WO2013181953A1 - 光纤配线方法、设备及系统 - Google Patents

光纤配线方法、设备及系统 Download PDF

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Publication number
WO2013181953A1
WO2013181953A1 PCT/CN2013/072210 CN2013072210W WO2013181953A1 WO 2013181953 A1 WO2013181953 A1 WO 2013181953A1 CN 2013072210 W CN2013072210 W CN 2013072210W WO 2013181953 A1 WO2013181953 A1 WO 2013181953A1
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WO
WIPO (PCT)
Prior art keywords
port
identification
optical fiber
distribution frame
jumper
Prior art date
Application number
PCT/CN2013/072210
Other languages
English (en)
French (fr)
Inventor
吴诗全
钟志伟
刘国平
Original Assignee
华为技术有限公司
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Priority to ES13800170.6T priority Critical patent/ES2614883T3/es
Priority to EP13800170.6A priority patent/EP2852095B1/en
Publication of WO2013181953A1 publication Critical patent/WO2013181953A1/zh
Priority to US14/562,425 priority patent/US9712237B2/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B10/00Transmission systems employing electromagnetic waves other than radio-waves, e.g. infrared, visible or ultraviolet light, or employing corpuscular radiation, e.g. quantum communication
    • H04B10/25Arrangements specific to fibre transmission
    • H04B10/2589Bidirectional transmission
    • H04B10/25891Transmission components
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q1/00Details of selecting apparatus or arrangements
    • H04Q1/02Constructional details
    • H04Q1/13Patch panels for monitoring, interconnecting or testing circuits, e.g. patch bay, patch field or jack field; Patching modules
    • H04Q1/135Patch panels for monitoring, interconnecting or testing circuits, e.g. patch bay, patch field or jack field; Patching modules characterized by patch cord details
    • H04Q1/136Patch panels for monitoring, interconnecting or testing circuits, e.g. patch bay, patch field or jack field; Patching modules characterized by patch cord details having patch field management or physical layer management arrangements
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L43/00Arrangements for monitoring or testing data switching networks
    • H04L43/10Active monitoring, e.g. heartbeat, ping or trace-route

Definitions

  • Embodiments of the present invention relate to communication technologies, and in particular, to a fiber optic wiring method, device, and system.
  • FTTx ( X H for home , ⁇ for premises , C for curb and N for node or neighborhood , where FTTH is fiber to the home, FTTP is fiber to the premises, FTTC is fiber to the roadside / cell, FTTN is fiber to With the gradual popularization of nodes, the fiber-based basic wiring network technology has developed rapidly.
  • the Optical Distribution Frame is one of the basic devices that make up the fiber-based basic distribution network.
  • the fiber distribution frame is provided with multiple ports for inserting optical fibers. The two ports can be connected by fiber jumper. To achieve connectivity between fibers.
  • the fiber distribution frame can read the electronic ID of the inserted fiber jumper to determine the connection relationship between the fiber jumper and the port.
  • the mobile terminal with the iField (Intelligent Field) software can be connected to the fiber distribution frame to collect the connection between the fiber jumper and the port of the fiber distribution frame. but, When the fiber jumper is used between different fiber distribution frames, the fiber distribution frame may be disposed in different areas. The fiber jump process needs to be completed by the same mobile terminal.
  • the embodiment of the invention provides a fiber optic wiring method, device and system, so as to avoid the problem that the construction information in the mobile terminal installed with the iField is easily covered, and improve the efficiency of the cross-building fiber jump construction.
  • Embodiments of the present invention provide a fiber optic wiring method, including:
  • the first port identifier and the jumper identifier corresponding to the first port identifier receive the second port identifier sent by the second fiber distribution frame and the jumper identifier corresponding to the second port identifier.
  • Embodiments of the present invention provide a fiber optic wiring method, including:
  • the embodiment of the invention provides a cluster management device, including:
  • a first processing unit configured to determine at least the first fiber distribution frame and the second fiber distribution frame according to the fiber jump setting information, and generate first port indication information and second port indication information;
  • a second processing unit configured to send the first port indication information to the first optical fiber distribution frame, send the second port indication information to the second optical fiber distribution frame, and receive the first The first port identifier sent by the optical fiber distribution frame and the jumper identifier corresponding to the first port identifier, and the second port identifier sent by the second fiber distribution frame and the jumper identifier corresponding to the second port identifier are received.
  • An embodiment of the present invention provides an optical fiber distribution frame, including:
  • a third processing unit configured to receive port indication information sent by the cluster management device, and light an indicator of a port corresponding to the port indication information
  • a fourth processing unit configured to: when a fiberbeat is inserted in the port, obtain a fiberbeat identifier of the fiberbeat and a port identifier of the port, and send the fiberbeat identifier and the port identifier to the Cluster management device.
  • Embodiments of the present invention provide an optical fiber distribution system, including:
  • the cluster management device provided by the embodiment of the present invention, and at least two optical fiber distribution frames provided by the embodiments of the present invention.
  • the optical fiber wiring method, device and system provided by the embodiments of the present invention are known from the above technical solutions.
  • the cluster management device determines at least the first fiber distribution frame and the second fiber distribution frame according to the fiber jump setting information, and generates first port indication information and second port indication information, and sends the first port indication information to the first
  • the optical fiber distribution frame transmits the second port indication information to the second optical fiber distribution frame, and receives the first port identifier sent by the first optical fiber distribution frame and the jumper identifier corresponding to the first port identifier, and receives the second optical fiber distribution
  • the second port identifier sent by the shelf and the jumper identifier corresponding to the second port identifier is mapped to the second port identifier.
  • FIG. 1 is a flowchart of a method for wiring an optical fiber according to an embodiment of the present invention
  • FIG. 2 is a flowchart of another optical fiber wiring method according to an embodiment of the present invention.
  • FIG. 3 is a schematic structural diagram of a cluster management device according to an embodiment of the present disclosure.
  • FIG. 4 is a schematic structural diagram of another cluster management device according to an embodiment of the present invention.
  • FIG. 5 is a schematic structural diagram of an optical fiber distribution frame according to an embodiment of the present invention.
  • FIG. 6 is a schematic structural diagram of another optical fiber distribution frame according to an embodiment of the present invention. •detailed description
  • FIG. 1 is a flowchart of a method for wiring an optical fiber according to an embodiment of the present invention.
  • the optical fiber wiring method provided in this embodiment can be specifically applied to the process of performing fiber jump between at least two optical fiber distribution frames in the fiber-optic construction, and the optical fiber wiring method provided in this embodiment can be adopted.
  • the cluster management device is implemented, and the cluster management device can manage all the fiber distribution frames within its jurisdiction.
  • the cluster management device can be implemented in software and/or hardware.
