WO2017206785A1 - Élément de réseau, procédé et système de commutation de protection, et support de stockage - Google Patents

Élément de réseau, procédé et système de commutation de protection, et support de stockage Download PDF

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Publication number
WO2017206785A1
WO2017206785A1 PCT/CN2017/085846 CN2017085846W WO2017206785A1 WO 2017206785 A1 WO2017206785 A1 WO 2017206785A1 CN 2017085846 W CN2017085846 W CN 2017085846W WO 2017206785 A1 WO2017206785 A1 WO 2017206785A1
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Prior art keywords
network element
detection
link
protection
node network
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PCT/CN2017/085846
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English (en)
Chinese (zh)
Inventor
周晓慧
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中兴通讯股份有限公司
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Publication of WO2017206785A1 publication Critical patent/WO2017206785A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L41/00Arrangements for maintenance, administration or management of data switching networks, e.g. of packet switching networks
    • H04L41/06Management of faults, events, alarms or notifications
    • H04L41/0654Management of faults, events, alarms or notifications using network fault recovery
    • H04L41/0663Performing the actions predefined by failover planning, e.g. switching to standby network elements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L41/00Arrangements for maintenance, administration or management of data switching networks, e.g. of packet switching networks
    • H04L41/06Management of faults, events, alarms or notifications
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L43/00Arrangements for monitoring or testing data switching networks
    • H04L43/08Monitoring or testing based on specific metrics, e.g. QoS, energy consumption or environmental parameters
    • H04L43/0823Errors, e.g. transmission errors

Definitions

  • the present invention relates to the field of communications technologies, and in particular, to a network element, a protection switching method, a system thereof, and a storage medium.
  • the Packet Transport Network (PTN) technology is essentially a packet-based routing architecture that provides multi-service technical support. It is a technology that is more suitable for Internet Protocol (IP) service transmission. It inherits the traditional advantages of optical transmission, including good network scalability, rich operation and maintenance, fast protection switching and clock. Transmission capability, high reliability and security, network management concept, end-to-end service configuration and precise alarm management. These advantages of PTN are unmatched by traditional routers and enhanced Ethernet technologies, so the use of PTN networks is becoming more and more abundant in real life.
  • IP Internet Protocol
  • the path detection protection mechanism for the service layer includes Pseudo Wire (PW) protection and Virtual Private Network Fast Reroute (VPN FRR) protection.
  • PW Pseudo Wire
  • VPN FRR Virtual Private Network Fast Reroute
  • FIG. 1 is a networking diagram of PW protection or VPN FRR protection in the prior art, where the user side interface of the device 1 is connected to the base station, and the network side interface is connected to the network side interface of the device 2, and the device 2 The user side interface is connected to the base station controller (Radio Network Controller, RNC), and the chain between the device 1 and the device 2 The road acts as a working link and is used to carry services at the service layer.
  • RNC Radio Network Controller
  • the device 1 is also connected to the network side interface of the device 3 through another network side interface, and the user side interface of the device 3 is also connected to the RNC.
  • the link between the device 1 and the device 3 serves as a protection link when the working link When a fault occurs, you can switch the service to the protection link to ensure the normal operation of the service. As shown in FIG.
  • the mechanism for detecting the fault of the PTN network in the prior art can only cover the link between the network side interface of the device 1 and the network side interface of the device 2, and the detection mode is The device sends a detection data packet through the network side interface connected to the device 2, and the device 2 receives the detection data packet through the network side interface, and sends a detection feedback message to the network side interface of the device 1 through the network side interface.
  • the existing protection mechanism it is also possible to detect whether there is a physical fault on the user-side interface of the device 1 of the device 1, for example, if the interface is in the down state, it can be detected.
  • the actual situation is that the user-side interface often has an interface whose status is up but cannot forward the service normally.
  • the process of detecting according to the above example can be known.
  • the detection between the device 1 and the device 2 can only cover the forwarding status between the network side interfaces, but cannot cover the forwarding status of the user side interface. .
  • the network element, the protection switching method, the system, and the storage medium provided by the embodiments of the present invention can solve the problem that the service link on the working link does not occur when the user-side interface of the head node network element and the tail node network element is abnormally forwarded. Switching occurs, which seriously affects the normal forwarding of services.
