Optical Fiber Smart Tag Processing Method and System

By identifying optical cable objects and generating tag information based on the differences in response time between controllers and electrical components in the electrical circuits of smart substations, the use of optical cables is optimized, solving the problem of low utilization rate of optical cables and achieving cost-effective optical cable management.

CN115310568BActive Publication Date: 2025-12-02이너 몽골리아 일렉트릭 파워 그룹 컴퍼니 리미티드 이너 몽골리아 일렉트릭 파워 리서치 인스티튜트 브랜치 +1
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Patent Information

Application Number
CN202210952822.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-08-09
Publication Date
2025-12-02
Estimated Expiration
2042-08-09

AI Technical Summary

Technical Problem

Existing optical cables are being phased out due to their performance not meeting requirements, resulting in low utilization rates and significant cost waste. The question is how to rationally utilize these obsolete optical cables while ensuring the normal performance of electrical circuits.

Method used

By receiving networking request information from the electrical circuits of the smart substation, and based on the differences in response time among multiple master controllers, slave controllers, and electrical components, different optical cable objects are identified, and corresponding tag information is generated to optimize optical cable usage and reduce the total response time.

Benefits of technology

This achieves the goal of improving the utilization rate of optical cables and saving optical cable costs while meeting the normal performance requirements of electrical circuits.

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Abstract

This disclosure provides a method and system for processing smart optical cable tags. The method includes: receiving networking request information for the electrical circuit of a smart substation; determining, based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components, a first optical cable object between each master controller and its corresponding directly connected electrical component, a second optical cable object between each master controller and its corresponding directly connected slave controller, and a third optical cable object between each slave controller and its corresponding directly connected electrical component; and generating tag information for the first, second, and third optical cable objects. This disclosure improves the utilization rate of optical cables and saves on optical cable costs while ensuring the normal performance of the electrical circuit.
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Description

Technical Field

[0001] This disclosure relates to the field of optical cables, and more specifically, to a method and system for processing smart tags on optical cables. Background Technology

[0002] The rapid development of fiber optic transmission technology, with its fast product updates and upgrades in performance parameters, has led to the obsolescence of some optical cables that are still physically and functionally usable but no longer meet performance requirements. Therefore, providing an effective smart tagging model for optical cables to rationally utilize these obsolete fibers while ensuring the normal performance of electrical circuits, thereby improving cable utilization and reducing costs, has become a pressing issue. Summary of the Invention

[0003] The purpose of this disclosure is to provide a method and system for processing smart tags on optical cables, so as to improve the utilization rate of optical cables and save optical cable costs while meeting the normal performance of electrical circuits.

[0004] In a first aspect, the present invention provides a method for processing optical cable smart tags, comprising: receiving networking request information for electrical circuits of a smart substation, wherein the networking request information includes the response times of multiple master controllers, multiple slave controllers and multiple electrical components in the smart substation;

[0005] Based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components, the first optical cable object between each master controller and the corresponding directly connected electrical component, the second optical cable object between each master controller and the corresponding directly connected slave controller, and the third optical cable object between each slave controller and the corresponding directly connected electrical component are determined, so that the maximum value of the total response time of each electrical branch of the electrical circuit of the smart substation is minimized.

[0006] The tag information of the first optical cable object is generated based on the identification information of the corresponding directly connected main controller and the identification information of the corresponding directly connected electrical components;

[0007] The tag information of the second optical cable object is generated based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected slave controller;

[0008] The tag information of the third optical cable object is generated based on the identification information of the corresponding directly connected slave controller and the identification information of the corresponding directly connected electrical components.

[0009] Further, the step of determining the first optical cable object between each master controller and its corresponding directly connected electrical component, the second optical cable object between each master controller and its corresponding directly connected slave controller, and the third optical cable object between each slave controller and its corresponding directly connected electrical component, based on the differences in response times of the plurality of master controllers, the plurality of slave controllers, and the plurality of electrical components, includes:

[0010] The sum of the response times of each main controller and the directly connected electrical components is taken as the total response time of the components in the first electrical branch;

[0011] The sum of the response times of each master controller, the corresponding connected slave controller, and the electrical components connected through the slave controller is taken as the total response time of the components in the second electrical branch.

