Fault control method and system for wireless data transmission product
By locating and detecting the terminal nodes of wireless data transmission products, constructing links and anomaly sets, and triggering autonomous repair, the autonomous repair problem of wireless data transmission products is solved, ensuring the stability and smoothness of transmission.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-11
- Publication Date
- 2026-04-14
AI Technical Summary
Existing wireless data transmission products require manual triggering for anomaly detection and cannot repair themselves, resulting in transmission anomalies not being handled in a timely manner and affecting normal operation.
By locating multiple terminal nodes of the wireless data transmission product, collecting node locations, constructing wireless links, detecting abnormal parts, defining abnormal factors, constructing an abnormal set, and triggering autonomous repair of the faulty parts based on repair logic, the normal links are updated to achieve autonomous repair.
It enables autonomous repair of wireless data transmission products, ensuring the stability and smoothness of transmission, timely response to repair of faulty parts, and no impact on normal operation.
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Figure CN121864568A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the technical field of wireless data transmission products, and in particular to a fault control method and system for wireless data transmission products. Background Technology
[0002] With the development of technology, wireless data transmission products are applied to people's lives and are used for data transmission. At this time, wireless data transmission products transmit data to objects through multiple terminal nodes. However, there are multiple transmission layers between wireless data transmission products and objects, such as the transmission process between wireless data transmission products and objects, and between wireless data transmission products and objects. Anomalies may occur in these places. In the existing technology, anomaly detection needs to be triggered manually, and only the abnormal factors are output, but it is not possible to perform autonomous repair. Summary of the Invention
[0003] The purpose of this invention is to overcome the shortcomings of the prior art. This invention provides a fault control method and system for wireless data transmission products. The method involves locating the wireless data transmission product and traversing the product to define multiple terminal nodes associated with it; collecting the locations of the multiple terminal nodes and defining corresponding first abnormal factors based on node detection; constructing corresponding wireless links based on the locations of the multiple terminal nodes; defining multiple abnormal parts based on the detection of the wireless links; defining second abnormal factors based on the multiple abnormal parts; and associating the second abnormal factors with the first abnormal factors to facilitate control based on the second and first abnormal factors. This allows for anomaly control across multiple dimensions to ensure the subsequent processing of the second and first abnormal factors.
[0004] Furthermore, an anomaly set is constructed based on the second and first anomaly factors. A faulty component is defined according to the anomaly set, the model of the wireless data transmission product, and its current operating mode. A corresponding repair logic is matched to the faulty component, triggering its autonomous repair. This facilitates online repair of the faulty component, ensuring timely response without affecting the normal operation of the wireless data transmission product. Simultaneously, during the autonomous repair of the faulty component, the link associated with it is defined as a faulty link. A normal link is defined based on the faulty link and the wireless link. Data transmission is performed on the normal link. The normal link is automatically updated as the faulty component repairs, ensuring smooth operation of the wireless link and thus guaranteeing data transmission stability.
[0005] This invention provides a fault control method for wireless data transmission products, applicable to fault control scenarios of wireless data transmission products;
[0006] The fault control method for the wireless data transmission product includes:
[0007] Locate the wireless data transmission product and traverse the wireless data transmission products to define multiple terminal nodes associated with the wireless data transmission product;
[0008] Collect the locations of multiple terminal nodes and define the corresponding first anomaly factor based on the node detection of multiple terminal nodes;
[0009] Construct corresponding wireless links based on the locations of multiple terminal nodes; define multiple abnormal components based on the detection of wireless links;
[0010] Define a second abnormal factor based on multiple abnormal components, and associate the second abnormal factor with the first abnormal factor;
[0011] An anomaly set is constructed based on the second and first anomaly factors. The fault part is defined according to the anomaly set, the model of the wireless data transmission product, and the current working mode of the wireless data transmission product. The corresponding repair logic is matched according to the fault part, and the autonomous repair of the fault part is triggered based on the repair logic.
[0012] In the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and the normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is carried out based on the normal link, and the normal link is automatically updated as the faulty part is autonomously repaired.
[0013] Optionally, the process of locating and traversing wireless data transmission products to define multiple terminal nodes associated with the wireless data transmission products includes:
[0014] Positioning wireless data transmission products;
[0015] Based on the current working mode and continuous working time definition of the wireless data transmission product, the traversal mode is defined.
[0016] The traversal of wireless data transmission products is triggered based on this traversal pattern;
[0017] The wireless data transmission product traverses and marks multiple terminal parts, and matches the corresponding transmission path based on the multiple terminal parts and the transmission end of the wireless data transmission product.
[0018] Based on the transmission path and the transmission signals of multiple terminal parts, multiple terminal nodes are defined and associated with the wireless data transmission product.
[0019] Optionally, the step of collecting the locations of multiple terminal nodes and defining corresponding first anomaly factors based on the node detection of multiple terminal nodes includes:
[0020] The system freezes multiple terminal nodes and collects their locations.
[0021] Mark the locations of multiple terminal nodes and trigger corresponding node detection for each terminal node;
[0022] In the node detection of each terminal node, the path associated with each terminal node is defined, and the transmission data of the terminal node is collected according to the path.
[0023] The first abnormal part is defined based on the node detection of the terminal node. At the same time, the corresponding data transmission module is matched based on the terminal node, and the corresponding second abnormal part is defined based on the matching of the data transmission module and the corresponding transmitted data.
