Aging status signal detection method, device, terminal equipment and storage medium
By acquiring and edge detecting aging status signals in real time, the system solves the detection requirements for different DUTs in aging equipment testing, realizes efficient and accurate aging status judgment, and is suitable for aging status signal detection of various DUTs.
Patent Information
- Application Number
- CN202411457689.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-18
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2044-10-18
AI Technical Summary
The existing technology for aging equipment testing requires developing different test procedures for different customers' DUTs, resulting in high costs and low efficiency.
By acquiring the aging status signal of the device under test in real time, performing edge detection according to the detection cycle, and saving the detection results within a preset time, it is determined whether there is a signal jump, adapting to the detection needs of different DUTs.
It realizes universal detection of different DUTs, saves time and labor costs, and improves test efficiency and accuracy.
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Figure CN119416019B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of signal detection technology, and in particular to a method, apparatus, terminal device, and storage medium for detecting an aging state signal. Background Art
[0002] During the testing process in the aging equipment, the test program will determine whether the DUT aging test is completed based on the jump of the status signal fed back by the test DUT. Different customers' DUTs may have different testing requirements. During the project development process, if there is a customer DUT, a program must be developed, which greatly increases costs and reduces test efficiency. Summary of the Invention
[0003] In view of this, the embodiments of the present application provide an aging status signal detection method, apparatus, terminal device, and storage medium, which can effectively solve the problem of determining the aging status of different DUTs.
[0004] In a first aspect, an embodiment of the present application provides a method for detecting an aging status signal, comprising:
[0005] According to the detection cycle, the aging status signal of the device under test is obtained in real time;
[0006] Perform edge detection on the aging status signal within a preset time period and save the detection result;
[0007] According to the detection result, it is determined whether there is a signal jump in the aging status signal within the preset time period.
[0008] In one embodiment, performing edge detection on the aging status signal within a preset time period and saving the detection result includes:
[0009] When the aging status signal is acquired for the first time, performing a logical OR operation on the aging status signal and 0 to obtain first data, and performing a logical AND operation on the aging status signal and 1 to obtain second data;
[0010] Whenever a new aging status signal is obtained, performing an OR operation on the new aging status signal and the first data to obtain updated first data, and performing an AND operation on the new aging status signal and the second data to obtain updated second data;
[0011] The operation of obtaining a new aging status signal is repeatedly performed until a preset time period is reached, and the latest first data and second data are saved as the detection result.
[0012] In one embodiment, determining, based on the detection result, whether there is a signal jump in the aging status signal within the preset time period includes:
[0013] When the first data and the second data in the detection result are both 1 or both 0, it is determined that the aging status signal does not have a jump; otherwise, a jump exists.
[0014] In one embodiment, the method further comprises:
[0015] Determining a detection period for the aging status signal according to a configured monitoring accuracy;
[0016] The duration of each round of aging status signal detection is determined based on the configured detection time.
[0017] In one embodiment, after the test results are saved, the method further includes:
[0018] Repeat the step of acquiring the aging status signal of the device under test in real time according to the detection cycle, and proceed to the next round of detection, wherein the duration of the next round of detection is the preset duration;
[0019] The detection result after the current round of detection replaces the detection result of the previous round and is stored in the register.
[0020] In one embodiment, each time a new aging status signal is obtained, the method further includes:
[0021] Aging status signal is stored in binary historical data;
[0022] Whenever the latest aging status signal is obtained, the historical data is shifted by one bit to the high bit, and then the latest aging status signal is written into the low bit of the historical data;
[0023] When the next round of detection is performed, the historical data is cleared.
[0024] In one embodiment, saving the latest first data and second data as the detection result includes:
[0025] Concatenate the first data and the second data to obtain a two-bit detection result, wherein the first data is in the low bit and the second data is in the high bit;
[0026] The detection result is stored in a register.
[0027] In a second aspect, an embodiment of the present application further provides an aging status signal detection device, comprising:
[0028] The reading module is used to obtain the aging status signal of the device under test in real time according to the detection cycle;
[0029] A detection module, configured to perform edge detection on the aging status signal within a preset time period and save the detection result;
[0030] The analyzing module is used to determine whether there is a signal jump in the aging status signal within the preset time period according to the detection result.
