Electronic device and health detection method
By integrating a touch module and a health sensor module into a smart remote control, the user's health status can be detected using touch signals and light levels. This solves the problem that existing remote controls cannot provide fast and convenient health detection, and achieves efficient and low-power health detection.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-03-04
- Publication Date
- 2026-03-24
AI Technical Summary
Existing smart remote controls cannot quickly and conveniently provide health monitoring functions for elderly or sub-healthy users.
A touch module and a health sensor module are integrated into the smart remote control. The effective touch duration of the user is determined by the touch signal to control the health sensor module to perform health detection. The fit value is detected by using the light value reflected by the capillaries and the ambient light value, thus realizing health detection.
It enables rapid and convenient health detection, reduces the power consumption of electronic devices, and improves detection accuracy and user experience.
Smart Images

Figure CN114903431B_ABST
Abstract
Description
[0001] This application claims priority from the Chinese patent application No. 202110182480.8 filed on February 10, 2021, and entitled "Health detection system", the content of which is incorporated herein by reference in its entirety. TECHNICAL FIELD
[0002] Embodiments of the present application relate to detection technology. More particularly, to an electronic device and a health detection method. BACKGROUND
[0003] With the rapid development of smart TVs, smart remote controls have also rapidly popularized. The smart remote control can integrate multiple types of function modules, so as to cooperate with the smart TV and better serve the home users. For example, the smart remote control can integrate a voice recognition module, so that the user can make voice input through the smart remote control; the smart remote control can integrate a touch module, so that the user can complete handwriting input through the smart remote control.
[0004] However, since there are usually old people or sub-healthy users in the family, the existing smart remote control does not contain a health detection module, and cannot quickly and conveniently provide the old people or sub-healthy users with a health detection function. SUMMARY
[0005] The present application provides an electronic device and a health detection method to realize a health detection function.
[0006] In a first aspect, the embodiments of the present application provide an electronic device, comprising:
[0007] a touch module configured to generate a touch signal when a user touches;
[0008] a health sensing module configured to perform health detection on the user;
[0009] a controller configured to:
[0010] determine an effective touch duration of the user according to the touch signal;
[0011] send an opening signal to the health sensing module according to the effective touch duration of the user, the opening signal being used to instruct the health sensing module to start health detection.
[0012] In some embodiments of the present application, the controller is specifically configured to:
[0013] if the effective touch duration of the user is greater than or equal to a duration threshold, send the opening signal to the health sensing module.
[0014] In some embodiments of the present application, the controller is specifically configured to:
[0015] If the valid touch duration of the user is less than the duration threshold, it is determined that the touch of the user is a false touch.
[0016] In a second aspect, the embodiments of the present application provide an electronic device, comprising:
[0017] a touch module configured to generate a touch signal when a user touches;
[0018] a health sensing module configured to perform health detection on the user;
[0019] a controller configured to:
[0020] control the health sensing module to perform fit detection on the touch of the user when the touch module generates the touch signal.
[0021] In some embodiments of the present application, the controller is specifically configured to:
[0022] obtain a light value reflected by capillary vessels of the user and an ambient light value collected by the health sensing module;
[0023] perform fit detection on the touch of the user according to the light value reflected by capillary vessels of the user and the ambient light value;
[0024] if it is detected that the touch of the user is fit, send a first feedback signal to the health sensing module, the first feedback signal being used to instruct the health sensing module to continue the health detection.
[0025] In some embodiments of the present application, the controller is further configured to:
[0026] if it is detected that the touch of the user is not fit, send a second feedback signal to the health sensing module, the second feedback signal being used to instruct the health sensing module to stop the health detection.
[0027] In some embodiments of the present application, the controller is specifically configured to:
[0028] if a difference between the light value reflected by capillary vessels of the user and the ambient light value is within a first threshold range, the light value reflected by capillary vessels of the user is within a second threshold range, and the ambient light value is within a third threshold range, it is determined that the touch of the user is fit.
[0029] In some embodiments of the present application, the controller is further configured to:
[0030] if it is detected that the touch of the user is fit, send first indication information to a display device, the first indication information being used to instruct to start a health detection application in the display device.
[0031] In some embodiments of this application, the controller is further configured to:
[0032] Receive a second indication message sent by the display device, the second indication message being used to indicate that the health check is complete;
[0033] Turn off the power supply to the health sensor module;
[0034] A third instruction message is sent to the touch module, the third instruction message being used to instruct the touch module to perform a low-power scan.
[0035] Thirdly, embodiments of this application provide a health detection method, including:
[0036] Receives touch signals sent by the touch module when the user touches the screen;
[0037] The effective touch duration of the user is determined based on the touch signal;
[0038] Based on the user's effective touch duration, an activation signal is sent to the health sensing module, which instructs the health sensing module to begin health detection.
[0039] In some embodiments of this application, sending an activation signal to the health sensing module based on the user's effective touch duration includes:
[0040] If the user's effective touch duration is greater than or equal to the duration threshold, the activation signal is sent to the health sensing module.
[0041] In some embodiments of this application, sending an activation signal to the health sensing module based on the user's effective touch duration includes:
[0042] If the user's effective touch duration is less than the duration threshold, the user's touch is determined to be a false touch.
[0043] Fourthly, embodiments of this application provide a health detection method, including:
[0044] When the touch module generates a touch signal, it controls the health sensing module to detect the fit of the user's touch.
[0045] In some embodiments of this application, controlling the health sensing module to perform contact detection on the user's touch includes:
[0046] The health sensing module acquires the light intensity values reflected from the user's capillaries and the ambient light intensity values.
[0047] The user's touch is detected based on the light reflection value from the user's capillaries and the ambient light value.
[0048] If the user's touch is detected to be in contact, a first feedback signal is sent to the health sensing module. The first feedback signal is used to instruct the health sensing module to continue the health detection.
[0049] In some embodiments of this application, controlling the health sensing module to perform contact detection on the user's touch further includes:
[0050] If the user's touch is detected as not fitting properly, a second feedback signal is sent to the health sensing module. The second feedback signal is used to instruct the health sensing module to stop performing the health detection.
[0051] In some embodiments of this application, the step of detecting the user's touch based on the light intensity reflected from the user's capillaries and the ambient light intensity includes:
[0052] If the difference between the light value reflected by the user's capillaries and the ambient light value is within a first threshold range, the light value reflected by the user's capillaries is within a second threshold range, and the ambient light value is within a third threshold range, then the user's touch is determined to be in contact with the light.
[0053] In some embodiments of this application, the method further includes:
[0054] If the user's touch is detected to be in contact, a first instruction message is sent to the display device, which is used to instruct the health monitoring application in the display device to be activated.
[0055] In some embodiments of this application, the method further includes:
[0056] Receive a second indication message sent by the display device, the second indication message being used to indicate that the health check is complete;
[0057] Turn off the power supply to the health sensor module;
[0058] A third instruction message is sent to the touch module, the third instruction message being used to instruct the touch module to perform a low-power scan.
[0059] The electronic device and health detection method provided in this application include a touch module for generating a touch signal when a user touches the device; a health sensing module for performing health detection on the user; and a controller configured to: determine the effective touch duration of the user based on the touch signal; and send an enable signal to the health sensing module based on the effective touch duration, the enable signal instructing the health sensing module to begin health detection. In this way, the electronic device can begin health detection only when the touch module is triggered, reducing the power consumption of the electronic device. Attached Figure Description
[0060] To more clearly illustrate the implementation methods in the embodiments of this application or related technologies, the accompanying drawings used in the description of the embodiments or related technologies will be briefly introduced below. Obviously, the accompanying drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings.
[0061] Figure 1 This application provides a schematic diagram of an operational scenario between a display device and a control device, as illustrated in an embodiment of the present application.
[0062] Figure 2 A hardware configuration block diagram of a control device 100 provided in an embodiment of this application;
[0063] Figure 3 A hardware configuration block diagram of a display device 200 provided in an embodiment of this application;
[0064] Figure 4 A software configuration diagram of a display device 200 provided in an embodiment of this application;
[0065] Figure 5 An icon control interface display diagram of an application in a display device 200 provided in this application embodiment;
[0066] Figure 6 A system architecture diagram for health detection provided in this application embodiment;
[0067] Figures 7a-7d This is a schematic diagram of the interface of a display device provided in an embodiment of this application;
[0068] Figure 8 This is a schematic diagram of the structure of a remote control device provided in an embodiment of this application;
[0069] Figure 9 This is a schematic diagram of the structure of a health sensing module provided in an embodiment of this application;
[0070] Figure 10 This is a schematic diagram of the layout of the detection area of a remote control device provided in an embodiment of this application;
[0071] Figure 11 This is a schematic diagram of the stacked structure of a detection area provided in an embodiment of this application;
[0072] Figure 12 This is a schematic diagram of the layout of the detection area of another remote control device provided in an embodiment of this application;
[0073] Figure 13 This is a schematic diagram of the stacked structure of another detection region provided in an embodiment of this application;
[0074] Figure 14 This is a schematic diagram of the location of a detection area provided in an embodiment of this application;
[0075] Figure 15a A circuit diagram of a health sensing module provided in an embodiment of this application;
[0076] Figure 15b Circuit diagram of another health sensing module provided in the embodiments of this application
[0077] Figure 16a A circuit diagram of a controller in a health sensing module provided in an embodiment of this application;
[0078] Figure 16b A circuit diagram of a software debugging unit provided in an embodiment of this application;
[0079] Figure 16c A circuit diagram of a power supply reset unit provided in an embodiment of this application;
[0080] Figure 17 A circuit diagram of an external reference power supply in a health sensing module provided in an embodiment of this application;
[0081] Figure 18 A circuit diagram of an external communication interface in a health sensing module provided in an embodiment of this application;
[0082] Figure 19 A schematic diagram of a real-time display interface provided in an embodiment of this application;
[0083] Figures 20a-20b A schematic diagram of an interface for displaying health test results provided in an embodiment of this application;
[0084] Figure 21a A circuit diagram of a touch module provided in an embodiment of this application;
[0085] Figure 21b A circuit diagram of another touch module provided in an embodiment of this application;
[0086] Figure 22 A signaling interaction diagram of a health detection method provided in an embodiment of this application;
[0087] Figure 23 A schematic flowchart illustrating another health detection method provided in an embodiment of this application;
[0088] Figure 24 A schematic diagram of the interface of a health management application provided in an embodiment of this application;
[0089] Figure 25 A flowchart illustrating another health detection method provided in an embodiment of this application;
[0090] Figure 26 This is a signaling interaction diagram for another health detection method provided in an embodiment of this application. Detailed Implementation
[0091] To make the objectives and implementation methods of this application clearer, the exemplary implementation methods of this application will be clearly and completely described below with reference to the accompanying drawings of the exemplary embodiments of this application. Obviously, the exemplary embodiments described are only some embodiments of this application, and not all embodiments.
