A health-care remote controller testing method, device and electronic equipment

By setting up a test fixture and a capacitive touch sensor on the health and wellness remote control, the touch function is automatically evaluated, solving the problem of low efficiency of manual operation in existing technologies, and realizing efficient and accurate touch function detection and fault discovery.

CN119469851BActive Publication Date: 2025-11-18WUXI WEIDA INTELLIGENT ELECTRONICS CO LTD
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Patent Information

Application Number
CN202411609318.X
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-12
Publication Date
2025-11-18
Estimated Expiration
2044-11-12

AI Technical Summary

Technical Problem

Existing testing methods for health and wellness remote controls rely on manual finger operation, which is inefficient and subjective, making it difficult to efficiently and accurately evaluate touch functionality.

Method used

By setting a test fixture on the outside of the health and wellness remote control and cooperating with the built-in capacitive touch sensor, touch actions are simulated and physiological parameter data is obtained. The normality of the touch function is automatically judged by using preset physiological parameter ranges and communication protocols.

Benefits of technology

This improves the efficiency and accuracy of testing the touch function of health and wellness remote controls, reduces the subjectivity and instability of manual testing, and enables automated, quantitative detection and data transmission, allowing for timely detection of hardware faults.

✦ Generated by Eureka AI based on patent content.

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Abstract

A kind of health and wellness remote control test method, device and electronic equipment, it is related to data processing field.In the method, whether there is simulation touch action is detected by touch sensor array built-in health and wellness remote control, the touch sensor is capacitive touch sensor;If it is determined that the simulation touch action exists, the physiological parameter data corresponding to the simulation touch action is obtained;Determine whether the physiological parameter data is within the preset physiological parameter range;If it is determined that the physiological parameter data is within the preset physiological parameter range, it is determined that the touch function of the health and wellness remote control is normal;If it is determined that the physiological parameter data is not within the preset physiological parameter range, it is determined that the touch function of the health and wellness remote control is abnormal.Implementation of the technical solution provided in the present application reduces the time of manual operation by simulation touch action, improves test efficiency.
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Description

Technical Field

[0001] This application relates to the field of data processing, specifically to a testing method, device, and electronic device for a health and wellness remote control. Background Technology

[0002] With advancements in technology and an accelerating aging population, health monitoring devices are increasingly becoming commonplace in households. As a new type of home appliance, the health and wellness remote control uses integrated sensors to monitor the pulse waves of the user's fingertips, thereby providing real-time monitoring of physiological parameters such as blood oxygenation and heart rate. This device not only provides real-time health data feedback but can also integrate with other smart home systems, enhancing the convenience and security of home life. A core component of this remote control is its touch module, which uses built-in sensors to capture data related to physiological signals, such as pulse waveforms, allowing for health monitoring while operating the remote.

[0003] Currently, the main testing method for health and wellness remote controls is manual finger testing, which then displays the actual heart rate and blood oxygen data collected. Manual finger operation is cumbersome and time-consuming, thus resulting in low efficiency.

[0004] Therefore, there is an urgent need for a testing method, device, and electronic equipment for health and wellness remote controls. Summary of the Invention

[0005] This application provides a testing method, device, and electronic device for a health and wellness remote control, which reduces the time required for manual operation and improves testing efficiency by simulating touch actions.

[0006] The first aspect of this application provides a testing method for a health and wellness remote control. The method includes: detecting the presence of a simulated touch action using a built-in touch sensor array in the remote control, wherein the touch sensor is a capacitive touch sensor, a test fixture is disposed outside the health and wellness sensor, and the inner surface of the test fixture is provided with conductive copper foil corresponding to the touch sensor; the simulated touch action is triggered by the conductive copper foil; if the simulated touch action is determined to exist, physiological parameter data corresponding to the simulated touch action is acquired; it is determined whether the physiological parameter data is within a preset physiological parameter range; if the physiological parameter data is determined to be within the preset physiological parameter range, the touch function of the health and wellness remote control is determined to be normal; if the physiological parameter data is determined to be outside the preset physiological parameter range, the touch function of the health and wellness remote control is determined to be abnormal.

[0007] By adopting the above technical solution and setting a test fixture corresponding to the built-in touch sensor on the outside of the health and wellness remote control, it is possible to conveniently simulate the user's touch actions and obtain the corresponding physiological parameter data. By using the condition that the physiological parameter data is within a preset range, the normality of the touch function of the health and wellness remote control can be objectively and quantitatively determined. This automated testing method can improve the efficiency and accuracy of touch function testing, promptly identify potential problems with the touch function of mass-produced health and wellness remote controls, and reduce the subjectivity and instability of manual testing.

[0008] Optionally, the step of detecting whether a simulated touch action exists through the touch sensor built into the health and wellness sensor specifically includes: scanning the touch sensor array to obtain the capacitance value of each channel included in the touch sensor array; counting the number of target capacitance values ​​and determining whether the number is greater than or equal to a preset number threshold, wherein the target capacitance value is the capacitance value among the multiple capacitance values ​​that is greater than or equal to a preset capacitance reference value; if it is determined that the number is greater than or equal to the preset number threshold, then it is determined that the simulated touch action exists; if it is determined that the number is less than the preset number threshold, then it is determined that the simulated touch action does not exist.

