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WO2013139159A1 - Procédé de transmission de paquet dans un réseau et dispositif côté fournisseur - Google Patents

Procédé de transmission de paquet dans un réseau et dispositif côté fournisseur Download PDF

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Publication number
WO2013139159A1
WO2013139159A1 PCT/CN2012/087246 CN2012087246W WO2013139159A1 WO 2013139159 A1 WO2013139159 A1 WO 2013139159A1 CN 2012087246 W CN2012087246 W CN 2012087246W WO 2013139159 A1 WO2013139159 A1 WO 2013139159A1
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WIPO (PCT)
Prior art keywords
vpls
address
virtual
ethernet frame
label
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
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PCT/CN2012/087246
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English (en)
Chinese (zh)
Inventor
徐小虎
李振斌
倪辉
郝卫国
潘灏涛
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Huawei Technologies Co Ltd
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Huawei Technologies Co Ltd
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Publication of WO2013139159A1 publication Critical patent/WO2013139159A1/fr
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • H04L12/46Interconnection of networks
    • H04L12/4633Interconnection of networks using encapsulation techniques, e.g. tunneling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L45/00Routing or path finding of packets in data switching networks
    • H04L45/02Topology update or discovery
    • H04L45/04Interdomain routing, e.g. hierarchical routing

Definitions

  • the present invention relates to the field of network transmission, and in particular, to a method for forwarding a message in a network and a carrier edge device.
  • the virtual private LAN service (English full name is Virtual Private LAN Service, VPLS in English) is in the public Internet protocol (English full name is Internet Protocol, English abbreviated as IP) / Multi-Protocol Label Switching (English for Multi-Protocol Label Switching, English abbreviated as MPLS)
  • IP Internet Protocol
  • MPLS Multi-Protocol Label Switching
  • L2VPN Level-2 Virtual Private Network
  • VPLS utilizes Ethernet technology and MPLS technology to connect multiple Ethernet LANs (English called Local Area Network, English abbreviated as LAN) distributed in different regions through the carrier's IP/MPLS network, so that they are connected to each other.
  • LAN Local Area Network
  • IP/MPLS IP/MPLS network
  • VPLS is based on media access control (English name is called Media Access Control, MAC for short) or MAC address plus virtual local area network (English name is called Virtual Local Area Network, English abbreviated as VLAN) to make forwarding decisions, user edge devices ( The English full name is Custom Edge, which is abbreviated as CE.
  • CE Custom Edge
  • the device can communicate with other CEs belonging to the same VPLS instance.
  • the VPLS service provided by the service provider network is an Ethernet bridge (or Ethernet switch).
  • the existing implementation of VPLS requires the establishment of a fully interconnected pseudowire (in English, Pseudo Wire, PW in English) to simulate an Ethernet network.
  • the existing VPLS solution only supports the multicast service in the ingress replication mode. Therefore, in the network with a large number of VPLS instances, the existing VPLS technology has serious scalability problems, such as maintaining a large number of PW states and a large number of ingress replications.
  • VPLS implements VPLS reachability information advertisement by extending the ISIS type length value (abbreviated as TLV), that is, completes the automatic discovery and signaling function of the neighbor, avoiding the existence of the existing VPLS technology.
  • TLV ISIS type length value
  • the embodiments of the present invention provide a method for forwarding a message in a network and an operator edge device.
  • the technical solution of the embodiment of the present invention includes:
  • a method for forwarding a packet in a network includes: a first carrier edge device PE, a second PE, the first PE and the second PE belong to a redundancy group RG, and the RG corresponds to a virtual PE, the virtual PE has an IP address, and the virtual PE is a member PE of the first virtual private local area network VPLS instance, and the first VPLS instance is an intermediate system to an intermediate system ISIS VPLS instance, the first user
  • the edge device CE is a local CE of the virtual PE in the first VPLS instance, and the first CE is connected to the first PE and the second PE in an inter-frame link aggregation group MC-LAG manner.
  • the method includes:
  • the first PE receives an Ethernet frame from the first CE
  • the first PE encapsulates the encapsulated packet according to the type of the Ethernet frame, and encapsulates the encapsulated packet into the virtual PE in the first VPLS instance.
  • the remote PE sends, where the tunnel source address of the encapsulated packet is the IP address of the virtual PE.
  • a method for forwarding a message in a network includes: a third PE and a virtual PE, where a member PE of the RG corresponding to the virtual PE includes a first PE and a second PE, and the virtual PE has an IP address
  • the virtual PE and the third PE are both member PEs of the first VPLS instance, the first VPLS instance is an intermediate system to an intermediate system ISIS VPLS instance, and the first PE is the distance of the RG medium
  • the third PE is the shortest member PE, and the second CE is the local CE of the third PE in the first VPLS instance, and the method includes:
  • the third PE encapsulates the Ethernet frame by using the IP address of the virtual PE or the multicast IP address of the multicast tree corresponding to the first VPLS instance as the tunnel destination address, and sends the encapsulated packet to the
  • the virtual PE is configured to enable the member PE of the RG corresponding to the virtual PE to receive the encapsulated packet and decapsulate the packet, and forward the decapsulated packet to the first CE, where the first CE is The virtual CE is in the local CE of the first VPLS instance, and the first CE is connected to the first PE and the second PE in an inter-frame link aggregation group MC-LAG manner.
  • a first carrier edge device the first carrier edge device PE belongs to a redundancy group RG, the RG further includes a second PE, and the RG corresponds to one virtual PE, and the virtual PE has an IP address.
  • the virtual PE is a member PE of the first VPLS instance, the first VPLS instance is an intermediate system to an intermediate system ISIS VPLS instance, and the first user edge device CE is the locality of the virtual PE in the first VPLS instance.
