Dell MX9116n EMC SmartFabric OS10 User Guide - Page 835

BGP EVPN for VXLAN, BGP EVPN compared to static VXLAN, VXLAN BGP EVPN operation

Page 835 highlights

BGP EVPN for VXLAN Ethernet Virtual Private Network (EVPN) is a control plane for VXLAN that reduces flooding in the network and resolves scalability concerns. EVPN uses MP-BGP to exchange information between VTEPs. EVPN was introduced in RFC 7432 and is based on BGP MPLSbased VPNs. RFC 8365 describes VXLAN-based EVPN. The MP-BGP EVPN control plane provides protocol-based remote VTEP discovery, and MAC and ARP learning. This configuration reduces flooding related to L2 unknown unicast traffic. The distribution of host MAC and IP reachability information supports virtual machine (VM) mobility and scalable VXLAN overlay network designs. The BGP EVPN protocol groups MAC addresses and ARP/neighbor addresses under EVPN instances (EVIs) to exchange them between VTEPs. In OS10, each EVI is associated with a VXLAN VNI in 1:1 mapping. Benefits of a BGP EVPN-based VXLAN • Eliminates the flood-and-learn method of VTEP discovery by enabling control-plane learning of end-host L2 and L3 reachability information. • Minimizes network flooding of unknown unicast and broadcast traffic through EVPN-based MAC and IP route advertisements on local VTEPs. • Provides support for host mobility. BGP EVPN compared to static VXLAN OS10 supports two types of VXLAN NVO overlay networks: • Static VXLAN • BGP EVPN Configure and operate static VXLANs and BGP EVPNs for VXLAN in the same way: • Manually configure the overlay and underlay networks. • Manually configure each virtual network and VNI. • Manually configure access port membership in a virtual network. • Existing routing protocols provision and learn underlay reachability to VTEP peers. However, static VXLANs and BGP EVPNs for VXLAN differ as described: Table 49. Differences between Static VXLAN and VXLAN BGP EVPN Static VXLAN VXLAN BGP EVPN To start sending and receiving virtual-network traffic to and from a remote VTEP, manually configure the VTEP as a member of the virtual network. No manual configuration is required. Each remote VTEP is automatically learned as a member of a virtual network from the EVPN routes received from the remote VTEP. After a remote VTEP address is learned, VXLAN traffic is sent to, and received from, the VTEP. Data packets learn remote hosts after decapsulation of the VXLAN Remote host MAC addresses are learned in the control plane using header in the data plane. BGP EVPN Type 2 routes and MAC/IP advertisements. VXLAN BGP EVPN operation The EVPN address family allows VXLAN to carry EVPN routes in External Border Gateway Protocol (eBGP) and Internal Border Gateway Protocol (iBGP) sessions. In a data center network, use eBGP or iBGP for route exchange in both the IP underlay network and EVPN. The following sample BGP EVPN topology shows a leaf-spine data center network where eBGP exchanges IP routes in the IP underlay network, and exchanges EVPN routes in the VXLAN overlay network. All spine nodes are in one autonomous system-AS 65535. All leaf nodes are in another autonomous system-AS 65000. To advertise underlay IP routes, eBGP peer sessions establish between the leaf and spine nodes using an interface IP address. To advertise EVPN routes, eBGP peer sessions between the leaf and spine nodes use a Loopback IP address. VXLAN 835

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  • 1,285
  • 1,286
  • 1,287
  • 1,288
  • 1,289
  • 1,290
  • 1,291
  • 1,292
  • 1,293
  • 1,294
  • 1,295
  • 1,296
  • 1,297
  • 1,298
  • 1,299
  • 1,300
  • 1,301
  • 1,302
  • 1,303
  • 1,304
  • 1,305
  • 1,306
  • 1,307
  • 1,308
  • 1,309
  • 1,310
  • 1,311
  • 1,312
  • 1,313
  • 1,314
  • 1,315
  • 1,316
  • 1,317
  • 1,318
  • 1,319
  • 1,320
  • 1,321
  • 1,322
  • 1,323
  • 1,324
  • 1,325
  • 1,326
  • 1,327
  • 1,328
  • 1,329
  • 1,330
  • 1,331
  • 1,332
  • 1,333
  • 1,334
  • 1,335
  • 1,336
  • 1,337
  • 1,338
  • 1,339
  • 1,340

BGP EVPN for VXLAN
Ethernet Virtual Private Network (EVPN) is a control plane for VXLAN that reduces flooding in the network and resolves scalability
concerns. EVPN uses MP-BGP to exchange information between VTEPs. EVPN was introduced in RFC 7432 and is based on BGP MPLS-
based VPNs. RFC 8365 describes VXLAN-based EVPN.
The MP-BGP EVPN control plane provides protocol-based remote VTEP discovery, and MAC and ARP learning. This configuration
reduces flooding related to L2 unknown unicast traffic. The distribution of host MAC and IP reachability information supports virtual
machine (VM) mobility and scalable VXLAN overlay network designs.
The BGP EVPN protocol groups MAC addresses and ARP/neighbor addresses under EVPN instances (EVIs) to exchange them between
VTEPs. In OS10, each EVI is associated with a VXLAN VNI in 1:1 mapping.
Benefits of a BGP EVPN-based VXLAN
Eliminates the flood-and-learn method of VTEP discovery by enabling control-plane learning of end-host L2 and L3 reachability
information.
Minimizes network flooding of unknown unicast and broadcast traffic through EVPN-based MAC and IP route advertisements on local
VTEPs.
Provides support for host mobility.
BGP EVPN compared to static VXLAN
OS10 supports two types of VXLAN NVO overlay networks:
Static VXLAN
BGP EVPN
Configure and operate static VXLANs and BGP EVPNs for VXLAN in the same way:
Manually configure the overlay and underlay networks.
Manually configure each virtual network and VNI.
Manually configure access port membership in a virtual network.
Existing routing protocols provision and learn underlay reachability to VTEP peers.
However, static VXLANs and BGP EVPNs for VXLAN differ as described:
Table 49. Differences between Static VXLAN and VXLAN BGP EVPN
Static VXLAN
VXLAN BGP EVPN
To start sending and receiving virtual-network traffic to and from a
remote VTEP, manually configure the VTEP as a member of the
virtual network.
No manual configuration is required. Each remote VTEP is
automatically learned as a member of a virtual network from the
EVPN routes received from the remote VTEP. After a remote
VTEP address is learned, VXLAN traffic is sent to, and received
from, the VTEP.
Data packets learn remote hosts after decapsulation of the VXLAN
header in the data plane.
Remote host MAC addresses are learned in the control plane using
BGP EVPN Type 2 routes and MAC/IP advertisements.
VXLAN BGP EVPN operation
The EVPN address family allows VXLAN to carry EVPN routes in External Border Gateway Protocol (eBGP) and Internal Border Gateway
Protocol (iBGP) sessions. In a data center network, use eBGP or iBGP for route exchange in both the IP underlay network and EVPN.
The following sample BGP EVPN topology shows a leaf-spine data center network where eBGP exchanges IP routes in the IP underlay
network, and exchanges EVPN routes in the VXLAN overlay network. All spine nodes are in one autonomous system—AS 65535. All leaf
nodes are in another autonomous system—AS 65000.
To advertise underlay IP routes, eBGP peer sessions establish between the leaf and spine nodes using an interface IP address. To
advertise EVPN routes, eBGP peer sessions between the leaf and spine nodes use a Loopback IP address.
VXLAN
835