Dumb resource monitoring system, method, electronic device, storage medium and product

By setting an open, pluggable interface on the dumb resource monitoring device, measurement devices can be flexibly connected, and data acquisition and anomaly detection can be performed when the communication signal strength is met. This solves the problem of the influence of signal shielding material and thickness, and improves the data transmission quality and the timeliness of anomaly detection.

CN118802974BActive Publication Date: 2026-02-24CHINA MOBILE GROUP DESIGN INST +1
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Patent Information

Application Number
CN202410568735.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-05-09
Publication Date
2026-02-24
Estimated Expiration
2044-05-09

AI Technical Summary

Technical Problem

Existing dumb resource monitoring equipment suffers from reduced signal transmission quality due to the influence of signal shielding material and thickness, consumes processing resources, and reduces data integrity and validity. Furthermore, information reception is delayed or fails when the communication signal is weak.

Method used

The resource monitoring equipment is equipped with an open, pluggable interface to flexibly connect measuring devices such as sensors and cameras. Data acquisition and anomaly detection are performed only when the communication signal strength meets the requirements, and abnormal information is sent in a timely manner.

Benefits of technology

It improves the integrity and effectiveness of data transmission, reduces the unnecessary use of processing resources, increases the success rate of receiving anomaly detection information, achieves plug-and-play functionality, and improves time efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present disclosure provides a kind of dumb resource monitoring system, method, electronic equipment, storage medium and product, wherein the system includes: the resource monitoring device of dumb resource to be monitored and management platform;Wherein, resource monitoring device and management platform are communicated connection, and at least one open pluggable interface is arranged in resource monitoring device, and pluggable interface is used to connect measuring device;In the case where it is determined that the communication signal strength between resource monitoring device and management platform meets communication requirements, the data acquisition result that measuring device carries out state data collection to dumb resource to be monitored is acquired;In the case where it is determined that state data is collected based on data acquisition result, the real-time measurement data of dumb resource to be monitored is measured by measuring device, and the state monitoring of dumb resource to be monitored is carried out, and state monitoring result is obtained;And in the case where it is determined that dumb resource to be monitored exists anomaly based on state monitoring result, generate anomaly detection information;Acquire and show anomaly detection information.
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Description

Technical Field

[0001] This disclosure relates to the field of computer technology, and more specifically, to a monitoring system, method, electronic device, storage medium, and product for dumb resources. Background Technology

[0002] Monitoring equipment for "dumb" resources (such as manhole covers) is used to monitor these resources and prevent situations where they are illegally moved or damaged without timely intervention. Therefore, monitoring dumb resources has always been a hot research topic.

[0003] Currently, most existing monitoring devices for dumb resources utilize IoT technology, and these devices are typically fixedly installed at the bottom of the dumb resource. The dumb resources are usually made of materials capable of shielding signals. However, during the transmission of monitoring information, the material may affect the quality of the signal transmitted from the monitoring device to the platform; the thickness of the dumb resource also impacts signal transmission. In related technologies, regardless of whether the signal strength between the monitoring device and the platform meets transmission requirements, the monitoring platform transmits monitoring data for the dumb resource. This may consume the processing resources of the monitoring device and reduce the integrity and effectiveness of the monitoring data transmitted to the platform. Summary of the Invention

[0004] This disclosure provides at least one monitoring system, method, electronic device, storage medium, and product for dumb resources.

[0005] In a first aspect, embodiments of this disclosure provide a monitoring system for dumb resources, including: a resource monitoring device and a management platform for the dumb resources to be monitored; wherein the resource monitoring device and the management platform are communicatively connected, and the resource monitoring device is provided with at least one open pluggable interface, the pluggable interface being used to connect a measuring device, the measuring device including but not limited to a sensor, a camera, and a laser displacement meter;

[0006] The resource monitoring device is used to acquire data acquisition results of the status data collection of the dummy resource to be monitored by the measuring device, provided that the communication signal strength between the resource monitoring device and the management platform meets the communication requirements; wherein the status data includes at least one of the following: location information, tilt angle, and settlement information; if the status data is determined to have been collected based on the data acquisition results, the status of the dummy resource to be monitored is monitored by the real-time measurement data of the dummy resource to be monitored through the measuring device to obtain status monitoring results; and if the status monitoring results determine that the dummy resource to be monitored has an anomaly, an anomaly detection information is generated.

[0007] The management platform is used to acquire and display the anomaly detection information.

[0008] In one optional implementation, the resource monitoring device includes a core algorithm processing module;

[0009] The core algorithm processing module is used to perform a self-check on the control code of the measuring device when it is determined, based on the data acquisition results, that the state data has not been acquired.

[0010] and / or

[0011] The core algorithm processing module is used to perform a self-check on the control code of the measuring device when it is determined, based on the data acquisition results, that there is abnormal data in the acquired status data.

[0012] In an optional implementation, the core algorithm processing module is further configured to:

[0013] Obtain the control code of the measuring device;

[0014] Run the control code, and determine the code execution problem based on the execution result of the control code;

[0015] Based on the code execution issues in the control code, the control code was repaired.

[0016] In one optional implementation, the resource monitoring device includes a power module and a core algorithm processing module:

[0017] The power module is used to collect power data of the battery pack in the resource monitoring device at preset time intervals; wherein the power data includes at least one of the following: voltage, current, power, and temperature;

[0018] The core algorithm processing module is used to process the battery pack based on the power data to obtain the battery monitoring results of the battery pack.

[0019] In an optional implementation, the core algorithm processing module is further configured to:

[0020] If the battery pack is determined to be in a healthy operating state based on the power data, a battery monitoring result indicating that the battery pack is functioning normally is obtained.

[0021] In an optional implementation, the core algorithm processing module is further configured to:

[0022] If the power data indicates that the battery pack is operating in an unhealthy state, a battery monitoring result indicating an abnormality in the battery pack is obtained.

