Detection method and device of MIC bus equipment, equipment and medium
Through the control center analyzing the detection instructions, simulating the actual environment for MIC bus equipment detection, solving the detection problems in the existing technology, realizing accurate evaluation of equipment performance and rapid fault positioning, and improving the effectiveness of detection and the operational reliability of equipment.
Patent Information
- Application Number
- CN202510708149.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-29
- Publication Date
- 2025-08-12
AI Technical Summary
The existing technology is difficult to meet the complex detection needs of MIC bus equipment, and the lack of unified detection standards leads to difficulties in positioning equipment failures and affects the operational reliability and maintenance efficiency of equipment.
It provides a detection method of MIC bus equipment, which receives and analyzes detection instructions through the control center, controls power power supply and bus communication modules, simulates the actual working environment, acquires and analyzes electrical parameters in real time, and performs visual display.
Accurate detection of MIC bus devices is realized, and the targetedness and effectiveness of detection is improved. It can evaluate performance and fault diagnosis in close to real scenarios, and supports equipment quality determination and optimization improvement.
Smart Images

Figure CN120469875A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of device detection, and in particular to a method, apparatus, device and medium for detecting MIC bus devices. Background Art
[0002] In today's era of rapid technological advancement, certain types of equipment play a vital role in various fields. As a key component of this equipment, the stability of the functionality and performance of MIC bus devices directly impacts the operational effectiveness and reliability of the entire equipment. However, testing the functionality and performance of MIC bus devices in certain types of equipment currently faces severe challenges.
[0003] On the one hand, traditional testing methods and technologies struggle to meet the increasingly complex testing requirements of MIC bus devices. MIC bus devices feature sophisticated internal structures and high levels of integration, involving multiple communication protocols and complex circuit systems. Existing general-purpose testing instruments are unable to precisely adapt to these unique testing requirements. They exhibit significant limitations when testing key communication performance indicators such as communication latency and packet loss rate, as well as when accurately measuring the power of 55 channels. Consequently, they are unable to provide comprehensive, accurate, and reliable test data.
[0004] Furthermore, the lack of relevant testing standards and specifications has resulted in a lack of unified guidance and constraints for MIC bus equipment testing. MIC bus equipment from different manufacturers and batches exhibits certain differences in performance parameters. However, the lack of targeted testing standards makes it difficult to determine whether equipment performance meets standards during actual testing. This not only impacts equipment quality control but also poses potential risks to the overall performance and safety of certain equipment.
[0005] More significantly, functional and performance testing of MIC bus devices on certain types of equipment remains a niche area. In real-world scenarios, when MIC bus devices malfunction or performance degradation occurs, maintenance personnel lack effective testing tools and methods, making it difficult to quickly and accurately locate the root cause. This results in lengthy and costly repairs, severely impacting the equipment's normal use and maintenance efficiency.
[0006] Therefore, it is urgent to propose a detection method for MIC bus equipment to solve the technical problem that the function and performance detection of a certain type of MIC bus equipment is still blank. Summary of the Invention
[0007] In order to overcome the problems existing in the related art, the present disclosure provides a detection method, apparatus, device and medium for MIC bus equipment to solve the technical problem that the function and performance detection of a certain type of MIC bus equipment in the related art is still blank.
[0008] One or more embodiments of this specification provide a method for detecting a MIC bus device, including a control center, a power supply, power parameters, a bus communication module, and a MIC bus device, including the following steps:
[0009] The control center receives and analyzes the detection instructions and obtains the analysis results;
[0010] According to the analysis result, controlling the power supply to provide power input to the MIC bus device;
[0011] According to the analysis result, a control instruction is sent to the MIC bus device through the bus communication module to open the channel corresponding to the MIC bus device;
[0012] Sending a communication instruction to the power parameter according to the analysis result, and configuring the electrical parameters corresponding to the device under test in the power parameter;
[0013] The power parameters and output electrical parameters of multiple channels are acquired in real time, performance data are calculated and analyzed according to the electrical parameters, and the output electrical parameters and performance data are stored and visualized.
