WO2022170826A1 - 显示设备、控制装置及交互控制方法 - Google Patents

显示设备、控制装置及交互控制方法 Download PDF

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Publication number
WO2022170826A1
WO2022170826A1 PCT/CN2021/134577 CN2021134577W WO2022170826A1 WO 2022170826 A1 WO2022170826 A1 WO 2022170826A1 CN 2021134577 W CN2021134577 W CN 2021134577W WO 2022170826 A1 WO2022170826 A1 WO 2022170826A1
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WIPO (PCT)
Prior art keywords
user
health
display device
health data
data
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PCT/CN2021/134577
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English (en)
French (fr)
Inventor
穆聪聪
程晋
姜璐珩
卢可敬
马晓燕
司洪龙
蒋伟
沈润渊
王守帅
徐波
Original Assignee
海信视像科技股份有限公司
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Publication of WO2022170826A1 publication Critical patent/WO2022170826A1/zh

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    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/0002Remote monitoring of patients using telemetry, e.g. transmission of vital signals via a communication network
    • A61B5/0015Remote monitoring of patients using telemetry, e.g. transmission of vital signals via a communication network characterised by features of the telemetry system
    • A61B5/0022Monitoring a patient using a global network, e.g. telephone networks, internet
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/02Detecting, measuring or recording pulse, heart rate, blood pressure or blood flow; Combined pulse/heart-rate/blood pressure determination; Evaluating a cardiovascular condition not otherwise provided for, e.g. using combinations of techniques provided for in this group with electrocardiography or electroauscultation; Heart catheters for measuring blood pressure
    • A61B5/0205Simultaneously evaluating both cardiovascular conditions and different types of body conditions, e.g. heart and respiratory condition
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/145Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue
    • A61B5/1455Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue using optical sensors, e.g. spectral photometrical oximeters
    • A61B5/14551Measuring characteristics of blood in vivo, e.g. gas concentration, pH value; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid, cerebral tissue using optical sensors, e.g. spectral photometrical oximeters for measuring blood gases
    • AHUMAN NECESSITIES
    • A61MEDICAL OR VETERINARY SCIENCE; HYGIENE
    • A61BDIAGNOSIS; SURGERY; IDENTIFICATION
    • A61B5/00Measuring for diagnostic purposes; Identification of persons
    • A61B5/74Details of notification to user or communication with user or patient ; user input means
    • A61B5/742Details of notification to user or communication with user or patient ; user input means using visual displays

Definitions

  • the present application relates to the technical field of display devices, and in particular, to a display device, a control apparatus, and an interactive control method.
  • terminal devices such as computers, smart phones, and display devices more and more popular.
  • users have higher and higher requirements for functions or services that can be provided by terminal devices.
  • Display devices such as smart TVs, can provide users with playback pictures such as audio, video, pictures, etc., and now attract much attention.
  • the functions provided by the display devices can more and more affect and change the life of users, and the demands of users for life, entertainment and leisure through the display devices are becoming stronger and stronger.
  • the functions provided by the display devices can more and more affect and change the life of users, and the demands of users for life, entertainment and leisure through the display devices are becoming stronger and stronger.
  • how to monitor, record and improve users' health through display devices is a technical problem that needs to be solved urgently.
  • the present application provides a display device, a control device, and an interactive control method.
  • the present application provides a display device, including:
  • Controller configured as:
  • control instruction instructing to start an application related to the health detection function, the control instruction being sent by the remote controller when it detects that the user contacts the touch area on the remote controller for a preset time;
  • control device comprising:
  • a health data collection module connected to the touch area, configured to collect user health data based on the user's contact with the touch area;
  • a controller in communication with the health data collection module, is configured to:
  • controlling the health data collection module to start collecting user health data
  • the collected user health data is sent to the display device in real time.
  • the present application further provides an interactive control method, which is applied to a display device, and the method includes:
  • control instruction instructing to start an application related to the health detection function, the control instruction being sent by the remote controller when it detects that the user contacts the touch area on the remote controller for a preset time;
  • the present application further provides an interactive control method, which is applied to a control device, the control device includes a touch area and a health data acquisition module connected to the touch area, and the method includes:
  • controlling the health data collection module to start collecting user health data
  • the collected user health data is sent to the display device in real time.
  • the present application provides a display device, a control device, and an interactive control method
  • the control device may specifically be a remote control.
  • the remote control detects that the user has been in contact with the touch area for a preset time, it sends a control instruction to the display device to instruct to start the health detection function application; the display device responds to the control instruction, starts the application, and displays the application home page; when the user When a health detection instruction is input according to the application homepage, the display device sends a data collection instruction to the remote controller; the remote controller responds to the data collection instruction, controls the health data collection module to start collecting user health data, and sends the user health data to the display device in real time.
  • the display device performs user health detection according to the received user health data.
  • the user can start the health detection function of the display device through a simple operation, and collect the user's health data, so that the user can perform health detection anytime, anywhere, and experience a sense of powerful.
  • FIG. 1 is a usage scenario of the display device shown in some embodiments of the present application.
  • FIG. 2 is a block diagram of the hardware configuration of the control device 100 shown in some embodiments of the present application;
  • FIG. 3 is a block diagram of the hardware configuration of the display device 200 shown in some embodiments of the present application.
  • FIG. 4 is a software configuration diagram of the display device 200 shown in some embodiments of the present application.
  • FIG. 5A is another usage scenario of the display device shown in some embodiments of the present application.
  • 5B is a schematic diagram of the appearance of a remote controller shown in some embodiments of the present application.
  • FIG. 5C is a system architecture diagram of a health detection provided by an embodiment of the present application.
  • 5D is a schematic structural diagram of a health sensing module provided by an embodiment of the present application.
  • 5E is a schematic layout diagram of a detection area of a remote control device according to an embodiment of the present application.
  • FIG. 5F is a schematic diagram of a structure stacking of a detection area provided by an embodiment of the present application.
  • 5G is a schematic circuit diagram of a sensor chip provided by an embodiment of the present application.
  • 5H is a schematic circuit diagram of a controller in a health sensing module provided by an embodiment of the present application.
  • 5I is a schematic circuit diagram of an external reference power supply in a health sensing module provided by an embodiment of the present application.
  • 5J is a schematic circuit diagram of an external communication interface in a health sensing module provided by an embodiment of the present application.
  • FIG. 6 is a schematic diagram of an interaction process between a display device and a remote control shown in some embodiments of the present application;
  • FIG. 7 is a startup page of an application shown in some embodiments of the present application.
  • FIG. 8 is an application home page of an application shown in some embodiments of the present application.
  • FIG. 9 is a file information input interface shown in some embodiments of the application.
  • FIG. 10 is a file management interface shown in some embodiments of the application.
  • FIG. 11 is a schematic diagram of an interaction process between a display device and a remote control shown in some embodiments of the present application;
  • FIG. 12 is a schematic diagram of an interaction process between a display device and a remote control shown in some embodiments of the present application;
  • FIG. 13 is a schematic diagram of an interaction process between a display device and a remote control shown in some embodiments of the present application;
  • FIG. 14 is a detection interface shown in some embodiments of the application.
  • FIG. 15 is an abnormality prompt interface shown in some embodiments of the present application.
  • FIG. 16 is a detection result interface shown in some embodiments of the application.
  • FIG. 17 is another detection result interface shown in some embodiments of the present application.
  • FIG. 18 is an interactive control method shown in some embodiments of this application.
  • FIG. 19 is another interactive control method shown in some embodiments of this application.
  • FIG. 20 is a data collection method shown in some embodiments of the present application.
  • FIG. 21 is an exception handling method shown in some embodiments of the present application.
  • FIG. 22 is a flowchart of a communication monitoring method shown in some embodiments of the present application.
  • FIG. 23 is a flowchart of a data processing method shown in some embodiments of the present application.
  • module refers to any known or later developed hardware, software, firmware, artificial intelligence, fuzzy logic, or combination of hardware or/and software code capable of performing the functions associated with that element.
  • the present application provides a terminal device, and the terminal device can be a display device, such as a smart TV, a touch all-in-one computer, or a portable mobile terminal, such as a mobile phone, a tablet computer, and the like.
  • the terminal device can be a display device, such as a smart TV, a touch all-in-one computer, or a portable mobile terminal, such as a mobile phone, a tablet computer, and the like.
  • the following mainly takes a display device as an example to introduce specific implementations of the technical solutions involved in the embodiments of the present application.
  • FIG. 1 is a schematic diagram of a usage scenario of a display device according to an embodiment. As shown in FIG. 1 , the display device 200 also performs data communication with the server 400 , and the user can operate the display device 200 through the smart device 300 or the control device 100 .
  • control device 100 may be a remote control, and the communication between the remote control and the display device includes at least one of infrared protocol communication or Bluetooth protocol communication, and other short-range communication methods, and the display is controlled wirelessly or wiredly. device 200.
  • the user can control the display device 200 by inputting user instructions through at least one of keys on the remote control, voice input, and control panel input.
  • the display device 200 can also be controlled in a manner other than the control apparatus 100 and the smart device 300.
  • the module for acquiring voice commands configured inside the display device 200 can directly receive the user's voice command for control.
  • the user's voice command control can also be received through the voice control device provided outside the display device 200 .
  • the display device 200 is also in data communication with the server 400 .
  • the display device 200 may be allowed to communicate via local area network (LAN), wireless local area network (WLAN), and other networks.
  • the server 400 may provide various contents and interactions to the display device 200 .
  • the server 400 may be a cluster or multiple clusters, and may include one or more types of servers.
  • the software steps executed by one step execution body can be migrated to another step execution body that is in data communication with it for execution as required.
  • the software steps executed by the server may be migrated to be executed on the display device with which it is in data communication as required, and vice versa.
  • FIG. 2 exemplarily shows a configuration block diagram of the control apparatus 100 according to an exemplary embodiment.
  • 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 apparatus 100 can receive the user's input operation instruction, and convert the operation instruction into an instruction that the display device 200 can recognize and respond to, so as to play a role of intermediary between the user and the display device 200 .
  • the communication interface 130 is used for external communication, including at least one of a WIFI chip, a Bluetooth module, NFC or an alternative module.
  • the user input/output interface 140 includes at least one of a microphone, a touchpad, a sensor, a button, or an alternative module.
  • control device 100 further includes a health data collection module 150 for collecting user health data, including heart rate, blood oxygen status, systolic blood pressure, diastolic blood pressure, and the like.
  • control device 100 further includes a contact detection module 160, which is connected to the touch area on the housing of the control device and used to detect the contact input by the user on the touch area.
  • the health data collection module and the contact detection module communicate with the controller 110 through a serial port.
  • control device 100 shown in FIG. 2 may be a remote control.
  • FIG. 3 is a block diagram showing a hardware configuration of the display apparatus 200 according to an exemplary embodiment.
  • display device 200 includes tuner 210, communicator 220, detector 230, external device interface 240, controller 250, display 260, audio output interface 270, memory, power supply, user interface at least one.
  • the controller includes a central processing unit, a video processing unit, an audio processing unit, a graphics processing unit, a RAM, a ROM, and a first interface to an nth interface for input/output.
  • the display 260 includes a display screen component for presenting a picture, and a driving component for driving the image display, for receiving the image signal output from the controller, for displaying the video content, the image content and the menu manipulation interface Components and user-manipulated UI interfaces, etc.
  • the display 260 may be at least one of a liquid crystal display, an OLED display, and a projection display, and may also be a projection device and a projection screen.
  • the tuner demodulator 210 receives broadcast television signals through wired or wireless reception, and demodulates audio and video signals, such as EPG data signals, from a plurality of wireless or cable broadcast television signals.
  • communicator 220 is a component for communicating with external devices or servers according to various communication protocol types.
  • the communicator may include at least one of a Wifi module, a Bluetooth module, a wired Ethernet module and other network communication protocol chips or near field communication protocol chips, and an infrared receiver.
  • the display device 200 may establish transmission and reception of control signals and data signals with the control apparatus 100 or the server 400 through the communicator 220 .
  • the detector 230 is used to collect signals from the external environment or interaction with the outside.
  • the detector 230 includes a light receiver, a sensor for collecting ambient light intensity; alternatively, the detector 230 includes an image collector, such as a camera, which can be used to collect external environmental scenes, user attributes or user interaction gestures, or , the detector 230 includes a sound collector, such as a microphone, for receiving external sound.
  • the outer surface of the display device is provided with a touch area for receiving user contact.
  • the detector 230 further includes a health data collection module, which is connected to the touch area and used to collect user health data, such as heart rate, blood oxygen status, systolic blood pressure, based on the user's contact with the touch area , diastolic blood pressure, etc.
  • the health data collection module and the controller 250 can communicate through a serial port.
  • the controller 250 can open or close the switch of the health data collection module through the serial port, and the health data collection module transmits the collected user health data through the serial port. to the controller 250.
  • the touch area may be set on the side surface of the display device or the surface of the rear case.
  • the touch pad detects the contact input by the user.
  • the health data collection module can be set under the fingerprint identification area to connect with the fingerprint identification area, and then, based on the user's The user's health data is collected by touching the fingerprint identification area.
  • the health data collection module can communicate with the controller of the portable terminal device through the serial port.
  • the terminal controller can open or close the switch of the health data collection module through the serial port, and the health data collection module transmits the collected user health data through the serial port. to the terminal controller.
  • the external device interface 240 may include, but is not limited to, the following: High Definition Multimedia Interface (HDMI), Analog or Data High Definition Component Input (Component), Composite Video Input (CVBS), USB Input (USB) , RGB port, etc. any one or more interfaces. It may also be a composite input/output interface formed by a plurality of the above-mentioned interfaces.
  • HDMI High Definition Multimedia Interface
  • Component Analog or Data High Definition Component Input
  • CVBS Composite Video Input
  • USB USB Input
  • RGB port etc. any one or more interfaces. It may also be a composite input/output interface formed by a plurality of the above-mentioned interfaces.
  • the controller 250 controls the operation of the display device and responds to user operations.
  • the controller 250 controls the overall operation of the display apparatus 200 .
  • the controller 250 may perform an operation related to the object selected by the user command.
  • the object may be any of the selectable objects, such as hyperlinks, icons, or other operable controls.
  • the operations related to the selected object include: displaying operations connected to hyperlinked pages, documents, images, etc., or executing operations of programs corresponding to the icons.
  • the user may input user commands on a graphical user interface (GUI) displayed on the display 260, and the user input interface receives the user input commands through the graphical user interface (GUI).
  • GUI graphical user interface
  • the user may input a user command by inputting a specific sound or gesture, and the user input interface recognizes the sound or gesture through a sensor to receive the user input command.
  • a "user interface” is a medium interface for interaction and information exchange between an application program or an operating system and a user, which enables conversion between an internal form of information and a form acceptable to the user.
  • the commonly used form of user interface is Graphical User Interface (GUI), which refers to a user interface related to computer operations displayed in a graphical manner. It can be an icon, window, control and other interface elements displayed on the display screen of the electronic device, wherein the control can include icons, buttons, menus, tabs, text boxes, dialog boxes, status bars, navigation bars, Widgets, etc. at least one of the visual interface elements.
  • GUI Graphical User Interface
  • the user interface 280 is an interface that can be used to receive control input (eg, physical buttons on the display device body, or others).
  • control input eg, physical buttons on the display device body, or others.
  • the system is divided into four layers, from top to bottom, they are an application layer (referred to as “application layer”), an application framework layer (referred to as “framework layer”) ”), the Android runtime and the system library layer (referred to as the “system runtime layer”), and the kernel layer.
  • application layer an application layer
  • frame layer an application framework layer
  • Android runtime the Android runtime
  • system library layer the system library layer
  • kernel layer the kernel layer
  • At least one application program runs in the application program layer, and these application programs may be a Window program, a system setting program, or a clock program that comes with the operating system; they may also be developed by third-party developers.
  • application such as the Health Manager application shown in Figure 4.
  • the application package in the application layer is not limited to the above examples.
  • the framework layer provides an application programming interface (API) and a programming framework for applications in the application layer.
  • the application framework layer includes some predefined functions.
  • the application framework layer is equivalent to a processing center, which decides to let the applications in the application layer take action.
  • the application program can access the resources in the system and obtain the services of the system during execution through the API interface.
  • the activity manager is used to manage the life cycle of the various applications and general navigation rollback functions, such as controlling the exit, opening, rollback, etc. of the application.
  • the window manager is used to manage all window programs, such as obtaining the size of the display screen, judging whether there is a status bar, locking the screen, taking screenshots, and controlling the change of the display window (such as reducing the display window, shaking display, distorting display, etc.), etc.
  • the system runtime layer provides support for the upper layer, that is, the framework layer.
  • the Android operating system will run the C/C++ library included in the system runtime layer to implement the functions to be implemented by the framework layer.
  • the kernel layer is the layer between hardware and software. As shown in Figure 4, the kernel layer at least 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 sensors, etc.), and power drives, etc.
  • the kernel layer at least 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 sensors, etc.), and power drives, etc.
  • the controller controls the operation and response of the display device 200 and user operations related to the display by running various software control programs (eg, operating systems and/or various application programs) in memory.
  • the control presents a user interface on the display, the user interface includes several UI objects (such as controls, icons, items, etc.); in response to receiving a user command for the UI object on the user interface, the controller can execute the user command. Actions related to the selected object.
  • the display device provided by the present application has a health detection function.
  • the health detection function is implemented based on an application related to the health detection function installed on the display device.
  • the application related to the health detection function is referred to as "health housekeeper”.
  • FIG. 5A is a schematic diagram of an application scenario shown in some embodiments of the present application.
  • the remote control and the display device can communicate based on the Bluetooth Low Energy (BLE) protocol, such as receiving/sending control signals, notification messages, and user health data.
  • BLE Bluetooth Low Energy
  • the remote control collects user health data through its built-in health data collection module, and sends the collected user health data to the display device in real time.
  • the display device completes the interactive control with the remote controller by running the "Health Manager" application in the operating system, and receives the user health data sent by the remote controller, and sends the user health data to the server.
  • the server receives the user's health data sent by the display device, analyzes the user's health data through the health application service corresponding to the "Health Manager” application, and finally returns the health detection result to the display device, which is displayed to the user by the display device.
  • the remote control can also communicate directly with the server, and transmit the user data collected by the health data collection module to the server in real time.
  • the server will generate a health management report after background data processing, and send the report to the display device.
  • the remote controller has various buttons and a touch area, and the touch area is connected to the health data collection module and the contact detection module.
  • the contact detection module can detect the user contact.
  • the health data collection module can collect the user health data under the control of the remote controller.
  • the health data collection module does not run, and the user can start the display device by touching the touch area on the remote controller for a predetermined time. Health check function. It should be understood that since the health detection function of the display device is implemented based on the "Health Manager" application installed on the display device, starting the health detection function of the display device is to start the "Health Manager” application on the display device. Exemplarily, the user can keep the finger in contact with the touch area for 3 seconds, the health data collection module on the remote control starts to run, and the remote control sends a notification to the display device to start the "Health Manager" application on the display device.
  • FIG. 5C is a system architecture diagram of a health detection provided by an embodiment of the present application.
  • the health detection system provided by the embodiment of the present application includes a remote control device, a display device, and a server, and the display device interacts with the remote control device and the server respectively.
  • a health sensing module is added to the remote control device.
  • 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, and analyze the collected data.
  • the user's vital sign data is processed, and the processed user's vital sign data is sent to the display device.
  • vital sign data may include heart rate, blood pressure, blood oxygen, and the like. It should be noted that the vital sign data involved in the embodiment of the present application does not constitute a limitation, and specific settings may be made according to the actual situation, for example, the pulse may also be included.
  • the embodiments of the present application do not limit how to perform data transmission between the remote control device and the display device.
  • it may include but not limited to using Bluetooth (bluetooth, BLE) communication, infrared communication, and the like.
  • BLE Bluetooth
  • the remote control device can perform data transmission with the display device through BLE.
  • data transmission between the remote control device and the display device may be performed through data streams and/or control streams.
  • the remote control device and the display device send a control stream to each other, and the remote control device sends a data stream to the display device.
  • the data stream sent by the remote control device to the display device may include the user's vital sign data, and the control stream sent between the remote control device and the display device includes various control information.
  • control information may include the control information that the display device instructs the remote control device to perform health detection, the control information that the remote control device instructs the display device to open the health management application, and the like.
  • control information may also include control information such as volume adjustment, program adjustment, determination, and return.
  • FIG. 5D is a schematic structural diagram of a health data collection module provided by an embodiment of the application.
  • the health data collection module includes a sensor chip, at least two light emitting diodes (Light Emitting Diodes, LEDs) and photosensitive components , the power module supplies power to the sensor chip, at least two LEDs and the photosensitive components respectively.
  • LEDs Light Emitting Diodes
  • the sensor chip is used to control at least two LEDs to emit light, analyze the reflected light signal collected by the photosensitive component, and convert the light signal collected by the photosensitive component into the user's vital sign data. It should be understood that the embodiment of the present application does not limit the model of the sensor chip, which may be specifically set according to the actual situation.
  • 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 the embodiments of the present application do not limit the wavelengths of light emitted by at least two LEDs.
  • LED1 can emit light with a wavelength of 560 nanometers (nm)
  • LED2 can emit light with a wavelength of 560 nanometers (nm). 905nm light.
  • the photosensitive components are used to collect light signals reflected by capillaries. In some embodiments, the photosensitive components can also collect ambient light signals. It should be understood that the embodiments of the present application do not limit the types of photosensitive components, and examples thereof may be photodiodes (photodiode, PD), silicon photovoltaic cells, and the like. Exemplarily, since the PD has unidirectional conductivity, its electrical properties will change when the light intensity is different, so that the light signal reflected by the capillary and the ambient light signal can be collected.
  • the sensor chip can control at least two LEDs to emit light of at least two wavelengths. After illuminating the capillaries in the user's skin, the light of at least two wavelengths is reflected by the capillaries respectively. Then, the light signal reflected by the capillaries and the ambient light signal are collected by the photosensitive components, and then the light signal reflected by the capillary and the ambient light signal are analyzed by the sensor chip to obtain the user's vital sign data.
  • the sensor chip, the at least two LEDs and the photosensitive components in the remote control device are all powered by the power supply module.
  • the embodiments of the present application do not limit the voltage intensity of the at least two LEDs when they emit light, and can be adjusted by the power module according to the ambient light signal and the light signal reflected by the capillaries.