[0092] It should be noted that the brief descriptions of terms in this application are only for the convenience of understanding the embodiments described below, and are not intended to limit the embodiments of this application. Unless otherwise stated, these terms should be understood in their ordinary and common meaning.
[0093] The terms "first," "second," "third," etc., used in the specification, claims, and accompanying drawings of this application are used to distinguish similar or related objects or entities, and do not necessarily imply a specific order or sequence, unless otherwise specified. It should be understood that such terms are interchangeable where appropriate.
[0094] The terms “comprising” and “having”, and any variations thereof, are intended to cover but not exclude inclusion, for example, a product or device that includes a range of components is not necessarily limited to all of the components that are clearly listed, but may include other components that are not clearly listed or that are inherent to such product or device.
[0095] The term "module" refers to any known or subsequently developed hardware, software, firmware, artificial intelligence, fuzzy logic, or combination of hardware and / or software code that is capable of performing the functions associated with that element.
[0096] Figure 1 This is a schematic diagram illustrating the operational scenario between the display device and the control unit according to the embodiment. Figure 1As shown, the user can operate the display device 200 through the smart device 300 or the control device 100.
[0097] In some embodiments, the control device 100 may be a remote control. Communication between the remote control and the display device includes infrared protocol communication, Bluetooth protocol communication, and other short-range communication methods, controlling the display device 200 wirelessly or via wired means. Users can control the display device 200 by inputting user commands through buttons on the remote control, voice input, control panel input, etc.
[0098] In some embodiments, a smart device 300 (such as a mobile terminal, tablet computer, computer, laptop computer, etc.) may also be used to control the display device 200. For example, an application running on the smart device may be used to control the display device 200.
[0099] In some embodiments, the display device 200 can also be controlled in ways other than the control device 100 and the smart device 300. For example, it can be controlled by directly receiving the user's voice commands through a module configured inside the display device 200 for acquiring voice commands, or it can be controlled by receiving the user's voice commands through a voice control device set outside the display device 200.
[0100] In some embodiments, the display device 200 also communicates with the server 400. The display device 200 may communicate via a local area network (LAN), wireless local area network (WLAN), and other networks. The server 400 may provide various content and interactive features to the display device 200. The server 400 may be a cluster or multiple clusters, and may include one or more types of servers.
[0101] Figure 2 An exemplary block diagram of the configuration of the control device 100 according to an exemplary embodiment is shown. Figure 2 As shown, the control device 100 includes a controller 110, a communication interface 130, a user input / output interface 140, a memory, and a power supply. The control device 100 can receive user input operation commands and convert the operation commands into commands that the display device 200 can recognize and respond to, thus acting as an intermediary for interaction between the user and the display device 200.
[0102] Figure 3 A hardware configuration block diagram of a display device 200 according to an exemplary embodiment is shown.
[0103] In some embodiments, the display device 200 includes at least one of a tuner 210, a communicator 220, a detector 230, an external device interface 240, a controller 250, a display 260, an audio output interface 270, a memory, a power supply, and a user interface.
[0104] In some embodiments, the controller includes a processor, a video processor, an audio processor, a graphics processor, RAM, ROM, and a first interface to an nth interface for input / output.
[0105] In some embodiments, the display 260 includes a display screen component for presenting an image, a driving component for driving image display, a component for receiving image signals from the controller output, and a user control UI interface for displaying video content, image content, menu control interface, and user control UI interface.
[0106] In some embodiments, the display 260 may be a liquid crystal display, an OLED display, or a projection display, and may also be a projection device and a projection screen.
[0107] In some embodiments, the communicator 220 is a component used to communicate with external devices or servers according to various communication protocol types. For example, the communicator may include at least one of a Wi-Fi module, a Bluetooth module, a wired Ethernet module, other network communication protocol chips or near-field communication protocol chips, and an infrared receiver. The display device 200 can establish the transmission and reception of control signals and data signals with the external control device 100 or the server 400 through the communicator 220.
[0108] In some embodiments, the user interface can be used to receive control signals from the control device 100 (e.g., an infrared remote control).
[0109] In some embodiments, detector 230 is used to acquire signals from the external environment or to interact with the outside world. For example, detector 230 includes a light receiver, a sensor for acquiring ambient light intensity; or, detector 230 includes an image acquisition device, such as a camera, which can be used to acquire external environmental scenes, user attributes, or user interaction gestures; or, detector 230 includes a sound acquisition device, such as a microphone, for receiving external sounds.
[0110] In some embodiments, the external device interface 240 may include, but is not limited to, one or more interfaces such as: High Definition Multimedia Interface (HDMI), analog or data high-definition component input interface (component), composite video input interface (CVBS), USB input interface (USB), RGB port, etc. It may also be a composite input / output interface formed by multiple interfaces mentioned above.
[0111] In some embodiments, the tuner 210 receives broadcast television signals via wired or wireless reception and demodulates audio and video signals, such as EPG data signals, from a plurality of wireless or wired broadcast television signals.
[0112] In some embodiments, the controller 250 and the tuner 210 may be located in different separate devices, that is, the tuner 210 may also be located in an external device of the main device where the controller 250 is located, such as an external set-top box.
[0113] In some embodiments, the controller 250 controls the operation of the display device and responds to user operations via various software control programs stored in memory. The controller 250 controls the overall operation of the display device 200. For example, in response to receiving a user command to select a UI object to display on the display 260, the controller 250 can perform operations related to the object selected by the user command.
[0114] In some embodiments, the object can be any of the optional objects, such as a hyperlink, an icon, or other operable controls. Operations related to the selected object include: displaying links to hyperlinked pages, documents, images, etc., or performing operations corresponding to the program associated with the icon.
[0115] In some embodiments, the controller includes at least one of a central processing unit (CPU), a video processor, an audio processor, a graphics processing unit (GPU), RAM (random access memory), ROM (read-only memory), a first to an nth interface for input / output, a communication bus, etc.
[0116] A CPU (CPU) processor is used to execute operating system and application instructions stored in memory, as well as various interactive instructions received from external input, to execute various applications, data, and content, ultimately for the display and playback of various audio and video content. A CPU processor can include multiple processors, such as a main processor and one or more sub-processors.
[0117] In some embodiments, a graphics processor is used to generate various graphical objects, such as icons, operation menus, and graphics displayed based on user input commands. The graphics processor includes an arithmetic logic unit (ALU) that performs calculations based on various user-input interactive commands and displays various objects according to display attributes; it also includes a renderer that renders the various objects obtained from the ALU, and the rendered objects are used to display on a monitor.
[0118] In some embodiments, the video processor is configured to receive external video signals and perform video processing such as decompression, decoding, scaling, noise reduction, frame rate conversion, resolution conversion, and image synthesis according to the standard encoding and decoding protocol of the input signals, so as to obtain a signal that can be directly displayed or played on the display device 200.
[0119] In some embodiments, the video processor includes a demultiplexing module, a video decoding module, an image compositing module, a frame rate conversion module, and a display formatting module. The demultiplexing module demultiplexes the input audio and video data streams. The video decoding module processes the demultiplexed video signal, including decoding and scaling. The image compositing module, such as an image synthesizer, overlays and blends a GUI signal generated by a graphics generator based on user input or its own generation with the scaled video image to generate a displayable image signal. The frame rate conversion module converts the input video frame rate. The display formatting module modifies the received frame rate-converted video output signal to conform to a display format, such as outputting RGB data signals.
[0120] In some embodiments, the audio processor is configured to receive external audio signals, and according to the standard codec protocol of the input signals, perform decompression and decoding, as well as noise reduction, digital-to-analog conversion, and amplification processing, to obtain a sound signal that can be played in a speaker.
[0121] In some embodiments, the user can input user commands through a graphical user interface (GUI) displayed on the display 260, and the user input interface receives the user input commands through the GUI. Alternatively, the user can input user commands by inputting specific sounds or gestures, and the user input interface receives the user input commands by recognizing the sounds or gestures through sensors.
[0122] In some embodiments, a "user interface" is the medium through which an application or operating system interacts and exchanges information with a user, converting information between its internal form and a form acceptable to the user. A common form of user interface is the graphical user interface (GUI), which refers to a user interface related to computer operation displayed graphically. It can be an icon, window, control, or other interface element displayed on the screen of an electronic device. Controls can include visual interface elements such as icons, buttons, menus, tabs, text boxes, dialog boxes, status bars, navigation bars, and widgets.
[0123] In some embodiments, the display device's system may include a kernel, a command interpreter (shell), a file system, and applications. The kernel, shell, and file system together form the basic operating system structure, allowing users to manage files, run programs, and use the system. Upon power-up, the kernel starts, activates the kernel space, abstracts hardware, initializes hardware parameters, and runs and maintains virtual memory, the scheduler, signals, and inter-process communication (IPC). After the kernel starts, the shell and user applications are loaded. Applications are compiled into machine code after startup, forming a process.
