Intelligent Cable Control Device for Dynamic Reporting of Parameter Data

The smart cable control device dynamically adjusts reporting schedules based on sensor data thresholds and distributions, improving efficiency and reducing power consumption in smart cable monitoring systems.

CN114866878BActive Publication Date: 2025-07-15GUANGZHOU PANYU CABLE WORKS
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Patent Information

Application Number
CN202210589890.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-05-26
Publication Date
2025-07-15
Estimated Expiration
2042-05-26

AI Technical Summary

Technical Problem

In the monitoring of existing smart cables, sensor data reporting is poor and periodic adjustment efficiency is low, resulting in excessive power consumption of node equipment.

Method used

By setting the parameter reporting node in the smart cable, the condition judgment module and the data update module dynamically adjust the wake-up time point, and flexible data reporting is carried out according to the threshold and distribution of the sensing data parameters.

Benefits of technology

It improves data reporting efficiency, realizes flexible reporting adjustment under low-power processing, and realizes reasonable and effective cable parameter monitoring.

✦ Generated by Eureka AI based on patent content.

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Abstract

An embodiment of the present invention discloses an intelligent cable control device for dynamically reporting parameter data, including a parameter reporting node and a control node. The device includes: reporting sensing data parameters in a first wake-up period; after receiving the sensing data parameters, determining whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a first preset distribution; in response to the determination that the sensing data parameters are greater than the first preset threshold and the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the judgment condition of the first preset distribution, increasing the wake-up time points in the first wake-up period to obtain first updated wake-up time points. This solution improves the data reporting efficiency, realizes flexible reporting adjustment on the premise of low-power processing, and realizes reasonable and effective monitoring of cable parameters.
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Description

Technical Field

[0001] The embodiments of the present application relate to the technical field of cables, and in particular, to an intelligent cable control device for dynamically reporting parameter data. Background Art

[0002] With the development of the Internet of Things and device intelligence, the popularity of intelligent cables is getting higher and higher. In the existing intelligent cable monitoring process, as the number of monitoring parameters increases, the number of integrated sensors also increases, and the existing data sending and transmission methods lead to excessive power consumption of node devices.

[0003] In related technologies, a patent document with publication number CN103619056B discloses a method and a terminal for reporting sensor data. The method includes: when the processor only needs to process the sensor data collected by the sensor, the processor sends an instruction to enter the sleep state and enters the sleep state; after the processor enters the sleep state, the sensor hub receives and temporarily stores the sensor data collected and reported by the sensor in the event information table, and the sensor hub records the time corresponding to the sensor collecting the sensor data and also temporarily stores the time in the event information table; when the processor resumes the working state, the sensor hub reports the event information table to the processor, and the processor parses the event information table to complete the corresponding processing. In the embodiments of the present invention, when only the sensor is working, the processor is always in the sleep state, and the low-power sensor hub temporarily stores the data, so as to save the overall power consumption. However, this adjustment method is relatively single and lacks flexibility, and cannot adapt to data reporting in different complex situations. Summary of the Invention

[0004] The embodiments of the present invention provide an intelligent cable control device for dynamically reporting parameter data, which solves the problems of poor flexibility in sensor data reporting and low cycle adjustment efficiency in the prior art, improves the data reporting efficiency, realizes flexible reporting adjustment on the premise of low-power processing, and realizes reasonable and effective monitoring of cable parameters.

[0005] In a first aspect, the embodiments of the present invention provide an intelligent cable control device for dynamically reporting parameter data, and the device includes:

[0006] The parameter reporting node is configured to report sensing data parameters in a first wake-up period. The parameter reporting node is integrally arranged in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points;

[0007] The control node includes a condition judgment module, a data update module, and a transmission processing module. The condition judgment module is configured to, after receiving the sensing data parameters, determine whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a first preset distribution;

[0008] The data update module is configured to, in response to the sensing data parameters being greater than the first preset threshold and the judgment condition that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the first preset distribution, increase the wake-up time points in the first wake-up period to obtain first updated wake-up time points;

[0009] The transmission processing module is configured to control the parameter reporting node to report the sensing data parameters according to the first updated wake-up time points.

[0010] Optionally, there are multiple first preset thresholds, the sensing data parameters include different types of data parameters, each data parameter corresponds to its own first preset threshold, and the first preset distribution includes a function distribution that satisfies an increasing relationship.

