WO2022225204A1 - Appareil électronique et procédé de commande d'un dispositif électronique - Google Patents

Appareil électronique et procédé de commande d'un dispositif électronique Download PDF

Info

Publication number
WO2022225204A1
WO2022225204A1 PCT/KR2022/004019 KR2022004019W WO2022225204A1 WO 2022225204 A1 WO2022225204 A1 WO 2022225204A1 KR 2022004019 W KR2022004019 W KR 2022004019W WO 2022225204 A1 WO2022225204 A1 WO 2022225204A1
Authority
WO
WIPO (PCT)
Prior art keywords
electronic device
infrared signal
light emitting
image data
infrared
Prior art date
Application number
PCT/KR2022/004019
Other languages
English (en)
Korean (ko)
Inventor
김남훈
Original Assignee
삼성전자주식회사
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 삼성전자주식회사 filed Critical 삼성전자주식회사
Publication of WO2022225204A1 publication Critical patent/WO2022225204A1/fr

Links

Images

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q9/00Arrangements in telecontrol or telemetry systems for selectively calling a substation from a main station, in which substation desired apparatus is selected for applying a control signal thereto or for obtaining measured values therefrom
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0481Interaction techniques based on graphical user interfaces [GUI] based on specific properties of the displayed interaction object or a metaphor-based environment, e.g. interaction with desktop elements like windows or icons, or assisted by a cursor's changing behaviour or appearance
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F3/00Input arrangements for transferring data to be processed into a form capable of being handled by the computer; Output arrangements for transferring data from processing unit to output unit, e.g. interface arrangements
    • G06F3/01Input arrangements or combined input and output arrangements for interaction between user and computer
    • G06F3/048Interaction techniques based on graphical user interfaces [GUI]
    • G06F3/0481Interaction techniques based on graphical user interfaces [GUI] based on specific properties of the displayed interaction object or a metaphor-based environment, e.g. interaction with desktop elements like windows or icons, or assisted by a cursor's changing behaviour or appearance
    • G06F3/04815Interaction with a metaphor-based environment or interaction object displayed as three-dimensional, e.g. changing the user viewpoint with respect to the environment or object
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06TIMAGE DATA PROCESSING OR GENERATION, IN GENERAL
    • G06T19/00Manipulating 3D models or images for computer graphics
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06TIMAGE DATA PROCESSING OR GENERATION, IN GENERAL
    • G06T19/00Manipulating 3D models or images for computer graphics
    • G06T19/006Mixed reality