[0124] See Figure 4 In some embodiments, the system is divided into four layers, from top to bottom: the Applications layer (referred to as the "Application Layer"), the Application Framework layer (referred to as the "Framework Layer"), the Android runtime and system library layer (referred to as the "System Runtime Layer"), and the kernel layer.
[0125] In some embodiments, at least one application runs in the application layer. These applications may be Windows programs, system settings programs, or clock programs that come with the operating system; they may also be applications developed by third-party developers. In specific implementations, the application packages in the application layer are not limited to the examples above.
[0126] The framework layer provides application programming interfaces (APIs) and a programming framework for applications. The application framework layer includes predefined functions. It acts as a central processing unit, determining the actions taken by applications within the application layer. Through the API, applications can access system resources and obtain system services during execution.
[0127] like Figure 4As shown, the application framework layer in this embodiment includes managers, content providers, etc., wherein the managers include at least one of the following modules: ActivityManager, which interacts with all activities running in the system; LocationManager, which provides access to system location services for system services or applications; PackageManager, which retrieves various information related to application packages currently installed on the device; NotificationManager, which controls the display and clearing of notification messages; and WindowManager, which manages icons, windows, toolbars, wallpapers, and desktop widgets on the user interface.
[0128] In some embodiments, the Activity Manager manages the lifecycle of individual applications and common navigation and back functions, such as controlling application exit, opening, and back actions. The Window Manager manages all window programs, such as obtaining the screen size, determining if a status bar is present, locking the screen, capturing the screen, and controlling display window changes (e.g., shrinking the display window, shaking the display, distorting the display, etc.).
[0129] In some embodiments, the system runtime library layer provides support for the upper layer, namely the framework layer. When the framework layer is used, the Android operating system runs the C / C++ libraries contained in the system runtime library layer to implement the functions that the framework layer needs to perform.
[0130] In some embodiments, the kernel layer is a layer between hardware and software. For example... Figure 4 As shown, the kernel layer includes at least one of the following drivers: audio driver, display driver, Bluetooth driver, camera driver, WIFI driver, USB driver, HDMI driver, sensor driver (such as fingerprint sensor, temperature sensor, pressure sensor, etc.), and power driver.
[0131] In some embodiments, after the display device is started, it can directly enter the interface of a preset video-on-demand program. The interface of the video-on-demand program can be as follows: Figure 5 As shown, it includes at least a navigation bar 510 and a content display area located below the navigation bar 510. The content displayed in the content display area changes depending on the selected control in the navigation bar. Programs in the application layer can be integrated into a video-on-demand program and displayed via a control in the navigation bar, or further displayed after an application control in the navigation bar is selected.
[0132] In some embodiments, after the display device is started, it can directly enter the display interface of the last selected signal source, or the signal source selection interface. The signal source can be a preset video-on-demand program, or at least one of an HDMI interface, a live TV interface, etc. After the user selects different signal sources, the display can show content obtained from those different signal sources. Applications within the system can...
[0133] With the rapid development of smart TVs, smart remote controls have also become increasingly popular. Smart remote controls can integrate various functional modules, allowing them to work seamlessly with smart TVs and better serve home users. For example, a smart remote control can integrate a voice recognition module, enabling users to input data via voice; a smart remote control can integrate a touch module, allowing users to input data via handwriting.
[0134] Based on this, embodiments of this application provide a remote control device and a display device to quickly and conveniently provide users with health monitoring functions. In this application, a health sensing module is installed on a smart remote control to collect the user's vital sign data, and then the user's health monitoring results are obtained based on the analysis of the vital sign data. In this way, the remote control device can quickly and conveniently provide users with health monitoring. The aforementioned remote control device can be... Figures 1-5 One type of control device shown.
[0135] Figure 6 This is a system architecture diagram for health detection provided in an embodiment of this application. Figure 6 As shown, the health monitoring system provided in this application embodiment includes a remote control device, a display device, and a server, with the display device interacting with both the remote control device and the server.
[0136] In this embodiment of the application, a health sensing module is added to the remote control device. When the user performs a health check, the remote control device can collect the user's vital sign data according to the control instructions in the control flow transmitted by the display device, process the collected vital sign data, and send the processed vital sign data to the display device.
[0137] In some embodiments, vital sign data may include heart rate, blood pressure, blood oxygen saturation, etc. It should be noted that the vital sign data involved in the embodiments of this application are not limiting and can be specifically set according to the actual situation; for example, it may also include pulse, etc.
[0138] It should be understood that the embodiments of this application do not limit how data is transmitted between the remote control device and the display device. For example, it may include, but is not limited to, Bluetooth (BLE) communication, infrared communication, WiFi communication, etc. For example, as shown... Figure 6As shown, the remote control device can transmit data with the display device via BLE.
[0139] It should be understood that data transmission can occur between the remote control device and the display device via data streams and / or control streams. For example, continue to refer to... Figure 6 The remote control device and the display device can send control streams to each other. For example, the remote control device can send a control stream including a power-on command to the display device, and the display device can send a control stream including a power-saving mode command to the remote control device. The remote control device and the display device can also send data streams to each other.
[0140] In some embodiments, the data stream sent from the remote control device to the display device may include the user's vital signs data, and the control stream sent between the remote control device and the display device may include various control information.
[0141] The control information may include instructions from the display device to the remote control device to perform health checks, and instructions from the remote control device to the display device to open a health management application. Additionally, the control information may include volume adjustment, program adjustment, confirmation, and return commands.
[0142] For example, if a user needs to open a health management application, they can press a button on the remote control device to send control information instructing the display device to open the application via a control flow. The display device then opens the health management application based on this control information and sends control information for health monitoring to the remote control device via a control flow. Upon receiving the health monitoring control information, the remote control device activates its health sensor module and alerts the user to perform the health monitoring through flashing, audible, or other means. After the user completes the health monitoring, the remote control device sends the user's vital signs data to the display device via a data flow.
[0143] It should be noted that the remote control device can send the user's vital signs data to the display device in real time, or it can send the user's vital signs data to the display device at regular intervals. This application embodiment does not impose any limitations on this. For example, when the user holds the remote control device, thereby triggering the remote control device's automatic detection, after collecting the user's vital signs data, the remote control device first stores it in the cache module, and can send the user's vital signs data to the display device at regular intervals (e.g., every ten minutes). For example, if the user actively issues an instruction to the remote control device through the display device to detect their own vital signs data through the remote control device, the remote control device can send the user's vital signs data to the display device in real time during the detection process.
[0144] Furthermore, this application does not limit how the remote control device processes the user's vital signs data. In some embodiments, the remote control device can remove invalid data from the user's vital signs data. In other embodiments, the remote control device can also identify data that may be abnormal in the user's vital signs data. In some embodiments, the remote control device may not process the user's vital signs data and send all detection data to the display device.
[0145] In some embodiments, the data collected by the remote control device is first stored in the storage module. The display device can actively send an instruction to obtain the data collected by the remote control device. After the remote control device receives the instruction, it then sends the data stored in the storage module to the display device.
[0146] In this embodiment, a health management application may be installed on the display device. Through this health management application, the display device can send control commands to a remote control device to instruct the remote control device to perform health checks. The display device can also receive vital sign data of the user sent by the remote control device and send this data to the server corresponding to the health management application. Furthermore, after the server completes the analysis of the user's vital sign data and sends the user's health check results to the display device, the display device can also display the user's health check results through the health management application.
[0147] In some embodiments, the display device can send the received user's vital signs data to the server in real time. In other embodiments, the display device can continuously store the user's vital signs data sent by the remote control device, and when the stored user's vital signs data exceeds a data volume threshold and / or the stored user's vital signs data time exceeds a time threshold, the display device will send the stored user's vital signs data to the display device.
[0148] It should be understood that the embodiments of this application do not limit how data is transmitted between the display device, the remote control device, and the server. For example, the display device has Bluetooth host functionality and Wireless Fidelity (WiFi) functionality. The Bluetooth host function enables data transmission between the display device and the remote control device, while the WiFi function allows the display device to access a network and transmit data with the server via the network.
[0149] In some optional embodiments, the display device may not need to interact with the server. For example, after receiving vital sign data sent by the remote control device, the display device can act as a server to directly analyze the user's vital sign data, thereby obtaining the user's health test results. In other optional embodiments, the display device may also display a portion of the user's vital sign data in real time, and then send another portion of the user's vital sign data to the server. For example, the display device may display the user's blood oxygen and heart rate data in real time, and send the raw user's vital sign data to the server. The server then processes the raw user's vital sign data to obtain the user's complete health test results, which are then sent to the display device for display.
[0150] In some embodiments, the display device receives data sent from the remote control device and forms backup data. One copy of the data is used for real-time display, and the other copy is sent to the server for data analysis. In this way, display and data analysis can be performed simultaneously. After the data collection is completed, a health monitoring report is obtained and sent back to the display device for display.
[0151] In some embodiments, the server may not wait for all data to be collected before generating a health check report. It can generate a preliminary report using only some data, and then further optimize the preliminary report using additional data. Thus, if the health check report is completed but the remote control device is still sending data and displaying it on the display device, the health check report can be stored on the server and displayed only after the real-time data display is complete.
[0152] In other embodiments, if the remote control device is directly connected to the network, it can simultaneously send the user's vital signs data to both the display device and the server, thus eliminating the need for the display device to forward the user's vital signs data to the server. Upon receiving the user's vital signs data from the remote control device, the server can directly process the data, generate a health report, and then send the report to the display device for display.
[0153] In some embodiments, during the real-time data display process, if a preliminary report has been generated, a marker can be displayed on the user interface to prompt the user to click and view the report. For example, Figure 7a This is a schematic diagram of the interface of a display device provided in an embodiment of this application, such as... Figure 7a As shown, when the display device is displaying the user's vital signs data in real time, if it receives a preliminary health check report sent by the server, it can display a "Report Generated" button on the interface. If the user clicks the "Report Generated" button, the display device can display the preliminary health check report.