[0009] By employing the above technical solution, and scanning the touch sensor array to count the number of channels exceeding a preset capacitance reference value, a quantitative determination of whether a valid touch action has occurred can be made. Setting a preset capacitance reference value can filter out environmental noise and minor interference, improving the reliability of touch action detection. Introducing a preset threshold number can avoid false judgments caused by individual channel anomalies, further improving detection accuracy. By setting the preset capacitance reference value and the preset threshold number, the sensitivity and stability of touch action detection can be flexibly adjusted in different application scenarios and testing environments, meeting the testing requirements of different models of health and wellness remote controls.

[0010] Optionally, acquiring the physiological parameter data corresponding to the simulated touch action specifically includes: establishing a communication connection between the health and wellness remote control and the pulse oximeter simulator; receiving standard pulse waveform and blood oxygen value data from the pulse oximeter simulator; and converting the standard pulse waveform and blood oxygen value data into physiological parameter data in a preset data format according to a preset communication protocol.

[0011] By adopting the above technical solution and establishing a communication connection between the health and wellness remote control and the pulse oximeter simulator, standard physiological parameter data can be acquired efficiently and accurately in a controlled testing environment. Using a preset communication protocol and data format, stable and reliable data transmission between the remote control and the simulator can be ensured, avoiding data loss or distortion. Standard pulse waveforms and blood oxygen value data can serve as a benchmark for touch function testing, verifying the remote control's ability to collect and process physiological signals in actual operation. By comparing the deviation between standard data and the remote control's measurement results, the accuracy of its physiological parameter measurements can be quantitatively evaluated, providing a basis for further optimization of measurement algorithms and hardware design. Simultaneously, automated data transmission and conversion can reduce errors and interference from manual operation, improving the repeatability and consistency of the entire testing process.

[0012] Optionally, after detecting whether a simulated touch action exists through the touch sensor array built into the health and wellness sensor, the method further includes: if the simulated touch action is not detected within a preset time, sending a touch sensor abnormality signal to the cloud server; controlling the test fixture to trigger simulated touch actions at multiple preset positions and multiple preset angles, and determining the target position and target angle, wherein the target position is the preset position corresponding to when the simulated touch action is not detected among the multiple preset positions, and the target angle is the preset angle corresponding to when the simulated touch action is not detected among the multiple preset angles.

[0013] By employing the above technical solution and setting a preset time, it is possible to determine whether the health and wellness remote control has completely lost its touch sensing capability over a prolonged period, thus promptly identifying serious hardware faults or malfunctions. Sending abnormal signals to the cloud server enables remote fault alarms and diagnosis, shortening response and handling time. Triggering simulated touch actions at multiple preset positions and angles allows for comprehensive testing of the touch sensor array's sensitivity in different areas and directions, identifying issues such as localized malfunctions or blind spots. By determining the target position and angle at which simulated touch actions were not detected, the problematic area of ​​the simulated touch function can be precisely located, providing guidance for targeted troubleshooting and repair.

[0014] Optionally, after controlling the test fixture to trigger simulated touch actions at multiple preset positions and multiple preset angles, and determining the target position and target angle, the method further includes: generating a touch blind zone distribution map based on the target position and target angle; uploading the touch blind zone distribution map to a cloud server and displaying a prompt message, the prompt message being used to prompt engineers to troubleshoot.

[0015] By adopting the above technical solution, a touch blind zone distribution map is generated, which intuitively shows the malfunctioning areas of the touch sensor array, providing engineers with a visual basis for diagnosing and troubleshooting touch function failures. By synchronizing and sharing the touch blind zone distribution map with a cloud server, centralized management and remote access to test data can be achieved, promptly prompting engineers to investigate. Touch function defects and failures can be fed back to the R&D and production stages in a timely manner, reducing delays in problem transmission and information loss.

[0016] Optionally, after determining that the physiological parameter data is within the preset physiological parameter range, and thus confirming that the touch function of the health and wellness remote control is normal, the method further includes: marking the touch function test result of the health and wellness remote control as passed, and synchronizing the touch function test result to the cloud server; performing a function test of the health and wellness remote control according to a preset test procedure, wherein the preset test procedure includes the simulated touch action and the function test, and the function test is the next test after the simulated touch action.

[0017] By adopting the above technical solution, marking the touch function test results as passed allows for recording the performance of the health and wellness remote control during the testing process, creating a complete quality traceability archive. Synchronizing the touch function test results to a cloud server enables the aggregation and analysis of test data from a large number of health and wellness remote controls, assessing the overall product quality level and stability, and providing a data foundation for quality management and continuous improvement. Automatically executing subsequent functional tests according to a preset test procedure reduces manual switching and waiting time, improving the continuity and efficiency of testing.