  • the CE is connected to the first PE and the second PE in the MC-LAG mode of the inter-frame link aggregation group, where the first PE includes:
  • a first receiving module configured to receive an Ethernet frame from the first CE
  • a first sending module configured to encapsulate the encapsulated packet according to the type of the Ethernet frame, and encapsulate the encapsulated packet to the virtual PE in the first VPLS instance.
  • the remote PE sends the encapsulated source address of the encapsulated >3 ⁇ 4 text as the IP address of the virtual PE.
  • a third carrier edge device the third carrier edge device PE is used in the network, the network further includes a virtual PE, and the member PE of the RG corresponding to the virtual PE includes the first PE and the second a PE, the virtual PE has an IP address, and the first VPLS instance is an intermediate system to an intermediate system ISIS VPLS instance, and the virtual PE and the third PE are both member PEs of the first VPLS instance, where the A PE is a member of the RG that is the shortest member of the third PE.
  • the second CE is the local CE of the third PE in the first VPLS instance, and the third PE includes:
  • a second receiving module configured to receive an Ethernet frame sent from the second CE
  • a second sending module configured to use an IP address of the virtual PE or a multicast IP of a multicast tree corresponding to the first VPLS instance
  • the address is used as the tunnel destination address to encapsulate the Ethernet frame, and the encapsulated packet is sent to the virtual PE, so that the member PE of the RG corresponding to the virtual PE receives the encapsulated packet and performs solution.
  • the group MC-LAG mode is respectively associated with the first PE and the second PE Even.
  • the first PE encapsulates the packet by using the IP address of the virtual PE corresponding to the RG of the first PE and the second PE, thereby ensuring that the remote PE receives the packet.
  • the next hop PE corresponding to the MAC is always a virtual PE. Therefore, the next hop PE does not jump between the first PE and the second PE, ensuring the stability of the MAC table.
  • FIG. 1 is a flowchart of a method for forwarding a packet in a network according to an embodiment of the present invention
  • FIG. 2 is a structural diagram of an ISIS VPLS network according to an embodiment of the present invention
  • FIG. 3 is a flowchart of a method for managing an operator edge device in a network according to an embodiment of the present invention
  • FIG. 3 is a flowchart of a method for forwarding a packet in a network according to an embodiment of the present invention
  • FIG. 4 is a flowchart of a method for forwarding a packet in a network according to an embodiment of the present invention
  • FIG. 6 is a schematic structural diagram of a third carrier edge device according to an embodiment of the present invention.
  • FIG. 1 is a flowchart of a method for forwarding a message in a network according to an embodiment of the present invention.
  • the network includes: a first carrier edge device (hereinafter referred to as Provider Edge in English, abbreviated as PE), and a second PE, where the first PE and the second PE belong to a redundancy group (English name is Redundancy Group, English abbreviation is RG ), the RG corresponds to a virtual PE, that is,
  • the virtual PE includes the first PE and the second PE, and the virtual PE has an IP address, and the virtual PE is a first virtual private local area network service.
  • the member VP of the VPLS instance, the first VPLS instance is a VPLS instance of the Intermediate System-Intermediate System (ISIS), and the first user-side edge device (English name is Customer Edge, English abbreviation CE)
  • the first CE is in the local CE of the first VPLS instance, and the first CE is in the multi-Chasis Link Aggegation Group (MC-LAG).
  • MC-LAG multi-Chasis Link Aggegation Group
  • the first PE receives an Ethernet frame from the first CE.
  • the first PE encapsulates the encapsulated packet according to the type of the Ethernet frame, and encapsulates the encapsulated packet to the virtual PE in the first VPLS instance.
  • the remote source PE sends the encapsulated source address of the encapsulated packet as the IP address of the virtual PE.
  • the first PE encapsulates the packet by using the IP address of the virtual PE corresponding to the RG of the first PE and the second PE, so that the remote PE receives the packet.
  • the next hop PE corresponding to the MAC is always a virtual PE. Therefore, the next hop PE does not jump between the first PE and the second PE, ensuring stability of the MAC table.
  • FIG. 2 is a structural diagram of an ISIS VPLS network according to an embodiment of the present invention.
  • the VPLS network includes at least: a first PE, a second PE, a third PE, and a fourth PE, where the first PE, the second PE, the third PE, and the fourth PE are mainly responsible for accessing VPN services.
  • the mapping from the private network to the public network tunnel and the packet from the public network tunnel to the private network is performed.
  • the CE can be a switch or a host.
  • the first CE is in the MC-LAG mode and the first PE.
  • the second PE is connected.
  • the VPLS network shown in Figure 2 may also not include the third PE or the fourth PE.
  • FIG. 3a is a flowchart of a method for managing an operator edge device in a network according to an embodiment of the present invention.
  • This embodiment uses the ISIS VPLS network shown in FIG. 2 as an example for description. Referring to FIG. 3a, the embodiment specifically includes:
  • the first PE obtains a redundancy group (English name: Redundancy Group, abbreviated as RG).
  • the RG information includes an IP address of the virtual PE corresponding to the RG, and a VPLS identifier of the first VPLS instance corresponding to the RG.
  • the virtual PE corresponding to the RG includes a member PE in the RG.
  • the RG includes the first PE, and further includes a second PE, where the virtual PE is a member PE of the first VPLS instance, and the virtual PE includes the first PE and the second PE, and the network further includes
  • the first CE is a local CE of the virtual PE in the first VPLS instance.
  • the first CE is connected to the first PE and the second PE in an MC-LAG manner. Specifically, the first CE needs to be described that each member PE that belongs to the RG obtains the RG information.
  • the acquisition of a PE is described as an example.
  • the first PE obtains RG information, which can be used to guide subsequent packet forwarding.
  • the VPLS label allocated by the virtual PE to the VPLS instance is generated by any member PE of the virtual PE or configured by a technician.
  • the actual IP address of the first PE is 1.1.1.2
  • the actual IP address of the second PE is 1.1.1.3
  • the IP address of the virtual PE of the virtual PE can be used. It is set to 1 ⁇ 1.1, and the setting is performed by a technician, which is not specifically limited in the embodiment of the present invention.