Definitions

  • the following disclosure relates to an electronic device control technology using an electronic device.
  • a device for controlling an electronic device from a distance such as a remote control, generally uses an infrared communication module such as Infrared Data Association (IrDA) or a short-range communication module such as Bluetooth to use a remote control function.
  • IrDA Infrared Data Association
  • Bluetooth short-range communication module
  • An electronic device equipped with an infrared communication module or a short-range communication module, such as a mobile phone, can also be used to control the electronic device from a distance.
  • a separate infrared communication module needs to be mounted in the electronic device, which causes an increase in mounting space and an increase in cost.
  • the electronic device and method for controlling an electronic device do not require a separate infrared communication module by controlling the electronic device using a 3D sensing module mounted on the electronic device, thereby saving a mounting space and reducing the size of the electronic device. Production costs can be reduced.
  • An electronic device for controlling an electronic device includes a 3D sensing module including an infrared light emitting device; a camera for acquiring image data; display; and a processor, wherein the processor comprises: receiving the obtained image data from the camera; identifying a controllable electronic device from the image data; outputting the image data through the display for manipulation of the identified electronic device; receiving a user command for operating the electronic device through a user input to the electronic device included in the output image data; and transmitting an infrared signal including the user command by using the infrared light emitting device.
  • the electronic device can be controlled using a 3D sensing module of the electronic device even if the electronic device does not have an infrared communication module or a short-range communication module mounted thereon.
  • FIG. 1 is a block diagram illustrating an electronic device according to an exemplary embodiment.
  • FIG. 2 is a diagram for explaining an outline of an electronic device and method for controlling an electronic device according to an exemplary embodiment.
  • FIG. 3 is a flowchart illustrating a method for controlling an electronic device according to an exemplary embodiment.
  • FIG. 4 is a flowchart illustrating a process of determining the intensity of an infrared signal by a method for controlling an electronic device according to an embodiment.
  • FIG. 5 is a diagram for describing a process of controlling a plurality of electronic devices by an electronic device and method for controlling an electronic device according to an exemplary embodiment.
  • FIG. 6 is a flowchart illustrating a detailed process of determining the intensity of an infrared signal by a method for controlling an electronic device according to an embodiment.
  • FIG. 7 is a flowchart illustrating a multiple control mode according to an embodiment.
  • FIG. 8 is a flowchart illustrating a multiple control mode according to another embodiment.
  • FIG. 9 is a block diagram illustrating a 3D sensing module included in an electronic device according to an exemplary embodiment.
  • FIG. 10 is a diagram for explaining an operation performed by a 3D sensing module according to an embodiment.
  • FIG. 11 is a block diagram illustrating a configuration of an electronic device for controlling an electronic device according to an exemplary embodiment.
  • FIG. 1 is a block diagram of an electronic device 101 in a network environment 100, according to various embodiments.
  • an electronic device 101 communicates with an 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 .
  • a first network 198 eg, a short-range wireless communication network
  • a second network 199 e.g., a second network 199
  • 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, 3D sensing module 181, power management module 188, battery 189, communication module 190 , a 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 3D sensing module 181 may measure a distance between the 3D sensing module and the subject.
  • the 3D sensing module 181 may include a transmitter and a receiver for distance measurement.
  • the 3D sensing module 181 may be a Time of Flight (ToF) sensor.
  • the transmitter may be a big cell (VCSEL) including a plurality of infrared light emitting devices.
  • 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 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 .
  • subscriber information eg, International Mobile Subscriber Identifier (IMSI)
  • IMSI International Mobile Subscriber Identifier
  • 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 diagram for explaining an outline of an electronic device and method for controlling an electronic device according to an exemplary embodiment.
  • a short-range communication module or an infrared communication module may be used, but for remote control of the electronic device 235 Since a separate module needs to be mounted, a space in the electronic device 205 may be occupied, and the cost of the electronic device 205 may increase due to the mounting of the module.
  • the electronic device 205 may be equipped with a 3D sensing module (eg, the 3D sensing module 181 of FIG. 1 ) including an infrared light emitting device to implement an augmented reality function or to achieve various purposes.
  • a 3D sensing module eg, the 3D sensing module 181 of FIG. 1
  • an infrared light emitting device to implement an augmented reality function or to achieve various purposes.
  • a separate module is installed for remote control of the electronic device 235 .
  • the electronic device 235 may be controlled using the 3D sensing module without being mounted thereon.
  • the electronic device 205 includes a 3D sensing module (eg, the 3D sensing module 181 of FIG. 1 ) including an infrared light emitting device, a camera (eg, the camera module 180 of FIG. 1 ) for acquiring image data, a display ( For example, the display module 160 of FIG. 1 ) and a processor (eg, the processor 120 of FIG. 1 ) may be included.
  • a 3D sensing module eg, the 3D sensing module 181 of FIG. 1
  • a camera eg, the camera module 180 of FIG. 1
  • a display for example, the display module 160 of FIG. 1
  • a processor eg, the processor 120 of FIG. 1
  • the user of the electronic device 205 may photograph the electronic device 235 to be controlled with the camera of the electronic device 205 .
  • the electronic device 205 may acquire image data using a camera.
  • the image data may include an electronic device 235 that the user wants to control.
  • the electronic device 205 may receive image data from the camera.
  • the electronic device 205 may identify the controllable electronic device 235 from the image data.
  • the electronic device 205 may identify all of the plurality of electronic devices, respectively.
  • the electronic device 205 may identify the controllable electronic device 235 based on the shape of the electronic device 210 included in the image data. For example, when the electronic device 205 includes a TV in the image data, the electronic device 205 may control the device included in the image as a TV based on the shape of the electronic device 210 included in the image data. It can be identified as an electronic device.
  • the electronic device 205 may identify a manufacturer for more accurate control of the controllable electronic device 210 included in the image data. For example, when the image data includes TV B produced by manufacturer A, the electronic device 205 may identify the TV B and manufacturer A that produced TV B as the controllable electronic device 235 . The electronic device 205 may identify the manufacturer of the electronic device 235 using the shape of the electronic device 235 or a logo displayed on the surface of the electronic device 235 .
  • the controllable electronic device 235 may be registered in advance in the electronic device.
  • the user may register the controllable electronic device 235 in the electronic device 205 in advance.
  • the electronic device 205 may identify the pre-registered electronic device 235 as the controllable electronic device 235 in the image data.
  • the pre-registered identification of the electronic device 235 may be performed based on at least one of a type and a manufacturer of the electronic device 235 .
  • the electronic device 205 may output the augmented reality contents 215 and 220 generated based on the image data through the display for manipulation of the identified electronic device 235 .
  • the augmented reality content may include content corresponding to the identified controllable electronic device 235 .
  • the augmented reality contents 215 and 220 may include a channel change button and a volume control button.
  • the present invention is not limited thereto, and various augmented reality contents may be output according to the identified controllable electronic device.
  • the electronic device 205 may output augmented reality content generated based on the image data for manipulation of the identified electronic devices through a display.
  • the augmented reality content may include content corresponding to each electronic device.
  • the augmented reality content may include a channel change button of the TV, a volume control button, and a temperature control button of the air conditioner.
  • the present invention is not limited thereto, and various augmented reality contents may be output according to the identified controllable electronic devices.
  • the user may input a user command for the controllable electronic device 235 through the augmented reality contents 215 and 220 .
  • the electronic device 205 may receive a user command for manipulating the electronic device 235 through a user input for the augmented reality contents 215 and 220 .
  • the electronic device 205 may output image data through the display without separate augmented reality contents 215 and 220 .
  • the user may input a user command for the electronic device 235 through the image displayed on the display.
  • the user may input a user command for turning on/off the electronic device 235 by touching the electronic device 210 displayed on the display.
  • the user may input a user command for the controllable electronic device 235 included in the image data by using a physical button mounted on the electronic device 205 .
  • the image data includes a controllable TV
  • the user may input a user command for adjusting the volume of the TV by using a volume button mounted on the electronic device 205 .
  • the electronic device 205 may receive a user command for manipulating the electronic device 235 through a user input for image data or a user input through a physical button of the electronic device 205 .