[0023] In one optional implementation, the resource monitoring device includes an alarm module;

[0024] The core algorithm processing module is also used to generate an abnormal signal for the battery pack after obtaining the battery monitoring result indicating that the battery pack is abnormal.

[0025] The alarm module is used to acquire the abnormal signal sent by the core algorithm processing module and send the abnormal signal to the management platform for alarm processing.

[0026] In an optional implementation, the core algorithm processing module is further configured to:

[0027] After the management platform acquires and displays the anomaly detection information, it receives an unlocking command sent by the terminal device; wherein the unlocking command includes user information and user permissions;

[0028] If the unlocking command passes verification, the monitored dumb resource is unlocked.

[0029] In an optional implementation, the core algorithm processing module is further configured to:

[0030] Obtain the initial pose information of the dumb resource to be monitored; wherein, the initial pose information includes initial position information and / or initial angle information;

[0031] Based on the pose change between the initial pose information and the current pose information of the dummy resource to be monitored, the state monitoring result is determined, and the real-time pose information of the dummy resource to be monitored is sent to the management platform.

[0032] Secondly, embodiments of this disclosure also provide a method for monitoring dummy resources, including:

[0033] If the communication signal strength between the resource monitoring device and the management platform meets the communication requirements, the data acquisition results of the measuring device collecting status data of the dummy resource to be monitored are obtained; wherein, the status data includes at least one of the following: location information, tilt angle, and settlement information;

[0034] If the status data is determined to have been collected based on the data acquisition results, the status of the dummy resource to be monitored is monitored by the real-time measurement data of the dummy resource to be monitored through the measuring device.

[0035] If an anomaly is detected in the monitored dummy resource, an anomaly detection information is generated and sent to the management platform.

[0036] In an optional implementation, after acquiring the data acquisition results of the measuring device's status data acquisition of the dummy resource to be monitored, the method further includes:

[0037] If, based on the data acquisition results, it is determined that the status data has not been acquired, the control code of the measuring device is self-tested;

[0038] and / or

[0039] If, based on the data acquisition results, it is determined that there is abnormal data in the acquired status data, the control code of the measuring device is self-checked.

[0040] In one optional implementation, the self-test of the control code for the measuring device includes:

[0041] Obtain the control code of the measuring device;

[0042] Run the control code, and determine the code execution problem based on the execution result of the control code;

[0043] Based on the code execution issues in the control code, the control code was repaired.

[0044] In one optional implementation, the method further includes:

[0045] The power data of the battery pack in the resource monitoring device is collected at preset time intervals; wherein the power data includes at least one of the following: voltage, current, power, and temperature;

[0046] The battery pack is processed based on the power data to obtain the battery monitoring results of the battery pack.

[0047] In one optional implementation, processing the battery pack based on the power data to obtain the battery monitoring results of the battery pack includes:

[0048] If the battery pack is determined to be in a healthy operating state based on the power data, a battery monitoring result indicating that the battery pack is functioning normally is obtained.

[0049] In one optional implementation, processing the battery pack based on the power data to obtain the battery monitoring results of the battery pack includes:

[0050] If the power data indicates that the battery pack is operating in an unhealthy state, a battery monitoring result indicating an abnormality in the battery pack is obtained.

[0051] In one optional implementation, the method further includes:

[0052] After obtaining the battery monitoring results indicating an anomaly in the battery pack, an anomaly signal for the battery pack is generated.

[0053] The abnormal signal sent by the core algorithm processing module is obtained, and the abnormal signal is sent to the management platform for alarm processing.

[0054] In one optional implementation, after generating anomaly detection information, the method further includes:

[0055] Receive an unlocking command sent by a terminal device; wherein the unlocking command includes user information and user permissions;

[0056] If the unlocking command passes verification, the monitored dumb resource is unlocked.

[0057] In one optional implementation, the step of monitoring the status of the dummy resource by using the real-time measurement data of the measuring device to obtain the status monitoring result includes:

[0058] Obtain the initial pose information of the dumb resource to be monitored; wherein, the initial pose information includes initial position information and / or initial angle information;

[0059] Based on the pose change between the initial pose information and the current pose information of the dummy resource to be monitored, the state monitoring result is determined, and the real-time pose information of the dummy resource to be monitored is sent to the management platform.

[0060] Thirdly, embodiments of this disclosure also provide an electronic device, including: a processor, a memory, and a bus, wherein the memory stores machine-readable instructions executable by the processor, and when the electronic device is running, the processor communicates with the memory via the bus, and when the machine-readable instructions are executed by the processor, the steps of the first aspect above, or any possible implementation of the first aspect, are performed.

[0061] Fourthly, embodiments of this disclosure also provide a computer-readable storage medium storing a computer program that, when executed by a processor, performs the steps of the first aspect or any possible implementation of the first aspect.

[0062] Fifthly, embodiments of this disclosure also provide a computer program product, which is stored in a storage medium and is executed by at least one processor, along with the steps described in the first aspect or any possible implementation of the first aspect.

[0063] This embodiment of the disclosure provides at least one open, pluggable interface on the resource monitoring device, which is used to connect the measuring device to the resource monitoring device. Therefore, providing an open, pluggable interface allows the resource monitoring device to flexibly select the measuring device and connect it via the open, pluggable interface according to the different dummy resources to be monitored. Connecting the measuring device via the open, pluggable interface achieves a plug-and-play effect, improving time efficiency.

[0064] When the communication signal strength between the resource monitoring device and the management platform is low, the management platform may be unable to receive or may experience delays in receiving information sent by the resource monitoring device. This disclosed technical solution addresses this by sending anomaly detection information to the management platform only when an anomaly occurs in the monitored dummy resource and the communication signal strength between the resource monitoring device and the management platform is strong. This prevents the processing resources of the resource monitoring device from being unnecessarily occupied and improves the success rate of the management platform in receiving anomaly detection information.