  • a detection area may be set on the remote control device, and a health detection module and a touch module may be arranged in the detection area at the same time.
  • a schematic diagram of the layout of the detection areas of the two remote control devices is provided below.
  • FIG. 5E is a schematic layout diagram of a detection area of a remote control device according to an embodiment of the present application.
  • the detection area is provided with at least one electrostatic touch area, LED emission area, and PD reception area, and at least one electrostatic touch area, LED emission area, and PD reception area are all disposed on the substrate.
  • the LED emitting area is set above the PD receiving area, and the LED emitting area and the PD receiving area are respectively surrounded by four electrostatic touch areas.
  • FIG. 5F is a schematic structural stacking diagram of a detection area provided by an embodiment of the present application.
  • FIG. 5F is a stack of structures corresponding to the detection area shown in FIG. 5E .
  • the health detection module can be arranged between two plastic shells, a surface glass can be arranged above the health detection module, and two substrates can be used to The surface glass is isolated from the health detection module.
  • the LED emitting area in the health detection module can emit light.
  • the light emitted by the LED emitting area will be reflected to the PD receiving area. , collected by the PD receiving area.
  • the embodiments of the present application do not limit the type of light emitted by the LED emission area, for example, it may be red light, blue light, infrared light, and the like.
  • the LED emitting area may include two LEDs, thereby emitting red and infrared light simultaneously.
  • the substrate may be a printed circuit board (Printed Circuit Board, PCB), a flexible circuit board (Flexible Printed Circuit, FPC) and the like.
  • PCB printed Circuit Board
  • FPC Flexible Printed Circuit
  • FIG. 5G is a schematic circuit diagram of a sensor chip provided by an embodiment of the present application.
  • the circuit schematic diagram of the sensor chip includes a sensor U4, a conversion resistor R2, a FET (Metal-Oxide-Semiconductor Field-Effect Transistor, MOS) tube, a sampling resistor R10, a silicon photocell and three types of LED.
  • MOS Metal-Oxide-Semiconductor Field-Effect Transistor
  • the pins 1 and 5 of the sensor chip U4 are connected to the silicon photovoltaic cell through the conversion resistor R2, the pins 2, 3, 4, 6, 7, and 8 of the sensor U4 are respectively connected to three types of LEDs, and one end of the MOS tube is connected to The pins 4, 6, 7, 8 of the sensor U4 and the sampling resistor R10 are connected.
  • the sampling resistor R10 samples the currents of the three types of LEDs
  • the MOS transistor controls the voltages of the three types of LEDs according to the currents of the three types of LEDs sampled by the sampling resistor R10, thereby controlling the three types of LEDs
  • the intensity of the light so that the three types of LEDs are at the appropriate brightness.
  • the light from the three types of LEDs illuminates the user's capillaries, and through the capillaries, the light signals are reflected onto the silicon photocell. Then, the silicon photocell converts the light signal reflected by the capillary into a current signal and outputs it to the conversion resistor R2, and then the current signal is converted into a voltage signal by the conversion resistor R2. Finally, the conversion resistor R2 outputs the converted voltage signal to the sensor chip U4.
  • LEDs do not limit the three types of LEDs, and examples may include red LEDs, blue LEDs, and infrared LEDs.
  • FIG. 5G is only a circuit of an available sensor chip, and does not constitute a limitation to the present application. In specific applications, the circuit of the sensor chip can be adjusted accordingly according to the actual situation.
  • the circuit of the sensor chip shown in FIG. 5G includes three types of LEDs, which can be adjusted to two types of LEDs or four types of LEDs in specific applications.
  • the photosensitive component in the circuit of the sensor chip shown in FIG. 5G is a silicon photovoltaic cell, and in a specific application, the silicon photovoltaic cell can be adjusted to a PD.
  • the health data collection module may further include a controller to control the operation of the sensor chip, and convert the voltage signal obtained by the sensor chip U4 into the user's vital sign data.
  • the controller in the health data acquisition module includes a plurality of pins.
  • the pins 9 and 10 of the controller in the health data collection module are connected to the software debugging unit (ECK, EDIO) to debug the software program in the controller in the health data collection module through the software debugging unit.
  • Pins 12, 17-19 of the controller in the health data acquisition module are connected to external reference power supplies (VDDA, VA1V2) to provide internal power and reference sources for the controller in the health data acquisition module through the external reference power supply.
  • the pins 1, 21 and 26 of the controller in the health data acquisition module are respectively connected with three types of LEDs (G_ON, IR_ON, R_ON) in the sensor chip circuit, so as to collect the voltage signals of the three types of LEDs; health data acquisition
  • the pins 13 and 14 of the controller in the module are connected to both ends (AJO0, AJO1) of the conversion resistor R2 in the sensor chip circuit, so as to collect the voltage signal converted by the conversion resistor R2; the leads of the controller in the health data acquisition module are connected.
  • Pins 11 and 16 are connected to the MOS tubes (OP_OUT, AJO3) in the sensor chip circuit, so as to control and collect the voltage signals of the MOS tubes. Subsequently, after the controller in the health data collection module collects the above-mentioned signal, the above-mentioned signal may be internally amplified, and then converted into a digital signal.
  • the pins 23-25 and 32 of the controller in the health data acquisition module are respectively connected with external communication interfaces (STA, UTX, URX, RESETn), so as to communicate with external devices through the external communication interfaces.
  • the processor of the health data collection module can turn on the power module to check the sensor chip, so as to perform health checks on the sensor chip. detection. Subsequently, after the sensor chip completes the health detection and the processor of the health data acquisition module collects the voltage signal converted by the conversion resistor R2, the voltage signal can be internally amplified, and then converted into a digital signal to obtain the user's vital signs. data.
  • the software debugging unit may include grounding resistors R7 and R8 to suppress external interference and reduce power consumption.
  • the resistance values of the grounding resistors R7 and R8 can be specifically set according to the actual situation, for example, they can be 100k ⁇ .
  • the power module may include capacitors C1 , C2 , C3 and resistor R1 .
  • the resistor R1 and the capacitor C3 constitute a Resistor-Capacitance circuit (RC) to power on the controller in the health data acquisition module, and the capacitors C2 and C3 are used for filtering.
  • RC Resistor-Capacitance circuit
  • the embodiments of the present application do not limit the parameters of the capacitors C1 , C2 , C3 and the resistor R1 of the power module, which can be set in actual conditions.
  • C1, C2, and C3 may all be 0.1uF/10V
  • R1 may be 10k ⁇ .
  • FIG. 5I is a schematic circuit diagram of an external reference power supply in a health data acquisition module according to an embodiment of the present application.
  • the pin 1 (OUT) of the chip U5 of the external reference power supply is connected to the pin 19 of the processor in the health data acquisition module;
  • the pin 2 (GND) of the chip U5 of the external reference power supply is grounded and at the same time It is connected with one end of capacitor C6, and the other end of capacitor C6 is connected with pin 19 of the processor in the health data acquisition module; pins 3 (EN) and 4 (IN) of the chip U5 of the external reference power supply are respectively connected with the health data acquisition
  • the pin 12 of the processor in the module is connected; the pin 5 (TP) of the chip U5 of the external reference power supply is grounded.
  • FIG. 5J is a schematic circuit diagram of an external communication interface in a health data collection module according to an embodiment of the present application.
  • pins 1, 7, and 8 of the chip J2 of the external communication interface are grounded.
  • the pin 2 (STA) of the chip J2 of the external communication interface is connected to the pin 26 of the processor in the health data acquisition module;
  • the pin 3 (UTX) of the chip J2 of the external communication interface is connected to the processor in the health data acquisition module
  • the pin 23 of the external communication interface chip J2 is connected to the pin 4 (URX) of the chip J2 of the external communication interface and the pin 24 of the processor in the health data acquisition module is connected;
  • the pin 5 (RESETn) of the chip J2 of the external communication interface is connected to the health data
  • the pin 32 of the processor in the acquisition module is connected;
  • the pin 6 (RESETn) of the chip J2 of the external communication interface is connected with the power supply.
  • circuit diagrams of the sensor chip controller, the external reference power supply, and the external communication interface in the health data collection module provided by the embodiments of the present application do not constitute limitations to the present application, and can be specifically set according to actual scenarios in application.
  • the processor in the health data collection module may convert the voltage signal into the user's vital signs after collecting the voltage signal corresponding to the light received by the photosensitive component. data. Subsequently, the user's vital sign data can be separated into original data packets and real-time display data packets, and the original data packets and real-time display data packets are sent to the display device. After receiving the original data packet and the real-time display data packet, the display device can display the data in the real-time display data packet, and send the data in the original data packet to the server for further processing and analysis.
  • the original data package stores the collected original user's vital sign data
  • the real-time display data package stores the preliminarily processed user's vital sign data
  • the embodiments of the present application do not limit how to convert the voltage signal corresponding to the light received by the photosensitive component into the user's vital sign data, which may be determined according to the type of vital sign data to be acquired.
  • the voltage signal can be converted into heartbeat data by a heartbeat analysis algorithm.
  • the health data collection module includes red LEDs and infrared LEDs
  • the data collection frequency of the processor in the health data collection module is 100 Hz
  • voltage signals in three states are collected in each collection data cycle, including: State 1 red LED is on, state 2 infrared LED is on, state 3 red LED and infrared LED are all off.
  • the processor in the health data collection module work in state 1 for 3 seconds, in state 3 for 2 seconds, in state 2 for 3 seconds, in state 3 for 2 seconds, and in each work state, the processor in the health data collection module The voltage signal corresponding to the light received by the photosensitive component will be collected once.
  • the heartbeat analysis algorithm the voltage signals collected in every two collected data cycles are processed and synthesized into one heartbeat data point. Subsequently, the heartbeat data point can be stored in the original data packet.
  • the embodiments of the present application do not limit the preliminary processing of the user's vital sign data.
  • analysis may be performed according to a certain vital sign data of the user within a period of time to obtain other vital signs related to it.
  • Physical data Exemplarily, if the original vital sign data of the user is a heartbeat data point, then the processor in the health data collection module can generate a heartbeat curve from the heartbeat data points in a sending cycle, and then parse out the heartbeat curve from the heartbeat curve.
  • the user's heartbeat data, heart rate value, blood oxygen value, microcirculation value, systolic blood pressure value and diastolic blood pressure value are stored in the real-time display data package.
  • the real-time display data packets and original data packets can be sent to the processing module of the remote control device , the real-time display data packet and the original data packet are sent to the display device by the processing module of the remote control device.
  • the processor in the health data collection module separates the user's vital sign data into real-time display data packets and original data packets, it can also directly pass an external device connected to the processor in the health data collection module.
  • the communication interface sends real-time display data packets and original data packets to the display device.
  • the processor in the health data collection module may further compress the real-time display data packets and the original data packets to improve transmission efficiency.
  • the vital sign data of the user in the original data packet within 1.28 seconds may be compressed into 168 bytes (byte), and then the original data packet is sent.
  • the embodiment of the present application does not limit the sending period of the real-time display data packet and the original data packet.
  • the sending period may be 1 second, 1.28 seconds, 1.8 seconds, or the like.
  • the remote control when the remote control has been paired with the display device, after the contact detection module detects that the user is in continuous contact with the touch area, it notifies the controller of the remote control through serial communication, and the control of the remote control After receiving the notification, the display device sends a request for instructing to start the health detection function to the display device.
  • the display device starts the "Health Manager” application in response to the request, and displays the interface of the "Health Manager” application.
  • the display device plays a video program based on a live TV application or a third-party audio and video application
  • a control instruction instructing to start the "Health Manager” application is received
  • the currently running live TV application or the third-party audio and video application will transfer the program to the display device.
  • a button for activating the health detection function may also be set on the remote control, so that the user can start the application related to the health detection function on the display device with one key, and the specific operation process will not be repeated.
  • the remote controller mentioned below refers to the controller of the remote controller, as shown in the figure Controller 110 shown in 2.
  • the remote control communicates with the health data collection module
  • the controller of the remote control communicates with the health data collection module
  • the remote control sends instructions to the display device it refers to On behalf of "the controller of the remote control sends commands to the display device.
  • the remote control in the case where the remote control is not paired with a display device, if the remote control detects the user's continuous contact with the touch area, it will emit a specific infrared code. After the display device receives the specific infrared code, it starts the "Health Manager” application, displays the interface of the "Health Manager” application, and displays a pairing prompt, so as to remind the user to operate the display device to pair with the remote control through the pairing prompt. For example, by popping up a Toast prompt on the interface of the "Health Manager” application, the user is reminded to operate pairing.
  • the user may also input a preset voice password to input a control instruction for starting the "Health Manager” application.
  • a preset voice password such as "health check” or "start health housekeeper”
  • the display device recognizes the voice password input by the user and determines the corresponding voice password. to start the Health Manager application.
  • the user may also operate the display device to display the application center interface, and then start the "Health Manager” application by clicking the application icon of the "Health Manager” application displayed in the application center interface.
  • a terminal device with a built-in health data collection module such as a display device with a touch area mentioned in the foregoing embodiment, or a portable terminal device supporting a fingerprint recognition function
  • its health detection function is also based on the installed health.
  • the implementation of the application related to the detection function such as the above-mentioned "Health Manager” application.
  • the display device or a portable terminal device detects that the user has been in contact with the touch area for a preset time, it will pull up the "Health Manager” application to display the interface of the application.
  • the display device has a built-in health data collection module and a touch area on the rear case.
  • the display device When the user covers the touch area of the rear case with a finger for 3s, the display device will start the "Health Manager” application, and jump from the current display interface to the interface of the "Health Manager” application.
  • the user's mobile phone has a built-in health data collection module and has a fingerprint identification area. When the user covers the finger on the fingerprint recognition area for 3s, the mobile phone will start the “Health Manager” application and display the interface of the "Health Manager” application.
  • the startup page shown in FIG. 7 is first displayed.
  • an introduction to application-related functions may be displayed on the startup page.
  • the startup page is cancelled and the application home page is entered. For example, at the beginning of displaying the splash page, a countdown is displayed in the upper left corner of the splash page. When the countdown is over, cancel the startup page and enter the application home page.
  • the user agreement presentation page is first displayed. For example, as shown in FIG. 8 , in the case that the “Health Manager” application is successfully launched for the first time, the user agreement presentation page is displayed first.
  • the user agreement display page can display the application usage agreement or regulations, such as disclaimers.
  • the user can agree or reject the displayed agreement content by operating the relevant controls on the user agreement display page. If the user inputs an operation of agreeing to the content of the agreement, the display device revokes the user agreement display page, and enters the startup page or directly enters the application home page. If the user inputs an operation of rejecting the content of the agreement, the display device closes the "Health Manager” application, cancels the user agreement display page, and returns to the interface before launching the "Health Manager” application.
  • FIG. 8 is an example of a homepage of a "Health Manager" application shown in this application.
  • the homepage of the application is mainly used to guide a user to perform health detection or establish a health file in a tourist mode.
  • the guest mode refers to a mode in which the user does not need to perform account registration and binding.
  • the home page of the application includes a control “Start Creation” for triggering establishment of a health profile and a control “Experience Immediately” for triggering immediate health detection in tourist mode.
  • the user can enter the profile information input interface by operating the "Start Creation” control, enter the user's characteristic information in the profile information input interface, and can also enter the health check instruction in the profile management interface to instruct the display device to Designate a user to perform health detection, as shown in the embodiments shown in FIGS. 9-10 for details; alternatively, the user may input a health detection instruction by operating the “experience immediately” control to instruct the display device to immediately perform health detection on it.
  • FIG. 9 is a file information input interface exemplarily shown in the application, which may specifically be an interface entered by a user after operating the "start creation" control in the home page of the application.
  • the file information input interface includes a plurality of input items, namely avatar, nickname, gender, age, height and weight, etc. Users can upload avatar files, create user nicknames, and select gender, age, height and weight in this interface. After the input is completed, you can instruct the display device to save the entered user feature information by operating the "Confirm” control, and enter the file management interface, or operate the "Cancel" control to return to the application home page.
  • FIG. 10 is a file management interface exemplarily shown in the application, which may specifically be an interface entered by a user after operating the "confirm" control in the file information input interface.
  • the file management interface displays the created file cards, each file card corresponds to a set of operation controls, which are the control "immediate physical examination” used to trigger the health check and the control used to view the previous health check results. "Medical report”.
  • the user can select the control on the corresponding file card to operate according to the detection object to input the health detection instruction. For example, when it is necessary to perform a health check on "grandma", operate the "immediate physical examination” control on the file card of "grandmother".
  • a tourist card is also displayed in the file management interface, so the user can operate the "immediate physical examination" control on the tourist card to input a health check instruction for testing in tourist mode.
  • the file management interface also displays a control "Add Member +" for creating new member file information. When the user operates this control, he will re-enter the file information input interface, and the user can enter new members in the file information input interface. file information.
  • the display device when the display device receives the input health detection instruction, it displays an operation guidance interface, and simultaneously sends a data collection instruction to the remote control to instruct the remote control to start collecting user health data.
  • the remote controller starts the health data collection module after receiving the data collection instruction sent by the display device. After the health data collection module is successfully started, the remote control sends a notification message indicating that the health data collection module is started successfully to the display device. As shown in FIG. 11 , in a specific implementation, the remote controller responds to the received data collection instruction and communicates through the serial port to turn on the switch of the health data collection module. After the switch of the health data collection module is turned on, the health data collection module notifies the remote control through serial communication. Further, the remote controller can determine whether the health data collection module is successfully started according to whether the notification of the health data collection module is received.
  • a notification message indicating that the health data collection module is started successfully is sent to the display device.
  • the display device sends a data collection instruction to the remote controller, the timing operation is performed. If a notification message indicating that the health data collection module is successfully started is received within a preset time period, a detection interface is displayed, and the detection interface is used to display the detection progress and/or real-time user health data. If the notification message indicating that the health data collection module is successfully started is not received within the preset time period, a fault prompt will be displayed on the operation guidance interface. Exemplarily, the content of the fault prompt may be "failure to start the health data collection module". And after the prompt is completed, return to the previous interface.
  • the remote control after receiving the data collection instruction sent by the display device, the remote control starts the health data collection module, and detects whether there is user contact on the touch area through the contact detection module.
  • the contact detection module detects that the user is in contact with the touch area, and it is determined that the health data collection module is successfully activated
  • the remote control sends a notification message to the display device indicating the start of data collection.
  • the display device After the display device sends the data collection instruction to the remote controller, it performs a timing operation to record the waiting time.
  • a detection interface is displayed, which is used to display the detection progress and/or the real-time user health data. If the notification message sent by the remote controller to start collecting data is not received within the preset waiting time, a timeout prompt will be displayed on the operation guidance interface. Exemplarily, the content of the timeout prompt may be "timeout, no user contact is detected”. And after the prompt is completed, return to the previous interface.
  • the timing operation for recording the waiting duration is referred to as the first timing operation.
  • an operation guidance interface is displayed, and a control for triggering the health detection, such as a "start detection” control, is displayed in the operation guidance interface.
  • a control for triggering the health detection such as a "start detection” control
  • the remote control sends the collected user health data to the display device in real time.
  • the user can start the health detection function of the display device through a simple operation, and collect the user's health data, so that the user can perform health detection anytime, anywhere, Strong experience.
  • the terminal device controller turns on the switch of the health data collection module through the serial port in response to the health detection instruction input by the user. After the health data collection module is successfully opened, it will notify the terminal device controller through the serial port, and the terminal device controller will control to display the operation guidance interface on the screen.
  • the terminal device controller detects the user's contact within the preset waiting time period, a detection interface is displayed, and at this time, the health data collection module starts to collect user health data.
  • the health data collection module transmits the collected user health data to the terminal device controller.
  • the terminal device controller sends the collected user health data to the server, so as to analyze the user health data through the server, and return the health detection result to the terminal device.
  • the time for data collection can be pre-limited, that is, the remote control is limited to complete the collection and transmission of the user's health data within the predetermined time, and the display device is limited to The user's health data is received within the preset receiving time.
  • a timing operation is performed to record the duration of data reception.
  • the timing operation for recording the data reception duration is referred to as the second timing operation.
  • the remote control encapsulates the user health data collected by the health data collection module into data packets in real time and sends them to the display device until the collection is completed.
  • this application refers to a data packet encapsulating the user's health data as a health data packet.
  • the health data collection module After the health data collection module is started, it continuously collects user health data, and synchronizes the collected user health data to the remote controller in real time through serial communication.
  • the remote controller encapsulates the latest user health data collected in health data packets at regular intervals and sends it to the display device until the health data collection module completes the collection. It is worth noting that when the remote controller receives a preset number of valid data packets or the data receiving duration reaches a predetermined duration, it is considered that the data collection is completed.
  • the preset number preset reception duration/interval duration of sending data packets to the display device
  • valid data packets refer to the data packets sent to the display device when no abnormality is detected
  • the user health data encapsulated therein is valid data .
  • the display device sends a stop collection instruction to the remote control.
  • the remote controller closes the health data collection module in response to the stop collection instruction.
  • the preset receiving duration is 30s
  • the preset number of health data packets is 24. That is, the remote control should send 24 health data packets to the display device within 30s.
  • the remote controller encapsulates the collected user health data into a health data package according to a format pre-agreed with the display device, and the health data package includes at least a package sequence identifier, user health data and an abnormality identifier.
  • the packet sequence identifier i represents the i-th health data packet sent by the remote control to the display device, and the abnormality identifier represents whether an abnormality is detected and the abnormality type.
  • the detection of abnormality may include detection of abnormality caused by environmental changes, such as strong light environment, weak communication signal, etc., and abnormal contact between the user and the touch area, such as the user removing a finger from the touch area.
  • the data format of the health data packet is as follows:
  • the data format of the health data packet is as follows:
  • the display device after receiving the health data packet, retrieves the required data for displaying the detection interface from the health data packet, and then displays and updates the detection interface according to the retrieved data.
  • the detection interface can display the detection progress and /or at least one item of user health data.
  • the hexadecimal bytes in the health data packet are converted into decimal, and then various health data and abnormal identifiers are selected from the decimal bytes.
  • the resulting byte sequence is [1,12,76,-1,29,6,-13,-28,-40 ,-49,-57,-63,-66,-65,-63,-60,-60,-63,-68,-77,-86,-95,-103,-108,-111,- 113,-112,-111,-110,-108,-108,-109,-111,-115,-115,-109,-91,-59,-17,29,70,97,104,92,66 ,33,0,-26,-47,-60,-69,-73,-74,-73,-71,-69,-69,-72,-79,-86,-94,-101, -105,-109,-
  • the display device determines the current detection progress according to the packet sequence identifier in the newly received health data packet and the preset number of health data packets. For example, assuming that the preset number is 24 and the packet sequence identifier of the newly received healthy data packet is 6, it is determined that the current detection progress is 6/24, that is, 25%.
