WO2022177134A1 - Dispositif électronique et procédé pour améliorer le taux de reconnaissance d'un capteur optique dans un dispositif électronique - Google Patents

Dispositif électronique et procédé pour améliorer le taux de reconnaissance d'un capteur optique dans un dispositif électronique Download PDF

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Publication number
WO2022177134A1
WO2022177134A1 PCT/KR2021/020144 KR2021020144W WO2022177134A1 WO 2022177134 A1 WO2022177134 A1 WO 2022177134A1 KR 2021020144 W KR2021020144 W KR 2021020144W WO 2022177134 A1 WO2022177134 A1 WO 2022177134A1
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WIPO (PCT)
Prior art keywords
optical sensor
module
state
stretchable display
sensor module
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PCT/KR2021/020144
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English (en)
Korean (ko)
Inventor
이세오
프루신스키발레리
여형석
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삼성전자 주식회사
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Publication of WO2022177134A1 publication Critical patent/WO2022177134A1/fr

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06VIMAGE OR VIDEO RECOGNITION OR UNDERSTANDING
    • G06V40/00Recognition of biometric, human-related or animal-related patterns in image or video data
    • G06V40/10Human or animal bodies, e.g. vehicle occupants or pedestrians; Body parts, e.g. hands
    • G06V40/12Fingerprints or palmprints
    • G06V40/13Sensors therefor
    • G06V40/1318Sensors therefor using electro-optical elements or layers, e.g. electroluminescent sensing
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06VIMAGE OR VIDEO RECOGNITION OR UNDERSTANDING
    • G06V40/00Recognition of biometric, human-related or animal-related patterns in image or video data
    • G06V40/10Human or animal bodies, e.g. vehicle occupants or pedestrians; Body parts, e.g. hands
    • G06V40/12Fingerprints or palmprints
    • G06V40/13Sensors therefor
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06VIMAGE OR VIDEO RECOGNITION OR UNDERSTANDING
    • G06V40/00Recognition of biometric, human-related or animal-related patterns in image or video data
    • G06V40/10Human or animal bodies, e.g. vehicle occupants or pedestrians; Body parts, e.g. hands
    • G06V40/15Biometric patterns based on physiological signals, e.g. heartbeat, blood flow
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09FDISPLAYING; ADVERTISING; SIGNS; LABELS OR NAME-PLATES; SEALS
    • G09F9/00Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements
    • G09F9/30Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements
    • GPHYSICS
    • G09EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
    • G09FDISPLAYING; ADVERTISING; SIGNS; LABELS OR NAME-PLATES; SEALS
    • G09F9/00Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements
    • G09F9/30Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements
    • G09F9/301Indicating arrangements for variable information in which the information is built-up on a support by selection or combination of individual elements in which the desired character or characters are formed by combining individual elements flexible foldable or roll-able electronic displays, e.g. thin LCD, OLED

Definitions

  • Various embodiments relate to an electronic device and a method of improving a recognition rate of an optical sensor in the electronic device.
  • a fingerprint sensor is a sensor for recognizing a human fingerprint, and is widely used not only in electronic devices but also in home appliances or vehicles. Fingerprint sensors can be broadly classified into optical, capacitive, and ultrasonic sensors according to their operating principles. When the optical sensor is used as a fingerprint sensor, the optical sensor may be disposed on the rear surface of the display of the electronic device, emit a light source, and collect curves of the fingerprint according to the shade of the reflected light to recognize the fingerprint.
  • the optical sensor may be used as a sensor having various functions such as an image sensor or a pulse wave sensor as well as a fingerprint sensor.
  • an optical sensor when used as an image sensor of a camera module in an electronic device, in order to increase the recognition rate of the image sensor, pixels constituting the display covering the camera module are removed and the camera module is always exposed. .
  • an electronic device capable of improving a recognition rate of an optical sensor disposed on a rear surface of a display and a method of improving a recognition rate of an optical sensor in the electronic device are provided.
  • An electronic device includes a stretchable display, an optical sensor module disposed on a rear surface of the stretchable display, and a processor, wherein the processor includes the stretchable display having an undeformed first shape
  • the processor includes the stretchable display having an undeformed first shape
  • the optical sensor module in a first state in which the optical sensor module is disposed on the rear surface of the stretchable display having a first undeformed shape, the optical sensor module When a function using It may include an operation of confirming the transition of the second state.
  • the recognition rate of the optical sensor disposed on the rear surface of the display may be increased.
  • a UX effect due to a physical phenomenon may be provided by physically exposing the optical sensor only when a function using the optical sensor disposed on the rear surface of the display is requested.
  • FIG. 1 is a block diagram of an electronic device in a network environment according to various embodiments of the present disclosure
  • FIG. 2 is a block diagram illustrating an electronic device according to various embodiments of the present disclosure
  • 3A to 3B are diagrams for explaining a stretchable display and an optical sensor module in an electronic device according to various embodiments of the present disclosure
  • 4A to 4B are diagrams for explaining deformation of a stretchable display according to movement of an optical sensor module in an electronic device according to various embodiments of the present disclosure
  • 5A to 5B are diagrams for explaining deformation of a stretchable display according to movement of a camera module in an electronic device according to various embodiments of the present disclosure
  • FIG. 6 is a diagram for describing an operation of detecting a pulse wave signal of an electronic device according to various embodiments of the present disclosure
  • FIG. 7 is a view for explaining an operation of exposing a camera module for a selfie taking function in an electronic device according to various embodiments of the present disclosure
  • FIG. 8 is a view for explaining an operation of exposing a fingerprint recognition module for a fingerprint recognition function in an electronic device according to various embodiments of the present disclosure
  • FIG. 9 is a view for explaining an operation of exposing a camera module for a lock screen release function in an electronic device according to various embodiments of the present disclosure.
  • FIGS. 10A to 10B are diagrams for explaining an operation of exposing an optical sensor module in a wearable electronic device according to various embodiments of the present disclosure
  • FIG. 11 is a flowchart illustrating an operation for improving a recognition rate of an optical sensor in an electronic device according to various embodiments of the present disclosure
  • FIG. 12 is a flowchart illustrating an operation of exposing a camera module for a selfie function in an electronic device according to various embodiments of the present disclosure
  • FIG. 13 is a flowchart illustrating an operation of exposing a fingerprint recognition module for a fingerprint recognition function in an electronic device according to various embodiments of the present disclosure.
  • FIG. 14 is a flowchart illustrating an operation of exposing a camera module for a lock screen release function in an electronic device according to various embodiments of the present disclosure
  • 15 is a flowchart illustrating an operation of exposing a pulse wave signal detection module to detect a pulse wave signal in an electronic device according to various embodiments of the present disclosure
  • FIG. 1 is a block diagram 100 of an electronic device 101 in a network environment 100 according to various embodiments.
  • the electronic device 101 communicates with the electronic device 102 through a first network 198 (eg, a short-range wireless communication network) or a second network 199 . It may communicate with at least one of the electronic device 104 and the server 108 through (eg, a long-distance wireless communication network). According to an embodiment, the electronic device 101 may communicate with the electronic device 104 through the server 108 .
  • the electronic device 101 includes a processor 120 , a memory 130 , an input module 150 , a sound output module 155 , a display module 160 , an audio module 170 , and a sensor module ( 176), interface 177, connection terminal 178, haptic module 179, camera module 180, power management module 188, battery 189, communication module 190, subscriber identification module 196 , or an antenna module 197 .
  • at least one of these components eg, the connection terminal 178
  • some of these components are integrated into one component (eg, display module 160 ). can be
  • the processor 120 for example, executes software (eg, a program 140) to execute at least one other component (eg, a hardware or software component) of the electronic device 101 connected to the processor 120. It can control and perform various data processing or operations. According to one embodiment, as at least part of data processing or operation, the processor 120 converts commands or data received from other components (eg, the sensor module 176 or the communication module 190 ) to the volatile memory 132 . may be stored in , process commands or data stored in the volatile memory 132 , and store the result data in the non-volatile memory 134 .
  • software eg, a program 140
  • the processor 120 converts commands or data received from other components (eg, the sensor module 176 or the communication module 190 ) to the volatile memory 132 .
  • the volatile memory 132 may be stored in , process commands or data stored in the volatile memory 132 , and store the result data in the non-volatile memory 134 .
  • the processor 120 is the main processor 121 (eg, a central processing unit or an application processor) or a secondary processor 123 (eg, a graphic processing unit, a neural network processing unit (eg, a graphic processing unit, a neural network processing unit) a neural processing unit (NPU), an image signal processor, a sensor hub processor, or a communication processor).
  • the main processor 121 eg, a central processing unit or an application processor
  • a secondary processor 123 eg, a graphic processing unit, a neural network processing unit (eg, a graphic processing unit, a neural network processing unit) a neural processing unit (NPU), an image signal processor, a sensor hub processor, or a communication processor.