[0154] It should be understood that the embodiments of this application do not limit how the server processes the user's vital sign data. In some embodiments, the server can compare the user's vital sign data with standard vital sign data to determine whether any vital sign data does not conform to health characteristics. In other embodiments, the server can also combine the user's historical vital sign data to analyze the user's vital sign data and obtain the user's health trend.
[0155] In some embodiments, a user's health monitoring report can be stored on a display device or a server, allowing the user to view a specific health monitoring report. Of course, users can also view other users' health monitoring reports to understand their own health status.
[0156] It should be understood that the display device in this application embodiment can display the user's health test results in various ways. For example, Figure 7b This is a schematic diagram of the interface of a display device provided in an embodiment of this application, such as... Figure 7b As shown, the display device can present the user's health test results in a table format, comparing abnormal vital sign data with standard vital sign data; for example, Figure 7c This is a schematic diagram of the interface of a display device provided in an embodiment of this application, such as... Figure 7c As shown, the display device can present the user's health test results in the form of a line graph, which can plot the detected fluctuations in the user's heart rate and blood oxygen; for example, Figure 7d This is a schematic diagram of the interface of a display device provided in an embodiment of this application, such as... Figure 7d As shown, the display device presents the user's health test results in the form of a human body diagram, which uses specific colors to mark parts of the human body that may have potential health risks.
[0157] Based on the above description, the following section describes how the remote control device collects the user's vital signs data by describing the hardware structure of the remote control device.
[0158] Figure 8 This is a schematic diagram of the structure of a remote control device provided in an embodiment of this application. Figure 8 As shown, the remote control device includes a processing module, a touch module, a health sensor module, and a power module.
[0159] The touch module detects electrostatic touch from the user, sending a trigger signal to the processing module. The processing module, based on this trigger signal, determines whether to send a start command to the health sensor module to instruct it to initiate health detection (e.g., via the MCU and BT). Upon receiving the start command, the health sensor module illuminates the user's capillaries, receives the reflected light signals, and analyzes these signals to obtain the user's vital signs data. The power module supplies power to all modules in the remote control device and adjusts the power supply voltage to each module in real time.
[0160] First, the structure of the health sensing module will be explained.
[0161] Figure 9 This is a schematic diagram of the structure of a health sensing module provided in an embodiment of this application, as shown below. Figure 9 As shown, the health sensing module includes a sensor controller, a light-emitting component, and photosensitive elements. The power supply module provides power to the sensor controller, the light-emitting component, and the photosensitive elements.
[0162] The sensor controller includes a sensor chip for controlling the light-emitting component to emit light and analyzing the reflected light signals collected by the photosensitive element, converting the light signals into the user's vital signs data. It should be understood that this application embodiment does not limit the type of sensor controller and can be specifically set according to actual conditions. In this application embodiment, the light-emitting component includes at least two light-emitting diodes (LEDs). Under the control of the sensor chip, the at least two LEDs can emit light of at least two wavelengths, thereby illuminating the capillaries in the user's skin. It should be understood that this application embodiment does not limit the wavelength of the light emitted by the at least two LEDs. For example, taking LED1 and LED2 as examples, LED1 can emit light with a wavelength of 560 nanometers (nm), and LED2 can emit light with a wavelength of 905 nm.
[0163] It should be understood that the light-emitting component in this application emits light of at least two wavelengths, thereby allowing comparison with ambient light to detect finger contact; that is, a dual-light-effect recognition technology is employed. Compared to using a single wavelength, using at least two wavelengths can significantly improve the detection accuracy of finger contact.
[0164] In this embodiment, the photosensitive element is used to collect the light signal reflected from capillaries. In some embodiments, the photosensitive element can also collect ambient light signals. It should be understood that this embodiment does not limit the type of photosensitive element; for example, it can be a photodiode (PD), silicon photovoltaic cell, etc. For example, since the PD has unidirectional conductivity, its electrical characteristics change when the light intensity is different, thereby enabling it to collect the light signal reflected from capillaries and the ambient light signal.
[0165] In this embodiment, when a user instructs a health check via a remote control device, if the user's skin is detected to be in close contact with the health sensing module, the sensor chip can control at least two LEDs to emit light of at least two wavelengths. The light of at least two wavelengths illuminates the capillaries in the user's skin, and is then reflected by the capillaries. Subsequently, photosensitive elements collect the light signals reflected from the capillaries and the ambient light signals, and the sensor chip analyzes these signals to obtain the user's vital signs data.
[0166] This application does not limit how the user's vital signs data is obtained from the signal. For example, the absorption of light by connective tissues such as muscles and bones remains basically unchanged, while the absorption of light by blood in blood vessels changes as the blood flows. Therefore, the light signal reflected by capillaries can be divided into direct current (DC) signals and alternating current (AC) signals. By extracting the AC signal from the light signal reflected by capillaries, the characteristics of blood flow can be analyzed, and thus the user's vital signs data can be deciphered.
[0167] It should be understood that the sensor chip, at least two LEDs, and photosensitive components in the remote control device are all powered by the power module. Furthermore, this embodiment does not limit the voltage intensity of the at least two LEDs when they are emitting light; this voltage intensity can be adjusted by the power module based on ambient light signals and light signals reflected from capillaries.
[0168] In some embodiments, a detection area may be provided on the remote control device, within which a health detection module and a touch module may be simultaneously arranged. The following are schematic diagrams illustrating the layout of the detection area on two different remote control devices.
[0169] Figure 10 This is a schematic diagram showing the layout of the detection area of a remote control device provided in an embodiment of this application. Figure 10As shown, the detection area includes at least one electrostatic touch area, a light-emitting component emitting area, and a photosensitive component receiving area, all of which are disposed on the substrate. The light-emitting component emitting area is positioned above the photosensitive component receiving area, and both the light-emitting component emitting area and the photosensitive component receiving area are surrounded by four electrostatic touch areas.
[0170] The electrostatic touch area is used to determine whether the user has made a valid touch by analyzing the electrostatic intensity and the effective time of electrostatic touch when the user touches the electrostatic touch area; the light-emitting component emission area is used to emit light signals to the user's capillaries; and the photosensitive component receives the light signals reflected from the capillaries and the ambient light signals.
[0171] It should be noted that the application embodiments do not limit the number of electrostatic touch areas. By setting electrostatic touch areas around the detection area, the probability of detection when a user touches the device can be increased. In practical applications, the number of electrostatic touch areas can be increased or decreased according to actual needs.
[0172] It should be understood that the embodiments of this application do not limit the size of the electrostatic touch area, the light-emitting component emitting area, and the photosensitive component receiving area. For example, the electrostatic touch areas on the left and right sides can be set to be symmetrical and the same size; the electrostatic touch areas on the top and bottom sides can be set to be symmetrical and the same size.
[0173] Figure 11 This is a schematic diagram of the stacked structure of a detection area provided in an embodiment of this application. Figure 11 for Figure 10 The stacked structures corresponding to the detection area shown are as follows: Figure 11 As shown, the health detection module can be placed between two plastic shells, and a surface glass can be placed on top of the health detection module. Two substrates are used to isolate the surface glass and the health detection module.
[0174] It should be understood that Figure 11 The schematic diagram of the stacked structure of the detection area shown is only an example. In actual applications, the stacking method of the detection area can be adjusted according to specific circumstances. This embodiment does not limit this.
[0175] In some embodiments, the emitting area of the light-emitting component in the health detection module can emit light. When a user touches the surface glass of the detection area and blocks the light emitted by the emitting area of the light-emitting component, the light emitted by the emitting area of the light-emitting component will be reflected to the receiving area of the photosensitive element and collected by the receiving area of the photosensitive element.
[0176] It should be understood that the embodiments of this application do not limit the type of light emitted by the emitting area of the light-emitting component; for example, it can be red light, blue light, infrared light, etc. In some embodiments, the emitting area of the light-emitting component may include two LEDs, thereby emitting both red light and infrared light simultaneously.
[0177] It should be understood that the embodiments of this application do not limit the photosensitive components in the receiving area of the photosensitive components. For example, they may include photodiodes (PDs), silicon photocells, etc.
[0178] It should be understood that the embodiments of this application do not limit the type of substrate. For example, the substrate can be a printed circuit board (PCB), a flexible printed circuit (FPC), etc.
[0179] Figure 12 This is a schematic diagram showing the layout of the detection area of another remote control device provided in an embodiment of this application. For example... Figure 12 As shown, the detection area includes an electrostatic touch area, a light-emitting component emission area, and a photosensitive component receiving area. The light-emitting component emission area is located above the photosensitive component receiving area, and the electrostatic touch area is located below the photosensitive component receiving area.
[0180] In this embodiment of the application, for Figure 12 The detection area shown is positioned below the emitting area of the light-emitting component and the receiving area of the photosensitive component, which reduces the chance of users accidentally touching the electrostatic touch area during the incident.
[0181] It should be understood that Figure 12 The layout of the detection area shown is merely an example and does not constitute a limitation of this application. In some embodiments, the detection area may simultaneously include multiple electrostatic touch areas, multiple light-emitting component emitting areas, and multiple photosensitive component receiving areas. In other embodiments, the light-emitting component emitting areas may be located below the photosensitive component receiving areas, and the electrostatic touch areas may be located above the photosensitive component receiving areas.
[0182] Figure 13 This is a schematic diagram of the stacked structure of another detection region provided in an embodiment of this application. Figure 13 for Figure 12 The stacked structures corresponding to the detection area shown are as follows: Figure 13 As shown, the health detection module can be placed between two plastic shells, and two basic pieces are used to isolate the health detection module from the plastic shells. A surface glass can be installed on top of the health detection module.
[0183] In this embodiment, by tightly bonding the health sensing module and the surface glass, the light from the light-emitting component can be prevented from directly leaking onto the receiving area of the photosensitive element. Simultaneously, because the electrostatic touch area, the plastic housing, and the surface glass are all tightly bonded, the sensitivity and consistency of electrostatic sensing can be guaranteed.
