WO2023128219A1 - Dispositif électronique et procédé de commande de connexions avec des dispositifs électroniques externes - Google Patents

Dispositif électronique et procédé de commande de connexions avec des dispositifs électroniques externes Download PDF

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Publication number
WO2023128219A1
WO2023128219A1 PCT/KR2022/017161 KR2022017161W WO2023128219A1 WO 2023128219 A1 WO2023128219 A1 WO 2023128219A1 KR 2022017161 W KR2022017161 W KR 2022017161W WO 2023128219 A1 WO2023128219 A1 WO 2023128219A1
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Prior art keywords
electronic device
external electronic
protocol
processor
communication
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PCT/KR2022/017161
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English (en)
Korean (ko)
Inventor
박민식
문승현
김성준
Original Assignee
삼성전자 주식회사
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Priority claimed from KR1020220011823A external-priority patent/KR20230103785A/ko
Application filed by 삼성전자 주식회사 filed Critical 삼성전자 주식회사
Publication of WO2023128219A1 publication Critical patent/WO2023128219A1/fr

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    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3206Monitoring of events, devices or parameters that trigger a change in power modality
    • G06F1/3228Monitoring task completion, e.g. by use of idle timers, stop commands or wait commands
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F1/00Details not covered by groups G06F3/00 - G06F13/00 and G06F21/00
    • G06F1/26Power supply means, e.g. regulation thereof
    • G06F1/32Means for saving power
    • G06F1/3203Power management, i.e. event-based initiation of a power-saving mode
    • G06F1/3234Power saving characterised by the action undertaken
    • G06F1/3296Power saving characterised by the action undertaken by lowering the supply or operating voltage
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06FELECTRIC DIGITAL DATA PROCESSING
    • G06F13/00Interconnection of, or transfer of information or other signals between, memories, input/output devices or central processing units
    • G06F13/14Handling requests for interconnection or transfer

Definitions

  • the descriptions below relate to an electronic device and method for controlling a connection with external electronic devices.
  • Such an electronic device provides an interface capable of exchanging data in a cable-based wired manner such as a universal serial bus (USB).
  • USB universal serial bus
  • the electronic device may be connected to a greater number of external electronic devices than the USB ports configured in the electronic device through a USB hub device.
  • An electronic device may be connected to a plurality of external electronic devices through a USB hub.
  • the USB hub is composed of only one integrated circuit (eg, a host IC), and cannot independently change a protocol for USB communication of a plurality of external electronic devices connected to the USB hub.
  • a wire length between an electronic device and a plurality of external electronic devices is long, a lot of noise is generated, resulting in poor communication between the electronic device and the plurality of external electronic devices. Therefore, a method for solving this problem may be required.
  • An electronic device may include a memory configured to store instructions, an integrated circuit for universal serial bus (USB) communication, and a processor operatively connected to the memory and the integrated circuit.
  • the processor may be configured to change an operation mode for supplying power to the plurality of external electronic devices to a low power mode based on identifying a plurality of external electronic devices connected through a hub device.
  • the processor may be configured to identify a plurality of communication states for each of the plurality of external electronic devices in a state in which the operation mode is changed to the low power mode.
  • the processor may perform the first external electronic device based on a communication state of a first external electronic device among the plurality of external electronic devices satisfying a predefined condition among the plurality of communication states.
  • a protocol used for first USB communication between an external electronic device and the hub device may be configured to switch from a first protocol to a second protocol.
  • a method of an electronic device includes an operation of changing an operation mode for supplying power to a plurality of external electronic devices to a low power mode based on identifying a plurality of external electronic devices connected through a hub device.
  • the method may include identifying a plurality of communication states for each of the plurality of external electronic devices in a state in which the operation mode is changed to the low power mode.
  • the method may include the first external electronic device and the hub based on a communication state of a first external electronic device among the plurality of external electronic devices satisfying a predefined condition among the plurality of communication states. and converting a protocol used for first USB communication between devices from the first protocol to the second protocol.
  • a hub device includes a first integrated circuit connected to an electronic device based on universal serial bus (USB) communication, a plurality of second integrated circuits each connected to the first integrated circuit, and the and a processor operatively connected to the first integrated circuit and the plurality of second integrated circuits.
  • the processor transmits a first signal from a first external electronic device among the plurality of external electronic devices while a plurality of external electronic devices are respectively connected to the plurality of second integrated circuits based on the USB communication. It may be configured to receive through a third integrated circuit among the plurality of second integrated circuits, which is used for connection between the first external electronic device and the electronic device.
  • the processor may be configured to transmit the first signal to the electronic device through the first integrated circuit.
  • the processor may be configured to receive, from the electronic device, a second signal for switching a protocol used in a connection between the first external electronic device and the hub device from a first protocol to a second protocol.