[0031] In a third aspect, an embodiment of the present application further provides a terminal device, comprising a processor and a memory, wherein the memory stores a computer program, and the processor is configured to execute the computer program to implement the aging status signal detection method.
[0032] In a fourth aspect, an embodiment of the present application further provides a computer-readable storage medium storing a computer program, which implements the aging status signal detection method when executed on a processor.
[0033] The embodiments of the present application have the following beneficial effects:
[0034] When performing aging tests on the device under test, you only need to set the detection cycle and detection duration, and detect the aging status information in rounds to determine whether the aging status signal has jumped within the preset time. This judgment method is not limited by the device under test and has good versatility and scope of application, thereby saving time and labor costs. This solution can provide accurate detection results of the aging status in a shorter time, speed up the testing process, and improve overall work efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0035] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without paying any creative work.
[0036] Figure 1 A schematic flow chart of a method for detecting an aging status signal according to an embodiment of the present application is shown;
[0037] Figure 2 A schematic diagram of an aging status signal processing flow in an embodiment of the present application is shown;
[0038] Figure 3 A flowchart of an aging status signal detection method according to an embodiment of the present application is shown;
[0039] Figure 4 A schematic structural diagram of an aging status signal detection device according to an embodiment of the present application is shown. DETAILED DESCRIPTION
[0040] The technical solutions in the embodiments of the present application will be described clearly and completely below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments.
[0041] The components of the embodiments of the present application generally described and illustrated in the drawings herein may be arranged and designed in a variety of different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the claimed application, but rather merely represents selected embodiments of the present application. All other embodiments obtained by those skilled in the art based on the embodiments of the present application without creative effort are within the scope of protection of the present application.
[0042] Hereinafter, the terms "including", "having" and their cognates used in various embodiments of the present application are intended only to indicate specific features, numbers, steps, operations, elements, components or combinations of the aforementioned items, and should not be understood as excluding the existence of one or more other features, numbers, steps, operations, elements, components or combinations of the aforementioned items or adding the possibility of one or more features, numbers, steps, operations, elements, components or combinations of the aforementioned items. In addition, the terms "first", "second", "third" and the like are only used to distinguish descriptions and should not be understood as indicating or implying relative importance.
[0043] Unless otherwise defined, all terms used herein (including technical and scientific terms) have the same meaning as commonly understood by those skilled in the art to which the various embodiments of the present application belong. The terms (such as those defined in generally used dictionaries) will be interpreted as having the same meaning as in the context of the relevant technical field and will not be interpreted as having an idealized meaning or an overly formal meaning unless clearly defined in the various embodiments of the present application.
[0044] This application is applied to the scenario of testing aging equipment and performing aging detection on aging equipment. For each different DUT (device under test), this application will periodically perform edge detection on the aging status signal of the device under test according to the preset duration and sampling accuracy, so as to determine whether there is a signal jump within the preset duration, so as to determine whether the device under test has completed the aging test based on whether a signal jump occurs.
[0045] Next, the technical solution of this application is described with specific embodiments.
[0046] Example 1
[0047] Figure 1 A flow chart of an aging status signal detection method according to an embodiment of the present application is shown. Exemplarily, the aging status signal detection method includes the following steps:
[0048] Step S100: acquiring an aging status signal of the device under test in real time according to a detection cycle.
[0049] The device under test is a device that needs to undergo aging testing, such as various chips and other computing components or units.
[0050] The aging status signal is a status signal related to the aging status of the device under test. The aging status signal is a level signal, which is either a high level or a low level, where a high level is recorded as 1 and a low level is recorded as 0.
[0051] The detection cycle is a preset short time, for example, 0.5 milliseconds, which means that the aging status signal will be obtained in sequence every 0.5 milliseconds.
[0052] In this embodiment, a computer device equipped with an FPGA (programmable gate array) can be used as a detection device to detect the aging status information of the device under test, wherein the device under test can be connected to the computer device serving as the detection device through a serial port to obtain an aging status signal.
[0053] Step S200: performing edge detection on the aging status signal within a preset time period and saving the detection result.
