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Merge commit '4f2aa1319c1ff80939c656bba7d529d84d1af350' into mq-merge-step-2
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c1719316a8
138
doc/bird.sgml
138
doc/bird.sgml
@ -431,7 +431,7 @@ mixed together, or particular paths for specific flows could be defined. Another
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advantage is that MPLS forwarding by internal routers can be much simpler than
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advantage is that MPLS forwarding by internal routers can be much simpler than
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IP forwarding, as instead of the longest prefix match algorithm it uses simpler
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IP forwarding, as instead of the longest prefix match algorithm it uses simpler
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exact match for MPLS route selection. The disadvantage is additional complexity
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exact match for MPLS route selection. The disadvantage is additional complexity
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in signalling. For further details, see <rfc id="3031">.
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in signaling. For further details, see <rfc id="3031">.
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MPLS-aware routing protocols not only distribute IP routing information, but
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MPLS-aware routing protocols not only distribute IP routing information, but
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they also distribute labels. Therefore, they produce labeled routes - routes
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they also distribute labels. Therefore, they produce labeled routes - routes
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@ -1019,7 +1019,7 @@ inherited from templates can be updated by new definitions.
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<tag><label id="proto-export">export <m/filter/</tag>
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<tag><label id="proto-export">export <m/filter/</tag>
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This is similar to the <cf>import</cf> keyword, except that it works in
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This is similar to the <cf>import</cf> keyword, except that it works in
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the direction from the routing table to the protocol. Default: <cf/none/
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the direction from the routing table to the protocol. Default: <cf/none/
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(except for EBGP).
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(except for EBGP and L3VPN).
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<tag><label id="proto-import-keep-filtered">import keep filtered <m/switch/</tag>
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<tag><label id="proto-import-keep-filtered">import keep filtered <m/switch/</tag>
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Usually, if an import filter rejects a route, the route is forgotten.
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Usually, if an import filter rejects a route, the route is forgotten.
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@ -3917,7 +3917,7 @@ protocol kernel {
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<p><code>
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<p><code>
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protocol kernel { # Primary routing table
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protocol kernel { # Primary routing table
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learn; # Learn alien routes from the kernel
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learn; # Learn alien routes from the kernel
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persist; # Don't remove routes on bird shutdown
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persist; # Do not remove routes on bird shutdown
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scan time 10; # Scan kernel routing table every 10 seconds
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scan time 10; # Scan kernel routing table every 10 seconds
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ipv4 {
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ipv4 {
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import all;
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import all;
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@ -3935,6 +3935,138 @@ protocol kernel { # Secondary routing table
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</code>
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</code>
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<sect>L3VPN
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<label id="l3vpn">
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<sect1>Introduction
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<label id="l3vpn-intro">
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<p>The L3VPN protocol serves as a translator between IP routes and VPN
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routes. It is a component for BGP/MPLS IP VPNs (<rfc id="4364">) and implements
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policies defined there. In import direction (VPN -> IP), VPN routes matching
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import target specification are stripped of route distinguisher and MPLS labels
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and announced as IP routes, In export direction (IP -> VPN), IP routes are
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expanded with specific route distinguisher, export target communities and MPLS
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label and announced as labeled VPN routes. Unlike the Pipe protocol, the L3VPN
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protocol propagates just the best route for each network.
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<p>In BGP/MPLS IP VPNs, route distribution is controlled by Route Targets (RT).
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VRFs are associated with one or more RTs. Routes are also associated with one or
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more RTs, which are encoded as route target extended communities
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in <ref id="rta-bgp-ext-community" name="bgp_ext_community">. A route is then
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imported into each VRF that shares an associated Route Target. The L3VPN
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protocol implements this mechanism through mandatory <cf/import target/ and
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<cf/export target/ protocol options.