  • the display device determines the current detection progress according to the current data receiving duration and the preset receiving duration. For example, assuming that the current data reception duration is 10s and the preset reception duration is 30s, it is determined that the current detection progress is 10s/30s, that is, 1/3.
  • the detection interface is updated according to the health data packet.
  • the detection interface displays some or all of the user's health data in the first health data packet, such as real-time heart rate status data and blood oxygen status data, And, the detection progress is displayed, such as a progress bar representing the detection progress, and the detection progress can be determined according to the packet sequence identifier of the healthy data packet or the collection time.
  • the detection interface is updated according to the data in the second health data packet.
  • a heart rate status curve is drawn in the content area on the upper side of the detection interface, and the heart rate status value, blood oxygen status data, and current heart rate status data are displayed in the content area on the lower side of the detection interface.
  • Fig. 14 is a detection interface shown in some exemplary embodiments of the present application, the content area on the upper side of the interface displays a real-time changing heart rate state curve, and the content area on the lower side sequentially displays the heart rate state value "70BPM” ", the blood oxygen status value "85%” and the detection progress bar with the current progress of "62%".
  • the data collection instruction is sent to the remote controller.
  • the remote controller starts the health data collection module, and then enters the health detection process described in the above embodiment.
  • the health data collection module collects user health data based on the user's contact with the touch area. Therefore, during the health detection process, the user is required to keep the finger in contact with the touch area. Once the user removes the finger from the touch area, the contact between the user and the touch area will be disconnected, and the data collected by the health data collection module will not be the real health data of the user, resulting in abnormal detection.
  • the detection abnormality caused by the disconnection of the user's contact with the touch area is referred to as the user contact abnormality.
  • the abnormal conditions that affect the collection of user health data also include weak communication signals, strong light environments, and the like.
  • the remote control notifies the display device whether there is an abnormality and the abnormality type by encapsulating the abnormality identifier in the health data packet.
  • the contact detection module detects that the contact between the user and the touch area is disconnected, it means that the user moves the finger from the touch area, and the contact detection module communicates through the serial port. Notify the remote.
  • the remote control determines that there is an abnormal user contact according to the notification from the contact detection module.
  • the remote control encapsulates the abnormality identifier representing the abnormality of the user's contact in the health data packet, and sends it to the display device.
  • the display device can determine that a user contact abnormality occurs according to the abnormality identifier in the data packet.
  • the remote control encapsulates an abnormality identifier indicating no abnormality in the health data packet and sends it to the display device; the display device can determine that there is no abnormality currently based on the abnormality identifier in the health data packet.
  • the contact detection module continues to detect the user's contact with the touch area, and at the same time, the health data collection module continues to collect user health data.
  • the contact detection module detects that the user is in contact with the touch area again, it will notify the remote control through serial communication.
  • the remote control determines that the user is in contact with the touch area again according to the notification through the serial port communication, that is, the user's contact is abnormally released.
  • the remote controller encapsulates an abnormality identifier indicating no abnormality in the health data packet and sends it to the display device.
  • the display device can determine whether the user's contact abnormality is lifted according to the abnormality identifier in the data packet.
  • the data packet sent by the remote controller to the display device when there is no abnormal condition is a valid data packet, that is, the abnormality identifier in the valid data packet indicates that there is no abnormality.
  • the data packets sent by the remote control to the display device under abnormal conditions are invalid data packets, that is, the abnormality identifier in the invalid data packet represents abnormal types of user contact, weak communication signal or strong light environment. In this way, the display device can distinguish valid data packets from invalid data packets according to the abnormal identification in the healthy data packets.
  • the display device determines whether the health data packet is a valid data packet according to an abnormality identifier in the health data packet. If the health data packet is a valid data packet, the detection interface is updated according to the health data packet.
  • the display device can also determine whether the health data package is valid according to the user health data in the health data package. For example, when there are consecutive 0s in the user health data, it can be determined that the user health data is invalid data, and the health data packet is an invalid data packet.
  • the display device in the process of receiving data, the display device counts the number of received valid data packets in real time to determine whether the data collection process can be terminated according to whether the number of valid data packets reaches a preset number.
  • the display device determines whether there is an abnormal user contact according to the abnormality identifier in the health data packet; And according to whether a valid data packet sent by the remote control is received within the preset time period when the user's contact abnormality occurs, it is determined whether the user re-contacts the touch area within the preset time period. If the valid data packet sent by the remote control is not received within the preset time period when the user's contact abnormality occurs, it means that the user has not re-contacted the touch area within the preset time period, and a control instruction is sent to the remote control to instruct it to stop collecting data .
  • the remote controller turns off the health data collection module in response to receiving the control instruction.
  • the valid data packet sent by the remote control is received within the preset time period when the user's contact is abnormal, it means that the user re-contacts the touch area within the preset time period, that is, the user's contact is abnormally released, and the health data sent by the remote control will continue to be received. packets, and record the number of valid packets received. When the number of received valid data packets reaches the preset number, a control command is sent to the remote controller instructing it to stop collecting data, and all valid data packets are sent to the cloud server. The remote controller turns off the health data collection module in response to receiving the control instruction instructing to stop collecting data.
  • the display device performs a first timing operation after receiving a notification message sent by the remote controller instructing to start collecting data to record the duration of data reception; after the display device receives the health data packet sent by the remote controller, Determine whether there is an abnormal user contact according to the abnormality identifier in the health data packet; if there is an abnormal user contact, perform a second timing operation to record the abnormal duration, and determine whether the remote control is received before the abnormal duration reaches the maximum duration.
  • the remote controller turns off the health data collection module in response to the control instruction. If a valid data packet sent by the remote control is received before the abnormal duration reaches the maximum duration, the health data packet sent by the remote control will continue to be received until the data reception duration reaches the preset reception duration. When the data receiving time reaches the preset receiving time, a control command is sent to the remote controller instructing it to stop collecting data, and all valid data packets received are sent to the cloud server. The remote controller turns off the health data collection module in response to receiving the control instruction instructing it to stop collecting data.
  • the data collection duration is equal to the data reception duration
  • the preset collection duration is equal to the preset reception duration
  • the disconnection time of the user is too long, that is, exceeds the maximum duration, it indicates that the user may enter into other transactions, or stop paying attention to health detection, and the data collection and detection will be terminated. It can prompt the user that the data collection fails, that is, the health check fails.
  • an abnormality prompt interface is displayed.
  • the exception prompt interface includes a control for triggering re-detection, and the user can trigger a new detection process by operating the control.
  • the exception prompt interface can also prompt failure reasons, user suggestions, etc.
  • FIG. 15 is an abnormality prompt interface shown in some exemplary embodiments of this application.
  • the abnormality prompt interface shows: the failure reason "the data abnormality rate is high, and the test result cannot be generated normally", and the user suggests "re-test is recommended. During the test, please keep your finger completely covered in the touch area”.
  • the abnormal prompt interface also displays a "re-detection” control and a “cancel” control. The user can click “re-detection” to instruct to return to the operation guidance interface for re-inspection, or click the "cancel” control to instruct to return to the application front page.
  • a timing operation is performed to record the abnormal duration. If the user contact is not re-detected for the maximum duration, the health data collection module is turned off to stop collecting data. If the user contact is detected again within the maximum duration, the health data collection module is not turned off to continue collecting data until the collected valid user health data meets the preset number, or the data collection time reaches the preset collection time. When the collected valid user health data meets the preset number, or the data collection time reaches the preset collection time, the health data collection module is turned off.
  • the display device completes the interactive control with the remote controller by running the "health housekeeper” application in the operating system, and receives the user health data sent by the remote controller.
  • the display device will no longer be able to interact with the remote control, nor will it continue to receive user health data sent by the remote control.
  • the display device in order to ensure normal communication between the remote control and the display device, the display device periodically sends an online indication message to the remote control after sending the data collection instruction to the remote control.
  • the display device sends a stop collection instruction to the remote control, and stops sending an online instruction message to the remote control.
  • the remote control determines whether the communication of the display device is abnormal according to the reception of the online instruction message. For example, if the online indication message sent by the display device is not received for three consecutive times, it is determined that the communication of the display device is abnormal. If the display device communication is abnormal, turn off the health data collection module to stop collecting user health data. If the display device always communicates normally, the health data collection module is turned off when the stop collection instruction sent by the display device is received. It should be understood that after the health data collection module is turned off, the user's health data will not be sent to the display device, and further, the health detection process is terminated.
  • the "Health Manager” application sends a heartbeat packet to the remote controller at preset intervals. For example, send a heartbeat packet to the remote control every 3 seconds. If the remote controller does not receive the heartbeat packet sent by the "Health Manager” application for three consecutive times, close the health data collection module. Otherwise, when receiving the stop collection instruction sent by the display device, close the health data collection module.
  • the remote control in order to ensure normal communication between the remote control and the display device, during the data collection process, the remote control periodically sends an online inquiry message to the display device. After receiving the online inquiry message sent by the remote control, the display device returns an online response message. The remote control determines whether the communication of the display device is abnormal according to the reception of the online response message. For example, if the online response message returned by the display device is not received for two consecutive times, it is determined that the communication of the display device is abnormal. If the display device communication is abnormal, turn off the health data collection module to stop collecting user health data. If the display device always communicates normally, the health data collection module is turned off when the stop collection instruction sent by the display device is received.
  • the remote controller sends a heartbeat packet to the "Health Manager” application at preset intervals. For example, send a heartbeat packet to the "Health Manager” application every 3 seconds. After receiving the heartbeat packet sent by the remote controller, the "Health Manager” application returns a heartbeat response message to the remote controller.
  • the remote control can determine the communication connection with the "Health Manager” application according to the reception of the heartbeat response message. If the remote controller does not receive a heartbeat response message sent by the "Health Manager” application for two consecutive times, indicating that the "Health Manager” application communication is abnormal, the health data collection module is turned off, and the health detection process is terminated. Otherwise, when receiving the stop collection instruction sent by the display device, the health data collection module is turned off.
  • the display device in order to ensure normal communication between the remote control and the display device, the display device returns a reception response message to the remote control in response to receiving the health data packet sent by the remote control.
  • the remote control determines whether the communication of the display device is abnormal according to the reception of the response message. For example, if the reception response message returned by the display device is not received for two consecutive times, it is determined that the communication of the display device is abnormal. If the display device communication is abnormal, turn off the health data collection module to stop collecting user health data. Otherwise, when receiving the stop collection instruction sent by the display device, close the health data collection module.
  • the remote control determines the communication connection with the "Health Manager” application according to the reception of the reception response message. If the remote controller does not receive a reception response message returned by the "Health Manager” application for two consecutive times, indicating that the "Health Manager” application communication is abnormal, the health data collection module is turned off, and the health detection process is terminated.
  • the remote control can monitor the abnormal communication of the display device and actively close the health data collection module to terminate the data collection. process, thereby preventing the health data collection module from always working and exhausting the power of the remote control.
  • the display device sends all the received health data packets to the cloud server.
  • the display device intercepts the user health data from each health data packet, and then uses the packet sequence identifier of each health data packet as the splicing sequence, splices the intercepted user health data, and splices the spliced user health data. data into bytes to generate new packets. Finally, the generated new data packets are sent to the cloud server.
  • the remote control encapsulates the collected user health data into real-time data packets and original data packets according to the format agreed with the display device in advance, the real-time data packets are used to display the detection interface on the display device, and the original data packets For sending to the cloud server.
  • the data format of the real-time data packet may be the data packet format shown in the foregoing first example
  • the data format of the original data may be the data packet format shown in the foregoing second example.
  • the header code of the real-time data packet is different from that of the original data packet.
  • the display device can distinguish the real-time data packet from the original data packet according to the data header code of the received data packet.
  • the data header of the original data packet may be 0, and the data header of the real-time data packet may be 1. Then, if the data header code of the data packet received by the display device is 0, it means that the data packet is an original data packet, and if the data header code of the data packet received by the display device is 1, it means that the data packet is real-time data Bag.
  • the display device needs to parse the real-time data packet, and then can display the detection interface according to the parsing result.
  • the display device does not need to parse the received raw data packets, but sends all the received raw data packets to the cloud server after the data collection is completed.
  • the display device intercepts the original health data from each original data packet, and then uses the packet sequence identifier of each original data packet as the splicing sequence, splices the intercepted original health data, and splices the spliced original health data. Data is converted into bytes to generate new packets. Finally, the generated new data packets are sent to the cloud server. Exemplarily, according to the original data packet format, the data from the 23rd position to the 190th position is intercepted, that is, the original health data is obtained.
  • the format of the data packet sent to the cloud server is as follows:
  • the original health data (1) is the user health data in the original data package whose package sequence identifier is 1
  • the original health data (2) is the user health data in the original data package whose package sequence identifier is 2. . . .
  • the data packet includes user health data intercepted from each original data packet.
  • the server receives the data packet sent by the display device, first parses out the user health data in the data packet; then analyzes the user health data by using a preset analysis algorithm to obtain the health detection result; finally sends the health detection result To the display device to display the health check result to the user on the display device.
  • the health detection result may include one or more of a heart rate variability index, symptom description information, symptom cause analysis, and user suggestion information.
  • the server uses a preset analysis algorithm to analyze the user's health data, and finds that the user's heart rate variability index is 67, the symptoms include palpitation, shortness of breath, etc., and the symptoms include changes in body position, physical activity, emotional anxiety , fear, excitement, drinking, smoking, drinking tea, drinking coffee, etc., the user suggestions given include quit smoking, quit drinking, drink less strong tea, increase aerobic exercise, stay up late, avoid fatigue, etc.
  • the display device sends user feature information to the server while sending the user health data to the server, so that the server can analyze the user health data in combination with the user feature information.
  • the user characteristic information may include the user's age, gender, height, weight, and the like. It should be understood that the user characteristic information may be information input by the user from the profile information input interface. In the scenario where the user triggers the health check by operating the "immediate physical examination" control on a file card in the file management interface, after the data collection is completed, the display device will collect the user health data and the user feature information corresponding to the file card. sent to the server together.
  • the server may also use preset content recommendation rules to process the health detection results, determine recommended content that matches the health detection results, and send relevant information of the recommended content to the display device, so as to pass the display device Push corresponding recommended content to users. For example, if the health detection result shows that the user's heart rate variability index is high, content that helps the user to improve cardiovascular health can be recommended to the user, such as healthy eating recipes, exercise instructional videos, etc.
  • the related information of the recommended content is referred to as recommendation information.
  • the recommended information may include display information and jump parameters.
  • the display information includes pictures of the recommended content, title text, etc., which are used for display in the user interface; the jump parameters are related parameters used to open the recommended content.
  • the recommended content can be: applications, such as "AI fitness” applications; content provided by designated applications, such as video content in small video applications; video programs, such as exercise teaching videos, fat-reducing meal practice videos, etc.; It can be a specified page in a specified application, such as a fitness item page in the "AI Fitness” application.
  • the server may combine the health detection result with the user characteristic information to determine the recommended content that matches both the health detection result and the user characteristic.
  • the determined recommended content will conform to the user's health condition and personal characteristics at the same time. For example, if the health test result shows that the user is overweight, and the user characteristic information shows that the user is older, content that helps the user lose weight and is suitable for senior users can be recommended to the user, such as healthy fat-reducing meals, healthy equipment and suitable for senior users. fitness programs, including jogging, brisk walking, Tai Chi and other non-intense exercises.
  • the health detection result shows that the user is overweight, and the user characteristic information shows that the user is female
  • content that helps the user to lose weight and is suitable for female users can be recommended to the user, such as healthy fat-reducing meals and health care suitable for female users.
  • Equipment, fitness programs such as yoga, calisthenics, etc.).
  • the server obtains user interest information in advance, so that the health detection result, user characteristic information and pre-acquired user interest information can be combined to determine the user interest information, the health detection result and the user characteristic information at the same time. Matching recommended content. In this way, the determined recommended content will meet the user's interests, health conditions and personal characteristics at the same time.
  • the content tag has the ability to distinguish categories of the content, and it can be a keyword contained in the content or a category name of the category to which the content belongs.
  • the content source is the source of the content, including an application or applet, plug-in, etc.
  • the user's degree of interest in a content tag or content source of a certain content may be used to characterize the user's degree of interest in the content.
  • the user interest information may include the user's interest in content tags and/or applications/plug-ins (eg, Widgets).
  • the user's interest in a certain content tag may be determined according to the user's click behavior on the content with the content tag, and the user's interest in a certain application/plug-in may be determined according to the user's usage of the application/plug-in. It should be understood that the higher the number of clicks and the frequency of clicks on the content with a certain content tag, the higher the user's interest in the content tag; the longer the user uses an application/plug-in, the higher the frequency of use , the user is more interested in the application/plug-in.
  • the display device when the display device receives a user's selection operation on content, the display device reports relevant information about the content selected by the user to the server.
  • the server extracts at least one content tag from the content-related information reported by the display device. If the extracted content tag is a tag selected by the user, the number of selections corresponding to the content tag is increased by 1. If the extracted content tag is For a new label that has not been selected by the user, the label is saved, and the number of times the user has selected the content label is 1.
  • the server can collect the number and frequency of user selection of each content tag, that is, the number and frequency of clicks, so that the user corresponding to each content tag can be determined according to the number and frequency of clicks corresponding to each content tag. degree of interest.
  • the content-related information may include content title, genre, introduction information, and the like.
  • the user interest degree of the content tag may be represented by an interest score, and the interest score is obtained by evaluating the number and frequency of user clicks corresponding to the content tag based on a preset evaluation strategy. For example, if the number of clicks corresponding to the content tag "fitness" > M1 and the click frequency > n1, the user interest degree corresponding to the content tag "fitness” is 3 points; if the number of clicks corresponding to the content tag "weight loss" > M2 and the frequency of clicks >n2, the user interest degree corresponding to the content label "weight loss" is 4 points.
  • the display device when the user opens an application or a small program plug-in (such as a Widget) on the display device, the display device reports the user's use notification of the application or plug-in to the server; when the user closes the display device When the application or plug-in is used, the display device reports to the server the duration of the user's current use of the application or plug-in.
  • the server records the user's usage of each application and plug-in according to the usage notification and usage time reported by the display device, and then determines the user's interest degree corresponding to each application or plug-in according to the user's usage of each application or plug-in.
  • the degree of user interest corresponding to the application or the applet can be represented by an interest score, and the interest score is obtained by evaluating the usage situation corresponding to the application or the applet based on a preset evaluation strategy. For example, if the number of times of use corresponding to the "AI Fitness" application>S1 and the total use time>T1, the user interest degree corresponding to the "AI Fitness” application is 3 points; if the number of times of use corresponding to the "AI Fitness" application>S2 and use If the total duration > T2, the user interest degree corresponding to the "AI Fitness” application is 4 points.
  • the server may combine the health detection result, user characteristic information and pre-acquired user interest information to determine the recommended content that matches the user interest information, the health detection result and the user characteristic information at the same time.
  • the server first uses the content recommendation rules to process the user characteristic information and the health detection result to preliminarily screen out candidate content that matches the user characteristic information and the health detection result; then determine the content label of each candidate content; Then determine the user interest degree corresponding to the content label of each candidate content according to the pre-obtained user interest information, and determine the candidate content to which the content label whose user interest degree is greater than the preset interest degree threshold belongs to the recommended content; The recommendation information set formed by the recommendation information corresponding to the content is sent to the display device.
  • the server may also assign a priority to each recommended content according to the principle that the higher the user's interest, the higher the priority of the recommended content, and send the priority identifier to the display device as part of the recommended information.
  • the display device can distinguish the difference of the user's interest in different recommended contents according to the priority identifier in each recommendation information, so as to preferentially display the recommended contents that the user is more interested in.
  • the server first uses the preset content recommendation rules to process the user feature information and the health detection results to preliminarily screen out candidate content that matches the user feature information and the health detection results; then determine each The content source of the candidate content, wherein the content source of the candidate content is an application or plug-in on the display device; then determine the user interest degree corresponding to the content source of each candidate content according to the pre-obtained user interest information, and set the user interest degree greater than the pre-acquired user interest degree.
  • the candidate content of the content source with the set interest degree threshold is determined as the recommended content; finally, the recommended information set composed of the recommended information corresponding to all the recommended contents is sent to the display device.
  • the server may also assign a priority to each recommended content according to the principle that the higher the degree of interest of the content source, the higher the priority of the recommended content, and send the priority identifier to the display device as part of the recommendation information.
  • the display device can distinguish the difference of the user's interest in different recommended contents according to the priority identifier in each recommendation information, so as to preferentially display the recommended contents that the user is more interested in.
  • the display device after receiving the health detection result and the set of recommendation information returned by the server, the display device enters the detection result interface from the detection interface, and displays the health detection result and at least one recommended content collectively on the detection result interface.
  • the health test result may be displayed in the first content area of the test result interface
  • the display information of at least one recommended information ie the title, picture, etc. of the recommended content, may be displayed in the second content area of the test result interface.
  • At least one tab is displayed in the second content area of the detection result interface, and at least one recommended content randomly selected from the recommended information set is displayed in each tab respectively.
  • a preset number of tabs may be displayed in the second content area, and a preset number of recommended contents randomly selected from the recommendation information set may be displayed in each of the tabs respectively.
  • the first content area and the second content area are respectively located on the upper and lower sides of the detection result interface, and the area occupied by the first content area and the second content area can be divided according to the requirements of the content to be displayed.
  • FIG. 16 is a detection result interface shown in some exemplary embodiments of the present application.
  • the first content area on the upper side of the test result interface displays the specific content of the health test result, including the user's heart rate variability index, an introduction to the concept of heart rate variability, a description of the user's symptoms, and the cause of the symptoms. , and user suggestions.
  • first content area and the second content area may also be located on the left and right sides of the detection result interface, respectively, which will not be described in detail in this application.
  • the recommendation information includes a priority identifier of the recommended content
  • the priority identifier of each recommended content is determined by the server according to a content tag of the recommended content or a user interest degree corresponding to the content source, the content tag
  • the corresponding user interest degree is determined according to the user's click behavior on the content with the content tag
  • the user interest degree corresponding to the content source is determined according to the user's usage of the content source.