[0014] Preferably, the method further comprises the following steps:
[0015] The power supply uses a programmable power supply to dynamically adjust electrical parameters to simulate different working conditions, providing accurate and stable power output for multiple channels;
[0016] The power parameters are used to simulate the load conditions of multiple channels through an electronic load meter or a resistive load to test the performance of the device under test under different load conditions.
[0017] Preferably, the method further comprises the following steps:
[0018] The control center monitors the operating status of the power parameters in real time and issues an alarm in time if an abnormality is found.
[0019] Preferably, the method further comprises the following steps:
[0020] The control center sends a test instruction to the MIC bus device through the bus communication module and receives feedback data, and detects the communication network performance index according to the feedback data.
[0021] One or more embodiments of this specification provide a detection device for a MIC bus device, including a control center, a power supply, power parameters, a bus communication module, and a MIC bus device, wherein the control center exchanges data with the MIC bus device through the bus communication module and communicates with the power parameters through RS485 communication, and the power supply is electrically connected to the MIC bus device;
[0022] The control center is used to receive and analyze the detection instructions to obtain the analysis results;
[0023] The power supply is used to provide power input to the MIC bus device according to the analysis result;
[0024] The bus communication module is used to send a control instruction to the MIC bus device according to the analysis result, and open the channel corresponding to the MIC bus device;
[0025] The power parameters are used to receive the communication instructions sent according to the analysis results to configure the electrical parameters corresponding to the device under test;
[0026] The control center is further used to obtain the power parameters and output electrical parameters of multiple channels in real time, calculate and analyze performance data based on the electrical parameters, store the output electrical parameters and the performance data, and perform visual display.
[0027] Preferably, the power supply is further configured to provide multi-channel power output, and a programmable power supply is used to simulate different working conditions by dynamically adjusting electrical parameters;
[0028] The power parameters are further configured to simulate the load conditions of multiple channels through an electronic load meter or a resistive load to test the performance of the device under test under different load conditions.
[0029] Preferably, the control center is further configured to monitor the operating status of the power parameters in real time and issue an alarm in a timely manner if an abnormality is found.
[0030] Preferably, the control center is further configured to send a test instruction to the MIC bus device through the bus communication module and receive feedback data, and detect the network performance index of the communication according to the feedback data.
[0031] One or more embodiments of this specification provide a computer device, including a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the above-mentioned MIC bus device detection method is implemented.
[0032] One or more embodiments of this specification provide a computer-readable storage medium storing a computer program. When the computer program is executed by a processor, the steps of the above-mentioned method for detecting a MIC bus device are implemented.
[0033] The present disclosure provides a detection method, apparatus, equipment and medium for MIC bus equipment, which has the advantages of receiving and parsing detection instructions through a control center to obtain parsing results, ensuring that subsequent operations can accurately connect to different test scenarios, providing a basis for the correct implementation of the entire detection process, and ensuring that the detection system can adapt to diverse MIC bus equipment and detection tasks; according to the parsing results, controlling the power supply to provide power input to the MIC bus equipment, which can create a power supply condition that is highly consistent with the actual working environment for the MIC bus equipment, and through stable and flexibly adjustable power output, ensuring the stable operation of the MIC bus equipment under simulated working conditions, helping to accurately evaluate its performance under different power supply states; according to the parsing results, sending control instructions to the MIC bus equipment through the bus communication module, opening the corresponding channel of the MIC bus equipment, and realizing precise control of the specified channel of the MIC bus equipment, which can not only verify the reliability of the communication link, but also provide a basis for subsequent specific It paves the way for channel performance testing and improves the pertinence and effectiveness of testing work; sends communication instructions to power parameters according to the analysis results, configures the electrical parameters corresponding to the device under test in the power parameters, can simulate a variety of complex load conditions, and enables the MIC bus device to be tested in a close to real usage scenario, so as to comprehensively and deeply evaluate its load adaptability and performance stability; obtains the power parameters and output electrical parameters of multiple channels in real time, calculates and analyzes performance data according to the electrical parameters, stores the output electrical parameters and the performance data and performs visual display, and builds a complete chain from data acquisition, processing, storage to presentation. The electrical parameters collected in real time are converted into data that intuitively reflects the performance of the MIC bus device through calculation and analysis. The storage operation facilitates backtracking and comparison, and the visual display presents complex data in an easy-to-understand form, which is convenient for testing personnel to quickly grasp the performance status of the equipment and provide strong support for equipment quality judgment, fault diagnosis and optimization and improvement. BRIEF DESCRIPTION OF THE DRAWINGS
