Dummy resource management method and device, computer equipment and storage medium

By setting tags for dumb resources in the network and integrating their information, the problems of dumb resource management difficulty and high maintenance cost are solved, and the integration and digital management of dumb resource information are realized, which improves the management effect.

CN120075058APending Publication Date: 2025-05-30BEIJING HUAWEI DIGITAL TECH
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Patent Information

Application Number
CN202311615997.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2023-11-29
Publication Date
2025-05-30

AI Technical Summary

Technical Problem

There are a large number of dumb resources in the network, and their information is difficult to integrate and manage, resulting in management difficulties and high maintenance costs.

Method used

By setting corresponding tags for dummy resources, storing their identification information and connection information, network equipment and tag identification devices obtain these information and sending them to the management platform, realizing the integration and digital management of dummy resource information.

Benefits of technology

It reduces the difficulty and maintenance cost of dumb resource management, improves the accuracy of dumb resource information and network management effect.

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Abstract

The invention discloses a dumb resource management method and device, computer equipment and a storage medium, and belongs to the technical field of communication. In the invention, the dumb resource in the target network can be provided with the corresponding label, and on the basis, the network equipment and the label identification device can obtain the dumb resource information in the label of the dumb resource and send the dumb resource information to the management platform. Since the dumb resource information comprises the identification information and the connection information of the corresponding dumb resources, the management platform can integrate the dumb resource information based on the received identification information and the connection information of each dumb resource, and then digitally manages the dumb resources in the target network based on the integrated dumb resource information. And the dumb resource management difficulty is reduced, so that the dumb resource management and maintenance cost is reduced.
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Description

Technical Field

[0001] This application relates to the field of communication technologies, and in particular, to a method and apparatus for managing dumb resources, a computer device, and a storage medium. Background Art

[0002] There are a large number of dumb resources in the network, such as optical fibers, optical distribution frames (ODFs), optical cables, and optical distribution network (ODN) devices. The information of these dumb resources is usually recorded or managed manually. Since the information of different dumb resources may be scattered in different maintenance teams, or exist in different forms, or managed by different manual tagging methods, it is difficult to integrate the information of dumb resources, resulting in difficult management of dumb resources. Summary of the Invention

[0003] This application provides a method and apparatus for managing dumb resources, a computer device, and a storage medium, which can integrate the information of dumb resources, thereby reducing the difficulty of managing dumb resources and further reducing the management and maintenance costs of dumb resources.

[0004] To achieve the above object, this application adopts the following technical solutions:

[0005] In a first aspect, a method for managing dumb resources is provided. The method includes: obtaining first dumb resource information in a first tag, where the first tag is a tag of a first dumb resource, and the first dumb resource information includes identification information and connection information of the first dumb resource, and the first dumb resource is a dumb resource in a target network; sending the first dumb resource information to a management platform, where the management platform is configured to manage the dumb resources in the target network based on the first dumb resource information.

[0006] In this application, the dumb resources in the target network can be provided with corresponding tags. On this basis, network devices and tag recognition devices can obtain the dumb resource information in the tags of the dumb resources and send the dumb resource information to the management platform. Since the dumb resource information includes the identification information and connection information of the corresponding dumb resources, the management platform can integrate the dumb resource information based on the received identification information and connection information of each dumb resource, and then perform digital management on the dumb resources in the target network based on the integrated dumb resource information, reducing the difficulty of managing dumb resources and thus reducing the management and maintenance costs of dumb resources.

[0007] Optionally, the first dumb resource is a dumb resource connected to the first network device, and the method further includes: receiving a first message from a second network device, where the first message includes second dumb resource information, and the second dumb resource information includes identification information and connection information of at least one dumb resource, the second network device is connected to the first network device through the at least one dumb resource, and the at least one dumb resource includes the first dumb resource; verifying the first dumb resource information based on the second dumb resource information; and after the verification of the first dumb resource information passes, performing the step of sending the first dumb resource information to a management platform.

[0008] In this application, the second network device can transmit the dumb resource information read by itself to the first network device at the opposite end connected to it through a message. In this way, the first network device can verify the dumb resource information obtained by itself through the received dumb resource information, improving the accuracy of the dumb resource information. On this basis, the first network device sends the dumb resource information that passes the verification to the management platform, which can improve the management effect of the management platform on the dumb resource.

[0009] Optionally, the first message is a link layer discovery protocol (LLDP) message, and the first message includes a type-length-value (TLV) field for dumb resources, and the dumb resource TLV field is used to carry the second dumb resource information.

[0010] In this application, the LLDP message can be reused to implement the transmission of dumb resource information between network devices, thereby realizing the verification of dumb resource information, without redefining other types of messages, saving communication overhead.

[0011] Optionally, the at least one dumb resource includes one or more of an optical fiber, an ODF, an optical cable, and an ODN device.

[0012] Optionally, the method further includes: sending a second message to the second network device, where the second message includes the first dumb resource information, the second network device is connected to the first network device through at least one dumb resource, the first dumb resource information includes identification information and connection information of the at least one dumb resource, and the at least one dumb resource includes the first dumb resource.

[0013] In this application, the first network device can also transmit the dumb resource information obtained from the label of the dumb resource to the second network device at the opposite end, so that the second network device can verify the dumb resource information obtained by itself based on the received dumb resource information. In this way, two-way verification of the dumb resource information is realized, improving the accuracy of the dumb resource information.

[0014] Optionally, sending the second message to the second network device includes: in response to a subscription request for dumb resource information from the management platform, sending the second message to the second network device.

[0015] In this application, considering that the update or change frequency of dumb resource information is relatively low, therefore, a subscription-triggered method can be adopted to trigger the first network device to send a second message carrying the first dumb resource information to the second network device. In this way, compared with periodically sending messages carrying dumb resource information, the communication cost can be reduced.

[0016] Optionally, the first dumb resource is an optical fiber or an optical cable, the first dumb resource is located in an optical fiber storage device, the first label is located on the optical fiber storage device, and the identification information of the optical fiber storage device is stored in the first label.

[0017] In this application, an optical fiber storage device can be used to store dumb resources such as optical fibers and optical cables, and corresponding labels can be set on the optical fiber storage device to realize the orderly storage and management of dumb resources such as optical fibers and optical cables.

[0018] Optionally, the optical fiber storage device includes an optical fiber reel, and the first dumb resource is wound around the optical fiber reel.

[0019] In this application, the optical fiber storage device can include an optical fiber reel, and the optical fiber or optical cable can be wound around the optical fiber reel. In this way, it is possible to support the non-plugging-in storage of the optical fiber or optical cable.

[0020] Optionally, the first label is a radio frequency identification (RFID) label, a two-dimensional code, or a bar code.

[0021] In a second aspect, a dumb resource management method is provided. The method includes: receiving dumb resource information in labels of multiple dumb resources in a target network, where the dumb resource information includes identification information and connection information of the dumb resources; and managing the dumb resources in the target network based on the multiple dumb resource information.

[0022] In this application, corresponding labels can be set for the dumb resources in the target network, and the dumb resource information can be included in the labels. The management platform can receive the dumb resource information in the labels of the dumb resources sent by the network device and the label recognition device, and based on the identification information and connection information included in the received dumb resource information of each item, realize the integration of the dumb resource information. Furthermore, based on the integrated dumb resource information, the dumb resources in the target network can be digitally managed, reducing the difficulty of dumb resource management, and thus reducing the management and maintenance cost of dumb resources.

[0023] Optionally, the implementation process of managing the dumb resources in the target network based on the multiple pieces of dumb resource information may include: determining the topology information of the target network based on the multiple pieces of dumb resource information; and managing the dumb resources in the target network based on the topology information of the target network.

[0024] Optionally, the implementation process of determining the topology information of the target network based on the multiple pieces of dumb resource information may include: determining the network devices and / or other dumb resources to which each dumb resource in the target network is connected based on the connection information of the dumb resource included in each piece of dumb resource information; and determining the topology information of the target network based on the network devices and / or other dumb resources to which each dumb resource is connected.

[0025] In this application, since the connection information of the dumb resources is included in each piece of dumb resource information, thus, the information of adjacent dumb resources will contain overlapping connection information, that is, there will be redundant connection information in the multiple pieces of dumb resource information collected by the management platform. On this basis, the management platform can obtain the topology information of the network by integrating and splicing the connection information in the dumb resource information, so as to realize the efficient management of the network based on this topology information.

[0026] Optionally, the method further includes: verifying the multiple pieces of dumb resource information based on the connection information of the dumb resources included in the multiple pieces of dumb resource information; if the verification of the multiple pieces of dumb resource information passes, then execute the step of determining the topology information of the target network based on the multiple pieces of dumb resource information.

[0027] Optionally, the multiple pieces of dumb resource information include the first dumb resource information and the third dumb resource information; the implementation process of verifying the multiple pieces of dumb resource information based on the connection information of the dumb resources included in the multiple pieces of dumb resource information may include: if the connection information of the first dumb resource includes the first connection information for indicating the connection between the first dumb resource and the third dumb resource, the connection information of the third dumb resource includes the second connection information for indicating the connection between the third dumb resource and the first dumb resource, and the first connection information and the second connection information do not match, then the verification of the first dumb resource information and the third dumb resource information fails.

[0028] In this application, the management platform can also perform a global verification of the dumb resource information based on the connection information in the multiple pieces of dumb resource information received, further improving the accuracy of the dumb resource information.

[0029] Optionally, the method further includes: if the verification of the target dumb resource information in the multiple pieces of dumb resource information fails, then output a first prompt message, where the first prompt message is used to prompt that the target dumb resource information is incorrect.

[0030] In the case where the verification of certain dumb resource information fails, the management platform can promptly output a first prompt message to prompt the network management personnel to perform corresponding inspections and corrections.

[0031] Optionally, the implementation process of receiving the dumb resource information in the labels of multiple dumb resources in the target network may include: receiving the first dumb resource information in the first label sent by the first network device, where the first label is the label of the first dumb resource connected to the first network device, and / or receiving the third dumb resource information sent by the label recognition device, where the third dumb resource information is obtained by the label recognition device identifying the label of the third dumb resource.