[0184] It should be understood that Figure 13 The schematic diagram of the stacked structure of the detection area shown is only an example. In actual applications, the stacking method of the detection area can be adjusted according to specific circumstances. This embodiment does not limit this.
[0185] It should be noted that, Figure 12 The working principle of the detection area shown is the same as Figure 10 The working principle of the detection area is similar, and will not be repeated here.
[0186] It should be noted that the embodiments of this application do not limit the location of the user contact detection area. For example, it can be the user's fingertip, the user's wrist, or other areas.
[0187] It should be understood that the detection area can be set in any area of the remote control device. In some embodiments, the detection area can be set in the front of the remote control device, in other embodiments, the detection area can be set in the back of the remote control device, and in still other embodiments, the detection area can be set in the side of the remote control device.
[0188] For example, Figure 14 This application provides a schematic diagram of the location of a detection area, as shown in the embodiment. Figure 14 As shown, the detection area can be set on the front of the remote control device, below the buttons. Since this location usually overlaps with the area where the user holds the remote control device, it allows for more convenient health measurements while the user is holding the device.
[0189] The circuit diagrams of each component in the health sensing module are shown below as examples.
[0190] Figure 15a This is a circuit diagram of a health sensing module provided in an embodiment of this application. Figure 15a As shown, the circuit diagram of the health sensing module includes a processor, a light-emitting component, a photosensitive component, and a sampling control component. The processor is connected to the light-emitting component, the photosensitive component, and the sampling control component, respectively. The sampling control component is also connected to the light-emitting component and the photosensitive component.
[0191] The processor controls the light-emitting component, the photosensitive component, and the sampling control component. The light-emitting component emits light signals to the capillaries, and the photosensitive component receives the light signals emitted by the capillaries and ambient light signals. The sampling control component acquires the voltage of the light-emitting component and the photosensitive component, and controls the luminous intensity of the light-emitting component based on the acquired voltage.
[0192] Figure 15b A circuit diagram of another health sensing module provided in an embodiment of this application is shown. Figure 15a On this basis, Figure 15b This is an example circuit diagram. (e.g.) Figure 15b As shown, the processor may include a sensor chip U4, the photosensitive component may include a switching resistor R2 and a silicon photovoltaic cell X, the light-emitting component may include LED1, LED2, and LED3, and the sampling control component may include a metal-oxide-semiconductor field-effect transistor (MOS) and a sampling resistor R10.
[0193] Among them, pins 1 and 5 of sensor chip U4 are connected to the conversion resistor R2 and silicon photovoltaic cell X. Pins 2 and 6 of sensor chip U4 are connected to LED1. Pins 3 and 4 of sensor chip U4 are connected to LED2. Pins 7 and 8 of sensor chip U4 are connected to LED3. One end of the MOSFET is connected to pins 4, 6, 7, and 8 of sensor U4 and sampling resistor R10.
[0194] The sampling resistor R10 samples the current of LEDs 1, 2, and 3 and transmits this data to an external control device (e.g., a controller in a health sensor module). When the current of LEDs 1, 2, and 3 sampled by R10 is less than a threshold, the external control device sends an enable signal to the gate of the MOSFET, thereby turning on the MOSFET. The MOSFET then amplifies the voltage of LEDs 1, 2, and 3 to increase their light intensity, ensuring they are at an appropriate brightness. The light from LEDs 1, 2, and 3 illuminates the user's capillaries and is reflected by the capillaries onto the silicon photocell X. Subsequently, the silicon photocell X converts the reflected light signal from the capillaries into a current signal and outputs it to the conversion resistor R2. The conversion resistor R2 then converts the current signal into a voltage signal. Finally, the conversion resistor R2 outputs the converted voltage signal to the sensor chip U4.
[0195] It should be understood that the embodiments of this application do not limit the number of LEDs in the light-emitting module. Using multiple different types of LEDs can achieve dual light effect recognition when detecting user touch, thereby improving detection accuracy.
[0196] It should be understood that the embodiments of this application do not limit the sampling method of the sampling resistor R10, and precision resistor sampling can be used.
[0197] It should be understood that the embodiments of this application do not limit the three types of LEDs, and exemplary ones may include red LEDs, blue LEDs and infrared LEDs.
[0198] It should be noted that the above Figure 15b This is merely a circuit diagram of one usable health sensing module and does not constitute a limitation of this application. In specific applications, the circuit diagram of the health sensing module can be adjusted accordingly based on actual conditions. For example, Figure 15b The sensor chip circuit shown includes three types of LEDs. In specific applications, this can be adjusted to two types of LEDs or four types of LEDs. For example, Figure 15b The photosensitive component in the circuit of the sensor chip shown is a silicon photovoltaic cell X. In specific applications, the silicon photovoltaic cell X can be adjusted to a PD.
[0199] Photovoltaics (PDs) typically operate under reverse bias, achieving a wide linear output range and high response frequency; the stronger the illumination, the stronger the photocurrent. Silicon photovoltaic cells, on the other hand, operate without bias voltage, converting light signals into electrical signals under illumination. The larger the illuminated junction area, the greater the photocurrent. Therefore, PDs offer faster response times, while silicon photovoltaic cells require larger illuminated junction areas.
[0200] In some embodiments, the health sensing module may also include a controller to control the operation of the aforementioned sensor chip and convert the voltage signal obtained by the sensor chip U4 into the user's vital signs data. Figure 16a This is a circuit diagram of a controller in a health sensing module provided in an embodiment of this application.
[0201] like Figure 16a As shown, the controller of the health sensing module is connected to the power supply reset component, the external communication interface, the external reference power supply, and the software debugging component. The software debugging component is used to debug the software program in the controller of the health sensing module; the external reference power supply provides internal power and a reference source for the controller in the health sensing module; the external communication interface enables communication between the health sensing module and external devices; and the power supply reset component is used to reset the controller in the health sensing module upon power-on.
[0202] In some embodiments, the controller of the health sensing module can also be connected to... Figure 15aThe light-emitting component, photosensitive component, and sampling control component are connected. The controller of the health sensing module can receive the light signal reflected from the capillaries collected by the photosensitive component and the voltage signal converted from the ambient light signal. At the same time, the controller of the health sensing module can also collect the current information of the light-emitting component and send an enable signal to the sampling control component when the current signal is less than a threshold, so as to turn on the MOSFET in the sampling control component.
[0203] exist Figure 16a Based on this, the following exemplifies a connection method for the pins of the controller in a health sensing module. For example, pins 9 and 10 of the controller in the health sensing module are connected to a software debugging unit (ECK, EDIO) to debug the software program in the controller of the health sensing module. Pins 12 and 17-19 of the controller in the health sensing module are connected to an external reference power supply (VDDA, VA1V2) to provide internal power and a reference source for the controller in the health sensing module through the external reference power supply. Pins 1, 21, and 26 of the controller in the health sensing module are connected to LED1 (G_ON), LED2 (R_ON), and LED3 (IR_ON) in the sensor chip circuit, respectively, to acquire the voltage signals of LED1, LED2, and LED3. Pins 13 and 14 of the controller in the health sensing module are connected to the two ends (AJO0, AJO1) of the conversion resistor R2 in the sensor chip circuit, to acquire the voltage signal converted by the conversion resistor R2. Pins 11 and 16 of the controller in the health sensing module are connected to the MOSFETs (OP_OUT, AJO3) in the sensor chip circuit. Subsequently, after acquiring the above signals, the controller in the health sensing module can internally amplify the signals and then convert them into digital signals. Pins 23-25 and 32 of the controller in the health sensing module are connected to the external communication interface (STA, UTX, URX, RESETn), respectively, to communicate with external devices through the external communication interface.
[0204] In some embodiments, when the processor of the health sensing module receives a start command sent by the processing module of the remote control device through an external communication interface, the processor of the health sensing module can turn on the power module to supply power to the sensor chip, thereby performing health detection. Subsequently, after the sensor chip completes the health detection and the processor of the health sensing module acquires the voltage signal converted by the conversion resistor R2, it can internally amplify the voltage signal and then convert it into a digital signal to obtain the user's vital sign data.
[0205] The following section describes each unit in the designed health sensing module.
[0206] This application does not limit the structure of the software debugging unit in its embodiments; for example,Figure 16b This is a circuit diagram of a software debugging unit provided in an embodiment of this application. Figure 16b The software debugging unit shown may include grounding resistors R7 and R8 to suppress external interference and reduce power consumption. TP3 and TP4 allow connection to external devices for software debugging of the health sensor module's controller. The values of grounding resistors R7 and R8 can be set according to specific requirements, for example, 100kΩ.
[0207] It should be noted that, Figure 16b This is a circuit diagram of a usable software debugging unit and does not constitute a limitation on the software debugging unit.
[0208] This application does not limit the structure of the power supply reset unit in the embodiments; for example, Figure 16c This is a circuit diagram of a power supply reset unit provided in an embodiment of this application. Figure 16c The power supply reset unit shown may include resistors and capacitors. For example, the power supply reset unit may include capacitors C1, C2, and C3, and resistor R1. Resistor R1 and capacitor C3 form a resistor-capacitor circuit (RC) to power on and reset the controller in the health sensor module, while capacitors C2 and C3 are used for filtering. It should be noted that this embodiment does not limit the parameters of capacitors C1, C2, C3, and resistor R1 in the power module; they can be set according to actual conditions. For example, C1, C2, and C3 can all be 0.1uF / 10V, and R1 can be 10kΩ.
[0209] Furthermore, this application embodiment does not impose limitations on the external reference power supply and external communication interface in the health sensing module. The following example exemplifies... Figure 17 and Figure 18 Taking an example, we will explain the external reference power supply and external communication interface.