[0011] Optionally, the condition judgment module is further configured to:

[0012] Determine whether the sensing data parameters are less than a second preset threshold. If so, determine whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a second preset distribution, where the second preset threshold is less than the first preset threshold;

[0013] The data update module is configured to, in response to the judgment result that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the second preset distribution, reduce the wake-up time points in the first wake-up period to obtain second updated wake-up time points;

[0014] The transmission processing module is configured to control the parameter reporting node to report the sensing data parameters according to the second updated wake-up time points.

[0015] Optionally, the condition judgment module is configured to:

[0016] Receive the sensing data parameters of multiple adjacent parameter reporting nodes;

[0017] The data update module is configured to:

[0018] Increase the wake-up time points by different amounts according to the parameter values of the sensing data parameters of different parameter reporting nodes to obtain first updated wake-up time points.

[0019] Second aspect, an embodiment of the present invention further provides an intelligent cable control method for dynamically reporting parameter data, including:

[0020] The parameter reporting node reports sensing data parameters during a first wake-up period. The parameter reporting node is integrally provided in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points;

[0021] After receiving the sensing data parameters, the control node determines whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a first preset distribution;

[0022] In response to the sensing data parameters being greater than the first preset threshold and the judgment condition that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the first preset distribution, the control node increases the wake-up time points in the first wake-up period to obtain first updated wake-up time points;

[0023] The control node controls the parameter reporting node to report sensing data parameters according to the first updated wake-up time points.

[0024] Optionally, there are multiple first preset thresholds. The sensing data parameters include different types of data parameters, and each data parameter corresponds to its own first preset threshold. The first preset distribution includes a function distribution that satisfies an increasing relationship.

[0025] Optionally, it further includes:

[0026] The control node determines whether the sensing data parameters are less than a second preset threshold. If so, it determines whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a second preset distribution. The second preset threshold is less than the first preset threshold;

[0027] In response to the judgment result that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the second preset distribution, the control node reduces the wake-up time points in the first wake-up period to obtain second updated wake-up time points;

[0028] The control node controls the parameter reporting node to report sensing data parameters according to the second updated wake-up time points.

[0029] Optionally, the control node receiving the sensing data parameters includes:

[0030] The control node receives sensing data parameters of multiple adjacent parameter reporting nodes;

[0031] Correspondingly, increasing the wake-up time point of the first wake-up cycle to obtain a first updated wake-up time point includes:

[0032] Increasing different numbers of wake-up time points according to the parameter values of the sensing data parameters reported by nodes with different parameters to obtain a first updated wake-up time point.

[0033] In a third aspect, an embodiment of the present invention further provides an intelligent cable control device for dynamically reporting parameter data. The device includes:

[0034] One or more processors;

[0035] A storage device for storing one or more programs,

[0036] When the one or more programs are executed by the one or more processors, the one or more processors implement the intelligent cable control method for dynamically reporting parameter data according to the embodiments of the present invention.

[0037] In a fourth aspect, an embodiment of the present invention further provides a storage medium storing computer-executable instructions. The computer-executable instructions are used to execute the intelligent cable control method for dynamically reporting parameter data according to the embodiments of the present invention when executed by a computer processor.

[0038] In the embodiments of the present invention, a parameter reporting node reports sensing data parameters in a first wake-up cycle. The parameter reporting node is integrally arranged in an intelligent cable. The first wake-up cycle includes corresponding multiple wake-up time points. After receiving the sensing data parameters, a control node determines whether the sensing data parameters are greater than a first preset threshold and whether the sensing data parameters at multiple wake-up time points in the first wake-up cycle satisfy a first preset distribution. In response to the judgment conditions that the sensing data parameters are greater than the first preset threshold and the sensing data parameters at multiple wake-up time points in the first wake-up cycle satisfy the first preset distribution, the control node increases the wake-up time points of the first wake-up cycle to obtain a first updated wake-up time point. The control node controls the parameter reporting node to report sensing data parameters according to the first updated wake-up time point. The data reporting efficiency is improved, flexible reporting adjustment is realized on the premise of low-power consumption processing, and reasonable and effective monitoring of cable parameters is realized. BRIEF DESCRIPTION OF THE DRAWINGS