  • the processor may be configured to switch the protocol from the first protocol to the second protocol through the third integrated circuit based on the second signal.
  • An external electronic device may include a memory configured to store instructions, a communication circuit for universal serial bus (USB) communication, and a processor operatively connected to the memory and the communication circuit.
  • the processor may be configured to identify an electronic device connected through a hub device.
  • the processor determines, from the hub device, between the external electronic device and the hub device in a state where the size of power supplied through the hub device controlled by the electronic device is equal to or less than a predefined level. It may be configured to receive a signal for switching a protocol used for USB communication from the first protocol to the second protocol.
  • the processor may be configured to switch the protocol from the first protocol to the second protocol based on the signal when the instructions are executed.
  • an electronic device may be connected 1:1 to a plurality of external electronic devices even through a hub device (eg, a USB hub).
  • the electronic device may independently change a protocol for USB communication between the hub device and a plurality of external electronic devices.
  • the electronic device may increase communication stability by flexibly changing a protocol for USB communication. Also, since the power supplied to the plurality of external electronic devices is set to a specified level or less, the load of the hub device may be reduced.
  • FIG. 1 is a block diagram of an electronic device in a network environment according to various embodiments.
  • FIG. 2 illustrates an example in which an electronic device according to various embodiments is connected to a plurality of external electronic devices through a hub device.
  • FIG. 3 is a simplified block diagram of an electronic device according to various embodiments.
  • FIG. 4 is a simplified block diagram of a hub device according to various embodiments.
  • FIG. 5 is a simplified block diagram of a first external electronic device according to various embodiments.
  • FIG. 6 illustrates electrical paths from an electronic device to a plurality of external electronic devices according to various embodiments of the present disclosure.
  • FIG. 7 is a flowchart illustrating an operation of an electronic device according to various embodiments.
  • FIG. 8 is a flowchart illustrating an operation of a hub device according to various embodiments.
  • FIG. 9 is a flowchart illustrating an operation of a first external electronic device according to various embodiments.
  • FIG. 10 is a signal flow diagram of an electronic device, a hub device, and a first external electronic device according to various embodiments.
  • FIG. 11 illustrates a structure of a function pin of a type-C USB interface according to various embodiments.
  • FIG. 12 is a flowchart illustrating another operation of an electronic device according to various embodiments.
  • 13 is a graph of a change in voltage according to a predefined condition according to various embodiments.
  • FIG. 14 is a diagram for explaining another operation of an electronic device according to various embodiments.
  • FIG. 1 is a block diagram of an electronic device in a network environment, 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 through a second network 199. It may communicate with at least one of the electronic device 104 or the server 108 through (eg, a long-distance wireless communication network). According to one embodiment, the electronic device 101 may communicate with the electronic device 104 through the server 108 .
  • the electronic device 101 includes a processor 120, a memory 130, an input module 150, an audio output module 155, a display module 160, an audio module 170, a sensor module ( 176), interface 177, connection terminal 178, haptic module 179, camera module 180, power management module 188, battery 189, communication module 190, subscriber identification module 196 , or the antenna module 197 may be included.
  • at least one of these components eg, the connection terminal 178) may be omitted or one or more other components may be added.
  • some of these components eg, sensor module 176, camera module 180, or antenna module 197) are integrated into a single component (eg, display module 160). It can be.
  • the processor 120 for example, executes software (eg, the program 140) to cause at least one other component (eg, hardware or software component) of the electronic device 101 connected to the processor 120. It can control and perform various data processing or calculations. According to one embodiment, as at least part of data processing or operation, the processor 120 transfers instructions or data received from other components (e.g., sensor module 176 or communication module 190) to volatile memory 132. , processing commands or data stored in the volatile memory 132 , and storing resultant data in the non-volatile memory 134 .
  • software eg, the program 140
  • the processor 120 transfers instructions or data received from other components (e.g., sensor module 176 or communication module 190) to volatile memory 132. , processing commands or data stored in the volatile memory 132 , and storing resultant data in the non-volatile memory 134 .
  • the processor 120 may include a 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 ( NPU: neural processing unit (NPU), image signal processor, sensor hub processor, or communication processor).
  • a 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 ( NPU: neural processing unit (NPU), image signal processor, sensor hub processor, or communication processor.
  • NPU neural network processing unit
  • the secondary processor 123 may be implemented separately from or as part of the main processor 121 .
  • the secondary processor 123 may, for example, take the place of the main processor 121 while the main processor 121 is in an inactive (eg, sleep) state, or the main processor 121 is active (eg, running an application). ) state, 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 auxiliary processor 123 eg, image signal processor or communication processor
  • the auxiliary processor 123 may include a hardware structure specialized for processing an artificial intelligence model.
  • AI models can be created through machine learning. Such learning may be performed, for example, in the electronic device 101 itself where 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 foregoing, but is not limited to the foregoing examples.
