Optical fiber path determination method and optical fiber path determination apparatus

By receiving and analyzing the tag information and service optical signals of the target core, and combining the judgment results of the candidate service optical signals, the optical fiber path is automatically determined, which solves the problem of interrupting service in the prior art optical path determination, and realizes fast and automatic optical path generation and wireless core clamp data pairing.

WO2025103175A1PCT designated stage expired Publication Date: 2025-05-22CHINA MOBILE GROUP ZHEJIANG +1
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Patent Information

Application Number
PCT/CN2024/129851
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-11-16
Filing Date
2024-11-05
Publication Date
2025-05-22

AI Technical Summary

Technical Problem

The prior art is difficult to quickly determine the fiber path without interrupting services, and traditional methods require manual search or use of high-cost intelligent optical distribution network systems.

Method used

By receiving the first tag information of the target core and the target service optical signal transmitted by the management terminal, the judgment result is obtained based on the multiple candidate service optical signals, and the optical fiber path is determined based on the judgment result and the clamp label information of the core clamp.

Benefits of technology

It realizes that the optical fiber path is automatically determined without interrupting communication services, improves the generation efficiency of optical path direction, and realizes the fiber core clamp data pairing in different computer rooms through wireless communication.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure relates to the technical field of computers, and provides an optical fiber path determination method and an optical fiber path determination apparatus. The optical fiber path determination method comprises: receiving first tag information of a target fiber core sent by a management terminal and a target service optical signal transmitted by the target fiber core, wherein the first tag information comprises clamp jaw tag information of a first fiber core clamp corresponding to the target fiber core; on the basis of a plurality of candidate service optical signals, acquiring a judgment result corresponding to the target service optical signal; and on the basis of the judgment result and the clamp jaw tag information of the first fiber core clamp, determining an optical fiber path of the target fiber core.
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Description

Method for determining optical fiber path, and device for determining optical fiber path

[0001] CROSS-REFERENCE TO RELATED APPLICATIONS

[0002] This disclosure claims priority to Chinese patent application No. 202311541857.X filed in China on November 16, 2023, the entire contents of which are incorporated herein by reference. Technical Field

[0003] The present disclosure belongs to the field of computer technology, and particularly relates to a method for determining an optical fiber path and an apparatus for determining an optical fiber path. Background Art

[0004] Traditional methods for managing fiber patching resources in optical distribution frames (ODFs) primarily rely on manual port search, the use of high-cost, power-required active or semi-active intelligent optical distribution network (ODN) systems, or digital marking with electronic tags on traditional patch panels to identify the optical path of each signal light. However, these methods are unable to quickly identify the optical path without interrupting services.

[0005] Summary of the Invention

[0006] The purpose of the embodiments of the present disclosure is to provide a method and an apparatus for determining an optical fiber path, which can solve the problem of how to quickly determine an optical path without interrupting services.

[0007] In a first aspect, an embodiment of the present disclosure provides a method for determining an optical fiber path, which is applied to a cloud platform. The method includes: receiving first label information of a target fiber core and a target service optical signal transmitted through the target fiber core sent by a management terminal, wherein the first label information includes clamp label information of a first fiber core clamp corresponding to the target fiber core; obtaining a judgment result corresponding to the target service optical signal based on multiple candidate service optical signals; and determining the optical fiber path of the target fiber core based on the judgment result and the clamp label information of the first fiber core clamp.

[0008] In a second aspect, an embodiment of the present disclosure provides a method for determining an optical fiber path, which is applied to a management terminal, the method comprising: sending an optical fiber path determination instruction to a cloud platform, wherein the optical fiber path determination instruction is used to determine the optical fiber path of a target optical core; receiving a monitoring instruction sent by the cloud platform based on the optical fiber path determination instruction, wherein the monitoring instruction is used to obtain first label information of the target optical core and a target service optical signal transmitted through the target optical core, the first label information including the clamp label information of a first optical core clamp corresponding to the target optical core; based on the monitoring instruction, reporting target monitoring information to the cloud platform, wherein the target monitoring information includes the first label information and the target service optical signal transmitted through the target optical core; receiving the optical fiber path of the target optical core determined by the cloud platform based on the target monitoring information.

[0009] In a third aspect, an embodiment of the present disclosure provides a method for determining an optical fiber path, which is applied to an acquisition device, and the method includes: receiving a signal acquisition instruction sent by a management terminal; obtaining target monitoring information based on the signal acquisition instruction, wherein the target monitoring information includes first label information of a target fiber core and a target service optical signal transmitted through the target fiber core, and the first label information includes clamp label information of a first fiber core clamp corresponding to the target fiber core; and sending the target monitoring information to the management terminal, wherein the target monitoring information is used to determine the optical fiber path of the target fiber core.

[0010] In a fourth aspect, an embodiment of the present disclosure provides a device for determining an optical fiber path, the device comprising: a receiving module for receiving first label information of a target optical core sent by a management terminal and a target service optical signal transmitted through the target optical core, wherein the first label information includes clamp label information of a first optical core clamp corresponding to the target optical core; an acquisition module for acquiring a judgment result corresponding to the target service optical signal based on multiple candidate service optical signals; and a determination module for determining the optical fiber path of the target optical core based on the judgment result and the clamp label information of the first optical core clamp.

[0011] In a fifth aspect, an embodiment of the present disclosure provides a device for determining an optical fiber path, the device comprising: a sending module for sending an optical fiber path determination instruction to a cloud platform, wherein the optical fiber path determination instruction is used to determine the optical fiber path of a target optical core; a first receiving module for receiving a monitoring instruction sent by the cloud platform based on the optical fiber path determination instruction, wherein the monitoring instruction is used to obtain first label information of the target optical core and a target service optical signal transmitted through the target optical core, and the first label information includes clamp label information of a first optical core clamp corresponding to the target optical core; a reporting module for reporting target monitoring information to the cloud platform based on the monitoring instruction, wherein the target monitoring information includes the first label information and the target service optical signal transmitted through the target optical core; and a second receiving module for receiving the optical fiber path of the target optical core determined by the cloud platform based on the target monitoring information.

[0012] In a sixth aspect, an embodiment of the present disclosure provides a device for determining an optical fiber path, the device comprising: a receiving module for receiving a signal acquisition instruction sent by a management terminal; an acquisition module for acquiring target monitoring information based on the signal acquisition instruction, wherein the target monitoring information includes first label information of a target fiber core and a target service optical signal transmitted through the target fiber core, and the first label information includes clamp label information of a first fiber core clamp corresponding to the target fiber core; a sending module for sending the target monitoring information to the management terminal, wherein the target monitoring information is used to determine the optical fiber path of the target fiber core.

[0013] In the seventh aspect, an embodiment of the present disclosure provides an electronic device, which includes a processor and a memory, wherein the memory stores programs or instructions that can be run on the processor, and when the program or instructions are executed by the processor, implements the steps of the method described in the first aspect, or implements the steps of the method described in the second aspect, or implements the steps of the method described in the third aspect.

[0014] In an eighth aspect, an embodiment of the present disclosure provides a readable storage medium, on which a program or instruction is stored. When the program or instruction is executed by a processor, the steps of the method described in the first aspect are implemented, or the steps of the method described in the second aspect are implemented, or the steps of the method described in the third aspect are implemented.

[0015] In the ninth aspect, an embodiment of the present disclosure provides a chip, which includes a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is used to run programs or instructions to implement the method described in the first aspect, or implement the steps of the method described in the second aspect, or implement the steps of the method described in the third aspect.

[0016] In the tenth aspect, an embodiment of the present disclosure provides a computer program product, which is stored in a storage medium and is executed by at least one processor to implement the method as described in the first aspect, or implement the steps of the method as described in the second aspect, or implement the steps of the method as described in the third aspect.

