Electronic device
By setting a detection module on the first body of the folding screen mobile phone to collect body information and displaying the module on the second body to display this information, the problem of single functions of the existing folding screen mobile phone is solved, and higher user interactivity and real-time status display is achieved.
Patent Information
- Application Number
- CN202422394244.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-29
- Publication Date
- 2025-08-19
- Estimated Expiration
- 2034-09-29
AI Technical Summary
The existing folding screen mobile phones have relatively single functions, poor user interaction, and cannot effectively detect and display user's physical information.
The detection area is set on the first body of the folding screen mobile phone, and a detection module is equipped to collect user's body information, such as heart rate, blood oxygen, etc., and process and display this information through the display module on the second body to improve user interactivity.
By detecting and displaying the user's physical status, the function of the folding screen mobile phone is added, the user's interaction with the device is improved, and the user can understand his or her status in real time.
Smart Images

Figure CN223246606U_ABST
Abstract
Description
Technical Field
[0001] The present disclosure relates to the technical field of electronic devices, and in particular to an electronic device. Background Art
[0002] Foldable phones are smartphones that use flexible screen technology, allowing the screen to fold, giving the device a larger display area when unfolded and becoming more portable when folded. Existing foldable phones have limited functionality and poor user interactivity. Utility Model Content
[0003] The disclosed embodiments provide the following technical solutions:
[0004] The present disclosure provides an electronic device, comprising:
[0005] A first body, wherein a first surface of the first body has a detection area, and a detection module is provided in the detection area, and the detection module is used to detect target information of an operator;
[0006] The second body is rotatably connected to the first body, and the second body has a display area. The display area is provided with a display module. The display module can display the operator's target state based on the target information detected by the detection module.
[0007] In some modified embodiments of the present disclosure, the detection module is located between the first surface of the first body and the third surface of the first body, and the detection module includes:
[0008] A first detection module, the first detection module can identify fingerprint information through the operator's finger;
[0009] a second detection module, the second detection module being capable of emitting light into a detection area to detect target information of the operator; the target information being different from the fingerprint information;
[0010] The first detection module is arranged on one side of the second detection module close to the connection between the first body and the second body.
[0011] In some modified embodiments of the present disclosure, the second detection module includes:
[0012] processor;
[0013] A light source is connected to the processor and is used to emit light to the detection area;
[0014] An optical sensor is connected to the processor and is used to receive light reflected from the detection area and send a signal to the processor;
[0015] The optical sensor is arranged at a position close to the projection center of the detection area.
[0016] In some modified embodiments of the present disclosure, the second detection module also includes a first conductive part and a second conductive part, the first ends of the first conductive part and the second conductive part are connected to the processor, and the second ends of the first conductive part and the second conductive part extend out of the outer surface of the first body.
[0017] In some modified embodiments of the present disclosure, the second ends of the first conductive portion and the second conductive portion are respectively disposed on opposite sides of the first body.
[0018] In some modified embodiments of the present disclosure, the second ends of the first conductive portion and the second conductive portion are connected to a conductive flexible material;
[0019] The second ends of the first conductive portion and the second conductive portion are bent toward the first body to form a bent surface.
[0020] In some modified embodiments of the present disclosure, at least two through holes are provided on the first body, and the first conductive part and the second conductive part are connected in the two through holes via an insulating part.
[0021] In some modified embodiments of the present disclosure, the detection module further includes at least one of the following:
[0022] A temperature sensor is provided in the detection area and is connected to the processor. The display module can display the operator's temperature status based on the temperature information detected by the temperature sensor.
[0023] The skin humidity sensor is arranged in the detection area and is connected to the processor. The display module can display the skin humidity status of the operator based on the skin humidity information detected by the skin humidity sensor.
[0024] In some modified embodiments of the present disclosure, a first display module is provided on the second surface of the second body, and the first display module is capable of displaying the operator's target state based on the target information;
[0025] A second display module is disposed on the third surface of the first body and the fourth surface of the second body. The second display module can display the operator's target state based on the target information.
[0026] In some modified embodiments of the present disclosure, the first body is in a first state relative to the second body, and the first surface of the first body and the second surface of the second body are disposed opposite to each other at a first angle;
[0027] The first body is in a second state relative to the second body, and the first surface of the first body and the second surface of the second body are coplanar and have a second angle;
[0028] The first body is in a third state relative to the second body, and the first surface of the first body and the second surface of the second body are arranged at an angle having a third angle;
[0029] The first angle is smaller than the third angle, and the third angle is smaller than the second angle. BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The above and other objects, features and advantages of the exemplary embodiments of the present application will become readily understood by reading the detailed description below with reference to the accompanying drawings. In the accompanying drawings, several embodiments of the present application are shown in an exemplary and non-limiting manner, and the same or corresponding reference numerals represent the same or corresponding parts, wherein:
[0031] Figure 1 The figure schematically shows a three-dimensional structure diagram of an electronic device;
[0032] Figure 2 Schematically shows a schematic diagram of the internal structure of a first body of an electronic device;
[0033] Figure 3 The schematic diagram shows a structure of a detection module of an electronic device;
[0034] Figure 4 The following schematically shows a structural diagram of an electronic device when displaying a target state;
[0035] Figure 5 The figure schematically shows the structure of an electronic device from another angle.