  • the artificial intelligence model may include, in addition or alternatively, software structures in addition to hardware structures.
  • 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, program 140) and commands related thereto.
  • the memory 130 may include volatile memory 132 or 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 of the electronic device 101 (eg, a user).
  • 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 sound signals 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.
  • a receiver may be used to receive an incoming call. According to one embodiment, the receiver may be implemented separately from the speaker or as part of it.
  • the display module 160 may visually provide information to the outside of the electronic device 101 (eg, a user).
  • the display module 160 may include, for example, a display, a hologram device, or a projector and a control circuit for controlling the device.
  • the display module 160 may include a touch sensor set to detect a touch or a pressure sensor set to measure the intensity of force generated by the touch.
  • the audio module 170 may convert sound into an electrical signal or vice versa. According to one embodiment, the audio module 170 acquires sound through the input module 150, the sound output module 155, or an external electronic device connected directly or wirelessly to the electronic device 101 (eg: Sound may be output through the electronic device 102 (eg, a speaker or a headphone).
  • the audio module 170 acquires sound through the input module 150, the sound output module 155, or an external electronic device connected directly or wirelessly to the electronic device 101 (eg: Sound may be output through the electronic device 102 (eg, a speaker or a headphone).
  • 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 detected state. can do.
  • the sensor module 176 may include, for example, a gesture sensor, a gyro sensor, an air pressure sensor, a magnetic sensor, an acceleration sensor, a grip sensor, a proximity sensor, a color sensor, an IR (infrared) sensor, a bio sensor, It may include a temperature sensor, humidity sensor, or light sensor.
  • the interface 177 may support one or more designated protocols that may be used to directly or wirelessly connect the electronic device 101 to 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.
  • HDMI high definition multimedia interface
  • USB universal serial bus
  • SD card interface Secure Digital Card interface
  • audio interface audio interface
  • connection terminal 178 may include a connector through which the electronic device 101 may 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 electrical signals into mechanical stimuli (eg, vibration or motion) or electrical stimuli that a user may perceive through tactile or kinesthetic senses.
  • 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 one embodiment, the camera module 180 may include one or more lenses, image sensors, image signal processors, or flashes.
  • the power management module 188 may manage power supplied to the electronic device 101 .
  • the power management module 188 may be implemented as at least part of a power management integrated circuit (PMIC), for example.
  • PMIC power management integrated circuit
  • the battery 189 may supply power to at least one component of the electronic device 101 .
  • the 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). Establishment and communication through the established communication channel may be supported.
  • 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 wireless communication module, or a global navigation satellite system (GNSS) communication module) or a wired communication module 194 (eg, : 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 wireless communication module, or a global navigation satellite system (GNSS) communication module
  • GNSS global navigation satellite system
  • wired communication module 194 eg, : a local area network (LAN) communication module or a power line communication module.
  • a corresponding communication module 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 telecommunications network such as a computer network (eg, a LAN or a WAN).
  • a telecommunications network such as a computer network (eg, a LAN or a WAN).
  • These various types of communication modules may be integrated as one component (eg, a single chip) or implemented as a plurality of separate components (eg, multiple chips).
  • 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, NR access technology (new radio access technology).
  • NR access technologies include high-speed transmission of high-capacity data (enhanced mobile broadband (eMBB)), minimization of terminal power and access of multiple terminals (massive machine type communications (mMTC)), or high reliability and low latency (ultra-reliable and low latency (URLLC)).
  • eMBB enhanced mobile broadband
  • mMTC massive machine type communications
  • URLLC ultra-reliable and low latency
  • -latency communications can be supported.
  • the wireless communication module 192 may support a high frequency band (eg, mmWave band) to achieve a high data rate, for example.
  • the wireless communication module 192 uses various technologies for securing performance in a high frequency band, such as beamforming, massive multiple-input and multiple-output (MIMO), and full-dimensional multiplexing. Technologies such as input/output (FD-MIMO: full dimensional MIMO), array antenna, analog beam-forming, or large scale antenna may be supported.
  • the wireless communication module 192 may support various requirements defined for 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 is a peak data rate for eMBB realization (eg, 20 Gbps or more), a loss coverage for mMTC realization (eg, 164 dB or less), or a U-plane latency for URLLC realization (eg, Example: downlink (DL) and uplink (UL) each of 0.5 ms or less, or round trip 1 ms or less) may be supported.
  • eMBB peak data rate for eMBB realization
  • a loss coverage for mMTC realization eg, 164 dB or less
  • U-plane latency for URLLC realization eg, Example: downlink (DL) and uplink (UL) each of 0.5 ms or less, or round trip 1 ms or less
  • the antenna module 197 may transmit or receive signals or power to the outside (eg, an external electronic device).
  • the antenna module 197 may include an antenna including a radiator formed of a conductor or a conductive pattern formed on a substrate (eg, PCB).