[0017] In the disclosed embodiment, by receiving the first label information of the target fiber core and the target service optical signal transmitted by the target fiber core from a management terminal, and then obtaining a judgment result corresponding to the target service optical signal based on multiple candidate service optical signals, the optical fiber path of the target fiber core can be determined based on the judgment result and the clamp label information of the first fiber core clamp. This allows the fiber clamp of the acquisition device through which the target fiber core passes to be determined without interrupting communication services by utilizing the adjustment changes of the inherent service optical signal of the service itself, and automatically performs judgment and pairing of the fiber core clamps of the acquisition devices, thereby determining the optical path direction of the target fiber core, that is, the optical path direction of the target fiber core between different acquisition devices, thereby achieving fully intelligent optical path topology pairing and improving the efficiency of optical path direction generation. In addition, data transmission via mobile network wireless communication can achieve data pairing of fiber core clamps of different acquisition devices in different computer rooms, realizing full-port wireless networking matching of optical paths, that is, quickly determining the acquisition device and fiber core clamp through which the target service light passes. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] FIG1 is a schematic flow chart showing a method for determining an optical fiber path according to an embodiment of the present disclosure;

[0019] FIG2 is a schematic flow chart showing another method for determining an optical fiber path provided by an embodiment of the present disclosure;

[0020] FIG3 is a schematic flow chart showing another method for determining an optical fiber path provided by an embodiment of the present disclosure;

[0021] FIG4 shows a schematic structural diagram of a fiber core monitoring system provided by an embodiment of the present disclosure;

[0022] FIG5 shows another flow chart of a method for determining an optical fiber path provided by an embodiment of the present disclosure;

[0023] FIG6 shows another flow chart of a method for determining an optical fiber path according to an embodiment of the present disclosure;

[0024] FIG7 shows a schematic structural diagram of a device for determining an optical fiber path provided by an embodiment of the present disclosure;

[0025] FIG8 is a schematic structural diagram of another optical fiber path determination device provided by an embodiment of the present disclosure;

[0026] FIG9 is a schematic structural diagram of another apparatus for determining an optical fiber path provided by an embodiment of the present disclosure;

[0027] FIG10 shows a schematic structural diagram of an electronic device provided by an embodiment of the present disclosure. DETAILED DESCRIPTION

[0028] The following will be combined with the accompanying drawings in the embodiments of the present disclosure to clearly describe the technical solutions in the embodiments of the present disclosure. Obviously, the embodiments described are part of the embodiments of the present disclosure, not all of the embodiments. Based on the embodiments of the present disclosure, all other embodiments obtained by ordinary technicians in this field are within the scope of protection of the present disclosure.

[0029] The terms "first", "second", etc. in the specification and claims of the present disclosure are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the data used in this way can be interchangeable under appropriate circumstances, so that the embodiments of the present disclosure can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second", etc. are generally of the same type, and the number of objects is not limited. For example, the first object can be one or more. In addition, "and / or" in the specification and claims represents at least one of the connected objects, and the character " / " generally indicates that the objects related to each other are in an "or" relationship.

[0030] The optical fiber path determination method and optical fiber path determination device provided by the embodiments of the present disclosure are described in detail below with reference to the accompanying drawings through specific embodiments and their application scenarios.

[0031] Figure 1 shows a method for determining an optical fiber path provided by an embodiment of the present disclosure, which is applied to a cloud platform. The method can be executed by an electronic device, which may include a terminal device or a server. In other words, the method can be executed by software or hardware installed on the electronic device, and the method includes the following steps:

[0032] S110: Receive first label information of a target fiber core and a target service optical signal transmitted through the target fiber core sent by a management terminal.

[0033] The first label information includes the label information of the first fiber core clamp corresponding to the target fiber core. The first label information may include the fiber manager information corresponding to the target fiber core at the starting point and the clamp information of the fiber core clamp in the fiber manager. The fiber manager may be a fiber distribution frame. For example, the port corresponding to the target fiber core is the clamp of a fiber core clamp in a collection device in a fiber distribution frame.

[0034] As you can understand, a fiber optic patch cord typically consists of a fiber optic cable and fiber optic wire with fiber optic connectors at both ends. Its function is to transmit optical signals from one fiber optic device to another. A fiber optic pigtail typically consists of a fiber optic cable and fiber optic wire with a fiber optic connector at one end and bare fiber at the other. Fiber optic pigtails are used to connect fiber optic terminal equipment. A core clamp is a component in a fiber optic connector that protects and positions the core of an optical fiber. The core clamp contains the exposed core of the optical fiber within a channel to ensure precise alignment with other optical fibers. The core clamp can be embedded in a fiber optic connector to insert and connect fiber optic patch cords or fiber pigtails.

[0035] In one implementation, before S110, the following steps may be further included:

[0036] S102: Receive signal detection data sent by the management terminal.

[0037] The signal detection data includes the candidate service optical signal corresponding to the fiber core clamped and fixed by each candidate fiber core clamp in each acquisition device, and the clamp label information of the candidate fiber core clamp corresponding to each candidate service optical signal, wherein the candidate service optical signal includes the target service optical signal, and each candidate fiber core clamp includes the first fiber core clamp.

[0038] S104: Based on the signal detection data, a first binding relationship is established between the candidate core clips corresponding to each candidate service optical signal.

[0039] The first binding relationship is used to represent the optical path topology network of each candidate service optical signal between the corresponding candidate fiber core clips.

[0040] It is understandable that the clamp tag information may be a radio frequency identification tag (RFID), and a different unique ID number is set in the memory of each RFID tag, that is, each fiber core clamp is assigned a different unique ID number.

[0041] In this implementation, by pre-establishing the first binding relationship between the corresponding candidate fiber core clamps in each acquisition device, the resource consumption of data processing for the subsequent calculation of the optical path of the target fiber core is reduced.

[0042] S120: Acquire a judgment result corresponding to the target service optical signal based on multiple candidate service optical signals.

[0043] The judgment result is a matching degree between the target optical signal and at least one candidate service optical signal among the plurality of candidate service optical signals.

[0044] In another implementation, obtaining a judgment result corresponding to the target service optical signal based on multiple candidate service optical signals may include: obtaining signal parameters of the target service optical signal, and obtaining signal parameters of each candidate service optical signal, wherein the signal parameters include light intensity, amplitude, and frequency; and determining the judgment result by comparing the light intensity, amplitude, and frequency of the target service optical signal with the light intensity, amplitude, and frequency of each candidate service optical signal. It is understandable that the light intensity, amplitude, and frequency of the target service optical signal are obtained, and the light intensity, amplitude, and frequency of each candidate service optical signal are obtained, and the target service optical signal is compared with each candidate service optical signal based on the three parameters of light intensity, amplitude, and frequency, wherein different comparison results correspond to different judgment results.

[0045] In this implementation, the candidate service optical signal corresponding to each fiber core clamp in each acquisition device is judged by the light intensity, amplitude and frequency of the target service optical signal, thereby improving the accuracy of determining the fiber core clamp in the acquisition device through which the target fiber core passes, thereby improving the accuracy of the optical path direction of the target fiber core.

[0046] S130: Determine the optical fiber path of the target optical fiber core based on the judgment result and the clamp label information of the first optical fiber clamp.

[0047] It is understood that the fiber path refers to the direction of the optical path, indicating the direction of the optical path formed by the target fiber core from the starting point corresponding to the first label information, through the acquisition device corresponding to the target candidate fiber core clamp determined based on the judgment result, to the end point. Based on the judgment result, zero or one candidate service optical signals that best match the target service optical signal can be determined. The fiber path of the target fiber core can be determined based on the candidate fiber core clamp corresponding to the determined candidate service optical signals and the clamp label information of the first fiber core clamp.

[0048] In the disclosed embodiment, by receiving first label information of a target fiber core and a target service optical signal transmitted through the target fiber core from a management terminal, a judgment result corresponding to the target service optical signal is obtained based on multiple candidate service optical signals. Finally, based on the judgment result and the clamp label information of the first fiber core clamp, the optical fiber path of the target fiber core can be determined. This allows, without interrupting communication services, the adjustment changes of the inherent service optical signal of the service to determine the fiber core clamps of each acquisition device through which the target fiber core passes, automatically performing judgment and pairing of the fiber core clamps of the acquisition devices, thereby determining the optical path direction of the target fiber core, that is, the optical path direction of the target fiber core between different acquisition devices, thereby achieving fully intelligent optical path topology pairing and improving the efficiency of optical path direction generation. Furthermore, data transmission via mobile network wireless communication can achieve data pairing of fiber core clamps of different acquisition devices in different computer rooms, realizing full-port wireless networking matching of optical paths, that is, quickly determining the acquisition device and fiber core clamp through which the target service light passes.

[0049] In one implementation, the judgment result includes a first judgment result, wherein the first judgment result is used to indicate that the target candidate core clamp of the target candidate service optical signal meets a preset condition; and determining the judgment result by respectively comparing the intensity, amplitude, and frequency of the target service optical signal with the intensity, amplitude, and frequency of each of the candidate service optical signals includes: obtaining the first judgment result when determining that there is a target candidate service optical signal among the multiple candidate service optical signals that matches the intensity, amplitude, and frequency of the target service optical signal. That is, if there is a target candidate core clamp in each acquisition device whose intensity, amplitude, and frequency of the candidate service optical signal respectively match the intensity, amplitude, and frequency characteristics of the target service optical signal, then determining that the candidate service optical signal corresponding to the target candidate core clamp meets the preset condition, and obtaining the first judgment result, wherein the preset condition is used to indicate that the intensity, amplitude, and frequency of the candidate service optical signal respectively match the intensity, amplitude, and frequency characteristics of the target service optical signal.