  • the electronic device 205 may receive a user command for operating each electronic device through a user input.
  • the electronic device 205 may transmit an infrared signal including the received user command by using the infrared light emitting device included in the 3D sensing module.
  • the infrared light emitting element included in the 3D sensing module is an element emitting an infrared signal for distance measurement, but since it uses the same wavelength band as the infrared communication module, it can be used for infrared communication.
  • the electronic device 205 may transmit infrared signals including a user command corresponding to each electronic device using the infrared light emitting device.
  • the 3D sensing module may include a plurality of infrared light emitting devices, and infrared signals including different user commands may be simultaneously transmitted using the plurality of light emitting devices.
  • the electronic device 205 and the method for controlling the electronic device 235 do not require a separate infrared communication module by controlling the electronic device 235 using a 3D sensing module mounted on the electronic device 205, the mounting It is possible to save space and lower the cost in the production of the electronic device 205 .
  • the standard of the infrared signal that can be received by the electronic device 235 controllable by the infrared signal may be predetermined.
  • the electronic device 205 may identify at least one of the controllable electronic device 235 and the manufacturer of the electronic device 235 from the image data, and may correspond to a predetermined standard based on the identified electronic device 235 and the manufacturer. Infrared signals can be transmitted.
  • the predetermined standard may be a National Electrical (NEC) standard.
  • the electronic device 205 may measure a distance between the controllable electronic device 235 identified in the image data and the 3D sensing module by using the 3D sensing module.
  • the electronic device 205 may determine the intensity of the infrared signal to be transmitted based on the measured distance.
  • the electronic device 205 may determine the intensity of the infrared signal to be stronger as the measured distance is greater, and may determine the intensity of the infrared signal to be weaker as the measured distance is shorter.
  • the electronic device 205 may determine the intensity of the infrared signal by determining the intensity of the current flowing through the infrared light emitting device.
  • the electronic device 205 may measure all distances between each electronic device and the 3D sensing module. The electronic device 205 may determine the intensity of each infrared signal including a user command for controlling each electronic device based on the measured distance. The electronic device 205 may transmit an infrared signal based on the determined intensity of the infrared signal. Control of a plurality of electronic devices will be described in detail below with reference to FIG. 5 .
  • the 3D sensing module may include a plurality of light emitting devices.
  • a plurality of infrared signals may be simultaneously transmitted using a plurality of light emitting devices.
  • the electronic device 205 may determine the intensity of each infrared signal by determining a current flowing through each infrared light emitting device that transmits the infrared signal.
  • the electronic device 205 may transmit each infrared signal based on the determined intensity of the infrared signal. Accordingly, the electronic device 205 may minimize power consumption when transmitting an infrared signal and increase the accuracy of controlling the electronic device 235 .
  • the plurality of light emitting devices included in the 3D sensing module may be controlled in groups by forming a group including at least one infrared light emitting device. For example, when the 3D sensing module includes 100 light emitting devices, the 3D sensing module may be divided into a total of 10 groups including 10 infrared light emitting devices and controlled in units of groups. In the case of group-based control, one group may transmit one infrared signal at the same time. When a plurality of infrared signals are simultaneously transmitted using the 3D sensing module, infrared signals corresponding to the number of groups may be transmitted.
  • the electronic device 205 may determine the intensity of the transmitted infrared signal by determining the number of groups that transmit the infrared signal. The electronic device 205 measures the distance to the controllable electronic device 235 and determines that more groups of infrared light emitting devices transmit an infrared signal as the measured distance is greater, and the smaller the measured distance is, the smaller the group is. It may be determined that the infrared light emitting devices transmit an infrared signal.
  • the electronic device 205 may determine the intensity of the transmitted infrared signal by determining the number of groups transmitting each infrared signal. For example, when the first infrared signal and the second infrared signal are transmitted using the 3D sensing module, the electronic device 205 determines the number of groups transmitting the first infrared signal to determine the intensity of the first infrared signal and determining the number of groups transmitting the second infrared signal to determine the intensity of the second infrared signal. The intensity of the first infrared signal and the second infrared signal may be determined based on a distance between a user command included in each infrared signal and a corresponding electronic device.
  • the 3D sensing module may be a Time of Flight (ToF) sensor.
  • the 3D sensing module may include a transmitter including infrared light emitting elements and a receiver in which an infrared signal emitted from the transmitter is reflected and received.
  • the transmitter may be a Vertical Cavity Surface Emitting Laser (VCSEL).
  • VCSEL Vertical Cavity Surface Emitting Laser
  • FIG. 3 is a flowchart illustrating a method for controlling an electronic device according to an exemplary embodiment.
  • an electronic device eg, the electronic device 101 of FIG. 1
  • a 3D sensing module eg, the 3D sensing module 181 of FIG. 1
  • Electronic devices can be controlled without a short-distance communication module or infrared communication module.
  • the electronic device may acquire image data using a camera of the electronic device.
  • the camera may be a camera that acquires RGB image data.
  • the electronic device may identify a controllable electronic device from the acquired image data.
  • the electronic device may identify all of the plurality of electronic devices, respectively.
  • the controllable electronic device may be registered in advance in the electronic device.
  • the electronic device may identify the pre-registered electronic device as a controllable electronic device in the image data.
  • the electronic device may identify at least one of a controllable electronic device included in the image data and a manufacturer of the electronic device.
  • the electronic device may output augmented reality content generated based on image data for manipulation of the identified electronic device.
  • the augmented reality content may correspond to the identified controllable electronic device.
  • the augmented reality content may include a channel change button and a volume control button.
  • the electronic device may output augmented reality content generated based on the image data for manipulation of each electronic device.
  • the augmented reality content may include content corresponding to each of the identified controllable electronic devices.
  • the user may input a user command for the controllable electronic device through the augmented reality content.
  • the user may input a channel switching command for the TV by touching a TV channel switching button included in the augmented reality content.
  • the electronic device may output image data through the display without separate augmented reality content.
  • the user may input a user command for the electronic device through the image displayed on the display.
  • the user may input a user command for turning on/off the electronic device by touching the electronic device displayed on the display.
  • the user may input a user command for the controllable electronic device included in the image data by using a physical button mounted on the electronic device.
  • the electronic device may receive a user command for manipulating the electronic device through a user input for augmented reality content.
  • the electronic device may receive a user command for operating the electronic device through a user input for the image data or a user input through a physical button of the electronic device.
  • the electronic device When a plurality of controllable electronic devices are identified in the image data, the electronic device operates each electronic device through a user input for augmented reality content, a user input for image data, or a user input through a physical button of the electronic device. You can receive user commands for
  • the electronic device may transmit an infrared signal including a received user command using an infrared light emitting device included in the 3D sensing module.
  • the electronic device may transmit a plurality of infrared signals corresponding to the plurality of electronic devices.
  • the 3D sensing module includes a plurality of infrared light emitting devices, and the electronic device uses the plurality of light emitting devices included in the 3D sensing module for each infrared signal including a user command corresponding to each electronic device. can be transmitted at the same time.
  • the standard of the infrared signal that can be received by the electronic device controllable by the infrared signal may be predetermined.
  • the electronic device may identify at least one of a controllable electronic device and a manufacturer of the electronic device from the image data, and may transmit an infrared signal corresponding to a predetermined standard based on the identified electronic device and the manufacturer.
  • the predetermined standard may be a National Electrical (NEC) standard.
  • FIG. 4 is a flowchart illustrating a process of determining the intensity of an infrared signal by a method for controlling an electronic device according to an embodiment.
  • the electronic device eg, the electronic device 101 of FIG. 1 .
  • the signal strength can be determined.
  • the electronic device can measure the distance between the electronic device identified in the image data and the 3D sensing module using the 3D sensing module. have.
  • the electronic device may measure all distances between each electronic device and the 3D sensing module.
  • the electronic device may determine the intensity of the infrared signal to be transmitted based on the measured distance.