  • 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 selected from the plurality of antennas by the communication module 190, for example. can be chosen 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) may be additionally formed as a part of the antenna module 197 in addition to the radiator.
  • RFIC radio frequency integrated circuit
  • the antenna module 197 may form a mmWave antenna module.
  • the mmWave antenna module includes a printed circuit board, an RFIC disposed on or adjacent to a first surface (eg, a lower surface) of the printed circuit board and capable of supporting a designated high frequency band (eg, mmWave band); and a plurality of antennas (eg, array antennas) disposed on or adjacent to a second surface (eg, a top surface or a side surface) 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)
  • signal e.g. commands or data
  • commands 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 part of operations executed in the electronic device 101 may be executed in one or more external electronic devices among the external electronic devices 102 , 104 , or 108 .
  • the electronic device 101 when the electronic device 101 needs to perform a certain function or service automatically or in response to a request from a user or another device, the electronic device 101 instead of executing the function or service by itself.
  • one or more external electronic devices may be requested to perform the function or at least part of the service.
  • One or more external electronic devices receiving 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 deliver the execution result to the electronic device 101 .
  • the electronic device 101 may provide the result as at least part of a response to the request as it is or additionally processed.
  • 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.
  • Server 108 may be an intelligent server using machine learning and/or neural networks. According to one embodiment, the external electronic device 104 or server 108 may be included in the second network 199 .
  • the electronic device 101 may be applied to intelligent services (eg, smart home, smart city, smart car, or health care) based on 5G communication technology and IoT-related technology.
  • an electronic device may perform universal serial bus (USB) communication with a plurality of external electronic devices.
  • An electronic device may perform USB communication with a plurality of external electronic devices through a hub device.
  • the electronic device may determine a protocol for USB communication between the hub device and a plurality of external electronic devices, and perform USB communication based on the determined protocol.
  • the hub device while the electronic device performs USB communication with the plurality of external electronic devices through the hub device, based on a communication state with a first external electronic device among the plurality of external electronic devices, the hub device And a protocol for USB communication between the first external electronic device may be determined, and based on the determined protocol, USB communication may be performed.
  • the operation of the electronic device according to the above-described embodiment may be described below.
  • an electronic device and/or an external electronic device described below may correspond to the electronic device 101 of FIG. 1 .
  • FIG. 2 illustrates an example in which an electronic device according to various embodiments is connected to a plurality of external electronic devices through a hub device.
  • an electronic device 210 may be connected to a plurality of external electronic devices 230 through a hub device 220 through USB communication.
  • the hub device 220 may be a device that allows a plurality of external electronic devices 230 supporting a USB interface to be connected to one USB port.
  • the electronic device 210 may be connected to the hub device 220 through USB communication.
  • the hub device 220 may be connected to each of the plurality of external electronic devices 230 through a plurality of USB communications.
  • the electronic device 210 may control each of a plurality of external electronic devices 230 connected through the hub device 220 .
  • the electronic device 210 may operate as a host USB device.
  • the plurality of external electronic devices 230 may operate as guest USB devices.
  • the electronic device 210 may be used to test a plurality of external electronic devices 230 connected through the hub device 220 .
  • the electronic device 210 may test the plurality of external electronic devices 230 through instructions stored in memory.
  • the electronic device 210 may test the plurality of external electronic devices 230 by executing a program stored in memory.
  • the electronic device 210 may identify at least one external electronic device that does not pass the test among the plurality of external electronic devices 230 by testing the plurality of external electronic devices 230 at once. can
  • the electronic device 210 may simultaneously transmit (or receive) data for a plurality of external electronic devices 230 through the hub device 220 .
  • the electronic device 210 may simultaneously transmit data for updating software stored in the plurality of external electronic devices 230 .
  • the electronic device 210 may simultaneously transmit data for identifying whether functions that can be performed by the plurality of external electronic devices 230 operate normally.
  • the electronic device 210 may simultaneously receive data indicating whether functions that can be performed by the plurality of external electronic devices 230 operate normally from the plurality of external electronic devices 230 .
  • the electronic device 210 may transmit (or receive) data for at least some of the plurality of external electronic devices 230 through the hub device 220 .
  • the electronic device 210 may independently transmit data for each of the plurality of external electronic devices 230 through the hub device 220 .
  • the electronic device 210 may transmit (or receive) data for a first external electronic device 231 among a plurality of external electronic devices 230 .
  • a plurality of USB communications may be used to connect the electronic device 210 , the hub device 220 , and the plurality of external electronic devices 230 to each other.
  • multiple types of USB ports may be used for multiple USB communications.
  • a type A (or type-A) USB port for the plurality of USB communications, a type B (or type-B) USB port, and a type C (or type-C) USB port may be used. .
  • the electronic device 210 may include an A-type USB port (or an A-type USB jack (receptacle)).