[0050] Furthermore, in another implementation, the judgment result also includes a third judgment result, wherein the third judgment result is used to indicate that the candidate core clamps corresponding to the multiple candidate service optical signals do not meet the preset conditions; the method also includes: obtaining the third judgment result when it is determined that there is no target candidate service optical signal among the multiple candidate service optical signals that matches the target service optical signal in terms of light intensity, amplitude and frequency.

[0051] It can be understood that if there is no fiber core clamp in each acquisition device whose light intensity, amplitude and frequency of the candidate business optical signal respectively match the characteristics of the light intensity, amplitude and frequency of the target business optical signal, then it is determined that the candidate business optical signal corresponding to each fiber core clamp in each acquisition device does not meet the preset conditions, and a second judgment result is obtained.

[0052] In one implementation, the judgment result includes a second judgment result, wherein the second judgment result is used to indicate that the target candidate core clamp of the target candidate service optical signal meets a preset condition; and determining the judgment result by respectively comparing the intensity, amplitude, and frequency of the target service optical signal with the intensity, amplitude, and frequency of each of the candidate service optical signals may include the following steps:

[0053] Step 1: When it is determined that a second candidate service optical signal exists among the plurality of candidate service optical signals, and the optical intensity and frequency respectively match those of the target service optical signal, calculating the optical intensity of the second candidate service optical signal using a preset formula to obtain the amplitude of the second candidate service optical signal, wherein the second candidate service optical signal includes at least two candidate service optical signals;

[0054] Step 2: When it is determined that there is a target candidate service optical signal whose amplitude matches the target service optical signal among the second candidate service optical signals, a second judgment result is obtained.

[0055] It can be understood that the signal detection data of each acquisition device is analyzed and extracted to obtain the light intensity and frequency of the candidate business optical signal corresponding to each fiber core clamp in each acquisition device; if there are at least two candidate fiber core clamps in each acquisition device whose light intensity and frequency of the candidate business optical signal respectively match the characteristics of the light intensity and frequency of the target business optical signal, then the light intensity of the candidate business optical signal corresponding to at least two candidate fiber core clamps in each acquisition device is calculated by a preset formula to obtain the amplitude of the candidate business optical signal corresponding to each candidate fiber core clamp in each acquisition device; if there is a target candidate business light in each acquisition device whose amplitude of the candidate business optical signal matches the characteristics of the amplitude of the target business optical signal, then the candidate fiber core clamp corresponding to the target candidate business light in each acquisition device is determined as the target candidate fiber core clamp to obtain a second judgment result.

[0056] Furthermore, in another implementation, the judgment result includes a fourth judgment result, wherein the fourth judgment result is used to indicate that the candidate core clamps corresponding to the multiple candidate service optical signals do not meet the preset conditions; the method also includes: obtaining the fourth judgment result when it is determined that there is no target candidate service optical signal in the second candidate service optical signal that matches the amplitude of the target service optical signal.

[0057] It can be understood that, when it is determined that there is a second candidate business optical signal among the multiple candidate business optical signals whose light intensity and frequency respectively match the target business optical signal, but there is no candidate fiber core clamp whose amplitude of the candidate business optical signal matches the amplitude characteristics of the target business optical signal, the cloud platform determines that the candidate business optical signals corresponding to each fiber core clamp in each acquisition device do not meet the preset conditions, and obtains the fourth judgment result.

[0058] In one implementation, when the judgment result is the first judgment result or the second judgment result, or when a target candidate service optical signal that meets a preset condition exists in the signal detection data, determining the optical fiber path of the target fiber core based on the judgment result and the clamp label information of the first fiber core clamp may include the following steps:

[0059] Step 1: According to the judgment result, obtain the clamp label information of the target candidate fiber core clamp corresponding to the target candidate service optical signal.

[0060] It is understandable that, according to the judgment result, a target candidate service optical signal can be determined, and the target service optical signal can correspond to at least one target candidate fiber core clamp, and each target candidate fiber core clamp has clamp label information.

[0061] Step 2: According to the clamp label information of the target candidate fiber core clamp, query the corresponding target optical path topology network from the first binding relationship.

[0062] The target optical path topology network is composed of a plurality of target acquisition devices connected to each other, wherein the target acquisition device is the acquisition device through which the target candidate service optical signal passes.

[0063] It can be understood that at least one of the above-mentioned target candidate fiber core clamps the target candidate business optical signal, that is, the optical fiber corresponding to the target candidate business optical signal passes through the target candidate fiber core clamp, and a first binding relationship is established between each target candidate fiber core clamp and the connected target candidate fiber core clamp. Then, through the first binding relationship, the target optical path topology network of the target candidate business optical signal between the target candidate fiber core clamps can be determined, that is, the optical path direction of the target candidate business optical signal.

[0064] Step 3: Determine the optical fiber path of the target optical core according to the clamp label information of the first fiber core clamp and the target optical path topology network.

[0065] The above step 3 may include the following steps:

[0066] Step 31: Determine first position information of the target fiber core based on the clamp label information of the first fiber core clamp.

[0067] The first location information is the location information of the first acquisition device corresponding to the clamp label information of the first core clamp. This location information can uniquely identify the first acquisition device, and can be represented by longitude and latitude; it can also be composed of an area number, a room number, and a device number. The area number can be a unique identification code for the area where the first acquisition device is located, the room number can be a unique identification code for the room where the first acquisition device is located, and the device number can be a unique identification code for the first acquisition device. Other location representation methods are also possible, and are not limited in the present embodiment.

[0068] Step 32: Based on the optical path topology network, obtain the second position information of each corresponding second acquisition device in the target optical path topology network from a preset position information set.

[0069] The preset position information set includes the position information of each acquisition device and the position information of each fiber core clamp in each acquisition device.

[0070] It is understandable that an optical signal can pass through the fiber core clamps corresponding to multiple acquisition devices. Therefore, based on the above-mentioned optical path topology network, the position information of these acquisition devices and the position information of each target candidate fiber core clamp can be determined.

[0071] Step 33: Determine the optical fiber path of the target fiber core based on the first position information and the plurality of second position information.

[0072] After determining the first position information, the optical fiber path of the target fiber core can be determined based on each second position information. That is, the optical fiber path of the target fiber core is the direction of the optical path formed from the starting point corresponding to the first position information, through each second position information, to the end point.

[0073] In one implementation, regarding the third and fourth judgment results, the method further includes: re-establishing the first binding relationship; and if the first binding relationship is successfully re-established, re-obtaining a judgment result corresponding to the target service optical signal based on multiple candidate service optical signals. It is understood that the third and fourth judgment results may indicate that no target candidate service light has been determined and no corresponding target candidate fiber core clamp exists, indicating that the first binding relationship for the target fiber core is abnormal, i.e., it cannot be matched. Therefore, the first binding relationship between the fiber core clamps corresponding to the respective service lights may be re-established.

[0074] FIG2 illustrates a method for determining an optical fiber path provided by an embodiment of the present disclosure, which is applied to a management terminal. The method can be executed by an electronic device, which may include a terminal device. In other words, the method can be executed by software or hardware installed in the electronic device, and the method includes the following steps:

[0075] S210: Sending a fiber path determination instruction to the cloud platform.

[0076] The optical fiber path determination instruction is used to determine the optical fiber path of the target fiber core.

[0077] It is understandable that when the optical fiber path of the target fiber core needs to be determined, the management terminal can send an optical fiber path determination instruction to the cloud platform to instruct the cloud platform to determine the optical fiber path of the target fiber core.

[0078] S220: Receive a monitoring instruction sent by the cloud platform based on the optical fiber path determination instruction.

[0079] The monitoring instruction is used to obtain first label information of the target fiber core and a target service optical signal transmitted through the target fiber core, wherein the first label information includes clamp label information of a first fiber core clamp corresponding to the target fiber core.

[0080] That is, after receiving the fiber path determination instruction, the cloud platform sends a monitoring instruction to the management terminal. This monitoring instruction is used to instruct the management terminal to monitor the first fiber core clamp of the service optical signal passing through the target fiber core. The first fiber core clamp may include the fiber manager information corresponding to the target fiber core at the starting point and the fiber core clamp in the fiber manager. Optionally, the monitoring instruction may also instruct the management terminal to send a visible light signal to the target fiber core. Optionally, each fiber core clamp in each acquisition device may be provided with a prompt light. When the target fiber core clamp in each acquisition device detects the visible light signal transmitted by the target fiber core, the prompt light of each target fiber core clamp lights up, thereby reminding remote communication personnel that the visible light signal transmitted by the target fiber core has passed through the fiber core clamp.