  • the first PE advertises route reachability information corresponding to the IP address of the virtual PE by using a routing protocol.
  • the second PE also advertises the reachability information corresponding to the IP address of the virtual PE through a routing protocol.
  • the VPLS packet of the virtual IP address of the virtual PE (that is, 1.1.1.1) is sent from the remote PE of the virtual PE in the VPLS instance (in this embodiment, the remote PE is the third PE or the PE4).
  • the text will be forwarded to a member PE that is closer to the remote PE.
  • the VPLS identifier of the first VPLS instance is advertised.
  • the reachability information of the first VPLS instance includes the VPLS identifier of the first VPLS instance corresponding to the RG.
  • the virtual PE is the VPLS label assigned to the first VPLS instance and the IP address of the virtual PE.
  • the virtual router redundancy protocol is run between the first PE and the second PE through a communication interface between the two PEs (in English, the Virtual Router Redundancy Protocol is abbreviated as VRRP) or the cross-frame communication protocol.
  • VRRP Virtual Router Redundancy Protocol
  • ICCP Inter-Chassis Communication Protocol
  • the first PE is used as the primary PE
  • the second PE is used as the standby PE
  • the first PE determines that the first PE is the primary PE.
  • the first PE represents the reachability information of the first VPLS instance, and the reachability information of the first VPLS instance includes the VPLS identifier of the first VPLS instance and the virtual PE is the first VPLS instance.
  • the first PE and the second PE are required to allocate the same VPLS label to the same VPLS instance.
  • an RG including the first PE and the second PE and a virtual PE corresponding to the RG are formed in the first VPLS instance, and the VPLS instance and the virtual device are sent to other devices in the network.
  • the information of the PE so that the first PE encapsulates the packet by using the IP address of the virtual PE corresponding to the RG of the first PE and the second PE, so that the remote PE receives the packet and performs the packet.
  • the next hop PE corresponding to the MAC is always a virtual PE. Therefore, the next hop PE does not hop between the first PE and the second PE, ensuring the stability of the MAC table. Therefore steps 301-303 can be used to help ensure the stability of the MAC table.
  • FIG. 3b is a flowchart of a method for forwarding a message in a network according to an embodiment of the present invention, where the method is applied to a network as shown in FIG. 2.
  • This embodiment may or may not be based on the results obtained by performing steps 301-303 as in Figure 3a.
  • the first PE in the RG corresponding to the virtual PE receives the Ethernet frame sent by the first CE through the aggregation link as an example.
  • the PE of any member of the RG receives the Ethernet sent by the first CE through the aggregation link.
  • the processing method after the frame is the same as the processing method of the first PE. Referring to Figure 3b, this embodiment includes the following.
  • the first PE receives an Ethernet frame from the first CE (English name is an Ethernet frame); the Ethernet frame may be a known destination unicast Ethernet frame, an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet Any one or more of the frames.
  • the first PE encapsulates the encapsulated packet according to the type of the Ethernet frame, and encapsulates the encapsulated packet to the virtual PE in the first VPLS instance.
  • the remote source PE sends the encapsulated source address of the encapsulated packet as the IP address of the virtual PE. Processing method 305-1
  • the first PE uses the IP address of the virtual PE as the tunnel source address and the IP address of the destination remote PE as the tunnel destination address.
  • the packet is encapsulated, and the encapsulated packet is sent to the destination remote PE.
  • the destination remote PE is the next hop PE corresponding to the destination MAC address of the Ethernet frame in the MAC forwarding table of the first VPLS instance. ;
  • the encapsulation is a VPLS data encapsulation
  • the encapsulated packet carries the VPLS label allocated by the destination remote PE to the first VPLS instance, and the label type is a downstream allocation label, so that the destination remote PE that receives the packet can Indicates which VPLS instance the packet encapsulated in the tunnel belongs to.
  • Ethernet frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame
  • the Ethernet frame is copied, and the number is obtained with the virtual PE.
  • a plurality of the Ethernet frames of the same number of the remote PEs in the first VPLS instance are encapsulated to obtain a plurality of encapsulated packets, where the tunnel source address of each encapsulated text is obtained.
  • the IP addresses of the virtual PEs, and the tunnel destination address of each of the encapsulated packets is the IP address of a PE in the remote PE, and the tunnel destination addresses of the plurality of encapsulated packets are not mutually And sending the plurality of encapsulated packets according to the tunnel destination address of the plurality of encapsulated packets;
  • the first VPLS instance uses the ingress replication mode. Therefore, the received Ethernet frame needs to be replicated to obtain the same number of remote Ethernets as the virtual PE in the first VPLS instance. Frames are encapsulated separately and sent to each remote PE.
  • each encapsulated packet carries a VPLS label allocated by the corresponding remote PE to the first VPLS instance, and the label type is a downstream allocation label, so that the remote PE that receives the packet can identify the tunnel. Which VPLS instance the encapsulated packet belongs to.
  • the tunnel source address of the received encapsulated packet is the IP address of the virtual PE, and the packet is forwarded by the PE of the RG corresponding to the virtual PE.
  • the virtual PE is used as the next hop PE of the MAC address, that is, the stability of the MAC forwarding table is guaranteed.
  • the Ethernet frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame
  • the first PE uses the IP address of the virtual PE as a tunnel.
  • the source address and the multicast IP address of the multicast tree corresponding to the first VPLS instance are encapsulated as the tunnel destination address, and the Ethernet frame is encapsulated and sent to the PE other than the first PE added to the multicast tree.
  • Encapsulated message After receiving the encapsulated packet, the second PE discards the encapsulated packet.
  • the non-aggregated multicast tree mode has a multicast tree corresponding to a VPLS instance, and the VPLS instance and the multicast tree are corresponding relationships.