[0065] To make the above-mentioned objects, features and advantages of this disclosure more apparent and understandable, preferred embodiments are described below in detail with reference to the accompanying drawings. Attached Figure Description

[0066] To more clearly illustrate the technical solutions of the embodiments of this disclosure, the accompanying drawings used in the embodiments will be briefly described below. These drawings are incorporated in and constitute a part of this specification. They illustrate embodiments conforming to this disclosure and, together with the specification, serve to explain the technical solutions of this disclosure. It should be understood that the following drawings only show some embodiments of this disclosure and should not be considered as limiting the scope. Those skilled in the art can obtain other related drawings based on these drawings without creative effort.

[0067] Figure 1 A schematic diagram of a monitoring system for dummy resources provided in an embodiment of this disclosure is shown;

[0068] Figure 2 A schematic diagram of a method for monitoring dummy resources provided in an embodiment of this disclosure is shown;

[0069] Figure 3 A schematic diagram of a resource monitoring device in a monitoring system for dumb resources provided in an embodiment of this disclosure is shown;

[0070] Figure 4 A schematic diagram of an electronic device provided in an embodiment of the present disclosure is shown. Detailed Implementation

[0071] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this disclosure, and not all of them. The components of the embodiments of this disclosure described and shown in the accompanying drawings can generally be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of this disclosure provided in the accompanying drawings is not intended to limit the scope of the claimed disclosure, but merely represents selected embodiments of this disclosure. All other embodiments obtained by those skilled in the art based on the embodiments of this disclosure without inventive effort are within the scope of protection of this disclosure.

[0072] It should be noted that similar labels and letters in the following figures indicate similar items. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures.

[0073] In this document, the term "and / or" merely describes a relationship, indicating that three relationships can exist. For example, A and / or B can represent three cases: A alone, A and B simultaneously, and B alone. Furthermore, the term "at least one" in this document means any combination of at least two of any one or more elements. For example, including at least one of A, B, and C can mean including any one or more elements selected from the set consisting of A, B, and C.

[0074] Research has revealed that monitoring equipment for "dumb" resources (such as manhole covers) is used to monitor these resources and prevent situations where they are illegally moved or damaged without timely intervention. Therefore, monitoring dumb resources through such equipment has been a hot research topic.

[0075] Currently, most existing dumb resource monitoring devices utilize Internet of Things (IoT) technology and are typically fixedly installed at the bottom of the dumb resource. These devices include a fixed measuring unit. Because the dumb resource can be made of a material capable of shielding signals, and its thickness also affects signal transmission, existing technologies still transmit signals to external devices even when the dumb resource's signal strength is low. Therefore, this not only consumes the processing resources of the resource monitoring device but also reduces the reception rate of signals transmitted from the dumb resource to external devices.

[0076] Based on the above research, this disclosure provides a monitoring system for dummy resources. By setting at least one open, pluggable interface on the resource monitoring device, and using this interface to connect a measuring device to the resource monitoring device, the system allows the resource monitoring device to flexibly select a measuring device and connect it via the open, pluggable interface according to the different dummy resources to be monitored. Furthermore, connecting the measuring device via the open, pluggable interface achieves a plug-and-play effect, improving time efficiency. When the communication signal strength between the resource monitoring device and the management platform is low, the management platform may be unable to receive or experience delays in receiving information sent by the resource monitoring device. In the prior art, regardless of the communication signal strength between the resource monitoring device and the management platform, the resource monitoring device continuously sends information to the management platform when an anomaly occurs in the dummy resource to be monitored. This embodiment sends anomaly detection information to the management platform only when an anomaly occurs in the dummy resource to be monitored and the communication signal strength between the resource monitoring device and the management platform is strong. This prevents the processing resources of the resource monitoring device from being ineffectively occupied and improves the success rate of the management platform in receiving anomaly detection information.

[0077] To facilitate understanding of this embodiment, a detailed description of a monitoring system for dumb resources disclosed in this disclosure will be provided first.

[0078] See Figure 1 The diagram shown is a schematic of a monitoring system for dumb resources provided in an embodiment of this disclosure. The system includes a resource monitoring device and a management platform for the dumb resources to be monitored. The resource monitoring device and the management platform are communicatively connected, and the resource monitoring device is provided with at least one open pluggable interface for connecting a measuring device, including but not limited to a sensor, a camera, and a laser displacement meter.

[0079] In the embodiments of this disclosure, the resource monitoring device is used to monitor dummy resources, enabling timely detection of problems with these resources. For example, in the case of a manhole cover, the dummy resource may be stolen or misplaced. The resource monitoring device can promptly detect problems with the dummy resource and send alarm information to the management platform.

[0080] Here, the management platform can receive alarm information sent by resource monitoring devices and transmit this information to the user. The user can then handle the dormant resources to be monitored based on the alarm information.

[0081] Here, a pluggable interface is installed on the resource monitoring device. Users can insert measuring devices into the pluggable interface, allowing the resource monitoring device to access the data collected by the measuring devices. Furthermore, the measuring devices inserted into the pluggable interface can be unplugged. The resource monitoring device can also be equipped with a pluggable interface module for processing data collected by the measuring devices inserted into the resource monitoring device into a unified format.

[0082] Here, the sensors in the measuring device may include temperature sensors, position sensors, and level sensors, etc.

[0083] Resource monitoring equipment is used to acquire data acquisition results of the status data collection of the dummy resource to be monitored by the measuring device, provided that the communication signal strength between the resource monitoring equipment and the management platform meets the communication requirements; wherein the status data includes at least one of the following: location information, tilt angle, and settlement information.

[0084] Here, the signal measurement module in the resource monitoring equipment can be used to detect the strength of the communication signal between the resource monitoring equipment and the management platform.

[0085] Here, if the communication signal strength between the resource monitoring equipment and the management platform is less than a preset signal strength threshold, the communication signal strength between them does not meet the communication requirements. In this case, the transmission power of the communication signal can be increased.