[0032] In this application, for the dumb resources directly connected to the network device, the network device can obtain the dumb resource information in the corresponding label of the dumb resource and report the dumb resource information to the management platform. For the dumb resources not directly connected to the network device, the label recognition device can be used to read the dumb resource information in the corresponding label and report the read dumb resource information to the management platform. In this way, the management platform can collect the dumb resource information of each dumb resource in the network, thereby realizing the integration of the dumb resource information in the network.

[0033] Optionally, the method further includes: determining a first optical cable corresponding to the main transmission path of the first network device and a second optical cable corresponding to the backup transmission path based on the topology information of the target network; if the first optical cable and the second optical cable are the same optical cable, outputting a second prompt message, where the second prompt message is used to indicate that the main transmission path and the backup transmission path correspond to the same optical cable.

[0034] In this application, the management platform can also detect whether the main transmission path and the backup transmission path of the first network device use the same optical cable based on the integrated topology information of the target network, and give a safety prompt when it is detected that the main transmission path and the backup transmission path use the same optical cable, so as to avoid affecting the service reliability due to the main transmission path and the backup transmission path using the same optical cable.

[0035] In a third aspect, a dumb resource management device is provided. The dumb resource management device includes at least one module, and the at least one module is used to execute the dumb resource management method described in the first aspect or the second aspect above.

[0036] In a fourth aspect, a computer device is provided. The computer device includes a processor, and the processor is used to execute at least one program instruction or code stored in the memory to implement the dumb resource management method described in the first aspect or the second aspect above.

[0037] In a fifth aspect, a computer-readable storage medium is provided. Instructions are stored in the computer-readable storage medium. When the instructions run on a computer device, the computer device is caused to execute the dummy resource management method described in the first aspect or the second aspect above.

[0038] In a sixth aspect, a computer program product including instructions is provided. When the computer program product runs on a communication device, the communication device is caused to execute the transmission indication method described in the first aspect or the second aspect above.

[0039] The technical effects obtained in the third aspect, the fourth aspect, the fifth aspect, and the sixth aspect are similar to the technical effects obtained by the corresponding technical means in the first aspect and the second aspect, and will not be elaborated here.

[0040] In an embodiment of the present application, a corresponding label can be set for the dummy resources in the target network. On this basis, the dummy resource information in the label of the dummy resources can be obtained, and the dummy resource information can be sent to the management platform. Since the dummy resource information includes the identification information and connection information of the corresponding dummy resources, the management platform can integrate the dummy resource information based on the received identification information and connection information of each dummy resource, and then perform digital management on the dummy resources in the target network based on the integrated dummy resource information, reducing the difficulty of dummy resource management, and thus reducing the management and maintenance cost of dummy resources. BRIEF DESCRIPTION OF THE DRAWINGS

[0041] Figure 1 FIG. is a schematic structural diagram of a network system provided by an embodiment of the present application;

[0042] Figure 2 FIG. is a schematic diagram of a network system in an exemplary scenario provided by an embodiment of the present application;

[0043] Figure 3 FIG. is a schematic diagram of a network system in another exemplary scenario provided by an embodiment of the present application;

[0044] Figure 4 FIG. is a schematic diagram of a network system in another exemplary scenario provided by an embodiment of the present application;

[0045] Figure 5 FIG. is a schematic diagram of a network system in another exemplary scenario provided by an embodiment of the present application;

[0046] Figure 6 FIG. is a schematic diagram of an optical fiber storage device provided by an embodiment of the present application;

[0047] Figure 7 FIG. is a schematic diagram of another optical fiber storage device provided by an embodiment of the present application;

[0048] Figure 8 Schematic diagram of another optical fiber storage device provided by an embodiment of the present application;

[0049] Figure 9 Schematic diagram of the structure of a computer device provided by an embodiment of the present application;

[0050] Figure 10 Flowchart of a dumb resource management method provided by an embodiment of the present application;

[0051] Figure 11 Schematic diagram of a deployment method of an RFID reader and an RFID tag provided by an embodiment of the present application;

[0052] Figure 12 Schematic diagram of dumb resource information provided by an embodiment of the present application;

[0053] Figure 13 Schematic diagram of the payload of an LLDP packet provided by an embodiment of the present application;

[0054] Figure 14 Schematic diagram of dumb resource information transmitted between network devices provided by an embodiment of the present application;

[0055] Figure 15 Schematic diagram of splicing multiple pieces of dumb resource information provided by an embodiment of the present application;

[0056] Figure 16 Schematic diagram of the structure of a dumb resource management device provided by an embodiment of the present application;

[0057] Figure 17 Schematic diagram of the structure of another dumb resource management device provided by an embodiment of the present application. Detailed implementation manners

[0058] To make the objectives, technical solutions, and advantages of the embodiments of the present application clearer, the following will further describe the embodiments of the present application in detail with reference to the accompanying drawings.

[0059] Before explaining the embodiments of the present application in detail, the application scenarios involved in the embodiments of the present application will be introduced first.

[0060] Dumb resources in a network can refer to resources that cannot transmit their own information to other devices. For example, optical fibers, ODFs, optical cables, ODN devices, etc. in network cabling. The information of these dumb resources is usually recorded or managed manually. Since different dumb resources may be managed and maintained by different maintenance teams, the information of dumb resources in the same network may be scattered among different maintenance teams or in different forms, which results in the inability to integrate the information of dumb resources in the network. As a result, it is also difficult to integrate the topology information of multiple network elements including network devices and dumb resources in the network. With the continuous expansion and rectification of the network, there are more and more dumb resources in the network. In this case, the recording and management of the information of dumb resources will directly affect network security. For example, during network maintenance or cutover, if the information record of an optical fiber is lost or incorrect, it may be impossible to find the corresponding optical fiber, resulting in a network accident. Based on this, the embodiments of the present application provide a method for managing dumb resources in a network, which stores the identification information and connection information of corresponding dumb resources by setting corresponding tags for the dumb resources in the network. On this basis, the dumb resource information in the tag of the dumb resource is obtained and sent to the management platform. In this way, the management platform can integrate the dumb resource information based on the received identification information and connection information of each dumb resource, and then perform digital management on the dumb resources in the target network based on the integrated dumb resource information, reducing the difficulty of dumb resource management, improving the accuracy of dumb resource information, and thus reducing the management and maintenance cost of dumb resources. In addition, the management platform can integrate the topology information of multiple network elements including network devices and dumb resources by integrating the connection information in the dumb resource information. In this way, network delivery or cutover based on this topology information can improve network security.

[0061] The above is only a possible application scenario of the dumb resource management method provided by the embodiments of the present application. In some possible cases, this dumb resource management method can also be used to manage cable dumb resources, which is not limited in the embodiments of the present application.

[0062] Next, the structure of the network system involved in the dumb resource management method provided by the embodiments of the present application will be introduced.

[0063] Figure 1 is an architecture diagram of a network system provided by the embodiments of the present application. As Figure 1 shown, the network system may include a management platform 101, multiple network devices 102 ( Figure 1 two network devices are shown) and dumb resources 103. Among them, two adjacent network devices 102 can be connected through dumb resources 103, and multiple network devices 102 can communicate with the management platform 101.

[0064] The dumb resource 103 may include optical fibers, ODFs, optical cables, ODN devices, etc. Among them, the optical fibers may mainly include pigtails and patch cords. The ODN devices may include fiber distribution terminals (FDTs), fiber access terminals (FATs), splitting and splicing closures (SSCs), etc. The optical cables may be outdoor optical cables or indoor optical cables.

[0065] In the embodiments of the present application, the dumb resource 103 may have a corresponding tag, and the tag includes the identification information and connection information of the corresponding dumb resource. Among them, the tag corresponding to the dumb resource 103 may be an electronic tag. Correspondingly, the network system may further include a tag recognition device corresponding to the electronic tag. For example, the electronic tag corresponding to the dumb resource 103 is an RFID tag. In this case, the dumb resource 103 may further have a corresponding RFID reader / writer, and the RFID reader / writer may be used to read the identification information and connection information of the dumb resource in the RFID tag and output the read information to the network device 102 or the management platform 101. Optionally, the RFID reader / writer may also be used to write the identification information and connection information of the dumb resource into the RFID tag. It should be noted that there may be various implementation forms of the RFID reader / writer and the RFID tag. For example, the RFID reader / writer may be an independently set device. For example, it is externally placed near the dumb resource 103, or when the dumb resource 103 is directly connected to the network device 102, the RFID reader / writer may also be built into the network device 102 as a component. The RFID tag may be pasted on the dumb resource 103, or when the dumb resource 103 is an optical fiber or an optical cable, the dumb resource 103 may be stored in an optical fiber storage device. Correspondingly, the RFID tag may be pasted on the optical fiber storage device.

[0066] Optionally, the label corresponding to the dumb resource can also be a label such as a two-dimensional code or a bar code. In this case, the network system may further include a label recognition device corresponding to the corresponding label. The label recognition device can recognize the information of the dumb resource included in the two-dimensional code or the bar code, and send the recognized information of the dumb resource to the network device 102 and / or the management platform 101. Among them, the label recognition device can be a handheld terminal device such as a barcode scanner, a smart phone, or a tablet computer dedicated to scanning two-dimensional codes or barcodes. And, in this case, a network management application or a resource management application provided by the management platform can also be installed on the label recognition device. Alternatively, an application dedicated to scanning labels such as two-dimensional codes and barcodes can also be installed on the label recognition device. The label recognition device can scan and recognize the label through the above application, and send the recognized label to the network device 102 and / or the management platform 101. Of course, the label corresponding to the dumb resource can also be other types of labels in the future, which will not be elaborated in this embodiment of the present application.

[0067] It should be noted that, in the embodiment of the present application, there can be one or more labels corresponding to the dumb resource 103. For example, the identification information of the dumb resource 103 can be stored in one label, and the connection information can be stored in another label; or, when there is a lot of connection information of the dumb resource 103, different connection information can be stored in different labels. In this way, when there is a change in the transmission line where the dumb resource 103 is located or there is an error in the information in the label, only the corresponding label needs to be changed, reducing the workload.