[0036] Description of Figure Numbers:
[0037] 1. First body; 11. Detection area; 12. Detection module; 121. First detection module; 122. Second detection module; 123. Processor; 124. First conductive portion; 125. Second conductive portion; 126. External main board; 13. First surface; 14. Third surface; 2. Second body; 21. Second surface; 22. Fourth surface; 23. Target state image; 3. Display module; 31. First display module; 32. Second display module. DETAILED DESCRIPTION
[0038] Exemplary embodiments of the present disclosure will be described in more detail below with reference to the accompanying drawings. Although exemplary embodiments of the present disclosure are shown in the accompanying drawings, it should be understood that the present disclosure can be implemented in various forms and should not be limited by the embodiments described herein. Rather, these embodiments are provided to enable a more thorough understanding of the present disclosure and to fully convey the scope of the present disclosure to those skilled in the art.
[0039] It should be noted that, unless otherwise specified, the technical or scientific terms used in the present disclosure should have the common meanings understood by those skilled in the art to which the present disclosure belongs.
[0040] Foldable phones are smartphones that utilize flexible screen technology, allowing the screen to fold, creating a larger display when unfolded and becoming more portable when folded. These phones typically come in two main designs: one that folds horizontally like a book, and the other that folds vertically, similar to a traditional flip phone. Existing foldable phones offer limited functionality, for example, they cannot detect extensive user information and exhibit poor user interactivity.
[0041] In order to solve the above technical problems, the present disclosure proposes an electronic device that can collect and display the user's body information, thereby improving interactivity with the user.
[0042] like Figure 1 As shown, an electronic device includes a first body 1 and a second body 2, the first surface 13 of the first body 1 has a detection area 11, the detection area 11 is provided with a detection module 12, and the detection module 12 is used to detect the operator's target information; the second body 2 is rotatably connected to the first body 1, the second body 2 has a display area, the display area is provided with a display module 3, and the display module 3 can display the operator's target status based on the target information detected by the detection module 12.
[0043] The first body 1 refers to a major component of a device, connected in some way to another body, the second body 2, allowing the device to be opened and closed or adjusted in angle. Specifically, the first body 1 may be part of the device's basic frame, upon which various components such as the processor 123, memory, and battery may be mounted. It may also include some input and output interfaces and a portion of the user interface. More specifically, depending on the device, the first body 1 can take different forms. For example, the first body 1 in a laptop computer includes input devices such as a keyboard and touchpad, as well as some computing hardware; the first body 1 in a foldable phone is half of the display screen, which may include the camera and other sensors. In hybrid devices (such as a 2-in-1 laptop), the first body 1 can serve as both the main computing unit and the keyboard. When separated from the second body 2 (the display), it can function as a standalone tablet. More specifically, hybrid devices, particularly 2-in-1 laptops (also known as detachable laptops or convertibles), combine the advantages of traditional laptops and tablets. This type of device usually has two usage modes: one is to use it as a traditional laptop, and the other is to use it as a tablet. When connected to the keyboard base (i.e., the first body 1), it can be used like a traditional notebook, suitable for word processing, programming, etc. After disconnecting the keyboard base, you can directly hold the second body 2 for activities such as reading, drawing, and watching videos.
[0044] The detection area 11 is usually an area on the device that is specially designed to receive user input or detect specific information. This area can be equipped with various types of sensors or detection modules 12 for identifying and processing different forms of data from the user. Specifically, the detection area 11 can be set on the back of the first body 1 to facilitate detection when the user holds the device. For example, the detection area 11 can be installed on the side of a foldable screen mobile phone where the camera is installed. For laptops and hybrid devices, the detection area 11 can be installed on the same side as or opposite to the side where the keyboard is located, ensuring that users can easily and quickly access these areas during use.
[0045] The detection module 12 refers to a component or system within an electronic device that senses external information or user input. These modules typically include sensors, a processor 123, and other necessary hardware and software for collecting, processing, and transmitting information to the device's control system. Specifically, the detection module 12 can be a health monitoring module or a combination of a health monitoring module and other modules.