  • Step S10 Determine at least the first fiber distribution frame and the second fiber distribution frame according to the fiber jump setting information, and generate first port indication information and second port indication information;
  • Step S20 Send the first port indication information to the first optical fiber distribution frame, send the second port indication information to the second optical fiber distribution frame, and receive the first optical fiber distribution frame.
  • the first port identifier sent by the first port identifier and the first fiber port identifier corresponding to the first port identifier are received, and the second port identifier sent by the second fiber distribution frame and the jumper identifier corresponding to the second port identifier are received.
  • the fiber jump setting information may specifically be a construction order, and may include at least two optical fibers.
  • the information of the wire rack may also include information on the ports to be constructed on each fiber distribution frame.
  • the information about the fiber distribution frame under its jurisdiction can be stored in the cluster management device.
  • the cluster management device can determine the port to be constructed according to the usage of the fiber distribution frame to be constructed in the fiber jump setting information.
  • the information about the configuration of the fiber-hopping device can be delivered by the network management device.
  • the cluster management device may determine at least the first fiber distribution frame and the second fiber distribution frame according to the fiber jump setting information, generate first port indication information corresponding to the first fiber distribution frame, and correspond to the second fiber distribution line.
  • the second port of the rack indicates information.
  • the first port indication information is used to indicate a first port on the first fiber distribution frame for inserting one end of the fiber jumper.
  • the second port indication information is used to indicate a second port on the second fiber distribution frame for inserting the other end of the fiber jumper.
  • the cluster management device can communicate with the first fiber distribution frame or the second fiber distribution frame through an Ethernet network port or an RS232/RS485 serial port.
  • the cluster management device sends the first port indication information to the first fiber distribution frame, and sends the second port indication information to the second fiber distribution frame.
  • the first optical fiber distribution frame illuminates the indicator light on the first port corresponding to the first port indication information, and the indicator light may be an LED (Light Emitting Diode) light.
  • the constructor can insert one end of the jumper into the first port according to the indicator light.
  • the first fiber distribution frame detects that a jumper is inserted, the jumper identifier of the jumper and the first port of the first port are obtained.
  • the port ID is the electronic ID of the fiber jumper.
  • the jumper identifier and the first port identifier are sent to the cluster management device, and the cluster management device can learn that one end of the jumper indicated by the jumper identifier is connected to the first port of the first fiber distribution frame. Similar After receiving the second port indication information, the second optical fiber distribution frame lights the indicator light on the second port corresponding to the second port indication information, and the construction personnel can jump the fiber according to the indicator light. One end is inserted into the second port, and when the second fiber distribution frame detects that a jumper is inserted, the fiber jumper identifier of the jumper and the second port identifier of the second port are obtained, and the jumper identifier and the second port are obtained.
  • the identifier is sent to the cluster management device, and the cluster management device can learn that the other end of the jumper indicated by the jumper identifier is connected to the second port of the second optical distribution frame, and the first fiber connection of the jumper can be determined.
  • the first port of the shelf is in communication with the second port of the second fiber distribution frame.
  • the cluster management device sends the second port indication information to the second fiber distribution frame, and receives the first port identifier sent by the first fiber distribution frame and the jumper identifier corresponding to the first port identifier. There is no inevitable timing relationship.
  • the cluster management device determines at least the first optical fiber distribution frame and the second optical fiber distribution frame according to the fiber jump setting information, and generates first port indication information and second port indication information, which will be A port indication information is sent to the first fiber distribution frame, and the second port indication information is sent to the second fiber distribution frame, and the first port identifier sent by the first fiber distribution frame and the first fiber port corresponding to the first port identifier are received.
  • the identifier receives the second port identifier sent by the second fiber distribution frame and the jumper identifier corresponding to the second port identifier.
  • the construction task is dispatched and the construction information is reported, which avoids the problem that the construction information in the mobile terminal with the iField is easily covered, and the jump across the cabinet is improved.
  • the efficiency of fiber construction is improved.
  • the receiving the second optical fiber distribution frame in step S20 is performed. Before the second port identifier and the second fiber port identifier corresponding to the second port identifier, the following steps may be included:
  • Step S30 Receive a fiberbeat identifier to be determined that is sent by the second fiber distribution frame, and if the fiberbeat identifier to be determined is the same as the fiberbeat identifier corresponding to the first port identifier, The second fiber distribution frame sends a jumper IE to the indication report. If the fiberbeat identifier to be determined is different from the first fiber identifier, the hop will be sent to the second fiber distribution frame. Fiber error indication report.
  • the constructor When a number of idle jumpers have been laid on the construction site, the constructor does not know which jumper is operating.
  • the constructor can select a jumper and insert one end of the jumper into the first port of the first fiber distribution frame.
  • the first fiber distribution frame detects that a jumper is inserted, the jumper of the jumper is obtained.
  • the fiber identifier and the first port identifier of the first port are sent to the cluster management device. After the construction personnel operate the other end of the jumper, you can also select a jumper and detect the jumper. You can set up the detection unit.
  • the detection unit can be set on the second fiber distribution frame. Can be set separately.
  • the detection unit is provided with a detection port, and the constructor can insert the jumper into the detection port, and the detection port obtains the fiber-optic identifier of the fiber-hop, and sends the fiber-optic identifier as the to-be-determined fiber-optic identifier to the cluster management device.
  • the cluster management device compares the to-be-determined fiber-optic identifier with the fiber-optic identifier sent by the first fiber distribution frame, and if the two are the same, sends a jumper correct indication report to the second fiber distribution frame, and the second fiber
  • the distribution frame can display the indication report to instruct the construction personnel to check the inspection
  • the measured fiber jumper is the fiber jumper to be constructed.
  • the cluster management device sends a report of the fiber-hopping error indication to the second fiber distribution frame.
  • the constructor can report the replacement of other fiber-hopping fibers according to the indication, until the fiber-optic fiber to be constructed is detected. Through the detection of the fiber jumper, the correctness of the fiber jump construction can be ensured.
  • the optical fiber wiring method may further include the following steps: Step S40: The first port identifier and the first port identifier corresponding to the jumper identifier and the second port identifier and The jumper identifier corresponding to the second port identifier is sent to the network management device.
  • the first port identifier corresponding to the jumper identifier is the same as the jumper identifier corresponding to the second port identifier
  • the cluster management device sends the first port identifier, the second port identifier, and the fiber skip identifier as a group information to the network management system.
  • the device and the network management device store the received information to implement management of the optical fiber basic distribution network.
  • the method further includes the following step S50: receiving a first error report sent by the first fiber distribution frame, and regenerating the first according to the first error report.
  • the port indication information is sent to the first fiber distribution frame by the regenerated first port indication information.
  • the first fiber distribution frame sends a first error report to the cluster management device. The first port is unavailable.