  • the VPLS label does not need to be carried.
  • the PE that receives the encapsulated packet can know which VPLS instance the file belongs to by using the destination multicast IP address.
  • the first PE sends the Ethernet frame to the second PE, so that the second PE uses the IP address of the virtual PE as the tunnel source address and the multicast IP address of the multicast tree corresponding to the first VPLS instance as the tunnel destination address. Encapsulating the Ethernet frame, and transmitting, by the multicast tree corresponding to the first VPLS instance, a packet encapsulated by the second PE to a PE other than the second PE that is added to the multicast tree.
  • first PE and the second PE are member PEs of the RG corresponding to the virtual PE, and the Ethernet frame interaction between the first PE and the second PE may be through the communication interface between the first PE and the second PE. get on.
  • the Ethernet frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame
  • the IP address of the virtual PE is used as the tunnel source address and used.
  • the multicast IP address of the multicast tree corresponding to the first VPLS instance is used as the tunnel destination address to encapsulate the Ethernet frame, and the encapsulated packet carries the first VPLS label, where the first VPLS label is the virtual PE.
  • a VPLS label allocated by a VPLS instance where the label type of the first VPLS label is an upstream label, and the encapsulated packet is sent to a PE other than the first PE that is added to the multicast tree.
  • VPLS instances In the aggregation multicast tree mode, multiple VPLS instances share a multicast tree.
  • the VPLS instance and the multicast tree have a many-to-one relationship.
  • the VPLS instance In the aggregated multicast tree mode, the VPLS instance is in a multi-to-one relationship with the multicast tree, so that the first VPLS label allocated by the virtual PE for the first VPLS instance is carried in the encapsulated packet, so that The PE that receives the encapsulated packet can know which VPLS instance the packet belongs to.
  • the first VPLS label may not be carried.
  • the first PE sends the Ethernet frame to the second PE, so that the second PE uses the IP address of the virtual PE as the tunnel source address and the group of the multicast tree corresponding to the first VPLS instance.
  • the broadcast IP address is encapsulated as the tunnel destination address, and the encapsulated packet is encapsulated.
  • the first VPLS label carries the first VPLS label, and the first VPLS label is a VPLS label that is allocated to the first VPLS instance, and the label type of the first VPLS label is an upstream allocation label, and the group corresponding to the first VPLS instance is configured.
  • the broadcast tree sends the packet encapsulated by the second PE to the PEs other than the second PE that are added to the multicast tree.
  • the first PE and the second PE are member PEs of the RG corresponding to the virtual PE, and the Ethernet frame interaction between the first PE and the second PE may be performed through a communication interface between the first PE and the second PE.
  • the first PE encapsulates the packet by using the IP address of the virtual PE corresponding to the RG of the first PE and the second PE, so that the remote PE receives the packet.
  • the next hop PE corresponding to the MAC is always a virtual PE. Therefore, the next hop PE does not jump between the first PE and the second PE, ensuring stability of the MAC table.
  • FIG. 4 is a flowchart of a method for forwarding a message in a network according to an embodiment of the present invention.
  • the network includes: a third PE and a virtual PE, where the member PE of the RG corresponding to the virtual PE includes at least a first PE and a second PE, that is, the virtual PE includes the first PE and the second The PE, the virtual PE has an IP address, and the virtual PE and the third PE are both member PEs of the first VPLS instance, and the first PE is the member PE of the RG that is the shortest route from the third PE.
  • the second CE is a local CE of the third PE in the first VPLS instance, and the first VPLS instance is an intermediate system to an intermediate system ISIS VPLS instance.
  • the third PE that is the remote PE of the virtual PE receives the packet as an example. Referring to FIG. 4, the embodiment includes the following content:
  • the third PE receives an Ethernet frame sent from the second CE.
  • the embodiment further includes: the third PE receives the route reachability information corresponding to the IP address of the virtual PE that is advertised by the one or more member PEs of the virtual PE by using the routing protocol.
  • the third PE receives the reachability information of the VPLS instance corresponding to the RG that is advertised by the first PE that is the primary PE, and the reachability information of the VPLS instance includes at least the VPLS of the VPLS instance corresponding to the RG.
  • the third PE encapsulates the Ethernet frame by using the IP address of the virtual PE or the multicast IP address of the multicast tree corresponding to the first VPLS instance as the tunnel destination address, and sends the encapsulated packet.
  • Giving the virtual PE, the member PE of the RG corresponding to the virtual PE receiving the encapsulated packet, decapsulating the packet, and forwarding the decapsulated packet to the first CE, the first CE
  • the local CE of the virtual PE is in the first VPLS instance, and the first CE is connected to the first PE and the second PE in an MC-LAG manner.
  • the first PE Routing the shortest member PE for the third PE from the RG. Processing method 402-1
  • the third PE uses the IP address of the virtual PE as the tunnel destination address and The IP address of the third PE is used as the tunnel source address to encapsulate the Ethernet frame, and the encapsulated > PDU carries the first VPLS label, and the first VPLS label is the VPLS label allocated by the virtual PE to the first VPLS instance.
  • the label type of the first VPLS label is a downstream label, and the encapsulated packet is sent to the first PE, so that the first PE receives the encapsulated packet and decapsulates the packet, and decapsulates the packet.
  • the packet is forwarded to the first CE, and the first CE is the local CE of the virtual PE in the first VPLS instance.
  • the encapsulated packet is received by the shortest member PE of the virtual PE or RG from the third PE.
  • only the first PE is the member PE of the RG corresponding to the virtual PE and the shortest route from the third PE.
  • the third PE copies the Ethernet frame to obtain the quantity and And the plurality of Ethernet frames in the first VPLS instance are the same number of the Ethernet frames; and the plurality of Ethernet frames are respectively encapsulated to obtain a plurality of encapsulated packets, where each of the encapsulated packets
  • the source address of the tunnel is the IP address of the third PE
  • the tunnel destination address of each encapsulated packet is the IP address of a PE in the remote PE of the third PE.