[0012] Determine the maximum total component response time among the total component response times of all first electrical branches and the total component response times of the second electrical branches in the electrical circuit of the intelligent substation;

[0013] Determine the first response time of the optical cable in the first or second electrical branch with the largest total component response time, and take the sum of the largest total component response time and the first response time as the total response time limit; the first response time is less than a first preset threshold.

[0014] The type of optical cable whose response time is less than the total response time limit and the first response time difference between the total response time limit and the total response time of the component in the first electrical branch is designated as the first optical cable object in the first electrical branch;

[0015] The optical cable type whose sum of response times is less than the total response time limit and the second response time difference between the total response time limit and the total response time of the component in the second electrical branch is designated as the second optical cable object and the third optical cable object in the second electrical branch.

[0016] Furthermore, the difference between the response time of the first optical cable object in the first electrical branch and the difference between the first response time is less than the second preset threshold.

[0017] Furthermore, the difference between the sum of the response times of the second optical cable object and the third optical cable object of the second electrical branch and the difference of the second response time is less than the second preset threshold.

[0018] Secondly, the present invention provides an optical fiber smart tag processing system comprising:

[0019] The network request receiving module is used to receive network request information for the electrical circuits of the smart substation, wherein the network request information includes the response time of multiple master controllers, multiple slave controllers and multiple electrical components in the smart substation;

[0020] The optical cable object determination module is used to determine, based on the differences in response time of the multiple master controllers, multiple slave controllers, and multiple electrical components, the first optical cable object between each master controller and the corresponding directly connected electrical component, the second optical cable object between each master controller and the corresponding directly connected slave controller, and the third optical cable object between each slave controller and the corresponding directly connected electrical component, so as to minimize the maximum value of the total response time of each electrical branch of the electrical circuit of the smart substation.

[0021] The tag information generation module is used to generate tag information for the first optical cable object based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected electrical components; generate tag information for the second optical cable object based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected slave controller; and generate tag information for the third optical cable object based on the identification information of the corresponding directly connected slave controller and the identification information of the corresponding directly connected electrical components.

[0022] Further, the optical cable object determination module is specifically used to: take the sum of the response times of each master controller and the directly connected electrical components as the total response time of the components in the first electrical branch; take the sum of the response times of each master controller, the corresponding connected slave controller, and the electrical components connected through the slave controller as the total response time of the components in the second electrical branch; determine the maximum total response time of the components in the first electrical branch and the second electrical branch among all the total response times of the components in the electrical circuit of the smart substation; and determine the optical cable in the first electrical branch or the second electrical branch with the maximum total response time of the components. The first response time is defined as follows: the sum of the maximum total response time of the component and the first response time is taken as the total response time limit; the optical cable type whose response time is less than the first response time difference between the total response time limit and the total response time of the component in the first electrical branch is defined as the first optical cable object in the first electrical branch; the optical cable type whose sum of response times is less than the second response time difference between the total response time limit and the total response time of the component in the second electrical branch is defined as the second optical cable object and the third optical cable object in the second electrical branch; wherein, the first response time is less than a first preset threshold.

[0023] Furthermore, the difference between the response time of the first optical cable object in the first electrical branch and the difference between the first response time is less than the second preset threshold.

[0024] Furthermore, the difference between the sum of the response times of the second optical cable object and the third optical cable object of the second electrical branch and the difference of the second response time is less than the second preset threshold.

[0025] Thirdly, the present invention provides a computer-readable storage medium that, when the instructions in the computer-readable storage medium are executed by at least one processor, causes the at least one processor to perform the optical fiber smart tag processing method.

[0026] Thirdly, the present invention provides a computer device, comprising:

[0027] At least one processor;

[0028] At least one memory that stores computer-executable instructions.

[0029] The computer-executable instructions, when executed by the at least one processor, cause the at least one processor to execute the optical fiber smart tag processing method.

[0030] The optical cable smart tag processing method and system of the present invention determines a first optical cable object between each master controller and its corresponding directly connected electrical component, a second optical cable object between each master controller and its corresponding directly connected slave controller, and a third optical cable object between each slave controller and its corresponding directly connected electrical component based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components. In other words, different optical cable objects with different response times are used for different electrical branches with different response time differences. At the same time, the maximum value of the total response time of each electrical branch of the electrical circuit of the smart substation is minimized. This achieves both meeting the normal performance of the electrical circuit and improving the utilization rate of optical cables, thus saving optical cable costs. Attached Figure Description

[0031] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0032] Figure 1 This is a flowchart of a smart tag processing method for optical cables according to an embodiment of the present disclosure.