[0086] Here, when the communication signal strength between the resource monitoring equipment and the management platform is greater than or equal to the preset signal strength threshold, the communication signal strength between the resource monitoring equipment and the management platform meets the communication requirements.

[0087] Here, provided the communication signal strength between the resource monitoring equipment and the management platform meets the communication requirements, the core algorithm module of the resource monitoring equipment can send a data acquisition command to the measuring device of the resource monitoring equipment. After receiving the acquisition command, the measuring device collects the status data of the dummy resource to be monitored in real time, and then sends the collected status data to the core algorithm processing module.

[0088] Here, if the time difference between the time the core algorithm processing module sends the acquisition command and the time the status data is received is less than or equal to a preset time threshold and there is no abnormal data in the status data, the data acquisition result is used to indicate that the communication between the core algorithm processing module and the measuring device is normal.

[0089] Here, if the time difference between the time the core algorithm processing module sends the acquisition command and the time it receives the status data is greater than a preset time threshold, the data acquisition result is used to indicate that the communication between the core algorithm processing module and the measuring device is abnormal.

[0090] Based on the data acquisition results, if the acquired status data is determined, the status of the dummy resource to be monitored is monitored by using a measuring device to obtain the real-time measurement data of the dummy resource to be monitored.

[0091] In the embodiments of this disclosure, when it is determined that status data has been collected based on the data acquisition results and the status data does not contain abnormal data, the status of the dummy resource to be monitored is monitored by the real-time measurement data of the dummy resource to be monitored through the measuring device, and the status monitoring results are obtained.

[0092] Here, the measuring device can send the real-time measurement data of the dummy resource to be monitored to the core algorithm processing module. The core algorithm processing module can perform status monitoring on the dummy resource based on the real-time measurement data and obtain the status monitoring results.

[0093] If an anomaly is determined to exist in the dummy resource to be monitored based on the status monitoring results, anomaly detection information is generated.

[0094] In the embodiments of this disclosure, the core algorithm processing module can determine whether there is an anomaly in the dummy resource to be monitored based on the status monitoring results. For example, the core algorithm processing module can determine anomalies such as the loss or overturning of the dummy resource device to be monitored based on the status monitoring results, and generate anomaly detection information based on the anomalies.

[0095] Here, after the core algorithm processing module generates anomaly detection information, it can send this information to the alarm module of the resource monitoring device. Upon receiving the anomaly detection information, the alarm module can send it to the management platform and store it in the data storage module of the resource monitoring device.

[0096] The management platform is used to acquire and display anomaly detection information.

[0097] In the embodiments of this disclosure, after the management platform receives anomaly detection information, it can display the anomaly detection information on the display interface. Here, while displaying the anomaly detection information on the display interface, a prompt sound can be emitted to remind the user. Different prompt sounds can be set based on different types of anomaly detection information.

[0098] In the above embodiments, at least one open, pluggable interface is provided on the resource monitoring device, and this open, pluggable interface is used to connect the measuring device to the resource monitoring device. Therefore, providing an open, pluggable interface allows the resource monitoring device to flexibly select the measuring device and connect it through the open, pluggable interface according to the different dummy resources to be monitored. Connecting the measuring device through the open, pluggable interface achieves a plug-and-play effect, improving time efficiency.

[0099] When the communication signal strength between the resource monitoring device and the management platform is low, the management platform may be unable to receive or may experience delays in receiving information sent by the resource monitoring device. This disclosed technical solution addresses this by sending anomaly detection information to the management platform only when an anomaly occurs in the monitored dummy resource and the communication signal strength between the resource monitoring device and the management platform is strong. This prevents the processing resources of the resource monitoring device from being unnecessarily occupied and improves the success rate of the management platform in receiving anomaly detection information.

[0100] In an optional embodiment, the resource monitoring device includes a core algorithm processing module;

[0101] The core algorithm processing module is used to perform a self-check on the control code of the measuring device when it is determined that no state data has been collected based on the data acquisition results.

[0102] and / or

[0103] The core algorithm processing module is used to perform a self-check on the control code of the measuring device when abnormal data is found in the collected status data based on the data acquisition results.

[0104] In the embodiments of this disclosure, if the core algorithm processing module does not receive the collected data uploaded by the measuring device after sending a collection command to the measuring device, the core algorithm processing module can periodically send collection commands to the measuring device. If the core algorithm processing module does not receive the collected data uploaded by the measuring device for a preset number of consecutive times, the current state of the resource monitoring device is determined to be a state where no status data has been collected.

[0105] Here, when the resource monitoring device is currently in a state where no status data has been collected, the core algorithm processing module can retrieve the control code of the corresponding measurement device control module and perform a self-check on the control code.

[0106] In the embodiments of this disclosure, if abnormal data is found in the collected status data based on the data acquisition results, it can be determined that the working status of the measuring device is abnormal.

[0107] Here, if the working state of the measuring device is abnormal, the core algorithm processing module can reclaim the control code of the corresponding measuring device control module and perform a self-check on the control code.

[0108] In an optional embodiment, the core algorithm processing module is further configured to:

[0109] First, obtain the control code of the measuring device;

[0110] Secondly, run the control code and determine the code execution problems based on the results of the control code execution;

[0111] Finally, based on the issues with the control code's execution, the control code was fixed.

[0112] In the embodiments of this disclosure, firstly, the core algorithm module can send code acquisition instructions to the measurement device control module. Secondly, the measurement device control module sends the control code to the core algorithm processing module.

[0113] Here, after the core algorithm module receives the control code, it can run the control code and obtain the execution result. After obtaining the execution result, the code execution problem of the control code can be determined based on the execution result.

[0114] Here, after identifying the code execution problem, the core algorithm processing module can determine a solution based on the problem and execute the solution to fix the control code. The solutions include updating the control code and restarting the measurement device.