  • the hub device 220 may include an A-type USB port (or A-type USB jack).
  • the electronic device 210 and the hub device 220 may be connected through a cable having both A-type USB terminals (or A-type USB plugs).
  • the hub device 220 may include an A-type USB port.
  • the first external electronic device 231 may include a C-type USB port.
  • the hub device 220 and the first external electronic device 231 may be connected through a cable composed of an A-type USB terminal and a C-type USB terminal.
  • multiple protocols may be used for multiple USB communications.
  • one of a USB 1.1 standard protocol, a USB 2.0 standard protocol, and/or a USB 3.0 standard protocol may be used for the plurality of USB communications.
  • substandards of the above standards and/or standards subsequent to the above standards may be used for the plurality of USB communications.
  • the electronic device 210 may change a protocol for a plurality of USB communications between the hub device 220 and the plurality of external electronic devices 230 .
  • the electronic device 210 determines the hub device 220 and the plurality of external electronic devices 230 based on a plurality of communication states between the electronic device 210 and the plurality of external electronic devices 230 . ) can change the protocol for multiple USB communications between them.
  • the electronic device 210 connects the hub device 220 and the plurality of external electronic devices (230) based on information about the wire length between the electronic device 210 and the plurality of external electronic devices 230. 230) can change the protocol for a plurality of USB communications between them.
  • the electronic device 210 may change a protocol for USB communication between the electronic device 210 and the hub device 220 .
  • FIG. 3 is a simplified block diagram of an electronic device according to various embodiments.
  • an electronic device 210 may correspond at least in part to the electronic device 101 of FIG. 1 .
  • the electronic device 210 may include a processor 211 , a memory 212 , and/or an integrated circuit 213 .
  • the electronic device 210 may include at least one of a processor 211 , a memory 212 , and an integrated circuit 213 .
  • the processor 211 , memory 212 , and integrated circuit 213 may be omitted according to exemplary embodiments.
  • the processor 211 may control the memory 212 and/or the integrated circuit 213 .
  • Memory 212 and/or integrated circuit 213 may be controlled by processor 211 .
  • the processor 211 may include a hardware component for processing data based on one or more instructions.
  • Hardware components for processing data may include, for example, an arithmetic and logic unit (ALU), a field programmable gate array (FPGA), and/or a central processing unit (CPU).
  • ALU arithmetic and logic unit
  • FPGA field programmable gate array
  • CPU central processing unit
  • processor 211 may correspond to processor 120 of FIG. 1 .
  • the number of processors 211 may be one or more.
  • the processor 211 may have a structure of a multi-core processor such as a dual core, quad core, or hexa core.
  • the processor 120 may include at least one processor.
  • Processor 120 may include at least one processor.
  • the electronic device 210 may include a memory 212 .
  • memory 212 may correspond to memory 130 of FIG. 1 .
  • Memory 212 may be used to store information or data.
  • the memory 212 may be used to store one or more instructions for controlling (eg, testing) the plurality of external electronic devices 230 .
  • the memory 212 may be used to store an application program for controlling (or testing) the plurality of external electronic devices 230 .
  • memory 212 may be a volatile memory unit or units.
  • memory 212 may be a non-volatile memory unit or units.
  • memory 212 may be another form of computer readable medium, such as a magnetic or optical disk.
  • the memory 212 may store data obtained based on an operation performed by the processor 211 (eg, an algorithm execution operation).
  • the memory 212 may store acquired information about the plurality of external electronic devices 230 .
  • the electronic device 210 may include an integrated circuit 213.
  • integrated circuit 213 may be used for USB communication.
  • Integrated circuit 213 may be used to receive (or transmit) data via USB communication.
  • Integrated circuit 213 can be used to change the protocol for USB communication.
  • the integrated circuit 213 may be controlled by the processor 211 to change the protocol for USB communication.
  • the integrated circuit 213 may be used to support multi-connection with a plurality of external electronic devices 230 .
  • the integrated circuit 213 may be used to process (eg, classify) data received from the plurality of external electronic devices 230 .
  • the integrated circuit 213 may be used to process (eg, classify) data to be transmitted to the plurality of external electronic devices 230 .
  • the electronic device 210 may further include at least one component.
  • the electronic device 210 may further include at least one component for USB communication.
  • the electronic device 210 may further include an interface for USB communication.
  • FIG. 4 is a simplified block diagram of a hub device according to various embodiments.
  • the hub device 220 may include a plurality of components for extending one USB port to a plurality of USB ports.
  • the hub device 220 may include a processor 221 , a first integrated circuit 222 , and/or a plurality of second integrated circuits 223 .
  • the hub device 220 may include at least one of a processor 221 , a first integrated circuit 222 , and a plurality of second integrated circuits 223 .
  • the processor 221 , the first integrated circuit 222 , and the plurality of second integrated circuits 223 may be omitted according to exemplary embodiments.