  • the main processor 121 e.g, a central processing unit or an application processor
  • a secondary processor 123 eg, a graphic processing unit, a neural network processing unit (eg, a graphic processing unit, a neural network processing unit) a neural processing unit (NPU), an image signal processor, a
  • the secondary processor 123 may, for example, act on behalf of the main processor 121 while the main processor 121 is in an inactive (eg, sleep) state, or when the main processor 121 is active (eg, executing an application). ), together with the main processor 121, at least one of the components of the electronic device 101 (eg, the display module 160, the sensor module 176, or the communication module 190) It is possible to control at least some of the related functions or states.
  • the coprocessor 123 eg, an image signal processor or a communication processor
  • may be implemented as part of another functionally related component eg, the camera module 180 or the communication module 190 ). have.
  • the auxiliary processor 123 may include a hardware structure specialized for processing an artificial intelligence model.
  • Artificial intelligence models can be created through machine learning. Such learning may be performed, for example, in the electronic device 101 itself on which the artificial intelligence model is performed, or may be performed through a separate server (eg, the server 108).
  • the learning algorithm may include, for example, supervised learning, unsupervised learning, semi-supervised learning, or reinforcement learning, but in the above example not limited
  • the artificial intelligence model may include a plurality of artificial neural network layers.
  • Artificial neural networks include deep neural networks (DNNs), convolutional neural networks (CNNs), recurrent neural networks (RNNs), restricted boltzmann machines (RBMs), deep belief networks (DBNs), bidirectional recurrent deep neural networks (BRDNNs), It may be one of deep Q-networks or a combination of two or more of the above, but is not limited to the above example.
  • the artificial intelligence model may include, in addition to, or alternatively, a software structure in addition to the hardware structure.
  • the memory 130 may store various data used by at least one component (eg, the processor 120 or the sensor module 176 ) of the electronic device 101 .
  • the data may include, for example, input data or output data for software (eg, the program 140 ) and instructions related thereto.
  • the memory 130 may include a volatile memory 132 or a non-volatile memory 134 .
  • the program 140 may be stored as software in the memory 130 , and may include, for example, an operating system 142 , middleware 144 , or an application 146 .
  • the input module 150 may receive a command or data to be used by a component (eg, the processor 120 ) of the electronic device 101 from the outside (eg, a user) of the electronic device 101 .
  • the input module 150 may include, for example, a microphone, a mouse, a keyboard, a key (eg, a button), or a digital pen (eg, a stylus pen).
  • the sound output module 155 may output a sound signal to the outside of the electronic device 101 .
  • the sound output module 155 may include, for example, a speaker or a receiver.
  • the speaker can be used for general purposes such as multimedia playback or recording playback.
  • the receiver can be used to receive incoming calls. According to one embodiment, the receiver may be implemented separately from or as part of the speaker.
  • the display module 160 may visually provide information to the outside (eg, a user) of the electronic device 101 .
  • the display module 160 may include, for example, a control circuit for controlling a display, a hologram device, or a projector and a corresponding device.
  • the display module 160 may include a touch sensor configured to sense a touch or a pressure sensor configured to measure the intensity of a force generated by the touch.
  • the audio module 170 may convert a sound into an electric signal or, conversely, convert an electric signal into a sound. According to an embodiment, the audio module 170 acquires a sound through the input module 150 , or an external electronic device (eg, a sound output module 155 ) connected directly or wirelessly with the electronic device 101 .
  • the electronic device 102) eg, a speaker or headphones
  • the electronic device 102 may output a sound.
  • the sensor module 176 detects an operating state (eg, power or temperature) of the electronic device 101 or an external environmental state (eg, a user state), and generates an electrical signal or data value corresponding to the sensed state. can do.
  • the sensor module 176 may include, for example, a gesture sensor, a gyro sensor, a barometric pressure sensor, a magnetic sensor, an acceleration sensor, a grip sensor, a proximity sensor, a color sensor, an IR (infrared) sensor, a biometric sensor, It may include a temperature sensor, a humidity sensor, or an illuminance sensor.
  • the interface 177 may support one or more specified protocols that may be used by the electronic device 101 to directly or wirelessly connect with an external electronic device (eg, the electronic device 102 ).
  • the interface 177 may include, for example, a high definition multimedia interface (HDMI), a universal serial bus (USB) interface, an SD card interface, or an audio interface.
  • the connection terminal 178 may include a connector through which the electronic device 101 can be physically connected to an external electronic device (eg, the electronic device 102 ).
  • the connection terminal 178 may include, for example, an HDMI connector, a USB connector, an SD card connector, or an audio connector (eg, a headphone connector).
  • the haptic module 179 may convert an electrical signal into a mechanical stimulus (eg, vibration or movement) or an electrical stimulus that the user can perceive through tactile or kinesthetic sense.
  • the haptic module 179 may include, for example, a motor, a piezoelectric element, or an electrical stimulation device.
  • the camera module 180 may capture still images and moving images. According to an embodiment, the camera module 180 may include one or more lenses, image sensors, image signal processors, or flashes.
  • the power management module 188 may manage power supplied to the electronic device 101 .
  • the power management module 188 may be implemented as, for example, at least a part of a power management integrated circuit (PMIC).
  • PMIC power management integrated circuit
  • the battery 189 may supply power to at least one component of the electronic device 101 .
  • battery 189 may include, for example, a non-rechargeable primary cell, a rechargeable secondary cell, or a fuel cell.
  • the communication module 190 is a direct (eg, wired) communication channel or a wireless communication channel between the electronic device 101 and an external electronic device (eg, the electronic device 102, the electronic device 104, or the server 108). It can support establishment and communication performance through the established communication channel.
  • the communication module 190 may include one or more communication processors that operate independently of the processor 120 (eg, an application processor) and support direct (eg, wired) communication or wireless communication.
  • the communication module 190 is a wireless communication module 192 (eg, a cellular communication module, a short-range communication module, or a global navigation satellite system (GNSS) communication module) or a wired communication module 194 (eg, : It may include a local area network (LAN) communication module, or a power line communication module).
  • a wireless communication module 192 eg, a cellular communication module, a short-range communication module, or a global navigation satellite system (GNSS) communication module
  • GNSS global navigation satellite system
  • wired communication module 194 eg, : It may include a local area network (LAN) communication module, or a power line communication module.
  • a corresponding communication module among these communication modules is a first network 198 (eg, a short-range communication network such as Bluetooth, wireless fidelity (WiFi) direct, or infrared data association (IrDA)) or a second network 199 (eg, legacy It may communicate with the external electronic device 104 through a cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (eg, a telecommunication network such as a LAN or a WAN).
  • a first network 198 eg, a short-range communication network such as Bluetooth, wireless fidelity (WiFi) direct, or infrared data association (IrDA)
  • a second network 199 eg, legacy It may communicate with the external electronic device 104 through a cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (eg, a telecommunication network such as a LAN or a WAN).
  • a telecommunication network
  • the wireless communication module 192 uses the subscriber information (eg, International Mobile Subscriber Identifier (IMSI)) stored in the subscriber identification module 196 within a communication network such as the first network 198 or the second network 199 .
  • the electronic device 101 may be identified or authenticated.
  • the wireless communication module 192 may support a 5G network after a 4G network and a next-generation communication technology, for example, a new radio access technology (NR).
  • NR access technology includes high-speed transmission of high-capacity data (eMBB (enhanced mobile broadband)), minimization of terminal power and access to multiple terminals (mMTC (massive machine type communications)), or high reliability and low latency (URLLC (ultra-reliable and low-latency) -latency communications)).
  • eMBB enhanced mobile broadband
  • mMTC massive machine type communications
  • URLLC ultra-reliable and low-latency
  • the wireless communication module 192 may support a high frequency band (eg, mmWave band) to achieve a high data rate, for example.
  • a high frequency band eg, mmWave band
  • the wireless communication module 192 uses various techniques for securing performance in a high-frequency band, for example, beamforming, massive multiple-input and multiple-output (MIMO), all-dimensional multiplexing. It may support technologies such as full dimensional MIMO (FD-MIMO), an array antenna, analog beam-forming, or a large scale antenna.
  • the wireless communication module 192 may support various requirements defined in the electronic device 101 , an external electronic device (eg, the electronic device 104 ), or a network system (eg, the second network 199 ).
  • the wireless communication module 192 may include a peak data rate (eg, 20 Gbps or more) for realizing eMBB, loss coverage (eg, 164 dB or less) for realizing mMTC, or U-plane latency for realizing URLLC ( Example: Downlink (DL) and uplink (UL) each 0.5 ms or less, or round trip 1 ms or less) can be supported.
  • a peak data rate eg, 20 Gbps or more
  • loss coverage eg, 164 dB or less
  • U-plane latency for realizing URLLC
  • the antenna module 197 may transmit or receive a signal or power to the outside (eg, an external electronic device).
  • the antenna module 197 may include an antenna including a conductor formed on a substrate (eg, a PCB) or a radiator formed of a conductive pattern.