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<sect1>Configuration
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<label id="l3vpn-config">
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<p>L3VPN configuration consists of a few mandatory options and multiple channel
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definitions. For convenience, the default export filter in L3VPN channels is
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<cf/all/, as the primary way to control import and export of routes is through
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protocol options <cf/import target/ and <cf/export target/. If custom filters
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are used, note that the export filter of the input channel is applied before
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the route translation, while the import filter of the output channel is applied
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after that.
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<p>In contrast to the Pipe protocol, the L3VPN protocol can handle both IPv4 and
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IPv6 routes in one instance, also both IP side and VPN side are represented as
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separate channels, although that may change in the future. The L3VPN is always
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MPLS-aware protocol, therefore a MPLS channel is mandatory. Altogether, L3VPN
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could have up to 5 channels: <cf/ipv4/, <cf/ipv6/, <cf/vpn4/, <cf/vpn6/, and
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<cf/mpls/.
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<p><descrip>
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<tag><label id="l3vpn-route-distinguisher">route distinguisher <m/vpn-rd/</tag>
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<tag><label id="l3vpn-rd">rd <m/vpn-rd/</tag>
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The route distinguisher that is attached to routes in the export
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direction. Mandatory.
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<tag><label id="l3vpn-import-target">import target <m/ec/|<m/ec-set/</tag>
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Route target extended communities specifying which routes should be
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imported. Either one community or a set. A route is imported if there is
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non-empty intersection between extended communities of the route and the
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import target of the L3VPN protocol. Mandatory.
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<tag><label id="l3vpn-export-target">export target <m/ec/|<m/ec-set/</tag>
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Route target extended communities that are attached to the route in the
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export direction. Either one community or a set. Other route target
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extended communities are removed. Mandatory.
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<tag><label id="l3vpn-route-target">route target <m/ec/|<m/ec-set/</tag>
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A shorthand for both <cf/import target/ and <cf/export target/.
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</descrip>
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<sect1>Attributes
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<label id="l3vpn-attr">
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<p>The L3VPN protocol does not define any route attributes.
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<sect1>Example
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<label id="l3vpn-exam">
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<p>Here is an example of L3VPN setup with one VPN and BGP uplink. IP routes
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learned from a customer in the VPN are stored in <cf/vrf0vX/ tables, which are
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mapped to kernel VRF vrf0. Routes can also be exchanged through BGP with
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different sites hosting that VPN. Forwarding of VPN traffic through the network
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is handled by MPLS.
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<p>Omitted from the example are some routing protocol to exchange routes with
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the customer and some sort of MPLS-aware IGP to resolve next hops for BGP VPN
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routes.
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<code>
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# MPLS basics
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mpls domain mdom;
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mpls table mtab;
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protocol kernel krt_mpls {
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mpls { table mtab; export all; };
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}
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vpn4 table vpntab4;
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vpn6 table vpntab6;
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# Exchange VPN routes through BGP
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protocol bgp {
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vpn4 { table vpntab4; import all; export all; };
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vpn6 { table vpntab6; import all; export all; };
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mpls { label policy aggregate; };
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local 10.0.0.1 as 10;
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neighbor 10.0.0.2 as 10;
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}
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# VRF 0
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ipv4 table vrf0v4;
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ipv6 table vrf0v6;
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protocol kernel kernel0v4 {
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vrf "vrf0";
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ipv4 { table vrf0v4; export all; };
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kernel table 100;
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}
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protocol kernel kernel0v6 {
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vrf "vrf0";
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ipv6 { table vrf0v6; export all; };
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kernel table 100;
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}
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protocol l3vpn l3vpn0 {
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vrf "vrf0";
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ipv4 { table vrf0v4; };
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ipv6 { table vrf0v6; };
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vpn4 { table vpntab4; };
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vpn6 { table vpntab6; };
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mpls { label policy vrf; };
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rd 10:12;
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import target [(rt, 10, 32..40)];
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export target [(rt, 10, 30), (rt, 10, 31)];
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}
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</code>
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<sect>MRT
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<sect>MRT
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<label id="mrt">
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<label id="mrt">
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