[0046] More specifically, the health monitoring module is used to monitor the user's physiological parameters and health status. It may include a photoelectric heart rate sensor, which uses LED (light-emitting diode) light to illuminate the skin and uses the reflected light to measure blood vessel pulsation, thereby calculating heart rate. The health monitoring module may also include an electrode-based heart rate monitor, which uses electrodes attached to the skin to detect changes in the heart's electrical signals to calculate heart rate. The health monitoring module may also include a blood oxygen saturation (SpO2) monitoring module, which measures the oxygenation level in the blood by emitting red and infrared light to the fingers or wrist. The health monitoring module may also include a blood pressure monitoring module. Most wearable devices currently on the market cannot directly measure blood pressure, but some devices indirectly estimate blood pressure levels through other physiological parameters. The health monitoring module may also include a sleep quality monitoring module, which uses an accelerometer and gyroscope to detect the user's movements and determine sleep stages (light sleep, deep sleep) and sleep cycles. The health monitoring module may also include an activity monitoring module, which includes a step counter, distance tracker, etc., and monitors the user's daily activity level through sensors such as accelerometers. The health monitoring module can also include a skin temperature monitoring module, which measures changes in skin surface temperature and can be used to assess physical condition or environmental impact. The health monitoring module can also include a respiratory rate monitoring module, which measures respiratory rate by detecting changes in chest or abdominal movement. The health monitoring module can also include an ECG (electrocardiogram) monitoring module, which uses electrodes to detect electrical signals from the heart and generate an electrocardiogram for diagnosing heart disease.
[0047] More specifically, the aforementioned other modules may be biometric detection modules, such as fingerprint recognition modules, palm print detection modules, facial recognition modules, and iris recognition modules. Fingerprint recognition modules are used to identify a user's fingerprint and typically include sensors, processing chips, and related algorithms. Palm print detection modules are components used to identify the ridges on the palm. They typically use a high-resolution camera to capture palm images and illuminate the palm with near-infrared light to capture images of the subcutaneous vascular network. A processing unit processes the data collected by the sensors and extracts palm print features from them. A storage unit stores the palm print template for subsequent identity verification. Facial recognition modules use cameras to capture facial images and use algorithms to analyze facial features to identify the user. Iris recognition modules use cameras to capture details of the iris for identity verification. Other modules may also be environmental sensing modules, which include ambient light sensors, temperature and humidity sensors, and air quality sensors. The ambient light sensor detects ambient light intensity for automatic screen brightness adjustment. The temperature and humidity sensor detects changes in ambient temperature and humidity. The air quality sensor detects particulate matter, harmful gases, and other airborne particles. Other modules may include motion detection modules, which include accelerometers, gyroscopes, and magnetometers. Accelerometers detect the device's linear acceleration and are commonly used for gaming and motion tracking. Gyroscopes detect the device's orientation and angular velocity, helping to determine its posture. Magnetometers detect the direction of magnetic fields, assisting in determining the device's geographic location. Other modules may include user interaction detection modules, which may include touchscreen controllers that manage and interpret input signals from the touchscreen; pressure sensors that detect the amount of pressure the user applies to the screen, enabling different interaction methods; and proximity sensors that detect whether an object is close to the device, enabling functions such as automatically turning off the screen.
[0048] The second body 2 refers to the part of the electronic device that is connected to the first body 1 through some mechanism (such as a hinge, magnetic connection, etc.). It may include components such as a display device and an expansion interface to enhance the functionality of the device or provide additional usage modes. Specifically, the display area may include a display screen and a touch layer. The display screen is the core part of the second body 2 and is used to display information. For example, it may be an LCD (liquid crystal display) and an OLED (organic light emitting diode display) or other types of display screens. The touch layer is arranged on the outside of the display screen and can support touch operations. The display module 3 is responsible for processing information transmitted from the first body 1 and driving the display screen to display the corresponding content.
[0049] The first body 1 and the second body 2 can be rotatably connected in a variety of ways. Specifically, the first body 1 and the second body 2 can be connected by a hinge. For example, a two-in-one laptop allows the second body 2 to be completely flipped over, so that the device can switch between laptop mode and tablet mode; traditional laptops allow the second body 2 to be flipped over within a certain angle range. The first body 1 and the second body 2 can also be connected by magnetic attraction, which facilitates the disassembly of the first body 1 and the second body 2 while also allowing the first body 1 and the second body 2 to rotate relative to each other. The first body 1 and the second body 2 can also be connected in a folding manner. For example, a flexible screen material can be used to allow the screen to fold in the middle, which is mainly used in folding screen mobile phones. A multi-axis hinge can also be used. Through a complex hinge design, the screen can be folded at multiple points. It is mainly used in dual-screen or triple-screen devices with multiple screens that can be folded or unfolded. As long as the first body 1 and the second body 2 can rotate relative to each other, there is no limitation on the specific connection method of the first body 1 and the second body 2.