[0024] Associate the second abnormal part with the first abnormal part, and define the corresponding first abnormal factor based on the second abnormal part and the first abnormal part.
[0025] Optionally, the step involves constructing corresponding wireless links based on the locations of multiple terminal nodes; and defining multiple abnormal components based on the detection of wireless links, including:
[0026] Freeze the location of multiple terminal nodes;
[0027] Construct corresponding wireless links based on the locations of multiple terminal nodes and the communication paths of wireless data transmission products.
[0028] Traverse the wireless links and define abnormal segments based on the traversal of the wireless links;
[0029] Collect multiple abnormal road segments and match the corresponding detection mode according to the multiple abnormal road segments;
[0030] Associate this detection mode with the wireless link;
[0031] The detection mode triggers the detection of the wireless link, and multiple abnormal parts are defined based on the detection of the wireless link.
[0032] Optionally, defining a second anomalous factor based on multiple anomalous components, and associating the second anomalous factor with the first anomalous factor, includes:
[0033] Freeze multiple abnormal parts;
[0034] Multiple exception combinations are constructed based on multiple parts;
[0035] The second anomalous factor is defined based on multiple anomalous combinations and the communication method of the wireless link;
[0036] Iterate through the second abnormal factor and define the corresponding abnormal event based on the tracing of the second abnormal factor;
[0037] The optimization parameters are defined based on the matching of abnormal events and multiple abnormal combinations, and the optimized first abnormal factor is defined based on the optimization parameters and the second abnormal factor.
[0038] The second and first outliers were correlated after optimization.
[0039] Optionally, the step of constructing an anomaly set based on the second and first anomaly factors, defining a faulty component according to the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product, and matching corresponding repair logic to the faulty component, and triggering autonomous repair of the faulty component based on the repair logic, includes:
[0040] The second and first outliers after optimization were fixed;
[0041] The second and first outliers after correlation optimization;
[0042] Construct an anomaly set based on the optimized second anomaly factor and the first anomaly factor;
[0043] Collect the current operating mode of the wireless data transmission product and associate it with the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product;
[0044] The fault portion is defined based on the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product.
[0045] Optionally, the step of constructing an anomaly set based on the second and first anomaly factors, defining a faulty component according to the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product, matching the corresponding repair logic to the faulty component, and triggering autonomous repair of the faulty component based on the repair logic, further includes:
[0046] The faulty part is identified, and corresponding repair logic is matched based on the faulty part and the wireless data transmission product.
[0047] The matching coefficient between the repair logic and the faulty part is calculated. If the matching coefficient is lower than the preset matching coefficient threshold, multiple fault factors in the faulty part are divided. The repair logic is automatically adjusted based on the matching of multiple fault factors with the repair logic until the matching coefficient between the repair logic and the faulty part meets the preset matching coefficient threshold. Then, the faulty part is automatically repaired based on the repair logic.
[0048] Optionally, in the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and a normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is performed based on the normal link, and the normal link is automatically updated as the faulty part is autonomously repaired, including:
[0049] During the autonomous repair of the faulty part, the faulty part is frozen in time;
[0050] Define the links associated with the faulty part based on the traversal of the faulty part;
[0051] The link associated with the faulty part is defined as the faulty link.
[0052] Optionally, in the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and a normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is performed based on the normal link, and the normal link is automatically updated as the faulty part is autonomously repaired. The method further includes:
[0053] Associate faulty links and wireless links;
[0054] Define normal links based on faulty links and wireless links;
[0055] The wireless data transmission product transmits data based on the normal link, and at the same time, it monitors the autonomous repair of faulty links in real time.
[0056] The system collects the repair progress of each faulty link and adjusts the status of each faulty link. Meanwhile, the normal links update themselves as the faulty parts are repaired.
[0057] In addition, this invention also provides a fault control system for a wireless data transmission product, the fault control system for the wireless data transmission product comprising:
[0058] The terminal node module is used to locate wireless data transmission products and traverse wireless data transmission products to define multiple terminal nodes associated with the wireless data transmission products.
[0059] The first anomaly module is used to collect the locations of multiple terminal nodes and define the corresponding first anomaly factors based on the node detection of multiple terminal nodes.
[0060] The detection module is used to construct corresponding wireless links based on the locations of multiple terminal nodes; and to define multiple abnormal components based on the detection of wireless links.
[0061] The association module is used to define a second abnormal factor based on multiple abnormal components, and to associate the second abnormal factor with the first abnormal factor.
[0062] The self-repair module is used to construct an anomaly set based on the second and first anomaly factors, define the fault part according to the anomaly set, the model of the wireless data transmission product and the current working mode of the wireless data transmission product, match the corresponding repair logic according to the fault part, and trigger the self-repair of the fault part based on the repair logic.
[0063] The self-update module is used to define the links associated with the faulty part as faulty links during the self-repair of the faulty part, and define normal links based on the faulty links and wireless links. Data transmission of the wireless data transmission product is carried out based on the normal links, and the normal links are self-updated as the faulty part is self-repaired.
