.remote_mac, dst=self.pg2.remote_mac) / IP(src="2.2.2.2", dst="1.1.1.2") / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) pkt_from_tag = (Ether(src=self.pg3.remote_mac, dst=self.pg2.remote_mac) / Dot1Q(vlan=93) / IP(src="2.2.2.2", dst="1.1.1.1") / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) pkt_from_to_tag = (Ether(src=self.pg3.remote_mac, dst=self.pg2.remote_mac) / Dot1Q(vlan=93) / IP(src="2.2.2.2", dst="1.1.1.2") / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) pkt_bcast = (Ether(src=self.pg0.remote_mac, dst="ff:ff:ff:ff:ff:ff") / IP(src="2.2.2.2", dst="255.255.255.255") / UDP(sport=1234, dport=1234) / Raw(b'\xa5' * 100)) # # A couple of sub-interfaces for tags # sub_if_on_pg2 = VppDot1QSubint(self, self.pg2, 92) sub_if_on_pg3 = VppDot1QSubint(self, self.pg3, 93) sub_if_on_pg2.admin_up() sub_if_on_pg3.admin_up() # # Put all the interfaces into a new bridge domain # self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg0.sw_if_index, bd_id=1) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg1.sw_if_index, bd_id=1) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg2.sw_if_index, bd_id=1) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg3.sw_if_index, bd_id=1) self.vapi.l2_interface_vlan_tag_rewrite( sw_if_index=sub_if_on_pg2.sw_if_index, vtr_op=L2_VTR_OP.L2_POP_1, push_dot1q=92) self.vapi.l2_interface_vlan_tag_rewrite( sw_if_index=sub_if_on_pg3.sw_if_index, vtr_op=L2_VTR_OP.L2_POP_1, push_dot1q=93) # # Disable UU flooding, learning and ARP termination. makes this test # easier as unicast packets are dropped if not extracted. # self.vapi.bridge_flags(bd_id=1, is_set=0, flags=(1 << 0) | (1 << 3) | (1 << 4)) # # Add a DVR route to steer traffic at L3 # route_1 = VppIpRoute( self, "1.1.1.1", 32, [VppRoutePath("0.0.0.0", self.pg1.sw_if_index, type=FibPathType.FIB_PATH_TYPE_DVR)]) route_2 = VppIpRoute( self, "1.1.1.2", 32, [VppRoutePath("0.0.0.0", sub_if_on_pg2.sw_if_index, type=FibPathType.FIB_PATH_TYPE_DVR)]) route_1.add_vpp_config() route_2.add_vpp_config() # # packets are dropped because bridge does not flood unknown unicast # self.send_and_assert_no_replies(self.pg0, pkt_no_tag) # # Enable L3 extraction on pgs # self.vapi.l2_emulation(self.pg0.sw_if_index) self.vapi.l2_emulation(self.pg1.sw_if_index) self.vapi.l2_emulation(sub_if_on_pg2.sw_if_index) self.vapi.l2_emulation(sub_if_on_pg3.sw_if_index) # # now we expect the packet forward according to the DVR route # rx = self.send_and_expect(self.pg0, pkt_no_tag * NUM_PKTS, self.pg1) self.assert_same_mac_addr(pkt_no_tag, rx) self.assert_has_no_tag(rx) rx = self.send_and_expect(self.pg0, pkt_to_tag * NUM_PKTS, self.pg2) self.assert_same_mac_addr(pkt_to_tag, rx) self.assert_has_vlan_tag(92, rx) rx = self.send_and_expect(self.pg3, pkt_from_tag * NUM_PKTS, self.pg1) self.assert_same_mac_addr(pkt_from_tag, rx) self.assert_has_no_tag(rx) rx = self.send_and_expect(self.pg3, pkt_from_to_tag * NUM_PKTS, self.pg2) self.assert_same_mac_addr(pkt_from_tag, rx) self.assert_has_vlan_tag(92, rx) # # but broadcast packets are still flooded # self.send_and_expect(self.pg0, pkt_bcast * 33, self.pg2) # # cleanup # self.vapi.l2_emulation(self.pg0.sw_if_index, enable=0) self.vapi.l2_emulation(self.pg1.sw_if_index, enable=0) self.vapi.l2_emulation(sub_if_on_pg2.sw_if_index, enable=0) self.vapi.l2_emulation(sub_if_on_pg3.sw_if_index, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg0.sw_if_index, bd_id=1, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=self.pg1.sw_if_index, bd_id=1, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg2.sw_if_index, bd_id=1, enable=0) self.vapi.sw_interface_set_l2_bridge( rx_sw_if_index=sub_if_on_pg3.sw_if_index, bd_id=1, enable=0) route_1.remove_vpp_config() route_2.remove_vpp_config() sub_if_on_pg3.remove_vpp_config() sub_if_on_pg2.remove_vpp_config() if __name__ == '__main__': unittest.main(testRunner=VppTestRunner)