  • the cluster management device regenerates the first port indication information according to the first error report to indicate other ports to the first fiber distribution frame.
  • the method further includes:
  • Step S60 Receive a second error report sent by the second fiber distribution frame, regenerate the second port indication information according to the second error report, and send the regenerated second port indication information to the second optical fiber. Patch panel.
  • the second fiber distribution frame sends a second error report to the cluster management device.
  • the second port is unavailable. There may be the following situation: the second port is not the port on the second fiber distribution frame; the other port has been inserted in the second port; the second port is damaged.
  • the cluster management device regenerates the second port indication information according to the second error report to indicate the other ports to the second fiber distribution frame.
  • FIG. 2 is a flowchart of another optical fiber wiring method according to an embodiment of the present invention.
  • the optical fiber wiring method provided in this embodiment can cooperate with the optical fiber wiring method applied to the integrated management device side provided by any embodiment of the present invention to perform fiber jump between at least two optical fiber distribution frames. The process of its implementation is not repeated here.
  • the optical fiber wiring method provided in this embodiment can be performed by an optical fiber distribution frame, especially an intelligent optical fiber distribution frame.
  • Step C10 Receive port indication information sent by the cluster management device, and light the indicator of the port corresponding to the port indication information.
  • Step C20 The jumper identifier is inserted into the port, and the jumper identifier of the jumper and the port identifier of the port are obtained, and the jumper identifier and the port identifier are sent to the cluster management device.
  • the optical fiber distribution frame receives the port indication information sent by the cluster management device, and the indicator light of the port corresponding to the port indication information is lit, and when the jump fiber is inserted into the port, the fiber jumper is obtained.
  • the fiber ID and the port ID of the port are sent to the cluster management device.
  • the step C10 may further include the following steps:
  • Step C30 After detecting the insertion of the fiberbeat in the detection port, obtain the fiberbeat identifier of the fiberbeat, and send the fiberbeat identifier as the fiberbeat identifier to be determined to the cluster management device.
  • One port in the fiber distribution frame can be set as a detection port in advance, or it can be set independently.
  • a detection unit having a detection port is disposed to implement detection of the fiber jump.
  • step C10 the receiving port indication information sent by the cluster management device is used to light the indicator of the port corresponding to the port indication information, which may include the following steps:
  • Receiving the port indication information sent by the cluster management device determining whether the port corresponding to the port indication information is available, and if available, the indicator of the port is lit, and if not available, sending the indicator to the cluster management device error report.
  • the fiber distribution frame can first check whether the received port indication information is correct. When the port corresponding to the port indication information is unavailable, send an error report to the cluster management device to improve the correctness of the fiber jump construction.
  • the fiber distribution frame detects the fiber jumper.
  • a new fiber jumper can be used.
  • the correspondence between the identifier and the port identifier is sent to the cluster management device, so that the cluster management device can update the information of the fiber distribution frame even.
  • FIG. 3 is a schematic structural diagram of a cluster management device according to an embodiment of the present invention.
  • the cluster management device 81 provided in this embodiment may implement various steps of the fiber-optic wiring method applied to the cluster management device 81 according to any embodiment of the present invention, and details are not described herein.
  • the cluster management device 81 provided in this embodiment specifically includes a first processing unit 11 and a second processing unit 12.
  • the first processing unit 11 is configured to determine at least the first optical fiber distribution frame 821 and the first according to the fiber jump setting information.
  • the second fiber distribution frame 822 generates first port indication information and second port indication information.
  • the second processing unit 12 is configured to send the first port indication information to the first fiber distribution frame 821, and send the second port indication information to the second fiber distribution frame 822 to receive the The first port identifier sent by the first fiber distribution frame 821 and the fiber jump identifier corresponding to the first port identifier, and the second port identifier sent by the second fiber distribution frame 822 and the hop corresponding to the second port identifier are received. Fiber logo.
  • the first processing unit 11 determines at least the first fiber distribution frame 821 and the second fiber distribution frame 822 according to the fiber jump setting information, and generates first port indication information and a second port indication.
  • the second processing unit 12 sends the first port indication information to the first fiber distribution frame 821, and sends the second port indication information to the second fiber distribution frame 822 to receive the first fiber distribution frame 821.
  • the first port identifier and the first port identifier correspond to the fiber jump identifier, and receive the second port identifier sent by the second fiber distribution frame 822 and the jumper identifier corresponding to the second port identifier.
  • FIG. 4 is a schematic structural diagram of another cluster management device according to an embodiment of the present invention.
  • the cluster management device 81 may further include a first detecting unit 13 for receiving the to-be-determined transmission sent by the second optical fiber distribution frame 822.
  • the fiberbeat identifier of the fiberbeat identifier if the fiberbeat identifier to be determined is corresponding to the first port identifier If the same is found, the second fiber distribution frame 822 is sent with the correct report of the jumper. If the fiberbeat identifier to be determined is different from the first port identifier, the The second fiber distribution frame 822 sends an indication report of a fiber jump error.
  • the detection of the fiber jump by the setting of the first detecting unit 13 can ensure the correctness of the fiber jump construction.
  • the cluster management device 81 may further include a reporting unit 14, and the reporting unit 14 is configured to use the first port identifier and the first port identifier corresponding to the jumper identifier and the second The port identifier and the jumper identifier corresponding to the second port identifier are sent to the network management device 83.
  • the cluster management device 81 may further include a first error processing unit 15 for receiving the first error report sent by the first fiber distribution frame 821, according to The first error report regenerates the first port indication information, and sends the regenerated first port indication information to the first fiber distribution frame 821.
  • the cluster management device 81 may further include a second error processing unit 16, and the second error processing unit 16 is configured to receive the second error report sent by the second fiber distribution frame 822, according to The second error report regenerates the second port indication information, and sends the regenerated second port indication information to the second fiber distribution frame 822.
  • FIG. 5 is a schematic structural diagram of an optical fiber distribution frame according to an embodiment of the present invention.
  • the optical fiber distribution frame 82 provided in this embodiment can implement various steps of the optical fiber wiring method applied to the optical fiber distribution frame 82 provided by any embodiment of the present invention, and details are not described herein again.
  • Light provided by this embodiment The fiber distribution frame 82 specifically includes a third processing unit 21 and a fourth processing unit 22.
  • the third processing unit 21 is configured to receive the port indication information sent by the cluster management device 81, and illuminate the indicator of the port corresponding to the port indication information.
  • the fourth processing unit 22 is configured to detect the insertion of the jumper in the port, obtain the fiberbeat identifier of the jumper, and the port identifier of the port, and send the jumper identifier and the port identifier to the The cluster management device 81 is described.