[0068] The multiple network devices 102 can include devices in an Internet Protocol (IP) network. For example, they can include switches, routers, broadband remote access servers (BRAS), etc. in the IP network. The multiple network devices 102 can also include optical transport network (OTN) devices. In the embodiment of the present application, each network device 102 can obtain the dumb resource information in the label of the dumb resource connected to itself, and report the dumb resource information to the management platform 101.

[0069] The management platform 101 is used for network management or network resource management. In the embodiments of the present application, the management platform 101 can receive the dumb resource information sent by each network device 102. In addition, it can also receive the dumb resource information sent by the tag recognition device. After that, the management platform 101 can perform digital management on the dumb resources in the network based on the received dumb resource information. Among them, the management platform 101 can be implemented in a hardware, software, or a combination of hardware and software manner. For example, the management platform 101 can be implemented by a server deployed with a network management system NMS (network management system, NMS). In this case, the management platform 101 can communicate with each network device 102 and the tag recognition device through the simple network management protocol (SNMP). Optionally, the management platform 101 can also communicate with the network device 102 and the tag recognition device through telemetry technology.

[0070] As can be seen from the above introduction, the network devices in the network system involved in the dumb resource management method provided by the embodiments of the present application can have various types and the dumb resources can also have various types. Based on this, the following is a schematic diagram of a network system in an exemplary application scenario.

[0071] In the first example, the dumb resource management method provided by the embodiments of the present application can be applied to a certain IP network. Refer to Figure 2 , this network system can include a management platform 201, a first IP device 202 and a second IP device 203 in the IP network, and a pigtail or optical cable 204 for connecting the first IP device 202 and the second IP device 203.

[0072] In the second example, the dumb resource management method provided by the embodiments of the present application can be applied to a certain IP network. Refer to Figure 3 , this network system can include a management platform 201, a first IP device 202 and a second IP device 203 in the IP network, a pigtail or optical cable 204, and an ODF 205. Among them, the first IP device 202 and the second IP device 203 are connected through the pigtail or optical cable 204 and the ODF 205.

[0073] In the third example, the dumb resource management method provided by the embodiments of the present application can be applied to a cross-domain network including an IP network and an OTN. Refer to Figure 4, the network system may include a management platform 201, a first IP device 202 and a second IP device 203 in the IP network, a first OTN device 206 and a second OTN device 207 in the OTN, and patch cords or optical cables 204, ODF 205 and outside optical cable 208 for connecting the IP devices and OTN devices. As Figure 4 shown, the first IP device 202 may be connected to the first OTN device 206 through patch cords or optical cables 204 and ODF 205. The first OTN device 206 may be connected to the second OTN device 207 through the outside optical cable 208. The second OTN device 207 may be connected to the second IP device 203 through patch cords or optical cables 204 and ODF 205.

[0074] In the third example, the dumb resource management method provided by the embodiments of the present application may also be applied to a cross-domain network including two IP networks. Refer to Figure 5 , the network system may include a management platform 201, a first IP device 202 in the first IP network and a second IP device 203 in the second IP network, and patch cords or optical cables 204, ODF 205, ODN device 209 and outside optical cable 208 for connecting the IP devices. As Figure 5 shown, the first IP device 202 may be connected to the second IP device 202 through patch cords or optical cables 204, ODF 205, ODN device 209 and outside optical cable 208.

[0075] It can be understood that Figures 2 to 5 is a schematic diagram of four exemplary network systems given by the embodiments of the present application, which does not constitute a limitation on the network systems applicable to the embodiments of the present application. The dumb resource management method provided by the embodiments of the present application may also be applied to a network obtained by combining other network devices and dumb resources, which will not be elaborated here.

[0076] In addition, as introduced above, in the embodiments of the present application, a fiber storage device may be used to store dumb resources such as optical fibers and optical cables. Among them, the fiber storage device may support non-plugging storage of optical fibers and optical cables. That is, without interrupting the physical connection of the existing network, the optical fiber or optical cable can be stored in the fiber storage device without affecting the existing network services.

[0077] Exemplarily, Figure 6 is a schematic diagram of a fiber storage device shown in the embodiments of the present application. As Figure 6 shown, the fiber storage device includes a box body 60 and a fiber reel 61.

[0078] Among them, the box body 60 can be a cuboid or a cube. And, the box body 60 adopts an upper flip cover design, and the optical fiber reel 61 is arranged on the bottom plate of the box body 60. In this way, by opening the flip cover of the box body 60, the optical fiber or optical cable can be wound around the optical fiber reel 61 without plugging or unplugging the optical fiber or optical cable, and the bending of the optical fiber or optical cable can be protected.

[0079] Optionally, a first optical fiber outlet 62 and a second optical fiber outlet 63 can also be arranged on the side plate of the box body 60 of the optical fiber storage device. Exemplarily, the first optical fiber outlet 62 and the second optical fiber outlet 63 can be U-shaped holes. And, the first optical fiber outlet 62 and the second optical fiber outlet 63 can be arranged on the same side plate of the box body 60, or can be arranged on different side plates, for example, respectively arranged on two adjacent side plates, or arranged on two opposite side plates. In this way, one end of the optical fiber or optical cable wound around the optical fiber reel 61 can extend out from the first optical fiber outlet 62, and the other end can extend out from the second optical fiber outlet 63.

[0080] Optionally, optical fiber extension tubes (not shown in the figure) can also be respectively arranged at the first optical fiber outlet 62 and the second optical fiber outlet 63. The optical fiber extension tube can be opened along the length direction, so that the optical fiber can be placed in the optical fiber extension tube. In this way, the optical fiber or optical cable wound around the optical fiber reel 61 can extend out through the optical fiber extension tube to protect the curvature of the optical fiber.

[0081] Optionally, a hook can also be arranged on the box body 60, and the box body 60 can be supported to be hung through the hook.

[0082] Optionally, one optical fiber reel 61 can be arranged in the box body 60. Or, multiple optical fiber reels can also be arranged. In the case where multiple optical fiber reels 61 are arranged, the inside of the box body 60 can be divided into multiple accommodation bins by partitions, and one optical fiber reel can be arranged in each accommodation bin. Among them, the number of accommodation bins can be set according to the number of interface boards.

[0083] Optionally, in a possible implementation manner, when the label set on the optical fiber storage device or on the optical fiber and optical cable is an electronic label, a label recognition device can also be arranged in the optical fiber storage device, which is used to recognize the electronic label on the optical fiber storage device or on the optical fiber and optical cable to obtain the information of the dumb resource, and send the obtained information of the dumb resource to the management platform or the network device. For example, when the electronic label is an RFID label, an RFID reader can be arranged in the optical fiber storage device.

[0084] As can be seen from the above-described optical fiber storage device, the optical fiber storage device does not add new optical fiber interfaces. Therefore, attenuation can be avoided, and the optical fibers or optical cables in the existing network can be stored without unplugging the optical fibers or optical cables. Moreover, it should be noted that the box body 60 of the above optical fiber storage device forms a certain accommodation space. Therefore, it is allowed to physically stack the optical fibers or optical cables in the box, and the thickness can be adjusted arbitrarily. The optical fiber storage device can be placed near the network device for protection of the optical fibers or optical cables, and the port correspondence is clear, which is beneficial to later maintenance.

[0085] The above Figure 6 The optical fiber storage device shown in the above is an example given in the embodiment of the present application. The optical fiber storage device can also be in other forms. For example, the optical fiber storage device can also be in a more space-saving form such as a tape-measure-shaped disk type or an openable sleeve type, as long as the optical fibers and optical cables can be stored without unplugging.

[0086] Exemplarily, Figure 7 is a schematic structural diagram of a disk-type optical fiber storage device shown in the embodiment of the present application. As Figure 7 shown, the optical fiber storage device can include an optical fiber reel 70, a first baffle 71, and a second baffle 72. Among them, the optical fiber reel 70 is located between the first baffle 71 and the second baffle 72. The optical fiber or optical cable can be wound around the optical fiber reel 70.

[0087] Optionally, the optical fiber reel 70 can be hollow. Correspondingly, the first baffle 71 and the second baffle 72 can have through holes corresponding to the optical fiber reel 70, so as to communicate with the hollow part of the optical fiber reel 70. In this case, the optical fiber storage device can further include a cable tie 73. The two ends of the cable tie 73 can be locked by a locking component 731 such as a button. In this way, the two ends of the cable tie 73 can pass through the hollow part of the optical fiber reel 70 and be locked by the locking component 731, so as to fix the optical fiber or optical cable.

[0088] Figure 7 Shown in the above is a schematic diagram of a possible disk-type optical fiber storage device. The disk-type optical fiber storage device can also include other components. For example, it can also include an outer box body, etc. The embodiments of the present application will not elaborate herein.

[0089] Figure 8 is a schematic structural diagram of a sleeve-type optical fiber storage device shown in the embodiment of the present application. As Figure 8As shown, the optical fiber storage device may include a box body 80 and a plurality of optical fiber slots 81 penetrating the box body 80. Among them, the upper top plate 801 of the box body 80 is movable. For example, the upper top plate 801 may adopt a flip cover design. The slots 81 are arranged on the side plates of the box body 80, and the slots 81 penetrate from the front side plate to the rear side plate. Among them, the cross-section of the slots 81 may be as Figure 8 shown as a circle with a notch. In this way, after opening the upper top plate 801, the optical fiber or optical cable can be inserted into the slot 81 from the notch, and then the upper top plate 801 is buckled down to fix and store the optical fiber or optical cable.

[0090] It should be noted that one or more optical fibers or optical cables can be stored in one slot 81. In addition, the optical fiber or optical cable can also be bent and stuck in the slot 81.

[0091] Optionally, an arc-shaped groove corresponding to the notch of the slot 81 can be provided on the upper top plate 801 to form a circular through hole with the slot 81 to accommodate the optical fiber or optical cable.