[0064] In this embodiment of the invention, the method described herein locates a wireless data transmission product and traverses the wireless data transmission product to define multiple terminal nodes associated with the wireless data transmission product; collects the locations of the multiple terminal nodes and defines corresponding first anomaly factors based on node detection of the multiple terminal nodes; constructs corresponding wireless links based on the locations of the multiple terminal nodes; defines multiple abnormal parts based on the detection of the wireless links; defines second anomaly factors based on the multiple abnormal parts, and associates the second anomaly factors with the first anomaly factors to facilitate control based on the second anomaly factors and the first anomaly factors, and performs anomaly control for multiple dimensions to ensure the subsequent processing of the second anomaly factors and the first anomaly factors.
[0065] Furthermore, an anomaly set is constructed based on the second and first anomaly factors. A faulty component is defined according to the anomaly set, the model of the wireless data transmission product, and its current operating mode. A corresponding repair logic is matched to the faulty component, triggering its autonomous repair. This facilitates online repair of the faulty component, ensuring timely response without affecting the normal operation of the wireless data transmission product. Simultaneously, during the autonomous repair of the faulty component, the link associated with it is defined as a faulty link. A normal link is defined based on the faulty link and the wireless link. Data transmission is performed on the normal link. The normal link is automatically updated as the faulty component repairs, ensuring smooth operation of the wireless link and thus guaranteeing data transmission stability. Attached Figure Description
[0066] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0067] Figure 1 This is a flowchart illustrating the fault control method for a wireless data transmission product in an embodiment of the present invention.
[0068] Figure 2 This is a flowchart illustrating step S11 of the fault control method for a wireless data transmission product in an embodiment of the present invention.
[0069] Figure 3 This is a flowchart illustrating step S12 of the fault control method for a wireless data transmission product in an embodiment of the present invention.
[0070] Figure 4 This is a flowchart illustrating step S13 of the fault control method for a wireless data transmission product in an embodiment of the present invention.
[0071] Figure 5 This is a flowchart illustrating step S14 of the fault control method for a wireless data transmission product in an embodiment of the present invention.
[0072] Figure 6 This is a flowchart illustrating step S15 of the fault control method for a wireless data transmission product in an embodiment of the present invention.
[0073] Figure 7 This is a flowchart illustrating step S16 of the fault control method for a wireless data transmission product in an embodiment of the present invention.
[0074] Figure 8 This is a schematic diagram of the structural composition of the fault control system of the wireless data transmission product in an embodiment of the present invention;
[0075] Figure 9 This is a hardware diagram of an electronic device according to an exemplary embodiment. Detailed Implementation
[0076] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0077] Please see Figures 1 to 9A fault control method for a wireless data transmission product, applied to fault control scenarios of wireless data transmission products; the fault control method for wireless data transmission products includes:
[0078] Step S11: Locate the wireless data transmission product and traverse the wireless data transmission products to define multiple terminal nodes associated with the wireless data transmission product;
[0079] Step S12: Collect the locations of multiple terminal nodes and define the corresponding first anomaly factor based on the node detection of multiple terminal nodes;
[0080] Step S13: Construct corresponding wireless links based on the locations of multiple terminal nodes; define multiple abnormal components based on the detection of wireless links;
[0081] Step S14: Define a second abnormal factor based on multiple abnormal components, and associate the second abnormal factor with the first abnormal factor;
[0082] Step S15: Construct an anomaly set based on the second anomaly factor and the first anomaly factor, define the fault part according to the anomaly set, the model of the wireless data transmission product and the current working mode of the wireless data transmission product, match the corresponding repair logic according to the fault part, and trigger the autonomous repair of the fault part based on the repair logic.
[0083] Step S16: In the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and a normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is carried out based on the normal link. The normal link is automatically updated as the faulty part is autonomously repaired.
[0084] In this embodiment of the invention, the method described herein locates a wireless data transmission product and traverses the wireless data transmission product to define multiple terminal nodes associated with the wireless data transmission product; collects the locations of the multiple terminal nodes and defines corresponding first anomaly factors based on node detection of the multiple terminal nodes; constructs corresponding wireless links based on the locations of the multiple terminal nodes; defines multiple abnormal parts based on the detection of the wireless links; defines second anomaly factors based on the multiple abnormal parts, and associates the second anomaly factors with the first anomaly factors to facilitate control based on the second anomaly factors and the first anomaly factors, and performs anomaly control for multiple dimensions to ensure the subsequent processing of the second anomaly factors and the first anomaly factors.
[0085] Furthermore, an anomaly set is constructed based on the second and first anomaly factors. A faulty component is defined according to the anomaly set, the model of the wireless data transmission product, and its current operating mode. A corresponding repair logic is matched to the faulty component, triggering its autonomous repair. This facilitates online repair of the faulty component, ensuring timely response without affecting the normal operation of the wireless data transmission product. Simultaneously, during the autonomous repair of the faulty component, the link associated with it is defined as a faulty link. A normal link is defined based on the faulty link and the wireless link. Data transmission is performed on the normal link. The normal link is automatically updated as the faulty component repairs, ensuring smooth operation of the wireless link and thus guaranteeing data transmission stability.
[0086] refer to Figure 2 In step S11, the wireless data transmission product is located and the wireless data transmission product is traversed to define multiple terminal nodes associated with the wireless data transmission product.