[0039] Figure 1 It is a flowchart of an intelligent cable control method for dynamically reporting parameter data provided by an embodiment of the present invention;

[0040] Figure 2 It is a flowchart of another intelligent cable control method for dynamically reporting parameter data provided by an embodiment of the present invention;

[0041] Figure 3 A module structure diagram of an intelligent cable control device for dynamically reporting parameter data provided by an embodiment of the present invention;

[0042] Figure 4 A structural schematic diagram of an intelligent cable control device for dynamically reporting parameter data provided by an embodiment of the present invention. DETAILED DESCRIPTION

[0043] The embodiments of the present invention are further described in detail below in conjunction with the accompanying drawings and embodiments. It is to be understood that the specific embodiments described herein are only used to explain the embodiments of the present invention, rather than to limit the embodiments of the present invention. It is also necessary to explain that, for ease of description, only parts related to the embodiments of the present invention are shown in the accompanying drawings, rather than all structures.

[0044] Figure 1 A flow chart of an intelligent cable control method for dynamically reporting parameter data provided by an embodiment of the present invention can be executed by an intelligent cable control system, including a parameter reporting node and a control node, and specifically includes the following steps:

[0045] Step S101: A parameter reporting node reports sensor data parameters in a first wake-up cycle, wherein the parameter reporting node is integrated in the intelligent cable, and the first wake-up cycle includes a plurality of corresponding wake-up time points.

[0046] In one embodiment, the parameter reporting node is integrated in the intelligent cable, such as a simple node device including a sensor installed at a cable line joint or outside the cable line, and reports the collected sensor data during the wake-up cycle, which is exemplarily recorded as the first wake-up cycle.

[0047] In one embodiment, the first wake-up cycle includes a plurality of corresponding wake-up time points. Exemplarily, taking a parameter reporting node as an example, taking a one-day cycle as an example, it includes a plurality of different wake-up time points, such as starting from 8 a.m., and corresponding to a wake-up time point every hour. At each wake-up time point, the sensor data parameters are reported, and the sensor data parameters include temperature, humidity, pressure and other data.

[0048] Step S102: After receiving the sensor data parameter, the control node determines whether the sensor data parameter is greater than a first preset threshold, and whether the sensor data parameters at multiple wake-up time points in the first wake-up cycle meet a first preset distribution.

[0049] Among them, the control node can be distributed and corresponds to multiple parameter reporting nodes in the area, or can be a processing node set by the system server platform. After receiving the sensing data parameters, it is determined whether the sensing data parameters are greater than a first preset threshold. In one embodiment, there are multiple first preset thresholds, and the sensing data parameters include different types of data parameters, and each data parameter corresponds to its own first preset threshold. Exemplarily, for example, temperature corresponds to a temperature threshold, humidity corresponds to a humidity threshold, tensile force corresponds to a tensile force threshold, etc., and the specific threshold values can be set by oneself. This first preset distribution includes a function distribution that satisfies an increasing relationship, such as a monotonically increasing function.

[0050] In one embodiment, after receiving the sensing data parameters, corresponding judgments are made. Specifically, it is determined whether the sensing data parameters are greater than a first preset threshold (taking the temperature parameter as an example, the exemplary corresponding first preset threshold can be 90°), and whether the sensing data parameters at multiple wake-up time points in the first wake-up period (exemplarily, the first wake-up period can be one day, three days or one week as a wake-up period, and the multiple wake-up time points are the corresponding time points within the first wake-up period. Taking one day as an example, the corresponding wake-up time points are 24) satisfy the first preset distribution.

[0051] Step S103: The control node, in response to the sensing data parameters being greater than the first preset threshold and the judgment condition that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the first preset distribution, increases the wake-up time points in the first wake-up period to obtain first updated wake-up time points.

[0052] In one embodiment, if it is determined that the sensing data parameters are greater than the first preset threshold and the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the first preset distribution, then the wake-up time points in the first wake-up period are increased to obtain first updated wake-up time points. Exemplarily, for example, new wake-up time points are evenly inserted between every two previous wake-up time points. Taking the original 24 wake-up time points in one day as an example, the first updated wake-up time points after update include 48.

[0053] Step S104: The control node controls the parameter reporting node to report the sensing data parameters according to the first updated wake-up time points.