[0092] Optionally, a buckle can also be provided on the upper top plate 801 and / or the side plate of the box body 80 so that after the upper top plate 801 is buckled down, the upper top plate 801 and the side plate can be fastened tightly.

[0093] Figure 8 Shown is a schematic diagram of a possible sleeve-type optical fiber storage device. The sleeve-type optical fiber storage device may also include other components, or the whole may present other shapes. For example, the whole may not be Figure 8 the rectangular box shown, but may adopt other shapes, which are not limited in the embodiments of the present application.

[0094] Figure 9 is a schematic structural diagram of a computer device shown in the embodiments of the present application. The network device, label recognition device, and management platform involved in the embodiments of the present application can all be implemented by Figure 9 the computer device shown. As Figure 9 shown, the computer device may include at least one processor 901, a communication bus 902, a memory 903, and at least one communication interface 904. It should be noted that Figure 9 the shown device structure does not limit the computer device. The computer device may include more or fewer components than shown, or combine some components, or have different component arrangements, which are not limited in the embodiments of the present application. The following will introduce each component of the computer device in detail with Figure 9 reference to:

[0095] The processor 901 is the control center of the computer device, which can be a single processor or a collective term for multiple processing elements. For example, the processor 901 can be a general-purpose central processing unit (CPU), or an application-specific integrated circuit (ASIC), or one or more integrated circuits for controlling the execution of the program of the solution of the present application. For example: one or more digital signal processors (DSPs), or one or more field programmable gate arrays (FPGAs). Among them, the processor 901 can execute various functions of the computer device by running or executing software programs stored in the memory 903 and calling data stored in the memory 903. For example, the actions of the network device or the management platform in the various embodiments described below can be executed by the processor of the corresponding device calling the data in the memory.

[0096] As an embodiment, the processor 901 may include one or more CPUs, such as Figure 9 the CPU0 and CPU1 shown in

[0097] As an embodiment, the computer device may include multiple processors, such as Figure 9 the processor 901 and the processor 905 shown in

[0098] The communication bus 902 may include a path for transmitting information between the above components. The communication bus 902 can be an industry standard architecture (ISA) bus, a peripheral component interconnect (PCI) bus, or an extended industry standard architecture (EISA) bus, etc. The bus can be divided into an address bus, a data bus, a control bus, etc. For the sake of representation, Figure 9 only a thick line is shown in

[0099] The memory 903 can be a read-only memory (ROM) or other types of static storage devices that can store static information and instructions, a random access memory (RAM), or other types of dynamic storage devices that can store information and instructions. It can also be an electrically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM), or other optical disc storage, optical disc storage (including compact discs, laser discs, optical discs, digital versatile discs, Blu-ray discs, etc.), magnetic disk storage media, or other magnetic storage devices, or any other medium that can be used to carry or store the desired program code in the form of instructions or data structures and can be accessed by a computer, but is not limited thereto. The memory 903 can exist independently and be connected to the processor 901 through the communication bus 902. The memory 903 can also be integrated with the processor 901. Among them, the memory 903 is used to store the software program for implementing the solution provided in the embodiments of the present application, and is controlled by the processor 901 for execution.

[0100] The communication interface 904 is used to communicate with other devices or communication networks, such as Ethernet, RAN, wireless local area networks (WLAN), etc. The communication interface 904 can include a receiving unit to implement the receiving function and a transmitting unit to implement the transmitting function.

[0101] As an embodiment, the computer device may further include an output device 906 and an input device 907. The output device 906 communicates with the processor 901 and can display information in various ways. For example, the output device 906 can be a liquid crystal display (LCD), a light emitting diode (LED) display device, a cathode ray tube (CRT) display device, or a projector, etc. The input device 907 communicates with the processor 901 and can receive inputs in various ways. For example, the input device 907 can be a mouse, a keyboard, a touch screen device, or a sensing device, etc.

[0102] The above computer device can be a general-purpose computer device or a special-purpose computer device. For example, it can be a desktop computer, a portable computer, a network server, etc., and the embodiments of the present application do not make any limitations thereto.

[0103] Next, a detailed explanation of the dumb resource management method provided by the embodiments of the present application will be given.

[0104] Figure 10 It is a flowchart of a dumb resource management method provided by the embodiments of the present application. This method can be applied to the network system introduced above. Refer to Figure 10 and this method includes the following steps:

[0105] Step 1001: A network device or a tag identification device acquires first dumb resource information in a first tag. The first tag is a tag of a first dumb resource, and the first dumb resource information includes identification information and connection information of the first dumb resource. The first dumb resource is a dumb resource in a target network.

[0106] In a possible case, the first dumb resource may be a dumb resource directly connected to the network device. For example, the first dumb resource is an optical fiber or an optical cable directly connected to a first network device. In this case, the first network device can acquire the first dumb resource information in the first tag. Wherein, the first network device can be any network device in the target network.

[0107] Exemplarily, when the first tag is an electronic tag, a tag identification device may be built into the first network device. For example, as Figure 11 shown, the first tag is an RFID tag, and an RFID reader / writer is built into the first network device. The first network device can read the first dumb resource information pre-written into the first tag through the tag identification device.

[0108] Or, when the first tag is an electronic tag, the tag identification device may be externally disposed of the first network device. For example, when the first dumb resource is an optical fiber or an optical cable, the first dumb resource may be housed in an optical fiber housing device. At this time, the tag identification device may be fixedly disposed in the optical fiber housing device, or may also be disposed outside the optical fiber housing device. And the tag identification device can be connected to the first network device. In this case, the tag identification device can read the first dumb resource information in the first tag and send the first dumb resource information to the first network device.

[0109] Or, when the first tag is not an electronic tag, for example, when the first tag is a two-dimensional code or a bar code, the tag identification device may be a handheld terminal device. In this case, the first tag can be scanned by the handheld terminal device to read the first dumb resource information in the first tag. Then, the handheld terminal device sends the first dumb resource information to the first network device.

[0110] Among them, the first dummy resource information may include the identification information and connection information of the first dummy resource. The identification information of the first dummy resource can be used to identify the first dummy resource, and the connection information of the first dummy resource can be used to indicate the connection relationship of the first dummy resource.

[0111] Exemplarily, the identification information of the first dummy resource may include the overall identification of the first dummy resource, and may also include the identifications of the components or parts included in the first dummy resource. The connection information of the first dummy resource may include the information of the devices directly connected to the first dummy resource, and may also include the information of the devices indirectly connected to the first dummy resource. That is, it may also include the information of the devices and ports on the transmission line where the first dummy resource is located. The devices directly or indirectly connected to the dummy resource mentioned in the embodiments of the present application may be network devices or other dummy resources.

[0112] It should be noted that the information of the devices directly connected to the first dummy resource may include the information of the upstream device and / or downstream device directly connected to the first dummy resource, and, the information of these devices may be arranged in sequence according to the connection order, or, the information of these devices may also indicate the connection order by carrying the corresponding serial numbers.

[0113] Next, taking the first dummy resource as an optical fiber as an example, the implementation manner of the first dummy resource information will be introduced.

[0114] The identification information of the optical fiber may include the identification of the optical fiber. The connection information of the optical fiber may include the identifications of the devices directly connected to the two ends of the optical fiber respectively and the identifications of the ports on the devices used to connect the optical fiber. For example, one end of the optical fiber is connected to port 1 of the first network device, and the other end is connected to the input port of the first ODF, then the connection information of the optical fiber may include the device identification of the first network device, the identification of port 1 of the first network device, the identification of the first ODF, and the identification of the input port of the first ODF.

[0115] Optionally, the connection information of the optical fiber may further include the information of the devices and ports indirectly connected to the optical fiber. For example, the output port of the first ODF is connected to port 2 of the second network device through another optical fiber, then the connection information of the optical fiber may further include the identification of the output port of the first ODF, the identification of the other optical fiber, the device identification of the second network device, and the identification of port 2 of the second network device. It should be noted that in this case, in order to clearly represent the connection relationship between the optical fiber and the first network device, the first ODF, and the second network device, the identification information of the optical fiber included in the first dummy resource information and the information of each device and port in the connection information of the optical fiber may be arranged in the connection order. For example, assuming that the identification of the optical fiber is F1, the device identification of the first network device is N1, and the identification of port 1 of the first network device is P N1, the identifier of the first ODF is ODF1, and the identifier of the incoming port of the first ODF is P1 ODF1 , and the identifier of the outgoing port is P2 ODF1 , another optical fiber F2 connecting the first ODF and the second network device, the device identifier of the second network device is N2, and the identifier of the port of the second network device is P N2 , then the first dumb resource information can be as Figure 12 shown, where the information items in the first dumb resource information can be arranged in the order from left to right in Figure 12 , or can be arranged in the order from right to left.

[0116] Optionally, considering that the first ODF also has a corresponding label, and the label can also record the information of the connected optical fiber, so, in the embodiments of the present application, the connection information of the optical fiber can also include the device identifier of the first network device, the identifier of port 1 of the first network device, and the identifier of the optical fiber, and does not include the information of the first ODF connected to the other end of the optical fiber.

[0117] Optionally, the first dumb resource information can also include the optical fiber type.

[0118] Optionally, when the optical fiber is stored by the optical fiber storage device, the first dumb resource information can also include the identifier of the optical fiber storage device. In the case where the optical fiber storage device includes multiple storage bins, it can also include the identifier of the storage bin where the optical fiber is located.

[0119] The above has given an exemplary description with the first dumb resource being an optical fiber. When the first dumb resource is other dumb resources, the identifier information and connection information of the first dumb resource included in the first dumb resource information can also refer to the above logic, and the embodiments of the present application will not elaborate here.

[0120] Optionally, if one end of the first dumb resource is directly or indirectly connected to a transparent transmission network that cannot collect dumb resource information, the first dumb resource information can also include indication information of the transparent transmission network, and the indication information is used to indicate the existence of a transparent transmission network that cannot collect dumb resource information. For example, the indication information can be the identifier of the transparent transmission network, or, the indication information can be a preset string for indicating a transparent transmission network that cannot collect dumb resource information.