[0081] In one implementation, before reporting the target monitoring information to the cloud platform based on the monitoring instruction, the method further includes: sending a signal collection instruction to each acquisition device; and receiving the target monitoring information reported by the target acquisition device based on the signal collection instruction, wherein each acquisition device includes the target acquisition device. In other words, if a core clamp of a certain acquisition device detects the service optical signal, the management terminal obtains the label information of the core clamp and the service optical signal passing through the core clamp.

[0082] S230: Based on the monitoring instruction, report the target monitoring information to the cloud platform.

[0083] The target monitoring information includes the first label information and a target service optical signal transmitted through the target fiber core.

[0084] S240: Receive the optical fiber path of the target fiber core determined by the cloud platform based on the target monitoring information.

[0085] It is understandable that after the cloud platform determines the optical fiber path of the target fiber core based on the target monitoring information, it sends the determination result to the management terminal, so that the operating user of the management terminal can accurately know the optical fiber path of the target fiber core.

[0086] In this embodiment, a fiber path determination instruction is sent to the cloud platform, wherein the fiber path determination instruction is used to determine the fiber path of the target fiber core; then a monitoring instruction is received from the cloud platform based on the fiber path determination instruction, wherein the monitoring instruction is used to obtain first label information of the target fiber core and the target service optical signal transmitted through the target fiber core, wherein the first label information includes the clamp label information of the first fiber core clamp corresponding to the target fiber core; based on the monitoring instruction, target monitoring information is reported to the cloud platform, wherein the target monitoring information includes the first label information and the target service optical signal transmitted through the target fiber core; finally, the fiber path of the target fiber core determined by the cloud platform based on the target monitoring information is received, thereby achieving the determination of the fiber core clamp of the acquisition device passed by the target fiber core by utilizing the adjustment change of the inherent service optical signal of the service itself without interrupting the communication service, and automatically performing the judgment and pairing of the fiber core clamps of the acquisition device through the cloud platform, thereby determining the optical path direction of the target fiber core, that is, the optical path direction of the target fiber core between different acquisition devices, thereby realizing the pairing of the fully intelligent optical path topology and improving the efficiency of generating the optical path direction. In addition, data is transmitted through wireless communication over the mobile network, which enables data pairing of fiber core clips from different acquisition devices in different computer rooms, and achieves full-port wireless networking matching of optical paths, that is, it is possible to quickly determine the acquisition device and fiber core clip that the target business light passes through.

[0087] In another implementation, before sending the fiber path determination instruction to the cloud platform, the method further includes: sending a signal detection data acquisition instruction to each of the acquisition devices; receiving signal detection data reported by each acquisition device based on the signal detection data acquisition instruction, wherein the signal detection data includes the candidate business optical signal corresponding to the fiber core clamped and fixed by each candidate fiber core clamp in each acquisition device, and the clamp label information of the candidate fiber core clamp corresponding to each of the candidate business optical signals, wherein the candidate business optical signal includes the target business optical signal, and each of the candidate fiber core clamps includes the first fiber core clamp.

[0088] In this implementation, a wireless scanner can be used to scan the RFID tags on the jaws of each fiber core clamp in each collection device, thereby obtaining the jaw tag information of the target fiber core clamp in each collection device. Scanning the RFID tags with a wireless scanner and directly binding the scanned jaw tag information reduces the manual recording of tag information by remote communication personnel.

[0089] In one implementation, the clamp label information of the first target fiber core clamp may be actively reported to the management terminal by the detected collection device.

[0090] FIG3 illustrates a method for determining an optical fiber path provided by an embodiment of the present disclosure, which is applied to a collection device. The method can be executed by an electronic device, which may include a terminal device. In other words, the method can be executed by software or hardware installed in the electronic device, and the method includes the following steps:

[0091] S310: Receive a signal collection instruction sent by a management terminal.

[0092] S320: Acquire target monitoring information based on the signal acquisition instruction.

[0093] The target monitoring information includes first label information of a target fiber core and a target service optical signal transmitted through the target fiber core. The first label information includes the clamping label information of a first fiber core clamp corresponding to the target fiber core. It is understood that since light leakage may occur in the target fiber core when clamped and secured by each fiber core clamp, the service optical signal in the clamped target fiber core can be collected.

[0094] S330: Send the target monitoring information to the management terminal.

[0095] The target monitoring information is used to determine the optical fiber path of the target fiber core.

[0096] In this embodiment, by receiving a signal acquisition instruction sent by a management terminal, and then based on the signal acquisition instruction, target monitoring information is obtained, wherein the target monitoring information includes the first label information of the target fiber core and the target service optical signal transmitted through the target fiber core, and the first label information includes the clamp label information of the first fiber core clamp corresponding to the target fiber core. Finally, the target monitoring information is sent to the management terminal, wherein the target monitoring information is used to determine the optical fiber path of the target fiber core, thereby realizing rapid on-site acquisition of optical fiber resources and facilitating determination of the optical fiber path of the target fiber core.

[0097] In one implementation, before receiving the signal acquisition instruction sent by the management terminal, the method further includes: receiving a signal detection data acquisition instruction sent by the management terminal; reporting the signal detection data based on the signal detection data acquisition instruction, wherein the signal detection data includes the candidate service optical signal corresponding to the optical core clamped and fixed by each candidate core clamp, and the clamp label information of the candidate core clamp corresponding to each candidate service optical signal, wherein the candidate service optical signal includes the target service optical signal, and each candidate core clamp includes the first core clamp. It is understandable that in order to reduce the resource consumption of data processing in the subsequent calculation process of the optical path of the target core, the signal detection data can be sent to the management terminal in advance. In this implementation, the port data corresponding to different acquisition devices can be reported simultaneously.

[0098] As shown in FIG4 , an embodiment of the present disclosure further provides a fiber core monitoring system. An application scenario of each of the above embodiments will be described below using the fiber core monitoring system.

[0099] As shown in FIG4 , the fiber core monitoring system 400 includes a management terminal 401 , at least two acquisition devices 402 and a cloud platform 403 ; wherein each acquisition device 402 includes a communication module 4021 and at least two fiber core clamps 4022 , and each fiber core clamp 4022 is used to clamp and fix the fiber core.

[0100] The cloud platform 403 is configured to receive a binding instruction and establish a first binding relationship between the target fiber core and the first target fiber core clamps in each acquisition device based on the binding instruction.

[0101] The management terminal 401 is configured to receive a detection instruction, obtain the first label information of the target fiber core and the target service optical signal transmitted by the target fiber core in a normal state based on the detection instruction, and report the information to the cloud platform 403 .

[0102] Each acquisition device 402 is used to report corresponding signal detection data to the cloud platform 403 through the management terminal 401 via the corresponding communication module. The signal detection data includes the candidate service optical signals of the fiber cores clamped and fixed by each fiber core clamp on the acquisition device.

[0103] The cloud platform 403 is further used to judge the signal detection data of each acquisition device based on the target service optical signal to obtain a judgment result.

[0104] The cloud platform 403 is further configured to, if the judgment result indicates that a second target fiber core clamp exists in each acquisition device and the candidate service optical signal meets preset conditions, determine the clamping label information of the second target fiber core clamp in each acquisition device, and query the corresponding optical path topology network from the first binding relationship based on the clamping label information of each second target fiber core clamp, wherein the preset conditions are configured to indicate that the intensity, amplitude, and frequency of the candidate service optical signal match the intensity, amplitude, and frequency characteristics of the target service optical signal, respectively, and the optical path topology network is composed of multiple target acquisition devices connected to each other;

[0105] The cloud platform 403 is further configured to calculate the optical path direction of the target fiber core through the optical path topology network and the first label information.

[0106] It should be noted that the executing entity of the embodiment shown in Figure 1 can be the cloud platform 403 in the fiber core monitoring system 400, the executing entity of the embodiment shown in Figure 2 can be the management terminal 401 in the fiber core monitoring system, and the executing entity of the embodiment shown in Figure 3 can be the acquisition device 402 in the fiber core monitoring system.

[0107] In this embodiment, it is possible to realize the intelligent network topology of the optical fiber link optical path information of the fiber jumper resource ports of different ODF distribution frames in different computer rooms, realize online dumb resource management, and perform real-time optical power detection of the entire network, thereby realizing the pairing of the entire optical path, improving the efficiency of optical fiber maintenance, reducing engineering workload and labor costs, and at the same time, by accurately identifying the "waste fiber" in the network and removing the waste fiber, a large amount of "virtual" optical cable core resources can be released, greatly reducing the disorderly expansion of optical cables, and achieving cost reduction and efficiency improvement.