[0054] In one embodiment, the first updated wake-up time points are determined to control the parameter reporting node to report the sensing data parameters according to the first updated wake-up time points. Optionally, the new wake-up time points can be sent to the parameter reporting node, and the parameter reporting node reports the sensing data parameters based on the first updated wake-up time points.

[0055] As can be seen from the above, the parameter reporting node reports the sensing data parameters during the first wake-up period. The parameter reporting node is integrally arranged in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points. After receiving the sensing data parameters, the control node determines whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at the multiple wake-up time points in the first wake-up period satisfy a first preset distribution. In response to the determination that the sensing data parameters are greater than the first preset threshold and the sensing data parameters at the multiple wake-up time points in the first wake-up period satisfy the judgment condition of the first preset distribution, the control node increases the wake-up time points in the first wake-up period to obtain a first updated wake-up time point. The control node controls the parameter reporting node to report the sensing data parameters according to the first updated wake-up time point. Through the above solution, it can be seen that after the control node determines that the data reported by the reporting node meets certain conditions, the wake-up time point is updated, and the parameter reporting is adjusted in a timely manner, realizing flexible reporting adjustment on the premise of low-power processing, and achieving reasonable and effective monitoring of cable parameters.

[0056] On the basis of the above solution, it further includes: the control node determines whether the sensing data parameters are less than a second preset threshold. If so, it determines whether the sensing data parameters at the multiple wake-up time points in the first wake-up period satisfy a second preset distribution, where the second preset threshold is less than the first preset threshold. In response to the judgment result that the sensing data parameters at the multiple wake-up time points in the first wake-up period satisfy the second preset distribution, the control node reduces the wake-up time points in the first wake-up period to obtain a second updated wake-up time point. The control node controls the parameter reporting node to report the sensing data parameters according to the second updated wake-up time point. Exemplarily, taking the temperature parameter as an example, the second preset threshold can be 70° exemplarily. After determining that the sensing data parameters are less than the second preset threshold and determining that the sensing data parameters at the multiple wake-up time points satisfy the second preset distribution, the wake-up time points in the first wake-up period are reduced to obtain a second updated wake-up time point. Among them, the second preset distribution can be any discrete distribution that is randomly irregular, that is, it can be any distribution other than the first preset distribution. Exemplarily, taking the original 24 time points in a day cycle as an example, the second updated wake-up time point can be reduced to 12. The specific reduction method can be to uniformly reduce according to the chronological order of the time points. For example, if 8 o'clock, 9 o'clock, 10 o'clock, 11 o'clock, and 12 o'clock are five consecutive time points, they can be reduced to 8 o'clock, 10 o'clock, and 12 o'clock as the second updated time points. Correspondingly, after the second updated time point, the control node controls the parameter reporting node to report the sensing data parameters according to the second updated wake-up time point to dynamically adjust the information reporting rhythm.

[0057] Based on the above solution, the control node receives the sensing data parameters, including: the control node receives the sensing data parameters of multiple adjacent parameter reporting nodes; correspondingly, increasing the wake-up time point of the first wake-up period to obtain a first updated wake-up time point includes: increasing different numbers of wake-up time points according to the parameter values of the sensing data parameters of different parameter reporting nodes to obtain the first updated wake-up time point. In one embodiment, when determining the first updated wake-up time point, the control node receives the sensing data parameters of multiple adjacent parameter reporting nodes, such as the sensing data parameters of multiple adjacent parameter reporting nodes in the same location area. When specifically increasing the wake-up time point, different increase quantities correspond to different parameter value situations. Exemplarily, for three adjacent reporting points with corresponding temperature values of 100°, 90°, and 110° respectively, when the increase time point is satisfied for increasing, the higher the parameter value, the more the number of increased wake-up time points. For example, the parameter reporting node corresponding to 90° increases 10 wake-up time points, the parameter reporting node corresponding to 100° increases 15 wake-up time points, and the parameter reporting node corresponding to 110° increases 20 wake-up time points. Thus, for the parameter reporting nodes in the area, the first updated wake-up time point can be reasonably adjusted dynamically in a regional manner. Of course, the above is the case of increasing the wake-up time point. For the case of reducing the wake-up time point, the smaller the parameter value, the more the number of reduced wake-up time points.