[0115] In an optional embodiment, the resource monitoring device includes a power module and a core algorithm processing module:

[0116] The power module is used to collect power data of the battery pack in the resource monitoring device at preset time intervals; wherein the power data includes at least one of the following: voltage, current, power, and temperature;

[0117] The core algorithm processing module is used to process the battery pack based on power data to obtain the battery monitoring results of the battery pack.

[0118] In the embodiments of this disclosure, firstly, a preset time interval can be set, and the power module can collect power data of the battery pack in the resource monitoring device according to the preset time interval. Secondly, after collecting the power data, the power module can send the power data to the core algorithm processing module. Next, the core algorithm processing module can perform SOC calculation processing based on the power data to obtain the calculation result. Finally, the battery detection result of the battery pack can be determined based on the calculation result.

[0119] In an optional embodiment, the core algorithm processing module is further configured to:

[0120] Based on power data, if the battery pack is determined to be in a healthy operating state, a battery monitoring result indicating that the battery pack is functioning normally is obtained.

[0121] In embodiments of this disclosure, power data can be compared with initial power data. If the change in power data compared to initial power data is within a fixed range, the battery pack is determined to be in a healthy operating state. For example, if the power data includes voltage, current, power, and temperature, and the difference between the voltage and the initial voltage is less than a preset voltage threshold, the difference between the current and the initial current is less than a preset current threshold, the difference between the power and the initial power is less than a preset power threshold, and the difference between the temperature and the initial temperature is less than a preset temperature threshold, then the change in power data compared to initial power data is within a fixed range.

[0122] In an optional embodiment, the core algorithm processing module is further configured to:

[0123] When the battery pack is determined to be operating unhealthily based on power data, battery monitoring results indicating abnormal battery pack operation are obtained.

[0124] In embodiments of this disclosure, power data can be compared with initial power data. If the change in power data compared to initial power data is not within a fixed range, the battery pack is determined to be in an unhealthy operating state.

[0125] After determining that the battery pack is in an unhealthy operating state, the battery monitoring results and the corresponding power data can be stored in the data storage module.

[0126] In an optional embodiment, the resource monitoring device includes an alarm module;

[0127] The core algorithm processing module is also used to generate anomaly signals for the battery pack after obtaining battery monitoring results indicating anomalies in the battery pack.

[0128] The alarm module is used to acquire abnormal signals sent by the core algorithm processing module and send the abnormal signals to the management platform for alarm processing.

[0129] In embodiments of this disclosure, after generating an abnormal signal for the battery pack, the abnormal signal can be sent to an alarm module and stored in a data storage module.

[0130] Here, abnormal signals for the battery pack can be generated based on battery monitoring results. For example, an abnormal battery pack current signal can be generated only if the difference between the current and the initial current in the power data is greater than or equal to a preset current threshold.

[0131] Here, after the management platform receives an abnormal signal, it can display the abnormal signal on the screen to prompt the user to take action.

[0132] In an optional embodiment, the core algorithm processing module is further configured to:

[0133] After the management platform obtains and displays the anomaly detection information, it receives the unlocking command sent by the terminal device; the unlocking command includes user information and user permissions.

[0134] If the unlock command passes verification, control the unlocking of the dumb resource to be monitored.

[0135] In the embodiments of this disclosure, new users can be added or old users can be deleted in the data storage module through the core algorithm processing module. Furthermore, the user permissions of users currently in the data storage module can be modified. These user permissions include unlocking and de-locking monitored dumb resources.

[0136] Here, the terminal device can send an unlock command to the core algorithm module. After receiving the unlock command, the core algorithm module can perform verification processing on the unlock command. Specifically, the core algorithm processing module can verify whether the data storage module contains the user information from the unlock command.

[0137] Here, if the data storage module contains user information from the unlocking command, the core algorithm module can determine whether the terminal device has unlocking authority.

[0138] Here, if the terminal device has unlocking permissions, it controls the unlocking of the dumb resource to be monitored. If the terminal device does not have unlocking permissions, an error message is generated and stored in the data storage module.

[0139] Here, after the monitored dummy resource is successfully unlocked, the user can address any anomalies in the resource. Once the anomaly handling is complete, the user can send a locking command to the core algorithm module via the terminal device.

[0140] Here, after the resource monitoring equipment successfully executes the lockout command, the measurement device control module triggers the position measurement device to collect position information in real time and send it to the core algorithm processing module. If the core algorithm processing module detects that the difference between the current position information and the initial position information is greater than a preset position threshold, it generates an anomaly detection message.

[0141] In an optional embodiment, the core algorithm processing module is further configured to:

[0142] Acquire the initial pose information of the dummy resource to be monitored; wherein, the initial pose information includes initial position information and / or initial angle information;

[0143] Based on the pose change between the initial pose information and the current pose information of the dummy resource to be monitored, the status monitoring result is determined, and the real-time pose information of the dummy resource to be monitored is sent to the management platform.

[0144] In the embodiments of this disclosure, when the dummy resource to be monitored is a manhole cover, the initial pose information includes the initial position information of the manhole cover, the initial angle information of the manhole cover, and the initial horizontal information of the manhole cover. Specifically, the initial position information of the manhole cover is the longitude and latitude value of its initial placement position; the initial horizontal information of the manhole cover is the value of its initial placement position relative to the horizontal line.

[0145] Here, the measuring device can collect the pose information of the monitored dumb resource at preset time intervals. When the collected pose information changes relative to the initial pose information, the measuring device acquires the real-time pose information of the monitored dumb resource in real time and reports the real-time pose information to the management platform so that users can process it in a timely manner based on the real-time pose information of the monitored dumb resource.

[0146] Here, if the changes in the collected pose information exceed a preset threshold, the core algorithm processing module generates anomaly detection information and sends it to the alarm module. Upon receiving the anomaly detection information, the alarm module sends it to the management platform.

[0147] Those skilled in the art will understand that, in the above-described method of the specific implementation, the order in which each step is written does not imply a strict execution order and does not constitute any limitation on the implementation process. The specific execution order of each step should be determined by its function and possible internal logic.