  • a control for updating the recommended content is also displayed in the detection result interface, for example, a "change batch" control in the detection result interface.
  • the user can instruct the display device to replace the currently displayed recommended content by operating the control.
  • the display device displays a preset number of the recommended contents with the highest priority among the remaining recommended contents on each tab, wherein the remaining recommended contents refer to those not displayed in the recommended contents set. recommended content.
  • FIG. 17 is another detection result interface exemplarily shown in the application, which is specifically an interface displayed after the user operates the “change batch” control in the interface shown in FIG. 16 .
  • the recommended contents displayed in the second content area on the lower side of the detection result interface are: “Yoga”, “Keep”, “Healthy and Light”, and “Fitness Suit”.
  • each tab in the detection result interface can acquire focus, and the user can move the focus position by operating the control device to select any tab.
  • the user can enter a confirmation operation to open the corresponding recommended content.
  • the display device receives the selection operation of the target recommended content input by the user, it obtains the jump parameters corresponding to the target recommended content; starts the target jump application according to the jump parameters, and displays the target jump interface.
  • the jump parameters include a target jump application identifier and a target jump page identifier.
  • the target jump application identifier may specifically be an application package name, which is used to enable the display device to determine the target jump application.
  • the target jump page identifier is specifically Can be a class name, which is used to make the display device determine the target jump page.
  • the jump parameter can also include the jump type. Exemplarily, a possible jump parameter format is as follows:
  • packageName is the application package name, that is, the target jump page identifier
  • className is the class name, that is, the target jump page identifier
  • the interface shown in FIG. 16 jumps to the application home page of the “AI Fitness” application.
  • the technical solution provided by the present application not only provides users with health detection results, but also pushes appropriate recommended content for users according to their personalized health detection results, user interests and user characteristics, enriching them. Interface content to meet the potential needs of users and improve user experience.
  • the embodiment of the present application further provides an interactive control method
  • the execution body of the method may be the controller of the display device provided by the present application, such as the controller 250 shown in FIG. 3 .
  • the interactive control method corresponds to the steps performed by the display device controller in the above embodiments, the following embodiments only briefly introduce the interactive control method, and for further implementation, refer to the above display device embodiments.
  • the interactive control method may include the following steps:
  • S221 Receive a control instruction instructing to start an application related to the health detection function, where the control instruction is sent by the remote controller when it detects that a user contacts a touch area on the remote controller for a preset time.
  • the interactive control method further includes: in response to the input health detection instruction, displaying an operation guidance interface for displaying operation guidance information, and executing a first timing operation to record the waiting time; if the waiting time reaches a preset Before the waiting time period, the notification message sent by the remote controller indicating that data collection is started is received, and the detection interface is displayed, so as to display the detection progress and/or the value of at least one detection item in real time in the detection interface after receiving the user's health data. . If the notification message sent by the remote controller for instructing to start collecting data is not received before the waiting time reaches the preset waiting time, a timeout prompt is displayed on the operation guidance interface.
  • the display device when receiving a control instruction instructing to start an application related to the health detection function, the display device needs to respond to the control instruction to detect the current application scenario. Play, pause the game, then start the application related to the health detection function, and the display interface switches from the playback interface to the health detection interface.
  • S224 Receive user health data sent by the remote controller, and perform user health detection according to the user health data.
  • a plurality of health data packets sent by the remote controller at intervals are received, and the health data packets at least include the latest collected user health data.
  • the interactive control method further includes: in response to receiving a notification message sent by the remote controller indicating to start collecting data, performing a second timing operation to record the data receiving duration; when a preset number of valid data are received If the data receiving time reaches the preset receiving time, a stop collection instruction is sent to the remote control, and the valid data package refers to the healthy data package sent by the remote control when there is no abnormal detection.
  • performing user health detection according to the user health data includes: sending all received user health data to a server, so that the server analyzes the user health data to obtain a health detection result; receiving the server The returned health detection result; the health detection result is displayed in the detection result interface.
  • the interactive control method further includes: receiving a recommendation information set returned by a server according to the health detection result; and displaying at least one recommendation information in the detection result interface according to at least one recommendation information in the recommendation information set Recommended content.
  • the embodiment of the present application further provides an interactive control method
  • the execution body of the method may be the controller of the remote controller provided by the present application, such as the controller 110 shown in FIG. 2 .
  • the interactive control method corresponds to the steps performed by the remote controller controller in the above-mentioned embodiment, the following embodiment only briefly introduces the interactive control method.
  • the above-mentioned embodiments related to the remote controller namely Can.
  • the interactive control method may include the following steps:
  • the health data collection module in response to receiving the data collection instruction, start the health data collection module, and detect whether there is user contact on the touch area; when the health data collection module is successfully started and detects the touch area When there is user contact, the health data collection module automatically starts collecting user health data.
  • a notification message indicating the start of data collection is sent to the display device.
  • S233 Send the collected user health data to a display device in real time.
  • a health data package including the newly collected user health data is sent to the display device.
  • the embodiments of the present application further provide a data collection method, and the execution subject of the method may be the controller of the remote controller provided by the present application, such as the controller 110 shown in FIG. 2 .
  • the data collection method corresponds to the steps performed by the remote controller controller in the above-mentioned embodiments, the following embodiments only briefly introduce the data collection method.
  • the above-mentioned embodiments related to the remote controller namely Can.
  • the data acquisition method may include the following steps:
  • the health data collection module in response to the data collection instruction, start the health data collection module, and detect whether there is user contact on the touch area; when the health data collection module is successfully started and detects that there is a user on the touch area When contacted, the health data collection module is controlled to start collecting user health data, and a notification message indicating the start of data collection is sent to the display device.
  • the data collection method before receiving the data collection instruction sent by the display device, the data collection method further includes: when it is detected that the user contacts the touch area for a preset time, sending an instruction to the display device to start the health Control instructions for detection function applications.
  • S332 Send the collected user health data to a display device in real time. Specifically, every preset time period, a health data package including the newly collected user health data is sent to the display device.
  • the present application provides a display device, a control device, and an interactive control method
  • the control device may specifically be a remote control.
  • the remote control detects that the user has been in contact with the touch area for a preset time, it sends a control instruction to the display device to instruct to start the health detection function application; the display device responds to the control instruction, starts the application, and displays the application home page; when the user When the health detection instruction is input according to the application homepage, the display device remote control sends a data collection instruction; the remote control responds to the data collection instruction, controls the health data collection module to start collecting user health data, and sends the user health data to the display device in real time.
  • the display device performs user health detection according to the received user health data.
  • the user can start the health detection function of the display device through a simple operation, and collect the user's health data, so that the user can perform health detection anytime, anywhere, and experience a sense of powerful.
  • the embodiment of the present application further provides an exception handling method
  • the execution body of the method may be the controller of the display device provided by the present application, such as the controller 250 shown in FIG. 3 . Since the exception handling method corresponds to the steps executed by the display device controller in the above-mentioned embodiment, the following embodiment only briefly introduces the exception handling method. For a more specific implementation of the exception handling method provided by this application, reference can be made to the contents of the above-mentioned display device embodiments.
  • the exception handling method may include the following steps:
  • S421 in the process of collecting user health data based on the contact between the user and the touch area, monitor whether there is abnormal user contact. If a user contact abnormality occurs, execute S422.
  • the touch area is set on a remote controller
  • the remote controller has a built-in health data collection module
  • the health data collection module is connected to the touch area
  • the user's health data is collected based on the user's contact with the touch area.
  • the data process includes: in response to the input health detection instruction, sending a data collection instruction to the remote control to instruct the remote control to collect user health data through the health data collection module; and receiving user health data sent by the remote control. More specifically, the receiving the user health data sent by the remote controller includes: receiving health data packets sent by the remote controller at intervals, where the health data packets at least include the latest user health data collected by the health data collection module. data.
  • the health data package further includes an abnormality identifier, and the abnormality identifier is used to indicate whether an abnormality is detected and the abnormality type; in the process of collecting the user's health data based on the contact between the user and the touch area, Monitoring whether there is a user contact abnormality includes: judging whether the abnormality identifier in the received health data packet represents the user contact abnormality.