  • the hub device 220 may include a first integrated circuit 222 .
  • the first integrated circuit 222 may be connected to each of the plurality of second integrated circuits 223 .
  • the first integrated circuit 222 may be used to transmit a signal received from the electronic device 210 to a target external device.
  • the first integrated circuit 222 may transmit a signal to one of the plurality of second integrated circuits 223 based on the signal received from the electronic device 210 .
  • the first integrated circuit 222 transmits a signal to one of a plurality of second integrated circuits 223 based on an address included in a signal (or packet) received from the electronic device 210. can be sent
  • the first integrated circuit 222 may be used to change a protocol of USB communication with the electronic device 210 .
  • the first integrated circuit 222 may be controlled by the processor 211 and used to change a protocol for USB communication between the hub device 220 and the electronic device 210 .
  • the hub device 220 may include a plurality of second integrated circuits 223 .
  • the plurality of second integrated circuits 223 may be used to perform USB communication with a plurality of external electronic devices 230 .
  • Each of the plurality of second integrated circuits 223 may be connected to a plurality of external electronic devices 230 .
  • the plurality of second integrated circuits 223 may be connected to the plurality of external electronic devices 230 one-to-one.
  • a third integrated circuit (eg, the third integrated circuit 225 of FIG. 6 ), which is one of the plurality of second integrated circuits 223 , is a first external electronic device 231 among a plurality of external electronic devices 230 . and can be used for USB communication.
  • the hub device 220 may include a processor 221 .
  • the processor 221 may be used to control the first integrated circuit 222 and/or the plurality of second integrated circuits 223 .
  • the processor 221 may include a hardware component for processing data based on one or more instructions.
  • Hardware components for processing data may include, for example, an arithmetic and logic unit (ALU), a field programmable gate array (FPGA), and/or a central processing unit (CPU).
  • ALU arithmetic and logic unit
  • FPGA field programmable gate array
  • CPU central processing unit
  • the processor 221 may perform at least some of the functions of the processor 120 of FIG. 1 .
  • the processor 221 may change (or convert) a protocol for USB communication between the electronic device 210 and the hub device 220 by controlling the first integrated circuit 222 .
  • the processor 221 controls the plurality of second integrated circuits 223 to independently perform protocols for a plurality of USB communications between the hub device 220 and the plurality of external electronic devices 230. can be changed to
  • the processor 221 may independently change protocols for a plurality of USB communications between the hub device 220 and the plurality of external electronic devices 230 by controlling the first integrated circuit 222. there is.
  • the processor 221 may reset the connection of at least one of the plurality of external electronic devices 230 .
  • the processor 221 may use a plurality of second integrated circuits connected to at least one of the plurality of external electronic devices 230. At least one of (223) can be controlled.
  • the processor 221 may perform a hardware reset through at least one of the plurality of second integrated circuits 223 .
  • the processor 221 may disconnect at least one of the plurality of external electronic devices 230 and establish a connection again by performing a hardware reset.
  • the hub device 220 may further include various configurations for extending one USB port to a plurality of USB ports.
  • the hub device 220 may further include a low dropout (LDO) for changing a voltage of a data line.
  • LDO low dropout
  • FIG. 5 is a simplified block diagram of a first external electronic device according to various embodiments.
  • the first external electronic device 231 may correspond to the electronic device 101 of FIG. 1 .
  • the first external electronic device 231 may be an example of the plurality of external electronic devices 230 shown in FIG. 2 .
  • the first external electronic device 231 may include a processor 501 , a communication circuit 502 , and/or a memory 503 .
  • the first external electronic device 231 may include at least one of a processor 501 , a communication circuit 502 , and a memory 503 .
  • the processor 501, the communication circuit 502, and the memory 503 may be omitted according to embodiments.
  • the first external electronic device 231 may include the processor 501.
  • the processor 501 of the first external electronic device 231 may control the communication circuit 502 and/or the memory 503 .
  • Communication circuitry 502 , and/or memory 503 may be controlled by processor 501 .
  • Processor 501 may include hardware components for processing data based on one or more instructions.
  • processor 501 may correspond to processor 120 of FIG.
  • the number of processors 501 may be one or more.
  • the processor 501 may include at least one processor.
  • the processor 501 may include at least one processor.
  • the first external electronic device 231 may include a communication circuit 502 .
  • the communication circuit 502 may be used to connect with an external device through various communication methods.
  • the communication circuitry 502 can be used for connection with the electronic device 210 through USB communication.
  • communication circuitry 502 may include at least one component for USB communication.
  • the first external electronic device 231 may further include a USB interface for performing USB communication through the communication circuit 502 .
  • the first external electronic device 231 may include a memory 503.
  • memory 503 may correspond to memory 130 of FIG. 1 .
  • Memory 503 may be used to store information or data.