  • the optical fiber distribution frame 82 and the third processing unit 21 of the embodiment receive the port indication information sent by the cluster management device 81, and the indicator of the port corresponding to the port indication information is illuminated, and the fourth processing unit 22 detects the insertion of the port.
  • the fiber is skipped, the fiberbeat identifier of the fiberbeat and the port identifier of the port are obtained, and the fiberbeat identifier and the port identifier are sent to the cluster management device 81.
  • the construction task is dispatched and the construction information is reported, which avoids the problem that the construction information in the mobile terminal installed with the iField is easily covered, and the cross-sector is improved. The efficiency of fiber jump construction.
  • FIG. 6 is a schematic structural diagram of another optical fiber distribution frame according to an embodiment of the present invention.
  • the optical fiber distribution frame 82 may further include a second detecting unit 23, where the second detecting unit 23 is configured to detect that the jumper is inserted into the detecting port, and obtain The fiber-optic fiber-hopping identifier of the fiber-hopping fiber is sent to the cluster management device 81 as the fiber-optic fiber-optic identifier to be determined, and the fiber-hopping correct indication report or the fiber-hopping error sent by the cluster management device 81 is received. Instruct the report.
  • the third processing unit 21 is further configured to receive the cluster management device.
  • the port indication information sent by the device 81 determines whether the port corresponding to the port indication information is available. If available, the indicator of the port is lit. If not, the error report is sent to the cluster management device 81. Through error reporting, the correctness of fiber jump construction can be improved.
  • the first optical fiber distribution frame and the second optical fiber distribution frame in the above embodiments can be realized by the optical fiber distribution frame 82 provided in this embodiment.
  • the embodiment of the present invention provides a fiber distribution system comprising: the cluster management device provided by any embodiment of the present invention, and the optical fiber distribution frame provided by any embodiment of the present invention.
  • optical fiber wiring method, device and system provided by the embodiments of the present invention implement management and data interaction of multiple optical fiber distribution frames through the cluster management device, and effectively solve the problem of fiber jump construction between different optical fiber distribution frames. Construction guidance business coordination issues.
  • the foregoing program may be stored in a computer readable storage medium, and the program is executed when executed.
  • the foregoing steps include the steps of the foregoing method embodiments; and the foregoing storage medium includes: a medium that can store program codes, such as a ROM, a RAM, a magnetic disk, or an optical disk.