  • an embodiment of the present invention provides a protection switching method, including:
  • the head node network element is configured with a detection mechanism on the first user side interface thereof, by using the first user
  • the side interface sends a first detection packet to the primary tail node network element configured with the detection mechanism to the opposite end of the working link;
  • the head node network element monitors a situation in which the primary tail node network element feeds back a first detection response message; the first detection response message is sent by the primary tail node to the head through its second user side interface Node network element feedback;
  • the head node network element switches the service on the working link to the protection link when the working link is abnormal according to the monitoring result.
  • an embodiment of the present invention further provides a network element, including:
  • a first detection packet sending unit configured to: the head node network element is configured with a detection mechanism on the interface of the first user side, and the detection mechanism is configured on the opposite end of the working link by using the first user side interface
  • the primary tail node network element sends the first detection packet
  • a monitoring unit configured to monitor a situation in which the primary tail node network element feeds back a first detection response message; the first detection response message is sent by the primary tail node to the head node through its second user side interface Network element feedback;
  • the switching unit is configured to switch the service on the working link to the protection link when the working link is abnormal according to the monitoring result.
  • the embodiment of the present invention further provides a protection switching system, including: a head node network element and a main tail node network element;
  • a detection mechanism is configured on the network element of the head node and the network element of the main tail node, where the network element of the head node is configured by the first user-side interface to the opposite end of the working link.
  • the network element of the tail node sends the first detection packet, and monitors the situation of the feedback response packet of the network element of the main tail node, and determines the service on the working link when the working link is abnormal according to the monitoring result. Switch to the protection link;
  • the primary tail node network element feeds back the first detection response message to the head node network element by using the second user side interface according to the first detection packet.
  • an embodiment of the present invention provides a computer storage medium having stored therein computer executable instructions for performing the protection switching method described above.
  • an embodiment of the present invention provides a network element including a memory, a processor, and a computer program stored on the memory and executable on the processor, the processor implementing the program to implement the following steps:
  • the first user-side interface is configured with a detection mechanism, and the first user-side interface sends a first detection packet to the primary tail node network element configured with the detection mechanism on the opposite end of the working link;
  • the head node network element is configured with a detection mechanism on the interface of the first user side, and the working link is provided through the first user side interface of the first user side interface.
  • the primary end node network element configured with the same detection mechanism is configured to send the first detection packet, and the head node network element monitors the situation that the primary tail node network element feeds back the first detection response message; the first detection response message is received by the primary The tail node feeds back to the head node network element through its second user-side interface.
  • the head node network element determines that the working link is abnormal according to the monitoring result, the service on the working link is switched to the protection link.
  • the user side interface of the network element of the active link head node and the user side interface of the main tail node network element may be detected.
  • the user side interface of the head node network element is not directly connected to the working link tail node network element. Therefore, when the first detection packet is sent to the primary tail node network element through the first user side interface, the network side interface and the network side interface of the working link are also passed; the primary tail node network element receives the first After detecting the message, The first detection response message is also fed back to the head node network element by using its own second network side interface according to the similar transmission mode.
  • the entire detection process covers the first user side interface of the head node network element and the second user side interface of the main tail node network element, and detects the network side interface of the head node network element and the main tail node network element.
  • the forwarding status also detects the forwarding status of the user-side interface. And when it is detected that the service cannot be forwarded normally, that is, when the link is abnormal, the service on the working link is switched to the protection link, so that the service can be forwarded.
  • the user-side interface of the head node network element and the tail node network element in the prior art is abnormally forwarded, the service on the working link is not switched, which seriously affects the normal forwarding of the service and reduces the user experience. Achieve more comprehensive detection of working link abnormal conditions, provide protection measures, and improve the user experience.
  • Figure 1 is a set of network diagrams
  • FIG. 2 is a flowchart of a protection switching method according to an embodiment of the present invention.
  • FIG. 3 is a flowchart of a protection switching method according to an embodiment of the present invention.
  • FIG. 4 is a schematic structural diagram of a protection switching apparatus according to an embodiment of the present invention.
  • FIG. 5 is a schematic structural diagram of a protection switching system according to an embodiment of the present invention.