[0058] Figure 2 The following is a flowchart of another intelligent cable control method for dynamic reporting of parameter data provided by an embodiment of the present invention. As Figure 2 shown, a specific and complete example is given. Specifically, it includes:

[0059] Step S201: The parameter reporting node reports the sensing data parameters during the first wake-up period. The parameter reporting node is integrally arranged in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points.

[0060] Step S202: After the control node receives the sensing data parameters, it determines whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points during the first wake-up period satisfy a first preset distribution.

[0061] Step S203: In response to the sensing data parameters being greater than the first preset threshold and the judgment condition that the sensing data parameters at multiple wake-up time points during the first wake-up period satisfy the first preset distribution, the control node increases the wake-up time point of the first wake-up period to obtain a first updated wake-up time point.

[0062] Step S204: The control node controls the parameter reporting node to report the sensing data parameters according to the first updated wake-up time point.

[0063] Step S205: The control node determines whether the sensing data parameters are less than a second preset threshold. If so, it determines whether the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy a second preset distribution, where the second preset threshold is less than the first preset threshold.

[0064] Step S206: In response to the determination result that the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy the second preset distribution, the control node reduces the wake-up time points of the first wake-up period to obtain a second updated wake-up time point.

[0065] Step S207: The control node controls the parameter reporting node to report the sensing data parameters according to the second updated wake-up time point.

[0066] As can be seen from the above solution, the parameter reporting node reports the sensing data parameters during the first wake-up period. The parameter reporting node is integrally arranged in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points. After receiving the sensing data parameters, the control node determines whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy a first preset distribution. In response to the determination conditions that the sensing data parameters are greater than the first preset threshold and the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy the first preset distribution, the control node increases the wake-up time points of the first wake-up period to obtain a first updated wake-up time point. The control node controls the parameter reporting node to report the sensing data parameters according to the first updated wake-up time point. This improves the data reporting efficiency, realizes flexible reporting adjustment on the premise of low-power consumption processing, and realizes reasonable and effective monitoring of cable parameters.

[0067] Figure 3 FIG. is a module structure block diagram of an intelligent cable control device for dynamically reporting parameter data provided by an embodiment of the present invention. The intelligent cable is used to execute the intelligent cable control method for dynamically reporting parameter data provided by the above embodiment, and has function modules and beneficial effects corresponding to the execution of the method. As Figure 3 shown, the device specifically includes: a parameter reporting node 101 and a control node 102. Among them, the control node 102 includes a condition judgment module 1021, a data update module 1022, and a transmission processing module 1023. Among them,

[0068] The parameter reporting node 101 is configured to report sensing data parameters during a first wake-up period. The parameter reporting node is integrally provided in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points;

[0069] The condition judgment module 1021 is configured to, after receiving the sensing data parameters, determine whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points during the first wake-up period satisfy a first preset distribution;

[0070] The data update module 1022 is configured to, in response to the judgment conditions that the sensing data parameters are greater than the first preset threshold and the sensing data parameters at multiple wake-up time points during the first wake-up period satisfy the first preset distribution, increase the wake-up time points of the first wake-up period to obtain first updated wake-up time points;

[0071] The transmission processing module 1023 is configured to control the parameter reporting node to report sensing data parameters according to the first updated wake-up time points.

[0072] As can be seen from the above solution, the parameter reporting node reports sensing data parameters during the first wake-up period. The parameter reporting node is integrally provided in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points; after the control node receives the sensing data parameters, it determines whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points during the first wake-up period satisfy a first preset distribution; the control node, in response to the judgment conditions that the sensing data parameters are greater than the first preset threshold and the sensing data parameters at multiple wake-up time points during the first wake-up period satisfy the first preset distribution, increases the wake-up time points of the first wake-up period to obtain first updated wake-up time points; the control node controls the parameter reporting node to report sensing data parameters according to the first updated wake-up time points. The data reporting efficiency is improved, flexible reporting adjustment is realized on the premise of low-power consumption processing, and reasonable and effective monitoring of cable parameters is realized.

[0073] In a possible embodiment, there are multiple first preset thresholds. The sensing data parameters include different types of data parameters, and each data parameter corresponds to its own first preset threshold. The first preset distribution includes a function distribution that satisfies an increasing relationship.