  • the electronic device may determine the intensity of the infrared signal to be stronger as the measured distance is greater, and may determine the intensity of the infrared signal to be weaker as the measured distance is shorter.
  • the electronic device may determine the intensity of the infrared signal by determining the intensity of the current flowing through the infrared light emitting device.
  • the electronic device uses a plurality of light emitting devices included in the 3D sensing module for each infrared signal including a user command corresponding to each electronic device as in step 325 . can be transmitted at the same time.
  • the electronic device determines a current flowing in each infrared light emitting device that transmits an infrared signal based on the distance between the plurality of electronic devices and the 3D sensing module measured in step 405 , in step 325 . ) to determine the intensity of each infrared signal to be transmitted.
  • the plurality of light emitting devices included in the 3D sensing module may be controlled in units of groups by forming a group including at least one infrared light emitting device as described with reference to FIG. 1 .
  • the electronic device transmits in step 325 by determining the number of groups transmitting each infrared signal based on the distance between the plurality of electronic devices and the 3D sensing module measured in step 405 . It is possible to determine the intensity of each infrared signal to be
  • the electronic device may transmit each infrared signal based on the determined intensity of the infrared signal. Accordingly, the electronic device can minimize power consumption when transmitting an infrared signal and increase the accuracy of electronic device control.
  • a method of controlling an electronic device using an electronic device includes: acquiring image data using a camera (eg, the camera module 180 of FIG. 1 ); : Identifying the electronic device 235 of FIG. 2 ), outputting image data through a display (eg, the display module 160 of FIG. 1 ) for manipulation of the identified electronic device, and adding image data to the output image data
  • the method may include receiving a user command for manipulation of the electronic device through a user input to the included electronic device, and transmitting an infrared signal including the user command using an infrared light emitting device.
  • the outputting of the image data includes outputting, through a display, augmented reality content (eg, augmented reality content 215 and 220 of FIG. 2 ) generated based on the image data for manipulation of the identified electronic device. and receiving the user command may include receiving a user command for operating the electronic device through a user input for augmented reality content.
  • augmented reality content eg, augmented reality content 215 and 220 of FIG. 2
  • a method includes measuring a distance between an electronic device and a 3D sensing module using a 3D sensing module (eg, the 3D sensing module 181 of FIG. 1 ), and an infrared signal based on the measured distance It may further include the step of determining the strength of.
  • a 3D sensing module eg, the 3D sensing module 181 of FIG. 1
  • determining the intensity of the infrared signal when the measured distance is closer than the first distance, determining the intensity of the infrared signal to be weaker than the intensity of the signal corresponding to the first distance, and when the measured distance is greater than the first distance , determining the intensity of the infrared signal to be stronger than the intensity of the signal corresponding to the first distance.
  • the determining of the intensity of the infrared signal may include determining the intensity of the infrared signal by determining the intensity of a current flowing through the infrared light emitting device.
  • the step of outputting the augmented reality content through the display may include a first electronic device (eg, the first electronic device 525 of FIG. 5 ) and a second electronic device (eg, the second electronic device 530 of FIG. 5 ) in the image data. )) is identified, outputting augmented reality content (eg, augmented reality content 510, 515 in FIG. 5) for each manipulation of the first electronic device and the second electronic device through a display,
  • the receiving of the user command may include a user command for operating each of the first electronic device and the second electronic device through a user input for the augmented reality content for operating the first electronic device and the second electronic device, respectively. and transmitting the infrared signal, transmitting a first infrared signal including a user command for the first electronic device and a second infrared signal including a user command for the second electronic device It can include actions.
  • the 3D sensing module may include a plurality of infrared light emitting devices, and the plurality of infrared light emitting devices may be controlled in groups by forming groups including at least one infrared light emitting device.
  • the infrared light emitting device of the first group among the groups may transmit a first infrared signal
  • the infrared light emitting device of the second group of the groups may transmit the second infrared signal
  • the determining of the intensity of the infrared signal may include determining the number of groups for transmitting the first infrared signal to determine the intensity of the first infrared signal and determining the number of groups for transmitting the second infrared signal to determine the number of groups for transmitting the second infrared signal. It may include determining the strength of the signal.
  • FIG. 5 is a diagram for explaining a process of controlling a plurality of electronic devices by an electronic device and method for controlling an electronic device according to an exemplary embodiment.
  • a controllable first electronic device 525 a controllable second electronic device 530 , and augmented reality content including the first electronic device 525 and the second electronic device 530 are output.
  • An electronic device 205 eg, the electronic device 101 of FIG. 1 .
  • the user of the electronic device 205 may photograph the electronic devices to be controlled with the camera of the electronic device 205 .
  • the electronic device 205 may receive image data from the camera.
  • the electronic device 205 may identify a controllable electronic device from the received image data. As shown in FIG. 5 , when the controllable first electronic device 525 and the second electronic device 530 are included in the image data, the electronic device 205 may identify both devices.
  • the electronic device 205 may identify a manufacturer for more accurate control of the first electronic device 525 and the second electronic device 530 included in the image data.
  • the electronic device 205 may identify the manufacturer of the electronic device by using the shape of the electronic device included in the image data or a logo displayed on the surface of the electronic device.
  • the first electronic device 525 and the second electronic device 530 may be previously registered in the electronic device 205 by the user.
  • the electronic device 205 may identify the pre-registered first electronic device 525 and the second electronic device 530 based on at least one of a manufacturer and a shape of the electronic device included in the image data.
  • the electronic device 205 may output augmented reality content generated based on the image data through the display for manipulation of the identified electronic device.
  • the augmented reality content may include content corresponding to the identified first electronic device 525 and the second electronic device 530 .
  • the electronic device 205 performs a channel change button, a volume control button, and the identified air conditioner corresponding to the identified TV.
  • Augmented reality content including a corresponding temperature control button may be output through the display.
  • the present invention is not limited thereto, and various augmented reality contents may be output according to the identified controllable electronic device.
  • the electronic device 205 may receive user commands for the first electronic device 525 and the second electronic device 530 through a user input for augmented reality content.
  • the electronic device 205 may output image data through the display without separate augmented reality content.
  • the electronic device 205 may receive a user command through a user input to the first electronic device 525 and the second electronic device 530 of the image displayed on the display.
  • the electronic device 205 is a user who turns on/off the respective electronic devices 525 and 530 through a user input of touching the first electronic device 510 and the second electronic device 515 displayed on the display. command can be received.
  • the electronic device 205 When receiving the user command, the electronic device 205 sends the first infrared signal including the user command to the first electronic device 525 and the second electronic device 530 using the infrared light emitting device included in the 3D sensing module.
  • a second infrared signal including a user command may be transmitted.
  • the first infrared signal and the second infrared signal may be sequentially transmitted according to an input order.
  • the 3D sensing module may include a plurality of infrared light emitting devices, and the first infrared signal and the second infrared signal may be simultaneously transmitted using the plurality of light emitting devices.
  • the first infrared signal may be transmitted using one of the plurality of infrared light emitting devices
  • the second infrared signal may be transmitted using the other one of the plurality of infrared light emitting devices.
  • the plurality of light emitting devices included in the 3D sensing module may be controlled in a group unit by forming a group.
  • the first infrared signal is transmitted by the first group of infrared light emitting elements among the formed groups
  • the second infrared signal is transmitted to the second group of infrared light emitting elements among the formed groups.
  • the electronic device 205 may measure the distance between the 3D sensing module and the first electronic device 525 and the distance between the 3D sensing module and the second electronic device 530 using the 3D sensing module before transmitting the infrared signal. .
  • the electronic device 205 may determine the intensity of the first infrared signal and the intensity of the second infrared signal based on the measured distance.
  • the electronic device 205 may determine the intensity of the infrared signal to be stronger as the measured distance is greater, and may determine the intensity of the infrared signal to be weaker as the measured distance is shorter, in order to accurately transmit the signal and save power consumption.