  • the antenna module 197 may include a plurality of antennas (eg, an array antenna). In this case, at least one antenna suitable for a communication method used in a communication network such as the first network 198 or the second network 199 is connected from the plurality of antennas by, for example, the communication module 190 . can be selected. A signal or power may be transmitted or received between the communication module 190 and an external electronic device through the selected at least one antenna.
  • other components eg, a radio frequency integrated circuit (RFIC)
  • RFIC radio frequency integrated circuit
  • the antenna module 197 may form a mmWave antenna module.
  • the mmWave antenna module comprises a printed circuit board, an RFIC disposed on or adjacent to a first side (eg, bottom side) of the printed circuit board and capable of supporting a designated high frequency band (eg, mmWave band); and a plurality of antennas (eg, an array antenna) disposed on or adjacent to a second side (eg, top or side) of the printed circuit board and capable of transmitting or receiving signals of the designated high frequency band. can do.
  • peripheral devices eg, a bus, general purpose input and output (GPIO), serial peripheral interface (SPI), or mobile industry processor interface (MIPI)
  • GPIO general purpose input and output
  • SPI serial peripheral interface
  • MIPI mobile industry processor interface
  • the command or data may be transmitted or received between the electronic device 101 and the external electronic device 104 through the server 108 connected to the second network 199 .
  • Each of the external electronic devices 102 or 104 may be the same as or different from the electronic device 101 .
  • all or a part of operations executed in the electronic device 101 may be executed in one or more external electronic devices 102 , 104 , or 108 .
  • the electronic device 101 may perform the function or service itself instead of executing the function or service itself.
  • one or more external electronic devices may be requested to perform at least a part of the function or the service.
  • One or more external electronic devices that have received the request may execute at least a part of the requested function or service, or an additional function or service related to the request, and transmit a result of the execution to the electronic device 101 .
  • the electronic device 101 may process the result as it is or additionally and provide it as at least a part of a response to the request.
  • cloud computing, distributed computing, mobile edge computing (MEC), or client-server computing technology may be used.
  • the electronic device 101 may provide an ultra-low latency service using, for example, distributed computing or mobile edge computing.
  • the external electronic device 104 may include an Internet of things (IoT) device.
  • the server 108 may be an intelligent server using machine learning and/or neural networks.
  • the external electronic device 104 or the server 108 may be included in the second network 199 .
  • the electronic device 101 may be applied to an intelligent service (eg, smart home, smart city, smart car, or health care) based on 5G communication technology and IoT-related technology.
  • FIG. 2 is a block diagram 200 illustrating an electronic device according to various embodiments of the present disclosure.
  • the electronic device 401 (eg, the electronic device 101 of FIG. 1 ) includes a processor 220 , a memory 230 , a stretchable display 260 , and an optical sensor module 270 . , an actuator 280 and a communication module 290 may be included.
  • the processor 220 may control the overall operation of the electronic device 201 , and may be the same as the processor 120 of FIG. 1 , or at least one It can perform a function or action.
  • the processor 220 may check a first state in which the optical sensor module 270 is disposed on the rear surface of the stretchable display 260 having an undeformed first shape.
  • the processor 220 checks the first state in which the optical sensor module 270 is disposed on the rear surface of the first area of the stretchable display 260 having the undeformed first shape.
  • the first area may include an area larger than a size of the optical sensor module 270 by a predetermined range or more.
  • the first state is a state in which all pixels constituting the entire stretchable display maintain the first distance uniformly, indicating that the stretchable display is in an opaque state.
  • the distance between pixels constituting the first region of the stretchable display is maintained at the same first interval as pixels constituting the entire stretchable display. Accordingly, since the first region of the stretchable display is in an opaque state, the optical sensor module 270 may indicate a state in which the optical sensor module 270 is not exposed through the stretchable display 260 .
  • the processor 220 moves the optical sensor module 270 to the front, and the optical sensor module 270 ), a transition of the second state to which the optical sensor module 270 is exposed may be confirmed through the stretchable display having a second shape deformed to correspond to the front movement.
  • the processor 220 when a function using the optical sensor module 270 is requested in the first state, the processor 220 operates the actuator 280 disposed on the rear surface of the optical sensor module 270 . By driving, the optical sensor module 270 may be moved to the front side.
  • the processor 220 moves the optical sensor module 270 to a predetermined distance at which the optical sensor module 270 can be exposed through the first area of the stretchable display 260 .
  • the actuator 280 may be driven to move forward.
  • the processor 220 configures a first area of the stretchable display 260 covering the optical sensor module 260 to correspond to the front movement of the optical sensor module 270 . As the distance between pixels is physically extended, the second state in which the shape of the stretchable display 260 has a deformed second shape may be confirmed.
  • the processor 220 may The second state exposed and viewed of the optical sensor module 270 may be checked through the first area.
  • a distance between pixels constituting the first region of the stretchable display in the second state is a first distance between pixels constituting the entire stretchable display in the first state.
  • the second interval which is more extended, indicates an interval at which the first area of the stretchable display is transparent and the optical sensor module 270 is exposed through the transparent stretchable display 260 .
  • the second shape of the stretchable display in the second state may be different from the first shape of the stretchable display in the first state.
  • the second shape of the stretchable display may include a shape corresponding to the front movement of the optical sensor module 270 .
  • the processor 220 based on the sensor information received from the optical sensor module 270 exposed through the first area of the stretchable display 260 transparent in the second state A function using the optical sensor module 270 may be performed.
  • the light transmittance increases as the transparency of the first region of the stretchable display 260 exposing the optical sensor module 270 in the second state increases. As it is improved, accurate sensor information can be received from the optical sensor module 270 .
  • the processor 220 moves the optical sensor module 270 to the rear when confirming that the function using the optical sensor module 270 is terminated in the second state, and the optical sensor A transition to the first state in which the stretchable display 260 has an undeformed first shape may be confirmed to correspond to the rearward movement of the module 270 .
  • the processor 220 drives the actuator 280 disposed on the rear surface of the optical sensor module 270 to The optical sensor module 270 may be moved to the rear side.
  • the processor 220 may drive the actuator 280 to move the optical sensor module 270 to a position in the first state.
  • the processor 220 configures a first area of the stretchable display 260 covering the optical sensor module 260 to correspond to the rear movement of the optical sensor module 270 . As the distance between pixels is physically reduced, the first state in which the shape of the stretchable display 260 is not deformed may be checked.
  • the processor 220 may Through the area, it is possible to check the first state, which is not exposed, of the optical sensor module 270 .
  • the processor 220 drives the actuator 280 to drive the stretchable display 260 .
  • the camera module 271 disposed on the rear side of the first area may be moved to the front side.
  • the camera module 271 may be included in the optical sensor module 270 using an optical sensor as an image sensor.
  • the processor 220 checks the transition of the second state in which the camera module 271 is exposed through the first area of the stretchable display 260 which becomes transparent according to the front movement of the camera module 271 . can In the second state, the processor 220 may provide a filter effect by using pixels constituting the first area of the stretcher display covering the camera module in the first state.
  • the processor 220 when confirming the end of the selfie shooting function in the second state, moves the camera module 271 to the rear, and the strain becomes opaque according to the rear movement of the camera module 271 The transition of the first state in which the camera module 271 is not exposed may be confirmed through the first area of the chuble display 260 .
  • the processor 220 drives the actuator 280 to control the first area of the stretchable display 260 .
  • the fingerprint recognition module 273 disposed on the back may be moved to the front.
  • the fingerprint recognition module 273 may be included in the optical sensor module 270 using an optical sensor as a fingerprint sensor.
  • the processor 220 converts a second state in which the fingerprint recognition module 273 is exposed through the first area of the stretchable display 260 which becomes transparent according to the front movement of the fingerprint recognition module 273 . can confirm.
  • the processor 220 in the second state, emits a color (LED) for fingerprint recognition using pixels constituting the first area of the stretcher display covering the fingerprint recognition module in the first state.
  • LED color
  • the processor 220 when confirming the end of the fingerprint recognition function in the second state, moves the fingerprint recognition module 273 to the rear side, and becomes opaque according to the rear movement of the fingerprint recognition module 273 .
  • a transition of the first state to which the fingerprint recognition module 273 is not exposed may be confirmed through the first area of the stretchable display 260 .
  • the processor 220 drives the actuator 280 to the first area of the stretchable display 260 . It is possible to move the pulse wave signal detection module 275 disposed on the rear side of the front side.
  • the pulse wave signal detection module 275 may be included in the optical sensor module 270 using an optical sensor as a pulse wave sensor.
  • the processor 220 is configured in a second state in which the pulse wave signal detection module 275 is exposed through a first area of the stretchable display 260 that becomes transparent according to the front movement of the pulse wave signal detection module 275 . conversion can be observed.
  • the processor 220 in the second state, uses pixels constituting the first area of the stretcher display covering the pulse wave signal detection module in the first state as light emitting units, and the pulse wave signal detection module ( 275) may be used as a light receiving unit.