[0018] Optionally, if it is determined that the physiological parameter data is not within the preset physiological parameter range, and the touch function of the health and wellness remote control is determined to be abnormal, the method further includes: marking the touch function test result of the health and wellness remote control as failing, and synchronizing the touch function test result to the cloud server; terminating the preset test process.

[0019] By adopting the above technical solution, marking the touch function test results as "failed" allows for the timely detection and recording of defects in the health and wellness remote control during the pre-set testing process, triggering corresponding early warning and handling mechanisms. Synchronizing test results to the cloud server enables rapid isolation and statistical analysis of defective products, preventing them from entering subsequent stages or being sold. Timely termination of the pre-set testing process avoids continuing testing under known faults, reducing unnecessary waste of time and resources.

[0020] A second aspect of this application provides a testing device for a health and wellness remote control. The device includes a detection module, an acquisition module, a judgment module, and a determination module. The detection module is used to detect the presence of simulated touch actions via a built-in touch sensor array in the health and wellness remote control. The touch sensor is a capacitive touch sensor, and a test fixture is provided outside the health and wellness sensor. The inner surface of the test fixture is provided with conductive copper foil corresponding to the touch sensor, and the simulated touch action is triggered by the conductive copper foil. The acquisition module is used to acquire physiological parameter data corresponding to the simulated touch action if it is determined that the simulated touch action exists. The judgment module is used to determine whether the physiological parameter data is within a preset physiological parameter range. The determination module is used to determine that the touch function of the health and wellness remote control is normal if the physiological parameter data is determined to be within the preset physiological parameter range. The determination module is also used to determine that the touch function of the health and wellness remote control is abnormal if the physiological parameter data is determined to be outside the preset physiological parameter range.

[0021] A third aspect of this application provides an electronic device including a processor, a memory, a user interface, and a network interface, wherein the memory is used to store instructions, the user interface and the network interface are both used to communicate with other devices, and the processor is used to execute the instructions stored in the memory to cause the electronic device to perform the method as described in any of the foregoing.

[0022] A fourth aspect of this application provides a computer-readable storage medium storing instructions that, when executed, perform the method described in any of the preceding descriptions.

[0023] In summary, one or more technical solutions provided in the embodiments of this application have at least the following technical effects or advantages:

[0024] 1. By setting a test fixture corresponding to the built-in touch sensor on the outside of the health and wellness remote control, user touch actions can be easily simulated, and corresponding physiological parameter data can be obtained. By checking whether the physiological parameter data is within a preset range, the normality of the touch function of the health and wellness remote control can be objectively and quantitatively determined. This automated testing method can improve the efficiency and accuracy of touch function testing, promptly identify potential problems with the touch function of mass-produced health and wellness remote controls, and reduce the subjectivity and instability of manual testing.

[0025] 2. By scanning the touch sensor array and counting the number of channels with capacitance values ​​exceeding a preset reference value, a valid touch action can be quantitatively determined. Setting a preset capacitance reference value can filter out environmental noise and minor interference, improving the reliability of touch action detection. Introducing a preset threshold number can avoid false judgments caused by individual channel anomalies, further improving detection accuracy. By setting the preset capacitance reference value and preset threshold number, the sensitivity and stability of touch action detection can be flexibly adjusted in different application scenarios and testing environments to meet the testing needs of different models of health and wellness remote controls.

[0026] 3. By establishing a communication connection between the health and wellness remote control and the pulse oximeter simulator, standard physiological parameter data can be acquired efficiently and accurately in a controlled testing environment. Using preset communication protocols and data formats, stable and reliable data transmission between the remote control and the simulator can be ensured, avoiding data loss or distortion. Standard pulse waveforms and blood oxygen value data can serve as benchmarks for touch function testing, verifying the remote control's ability to collect and process physiological signals in actual operation. By comparing the deviation between standard data and the remote control's measurement results, the accuracy of its physiological parameter measurements can be quantitatively evaluated, providing a basis for further optimization of measurement algorithms and hardware design. Simultaneously, automated data transmission and conversion can reduce errors and interference from manual operation, improving the repeatability and consistency of the entire testing process. Attached Figure Description

[0027] Figure 1 This is a flowchart illustrating a testing method for a health and wellness remote control disclosed in an embodiment of this application;

[0028] Figure 2 This is a schematic diagram of a test device for a health and wellness remote control disclosed in an embodiment of this application;

[0029] Figure 3 This is a schematic diagram of the structure of an electronic device disclosed in an embodiment of this application.

[0030] Explanation of reference numerals in the attached drawings: 201, detection module; 202, acquisition module; 203, judgment module; 204, determination module; 300, electronic device; 301, processor; 302, communication bus; 303, user interface; 304, network interface; 305, memory. Detailed Implementation

[0031] To enable those skilled in the art to better understand the technical solutions in this specification, the technical solutions in the embodiments of this specification will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, and not all embodiments.