[0121] In another possible case, the first dumb resource is not directly connected to the network device. For example, the first dumb resource is an ODF between two jumpers. In this case, the label recognition device can read the first dumb resource information in the first label and directly send the first dumb resource information to the management platform.

[0122] In this case, the label recognition device can be fixedly installed near the first dumb resource or be a handheld terminal device. For the specific implementation method, reference can be made to the relevant introduction in the previous case, which will not be elaborated here.

[0123] It should be noted that in the embodiments of the present application, there may be one or more first labels corresponding to the first dumb resource. When there are multiple first labels, different information items in the first dumb resource information may be stored in the multiple first labels. For example, a certain first label stores the identification information of the first dumb resource, the device identification and port identification of the first network device connected to the first dumb resource, and another first label stores the identification information of the first dumb resource, the identification and port identification of the first ODF connected to the first dumb resource. In this case, the network device or the label recognition device can obtain the dumb resource information in the multiple first labels, so as to obtain the first dumb resource information.

[0124] Optionally, in a possible case, when there are multiple first labels corresponding to the first dumb resource, different information items may be stored in the multiple first labels, and redundant information items may also be stored. For example, a certain first label is a label embedded in the corresponding dumb resource, containing the own information of the dumb resource, such as identification and type, and a certain first label is the wiring label of the corresponding dumb resource, containing the connection information of the dumb resource. In this case, based on the redundant information items in the multiple first labels, the dumb resource information in the multiple first labels can be verified, so as to obtain the first dumb resource information based on the verified dumb resource information.

[0125] For example, taking the first dummy resource as an optical fiber, the optical fiber is stored in an optical fiber storage device. Two tags can be set on the optical fiber storage device. Among them, one tag contains the identifier of the optical fiber, the identifier of the optical fiber storage device, the identifier of the first network device connected to one end of the optical fiber, and the identifier of the port on the first network device connected to the optical fiber. In addition to the information in the above tag, the other tag can also contain the information of the devices and ports directly connected to the other end of the optical fiber and the devices and ports indirectly connected. Based on this, by comparing the information in the two tags, the information in the two tags can be verified. For example, the optical fiber is stored in an optical fiber storage device. Therefore, if the identifiers of the optical fiber storage devices in the two tags are different, it means that the dummy resource information in a certain tag is incorrect. For another example, if the identifiers of the ports of the first network devices connected to the optical fiber in the two tags are different, it means that the dummy resource information in a certain tag is also incorrect. Thus, through the redundant information items included in the two tags, the verification of the dummy resource information in the two tags can be achieved. After the verification of the dummy resource information in the two tags passes, the integration of the dummy resource information in the two tags can be achieved based on the redundant information items, so as to obtain the first dummy resource information. The specific integration method can refer to the implementation process of splicing the dummy resource information by the management platform introduced in the following text.

[0126] Step 1002: The network device or the tag identification device sends the first dummy resource information to the management platform, and the management platform receives the first dummy resource information.

[0127] For a network device, for example, taking the first network device as an example, after the first network device obtains the first dummy resource information, it can store the first dummy resource information. For example, it can store the first dummy resource information in its own management information base (MIB). After that, the first network device can send the first dummy resource information to the management platform.

[0128] In a possible implementation manner, the first network device and the management platform communicate based on SNMP. In this case, after the first network device obtains the first dummy resource information, it can actively send the first dummy resource information to the management platform, or it can send the first dummy resource information to the management platform after receiving a data request from the management platform.

[0129] In another possible implementation manner, the first network device and the management platform can also communicate through telemetry technology. In this case, the management platform can pre-send a dummy resource information subscription request to the first network device. In this way, whenever the first network device obtains dummy resource information, it can actively send the obtained dummy resource information to the management platform.

[0130] Optionally, in some possible cases, before sending the first dummy resource information to the management platform, the first network device may also verify the first dummy resource information based on the dummy resource information carried in the packets sent by other network devices connected to the first network device. After the verification passes, the first dummy resource information is sent to the management platform.

[0131] Exemplarily, the first network device may receive a first packet from a second network device, where the first packet includes second dummy resource information, and the second dummy resource information includes identification information and connection information of at least one dummy resource; verify the first dummy resource information based on the second dummy resource information. Among them, the second network device is connected to the first network device through at least one dummy resource, and the at least one dummy resource includes the first dummy resource. That is, the first dummy resource is the dummy resource connecting the first network device and the second network device, and the second dummy resource information includes the information of the dummy resource between the first network device and the second network device.

[0132] It should be noted that the second network device may refer to the foregoing method for the first network device to obtain the first dummy resource information to obtain the second dummy resource information in the second label of the second dummy resource connected to itself, and generate a first packet based on the obtained second dummy resource information.

[0133] Among them, the first packet may be an LLDP packet, an interior gateway protocol (IGP) packet, etc. The second network device may carry the dummy resource information by expanding the TLV field in the corresponding packet.

[0134] Taking the first packet as an LLDP packet as an example, the first packet may include an extended dummy resource TLV field, and the second dummy resource information is carried through the dummy resource TLV field.

[0135] Exemplarily, see Figure 13, Generally, the payload part of an LLDP packet can include four mandatory TLV fields, namely chassis ID TLV, port ID TLV, time to live (TTL), and end TLV. Among them, the chassis ID TLV can be used to carry the identifier of the sending device; the port ID TLV can be used to carry the identifier of the sending port; the TTL TLV can be used to carry the time to live of the information in the payload part of this LLDP packet, and this time to live can be used to indicate the valid time of the information in the payload part; the end TLV can be used to indicate the end of the payload part of the LLDP packet. In addition, the LLDP packet can also include one or more optional TLVs. Based on this, in the embodiments of this application, a dummy resource TLV can be added to the LLDP packet, and the dummy resource information can be carried through this dummy resource TLV. Among them, this dummy resource TLV can be located before the end TLV. For example, as Figure 13 shown, this dummy resource TLV can be adjacent to the TTL TLV.

[0136] It should be noted that, from the foregoing introduction to the first dummy resource information, the dummy resource information includes the information of the devices and ports directly connected to the dummy resource, and can also include the information of the devices, ports, and transparent transmission networks indirectly connected to the dummy resource. Based on this, the information of at least one dummy resource included in the second dummy resource information can include the information of the second dummy resource directly connected to the second network device, and can also include the information of the devices, ports, and transparent transmission networks indirectly connected to the second dummy resource. The second network device can add this second dummy resource information to the dummy resource TLV field of the LLDP packet to be sent to the first network device, so as to obtain the first packet.

[0137] Among them, in the dummy resource TLV field of the first packet, the information items in the second dummy resource information can be arranged in the connection order of the corresponding devices, ports, and transparent transmission networks.

[0138] Optionally, in another possible implementation, the information items in the second dummy resource information can also correspond to different serial numbers according to the connection order of the corresponding devices, ports, and transparent transmission networks. For example, if the second dummy resource is an optical fiber, one end of the second dummy resource is connected to port 1 of the second network device, and the other end is connected to the input port of the first ODF, then in the dummy resource TLV field of the first packet, the device identifier of the second network device and the identifier of port 1 of the second device can correspond to serial number 1, the identifier information, type, etc. of the second dummy resource can correspond to serial number 2, and the identifier of the first ODF and the identifier of the input port of the first ODF can correspond to serial number 3. In this way, through the serial numbers corresponding to the information items, the connection relationship between the second dummy resource and other devices can be determined.

[0139] Optionally, since the chassis ID TLV and port ID TLV in the payload part of the LLDP packet can be used to carry the identifier of the sending device and the identifier of the sending port respectively, and the connection information of the second dumb resource includes the device identifier of the second network device and the identifier of the port on the second network device connected to the second dumb resource, where the port connected to the second dumb resource is the sending port of the first packet. Therefore, in a possible implementation, if the second dumb resource information does not include the relevant information about the indirect connection of the second dumb resource to other devices through the second network device, the identifier of the second network device included in the connection information of the second dumb resource and the identifier of the port on the second network device connected to the second dumb resource may not be added to the dumb resource TLV field either. In this way, redundant information can be reduced, thereby shortening the length of the first packet and reducing the communication cost.

[0140] Optionally, since LLDP packets are usually sent periodically, and carrying dumb resource information in LLDP packets will result in longer LLDP packets. Moreover, the update frequency of dumb resource information is often extremely low. Based on this, in the embodiments of this application, a subscription-triggered method can be used to send LLDP packets carrying dumb resource information.

[0141] For example, the second network device may send a first packet carrying the second dumb resource information to the first network device when receiving a dumb resource information subscription request or a data request from the management platform. In this way, the sending frequency of LLDP packets carrying dumb resource information can be reduced, thereby reducing the communication cost.

[0142] After receiving the first packet sent by the second network device, the first network device can parse the first packet to obtain the second dumb resource information from the dumb resource TLV field of the first packet.

[0143] Among them, if the second network device and the first network device are connected through a dumb resource. For example, as Figure 2For the scenario shown in [Figure 0], the second dummy resource and the first dummy resource are the same dummy resource, and the second label is the label of this dummy resource on the side of the second network device. In this case, if both the first dummy resource information and the second dummy resource information are correct, then the identifier of the first dummy resource included in the first dummy resource information is the same as the identifier of the second dummy resource included in the second dummy resource information, and the identifier and port of the network device to which the other end of the first dummy resource (except the end connected to the first network device) in the first dummy resource information is connected should be the same as the identifier and port of the second network device to which the second dummy resource is connected in the second dummy resource information, and the identifier and port of the network device to which the other end of the second dummy resource (except the end connected to the second network device) in the second dummy resource information is connected should be the same as the identifier and port of the first network device to which the first dummy resource is connected in the first dummy resource information. Based on this, in the embodiments of the present application, the first network device can determine whether the identifier information of the dummy resources in the second dummy resource information and the first dummy resource information is the same, and whether the connection information of the first dummy resource in the first dummy resource information matches the connection information of the second dummy resource in the second dummy resource information, that is, whether the identifier and port of the network device to which the first dummy resource is connected are the same as the identifier and port of the network device to which the second dummy resource is connected. If both are the same, then the verification of the first dummy resource information passes. Optionally, if one of the above is different or does not match, then the verification of the first dummy resource information fails.