  • the processor 220 confirms that the pulse wave signal detection function is terminated in the second state, the processor 220 moves the pulse wave signal detection module 275 to the rear side, and according to the rear movement of the pulse wave signal detection module 275 , The transition of the first state to which the pulse wave signal detection module 275 is not exposed may be confirmed through the first area of the stretchable display 260 which has become opaque.
  • the memory 430 may be implemented substantially the same as or similar to the memory 130 of FIG. 1 .
  • the stretchable display 260 may be implemented substantially the same as or similar to the display module 160 of FIG. 1 .
  • the stretchable display 260 may be a display that can be bent.
  • the stretchable display 260 may be deformable in all directions.
  • the stretchable display 260 may be interpreted as a display having elasticity or elasticity.
  • the display 260 only the first area covering the optical sensor module 270 is configured as a stretchable display, and the other areas other than the first area are displayed as a general fixed display, that is, a stretchable display. It can be configured as a non-chubble display.
  • the optical sensor module 270 may represent a module including an optical sensor
  • the optical sensor module 270 may include a camera module 271 using the optical sensor as an image sensor.
  • the camera module 271 may represent a front camera module.
  • the optical sensor module 270 may include a fingerprint recognition module 273 using the optical sensor as a fingerprint sensor.
  • the optical sensor module 270 may include a pulse wave signal detection module 273 using the optical sensor as a pulse wave sensor.
  • the actuator 280 may move to the front or rear side of the optical sensor module 270 disposed on the rear surface of the stretchable display 260 .
  • the actuator 280 may be provided to correspond to the number of optical sensor modules 270 disposed on the rear surface of the stretchable display 260 .
  • the communication module 290 may be implemented substantially the same as or similar to the communication module 190 of FIG. 1 , and may include a plurality of communication circuits using different communication technologies.
  • the communication module 490 may include at least one of a wireless LAN module (not shown) and a short-range communication module (not shown). band) a communication module, a Wi-Fi communication module, an NFC communication module, a Bluetooth legacy communication module and/or a BLE communication module.
  • 3A to 3B are diagrams 300A to 300B for explaining a stretchable display and an optical sensor module in an electronic device according to various embodiments of the present disclosure.
  • the stretchable display 260 may include a stretchable transparent layer 260a, a transparent adhesive 260b, and a pixel plate 260c including pixels of the stretchable display.
  • An optical sensor module 270 is disposed on the rear surface of the stretchable display 260 , and an actuator 280 capable of moving the optical sensor module 270 to the front or rear surface of the optical sensor module 270 . ) can be placed.
  • the pixel plate 260c is formed of a plurality of transparent monopolymer materials a1 on the upper side. of pixels b1 to b3 are disposed, and the pixel b1 and the pixel b2 are connected by a connection part c1 having a stretchable material to physically extend the distance between the pixel b1 and the pixel b2 or can be reduced.
  • the plurality of pixels b1 to b3 may represent an organic light emitting diode (LED) emitting red, blue, green, or white light.
  • FIGS. 4A to 4B are diagrams 400A to 400B for explaining deformation of a stretchable display according to movement of an optical sensor module in an electronic device according to various embodiments of the present disclosure.
  • FIG. 4A a first state in which the optical sensor module 270 is disposed on the rear surface of the first region 261 of the stretchable display having an undeformed first shape is shown.
  • the optical sensor module 270 is disposed on the rear surface of the first region 261 of the stretchable display having the first shape, and the optical sensor module 270 is disposed on the rear surface of the optical sensor module 270 .
  • An actuator 280 capable of moving 270 to the front or rear may be disposed.
  • the first region 261 of the stretchable display having a first shape in which the pixels constituting the first region 261 of the stretchable display are all arranged at constant first intervals;
  • the opaque state indicates a state in which the optical sensor module 270 is not exposed through the first region 261 of the stretchable display.
  • FIG. 4B illustrates a second state in which the optical sensor module 270 is exposed through the first area 261 of the stretchable display having a deformed second shape.
  • the second state as the optical sensor module 270 is moved to the front by the actuator 280 being driven, the distance between pixels constituting the first area 261 of the stretchable display is physically , and the distance between the pixels may be deformed into the second shape of the stretchable display to correspond to the expansion.
  • the optical sensor module 270 may be exposed and viewed through the first region 261 of the stretchable display.
  • 5A to 5B are diagrams 500a to 500b for explaining deformation of a stretchable display according to movement of a camera module in an electronic device according to various embodiments of the present disclosure.
  • ⁇ A1> denotes a partial internal structure when the camera module 271 is disposed on the rear side of the first area 261 of the stretchable display 260 having the first undeformed shape in the first state. is shown from the front, and ⁇ B1> is a partial internal structure when the camera module 271 is disposed on the rear side of the first area 261 of the stretchable display 260 having the first shape in the first state. is shown from the side, and ⁇ C1> is stretchable when the camera module 271 is disposed on the rear side of the first area 261 of the stretchable display 260 having the first shape in the first state. The external state of the display 260 is shown.
  • the stretchable display 260 is opaque. ), the camera module 271 is not exposed through the first area.
  • ⁇ A1> indicates that the camera module 271 is exposed through the first area 261 of the transparent stretchable display 260 having a second shape deformed according to the front movement of the camera module 271 .
  • a partial internal structure is shown from the front
  • ⁇ B1> shows that the camera module 271 is exposed through the first area 261 of the transparent stretchable display 260 having the second shape.
  • some internal structures are shown from the side
  • ⁇ C1> indicates that the camera module 271 is exposed through the first area 261 of the transparent stretchable display 260 having the second shape.
  • An external state of the stretchable display 260 is shown in the second state.
  • the transparent stretchable display 260 is The camera module 271 may be exposed through the first area of .
  • FIG. 6 is a diagram 600 for explaining an operation of detecting a pulse wave signal of an electronic device according to various embodiments of the present disclosure.
  • the pulse wave signal detection module 275 may include a pulse wave signal 275a used as a light receiving unit and a conversion unit 275b capable of converting light energy into electrical energy.
  • the processor 220 detects a pulse wave signal in response to a request for a pulse wave signal detection function in a first state in which the pulse wave signal detection module 275 is disposed on the rear surface of the stretchable display 260 having a first undeformed shape.
  • the pulse wave signal detection module 275 is disposed on the rear side of the stretchable display 260 which is moved to the front of the module 275 and has a second shape modified to correspond to the front movement of the pulse wave signal detection module 275 .
  • the second state can be checked.
  • the processor 220 is configured to generate a first area of the stretchable display 260 .
  • pixels constituting the first area of the transparent stretchable display 260 may be used as light emitting units.
  • the pulse wave sensor 275a (light receiving unit) is transparent to the first area of the stretchable display 260 .
  • the reflected light reflected from the human body (eg, a hand or a finger) in contact with the may be collected, and the collected reflected light may be transmitted to the conversion unit 275b.
  • the conversion unit 275b may convert the reflected light energy received from the pulse wave sensor 275a into electrical energy, and transmit the converted electrical energy to the processor 220 .
  • the processor 220 may generate medical data by detecting a pulse wave signal based on the electrical energy received from the conversion unit 275b.
  • FIG. 7 is a view 700 for explaining an operation of exposing a camera module for a selfie taking function in an electronic device according to various embodiments of the present disclosure.
  • the electronic device eg, the electronic device of FIG. 2
  • the electronic device is located on the rear surface of the first area of the stretchable display 260 having the undeformed first shape.
  • a first state in which the camera module 271 is disposed and the actuator 280 capable of moving the camera module 271 to the front or rear is disposed on the rear side of the camera module 271 can be confirmed.
  • the camera module 271 is not exposed because the first area of the stretchable display 260 covering the camera module 271 is in an opaque state.
  • the electronic device takes a selfie while an icon 711 representing a selfie taking application is selected from among a plurality of icons representing a plurality of applications displayed on the standby screen or while a camera application is running You can check this selection.
  • the electronic device may move the front of the camera module 271 by driving the actuator 280 .
  • the electronic device physically extends the distance between pixels constituting the first area of the stretchable display 260 to correspond to the front movement of the camera module 271 , and the distance between the pixels is physically It can be confirmed that the second state is expanded and the stretchable display 260 has a deformed second shape.
  • the electronic device performs a filter effect by the user while performing a selfie function through the camera module 271 exposed through the first area of the stretchable display 260 which has become transparent.
  • a color corresponding to the selected filter effect may be emitted using pixels constituting the first region of the stretchable display 260 .
  • FIG. 8 is a view 800 for explaining an operation of exposing a fingerprint recognition module for a fingerprint recognition function in an electronic device according to various embodiments of the present disclosure.
  • the electronic device (eg, the electronic device of FIG. 2 ) is positioned on the rear surface of the first area of the stretchable display 260 having the undeformed first shape.
  • a first state in which the fingerprint recognition module 273 is disposed and an actuator 280 capable of moving the fingerprint recognition module 273 to the front or rear is disposed on the rear surface of the fingerprint recognition module 273 can be confirmed. have.
  • the fingerprint recognition module 273 is not exposed because the first area of the stretchable display 260 covering the fingerprint recognition module 273 is in an opaque state.