  • the tunnel destination address of the subsequent packet is different from each other; the encapsulated packet is sent to the corresponding remote PE, so that the first PE receives the encapsulated packet whose destination address is the IP address of the virtual PE and performs the encapsulation.
  • Decapsulating, and forwarding the decapsulated packet to the first CE where the encapsulated packet whose destination address is the IP address of the virtual PE carries the first VPLS label, where the first VPLS label is the virtual PE is the first V
  • the label type of the first VPLS label is the downstream allocation label.
  • the encapsulated packet is received by the shortest member PE of the virtual PE or RG from the third PE.
  • only the first PE is the RG in the virtual PE corresponding to the third PE route.
  • the short member PE is described as an example.
  • the first PE When the first PE is the primary PE, the second PE is the standby PE, the first PE is added to the multicast tree corresponding to the first VPLS, and the Ethernet frame is an unknown destination unicast Ethernet frame, multicast If the first VPLS instance is in the non-aggregated multicast tree mode, the third PE uses the multicast IP address of the multicast tree corresponding to the first VPLS instance as the tunnel destination address and uses the first The IP address of the third PE is used as the tunnel source address to encapsulate the Ethernet frame, and the encapsulated packet is forwarded by the multicast tree corresponding to the first VPLS instance, so that the first PE receives the encapsulated packet and The decapsulation is performed, and the decapsulated packet is forwarded to the first CE.
  • the first PE When the first PE is the primary PE, the second PE is the standby PE, the first PE is added to the multicast tree corresponding to the first VPLS, and the Ethernet frame is an unknown destination unicast Ethernet frame, multicast
  • the third PE uses the multicast IP address of the multicast tree corresponding to the first VPLS instance as the tunnel destination address and uses the first The IP address of the third PE is used as the tunnel source address to encapsulate the Ethernet frame.
  • the encapsulated packet carries the third VPLS label, and the third VPLS label is the VPLS label allocated by the third PE to the first VPLS instance.
  • the label type of the VPLS label is an upstream label, and the encapsulated packet is forwarded through the multicast tree, so that the first PE receives the encapsulated packet and decapsulates the packet, and decapsulates the packet. Forwarded to the first CE.
  • the VPLS instance is in a many-to-one relationship with the multicast tree, and the encapsulated packet carries the third VPLS label, and the third VPLS label is the third PE is the first VPLS.
  • the VPLS label is assigned by the instance.
  • the label type of the third VPLS label is an upstream label. The PE that receives the encapsulated packet knows which VPLS instance the packet comes from.
  • the second PE may also join the first VPLS.
  • the multicast tree corresponding to the instance when the first PE and the second PE are added to the multicast tree corresponding to the first VPLS, in order to prevent the first CE from receiving the repeated packets forwarded from the second PE, After receiving the encapsulated packet from the multicast tree corresponding to the first VPLS, the second PE discards the encapsulated packet.
  • the second PE is switched to the primary PE, and the second PE receives the encapsulated report by using the multicast tree corresponding to the first VPLS.
  • FIG. 5 is a schematic structural diagram of a first carrier edge device according to an embodiment of the present invention.
  • the first carrier edge device (English Provider Edge, abbreviated as PE) belongs to a redundancy group (English name is Redundancy Group, abbreviated as RG), and the RG further includes a second PE, and the RG corresponds to one Virtual PE, that is, the virtual PE includes the first PE and the second PE, the virtual PE has an IP address, and the virtual PE is a first virtual private local area network service (English name is Virtual Private)
  • the local area network service (abbreviated as VPLS) is the member PE of the instance.
  • the first VPLS instance is the VPLS instance of the Intermediate System-Intermediate System (English).
  • the first user edge device (English full name is Custom) Edge, abbreviated as CE, is the local CE of the virtual PE in the first VPLS instance.
  • the first PE includes:
  • the first receiving module 501 is configured to receive an Ethernet frame from the first CE.
  • the first sending module 502 is configured to encapsulate the encapsulated packet according to the type of the Ethernet frame, and encapsulate the encapsulated packet to the virtual PE in the first VPLS.
  • the remote PE is sent by the instance, where the tunnel source address of the encapsulated text is the IP address of the virtual PE.
  • the function of the first receiving module 501 is implemented by a first physical receiving port
  • the function of the first sending module 502 is implemented by a first physical circuit
  • the first physical circuit includes a first processor and a first physical sending port
  • the first processor is configured to perform the encapsulating process in the first sending module 502
  • the first physical sending port is configured to perform the sending in the first sending module 502 deal with.
  • the first sending module 502 includes one or more of the following units: a first sending unit, configured to use the virtual PE when the Ethernet frame is a known destination unicast Ethernet frame
  • the IP address is used as the tunnel source address and the IP address of the destination remote PE is used as the tunnel destination address to encapsulate the Ethernet frame, and the encapsulated packet is sent to the destination remote PE, where the destination is far
  • the end PE is the next hop PE corresponding to the destination MAC address of the Ethernet frame in the MAC forwarding table of the first VPLS instance.
  • the first sending unit is configured to execute the content of the “processing mode 305-1”.
  • a second sending unit configured to: if the Ethernet frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame, if the first VPLS instance uses an ingress copy mode, perform the Copying, obtaining a plurality of the Ethernet frames having the same number of remote PEs as the virtual PE in the first VPLS instance; and encapsulating the multiple Ethernet frames to obtain a plurality of encapsulated packets
  • the tunnel source address of each encapsulated packet is an IP address of the virtual PE, and the tunnel destination address of each encapsulated packet is an IP of a PE in the remote PE.
  • the address, the tunnel destination address of the plurality of encapsulated packets is different from each other; and the plurality of encapsulated packets are sent according to the tunnel destination address of the plurality of encapsulated packets.