[0033] Figure 2 This is a schematic diagram of the structure of an optical fiber smart tag processing system according to an embodiment of the present disclosure. Detailed Implementation

[0034] The embodiments of the present invention will now be described in detail with reference to the accompanying drawings.

[0035] It should be noted that, in the absence of conflict, the following embodiments and features can be combined with each other; and, based on the embodiments of this disclosure, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this disclosure.

[0036] It should be noted that various aspects of embodiments within the scope of the appended claims are described below. It will be apparent that the aspects described herein can be embodied in a wide variety of forms, and any particular structure and / or function described herein is merely illustrative. Based on this disclosure, those skilled in the art will understand that one aspect described herein can be implemented independently of any other aspect, and two or more of these aspects can be combined in various ways. For example, any number of aspects set forth herein can be used to implement the device and / or practice the method. Additionally, this device and / or method can be implemented using structures and / or functionalities other than one or more of the aspects set forth herein.

[0037] Figure 1 This is a flowchart of a smart tag processing method for optical cables according to an embodiment of this disclosure. The smart substation electrical circuit includes multiple main controllers, multiple slave controllers, and multiple electrical components. The branch containing each main controller and its directly connected electrical component is designated as a first electrical branch, and the branch containing each main controller, its corresponding connected slave controller, and the electrical component connected through the slave controller is designated as a second electrical branch. Figure 1 As shown, the optical fiber smart tag processing method includes:

[0038] Step 101: Receive networking request information for the electrical circuits of the smart substation, wherein the networking request information includes the response time of multiple master controllers, multiple slave controllers and multiple electrical components in the smart substation.

[0039] Step 102: Based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components, determine the first optical cable object between each master controller and the corresponding directly connected electrical component, the second optical cable object between each master controller and the corresponding directly connected slave controller, and the third optical cable object between each slave controller and the corresponding directly connected electrical component, so as to minimize the maximum value of the total response time of each electrical branch of the electrical circuit of the smart substation.

[0040] Step 103: Generate tag information for the first optical cable object based on the identification information of the directly connected master controller and the identification information of the directly connected electrical components; generate tag information for the second optical cable object based on the identification information of the directly connected master controller and the identification information of the directly connected slave controller; generate tag information for the third optical cable object based on the identification information of the directly connected slave controller and the identification information of the directly connected electrical components. By generating different tag information for the first, second, and third optical cable objects with different connection objects, networking can only be achieved when the identification information of the connection object (i.e., master controller, slave controller, or electrical component) contained in the tag information matches the actual connected object. This enables convenient, accurate, and efficient networking based on the corresponding tag information.

[0041] This embodiment determines the first optical cable object between each master controller and its directly connected electrical component, the second optical cable object between each master controller and its directly connected slave controller, and the third optical cable object between each slave controller and its directly connected electrical component based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components. In other words, different optical cable objects with different response times are used for different electrical branches with different response times. At the same time, the maximum value of the total response time of each electrical branch of the smart substation electrical circuit is minimized. This achieves both meeting the normal performance of the electrical circuit and improving the utilization rate of optical cables, thus saving optical cable costs.

[0042] The above-mentioned optical fiber smart tag processing method also includes at least one of the following preferred embodiments:

[0043] The first type:

[0044] The steps for determining the first optical cable object between each master controller and its corresponding directly connected electrical component, the second optical cable object between each master controller and its corresponding directly connected slave controller, and the third optical cable object between each slave controller and its corresponding directly connected electrical component, based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components, include:

[0045] The sum of the response times of each main controller and the directly connected electrical components is taken as the total response time of the components in the first electrical branch;

[0046] The sum of the response times of each master controller, the corresponding connected slave controller, and the electrical components connected through the slave controller is taken as the total response time of the components in the second electrical branch.