[0050] The target state refers to the result obtained after processing and analyzing the information collected by the detection module 12, which is used to represent the user's current state or situation. These states can be static (such as identity verification results) or dynamic (such as real-time health monitoring data). The process by which the display module 3 displays the operator's target state based on the target information detected by the detection module 12 may include the following steps: the detection module 12 collects user-related information such as fingerprints, facial features, and heart rate through sensors; the collected information is processed and analyzed to extract useful data, which can be achieved through steps such as algorithm processing and feature matching. The processed data is transmitted to the display module 3 via a communication interface, which can be achieved through an internal bus, wireless connection, etc. After receiving the information, the display module 3 updates the display content according to pre-set rules or algorithms to reflect the user's current state. For example, when the detection module 12 is a biometric recognition detection module such as a fingerprint reader or facial recognition camera, the screen displays the user's identity verification status, such as "Verification Successful" or "Verification Failed." When the detection module 12 is a health monitoring module such as a heart rate sensor or blood oxygen sensor, the display module 3 screen displays health indicators such as the user's heart rate and blood oxygen level.
[0051] More specifically, the target state can also be a user's physical state result calculated based on the user's health data detected by the detection module 12, and the target state image 23 can be used to display the above-mentioned user's physical state result. For example, the target state image 23 can be an image indicating that the body is in great shape, the mood is depressed, the body is a little weak, the body is full of energy, and it is easy to get angry recently, such as Figure 4 As shown, the display module displays vibrant images.
[0052] The present disclosure sets a detection module 12 in the detection area 11 of the first body 1 of the electronic device to detect and collect the user's physical information, such as heart rate, blood oxygen, etc., and processes the collected information through the display module 3 set on the second body 2 and displays the user's current status through the display area, so that the user can know his or her current status, increases the function of the foldable screen mobile phone, and improves the interactivity between the user and the foldable screen mobile phone.
[0053] like Figure 2 and Figure 3 As shown, in some modified embodiments of the present disclosure, the detection module 12 is located between the first surface 13 of the first body 1 and the third surface 14 of the first body 1, and the detection module 12 includes a first detection module 121 and a second detection module 122. The first detection module 121 can identify fingerprint or palm print information through the operator's fingers or palms; the second detection module 122 can emit light to the detection area 11 to detect the operator's target information; the target information is different from the fingerprint information; wherein, the first detection module 121 is arranged on the side of the second detection module 122 close to the connection between the first body 1 and the second body 2.
[0054] Specifically, the third surface 14 of the first body 1 can be a surface opposite to the first surface 13. More specifically, a hole can be opened in the first surface 13 of the first body 1, and part of the detection module 12 is set in the area corresponding to the hole, so as to facilitate user detection.
[0055] The first detection module 121 refers to a component in an electronic device used to detect and identify specific information. Specifically, the first detection module 121 can be a fingerprint detection module or the palm print detection module mentioned above. The fingerprint detection module can be a capacitive fingerprint sensor. The capacitive fingerprint sensor detects fingerprint features by measuring the conductivity difference on the surface of the finger. When the finger touches the sensor, the ridges and valleys of the fingerprint will cause the capacitance value to change, thereby forming a fingerprint image. More specifically, the capacitive fingerprint sensor includes a sensor array, a control circuit and a processing unit. The sensor array is composed of many tiny capacitors to form a two-dimensional array; the control circuit is used to read the capacitance changes in the sensor array and convert these changes into digital signals; the processing unit processes the collected data and extracts fingerprint features. Capacitive fingerprint sensors have high precision, good resistance to ambient light and electromagnetic interference, fast recognition speed, and good user experience.
[0056] The fingerprint detection module can also be an optical fingerprint sensor, which captures fingerprint images through optical principles. When the finger is placed on the sensor, a light source illuminates the fingerprint, and then the fingerprint image is captured through the lens. The optical fingerprint sensor includes a light source, a lens, an image sensor, and a processing unit. The light source provides illumination, usually an LED light source; the lens is used to capture the fingerprint image; the image sensor is used to convert the optical image into a digital signal; and the processing unit processes the image data and extracts fingerprint features. Optical fingerprint sensors have a wide range of applications and can be integrated into various devices, such as under the screen. Compared with capacitive sensors, optical fingerprint sensors are relatively low in cost and can work through transparent materials such as glass, with high transparency.
[0057] The fingerprint detection module can also be an ultrasonic fingerprint sensor, which scans the fingerprint by emitting ultrasonic waves and constructing a fingerprint image based on the time difference of the echo. Specifically, an ultrasonic fingerprint sensor uses an ultrasonic transmitter to transmit ultrasonic signals, a receiver to receive the echo signals, and a processing unit to process the echo data to construct a fingerprint image. Ultrasonic fingerprint sensors have strong penetration capabilities and can penetrate materials such as screen glass, making them suitable for under-screen fingerprint recognition and can function normally even when the finger is wet.