  • the electronic device may detect a finger contact of the user 850 in the first area of the stretchable display 260 covering the fingerprint recognition module 273 .
  • the electronic device may move the front of the camera module 271 by driving the actuator 280 .
  • the electronic device physically extends the distance between pixels constituting the first area of the stretchable display 260 to correspond to the front movement of the camera module 271 , and the distance between the pixels is physically It can be confirmed that the second state is expanded and the stretchable display 260 has a deformed second shape.
  • the electronic device performs a fingerprint recognition function through the fingerprint recognition module 273 exposed through the first area of the stretchable display 260 which has become transparent, while the strain A color for the fingerprint recognition may be emitted using pixels constituting the first area of the chubby display 260 .
  • FIG. 9 is a view 900 for explaining an operation of exposing a camera module for a lock screen release function in an electronic device according to various embodiments of the present disclosure.
  • the electronic device eg, the electronic device of FIG. 2
  • the electronic device is located on the rear surface of the first area of the stretchable display 260 having the undeformed first shape.
  • a first state in which the camera module 271 is disposed and the actuator 280 capable of moving the camera module 271 to the front or rear is disposed on the rear side of the camera module 271 can be confirmed.
  • the camera module 271 is not exposed because the first area of the stretchable display 260 covering the camera module 271 is in an opaque state.
  • the electronic device may identify a lock screen release request according to an input of the home button 911 or a voice command execution request in the lock screen state of the electronic device.
  • the electronic device may drive the actuator 280 to move the front of the camera module 271 .
  • the electronic device physically extends the distance between pixels constituting the first area of the stretchable display 260 to correspond to the front movement of the camera module 271 , and the distance between the pixels is physically It can be confirmed that the second state is expanded and the stretchable display 260 has a deformed second shape.
  • the electronic device performs a function of unlocking the lock screen through face or pupil recognition through the camera module 271 exposed through the first region of the stretchable display 260 , which has become transparent.
  • a color for unlocking the lock screen may be emitted using pixels constituting the first area of the stretchable display 260 .
  • FIGS. 10A to 10B are views 1000a to 1000b for explaining an operation of exposing an optical sensor module in a wearable electronic device according to various embodiments of the present disclosure.
  • the wearable electronic device 1001 (eg, the electronic device 201 of FIG. 2 and/or the electronic device 101 of FIG. 1 ) has a first area indicating a stretchable area.
  • the display 1026 may include a display 1026 including a second region 1026b indicating a fixed region that is not stretchable.
  • the first region 1206a is in a first state having a first shape that is not deformed.
  • the first region 1206a having an undeformed first shape is in an opaque state, and an optical sensor module 1031 disposed on the rear surface of the opaque first region 1026a. It can be confirmed that this is the invisible first state because it is not exposed.
  • the resolution and the distance between pixels of the first area 1026a may be the same as the resolution and the distance between the pixels of the second area 1026b.
  • the wearable electronic device 1001 when a function using the optical sensor module 1031 is requested in the first state, the wearable electronic device 1001 includes an actuator (not shown) disposed on the rear surface of the optical sensor module 1031 . time) to move the optical sensor module 1031 to the front.
  • an actuator not shown
  • a first interval between pixels constituting the first area 1026a covering the optical sensor module 1031 is physically
  • a second state in which the first region 1026a has a deformed second shape as the intervals between pixels constituting the first region 1026a are extended to the second interval. You can check the conversion to .
  • the optical sensor module 1031 is exposed through the transparent first region 1026a. You can check the transition to the second state shown. In the second state, the resolution and spacing between pixels of the first region 1026a and the resolution and spacing between pixels of the second region 1026b are different from each other. In the second state, the resolution and the spacing between pixels of the first region 1026a are different from the resolution and the spacing between pixels of the first region 1026a in the first state.
  • the wearable electronic device 1001 when the optical sensor module 1031 is used as a pulse wave signal detection module, the wearable electronic device 1001 has the transparent first area covering the optical sensor module 1031 in the second state.
  • a contact of a human body e.g, a hand or a finger
  • pixels constituting the first region 1026a may be used as a light emitting unit.
  • a pulse wave sensor (light receiving unit) of the pulse wave signal detection module receives the reflected light reflected from the human body (eg, hand or finger) in contact with the first region 1026a by the is converted into electrical energy, a pulse wave signal may be detected based on the converted electrical energy to generate medical data.
  • the electronic device (eg, the electronic device 201 of FIG. 2 ) is disposed on the rear surface of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) an optical sensor module (eg, the optical sensor module 270 of FIG. 2 ), and a processor (eg, the processor 220 of FIG. 2 ), wherein the processor is the stretchable device having an undeformed first shape
  • the optical sensor module is moved to the front side, and the optical sensor module is modified to correspond to the front movement of the optical sensor module. It may be set to confirm the transition of the second state to which the optical sensor module is exposed through the stretchable display having two shapes.
  • an actuator eg, the actuator 280 of FIG. 2
  • the processor may be set to move the optical sensor module to the front by driving the actuator.
  • the distance between pixels constituting the stretchable display covering the optical sensor module is physically extended according to the front movement of the optical sensor module, It may be set to check the stretchable display with increased transparency corresponding to the deformed second shape.
  • the processor in the second state, when confirming the end of the function using the optical sensor module, moves the optical sensor module to the rear, and corresponds to the rear movement of the optical sensor module.
  • the stretchable display may be set to confirm a transition of the first state having the first shape that is not deformed.
  • the distance between pixels constituting the stretchable display covering the optical sensor module is physically reduced in response to the rear movement of the optical sensor module.
  • it may be set to confirm the opaque stretchable display corresponding to the undeformed first shape.
  • the processor in the first state, when a selfie taking function is requested as a function using the optical sensor module, the processor includes a camera module (eg, the camera module 271 of FIG. 2 ) included in the optical sensor module. )) to the front, and to confirm the transition of the second state in which the camera module is exposed through the stretchable display having a second shape deformed to correspond to the front movement of the camera module.
  • a camera module eg, the camera module 271 of FIG. 2
  • the stretchable display having a second shape deformed to correspond to the front movement of the camera module.
  • the processor when a fingerprint recognition function is requested as a function using the optical sensor module in the first state, the processor includes a fingerprint recognition module (eg, the fingerprint recognition module of FIG. 2 ) included in the optical sensor module. (273)) to the front, and set to confirm the transition of the second state in which the fingerprint recognition module is exposed through the stretchable display having a second shape modified to correspond to the front movement of the fingerprint recognition module can be
  • a fingerprint recognition module eg, the fingerprint recognition module of FIG. 2
  • the processor moves the camera module included in the optical sensor module to the front, and the camera module An electronic device configured to confirm a transition of a second state in which the camera module is exposed through the stretchable display having a second shape deformed to correspond to the front movement of the .
  • the processor in the first state, when a pulse wave signal detection function is requested as a function using the optical sensor module, the processor includes a pulse wave signal detection module (eg, the pulse wave of FIG. 2 ) included in the optical sensor module.
  • the signal detection module 275) is moved to the front side, and the pulse wave signal detection module is exposed through the stretchable display having a second shape modified to correspond to the front movement of the pulse wave signal detection module. It can be set to confirm the transition.
  • the second state in the second state, it may be set to emit light using pixels constituting the stretchable display and detect a pulse wave signal based on reflected light collected by the pulse wave signal detection module.
  • the operation for improving the recognition rate of the optical sensor may include operations 1101 to 1107, and may include operations 1101 to 1107, and may include a processor of an electronic device (eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2 ). It can be understood as being performed by the processor 120 of 1 or the processor 220 of FIG. 2 ). According to an embodiment, at least one of operations 1101 to 1107 may be omitted, the order of some operations may be changed, or another operation may be added.
  • the electronic device eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2
  • the electronic device is a stretchable display (eg, the stretchable display of FIG. 2 ) having a first shape that is not deformed.
  • a request for performing a function using the optical sensor module may be received.
  • the electronic device may identify the first state in which the optical sensor module is disposed on the rear surface of the first area of the stretchable display having the undeformed first shape.
  • the first area may include an area larger than a size of the optical sensor module by a predetermined range or more.
  • the first state is a state in which all pixels constituting the entire stretchable display maintain the first distance uniformly, indicating that the stretchable display is in an opaque state.
  • the distance between pixels constituting the first region of the stretchable display is maintained at the same first interval as pixels constituting the entire stretchable display. Accordingly, since the first region of the stretchable display is in an opaque state, it may indicate a state in which the optical sensor module is not exposed through the stretchable display.
  • the electronic device moves the optical sensor module (eg, the optical sensor module 270 of FIG. 2 ) to the front side and , a second state in which the optical sensor module is disposed on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a second shape deformed to correspond to the front movement of the optical sensor module.
  • the electronic device drives an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear surface of the optical sensor module.
  • the optical sensor module can be moved to the front.
  • the electronic device may drive the actuator to move the optical sensor module to the front to a predetermined distance that the optical sensor module can be exposed through the first area of the stretchable display. .