[0144] Optionally, if the second network device and the first network device are connected through multiple dummy resources, and the second dummy resource information carried in the first message includes the information of these multiple dummy resources, then the first network device can verify the first dummy resource information based on the information of these multiple dummy resources.

[0145] Among them, the first network device can determine whether there is the identifier information of the first dummy resource in the second dummy resource information. If not, then the verification of the first dummy resource information fails. If there is the identifier information of the first dummy resource, then the first network device can determine the connection information of the first dummy resource from the second dummy resource information. If the connection information of the first dummy resource matches the connection information of the first dummy resource included in the first dummy resource information, then the verification of the first dummy resource information passes. If not, then the verification of the first dummy resource information fails.

[0146] For example, referring to Figure 14 , the first network device is IP device D1, the second network device is OTN device D2, and D1 and D2 are sequentially connected through fiber jumper F1, ODF1, and fiber jumper F2, as Figure 14As shown, the first dumb resource information obtained by the first network device is A, and the second dumb resource information in the first message sent by the second network device is B. After receiving the first message, the first network device can first search for the identifier of the jump fiber F1 in the second dumb resource information. After finding it, it can use the identifier of the jump fiber F1 as a base point to compare whether the identifiers of the upstream device and port of the jump fiber F1 and the connection relationship contained in the first dumb resource information are consistent with the identifiers of the downstream device and port of the jump fiber F1 in the second dumb resource information and the connection relationship, and compare whether the identifiers of the downstream device and port of the jump fiber F1 contained in the first dumb resource information and the indicated connection relationship are consistent with the identifiers of the upstream device and port of the jump fiber F1 in the second dumb resource information and the indicated connection relationship. If they are consistent, the verification of the first dumb resource information is passed.

[0147] Optionally, after acquiring the first dummy resource information, the first network device may also generate a second message based on the first dummy resource information and send the second message to the second network device, wherein the second message includes the first dummy resource information, and the first dummy resource information may include identification information and connection information of at least one dummy resource between the second network device and the first network device. In this way, the second network device may also verify the second dummy resource information acquired by itself based on the first dummy resource information in the second message.

[0148] Among them, the implementation method of the second message can refer to the implementation method of the aforementioned first message, and the process of the second network device verifying the second dumb resource information based on the first dumb resource information in the second message can refer to the process of the aforementioned first network device verifying the first dumb resource information. The embodiments of the present application will not be repeated here.

[0149] After the first network device passes the verification of the first dummy resource information, the first network device may send the first dummy resource information to the management platform. If the verification fails, the first network device may send a notification message to the management platform to notify that the first dummy resource information verification fails. Optionally, the notification message may also include the information item or reason for the failure in the first dummy resource information, so that the management platform can manage and maintain the corresponding dummy resource based on the notification message.

[0150] In summary, in the embodiment of the present application, any network device in the target network can transmit the dumb resource information it has read to the opposite network device connected thereto through a message, so that the opposite network device can verify the dumb resource information it has obtained through the received dumb resource information, thus achieving a two-way verification of the dumb resource information and improving the accuracy of the dumb resource information. On this basis, the network device sends the verified dumb resource information to the management platform, which can improve the management effect of the management platform on the dumb resources.

[0151] The above mainly introduced that after a network device obtains the information of a dumb resource, it sends the dumb resource information to the management platform. Next, the situation where the tag recognition device sends the dumb resource information will be introduced.

[0152] For the tag recognition device, after obtaining the first dumb resource information, the tag recognition device can also use SNMP or telemetry technology to send the first dumb resource information back to the management platform.

[0153] It should be noted that since the tag recognition device may not support LLDP, in this case, after the tag recognition device obtains the first dumb resource information, it can directly report the first dumb resource information to the management platform without verifying the first dumb resource information. Correspondingly, after the management platform receives the first dumb resource information, it can verify the first dumb resource information based on the dumb resource information of other devices directly or indirectly connected to the first dumb resource.

[0154] Step 1003: The management platform manages the dumb resources in the target network based on the received multiple dumb resource information.

[0155] As can be seen from the introduction in the above steps 1001 and 1002, the network devices in the target network can report the dumb resource information in the tags of the dumb resources connected to themselves to the management platform, while other dumb resources not directly connected to the network devices can report the dumb resource information in their corresponding tags to the management platform through the tag recognition device. Based on this, the management platform can receive multiple dumb resource information reported by the tag recognition device and the network devices in the target network. On this basis, the management platform can integrate the received multiple dumb resource information, and then manage the dumb resources in the target network based on the integrated dumb resource information.

[0156] In a possible implementation manner, since each dumb resource information includes the identification information and connection information of the dumb resource, in this way, the information of adjacent dumb resources will contain overlapping connection information. Therefore, the management platform can determine the topology information of the target network by integrating and splicing the connection information in each dumb resource information. Then, based on the topology information of the target network, manage the dumb resources in the target network.

[0157] Exemplarily, the management platform can determine the network devices and / or other dumb resources connected to each dumb resource in the target network based on the connection information of the dumb resource included in each dumb resource information; determine the topology information of the target network based on the network devices and / or other dumb resources connected to each dumb resource.

[0158] Taking the first dummy resource information and the third dummy resource information among multiple pieces of dummy resource information as examples, if the management platform detects the identification information of the same dummy resource in the first dummy resource information and the third dummy resource information, and the first dummy resource information and the third dummy resource information include different connection information of this dummy resource. For example, the first dummy resource information contains the identification of the upstream device and port of this dummy resource, while the second dummy resource information contains the identification of the downstream device and port of this dummy resource, then the management platform can obtain more complete connection information corresponding to this dummy resource by splicing the connection information of this dummy resource in the first dummy resource information and the third dummy resource information. In this way, by splicing and integrating the connection information in multiple pieces of dummy resource information, the topology information of the target network can be obtained.

[0159] For example, refer to Figure 15 , in the target network, the first IP device A1 is connected to the first OTN device B1 through the first fiber optic cable F1, the first ODF, and the second fiber optic cable F2 in sequence. The first OTN device B1 is connected to the second OTN device B2 through the external optical cable F3. The second OTN device B2 is connected to the second IP device A2 through the third fiber optic cable F4, the second ODF, and the fourth fiber optic cable F5 in sequence. The management platform can receive the dummy resource information reported by the first IP device A1, the second IP device A2, the first OTN device B1, and the second OTN device B2. Among them, the dummy resource information reported by each network device can be as shown Figure 15 below. In addition, the management platform can also receive the dummy resource information in the labels of the first ODF and the second ODF returned by the label recognition device R1 and the label recognition device R2, as shown in Figure 15 respectively. As can be seen from Figure 15 , both the dummy resource information reported by the first IP device A1 and the dummy resource information of the first ODF reported by the label recognition device R1 include the identification ODF1 of the first ODF and the identification P1 of the input port of the first ODF ODF1 . And the dummy resource information of the first ODF also includes the identification P2 of the output port of the first ODF ODF1 . Based on this, the management platform can splice these two pieces of dummy resource information to obtain splicing information 1. Further, both the splicing information 1 and the dummy resource information reported by the first OTN device B1 include the device identification B1 of the first OTN device and the identification P1 of the first port B1 , and the dummy resource information reported by the first OTN device B1 also includes the identification P2 of the second port of the first OTN device B1 B1, the management platform can splice the splicing information 1 with the dumb resource information reported by the first OTN device B1 to obtain splicing information 2, and so on. The management platform can obtain the final splicing information, that is, splicing information 4, by sequentially splicing each piece of dumb resource information. At this time, the splicing information 4 is the topological information of the first IP device A1, the first OTN device B1, the second OTN device B2, the second IP device A2, and each of the above network devices and dumb resources in the target network. Among them, P1 B2 is the identifier of the first port on the second OTN device B2, P2 B2 is the identifier of the first port on the second OTN device B2, ODF2 is the identifier of the second ODF, P1 ODF2 is the identifier of the incoming port on the second ODF, P2 ODF2 is the identifier of the outgoing port on the second ODF, P A1 is the identifier of the port on the first IP device A1, P A2 is the identifier of the port on the second IP device A2. It can be seen that the embodiment of the present application realizes the topological drawing of the cross-domain network.

[0160] After obtaining the topological information of the target network, the management platform can perform digital management on the dumb resources in the target network based on the topological information. For example, when performing cutover or maintenance on the target network, the relevant dumb resources in the target network can be quickly located through the topological information, so as to achieve safe network cutover or efficient network maintenance. Moreover, when performing network maintenance, the management platform can also quickly locate the relevant network devices according to the topological information, improving the network maintenance efficiency.

[0161] Optionally, when there are a main transmission path and a backup transmission path set in a certain network device, such as the first network device, the first network device can also send the identifiers of the main port and the backup port corresponding to the main transmission path and the backup transmission path respectively to the management platform. On this basis, the management platform can also detect whether the main transmission path and the backup transmission path use the same optical cable based on the integrated topological information, the identifiers of the main port and the backup port, and give a safety prompt when it is detected that the main transmission path and the backup transmission path use the same optical cable, so as to avoid affecting service reliability due to the main transmission path and the backup transmission path using the same optical cable.

[0162] Exemplarily, the management platform can determine the first optical cable corresponding to the main transmission path and the second optical cable corresponding to the backup transmission path based on the integrated topological information. If the first optical cable and the second optical cable are the same optical cable, the second prompt message is output, and the second prompt message is used to indicate that the main transmission path and the backup transmission path correspond to the same optical cable.