[0032] In the description of the embodiments of this application, the words "for example" or "for instance" are used to indicate examples, illustrations, or explanations. Any embodiment or design that is described as "for example" or "for instance" in the embodiments of this application should not be construed as being more preferred or advantageous than other embodiments or design options. Rather, the use of the words "for example" or "for instance" is intended to present the relevant concepts in a specific manner.

[0033] In the description of the embodiments of this application, the term "multiple" means two or more. For example, multiple systems means two or more systems, and multiple screen terminals means two or more screen terminals. Furthermore, the terms "first" and "second" are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the indicated technical features. Thus, a feature defined with "first" or "second" may explicitly or implicitly include one or more of that feature. The terms "comprising," "including," "having," and variations thereof all mean "including but not limited to," unless otherwise specifically emphasized.

[0034] This application provides a testing method for a health and wellness remote control, referring to... Figure 1 , Figure 1 This is a flowchart illustrating a testing method for a health and wellness remote control provided in an embodiment of this application. The method is applied to a server, which executes the testing program for the health and wellness remote control. The server can be a single server, a server cluster consisting of multiple servers, or a cloud computing service center. The method includes steps S101 to S105, as follows:

[0035] Step S101: Detect the presence of simulated touch action by using the touch sensor array built into the health and wellness remote control. The touch sensor is a capacitive touch sensor. A test fixture is provided on the outside of the health and wellness sensor. The inner surface of the test fixture is provided with conductive copper foil corresponding to the touch sensor. The simulated touch action is triggered by the conductive copper foil.

[0036] In step S101, the touch sensor array is scanned to obtain the capacitance value of each channel included in the touch sensor array; the number of target capacitance values ​​is counted, and it is determined whether the number is greater than or equal to a preset number threshold, wherein the target capacitance value is the capacitance value among the multiple capacitance values ​​that is greater than or equal to a preset capacitance reference value; if it is determined that the number is greater than or equal to the preset number threshold, it is determined that the simulated touch action exists; if it is determined that the number is less than the preset number threshold, it is determined that the simulated touch action does not exist.

[0037] Specifically, the server sends control commands to the test fixture, ensuring precise alignment and contact between the conductive copper foil on its inner surface and the touch sensor array of the health and wellness remote control. When the conductive copper foil contacts the touch sensor, the server initiates a scanning program, polling and scanning each channel in the touch sensor array. Upon receiving the command, the health and wellness remote control scans the touch sensor array and sends the scan results back to the server. After receiving the scan data, the server extracts the capacitance value of each touch sensor channel, forming a capacitance value array. The server iterates through the capacitance value array, counting the number of target capacitance values ​​greater than or equal to a preset capacitance reference value. The preset capacitance reference value is determined in advance based on the characteristics of the touch sensor and the test environment, representing the lower limit of the capacitance value when a touch action occurs. For example, assuming the touch sensor array contains 100 channels and the preset capacitance reference value is 100pF, the capacitance value array received by the server would be [50pF, 80pF, 120pF, 90pF, 110pF, ...]. Server statistics revealed that 20 channels had a capacitance value greater than or equal to 100pF, and these channels were considered to have triggered valid simulated touch actions.

[0038] The server compares the number of target capacitance values ​​obtained from the statistics with a preset threshold. The preset threshold represents the minimum number of channels required to trigger a valid touch action, and is determined based on the touch sensor layout and the design of the test fixture.

[0039] If the number of target capacitance values ​​is greater than or equal to a preset threshold, the server determines that a valid simulated touch action was detected in this scan. However, if the number of target capacitance values ​​is less than the preset threshold, the server considers that no touch action occurred, possibly because the test fixture did not properly press against the touch sensor, or the touch sensor itself is faulty.

[0040] In one possible implementation, after step S101, the method further includes: if the simulated touch action is not detected within a preset time, sending a touch sensor abnormality signal to a cloud server; controlling the test fixture to trigger simulated touch actions at multiple preset positions and multiple preset angles, and determining a target position and a target angle, wherein the target position is the preset position corresponding to when the simulated touch action is not detected among the multiple preset positions, and the target angle is the preset angle corresponding to when the simulated touch action is not detected among the multiple preset angles; generating a touch blind zone distribution map based on the target position and target angle; uploading the touch blind zone distribution map to a cloud server and displaying a prompt message, the prompt message being used to prompt engineers to troubleshoot.

[0041] Specifically, the server sets a preset time, such as 5 seconds. If no simulated touch action is detected within this time, it is assumed that the touch sensor array may be malfunctioning. At this point, the server sends a touch sensor malfunction signal to the cloud, indicating that further investigation may be needed. Next, the server controls the test fixture to trigger simulated touch actions at multiple preset positions and angles on the health and wellness remote control. These preset positions and angles can cover various areas of the touch sensor array to comprehensively test the sensitivity and blind spots of the touch sensors. For example, preset positions can include the four corners, center point, and edge midpoint of the touch sensor array, while preset angles can include parallel to, perpendicular to, or at 30, 45, or 60 degrees to the touch sensor array.

[0042] At each preset position and angle, the server checks whether a simulated touch action was successfully triggered. If no touch is detected at a certain position or angle, it indicates that that position or angle may be a blind spot of the touch sensor array. The server records the target positions and angles where simulated touch actions were not detected.