  • the memory 503 may be used to store information or data received from the electronic device 210 through the hub device 220 .
  • memory 503 may be used to store one or more instructions executable by processor 211 .
  • FIG. 6 illustrates electrical paths from an electronic device to a plurality of external electronic devices according to various embodiments of the present disclosure.
  • the integrated circuit 213 of the electronic device 210 may be connected to the first integrated circuit 222 of the hub device 220 .
  • the first integrated circuit 222 of the hub device 220 may be connected to each of the plurality of second integrated circuits 223 .
  • the plurality of second integrated circuits 223 may be connected to the plurality of external electronic devices 230 in a one-to-one manner.
  • the third integrated circuit 225 of the plurality of second integrated circuits 223 may be connected to the communication circuit 502 of the first external electronic device 231 of the plurality of external electronic devices 230.
  • the electronic device 210 may transmit data (or a control signal) to the first external electronic device 231 .
  • Data transmitted from the electronic device 210 to the first external electronic device 231 is transmitted through an electrical path from the integrated circuit 213 of the electronic device 210 to the first integrated circuit 222 of the hub device 220. can be sent The data may be transmitted through an electrical path from the first integrated circuit 222 to the third integrated circuit 225 among the plurality of second integrated circuits 223 . The data may be transmitted through an electrical path from the third integrated circuit 225 to the communication circuit 502 of the first external electronic device 231 . Accordingly, data transmitted from the electronic device 210 may be transmitted to the first external electronic device 231 through the electrical paths described above.
  • the electronic device 210 may transmit a control signal for controlling the hub device 220 .
  • the electronic device 210 may transmit a control signal for changing a protocol for USB communication between the hub device 220 and the first external electronic device 231 to the hub device 220 .
  • a control signal transmitted from the electronic device 210 to the hub device 220 is an electrical path from the integrated circuit 213 of the electronic device 210 to the first integrated circuit 222 of the hub device 220. can be transmitted through
  • an electrical path for transmitting a control signal and an electrical path for transmitting data may be distinguished.
  • the electronic device 210 receives a control signal transmitted from the electronic device 210 to the hub device 220. It can be distinguished from the electrical path for
  • FIG. 7 is a flowchart illustrating an operation of an electronic device according to various embodiments. This method may be executed by the electronic device 210 shown in FIG. 3 and the processor 211 of the electronic device 210 .
  • the processor 211 may change an operation mode for supplying power to the plurality of external electronic devices 230 to a low power mode. For example, in order to enter the first operation mode (eg, a test mode or a special process mode), the processor 211 sets an operation mode for supplying power to the plurality of external electronic devices 230 to a low power mode. can be changed to the first operation mode (eg, a test mode or a special process mode).
  • the processor 211 sets an operation mode for supplying power to the plurality of external electronic devices 230 to a low power mode. can be changed to
  • the processor 211 operates in an operation mode for supplying power to the plurality of external electronic devices 230 based on identifying the plurality of external electronic devices 230 connected through the hub device 220. can be changed to low power mode.
  • the processor 211 may change an operation mode for supplying power to the plurality of external electronic devices 230 to a low power mode in order to test the plurality of external electronic devices 230 .
  • the processor 211 may change an operation mode for supplying power to the plurality of external electronic devices 230 to a low power mode based on the process being performed.
  • the processor 211 may change an operation mode for supplying power to the plurality of external electronic devices 230 to a low power mode based on the process program being executed.
  • the processor 211 may identify a plurality of external electronic devices 230 .
  • the processor 211 may identify that a plurality of external electronic devices 230 are connected through the hub device 220 .
  • the processor 211 may identify that each of the plurality of external electronic devices 230 is connected through a plurality of USB communications.
  • the processor 211 may allocate an address to each of the plurality of external electronic devices 230 .
  • the processor 211 may set the amount of current supplied to each of the plurality of external electronic devices 230 to be less than or equal to a predefined amount.
  • the processor 211 may set the amount of current supplied to each of the plurality of external electronic devices 230 to 100 mA or less.
  • the processor 211 may set the amount of current supplied to each of the plurality of external electronic devices 230 to be smaller than the amount of current required in the protocol for USB communication (eg, 500 mA).
  • the predefined size may be set smaller than the size of current required in the USB communication protocol.
  • the processor 211 may transmit a plurality of signals for setting the current supplied to each of the plurality of external electronic devices 230 to a predetermined level or less.
  • Each of the plurality of external electronic devices 230 may limit the supplied current to a predefined level or less based on the received signal.
  • the processor 211 may transmit a signal to the hub device 220 to control the level of current supplied to each of the plurality of external electronic devices 230 to a level equal to or less than a predefined level. Based on the signal, the hub device 220 may limit the current supplied to each of the plurality of external electronic devices 230 to a predefined level or less.