[0087] In the specific implementation of this invention, the specific steps can be as follows:
[0088] S111: Positioning wireless data transmission product;
[0089] S112: Traversal mode based on the current working mode and continuous working time definition of the wireless data transmission product;
[0090] S113: Trigger the traversal of the wireless data transmission product according to the traversal pattern;
[0091] S114: Mark multiple terminal parts according to the traversal of the wireless data transmission product, and match the corresponding transmission path according to the multiple terminal parts and the transmission end of the wireless data transmission product;
[0092] S115: Defines multiple terminal nodes associated with the wireless data transmission product based on the transmission path and the transmission signals of multiple terminal parts.
[0093] In the embodiments of this application, a wireless data transmission product is located and managed. The current working mode and continuous working time of the wireless data transmission product are introduced to achieve overall management of the current working mode and continuous working time of the wireless data transmission product. This allows for the definition of a traversal mode based on the current working mode and continuous working time of the wireless data transmission product, thereby enabling multi-dimensional control over the traversal mode and ensuring its accuracy. The traversal mode can be a global traversal, a partial traversal, or a path traversal.
[0094] Therefore, the traversal pattern triggers the traversal of the wireless data transmission product, enabling the traversal of the wireless data transmission product and marking multiple terminal components. This introduces multiple terminal components, allowing for control over them. The system matches the corresponding transmission paths based on these terminal components and the transmission end of the wireless data transmission product, ensuring control over the transmission paths. This allows for the fixing of the transmission paths and the definition of multiple terminal nodes associated with the wireless data transmission product based on the transmission paths and the transmission signals of the multiple terminal components. This multi-dimensional control of the multiple terminal nodes based on the transmission paths and the transmission signals of the multiple terminal components ensures the accuracy of the multiple terminal nodes.
[0095] refer to Figure 3 In step S12, the locations of multiple terminal nodes are collected, and the corresponding first abnormal factor is defined based on the node detection of multiple terminal nodes.
[0096] In the specific implementation of this invention, the specific steps can be as follows:
[0097] S121: Freeze multiple terminal nodes and collect the locations of the multiple terminal nodes;
[0098] S122: Mark the location of multiple terminal nodes and trigger corresponding node detection for multiple terminal nodes;
[0099] S123: In the node detection of each terminal node, define the path associated with each terminal node, and collect the transmission data of the terminal node according to the path.
[0100] S124: Define a first abnormal part based on the node detection of the terminal node. At the same time, define a corresponding second abnormal part based on the matching of the terminal node with the corresponding data transmission module and the matching of the data transmission module with the corresponding transmitted data.
[0101] S125: Associate the second abnormal part with the first abnormal part, and define the corresponding first abnormal factor based on the second abnormal part and the first abnormal part.
[0102] In the embodiments of this application, multiple terminal nodes are captured and their locations are collected to control the locations of the multiple terminal nodes, thereby marking the locations of the multiple terminal nodes and triggering corresponding node detection for the multiple terminal nodes, thus realizing node detection of multiple terminal nodes and enabling fine-grained processing of multiple terminal nodes.
[0103] At this point, in the node detection of each terminal node, the path associated with each terminal node is defined, and the path associated with each terminal node is further controlled so as to collect the transmission data of the terminal node according to the path, thereby realizing the overall control of the transmission data of the terminal node, so as to further process the transmission data of the terminal node.
[0104] Therefore, a first anomaly is defined based on node detection at the terminal node. This first anomaly is introduced to manage anomalies in data transmission. Simultaneously, a second anomaly is defined based on the matching of the terminal node with the corresponding data transmission module and the matching of the data transmission module with the corresponding data transmission. This allows for control over anomalies in the data transmission module and during data transmission. Furthermore, the second anomaly and the first anomaly are linked, and a first anomaly factor is defined based on the second and first anomaly. This enables control over the first anomaly factor based on the second and first anomaly, thereby ensuring the accuracy of the first anomaly factor.
[0105] refer to Figure 4 In step S13, a corresponding wireless link is constructed based on the location of multiple terminal nodes; multiple abnormal parts are defined based on the detection of the wireless link.
[0106] In the specific implementation of this invention, the specific steps can be as follows:
[0107] S131: Freeze the location of multiple terminal nodes;
[0108] S132: Construct a corresponding wireless link based on the location of multiple terminal nodes and the communication path of the wireless data transmission product;
[0109] S133: Traverse the wireless links and define abnormal segments based on the traversal of the wireless links;
[0110] S134: Collect multiple abnormal road segments and match the corresponding detection mode according to the multiple abnormal road segments;
[0111] S135: Associate this detection mode with the wireless link;
[0112] S136: Trigger wireless link detection based on this detection mode, and define multiple abnormal parts based on the wireless link detection.
[0113] In the embodiments of this application, the locations of multiple terminal nodes are fixed and controlled to facilitate the construction of corresponding wireless links based on the locations of multiple terminal nodes and the communication paths of wireless data transmission products. This allows for overall control of the locations of multiple terminal nodes and the communication paths of wireless data transmission products, enabling the management and control of wireless links in multiple dimensions and ensuring the accuracy of wireless links.
[0114] Therefore, by traversing the wireless links and defining abnormal segments based on the traversal of the wireless links, abnormal segments are identified through the traversal of the wireless links, thus achieving preliminary anomaly detection of the wireless links, which facilitates further processing of the abnormal segments.