[0043] After completing tests at all preset positions and angles, the server generates a touch blind spot distribution map based on the recorded target position and angle. The touch blind spot distribution map can show the distribution of blind spots in the touch sensor array, for example, by marking the position and size of the blind spots with different colors or symbols.

[0044] Finally, the server uploads the generated touch blind spot distribution map to the cloud server and displays prompts locally, reminding engineers to check for touch sensor blind spot issues. Engineers can then use the distribution map to focus on checking and analyzing the corresponding hardware circuits or software algorithms, identifying the root cause of the problem, and performing targeted optimizations and fixes.

[0045] For example, suppose that in the upper left corner of a health and wellness remote control, no matter where or at what angle the test fixture triggers a simulated touch in that area, no touch event can be detected. The server will then mark the upper left corner as a significant touch blind spot on the touch blind spot distribution map. After reviewing the map, engineers can focus on checking for open circuits, short circuits, or other issues in the hardware of that area, or inspect whether the touch recognition threshold in the software algorithm is set too high. By repairing the hardware or optimizing the software parameters, this touch blind spot can be eliminated, thereby improving the overall touch sensitivity of the health and wellness remote control and providing users with a better operating experience.

[0046] Step S102: If it is determined that the simulated touch action exists, then obtain the physiological parameter data corresponding to the simulated touch action.

[0047] In step S102, acquiring the physiological parameter data corresponding to the simulated touch action specifically includes: establishing a communication connection between the health and wellness remote control and the heart rate sensor and the blood oxygen sensor; receiving heart rate data from the heart rate sensor and blood oxygen data from the blood oxygen sensor; and converting the heart rate data and the blood oxygen data into physiological parameter data in a preset data format according to a preset communication protocol.

[0048] Specifically, the server establishes communication connections between the health and wellness remote control and the heart rate and blood oxygen sensors. This connection can be wired, such as via USB or serial port, or wireless, such as via Bluetooth or Wi-Fi. Based on pre-configured communication parameters, such as port number, baud rate, and protocol type, the server proactively initiates connection requests to the heart rate and blood oxygen sensors. Once the connection is successfully established, the server can interact with the heart rate and blood oxygen sensors. After the connection is established, the server receives heart rate data from the heart rate sensor and blood oxygen data from the blood oxygen sensor.

[0049] The server receives heart rate and blood oxygen data cyclically via communication interfaces with heart rate and blood oxygen sensors, following a predetermined data format and transmission frequency. Upon receiving the standard data, the server converts it into a format that the health and wellness remote control can recognize and process, according to a preset communication protocol. This conversion process involves data parsing, scaling, and re-encoding. For example, the server converts blood oxygen saturation from a percentage format to an integer format used internally by the health and wellness remote control. The converted heart rate and blood oxygen data then become physiological parameter data that the health and wellness remote control can directly use.

[0050] Step S103: Determine whether the physiological parameter data is within the preset physiological parameter range.

[0051] In step S103, the server establishes a preset physiological parameter database. This database contains preset ranges for various physiological parameters, such as heart rate, blood oxygen saturation, and pulse amplitude. These normal ranges are typically determined based on statistical data from a large number of healthy individuals, taking into account factors such as age and gender. For example, the normal heart rate range for adults can be set to 60-100 beats per minute, and the normal blood oxygen saturation range can be set to 95%-100%.

[0052] Once the server receives the physiological parameter data measured by the health and wellness remote control, it compares this data with preset physiological parameter ranges. Specifically, the server extracts key indicators from the physiological parameter data, such as heart rate and blood oxygen levels, and then determines whether these indicators fall within the preset physiological parameter range.

[0053] Step S104: If it is determined that the physiological parameter data is within the preset physiological parameter range, then it is determined that the touch function of the health and wellness remote control is normal.

[0054] In step S104, if each of the measured physiological parameter data falls within the preset physiological parameter range, the server determines that the touch function of the health care remote control is normal.

[0055] In one possible implementation, after step S104, the method further includes: marking the touch function test result of the health and wellness remote control as passed, and synchronizing the touch function test result to a cloud server; performing a function test of the health and wellness remote control according to a preset test procedure, wherein the preset test procedure includes the simulated touch action and the function test, and the function test is the next test after the simulated touch action.

[0056] Specifically, after confirming that the touch function test of the health and wellness remote control has passed, the server updates the test status of the remote control, marking the touch function test result as passed, and generates a data packet containing complete test information (including device serial number, test time, test parameters, test data, judgment result, etc.). The server uploads this data packet to the cloud server through a secure data transmission channel. Subsequently, the server automatically loads the test parameters and execution scripts for the next function to be tested according to the pre-configured preset test procedure. For example, if the preset test procedure requires a display function test after the touch function test, the server will automatically start the display test module, control the test fixture to adjust to the position and angle required for the display test, and prepare the test patterns and parameters required for the display test.