[0054] The preset duration is the duration set for a round of testing and can be set in advance before the test.
[0055] For example, the preset time length can be 10 seconds, which means that the edge detection of the aging status signal of the device under test is performed in a cycle of 10 seconds. During this period, the aging status signal of the device under test is continuously collected for 10 seconds, and the corresponding edge detection operation is performed. Finally, a detection result is obtained. The detection result represents the detection result of the edge detection within these 10 seconds, which is used to indicate whether there is a signal jump condition within these 10 seconds.
[0056] The above detection period and preset duration are parameters configured at the beginning and will not change during the subsequent detection process.
[0057] Specifically, the edge detection process of this embodiment is as follows: Figure 2 As shown, including:
[0058] Step S210 , when the aging status signal is acquired for the first time, performing a logical OR operation on the aging status signal and 0 to obtain first data, and performing a logical AND operation on the aging status signal and 1 to obtain second data.
[0059] In each round of edge detection, an aging status signal is obtained for the first time. This is the first aging status signal, and its processing is different from that of subsequent aging status signals.
[0060] The aging status signal and 0 are logically ORed to obtain first data, and the aging status signal and 1 are logically ANDed to obtain second data.
[0061] For example, if the first aging status signal is high level, 1, then the first data is 1 and the second data is also 1. If the first aging status signal is low level, 0, then the first data is 0 and the second data is also 0.
[0062] At this time, the first data and the second data are two state data. For the convenience of storage, the two data can be spliced and saved. For example, the first data is placed in the low position and the second data is placed in the high position to form a 2-bit signal data.
[0063] It can be understood that when the first aging status signal is at a low level, the signal data is 00, and if it is at a high level, the signal data is 11.
[0064] Step S220: Whenever a new aging status signal is obtained, the new aging status signal and the first data are ORed to obtain updated first data, and the new aging status signal and the second data are ANDed to obtain updated second data.
[0065] The operation of step S100 is then repeated to obtain multiple new aging status signals. Each time a new aging status signal is obtained, a logical OR calculation is performed on the first data and a logical AND calculation is performed on the second data, and then the first data and the second data are updated.
[0066] A specific example of the change in aging status signal data is shown in the following table:
[0067] Aging status signal Second data First Data 1 1 1 1 1 1 0 0 1 1 0 1
[0068] The first row of data is the aging status signal obtained for the first time in the current detection round. The table shows the changes in the first data and the second data caused by four signal acquisitions when the first acquired aging status signal is high.
[0069] Correspondingly, when the aging status signal collected for the first time is low, the corresponding data changes are shown in the following table:
[0070] Aging status signal Second data First Data 0 0 0 0 0 0 1 0 1 0 0 1
[0071] Combining the first two rows of the two tables, it can be seen that if the subsequent aging status signal is the same as the initial aging status signal, the first data and the second data will not change. When an electrical frequency jump occurs, the first data and the second data will both change, and no matter how the level changes thereafter, they will not change. It can be seen that this change rule means that the signal data composed of the first data and the second data can be used to indicate whether a level jump occurs within the preset time length.
[0072] Step S230 , repeatedly performing the operation of obtaining a new aging status signal each time until a preset time period is reached, and saving the latest first data and second data as a detection result.
[0073] Repeat the operation of step S220 to update the first data and the second data in real time. When the preset time is reached, it means that the current detection round time has expired and the current round of detection is completed. At this time, the signal data composed of the latest first data and second data is the detection result.
[0074] The test results will be saved for easy inspection.
[0075] It is understandable that in order to determine whether the device under test has completed aging, the above test requires multiple rounds of testing to determine. Therefore, after completing a round of testing and saving the test results, the next round of testing will be started immediately, that is, the operation of step S100 will be re-executed.
[0076] When a new round of testing is completed, the newly obtained test results will replace the originally saved test results, and the test results will be updated. In this way, when it is necessary to determine whether there is a signal jump based on the test results, the latest test results can be obtained.
[0077] In an optional embodiment, each time a new aging status signal is obtained, the obtained aging status signal can also be stored in a two-bit historical data; when the latest aging status signal is obtained, the historical data is shifted to the high bit, and then the latest aging status signal is stored in the low bit of the historical data; when the next round of detection is performed, the historical data is cleared.