  • the electronic device as the distance between pixels constituting the first area of the stretchable display covering the optical sensor module is physically extended to correspond to the front movement of the optical sensor module, The second state in which the shape of the stretchable display has a deformed second shape may be confirmed.
  • the optical sensor module passes through the first region of the stretchable display. It can be confirmed that the second state is exposed and shown.
  • a distance between pixels constituting the first region of the stretchable display in the second state is a first distance between pixels constituting the entire stretchable display in the first state.
  • the second interval which is more extended, indicates an interval at which the first area of the stretchable display is transparent and the optical sensor module is exposed through the transparent stretchable display.
  • the second shape of the stretchable display in the second state may be different from the first shape of the stretchable display in the first state.
  • the second shape of the stretchable display may include a shape corresponding to the front movement of the optical sensor module.
  • the electronic device eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2 . performs a function using the optical sensor module (eg, the optical sensor module 270 of FIG. 2 ). can do.
  • the optical sensor module eg, the optical sensor module 270 of FIG. 2
  • the electronic device receives from the optical sensor module exposed through a first area of a transparent stretchable display (eg, the stretchable display 260 of FIG. 2 ) in the second state.
  • a function of using the optical sensor module may be performed based on sensor information.
  • the electronic device as the transparency of the first region of the stretchable display exposing the optical sensor module in the second state is increased, the light transmittance is improved, Accurate sensor information can be received.
  • the electronic device performs a function using the optical sensor module (eg, the optical sensor module 270 of FIG. 2 ).
  • the optical sensor module eg, the optical sensor module 270 of FIG. 2 .
  • the stretchable display moves the optical sensor module to the rear and has a first shape that is not deformed to correspond to the rear movement of the optical sensor module.
  • the electronic device when confirming that the function using the optical sensor module is terminated, drives an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear surface of the optical sensor module to drive the optical sensor module.
  • the sensor module can be moved to the rear.
  • the electronic device may drive the actuator to move the optical sensor module to a position in the first state.
  • the electronic device as the distance between pixels constituting the first area of the stretchable display covering the optical sensor module is physically reduced to correspond to the rear movement of the optical sensor module, The first state in which the shape of the stretchable display 260 is not deformed may be checked.
  • the optical device passes through the first region of the stretchable display 260 . It is possible to check the first state that is shown because the sensor module is not exposed.
  • the operation of exposing the camera module may include operations 1201 to 1207, and a processor (eg, the processor of FIG. 1 ) of an electronic device (eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2 ). 120 or the processor 220 of FIG. 2).
  • a processor eg, the processor of FIG. 1
  • 120 or the processor 220 of FIG. 2 the processor 220 of FIG. 2
  • at least one of operations 1201 to 1207 may be omitted, the order of some operations may be changed, or another operation may be added.
  • the electronic device eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2
  • the electronic device is a stretchable display (eg, the stretchable display of FIG. 2 ) having a first shape that is not deformed.
  • a camera module eg, the camera module 271 of FIG. 2
  • a request for a selfie taking function may be received.
  • the electronic device may identify the first state in which the camera module is disposed on the rear surface of the first area of the stretchable display having the undeformed first shape.
  • the first area may include an area larger than a size of the camera module by a predetermined range or more.
  • the first state is a state in which all pixels constituting the entire stretchable display maintain the first distance uniformly, indicating that the stretchable display is in an opaque state.
  • the distance between pixels constituting the first region of the stretchable display is maintained at the same first interval as pixels constituting the entire stretchable display.
  • the first area of the stretchable display is in an opaque state, it may indicate a state in which the camera module is not exposed through the stretchable display.
  • the electronic device may select an icon representing a selfie taking application from among a plurality of icons representing a plurality of applications displayed on the standby screen, or confirm selection of a selfie taking while executing a camera application. have.
  • the electronic device moves a camera module (eg, the camera module 271 of FIG. 2 ) to the front side, and the camera A second state in which the camera module is disposed on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a second shape deformed to correspond to the front movement of the module may be checked.
  • a camera module eg, the camera module 271 of FIG. 2
  • the electronic device drives an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear side of the camera module to drive the The camera module can be moved to the front.
  • an actuator eg, the actuator 280 of FIG. 2
  • the electronic device may drive the actuator to move the camera module to the front by a predetermined distance that the camera module can be exposed through the first area of the stretchable display.
  • the screen As the distance between pixels constituting the first area of the stretchable display covering the camera module is physically extended to correspond to the front movement of the camera module, the screen The second state in which the shape of the retractable display has a deformed second shape may be checked.
  • the camera module is displayed through the first region of the stretchable display.
  • the second state that is exposed and shown can be confirmed.
  • a distance between pixels constituting the first region of the stretchable display in the second state is a first distance between pixels constituting the entire stretchable display in the first state.
  • the second interval which is more extended, indicates an interval at which the first area of the stretchable display is transparent and the camera module can be exposed through the transparent stretchable display.
  • the second shape of the stretchable display in the second state may be different from the first shape of the stretchable display in the first state.
  • the second shape of the stretchable display may include a shape corresponding to the front movement of the camera module.
  • the electronic device may perform a selfie function.
  • the electronic device may perform a selfie function through a camera module disposed on the rear side of the first area of the stretchable display having the second shape deformed in the second state.
  • the electronic device when a filter effect is selected by the user while performing a selfie function, selects a color corresponding to the selected filter effect using pixels configured in the first area of the stretchable display. can emit light.
  • the camera module (eg, the camera module of FIG. 2 ) 271)) to the rear, and the camera module is disposed on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a first shape that is not deformed to correspond to the rear movement of the camera module
  • the first state can be checked.
  • the electronic device when the electronic device confirms the end of the performance of the selfie function, it drives an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear side of the camera module to move the camera module to the rear side. can be moved to an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear side of the camera module to move the camera module to the rear side. can be moved to an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear side of the camera module to move the camera module to the rear side. can be moved to
  • the electronic device may drive the actuator to move the camera module to a position when the camera module is in the first state.
  • the screen The first state in which the shape of the retractable display 260 is not deformed may be checked.
  • the electronic device as the first area of the stretchable display 260 having the undeformed first shape becomes opaque, the electronic device passes the camera through the first area of the stretchable display. It is possible to check the first state that the module is not exposed and is shown.
  • the operation of exposing the fingerprint recognition module may include operations 1301 to 1307, and may include operations 1301 to 1307, and may include a processor of an electronic device (eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2 ) (eg, operations of FIG. 1 ). It may be understood as being performed by the processor 120 or the processor 220 of FIG. 2 . According to an embodiment, at least one of operations 1301 to 1307 may be omitted, the order of some operations may be changed, or another operation may be added.
  • the electronic device eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2
  • the electronic device is a stretchable display (eg, the stretchable display of FIG. 2 ) having an undeformed first shape.
  • a fingerprint recognition module eg, the fingerprint recognition module 273 of FIG. 2
  • a request for a fingerprint recognition function may be received.
  • the electronic device may identify the first state in which the fingerprint recognition module is disposed on the rear surface of the first area of the stretchable display having the undeformed first shape.
  • the first area may include an area larger than a size of the fingerprint recognition module by a predetermined range or more.
  • the first state is a state in which all pixels constituting the entire stretchable display maintain the first distance uniformly, indicating that the stretchable display is in an opaque state.
  • the distance between pixels constituting the first region of the stretchable display is maintained at the same first interval as pixels constituting the entire stretchable display. Accordingly, since the first region of the stretchable display is in an opaque state, it may indicate a state in which the fingerprint recognition module is not exposed through the stretchable display.
  • the electronic device detects a finger contact of the user 850 in the first area of the stretchable display 260 covering the fingerprint recognition module 273 as a request for a fingerprint recognition function. can be checked
  • the electronic device moves the fingerprint recognition module (eg, the fingerprint recognition module 273 of FIG. 2 ) to the front and , a second state in which the fingerprint recognition module is disposed on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a second shape deformed to correspond to the front movement of the fingerprint recognition module can be confirmed.
  • the fingerprint recognition module eg, the fingerprint recognition module 273 of FIG. 2
  • the electronic device drives an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear surface of the fingerprint recognition module.
  • the fingerprint recognition module can be moved to the front.
  • the electronic device may drive the actuator to move the fingerprint recognition module to the front by a predetermined distance that the fingerprint recognition module can be exposed through the first area of the stretchable display. .
  • the electronic device as the distance between pixels constituting the first area of the stretchable display covering the fingerprint recognition module is physically extended to correspond to the front movement of the fingerprint recognition module, The second state in which the shape of the stretchable display has a deformed second shape may be confirmed.
  • the fingerprint recognition module may use the first region of the stretchable display. It can be confirmed that the second state is exposed and shown.
  • a distance between pixels constituting the first region of the stretchable display in the second state is a first distance between pixels constituting the entire stretchable display in the first state.
  • the second interval which is more extended, represents an interval at which the first area of the stretchable display is transparent and the fingerprint recognition module can be exposed through the transparent stretchable display.