[0163] Among them, the management platform can determine the identifiers of at least one section of the first optical cable on the transmission line corresponding to the identifier of the main port and the identifiers of at least one section of the second optical cable on the transmission line corresponding to the identifier of the backup port in the topology information. If there are identical identifiers among the identifiers of at least one section of the first optical cable and the identifiers of at least one section of the second optical cable, it indicates that the main transmission path and the backup transmission path use the same optical cable. In this case, the management platform outputs a second prompt message, such as outputting the second prompt message to the network management personnel or outputting a prompt message to the first network device, so as to prompt that there is a situation of common optical cable for the main transmission path and the backup transmission path in the first network device. Exemplarily, the second prompt message may include information about the main transmission path and the backup transmission path, such as the identifiers of the main transmission path and the backup transmission path or the identifiers of the main port and the backup port. In addition, the second prompt message may further include the identifier of the optical cable jointly used by the main transmission path and the backup transmission path, as well as the connection information between the optical cable and the first network device, etc.

[0164] Optionally, as introduced in step 1002, before the network device sends the dumb resource information to the management platform, it can verify the dumb resource information obtained by itself through the dumb resource information carried in the packets transmitted by the peer network device. However, when the label recognition device directly sends the dumb resource information to the management platform, since the label recognition device may not support LLDP packets, IGP packets, etc., the label recognition device cannot verify the obtained dumb resource information. Based on this, the management platform can also verify multiple dumb resource information based on the connection information of the dumb resources included in the multiple dumb resource information; if the verification of the multiple dumb resource information passes, other operations performed based on the multiple dumb resource information can be executed. For example, an operation of determining the topology information of the target network based on the multiple dumb resource information can be executed. If the verification of the target dumb resource information among the multiple dumb resource information fails, a first prompt message is output, and the first prompt message can be used to prompt that the target dumb resource information is incorrect. Optionally, the first prompt message may further include specific indication information about the error information in the target dumb resource information.

[0165] Exemplarily, taking the first dumb resource information sent by the first network device and the third dumb resource information sent by the label recognition device as an example, where the third dumb resource information includes the identification information and connection information of the third dumb resource. Based on this, if the connection information of the first dumb resource includes the first connection information indicating the connection between the first dumb resource and the third dumb resource, the connection information of the third dumb resource includes the second connection information indicating the connection between the third dumb resource and the first dumb resource, and the first connection information and the second connection information do not match, then the verification of the first dumb resource information and the third dumb resource information fails.

[0166] For example, if the identifier of the connection port of the first dummy resource in the first connection information on the third dummy resource does not match the identifier of the port used by the third dummy resource in the second connection information to connect to the first dummy resource, it indicates that one of the two connection information is incorrect. In this case, the verification of the first dummy resource information and the second dummy resource information both fails. Another example is that the first connection information indicates that the first dummy resource and the third dummy resource are connected through the second dummy resource, while the second connection information indicates that the first dummy resource and the third dummy resource are connected through the fourth dummy resource. At this time, it means that the connection relationship between the first dummy resource and the third dummy resource recorded in one of the two connection information is incorrect. In this case, the verification of the first dummy resource information and the second dummy resource information both fails.

[0167] The above are only exemplary methods for the management platform to verify dummy resource information in the embodiments of the present application. Among them, the detailed implementation methods of these exemplary methods can refer to the implementation logic of the network device verifying dummy resource information introduced above, which will not be elaborated here. It should be noted that the difference between the management platform and the network device in verifying dummy resource information is that the network device realizes the verification of dummy resource information between network devices, that is, the verification of local dummy resource information. Since the management platform can obtain the information of each network device and intermediate dummy resources in the network, the management platform can integrate the global dummy resource information to verify the dummy resource information, that is, the management platform can realize the global verification of dummy resource information. In terms of the specific verification implementation logic, both are based on the overlapping or redundant connection information included in multiple dummy resource information to implement comparison verification. The specific logic can be referred to above and will not be elaborated here.

[0168] In the embodiments of the present application, the dummy resources in the target network can be set with corresponding tags. On this basis, the network device and the tag recognition device can obtain the dummy resource information in the tags of the dummy resources and send the dummy resource information to the management platform. Since the dummy resource information includes the identification information and connection information of the corresponding dummy resources, the management platform can integrate the dummy resource information based on the received identification information and connection information of each dummy resource, and then perform digital management on the dummy resources in the target network based on the integrated dummy resource information, reducing the difficulty of dummy resource management, thereby reducing the management and maintenance cost of dummy resources.

[0169] In addition, in the embodiments of the present application, each network device in the network can send the obtained dumb resource information to the peer network device by sending a message. On this basis, the peer network device can verify the obtained dumb resource information based on the dumb resource information in the received message. In this way, the accuracy of the obtained dumb resource information can be obtained, and errors in the dumb resource information can be discovered in a timely manner, so as to correct the labels of the corresponding dumb resources in a timely manner. In addition, the management platform can also perform global verification on the dumb resource information based on the connection information in the received multiple dumb resource information, further improving the accuracy of the dumb resource information.

[0170] It should also be noted that in the embodiments of the present application, since each dumb resource information includes the connection information of the dumb resource, in this way, the information of adjacent dumb resources will contain overlapping connection information, that is, there will be redundant connection information in the multiple dumb resource information collected by the management platform. On this basis, the management platform can obtain the topology information of the network by integrating and splicing the connection information in the dumb resource information, so as to realize the efficient management of the network based on the topology information.

[0171] Next, the dumb resource management device provided in the embodiments of the present application will be introduced.

[0172] Figure 16 is a schematic structural diagram of a dumb resource management device provided in the embodiments of the present application. The dumb resource management device can be deployed in the network device or the label recognition device in the foregoing embodiments. Refer to Figure 16 As shown in the figure, the dumb resource management device 1600 may include: a processing module 1601 and a sending module 1602.

[0173] Among them, the processing module 1601 is used to execute step 1001 in the foregoing embodiments; the sending module 1602 is used to execute step 1002 in the foregoing embodiments.

[0174] Optionally, the first dumb resource is a dumb resource connected to the first network device. The device 1600 further includes:

[0175] a receiving module 1603, configured to receive a first message from a second network device. The first message includes second dumb resource information, and the second dumb resource information includes identification information and connection information of at least one dumb resource. The second network device is connected to the first network device through at least one dumb resource, and the at least one dumb resource includes the first dumb resource;

[0176] The processing module 1601 is further configured to verify the first dumb resource information based on the second dumb resource information, and trigger the sending module 1602 to send the first dumb resource information to the management platform after the verification of the first dumb resource information passes.

[0177] Optionally, the first message is a Link Layer Discovery Protocol (LLDP) message, and the first message includes a dummy resource type-length-value (TLV) field, where the dummy resource TLV field is used to carry second dummy resource information.

[0178] Optionally, at least one dummy resource includes one or more of an optical fiber, an optical fiber distribution frame (ODF), an optical cable, and an optical distribution network (ODN) device.

[0179] Optionally, the sending module 1602 is further configured to: send a second message to a second network device, where the second message includes first dummy resource information, the second network device is connected to the first network device through at least one dummy resource, the first dummy resource information includes identification information and connection information of at least one dummy resource, and at least one dummy resource includes a first dummy resource.

[0180] Optionally, the sending module 1602 is specifically configured to: in response to a subscription request for dummy resource information from a management platform, send the second message to the second network device.

[0181] Optionally, the first dummy resource is an optical fiber or an optical cable, the first dummy resource is located in an optical fiber storage device, the first label is located on the optical fiber storage device, and identification information of the optical fiber storage device is stored in the first label.

[0182] Optionally, the optical fiber storage device includes an optical fiber reel, and the first dummy resource is wound around the optical fiber reel.

[0183] Optionally, the first label is a Radio Frequency Identification (RFID) label, a two-dimensional code, or a bar code.

[0184] In the embodiments of the present application, corresponding labels can be set for the dummy resources in the target network. On this basis, a network device and a label recognition device can obtain the dummy resource information in the label of the dummy resource and send the dummy resource information to the management platform. Since the dummy resource information includes the identification information and connection information of the corresponding dummy resource, the management platform can integrate the dummy resource information based on the received identification information and connection information of each dummy resource, and then perform digital management on the dummy resources in the target network based on the integrated dummy resource information, reducing the difficulty of dummy resource management and thus reducing the management and maintenance cost of dummy resources.

[0185] Figure 17 is a schematic structural diagram of another dummy resource management device provided by the embodiments of the present application. The dummy resource management device 1700 can be deployed in the management platform in the foregoing embodiments. Refer to Figure 17 The dummy resource management device 1700 may include: a receiving module 1701 and a management module 1702.

[0186] Among them, the receiving module 1701 is used to execute step 1002 in the foregoing embodiment; the management module 1702 is used to execute step 1003 in the foregoing embodiment.

[0187] Optionally, the management module 1702 is specifically used for: determining the topology information of the target network based on multiple dumb resource information; managing the dumb resources in the target network based on the topology information of the target network.

[0188] Optionally, the management module 1702 is specifically used for: determining the network devices and / or other dumb resources to which each dumb resource in the target network is connected based on the connection information of the dumb resources included in each dumb resource information; determining the topology information of the target network based on the network devices and / or other dumb resources to which each dumb resource is connected.

[0189] Optionally, the management module 1702 is further used for verifying multiple dumb resource information based on the connection information of the dumb resources included in the multiple dumb resource information; if the verification of the multiple dumb resource information passes, determining the topology information of the target network based on the multiple dumb resource information.

[0190] Optionally, the apparatus further includes: an output module 1703, configured to output a first prompt message when the verification of the target dumb resource information in the multiple dumb resource information fails, where the first prompt message is used to prompt that the target dumb resource information is incorrect.

[0191] Optionally, the receiving module 1701 is specifically used for: receiving the first dumb resource information in the first tag sent by the first network device, where the first tag is the tag of the first dumb resource connected to the first network device, and / or receiving the third dumb resource information sent by the tag recognition device, where the third dumb resource information is obtained by the tag recognition device recognizing the tag of the third dumb resource.