[0108] The following is a detailed description of the embodiment shown in Figure 5 based on the fiber core monitoring system. As shown in Figure 5, another flow chart of the method for determining the optical fiber path provided by the embodiment of the present disclosure may include the following steps:

[0109] S510: The cloud platform receives a binding instruction and establishes a first binding relationship between the target fiber core and the first target fiber core clamps in each acquisition device based on the binding instruction.

[0110] The method for determining the optical fiber path is applied to the fiber core monitoring system, which includes a management terminal, at least two acquisition devices and a cloud platform, wherein each acquisition device is arranged on a corresponding optical fiber distribution frame, and each acquisition device includes a communication module and at least two fiber core clamps, and each fiber core clamp is used to clamp and fix the optical fiber core. It should be noted that the communication module is a cellular mobile communication module, for example, the 4th generation mobile communication technology (4G) communication module or the 5th generation mobile communication technology (5G) communication module or other. It is understandable that each computer room and each outdoor optical cross-connect box are equipped with an optical fiber distribution frame. Among them, the binding instruction received by the cloud platform is sent by the management terminal.

[0111] S520: The management terminal receives the detection instruction, obtains the first label information of the target fiber core and the target service optical signal transmitted by the target fiber core in a normal state based on the detection instruction, and reports them to the cloud platform.

[0112] The first tag information includes the fiber distribution frame information corresponding to the target fiber core at the starting point and the fiber core clamp opening information in the acquisition device. For example, the port connected to the target fiber core is the opening of a fiber core clamp in a certain acquisition device in a fiber distribution frame at the starting point. The detection command is initiated by the user operating the management terminal. The first tag information of the target fiber core and the target service optical signal transmitted by the target fiber core in a normal state are reported by the acquisition device to the management terminal, and then reported by the management terminal to the cloud platform.

[0113] S530. Each acquisition device reports corresponding signal detection data to the cloud platform through the management terminal via the corresponding communication module. The signal detection data includes candidate service optical signals of the fiber cores clamped and fixed by each fiber core clamp on the acquisition device.

[0114] Each fiber core clamp in each acquisition device is equipped with a signal acquisition device. Since there will be light leakage in the fiber core when it is clamped and fixed by each fiber core clamp, the signal acquisition device of each fiber core clamp can collect the business optical signal in the clamped and fixed fiber core, so that each acquisition device reports the corresponding signal detection data to the cloud platform through the management terminal through the corresponding communication module.

[0115] S540: The cloud platform judges the signal detection data of each acquisition device based on the target service optical signal to obtain a judgment result.

[0116] The cloud platform analyzes and extracts the signal detection data of each acquisition device to obtain the intensity, amplitude and frequency of the candidate business optical signal corresponding to each fiber core clip in each acquisition device. Based on the intensity, amplitude and frequency of the target business optical signal, the cloud platform judges the candidate business optical signal corresponding to each fiber core clip in each acquisition device and obtains the judgment result.

[0117] S550: Determine a corresponding optical path topology network based on the judgment result.

[0118] If the judgment result indicates that there is a second target fiber core clamp in each acquisition device whose candidate business optical signal meets the preset conditions, the cloud platform determines the clamp label information of the second target fiber core clamp in each acquisition device, and based on the clamp label information of each second target fiber core clamp, queries the corresponding optical path topology network from the first binding relationship. The preset conditions are used to indicate that the light intensity, amplitude and frequency of the candidate business optical signal match the light intensity, amplitude and frequency characteristics of the target business optical signal respectively, and the optical path topology network is composed of multiple target acquisition devices connected to each other.

[0119] The connection between two target acquisition devices in the optical path topology network is achieved by clamping and fixing the same fiber core with the target fiber core clamps of each target acquisition device. It is understood that the second target fiber core clamp corresponds to the target acquisition device.

[0120] S560, the cloud platform calculates the optical path direction of the target fiber core through the optical path topology network and the first label information.

[0121] The direction of the optical path is used to indicate the direction of the optical path formed by the target fiber core from the starting point corresponding to the first label information through the target collection devices corresponding to each second target fiber core clamp to the end point.

[0122] Furthermore, as shown in FIG6 , another flowchart of a method for determining an optical fiber path provided in an embodiment of the present disclosure may include the following steps:

[0123] S610: The cloud platform receives the binding instruction and transmits a visible light signal to the target fiber core in each acquisition device based on the binding instruction.

[0124] It is understandable that the visible light signal is a light signal that can be seen by the human eye. For example, the visible light signal is red light with a wavelength of 650 nm.

[0125] It should be noted that after receiving the binding instruction, the cloud platform will instruct the management terminal to transmit a visible light signal to the target fiber core in each acquisition device.

[0126] S620: If the first target fiber core clamp in each acquisition device detects the visible light signal transmitted by the target fiber core, the management terminal obtains the clamp label information of the first target fiber core clamp in each acquisition device and reports it to the cloud platform.

[0127] The management terminal includes a mobile terminal and a wireless scanner. The mobile terminal and the wireless scanner are connected through wireless communication. The wireless scanner is used to scan the radio frequency identification tags of the clamping openings of each fiber core clamp in each acquisition device, thereby obtaining the clamping opening label information of the first target fiber core clamp in each acquisition device and reporting it to the cloud platform.

[0128] The RFID tag is scanned by a wireless scanner, and the scanned clamp tag information is directly reported to the cloud platform, reducing the labor consumption of remote communication personnel in manually recording tag information.

[0129] In a feasible embodiment, each fiber core clamp in each acquisition device is provided with a prompt light. When the first target fiber core clamp in each acquisition device detects the visible light signal transmitted by the target fiber core, the prompt light of each first target fiber core clamp lights up, thereby reminding remote communication personnel that the visible light signal transmitted by the target fiber core has passed through the fiber core clamp.

[0130] In a feasible implementation manner, the clamp label information of the first target fiber core clamp may be actively reported to the management terminal by the detected collection device.

[0131] S630: The cloud platform establishes a first binding relationship between the first target fiber core clamps in each acquisition device based on the label information of each clamp opening.

[0132] By pre-establishing the first binding relationship between the first target fiber core clamps in the acquisition devices, the resource consumption of data processing is reduced for the subsequent optical path calculation process of the fiber cores.

[0133] S640: The management terminal receives the detection instruction, obtains the first label information of the target fiber core and the target service optical signal transmitted by the target fiber core in a normal state based on the detection instruction, and reports the information to the cloud platform.

[0134] S650: Each acquisition device reports corresponding signal detection data to the cloud platform through the corresponding communication module. The signal detection data includes the candidate service optical signals of the fiber cores clamped and fixed by each fiber core clamp on the acquisition device.

[0135] S660: The cloud platform judges the signal detection data of each acquisition device based on the target service optical signal to obtain a judgment result.

[0136] Specifically, S660 may include the following steps:

[0137] S661: The cloud platform analyzes and extracts the signal detection data of each acquisition device to obtain the light intensity, amplitude, and frequency of the candidate service optical signal corresponding to each fiber core clip in each acquisition device.

[0138] S662: If there is a second target fiber core clamp in each acquisition device whose light intensity, amplitude, and frequency of the candidate business optical signal respectively match the light intensity, amplitude, and frequency characteristics of the target business optical signal, the cloud platform determines that the candidate business optical signals corresponding to each second target fiber core clamp meet the preset conditions and obtains a first judgment result.

[0139] S663: If there is no fiber core clamp in each acquisition device whose light intensity, amplitude and frequency of the candidate business optical signal respectively match the light intensity, amplitude and frequency characteristics of the target business optical signal, the cloud platform determines that the candidate business optical signal corresponding to each fiber core clamp in each acquisition device does not meet the preset conditions, and obtains the second judgment result.

[0140] In a feasible implementation, S660 may specifically include the following steps:

[0141] Step 1: The cloud platform analyzes and extracts the signal detection data from each acquisition device to obtain the intensity and frequency of the candidate service optical signal corresponding to each core clip in each acquisition device. If each acquisition device has at least two candidate core clips whose intensity and frequency characteristics match those of the target service optical signal, the cloud platform calculates the intensity of at least two candidate core clips in each acquisition device using a preset formula to obtain the amplitude of the candidate service optical signal corresponding to each candidate core clip in each acquisition device.

[0142] Step 2: If there is a target candidate fiber core clamp in each acquisition device whose amplitude of the candidate service optical signal matches the amplitude characteristics of the target service optical signal, the cloud platform determines the target candidate fiber core clamp in each acquisition device as the second target fiber core clamp, and determines that the candidate service optical signals corresponding to each second target fiber core clamp meet the preset conditions, thereby obtaining a third judgment result.