[0210] Figure 17 This is a circuit diagram of an external reference power supply in a health sensing module provided in an embodiment of this application. Figure 17As shown, pin 1 (OUT) of the external reference power supply chip U5 is connected to pin 19 of the processor in the health sensing module; pin 2 (GND) of the external reference power supply chip U5 is grounded and simultaneously connected to one end of capacitor C6, the other end of capacitor C6 is connected to pin 19 of the processor in the health sensing module; pins 3 (EN) and 4 (IN) of the external reference power supply chip U5 are connected to pin 12 of the processor in the health sensing module; pin 5 (TP) of the external reference power supply chip U5 is grounded. When pin 4 of the external reference power supply chip U5 receives the indication information sent by the controller in the health sensing module, pin 1 of the external reference power supply chip U5 can instruct the external reference power supply to provide internal power and reference source to the controller in the health sensing module.
[0211] Figure 18 This is a circuit diagram of an external communication interface in a health sensing module provided in an embodiment of this application. Figure 18 As shown, pins 1, 7, and 8 of chip J2, the external communication interface, are grounded. Pin 2 (STA) of chip J2 is connected to pin 26 of the controller in the health sensor module; pin 3 (UTX) of chip J2 is connected to pin 23 of the controller in the health sensor module; pin 4 (URX) of chip J2 is connected to pin 24 of the controller in the health sensor module; pins 2, 3, and 4 of chip J2 can receive data sent by the controller in the health sensor module and send the received data to external devices. Pin 5 (RESETn) of chip J2 is connected to pin 32 of the controller in the health sensor module and is used to receive reset instructions sent by the controller in the health sensor module. Pin 6 (RESETn) of chip J2 is connected to the power supply.
[0212] It should be noted that the circuit diagrams of the controller, external reference power supply, and external communication interface in the health sensing module provided in this application embodiment do not constitute a limitation on this application. In application, they can be specifically set according to the actual scenario.
[0213] Furthermore, it should be understood that the embodiments of this application do not limit when to supply power to the controller in the health sensing module. In some embodiments, to achieve the low power consumption requirement of the health sensing module, when a user touches the touch module, the touch module determines whether the user's touch is valid. If the user's touch duration exceeds a threshold, the touch module can determine that the user's touch is valid and can instruct to supply power to the controller in the health sensing module. If the user's touch duration does not exceed the threshold, the touch module can determine that the user's touch is invalid and will not instruct to supply power to the controller in the health sensing module. It should be understood that the embodiments of this application do not limit when to stop supplying power to the controller in the health sensing module. In some embodiments, power supply to the controller in the health sensing module can be stopped after the health detection is completed. In some embodiments, power supply to the controller in the health sensing module can also be stopped if it is detected that the user's finger is not in contact with the detection module. In some embodiments, power supply to the controller in the health sensing module can also be stopped if it is detected that the user has stopped touching the touch module for a long time during the health detection process.
[0214] Based on the aforementioned health sensing module, in some embodiments, after the controller in the health sensing module acquires the voltage signal corresponding to the light received by the photosensitive element, it can convert the voltage signal into the user's vital sign data. Subsequently, the user's vital sign data can be separated into raw data packets and real-time display data packets, and then sent to the display device. After receiving the raw data packets and real-time display data packets, the display device can display the data in the real-time display data packets and send the data in the raw data packets to the server for further processing and analysis.
[0215] It should be understood that the raw data packet contains the collected raw vital signs data of the user, while the real-time display data packet contains the user's vital signs data after preliminary processing.
[0216] It should be understood that the embodiments of this application do not limit how the voltage signal corresponding to the light received by the photosensitive element is converted into the user's vital sign data, and this can be determined according to the specific type of vital sign data that needs to be obtained. For example, the voltage signal can be converted into heartbeat data through a heartbeat analysis algorithm.
[0217] For example, if the health sensing module includes a red LED and an infrared LED, and the controller in the health sensing module has a data acquisition frequency of 100Hz, then in each data acquisition cycle, voltage signals are acquired in three states: State 1 (red LED on), State 2 (infrared LED on), and State 3 (both red and infrared LEDs off). Within each data acquisition cycle, the module operates sequentially in State 1 for 3 seconds, State 3 for 2 seconds, State 2 for 3 seconds, and State 3 for 2 seconds. In each operating state, the controller in the health sensing module acquires the voltage signal corresponding to the light received by the photosensitive element. Subsequently, using a heartbeat analysis algorithm, the voltage signals acquired in every two data acquisition cycles are processed and combined into a single heartbeat data point. This heartbeat data point can then be stored in the original data packet.
[0218] It should be understood that the embodiments of this application do not limit the preliminary processing of the user's vital sign data. In some embodiments, analysis can be performed on a user's vital sign data over a period of time to obtain other related vital sign data. For example, if the original user's vital sign data is heartbeat data points, the controller in the health sensing module can generate a heartbeat curve from the heartbeat data points within a transmission cycle, and then parse the user's heart rate, blood oxygen level, microcirculation value, systolic blood pressure, and diastolic blood pressure values within that transmission cycle from the heartbeat curve. Finally, the user's heartbeat data, heart rate, blood oxygen level, microcirculation value, systolic blood pressure, and diastolic blood pressure values are stored in a real-time display data packet.
[0219] In some embodiments, after the controller in the health sensing module separates the user's vital sign data into real-time display data packets and raw data packets, it can send the real-time display data packets and raw data packets to the processing module of the remote control device, which then sends them to the display device. In other embodiments, after the controller in the health sensing module separates the user's vital sign data into real-time display data packets and raw data packets, it can also directly send the real-time display data packets and raw data packets to the display device through an external communication interface connected to the controller in the health sensing module.
[0220] In some embodiments, the controller in the health sensing module can further compress the real-time display data packets and the raw data packets before sending them to improve transmission efficiency. For example, the user's vital sign data in the raw data packets over 1.28 seconds can be compressed into 168 bytes before the raw data packets are sent.
[0221] It should be understood that the embodiments of this application do not limit the sending period of real-time display data packets and raw data packets. For example, the sending period can be 1 second, 1.28 seconds, 1.8 seconds, etc.
[0222] In this embodiment, after receiving real-time display data packets and raw data packets, the display device can forward the raw data packets to the processor for further processing. Simultaneously, it can display the data from the real-time display data packets. For example, Figure 19 This application provides a schematic diagram of a real-time display interface for a display device, as shown in the embodiments of this application. Figure 19 As shown, if the real-time display data packet contains the user's heartbeat data, heart rate value, and blood oxygen value, the display device can display the user's heartbeat waveform based on the heartbeat data, while simultaneously refreshing the user's heart rate and blood oxygen values on the display interface. Furthermore, when displaying the real-time display data packet, the display device can also display the time required to collect the remaining vital signs data and start a countdown. At the same time, the display device can also display prompts on the display interface, such as prompting the user, "Detection in progress, please keep your finger lightly pressed on the detection area."
[0223] Subsequently, after receiving the raw data packet from the display device, the server can analyze and process the raw data in the raw data packet to obtain the user's complete health check result. Then, the server sends the user's complete health check result back to the display device for display. This health check result can be the user's health check report.
[0224] For example, Figures 20a-20b This is a schematic diagram of an interface for displaying health test results provided in an embodiment of this application. Figure 20a As shown, the display device can display the user's health monitoring report, which may include the user's vital signs, health status, and health recommendations.
[0225] In some embodiments, if a user clicks the "Overall Checkup Recommendation" button in a health checkup report, the device will display options such as... Figure 20a The interface shown will redirect to the following: Figure 20b The interface shown. (As shown) Figure 20b The interface shown includes report analysis and health recommendations. Health recommendations are generated based on user information and health test results. In this way, health recommendations leverage big data to link user preferences with health information, enabling users to collect and analyze health data, access doctor services, content services, and shopping services from home via display devices, effectively expanding the application scenarios of display devices.
[0226] In some embodiments, when a user clicks on each health recommendation card, the display device redirects to the corresponding application. This application does not limit how the user redirects to the corresponding application. For example, JavaScript Object Notation (JSON) can be used for redirection. JSON uses a text format completely independent of programming languages to store and represent data, resulting in a concise and clear hierarchy that is easy for humans to read and write, as well as easy for machines to parse and generate, effectively improving network transmission efficiency. Specifically, the display device can parse the redirection parameters in the JSON (a lightweight, interpreted, or just-in-time compiled programming language with function-first logic) according to redirection rules. For example, the display device parses the value corresponding to the package name in the JSON to determine the application package name to redirect to, and determines the class name to redirect to based on the value corresponding to the class name. The type of redirection is determined based on the startup type.
[0227] In some embodiments, the user can click the "Refresh Batch" button, causing the display device to randomly select several health recommendations from the health recommendations sent by the server and display them. This application does not limit the method of randomizing health recommendations; for example, it can employ...
[0228] The random method works by using the collection algorithm to randomly shuffle the health recommendations sent by the server and then selecting a number of them.
[0229] Furthermore, this application does not limit the structure of the raw data packet and the real-time display data packet. For example, the following provides an available format for a real-time display data packet and a format for a raw data packet. Table 1 shows a format for a real-time display data packet provided in this application embodiment, and Table 2 shows a format for a raw data packet provided in this application embodiment.
[0230] Table 1
[0231]
[0232] Table 2
[0233]
[0234] Based on the above embodiments, the touch module in the remote control device will be described below.
[0235] Figure 21a This is a circuit diagram of a touch module provided in an embodiment of this application, as shown below. Figure 21aAs shown, the touch module includes a processor, a signal input terminal, and a signal output terminal. The signal output terminal is connected to the power supply and reset unit of the health sensor module. The signal input terminal sends a signal to the processor after detecting a user touch. After receiving the signal from the signal input terminal, the processor determines whether the user has made a valid touch. If so, it outputs an indication signal to the power supply and reset unit through the signal output terminal to instruct the power supply and reset unit to supply power to the controller of the health sensor module.