[0078] For example, in the initial state, the historical data is 00. Then, if an aging status signal is detected as 1, the historical data becomes 01. Then, if another aging status signal is detected as 1, 01 is shifted one bit to the high bit to become 10. Then, the new aging status signal is stored in the low bit, and the historical data becomes 11. Similarly, every time a new aging status signal is detected, it can be stored in this way. In this way, the stored aging status signal can also reflect whether there is a jump and retain the characteristics of high and low level signals.
[0079] It's understandable that the two bits of historical data here record the aging status signal itself, not the processed first and second data. Therefore, the high-order bit in these two bits of historical data represents the aging status signal from the previous moment, while the low-order bit represents the latest aging status signal at the current moment. This historical data is used to store the latest aging status signal. This data also allows for easy identification of signal changes at the current moment. For example, 11 indicates that the signal was high between two acquisition points; 10 indicates that the signal experienced a high-to-low level transition between two acquisition points and is currently low; 01 indicates that the signal experienced a low-to-high level transition between two acquisition points and is currently high; and 00 indicates that the signal was low between two acquisition points. By monitoring 10 and 01, it's possible to determine how many level transitions occurred within a given monitoring cycle. This facilitates data collection for some test items and allows for more detailed monitoring.
[0080] Step S300: Determine whether there is a signal jump in the aging status signal within the preset time period according to the detection result.
[0081] The signal change patterns shown in the two tables above indicate that when a signal transition occurs, the values of the first and second data become 1 and 0, respectively. These values remain unchanged regardless of whether the aging status signal is high or low. Therefore, when the first and second data are unequal, it indicates that the aging status signal of the device under test has transitioned.
[0082] When the first data and the second data are both 1 or both 0, it means that no signal jump has occurred within the preset time length. It can be known that if both data are 1, it means that the aging status signal has been at a high level within the preset time length. If both data are 0, the aging status signal has been at a low level.
[0083] In one scenario, when the device under test starts the aging test, the detected aging status signal will be in a steady state of high or low level. As the test continues, when the signal jumps, it can be determined that the aging test of the device under test is completed.
[0084] In another scenario, the aging status signal collected from the device under test is a pulse signal. This signal will stabilize at a constant level only after the aging test of the device under test is completed. Therefore, the completion of the aging test of the device under test can be determined by whether there is a signal jump. In other words, if a signal jump is found, it can be determined that the aging test of the device under test has not been completed. If the signal is found to be stable, it can be assumed that the aging test is likely completed, allowing further judgment.
[0085] The above two scenarios arise due to different devices under test and customer needs, and the conditions for ultimately judging whether the aging test of the device under test is completed are therefore different. However, it can be understood that the detection results in the aging status signal detection method of this embodiment can indicate whether the signal is stable or changing within a certain period of time. Therefore, regardless of whether the final judgment condition is level stability or level jump, the method of this embodiment can perform adaptive processing.
[0086] Among them, because different devices under test have different configurations and requirements, whether the aging test is completed needs to be determined in combination with specific device data, such as customer needs and device parameters.
[0087] In addition, the aging status signal may not have a signal jump in the current round, but a signal jump may occur in the next detection round. Therefore, a detection condition can be set for whether the level is stable. For example, if the detection results of several consecutive rounds are the same stable signal, it is determined that the aging status signal is stable, and then the aging test is performed to determine whether it is completed.
[0088] The detection result is the concatenation of the first and second data. The first data can be in the low bit and the second data in the high bit, or vice versa. When the first data is in the low bit and the second data is in the high bit, a detection result of 01 indicates a signal transition. When the first data is in the high bit and the second data is in the low bit, a detection result of 10 indicates a signal transition.
[0089] In general, the aging status signal detection process of this embodiment is as follows: Figure 3 As shown, the parameters are configured at the beginning to determine the detection cycle and the duration of each round of detection. Then, based on these two data, periodic signal detection is performed and the detection results are output. Multiple rounds of detection will be repeated before the current device detection is completed. After the current device detection is completed, it will stop completely. When a new device detection is performed, the above operation will be repeated. It can be seen that no matter what kind of device is being tested, it is suitable for Figure 3 The cycle process shown.