[0115] Furthermore, multiple abnormal road segments are collected, and corresponding detection modes are matched according to the multiple abnormal road segments; the detection mode is associated with the wireless link; the detection of the wireless link is triggered according to the detection mode. At the same time, multiple abnormal parts are defined based on the detection of the wireless link, so as to carry out targeted anomaly detection for the wireless link and make full use of the detection mode to ensure the control of multiple abnormal parts.
[0116] refer to Figure 5 S14: Define a second abnormal factor based on multiple abnormal components, and associate the second abnormal factor with the first abnormal factor;
[0117] In the specific implementation of this invention, the specific steps can be as follows:
[0118] S141: Freeze multiple abnormal sections;
[0119] S142: Construct multiple exception combinations based on multiple parts;
[0120] S143: Define a second anomalous factor based on multiple anomalous combinations and the communication method of the wireless link;
[0121] S144: Traverse the second abnormal factor and define the corresponding abnormal event based on the tracing of the second abnormal factor;
[0122] S145: Define optimization parameters based on the matching of abnormal events and multiple abnormal combinations, and define the optimized first abnormal factor according to the optimization parameters and the second abnormal factor;
[0123] S146: The second and first outliers after association optimization.
[0124] In the embodiments of this application, multiple abnormal parts are defined and associated to facilitate the construction of multiple abnormal combinations based on the multiple parts, thereby controlling the multiple abnormal combinations and realizing the combination of multiple abnormal parts, making full use of the multiple abnormal combinations.
[0125] At this point, a second abnormal factor is defined based on multiple abnormal combinations and the communication methods of the wireless link. This introduces multiple abnormal combinations and the communication methods of the wireless link, and matches these multiple abnormal combinations and the communication methods of the wireless link to define the second abnormal factor, thereby further controlling the second abnormal factor.
[0126] Therefore, the second abnormal factor is traversed, and the corresponding abnormal event is defined based on the tracing of the second abnormal factor; optimization parameters are defined based on the abnormal event and the matching of multiple abnormal combinations, and the optimized first abnormal factor is defined according to the optimization parameters and the second abnormal factor; the optimized second abnormal factor and the first abnormal factor are associated. At this time, the second abnormal factor is optimized, and the optimized second abnormal factor is associated with the first abnormal factor, so as to make full use of the optimized second abnormal factor and the first abnormal factor, and then to control the optimized second abnormal factor and the first abnormal factor as a whole.
[0127] refer to Figure 6 S15: Construct an anomaly set based on the second anomaly factor and the first anomaly factor, define the fault part according to the anomaly set, the model of the wireless data transmission product and the current working mode of the wireless data transmission product, match the corresponding repair logic according to the fault part, and trigger the autonomous repair of the fault part based on the repair logic.
[0128] In the specific implementation of this invention, the specific steps can be as follows:
[0129] S151: Fixed the second and first outliers after optimization;
[0130] S152: The second and first outliers after association optimization;
[0131] S153: Construct an anomaly set based on the optimized second anomaly factor and the first anomaly factor;
[0132] S154: Collect the current operating mode of the wireless data transmission product and associate it with the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product;
[0133] S155: Define the fault section based on the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product;
[0134] S156: Identify the faulty part and match the corresponding repair logic according to the faulty part and the wireless data transmission product;
[0135] S157: Calculate the matching coefficient between the repair logic and the faulty part. If the matching coefficient is lower than the preset matching coefficient threshold, divide the faulty part into multiple fault factors and trigger the autonomous adjustment of the repair logic based on the matching of multiple fault factors with the repair logic until the matching coefficient between the repair logic and the faulty part meets the preset matching coefficient threshold, and trigger the autonomous repair of the faulty part based on the repair logic.
[0136] In the embodiments of this application, the optimized second abnormal factor and the first abnormal factor are fixed and associated, thereby achieving overall control over the optimized second abnormal factor and the first abnormal factor, so as to construct an abnormal set based on the optimized second abnormal factor and the first abnormal factor, thereby introducing an abnormal set for processing.
[0137] At this point, the current operating mode of the wireless data transmission product is collected, taking into account the consideration of the current operating mode of the wireless data transmission product. This is combined with anomaly sets, the model of the wireless data transmission product, and its current operating mode to enable multi-dimensional control. Based on these factors, the faulty component can be defined, ensuring the accuracy of the fault identification. Optionally, the faulty component can manifest in the transmission path, receiving node, or operating mode of the wireless data transmission product, etc.
[0138] Therefore, the faulty part is fixed, and the corresponding repair logic is matched according to the faulty part and the wireless data transmission product; the matching coefficient between the repair logic and the faulty part is calculated. If the matching coefficient is lower than the preset matching coefficient threshold, multiple fault factors in the faulty part are divided, and the repair logic is automatically adjusted according to the matching of multiple fault factors with the repair logic until the matching coefficient between the repair logic and the faulty part meets the preset matching coefficient threshold, and the automatic repair of the faulty part is triggered based on the repair logic.
[0139] At this point, the corresponding repair logic is matched to the faulty part, and the faulty part is triggered to perform autonomous repair based on the repair logic, so as to perform online repair on the faulty part and respond to the faulty part in a timely manner without affecting the normal operation of the wireless data transmission product.
[0140] refer to Figure 7S16: In the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and the normal link is defined based on the faulty link and the wireless link. The wireless data transmission product transmits data based on the normal link. The normal link is automatically updated as the faulty part is autonomously repaired.