  • the electronic device 205 determines the intensity of the first infrared signal and the intensity of the second infrared signal by determining the current flowing through the infrared light emitting device transmitting the first infrared signal and the current flowing through the infrared light emitting device transmitting the second infrared signal. can decide When the plurality of light emitting devices included in the 3D sensing module are controlled in units of groups, the electronic device 205 receives the current flowing through the infrared light emitting devices included in the first group that transmits the first infrared signal and the second infrared signal. The intensity of the first infrared signal and the intensity of the second infrared signal may be determined by determining the current flowing through the infrared light emitting devices included in the second group to be transmitted.
  • the electronic device 205 may determine the intensity of the transmitted infrared signal by determining the number of groups that transmit the infrared signal as well as determining the current flowing through the infrared light emitting device that transmits the infrared signal.
  • the electronic device 205 transmits the first infrared signal when the measured distance between the first electronic device 525 and the 3D sensing module is greater than the measured distance between the second electronic device 530 and the 3D sensing module may be determined to be greater than the number of groups transmitting the second infrared signal.
  • the first infrared signal is transmitted using three groups of infrared light emitting devices. and transmit the second infrared signal using two infrared light emitting device groups.
  • FIG. 6 is a flowchart illustrating a detailed process of determining the intensity of an infrared signal by a method for controlling an electronic device according to an embodiment.
  • the electronic device eg, the electronic device 101 of FIG. 1 . recognizes the number of control target electronic devices that the user wants to control through a user input, and measures the distance between each electronic device and the electronic device. to determine the intensity of the infrared signal to be transmitted.
  • the electronic device may recognize a control target electronic device that the user wants to control through a user input based on the user command for manipulation of the electronic device received in operation 320 .
  • the electronic device transmits the first electronic device 525 included in the user input.
  • the ON/OFF command for the ON/OFF command and the ON/OFF command for the second electronic device 530 may be recognized, and the first electronic device 525 and the second electronic device 530 may be recognized as control target electronic devices.
  • the electronic device may determine whether there are two or more control target electronic devices. When there are two or more electronic devices to be controlled, the electronic device may switch to the multi-control mode and perform a process for transmitting infrared signals to the plurality of electronic devices in step 645 .
  • the multiple control mode will be described below with reference to FIGS. 7 and 8 .
  • the electronic device may measure a distance between the electronic device to be controlled and the 3D sensing module using the 3D sensing module in step 615 .
  • the electronic device may determine the intensity of an infrared signal to be transmitted to the control target electronic device by comparing the measured distance with at least one threshold value.
  • the at least one threshold value may be predetermined or adaptively determined based on a measured distance.
  • the electronic device may compare the measured distance with the first threshold value. When the measured distance is equal to or less than the first threshold value, in step 625 , the electronic device may determine the intensity of the current flowing through the infrared light emitting device transmitting the infrared signal as the first step.
  • the electronic device may compare the measured distance with the second threshold value.
  • the second threshold value may be greater than the first threshold value.
  • the electronic device may determine the intensity of the current flowing through the infrared light emitting device transmitting the infrared signal as the second step.
  • the second threshold value may be greater than the first threshold value, and the intensity of the current in the second stage may be greater than the intensity of the current in the first stage.
  • the electronic device may determine the intensity of the current flowing through the infrared light emitting device transmitting the infrared signal as the third step.
  • the intensity of the current of the third stage may be greater than the intensity of the current of the second stage.
  • the electronic device sets the intensity of the current flowing through the infrared light emitting device to the second step.
  • the first threshold value and the second threshold value are only an example, and one or more threshold values may be determined as necessary.
  • the intensity of the infrared signal may be determined based on a ratio between the threshold value and the measured distance. For example, when the measured distance to the control target electronic device is 1 m and the threshold value is 2 m, the electronic device may determine the current strength as 50% of the maximum current strength.
  • the electronic device may transmit the infrared signal including the user command according to the determined intensity of the current.
  • FIG. 7 is a flowchart illustrating a multiple control mode according to an embodiment.
  • the electronic device determines the intensity of an infrared signal for each electronic device to be controlled and an infrared signal according to the determined intensity. can be transmitted.
  • step 610 of FIG. 6 when there are two or more control target electronic devices recognized from a user command, the electronic device may switch to a multi-control mode in step 645 .
  • the electronic device may determine an infrared light emitting device group to which an infrared signal corresponding to each control target electronic device is transmitted with respect to the recognized control target electronic devices.
  • the plurality of light emitting devices included in the 3D sensing module may be controlled in units of groups, and each group may be controlled independently. By determining the intensity of the current flowing in each group, the intensity of the transmitted infrared signal may be determined.
  • the first group is determined as an infrared light emitting device group to transmit an infrared signal for the first electronic device
  • the second electronic device may be determined as a group of infrared light emitting devices to transmit an infrared signal to the electronic device.
  • the electronic device may measure a distance to each recognized electronic device to be controlled using the 3D sensing module.
  • the electronic device may determine the intensity of the current flowing in each of the infrared light emitting device groups determined in step 705 based on the distance measured between each electronic device to be controlled and the 3D sensing module. have.
  • the electronic device may determine whether the measured distance to one control target electronic device is equal to or less than a first threshold value. When the measured distance is equal to or less than the first threshold value, in step 720 , the electronic device may determine the intensity of the current flowing through the infrared light emitting device group corresponding to the corresponding control target electronic device as the first step.
  • the electronic device may determine whether the measured distance to the corresponding control target electronic device is equal to or less than the second threshold value.
  • the electronic device may determine the intensity of the current flowing through the infrared light emitting device group corresponding to the corresponding control target electronic device as the second step.
  • the second threshold value may be greater than the first threshold value, and the intensity of the current in the second stage may be greater than the intensity of the current in the first stage.
  • the electronic device may determine the intensity of the current flowing through the infrared light emitting device group corresponding to the corresponding control target electronic device as the third step.
  • the intensity of the current of the third stage may be greater than the intensity of the current of the second stage.
  • the electronic device may determine whether the intensity of the current has been determined for all infrared signals to be transmitted. In step 745 , when the intensity of current is not determined for all infrared signals, the electronic device selects the next electronic device to be controlled and connects with the next electronic device to be controlled based on the measured distance to the next electronic device to be controlled. The intensity of the current flowing through the corresponding group of infrared light emitting devices may be determined.
  • the electronic device determines the intensity of the current flowing through the infrared light emitting device group that transmits the infrared signal for the first electronic device and the second electronic device. It may be determined whether the intensity of the current flowing through the group of infrared light emitting devices that transmits the infrared signal to the device is all determined.
  • the electronic device may repeat the corresponding process for the second electronic device. The electronic device may perform steps 715 to 735 for all control target electronic devices.
  • the electronic device performs step 715 and the intensity of the current flowing through the group of infrared light emitting devices that transmits the infrared signal for the first electronic device through step 720 may be determined as the first step.
  • the electronic device selects the second electronic device in step 745 and steps 715 and 725 . ) and step 730, the intensity of the current flowing through the group of infrared light emitting devices that transmits the infrared signal to the second electronic device may be determined as the second step.
  • the electronic device may transmit an infrared signal with a current strength determined by using the infrared light emitting device of a group corresponding to each control target electronic device.
  • FIG. 8 is a flowchart illustrating a multiple control mode according to another embodiment.
  • the electronic device determines the number of infrared light emitting device groups to transmit infrared signals for each electronic device to be controlled.
