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Configuration Guide - VPN

CloudEngine 12800 and 12800E V200R005C10

This document describes the configurations of VPN, including GRE, BGP/MPLS IP VPN, BGP/MPLS IPv6 VPN, VLL, PWE3, and VPLS.
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VLL Fundamentals

VLL Fundamentals

Basic VLL Architecture

VLL transparently transmits Layer 2 data packets from CE devices over tunnels and provides P2P L2VPN service for users.

The basic VLL architecture consists of three components: attachment circuit (AC), virtual circuit (VC), and tunnel. Pseudo wire (PW) is also a common term used in the VLL service. Figure 4-2 shows the basic VLL architecture.

Figure 4-2 Basic VLL architecture
Table 4-1 Description of VLL components

Component

Full Name

Description

AC

Attachment circuit

A connection between a customer and an ISP, namely, a CE-PE link.

VC

Virtual circuit

A unidirectional logical connection between two PE devices.

PW

Pseudo wire

A bidirectional logical connection between two PE devices. A PW, also called a simulated circuit, consists of two unidirectional VCs in forward and reverse directions.

Tunnel

Tunnel

A logical channel that carries one or more PWs. A tunnel is a direct channel that transparently transmits data between the local and remote PE devices. It can be an LSP, an MPLS TE tunnel, or a GRE tunnel.

VLL Implementation

VLL implementation involves VLL establishment and VLL packet forwarding.

VLL Establishment

To establish a VLL network, you need to establish a PW and bind the AC with the PW.

  1. Establishing a PW: You can configure a static PW between two PE devices, or configure a signaling protocol to enable two PE devices to set up a PW by exchanging VC information. After a PW is established, it is used as a dedicated channel on the public network.
  2. Binding the AC to the PW: After a PW is established, bind the AC-side interfaces on the PE devices to the PW to associate the AC with the PW.

VLL Packet Forwarding

After a VLL network is established, packets transmitted on the network undergo encapsulation, transparent transmission, and decapsulation processes.

  1. Encapsulation

    Before a PE device sends a packet from an AC-side interface to a PW, it processes the packet based on the outer tag type and PW encapsulation mode.

    The outer tag of a packet may be a U-Tag or P-Tag.
    • A U-Tag is inserted into the packet by a customer device and is irrelevant to services of the service provider (SP).

    • A P-Tag is inserted into the packet by an SP device to distinguish traffic from different users. When a VLANIF interface is used as the AC-side interface, packets sent from the AC-side interface to a PW carry a P-Tag by default.

    Two PW encapsulation modes are available: Ethernet encapsulation (raw mode) and VLAN encapsulation (tagged mode).

    Table 4-2 describes how a PE device processes a packet sent from an AC-side interface to a PW.

    Table 4-2 Processing a packet sent from an AC-side interface to a PW

    Packet from an AC-side Interface to a PW

    PW Encapsulation Mode

    Packet Processing on the PE

    Packet with a P-Tag

    Ethernet

    Removes the P-Tag from the packet and adds two MPLS labels (an inner VC label and an outer tunnel label) before forwarding the packet.

    VLAN

    Retains the P-Tag and adds two MPLS labels (an inner VC label and an outer tunnel label) before forwarding the packet.

  2. Transparent transmission

    VLL uses an MPLS tunnel to transmit packets. Encapsulated packets are transparently transmitted to the remote PE device over the MPLS tunnel, with their inner VC labels unchanged.

  3. Decapsulation

    After the remote PE device receives a packet, it decapsulates the packet and forwards the packet to the AC-side interface based on the VC label carried in the packet.

    After the packet is decapsulated, the packet is transmitted through the PW to the AC. The remote PE device processes the packet based on the outer tag type and AC-side interface type. Table 4-3 describes how the PE device processes a packet sent from a PW to an AC-side interface.

    Table 4-3 Processing a packet sent from a PW to an AC-side interface

    Packet from a PW to an AC-side Interface

    VLAN Tag Processing on the PE

    Packet with a P-Tag

    VLANIF interface and VLAN Mapping interface: replaces the P-Tag in the packet.

    Packet without a P-Tag

    VLANIF interface and VLAN Mapping interface: adds a P-Tag to the packet.

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Updated: 2019-04-03

Document ID: EDOC1100075353

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