[0034] In order to more clearly illustrate one or more embodiments of this specification or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments recorded in this specification. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0035] Figure 1 A flowchart of a method for detecting a MIC bus device according to one or more embodiments of this specification;
[0036] Figure 2 Provided for one or more embodiments of this specification;
[0037] Figure 3A schematic diagram of the structure of a detection device for a MIC bus device provided in one or more embodiments of this specification;
[0038] Figure 4 A schematic diagram of the structure of a computer device provided in one or more embodiments of this specification. DETAILED DESCRIPTION
[0039] In order to enable those skilled in the art to better understand the technical solutions in one or more embodiments of this specification, the technical solutions in one or more embodiments of this specification will be clearly and completely described below in conjunction with the drawings in one or more embodiments of this specification. Obviously, the described embodiments are only part of the embodiments of this specification, not all of the embodiments. Based on one or more embodiments of this specification, all other embodiments obtained by ordinary technicians in this field without making creative efforts should fall within the scope of protection of this invention document.
[0040] The present invention will be described in detail below with reference to specific implementation methods and the accompanying drawings.
[0041] Method Example
[0042] According to an embodiment of the present invention, a method for detecting a MIC bus device is provided, such as Figure 1 FIG. 1 is a flow chart of a method for detecting a MIC bus device provided in this embodiment. The method for detecting a MIC bus device according to an embodiment of the present invention includes a control center, a power supply, power parameters, a bus communication module, and a MIC bus device, and includes the following steps:
[0043] S110 , the control center receives and analyzes the detection instruction sent by the interactive interface to obtain an analysis result. The detection instruction includes information such as the MIC bus device type, the configured current value, and the number of channels.
[0044] like Figure 2As shown, the detection flow chart provided in this embodiment, as the "brain" of the entire detection instrument system, the control center plays a key role in coordinating the work of each module. It executes the established test process, processes various types of data and makes decisions based on the processing results. Usually, high-performance embedded processors are selected, such as the ARM Cortex series products, which have powerful computing capabilities and rich interface resources and can efficiently handle complex tasks; FPGA (field programmable gate array) can flexibly customize hardware logic according to specific test requirements to achieve high-speed processing of specific functions; DSP (digital signal processor) has excellent performance in data processing, especially signal processing, and is suitable for scenarios with high requirements for data processing speed. Industrial computers can also be used, which have a stable operating environment and strong compatibility, and can run more complex operating systems and applications. The interactive interface and the control center use RS232 communication for communication.
[0045] S120. Based on the analysis results, control the power supply to provide power input to the MIC bus device to simulate the power supply conditions in the actual working environment. When different working voltage conditions need to be simulated, the control core will send corresponding control signals to the power supply according to the settings of the test process, so that it outputs a voltage value that meets the requirements.
[0046] S130: Based on the analysis results, a control instruction is sent to the MIC bus device via the bus communication module, opening the corresponding channel of the MIC bus device. The bus communication module is responsible for exchanging data with the communication interface of the device under test and detecting the stability and correctness of the communication. The control center controls the bus communication module to accurately transmit and receive data. For example, when communicating with a MIC bus device using the CAN bus, the control core will send instructions to the bus communication module in an orderly manner according to the communication protocol, ensuring that data is accurately transmitted to the device under test and that feedback data is received in a timely manner.
[0047] S140: Based on the analysis results, a communication instruction is sent to the power parameter. The electrical parameters corresponding to the device under test are configured in the power parameter. By setting different load conditions, the performance of the MIC bus device under test is tested under various load conditions, thereby comprehensively evaluating the performance and reliability of the device. For multiple channels, such as 55 channels, corresponding load conditions are simulated. The power parameter parameters are precisely set according to the design load requirements of each channel of the MIC bus device, so that each channel can be tested under a load environment close to actual operating conditions.