[0143] Step 3: If there is no candidate fiber core clamp in each acquisition device whose amplitude of the candidate business optical signal matches the characteristics of the amplitude of the target business optical signal, the cloud platform determines that the candidate business optical signals corresponding to each fiber core clamp in each acquisition device do not meet the preset conditions, and obtains the fourth judgment result.

[0144] S670: The cloud platform calculates the optical path direction of the target fiber core based on the optical path topology network and the first label information.

[0145] It can be understood that if the judgment result indicates that there is a second target fiber core clamp in each acquisition device whose candidate business optical signal meets the preset conditions, the cloud platform determines the clamp label information of the second target fiber core clamp in each acquisition device, and based on the clamp label information of each second target fiber core clamp, queries the corresponding optical path topology network from the first binding relationship. The preset conditions are used to indicate that the light intensity, amplitude and frequency of the candidate business optical signal match the light intensity, amplitude and frequency characteristics of the target business optical signal respectively, and the optical path topology network is composed of multiple target acquisition devices connected to each other.

[0146] Specifically, S670 may include the following steps:

[0147] S671: The cloud platform determines first position information of the target fiber core based on the first label information;

[0148] S672: The cloud platform determines second location information of each target acquisition device in the optical path topology network;

[0149] S673: The cloud platform calculates the optical path direction of the target fiber core. The first label information includes the fiber optic distribution frame information corresponding to the target fiber core at the starting point and the clamping information of the fiber core clamp in the acquisition device. The connection between the two target acquisition devices in the optical path topology network is achieved by clamping the same fiber core with the target fiber core clamp of each target acquisition device. It can be understood that the second target fiber core clamp corresponds to the target acquisition device. The cloud platform determines the first position information of the target fiber core in the preset position information set based on the first label information. The preset position information set includes the position information of each fiber core clamp in each fiber optic distribution frame and each acquisition device. The position information can be represented by longitude and latitude, or by other position representation methods, which are not limited here. The cloud platform determines the second position information of each target acquisition device in the optical path topology network in the preset position information set.

[0150] S680: The cloud platform sends the optical path direction to the management terminal.

[0151] S690: The management terminal displays the direction of the light path in a preset display area.

[0152] The direction of the optical path is displayed in a preset display area of ​​the management terminal through the management terminal, so that remote communication personnel can intuitively understand the direction of the target fiber core.

[0153] In the disclosed embodiment, without interrupting business, changes in parameters such as the power of the inherent service optical signal of the service itself are used to conduct detection and automatically determine and match the fiber optic patch port of the ODF patch panel, realizing full optical path and full port identification and fully intelligent optical path topology pairing, that is, a fully intelligent optical path topology identification. Data transmission via mobile network wireless communication can match the fiber optic patch port data of different ODF patch panels in different computer rooms, obtain the fiber optic patch topology structure data of different ODF patch panels and ODF trays in different computer rooms, and enable online real-time management to achieve full-port wireless networking matching of optical paths.

[0154] FIG7 shows a schematic structural diagram of an apparatus for determining an optical fiber path provided by an embodiment of the present disclosure. As shown in FIG7 , the determining apparatus 700 may include: a receiving module 710 , an acquiring module 720 , and a determining module 730 .

[0155] In this embodiment, the receiving module 710 is used to receive the first label information of the target fiber core and the target service optical signal transmitted through the target fiber core sent by the management terminal, wherein the first label information includes the clamp label information of the first fiber core clamp corresponding to the target fiber core; the acquiring module 720 is used to obtain the judgment result corresponding to the target service optical signal based on multiple candidate service optical signals; the determining module 730 is used to determine the optical fiber path of the target fiber core based on the judgment result and the clamp label information of the first fiber core clamp.

[0156] In one implementation, the determination device 700 also includes: a second receiving module, used to receive signal detection data sent by the management terminal, wherein the signal detection data includes the candidate business optical signal corresponding to the fiber core clamped and fixed by each candidate fiber core clamp in each acquisition device, and the clamp label information of the candidate fiber core clamp corresponding to each of the candidate business optical signals, wherein the candidate business optical signal includes the target business optical signal, and each of the candidate fiber core clamps includes the first fiber core clamp; an establishment module, used to establish a first binding relationship between the candidate fiber core clamps corresponding to each of the candidate business optical signals based on the signal detection data, wherein the first binding relationship is used to represent the optical path topology network of each of the candidate business optical signals between the corresponding candidate fiber core clamps.

[0157] In one implementation, obtaining a judgment result corresponding to the target service optical signal based on multiple candidate service optical signals includes: obtaining signal parameters of the target service optical signal, and obtaining signal parameters of each of the candidate service optical signals, wherein the signal parameters include light intensity, amplitude, and frequency; and determining the judgment result by respectively comparing the light intensity, amplitude, and frequency of the target service optical signal with the light intensity, amplitude, and frequency of each of the candidate service optical signals.

[0158] In one implementation, the judgment result includes a first judgment result, wherein the first judgment result is used to indicate that the target candidate core clamp of the target candidate service optical signal meets a preset condition; determining the judgment result by respectively comparing the light intensity, amplitude, and frequency of the target service optical signal with the light intensity, amplitude, and frequency of each of the candidate service optical signals includes: obtaining the first judgment result when it is determined that there is a target candidate service optical signal among the multiple candidate service optical signals that matches the light intensity, amplitude, and frequency of the target service optical signal.

[0159] In one implementation, the judgment result includes a second judgment result, wherein the second judgment result is used to indicate that the target candidate core clamp of the target candidate service optical signal meets a preset condition; determining the judgment result by respectively comparing the light intensity, amplitude, and frequency of the target service optical signal with the light intensity, amplitude, and frequency of each of the candidate service optical signals includes: upon determining that there is a second candidate service optical signal among the multiple candidate service optical signals that matches the light intensity and frequency of the target service optical signal, performing calculations on the light intensity of the second candidate service optical signal using a preset formula to obtain the amplitude of the second candidate service optical signal, wherein the second candidate service optical signal includes at least two candidate service optical signals; and upon determining that there is a target candidate service optical signal among the second candidate service optical signals that matches the amplitude of the target service optical signal.

[0160] In one implementation, determining the optical fiber path of the target fiber core based on the judgment result and the clamp label information of the first fiber core clamp includes: obtaining the clamp label information of the target candidate fiber core clamp corresponding to the target candidate service optical signal according to the judgment result; querying the corresponding target optical path topology network from the first binding relationship according to the clamp label information of the target candidate fiber core clamp; and determining the optical fiber path of the target fiber core according to the clamp label information of the first fiber core clamp and the target optical path topology network.

[0161] In one implementation, determining the optical fiber path of the target optical core based on the clamp label information of the first optical core clamp and the target optical path topology network includes: determining the first position information of the target optical core based on the clamp label information of the first optical core clamp, wherein the first position information is the position information of the first acquisition device corresponding to the clamp label information of the first optical core clamp; based on the optical path topology network, obtaining the second position information of each corresponding second acquisition device in the optical path topology network from the preset position information set, wherein the preset position information set includes the position information of each acquisition device and the position information of each optical core clamp in each acquisition device; determining the optical fiber path of the target optical core based on the first position information and multiple second position information.

[0162] In one implementation, the judgment result also includes a third judgment result, wherein the third judgment result is used to indicate that the candidate core clamps corresponding to the multiple candidate service optical signals do not meet the preset conditions; the determination device 700 also includes a processing module, which is used to obtain the third judgment result when it is determined that there is no target candidate service optical signal among the multiple candidate service optical signals that matches the target service optical signal in terms of light intensity, amplitude and frequency.

[0163] In one implementation, the judgment result includes a fourth judgment result, wherein the fourth judgment result is used to indicate that the candidate core clamps corresponding to the multiple candidate service optical signals do not meet the preset conditions; the processing module is also used to obtain the fourth judgment result when it is determined that there is no target candidate service optical signal in the second candidate service optical signal that matches the amplitude of the target service optical signal.

[0164] The optical fiber path determination device in the embodiments of the present disclosure may be an electronic device or a component in the electronic device, such as an integrated circuit or chip. The electronic device may be a terminal or other device other than a terminal. For example, the electronic device may be a mobile phone, a tablet computer, a laptop computer, a PDA, an in-vehicle electronic device, a mobile internet device (MID), an augmented reality (AR) / virtual reality (VR) device, a robot, a wearable device, an ultra-mobile personal computer (UMPC), a netbook, or a personal digital assistant (PDA), etc. It may also be a server, a network attached storage (NAS), a personal computer (PC), a television (TV), a teller machine, or a self-service machine, etc., and the embodiments of the present disclosure do not specifically limit this.