[0057] Step S105: If it is determined that the physiological parameter data is not within the preset physiological parameter range, then it is determined that the touch function of the health and wellness remote control is abnormal.

[0058] In step S105, when the server determines that any physiological parameter data is not within the preset physiological parameter range, it will determine that the touch function of the health care remote control is abnormal.

[0059] In one possible implementation, after step S105, the method further includes: marking the touch function test result of the health and wellness remote control as failing, and synchronizing the touch function test result to the cloud server; and terminating the preset test process.

[0060] Specifically, upon confirming an anomaly in the touch function test of the health and wellness remote control, the server immediately executes the test termination and anomaly recording process. The server marks the touch function test result of the device as failing and generates a detailed report containing complete anomaly information. This report includes basic device information (such as serial number, production date, and batch number), specific anomaly parameter data, and test environment parameters (such as test time and environmental conditions). The server uploads the anomaly report to the cloud server in real time via an encrypted data transmission channel, ensuring that quality management personnel are aware of the anomaly immediately. Simultaneously, the server immediately sends stop commands to all modules of the testing system, including stopping the operation of the test fixture, shutting down the simulator's signal output, and terminating the data acquisition program, ensuring the safe shutdown of all test equipment.

[0061] Reference Figure 2 This application also provides a testing device for a health and wellness remote control. This device is a server, comprising a detection module 201, an acquisition module 202, a judgment module 203, and a determination module 204. Specifically: the detection module 201 detects the presence of simulated touch actions using a built-in touch sensor array in the health and wellness remote control. The touch sensor is a capacitive touch sensor, and a test fixture is provided outside the sensor. The inner surface of the test fixture is provided with conductive copper foil corresponding to the touch sensor, and the simulated touch action is triggered by the conductive copper foil. The acquisition module 202 acquires physiological parameter data corresponding to the simulated touch action if it is determined that such an action exists. The judgment module 203 determines whether the physiological parameter data is within a preset physiological parameter range. The determination module 204 determines that the touch function of the health and wellness remote control is normal if the physiological parameter data is within the preset physiological parameter range. The determination module 204 further determines that the touch function of the health and wellness remote control is abnormal if the physiological parameter data is not within the preset physiological parameter range.

[0062] In one possible implementation, the detection module 201 detects the presence of simulated touch actions using a touch sensor built into the health and wellness sensor. Specifically, the detection module 201 scans the touch sensor array to obtain the capacitance values ​​of each channel in the touch sensor array; the detection module 201 counts the number of target capacitance values ​​and determines whether the number is greater than or equal to a preset threshold value, wherein the target capacitance value is the capacitance value among the multiple capacitance values ​​that is greater than or equal to a preset capacitance reference value; if the detection module 201 determines that the number is greater than or equal to the preset threshold value, then it determines that the simulated touch action exists; if it determines that the number is less than the preset threshold value, then it determines that the simulated touch action does not exist.

[0063] In one possible implementation, the acquisition module 202 acquires physiological parameter data corresponding to the simulated touch action, specifically including: the acquisition module 202 establishing a communication connection between the health and wellness remote control and the heart rate sensor and the blood oxygen sensor; the acquisition module 202 receiving heart rate data from the heart rate sensor and blood oxygen data from the blood oxygen sensor; and the acquisition module 202 converting the heart rate data and the blood oxygen data into physiological parameter data in a preset data format according to a preset communication protocol.

[0064] In one possible implementation, after the determining module 204 detects whether a simulated touch action exists through the touch sensor array built into the health and wellness sensor, the method further includes: if the determining module 204 does not detect the simulated touch action within a preset time, it sends a touch sensor abnormality signal to the cloud server; the determining module 204 controls the test fixture to trigger simulated touch actions at multiple preset positions and multiple preset angles, and determines the target position and target angle, wherein the target position is the preset position corresponding to when the simulated touch action is not detected among the multiple preset positions, and the target angle is the preset angle corresponding to when the simulated touch action is not detected among the multiple preset angles.

[0065] In one possible implementation, after the determining module 204 controls the test fixture to trigger simulated touch actions at multiple preset positions and multiple preset angles, and determines the target position and target angle, the method further includes: the determining module 204 generating a touch blind zone distribution map based on the target position and target angle; the determining module 204 uploading the touch blind zone distribution map to a cloud server and displaying a prompt message, which is used to prompt engineers to troubleshoot.

[0066] In one possible implementation, if the determining module 204 determines that the physiological parameter data is within the preset physiological parameter range, and then determines that the touch function of the health and wellness remote control is normal, the method further includes: the determining module 204 marking the touch function test result of the health and wellness remote control as passed, and synchronizing the touch function test result to the cloud server; the determining module 204 performing a functional test of the health and wellness remote control according to a preset test procedure, the preset test procedure including the simulated touch action and the functional test, the functional test being the next test after the simulated touch action.

[0067] In one possible implementation, if the determining module 204 determines that the physiological parameter data is not within the preset physiological parameter range, and then determines that the touch function of the health and wellness remote control is abnormal, the method further includes: the determining module 204 marking the touch function test result of the health and wellness remote control as failing, and synchronizing the touch function test result to the cloud server; and terminating the preset test process.