[0236] exist Figure 21a Based on the circuit diagram of the touch module shown, a specific circuit diagram of the touch module is provided below as an example. Figure 21b A circuit diagram of another touch module provided in an embodiment of this application is shown below. Figure 21b As shown, taking chip N3 as the processor of the touch module as an example. Pin 1 (VDD) of chip N3 of the touch module is connected to the power supply VBAT and the first end of capacitor C28 respectively; pin 2 (VSS) of chip N3 of the touch module is connected to the second end of capacitor C28 and grounded; pin 3 (PA0) of chip N3 of the touch module is connected to resistors R11 and R17 respectively, resistor R11 is connected to signal output terminal P2_5, resistor R11 is connected to power supply VDD_IO; pin 4 (PA2) of chip N3 of the touch module is connected to resistor R18, resistor R18 is connected to power supply VDD_IO; pin 5 (PA6) of chip N3 of the touch module is connected to resistor R19, resistor R19 is connected to signal input terminal PA1. With this structure, the user touches the touch board (e.g., FPC line) with their finger, which causes the input terminal PA1 to send a signal to the chip N3. After processing the signal, the chip N3 sends an instruction to the processing module of the remote control device through the signal output terminal P2_5, thereby instructing the processing module of the remote control device to turn on the power supply of the health module and start the health module function.
[0237] exist Figures 21a-21b Based on the touch module shown, the following explains the process of the remote control device triggering a health check through the touch module.
[0238] In some embodiments, when a user's skin is detected contacting the detection area of the remote control device, the remote control device performs a contact fit detection. If the contact fit detection is successful, the remote control device sends an application launch instruction to the display device, which instructs the display device to launch the health management application. Furthermore, the remote control device performs a health check, acquires the user's vital sign data, and sends this data to the display device. Finally, the display device displays the user's vital sign data and sends it to the server. The server processes the user's vital sign data, generates a health check report, and sends the report to the display device for display.
[0239] Based on the above embodiments, Figure 22 This is a signaling interaction diagram of a health detection method provided in an embodiment of this application. Figure 22 As shown, the specific methods for health testing include:
[0240] S201. The processing module monitors the trigger signal sent by the touch module, which is triggered when the user's skin touches the detection area of the remote control device.
[0241] In this embodiment of the application, when a user needs to perform health monitoring, they can touch the detection area on the remote control device to trigger the capacitive sensing of the touch module, thereby causing the touch module to send a trigger signal to the processing module.
[0242] It should be noted that the embodiments of this application do not limit how the user touches the detection area. In some embodiments, the user can touch the detection area with their fingers, and in other embodiments, the user can touch the detection area with their wrist.
[0243] Below are two methods to prevent trigger signals from being triggered accidentally.
[0244] In the first method, the detection area can be set to a concave shape and employ an irregular design. For example... Figure 14 As shown, the detection area where the health sensing module is located adopts an irregular design, differing in size and shape from other buttons on the remote control device. It can also be designed as a recessed shape. It should be understood that this application embodiment does not limit the type of irregular design. For example, if the buttons on the remote control device are circular, the detection area can be square; if the buttons on the remote control device are square, the detection area can be circular.
[0245] This method, thanks to its irregular design, allows users to intuitively determine the detection area's location on the remote-controlled device and effectively perform test positioning. Simultaneously, the recessed design reduces the likelihood of accidental user contact with the detection area, thus minimizing the possibility of false triggering.
[0246] It should be noted that the embodiments of this application do not limit the depth of the depression in the detection area, and can be set according to the actual situation. For example, the depression can be 0.25mm.
[0247] In the second approach, the detection area can be placed below the health sensor module, thereby reducing accidental triggering by the user during button presses.
[0248] S202. If the duration of the trigger signal sent by the touch module exceeds the threshold, the processing module sends a start command to the health sensor module. The start command is used to instruct the power module of the health sensor module to start.
[0249] In this embodiment of the application, by determining whether the duration of the trigger signal sent by the touch module exceeds a threshold, it can be determined whether it is a false trigger or no touch. If the duration of the trigger signal sent by the touch module does not exceed the threshold, it can be determined that it is a false trigger or no touch. If the duration of the trigger signal sent by the touch module exceeds the threshold, it can be determined that the touch is a valid touch.
[0250] It should be noted that this application embodiment does not impose a limitation on the threshold, such as 3 seconds, 5 seconds, etc. For example, if the threshold can be 3 seconds, the processing module can compare the duration of the trigger signal sent by the touch module with 3 seconds.
[0251] S203, The health sensor module detects contact with the human body.
[0252] In some embodiments, when the health sensor module is powered on, it first needs to perform contact detection on the human body to determine whether the human body completely covers the detection area, or whether other objects (e.g., metal objects) have accidentally touched the detection area. For example, if a user touches the detection area with their finger, the health sensor module can detect whether the user's finger completely covers the detection area, or whether other objects have accidentally touched the detection area. Similarly, if a user touches the detection area with their wrist, the health sensor module can detect whether the user's wrist completely covers the detection area, or whether other objects have accidentally touched the detection area.
[0253] It should be understood that the embodiments of this application impose limitations on how to perform adhesion detection, and the specific settings can be configured according to the actual scenario. The embodiments of this application provide four adhesion detection methods.
[0254] In the first method, the health sensor module can turn off all LEDs to detect whether the ambient light is within a preset range.
[0255] In the second method, the health sensing module can turn on a specific LED and set the specific LED to a preset detection brightness, thereby detecting whether the light emitted by the specific LED at the detection brightness is within the preset range.
[0256] For example, a red LED can be turned on, and the light emitted by the red LED can be checked to see if it is within a preset range when the output brightness is set to level 2. Similarly, an infrared LED can be turned on, and the light emitted by the infrared LED can be checked to see if it is within a preset range when the output brightness is set to level 2.
[0257] In the third method, the difference between ambient light and at least two types of LED light is compared to see if it is within a preset range.
[0258] It should be noted that when performing fit testing, one of the above methods can be used. If the fit is satisfied by this method, the user's contact is considered to meet the fit requirements. Alternatively, multiple methods can be used simultaneously. If the fit is satisfied by all methods, the user's contact is considered to meet the fit requirements.
[0259] All LEDs are turned off to detect whether the ambient light brightness is within the preset range.
[0260] S204. The health sensing module sends a first response to the processing module, which includes the fit detection result.
[0261] S205. The processing module determines whether the bonding requirements are met based on the bonding detection results.
[0262] If not, proceed to step S206; if yes, proceed to step S207.
[0263] S206. The processing module sends a shutdown instruction to the health sensor module.
[0264] S207. The processing module sends an application launch instruction to the display device, which is used to instruct the display device to start the health management application.
[0265] It should be understood that the embodiments of this application do not limit when the display device displays the health management application. In some embodiments, after receiving the application launch instruction, the display device may launch the health management application but not display it on the display device's interface; instead, it may prepare it in the background. The health management application will only be displayed after the display device has stably received the vital sign data sent by the remote control device. In other embodiments, after receiving the application launch instruction, the display device may immediately launch the health management application and display the data.
[0266] S208. The display device sends a second response to the processing module, which indicates that the display device has successfully started the health management application and instructs the remote control device to perform a health check.
[0267] S209. The processing module sends an acquisition instruction to the health sensing module, which is used to request the acquisition of the user's vital signs data.
[0268] S210, the health sensing module performs health detection and obtains the user's vital signs data.
[0269] It should be noted that, in this embodiment, after acquiring the user's vital sign data, the health sensing module can also add abnormal information during the health detection process to the vital sign data. This embodiment does not limit the abnormal information; for example, it may include information such as the user's finger leaving the detection area.
[0270] It should be understood that in this step, the health sensing module performs health detection in the same way as in the above embodiments, and will not be described again here.
[0271] S211, The health sensing module sends the user's vital signs data to the processing module.
[0272] S212, The processing module sends the user's vital signs data to the display device. S213, The display device sends a first stop command to the processing module, which instructs the health monitoring to be stopped.
[0273] It should be noted that the embodiments of this application do not limit the display device from sending a first stop command to the processing module. In some embodiments, after the display device starts the health management application, a fixed detection duration can be set. When the detection duration is reached, the display device can send a first stop command to the processing module.
[0274] S214, The health sensing module sends a third response to the processing module.
[0275] This application does not limit the content of the third response. In some embodiments, the third response can be used to indicate that the health check was successful. In some embodiments, the third response can be used to indicate that the health check was completed. In some embodiments, the third response can be used to indicate that the health check was terminated midway.
[0276] S215, The processing module sends a second stop command to the health sensing module, which instructs the health sensing module to stop collecting the user's vital signs data.
[0277] S216. The processing module controls the power module to stop supplying power to the health sensor module and controls the touch module to perform a low-power scanning mode.
[0278] Compared with related technologies, the embodiments of this application can reduce accidental touches by users. At the same time, contact detection is performed when the user makes a valid touch, thereby eliminating the frequent wake-up of the health sensor module due to accidental touches, thus reducing the power consumption of the remote control device and increasing the interval between battery replacements.
[0279] Based on the above embodiments, the following describes the handling process after an abnormal prompt from the health management application.
[0280] First, we provide two methods for handling abnormal prompts caused by users removing their fingers during the health check process.
[0281] In the first approach, after receiving an error message indicating that the user has removed their finger from the detection area, the detection can continue after a certain interval between finger removals. Figure 23This is a flowchart illustrating another health detection method provided in an embodiment of this application, as shown below. Figure 23 As shown, health testing methods include:
[0282] S401, The display device receives a first abnormality prompt message from the remote control device, which is used to instruct the user to remove their finger from the detection area.
[0283] S402, The display device determines the first valid data packet before the user removes their finger from the detection area.
[0284] It should be understood that the first valid data packet may include real-time display data packets and raw data packets.
[0285] S403, The display device determines whether the first valid data packet exceeds the data threshold.
[0286] If yes, then execute S406; otherwise, execute S404.
[0287] S404. Within a first time period after receiving the first abnormality prompt information, the display device checks whether it has received the second valid data packet from the remote control device. The second valid data packet is the data packet generated when the user moves his finger back to the detection area.
[0288] If it is S405, then execute it; otherwise, execute S407.