  • This embodiment provides a protection switching method. Referring to FIG. 2, the method includes:
  • the head node network element is configured with a detection mechanism on the interface of the first user side, and sends a first detection packet to the primary tail node network element configured with the detection mechanism by the first user side interface;
  • S202 The head node network element monitors, by the main tail node network element, the first detection response message.
  • S203 The head node network element switches the service on the working link to the protection link when the working link is abnormal according to the monitoring result.
  • the foregoing steps are performed, and the detection mechanism is required. Therefore, before the steps S201 to S203 are performed, a detection mechanism is configured for each network element on the working link, and the network side interface or the user side interface is configured. Detection mechanism.
  • the head node network element performs step S201 to send a first detection message to the primary tail node network element through its first user side interface, and the main tail node network element also configures the same detection mechanism as the head node network element.
  • the first user-side interface of the head node network element is used to connect to the user equipment, and is connected to the network side interface of the main tail node network element through its own network side interface.
  • step S201 the head node network element generates a first detection packet, which is first sent to its own network side interface through its first user-side interface; and then the first detection packet is passed through its own network-side interface. The working link is sent to the network side interface of the primary tail node network element.
  • the first detection packet cannot reach the primary tail node network element smoothly, and if it is working If the link itself is abnormal, the first detection packet cannot reach the primary tail node network element smoothly.
  • step S202 the head node network element monitors the situation in which the main tail node feeds back the first detection response message.
  • the first detection response message is feedback from the main tail node network element to the head node network element by using the second network side interface of the main tail node.
  • the head node network element performs step S203, and according to the situation that the monitored main tail node feeds back the first detection response message, and determines that the working link is abnormal, the service on the working link is switched to the protection link.
  • the protection link is also a backup link. It is configured in advance. When the working link is unavailable, it is used for service transmission to avoid links that cause service failure.
  • the following methods can be used; when configuring the detection mechanism, the alarm conditions are also configured together (may not be configured together, as long as they are configured before the formal work), the head node network element The alarm condition is determined according to the detection result. If the alarm condition is reached, the link is abnormal.
  • the abnormality may be the first user-side interface and the network-side interface of the head node network element.
  • the second user-side interface and the network-side interface of the primary-end node cannot be forwarded normally.
  • the intermediate working link may be faulty. If other intermediate network elements are in the middle, they may also be interfaces of the intermediate network element. There are forwarding issues and so on.
  • the alarm condition may be set according to a packet loss rate or a transmission delay of the first detection packet, or may be set according to both.
  • the alarm condition may include any one of the following modes: mode 1, if the packet loss rate of the first detection packet is higher than the first packet loss threshold, determining that the working link is abnormal; If the transmission delay of the detection response packet is higher than the first delay threshold, it is determined that the working link has an abnormality. Therefore, the head node network element needs to count whether the packet loss rate of the first detection packet is higher than the first packet loss rate threshold. If yes, it is determined that the working link is abnormal. Otherwise, it is determined that there is no abnormality; The value of the transmission delay of the first detection response packet is higher than the first delay threshold. If yes, the working link is abnormal. Otherwise, there is no abnormality.
  • the first packet loss rate threshold and the first delay threshold may be flexibly set according to different usage scenarios.
  • the protection link before performing the handover of the service in step S203, the protection link is also detected to determine whether there is an abnormality, and the protection link does not have an abnormality.
  • the service switches to the protection link.
  • the abnormal condition detection of the protection link the method in the prior art can be used, for example, the bidirectional forwarding detection (BFD) protocol is used for detection.
  • BFD bidirectional forwarding detection
  • the first user of the head node network element cannot be detected. Forwarding of the third user-side interface of the side interface and the tail-side node. Therefore, the abnormality of the protection link can also be detected in the following manner.
  • the head node network element When the first user-side interface is configured with the detection mechanism, the head node network element is configured with a detection mechanism on the opposite end of the protection link through the first user-side interface.
  • the trailing node network element sends a second detection message; and monitors the situation in which the tail end node network element feeds back the second detection response message; the second detection response message is sent by the backup tail node through its third user side interface
  • the manner in which the head node network element determines whether the protection link is abnormal according to the monitoring result may also be implemented in a similar manner as the above setting alarm condition.