  • An infrared signal may be transmitted using the determined group of infrared light emitting devices.
  • step 610 of FIG. 6 when there are two or more control target electronic devices recognized from a user command, the electronic device may switch to a multi-control mode in step 645 .
  • the electronic device may measure a distance to each recognized electronic device to be controlled using the 3D sensing module.
  • the electronic device may determine the number of infrared light emitting device groups to transmit infrared signals to each control target electronic device based on the measured distance.
  • the electronic device may determine whether a measured distance to one control target electronic device is equal to or less than a first threshold value. When the measured distance is equal to or less than the first threshold value, in operation 815 , the electronic device may determine one group of infrared light emitting devices through which an infrared signal corresponding to the corresponding control target electronic device is transmitted.
  • the electronic device may determine whether the measured distance to the corresponding control target electronic device is less than or equal to the second threshold value.
  • the electronic device may determine two groups of infrared light emitting devices to which an infrared signal corresponding to the corresponding control target electronic device is transmitted.
  • the second threshold value may be greater than the first threshold value.
  • the electronic device may determine a group of three infrared light emitting devices to which an infrared signal corresponding to the corresponding control target electronic device is transmitted.
  • the number of one, two, and three infrared light emitting element groups is only an example, and the number of infrared light emitting element groups determined in step 825 is greater than the number of infrared light emitting element groups determined in step 815 . may be determined, and the number of infrared light emitting device groups determined in step 830 may be greater than the number of infrared light emitting device groups determined in step 825 .
  • the electronic device may determine whether at least one infrared light emitting device group for all recognized control target electronic devices has been determined. If there is a control target electronic device for which the infrared light emitting element group is not determined, in step 840, the electronic device selects the next control target electronic device and based on the measured distance to the next control target electronic device At least one infrared light emitting device group corresponding to the device may be determined.
  • the electronic device transmits an infrared signal to the first electronic device and an infrared light emitting device group for transmitting an infrared signal to the second electronic device It can be determined whether the group of infrared light emitting devices transmitting the .
  • the electronic device selects the second electronic device in step 840 and transmits the infrared signal to the second electronic device through steps 810 to 830.
  • a group of infrared light emitting devices can be determined.
  • the electronic device When the measured distance to the first electronic device is 0.8 m, the measured distance to the second electronic device is 1.5 m, the first threshold value is 1 m, and the second threshold value is 2 m, the electronic device performs step 810 And through step 815, it is possible to determine one group of infrared light emitting devices for transmitting an infrared signal to the first electronic device.
  • the electronic device selects the second electronic device in step 840 and in steps 810 and 820 . And through the process of step 825 , it is possible to determine two groups of infrared light emitting devices for transmitting an infrared signal to the second electronic device.
  • the electronic device may transmit infrared signals including a user command for controlling the first electronic device or the second electronic device using the determined group of infrared light emitting devices.
  • FIG. 9 is a block diagram illustrating a 3D sensing module included in the electronic device 205 according to an exemplary embodiment.
  • the 3D sensing module 181 includes a transmitter 905 including infrared light emitting devices 915 and a driver 920 , and a receiver 910 including a lens assembly and a light receiving sensor 930 . can do.
  • the 3D sensing module 181 may acquire a distance to the subject and an image of the subject by using a Time of Flight (ToF) measurement method.
  • the receiver 910 may receive an infrared signal that emits an infrared signal using the infrared light emitting device included in the transmitter 905 and is reflected back to the subject.
  • the distance to the subject may be derived from the difference between the time the transmitter 905 emits the infrared signal and the time the receiver 910 receives the infrared signal.
  • the infrared light emitting device included in the 3D sensing module 181 is a device emitting an infrared signal for distance measurement, but since it uses the same wavelength band as the infrared communication module, it can be used for infrared communication.
  • the electronic device 205 eg, the electronic device 101 of FIG. 1
  • the electronic device 205 does not require a separate infrared communication module or a short-range communication module, and It is possible to reduce the volume occupied by the communication module in the device 205 .
  • the transmitter 905 may include a plurality of infrared light emitting elements 915 for transmitting an infrared signal.
  • the transmitter 905 may be a Vertical Cavity Surface Emitting Laser (VCSEL).
  • VCSEL Vertical Cavity Surface Emitting Laser
  • the transmitter 905 may include a driver 920 , and the infrared light emitting elements 915 may be driven by the driver 920 .
  • the driver 920 the plurality of infrared light emitting devices 915 may be controlled on a group basis by forming a group including at least one infrared light emitting device, and each group may be independently controlled. In one embodiment, each group may include a different number of infrared light emitting devices.
  • the receiver 910 may include a lens assembly 925 for receiving an infrared signal.
  • Lens assembly 925 may include one or more lenses.
  • the receiver 910 may further include a light receiving sensor 930 for sensing an infrared signal. The infrared signal passing through the lens assembly may be sensed by the light receiving sensor 930 . The sensed infrared signal may be transmitted to the processor of the electronic device 205 and used to calculate the distance and determine the intensity of the infrared signal including a user command.
  • FIG. 10 is a diagram for explaining an operation performed by a 3D sensing module according to an embodiment.
  • the transmitter 905 of the 3D sensing module 181 including a plurality of infrared light emitting devices 1005 is shown.
  • the transmitter 905 may be a Big Cell (VCSEL).
  • the electronic device 205 (eg, the electronic device 101 of FIG. 1 ) operates the electronic device included in the image data acquired from the camera using the infrared light emitting device 1005 included in the 3D sensing module 181 . It is possible to transmit an infrared signal including a user command for For example, when one electronic device 235 is identified in the image data as shown in FIG. 2 , the infrared light emitting devices 1005 are input through augmented reality contents 220 and 215 for the identified electronic device 235 . An infrared signal including a user command (eg, volume control) may be transmitted.
  • a user command eg, volume control
  • the infrared light emitting devices 1005 included in the 3D sensing module 181 may be controlled in groups by forming groups 1010 , 1015 , 1020 , and 1025 including at least one infrared light emitting device 1005 .
  • each group is formed to include one infrared light emitting element 1005 so that each of the infrared light emitting elements 1005 can be controlled independently.
  • the infrared light emitting devices 1005 included in the 3D sensing module 181 may be divided into four groups 1010 , 1015 , 1020 , and 1025 and controlled in units of groups.
  • the infrared light emitting devices 1005 of the first group 1010 transmit a first infrared signal
  • the infrared light emitting devices 1005 of the second group 1015 transmit a second infrared signal
  • the third The infrared light emitting devices 1005 of the group 1020 may transmit a third infrared signal
  • the infrared light emitting elements 1005 of the fourth group 1025 may transmit a fourth infrared signal.
  • each group can be controlled independently of each other, the same or different signals can be transmitted simultaneously.
  • the electronic device 205 controls the first electronic device 525 .
  • a user command for manipulation and a user command for manipulation of the second electronic device 530 may be simultaneously received, and the electronic device 205 uses one of the first group 1010 to the fourth group 1025 .
  • Transmitting an infrared signal including a user command for the first electronic device 525, and using another one of the first group 1010 to the fourth group 1025, the user command for the second electronic device 530 Infrared signals including
  • Formation of the group may be performed by hardware or software.
  • the driver 920 and the four groups 1010, 1015, 1020, and 1025 correspond to each group. It can be connected by hardware using 4 channels.
  • the driver 920 and the infrared light emitting device 1005 have a channel corresponding to each infrared light emitting device 1005 connected in hardware, and four groups 1010 , 1015 , 1020 , 1025 are formed using software. and may be controlled to transmit a signal in a group unit.
  • the electronic device 205 may control the infrared light emitting device 1005 to transmit an infrared signal including a user command or to emit an infrared signal for distance measurement by using the driver 920 .
  • the electronic device 205 may measure the distance between the electronic device included in the image data and the 3D sensing module 181 using the 3D sensing module 181 before transmitting the infrared signal including the user command.
  • the driver 920 may emit an infrared signal for distance measurement using the infrared light emitting devices 1005 .
  • the intensity of the infrared signal including the user command may be adjusted based on the measured distance.
  • the electronic device 205 may determine the intensity of the infrared signal to be stronger as the measured distance is greater, and may determine the intensity of the infrared signal to be weaker as the measured distance is shorter, in order to accurately transmit the signal and save power consumption.