  • the touch area is set on the display device body, the display device has a built-in health data collection module, the health data collection module is connected to the touch area, and the user's health data is collected based on the contact between the user and the touch area.
  • the process includes: controlling the health data collection module to collect user health data based on the user's contact with the touch area.
  • S422 within a preset time period after the abnormal user contact occurs, detect whether the user contacts the touch area again. If it is detected that the user contacts the touch area again within the preset time period, S423 is performed, otherwise, S424 is performed.
  • the detecting whether the user contacts the touch area again within a preset period of time after the abnormal contact of the user occurs includes: judging the health data package received within the preset period of time after the abnormal contact occurs Whether the anomaly flag represents a valid packet without anomalies.
  • the abnormality processing method further includes: if it is not detected that the user contacts the touch area again within the preset time period, displaying an abnormality prompt interface, where the abnormality prompt interface is used to display the cause of the detection failure, the user Suggest and/or action controls. It can be known from the above embodiments that the present application provides a display device, a control device and an exception handling method.
  • the display device monitors whether there is abnormal user contact; if there is abnormal user contact, it detects whether the user and the touch area are abnormal within a preset period of time after the abnormal user contact occurs. Re-contact; if it is detected that the user has re-contacted the touch area within the preset time period, the user's health data will continue to be collected until the number of valid data collected reaches the preset number.
  • the valid data refers to the data collected when there is no abnormal detection.
  • the embodiment of the present application further provides a communication monitoring method, and the execution body of the method may be the controller of the remote controller provided by the present application, such as the controller 110 shown in FIG. 2 . Since the communication monitoring method corresponds to the steps performed by the remote controller controller in the above-mentioned embodiment, the following embodiment only briefly introduces the communication monitoring method. For a more specific implementation of the communication monitoring method provided in this application, reference can be made to the contents of the above-mentioned display device embodiments.
  • the message sending method may include the following steps:
  • S521 in response to the input health detection instruction, send a data collection instruction to the remote controller to instruct the remote controller to collect user health data.
  • S522 Receive the user health data sent by the remote controller, and periodically send an online instruction message to the remote controller during the process of collecting the user health data through the remote controller.
  • the communication monitoring method provided by the embodiment of the present application may include the following steps:
  • S525 in the process of collecting the user's health data, receive the online indication message sent by the display device, and judge whether the communication of the display device is abnormal according to the reception of the online indication message; if the communication of the display device is abnormal, execute S526, otherwise, in When receiving the stop collection instruction sent by the display device, the health data collection module is turned off.
  • S526 Turn off the health data collection module to stop collecting user health data.
  • the present application provides a display device, a control device and a communication monitoring method.
  • the display device sends a data collection instruction to the remote control to instruct the remote control to collect user health data; during the process of collecting user health data through the remote control, it periodically sends an online instruction message to the remote control.
  • the remote controller In response to the data collection instruction sent by the display device, the remote controller turns on the health data collection module to collect user health data through the health data collection module; in the process of collecting user health data, it receives the online instruction message sent by the display device, and according to Whether the communication of the display device is abnormal is determined by the reception of the online indication message; if the communication of the display device is abnormal, the health data collection module is turned off to stop collecting the user health data.
  • the remote control can monitor the abnormal communication of the display device, and actively close the health data collection module, In order to terminate the data collection process, and thus avoid the health data collection module is always in the working state, and the remote control is exhausted.
  • the embodiment of the present application further provides a data processing method, and the execution body of the method may be the controller of the display device provided by the present application, such as the controller 250 shown in FIG. 3 . Since this data processing method corresponds to the steps executed by the display device controller in the above-mentioned embodiment, the following embodiment only briefly introduces the data processing method. For a more specific implementation manner of the data processing method provided in this application, reference can be made to the contents of the above-mentioned display device embodiments.
  • the message sending method provided by the embodiment of the present application may include the following steps:
  • S622 Send the user health data to a server, so that the server analyzes the user health data and determines a set of recommendation information matching the health detection result.
  • the user feature information corresponding to the user health data is sent to the server, so that the server can determine the relationship between the health detection result and the health detection result.
  • a set of recommended information that matches user feature information is sent to the server.
  • S623 Receive the health detection result and the recommendation information set returned by the server, and display at least one recommendation information in the health detection result and the recommendation information set on the user interface.
  • the health detection result is displayed in a first content area of the user interface, and at least one of the recommended information is displayed in a second content area of the user interface.
  • At least one tab is displayed in the second content area, and at least one of the recommended information randomly selected from the recommended information set is displayed in each tab, respectively.
  • each recommendation information in the recommendation information set carries a priority identifier, and the priority identifier is determined according to a content tag of the recommendation information or a user interest degree corresponding to a content source application, and the content The user interest degree corresponding to the tag is determined according to the user's click behavior on the content with the content tag, and the user interest degree corresponding to the content source application is determined according to the user's usage of the content source application.
  • a preset number of tabs are displayed in the second content area of the user interface, and a preset number of the recommended information with the highest priority in the recommended information set are displayed in each of the tabs respectively.
  • the content tag of the recommendation information or the user interest degree corresponding to the content source application is greater than a preset interest degree threshold.
  • the user interface includes a control for triggering the update of the recommended information
  • the method further includes: in response to an input confirming operation of the control, presetting the top priority among the remaining recommended information A number of the recommended information are respectively displayed in each option column, wherein the remaining recommended information refers to the recommended information that has not been displayed in the recommended information set.
  • the method further includes: in response to an input selection operation on target recommendation information, acquiring jump parameters included in the target recommendation information; starting a target jump application according to the jump parameters, and displaying the target Jump interface.
  • the present application provides a display device, a server and a data processing method.
  • the display device obtains the user's health data in response to the input health detection instruction; sends the user's health data to the server, so that the server can analyze the user's health data and determine a set of recommended information matching the health detection result; receive the health detection result returned by the server and A set of recommended information, and at least one recommended information in the health detection result and the set of recommended information is displayed in the user interface.
  • the present invention also provides a computer storage medium, wherein the computer storage medium can store a program, and when the program is executed, it can include some or all of the steps in each embodiment of the interactive control method provided by the present invention.
  • the storage medium may be a magnetic disk, an optical disk, a read-only memory (English: read-only memory, abbreviated as: ROM) or a random access memory (English: random access memory, abbreviated as: RAM) and the like.
  • the technology in the embodiments of the present invention can be implemented by means of software plus a necessary general hardware platform.
  • the technical solutions in the embodiments of the present invention may be embodied in the form of software products in essence or the parts that make contributions to the prior art, and the computer software products may be stored in a storage medium, such as ROM/RAM , magnetic disk, optical disk, etc., including several instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) to execute the methods described in various embodiments or some parts of the embodiments of the present invention.
  • a computer device which may be a personal computer, a server, or a network device, etc.

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Abstract

一种显示设备、控制装置及交互控制方法,该控制装置具体可以为遥控器。当遥控器检测到用户与触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令;显示设备则启动该应用,并显示应用首页;当用户根据应用首页输入健康检测指令时,显示设备向遥控器发送数据采集指令;遥控器则控制健康数据采集模块开始采集用户健康数据,并将用户健康数据实时发送给显示设备。显示设备根据接收到的用户健康数据进行用户健康检测。基于遥控器与显示设备交互控制及配合,用户通过简单的操作即可启动显示设备的健康检测功能,并采集到用户健康数据,使得用户随时随地可以进行健康检测,体验感强。

Description

显示设备、控制装置及交互控制方法
本申请要求在2021年2月10日提交中国专利局、申请号为202110182480.8、名称为“健康检测系统”的中国专利申请的优先权,以及在2021年3月19日提交中国专利局、申请号为202110305794.2、名称为“显示设备、控制装置及交互控制方法”的中国专利申请的优先权,以及在2021年3月19日提交中国专利局、申请号为202110298444.8、名称为“显示设备、控制装置及异常处理方法”的中国专利申请的优先权,以及在2021年3月19日提交中国专利局、申请号为202110298445.2、名称为“显示设备、控制装置及数据采集方法”的中国专利申请的优先权,以及在2021年3月19日提交中国专利局、申请号为202110305330.1、名称为“显示设备、控制装置及通信监测方法”的中国专利申请的优先权,以及在2021年3月19日提交中国专利局、申请号为202110330436.7、名称为“显示设备、服务器及数据处理方法”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及显示设备技术领域,尤其涉及一种显示设备、控制装置以及一种交互控制方法。
背景技术
通信技术的不断发展,使得电脑、智能手机、显示设备等终端设备越来越普及。并且,用户对终端设备所能提供功能或服务的要求也越来越高。显示设备,如智能电视,可以为用户提供诸如音频、视频、图片等播放画面,如今备受关注。
随着显示设备的普及,显示设备所能提供的功能愈发能够影响、改变用户的生活,用户通过显示设备进行生活、娱乐和休闲的需求也越来越强烈。基于家庭对于成员个人健康情况以及养生方式的日益关注和重视,如何通过显示设备监测、记录以及改善用户健康,是目前亟待解决的技术问题。
发明内容
本申请提供一种显示设备、控制装置以及一种交互控制方法。
第一方面,本申请提供一种显示设备,包括:
显示器,用于显示用户界面;
控制器,被配置为:
接收指示启动健康检测功能相关应用的控制指令,所述控制指令由遥控器在检测到用户与遥控器上触摸区持续预设时间的接触时发送;
响应于所述控制指令,启动所述应用,并显示应用首页;
响应于用户根据所述应用首页输入的健康检测指令,向遥控器发送数据采集指令,以使遥控器通过内置的健康数据采集模块采集用户健康数据;
接收遥控器发送的用户健康数据,根据所述用户健康数据进行用户健康检测。
第二方面,本申请还提供一种控制装置,包括:
触摸区;
与所述触摸区连接的健康数据采集模块,用于基于用户与所述触摸区的接触,采集用户健康数据;
与所述健康数据采集模块通信的控制器,被配置为:
当检测到用户与所述触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令;
响应于显示设备发送的数据采集指令,控制所述健康数据采集模块开始采集用户健康数据;
将采集到的所述用户健康数据实时发送给显示设备。
第三方面,本申请还提供一种交互控制方法,应用于显示设备,所述方法包括:
接收指示启动健康检测功能相关应用的控制指令,所述控制指令由遥控器在检测到用户与遥控器上触摸区持续预设时间的接触时发送;
响应于所述控制指令,启动所述应用,并显示应用首页;
响应于用户根据所述应用首页输入的健康检测指令,向遥控器发送数据采集指令,以使遥控器通过内置的健康数据采集模块采集用户健康数据;