[0068] It should be noted that the above embodiments of the apparatus are only illustrated by the division of the above functional modules. In practical applications, the above functions can be assigned to different functional modules as needed, that is, the internal structure of the device can be divided into different functional modules to complete all or part of the functions described above. In addition, the apparatus and method embodiments provided in the above embodiments belong to the same concept, and the specific implementation process can be found in the method embodiments, which will not be repeated here.

[0069] This application also provides an electronic device. (See reference...) Figure 3 , Figure 3 This is a schematic diagram of the structure of an electronic device provided in an embodiment of this application. The electronic device 300 may include: at least one processor 301, at least one network interface 304, a user interface 303, a memory 305, and at least one communication bus 302.

[0070] The communication bus 302 is used to enable communication between these components.

[0071] The user interface 303 may include a display screen and a camera. Optionally, the user interface 303 may also include a standard wired interface and a wireless interface.

[0072] The network interface 304 may optionally include a standard wired interface or a wireless interface (such as a Wi-Fi interface).

[0073] The processor 301 may include one or more processing cores. The processor 301 connects to various parts of the server using various interfaces and lines, and performs various server functions and processes data by running or executing instructions, programs, code sets, or instruction sets stored in memory 305, and by calling data stored in memory 305. Optionally, the processor 301 may be implemented using at least one hardware form of Digital Signal Processing (DSP), Field-Programmable Gate Array (FPGA), or Programmable Logic Array (PLA). The processor 301 may integrate one or a combination of several of the following: Central Processing Unit (CPU), Graphics Processing Unit (GPU), and modem. The CPU primarily handles the operating system, user interface, and applications; the GPU is responsible for rendering and drawing the content required for display; and the modem handles wireless communication. It is understood that the modem may also not be integrated into the processor 301 and may be implemented as a separate chip.

[0074] The memory 305 may include random access memory (RAM) or read-only memory. Optionally, the memory 305 may include a non-transitory computer-readable storage medium. The memory 305 may be used to store instructions, programs, code, code sets, or instruction sets. The memory 305 may include a program storage area and a data storage area, wherein the program storage area may store instructions for implementing an operating system, instructions for at least one function (such as touch function, sound playback function, image playback function, etc.), instructions for implementing the above-described method embodiments, etc.; the data storage area may store data involved in the above-described method embodiments, etc. Optionally, the memory 305 may also be at least one storage device located remotely from the aforementioned processor 301. (Refer to...) Figure 3 The memory 305, which serves as a computer storage medium, may include an operating system, a network communication module, a user interface module, and an application program for testing a health and wellness remote control.

[0075] exist Figure 3In the illustrated electronic device 300, the user interface 303 is mainly used to provide an input interface for the user and acquire user input data; while the processor 301 can be used to call an application program stored in the memory 305 for a test method of a health and wellness remote control. When executed by one or more processors 301, the electronic device 300 performs one or more of the methods described in the above embodiments. It should be noted that, for the foregoing method embodiments, for the sake of simplicity, they are all described as a series of actions. However, those skilled in the art should understand that this application is not limited to the described order of actions, because according to this application, some steps can be performed in other orders or simultaneously. Secondly, those skilled in the art should also understand that the embodiments described in the specification are all preferred embodiments, and the actions and modules involved are not necessarily essential to this application.

[0076] This application also provides a computer-readable storage medium storing instructions. When executed by one or more processors 301, these instructions cause an electronic device 300 to perform one or more of the methods described in the above embodiments.

[0077] In the above embodiments, the descriptions of each embodiment have different focuses. For parts not described in detail in a certain embodiment, please refer to the relevant descriptions in other embodiments.

[0078] In the various embodiments provided in this application, it should be understood that the disclosed apparatus can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some service interface; the indirect coupling or communication connection between apparatuses or units may be electrical or other forms.

[0079] 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.

[0080] Furthermore, the functional units in the various embodiments of this application 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. The integrated unit can be implemented in hardware or as a software functional unit.

[0081] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage device (CMD). Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a memory 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 of the various embodiments of this application. The aforementioned memory includes various media capable of storing program code, such as USB flash drives, portable hard drives, magnetic disks, or optical disks.

[0082] The above description is merely an exemplary embodiment of this disclosure and should not be construed as limiting the scope of this disclosure. Any equivalent changes and modifications made in accordance with the teachings of this disclosure shall still fall within the scope of this disclosure. Other embodiments of this disclosure will be readily apparent to those skilled in the art upon consideration of the specification and the disclosure of practical truths.

[0083] This application is intended to cover any variations, uses, or adaptations of this disclosure that follow the general principles of this disclosure and include common knowledge or customary techniques in the art not described in this disclosure. The specification and embodiments are to be considered exemplary only, and the scope and spirit of this disclosure are defined by the claims.