  • the intensity of the infrared signal may be determined by determining the intensity of a current flowing through the infrared light emitting device 1005 or determining the number of groups of the infrared light emitting devices 1005 transmitting one infrared signal. For example, when an infrared signal including a user command for operating the first electronic device is transmitted using the infrared light emitting devices 1005 of the first group 1010, the infrared light emitting devices of the first group 1010 ( 1005), the intensity of the infrared signal can be determined by determining the current flowing through them.
  • the electronic device 205 transmits the infrared signal using some of the first group 1010 to the fourth group 1025 to transmit an infrared signal including a user command for manipulating the first electronic device. By determining whether or not it is possible to determine the intensity of the infrared signal. For example, the electronic device 205 transmits the first infrared signal using the first group 1010 and the second group 1015 , and transmits the second infrared signal using the third group 1020 . can decide In another example, the intensity of the infrared signal may be determined by determining the number of groups to transmit the infrared signal and the intensity of a current flowing through each group.
  • the electronic device 205 can control a plurality of electronic devices from a distance at the same time, and can accurately and efficiently control the plurality of electronic devices.
  • FIG. 11 is a block diagram illustrating a configuration of an electronic device for controlling an electronic device according to an exemplary embodiment.
  • an electronic device 205 (eg, the electronic device 101 of FIG. 1 ) according to an embodiment includes a processor 1105 (eg, the processor 120 of FIG. 1 ), a camera 1110 ( Examples: including the camera module 180 of FIG. 1 ), a 3D sensing module 1115 (eg, the 3D sensing module 181 of FIG. 1 ), and a display 1120 (eg, the display module 160 of FIG. 1 ). can do.
  • a processor 1105 eg, the processor 120 of FIG. 1
  • a camera 1110 Examples: including the camera module 180 of FIG. 1
  • a 3D sensing module 1115 eg, the 3D sensing module 181 of FIG. 1
  • a display 1120 eg, the display module 160 of FIG. 1 .
  • the electronic device 205 having the 3D sensing module 1115 mounted thereon may be used to control the electronic device without mounting a short-range communication module or an infrared communication module.
  • the processor 1105 may acquire image data using the camera 1110 of the electronic device 205 .
  • the camera 1110 may be a camera 1110 that acquires RGB image data.
  • the processor 1105 may identify a controllable electronic device from the acquired image data. When a plurality of controllable electronic devices are included in the image data, the processor 1105 may identify all of the plurality of electronic devices, respectively.
  • the controllable electronic device may be registered in advance in the electronic device 205 .
  • the processor 1105 may identify the pre-registered electronic device as a controllable electronic device in the image data.
  • the processor 1105 may identify at least one of a controllable electronic device included in the image data and a manufacturer of the electronic device.
  • the processor 1105 may output augmented reality content generated based on image data for manipulation of the identified electronic device.
  • the augmented reality content may correspond to the identified controllable electronic device.
  • the augmented reality content may include a channel change button and a volume control button.
  • the processor 1105 may output augmented reality content generated based on the image data for manipulation of each electronic device.
  • the augmented reality content may include content corresponding to each of the identified controllable electronic devices.
  • the user may input a user command for the controllable electronic device through the augmented reality content.
  • the user may input a channel switching command for the TV by touching a TV channel switching button included in the augmented reality content.
  • the processor 1105 may output image data through the display 1120 without separate augmented reality content.
  • the user may input a user command for the electronic device through the image displayed on the display 1120 .
  • the user may input a user command for turning on/off the electronic device by touching the electronic device displayed on the display 1120 .
  • the user may input a user command for the controllable electronic device included in the image data by using a physical button mounted on the electronic device 205 .
  • the processor 1105 may receive a user command for manipulating the electronic device through a user input for augmented reality content.
  • the processor 1105 is configured to operate an electronic device through a user input for image data or a user input through a physical button of the electronic device 205 . It can receive user commands.
  • the processor 1105 may be configured to each A user command for operating the electronic device may be received.
  • the processor 1105 may transmit an infrared signal including a user command received using an infrared light emitting device included in the 3D sensing module 1115 .
  • the processor 1105 may transmit a plurality of infrared signals corresponding to the plurality of electronic devices.
  • the 3D sensing module 1115 includes a plurality of infrared light emitting devices, and the processor 1105 transmits each infrared signal including a user command corresponding to each electronic device to a plurality of light emitting devices included in the 3D sensing module 1115 .
  • the device can be used to transmit at the same time.
  • the standard of the infrared signal that can be received by the electronic device controllable by the infrared signal may be predetermined.
  • the processor 1105 may identify at least one of a controllable electronic device and a manufacturer of the electronic device from the image data, and may transmit an infrared signal corresponding to a predetermined standard based on the identified electronic device and the manufacturer.
  • the predetermined standard may be a National Electrical (NEC) standard.
  • the electronic device 205 includes a 3D sensing module (eg, the 3D sensing module 181 of FIG. 1 ) including an infrared light emitting device, and a camera (eg, the camera module 180 of FIG. 1 ) that acquires image data. )), a display (eg, the display module 160 of FIG. 1 ), and a processor (eg, the processor 120 of FIG.
  • a 3D sensing module eg, the 3D sensing module 181 of FIG. 1
  • a camera eg, the camera module 180 of FIG. 1
  • a display eg, the display module 160 of FIG. 1
  • a processor eg, the processor 120 of FIG.
  • the processor includes an operation of receiving image data obtained from a camera, image data An operation of identifying the controllable electronic device 235 in the , an operation of outputting image data through a display for manipulation of the identified electronic device 235 , and a user input of the electronic device 235 included in the output image data An operation of receiving a user command for manipulation of the electronic device through , and an operation of transmitting an infrared signal including a user command by using the infrared light emitting device may be performed.
  • the operation of outputting the image data includes outputting the augmented reality contents 215 and 220 generated based on the image data for manipulation of the identified electronic device 235 through a display, and receiving a user command.
  • an operation of receiving a user command for manipulating the electronic device 235 through a user input for the augmented reality contents 215 and 220 may be performed.
  • the processor may further perform an operation of measuring a distance between the electronic device 235 and the 3D sensing module using the 3D sensing module, and an operation of determining the intensity of an infrared signal based on the measured distance.
  • the operation of determining the intensity of the infrared signal includes determining the intensity of the infrared signal to be weaker than the intensity of the signal corresponding to the first distance when the measured distance is closer than the first distance, and when the measured distance is greater than the first distance , determining the intensity of the infrared signal to be stronger than the intensity of the signal corresponding to the first distance.
  • the operation of determining the intensity of the infrared signal may include the operation of determining the intensity of the infrared signal by determining the intensity of a current flowing through the infrared light emitting device.
  • the operation of outputting the augmented reality content through the display includes a first electronic device (eg, the first electronic device 525 of FIG. 5 ) and a second electronic device (eg, the second electronic device 530 of FIG. 5 ) from image data. )) is identified, outputting augmented reality content (eg, augmented reality content 510 and 515 in FIG.
  • the receiving of the command includes receiving a user command for operating each of the first electronic device and the second electronic device through a user input for augmented reality content for each manipulation of the first electronic device and the second electronic device and transmitting the infrared signal may include transmitting a first infrared signal including a user command to the first electronic device and a second infrared signal including a user command to the second electronic device.
  • the 3D sensing module may include a plurality of infrared light emitting devices, and the plurality of infrared light emitting devices may be controlled in groups by forming groups including at least one infrared light emitting device.
  • the infrared light emitting device of the first group among the groups may transmit a first infrared signal
  • the infrared light emitting device of the second group of the groups may transmit the second infrared signal
  • the operation of determining the intensity of the infrared signal includes the operation of determining the intensity of the first infrared signal by determining the number of groups transmitting the first infrared signal and the operation of determining the number of groups transmitting the second infrared signal to transmit the second infrared signal It may include an operation of determining the strength of the signal.
  • 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 an element from other elements in question, and may refer elements to other aspects (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 through an application store (eg Play StoreTM) or on two user devices ( It can be distributed (eg downloaded or uploaded) directly, 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.