  • the second sending unit is configured to execute the content of the “processing mode 305-2”.
  • a third sending unit configured to: when the Ethernet frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame, if the first VPLS instance uses a non-aggregated multicast tree mode, use the The IP address of the virtual PE is used as the tunnel source address and the multicast IP address of the multicast tree corresponding to the first VPLS instance is used as the tunnel destination address to encapsulate the Ethernet frame and join the multicast tree.
  • the PE other than the first PE sends the encapsulated text.
  • the third sending unit is configured to execute the content of the “processing mode 305-3”.
  • a fourth sending unit configured to: when the Ethernet frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame, if the first VPLS instance uses an aggregate multicast tree mode, use the virtual The IP address of the PE is used as the tunnel source address and the multicast IP address of the multicast tree corresponding to the first VPLS instance is used as the tunnel destination address to encapsulate the packet, and the encapsulated packet carries the first packet.
  • a VPLS label the first VPLS label is a VPLS label allocated by the virtual PE to the first VPLS instance, and the label type of the first VPLS label is an upstream allocation label, and is added to the multicast tree.
  • the PE other than the first PE sends the encapsulated packet.
  • the fourth sending unit is configured to execute the content of the “processing mode 305-4”.
  • each of the first sending unit, the second sending unit, the third sending unit, and the fourth sending unit are all implemented by the first processor and the first physical sending port.
  • the third sending unit is further configured to send the Ethernet frame to the second PE, so that the second PE uses an IP address of the virtual PE as a tunnel source address, and uses the Encapsulating the Ethernet frame with the multicast IP address of the multicast tree corresponding to the VPLS instance as the tunnel destination address, and adding the multicast tree corresponding to the first VPLS instance to the multicast tree
  • the PE other than the second PE sends the packet encapsulated by the second PE.
  • the fourth sending unit is further configured to send the Ethernet frame to the second PE, so that the second PE uses an IP address of the virtual PE as the tunnel source address and uses The multicast IP address of the multicast tree corresponding to the first VPLS instance encapsulates the Ethernet frame as a tunnel destination address, and the packet encapsulated by the second PE carries a first VPLS label, where the first VPLS The label is a VPLS label that is allocated by the virtual PE to the first VPLS instance, and the label type of the first VPLS label is an upstream allocation label, and is added to the foregoing by a multicast tree corresponding to the first VPLS instance.
  • a PE other than the second PE in the multicast tree sends the packet encapsulated by the second PE.
  • the first carrier edge device further includes:
  • the first obtaining module 503 is configured to obtain RG information, where the RG information includes an IP address of the virtual PE corresponding to the RG, a VPLS identifier of the first VPLS instance corresponding to the RG, and the virtual PE is The IP address of the VPLS label assigned by the first VPLS instance and/or other member PEs belonging to the RG;
  • a publishing module 504 configured to advertise routing reachability information corresponding to an IP address of the virtual PE by using a routing protocol
  • the issuing module 504 is further configured to: after determining that the operator edge device is the primary PE, advertise the reachability information of the first VPLS instance, where the reachability information of the first VPLS instance includes the The VPLS identifier of the VPLS instance corresponding to the RG and the virtual PE are the VPLS label allocated by the VPLS instance and the IP address of the virtual PE.
  • the function of the first obtaining module 503 is implemented by a second physical circuit, and the second physical circuit may include a second physical receiving port to receive the RG information.
  • the second physical receiving port may be the same port as the first physical receiving port, or may be a different port.
  • the second physical circuit may further include a second processor to identify the RG information.
  • the second processor may be the same processor as the first processor, or may be a different processor.
  • the first PE further includes:
  • the active/standby negotiation module 505 is configured to determine an active PE and a standby PE with the second PE.
  • the function of the active/standby negotiation module 505 is implemented by one processor.
  • the first PE encapsulates the IP address of the virtual PE corresponding to the RG of the first PE and the second PE, thereby ensuring that the remote PE receives the packet
  • the next hop PE corresponding to the MAC is always a virtual PE. Therefore, the next hop PE does not jump between the first PE and the second PE, ensuring the stability of the MAC table.
  • a first carrier edge device English full name
  • Provider Edge belongs to a redundancy group (English name is Redundancy Group, abbreviated as RG), and the RG further includes a second PE, where the RG corresponds to a virtual PE, that is, the virtual PE
  • VPLS virtual private local area network service
  • the member PE, the first VPLS instance is a VPLS instance of the Intermediate System-Intermediate System (ISIS), and the first user edge device (referred to as Custom Edge in English, CE) is the virtual PE.
  • ISIS Intermediate System-Intermediate System
  • CE Custom Edge in English
  • the first PE includes the following content.
  • An acquiring module configured to obtain RG information, where the RG information includes an IP address of the virtual PE corresponding to the RG, a VPLS identifier of the first VPLS instance corresponding to the RG, and the virtual PE is the The VPLS label assigned by a VPLS instance and/or the IP address of other member PEs belonging to the RG.
  • the obtaining module is configured to perform step 301 shown in Figure 3a.
  • a publishing module configured to advertise the route reachability information corresponding to the IP address of the virtual PE by using a routing protocol.
  • the publishing module is configured to perform step 302 shown in Figure 3a.
  • the issuance module is further configured to: after determining that the operator edge device is the primary PE, advertise the reachability information of the first VPLS instance, where the reachability information of the first VPLS instance includes the RG corresponding The VPLS identifier of the VPLS instance and the VPLS label assigned by the virtual PE to the VPLS instance and the IP address of the virtual PE.
  • the publishing module is further configured to perform step 303 shown in Figure 3a.
  • the first PE is configured to form an RG including the first PE and the second PE and a virtual PE corresponding to the RG in the first VPLS instance, and send the VPLS instance and the virtual PE to other devices in the network.
  • the information is such that the first PE uses the IP address of the virtual PE corresponding to the RG of the first PE and the second PE to encapsulate the packet, thereby ensuring that the remote PE receives the packet and performs the packet.