[0058] like Figure 2 and Figure 3As shown, the second detection module 122 refers to a component that detects the operator's target information by emitting light to the detection area 11. Specifically, the second detection module 122 can be a heart rate detection module or a heart rate composite detection module, or a composite module of a heart rate detection module or a heart rate composite detection module and other modules. The heart rate detection module is a device for detecting the operator's heart rate, which uses optical principles (usually photoplethysmography, Photoplethysmography, PPG) to measure changes in light absorption or scattering caused by blood flow. More specifically, the heart rate detection module includes a processor 123, a light source and an optical sensor, the light source is connected to the processor 123, the light source is used to emit light to the detection area 11, the optical sensor is connected to the processor 123, the optical sensor is used to receive light reflected from the detection area 11 and send a signal to the processor 123; wherein the optical sensor is arranged at a position close to the projection center of the detection area 11. More specifically, an LED (light emitting diode) can be used as a light source, and its wavelength can be red (660nm) and infrared (850nm or 940nm), and the color of the light source can also be green. The optical sensor includes a photodetector and a signal conditioning circuit. A photodiode or a phototransistor is usually used as a photodetector to receive the light reflected from the detection area 11; the signal conditioning circuit is used to amplify, filter, and other processes the signal output by the photodetector. The processor 123 can be a microprocessor 123 or a controller, which is responsible for processing the signal received from the optical sensor and extracting the heart rate information therefrom. When in use, the light source emits light of a specific wavelength to the detection area 11. When blood flows through the detection area 11, the change in blood volume causes a change in light absorption. The optical sensor receives the light reflected from the detection area 11 and converts it into an electrical signal. The processor 123 processes the electrical signal and extracts the heart rate information through an algorithm.
[0059] The heart rate combined detection module can be the heart rate and blood oxygen combined detection module 12. The difference between this module and the heart rate detection module 12 is that the processor 123 can simultaneously extract heart rate and blood oxygen information when processing the electrical signal. Similarly, the heart rate combined detection module can also use the above method to simultaneously extract heart rate, blood oxygen, finger vein, and blood pressure information through the processor 123, thereby detecting multiple health indicators such as the user's heart rate variability.
[0060] More specifically, the first detection module 121 and the second detection module 122 can share a processor 123 or a driver chip, that is, the various sensors of the first detection module 121 and the second detection module 122 are connected to the processor 123 or the driver chip through the conductive part, thereby optimizing the internal space of the first body 1.
[0061] The first detection module 121 is arranged on the side of the second detection module 122 near the connection between the first body 1 and the second body 2 in accordance with ergonomic principles. When the user performs a test, when holding the electronic device, such as a folding screen mobile phone, the fingertip or palm contacts the first detection module 121, and the extended part of the fingertip or palm just blocks the second detection module 122. During the test process, external light entering the second detection module 122 will affect the test results, thereby improving the detection accuracy. For example, when the electronic device is a top-down folding screen mobile phone, the first detection module 121 can be a fingerprint detection module, and the first detection module 121 and the second detection module 122 are arranged up and down on the back of the first body 1, which conforms to the user's usage habits and facilitates detection while also improving the detection accuracy. More specifically, up and down refers to the direction of the mobile phone font display. When the electronic device is a left-right folding screen mobile phone, the first detection module 121 and the second detection module 122 can be arranged left and right, and the second detection module 122 can be arranged diagonally below the first detection module 121, so as to better conform to user habits and ergonomic principles.
[0062] In some modified embodiments of the present disclosure, the electronic device may further include a verification module, which is respectively connected to the detection module 12 and the display module 3, and is used to verify the touch medium on the acquisition area, so that the detection module 12 has a user authentication function. The verification module senses whether the touch medium is human tissue; if the touch medium is human tissue, it determines that the touch medium has biometric characteristics that meet the authentication conditions of the verification module. The verification module senses whether the touch medium is that of the target user (for example, determines whether the fingerprint or finger vein matches). If the touch medium is that of the target user, it determines that the touch medium has successfully passed the identity authentication based on the biometric characteristics of the verification module, and the detection module 12 obtains the identity authentication information and detects the biometric information of the touch medium.
[0063] like Figure 1 and Figure 2 As shown, in some modified embodiments of the present disclosure, the second detection module 122 also includes a first conductive part 124 and a second conductive part 125, the first ends of the first conductive part 124 and the second conductive part 125 are connected to the processor 123, and the second ends of the first conductive part 124 and the second conductive part 125 extend out of the outer surface of the first body 1.
[0064] The first conductive part 124 and the second conductive part 125 refer to conductive paths connected to the processor 123 for transmitting specific signals. The first conductive part 124 and the second conductive part 125 include a conductive element, an insulating layer and a connection end. The conductive element usually uses a material with good conductive properties, such as copper, silver, gold, etc. The insulating layer is used to wrap the conductive material to prevent short circuits or accidental contact. The first end of the connection end is connected to the processor 123 or other circuits and is located inside the device; the second end of the connection end extends out of the outer surface of the device and is used for connection to an external device or system; more specifically, the processor 123 can be connected to the external mainboard 126, and the first conductive part 124 and the second conductive part 125 are then connected to the external mainboard 126.