  • the second shape of the stretchable display in the second state may be different from the first shape of the stretchable display in the first state.
  • the second shape of the stretchable display may include a shape corresponding to the front movement of the fingerprint recognition module.
  • the electronic device may perform a fingerprint recognition function.
  • the electronic device may perform a fingerprint recognition function through a fingerprint recognition module disposed on the rear surface of the first area of the stretchable display having the second shape deformed in the second state.
  • the electronic device performs a fingerprint recognition function through the fingerprint recognition module exposed through the first area of the stretchable display 260, which has become transparent, while performing a fingerprint recognition function.
  • a color for the fingerprint recognition may be emitted using pixels constituting the first area.
  • the fingerprint recognition module (eg, the fingerprint of FIG. 2 ) Move the recognition module 273) to the rear side, and on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a first shape that is not deformed to correspond to the rear movement of the fingerprint recognition module.
  • a first state in which the fingerprint recognition module is disposed may be checked.
  • the electronic device when confirming the end of the fingerprint recognition function, operates an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear surface of the fingerprint recognition module to activate the fingerprint recognition module. It can be moved to the rear.
  • an actuator eg, the actuator 280 of FIG. 2
  • the electronic device may drive the actuator to move the fingerprint recognition module to a position when the fingerprint recognition module is in the first state.
  • the electronic device as the distance between pixels constituting the first area of the stretchable display covering the fingerprint recognition module is physically reduced to correspond to the rear movement of the fingerprint recognition module, The first state in which the shape of the stretchable display 260 is not deformed may be checked.
  • the fingerprint passes through the first area of the stretchable display. It is possible to check the first state, which is not exposed, of the recognition module.
  • the operation of exposing the camera module may include operations 1401 to 1407, and a processor (eg, the processor of FIG. 1 ) of an electronic device (eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2 ). 120 or the processor 220 of FIG. 2).
  • a processor eg, the processor of FIG. 1
  • 120 or the processor 220 of FIG. 2 the processor of FIG. 2
  • at least one of operations 1401 to 1407 may be omitted, the order of some operations may be changed, or another operation may be added.
  • the electronic device eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2
  • a stretchable display eg, the stretchable display of FIG. 2
  • a lock screen release request may be received in a first state in which a camera module (eg, the camera module 271 of FIG. 2 ) is disposed on the rear side of the display 260 .
  • the electronic device may identify the first state in which the camera module is disposed on the rear surface of the first area of the stretchable display having the undeformed first shape.
  • the first area may include an area larger than a size of the camera module by a predetermined range or more.
  • the first state is a state in which all pixels constituting the entire stretchable display maintain the first distance uniformly, indicating that the stretchable display is in an opaque state.
  • the distance between pixels constituting the first region of the stretchable display is maintained at the same first interval as pixels constituting the entire stretchable display.
  • the first area of the stretchable display is in an opaque state, it may indicate a state in which the camera module is not exposed through the stretchable display.
  • the electronic device may identify a lock screen release request according to an input of a home button or a request to execute a voice command in the lock screen state of the electronic device.
  • the electronic device moves the camera module (eg, the camera module 271 of FIG. 2 ) to the front side, and the camera A second state in which the camera module is disposed on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a second shape deformed to correspond to the front movement of the module may be checked.
  • the electronic device drives an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear side of the camera module to drive the The camera module can be moved to the front.
  • an actuator eg, the actuator 280 of FIG. 2
  • the electronic device may drive the actuator to move the camera module to the front by a predetermined distance that the camera module can be exposed through the first area of the stretchable display.
  • the screen As the distance between pixels constituting the first area of the stretchable display covering the camera module is physically extended to correspond to the front movement of the camera module, the screen The second state in which the shape of the retractable display has a deformed second shape may be checked.
  • the camera module is displayed through the first region of the stretchable display.
  • the second state that is exposed and shown can be confirmed.
  • a distance between pixels constituting the first region of the stretchable display in the second state is a first distance between pixels constituting the entire stretchable display in the first state.
  • the second interval which is more extended, indicates an interval at which the first area of the stretchable display is transparent and the camera module can be exposed through the transparent stretchable display.
  • the second shape of the stretchable display in the second state may be different from the first shape of the stretchable display in the first state.
  • the second shape of the stretchable display may include a shape corresponding to the front movement of the camera module.
  • the electronic device may perform a lock screen release function.
  • the electronic device recognizes a face or pupils through a camera module disposed on the rear side of the first region of the stretchable display having the second shape deformed from the second state to unlock the lock screen. function can be performed.
  • the electronic device performs a function of unlocking the lock screen through face or eye recognition through the camera module exposed through the first region of the stretchable display, which has become transparent,
  • a color for unlocking the lock screen may be emitted using pixels constituting the first area of the display.
  • the camera module eg, the camera module 271 of FIG. 2
  • the camera module is moved to the rear, and the camera module is disposed on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a first shape that is not deformed to correspond to the rear movement of the camera module. 1 You can check the status.
  • the electronic device when confirming that the lock screen is released, drives an actuator disposed on the rear side of the camera module (eg, the actuator 280 of FIG. 2 ) to move the camera module to the rear side. can do it
  • the electronic device may drive the actuator to move the camera module to a position when the camera module is in the first state.
  • the screen The first state in which the shape of the retractable display 260 is not deformed may be checked.
  • the electronic device as the first area of the stretchable display 260 having the undeformed first shape becomes opaque, the electronic device passes the camera through the first area of the stretchable display. It is possible to check the first state that the module is not exposed and is shown.
  • the operation of exposing the pulse wave signal detection module may include operations 1501 to 1507, and may include operations 1501 to 1507, and a processor (eg, FIG. 1 ) of an electronic device (eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2 ). It can be understood as being performed by the processor 120 of FIG. or the processor 220 of FIG. 2). According to an embodiment, at least one of operations 1501 to 1507 may be omitted, the order of some operations may be changed, or another operation may be added.
  • the electronic device eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2
  • a stretchable display eg, the stretchable display of FIG. 2
  • a pulse wave signal detection module eg, the pulse wave signal detection module 275 of FIG. 2
  • a request for a pulse wave signal detection function may be received.
  • the electronic device may identify the first state in which the pulse wave signal detection module is disposed on the rear surface of the first area of the stretchable display having the undeformed first shape.
  • the first area may include an area larger than a size of the pulse wave signal detection module by a predetermined range or more.
  • the first state is a state in which all pixels constituting the entire stretchable display maintain the first distance uniformly, indicating that the stretchable display is in an opaque state.
  • the distance between pixels constituting the first region of the stretchable display is maintained at the same first interval as pixels constituting the entire stretchable display. Accordingly, since the first region of the stretchable display is in an opaque state, it may indicate a state in which the pulse wave signal detection module is not exposed through the stretchable display.
  • the electronic device may identify the detection as the pulse wave signal detection function request.
  • the electronic device eg, the electronic device 101 of FIG. 1 or the electronic device 201 of FIG. 2
  • turns the pulse wave signal detection module eg, the pulse wave signal detection module 275 of FIG. 2
  • a second pulse wave signal detecting module is disposed on the rear side of the stretchable display (eg, the stretchable display 260 of FIG. 2 ) having a second shape that is moved and modified to correspond to the front movement of the pulse wave signal detecting module You can check the status.
  • the electronic device when a function of using the pulse wave signal detection module is requested in the first state, the electronic device includes an actuator disposed on the rear surface of the pulse wave signal detection module (eg, the actuator 280 of FIG. 2 ). may be driven to move the pulse wave signal detection module to the front side.
  • an actuator disposed on the rear surface of the pulse wave signal detection module eg, the actuator 280 of FIG. 2 .
  • the electronic device may drive the actuator to move the pulse wave signal detection module to the front to a predetermined distance that the pulse wave signal detection module can be exposed through the first area of the stretchable display.
  • the distance between pixels constituting the first area of the stretchable display covering the pulse wave signal detecting module is physically extended to correspond to the front movement of the pulse wave signal detecting module.
  • the electronic device detects the pulse wave signal through the first area of the stretchable display as transparency of the first area of the stretchable display having the deformed second shape increases. It is possible to check the second state exposed and shown of the module.
  • a distance between pixels constituting the first region of the stretchable display in the second state is a first distance between pixels constituting the entire stretchable display in the first state.
  • the second interval which is more extended, indicates an interval at which the first area of the stretchable display is transparent and the pulse wave signal detection module is exposed through the transparent stretchable display.
  • the second shape of the stretchable display in the second state may be different from the first shape of the stretchable display in the first state.
  • the second shape of the stretchable display may include a shape corresponding to the front movement of the pulse wave signal detection module.
  • the electronic device may perform a pulse wave signal detection function.
  • the electronic device may use pixels constituting the first area of the transparent stretchable display as light emitting units.
  • the pulse wave sensor (light receiving unit) of the pulse wave signal detection module emits light to the first area.
  • the converted Medical data may be generated by detecting a pulse wave signal based on electrical energy.