[0047] Determine the maximum total component response time among the total component response times of all first electrical branches and the total component response times of the second electrical branches in the electrical circuit of the intelligent substation;

[0048] The first response time of the optical cable in the first or second electrical branch with the largest total component response time is determined, and the sum of the largest total component response time and the first response time is taken as the limit value of the total response time. The first response time is less than a first preset threshold, that is, the first response time is as small as possible. In specific operation, if the electrical branch with the largest total component response time is the second electrical branch, the first response time is the sum of the response times of the second optical cable object (i.e., the optical cable connecting the master controller and the slave controller) and the third optical cable object (i.e., the optical cable connecting the slave controller and the electrical component) in the corresponding second electrical branch.

[0049] The type of optical cable whose response time is less than the total response time limit and the first response time difference between the total response time limit and the total response time of the components in the first electrical branch is designated as the first optical cable object in the first electrical branch; that is, the response time of the first optical cable object is limited by the first response time difference.

[0050] The optical cable type whose sum of response times is less than the total response time limit and the second response time difference between the total response time limit and the total response time of the component in the second electrical branch is designated as the second optical cable object and the third optical cable object in the second electrical branch.

[0051] The second method is as follows: the difference between the response time of the first optical cable object in the first electrical branch and the difference between the first response time is less than the second preset threshold. In other words, the difference between the response time of the first optical cable object and the difference between the first response time is required to be as small as possible, so as to minimize the difference in response time of each electrical branch. Synchronous control is achieved through hardware connection settings.

[0052] The third method is as follows: the difference between the sum of the response times of the second and third optical fiber objects in the second electrical branch and the difference between the second response time is less than the second preset threshold. In other words, the difference between the sum of the response times of the second and third optical fiber objects and the difference between the second response time is required to be as small as possible, so as to minimize the difference in response times of each electrical branch. Synchronous control is thus achieved through hardware connection settings.

[0053] Figure 2 This is a structural diagram of an optical fiber smart tag processing system according to an embodiment of the present disclosure. Figure 1 The illustrated embodiments can be used to explain this embodiment. For example... Figure 2 As shown, a smart label processing system for optical cables includes:

[0054] The networking request receiving module 201 is used to receive networking request information for the electrical circuits of the smart substation, wherein the networking request information includes the response time of multiple master controllers, multiple slave controllers and multiple electrical components in the smart substation;

[0055] The optical cable object determination module 202 is used to determine, based on the differences in response time of the multiple master controllers, multiple slave controllers and multiple electrical components, the first optical cable object between each master controller and the corresponding directly connected electrical component, the second optical cable object between each master controller and the corresponding directly connected slave controller, and the third optical cable object between each slave controller and the corresponding directly connected electrical component, so that the maximum value of the total response time of each electrical branch of the electrical circuit of the smart substation is minimized.

[0056] The tag information generation module 203 is used to generate tag information for the first optical cable object based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected electrical components; generate tag information for the second optical cable object based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected slave controller; and generate tag information for the third optical cable object based on the identification information of the corresponding directly connected slave controller and the identification information of the corresponding directly connected electrical components.

[0057] Further, the optical cable object determination module 202 is specifically used to: take the sum of the response times of each main controller and the directly connected electrical components as the total response time of the components in the first electrical branch; take the sum of the response times of each main controller, the corresponding connected slave controller, and the electrical components connected through the slave controller as the total response time of the components in the second electrical branch; determine the maximum total response time of the components among the total response times of the components in all first electrical branches and the total response times of the components in the second electrical branches in the electrical circuit of the smart substation; and determine the first electrical branch with the maximum total response time of the components. Alternatively, the first response time of the optical cable in the second electrical branch, the sum of the maximum total response time of the component and the first response time is taken as the total response time limit; the optical cable type whose response time is less than the total response time limit and the first response time difference of the component total response time in the first electrical branch is taken as the first optical cable object in the first electrical branch; the optical cable type whose sum of response times is less than the total response time limit and the second response time difference of the component total response time in the second electrical branch is taken as the second optical cable object and the third optical cable object in the second electrical branch;

[0058] Wherein, the first response time is less than the first preset threshold.

[0059] Preferably, the difference between the response time of the first optical cable object in the first electrical branch and the difference between the first response time is less than a second preset threshold.

[0060] Preferably, the difference between the sum of the response times of the second optical cable object and the third optical cable object of the second electrical branch and the difference in the second response time is less than the second preset threshold.