[0065] The second ends of the first conductive portion 124 and the second conductive portion 125 extend out of the outer surface of the first body 1. Specifically, the conductive elements of the first conductive portion 124 and the second conductive portion 125 can extend out of the outer surface of the first body 1, so that the user's hands can respectively contact the conductive elements in the first conductive portion 124 and the second conductive portion 125, thereby detecting the user's electrocardiogram, bioelectrical impedance, and skin galvanic response data. Specifically, when detecting the electrocardiogram, the user's hands respectively contact the first conductive portion 124 and the second conductive portion 125 to form an electrophysiological signal detection circuit; the conductive portion collects the user's electrocardiogram signal and transmits it to the processor 123 through the connector for processing; the processor 123 analyzes the signal and extracts electrocardiogram features, such as P wave, QRS complex and T wave, etc., wherein the QRS complex refers to a group of waveforms in the electrocardiogram that represent ventricular depolarization (i.e., the change in the potential of ventricular muscle cells). This wave group is usually composed of three waves: Q wave, R wave and S wave. The presence and morphology of the QRS complex can reflect whether the electrical activity of the ventricle is normal. When testing bioelectrical impedance, the user's hands touch the conductive portion to form a circuit. The conductive portion sends a weak alternating current to the user's body and detects the returned voltage signal. Processor 123 calculates the bioelectrical impedance value, which is used to estimate the user's body fat percentage, water content, etc. When testing galvanic skin response, the user's hands touch the conductive portion to form a circuit. The conductive portion detects changes in skin conductance caused by sweat gland activity. Processor 123 analyzes the signal and extracts GSR (Galvanic Skin Response) features to assess emotional state or stress level. More specifically, when an individual is emotionally excited or stressed, the sympathetic nervous system is activated, causing sweat glands to secrete sweat. Electrolytes in sweat (such as sodium and potassium ions) can increase the electrical conductivity of the skin. GSR measures changes in electrical conductivity on the skin surface, namely skin conductance (SC). Skin conductance values can be obtained by applying a weak current to the skin surface and detecting the change in resistance when the current passes through the skin.
[0066] In some modified embodiments of the present disclosure, the second ends of the first conductive portion 124 and the second conductive portion 125 are respectively disposed on opposite sides of the first body 1. Specifically, the second ends of the first conductive portion 124 and the second conductive portion 125 can be disposed at diagonally opposite corners or at the upper and lower sides of the first body 1, so that the user can easily contact the second ends of the first conductive portion 124 and the second conductive portion 125 with both hands, which is ergonomic.
[0067] In some modified embodiments of the present disclosure, the second ends of the first conductive portion 124 and the second conductive portion 125 are connected to a conductive flexible material. The second ends of the first conductive portion 124 and the second conductive portion 125 are bent inwardly toward the first body 1 to form a bending surface. Specifically, the conductive flexible material refers to a material that is both flexible and conductive. Specifically, the conductive flexible material can be conductive silicone, which is soft and has good conductivity. The conductive flexible material can also be conductive fabric, which is thin and lightweight and has a certain degree of breathability. The conductive flexible material can also be a flexible material coated with a conductive layer, such as silver. The second ends of the conductive portions are bent inwardly toward the device to form a bending surface to better conform to the user's skin. The bending angle can be designed to vary based on ergonomics to accommodate different skin curves. For example, a 90-degree bend can be achieved, allowing the second ends of the conductive portions to conform to the first body 1 and facilitate finger contact. The use of a conductive flexible material and a bending surface can improve comfort and reliability of skin contact, prevent the second ends of the first conductive portion 124 and the second conductive portion 125 from piercing the user, and further optimize the user experience.
[0068] In some modified embodiments of the present disclosure, at least two through holes are provided on the first body 1, and the first conductive part 124 and the second conductive part 125 are connected in the two through holes through an insulating part. Specifically, the through hole is a through hole provided on the first body 1 for accommodating the conductive part. Specifically, the through hole can be provided on the frame around the first body 1 to facilitate the fixing of the conductive part. Two through holes are provided to ensure the correct positioning and electrical isolation of the conductive part. The insulating part is an insulating material used to fix the conductive part in the through hole and ensure electrical isolation between the conductive parts, such as plastic, rubber, etc. The insulating part can ensure electrical isolation between the conductive parts to avoid short circuits. The through hole can ensure the stable position of the conductive part and improve the reliability of data acquisition.
[0069] In some modified embodiments of the present disclosure, the detection module 12 further includes at least one of the following:
[0070] A temperature sensor is provided in the detection area 11 and is connected to the processor 123. The display module 3 can display the temperature status of the operator based on the temperature information detected by the temperature sensor;
[0071] The skin humidity sensor is arranged in the detection area 11 and is connected to the processor 123 . The display module 3 can display the skin humidity status of the operator based on the skin humidity information detected by the skin humidity sensor.