  • the next hop PE corresponding to the MAC is always a virtual PE, so that the next hop PE does not jump between the first PE and the second PE, ensuring the stability of the MAC table. Therefore the first PE can be used to help ensure MAC table stability.
  • FIG. 6 is a schematic structural diagram of a third carrier edge device according to an embodiment of the present invention.
  • the third carrier edge device (PE) is used in a network, the network including the
  • the virtual PE also includes a virtual PE, and the member PE of the RG corresponding to the virtual PE includes a first PE and a second PE, that is, the virtual PE includes the first PE and The second PE, the virtual PE has an IP address, and the virtual PE and the third PE are both member PEs of the first VPLS instance, and the first PE is the third PE of the RG.
  • the second CE is the local CE of the third PE in the first VPLS instance, and the first VPLS instance is the intermediate system to the intermediate system ISIS VPLS instance.
  • the third PE includes: a second receiving module 601, configured to receive an Ethernet frame sent from the second CE; and a second sending module 602, configured to use an IP address of the virtual PE or a first VPLS instance
  • the multicast IP address of the corresponding multicast tree is used as the tunnel destination address to encapsulate the Ethernet frame, and the encapsulated packet is sent to the virtual PE, so that the member PE of the RG corresponding to the virtual PE receives the
  • the encapsulated packet is decapsulated and decapsulated, and the decapsulated packet is forwarded to the first CE, where the first CE is the local CE of the virtual PE in the first VPLS instance, and the The first CE is connected to the first PE and the second PE in an MC-LAG manner.
  • the second receiving module 601 and the second sending module 602 are respectively configured to perform steps 401 and 402 shown in FIG.
  • the first PE in the embodiment is the shortest member of the third PE route in the RG.
  • the function of the second receiving module 601 is implemented by a third physical receiving port
  • the function of the second sending module 602 is implemented by a third physical circuit
  • the third physical circuit includes a third processor and a third physical sending port
  • the third processor is configured to perform the encapsulating process in the second receiving module 602
  • the third physical sending port is configured to perform the sending in the second sending module 602 deal with.
  • the second sending module 602 includes one or more of the following units: a fifth sending unit, configured to: when the Ethernet frame is a known destination unicast Ethernet frame, if the Ethernet frame is If the next hop PE corresponding to the destination MAC address is the virtual PE, the IP address of the virtual PE is used as the tunnel destination address, and the IP address of the third carrier edge device is used as the tunnel source address to the Ethernet frame.
  • a fifth sending unit configured to: when the Ethernet frame is a known destination unicast Ethernet frame, if the Ethernet frame is If the next hop PE corresponding to the destination MAC address is the virtual PE, the IP address of the virtual PE is used as the tunnel destination address, and the IP address of the third carrier edge device is used as the tunnel source address to the Ethernet frame.
  • Encapsulating, the encapsulated packet carries a first VPLS label, the first VPLS label is a VPLS label allocated by the virtual PE to the first VPLS instance, and the label type of the first VPLS label is a downstream label.
  • the fifth sending unit is configured to perform The "processing mode 402-1".
  • a sixth sending unit configured to: when the Ethernet frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame, if the first VPLS instance uses an ingress copy mode, the Ethernet frame is used Performing the copying to obtain a plurality of the Ethernet frames that are the same as the number of the remote PEs in the first VPLS instance of the third carrier edge device; and separately encapsulating the multiple Ethernet frames to obtain multiple The encapsulated packet, wherein the tunnel source address of each encapsulated packet is an IP address of the third carrier edge device, and the tunnel destination address of each encapsulated packet is The IP address of a PE in the remote PE of the third carrier edge device, and the tunnel destination address of the plurality of encapsulated packets are different from each other; and the encapsulated packet is sent to the corresponding remote PE.
  • the sixth sending unit is configured to execute the "processing mode 402-2".
  • a seventh sending unit configured to: the first PE is a primary PE, the second PE is a standby PE, the first PE is added to a multicast tree corresponding to the first VPLS, and the Ethernet frame is When unicasting an Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame for an unknown destination, if the first VPLS instance uses the non-aggregated multicast tree mode, the multicast IP address of the multicast tree corresponding to the first VPLS instance is used.
  • the seventh sending unit is configured to execute the “processing mode 402-3”.
  • An eighth sending unit configured to: when the first PE is a primary PE, the second PE is a standby PE, the first PE is added to a multicast tree corresponding to the first VPLS, and the ether is If the frame is an unknown destination unicast Ethernet frame, a multicast Ethernet frame, or a broadcast Ethernet frame, if the first VPLS instance uses the aggregate multicast tree mode, the multicast of the multicast tree corresponding to the first VPLS instance is used.
  • the IP address is used as the tunnel destination address and the IP address of the edge device of the third carrier is used as the tunnel source address to encapsulate the Ethernet frame, and the encapsulated packet carries a third VPLS label, where the third VPLS label is a VPLS label allocated by the third carrier edge device to the first VPLS instance.
  • the label type of the third VPLS label is an upstream label, and the encapsulated packet is forwarded by the multicast tree, so that the first PE receives the encapsulated packet and decapsulates the packet.
  • the encapsulated packet is forwarded to the first CE.
  • the eighth sending unit is configured to execute the “processing mode 402-4”.
  • the functions of each of the fifth sending unit, the sixth sending unit, the seventh sending unit, and the eighth sending unit are all implemented by the third processor and the third physical sending port.
  • the third carrier edge device further includes:
  • the third receiving module 603 is configured to receive route reachability information corresponding to the IP address of the virtual PE that is advertised by the PE or the member PE through the routing protocol;
  • the third receiving module 603 is further configured to receive reachability information of the VPLS instance corresponding to the RG that is advertised by the first PE that is the primary PE, where the reachability information of the VPLS instance includes the VPLS identifier of the VPLS instance corresponding to the RG, the virtual PE is a VPLS label allocated by the VPLS instance and an IP address of the virtual PE.