[0148] Based on the same inventive concept, this disclosure also provides a method for monitoring dumb resources corresponding to a monitoring system for dumb resources. Since the principle of the device in this disclosure for solving the problem is similar to the dumb resource monitoring system described above in this disclosure, the implementation of the method can be referred to the implementation of the method, and repeated parts will not be described again.

[0149] Reference Figure 2 The diagram shown is a schematic representation of a method for monitoring dummy resources provided in an embodiment of this disclosure. The method includes:

[0150] S101. When it is determined that the communication signal strength between the resource monitoring device and the management platform meets the communication requirements, the data acquisition results of the measuring device collecting status data of the dummy resource to be monitored are obtained; wherein, the status data includes at least one of the following: location information, tilt angle, and settlement information;

[0151] S102. If the status data is determined to have been collected based on the data acquisition results, the status of the dummy resource to be monitored is monitored by the real-time measurement data of the dummy resource to be monitored through the measuring device.

[0152] S103. If an anomaly is detected in the monitored dummy resource, an anomaly detection information is generated and sent to the management platform.

[0153] This embodiment of the disclosure provides at least one open, pluggable interface on the resource monitoring device, which is used to connect the measuring device to the resource monitoring device. Therefore, providing an open, pluggable interface allows the resource monitoring device to flexibly select the measuring device and connect it via the open, pluggable interface according to the different dummy resources to be monitored. Connecting the measuring device via the open, pluggable interface achieves a plug-and-play effect, improving time efficiency.

[0154] When the communication signal strength between the resource monitoring device and the management platform is low, the management platform may be unable to receive or may experience delays in receiving information sent by the resource monitoring device. This disclosed technical solution addresses this by sending anomaly detection information to the management platform only when an anomaly occurs in the monitored dummy resource and the communication signal strength between the resource monitoring device and the management platform is strong. This prevents the processing resources of the resource monitoring device from being unnecessarily occupied and improves the success rate of the management platform in receiving anomaly detection information.

[0155] In one possible implementation, after acquiring the data acquisition results of the measuring device's status data acquisition of the dummy resource to be monitored, the method further includes:

[0156] If, based on the data acquisition results, it is determined that the status data has not been acquired, the control code of the measuring device is self-tested;

[0157] and / or

[0158] If, based on the data acquisition results, it is determined that there is abnormal data in the acquired status data, the control code of the measuring device is self-checked.

[0159] In one possible implementation, the self-test of the control code for the measuring device includes:

[0160] Obtain the control code of the measuring device;

[0161] Run the control code, and determine the code execution problem based on the execution result of the control code;

[0162] Based on the code execution issues in the control code, the control code was repaired.

[0163] In one possible implementation, the method further includes:

[0164] The power data of the battery pack in the resource monitoring device is collected at preset time intervals; wherein the power data includes at least one of the following: voltage, current, power, and temperature;

[0165] The battery pack is processed based on the power data to obtain the battery monitoring results of the battery pack.

[0166] In one possible implementation, processing the battery pack based on the power data to obtain the battery monitoring results of the battery pack includes:

[0167] If the battery pack is determined to be in a healthy operating state based on the power data, a battery monitoring result indicating that the battery pack is functioning normally is obtained.

[0168] In one possible implementation, processing the battery pack based on the power data to obtain the battery monitoring results of the battery pack includes:

[0169] If the power data indicates that the battery pack is operating in an unhealthy state, a battery monitoring result indicating an abnormality in the battery pack is obtained.

[0170] In one possible implementation, the method further includes:

[0171] The core algorithm processing module is also used to generate an abnormal signal for the battery pack after obtaining the battery monitoring result indicating that the battery pack is abnormal.

[0172] The alarm module is used to acquire the abnormal signal sent by the core algorithm processing module and send the abnormal signal to the management platform for alarm processing.

[0173] In one possible implementation, after generating anomaly detection information, the method further includes:

[0174] Receive an unlocking command sent by a terminal device; wherein the unlocking command includes user information and user permissions;

[0175] If the unlocking command passes verification, the monitored dumb resource is unlocked.

[0176] In one possible implementation, the step of monitoring the status of the dummy resource under monitoring by means of real-time measurement data from the measuring device to obtain status monitoring results includes:

[0177] Obtain the initial pose information of the dumb resource to be monitored; wherein, the initial pose information includes initial position information and / or initial angle information;

[0178] Based on the pose change between the initial pose information and the current pose information of the dummy resource to be monitored, the state monitoring result is determined, and the real-time pose information of the dummy resource to be monitored is sent to the management platform.

[0179] The description of the processing flow of the method and the interaction flow between each step can be found in the relevant descriptions in the above system embodiments, and will not be elaborated here.

[0180] See Figure 3 The diagram shown is a schematic of a resource monitoring device in a dummy resource monitoring system provided in this embodiment of the present disclosure. The resource monitoring device includes: a core algorithm processing module, a power supply module, an alarm module, a data storage module, a measurement device control module, a pluggable interface module, and a signal measurement module. The power supply module, alarm module, data storage module, measurement device control module, pluggable interface module, and signal measurement module are all communicatively connected to the core algorithm processing module.

[0181] The core algorithm processing module is used to perform a self-check on the control code of the measuring device when it is determined, based on the data acquisition results, that the state data has not been acquired.

[0182] and / or

[0183] The core algorithm processing module is used to perform a self-check on the control code of the measuring device when it is determined, based on the data acquisition results, that there is abnormal data in the acquired status data.

[0184] The core algorithm processing module is also used for:

[0185] Obtain the control code of the measuring device;

[0186] Run the control code, and determine the code execution problem based on the execution result of the control code;

[0187] Based on the code execution issues in the control code, the control code was repaired.

[0188] A power module is used to collect power data of the battery pack in the resource monitoring device at preset time intervals; wherein the power data includes at least one of the following: voltage, current, power, and temperature.