[0141] In the specific implementation of this invention, the specific steps can be as follows:
[0142] S161: During the autonomous repair of the faulty part, freeze the faulty part;
[0143] S162: Define the links associated with the faulty part based on the traversal of the faulty part;
[0144] S163: Define the link associated with the faulty part as the faulty link;
[0145] S164: Associate faulty links and wireless links;
[0146] S165: Define normal links based on faulty links and wireless links;
[0147] S166: Data transmission of wireless data transmission products based on normal links, while real-time monitoring of autonomous repair of faulty links;
[0148] S167: Collect the repair progress of each faulty link and adjust the status of each faulty link. At this time, the normal links will update automatically as the faulty parts are repaired.
[0149] In the specific implementation of this invention, an anomaly set is constructed based on the second and first anomaly factors. A faulty component is defined according to the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product. A corresponding repair logic is matched to the faulty component, and the faulty component's autonomous repair is triggered based on this repair logic. This facilitates online repair of the faulty component, ensuring timely response without affecting the normal operation of the wireless data transmission product. Simultaneously, in the autonomous repair of the faulty component, the link associated with the faulty component is defined as a faulty link, and a normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is performed based on the normal link. The normal link is autonomously updated as the faulty component undergoes autonomous repair, ensuring the smooth operation of the wireless link and thus guaranteeing the stability of data transmission.
[0150] At this point, during the autonomous repair of the faulty part, the faulty part is frozen, and the links associated with the faulty part are defined based on the traversal of the faulty part. The links associated with the faulty part are defined as faulty links, thereby introducing faulty links and then controlling them.
[0151] Therefore, the system associates faulty links with wireless links; defines normal links based on the faulty links and wireless links; performs data transmission for wireless data transmission products based on the normal links; simultaneously, it monitors the autonomous repair of faulty links in real time; collects the repair progress of each faulty link and adjusts the status of each faulty link. At this time, the normal links are automatically updated as the faulty parts are autonomously repaired, so as to realize the autonomous update of the normal links based on the autonomous repair of the faulty links. Thus, the smooth use of wireless links is ensured by the autonomous update of normal links, thereby ensuring the stability of wireless link data transmission.
[0152] In this embodiment of the invention, the method described herein locates a wireless data transmission product and traverses the wireless data transmission product to define multiple terminal nodes associated with the wireless data transmission product; collects the locations of the multiple terminal nodes and defines corresponding first anomaly factors based on node detection of the multiple terminal nodes; constructs corresponding wireless links based on the locations of the multiple terminal nodes; defines multiple abnormal parts based on the detection of the wireless links; defines second anomaly factors based on the multiple abnormal parts, and associates the second anomaly factors with the first anomaly factors to facilitate control based on the second anomaly factors and the first anomaly factors, and performs anomaly control for multiple dimensions to ensure the subsequent processing of the second anomaly factors and the first anomaly factors.
[0153] Furthermore, an anomaly set is constructed based on the second and first anomaly factors. A faulty component is defined according to the anomaly set, the model of the wireless data transmission product, and its current operating mode. A corresponding repair logic is matched to the faulty component, triggering its autonomous repair. This facilitates online repair of the faulty component, ensuring timely response without affecting the normal operation of the wireless data transmission product. Simultaneously, during the autonomous repair of the faulty component, the link associated with it is defined as a faulty link. A normal link is defined based on the faulty link and the wireless link. Data transmission is performed on the normal link. The normal link is automatically updated as the faulty component repairs, ensuring smooth operation of the wireless link and thus guaranteeing data transmission stability.
[0154] Please see Figure 8 , Figure 8This is a schematic diagram of the structural composition of the fault control system of the wireless data transmission product in an embodiment of the present invention.
[0155] like Figure 8 As shown, a fault control system for a wireless data transmission product includes:
[0156] Terminal node module 21 is used to locate wireless data transmission products and traverse wireless data transmission products to define multiple terminal nodes associated with wireless data transmission products;
[0157] The first anomaly module 22 is used to collect the locations of multiple terminal nodes and define the corresponding first anomaly factor based on the node detection of multiple terminal nodes.
[0158] The detection module 23 is used to construct corresponding wireless links based on the locations of multiple terminal nodes; and to define multiple abnormal parts based on the detection of wireless links.
[0159] The association module 24 is used to define a second abnormal factor based on multiple abnormal parts, and to associate the second abnormal factor with the first abnormal factor;
[0160] The self-repair module 25 is used to construct an anomaly set based on the second anomaly factor and the first anomaly factor, define the fault part according to the anomaly set, the model of the wireless data transmission product and the current working mode of the wireless data transmission product, match the corresponding repair logic according to the fault part, and trigger the self-repair of the fault part based on the repair logic.
[0161] The self-update module 26 is used to define the links associated with the faulty part as faulty links and define normal links based on the faulty links and wireless links during the self-repair of the faulty part. Data transmission of the wireless data transmission product is carried out based on the normal links, and the normal links are self-updated as the faulty part is self-repaired.
[0162] Please see Figure 9 See below for reference. Figure 9 To describe an electronic device 40 according to this embodiment of the present invention. Figure 9 The electronic device 40 shown is merely an example and should not impose any limitation on the functionality and scope of use of the embodiments of the present invention.
[0163] like Figure 9 As shown, the electronic device 40 is manifested in the form of a general-purpose computing device. The components of the electronic device 40 may include, but are not limited to: at least one processing unit 41, at least one storage unit 42, and a bus 43 connecting different system components (including storage unit 42 and processing unit 41).