Abstract

本发明实施例提供一种光纤配线方法、设备及系统,该光纤配线方法包括:根据跳纤设置信息至少确定第一光纤配线架和第二光纤配线架,并生成第一端口指示信息和第二端口指示信息;将第一端口指示信息发送给第一光纤配线架,将第二端口指示信息发送给第二光纤配线架,接收第一光纤配线架发送的第一端口标识和第一端口标识对应的跳纤标识,接收第二光纤配线架发送的第二端口标识和第二端口标识对应的跳纤标识。本发明实施例提供的光纤配线方法、设备及系统,避免了安装有iField的移动终端中的施工信息易被覆盖的问题,提高了跨柜跳纤施工的效率。

Description

光纤配线方法、 设备及系统 本申请要求 2012年 06月 06日提交的,申请号为 201210183957.5,名称为 《光纤配线方法、 设备及系统》 的中国专利申请的优先权,其全部内容通 过引用结合在本申请文件中。
-技术领域
本发明实施例涉及通信技术,尤其涉及一种光纤配线方法、 设备及系 统。
•背景技术
随着 FTTx ( X = H for home , Ρ for premises , C for curb and N for node or neighborhood ,其中 FTTH为光纤到户 ,FTTP为光纤到驻地,FTTC为光纤到 路边 /小区, FTTN为光纤到节点 )的逐渐普及,光纤基础配线网络技术得到 飞速发展。
光纤配线架( Optical Distribution Frame ,简称 ODF )是组成光纤基础 配线网络的基础设备之一,光纤配线架上设置有多个端口 ,用以插入光纤, 可以通过跳纤将两个端口连接,实现光纤之间的连通。 光纤配线架可以读 取插入的跳纤的电子 ID ( Electronic Identity ) ,确定跳纤与端口的连接关系。 在施工过程中 ,可以通过安装有 iField ( Intelligent Field )软件的移动终 端与光纤配线架连接,收集该光纤配线架的跳纤与端口的连接关系。 但是, 当在不同的光纤配线架之间进行跳纤时,光纤配线架可能设置在不同的区 域,该跳纤过程需要通过同一移动终端才能完成, 当施工人员通过一个移 动终端收集完一个光纤配线架的信息后,必须保证该信息不被覆盖而需要 马上对另一个管线配线架进行施工,当移动终端中存储的该信息与实际不 符时,施工无法完成。
-发明内容
本发明实施例提供一种光纤配线方法、 设备及系统 ,以避免安装有 iField的移动终端中的施工信息易被覆盖的问题,提高跨柜跳纤施工的效率。
本发明实施例提供一种光纤配线方法,包括:
根据跳纤设置信息至少确定第一光纤配线架和第二光纤配线架,并生 成第一端口指示信息和第二端口指示信息;
将所述第一端口指示信息发送给所述第一光纤配线架,将所述第二端 口指示信息发送给所述第二光纤配线架,接收所述第一光纤配线架发送的 第一端口标识和所述第一端口标识对应的跳纤标识,接收第二光纤配线架 发送的第二端口标识和所述第二端口标识对应的跳纤标识。
本发明实施例提供一种光纤配线方法,包括:
接收集群管理设备发送的端口指示信息,将所述端口指示信息对应的 端口的指示灯点亮;
检测到所述端口中插入跳纤时,获取所述跳纤的跳纤标识和所述端口 的端口标识,将所述跳纤标识和所述端口标识发送给所述集群管理设备。 本发明实施例提供一种集群管理设备,包括:
第一处理单元,用于根据跳纤设置信息至少确定第一光纤配线架和第 二光纤配线架,并生成第一端口指示信息和第二端口指示信息;
第二处理单元,用于将所述第一端口指示信息发送给所述第一光纤配 线架,将所述第二端口指示信息发送给所述第二光纤配线架,接收所述第 一光纤配线架发送的第一端口标识和所述第一端口标识对应的跳纤标识, 接收第二光纤配线架发送的第二端口标识和所述第二端口标识对应的跳纤 标识。
本发明实施例提供一种光纤配线架,包括:
第三处理单元,用于接收集群管理设备发送的端口指示信息,将所述 端口指示信息对应的端口的指示灯点亮;
第四处理单元,用于检测到所述端口中插入跳纤时,获取所述跳纤的 跳纤标识和所述端口的端口标识,将所述跳纤标识和所述端口标识发送给 所述集群管理设备。
本发明实施例提供一种光纤配线系统,包括:
本发明实施例提供的集群管理设备,以及至少两个本发明实施例提供 的光纤配线架。
由上述技术方案可知,本发明实施例提供的光纤配线方法、 设备及系 统,集群管理设备根据跳纤设置信息至少确定第一光纤配线架和第二光纤 配线架,并生成第一端口指示信息和第二端口指示信息,将第一端口指示 信息发送给第一光纤配线架,将第二端口指示信息发送给第二光纤配线架, 接收第一光纤配线架发送的第一端口标识和第一端口标识对应的跳纤标 识,接收第二光纤配线架发送的第二端口标识和第二端口标识对应的跳纤 标识。 实现了在不同光纤配线架之间进行跳纤施工吋 ,施工任务的下发以 及施工信息的上报,避免了安装有 iField的移动终端中的施工信息易被覆盖 的问题,提高了跨柜跳纤施工的效率。
-附图说明
为了更清楚地说明本发明实施例或现有技术中的技术方案,下面将对 实施例或现有技术描述中所需要使用的附图作一简单地介绍,显而易见地, 下面描述中的附图是本发明的一些实施例,对于本领域普通技术人员来讲, 在不付出创造性劳动性的前提下,还可以根据这些附图获得其他的附图。
图 1为本发明实施例提供的一种光纤配线方法流程图 ;
图 2为本发明实施例提供的另一种光纤配线方法流程图 ;
图 3为本发明实施例提供的一种集群管理设备结构示意图 ;
图 4为本发明实施例提供的另一种集群管理设备结构示意图 ; 图 5为本发明实施例提供的一种光纤配线架结构示意图 ;
图 6为本发明实施例提供的另一种光纤配线架结构示意图。 •具体实施方式
为使本发明实施例的目的、 技术方案和优点更加清楚,下面将结合本 发明实施例中的附图 ,对本发明实施例中的技术方案进行清楚、 完整地描 述,显然,所描述的实施例是本发明一部分实施例,而不是全部的实施例。 基于本发明中的实施例,本领域普通技术人员在没有作出创造性劳动前提 下所获得的所有其他实施例,都属于本发明保护的范围。
图 1为本发明实施例提供的一种光纤配线方法流程图。 如图 1所示, 本实施例提供的光纤配线方法具体可以应用于跳纤施工中在至少两个光纤 配线架之间进行跳纤的过程,本实施例提供的光纤配线方法可以通过集群 管理设备来执行,该集群管理设备可以对其管辖范围内的所有光纤配线架 进行管理。 该集群管理设备可以采用软件和 /或硬件的方式来实现。
本实施例提供的光纤配线方法具体包括:
步骤 S10、根据跳纤设置信息至少确定第一光纤配线架和第二光纤配线 架,并生成第一端口指示信息和第二端口指示信息;
步骤 S20、将所述第一端口指示信息发送给所述第一光纤配线架,将所 述第二端口指示信息发送给所述第二光纤配线架,接收所述第一光纤配线 架发送的第一端口标识和所述第一端口标识对应的跳纤标识,接收第二光 纤配线架发送的第二端口标识和所述第二端口标识对应的跳纤标识。