[0189] The alarm module is used to acquire the abnormal signal or abnormal detection information sent by the core algorithm processing module, and send the abnormal signal or abnormal detection information to the management platform for alarm processing.

[0190] The data storage module is used to store anomaly detection information and anomaly information; after determining that the battery pack is in an unhealthy operating state, it stores the battery monitoring results and the power data corresponding to the battery monitoring results; it also stores the user information of the resource monitoring system and the permissions corresponding to the user information.

[0191] The measurement device control module is used to receive code acquisition commands sent by the core algorithm processing module and send control codes to the core algorithm processing module.

[0192] A pluggable interface module is used to process data collected by measuring devices inserted into resource monitoring equipment in a unified format.

[0193] The signal measurement module is used to detect the strength of communication signals between resource monitoring equipment and management platform.

[0194] Corresponding to Figure 2 In addition to the method for monitoring dummy resources, this disclosure also provides an electronic device 400, such as... Figure 4 The diagram shown is a structural schematic of an electronic device 400 provided in an embodiment of this disclosure, including:

[0195] The system includes a processor 41, a memory 42, and a bus 43. The memory 42 stores execution instructions and includes main memory 421 and external memory 422. The main memory 421, also called internal memory, temporarily stores the computational data in the processor 41, as well as data exchanged with external memory such as a hard disk. The processor 41 exchanges data with the external memory 422 through the main memory 421. When the electronic device 400 is running, the processor 41 communicates with the memory 42 through the bus 43, causing the processor 41 to execute the following instructions:

[0196] If the communication signal strength between the resource monitoring device and the management platform meets the communication requirements, the data acquisition results of the measuring device collecting status data of the dummy resource to be monitored are obtained; wherein, the status data includes at least one of the following: location information, tilt angle, and settlement information;

[0197] If the status data is determined to have been collected based on the data acquisition results, the status of the dummy resource to be monitored is monitored by the real-time measurement data of the dummy resource to be monitored through the measuring device.

[0198] If an anomaly is detected in the monitored dummy resource, an anomaly detection information is generated and sent to the management platform.

[0199] This disclosure also provides a computer-readable storage medium storing a computer program, which, when executed by a processor, performs the steps of the dummy resource monitoring method described in the above-described method embodiments. The storage medium may be a volatile or non-volatile computer-readable storage medium.

[0200] This disclosure also provides a computer program product carrying program code. The program code includes instructions that can be used to execute the steps of the dummy resource monitoring method described in the above method embodiments. For details, please refer to the above method embodiments, which will not be repeated here.

[0201] The aforementioned computer program product can be implemented through hardware, software, or a combination thereof. In one optional embodiment, the computer program product is specifically embodied in a computer storage medium; in another optional embodiment, the computer program product is specifically embodied in a software product, such as a software development kit (SDK), etc.

[0202] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working processes of the systems and devices described above can be referred to the corresponding processes in the foregoing method embodiments, and will not be repeated here. In the several embodiments provided in this disclosure, it should be understood that the disclosed systems, devices, and methods can be implemented in other ways. The device embodiments described above are merely illustrative. For example, the division of units is only a logical functional division; in actual implementation, there may be other division methods. Furthermore, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Another point is that the displayed or discussed mutual coupling or direct coupling or communication connection may be through some communication interfaces; the indirect coupling or communication connection of devices or units may be electrical, mechanical, or other forms.

[0203] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0204] In addition, the functional units in the various embodiments of this disclosure can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.

[0205] If the aforementioned functions are implemented as software functional units and sold or used as independent products, they can be stored in a processor-executable, non-volatile, computer-readable storage medium. Based on this understanding, the technical solution of this disclosure, in essence, or the part that contributes to the prior art, or a portion of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this disclosure. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0206] Finally, it should be noted that the above-described embodiments are merely specific implementations of this disclosure, used to illustrate the technical solutions of this disclosure, and not to limit it. The protection scope of this disclosure is not limited thereto. Although this disclosure has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that any person skilled in the art can still modify or easily conceive of changes to the technical solutions described in the foregoing embodiments, or make equivalent substitutions for some of the technical features, within the scope of the technology disclosed in this disclosure. Such modifications, changes, or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this disclosure, and should all be covered within the protection scope of this disclosure. Therefore, the protection scope of this disclosure should be determined by the protection scope of the claims.

Claims

1. A monitoring system for dummy resources, characterized in that, include: A resource monitoring device and management platform for monitoring dumb resources; wherein the resource monitoring device and the management platform are communicatively connected, and the resource monitoring device is provided with at least one open pluggable interface, the pluggable interface being used to connect a measuring device, the measuring device including but not limited to a sensor, a camera, and a laser displacement meter; The resource monitoring device is used to acquire data acquisition results of the status data collection of the dummy resource to be monitored by the measuring device, provided that the communication signal strength between the resource monitoring device and the management platform meets the communication requirements; wherein the status data includes at least one of the following: location information, tilt angle, and settlement information; if the status data is determined to have been collected based on the data acquisition results, the status of the dummy resource to be monitored is monitored by the real-time measurement data of the dummy resource to be monitored through the measuring device to obtain status monitoring results; and if the status monitoring results determine that the dummy resource to be monitored has an anomaly, an anomaly detection information is generated. The management platform is used to acquire and display the anomaly detection information; The resource monitoring equipment includes a core algorithm processing module; The core algorithm processing module is used to perform a self-check on the control code of the measuring device when it is determined, based on the data acquisition results, that the state data has not been acquired. and / or The core algorithm processing module is used to perform a self-check on the control code of the measuring device when it is determined, based on the data acquisition results, that there is abnormal data in the acquired state data. The core algorithm processing module is also used for: Obtain the control code of the measuring device; Run the control code, and determine the code execution problem based on the execution result of the control code; Based on the code execution issues in the control code, the control code was repaired.