[0289] S405, The display device determines the number of the first valid data packet and the second valid data packet and whether the data threshold is exceeded.
[0290] If yes, then execute S406; otherwise, execute S404.
[0291] S406. The display device sends a third message to the remote control device, which instructs the remote control device to turn off the infrared data acquisition sensor.
[0292] S407, The display device shows an abnormal data interface.
[0293] Figure 24 This is a schematic diagram of the interface of a health management application provided in an embodiment of this application, such as... Figure 23 As shown, the data anomaly interface can include prompts suggesting that the user re-test. When the user clicks the "Cancel" button, the system will redirect to the homepage of the health management application (the page where health records are created). When the user clicks the "Re-test" button, the health test can be performed again.
[0294] In the second approach, after receiving an abnormal notification that the user has moved their finger away from the detection area, the detection can continue if the user moves their finger back into the detection area within the total health detection time.Figure 25 This is a schematic flowchart of another health detection method provided in an embodiment of this application, as shown below. Figure 25 As shown, health testing methods include:
[0295] S501, The display device receives a first abnormality prompt message from the remote control device, which is used to instruct the user to remove their finger from the detection area.
[0296] S502, The display device determines the first valid data packet before the user removes their finger from the detection area.
[0297] It should be understood that the first valid data packet may include real-time display data packets and raw data packets.
[0298] S503, The display device determines whether the first valid data packet exceeds the data threshold.
[0299] If yes, then execute S506; otherwise, execute S504.
[0300] S504. During the total duration of the health check, the display device shows whether it has received a second valid data packet from the remote control device. This second valid data packet is the data packet generated when the user moves their finger back to the detection area.
[0301] If it is S505, then execute it; otherwise, execute S507.
[0302] S505, The display device determines the number of the first valid data packet and the second valid data packet and whether the data threshold is exceeded.
[0303] If yes, then execute S506; otherwise, execute S504.
[0304] S506. The display device sends a third message to the remote control device, which instructs the remote control device to turn off the infrared data acquisition sensor.
[0305] S507, Display device shows abnormal data interface.
[0306] Secondly, this application provides a method for handling the abnormal shutdown of a health management application during a health monitoring process.
[0307] Figure 26 A signaling interaction diagram for another health detection method provided in the embodiments of this application, such as... Figure 26 As shown, health testing methods include:
[0308] S601. The display device sends a first message to the remote control device every second time interval. The first message is used to instruct the remote control device to turn on the infrared data acquisition sensor.
[0309] S602, The remote control device activates the infrared data acquisition sensor.
[0310] S603. If the remote control device fails to receive the first information for N consecutive second time periods, then the infrared data acquisition sensor shall be turned off.
[0311] This method prevents the remote-controlled device from continuing health checks when the health management application is abnormally shut down, thus saving the device's power.
[0312] Furthermore, this application provides two methods for handling situations where a user accidentally activates a health check.
[0313] In the first method, if a user accidentally activates the health check and notices it promptly, they can send an instruction to the display device via the remote control to instruct the user to exit the health check. Upon receiving the instruction, the display device can send a third message to the remote control, instructing it to disable the infrared data acquisition sensor. Alternatively, a shortcut button can be set on the remote control to disable the infrared data acquisition sensor with a single click.
[0314] In the second method, if a user accidentally activates the health check and the detected time for a person to leave the detection area exceeds a threshold, the remote control device can automatically send an instruction to the display device to indicate that the health check should be terminated. Subsequently, the display sends a third message to the remote control device, which instructs the remote control device to disable the infrared data acquisition sensor.
[0315] Finally, this application provides two methods for handling data transmission interruptions between the remote control device and the display device during health monitoring.
[0316] In the first method, if data transmission between the remote control device and the display device is interrupted during the health check, a "data transmission error" message can be displayed on the display device, and a timer can be started (e.g., 10 seconds). If data transmission is not restored after the timer exceeds the time threshold, the display device will prompt the user to re-perform the data check.
[0317] In the first method, if data transmission between the remote control device and the display device is interrupted during the health check, the remaining time required to complete the health check can be determined. If the remaining time required to complete the health check is greater than a time threshold, a "Data Transmission Error" message can be displayed on the display device, prompting the user to re-perform the health check. If the remaining time required to complete the health check is less than or equal to the time threshold, the user can be prompted to continue the health check on the display device, and the detected data can be temporarily stored in the remote control device. After data transmission between the remote control device and the display device is restored, the temporarily stored data will be sent to the display device.
[0318] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some or all of the technical features therein. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the scope of the technical solutions of the embodiments of this application.
[0319] For ease of explanation, the above description has been provided in conjunction with specific embodiments. However, the above exemplary discussion is not intended to be exhaustive or to limit the embodiments to the specific forms disclosed above. Various modifications and variations can be obtained based on the above teachings. The selection and description of the above embodiments are for the purpose of better explaining the principles and practical applications, thereby enabling those skilled in the art to better utilize the described embodiments and various different variations of embodiments suitable for specific use considerations.
Claims
1. An electronic device, characterized in that, include: The touch module is used to generate touch signals when the user touches the screen. A health sensing module is used to perform health detection on the user; the health sensing module and the touch module are respectively disposed in different areas on the surface of the electronic device; The controller is configured as follows: The effective touch duration of the user is determined based on the touch signal; Based on the user's effective touch duration, an activation signal is sent to the health sensing module; In response to the activation signal, the health sensing module performs contact detection on the human body and obtains the contact detection result; When the fit detection result is that the fit requirements are met, the health sensing module is instructed to start the health detection. The controller is also configured to: Receive a first stop command, which is used to instruct the health detection to stop. The first stop command is triggered and sent by the display device after the detection time reaches a preset time. The electronic device further includes a detection area, which is surrounded by an electrostatic touch area. The detection area also includes a light-emitting component emitting area and a photosensitive component receiving area, which are surrounded by the electrostatic touch area. The controller is also configured to: A first abnormality alert is sent to the display device, instructing the user to remove their finger from the detection area. This allows the display device to determine whether the first number of valid data packets before the user removes their finger exceeds a data threshold. If the first number exceeds the data threshold, a third message is sent to the electronic device. If the first number does not exceed the data threshold, it determines whether a second valid data packet has been received from the electronic device. If the second valid data packet is received, and the sum of the first and second valid data packets exceeds the data threshold, the third message is sent to the electronic device. The first valid data packet includes real-time display data packets and raw data packets. The device receives a third message sent by the display device, the third message being used to instruct the electronic device to turn off the infrared data acquisition sensor.
2. The electronic device according to claim 1, characterized in that, The controller is specifically configured as follows: If the user's effective touch duration is greater than or equal to the duration threshold, the activation signal is sent to the health sensing module.
3. The electronic device according to claim 1, characterized in that, The controller is specifically configured as follows: If the user's effective touch duration is less than the duration threshold, the user's touch is determined to be a false touch.
4. The electronic device according to claim 1, characterized in that, The controller is specifically configured as follows: The health sensing module acquires the light intensity values reflected from the user's capillaries and the ambient light intensity values. The user's touch is detected based on the light reflection value from the user's capillaries and the ambient light value. If the user's touch is detected to be in contact, a first feedback signal is sent to the health sensing module. The first feedback signal is used to instruct the health sensing module to continue the health detection.
5. The electronic device according to claim 4, characterized in that, The controller is also configured to: If the user's touch is detected as not fitting properly, a second feedback signal is sent to the health sensing module. The second feedback signal is used to instruct the health sensing module to stop performing the health detection.
6. The electronic device according to claim 4, characterized in that, The controller is specifically configured as follows: If the difference between the user's capillary reflected light value and the ambient light value is within a first threshold range, the user's capillary reflected light value is within a second threshold range, and the ambient light value is within a third threshold range, then the user's touch is determined to be in contact with the light.
7. The electronic device according to any one of claims 4-6, characterized in that, The controller is also configured to: If the user's touch is detected to be in contact, a first instruction message is sent to the display device; the first instruction message is used to instruct the health monitoring application in the display device to be activated. After receiving the response information sent by the display device, a health check is performed, and the response information is used to indicate that the display device has successfully started the health management application.
8. The electronic device according to claim 7, characterized in that, The controller is also configured to: Receive a second indication message sent by the display device, the second indication message being used to indicate that the health check is complete; Turn off the power supply to the health sensor module; A third instruction message is sent to the touch module, the third instruction message being used to instruct the touch module to perform a low-power scan.
9. A health detection method applied to an electronic device, the electronic device further comprising a detection area, wherein an electrostatic touch area is disposed around the detection area, the detection area further comprising an emitting area of a light-emitting component and a receiving area of a photosensitive component, the emitting area of the light-emitting component and the receiving area of the photosensitive component being surrounded by the electrostatic touch area, characterized in that, The method includes: Receives touch signals sent by the touch module when the user touches the screen; The effective touch duration of the user is determined based on the touch signal; Based on the user's effective touch duration, an activation signal is sent to the health sensing module, the activation signal being used to instruct the power module to start the health sensing module; In response to the activation signal, the health sensing module performs contact detection on the human body and obtains the contact detection result; When the fit detection result is that the fit requirements are met, the health sensing module is instructed to start the health detection. The method further includes: Receive a first stop command, which is used to instruct the health detection to stop. The first stop command is triggered and sent by the display device after the detection time reaches a preset time. The method further includes: A first abnormality alert is sent to the display device, the first abnormality alert being used to instruct the user to remove their finger from the detection area, so that the display device determines whether the first number of first valid data packets before the user removes their finger from the detection area exceeds a data threshold. If the first number exceeds the data threshold, a third message is sent to the electronic device. If the first number does not exceed the data threshold, it determines whether a second valid data packet sent by the electronic device has been received. If the second valid data packet is received, and the sum of the first and second valid data packets exceeds the data threshold, the third message is sent to the electronic device. The first valid data packet includes real-time display data packets and raw data packets. The device receives a third message sent by the display device, the third message being used to instruct the electronic device to turn off the infrared data acquisition sensor.
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