接收遥控器发送的用户健康数据,根据所述用户健康数据进行用户健康检测。
第四方面,本申请还提供一种交互控制方法,应用于控制装置,所述控制装置包括触摸区和与所述触摸区连接的健康数据采集模块,所述方法包括:
当检测到用户与所述触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令;
响应于显示设备发送的数据采集指令,控制所述健康数据采集模块开始采集用户健康数据;
将采集到的所述用户健康数据实时发送给显示设备。
由以上技术方案可知,本申请提供一种显示设备、控制装置及一种交互控制方法,该控制装置具体可以为遥控器。当遥控器检测到用户与触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令;显示设备响应于该控制指令,启动该应用,并显示应用首页;当用户根据应用首页输入健康检测指令时,显示设备向遥控器发送数据采集指令;遥控器响应于该数据采集指令,控制健康数据采集模块开始采集用户健康数据,并将用户健康数据实时发送给显示设备。显示设备根据接收到的用户健康数据进行用户健康检测。本申请实施例中,基于遥控器与显示设备交互控制及配合,用户通过简单的操作即可启动显示设备的健康检测功能,并采集到用户健康数据,使得用户随时随地可以进行健康检测,体验感强。
附图说明
为了更清楚地说明本申请的技术方案,下面将对实施例中所需要使用的附图作简单地介绍,显而易见地,对于本领域普通技术人员而言,在不付出创造性劳动性的前提下,还可以根据这些附图获得其他的附图。
图1为本申请在一些实施例中示出的显示设备的使用场景;
图2为本申请在一些实施例中示出的控制装置100的硬件配置框图;
图3为本申请在一些实施例中示出的显示设备200的硬件配置框图;
图4为本申请在一些实施例中示出的显示设备200中软件配置图;
图5A为本申请在一些实施例中示出的显示设备的另一种使用场景;
图5B为本申请在一些实施例中示出的一种遥控器外观示意图;
图5C为本申请实施例提供的一种健康检测的系统架构图;
图5D为本申请实施例提供的一种健康传感模块的结构示意图;
图5E为本申请实施例提供的一种遥控设备的检测区域的布局示意图;
图5F为本申请实施例提供的一种检测区域的结构堆叠示意图;
图5G为本申请实施例提供的一种传感器芯片的电路示意图;
图5H为本申请实施例提供的一种健康传感模块中的控制器的电路示意图;
图5I为本申请实施例提供的一种健康传感模块中的外部参考电源的电路示意图;
图5J为本申请实施例提供的一种健康传感模块中的外部通讯接口的电路示意图;
图6为本申请在一些实施例中示出的显示设备与遥控器的交互过程示意图;
图7为本申请在一些实施例中示出的一种应用的启动页;
图8为本申请在一些实施例中示出的一种应用的应用首页;
图9为本申请在一些实施例中示出的一种档案信息输入界面;
图10为本申请在一些实施例中示出的一种档案管理界面;
图11为本申请在一些实施例中示出的显示设备与遥控器的交互过程示意图;
图12为本申请在一些实施例中示出的显示设备与遥控器的交互过程示意图;
图13为本申请在一些实施例中示出的显示设备与遥控器的交互过程示意图;
图14为本申请在一些实施例中示出的一种检测界面;
图15为本申请在一些实施例中示出的一种异常提示界面;
图16为本申请在一些实施例中示出的一种检测结果界面;
图17为本申请在一些实施例中示出的另一种检测结果界面;
图18为本申请在一些实施例中示出的一种交互控制方法;
图19为本申请在一些实施例中示出的另一种交互控制方法;
图20为本申请在一些实施例中示出的一种数据采集方法。
图21为本申请在一些实施例中示出的一种异常处理方法;
图22为本申请在一些实施例中示出的一种通信监测方法流程图;
图23为本申请在一些实施例中示出的一种数据处理方法流程图。
具体实施方式
为使本申请的目的和实施方式更加清楚,下面将结合本申请示例性实施例中的附图,对本申请示例性实施方式进行清楚、完整地描述,显然,描述的示例性实施例仅是本申请一部分实施例,而不是全部的实施例。
需要说明的是,本申请中对于术语的简要说明,仅是为了方便理解接下来描述的实施方式,而不是意图限定本申请的实施方式。除非另有说明,这些术语应当按照其普通和通常的含义理解。
本申请中说明书和权利要求书及上述附图中的术语“第一”、“第二”、“第三”等是用于区别类似或同类的对象或实体,而不必然意味着限定特定的顺序或先后次序,除非另外注明。应该理解这样使用的用语在适当情况下可以互换。
术语“包括”和“具有”以及他们的任何变形,意图在于覆盖但不排他的包含,例如, 包含了一系列组件的产品或设备不必限于清楚地列出的所有组件,而是可包括没有清楚地列出的或对于这些产品或设备固有的其它组件。
术语“模块”是指任何已知或后来开发的硬件、软件、固件、人工智能、模糊逻辑或硬件或/和软件代码的组合,能够执行与该元件相关的功能。
本申请提供一种终端设备,该终端设备可以是显示设备,如智能电视、触控一体机,也可以是便携式移动终端,如手机、平板电脑等。为便于说明,以下主要以显示设备为例对本申请实施例涉及的技术方案的具体实施方式进行介绍。
图1为根据实施例中显示设备的使用场景的示意图。如图1所示,显示设备200还与服务器400进行数据通信,用户可通过智能设备300或控制装置100操作显示设备200。
在一些实施例中,控制装置100可以是遥控器,遥控器和显示设备的通信包括红外协议通信或蓝牙协议通信,及其他短距离通信方式中的至少一种,通过无线或有线方式来控制显示设备200。用户可以通过遥控器上按键、语音输入、控制面板输入等至少一种输入用户指令,来控制显示设备200。
在一些实施例中,显示设备200还可以采用除了控制装置100和智能设备300之外的方式进行控制,例如,可以通过显示设备200设备内部配置的获取语音指令的模块直接接收用户的语音指令控制,也可以通过显示设备200设备外部设置的语音控制装置来接收用户的语音指令控制。
在一些实施例中,显示设备200还与服务器400进行数据通信。可允许显示设备200通过局域网(LAN)、无线局域网(WLAN)和其他网络进行通信连接。服务器400可以向显示设备200提供各种内容和互动。服务器400可以是一个集群,也可以是多个集群,可以包括一类或多类服务器。
在一些实施例中,一个步骤执行主体执行的软件步骤可以随需求迁移到与之进行数据通信的另一步骤执行主体上进行执行。示例性的,服务器执行的软件步骤可以随需求迁移到与之数据通信的显示设备上执行,反之亦然。
图2示例性示出了根据示例性实施例中控制装置100的配置框图。如图2所示,控制装置100包括控制器110、通信接口130、用户输入/输出接口140、存储器、供电电源。控制装置100可接收用户的输入操作指令,且将操作指令转换为显示设备200可识别和响应的指令,起到用户与显示设备200之间交互中介作用。
在一些实施例中,通信接口130用于和外部通信,包含WIFI芯片,蓝牙模块,NFC或可替代模块中的至少一种。在一些实施例中,用户输入/输出接口140包含麦克风,触摸板,传感器,按键或可替代模块中的至少一种。
在一些实施例中,控制装置100还包括健康数据采集模块150,用于采集用户健康数据,包括心率、血氧状态、收缩压、舒张压等。
在一些实施例中,控制装置100还包括接触检测模块160,该接触检测模块与控制装置外壳上的触摸区连接,用于检测用户在触摸区上输入的接触。
在一些实施例中,健康数据采集模块和接触检测模块与控制器110之间通过串口进行通信。
在一些实施例中,图2中示出的控制装置100可以是遥控器。
图3示出了根据示例性实施例中显示设备200的硬件配置框图。
在一些实施例中,显示设备200包括调谐解调器210、通信器220、检测器230、外部装 置接口240、控制器250、显示器260、音频输出接口270、存储器、供电电源、用户接口中的至少一种。
在一些实施例中控制器包括中央处理器,视频处理器,音频处理器,图形处理器,RAM,ROM,用于输入/输出的第一接口至第n接口。
在一些实施例中,显示器260包括用于呈现画面的显示屏组件,以及驱动图像显示的驱动组件,用于接收源自控制器输出的图像信号,进行显示视频内容、图像内容以及菜单操控界面的组件以及用户操控UI界面等。
在一些实施例中,显示器260可为液晶显示器、OLED显示器、以及投影显示器中的至少一种,还可以为一种投影装置和投影屏幕。
在一些实施例中,调谐解调器210通过有线或无线接收方式接收广播电视信号,以及从多个无线或有线广播电视信号中解调出音视频信号,如以及EPG数据信号。
在一些实施例中,通信器220是用于根据各种通信协议类型与外部设备或服务器进行通信的组件。例如:通信器可以包括Wifi模块,蓝牙模块,有线以太网模块等其他网络通信协议芯片或近场通信协议芯片,以及红外接收器中的至少一种。显示设备200可以通过通信器220与控制装置100或服务器400建立控制信号和数据信号的发送和接收。
在一些实施例中,检测器230用于采集外部环境或与外部交互的信号。例如,检测器230包括光接收器,用于采集环境光线强度的传感器;或者,检测器230包括图像采集器,如摄像头,可以用于采集外部环境场景、用户的属性或用户交互手势,再或者,检测器230包括声音采集器,如麦克风等,用于接收外部声音。
在一些实施例中,显示设备外表面设有用于接收用户接触的触摸区。
在一些实施例中,检测器230还包括健康数据采集模块,该健康数据采集模块与触摸区连接,用于基于用户与触摸区的接触,采集用户健康数据,如心率、血氧状态、收缩压、舒张压等。可选地,健康数据采集模块与控制器250之间可以通过串口通信,例如,控制器250通过串口,打开或者关闭健康数据采集模块的开关,健康数据采集模块通过串口将采集的用户健康数据传输给控制器250。
示例性的,可以将触摸区设置在显示设备侧面或者后壳表面。当用户触及显示设备侧面或者后壳表面的触摸区时,触摸板则检测到用户输入的接触。
值得注意的是,对于支持指纹识别的便携式终端设备(如手机、平板电脑等)而言,健康数据采集模块可以设置在指纹识别区的下方以与指纹识别区连接,进而,便可基于用户与指纹识别区的接触而采集用户健康数据。另外,健康数据采集模块与便携式终端设备的控制器之前可通过串口通信,例如,终端控制器通过串口,打开或者关闭健康数据采集模块的开关,健康数据采集模块通过串口将采集的用户健康数据传输给终端控制器。
在一些实施例中,外部装置接口240可以包括但不限于如下:高清多媒体接口接口(HDMI)、模拟或数据高清分量输入接口(分量)、复合视频输入接口(CVBS)、USB输入接口(USB)、RGB端口等任一个或多个接口。也可以是上述多个接口形成的复合性的输入/输出接口。
在一些实施例中,控制器250,通过存储在存储器上中各种软件控制程序,来控制显示设备的工作和响应用户的操作。控制器250控制显示设备200的整体操作。例如:响应于接收到用于选择在显示器260上显示UI对象的用户命令,控制器250便可以执行与由用户命令选择的对象有关的操作。
在一些实施例中,所述对象可以是可选对象中的任何一个,例如超链接、图标或其他可操作的控件。与所选择的对象有关操作有:显示连接到超链接页面、文档、图像等操作,或者执行与所述图标相对应程序的操作。
在一些实施例中,用户可在显示器260上显示的图形用户界面(GUI)输入用户命令,则用户输入接口通过图形用户界面(GUI)接收用户输入命令。或者,用户可通过输入特定的声音或手势进行输入用户命令,则用户输入接口通过传感器识别出声音或手势,来接收用户输入命令。
在一些实施例中,“用户界面”,是应用程序或操作系统与用户之间进行交互和信息交换的介质接口,它实现信息的内部形式与用户可以接受形式之间的转换。用户界面常用的表现形式是图形用户界面(Graphic User Interface,GUI),是指采用图形方式显示的与计算机操作相关的用户界面。它可以是在电子设备的显示屏中显示的一个图标、窗口、控件等界面元素,其中控件可以包括图标、按钮、菜单、选项卡、文本框、对话框、状态栏、导航栏、Widget等可视的界面元素中的至少一种。
在一些实施例中,用户接口280,为可用于接收控制输入的接口(如:显示设备本体上的实体按键,或其他等)。
参见图4,在一些实施例中,将系统分为四层,从上至下分别为应用程序(Applications)层(简称“应用层”),应用程序框架(Application Framework)层(简称“框架层”),安卓运行时(Android runtime)和系统库层(简称“系统运行库层”),以及内核层。
在一些实施例中,应用程序层中运行有至少一个应用程序,这些应用程序可以是操作系统自带的窗口(Window)程序、系统设置程序或时钟程序等;也可以是第三方开发者所开发的应用程序,如图4中示出的健康管家应用。在具体实施时,应用程序层中的应用程序包不限于以上举例。
框架层为应用程序层的应用程序提供应用编程接口(application programming interface,API)和编程框架。应用程序框架层包括一些预先定义的函数。应用程序框架层相当于一个处理中心,这个中心决定让应用层中的应用程序做出动作。应用程序通过API接口,可在执行中访问系统中的资源和取得系统的服务。
在一些实施例中,活动管理器用于管理各个应用程序的生命周期以及通常的导航回退功能,比如控制应用程序的退出、打开、后退等。窗口管理器用于管理所有的窗口程序,比如获取显示屏大小,判断是否有状态栏,锁定屏幕,截取屏幕,控制显示窗口变化(例如将显示窗口缩小显示、抖动显示、扭曲变形显示等)等。
在一些实施例中,系统运行库层为上层即框架层提供支撑,当框架层被使用时,安卓操作系统会运行系统运行库层中包含的C/C++库以实现框架层要实现的功能。
在一些实施例中,内核层是硬件和软件之间的层。如图4所示,内核层至少包含以下驱动中的至少一种:音频驱动、显示驱动、蓝牙驱动、摄像头驱动、WIFI驱动、USB驱动、HDMI驱动、传感器驱动(如指纹传感器,温度传感器,压力传感器等)、以及电源驱动等。
在一些实施例中,控制器通过运行存储器中的各种软件控制程序(如操作系统和/或各种应用程序),来控制显示设备200的工作和响应,及与显示器相关的用户操作。例如,控制在显示器上呈现用户界面,用户界面上包括若干UI对象(如控件、图标、项目等);响应于接收到的对用户界面上UI对象的用户命令,控制器便可以执行与用户命令选择的对象有关的操作。
本申请提供的显示设备具有健康检测功能。该健康检测功能基于显示设备上安装的健康检测功能相关应用实现。为便于说明,将健康检测功能相关应用称为“健康管家”。
图5A为本申请在一些实施例中示出的一种应用场景示意图。如图5A所示,遥控器和显示设备之间可以基于低能耗蓝牙(Bluetooth Low Energy,BLE)协议进行通信,如收/发控制信号、通知消息以及用户健康数据。此外,遥控器通过其内置的健康数据采集模块来采集用户健康数据,并将采集的用户健康数据实时发送给显示设备。显示设备通过在操作系统中运行“健康管家”应用,完成与遥控器的交互控制,以及,接收遥控器端发送的用户健康数据,并将用户健康数据发送给服务器。服务器接收显示设备发送的用户健康数据,并通过“健康管家”应用对应的健康应用服务,分析用户健康数据,最后将健康检测结果返回给显示设备,由显示设备展示给用户。
当然遥控器还可以和服务器直接通信,将健康数据采集模块采集的用户数据实时传输给服务器,服务器将经过后台数据处理后,生成健康管理报告,将报告下发至显示设备。
如图5B所示,遥控器上具有各种按键以及触摸区,该触摸区与健康数据采集模块及接触检测模块相连。当用户与触摸区发生接触时,接触检测模块可以检测到用户接触。在用户与触摸区保持接触的情况下,健康数据采集模块便可以在遥控器控制器的控制下采集用户健康数据。
在一些实施例中,由于遥控器需要实现低功耗运行,大多数情况下,健康数据采集模块并不运行,用户可以通过与遥控器上触摸区的持续预定时间的接触,来启动显示设备的健康检测功能。应当理解,由于显示设备的健康检测功能基于显示设备上安装的“健康管家”应用实现,因此启动显示设备的健康检测功能,即是启动显示设备上的“健康管家”应用。示例性的,用户可以保持手指与触摸区接触3秒,遥控器上的健康数据采集模块开始运行,则遥控器发送通知到显示设备,来启动显示设备上的“健康管家”应用。
图5C为本申请实施例提供的一种健康检测的系统架构图。如图5C所示,本申请实施例提供的健康检测系统包括遥控设备、显示设备以及服务器,显示设备分别与遥控设备和服务器交互。
在本申请实施例中,遥控设备中增设有健康传感模块,在用户进行健康检测时,遥控设备可以根据显示设备传输的控制流中的控制指令,采集用户的生命体征数据,并对采集到的用户的生命体征数据进行处理,并将处理后的用户的生命体征数据发送给显示设备。
在一些实施例中,生命体征数据可以包括心率、血压、血氧等。需要说明的是,本申请实施例涉及的生命体征数据并不构成限制,可以根据实际情景进行具体设置,例如还可以包括脉搏等。
应理解,本申请实施例对于遥控设备和显示设备之间如何进行数据传输也不做限制,例如,可以包括但不限于采用蓝牙(bluetooth,BLE)通信、红外通信等。示例性的,如图6所示,遥控设备可以通过BLE与显示设备进行数据传输。
应理解,遥控设备和显示设备之间可以通过数据流和/或控制流进行数据传输。示例性的,继续参考图5C,遥控设备和显示设备之间互相发送控制流,遥控设备向显示设备发送数据流。
在一些实施例中,遥控设备向显示设备发送的数据流可以包括用户的生命体征数据,遥控设备和显示设备之间互相发送的控制流包括各种控制信息。
其中,控制信息可以包括显示设备指示遥控设备进行健康检测的控制信息、遥控设备 指示显示设备打开健康管理应用的控制信息等。此外,控制信息还可以包括音量调整、节目调整、确定、返回等控制信息。
图5D为本申请实施例提供的一种健康数据采集模块的结构示意图,如图5D所示,健康数据采集模块包括有传感器芯片、至少两个发光二极管(Light Emitting Diode,LED)和感光元器件,电源模块分别为传感器芯片、至少两个LED和感光元器件供电。
其中,传感器芯片用于控制至少两个LED发光,并解析感光元器件采集到的反射的光信号,将感光元器件采集到的光信号转化为用户的生命体征数据。应理解,本申请实施例对于传感器芯片的型号不做限制,可以根据实际情况具体设置。
在本申请实施例中,至少两个LED在传感器芯片的控制下,可以发射至少两种波长的光,从而照亮用户皮肤中的毛细血管。应理解,本申请实施例对于至少两个LED发射的光的波长不做限制,示例性的,以LED1和LED2为例,LED1可以发射波长为560纳米(nm)的光,LED2可以发射波长为905nm的光。
在本申请实施例中,感光元器件用于采集毛细血管反射的光信号。在一些实施例中,感光元器件还可以采集环境光信号。应理解,本申请实施例对于感光元器件的类型不做限制,示例性的,可以为光敏二极管(photodiode,PD)、硅光电池等。示例性的,由于PD具有单向导电性,在光强不同的时候会改变电学特性,从而可以采集毛细血管反射的光信号以及环境光信号。
在本申请实施例中,当用户指示通过遥控设备进行健康检测后,若检测到用户的皮肤贴紧健康数据采集模块,则传感器芯片可以控制至少两个LED发射至少两种波长的光。至少两种波长的光在照亮用户皮肤中的毛细血管后,由毛细血管分别进行反射。随后,由感光元器件采集毛细血管反射的光信号以及环境光信号,再由传感器芯片对毛细血管反射的光信号以及环境光信号进行解析,获取用户的生命体征数据。
应理解,遥控设备中的传感器芯片、至少两个LED以及感光元器件均由电源模块进行供电。其中,本申请实施例对于至少两个LED在发光时的电压强度也不做限制,可以根据环境光信号以及毛细血管反射的光信号,由电源模块进行调节。
在一些实施例中,遥控设备上可以设置有检测区域,该检测区域内可以同时布局有健康检测模块和触摸模块。下面提供两种遥控设备的检测区域的布局示意图。
图5E为本申请实施例提供的一种遥控设备的检测区域的布局示意图。如图5E所示,该检测区域中设置有至少一块静电触摸区域、LED发射区域、和PD接收区域,至少一块静电触摸区域、LED发射区域、和PD接收区域均设置在基板上。LED发射区域设置在PD接收区域的上方,LED发射区域和PD接收区域分别被四块静电触摸区域包围。
图5F为本申请实施例提供的一种检测区域的结构堆叠示意图。图5F为图5E所示的检测区域对应的结构堆叠,如图5F所示,健康检测模块可以设置在两块塑胶外壳之间,健康检测模块上方可以设置有表层玻璃,并使用两块基板将表层玻璃和健康检测模块隔离开。
在一些实施例中,健康检测模块中的LED发射区域可以进行发光,当用户接触检测区域的表层玻璃而遮挡住LED发射区域发射的光时,LED发射区域发射的光会被反射到PD接收区域,被PD接收区域采集到。
应理解,本申请实施例对于LED发射区域发射的光的类型不做限制,例如,可以为红光、蓝光、红外光等。在一些实施例中,LED发射区域可以包括两个LED,从而同时发射红光和红外光。
应理解,本申请实施例对于基板的类型不做限制,示例性的,基板可以为印制电路板(Printed Circuit Board,PCB)、柔性电路板(Flexible Printed Circuit,FPC)等。
图5G为本申请实施例提供的一种传感器芯片的电路示意图。如图5G所示,该传感器芯片的电路示意图包含有传感器U4、转换电阻R2、场效应管(Metal-Oxide-Semiconductor Field-Effect Transistor,MOS)管、采样电阻R10、硅光电池和三种类型的LED。
其中,传感器芯片U4的引脚1和5通过转换电阻R2与硅光电池连接,传感器U4的引脚2、3、4、6、7、8分别与三种类型的LED连接,MOS管的一端与传感器U4的引脚4、6、7、8以及采样电阻R10连接。
在一些实施例中,采样电阻R10采样三种类型的LED的电流,MOS管根据采样电阻R10采样得到的三种类型的LED的电流控制三种类型的LED的电压,从而控制三种类型的LED的光的强度,使得三种类型的LED处于合适的亮度。三种类型的LED的光照射用户的毛细血管,并通过毛细血管将光信号反射到硅光电池上。随后,硅光电池将毛细血管反射的光信号转换为电流信号并输出给转换电阻R2,再由转换电阻R2将电流信号转换为电压信号。最后,转换电阻R2将转换后的电压信号输出给传感器芯片U4。
应理解,本申请实施例对于采样电阻R10的采样方式不做限制,可以采用精密电阻采样。
应理解,本申请实施例对于三种类型的LED不做限制,示例性的可以包括红光LED、蓝光LED和红外光LED。
需要说明的是,上述图5G仅为一种可用的传感器芯片的电路,并不构成对本申请的限制,在具体应用中,可以根据实际情况对传感器芯片的电路继续相应调整。示例性的,图5G所示的传感器芯片的电路中包含有三种类型的LED,在具体应用中,可以调整为两种类型的LED,也可以调整为四种类型的LED。示例性的,图5G所示的传感器芯片的电路中感光元器件为硅光电池,在具体应用中,可以将硅光电池调整为PD。
在一些实施例中,健康数据采集模块中还可以包含有控制器,来控制上述传感器芯片的运行,并将传感器芯片U4得到电压信号转换为用户的生命体征数据。
如图5H所示,健康数据采集模块中的控制器的包含有多个引脚。其中,健康数据采集模块中的控制器的引脚9、10与软件调试单元(ECK、EDIO)连接,以通过软件调试单元调试健康数据采集模块中的控制器中的软件程序。健康数据采集模块中的控制器的引脚12、17-19与外部参考电源(VDDA、VA1V2)连接,以通过外部参考电源为健康数据采集模块中的控制器提供内部供电和参考源。
健康数据采集模块中的控制器的引脚1、21和26分别与传感器芯片电路中三种类型的LED(G_ON、IR_ON、R_ON)连接,从而采集三种类型的LED的电压信号;健康数据采集模块中的控制器的引脚13、14与传感器芯片电路中转换电阻R2的两端(AJO0、AJO1)连接,从而采集转换电阻R2转换后的电压信号;健康数据采集模块中的控制器的引脚11、16与传感器芯片电路中MOS管(OP_OUT、AJO3)连接,从而控制并采集MOS管的电压信号。后续地,健康数据采集模块中的控制器在采集到上述信号后,可以将上述信号进行内部放大,再转换为数字信号。
健康数据采集模块中的控制器的引脚23-25、32分别与对外通讯接口(STA、UTX、URX、RESETn)连接,从而通过对外通讯接口与外部设备通信。
在一些实施例中,当健康数据采集模块的处理器通过外部通讯接口接收到遥控设备的 处理模块发送的启动指令后,健康数据采集模块的处理器可以开启电源模块来对传感器芯片,从而进行健康检测。后续地,在传感器芯片在完成健康检测,并且健康数据采集模块的处理器采集到转换电阻R2转换后的电压信号后,可以对电压信号进行内部放大,再转换为数字信号,得到用户的生命体征数据。
本申请实施例对于软件调试单元的结构不做限制,示例性的,继续参考图5H,软件调试单元中可以包含接地电阻R7、R8,从而抑制外部干扰,并降低功耗。其中,接地电阻R7、R8的阻值可以根据实际情况具体设置,例如可以为100kΩ。
本申请实施例对于电源模块的结构也不做限制,示例性的,继续参考图5H,电源模块可以包括电容C1、C2、C3以及电阻R1。其中,电阻R1和电容C3构成电阻-电容电路(Resistor-Capacitance circuit,RC)来上电复位健康数据采集模块中的控制器,电容C2、C3用于滤波。需要说明的是,本申请实施例对于电源模块的电容C1、C2、C3以及电阻R1的参数均不作限制,可以实际情况具体设置。示例性的,C1、C2、C3可以均为0.1uF/10V,R1可以为10kΩ。
图5I为本申请实施例提供的一种健康数据采集模块中的外部参考电源的电路示意图。如图5H所示,外部参考电源的芯片U5的引脚1(OUT)与健康数据采集模块中的处理器的引脚19连接;外部参考电源的芯片U5的引脚2(GND)接地并同时与电容C6的一端连接,电容C6的另一端与健康数据采集模块中的处理器的引脚19连接;外部参考电源的芯片U5的引脚3(EN)和4(IN)分别与健康数据采集模块中的处理器的引脚12连接;外部参考电源的芯片U5的引脚5(TP)接地。
图5J为本申请实施例提供的一种健康数据采集模块中的外部通讯接口的电路示意图。如图5J所示,外部通讯接口的芯片J2的引脚1、7、8接地。外部通讯接口的芯片J2的引脚2(STA)与健康数据采集模块中的处理器的引脚26连接;外部通讯接口的芯片J2的引脚3(UTX)与健康数据采集模块中的处理器的引脚23连接;外部通讯接口的芯片J2的引脚4(URX)与健康数据采集模块中的处理器的引脚24连接;外部通讯接口的芯片J2的引脚5(RESETn)与健康数据采集模块中的处理器的引脚32连接;外部通讯接口的芯片J2的引脚6(RESETn)与电源连接。
需要说明的是,本申请实施例提供的健康数据采集模块中的传感器芯片控制器、外部参考电源、外部通讯接口的电路图并不构成对本申请的限制,在应用中,可以根据实际场景具体设置。
在上述健康数据采集模块的基础上,在一些实施例中,健康数据采集模块中的处理器在采集到感光元器件接收到的光对应的电压信号后,可以将电压信号转换为用户的生命体征数据。随后,可以将用户的生命体征数据分离为原始数据包和实时显示数据包,并将原始数据包和实时显示数据包发送给显示设备。显示设备在接收到原始数据包和实时显示数据包后,可以显示实时显示数据包中的数据,并将原始数据包中的数据发送给服务器进行进一步处理分析。
应理解,原始数据包中存放有采集到的原始的用户的生命体征数据,实时显示数据包中存放有经过初步处理的用户的生命体征数据。
应理解,本申请实施例对于如何将感光元器件接收到的光对应的电压信号转换为用户的生命体征数据不做限制,可以根据具体需要获取的生命体征数据的类型来确定。例如,可以通过心跳分析算法将电压信号转换为心跳数据。
示例性的,若健康数据采集模块中包括红色LED和红外LED,健康数据采集模块中的处理器的数据采集频次为100HZ,则每个采集数据周期内分别采集三个状态下的电压信号,包括状态1红色LED亮、状态2红外LED亮、状态3红色LED和红外LED全灭。在每个采集数据周期内依次在状态1工作3秒,在状态3工作2秒,在状态2工作3秒,在状态3工作2秒,在每个工作状态,健康数据采集模块中的处理器均会采集一次感光元器件接收到的光对应的电压信号。随后,通过心跳分析算法,将每两个采集数据周期内采集到的电压信号进行处理,合成为一个心跳数据点。随后,可以将该心跳数据点存放在原始数据包中。
应理解,本申请实施例对于用户的生命体征数据进行初步处理也不做限制,在一些实施例中,可以根据一段时间内的用户的某一个生命体征数据进行分析,得到与之相关的其他生命体征数据。示例性的,原始的用户的生命体征数据为心跳数据点,则健康数据采集模块中的处理器可以将一个发送周期内的心跳数据点生成心跳曲线,再从心跳曲线中解析出该发送周期内用户的心率值、血氧值、微循环值、收缩压值和舒张压值。最后,将用户的心跳数据、心率值、血氧值、微循环值、收缩压值和舒张压值存入实时显示数据包。
在一些实施例中,在健康数据采集模块中的处理器将用户的生命体征数据分离出实时显示数据包和原始数据包后,可以将实时显示数据包和原始数据包发送给遥控设备的处理模块,由遥控设备的处理模块将实时显示数据包和原始数据包发送给显示设备。在另一些实施例中,在健康数据采集模块中的处理器将用户的生命体征数据分离出实时显示数据包和原始数据包后,也可以直接通过与健康数据采集模块中的处理器连接的外部通讯接口,将实时显示数据包和原始数据包发送给显示设备。
可选的,在一些实施例中,在发送实时显示数据包和原始数据包前,健康数据采集模块中的处理器还可以对实时显示数据包和原始数据包进行压缩,以提高传输效率。示例性的,可以将1.28秒内的原始数据包中的用户的生命体征数据压缩成168字节(byte),随后,在进行原始数据包的发送。
应理解,本申请实施例对于实时显示数据包和原始数据包的发送周期也不做限制,示例性的,发送周期可以为1秒、1.28秒、1.8秒等。