  • the head section The point network element also counts whether the packet loss rate of the second detection packet is higher than the second packet loss rate threshold. If yes, the protection link is abnormal. Otherwise, there is no abnormality; and the second detection response packet is statistically received. Whether the transmission delay is higher than the second delay threshold. If yes, the protection link is abnormal. Otherwise, there is no abnormality.
  • the second packet loss rate threshold and the second time delay threshold may be equal to the first packet loss rate threshold and the first delay threshold, respectively, or may be unequal, and the second packet loss rate threshold and the second time may be flexibly set according to requirements. The specific value of the threshold is extended.
  • the head node network element when the head node network element detects that an abnormality occurs on the working link, an alarm is generated to notify the staff, so that the staff can timely handle the fault.
  • the head node NE After the head node NE successfully switches the service from the working link to the protection link, it will continue to detect the abnormal condition of the working link, because when the staff knows that the working link is faulty, the fault may be processed in time, and the working link is completed.
  • the network element of the head node detects that the working link does not exist abnormally, the service working on the protection link is automatically switched back to the working link. No need for staff to manually configure and complete the switch.
  • the head node network element periodically performs the above steps S201 to S203, and may also set the period to be less than the PW BFD detection period.
  • the protection switching method in this embodiment can be used in multiple networks, for example, can be used for PTN, and can also be used for Next Generation Network (NGN) and the like.
  • the detection mechanism for each network element configured on the working link or the protection link in this embodiment may be an A Two-way Active Measurement Protocol (TWAMP) protocol, a first detection packet, and a second detection.
  • TWAMP Two-way Active Measurement Protocol
  • the packet is a bidirectional active measurement packet generated by the network element of the head node
  • the first detection response message is a bidirectional active measurement feedback message generated by the network element of the tail end node
  • the second detection response message is generated by the network element of the standby tail node. Two-way active measurement feedback message.
  • the fault of the working link can be detected more comprehensively, and the fault detection range is widely covered.
  • the fault of the protection link is also detected, and only when the protection link is normal.
  • Business switching so as to avoid useless switching; in addition, when a fault is detected, an alarm is generated, the staff is notified, and the automatic switchback function is set to reduce the work.
  • the work of the staff makes the business switching more automated and more user-friendly.
  • This embodiment provides another protection switching method. Referring to FIG. 3, the method includes:
  • the head node network element is configured with a detection mechanism on the interface of the first user side, and sends a first detection packet to the network element of the main tail node configured with the detection mechanism by the first user side interface.
  • S302 The primary tail node network element feeds back the first detection response message to the head node network element by using the second user side interface according to the first detection packet.
  • the head node network element monitors the situation of the network element feedback detection response packet of the main tail node, and according to the monitoring result, when the working link is abnormal, the service on the working link is switched to the protection link.
  • Step S301 in this embodiment may refer to the execution step of step S201 in the embodiment.
  • the detection mechanism is configured for each network element on the working link, and the detection mechanism is configured on both the network side interface and the user side interface.
  • the first user-side interface of the head node network element is used to connect to the user equipment, and is connected to the network side interface of the main tail node network element through its own network side interface.
  • the second user-side interface of the primary tail node network element is connected to the user equipment.
  • step S301 the head node network element generates a first detection packet, which is first sent to its own network side interface through its first user-side interface; and then passes the first detection packet from its own network-side interface.
  • the working link is sent to the network side interface of the primary tail node network element.
  • the detection mechanism is configured.
  • the detection mechanism is configured for each network element on the working link. Therefore, the second user-side interface of the main tail node network element is also configured with the detection mechanism.
  • the primary tail node network element knows that the head node network element needs to detect the working link status, and then generates a first detection response message by itself and passes its own
  • the second user side interface feeds back the first detection response message to the head node network element.
  • the path of the first detection response packet is the same as the path of the first detection packet sent by the network element of the head node, and the first detection response packet generated by the main tail node passes its second user.
  • the side interface is connected to the network element of the network element of the head node by itself, and then reaches the network element of the head node through the working link and the network side interface of the head node network element.
  • the execution process of S203 in the embodiment may be referred to.