[0164] The storage unit stores program code that can be executed by the processing unit 41, causing the processing unit 41 to perform the steps described in the "Embodiment Methods" section of this specification according to various exemplary embodiments of the present invention.
[0165] Storage unit 42 may include a readable medium in the form of a volatile storage unit, such as random access memory (RAM) 421 and / or cache memory 422, and may further include a read-only memory (ROM) 423.
[0166] Storage unit 42 may also include a program / utility 424 having a set (at least one) of program modules 425, including but not limited to: an operating system, one or more application programs, other program modules, and program data, each or some combination of these examples may include an implementation of a network environment.
[0167] Bus 43 can represent one or more of several types of bus structures, including a memory cell bus or memory cell controller, a peripheral bus, a graphics acceleration port, a processing unit, or a local bus using any of the multiple bus structures.
[0168] Electronic device 40 can also communicate with one or more external devices (e.g., keyboard, pointing device, Bluetooth device, etc.), and with one or more devices that enable a user to interact with electronic device 40, and / or with any device that enables electronic device 40 to communicate with one or more other computing devices (e.g., router, modem, etc.). This communication can be performed through input / output (I / O) interface 44. Furthermore, electronic device 40 can also communicate with one or more networks (e.g., local area network (LAN), wide area network (WAN), and / or public networks, such as the Internet) through network adapter 45. Figure 9 As shown, network adapter 45 communicates with other modules of electronic device 40 via bus 43. It should be understood that, although... Figure 9 As not shown, other hardware and / or software modules may be used in conjunction with electronic device 40, including but not limited to: microcode, device drivers, redundant processing units, external disk drive arrays, RAID systems, tape drives, and data backup planning systems.
[0169] From the above description of the embodiments, those skilled in the art will readily understand that the exemplary embodiments described herein can be implemented by software or by combining software with necessary hardware. Therefore, the technical solutions according to the embodiments of this disclosure can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (such as a CD-ROM, USB flash drive, external hard drive, etc.) or on a network, including several instructions to cause a computing device (such as a personal computer, server, terminal device, or network device, etc.) to execute the methods according to the embodiments of this disclosure.
[0170] Those skilled in the art will understand that all or part of the steps in the various methods of the above embodiments can be implemented by a program instructing related hardware. This program can be stored in a computer-readable storage medium, which may include: read-only memory (ROM), random access memory (RAM), a magnetic disk, or an optical disk, etc. Furthermore, it stores computer program instructions, which, when executed by a computer, cause the computer to perform the methods described above.
[0171] Furthermore, the fault control method and system for wireless data transmission products provided in the embodiments of the present invention have been described in detail above. Specific examples have been used to illustrate the principles and implementation methods of the present invention. The description of the above embodiments is only for the purpose of helping to understand the method and core ideas of the present invention. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of the present invention. Therefore, the content of this specification should not be construed as a limitation of the present invention.
Claims
1. A fault control method for a wireless data transmission product, characterized in that, Applications include fault control scenarios for wireless data transmission products; The fault control method for the wireless data transmission product includes: Locate the wireless data transmission product and traverse the wireless data transmission products to define multiple terminal nodes associated with the wireless data transmission product; Collect the locations of multiple terminal nodes and define the corresponding first anomaly factor based on the node detection of multiple terminal nodes; Construct corresponding wireless links based on the locations of multiple terminal nodes; define multiple abnormal components based on the detection of wireless links; Define a second abnormal factor based on multiple abnormal components, and associate the second abnormal factor with the first abnormal factor; An anomaly set is constructed based on the second and first anomaly factors. The fault part is defined according to the anomaly set, the model of the wireless data transmission product, and the current working mode of the wireless data transmission product. The corresponding repair logic is matched according to the fault part, and the autonomous repair of the fault part is triggered based on the repair logic. In the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and the normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is carried out based on the normal link, and the normal link is automatically updated as the faulty part is autonomously repaired.
2. The fault control method for a wireless data transmission product according to claim 1, characterized in that, The location of the wireless data transmission product, and the traversal of the wireless data transmission product, to define multiple terminal nodes associated with the wireless data transmission product, including: Positioning wireless data transmission products; Based on the current working mode and continuous working time definition of the wireless data transmission product, the traversal mode is defined. The traversal of wireless data transmission products is triggered based on this traversal pattern; The wireless data transmission product traverses and marks multiple terminal parts, and matches the corresponding transmission path based on the multiple terminal parts and the transmission end of the wireless data transmission product. Based on the transmission path and the transmission signals of multiple terminal parts, multiple terminal nodes are defined and associated with the wireless data transmission product.
3. The fault control method for a wireless data transmission product according to claim 2, characterized in that, The process of collecting the locations of multiple terminal nodes and defining corresponding first anomaly factors based on node detection of multiple terminal nodes includes: The system freezes multiple terminal nodes and collects their locations. Mark the locations of multiple terminal nodes and trigger corresponding node detection for each terminal node; In the node detection of each terminal node, the path associated with each terminal node is defined, and the transmission data of the terminal node is collected according to the path. The first abnormal part is defined based on the node detection of the terminal node. At the same time, the corresponding data transmission module is matched based on the terminal node, and the corresponding second abnormal part is defined based on the matching of the data transmission module and the corresponding transmitted data. Associate the second abnormal part with the first abnormal part, and define the corresponding first abnormal factor based on the second abnormal part and the first abnormal part.