参阅图6和图7,具体实现时,在遥控器已与显示设备配对的情况下,接触检测模块检测到用户与触摸区持续接触后,通过串口通信通知遥控器的控制器,遥控器的控制器接收到该通知后,则向显示设备发送指示启动健康检测功能的请求。显示设备则响应于该请求,启动“健康管家”应用,并显示“健康管家”应用的界面。示例性的,在显示设备基于直播电视应用、第三方音视频应用播放视频节目时,如果接收到指示启动“健康管家”应用的控制指令,由当前运行的直播电视应用或者第三方音视频应用转场到“健康管家”应用,并显示“健康管家”应用的界面,如启动页或者应用首页。
当然,还可以在遥控器上设置用于启动健康检测功能的按键,这样,用户可以一键启动显示设备上的健康检测功能相关应用,具体操作过程不予赘述。
需要说明的是,为避免在说明过程中将遥控器的控制器与显示设备的控制器混淆,在没有特别指出的情况下,以下提及的遥控器均指代遥控器的控制器,如图2中示出的控制器110。例如,若下文中提到“遥控器与健康数据采集模块通信”则指代“遥控器的控制器与健康数据采集模块通信”,若下文中提到“遥控器向显示设备发送指令”则指代“遥控器的控制器向显示设备发送指令”。
值得注意的是,在遥控器未与显示设备配对的情况下,如果遥控器检测到用户与触摸 区的持续接触,则发射特定的红外码。显示设备接收到该特定红外码后,启动“健康管家”应用,显示“健康管家”应用的界面,同时显示配对提示,以通过该配对提示来提醒用户操作显示设备与遥控器配对。例如,通过在“健康管家”应用的界面上弹出Toast提示,提醒用户操作配对。
在另一些实施例中,用户也可以通过输入预设的语音口令,以输入用于启动“健康管家”应用的控制指令。例如,用户利用显示设备的近场语音功能或者远场语音功能,说出预设语音口令,如“健康检测”或者“启动健康管家”,显示设备通过识别用户输入的语音口令,确定语音口令对应的控制指令,从而启动健康管家应用。
在另一些实施例中,用户还可以操作显示设备,使其显示应用中心界面,然后通过点击应用中心界面中显示的“健康管家”应用的应用图标,来启动“健康管家”应用。
需要说明的是,对于内置有健康数据采集模块的终端设备,如前述实施例提及的设有触摸区的显示设备,或者支持指纹识别功能的便携式终端设备,其健康检测功能同样基于安装的健康检测功能相关应用实现,如上述“健康管家”应用。在一些实施例中,当此类显示设备或者便携式终端设备检测到用户与触摸区持续预设时间的接触时,则拉起“健康管家”应用,显示该应用的界面。在一个例子中,显示设备内置有健康数据采集模块且后壳上设有触摸区。当用户将手指覆盖在该后壳触摸区上持续3s时,显示设备将启动“健康管家”应用,并由当前显示界面跳转到“健康管家”应用的界面。在另一个例子中,用户手机内置有健康数据采集模块且具有指纹识别区。当用户将手指覆盖在指纹识别区上持续3s时,手机将启动“健康管家”应用,并显示“健康管家”应用的界面。
在一些实施例中,“健康管家”应用启动成功后,首先显示如图7所示的启动页。可选地,启动页上可以展示应用相关功能的介绍。可选地,当启动页的显示时长达到预定的时长时,撤销启动页,进入到应用首页。例如,在显示启动页的伊始,在启动页的左上角显示倒计时。当倒计时完毕时,撤销启动页,进入到应用首页。
在一些实施例中,“健康管家”应用启动成功后,首先显示用户协议展示页。例如,如图8所示,在“健康管家”应用第一次启动成功的情况下,首先显示用户协议展示页。用户协议展示页中可以显示应用使用协议或者规定,如免责条款。用户可以通过操作用户协议展示页上的相关控件,同意或者拒绝所显示的协议内容。如果用户输入同意该协议内容的操作,显示设备则撤销用户协议展示页,进入到启动页或者直接进入到应用首页。如果用户输入拒绝该协议内容的操作,显示设备则关闭“健康管家”应用,撤销用户协议展示页,返回到启动“健康管家”应用之前的界面。
图8为本申请示例性示出的一种“健康管家”应用首页,该应用首页主要用于引导用户以游客模式进行健康检测或者建立健康档案。其中,游客模式是指用户无需进行账号注册和绑定的模式。如图8所示,应用首页中包括用于触发建立健康档案的控件“开始建立”和用于触发以游客模式立即进行健康检测的控件“立即体验”。在显示应用首页时,用户可以通过操作“开始建立”控件,进入档案信息输入界面,在档案信息输入界面中输入用户特征信息,还可以在档案管理界面中输入健康检测指令,以指示显示设备对指定用户进行健康检测,具体可参见图9-图10所示实施例;或者,用户可以通过操作“立即体验”控件,来输入健康检测指令,以指示显示设备立即对其进行健康检测。
图9为本申请示例性示出的一种档案信息输入界面,其具体可以为用户操作应用首页中的“开始建立”控件后进入的界面。如图9所示,档案信息输入界面中包括多个输入项 目,分别为头像、昵称、性别、年龄、身高及体重等。用户可以该界面时中上传头像文件,创建用户昵称,选择性别、年龄身高及体重。输入完成后,可以通过操作“确认”控件指示显示设备保存输入的用户特征信息,并进入到档案管理界面,或者操作“取消”控件返回到应用首页。
图10为本申请示例性示出的一种档案管理界面,其具体可以为用户操作档案信息输入界面中的“确认”控件后进入的界面。如图10所示,档案管理界面显示有已创建的档案卡片,每个档案卡片对应一组操作控件,分别为用于触发健康检测的控件“立即体检”和用于查看以往健康检测结果的控件“体检报告”。用户可以根据检测对象选择相应档案卡片上的控件进行操作,以输入健康检测指令。例如,在需要对“奶奶”进行健康检测时,则操作“奶奶”的档案卡片上的“立即体检”控件。此外,档案管理界面中还显示有游客卡片,故而,用户可以操通过操作游客卡片上的“立即体检”控件,以输入以游客模式进行检测的健康检测指令。另外,档案管理界面中还显示有用于新建成员档案信息的控件“添加成员+”,当用户操作该控件时,则重新进入到档案信息输入界面,用户即可在档案信息输入界面中输入新成员的档案信息。
参阅图11,在一些实施例中,当显示设备接收到输入的健康检测指令时,显示操作指导界面,同时向遥控器发送数据采集指令,以指示遥控器开始采集用户健康数据。
在一些实施例中,遥控器接收到显示设备发送的数据采集指令后,启动健康数据采集模块。健康数据采集模块启动成功后,遥控器向显示设备发送指示健康数据采集模块启动成功的通知消息。如图11所示,具体实现时,遥控器响应于收到的数据采集指令,通过串口通信,打开健康数据采集模块的开关。健康数据采集模块的开关打开后,健康数据采集模块通过串口通信通知遥控器。进而,遥控器可以根据是否接收到健康数据采集模块的通知,判断健康数据采集模块是否启动成功。当判定健康数据采集模块启动成功时,向显示设备发送指示健康数据采集模块启动成功的通知消息。显示设备在向遥控器发送数据采集指令之后,执行计时操作。如果在预设时长内接收到指示健康数据采集模块启动成功的通知消息,则显示检测界面,该检测界面用于显示检测进度和/或实时的用户健康数据。如果在预设时长内未接收到指示健康数据采集模块启动成功的通知消息,则在操作指导界面上显示故障提示。示例性的,故障提示的内容可以为“健康数据采集模块启动失败”。并在提示完成后,返回到上一级界面。
参阅图12,在另一些实施例中,遥控器接收到显示设备发送的数据采集指令后,启动健康数据采集模块,并通过接触检测模块检测触摸区上是否有用户接触。当通过接触检测模块检测到用户与触摸区接触,且确定健康数据采集模块启动成功时,遥控器向显示设备发送指示开始采集数据的通知消息。显示设备在向遥控器发送数据采集指令之后,执行计时操作,以记录等待时长。如果预设等待时长内(即等待时长到达预设等待时长前)接收到遥控器发送的指示开始采集数据的通知消息,则显示检测界面,该检测界面用于显示检测进度和/或实时的用户健康数据。如果预设等待时长内未接收到遥控器发送的指示开始采集数据的通知消息,则在操作指导界面上显示超时提示。示例性的,超时提示的内容可以为“超时,未检测到用户接触”。并在提示完成后,返回到上一级界面。
在一些实施例中,用于记录等待时长的计时操作称为第一计时操作。
在又一些实施例中,当显示设备接收到输入的健康检测指令时,显示操作指导界面,操作指导界面中显示有用于触发健康检测控件,如“开始检测”控件。当用户操作该控 件时,向遥控器发送数据采集指令,并显示检测界面。
在一些实施例中,在健康数据采集模块采集用户健康数据过程中,遥控器将采集到的用户健康数据实时发送给显示设备。
由以上实施例可以看出,基于遥控器与显示设备交互控制及配合,用户通过简单的操作即可启动显示设备的健康检测功能,并采集到用户健康数据,使得用户随时随地可以进行健康检测,体验感强。
需要说明的是,对于内置有健康数据采集模块的终端设备而言,终端设备控制器响应于用户输入的健康检测指令,通过串口打开健康数据采集模块的开关。健康数据采集模块开启成功后,再通过串口通知终端设备控制器,终端设备控制器则控制在屏幕上显示操作指导界面。当终端设备控制器在预设等待时长内检测到用户接触时,则显示检测界面,此时,健康数据采集模块开始采集用户健康数据。数据采集过程中,健康数据采集模块将采集到的用户健康数据传输至终端设备控制器。数据采集完成后,终端设备控制器将采集的用户健康数据发送给服务器,以通过服务器对用户健康数据进行分析,返回健康检测结果至终端设备。
在一些实施例中,为保证健康检测过程的用户体验,节省用户时间,可以预先限定采集数据的时间,即:限定遥控器在预定时间内完成对用户健康数据的采集和发送,限定显示设备在预设接收时长内完成对用户健康数据的接收。
在一些实施例中,当显示设备接收到遥控器发送的指示开始采集数据的通知消息时,执行计时操作,以记录数据接收时长。在一些实施例中,将用于记录数据接收时长的计时操作称为第二计时操作。
数据采集过程中,遥控器将健康数据采集模块采集到的用户健康数据实时封装成数据包,发送给显示设备,直到采集完毕。为便于区分和说明,本申请将封装有用户健康数据的数据包称为健康数据包。
如图13所示,在一种实现方式中,健康数据采集模块启动后,持续采集用户健康数据,并将采集到的用户健康数据通过串口通信实时同步给遥控器。遥控器每隔一定时长,将采集的最新用户健康数据封装在健康数据包中,发送给显示设备,直到健康数据采集模块采集完毕。值得注意的是,当遥控器接收到预设数量的有效数据包或者数据接收时长达到预定时长时,认为数据采集完毕。其中,该预设数量=预设接收时长/向显示设备发送数据包的间隔时长,有效数据包是指在无检测异常时发送给显示设备的数据包,其内封装的用户健康数据为有效数据。数据采集完毕后,显示设备向遥控器发送停止采集指令。遥控器响应于该停止采集指令,关闭健康数据采集模块。
示例性的,预设接收时长为30s,健康数据包的预设数量为24。也就是说,遥控器应当在30s内向显示设备发送24个健康数据包。
在一些实施例中,遥控器按照预先与显示设备约定的格式,将采集得到的用户健康数据封装成健康数据包,健康数据包中至少包括包序标识、用户健康数据和异常标识。其中,包序标识i代表遥控器向显示设备发送的第i个健康数据包,异常标识表征有无检测异常以及异常类型。需要说明的是,检测异常可以包括检测环境变化导致的检测异常,如强光环境、通信信号弱等,还包括用户与触摸区的接触异常,如用户将手指移开触摸区等。
在一个例子中,健康数据包的数据格式如下:
Figure PCTCN2021134577-appb-000001
在另一个例子中,健康数据包的数据格式如下:
Byte1 Byte2-6 Byte7~23 Byte24~191 Byte182~197
数据头码 包序标识 采集硬件ID 原始健康数据 保留
在一些实施例中,显示设备接收到健康数据包后,从健康数据包中取出用于显示检测界面的所需数据,然后根据取出的数据显示、更新检测界面,检测界面中可以显示检测进度和/或至少一项用户健康数据。
具体实现时,首先将健康数据包中十六进制的字节转换成十进制,然后从十进制的字节中选取出各项健康数据和异常标识。在一个例子中,将健康数据包中十六进制的字节转换成十进制后,得到的字节序列为[1,12,76,-1,29,6,-13,-28,-40,-49,-57,-63,-66,-65,-63,-60,-60,-63,-68,-77,-86,-95,-103,-108,-111,-113,-112,-111,-110,-108,-108,-109,-111,-115,-115,-109,-91,-59,-17,29,70,97,104,92,66,33,0,-26,-47,-60,-69,-73,-74,-73,-71,-69,-69,-72,-79,-86,-94,-101,-105,-109,-111,-112,-112,-112,35,96,84,-124,25,0,111,73,46,-43,0],其中,第68位代表心率,第69位代表血氧,第70位代表微循环,第74位代表收缩压,第75位代表舒张压,第78位代表异常标识。示例性的,异常标识1可以代表信号弱,异常标识2可以代表强光环境,异常标识3可以代表接触异常,异常标识0代表无异常。
在一些实施例中,显示设备根据最新接收到的健康数据包中的包序标识和健康数据包的预设数量,确定当前检测进度。例如,假设预设数量为24,最新接收到的健康数据包的包序标识为6,则确定当前检测进度为6/24,即25%。
在另一些实施例中,显示设备根据当前的数据接收时长和预设接收时长,确定当前检测进度。例如,假设当前的数据接收时长为10s,预设接收时长为30s,则确定当前检测进度为10s/30s,即1/3。
应当理解,显示设备每接收到一个健康数据包,则根据该健康数据包对检测界面进行更新。示例性的,当显示设备接收到第1个健康数据包后,在检测界面中,显示第1个健康数据包中的部分或者全部用户健康数据,如实时的心率状态数据及血氧状态数据,以及,显示检测进度,如表征检测进度的进度条,该检测进度可以根据健康数据包的包序标识或者采集时间确定。当显示设备接收到第2个健康数据包后,则根据第2个健康数据包中的数据更新检测界面。
在一些实施例中,根据健康数据包中的心率状态数据,在检测界面上侧的内容区中绘制心率状态曲线,在检测界面下侧的内容区中显示心率状态数值、血氧状态数据以及当前检测进度。
图14为本申请在一些示例性实施例中示出的一种检测界面,该界面上侧的内容区中显示实时变化的心率状态曲线,下侧的内容区中依次显示有心率状态数值“70BPM”、血氧状态数值“85%”以及当前进度为“62%”的检测进度条。
在以上实施例中,“健康管家”应用启动后,响应于输入的健康检测指令,在显示操 作指导界面的同时,向遥控器发送数据采集指令。遥控器响应于接收到数据采集指令,开启健康数据采集模块,进而进入到上述实施例介绍的健康检测过程。这种用户触发而启动遥控器上的数据采集的功能大大避免了长时间开启时候的功耗损失,在增加新数据采集模块的同时,保证了遥控器低功耗的特性。
应当理解,健康检测过程中,健康数据采集模块基于用户与触摸区的接触,采集用户健康数据。因此,在健康检测过程中,需要用户保持手指与触摸区接触。一旦用户将手指移开触摸区,将导致用户与触摸区的接触断开,那么,健康数据采集模块采集到的数据将不是用户真实的健康数据,进而导致检测异常。为便于说明,在本申请实施例中,由于用户与触摸区的接触断开而导致的检测异常称为用户接触异常。应当理解,影响用户健康数据采集的异常情况还包括通信信号弱、强光环境等。
如前所述,遥控器通过在健康数据包中封装异常标识,来通知显示设备有无异常以及异常类型。示例性的,在通过健康数据采集模块采集用户健康数据过程中,如果通过接触检测模块检测到用户与触摸区的接触断开,说明用户将手指从触摸区移开,则接触检测模块通过串口通信通知遥控器。遥控器则根据接触检测模块的通知,确定出现用户接触异常。此时,遥控器在健康数据包中封装表征用户接触异常的异常标识,发送给显示设备。显示设备则可以根据数据包中的异常标识,确定出现用户接触异常。而在无异常时,遥控器则在健康数据包中封装表征无异常的异常标识,发送给显示设备;显示设备则可以根据健康数据包中的异常标识,确定当前无异常。
在一些实施例中,接触检测模块在检测到用户与触摸区的接触断开后,继续检测用户与触摸区的接触,同时,健康数据采集模块继续采集用户健康数据。当接触检测模块检测到用户再次与触摸区的重新接触时,则通过串口通信通知遥控器。遥控器则根据通过串口通信的通知,确定用户与触摸区重新接触,即用户接触异常解除。此时,遥控器则在健康数据包中封装表征无异常的异常标识,发送给显示设备。显示设备则可以根据数据包中的异常标识,确定用户接触异常是否解除。
在一些实施例中,遥控器在无异常情况时(包括异常情况解除后)发送给显示设备的数据包为有效数据包,即,有效数据包中的异常标识表征无异常。遥控器在异常情况下发送给显示设备的数据包为无效数据包,即无效数据包中的异常标识表征用户接触异常、通信信号弱或者强光环境等异常类型。这样,显示设备可以根据健康数据包中的异常标识区分有效数据包和无效数据包。
在一些实施例中,显示设备接收到遥控器发送的健康数据包后,根据健康数据包中的异常标识判断该健康数据包是否为有效数据包。如果该健康数据包是有效数据包,再根据该健康数据包对检测界面进行更新。
应理解的是,显示设备也可以根据健康数据包中的用户健康数据判断该健康数据包是否有效。例如,当其中的用户健康数据中存在连续多个0时,可以确定该用户健康数据是无效数据,该健康数据包即为无效数据包。
在一些实施例中,显示设备在接收数据的过程中,实时统计已接收到的有效数据包的数量,以根据有效数据包的数量是否达到预设数量,判定是否可以终止数据采集过程。
在一些实施例中,显示设备接收到遥控器发送的健康数据包后,根据健康数据包中的异常标识确定是否出现用户接触异常;如果出现用户接触异常,则执行计时,以记录异常持续时间,并根据在出现用户接触异常的预设时长内是否接收到遥控器发送的有效数据包, 判断用户是否在该预设时长内与触摸区重新接触。如果在出现用户接触异常的预设时长内未接收到遥控器发送的有效数据包,说明用户在该预设时长内未与触摸区重新接触,则向遥控器发送指示其停止采集数据的控制指令。遥控器响应于接收到该控制指令,关闭健康数据采集模块。如果在出现用户接触异常的预设时长内接收到遥控器发送的有效数据包,说明用户在该预设时长内与触摸区重新接触,即用户接触异常解除,则继续接收遥控器发送的健康数据包,并记录接收到的有效数据包的数量。当接收到的有效数据包的数量达到预设数量时,向遥控器发送指示其停止采集数据的控制指令,并将所有的有效数据包发送给云端服务器。遥控器响应于接收到指示停止采集数据的控制指令,关闭健康数据采集模块。
由以上实施例可以看出,在采集用户健康数据过程中,如果出现用户接触短暂断开的情况,也可继续采集,直到采集到的有效数据数量达到预设数量,从而降低用户操作难度,避免由于短暂的接触不实或者操作不当造成数据采集失败。此外,还可以减轻用户压力,避免用户出现紧张心情,提升用户体验。
如果用户接触断开的时间过长,即超过预设时长,则数据采集失败,即健康检测失败。
在另一些实施例中,显示设备在接收到遥控器发送的指示开始采集数据的通知消息后,执行第一计时操作,以记录数据接收时长;显示设备接收到遥控器发送的健康数据包后,根据健康数据包中的异常标识判断是否出现用户接触异常;如果出现用户接触异常,则执行第二计时操作,以记录异常持续时间,并根据异常持续时间达到最大持续时长之前,是否接收到遥控器发送的有效数据包,判断用户是否在该最大持续时长内与触摸区重新接触。如果在异常持续时间达到最大持续时长之前,未接收到遥控器发送的有效数据包,则向遥控器发送指示其停止采集数据的控制指令。遥控器响应于该控制指令,关闭健康数据采集模块。如果在异常持续时间达到最大持续时长之前,接收到遥控器发送的有效数据包,则继续接收遥控器发送的健康数据包,直到数据接收时长达到预设接收时长。当数据接收时长达到预设接收时长时,向遥控器发送指示其停止采集数据的控制指令,并将接收到的所有有效数据包发送给云端服务器。遥控器响应于接收到指示其停止采集数据的控制指令,关闭健康数据采集模块。
值得注意的是,在一些实施例中,数据采集时长等同于数据接收时长,预设采集时长等同于预设接收时长。
由以上实施例可以看出,在采集用户健康数据过程中,如果出现用户接触短暂断开的情况,也可继续采集,从而降低用户操作难度,避免由于短暂的接触不实或者操作不当造成数据采集失败。此外,还可以减轻用户压力,避免用户出现紧张心情,提升用户体验。
如果用户接触断开的时间过长,即超过最大持续时长,则预示用户可能又进入其他事务中,或者不再关注健康检测,则终止数据采集和检测。可提示用户数据采集失败,即健康检测失败。
在一些实施例中,如果健康检测失败,则显示异常提示界面。异常提示界面中包括用于触发重新检测的控件,用户可以通过操作该控件触发新的检测过程。此外,异常提示界面中还可以提示失败原因、用户建议等。
图15为本申请在一些示例性实施例中示出的一种异常提示界面。如图15所示,该异常提示界面中显示有:失败原因“数据异常率较高,无法正常生成检测结果”,用户建议“建议重新检测,检测中,请保持手指完全覆盖在触摸区”。此外,该异常提示界面还显示有 “重新检测”控件和“取消”控件,用户可以点击“重新检测”指示返回到操作指导界面,以重新检测,也可以点击“取消”控件,指示返回到应用首页。
需要说明的是,对于内置有健康数据采集模块的终端设备,当其在通过健康数据采集模块采集用户健康数据过程中,检测到出现用户接触异常时,则执行计时操作,以记录异常持续时间。如果在最大持续时长内未重新检测到用户接触,则关闭健康数据采集模块,以停止采集数据。如果在最大持续时长内重新检测到用户接触,则不关闭健康数据采集模块,以继续采集数据,直到采集的有效的用户健康数据满足预设数量,或者数据采集时长达到预设采集时长。当采集的有效的用户健康数据满足预设数量,或者数据采集时长达到预设采集时长时,关闭健康数据采集模块。
如前所述,显示设备通过在操作系统中运行“健康管家”应用,完成与遥控器的交互控制,以及,接收遥控器端发送的用户健康数据。这样一来,一旦“健康管家”应用出现闪退、卡顿等异常情况,显示设备将无法继续与遥控器进行交互控制,也无法继续接收到遥控器发送的用户健康数据。
在一些实施例中,为确保遥控器与显示设备之间可正常通信,显示设备在向遥控器发送数据采集指令后,周期性地向遥控器发送在线指示消息。当数据接收时长达到预设接收时长或者有效数据接收量满足预设接收量(如前述预设数量24)时,显示设备向遥控器发送停止采集指令,并停止向遥控器发送在线指示消息。
遥控器则根据对在线指示消息的接收情况判断显示设备是否通信异常。例如,如果连续3次未接收到显示设备发送的在线指示消息,则确定显示设备通信异常。如果显示设备通信异常,则关闭健康数据采集模块,以停止采集用户健康数据。如果显示设备始终通信正常,则在接收到显示设备发送的停止采集指令时,关闭健康数据采集模块。应当理解,健康数据采集模块关闭后,将不再向显示设备发送用户健康数据,进而,健康检测过程终止。
具体实施时,“健康管家”应用每隔预设间隔,向遥控器发送一个心跳包。例如,每隔3秒向遥控器发送一个心跳包。如果遥控器连续3次未接收到“健康管家”应用发送的心跳包,则关闭健康数据采集模块。否则,在接收到显示设备发送的停止采集指令时,关闭健康数据采集模块。
在另一些实施例中,为确保遥控器与显示设备之间可正常通信,在数据采集过程中,遥控器周期性地向显示设备发送在线询问消息。显示设备在接收到遥控器发送的在线询问消息后,返回在线响应消息。遥控器则根据对在线响应消息的接收情况判断显示设备是否通信异常。例如,如果连续2次未接收到显示设备返回的在线响应消息,则确定显示设备通信异常。如果显示设备通信异常,则关闭健康数据采集模块,以停止采集用户健康数据。如果显示设备始终通信正常,则在接收到显示设备发送的停止采集指令时,关闭健康数据采集模块。
具体实施时,数据采集过程中,遥控器每隔预设间隔,向“健康管家”应用发送一个心跳包。例如,每隔3秒向“健康管家”应用发送一个心跳包。“健康管家”应用在接收到遥控器发送的心跳包后,返回心跳响应消息至遥控器。遥控器即可根据对心跳响应消息的接收情况,确定与“健康管家”应用的通信连接情况。如果遥控器连续2次未接收到“健康管家”应用发送的心跳响应消息,说明“健康管家”应用通信异常,则关闭健康数据采集模块,进而,健康检测过程终止。否则,在接收到显示设备发送的停止采集指令时, 关闭健康数据采集模块。
在另一些实施例中,为确保遥控器与显示设备之间可正常通信,显示设备响应于接收到遥控器发送的健康数据包,向遥控器返回接收响应消息。遥控器则根据对响应消息的接收情况判断显示设备是否通信异常。例如,如果连续2次未接收到显示设备返回的接收响应消息,则确定显示设备通信异常。如果显示设备通信异常,则关闭健康数据采集模块,以停止采集用户健康数据。否则,在接收到显示设备发送的停止采集指令时,关闭健康数据采集模块。
具体实施时,“健康管家”应用每次接收到遥控器发送的健康数据包后,向遥控器返回接收响应消息。遥控器则根据对该接收响应消息的接收情况,确定与“健康管家”应用的通信连接情况。如果遥控器连续2次未接收到“健康管家”应用返回的接收响应消息,说明“健康管家”应用通信异常,则关闭健康数据采集模块,进而,健康检测过程终止。
由以上实施例可以看出,在由于“健康管家”应用异常而造成显示设备通信与遥控器通信异常时,遥控器可以监测到显示设备通信异常,并主动关闭健康数据采集模块,以终止数据采集过程,进而避免健康数据采集模块始终处于工作状态,而将遥控器电量耗尽。
需要说明的是,对于内置有健康数据采集模块的终端设备,在通过健康数据采集模块采集用户健康数据的过程中,如果检测到“健康管家”应用异常,如闪退或者卡顿等,则通过串口将健康数据采集模块关闭。
在一些实施例中,用户健康数据采集结束后,显示设备将接收到的所有健康数据包发送给云端服务器。
在一种实现方式中,显示设备从每个健康数据包中截取出用户健康数据,然后以各个健康数据包的包序标识为拼接顺序,对截取出的用户健康数据进行拼接,并将拼接后的数据转换成字节,以生成新的数据包。最后,将生成的新数据包发送至云端服务器。
在一些实施例中,遥控器按照预先与显示设备约定的格式,将采集得到的用户健康数据封装成实时数据包和原始数据包,实时数据包用于在显示设备上显示检测界面,原始数据包用于发送给云端服务器。示例性的,实时数据包的数据格式可如前述第一个例子示出的数据包格式,原始数据的数据格式可如前述第二个例子示出的数据包格式。
需要说明的是,实时数据包与原始数据包的数据头码不同。这样,显示设备可以根据接收到的数据包的数据头码区分实时数据包和原始数据包。示例性的,原始数据包的数据头码可以为0,实时数据包的数据头码可以为1。那么,如果显示设备接收到的数据包的数据头码为0,则表示该数据包为原始数据包,如果显示设备接收到的数据包的数据头码为1,则表示该数据包为实时数据包。
在这些实施例中,显示设备需要对实时数据包进行解析,进而可以根据解析结果显示出检测界面。
值得注意的是,显示设备不需要对接收到的原始数据包进行解析,而是数据采集结束后,将接收到的全部原始数据包发送给云端服务器。
在一些实施例中,显示设备从每个原始数据包中截取出原始健康数据,然后以各原始数据包的包序标识为拼接顺序,对截取出的原始健康数据进行拼接,并将拼接后的数据转换成字节,以生成新的数据包。最后,将生成的新数据包发送至云端服务器。示例性的,根据原始数据包格式,截取第23个位置到第190个位置的数据,即得到原始健康数据。
示例性的,发送给云端服务器的数据包格式如下:
Figure PCTCN2021134577-appb-000002
其中,原始健康数据(1)为包序标识为1的原始数据包中的用户健康数据,原始健康数据(2)为包序标识为2的原始数据包中的用户健康数据……,以此类推,可以看出,该数据包中包括从各原始数据包中截取出的用户健康数据。
在一些实施例中,服务器接收显示设备发送的数据包,首先数据包中解析出用户健康数据;然后利用预置的分析算法对用户健康数据进行分析,得到健康检测结果;最后将健康检测结果发送给显示设备,以将健康检测结果在显示设备端展示给用户。作为可能的实现方式,健康检测结果可以包括心率变异性指标、症状描述信息、症状原因分析和用户建议信息中的一项或者多项。
在一个例子中,服务器利用预置的分析算法对用户健康数据分析,得出该用户的心率变异性指标为67,出现的症状包括心慌、气短等,症状原因包括体位变化、体力活动、情绪焦虑、恐惧、激动、饮酒、吸烟、喝茶、喝咖啡等,给出的用户建议包括戒烟、戒酒、少喝浓茶、增加有氧运动、少熬夜、避免劳累等。
在一些实施例中,显示设备在将用户健康数据发送给服务器的同时,将用户特征信息发送给服务器,以使服务器可以结合用户特征信息对用户健康数据进行分析。其中,用户特征信息可以包括用户的年龄、性别、身高、体重等。应当理解,用户特征信息可以是用户从档案信息输入界面中输入的信息。在用户通过操作档案管理界面中某个档案卡片上的“立即体检”控件来触发健康检测的场景中,数据采集完毕后,显示设备将采集到的用户健康数据和该档案卡片对应的用户特征信息一同发送给服务器。
在一些实施例中,服务器还可以使用预置的内容推荐规则对健康检测结果进行处理,确定与健康检测结果相匹配的推荐内容,并将推荐内容的相关信息发送给显示设备,以通过显示设备向用户推送对应的推荐内容。例如,如果健康检测结果显示用户心率变异性指标较高,则可以向用户推荐有助于用户改善心血管健康的内容,如健康饮食食谱、运动教学视频等内容。
为便于说明,本申请实施例中,将推荐内容的相关信息称为推荐信息。推荐信息可以包括显示信息和跳转参数。其中,显示信息包括推荐内容的图片、标题文字等,用于在用户界面中进行展示;跳转参数则是用于打开推荐内容的相关参数。
需要说明的是,推荐内容可以是:应用,如“AI健身”应用;指定应用提供的内容,如小视频应用中的视频内容;视频节目,如运动教学视频、减脂餐做法视频等;还可以是指定应用中的指定页面,如“AI健身”应用中的某个健身项目页面。
在另一些实施例中,服务器可以将健康检测结果与用户特征信息相结合,来确定出与健康检测结果和用户特征同时匹配的推荐内容。这样,确定的推荐内容将会同时符合用户的健康情况和个人特征。例如,如果健康检测结果显示用户超重,且用户特征信息显示用户年龄偏高,则可以向用户推荐有助于用户减重且符合高龄用户的内容,如健康减脂餐、健康装备以及适合高龄用户的健身项目,包括慢跑、快走、太极等非激烈运动。又如,如果健康检测结果显示用户超重,且用户特征信息显示用户为女性,则可以向用户推荐有助于用户减重且符合女性用户的内容,如健康减脂餐、以及适合女性用户的健康装备、健身项目(如瑜伽、美体操等)。