  • the head node network element detects that an abnormality occurs on the working link, an alarm is generated to notify the staff, so that the staff can timely handle the fault.
  • the head node NE successfully switches the service from the working link to the protection link, it will continue to detect the abnormal condition of the working link, because when the staff knows that the working link is faulty, the fault may be processed in time, and the working link is completed.
  • the network element of the head node detects that the working link does not exist abnormally, the service working on the protection link is automatically switched back to the working link. No need for staff to manually configure and complete the switch.
  • the protection switching method in this embodiment can be used in various networks, for example, it can be used for PTN, and can also be used for NGN and the like.
  • the detection mechanism for each network element configured on the working link or the protection link in this embodiment may be the TWAMP protocol, and the first detection packet and the second detection packet are two-way active measurement packets generated by the head node network element.
  • the first detection response message is a bidirectional active measurement feedback message generated by the network element of the tail end node
  • the second detection response message is a bidirectional active measurement feedback message generated by the network element of the tail end node.
  • the protection switching method in this embodiment includes the actions performed by the head node network element and the actions performed by the primary tail node network element and the standby tail node network element.
  • the execution actions of the primary tail node network element may refer to the execution flow in the embodiment.
  • the network element 4 can be configured as a head node network element.
  • the network element 4 includes: a first detection packet sending unit 41, the first The detection packet sending unit 41 is configured to: when the network element 4 is configured with a detection mechanism on the first user side interface thereof, The first user-side interface sends the first detection packet to the primary tail node network element configured with the detection mechanism on the peer end of the working link.
  • the protection switching device generates the first detection packet, and firstly sends the first detection packet to the network side interface through the first user side interface of the head node network element; and then sends the first detection packet from the network side interface to the network side interface through the working link.
  • the network side interface of the primary tail node network element The network side interface of the primary tail node network element.
  • the first detection packet cannot reach the primary tail node network element smoothly, and if it is working If the link is abnormal, the first detection packet cannot reach the NE of the main tail node smoothly. Therefore, the entire working link can be completely and completely detected.
  • the network element 4 further includes a monitoring unit 42 configured to monitor the situation in which the primary tail node network element feeds back the first detection response message.
  • the first detection response message is feedback from the main tail node to the network element 4 for the first detection message through its own second network side interface.
  • the network element 4 further includes a switching unit 43 configured to switch the service on the working link to the protection link when the working link is abnormal according to the monitoring result.
  • the switching unit 43 determines whether the working link is abnormal due to whether the packet loss rate of the first detection packet is higher than the first packet loss rate threshold, or whether the transmission delay of the first detection response packet is high by statistics. Determining whether there is an abnormality in the working link according to the first delay threshold; or judging whether there is an abnormality in the working link according to the two criteria.
  • the network element 4 further includes a protection link abnormality detecting unit 44 configured to detect the protection link to determine whether there is an abnormality.
  • the switching unit 43 switches the service to the protection chain. road.
  • the protection link abnormality detecting unit 44 can adopt the method in the prior art, for example, using the BFD protocol for detection.
  • the protection link abnormality detecting unit 44 may also detect the abnormal condition of the protection contact in the following manner, and the protection link abnormality detecting unit 44 configures the tail end of the detection mechanism to the opposite end of the protection link through the first user side interface.
  • the node network element sends the second detection packet, and monitors the situation that the network element of the backup tail node feeds back the second detection response message; the second detection response message is sent by the backup tail node to the network element 4 through its third user-side interface.
  • Feedback The protection link abnormality detecting unit 44 determines whether there is an abnormality in the protection link according to the monitoring result.
  • the implementation manner of the protection link abnormality detecting unit 44 determining whether the protection link is abnormal according to the monitoring result may also be implemented in a similar manner as the above setting alarm condition. For example, the protection link abnormality detecting unit 44 also counts whether the packet loss rate of the second detection packet is higher than the second packet loss threshold. If yes, the protection link is abnormal. Otherwise, there is no abnormality; and the protection link The abnormality detecting unit 44 counts whether the transmission delay of the second detection response number packet is higher than the second delay threshold. If yes, the protection link has an abnormality. Otherwise, there is no abnormality.