[0074] In a possible embodiment, the condition judgment module is further configured to:

[0075] Determine whether the sensing data parameter is less than a second preset threshold. If so, determine whether the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy a second preset distribution, where the second preset threshold is less than the first preset threshold.

[0076] The data update module is configured to, in response to the judgment result that the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy the second preset distribution, reduce the wake-up time points of the first wake-up period to obtain second updated wake-up time points.

[0077] The transmission processing module is configured to control the parameter reporting node to report the sensing data parameters according to the second updated wake-up time points.

[0078] In a possible embodiment, the condition judgment module is configured to:

[0079] Receive the sensing data parameters of multiple adjacent parameter reporting nodes.

[0080] The data update module is configured to:

[0081] Increase the number of wake-up time points according to the parameter values of the sensing data parameters of different parameter reporting nodes to obtain first updated wake-up time points.

[0082] Figure 4 The figure shows a schematic structural diagram of an intelligent cable control device for dynamically reporting parameter data according to an embodiment of the present invention. Figure 4 As shown, the device includes a processor 201, a memory 202, an input device 203, and an output device 204. The number of processors 201 in the device can be one or more. Figure 4 Here, one processor 201 is taken as an example. The processor 201, the memory 202, the input device 203, and the output device 204 in the device can be connected through a bus or other means. Figure 4 Here, connection through a bus is taken as an example. The memory 202, as a computer-readable storage medium, can be used to store software programs, computer-executable programs, and modules, such as the program instructions / modules corresponding to the intelligent cable control method for dynamically reporting parameter data in the embodiment of the present invention. The processor 201 executes various functional applications and data processing of the device by running the software programs, instructions, and modules stored in the memory 202, that is, implements the above-mentioned intelligent cable control method for dynamically reporting parameter data. The input device 203 can be used to receive input digital or character information, and generate key signal inputs related to the user settings and function control of the device. The output device 204 can include display devices such as a display screen.

[0083] An embodiment of the present invention also provides a storage medium containing computer-executable instructions, which are used to execute an intelligent cable control method for dynamically reporting parameter data when executed by a computer processor. The method includes:

[0084] The parameter reporting node reports sensing data parameters during the first wake-up period. The parameter reporting node is integrally arranged in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points;

[0085] After receiving the sensing data parameters, the control node determines whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a first preset distribution;

[0086] In response to the sensing data parameters being greater than the first preset threshold and the judgment condition that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the first preset distribution, the control node increases the wake-up time points in the first wake-up period to obtain first updated wake-up time points;

[0087] The control node controls the parameter reporting node to report sensing data parameters according to the first updated wake-up time points.

[0088] Optionally, there are multiple first preset thresholds, the sensing data parameters include different types of data parameters, each data parameter corresponds to its own first preset threshold, and the first preset distribution includes a function distribution that satisfies an increasing relationship.

[0089] Optionally, it further includes:

[0090] The control node determines whether the sensing data parameters are less than a second preset threshold. If so, it determines whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a second preset distribution, and the second preset threshold is less than the first preset threshold;

[0091] In response to the judgment result that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the second preset distribution, the control node reduces the wake-up time points in the first wake-up period to obtain second updated wake-up time points;

[0092] The control node controls the parameter reporting node to report sensing data parameters according to the second updated wake-up time points.

[0093] Optionally, the control node receiving the sensing data parameters includes:

[0094] The control node receives the sensing data parameters of multiple adjacent parameter reporting nodes;

[0095] Correspondingly, increasing the wake-up time point of the first wake-up cycle to obtain a first updated wake-up time point includes:

[0096] Increasing different numbers of wake-up time points according to the parameter values of the sensing data parameters reported by nodes with different parameters to obtain the first updated wake-up time point.

[0097] It should be noted that in the embodiments of the intelligent cable control device with dynamic reporting of the above parameter data, the various units and modules included are only divided according to functional logic, but are not limited to the above division, as long as the corresponding functions can be achieved; in addition, the specific names of the functional units are only for the convenience of mutual distinction and do not limit the protection scope of the embodiments of the present invention.