[0072] A temperature sensor is a sensor used to detect temperature and can measure the operator's body temperature. Specifically, the temperature sensor includes a temperature-sensitive element, a signal conditioning circuit, an interface for the processor 123, and a communication interface. The temperature-sensitive element can be a thermistor, whose resistance changes with temperature, or a thermocouple, which generates thermoelectromotive force through the contact of two dissimilar metals. The signal conditioning circuit includes an amplifier and a filter. The amplifier amplifies the signal generated by the temperature-sensitive element. The filter filters out noise signals and improves signal purity. The interface for the processor 123 can be an analog-to-digital converter (ADC), which converts analog signals into digital signals for processing by the processor 123. The communication interface includes an internal interface and an external interface. The internal interface connects to the processor 123 for transmitting temperature data; the external interface can be used to communicate with other external devices or systems. Specifically, a skin moisture sensor is a sensor used to detect skin moisture. It detects the moisture content of the operator's skin and is typically used to assess skin moisture content or sweat secretion. The skin humidity sensor includes a humidity sensor that can detect humidity by utilizing changes in capacitance or resistance caused by humidity changes. Specifically, the skin humidity sensor may also include a signal conditioning circuit, an interface for the processor 123, and a communication interface. The temperature sensor and skin humidity sensor can be used to detect the operator's body temperature and skin humidity, and the corresponding status can be displayed in real time via the display module 3, thereby detecting more indicators and optimizing the customer experience.
[0073] More specifically, the detection module 12 infers bioemotional information by sensing changes in the current conduction of the touch medium. After determining the bioemotional information, the display module 3 can present an interactive image (target state) that matches the current emotion of the touch medium. The display module 3 records each bioemotional information inferred by the detection module 12 and continuously presents an interactive image that matches the bioemotional information based on the most recent bioemotional information inferred by the detection module 12. The detection module 12 obtains comprehensive bioinformation by sensing changes in the current conduction of the touch medium. After integrating the comprehensive bioinformation, the display module 3 can generate a bioindicator report that aggregates several types of bioinformation. More specifically, when the bioindicator report detects comprehensive bioinformation, it detects whether the touch medium has been in contact with the collection area for a preset time. If the preset contact time is reached, a bioindicator report is generated. The bioinformation used to form the bioindicator report can include body temperature, humidity, heart rate / heart rate variability, blood oxygen level, electrocardiogram, and blood pressure.
[0074] like Figure 1 As shown, in some modified embodiments of the present disclosure, the second surface 21 of the second body 2 is provided with a first display module 31, and the first display module 31 can display the operator's target state based on the target information; the third surface 14 of the first body 1 and the fourth surface 22 of the second body 2 are both provided with a second display module 32, and the second display module 32 can display the operator's target state based on the target information.
[0075] Specifically, the electronic device can be a foldable phone. The first body 1 represents one half of the foldable phone. When the phone is unfolded, this portion becomes part of the larger screen. The second body 2 represents the other half of the foldable phone. When the phone is unfolded, this portion also becomes part of the larger screen. A first display module 31 is located on the second side 21 of the second body 2 (i.e., the side facing outward when the phone is folded) and is used to display the operator's target state. A second display module 32 is located on the third side 14 of the first body 1 (i.e., the side facing outward when the phone is unfolded) and the fourth side 22 of the second body 2 (i.e., the side facing outward when the phone is unfolded) and is used to display the operator's target state. More specifically, the first display module is a small screen, and the second display module is a large flexible screen. When folded, the user can view health data or other important notifications through the first display module 31. The first display module 31 can serve as a small screen for quick information viewing, similar to the function of a smartwatch. When unfolded, the larger screen formed by the third side 14 of the first body 1 and the fourth side 22 of the second body 2 displays detailed test information and applications, providing the user with more space for operation.
[0076] like Figure 1 As shown, in some modified embodiments of the present disclosure, the first body 1 is in a first state relative to the second body 2, and the first surface 13 of the first body 1 and the second surface 21 of the second body 2 are arranged back to back with a first angle; the first body 1 is in a second state relative to the second body 2, and the first surface 13 of the first body 1 and the second surface 21 of the second body 2 are coplanar with a second angle; the first body 1 is in a third state relative to the second body 2, and the first surface 13 of the first body 1 and the second surface 21 of the second body 2 are arranged at an angle with a third angle; the first angle is smaller than the third angle, and the third angle is smaller than the second angle.
[0077] The first state of the first body 1 is the folded state, in which the first surface 13 of the first body 1 and the second surface 21 of the second body 2 are arranged opposite to each other. Specifically, the first surface 13 of the first body 1 is the top surface after folding, and the second surface 21 of the second body 2 is the top surface after folding, i.e., the display surface of the mobile phone. In the folded state, there will be a smaller external screen (first display module 31) that displays basic information such as time, date, incoming calls, and notifications. It can also display interactive images that conform to biological emotional information, i.e., target state images 23; for example, the interactive images can be images indicating that one is in great shape, depressed, a little weak, full of energy, and easily angered recently.