2. The system according to claim 1, characterized in that, The resource monitoring equipment includes a power module and a core algorithm processing module: The power module is used to collect power data of the battery pack in the resource monitoring device at preset time intervals; wherein the power data includes at least one of the following: voltage, current, power, and temperature; The core algorithm processing module is used to process the battery pack based on the power data to obtain the battery monitoring results of the battery pack.

3. The system according to claim 2, characterized in that, The core algorithm processing module is also used for: If the battery pack is determined to be in a healthy operating state based on the power data, a battery monitoring result indicating that the battery pack is functioning normally is obtained.

4. The system according to claim 3, characterized in that, The core algorithm processing module is also used for: If the power data indicates that the battery pack is operating in an unhealthy state, a battery monitoring result indicating an abnormality in the battery pack is obtained.

5. The system according to claim 4, characterized in that, The resource monitoring equipment includes an alarm module; The core algorithm processing module is also used to generate an abnormal signal for the battery pack after obtaining the battery monitoring result indicating that the battery pack is abnormal. The alarm module is used to acquire the abnormal signal sent by the core algorithm processing module and send the abnormal signal to the management platform for alarm processing.

6. The system according to claim 1, characterized in that, The resource monitoring equipment includes a core algorithm processing module; The core algorithm processing module is used to receive an unlocking command sent by the terminal device after the management platform obtains and displays the anomaly detection information; wherein, the unlocking command includes user information and user permissions; If the unlocking command passes verification, the monitored dumb resource is unlocked.

7. The system according to claim 1, characterized in that, The resource monitoring equipment includes a core algorithm processing module; The core algorithm processing module is used to obtain the initial pose information of the dummy resource to be monitored; wherein, the initial pose information includes initial position information and / or initial angle information; Based on the pose change between the initial pose information and the current pose information of the dummy resource to be monitored, the state monitoring result is determined, and the real-time pose information of the dummy resource to be monitored is sent to the management platform.

8. A method for monitoring dummy resources, characterized in that, The resource monitoring device applied to any one of claims 1 to 7 comprises: Under the condition that the communication signal strength between the resource monitoring equipment and the management platform meets the communication requirements, the data acquisition results of the measuring device collecting status data of the dummy resource to be monitored are obtained; wherein, the status data includes at least one of the following: location information, tilt angle, and settlement information; If the status data is determined to have been collected based on the data acquisition results, the status of the dummy resource to be monitored is monitored by the real-time measurement data of the dummy resource to be monitored through the measuring device. If an anomaly is detected in the monitored dummy resource, an anomaly detection information is generated and sent to the management platform.

9. The method according to claim 8, characterized in that, After acquiring the data acquisition results of the measuring device's status data acquisition of the dummy resource to be monitored, the method further includes: If, based on the data acquisition results, it is determined that the status data has not been acquired, the control code of the measuring device is self-tested; and / or If, based on the data acquisition results, it is determined that there is abnormal data in the acquired status data, the control code of the measuring device is self-checked.

10. The method according to claim 9, characterized in that, The self-test of the control code for the measuring device includes: Obtain the control code of the measuring device; Run the control code, and determine the code execution problem based on the execution result of the control code; Based on the code execution issues in the control code, the control code was repaired.

11. The method according to claim 8, characterized in that, The method further includes: The power data of the battery pack in the resource monitoring device is collected at preset time intervals; wherein the power data includes at least one of the following: voltage, current, power, and temperature; The battery pack is processed based on the power data to obtain the battery monitoring results of the battery pack.

12. The method according to claim 11, characterized in that, The process of processing the battery pack based on the power data to obtain the battery monitoring results of the battery pack includes: If the battery pack is determined to be in a healthy operating state based on the power data, a battery monitoring result indicating that the battery pack is functioning normally is obtained.

13. The method according to claim 12, characterized in that, The process of processing the battery pack based on the power data to obtain the battery monitoring results of the battery pack includes: If the power data indicates that the battery pack is operating in an unhealthy state, a battery monitoring result indicating an abnormality in the battery pack is obtained.

14. The method according to claim 13, characterized in that, The method further includes: After obtaining the battery monitoring results indicating an anomaly in the battery pack, an anomaly signal for the battery pack is generated. The abnormal signal sent by the core algorithm processing module is obtained, and the abnormal signal is sent to the management platform for alarm processing.

15. The method according to claim 8, characterized in that, After generating anomaly detection information, the method further includes: Receive an unlocking command sent by a terminal device; wherein the unlocking command includes user information and user permissions; If the unlocking command passes verification, the monitored dumb resource is unlocked.

16. The method according to claim 8, characterized in that, The process of monitoring the status of the dummy resource by using the real-time measurement data from the measuring device to obtain status monitoring results includes: Obtain the initial pose information of the dumb resource to be monitored; wherein, the initial pose information includes initial position information and / or initial angle information; Based on the pose change between the initial pose information and the current pose information of the dummy resource to be monitored, the state monitoring result is determined, and the real-time pose information of the dummy resource to be monitored is sent to the management platform.

17. An electronic device, characterized in that, include: The device includes a processor, a memory, and a bus. The memory stores machine-readable instructions executable by the processor. When the electronic device is running, the processor communicates with the memory via the bus. When the machine-readable instructions are executed by the processor, they perform the steps of the monitoring method for dumb resources as described in any one of claims 8 to 16.

18. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that, when executed by a processor, performs the steps of the method for monitoring dummy resources as described in any one of claims 8 to 16.

19. A computer program product, characterized in that, The computer program product is stored in a storage medium, and the program product is executed by at least one processor to implement the steps of the monitoring method for dummy resources as described in any one of claims 8 to 16.

Citation Information

Patent Citations

  • Open pluggable patch board

    CN104159148A

  • Big data intelligent analysis system and application method thereof

    CN105160160A

  • Dummy resource monitoring method and device, electronic equipment and computer readable storage medium

    CN113542048A

  • Intelligent monitoring method and system for settlement of modular movable structural body

    CN116772791A