[0061] This embodiment determines the first optical cable object between each master controller and its directly connected electrical component, the second optical cable object between each master controller and its directly connected slave controller, and the third optical cable object between each slave controller and its directly connected electrical component based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components. In other words, different optical cable objects with different response times are used for different electrical branches with different response times. At the same time, the maximum value of the total response time of each electrical branch of the smart substation electrical circuit is minimized. This achieves both meeting the normal performance of the electrical circuit and improving the utilization rate of optical cables, thus saving optical cable costs.

[0062] The present invention also provides a computer-readable storage medium, wherein when the instructions in the computer-readable storage medium are executed by at least one processor, the at least one processor causes the at least one processor to perform the optical fiber smart tag processing method.

[0063] The present invention also provides a computer device, comprising:

[0064] At least one processor;

[0065] At least one memory that stores computer-executable instructions.

[0066] The computer-executable instructions, when executed by the at least one processor, cause the at least one processor to execute the optical fiber smart tag processing method.

[0067] In this case, the program code read from the storage medium can itself implement the function of any of the above embodiments, and therefore the program code and the storage medium storing the program code constitute part of the present invention.

[0068] Examples of storage media used to provide program code include floppy disks, hard disks, magneto-optical disks, optical disks (such as CD-ROM, CD-R, CD-RW, DVD-ROM, DVD-RAM, DVD-RW, DVD+RW), magnetic tapes, non-volatile memory cards, and ROMs. Alternatively, program code can be downloaded from a server computer via a communication network.

[0069] Furthermore, it should be clear that not only can the program code read by the computer be executed, but also the operating system or other components operating on the computer can be instructed based on the program code to perform some or all of the actual operations, thereby realizing the function of any of the embodiments described above.

[0070] Furthermore, it is understood that the program code read from the storage medium is written to the memory set in the expansion board inserted into the computer or to the memory set in the expansion unit connected to the computer. Then, based on the instructions of the program code, the CPU or other components installed on the expansion board or expansion unit execute some and all of the actual operations, thereby realizing the function of any of the embodiments described above.

[0071] It should be noted that not all steps and modules in the above processes and system structure diagrams are mandatory; some steps or modules can be omitted as needed. The execution order of each step is not fixed and can be adjusted as required. The system structure described in the above embodiments can be a physical structure or a logical structure. That is, some modules may be implemented by the same physical entity, or some modules may be implemented by multiple physical entities, or they may be jointly implemented by certain components in multiple independent devices.

[0072] In the above embodiments, the hardware units can be implemented mechanically or electrically. For example, a hardware unit may include permanent dedicated circuitry or logic (such as a dedicated processor, FPGA, or ASIC) to perform the corresponding operation. The hardware unit may also include programmable logic or circuitry (such as a general-purpose processor or other programmable processor), which can be temporarily configured by software to perform the corresponding operation. The specific implementation method (mechanical, dedicated permanent circuitry, or temporarily configured circuitry) can be determined based on cost and time considerations.

[0073] The present invention has been shown and described in detail above with reference to the accompanying drawings and preferred embodiments. However, the present invention is not limited to these disclosed embodiments. Based on the above embodiments, those skilled in the art will know that more embodiments of the present invention can be obtained by combining the code review methods in the different embodiments. These embodiments are also within the protection scope of the present invention.

Claims

1. A method for processing smart tags on optical cables, characterized in that, include: Receive networking request information for the electrical circuits of the smart substation, wherein the networking request information includes the response time of multiple master controllers, multiple slave controllers and multiple electrical components in the smart substation; Based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components, a first optical cable object between each master controller and its corresponding directly connected electrical component, a second optical cable object between each master controller and its corresponding directly connected slave controller, and a third optical cable object between each slave controller and its corresponding directly connected electrical component are determined, such that the maximum value among the total response times of each electrical branch of the electrical circuit in the smart substation is minimized; and tag information of the first optical cable object is generated based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected electrical component. The tag information of the second optical cable object is generated based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected slave controller; The tag information of the third optical cable object is generated based on the identification information of the corresponding directly connected slave controller and the identification information of the corresponding directly connected electrical components. The steps for determining the first optical cable object between each master controller and its corresponding directly connected electrical component, the second optical cable object between each master controller and its corresponding directly connected slave controller, and the third optical cable object between each slave controller and its corresponding directly connected electrical component, based on the differences in response times of the multiple master controllers, multiple slave controllers, and multiple electrical components, include: The sum of the response times of each main controller and the directly connected electrical components is taken as the total response time of the components in the first electrical branch; The sum of the response times of each master controller, the corresponding connected slave controller, and the electrical components connected through the slave controller is taken as the total response time of the components in the second electrical branch. Determine the maximum total component response time among the total component response times of all first electrical branches and the total component response times of the second electrical branches in the electrical circuit of the intelligent substation; Determine the first response time of the optical cable in the first or second electrical branch with the largest total component response time, and take the sum of the largest total component response time and the first response time as the total response time limit; the first response time is less than a first preset threshold. The type of optical cable whose response time is less than the total response time limit and the first response time difference between the total response time limit and the total response time of the component in the first electrical branch is designated as the first optical cable object in the first electrical branch; The optical cable type whose sum of response times is less than the total response time limit and the second response time difference between the total response time limit and the total response time of the component in the second electrical branch is designated as the second optical cable object and the third optical cable object in the second electrical branch.