[0090] The aging status signal detection method of this embodiment performs logical calculations on the aging status signal to obtain two calculation data. Based on the two data, it is determined whether there is a signal jump within a preset time period, thereby assisting in determining whether the aging test of the device under test has been completed. During the test process, the test results and the aging status signals collected for the two most recent times are also recorded. When determining whether there is a jump signal based on the test results, the actual state of the current aging status signal can also be determined, thereby ensuring the comprehensiveness of the test results and facilitating aging testing directly based on the aging status signal. At the same time, the method of this embodiment has a wide range of applications, thus saving time and labor costs, providing an efficient, reliable, and economical solution for aging testing, and significantly improving the efficiency and quality of testing.
[0091] Example 2
[0092] like Figure 4 As shown, the embodiment of the present application further provides an aging status signal detection device, which includes:
[0093] The reading module 10 is used to obtain the aging status signal of the device under test in real time according to the detection cycle;
[0094] The detection module 20 is used to perform edge detection on the aging status signal within a preset time period and save the detection result;
[0095] The analyzing module 30 is configured to determine, based on the detection result, whether there is a signal jump in the aging status signal within the preset time period.
[0096] An embodiment of the present application further provides a terminal device, which includes a processor and a memory, wherein the memory stores a computer program, and the processor is configured to execute the computer program to implement the aging status signal detection method.
[0097] The terminal device can be a terminal device such as a computer or terminal equipped with FPGA (programmable array logic) or other chips with computing functions, which can be used to perform the above-mentioned aging status signal detection method to obtain and detect the aging status signal of the device under test.
[0098] An embodiment of the present application further provides a computer-readable storage medium storing a computer program. When the computer program is executed on a processor, the aging status signal detection method is implemented.
[0099] It can be understood that the apparatus of this embodiment corresponds to the method of the above embodiment, and the options in the above embodiment are also applicable to this embodiment, so they will not be described again here.
[0100] Among them, the processor can be an integrated circuit chip with signal processing capabilities. The processor can be a general-purpose processor, including a central processing unit (CPU), a graphics processing unit (GPU) and a network processor (NP), a digital signal processor (DSP), an application-specific integrated circuit (ASIC), a field programmable gate array (FPGA) or at least one of other programmable logic devices, discrete gate or transistor logic devices, and discrete hardware components. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor, etc., which can implement or execute the disclosed methods, steps and logic block diagrams in the embodiments of the present application.
[0101] The memory may be, but is not limited to, a random access memory (RAM), a read-only memory (ROM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), an electrically erasable programmable read-only memory (EEPROM), etc. The memory is used to store a computer program, and the processor may execute the computer program accordingly after receiving an execution instruction.
[0102] The present application also provides a computer-readable storage medium for storing the computer program used in the terminal device. For example, the computer-readable storage medium may include, but is not limited to, various media capable of storing program code, such as a USB flash drive, a mobile hard drive, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.
[0103] In the several embodiments provided in this application, it should be understood that the disclosed devices and methods can also be implemented in other ways. The device embodiments described above are merely schematic. For example, the flowcharts and structure diagrams in the accompanying drawings show the possible architectures, functions and operations of the devices, methods and computer program products according to the multiple embodiments of the present application. In this regard, each box in the flowchart or block diagram can represent a module, a program segment or a part of the code, and the module, program segment or a part of the code contains one or more executable instructions for implementing the specified logical functions. It should also be noted that in an alternative implementation, the functions marked in the box can also occur in an order different from that marked in the accompanying drawings. For example, two consecutive boxes can actually be executed substantially in parallel, and they can sometimes be executed in the opposite order, depending on the functions involved. It should also be noted that each box in the structure diagram and / or flowchart, and the combination of boxes in the structure diagram and / or flowchart, can be implemented using a dedicated hardware-based system that performs the specified function or action, or can be implemented using a combination of dedicated hardware and computer instructions.
[0104] In addition, the functional modules or units in the various embodiments of the present application can be integrated together to form an independent part, or each module can exist independently, or two or more modules can be integrated to form an independent part.