  • the pulse wave signal detection module (eg, the pulse wave signal of FIG. 2 )
  • the rear surface of the stretchable display eg, the stretchable display 260 of FIG. 2 ) by moving the detection module 275) to the rear and having a first shape that is not deformed to correspond to the rear movement of the pulse wave signal detection module.
  • a first state in which the pulse wave signal detection module is disposed may be checked.
  • the electronic device when confirming that the pulse wave detection function is terminated, detects the pulse wave signal by driving an actuator (eg, the actuator 280 of FIG. 2 ) disposed on the rear surface of the pulse wave signal detection module.
  • the module can be moved to the rear.
  • the electronic device may drive the actuator to move to a position when the pulse wave signal detection module is in the first state.
  • the distance between pixels constituting the first area of the stretchable display covering the pulse wave signal detecting module is physically reduced to correspond to the rear movement of the pulse wave signal detecting module.
  • the pulse wave passes through the first area of the stretchable display. It is possible to check the first state, which is not exposed, of the signal detection module.
  • the optical sensor module in a first state in which the optical sensor module is disposed on the rear surface of the stretchable display having a first undeformed shape, the optical sensor module When a function using It may include an operation of confirming the transition of the second state.
  • the optical sensor module may be moved to the front by driving an actuator disposed on the rear surface of the optical sensor module.
  • the operation of confirming the transition of the second state includes:
  • the distance between pixels constituting the stretchable display covering the optical sensor module is physically extended, so that the transparency is increased to correspond to the deformed second shape. It may include an operation of checking the stretchable display that is raised.
  • the stretchable function corresponds to the operation of moving the optical sensor module to the rear side and the rear movement of the optical sensor module
  • the method may further include confirming a transition of the first state in which the display has the first shape in which it is not deformed.
  • the operation of confirming the transition of the first state includes:
  • the distance between pixels constituting the stretchable display covering the optical sensor module is physically reduced according to the movement of the rear surface of the optical sensor module to correspond to an undeformed first shape It may include an operation of checking the stretchable display to be very opaque.
  • the method may further include confirming a transition of the second state to which the camera module is exposed through the stretchable display having a second shape deformed corresponding to .
  • the operation of moving the fingerprint recognition module included in the optical sensor module to the front, and the fingerprint recognition module may further include confirming a transition of the second state to which the fingerprint recognition module is exposed through the stretchable display having a second shape deformed to correspond to the front movement.
  • the method may further include confirming a transition of the second state to which the camera module is exposed through the stretchable display having a second shape deformed to correspond to movement.
  • the method may further include confirming a transition of the second state to which the pulse wave signal detection module is exposed through the stretchable display having a second shape deformed to correspond to the front movement of the detection module.
  • the method further includes emitting light using pixels constituting the stretchable display in the second state, and detecting a pulse wave signal based on the reflected light collected by the pulse wave signal detection module. can do.
  • Various embodiments of the present document may operate in the same manner not only in electronic devices but also in devices capable of using the optical sensor module and the stretchable display, for example, home appliances and vehicles.
  • the electronic device may have various types of devices.
  • the electronic device may include, for example, a portable communication device (eg, a smart phone), a computer device, a portable multimedia device, a portable medical device, a camera, a wearable device, or a home appliance device.
  • a portable communication device eg, a smart phone
  • a computer device e.g., a smart phone
  • a portable multimedia device e.g., a portable medical device
  • a camera e.g., a portable medical device
  • a camera e.g., a portable medical device
  • a camera e.g., a portable medical device
  • a wearable device e.g., a smart bracelet
  • a home appliance device e.g., a home appliance
  • first”, “second”, or “first” or “second” may simply be used to distinguish the component from other such components, and refer to the component in another aspect (e.g., importance or order) is not limited. It is said that one (eg, first) component is “coupled” or “connected” to another (eg, second) component, with or without the terms “functionally” or “communicatively”. When referenced, it means that one component can be connected to the other component directly (eg by wire), wirelessly, or through a third component.
  • module used in various embodiments of this document may include a unit implemented in hardware, software, or firmware, and is interchangeable with terms such as, for example, logic, logic block, component, or circuit.
  • a module may be an integrally formed part or a minimum unit or a part of the part that performs one or more functions.
  • the module may be implemented in the form of an application-specific integrated circuit (ASIC).
  • ASIC application-specific integrated circuit
  • Various embodiments of the present document include one or more instructions stored in a storage medium (eg, internal memory 136 or external memory 138) readable by a machine (eg, electronic device 101).
  • a storage medium eg, internal memory 136 or external memory 138
  • the processor eg, the processor 120
  • the device eg, the electronic device 101
  • the one or more instructions may include code generated by a compiler or code executable by an interpreter.
  • the device-readable storage medium may be provided in the form of a non-transitory storage medium.
  • 'non-transitory' only means that the storage medium is a tangible device and does not contain a signal (eg, electromagnetic wave), and this term is used in cases where data is semi-permanently stored in the storage medium and It does not distinguish between temporary storage cases.
  • a signal eg, electromagnetic wave
  • the method according to various embodiments disclosed in this document may be provided in a computer program product (computer program product).
  • Computer program products may be traded between sellers and buyers as commodities.
  • the computer program product is distributed in the form of a machine-readable storage medium (eg compact disc read only memory (CD-ROM)), or via an application store (eg Play Store TM ) or on two user devices ( It can be distributed (eg downloaded or uploaded) directly or online between smartphones (eg: smartphones).
  • a portion of the computer program product may be temporarily stored or temporarily created in a machine-readable storage medium such as a memory of a server of a manufacturer, a server of an application store, or a relay server.
  • each component eg, a module or a program of the above-described components may include a singular or a plurality of entities, and some of the plurality of entities may be separately disposed in other components. have.
  • one or more components or operations among the above-described corresponding components may be omitted, or one or more other components or operations may be added.
  • a plurality of components eg, a module or a program
  • the integrated component may perform one or more functions of each component of the plurality of components identically or similarly to those performed by the corresponding component among the plurality of components prior to the integration. .
  • operations performed by a module, program, or other component are executed sequentially, in parallel, repeatedly, or heuristically, or one or more of the operations are executed in a different order, or omitted. or one or more other operations may be added.

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Abstract

Un dispositif électronique selon divers modes de réalisation comprend : un afficheur étirable ; un module de capteur optique disposé sur la surface arrière de l'afficheur étirable ; et un processeur. Le processeur peut être configuré pour, dans un premier état dans lequel le module de capteur optique est disposé sur la surface arrière de l'afficheur étirable ayant une première forme non déformée, lorsqu'une fonction utilisant le module de capteur optique est demandée, déplacer le module de capteur optique vers la surface avant, et vérifier la commutation vers un second état dans lequel le module de capteur optique est exposé à travers l'afficheur étirable ayant une seconde forme déformée pour correspondre au déplacement du module de capteur optique vers la surface avant. L'invention peut concerner divers autres modes de réalisation.
PCT/KR2021/020144 2021-02-17 2021-12-29 Dispositif électronique et procédé pour améliorer le taux de reconnaissance d'un capteur optique dans un dispositif électronique WO2022177134A1 (fr)

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KR1020210020921A KR20220117492A (ko) 2021-02-17 2021-02-17 전자 장치 및 전자 장치에서 광학 센서의 인식률을 개선시키는 방법
KR10-2021-0020921 2021-02-17

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WO2022177134A1 true WO2022177134A1 (fr) 2022-08-25

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20190140384A (ko) * 2018-06-11 2019-12-19 엘지전자 주식회사 이동 단말기
KR20200023595A (ko) * 2018-08-24 2020-03-05 삼성디스플레이 주식회사 제어장치
KR20200052246A (ko) * 2018-10-31 2020-05-14 베이징 시아오미 모바일 소프트웨어 컴퍼니 리미티드 단말기 스크린, 스크린 구조 및 이의 제어 방법, 장치와 단말기
KR20200079422A (ko) * 2018-12-25 2020-07-03 엘지디스플레이 주식회사 표시 장치
JP2020170170A (ja) * 2016-03-11 2020-10-15 アップル インコーポレイテッドApple Inc. 画像センサを移動させるボイスコイルモータを有する光学画像安定化

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Publication number Priority date Publication date Assignee Title
JP2020170170A (ja) * 2016-03-11 2020-10-15 アップル インコーポレイテッドApple Inc. 画像センサを移動させるボイスコイルモータを有する光学画像安定化
KR20190140384A (ko) * 2018-06-11 2019-12-19 엘지전자 주식회사 이동 단말기
KR20200023595A (ko) * 2018-08-24 2020-03-05 삼성디스플레이 주식회사 제어장치
KR20200052246A (ko) * 2018-10-31 2020-05-14 베이징 시아오미 모바일 소프트웨어 컴퍼니 리미티드 단말기 스크린, 스크린 구조 및 이의 제어 방법, 장치와 단말기
KR20200079422A (ko) * 2018-12-25 2020-07-03 엘지디스플레이 주식회사 표시 장치

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