在一些实施例中,服务器预先获取用户兴趣信息,从而,可以将健康检测结果、用户特征信息以及预先获取的用户兴趣信息相结合,来确定同时与用户兴趣信息、健康检测结果及用户特征信息相匹配的推荐内容。这样,确定的推荐内容将会同时符合用户兴趣、健康情况及个人特征。
可以理解的是,内容标签对内容具有类别区分能力,其可以是包含在内容中的关键词或者内容所属类别的类别名称。内容源即内容的来源,包括应用或者小程序、插件等。在一些实施例中,用户对某内容的内容标签或者内容源的感兴趣程度,可以用于表征用户对该内容的感兴趣程度。
基于此,用户兴趣信息可以包括用户对内容标签和/或应用/插件(如Widget)的兴趣度。其中,用户对某个内容标签的兴趣度可以根据用户对具有该内容标签的内容的点击行为确定,用户对某个应用/插件的兴趣度可以根据用户对该应用/插件的使用情况确定。应当理解,用户对具有某个内容标签的内容的点击次数和点击频率越高,则用户对该内容标签的兴趣度越高;用户对某个应用/插件的使用时长越长、使用频率越高,则用户对该应用/插件的兴趣度越高。
在一些获取用户兴趣信息的实现方式中,当显示设备接收到用户对内容的选中操作时,显示设备将用户选中内容的相关信息上报给服务器。服务器则从显示设备上报的内容相关信息中提取出至少一个内容标签,如果提取出的内容标签是用户选中过的标签,则将该内容标签对应的选中次数加1,如果提取出的内容标签是用户未选中过的新标签,则保存该标签,并记录用户对该内容标签的选中次数为1。可以看出,通过该实现方式,服务器能够收集到用户对各个内容标签的选中次数和频率,即点击次数和频率,从而根据每个内容标签对应的点击次数和频率可以确定该内容标签对应的用户兴趣度。值得注意的是,内容的相关信息可以包括内容标题、类型、简介信息等。
示例性的,内容标签的用户兴趣度可以通过兴趣得分表征,兴趣得分则是基于预设评价策略,对内容标签对应的用户点击次数和频率进行评价而得到的。例如,如果内容标签“健身”对应的点击次数>M1且点击频率>n1,则内容标签“健身”对应的用户兴趣度为3分;如果内容标签“减肥”对应的点击次数>M2且点击频率>n2,则内容标签“减肥”对应的用户兴趣度为4分。
在一些获取用户兴趣信息的实现方式中,当用户打开显示设备上的应用或者小程序插件(如Widget)时,显示设备向服务器上报用户对该应用或者插件的使用通知;当用户关闭显示设备上的应用或者插件时,显示设备向服务器上报用户本次使用该应用或者插件的时长。服务器则根据显示设备上报的使用通知和使用时长,记录用户对各应用及插件的使用情况,进而根据用户对各应用或者插件的使用情况,确定各应用或者插件对应的用户兴趣度。
示例性的,应用或者小程序对应的用户兴趣度可以通过兴趣得分表征,兴趣得分则是基于预设评价策略,对应用或者小程序对应的使用情况进行评价而得到的。例如,如果“AI健身”应用对应的使用次数>S1且使用总时长>T1,则“AI健身”应用对应的用户兴趣度为3分;如果“AI健身”应用对应的使用次数>S2且使用总时长>T2,则“AI健身”应用对应的用户兴趣度为4分。
如前所述,服务器可以将健康检测结果、用户特征信息以及预先获取的用户兴趣信息相结合,来确定同时与用户兴趣信息、健康检测结果及用户特征信息相匹配的推荐内容。
在一些实现方式中,服务器首先利用内容推荐规则对用户特征信息和健康检测结果进行处理,以初步筛选出与用户特征信息和健康检测结果匹配的候选内容;然后确定每个候选内容的内容标签;再根据预先获取的用户兴趣信息确定每个候选内容的内容标签对应的用户兴趣度,将用户兴趣度大于预设的兴趣度阈值的内容标签所属的候选内容确定为推荐内容;最后,将由所有推荐内容对应的推荐信息构成的推荐信息集合发送至显示设备。
进一步地,服务器还可以按照用户兴趣度越高则推荐内容的优先级越高的原则,为每个推荐内容分配优先级,并将优先级标识作为推荐信息的一部分,发送给显示设备。这样,显示设备可以根据各推荐信息中的优先级标识区分用户对不同推荐内容的兴趣差异,从而优先展示用户较为感兴趣的推荐内容。
在另一种具体实现方式中,服务器首先利用预置的内容推荐规则对用户特征信息和健康检测结果进行处理,以初步筛选出与用户特征信息和健康检测结果匹配的候选内容;然后确定每个候选内容的内容源,其中,候选内容的内容源为显示设备上的应用或者插件;再根据预先获取的用户兴趣信息确定每个候选内容的内容源对应的用户兴趣度,将用户兴趣度大于预设的兴趣度阈值的内容源的候选内容确定为推荐内容;最后将由所有推荐内容对应的推荐信息构成的推荐信息集合发送给显示设备。
进一步地,服务器还可以按照内容源的兴趣度越高则推荐内容的优先级越高的原则,为每个推荐内容分配优先级,并将优先级标识作为推荐信息的一部分,发送给显示设备。这样,显示设备可以根据各个推荐信息中的优先级标识区分用户对不同推荐内容的兴趣差异,从而优先展示用户较为感兴趣的推荐内容。
在一些实施例中,显示设备接收到服务器返回的健康检测结果及推荐信息集合后,由检测界面进入到检测结果界面,在检测结果界面汇总显示健康检测结果和至少一个推荐内容。示例性的,可以在检测结果界面的第一内容区中显示健康检测结果,在检测结果界面的第二内容区中显示至少一个推荐信息中的显示信息,即推荐内容的标题、图片等。
在一些实施例中,在检测结果界面的第二内容区中显示至少一个选项卡,将从推荐信息集合中随机筛选出的至少一个推荐内容分别显示在各个选项卡中。示例性的,可以在第二内容区中显示预设数量个选项卡,将从推荐信息集合中随机筛选出的预设数量个推荐内容分别显示在各个选项卡中。
在一些实施例中,第一内容区与第二内容区分别位于检测结果界面的上下两侧,并可以根据待展示内容的需求划分第一内容区及第二内容区各自占据的区域面积。
图16为本申请在一些示例性实施例中示出的检测结果界面。如图16所示,在该检测结果界面上侧的第一内容区中显示有健康检测结果的具体内容,包括用户的心率变异性指标、心率变异性概念介绍、用户出现症状的描述、症状原因、以及用户建议。在该检测结果界面下侧的第二内容区中显示有四个推荐内容选项卡,其标题分别为“健康减脂餐”、“AI健身”、“心血管食谱”、“养生大课堂”。用户可以点击任意一个选项卡,查看相应标题下的推荐内容。
应当理解,第一内容区和第二内容区也可以分别位于检测结果界面的左右两侧,本申请不予赘述。
在一些实施例中,推荐信息包括该推荐内容的优先级标识,每个推荐内容的优先级标识均是由服务器根据该推荐内容的内容标签或者内容源对应的用户兴趣度确定,所述内容标签对应的用户兴趣度根据用户对具有该内容标签的内容的点击行为确定,所述内容源对 应的用户兴趣度根据用户对该内容源的使用情况确定。在显示检测结果界面时,在第二内容区中显示预设数量个选项卡,将推荐信息集合中优先级靠前的预设数量个推荐内容分别显示在各个选项卡中。
在一些实施例中,检测结果界面中还显示有用于更新推荐内容的控件,例如在检测结果界面中的“换一批”控件。用户可以通过操作该控件,指示显示设备更换当前显示的推荐内容。显示设备响应于对该控件的确认操作,将其余推荐内容中优先级靠前的预设数量个所述推荐内容分别显示在各个选项卡中,其中,其余推荐内容是指推荐内容集合中未展示过的推荐内容。
图17为本申请示例性示出的另一种检测结果界面,其具体为用户操作图16所示界面中的“换一批”控件后显示的界面。与图16不同的是,在图17中,检测结果界面下侧的第二内容区中显示的推荐内容分别为:“瑜伽”、“Keep”、“健康一身轻”、“健身套装”。
值得注意的是,在上述实施例中,检测结果界面中的每个选项卡均可获取焦点,用户可以通过操作控制装置来移动焦点位置,以选择任意一个选项卡。当焦点落在某个选项卡上时,用户可以输入确认操作,来打开对应的推荐内容。基于此,当显示设备接收到用户输入的对目标推荐内容的选中操作时,获取该目标推荐内容对应的跳转参数;根据跳转参数启动目标跳转应用,并显示目标跳转界面。
具体的,跳转参数包括目标跳转应用标识和目标跳转页面标识,该目标跳转应用标识具体可以为应用包名,用于使显示设备确定目标跳转应用,该目标跳转页面标识具体可以为类名,用于使显示设备确定目标跳转页面。此外,跳转参数中还可以包括跳转类型。示例性的,一种可能的跳转参数格式如下:
{"startupType":4,"startupUrl":[{"key":"startupType","value":1,"type":"int"},{"key":"packageName","value":"com.hisense.tv.mirror","type":"String"},{"key":"className","value":"com.hisense.tv.mirror.PreviewActivity","type":"String"}]}
上述跳转参数示例中,packageName为应用包名,即目标跳转页面标识,className为类名,即目标跳转页面标识。
示例性的,当用户打开图16中的“AI健身”选项卡时,则由图16所示界面跳转到“AI健身”应用的应用首页。
由以上实施例可以看出,本申请提供的技术方案,在为用户提供健康检测结果的同时,还针对用户个性化的健康检测结果、用户兴趣以及用户特征,为其推送合适的推荐内容,丰富界面内容,满足用户的潜在需求,提高用户体验。
根据上述实施例提供的显示设备,本申请实施例还提供一种交互控制方法,该方法的执行主体可以是本申请所提供显示设备的控制器,如图3中示出的控制器250。由于该交互控制方法,与上述实施例中显示设备控制器执行的步骤相对应,因此下述实施例仅对该交互控制方法进行简要介绍,其进一步的实现方式参见上述显示设备实施例即可。
如图18所示,该交互控制方法可以包括以下步骤:
S221,接收指示启动健康检测功能相关应用的控制指令,所述控制指令由遥控器在检测到用户与遥控器上触摸区持续预设时间的接触时发送。
S222,响应于所述控制指令,启动所述应用,并显示应用首页。
S223,响应于用户根据所述应用首页输入的健康检测指令,向遥控器发送数据采集指令,以使遥控器通过内置的健康数据采集模块采集用户健康数据。
另外,该交互控制方法还包括:响应于所述输入的健康检测指令,显示用于展示操作指导信息的操作指导界面,并执行第一计时操作,以记录等待时长;如果在等待时长达到预设等待时长之前,接收到遥控器发送的指示开始采集数据的通知消息,则显示检测界面,以在接收到用户健康数据,在所述检测界面中实时显示检测进度和/或至少一项检测项目数值。如果在等待时长达到预设等待时长之前,未接收到遥控器发送的指示开始采集数据的通知消息,则在所述操作指导界面上显示超时提示。
此外,接收指示启动健康检测功能相关应用的控制指令时,显示设备需响应于控制指令检测当前所处的应用场景,如果在音视频播放场景或者游戏场景下,需实行转场,如音视频暂停播放,游戏暂停,然后启动健康检测功能相关的应用,显示界面从播放界面切换至健康检测界面。
当然,在健康检测结束后,用户选择退出时,可直接跳转至上一应用所在界面,继续先前的音视频播放和游戏。
S224,接收遥控器发送的用户健康数据,根据所述用户健康数据进行用户健康检测。
具体的,接收遥控器间隔性发送的多个健康数据包,所述健康数据包中至少包括采集到的最新用户健康数据。
在一些实施例中,该交互控制方法还包括:响应于接收到遥控器发送的指示开始采集数据的通知消息,执行第二计时操作,以记录数据接收时长;当接收到预设数量个有效数据包,或者所述数据接收时长达到预设接收时长时,向遥控器发送停止采集指令,所述有效数据包是指所述遥控器在无检测异常时发送的健康数据包。
在一些实施例中,根据所述用户健康数据进行用户健康检测,包括:将接收到的所有用户健康数据发送给服务器,以使服务器对所述用户健康数据进行分析,得到健康检测结果;接收服务器返回的所述健康检测结果;将所述健康检测结果展示在检测结果界面中。
在一些实施例中,该交互控制方法还包括:接收服务器根据所述健康检测结果返回的推荐信息集合;根据所述推荐信息集合中的至少一个推荐信息,在所述检测结果界面中展示至少一个推荐内容。
根据上述实施例提供的遥控器,本申请实施例还提供一种交互控制方法,该方法的执行主体可以是本申请所提供遥控器的控制器,如图2中示出的控制器110。由于该交互控制方法,与上述实施例中遥控器控制器执行的步骤相对应,因此下述实施例仅对该交互控制方法进行简要介绍,其进一步的实现方式参见上述遥控器相关的实施例即可。
如图19所示,该交互控制方法可以包括以下步骤:
S231,当检测到用户与所述触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令。
S232,响应于显示设备发送的数据采集指令,控制所述健康数据采集模块开始采集用户健康数据。
具体的,响应于接收到所述数据采集指令,启动所述健康数据采集模块,并检测所述触摸区上是否有用户接触;当所述健康数据采集模块启动成功且检测到所述触摸区上有用户接触时,健康数据采集模块自动开始采集用户健康数据。
另外,当所述健康数据采集模块启动成功且检测到所述触摸区上有用户接触时,向显示设备发送指示开始采集数据的通知消息。
S233,将采集到的所述用户健康数据实时发送给显示设备。
具体的,每隔预设时长,将包含最新采集的用户健康数据的健康数据包发送给显示设备。
根据上述实施例提供的遥控器,本申请实施例还提供一种数据采集方法,该方法的执行主体可以是本申请所提供遥控器的控制器,如图2中示出的控制器110。由于该数据采集方法,与上述实施例中遥控器控制器执行的步骤相对应,因此下述实施例仅对该数据采集方法进行简要介绍,其进一步的实现方式参见上述遥控器相关的实施例即可。
如图20所示,该数据采集方法可以包括以下步骤:
S331,响应于显示设备发送的数据采集指令,控制所述健康数据采集模块开始采集用户健康数据。
具体的,响应于所述数据采集指令,启动所述健康数据采集模块,并检测所述触摸区上是否有用户接触;当所述健康数据采集模块启动成功且检测到所述触摸区上有用户接触时,控制所述健康数据采集模块开始采集用户健康数据,并向显示设备发送指示开始采集数据的通知消息。
在一些实施例中,接收到所述显示设备发送的数据采集指令之前,该数据采集方法还包括:当检测到用户与所述触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令。
S332,将采集到的所述用户健康数据实时发送给显示设备。具体的,每隔预设时长,将包含最新采集的用户健康数据的健康数据包发送给显示设备。
S333,响应于显示设备发送的停止采集指令,关闭所述健康数据采集模块,以停止采集用户健康数据。
由以上实施例可知,本申请提供一种显示设备、控制装置及一种交互控制方法,该控制装置具体可以为遥控器。当遥控器检测到用户与触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令;显示设备响应于该控制指令,启动该应用,并显示应用首页;当用户根据应用首页输入健康检测指令时,显示设备遥控器发送数据采集指令;遥控器响应于该数据采集指令,控制健康数据采集模块开始采集用户健康数据,并将用户健康数据实时发送给显示设备。显示设备根据接收到的用户健康数据进行用户健康检测。本申请实施例中,基于遥控器与显示设备交互控制及配合,用户通过简单的操作即可启动显示设备的健康检测功能,并采集到用户健康数据,使得用户随时随地可以进行健康检测,体验感强。
根据上述实施例提供的显示设备,本申请实施例还提供一种异常处理方法,该方法的执行主体可以是本申请所提供显示设备的控制器,如图3中示出的控制器250。由于该异常处理方法,与上述实施例中显示设备控制器执行的步骤相对应,因此下述实施例仅对该异常处理方法进行简要介绍。本申请提供的异常处理方法的更为具体的实现方式,与上述显示设备实施例内容可以互相参照。
如图21所示,该异常处理方法可以包括以下步骤:
S421,在基于用户与触摸区的接触采集用户健康数据的过程中,监测是否出现用户接触异常。若出现用户接触异常,则执行S422。
在一些实施例中,所述触摸区设在遥控器上,遥控器内置有健康数据采集模块,所述健康数据采集模块与所述触摸区连接,所述基于用户与触摸区的接触采集用户健康数据的过程,包括:响应于输入的健康检测指令,向遥控器发送数据采集指令,以指示遥控 器通过所述健康数据采集模块采集用户健康数据;接收遥控器发送的用户健康数据。更为具体的,所述接收遥控器发送的用户健康数据,包括:接收所述遥控器间隔性发送的健康数据包,所述健康数据包中至少包括所述健康数据采集模块采集的最新用户健康数据。
在一些实施例中,所述健康数据包中还包括异常标识,所述异常标识用于表征有无检测异常及异常类型;所述在基于用户与触摸区的接触采集用户健康数据的过程中,监测是否出现用户接触异常,包括:判断接收到的健康数据包中的异常标识是否表征用户接触异常。
在另一些实施例中,触摸区设在显示设备本体上,显示设备内置有健康数据采集模块,健康数据采集模块与所述触摸区连接,所述基于用户与触摸区的接触采集用户健康数据的过程,包括:控制健康数据采集模块基于用户与触摸区的接触,采集用户健康数据。
S422,在出现所述用户接触异常后的预设时长内,检测用户与触摸区是否重新接触。若在所述预设时长内检测到用户与触摸区重新接触,则执行S423,否则,执行S424。
在一些实施例中,所述在出现所述用户接触异常后的预设时长内,检测用户与触摸区是否重新接触,包括:判断在出现接触异常后的预设时长内接收到的健康数据包是否为异常标识表征无异常的有效数据包。
S423,继续采集用户健康数据,直到采集到的有效数据数量达到预设数量。
S424,向遥控器发送停止采集指令,以使遥控器关闭所述健康数据采集模块。
另外,在一些实施例中,当接收到的所述有效数据包的数量达到预设数量时,向遥控器发送停止采集指令,以使遥控器关闭所述健康数据采集模块。在一些实施例中,该异常处理方法还包括:若在所述预设时长内未检测到用户与触摸区重新接触,则显示异常提示界面,所述异常提示界面用于展示检测失败原因、用户建议和/或操作控件。由以上实施例可知,本申请提供一种显示设备、控制装置及一种异常处理方法。显示设备在基于用户与触摸区的接触采集用户健康数据的过程中,监测是否出现用户接触异常;若出现用户接触异常,则在出现用户接触异常后的预设时长内,检测用户与触摸区是否重新接触;若在预设时长内检测到用户与触摸区重新接触,则继续采集用户健康数据,直到采集到的有效数据数量达到预设数量,所述有效数据是指在无检测异常时采集的用户健康数据。这样,在采集用户健康数据过程中,如果出现用户接触短暂断开的情况,也可继续采集,直到采集到的有效数据数量达到预设数量,从而降低用户操作难度,避免由于短暂的接触不实或者操作不当造成数据采集失败。此外,还可以减轻用户压力,避免用户出现紧张心情,提升用户体验。
本申请实施例还提供一种通信监测方法,该方法的执行主体可以是本申请所提供遥控器的控制器,如图2中示出的控制器110。由于该通信监测方法,与上述实施例中遥控器控制器执行的步骤相对应,因此下述实施例仅对该通信监测方法进行简要介绍。本申请提供的通信监测方法的更为具体的实现方式,与上述显示设备实施例内容可以互相参照。
如图22所示,本申请实施例提供的消息发送方法可以包括以下步骤:
S521,响应于输入的健康检测指令,向遥控器发送数据采集指令,以指示遥控器采集用户健康数据。
S522,接收遥控器发送的所述用户健康数据,在通过所述遥控器采集用户健康数据过 程中,周期性向所述遥控器发送在线指示消息。
继续参阅图22,本申请实施例提供的通信监测方法可以包括以下步骤:
S523,响应于接收到显示设备发送的数据采集指令,开启健康数据采集模块,以通过所述健康数据采集模块采集用户健康数据;
S524,将采集的用户健康数据发送给显示设备。
S525,在采集用户健康数据的过程中,接收显示设备发送的在线指示消息,根据对所述在线指示消息的接收情况判断显示设备是否通信异常;如果显示设备通信异常,则执行S526,否则,在接收到显示设备发送的停止采集指令时,关闭所述健康数据采集模块。
S526,关闭所述健康数据采集模块,以停止采集用户健康数据。
由以上实施例可知,本申请提供一种显示设备、控制装置及一种通信监测方法。显示设备在响应于输入的健康检测指令,向遥控器发送数据采集指令,以指示遥控器采集用户健康数据;在通过遥控器采集用户健康数据过程中,周期性向遥控器发送在线指示消息。遥控器响应于显示设备发送的数据采集指令,开启健康数据采集模块,以通过健康数据采集模块采集用户健康数据;在采集用户健康数据的过程中,接收显示设备发送的在线指示消息,并根据对在线指示消息的接收情况判断显示设备是否通信异常;如果显示设备通信异常,则关闭健康数据采集模块,以停止采集用户健康数据。可以看出,通过本申请提供的技术方案,在由于“健康管家”应用异常而造成显示设备通信与遥控器通信异常时,遥控器可以监测到显示设备通信异常,并主动关闭健康数据采集模块,以终止数据采集过程,进而避免健康数据采集模块始终处于工作状态,而将遥控器电量耗尽。
根据上述实施例提供的显示设备,本申请实施例还提供一种数据处理方法,该方法的执行主体可以是本申请所提供显示设备的控制器,如图3中示出的控制器250。由于该数据处理方法,与上述实施例中显示设备控制器执行的步骤相对应,因此下述实施例仅对该数据处理方法进行简要介绍。本申请提供的数据处理方法的更为具体的实现方式,与上述显示设备实施例内容可以互相参照。
如图23所示,本申请实施例提供的消息发送方法可以包括以下步骤:
S621,响应于输入的健康检测指令,获取用户健康数据。
S622,将所述用户健康数据发送至服务器,以通过所述服务器分析所述用户健康数据以及确定与健康检测结果匹配的推荐信息集合。
在一些实施例中,将所述用户健康数据发送至服务器的同时,将所述用户健康数据对应的用户特征信息发送至所述服务器,以通过所述服务器确定与所述健康检测结果和所述用户特征信息相匹配的推荐信息集合。
S623,接收服务器返回的所述健康检测结果和所述推荐信息集合,并将所述健康检测结果和所述推荐信息集合中的至少一个推荐信息展示在用户界面中。
在一些实施例中,在所述用户界面的第一内容区中显示所述健康检测结果,在所述用户界面的第二内容区中显示至少一个所述推荐信息。
在一些实施例中,在所述第二内容区中显示至少一个选项卡,将从所述推荐信息集合中随机筛选出的至少一个所述推荐信息分别显示在各个选项卡中。
在一些实施例中,所述推荐信息集合中的每个推荐信息携带有优先级标识,所述优先级标识根据所述推荐信息的内容标签或者内容源应用对应的用户兴趣度确定,所述内容标签对应的用户兴趣度根据用户对具有所述内容标签的内容的点击行为确定,所述内容源应 用对应的用户兴趣度根据用户对所述内容源应用的使用情况确定。在所述用户界面的第二内容区中显示预设数量个选项卡,将所述推荐信息集合中优先级靠前的预设数量个所述推荐信息分别显示在各个选项卡中。
在一些实施例中,所述推荐信息的内容标签或者内容源应用对应的用户兴趣度大于预设的兴趣度阈值。
在一些实施例中,所述用户界面中包括用于触发更新推荐信息的控件,该方法还包括:响应于输入的对所述控件的确认操作,将其余推荐信息中优先级靠前的预设数量个所述推荐信息分别显示在各个选项栏中,其中,其余推荐信息是指推荐信息集合中未展示过的推荐信息。
在一些实施例中,该方法还包括:响应于输入的对目标推荐信息的选中操作,获取所述目标推荐信息包含的跳转参数;根据所述跳转参数启动目标跳转应用,并显示目标跳转界面。
由以上实施例可知,本申请提供一种显示设备、服务器及数据处理方法。显示设备响应于输入的健康检测指令,获取用户健康数据;将用户健康数据发送至服务器,以通过服务器分析用户健康数据以及确定与健康检测结果匹配的推荐信息集合;接收服务器返回的健康检测结果和推荐信息集合,并将健康检测结果和推荐信息集合中的至少一个推荐信息展示在用户界面中。可以看出,通过本申请提供的技术方案,在为用户提供健康检测结果的同时,还针对用户个性化的健康检测结果,为其推送合适的推荐内容,丰富界面内容,满足用户的潜在需求,提高用户体验。
具体实现中,本发明还提供一种计算机存储介质,其中,该计算机存储介质可存储有程序,该程序执行时可包括本发明提供的交互控制方法的各实施例中的部分或全部步骤。所述的存储介质可为磁碟、光盘、只读存储记忆体(英文:read-only memory,简称:ROM)或随机存储记忆体(英文:random access memory,简称:RAM)等。
本领域的技术人员可以清楚地了解到本发明实施例中的技术可借助软件加必需的通用硬件平台的方式来实现。基于这样的理解,本发明实施例中的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品可以存储在存储介质中,如ROM/RAM、磁碟、光盘等,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本发明各个实施例或者实施例的某些部分所述的方法。
本说明书中各个实施例之间相同相似的部分互相参见即可。尤其,对于实施例而言,由于其基本相似于方法实施例,所以描述的比较简单,相关之处参见方法实施例中的说明即可。
以上所述的本发明实施方式并不构成对本发明保护范围的限定。

Claims (12)

  1. 一种显示设备,其特征在于,包括:
    显示器,用于显示用户界面;
    控制器,被配置为:
    接收指示启动健康检测功能相关应用的控制指令,所述控制指令由遥控器在检测到用户与遥控器上触摸区持续预设时间的接触时发送;
    响应于所述控制指令,启动所述应用,并显示应用首页;
    响应于用户根据所述应用首页输入的健康检测指令,向遥控器发送数据采集指令,以使遥控器通过内置的健康数据采集模块采集用户健康数据;
    接收遥控器发送的用户健康数据,根据所述用户健康数据进行用户健康检测。
  2. 根据权利要求1所述的显示设备,其特征在于,所述控制器进一步被配置为:
    响应于所述输入的健康检测指令,显示用于展示操作指导信息的操作指导界面,并执行第一计时操作,以记录等待时长;
    如果在等待时长达到预设等待时长之前,接收到遥控器发送的指示开始采集数据的通知消息,则显示检测界面,所述检测界面用于显示检测进度和/或至少一项检测项目数值;
    如果在等待时长达到预设等待时长之前,未接收到遥控器发送的指示开始采集数据的通知消息,则在所述操作指导界面上显示超时提示。
  3. 根据权利要求2所述的显示设备,其特征在于,所述控制器进一步被配置为:
    根据接收到的所述用户健康数据,在所述检测界面中实时显示检测进度和/或至少一项检测项目数值。
  4. 根据权利要求1所述的显示设备,其特征在于,所述接收遥控器发送的用户健康数据,包括:
    接收所述遥控器间隔性发送的多个健康数据包,所述健康数据包中至少包括采集到的最新用户健康数据。
  5. 根据权利要求4所述的显示设备,其特征在于,所述控制器进一步被配置为:
    响应于接收到遥控器发送的指示开始采集数据的通知消息,执行第二计时操作,以记录数据接收时长;
    当接收到预设数量个有效数据包,或者所述数据接收时长达到预设接收时长时,向遥控器发送停止采集指令,所述有效数据包是指所述遥控器在无检测异常时发送的健康数据包。
  6. 根据权利要求1所述的显示设备,其特征在于,所述根据所述用户健康数据进行用户健康检测,包括:
    向遥控器发送停止采集指令后,将接收到的所有用户健康数据发送给服务器,以使服务器对所述用户健康数据进行分析,得到健康检测结果;
    接收服务器返回的所述健康检测结果;
    将所述健康检测结果展示在检测结果界面中。
  7. 根据权利要求6所述的显示设备,其特征在于,所述控制器进一步被配置为:
    接收服务器根据所述健康检测结果返回的推荐信息集合;
    根据所述推荐信息集合中的至少一个推荐信息,在所述检测结果界面中展示至少一个 推荐内容。
  8. 一种控制装置,其特征在于,包括:
    触摸区;
    与所述触摸区连接的健康数据采集模块,用于基于用户与所述触摸区的接触,采集用户健康数据;
    与所述健康数据采集模块通信的控制器,被配置为:
    当检测到用户与所述触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令;
    响应于显示设备发送的数据采集指令,控制所述健康数据采集模块开始采集用户健康数据;
    将采集到的所述用户健康数据实时发送给显示设备。
  9. 根据权利要求8所述的控制装置,其特征在于,所述将采集到的所述用户健康数据实时发送给显示设备,包括:
    每隔预设时长,将包含最新采集的用户健康数据的健康数据包发送给显示设备。
  10. 根据权利要求8所述的控制装置,其特征在于,所述响应于显示设备发送的数据采集指令,控制所述健康数据采集模块开始采集用户健康数据,包括:
    响应于所述数据采集指令,启动所述健康数据采集模块,并检测所述触摸区上是否有用户接触;
    当所述健康数据采集模块启动成功且检测到所述触摸区上有用户接触时,控制所述健康数据采集模块开始采集用户健康数据,并向显示设备发送指示开始采集数据的通知消息。
  11. 一种交互控制方法,其特征在于,应用于显示设备,所述方法包括:
    接收指示启动健康检测功能相关应用的控制指令,所述控制指令由遥控器在检测到用户与遥控器上触摸区持续预设时间的接触时发送;
    响应于所述控制指令,启动所述应用,并显示应用首页;
    响应于用户根据所述应用首页输入的健康检测指令,向遥控器发送数据采集指令,以使遥控器通过内置的健康数据采集模块采集用户健康数据;
    接收遥控器发送的用户健康数据,根据所述用户健康数据进行用户健康检测。
  12. 一种交互控制方法,其特征在于,应用于控制装置,所述控制装置包括触摸区和与所述触摸区连接的健康数据采集模块,所述方法包括:
    当检测到用户与所述触摸区持续预设时间的接触时,向显示设备发送指示启动健康检测功能应用的控制指令;
    响应于显示设备发送的数据采集指令,控制所述健康数据采集模块开始采集用户健康数据;
    将采集到的所述用户健康数据实时发送给显示设备。
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