[0105] If the functions are implemented in the form of software function modules and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application, or the part that contributes to the prior art, or part of the technical solution, can be embodied in the form of a software product, which is stored in a storage medium and includes several instructions for enabling a computer device (which can be a smart phone, personal computer, server, or network device, etc.) to execute all or part of the steps of the method described in each embodiment of the present application.
[0106] The above is only a specific implementation method of the present application, but the scope of protection of the present application is not limited thereto. Any technician familiar with this technical field can easily think of changes or replacements within the technical scope disclosed in this application, which should be covered by the scope of protection of the present application.
Claims
1. A method for detecting an aging status signal, characterized in that: include: According to the detection cycle, the aging status signal of the device under test is obtained in real time; Perform edge detection on the aging status signal within a preset time period and save the detection result; Determining, based on the detection result, whether there is a signal jump in the aging status signal within the preset time period; The performing edge detection on the aging status signal within a preset time period and saving the detection result includes: When the aging status signal is acquired for the first time, performing a logical OR operation on the aging status signal and 0 to obtain first data, and performing a logical AND operation on the aging status signal and 1 to obtain second data; Whenever a new aging status signal is obtained, performing an OR operation on the new aging status signal and the first data to obtain updated first data, and performing an AND operation on the new aging status signal and the second data to obtain updated second data; The operation of obtaining a new aging status signal is repeatedly performed until a preset time period is reached, and the latest first data and second data are saved as the detection result.
2. The aging status signal detection method according to claim 1, characterized in that: The determining, based on the detection result, whether there is a signal jump in the aging status signal within the preset time period includes: When the first data and the second data in the detection result are both 1 or both 0, it is determined that the aging status signal does not have a jump; otherwise, a jump exists.
3. The aging status signal detection method according to claim 1, characterized in that: Also includes: Determining a detection period for the aging status signal according to a configured monitoring accuracy; The duration of each round of aging status signal detection is determined based on the configured detection time.
4. The aging status signal detection method according to claim 1, characterized in that: After the test results are saved, the method further includes: Repeat the step of acquiring the aging status signal of the device under test in real time according to the detection cycle, and proceed to the next round of detection, wherein the duration of the next round of detection is the preset duration; The detection result after the current round of detection replaces the detection result of the previous round and is stored in the register.
5. The aging status signal detection method according to claim 1, characterized in that: Each time a new aging status signal is obtained, the method further includes: Aging status signal is stored in binary historical data; Whenever the latest aging status signal is obtained, the historical data is shifted by one bit to the high bit, and then the latest aging status signal is written into the low bit of the historical data; When the next round of detection is performed, the historical data is cleared.
6. The aging status signal detection method according to claim 1, characterized in that: The storing of the latest first data and second data as the detection result includes: Concatenate the first data and the second data to obtain a two-bit detection result, wherein the first data is in the low bit and the second data is in the high bit; The detection result is stored in a register.
7. An aging status signal detection device, characterized in that: include: The reading module is used to obtain the aging status signal of the device under test in real time according to the detection cycle; A detection module, configured to perform edge detection on the aging status signal within a preset time period and save the detection result; An analysis module, configured to determine whether there is a signal jump in the aging status signal within the preset time period according to the detection result; The performing edge detection on the aging status signal within a preset time period and saving the detection result includes: When the aging status signal is acquired for the first time, performing a logical OR operation on the aging status signal and 0 to obtain first data, and performing a logical AND operation on the aging status signal and 1 to obtain second data; Whenever a new aging status signal is obtained, performing an OR operation on the new aging status signal and the first data to obtain updated first data, and performing an AND operation on the new aging status signal and the second data to obtain updated second data; The operation of obtaining a new aging status signal is repeatedly performed until a preset time period is reached, and the latest first data and second data are saved as the detection result.
8. A terminal device, characterized in that: The terminal device includes a processor and a memory, the memory stores a computer program, and the processor is configured to execute the computer program to implement the aging status signal detection method according to any one of claims 1 to 6.
9. A computer-readable storage medium, characterized in that The device stores a computer program, which, when executed on a processor, implements the aging status signal detection method according to any one of claims 1 to 6.