[0078] The second state of the first body 1 is the fully expanded state. The angle between the first body 1 and the second body 2 is close to 180 degrees, that is, the second angle. The first surface 13 of the first body 1 and the second surface 21 of the second body 2 are coplanar, so that the third surface 14 of the first body 1 and the fourth surface 22 of the second body 2 form a complete coplanar screen. The user can obtain the maximum display area, which is suitable for watching high-definition videos, playing large games, etc. At this time, the user can view the generated biological indicator report and detailed test information in the second state. The user can also start the detection of data such as electrocardiogram, bioelectrical impedance and skin galvanic response in this interface. During the detection, press the second end of the first conductive part 124 and the second conductive part 125 with both hands respectively, and press for more than 15 seconds to complete the detection and generate data. Of course, an interactive window can also be set in the first display module 31 so that the user can complete the detection of data such as electrocardiogram, bioelectrical impedance and skin galvanic response in the first state.
[0079] The second state of the first body 1 is a semi-expanded state. The first body 1 and the second body 2 of the foldable screen mobile phone are unfolded at a certain angle, and the first surface 13 of the first body 1 and the second surface 21 of the second body 2 are set at an angle. The device can be adjusted to a more ergonomic angle to improve the user experience. The user can also run two applications at the same time to improve work efficiency. For example, browsing historical biological indicator reports while editing documents.
[0080] The above are only specific embodiments of the present disclosure, but the scope of protection of the present disclosure is not limited thereto. Any changes or substitutions that can be easily conceived by a person skilled in the art within the technical scope disclosed in this disclosure should be included in the scope of protection of the present disclosure. Therefore, the scope of protection of the present disclosure should be based on the scope of protection of the claims.
Claims
1. An electronic device, characterized in that: include: A first body, wherein a first surface of the first body has a detection area, the detection area is provided with a detection module, and the detection module is used to detect target information of an operator; The second body is rotatably connected to the first body, and the second body has a display area. The display area is provided with a display module, and the display module can display the operator's target state based on the target information detected by the detection module.
2. The electronic device according to claim 1, wherein The detection module is located between the first surface of the first body and the third surface of the first body, and the detection module includes: a first detection module capable of identifying fingerprint information through an operator's finger; a second detection module capable of emitting light toward the detection area to detect target information of the operator; the target information is different from the fingerprint information; The first detection module is arranged on a side of the second detection module close to the connection between the first body and the second body.
3. The electronic device according to claim 2, wherein: The second detection module includes: processor; a light source, connected to the processor, and configured to emit light toward the detection area; an optical sensor connected to the processor, configured to receive light reflected from the detection area and send a signal to the processor; Wherein, the optical sensor is arranged at a position close to the projection center of the detection area.
4. The electronic device according to claim 3, wherein: The second detection module further includes a first conductive part and a second conductive part, wherein the first ends of the first conductive part and the second conductive part are connected to the processor, and the second ends of the first conductive part and the second conductive part extend out of the outer surface of the first body.
5. The electronic device according to claim 4, characterized in that The second ends of the first conductive portion and the second conductive portion are respectively disposed on two opposite sides of the first body.
6. The electronic device according to claim 4, characterized in that The second ends of the first conductive portion and the second conductive portion are connected with a conductive flexible material; The second ends of the first conductive portion and the second conductive portion are bent into the first body to form a bent surface.
7. The electronic device according to claim 4, wherein: At least two through holes are provided on the first body, and the first conductive part and the second conductive part are connected in the two through holes through an insulating part.
8. The electronic device according to claim 3, wherein: The detection module further includes at least one of the following: a temperature sensor, the temperature sensor being disposed in a detection area and connected to the processor, the display module being capable of displaying the operator's temperature status based on temperature information detected by the temperature sensor; A skin moisture sensor is provided in the detection area, the skin moisture sensor is connected to the processor, and the display module can display the skin moisture status of the operator based on skin moisture information detected by the skin moisture sensor.
9. The electronic device according to claim 1, wherein: The second surface of the second body is provided with a first display module, and the first display module is capable of displaying the target state of the operator based on the target information; A second display module is provided on the third surface of the first body and the fourth surface of the second body. The second display module can display the target state of the operator based on the target information.
10. The electronic device according to claim 9, characterized in that: The first body is in a first state relative to the second body, and the first surface of the first body and the second surface of the second body are arranged opposite to each other and have a first angle; The first body is in a second state relative to the second body, and the first surface of the first body and the second surface of the second body are coplanar and have a second angle; The first body is in a third state relative to the second body, and the first surface of the first body and the second surface of the second body are arranged at an angle having a third angle; The first angle is smaller than the third angle, and the third angle is smaller than the second angle.