[0165] The optical fiber path determination device in the embodiment of the present disclosure may be a device having an operating system. The operating system may be an Android operating system, an iOS operating system, or other possible operating systems, which are not specifically limited in the embodiment of the present disclosure.

[0166] The optical fiber path determination device provided by the embodiment of the present disclosure can implement each process implemented by the method embodiment shown in Figure 1. To avoid repetition, it will not be described here.

[0167] FIG8 shows a schematic structural diagram of an optical fiber path determination device provided by an embodiment of the present disclosure. As shown in FIG8 , the determination device 800 may include: a sending module 810 , a first receiving module 820 , a reporting module 830 and a second receiving module 840 .

[0168] In this embodiment, a sending module 810 is used to send a fiber path determination instruction to the cloud platform, wherein the fiber path determination instruction is used to determine the fiber path of the target fiber core; a first receiving module 820 is used to receive a monitoring instruction sent by the cloud platform based on the fiber path determination instruction, wherein the monitoring instruction is used to obtain the first label information of the target fiber core and the target service optical signal transmitted through the target fiber core, and the first label information includes the clamp label information of the first fiber core clamp corresponding to the target fiber core; a reporting module 830 is used to report target monitoring information to the cloud platform based on the monitoring instruction, wherein the target monitoring information includes the first label information and the target service optical signal transmitted through the target fiber core; a second receiving module 840 is used to receive the fiber path of the target fiber core determined by the cloud platform based on the target monitoring information.

[0169] In one implementation, the determination device 800 may include: a second sending module, used to send signal acquisition instructions to each acquisition device; a third receiving module, used to receive the target monitoring information reported by the target acquisition device based on the signal acquisition instruction, wherein each of the acquisition devices includes the target acquisition device.

[0170] In one implementation, the determination device 800 may include: a third sending module, used to send an acquisition instruction for signal detection data to each of the acquisition devices; a fourth receiving module, used to receive signal detection data reported by each acquisition device based on the acquisition instruction for signal detection data, wherein the signal detection data includes the candidate business optical signal corresponding to the fiber core clamped and fixed by each candidate fiber core clamp in each acquisition device, and the clamp label information of the candidate fiber core clamp corresponding to each of the candidate business optical signals, wherein the candidate business optical signal includes the target business optical signal, and each of the candidate fiber core clamps includes the first fiber core clamp.

[0171] The optical fiber path determination device provided in the embodiment of the present disclosure can implement each process implemented in the method embodiment shown in FIG2 , and will not be described again here to avoid repetition.

[0172] FIG9 shows a schematic structural diagram of an apparatus for determining an optical fiber path provided by an embodiment of the present disclosure. As shown in FIG9 , the determining apparatus 900 may include: a receiving module 910 , an acquiring module 920 , and a sending module 930 .

[0173] In this embodiment, the receiving module 910 is used to receive a signal acquisition instruction sent by a management terminal; the acquiring module 920 is used to acquire target monitoring information based on the signal acquisition instruction, wherein the target monitoring information includes first label information of a target fiber core and a target service optical signal transmitted through the target fiber core, and the first label information includes clamp label information of a first fiber core clamp corresponding to the target fiber core; the sending module 930 is used to send the target monitoring information to the management terminal, wherein the target monitoring information is used to determine the optical fiber path of the target fiber core.

[0174] In one implementation, the determination device 900 may also include: a second receiving module for receiving an acquisition instruction for signal detection data sent by the management terminal; a reporting module for reporting signal detection data based on the acquisition instruction for the signal detection data, wherein the signal detection data includes the candidate service optical signal corresponding to the fiber core clamped and fixed by each candidate fiber core clamp, and the clamp label information of the candidate fiber core clamp corresponding to each of the candidate service optical signals, wherein the candidate service optical signal includes the target service optical signal, and each of the candidate fiber core clamps includes the first fiber core clamp.

[0175] The optical fiber path determination device provided in the embodiment of the present disclosure can implement each process implemented in the method embodiment shown in FIG3 , and will not be described again here to avoid repetition.

[0176] Optionally, as shown in Figure 10, an embodiment of the present disclosure also provides an electronic device 1000, including a processor 1001 and a memory 1002, and the memory 1002 stores a program or instruction that can be run on the processor 1001. When the program or instruction is executed by the processor 1001, the various steps of the above-mentioned embodiment of the method for determining the optical fiber path are implemented, and the same technical effect can be achieved. To avoid repetition, it will not be repeated here.

[0177] It should be noted that the electronic devices in the embodiments of the present disclosure include the mobile electronic devices and non-mobile electronic devices mentioned above.

[0178] The embodiment of the present disclosure also provides a readable storage medium, on which a program or instruction is stored. When the program or instruction is executed by a processor, the various processes of the above-mentioned embodiment of the method for determining the optical fiber path are implemented, and the same technical effect can be achieved. To avoid repetition, it will not be repeated here.

[0179] The processor is the processor in the electronic device described in the above embodiment. The readable storage medium includes a computer-readable storage medium, such as a computer read-only memory (ROM), random access memory (RAM), a magnetic disk, or an optical disk.

[0180] An embodiment of the present disclosure further provides a chip, which includes a processor and a communication interface, wherein the communication interface is coupled to the processor, and the processor is used to run programs or instructions to implement the various processes of the above-mentioned embodiment of the method for determining the optical fiber path, and can achieve the same technical effect. To avoid repetition, it will not be repeated here.

[0181] It should be understood that the chip mentioned in the embodiments of the present disclosure can also be called a system-level chip, a system chip, a chip system, or a system-on-chip chip, etc.

[0182] An embodiment of the present disclosure provides a computer program product, which is stored in a storage medium. The program product is executed by at least one processor to implement the various processes of the above-mentioned optical fiber path determination method embodiment and can achieve the same technical effect. To avoid repetition, it will not be repeated here.

[0183] It should be noted that, in this article, the terms "comprise", "include" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device comprising a series of elements includes not only those elements, but also other elements not explicitly listed, or also includes elements inherent to such process, method, article or device. In the absence of further restrictions, an element defined by the sentence "comprises a..." does not exclude the presence of other identical elements in the process, method, article or device comprising the element. In addition, it should be pointed out that the scope of the methods and devices in the embodiments of the present disclosure is not limited to performing functions in the order shown or discussed, and may also include performing functions in a substantially simultaneous manner or in the opposite order according to the functions involved. For example, the described method may be performed in an order different from that described, and various steps may also be added, omitted, or combined. In addition, the features described with reference to certain examples may be combined in other examples.

[0184] Through the description of the above implementation methods, those skilled in the art can clearly understand that the above-mentioned embodiment methods can be implemented by means of software plus the necessary general hardware platform, and of course can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of the present disclosure is essentially or the part that contributes to the prior art can be embodied in the form of a computer software product, which is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk), including a number of instructions for enabling a terminal (which can be a mobile phone, computer, server, or network device, etc.) to execute the methods described in each embodiment of the present disclosure.

[0185] The embodiments of the present disclosure are described above in conjunction with the accompanying drawings, but the present disclosure is not limited to the above-mentioned specific implementation methods. The above-mentioned specific implementation methods are merely illustrative and not restrictive. Under the guidance of the present disclosure, ordinary technicians in this field can also make many forms without departing from the scope of protection of the purpose of the present disclosure and the claims, all of which are protected by the present disclosure.

Claims

1. A method for determining an optical fiber path, applied to a cloud platform, the method comprising: Receiving first label information of a target fiber core and a target service optical signal transmitted through the target fiber core sent by a management terminal, wherein the first label information includes a clamp label information of a first fiber core clamp corresponding to the target fiber core; Acquire a determination result corresponding to the target service optical signal according to a plurality of candidate service optical signals; Based on the judgment result and the clamp label information of the first fiber core clamp, the optical fiber path of the target fiber core is determined.

2. The method according to claim 1, wherein: Before the receiving management terminal sends the first label information of the target fiber core and the target service optical signal transmitted through the target fiber core, the method further includes: Receiving signal detection data sent by the management terminal, wherein the signal detection data includes candidate service optical signals corresponding to the cores clamped and fixed by each candidate core clamp in each acquisition device, and clamp label information of the candidate core clamp corresponding to each candidate service optical signal, wherein the candidate service optical signals include the target service optical signal, and each candidate core clamp includes the first core clamp; Based on the signal detection data, a first binding relationship is established between the candidate core clamps corresponding to each of the candidate service optical signals, wherein the first binding relationship is used to represent an optical path topology network between the corresponding candidate core clamps of each of the candidate service optical signals.