  • the function of the third receiving module 603 is implemented by a fourth physical receiving port, and the fourth physical receiving port may be the same port as the third physical receiving port, or may be a different port.
  • the member CE of the RG corresponding to the virtual PE receives only the encapsulated packet sent from the third PE, and decapsulates the packet and forwards the packet to the first CE to avoid the first CE. Received duplicate messages.
  • the storage medium mentioned may be a read only memory, a magnetic disk or an optical disk or the like.

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Data Exchanges In Wide-Area Networks (AREA)

Abstract

La présente invention concerne le champ de transmission de réseau. L'invention concerne un procédé destiné à transférer un paquet dans un réseau et un dispositif côté fournisseur (PE). Le réseau comprend : un premier PE et un second PE. Le premier PE et le second PE appartiennent à un groupe de redondance (RG), le RG correspond à un PE virtuel, le PE virtuel a une adresse IP, le PE virtuel est un élément PE dans une première instance VPLS, et un premier dispositif CE est un CE local du PE virtuel dans la première instance VPLS. Le procédé comprend : le premier PE reçoit une trame Ethernet du premier CE; et le premier PE encapsule la trame Ethernet selon le type de la trame Ethernet afin d'obtenir un paquet après l'encapsulation, et envoie le paquet après l'encapsulation à un PE d'extrémité à distance du PE virtuel dans la première instance VPLS. Le premier PE utilise l'adresse IP du PE virtuel correspondant au RG qui comprend le premier PE et le second PE pour l'encapsulation de paquet, qui permet d'assurer que lorsque le PE d'extrémité à distance reçoit le paquet et apprend une adresse MAC, un PE de saut suivant correspondant au MAC est tout le temps le PE virtuel. Par conséquent, aucune transition du PE de saut suivant ne se produit, ce qui permet d'assurer la stabilité d'une table MAC.
PCT/CN2012/087246 2012-03-22 2012-12-24 Procédé de transmission de paquet dans un réseau et dispositif côté fournisseur Ceased WO2013139159A1 (fr)

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Cited By (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN110601882A (zh) * 2019-09-04 2019-12-20 厦门网宿有限公司 一种二层专线网络系统及配置方法
CN113055295A (zh) * 2018-08-01 2021-06-29 华为技术有限公司 通信方法、通信设备和通信系统
CN113746715A (zh) * 2021-07-16 2021-12-03 北京华三通信技术有限公司 通信方法及装置
EP4147395A4 (fr) * 2020-05-06 2024-05-01 Primewan Limited Dispositif de réseau virtuel

Families Citing this family (10)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106856446B (zh) * 2015-12-09 2019-12-10 中国电信股份有限公司 用于提高虚拟网络可靠性的方法和系统
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CN111083061B (zh) 2018-10-19 2021-08-20 华为技术有限公司 一种确定组播流的df的方法、设备及系统
CN111585899A (zh) * 2019-02-19 2020-08-25 华为技术有限公司 一种evpn组播方法、装置及系统
US11894948B2 (en) 2020-04-02 2024-02-06 PrimeWan Limited Method of forming a virtual network
US11223569B2 (en) 2020-04-02 2022-01-11 PrimeWan Limited Device, method, and system that virtualize a network
US11362865B2 (en) 2020-04-02 2022-06-14 PrimeWan Limited Virtual network
US11245645B2 (en) 2020-04-02 2022-02-08 PrimeWan Limited Virtual network device
KR102898954B1 (ko) * 2020-05-11 2025-12-11 프라임완 리미티드 가상 네트워크
CN114039814B (zh) * 2021-11-30 2024-02-23 锐捷网络股份有限公司 一种报文转发方法、装置、电子设备及存储介质

Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20070253326A1 (en) * 2006-04-28 2007-11-01 Alcatel System and method for resilient VPLS over multi-nodal APS protected provider edge nodes
CN101459606A (zh) * 2008-12-31 2009-06-17 华为技术有限公司 一种组播虚拟私有网络的外联网组网方法、系统和装置
US7715310B1 (en) * 2004-05-28 2010-05-11 Cisco Technology, Inc. L2VPN redundancy with ethernet access domain
CN102347889A (zh) * 2010-08-04 2012-02-08 杭州华三通信技术有限公司 一种分层虚拟专用局域网中的报文转发方法、系统和装置

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US7715310B1 (en) * 2004-05-28 2010-05-11 Cisco Technology, Inc. L2VPN redundancy with ethernet access domain
US20070253326A1 (en) * 2006-04-28 2007-11-01 Alcatel System and method for resilient VPLS over multi-nodal APS protected provider edge nodes
CN101459606A (zh) * 2008-12-31 2009-06-17 华为技术有限公司 一种组播虚拟私有网络的外联网组网方法、系统和装置
CN102347889A (zh) * 2010-08-04 2012-02-08 杭州华三通信技术有限公司 一种分层虚拟专用局域网中的报文转发方法、系统和装置

Cited By (6)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN113055295A (zh) * 2018-08-01 2021-06-29 华为技术有限公司 通信方法、通信设备和通信系统
CN110601882A (zh) * 2019-09-04 2019-12-20 厦门网宿有限公司 一种二层专线网络系统及配置方法
CN110601882B (zh) * 2019-09-04 2022-08-16 厦门网宿有限公司 一种二层专线网络系统及配置方法
EP4147395A4 (fr) * 2020-05-06 2024-05-01 Primewan Limited Dispositif de réseau virtuel
CN113746715A (zh) * 2021-07-16 2021-12-03 北京华三通信技术有限公司 通信方法及装置
CN113746715B (zh) * 2021-07-16 2023-03-31 北京华三通信技术有限公司 实现二层报文跨三层传输的方法及装置

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