2. The optical cable smart tag processing method according to claim 1, characterized in that, The difference between the response time of the first optical cable object in the first electrical branch and the first response time is less than the second preset threshold.

3. The optical cable smart tag processing method according to claim 2, characterized in that, The difference between the sum of the response times of the second optical cable object and the third optical cable object in the second electrical branch and the difference in the second response time is less than the second preset threshold.

4. A smart label processing system for optical cables, characterized in that, include; The network request receiving module is used to receive network request information for the electrical circuits of the smart substation, wherein the network request information includes the response time of multiple master controllers, multiple slave controllers and multiple electrical components in the smart substation; The optical cable object determination module is used to determine, based on the differences in response time of the multiple master controllers, multiple slave controllers, and multiple electrical components, the first optical cable object between each master controller and the corresponding directly connected electrical component, the second optical cable object between each master controller and the corresponding directly connected slave controller, and the third optical cable object between each slave controller and the corresponding directly connected electrical component, so as to minimize the maximum value of the total response time of each electrical branch of the electrical circuit of the smart substation. The tag information generation module is used to generate tag information for the first optical cable object based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected electrical components; generate tag information for the second optical cable object based on the identification information of the corresponding directly connected master controller and the identification information of the corresponding directly connected slave controller; and generate tag information for the third optical cable object based on the identification information of the corresponding directly connected slave controller and the identification information of the corresponding directly connected electrical components. The optical cable object determination module is specifically used to: take the sum of the response times of each main controller and the directly connected electrical components as the total response time of the first electrical branch; take the sum of the response times of each main controller, the corresponding connected slave controller, and the electrical components connected through the slave controller as the total response time of the second electrical branch; determine the maximum total response time of the components among the total response times of all first electrical branches and the total response times of the components in the second electrical branches in the electrical circuit of the smart substation; and determine the first electrical branch or the second electrical branch with the maximum total response time. The first response time of the optical cable in the electrical branch is defined as the sum of the total response time of the maximum component and the first response time as the total response time limit; the optical cable type whose response time is less than the difference between the total response time limit and the total response time of the component in the first electrical branch is defined as the first optical cable object in the first electrical branch; the optical cable type whose sum of response times is less than the difference between the total response time limit and the total response time of the component in the second electrical branch is defined as the second optical cable object and the third optical cable object in the second electrical branch. Wherein, the first response time is less than the first preset threshold.

5. The optical fiber intelligent tag processing system according to claim 4, characterized in that, The difference between the response time of the first optical cable object in the first electrical branch and the first response time is less than the second preset threshold.

6. The optical fiber intelligent tag processing system according to claim 5, characterized in that, The difference between the sum of the response times of the second optical cable object and the third optical cable object in the second electrical branch and the difference in the second response time is less than the second preset threshold.

7. A computer-readable storage medium, characterized in that, When the instructions in the computer-readable storage medium are executed by at least one processor, the at least one processor causes the at least one processor to perform the optical fiber smart tag processing method as described in any one of claims 1-3.

8. A computer device, characterized in that, include: At least one processor; At least one memory that stores computer-executable instructions. Wherein, when the computer-executable instructions are executed by the at least one processor, the at least one processor causes the at least one processor to execute the optical fiber smart tag processing method as described in any one of claims 1-3.

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