Landscapes

  • Engineering & Computer Science (AREA)
  • General Engineering & Computer Science (AREA)
  • Theoretical Computer Science (AREA)
  • Physics & Mathematics (AREA)
  • General Physics & Mathematics (AREA)
  • Human Computer Interaction (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Computer Graphics (AREA)
  • Computer Hardware Design (AREA)
  • Software Systems (AREA)
  • Selective Calling Equipment (AREA)

Abstract

L'invention concerne un dispositif électronique et un procédé de commande d'un dispositif électronique. Un appareil électronique selon un mode de réalisation comprend : un module de détection en trois dimensions comprenant un élément émetteur de lumière infrarouge ; une caméra pour acquérir des données d'image ; un dispositif d'affichage ; et un processeur, le processeur exécutant les opérations consistant à : recevoir les données d'image acquises à partir de la caméra ; réaliser une opération d'identification d'un dispositif électronique pouvant être commandé dans les données d'image ; délivrer les données d'image à travers l'affichage afin de faire fonctionner le dispositif électronique identifié ; recevoir, par l'intermédiaire d'une entrée d'utilisateur pour le dispositif électronique inclus dans les données d'image délivrées, une commande d'utilisateur pour faire fonctionner le dispositif électronique ; et utiliser l'élément émetteur de lumière infrarouge pour transmettre un signal infrarouge comprenant une commande d'utilisateur.
PCT/KR2022/004019 2021-04-19 2022-03-23 Appareil électronique et procédé de commande d'un dispositif électronique WO2022225204A1 (fr)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
KR10-2021-0050375 2021-04-19
KR1020210050375A KR20220144119A (ko) 2021-04-19 2021-04-19 전자 기기 제어를 위한 전자 장치 및 방법

Publications (1)

Publication Number Publication Date
WO2022225204A1 true WO2022225204A1 (fr) 2022-10-27

Family

ID=83722394

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/KR2022/004019 WO2022225204A1 (fr) 2021-04-19 2022-03-23 Appareil électronique et procédé de commande d'un dispositif électronique

Country Status (2)

Country Link
KR (1) KR20220144119A (fr)
WO (1) WO2022225204A1 (fr)

Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007187346A (ja) * 2006-01-11 2007-07-26 Sharp Corp 電気機器及び空気調和機
KR100946673B1 (ko) * 2007-12-11 2010-03-12 한국전자통신연구원 디지털기기의 원격 제어 방법 및 시스템
KR20120005324A (ko) * 2010-07-08 2012-01-16 엘지전자 주식회사 이동 단말기의 전자기기 제어 장치 및 그 방법
US20160299735A1 (en) * 2013-03-13 2016-10-13 Google Inc. Methods, systems, and media for providing a remote control interface
KR20170001434A (ko) * 2015-06-26 2017-01-04 엘지전자 주식회사 복수의 디바이스에 대한 원격제어를 수행할 수 있는 이동 단말기, 및 이동 단말기 케이스

Patent Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
JP2007187346A (ja) * 2006-01-11 2007-07-26 Sharp Corp 電気機器及び空気調和機
KR100946673B1 (ko) * 2007-12-11 2010-03-12 한국전자통신연구원 디지털기기의 원격 제어 방법 및 시스템
KR20120005324A (ko) * 2010-07-08 2012-01-16 엘지전자 주식회사 이동 단말기의 전자기기 제어 장치 및 그 방법
US20160299735A1 (en) * 2013-03-13 2016-10-13 Google Inc. Methods, systems, and media for providing a remote control interface
KR20170001434A (ko) * 2015-06-26 2017-01-04 엘지전자 주식회사 복수의 디바이스에 대한 원격제어를 수행할 수 있는 이동 단말기, 및 이동 단말기 케이스

Also Published As

Publication number Publication date
KR20220144119A (ko) 2022-10-26

Similar Documents

Publication Publication Date Title
WO2022131549A1 (fr) Dispositif électronique et procédé de fonctionnement d'un dispositif électronique
WO2022059968A1 (fr) Dispositif électronique permettant de fournir un contenu de réalité augmentée et son procédé de fonctionnement
WO2023008854A1 (fr) Dispositif électronique comprenant un capteur optique intégré dans une unité d'affichage
WO2022097892A1 (fr) Dispositif électronique, et procédé de partage d'image de dispositif électronique
WO2022177343A1 (fr) Dispositif électronique de configuration de géorepérage et son procédé de fonctionnement
WO2022154440A1 (fr) Dispositif électronique de traitement de données audio, et procédé d'exploitation associé
WO2022158763A1 (fr) Dispositif électronique permettant d'établir une connexion de communication à un dispositif électronique externe et son procédé de fonctionnement
WO2022108283A1 (fr) Procédé de commande d'unité d'affichage extensible et dispositif électronique le prenant en charge
WO2022103062A1 (fr) Dispositif électronique comportant une antenne et un stylet
WO2022092718A1 (fr) Dispositif électronique et procédé de fonctionnement de dispositif électronique
WO2022225204A1 (fr) Appareil électronique et procédé de commande d'un dispositif électronique
WO2021261782A1 (fr) Dispositif électronique comprenant une pluralité d'antennes
WO2024053869A1 (fr) Dispositif électronique et son procédé de chargement
WO2023106640A1 (fr) Dispositif électronique, et procédé pour empêcher une reconnaissance erronée d'un geste dans un dispositif électronique
WO2024053886A1 (fr) Dispositif électronique et procédé de transmission de signal pour rétroaction
WO2024117501A1 (fr) Dispositif électronique de commande de puissance de transmission, et procédé de fonctionnement de dispositif électronique
WO2022173260A1 (fr) Procédé de commande de composant, et dispositif électronique le prenant en charge
WO2024117488A1 (fr) Dispositif électronique comprenant un dispositif piézoélectrique, et procédé de détection d'entrée tactile utilisant un dispositif piézoélectrique
WO2023146104A1 (fr) Procédé de fourniture de guide de recharge sans fil et dispositif électronique effectuant celui-ci
WO2024106749A1 (fr) Dispositif électronique, procédé d'identification d'une priorité de connexion et support de stockage non transitoire lisible par ordinateur
WO2023128219A1 (fr) Dispositif électronique et procédé de commande de connexions avec des dispositifs électroniques externes
WO2024005412A1 (fr) Dispositif électronique comprenant une antenne
WO2024117518A1 (fr) Dispositif électronique et procédé d'identification d'emplacement sur la base d'une pluralité de dispositifs électroniques externes
WO2023018065A1 (fr) Dispositif électronique comprenant une antenne
WO2023113370A1 (fr) Dispositif électronique permettant une communication de lan sans fil avec une pluralité d'appareils externes et procédé de fonctionnement du dispositif électronique

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 22791904

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 22791904

Country of ref document: EP

Kind code of ref document: A1