[0048] S150 , acquiring the power parameters and output electrical parameters of multiple channels in real time, calculating and analyzing performance data according to the electrical parameters, storing the output electrical parameters and the performance data, and visually displaying them.
[0049] Specifically, the control center cyclically sends voltage reading instructions to the power parameters at intervals of 1 second to complete the voltage reading of the power parameter input terminal. Based on the read voltage value, it determines whether the power channel of the MIC bus device can output the corresponding power. Through a multi-channel data acquisition system (DAQ) or power analyzer, the voltage, current, power and other parameters of each channel are monitored in real time to ensure that the power output and load status of each channel meet the design requirements. The power fluctuation, stability and other indicators of each channel are analyzed, and a test report is generated to provide fault diagnosis information. To fully ensure the safety and reliability of the testing equipment, the control center and the power supply and power parameters adopt separate power supply methods, and the power supply and power parameters use professional equipment provided by well-known manufacturers.
[0050] The system also includes a software system responsible for controlling hardware resources, executing test processes, and processing test data. This system is typically implemented using host computer software or embedded software, supporting both automated and manual testing. The software system configures test parameters (such as power supply voltage, load size, and communication protocol). It executes automated test processes, displays test results in real time, and generates test reports. Test data is stored in a database or file system and provided with data analysis software to help users evaluate the performance of the device under test. Data visualization tools are provided to generate charts and reports, such as power versus time curves and communication latency bar charts, providing users with an intuitive understanding of device performance. Detailed reports are generated based on the data analysis results, covering the evaluation of various performance indicators and comparisons with standard values. Historical data query and comparative analysis are supported, allowing users to review device test results over different periods of time. Comparative analysis of test data from different periods of time can identify performance trends, identify potential issues, and provide a basis for decision-making regarding equipment maintenance and upgrades.
[0051] The method provided in this embodiment receives and analyzes the detection instructions through the control center to obtain the analysis results, ensuring that subsequent operations can accurately connect to different test scenarios, providing a basis for the correct implementation of the entire detection process, and ensuring that the detection system can adapt to diverse MIC bus devices and detection tasks; according to the analysis results, the power supply is controlled to provide power input to the MIC bus device, which can create a power supply condition that is highly consistent with the actual working environment for the MIC bus device, and through stable and flexibly adjustable power output, it ensures that the MIC bus device operates stably under simulated working conditions, helping to accurately evaluate its performance under different power states; according to the analysis results, a control instruction is sent to the MIC bus device through the bus communication module to open the corresponding channel of the MIC bus device, thereby realizing precise control of the specified channel of the MIC bus device, which can not only verify the reliability of the communication link, but also pave the way for subsequent performance testing of specific channels. Improve the pertinence and effectiveness of detection work; send communication instructions to power parameters according to the analysis results, configure the electrical parameters corresponding to the tested equipment in the power parameters, be able to simulate a variety of complex load conditions, and enable the MIC bus equipment to be tested in a close to real usage scenario, so as to comprehensively and deeply evaluate its load adaptability and performance stability; obtain the power parameters and output electrical parameters of multiple channels in real time, calculate and analyze performance data according to the electrical parameters, store the output electrical parameters and the performance data and perform visual display, and by building a complete chain from data collection, processing, storage to presentation, the electrical parameters collected in real time are converted into data that intuitively reflects the performance of the MIC bus equipment through calculation and analysis, the storage operation facilitates backtracking and comparison, and the visual display presents complex data in an easy-to-understand form, which is convenient for detection personnel to quickly grasp the performance status of the equipment, and provide strong support for equipment quality judgment, fault diagnosis and optimization and improvement.
[0052] In one embodiment, the following steps are further included:
[0053] The power supply provides a stable power input for the device under test, and uses a programmable power supply (such as a DC power supply or an AC power supply) to dynamically adjust electrical parameters (voltage, current, and other parameters) according to test requirements to simulate different working conditions, providing accurate and stable power output for multiple channels, and having overvoltage and overcurrent protection functions to ensure test safety.
[0054] The power parameters can simulate actual loads and simulate the load conditions of multiple channels through electronic load meters or resistive loads. The size and changes of the load can be accurately controlled to test the performance of the device under different load conditions. It supports multiple load modes such as constant current, constant voltage, and constant power, and monitors the load status in real time to ensure the accuracy of the test.