4. The fault control method for a wireless data transmission product according to claim 3, characterized in that, The process involves constructing corresponding wireless links based on the locations of multiple terminal nodes; and defining multiple anomalies based on wireless link detection, including: Freeze the location of multiple terminal nodes; Construct corresponding wireless links based on the locations of multiple terminal nodes and the communication paths of wireless data transmission products. Traverse the wireless links and define abnormal segments based on the traversal of the wireless links; Collect multiple abnormal road segments and match the corresponding detection mode according to the multiple abnormal road segments; Associate this detection mode with the wireless link; The detection mode triggers the detection of the wireless link, and multiple abnormal parts are defined based on the detection of the wireless link.
5. The fault control method for a wireless data transmission product according to claim 4, characterized in that, The step of defining a second anomalous factor based on multiple anomalous components, and associating the second anomalous factor with the first anomalous factor, includes: Freeze multiple abnormal parts; Multiple exception combinations are constructed based on multiple parts; The second anomalous factor is defined based on multiple anomalous combinations and the communication method of the wireless link; Iterate through the second abnormal factor and define the corresponding abnormal event based on the tracing of the second abnormal factor; The optimization parameters are defined based on the matching of abnormal events and multiple abnormal combinations, and the optimized first abnormal factor is defined based on the optimization parameters and the second abnormal factor. The second and first outliers were correlated after optimization.
6. The fault control method for a wireless data transmission product according to claim 5, characterized in that, The process involves constructing an anomaly set based on the second and first anomaly factors, defining a faulty component according to the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product, and matching the corresponding repair logic to the faulty component. Based on this repair logic, the process triggers autonomous repair of the faulty component, including: The second and first outliers after optimization were fixed; The second and first outliers after correlation optimization; Construct an anomaly set based on the optimized second anomaly factor and the first anomaly factor; Collect the current operating mode of the wireless data transmission product and associate it with the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product; The fault portion is defined based on the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product.
7. The fault control method for a wireless data transmission product according to claim 6, characterized in that, The process of constructing an anomaly set based on the second and first anomaly factors, defining a faulty component according to the anomaly set, the model of the wireless data transmission product, and the current operating mode of the wireless data transmission product, and matching the corresponding repair logic to the faulty component, triggering autonomous repair of the faulty component based on the repair logic, also includes: The faulty part is identified, and corresponding repair logic is matched based on the faulty part and the wireless data transmission product. The matching coefficient between the repair logic and the faulty part is calculated. If the matching coefficient is lower than the preset matching coefficient threshold, multiple fault factors in the faulty part are divided. The repair logic is automatically adjusted based on the matching of multiple fault factors with the repair logic until the matching coefficient between the repair logic and the faulty part meets the preset matching coefficient threshold. Then, the faulty part is automatically repaired based on the repair logic.
8. The fault control method for a wireless data transmission product according to claim 7, characterized in that, In the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and a normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is performed based on the normal link. The normal link is automatically updated as the faulty part is autonomously repaired, including: During the autonomous repair of the faulty part, the faulty part is frozen in time; Define the links associated with the faulty part based on the traversal of the faulty part; The link associated with the faulty part is defined as the faulty link.
9. The fault control method for a wireless data transmission product according to claim 8, characterized in that, In the autonomous repair of the faulty part, the link associated with the faulty part is defined as the faulty link, and a normal link is defined based on the faulty link and the wireless link. Data transmission of the wireless data transmission product is performed based on the normal link. The normal link is automatically updated as the faulty part is autonomously repaired. The process also includes: Associate faulty links and wireless links; Define normal links based on faulty links and wireless links; Data transmission for wireless data transmission products is based on normal links, while real-time monitoring is performed on the autonomous repair of faulty links. The system collects the repair progress of each faulty link and adjusts the status of each faulty link. Meanwhile, the normal links update themselves as the faulty parts are repaired.
10. A fault control system for a wireless data transmission product, characterized in that, The fault control system of the wireless data transmission product is applied to the fault control method of the wireless data transmission product as described in any one of claims 1-9, and the fault control system of the wireless data transmission product includes: The terminal node module is used to locate wireless data transmission products and traverse wireless data transmission products to define multiple terminal nodes associated with the wireless data transmission products. The first anomaly module is used to collect the locations of multiple terminal nodes and define the corresponding first anomaly factors based on the node detection of multiple terminal nodes. The detection module is used to construct corresponding wireless links based on the locations of multiple terminal nodes; and to define multiple abnormal components based on the detection of wireless links. The association module is used to define a second abnormal factor based on multiple abnormal components, and to associate the second abnormal factor with the first abnormal factor. The self-repair module is used to construct an anomaly set based on the second and first anomaly factors, define the fault part according to the anomaly set, the model of the wireless data transmission product and the current working mode of the wireless data transmission product, match the corresponding repair logic according to the fault part, and trigger the self-repair of the fault part based on the repair logic. The self-update module is used to define the links associated with the faulty part as faulty links during the self-repair of the faulty part, and define normal links based on the faulty links and wireless links. Data transmission of the wireless data transmission product is carried out based on the normal links, and the normal links are self-updated as the faulty part is self-repaired.