3. The method according to claim 2, wherein: The obtaining, according to the plurality of candidate service optical signals, a judgment result corresponding to the target service optical signal comprises: Acquire signal parameters of the target service optical signal, and acquire signal parameters of each of the candidate service optical signals, wherein the signal parameters include light intensity, amplitude and frequency; The judgment result is determined by comparing the light intensity, amplitude and frequency of the target service optical signal with the light intensity, amplitude and frequency of each of the candidate service optical signals.

4. The method according to claim 3, wherein: The judgment result includes a first judgment result, wherein the first judgment result is used to indicate that the target candidate core clamp of the target candidate service optical signal meets a preset condition; The determining the judgment result by respectively comparing the light intensity, amplitude and frequency of the target service optical signal with the light intensity, amplitude and frequency of each of the candidate service optical signals comprises: In the case where it is determined that there is a target candidate service optical signal among the plurality of candidate service optical signals, the target service optical signal having an intensity, an amplitude and a frequency that respectively match the target service optical signal, the first judgment result is obtained.

5. The method according to claim 3, wherein: The judgment result includes a second judgment result, wherein the second judgment result is used to indicate that the target candidate core clamp of the target candidate service optical signal meets a preset condition; The determining the judgment result by respectively comparing the light intensity, amplitude and frequency of the target service optical signal with the light intensity, amplitude and frequency of each of the candidate service optical signals comprises: When it is determined that there is a second candidate service optical signal among the plurality of candidate service optical signals that matches the light intensity and frequency of the target service optical signal respectively, the light intensity of the second candidate service optical signal is calculated by a preset formula. Calculate to obtain the amplitude of the second candidate service optical signal, wherein the second candidate service optical signal includes at least two of the candidate service optical signals; In the case where it is determined that the target candidate service optical signal whose amplitude matches the target service optical signal exists in the second candidate service optical signals, a second judgment result is obtained.

6. The method according to claim 4 or 5, wherein: The determining the optical fiber path of the target optical core based on the judgment result and the clamp label information of the first optical core clamp includes: According to the judgment result, obtaining the clamp label information of the target candidate core clamp corresponding to the target candidate service optical signal; According to the clamp label information of the target candidate fiber core clamp, query the corresponding target optical path topology network from the first binding relationship; The optical fiber path of the target optical core is determined according to the clamp label information of the first fiber core clamp and the target optical path topology network.

7. The method according to claim 6, wherein: The step of determining the optical fiber path of the target optical core according to the clamp label information of the first optical core clamp and the target optical path topology network includes: Determine the first position information of the target fiber core based on the clamping label information of the first fiber core clamp, wherein the first position information is the position information of the first acquisition device corresponding to the clamping label information of the first fiber core clamp; Based on the optical path topology network, second position information of each corresponding second acquisition device in the target optical path topology network is obtained from a preset position information set, wherein the preset position information set includes position information of each acquisition device and position information of each fiber core clamp in each acquisition device; Based on the first position information and the plurality of second position information, an optical fiber path of the target fiber core is determined.

8. The method according to claim 3, wherein: The judgment result further includes a third judgment result, wherein the third judgment result is used to indicate that the candidate core clamps corresponding to the plurality of candidate service optical signals do not meet a preset condition; the method further includes: The third judgment result is obtained when it is determined that there is no target candidate service optical signal among the plurality of candidate service optical signals, the target service optical signal having an intensity, an amplitude and a frequency that respectively match the target service optical signal.

9. The method according to claim 5, wherein: The judgment result includes a fourth judgment result, wherein the fourth judgment result is used to indicate that the candidate core clamps corresponding to the plurality of candidate service optical signals do not meet a preset condition; and the method further includes: In the case where it is determined that there is no target candidate service optical signal in the second candidate service optical signals that matches the amplitude of the target service optical signal, a fourth judgment result is obtained.

10. A method for determining an optical fiber path, applied to a management terminal, the method comprising: Sending a fiber path determination instruction to the cloud platform, wherein the fiber path determination instruction is used to determine the fiber path of the target fiber core; receiving a monitoring instruction sent by the cloud platform based on the optical fiber path determination instruction, wherein the monitoring instruction is used to obtain the first label information of the target fiber core and the target service optical signal transmitted through the target fiber core, and the first A label information includes a clamp label information of a first fiber core clamp corresponding to the target fiber core; Based on the monitoring instruction, reporting target monitoring information to the cloud platform, wherein the target monitoring information includes the first label information and a target service optical signal transmitted through the target fiber core; Receive the optical fiber path of the target fiber core determined by the cloud platform based on the target monitoring information.

11. The method according to claim 10, wherein: Before reporting the target monitoring information to the cloud platform based on the monitoring instruction, the method further includes: Send signal collection instructions to each collection device; Receive the target monitoring information reported by the target acquisition device based on the signal acquisition instruction, wherein each of the acquisition devices includes the target acquisition device.

12. The method according to claim 10, wherein: Before sending the optical fiber path determination instruction to the cloud platform, the method further includes: Sending acquisition instructions of signal detection data to each acquisition device; Receive signal detection data reported by each acquisition device based on the acquisition instruction of the signal detection data, wherein the signal detection data includes the candidate business optical signal corresponding to the fiber core clamped and fixed by each candidate core clamp in each acquisition device, and the clamp label information of the candidate core clamp corresponding to each of the candidate business optical signals, wherein the candidate business optical signal includes the target business optical signal, and each of the candidate core clamps includes the first core clamp.

13. A method for determining an optical fiber path, wherein: Applied to a collection device, the method comprises: Receive the signal collection instruction sent by the management terminal; Based on the signal acquisition instruction, target monitoring information is acquired, wherein the target monitoring information includes first label information of a target fiber core and a target service optical signal transmitted through the target fiber core, and the first label information includes clamp label information of a first fiber core clamp corresponding to the target fiber core; The target monitoring information is sent to the management terminal, wherein the target monitoring information is used to determine the optical fiber path of the target fiber core.

14. The method according to claim 13, wherein: Before the signal collection instruction sent by the receiving management terminal, the method further includes: Receiving an acquisition instruction of signal detection data sent by the management terminal; Report signal detection data based on the acquisition instruction of the signal detection data, wherein the signal detection data includes candidate service optical signals corresponding to the fiber cores clamped and fixed by each candidate core clamp, and clamp label information of the candidate core clamp corresponding to each of the candidate service optical signals, wherein the candidate service optical signals include the target service optical signals, and each of the candidate core clamps includes the first core clamp.

15. A device for determining an optical fiber path, the device comprising: A receiving module, configured to receive first label information of a target fiber core and a target service optical signal transmitted through the target fiber core sent by a management terminal, wherein the first label information includes a clamp label information of a first fiber core clamp corresponding to the target fiber core; An acquisition module is used to acquire a judgment result corresponding to the target service optical signal according to multiple candidate service optical signals. fruit; A determination module is used to determine the optical fiber path of the target optical core based on the judgment result and the clamp label information of the first optical core clamp.

16. A device for determining an optical fiber path, the device comprising: A sending module, used to send an optical fiber path determination instruction to the cloud platform, wherein the optical fiber path determination instruction is used to determine the optical fiber path of the target fiber core; A first receiving module, configured to receive a monitoring instruction sent by the cloud platform based on the optical fiber path determination instruction, wherein the monitoring instruction is used to obtain first label information of the target fiber core and a target service optical signal transmitted through the target fiber core, and the first label information includes a clamp label information of a first fiber core clamp corresponding to the target fiber core; A reporting module, configured to report target monitoring information to a cloud platform based on the monitoring instruction, wherein the target monitoring information includes the first label information and a target service optical signal transmitted through the target fiber core; The second receiving module is used to receive the optical fiber path of the target fiber core determined by the cloud platform based on the target monitoring information.

17. A device for determining an optical fiber path, the device comprising: A receiving module, used for receiving a signal collection instruction sent by a management terminal; An acquisition module, configured to acquire target monitoring information based on the signal acquisition instruction, wherein the target monitoring information includes first label information of a target fiber core and a target service optical signal transmitted through the target fiber core, and the first label information includes clamp label information of a first fiber core clamp corresponding to the target fiber core; A sending module is used to send the target monitoring information to the management terminal, wherein the target monitoring information is used to determine the optical fiber path of the target fiber core.

18. An electronic device comprising a processor, a memory, and a program or instruction stored in the memory and executable on the processor, wherein the program or instruction, when executed by the processor, implements the steps of the method for determining an optical fiber path as described in any one of claims 1 to 14.

19. A readable storage medium storing a program or instruction, wherein the program or instruction, when executed by a processor, implements the steps of the method for determining an optical fiber path according to any one of claims 1 to 14.

20. A computer program product, wherein the computer program product is stored in a storage medium and is executed by at least one processor to implement the steps of the method for determining an optical fiber path according to any one of claims 1 to 14.

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