[0055] The method provided in this embodiment uses a programmable power supply to dynamically adjust electrical parameters through the power supply, which can simulate diverse working conditions and provide accurate and stable power output for multiple channels, ensuring that each channel operates reliably under preset conditions; the power parameters simulate different load conditions of multiple channels (such as constant current and constant voltage modes) through an electronic load meter or a resistive load, thereby realizing performance testing of the device under test in multiple load scenarios. The combination of the two comprehensively covers power and load conditions, improving the authenticity and accuracy of detection and the ability to evaluate the actual operating status of the device.
[0056] In one embodiment, the following steps are further included:
[0057] The control center monitors the operating status of the power parameters in real time, issues an alarm in time when an anomaly is found, and records fault information for subsequent analysis. The safety of equipment and personnel during the test is ensured through dual protection mechanisms of hardware and software, such as overvoltage protection, overcurrent protection, and temperature monitoring.
[0058] In one embodiment, the following steps are further included:
[0059] The control center sends a test instruction to the MIC bus device through the bus communication module and receives feedback data, and detects the communication network performance index according to the feedback data.
[0060] Among them, the bus communication module is responsible for data interaction with the communication interface of the device under test and detecting the stability and correctness of the communication. It can select the corresponding communication module according to the bus type of the device under test (such as CAN, RS485, Ethernet, etc.), and establish a reliable bus communication connection with the MIC bus device under test based on the selected communication module. During the connection process, initialization settings are performed according to the corresponding bus protocol, including the configuration of parameters such as baud rate, data bits, and check bits, to achieve bus communication with the device under test. By sending carefully designed test instructions to the MIC bus device, receiving feedback data returned by the device, recording the time interval between sending instructions and receiving feedback data, and calculating the communication delay; counting the number of data packets lost during the transmission of a certain amount of data, thereby deriving the packet loss rate, receiving feedback data, and detecting indicators such as communication delay and packet loss rate.
[0061] Device embodiment
[0062] According to an embodiment of the present invention, a detection device for a MIC bus device is provided, such as Figure 3 As shown, it is a structural diagram of the detection device of the MIC bus device provided in this embodiment. The detection device of the MIC bus device according to the embodiment of the present invention includes a control center 31, a power supply 32, a bus communication module 33, a power parameter 34 and a MIC bus device 35.
[0063] The control center 31 exchanges data with the MIC bus device 35 through the bus communication module 33 , communicates with the power parameter 34 through RS485 communication, and the power supply 32 is electrically connected to the MIC bus device 35 .
[0064] The control center 31 is used to receive and analyze the detection instructions to obtain analysis results.
[0065] The power supply 32 is used to provide power input to the MIC bus device 35 according to the analysis result.
[0066] The bus communication module 33 is configured to send a control instruction to the MIC bus device 35 according to the analysis result, and open a channel corresponding to the MIC bus device 35 .
[0067] The power parameters 34 are used to receive the communication instructions sent according to the analysis results to configure the electrical parameters corresponding to the device under test.
[0068] The control center 31 is further configured to obtain the power parameters 34 and output electrical parameters of multiple channels in real time, calculate and analyze performance data based on the electrical parameters, store the output electrical parameters and the performance data, and perform visual display.