具体地,跳纤设置信息具体可以为施工单,可以包括至少两个光纤配 线架的信息,还可以包括每个光纤配线架上的待施工的端口的信息。 集群 管理设备中可以存储有其管辖的光纤配线架的信息,则集群管理设备可以 根据跳纤设置信息中的待施工的光纤配线架的使用情况确定待施工的端 口。 该跳纤设置信息具体可以由网管设备下发。 集群管理设备根据该跳纤 设置信息可以至少确定第一光纤配线架和第二光纤配线架,生成对应于第 一光纤配线架的第一端口指示信息,和对应于第二光纤配线架的第二端口 指示信息。 第一端口指示信息用于指示第一光纤配线架上的第一端口 ,用 于插入跳纤的一端。 第二端口指示信息用于指示第二光纤配线架上的第二 端口 ,用于插入跳纤的另一端。
集群管理设备具体可以通过以太网网口或者 RS232/RS485串口实现与 第一光纤配线架或第二光纤配线架的通信。 集群管理设备将第一端口指示 信息发送给第一光纤配线架,将第二端口指示信息发送给第二光纤配线架。 第一光纤配线架接收到该第一端口指示信息后,将该第一端口指示信息对 应的第一端口上的指示灯点亮,该指示灯具体可以为 LED ( Light Emitting Diode ,发光二极管)灯。 施工人员就可以根据该指示灯将跳纤的一端插入 该第一端口 , 当第一光纤配线架检测到有跳纤插入时,获取该跳纤的跳纤 标识和该第一端口的第一端口标识,跳纤标识具体为跳纤的电子 ID。 将该 跳纤标识和第一端口标识发送给集群管理设备,集群管理设备可以获知该 跳纤标识所指示的跳纤的一端与第一光纤配线架的该第一端口连接。 类似 地,第二光纤配线架接收到该第二端口指示信息后,将该第二端口指示信 息对应的第二端口上的指示灯点亮,施工人员就可以根据该指示灯将跳纤 的另一端插入该第二端口 , 当第二光纤配线架检测到有跳纤插入时,获取 该跳纤的跳纤标识和该第二端口的第二端口标识,并将跳纤标识和第二端 口标识发送给集群管理设备,集群管理设备可以获知该跳纤标识所指示的 跳纤的另一端与第二光纤配线架的该第二端口连接,则可以确定该跳纤将 第一光纤配线架的第一端口与第二光纤配线架的第二端口连通。
值得注意的是,集群管理设备向第二光纤配线架发送第二端口指示信 息,与接收第一光纤配线架发送的第一端口标识和所述第一端口标识对应 的跳纤标识之间并不存在必然的时序关系。
本实施例提供的光纤配线方法,集群管理设备根据跳纤设置信息至少 确定第一光纤配线架和第二光纤配线架,并生成第一端口指示信息和第二 端口指示信息,将第一端口指示信息发送给第一光纤配线架,将第二端口 指示信息发送给第二光纤配线架,接收第一光纤配线架发送的第一端口标 识和第一端口标识对应的跳纤标识,接收第二光纤配线架发送的第二端口 标识和第二端口标识对应的跳纤标识。 实现了在不同光纤配线架之间进行 跳纤施工时,施工任务的下发以及施工信息的上报,避免了安装有 iField 的移动终端中的施工信息易被覆盖的问题,提高了跨柜跳纤施工的效率。
进一步地,在本实施例中 ,步骤 S20 中的所述接收第二光纤配线架发 送的第二端口标识和所述第二端口标识对应的跳纤标识之前,还可以包括 如下步骤:
步骤 S30、接收所述第二光纤配线架发送的待确定的跳纤标识,若所述 待确定的跳纤标识与所述第一端口标识对应的跳纤标识相同 ,则将向所述 第二光纤配线架发送跳纤 IE确指示报告,若所述待确定的跳纤标识与所述 第一端口标识对应的跳纤标识不相同 ,则将向所述第二光纤配线架发送跳 纤错误指示报告。
当施工现场已经铺设了多条空闲的跳纤时,施工人员并不知道是哪条 跳纤进行操作。 施工人员可以随便选择一条跳纤,将该跳纤的一端插入到 第一光纤配线架的第一端口中 ,当第一光纤配线架检测到有跳纤插入时, 获取该跳纤的跳纤标识和该第一端口的第一端口标识,将该跳纤标识和第 一端口标识发送给集群管理设备。施工人员再对跳纤的另一端进行操作吋, 也可以随便挑选一条跳纤,将对该跳纤进行检测,则可以设置检测单元, 该检测单元可以设置在第二光纤配线架上,也可以单独设置。 检测单元上 设置有检测端口 ,施工人员可以将该跳纤插入到检测端口中 ,检测端口获 取该跳纤的跳纤标识,将该跳纤标识作为待确定的跳纤标识发送给集群管 理设备,集群管理设备将该待确定的跳纤标识与第一光纤配线架发送的跳 纤标识进行比较,若二者相同,则向该第二光纤配线架发送跳纤正确指示 报告,第二光纤配线架可以对该指示报告进行显示,以指示施工人员该检 测的跳纤即为待施工的跳纤。 若二者不同 ,集群管理设备向第二光纤配线 架发送跳纤错误指示报告,施工人员可以根据该指示报告更换其他跳纤进 行检测 ,直到检测到待施工的跳纤为止。 通过对跳纤的检测 , 可以保证跳 纤施工的正确性。
进一步地,在本实施例中 ,该光纤配线方法还可以包括如下步骤: 步骤 S40、将所述第一端口标识和所述第一端口标识对应的跳纤标识以 及所述第二端口标识和所述第二端口标识对应的跳纤标识发送给网管设 备。
具体地,第一端口标识对应的跳纤标识与第二端口标识对应的跳纤标 识相同 ,则集群管理设备将该第一端口标识、 第二端口标识以及跳纤标识 作为一组信息发送给网管设备,网管设备对接收到的信息进行存储,以实 现对光纤基础配线网络的管理。
进一步地,在本实施例中 ,步骤 S20 中所述将所述第一端口指示信息 发送给所述第一光纤配线架之后,所述接收所述第一光纤配线架发送的第 一端口标识和所述第一端口标识对应的跳纤标识之前,还可以包括如下步 步骤 S50、接收所述第一光纤配线架发送的第一错误报告,根据所述第 一错误报告重新生成第一端口指示信息,将重新生成的第一端口指示信息 发送给所述第一光纤配线架。 当第一端口指示信息所指示的第一端口可不用吋,第一光纤配线架向 集群管理设备发送第一错误报告。 第一端口不可用可能存在以下情形:第 一端口并不是第一光纤配线架上的端口 ;第一端口中已经插入了其他跳纤; 第一端口损坏等。 集群管理设备根据该第一错误报告重新生成第一端口指 示信息以向第一光纤配线架指示其他端口。
进一步地,在本实施例中 ,步骤 S20 中所述将所述第二端口指示信息 发送给所述第二光纤配线架之后,所述接收所述第二光纤配线架发送的第 二端口标识和所述第二端口标识对应的跳纤标识之前,还包括:
步骤 S60、接收所述第二光纤配线架发送的第二错误报告,根据所述第 二错误报告重新生成第二端口指示信息,将重新生成的第二端口指示信息 发送给所述第二光纤配线架。
当第二端口指示信息所指示的第二端口可不用吋,第二光纤配线架向 集群管理设备发送第二错误报告。 第二端口不可用可能存在以下情形:第 二端口并不是第二光纤配线架上的端口 ;第二端口中已经插入了其他跳纤; 第二端口损坏等。 集群管理设备根据该第二错误报告重新生成第二端口指 示信息以向第二光纤配线架指示其他端口。
图 2为本发明实施例提供的另一种光纤配线方法流程图。 如图 2所示, 本实施例提供的光纤配线方法可以与本发明任意实施例提供的应用于集成 管理设备侧的光纤配线方法配合实现在至少两个光纤配线架之间进行跳纤 的过程,其具体实现过程此不再赘述。 本实施例提供的光纤配线方法可以 通过光纤配线架尤其是智能光纤配线架来执行。
本实施例提供的光纤配线方法具体包括:
步骤 C10、 接收集群管理设备发送的端口指示信息,将所述端口指示 信息对应的端口的指示灯点亮;
步骤 C20、 检测到所述端口中插入跳纤吋,获取所述跳纤的跳纤标识 和所述端口的端口标识,将所述跳纤标识和所述端口标识发送给所述集群 管理设备。