  • the network element 4 when detecting that an abnormality occurs on the working link, the network element 4 generates an alarm to notify the staff, so that the staff can timely handle the fault.
  • the NE successfully switches the service from the working link to the protection link, it will continue to detect the abnormal status of the working link.
  • the staff knows that the working link is faulty, the fault may be processed and the working link is restored.
  • the network element detects that there is no abnormality in the working link, it automatically switches the service working on the protection link back to the working link. No need for staff to manually configure and complete the switch.
  • the network element 4 in this embodiment may be used to implement the protection switching method in the embodiment.
  • the network element 4 may be disposed on each network device, such as a router.
  • the functions of the functional units of the network element 4, the first detection message sending unit 41, the monitoring unit 42, the switching unit 43, and the protection link abnormality detecting unit 44 may all be performed by the processor of the working link head node network element.
  • the head node network element is a router connecting the base station or the PNC in the PTN network, that is, the network element 4 is a router
  • the first detection message sending unit 41, the monitoring unit 42, the switching unit 43, and the protection link of the router The function of the anomaly detection unit 44 can be implemented by the processor of the router.
  • the detection mechanism for each network element configured on the working link or the protection link in this embodiment may be the TWAMP protocol, and the first detection packet and the second detection packet are two-way active measurement packets generated by the head node network element.
  • the first detection response message is a bidirectional active measurement feedback message generated by the network element of the tail end node
  • the second detection response message is a bidirectional active measurement feedback report generated by the network element of the tail end node. Text.
  • the embodiment further provides another network element, where the network element can be configured as a primary tail node network element, including a primary detection packet receiving unit and a primary feedback unit, and the detection packet receiving unit is configured to receive the sending of the head node network element.
  • the first detection packet is configured to generate a first detection response message, and send the first detection corresponding message to the head node network element.
  • the embodiment further provides another network element, where the network element can be configured as a network element of the standby tail node, and is configured to receive a packet receiving unit and a backup feedback unit, and the detecting packet receiving unit is configured to receive the sending of the head node network element.
  • the first detection packet is configured to generate a first detection response message, and send the first detection corresponding message to the head node network element.
  • the embodiment further provides a protection switching system.
  • the protection switching system includes a head node network element 51 and a main tail node network element 52.
  • the detection mechanism is configured on the head node network element and the main tail node network element.
  • the head node network element 51 is configured with a detection mechanism on the interface of the first user side, and sends a first detection packet to the primary tail node network element 52 configured with the detection mechanism on the opposite end of the working link through the first user side interface. And monitoring the situation that the main tail node network element 52 feeds back the detection response message, and when the working link is abnormal according to the monitoring result, the service on the working link is switched to the protection link; the head node network element 51 can adopt the present The network element 4 in the embodiment is implemented.
  • the primary tail node network element 52 feeds back the first detection response message to the head node network element through its second user-side interface according to the first detection packet.
  • the main tail node network element 52 knows that the head node network element 51 needs to detect the working link status, and then generates a first detection response message and passes its own second user.
  • the side interface feeds back the first detection response message to the head node network element 51.
  • the path of the first detection response packet is the same as the path of the first detection packet sent by the head node network element 51, and the primary detection node network element 52 passes the first detection response message generated by itself to the second user side of the second detection side.
  • the interface then connects to the head node network element 51 through the network side interface of the network element of the head node, and then through the working link and the network side interface of the head node network element.
  • the protection switching system in this embodiment will be described below by way of example.
  • the protection switching system includes a head node network element device 1, a main tail node network element device 2, a backup tail node network element device 3, and an RNC and a base station.
  • the connection relationship between devices is shown in Figure 6.
  • the link between device 1 and device 2 is a working link
  • the link between device 1 and device 3 is a protection link.
  • the device 1 sends the first detection packet through the network side interface connected to the device 2, and the device 2 receives the first detection packet through the network side interface; the device 2 connects through the network itself.
  • the user-side interface of the RNC sends a first detection response packet to the device 1 by connecting the network-side interface of the device 1.
  • the device 1 determines whether there is an abnormality in the working link according to the condition that the first detection packet is received. For example, if the device 1 does not receive the first detection response packet sent by the device 2, the device 1 determines the first detection packet.