Claims

1. A testing method for a health and wellness remote control, characterized in that, The method includes: The remote control for health and wellness uses a built-in touch sensor array to detect whether there is a simulated touch action. The touch sensor is a capacitive touch sensor. A test fixture is set on the outside of the health and wellness sensor. The inner surface of the test fixture is provided with a conductive copper sheet corresponding to the touch sensor. The simulated touch action is triggered by the conductive copper sheet. If the simulated touch action is confirmed to exist, then the physiological parameter data corresponding to the simulated touch action is obtained; Determine whether the physiological parameter data is within the preset physiological parameter range; If the physiological parameter data is determined to be within the preset physiological parameter range, then the touch function of the health and wellness remote control is determined to be normal. If it is determined that the physiological parameter data is not within the preset physiological parameter range, then it is determined that the touch function of the health and wellness remote control is abnormal; After detecting the presence of simulated touch actions using the touch sensor array built into the health and wellness sensor, the method further includes: If the simulated touch action is not detected within a preset time, a touch sensor abnormality signal is sent to the cloud server. The test fixture is controlled to trigger simulated touch actions at multiple preset positions and multiple preset angles, and a target position and a target angle are determined. The target position is the preset position corresponding to when the simulated touch action is not detected among the multiple preset positions, and the target angle is the preset angle corresponding to when the simulated touch action is not detected among the multiple preset angles.

2. The method according to claim 1, characterized in that, The detection of simulated touch actions using the built-in touch sensor of the health and wellness sensor specifically includes: The touch sensor array is scanned to obtain the capacitance values ​​of each channel included in the touch sensor array; The number of target capacitance values ​​is counted, and it is determined whether the number is greater than or equal to a preset number threshold. The target capacitance value is the capacitance value among the multiple capacitance values ​​that is greater than or equal to a preset capacitance reference value. If the quantity is determined to be greater than or equal to the preset quantity threshold, then it is determined that the simulated touch action exists; If the number is determined to be less than the preset number threshold, then it is determined that the simulated touch action does not exist.

3. The method according to claim 1, characterized in that, The acquisition of physiological parameter data corresponding to the simulated touch action specifically includes: Establish communication connections between the health and wellness remote control and the heart rate and blood oxygen sensors; Heart rate data is received from the heart rate sensor, and blood oxygen data is received from the blood oxygen sensor; According to a preset communication protocol, the heart rate data and blood oxygen data are converted into physiological parameter data in a preset data format.

4. The method according to claim 1, characterized in that, After controlling the test fixture to trigger simulated touch actions at multiple preset positions and multiple preset angles, and determining the target position and target angle, the method further includes: Based on the target location and target angle, a touch blind zone distribution map is generated; The touch blind spot distribution map is uploaded to the cloud server, and a prompt message is displayed to prompt engineers to investigate.

5. The method according to claim 1, characterized in that, If the physiological parameter data is determined to be within the preset physiological parameter range, and the touch function of the health and wellness remote control is determined to be normal, the method further includes: The touch function test result of the health and wellness remote control is marked as passed, and the touch function test result is synchronized to the cloud server; According to the preset test procedure, the functional test of the health and wellness remote control is performed. The preset test procedure includes the simulated touch action and the functional test, and the functional test is the next test after the simulated touch action.

6. The method according to claim 5, characterized in that, If it is determined that the physiological parameter data is not within the preset physiological parameter range, and the touch function of the health and wellness remote control is abnormal, the method further includes: The touch function test result of the health and wellness remote control is marked as failing, and the touch function test result is synchronized to the cloud server; The preset test process is terminated.

7. A testing device for a health and wellness remote control, characterized in that, The apparatus is used to perform the method as described in any one of claims 1-6, the apparatus comprising a detection module (201), an acquisition module (202), a judgment module (203), and a determination module (204), wherein: The detection module (201) is used to detect whether there is a simulated touch action through the touch sensor array built into the health and wellness remote control. The touch sensor is a capacitive touch sensor. A test fixture is provided on the outside of the health and wellness sensor. The inner surface of the test fixture is provided with a conductive copper sheet corresponding to the touch sensor. The simulated touch action is triggered by the conductive copper sheet. The acquisition module (202) is used to acquire physiological parameter data corresponding to the simulated touch action if it is determined that the simulated touch action exists; The judgment module (203) is used to determine whether the physiological parameter data is within the preset physiological parameter range; The determining module (204) is used to determine that the touch function of the health care remote control is normal if the physiological parameter data is determined to be within the preset physiological parameter range; The determining module (204) is further configured to determine that the touch function of the health and wellness remote control is abnormal if the physiological parameter data is determined to be outside the preset physiological parameter range.

8. An electronic device, characterized in that, The device includes a processor (301), a memory (305), a user interface (303), and a network interface (304). The memory (305) is used to store instructions. The user interface (303) and the network interface (304) are used to communicate with other devices. The processor (301) is used to execute the instructions stored in the memory (305) to cause the electronic device (300) to perform the method as described in any one of claims 1-6.

9. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores instructions that, when executed, perform the method as described in any one of claims 1-6.

Citation Information

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