本实施例提供的光纤配线方法,光纤配线架接收集群管理设备发送的 端口指示信息,将端口指示信息对应的端口的指示灯点亮,检测到端口中 插入跳纤时,获取跳纤的跳纤标识和端口的端口标识,将跳纤标识和端口 标识发送给集群管理设备。实现了在不同光纤配线架之间进行跳纤施工吋, 施工任务的下发以及施工信息的上报,避免了安装有 iFidd的移动终端中的 施工信息易被覆盖的问题,提高了跨柜跳纤施工的效率。
进一步地,在本实施例中 ,步骤 C10 ,所述接收集群管理设备发送的 端口指示信息之前,还可以包括如下步骤:
步骤 C30、 检测到检测端口中插入所述跳纤时,获取所述跳纤的跳纤 标识,将所述跳纤标识作为待确定的跳纤标识发送给所述集群管理设备。
可以预先将光纤配线架中的一个端口设置为检测端口 ,也可以独立设 置具有检测端口的检测单元,以实现对跳纤的检测。
在本实施例中 ,步骤 C10 ,所述接收集群管理设备发送的端口指示信 息,将所述端口指示信息对应的端口的指示灯点亮,具体可以包括如下步 骤:
接收所述集群管理设备发送的端口指示信息,判断所述端口指示信息 对应的端口是否可用 ,若可用 ,则将所述端口的指示灯点亮,若不可用 , 则向所述集群管理设备发送错误报告。
光纤配线架可以首先检验接收到的端口指示信息是否正确 , 当端口指 示信息对应的端口不可用时, 向集群管理设备发送错误报告,以提高跳纤 施工的正确性。
在实际应用过程中 ,每当端口中插入跳纤时,光纤配线架都会对该跳 纤进行检测 , 当获取到的跳纤标识和端口标识的对应关系发生改变时,可 以将新的跳纤标识和端口标识的对应关系发送给集群管理设备,以使集群 管理设备可以对光纤配线架的信息进行即使地更新。
图 3为本发明实施例提供的一种集群管理设备结构示意图。 如图 3所 示,本实施例提供的集群管理设备 81具体可以实现本发明任意实施例提供 的应用于集群管理设备 81的光纤配线方法的各个步骤,此不再赘述。 本实 施例提供的集群管理设备 81具体包括第一处理单元 11和第二处理单元 12。 第一处理单元 11用于根据跳纤设置信息至少确定第一光纤配线架 821和第 二光纤配线架 822,并生成第一端口指示信息和第二端口指示信息。第二处 理单元 12用于将所述第一端口指示信息发送给所述第一光纤配线架 821 , 将所述第二端口指示信息发送给所述第二光纤配线架 822,接收所述第一光 纤配线架 821 发送的第一端口标识和所述第一端口标识对应的跳纤标识, 接收第二光纤配线架 822发送的第二端口标识和所述第二端口标识对应的 跳纤标识。
本实施例提供的集群管理设备 81,第一处理单元 11根据跳纤设置信息 至少确定第一光纤配线架 821和第二光纤配线架 822,并生成第一端口指示 信息和第二端口指示信息,第二处理单元 12将第一端口指示信息发送给第 一光纤配线架 821 ,将第二端口指示信息发送给第二光纤配线架 822 ,接收 第一光纤配线架 821发送的第一端口标识和第一端口标识对应的跳纤标识, 接收第二光纤配线架 822发送的第二端口标识和第二端口标识对应的跳纤 标识。 实现了在不同光纤配线架之间进行跳纤施工时,施工任务的下发以 及施工信息的上报,避免了安装有 iField的移动终端中的施工信息易被覆盖 的问题,提高了跨柜跳纤施工的效率。
图 4 为本发明实施例提供的另一种集群管理设备结构示意图。 如图 4 所示,进一步地,在本实施例中 ,该集群管理设备 81还可以包括第一检测 单元 13,第一检测单元 13用于接收所述第二光纤配线架 822发送的待确定 的跳纤标识,若所述待确定的跳纤标识与所述第一端口标识对应的跳纤标 识相同,则将向所述第二光纤配线架 822发送跳纤正确的指示报告,若所 述待确定的跳纤标识与所述第一端口标识对应的跳纤标识不相同 ,则将向 所述第二光纤配线架 822发送跳纤错误的指示报告。 通过第一检测单元 13 的设置,对跳纤进行检测,可以保证跳纤施工的正确性。
进一步地,在本实施例中 ,该集群管理设备 81还可以包括上报单元 14 , 上报单元 14用于将所述第一端口标识和所述第一端口标识对应的跳纤标识 以及所述第二端口标识和所述第二端口标识对应的跳纤标识发送给网管设 备 83。
进一步地,在本实施例中 ,该集群管理设备 81还可以包括第一错误处 理单元 15,第一错误处理单元 15用于接收所述第一光纤配线架 821发送的 第一错误报告,根据所述第一错误报告重新生成第一端口指示信息,将重 新生成的第一端口指示信息发送给所述第一光纤配线架 821。
进一步地,在本实施例中 ,该集群管理设备 81还可以包括第二错误处 理单元 16,第二错误处理单元 16用于接收所述第二光纤配线架 822发送的 第二错误报告,根据所述第二错误报告重新生成第二端口指示信息,将重 新生成的第二端口指示信息发送给所述第二光纤配线架 822。
图 5为本发明实施例提供的一种光纤配线架结构示意图。 如图 5所示, 本实施例提供的光纤配线架 82可以实现本发明任意实施例提供的应用于光 纤配线架 82的光纤配线方法的各个步骤,此不再赘述。 本实施例提供的光 纤配线架 82具体包括第三处理单元 21和第四处理单元 22。 第三处理单元 21用于接收集群管理设备 81发送的端口指示信息,将所述端口指示信息对 应的端口的指示灯点亮。第四处理单元 22用于检测到所述端口中插入跳纤 曰寸 ,获取所述跳纤的跳纤标识和所述端口的端口标识,将所述跳纤标识和 所述端口标识发送给所述集群管理设备 81。
本实施例提供的光纤配线架 82 ,第三处理单元 21 接收集群管理设备 81发送的端口指示信息,将端口指示信息对应的端口的指示灯点亮,第四 处理单元 22检测到端口中插入跳纤时 '获取跳纤的跳纤标识和端口的端口 标识,将跳纤标识和端口标识发送给集群管理设备 81。 实现了在不同光纤 配线架 82之间进行跳纤施工时,施工任务的下发以及施工信息的上报,避 免了安装有 iField的移动终端中的施工信息易被覆盖的问题,提高了跨柜跳 纤施工的效率。
图 6为本发明实施例提供的另一种光纤配线架结构示意图。 如图 6所 示,进一步地,在本实施例中 ,该光纤配线架 82还可以包括第二检测单元 23 ,第二检测单元 23用于检测到检测端口中插入所述跳纤吋,获取所述跳 纤的跳纤标识,将所述跳纤标识作为待确定的跳纤标识发送给所述集群管 理设备 81 ,以及接收所述集群管理设备 81发送的跳纤正确指示报告或跳纤 错误指示报告。
在本实施例中,所述第三处理单元 21还可以用于接收所述集群管理设 备 81发送的端口指示信息,判断所述端口指示信息对应的端口是否可用 , 若可用 ,则将所述端口的指示灯点亮,若不可用 ,则向所述集群管理设备 81发送错误报告。 通过错误上报,可以提高跳纤施工的正确性。
上述实施例中的第一光纤配线架和第二光纤配线架均可以通过本实施 例提供的光纤配线架 82实现。
本发明实施例提供一种光纤配线系统包括:本发明任意实施例提供的 集群管理设备,以及本发明任意实施例提供的光纤配线架。
本发明实施例提供的光纤配线方法、 设备及系统,通过集群管理设备 实现了对多个光纤配线架的管理和数据交互,有效地解决了不同光纤配线 架之间跳纤施工所涉及的施工指导业务的协调问题。