  • the packet loss rate is 100%, so it is determined that there is an abnormality in the working link. Then, the device 1 detects whether there is an abnormality in the protection link, and the detection process is similar to the process of detecting whether the working link is abnormal. If it is detected that there is no abnormality in the protection link, the device 1 generates an alarm and switches the service to the protection link. When the worker repairs the abnormality of the working link, the device 1 switches the service back to the working link.
  • Each unit in the network element provided by the embodiment of the present invention may be implemented by a processor in the network element; of course, it may also be implemented by a logic circuit; in the process of implementation, the processor may be a central processing unit (Central Processing Unit, CPU), Micro Processor Unit (MPU), Digital Signal Processor (DSP) or Field Programmable Gate Array (FPGA).
  • CPU Central Processing Unit
  • MPU Micro Processor Unit
  • DSP Digital Signal Processor
  • FPGA Field Programmable Gate Array
  • the protection switching method described above is implemented in the form of a software function module and sold or used as a stand-alone product, it may also be stored in a computer readable storage medium.
  • the computer software product is stored in a storage medium and includes instructions for causing a computer device (which may be a personal computer, server, or network device, etc.) to perform all or part of the methods described in various embodiments of the present invention.
  • the foregoing storage medium includes various media that can store program codes, such as a USB flash drive, a mobile hard disk, a read only memory (ROM), a magnetic disk, or an optical disk.
  • program codes such as a USB flash drive, a mobile hard disk, a read only memory (ROM), a magnetic disk, or an optical disk.
  • Embodiments of the present invention provide a computer storage medium having stored therein computer executable instructions for performing the protection switching method described above.
  • Embodiments of the present invention provide a network element including a memory, a processor, and a computer program stored on the memory and operable on the processor, the processor implementing the program to implement the following steps:
  • the first user-side interface is configured with a detection mechanism, and the first user-side interface sends a first detection packet to the primary tail node network element configured with the detection mechanism on the opposite end of the working link;
  • modules or steps of the present invention can be implemented by a general-purpose computing device, which can be concentrated on a single computing device or distributed over a network composed of multiple computing devices.
  • they may be implemented by program code executable by the computing device such that they may be stored by a computing device in a storage medium (eg, ROM, diskette, optical disk) and, in some cases,
  • the steps shown or described may be performed in an order different from that herein, or they may be separately fabricated into individual integrated circuit modules.
  • multiple modules or steps of them can be implemented as a single integrated circuit module. Therefore, the invention is not limited to any particular combination of hardware and software.
  • the technical solution provided by the embodiment of the present invention can effectively solve the problem that when the forwarding of the user-side interface of the head node network element and the tail node network element in the prior art is abnormal, the service on the working link is not switched, which seriously affects The service is forwarded normally, which reduces the user experience; achieves a more comprehensive detection of the abnormal link of the working link, provides protection measures, and improves the user experience.

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

Abstract

La présente invention concerne un procédé, un dispositif et un système de commutation de protection, ainsi qu'un support de stockage. Le procédé comprend les étapes suivantes consistant à : lorsqu'un élément de réseau de nœud de tête est configuré avec un mécanisme de détection sur une première interface côté utilisateur de celui-ci, envoyer, au moyen de la première interface côté utilisateur de celui-ci, un premier message de détection à un élément de réseau de nœud de queue principal, configuré avec le même mécanisme de détection, au niveau d'une extrémité opposée d'une liaison de travail ; l'élément de réseau de nœud de tête surveillant la situation dans laquelle l'élément de réseau de nœud de queue principal renvoie un premier message de réponse de détection, lequel premier message de réponse de détection est renvoyé par l'élément de réseau de nœud de queue principal à l'élément de réseau de nœud de tête au moyen d'une seconde interface côté utilisateur de celui-ci ; et, lorsque l'élément de réseau de nœud de tête détermine que la liaison de travail est anormale conformément à un résultat de surveillance, commuter un service sur la liaison de travail vers une liaison de protection.
PCT/CN2017/085846 2016-06-02 2017-05-25 Élément de réseau, procédé et système de commutation de protection, et support de stockage WO2017206785A1 (fr)

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