[0069] The device provided in this embodiment receives and analyzes the detection instructions through the control center 31 to obtain the analysis results, ensuring that subsequent operations can accurately connect to different test scenarios, providing a basis for the correct implementation of the entire detection process, and ensuring that the detection system can adapt to diverse MIC bus devices and detection tasks; the power supply 32 controls the power supply to provide power input to the MIC bus device according to the analysis results, and can create a power supply condition that is highly consistent with the actual working environment for the MIC bus device. Through stable and flexibly adjustable power output, it ensures that the MIC bus device operates stably under simulated working conditions, and helps to accurately evaluate its performance under different power states; the bus communication module 33 sends a control instruction to the MIC bus device through the bus communication module 33 according to the analysis results, opens the channel corresponding to the MIC bus device, and realizes precise control of the specified channel of the MIC bus device, which not only verifies the reliability of the communication link, but also paves the way for subsequent performance testing of specific channels. Improve the pertinence and effectiveness of the detection work; the power parameter 34 sends a communication instruction to the power parameter 34 according to the analysis result, and configures the electrical parameters corresponding to the device under test in the power parameter 34, which can simulate a variety of complex load conditions, so that the MIC bus device can be tested in a scenario close to the actual use, thereby comprehensively and deeply evaluating its load adaptability and performance stability; the control center 31 obtains the power parameter 34 and the output electrical parameters of multiple channels in real time, calculates and analyzes the performance data according to the electrical parameters, stores the output electrical parameters and the performance data and performs visual display. By building a complete chain from data acquisition, processing, storage to presentation, the electrical parameters collected in real time are converted into data that intuitively reflects the performance of the MIC bus device through calculation and analysis. The storage operation facilitates backtracking and comparison, and the visual display presents complex data in an easy-to-understand form, which is convenient for detection personnel to quickly grasp the performance status of the equipment, and provides strong support for equipment quality judgment, fault diagnosis and optimization and improvement.
[0070] In one embodiment, the power supply 32 is further configured to provide multi-channel power output, and a programmable power supply is used to simulate different working conditions by dynamically adjusting electrical parameters.
[0071] The power parameters are further configured to simulate the load conditions of multiple channels through an electronic load meter or a resistive load to test the performance of the device under test under different load conditions.
[0072] The device provided in this embodiment uses a programmable power supply to dynamically adjust electrical parameters through the power supply, can simulate diverse working conditions and provide accurate and stable power output for multiple channels, ensuring that each channel operates reliably under preset conditions; the power parameters simulate different load conditions of multiple channels (such as constant current and constant voltage modes) through an electronic load meter or a resistive load, realizing performance testing of the device under test in multiple load scenarios. The combination of the two comprehensively covers power and load conditions, improving the authenticity and accuracy of detection and the ability to evaluate the actual operating status of the device.
[0073] In one embodiment, the control center is further configured to monitor the operating status of the power parameters in real time and issue an alarm in a timely manner if an abnormality is found.
[0074] The device provided in this embodiment can detect abnormalities in a timely manner and issue an alarm to ensure the safety of equipment and personnel during the test process.
[0075] In one embodiment, the control center is further configured to send a test instruction to the MIC bus device through the bus communication module and receive feedback data, and detect the network performance index of the communication according to the feedback data.
[0076] The device provided in this embodiment can accurately detect network performance indicators such as communication delay and packet loss rate, and comprehensively evaluate the reliability, real-time performance and data transmission integrity of device communication; it can promptly locate communication faults and distinguish types (such as network congestion, interference or equipment processing capacity issues), facilitating rapid troubleshooting and repair; and provide data support for communication protocol adjustments and data transmission method optimization.
[0077] The embodiment of the present invention is an apparatus embodiment corresponding to the above-mentioned method embodiment. The specific operations of the processing steps of each module can be understood by referring to the description of the method embodiment, and will not be repeated here.
[0078] like Figure 4 As shown, the present invention also provides a computer-readable storage medium having a computer program stored thereon, which implements the detection method of the MIC bus device in the above embodiment when the computer program is executed by a processor, or implements the detection method of the MIC bus device in the above embodiment when the computer program is executed by a processor.
[0079] Those skilled in the art will appreciate that all or part of the processes in the above-mentioned embodiments can be implemented by instructing the relevant hardware through a computer program. The computer program can be stored in a non-volatile computer-readable storage medium. When the computer program is executed, it can include the processes of the embodiments of the above-mentioned methods. Among them, any reference to memory, storage, database or other media used in the embodiments provided in this application can include non-volatile and / or volatile memory. Non-volatile memory can include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM) or flash memory. Volatile memory can include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM is available in various forms, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDRSDRAM), enhanced SDRAM (ESDRAM), synchronous link (Synchlink) DRAM (SLDRAM), memory bus (Rambus) direct RAM (RDRAM), direct memory bus dynamic RAM (DRDRAM), and memory bus dynamic RAM (RDRAM).