[0192] Optionally, the multiple dumb resource information includes the first dumb resource information and the third dumb resource information; the management module 1702 is specifically used for: if the connection information of the first dumb resource includes the first connection information indicating the connection between the first dumb resource and the third dumb resource, the connection information of the third dumb resource includes the second connection information indicating the connection between the third dumb resource and the first dumb resource, and the first connection information and the second connection information do not match, then the verification of the first dumb resource information and the third dumb resource information fails.

[0193] Optionally, the management module 1702 is further used for determining a first optical cable corresponding to the main transmission path of the first network device and a second optical cable corresponding to the backup transmission path based on the topology information of the target network; the output module 1703 is further used for outputting a second prompt message if the first optical cable and the second optical cable are the same optical cable, where the second prompt message is used to indicate that the main transmission path and the backup transmission path correspond to the same optical cable.

[0194] In the embodiments of the present application, the management platform can receive the dumb resource information in the tags of multiple dumb resources in the target network sent by a network device or a tag recognition device. Since the dumb resource information includes the identification information and connection information of the corresponding dumb resource, the management platform can integrate the dumb resource information based on the received identification information and connection information of each dumb resource, and then perform digital management on the dumb resources in the target network based on the integrated dumb resource information, reducing the difficulty of dumb resource management, and thus reducing the management and maintenance cost of dumb resources.

[0195] It should be noted that the division of modules in the various dumb resource management devices provided in the above embodiments is illustrative, and is only a logical function division. In actual implementation, there may be other division methods. In addition, in each embodiment of the present application, each functional module can be integrated in one processor, or can exist independently physically, or two or more modules can be integrated into one module. The above integrated modules can be implemented in the form of hardware or in the form of software functional modules.

[0196] If the integrated module is implemented in the form of a software functional module and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on such an understanding, the technical solution of the embodiments of the present application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes several instructions to enable a network device (which can be a router or a switch, etc.) or a processor to execute all or part of the steps of the method in each embodiment of the present application. The foregoing storage medium includes: various media such as USB flash drives, mobile hard disks, read-only memories (ROM), random access memories (RAM), magnetic disks, or optical discs that can store program codes.

[0197] In addition, the dumb resource management device provided in the above embodiment and the embodiment of the dumb resource management method belong to the same concept. For the specific implementation process, please refer to the method embodiment, which will not be elaborated here.

[0198] In the above embodiments, it can be implemented in whole or in part by software, hardware, firmware, or any combination thereof. When implemented using software, it can be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer instructions are loaded and executed on a computer, the processes or functions described in the embodiments of the present application are generated in whole or in part. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices. The computer instructions can be stored in a computer-readable storage medium, or transmitted from one computer-readable storage medium to another computer-readable storage medium. For example, the computer instructions can be transmitted from one website, computer, server, or data center to another website, computer, server, or data center in a wired manner (such as coaxial cable, optical fiber, digital subscriber line (DSL)) or wirelessly (such as infrared, wireless, microwave, etc.). The computer-readable storage medium can be any available medium that can be accessed by a computer, or a data storage device such as a server or data center that includes one or more integrated available media. The available medium can be a magnetic medium (such as a floppy disk, hard disk, magnetic tape), an optical medium (such as a digital versatile disc (DVD)), or a semiconductor medium (such as a solid state disk (SSD)), etc.

[0199] In various embodiments of the present application, if there is no special description and logical conflict, the terms and / or descriptions between different embodiments are consistent and can be referenced to each other. The technical features in different embodiments can be combined to form new embodiments according to their internal logical relationships. In the embodiments of the present application, "at least one" means one or more, and "a plurality" means two or more. "And / or" describes the association relationship of associated objects and indicates that there can be three relationships. For example, A and / or B can represent: A exists alone, A and B exist simultaneously, and B exists alone, where A and B can be singular or plural. In the written description of the embodiments of the present application, the character " / " generally represents an "or" relationship between the associated objects before and after. In the present application, "first", "second", and various numerical numbers are only for the convenience of description and are not used to limit the scope of the embodiments of the present application. For example, to distinguish different messages, etc., rather than for describing a specific order or sequence.

[0200] It should be understood that the various numerical numbers involved in the embodiments of the present application are only for the convenience of description and are not used to limit the scope of the embodiments of the present application. The magnitudes of the serial numbers of the above processes do not mean the sequence of execution, and the execution sequence of each process should be determined by its function and internal logic.

[0201] Finally, it should be noted that: the above is only the specific implementation manner of the present application, but the protection scope of the present application is not limited thereto. Any changes or substitutions within the technical scope disclosed in the present application should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.

Claims

1. A method for managing dumb resources, characterized in that, the method comprises: obtaining first dumb resource information in a first tag, where the first tag is a tag of a first dumb resource, and the first dumb resource information includes identification information and connection information of the first dumb resource, and the first dumb resource is a dumb resource in a target network; sending the first dumb resource information to a management platform, where the management platform is used to manage the dumb resources in the target network based on the first dumb resource information.

2. The method according to claim 1, characterized in that, the first dumb resource is a dumb resource connected to a first network device, and the method further comprises: receiving a first message from a second network device, where the first message includes second dumb resource information, and the second dumb resource information includes identification information and connection information of at least one dumb resource, and the second network device is connected to the first network device through the at least one dumb resource, and the at least one dumb resource includes the first dumb resource; verifying the first dumb resource information based on the second dumb resource information; after the verification of the first dumb resource information passes, performing the step of sending the first dumb resource information to the management platform.

3. The method according to claim 2, characterized in that, the first message is a Link Layer Discovery Protocol (LLDP) message, and the first message includes a Dumb Resource Type-Length-Value (TLV) field, and the dumb resource TLV field is used to carry the second dumb resource information.

4. The method according to claim 2 or 3, characterized in that, the at least one dumb resource includes one or more of an optical fiber, an Optical Distribution Frame (ODF), an optical cable, and an Optical Distribution Network (ODN) device.

5. The method according to any one of claims 1 to 4, characterized in that, the method further comprises: sending a second message to the second network device, where the second message includes the first dumb resource information, and the second network device is connected to the first network device through at least one dumb resource, and the first dumb resource information includes identification information and connection information of the at least one dumb resource, and the at least one dumb resource includes the first dumb resource.

6. The method according to claim 5, characterized in that, sending the second message to the second network device includes: responding to a dumb resource information subscription request of the management platform, and sending the second message to the second network device.

7. The method according to any one of claims 1 to 6, characterized in that, the first dumb resource is an optical fiber or an optical cable, the first dumb resource is located in an optical fiber storage device, the first tag is located on the optical fiber storage device, and the identification information of the optical fiber storage device is stored in the first tag.

8. The method according to claim 7, characterized in that, the optical fiber storage device includes an optical fiber reel, and the first dumb resource is wound around the optical fiber reel.

9. The method according to any one of claims 1 to 8, characterized in that, the first tag is a Radio Frequency Identification (RFID) tag, a two-dimensional code, or a barcode.

10. A method for managing dumb resources, characterized in that, the method comprises: Receive the dumb resource information in the labels of multiple dumb resources in the target network, where the dumb resource information includes the identification information and connection information of the dumb resources; Manage the dumb resources in the target network based on the multiple dumb resource information.

11. The method according to claim 10, characterized in that, The managing the dumb resources in the target network based on the multiple dumb resource information includes: Determine the topology information of the target network based on the multiple dumb resource information; Manage the dumb resources in the target network based on the topology information of the target network.

12. The method according to claim 11, characterized in that, The determining the topology information of the target network based on the multiple dumb resource information includes: Determine the network devices and / or other dumb resources connected by each dumb resource in the target network based on the connection information of the dumb resources included in each dumb resource information; Determine the topology information of the target network based on the network devices and / or other dumb resources connected by each dumb resource.

13. The method according to claim 11 or 12, characterized in that, The method further includes: Verify the multiple dumb resource information based on the connection information of the dumb resources included in the multiple dumb resource information; If the verification of the multiple dumb resource information passes, then execute the step of determining the topology information of the target network based on the multiple dumb resource information.

14. The method according to claim 13, characterized in that, The method further includes: If the verification of the target dumb resource information in the multiple dumb resource information fails, output a first prompt message, where the first prompt message is used to prompt that the target dumb resource information is incorrect.

15. The method according to claim 13 or 14, characterized in that, The receiving the dumb resource information in the labels of multiple dumb resources in the target network includes: Receive the first dumb resource information in the first label sent by the first network device, where the first label is the label of the first dumb resource connected by the first network device, and / or, receive the third dumb resource information sent by the label recognition device, where the third dumb resource information is obtained by the label recognition device recognizing the label of the third dumb resource.

16. The method according to any one of claims 11 to 15, characterized in that, The multiple dumb resource information includes the first dumb resource information and the third dumb resource information; The verifying the multiple dumb resource information based on the connection information of the dumb resources included in the multiple dumb resource information includes: If the connection information of the first dumb resource includes the first connection information for indicating the connection between the first dumb resource and the third dumb resource, the connection information of the third dumb resource includes the second connection information for indicating the connection between the third dumb resource and the first dumb resource, and the first connection information and the second connection information do not match, then the verification of the first dumb resource information and the third dumb resource information fails.

17. The method according to any one of claims 11 to 16, characterized in that, The method further includes: Determine a first optical cable corresponding to the main transmission path of the first network device and a second optical cable corresponding to the backup transmission path based on the topological information of the target network; If the first optical cable and the second optical cable are the same optical cable, output a second prompt message, where the second prompt message is used to indicate that the main transmission path and the backup transmission path correspond to the same optical cable.

18. A dumb resource management device, Characterized in that, The device includes at least one module, and the at least one module is used to execute the dumb resource management method according to any one of claims 1 to 17.

19. A computer device, Characterized in that, The computer device includes a processor, and the processor is used to execute at least one program instruction or code stored in the memory to implement the dumb resource management method according to any one of claims 1 to 17.

20. A computer-readable storage medium, Characterized in that, Instructions are stored in the computer-readable storage medium, and when the instructions run on a computer device, the computer device is caused to execute the dumb resource management method according to any one of claims 1 to 17.