本领域普通技术人员可以理解:实现上述方法实施例的全部或部分步 骤可以通过程序指令相关的硬件来完成,前述的程序可以存储于一计算机 可读取存储介质中 ,该程序在执行时,执行包括上述方法实施例的步骤; 而前述的存储介质包括: ROM、 RAM, 磁碟或者光盘等各种可以存储程序 代码的介质。
最后应说明的是:以上实施例仅用以说明本发明的技术方案,而非对 其限制;尽管参照前述实施例对本发明进行了详细的说明 ,本领域的普通 技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修 改,或者对其中部分技术特征进行等同替换;而这些修改或者替换,并不 使相应技术方案的本质脱离本发明各实施例技术方案的范围。

Claims

权 利 要 求
1、 一种光纤配线方法,其特征在于,包括:
根据跳纤设置信息至少确定第一光纤配线架和第二光纤配线架,并生 成第一端口指示信息和第二端口指示信息;
将所述第一端口指示信息发送给所述第一光纤配线架,将所述第二端 口指示信息发送给所述第二光纤配线架,接收所述第一光纤配线架发送的 第一端口标识和所述第一端口标识对应的跳纤标识,接收第二光纤配线架 发送的第二端口标识和所述第二端口标识对应的跳纤标识。
2、 根据权利要求 1所述的光纤配线方法,其特征在于,所述接收第二 光纤配线架发送的第二端口标识和所述第二端口标识对应的跳纤标识之 前,还包括:
接收所述第二光纤配线架发送的待确定的跳纤标识,若所述待确定的 跳纤标识与所述第一端口标识对应的跳纤标识相同 ,则将向所述第二光纤 配线架发送跳纤正确指示报告,若所述待确定的跳纤标识与所述第一端口 标识对应的跳纤标识不相同 ,则将向所述第二光纤配线架发送跳纤错误指 示报告。
3、 根据权利要求 1或 2所述的光纤配线方法,其特征在于,还包括: 将所述第一端口标识和所述第一端口标识对应的跳纤标识以及所述第 二端口标识和所述第二端口标识对应的跳纤标识发送给网管设备。
4、 根据权利要求 1或 2所述的光纤配线方法,其特征在于,所述将所 述第一端口指示信息发送给所述第一光纤配线架之后,所述接收所述第一 光纤配线架发送的第一端口标识和所述第一端口标识对应的跳纤标识之 前 ,还包括:
接收所述第一光纤配线架发送的第一错误报告,根据所述第一错误报 告重新生成第一端口指示信息,将重新生成的第一端口指示信息发送给所 述第一光纤配线架。
5、 根据权利要求 1或 2所述的光纤配线方法,其特征在于,所述将所 述第二端口指示信息发送给所述第二光纤配线架之后,所述接收所述第二 光纤配线架发送的第二端口标识和所述第二端口标识对应的跳纤标识之 前 ,还包括:
接收所述第二光纤配线架发送的第二错误报告,根据所述第二错误报 告重新生成第二端口指示信息,将重新生成的第二端口指示信息发送给所 述第二光纤配线架。
6、 一种光纤配线方法,其特征在于,包括:
接收集群管理设备发送的端口指示信息,将所述端口指示信息对应的 端口的指示灯点亮;
检测到所述端口中插入跳纤吋,获取所述跳纤的跳纤标识和所述端口 的端口标识,将所述跳纤标识和所述端口标识发送给所述集群管理设备。
7、 根据权利要求 6所述的光纤配线方法,其特征在于,所述接收集群 管理设备发送的端口指示信息之前,还包括:
检测到检测端口中插入所述跳纤吋,获取所述跳纤的跳纤标识,将所 述跳纤标识作为待确定的跳纤标识发送给所述集群管理设备。
8、 根据权利要求 6或 7所述的光纤配线方法,其特征在于,所述接收 集群管理设备发送的端口指示信息,将所述端口指示信息对应的端口的指 示灯点亮,包括:
接收所述集群管理设备发送的端口指示信息,判断所述端口指示信息 对应的端口是否可用 ,若可用 ,则将所述端口的指示灯点亮,若不可用 , 则向所述集群管理设备发送错误报告。
9、 一种集群管理设备,其特征在于,包括:
第一处理单元,用于根据跳纤设置信息至少确定第一光纤配线架和第 二光纤配线架,并生成第一端口指示信息和第二端口指示信息;
第二处理单元,用于将所述第一端口指示信息发送给所述第一光纤配 线架,将所述第二端口指示信息发送给所述第二光纤配线架,接收所述第 一光纤配线架发送的第一端口标识和所述第一端口标识对应的跳纤标识, 接收第二光纤配线架发送的第二端口标识和所述第二端口标识对应的跳纤 标识。
10、 根据权利要求 9所述的集群管理设备,其特征在于,还包括: 第一检测单元,用于接收所述第二光纤配线架发送的待确定的跳纤标 识,若所述待确定的跳纤标识与所述第一端口标识对应的跳纤标识相同, 则将向所述第二光纤配线架发送跳纤正确的指示报告,若所述待确定的跳 纤标识与所述第一端口标识对应的跳纤标识不相同 ,则将向所述第二光纤 配线架发送跳纤错误的指示报告。
11、根据权利要求 9或 10所述的集群管理设备,其特征在于,还包括: 上报单元,用于将所述第一端口标识和所述第一端口标识对应的跳纤 标识以及所述第二端口标识和所述第二端口标识对应的跳纤标识发送给网 管设备。
12、根据权利要求 9或 10所述的集群管理设备,其特征在于,还包括: 第一错误处理单元,用于接收所述第一光纤配线架发送的第一错误报 告,根据所述第一错误报告重新生成第一端口指示信息,将重新生成的第 一端口指示信息发送给所述第一光纤配线架。
13、根据权利要求 9或 10所述的集群管理设备,其特征在于,还包括: 第二错误处理单元,用于接收所述第二光纤配线架发送的第二错误报 告,根据所述第二错误报告重新生成第二端口指示信息,将重新生成的第 二端口指示信息发送给所述第二光纤配线架。
14、 一种光纤配线架,其特征在于,包括:
第三处理单元,用于接收集群管理设备发送的端口指示信息,将所述 端口指示信息对应的端口的指示灯点亮;
第四处理单元,用于检测到所述端口中插入跳纤时,获取所述跳纤的 跳纤标识和所述端口的端口标识,将所述跳纤标识和所述端口标识发送给 所述集群管理设备。
15、 根据权利要求 14所述的光纤配线架,其特征在于,还包括: 第二检测单元,用于检测到检测端口中插入所述跳纤吋,获取所述跳 纤的跳纤标识,将所述跳纤标识作为待确定的跳纤标识发送给所述集群管 理设备,以及接收所述集群管理设备发送的跳纤正确指示报告或跳纤错误 指示报告。
16、 根据权利要求 14或 15所述的光纤配线架,其特征在于:所述第 三处理单元还用于接收所述集群管理设备发送的端口指示信息,判断所述 端口指示信息对应的端口是否可用 ,若可用 ,则将所述端口的指示灯点亮, 若不可用 ,则向所述集群管理设备发送错误报告。
17、 一种光纤配线系统,其特征在于,包括:
如权利要求 9-13任一所述的集群管理设备,以及至少两个如权利要求 14-16任一所述的光纤配线架。
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EP2852095B1 (en) 2016-11-16
CN102752672B (zh) 2015-07-08
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US20150093112A1 (en) 2015-04-02

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