[0080] Each embodiment in this specification is described in a progressive manner. The same or similar parts between the embodiments can be referred to each other. Each embodiment focuses on the differences from other embodiments. In particular, for the device or system embodiments, since they are basically similar to the method embodiments, the description is relatively simple. For the relevant parts, refer to the partial description of the method embodiments. The device and system embodiments described above are merely schematic, wherein the units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place, or they may be distributed on multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the scheme of this embodiment. A person of ordinary skill in the art can understand and implement it without making any creative efforts.
[0081] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the above embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the above embodiments, or make equivalent replacements for some or all of the technical features therein. These modifications or replacements do not deviate from the essence of the corresponding technical solutions within the scope of the technical solutions of the embodiments of the present invention, and the contents not described in detail in the specification of the present invention belong to the common knowledge of those skilled in the art.
Claims
1. A method for detecting a MIC bus device, characterized in that: The system includes a control center, a power supply, a bus communication module, power parameters and MIC bus equipment, and includes the following steps: The control center receives and analyzes the detection instructions and obtains the analysis results; According to the analysis result, controlling the power supply to provide power input to the MIC bus device; According to the analysis result, a control instruction is sent to the MIC bus device through the bus communication module to open the channel corresponding to the MIC bus device; Sending a communication instruction to the power parameter according to the analysis result, and configuring the electrical parameters corresponding to the device under test in the power parameter; The power parameters and output electrical parameters of multiple channels are acquired in real time, performance data are calculated and analyzed according to the electrical parameters, and the output electrical parameters and performance data are stored and visualized.
2. The method for detecting a MIC bus device according to claim 1, wherein: The following steps are also included: The power supply uses a programmable power supply to dynamically adjust electrical parameters to simulate different working conditions, providing accurate and stable power output for multiple channels; The power parameters are used to simulate the load conditions of multiple channels through an electronic load meter or a resistive load to test the performance of the device under test under different load conditions.
3. The method for detecting a MIC bus device according to claim 1, wherein: The following steps are also included: The control center monitors the operating status of the power parameters in real time and issues an alarm in time if an abnormality is found.
4. The method for detecting a MIC bus device according to claim 1, wherein: The following steps are also included: The control center sends a test instruction to the MIC bus device through the bus communication module and receives feedback data, and detects the communication network performance index according to the feedback data.
5. A detection device for a MIC bus device, characterized in that: It includes a control center, a power supply, a bus communication module, power parameters and a MIC bus device. The control center exchanges data with the MIC bus device through the bus communication module and communicates with the power parameters through RS485 communication. The power supply is electrically connected to the MIC bus device. The control center is used to receive and analyze the detection instructions to obtain the analysis results; The power supply is used to provide power input to the MIC bus device according to the analysis result; The bus communication module is used to send a control instruction to the MIC bus device according to the analysis result, and open the channel corresponding to the MIC bus device; The power parameters are used to receive the communication instructions sent according to the analysis results to configure the electrical parameters corresponding to the device under test; The control center is further used to obtain the power parameters and output electrical parameters of multiple channels in real time, calculate and analyze performance data based on the electrical parameters, store the output electrical parameters and the performance data, and perform visual display.
6. The detection device for MIC bus equipment according to claim 5, characterized in that: The power supply is further configured to provide multi-channel power output, using a programmable power supply to simulate different working conditions by dynamically adjusting electrical parameters; The power parameters are further configured to simulate the load conditions of multiple channels through an electronic load meter or a resistive load to test the performance of the device under test under different load conditions.
7. The detection device for MIC bus equipment according to claim 5, characterized in that: The control center is also configured to monitor the operating status of the power parameters in real time and issue an alarm in a timely manner if an abnormality is found.
8. The detection device for MIC bus equipment according to claim 5, characterized in that: The control center is further configured to send a test instruction to the MIC bus device through the bus communication module and receive feedback data, and detect the network performance index of the communication according to the feedback data.
9. A computer device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein: When the processor executes the computer program, the method for detecting a MIC bus device according to any one of claims 1 to 4 is implemented.
10. A computer-readable storage medium storing a computer program, characterized in that: When the computer program is executed by a processor, the steps of the method for detecting a MIC bus device according to any one of claims 1 to 4 are implemented.