[0098] Note that the above is only the preferred embodiment of the embodiments of the present invention and the applied technical principle. Those skilled in the art will understand that the embodiments of the present invention are not limited to the specific embodiments described herein, and various obvious changes, re-adjustments and substitutions can be made by those skilled in the art without departing from the protection scope of the embodiments of the present invention. Therefore, although the embodiments of the present invention have been described in more detail through the above embodiments, the embodiments of the present invention are not limited to the above embodiments only. Without departing from the concept of the embodiments of the present invention, more other equivalent embodiments can be included, and the scope of the embodiments of the present invention is determined by the scope of the appended claims.

Claims

1. An intelligent cable control device for dynamically reporting parameter data, comprising a parameter reporting node and a control node, characterized in that, Including: The parameter reporting node is configured to report sensing data parameters in a first wake-up period. The parameter reporting node is integrally provided in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points; The control node includes a condition judgment module, a data update module, and a transmission processing module. The condition judgment module is configured to, after receiving the sensing data parameters, determine whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a first preset distribution. Among them, there are multiple first preset thresholds, the sensing data parameters include different types of data parameters, each data parameter corresponds to its own first preset threshold, the first preset distribution includes a function distribution that satisfies an increasing relationship. The condition judgment module is further configured to: determine whether the sensing data parameters are less than a second preset threshold. If so, determine whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a second preset distribution. The second preset threshold is less than the first preset threshold. The condition judgment module is configured to: receive the sensing data parameters of multiple adjacent parameter reporting nodes; The data update module is configured to, in response to the sensing data parameters being greater than the first preset threshold and the judgment condition that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the first preset distribution, increase the wake-up time points in the first wake-up period to obtain a first updated wake-up time point. The data update module is configured to, in response to the judgment result that the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy the second preset distribution, decrease the wake-up time points in the first wake-up period to obtain a second updated wake-up time point. The data update module is configured to: increase different numbers of wake-up time points according to the parameter values of the sensing data parameters of different parameter reporting nodes to obtain a first updated wake-up time point; The transmission processing module is configured to control the parameter reporting node to report the sensing data parameters according to the first updated wake-up time point. The transmission processing module is configured to control the parameter reporting node to report the sensing data parameters according to the second updated wake-up time point.

2. The intelligent cable control method for dynamically reporting parameter data, characterized in that, Including: The parameter reporting node reports the sensing data parameters in the first wake-up period. The parameter reporting node is integrally provided in the intelligent cable, and the first wake-up period includes corresponding multiple wake-up time points; After the control node receives the sensing data parameters, it determines whether the sensing data parameters are greater than a first preset threshold, and whether the sensing data parameters at multiple wake-up time points in the first wake-up period satisfy a first preset distribution. Among them, there are multiple first preset thresholds, the sensing data parameters include different types of data parameters, each data parameter corresponds to its own first preset threshold, and the first preset distribution includes a function distribution that satisfies an increasing relationship; The control node, in response to the sensing data parameter being greater than the first preset threshold and the sensing data parameters at multiple wake-up time points of the first wake-up period satisfying the determination condition of the first preset distribution, increases the wake-up time points of the first wake-up period to obtain first updated wake-up time points; The control node controls the parameter reporting node to report the sensing data parameter according to the first updated wake-up time point; The control node determines whether the sensing data parameter is less than a second preset threshold. If so, it determines whether the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy a second preset distribution, where the second preset threshold is less than the first preset threshold; The control node, in response to the determination result that the sensing data parameters at multiple wake-up time points of the first wake-up period satisfy the second preset distribution, decreases the wake-up time points of the first wake-up period to obtain second updated wake-up time points; The control node controls the parameter reporting node to report the sensing data parameter according to the second updated wake-up time point; The control node receives the sensing data parameter, including: The control node receives the sensing data parameters of multiple adjacent parameter reporting nodes; Correspondingly, the increasing the wake-up time points of the first wake-up period to obtain first updated wake-up time points includes: Increasing different numbers of wake-up time points according to the parameter values of the sensing data parameters of different parameter reporting nodes to obtain first updated wake-up time points.

3. An intelligent cable control device for dynamically reporting parameter data, the device comprising: One or more processors; A storage device for storing one or more programs, which, when executed by the one or more processors, cause the one or more processors to implement the intelligent cable control method for dynamic reporting of parameter data as described in claim 2.

4. A storage medium storing computer-executable instructions, where the computer-executable instructions are used to execute the intelligent cable control method for dynamic reporting of parameter data as described in claim 2 when executed by a computer processor.

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