  • the processor 211 may transmit at least one signal for setting the current supplied to at least one of the plurality of external electronic devices 230 to a predefined level or less. At least one of the plurality of external electronic devices 230 may limit the supplied current to a predefined level or less based on the received signal.
  • the processor 211 may identify a plurality of communication states for each of the plurality of external electronic devices 230 in a state in which the operation mode is changed to the low power mode.
  • the processor 211 may identify whether at least one connection device is configured for connection between the electronic device 210 and each of the plurality of external electronic devices 230 .
  • the processor 211 may identify whether at least one connection device is configured for connection between the electronic device 210 and the first external electronic device 231 .
  • the processor 211 may identify whether a gender or a switch for connection between the electronic device 210 and the first external electronic device 231 is configured.
  • the processor 211 may identify the number of at least one connection device configured for connection between the electronic device 210 and the first external electronic device 231 .
  • the processor 211 may identify that the number of at least one connection device exceeds a predefined number.
  • the processor 211 may identify a high possibility that noise is generated based on identifying that the number of at least one connection device exceeds a predetermined number. In this case, the processor 211 may identify that the communication state between the electronic device 210 and the first external electronic device 231 is not smooth.
  • the processor 211 may identify a communication state with respect to the first external electronic device 231 by identifying a communication speed from the electronic device 210 to the first external electronic device 231. .
  • the processor 211 identifies an error occurrence frequency of data transmitted and received between the electronic device 210 and the first external electronic device 231, thereby establishing a communication state with respect to the first external electronic device 231. can identify.
  • the processor 211 may identify a plurality of communication states for each of the plurality of external electronic devices 230 .
  • the processor 211 may switch a protocol used in the first USB communication between the first external electronic device 231 and the hub device 220 from the first protocol to the second protocol. For example, the processor 211 determines the first external electronic device 231 and the hub based on a communication state with respect to the first external electronic device 231 satisfying a predefined condition among a plurality of communication states. A protocol used in the first USB communication between devices 220 may be changed from the first protocol to the second protocol.
  • a protocol used in a plurality of USB communications between the plurality of external electronic devices 230 and the hub device 220 may be set to one of the first to third protocols.
  • a protocol used in the first USB communication between the first external electronic device 231 and the hub device 220 may be set to one of first to third protocols.
  • the first protocol may refer to a USB 3.0 standard protocol.
  • the second protocol may refer to a USB 2.0 standard protocol.
  • the third protocol may refer to a USB 1.1 standard protocol.
  • the first protocol may be used to transmit data at a high rate.
  • the first protocol may be used when the wire length is shorter than the first value.
  • a second protocol may be used to transmit data at an intermediate rate.
  • the second protocol may be used when the wire length is longer than the first value and shorter than the second value.
  • a third protocol may be used to transmit data at a lower rate.
  • the third protocol may be used when the wire length is longer than the second value.
  • the first to third protocols may be set in various ways unlike the above-described example.
  • a protocol for a plurality of USB communications between the hub device 220 and the plurality of external electronic devices 230 may be preferentially set to a first protocol (eg, USB 3.0 protocol).
  • the processor 211 may switch the protocol used in the first USB communication from the first protocol to the second protocol (eg, USB 2.0 protocol) based on the communication state with respect to the first external electronic device 231. there is.
  • the predefined condition may be set in various ways.
  • the processor 211 may use a predefined number (eg, the number of external electronic devices 230 ) based on a plurality of communication states for each of the plurality of external electronic devices 230 . 0.1% of) or more poor communication can be identified.
  • the processor 211 determines each protocol used in a plurality of USB communications between the plurality of external electronic devices 230 and the hub device 220 based on identifying a predefined number or more of communication failures in a first step. It is possible to switch from one protocol to the second protocol.
  • the processor 211 may change each protocol used in a plurality of USB communications from a USB 3.0 protocol to a USB 2.0 protocol based on identifying a predefined number or more of communication failures. As each protocol used in the plurality of USB communications is changed from the USB 3.0 protocol to the USB 2.0 protocol, stability of the plurality of USB communications can be increased.
  • the processor 211 may identify communication failure based on a communication state of a first external electronic device 231 among a plurality of external electronic devices 230 .
  • the processor 211 may identify communication failure based on an error for synchronization (sync, synchronization) according to the USB communication protocol.
  • the processor 211 may identify communication failure based on an error for power load balancing.
  • the processor 211 may identify communication failure based on an error (or damage) to the hub device 220 .
  • the processor 211 may identify communication failure based on hardware failure of the first external electronic device 231 .
  • the processor 211 determines that a protocol used in a plurality of USB communications between the plurality of external electronic devices 230 and the hub device 220 is a second protocol (eg, USB 2.0 protocol).
  • a second protocol eg, USB 2.0 protocol
  • the size of the entire data for the plurality of external electronic devices 230 can be identified.
  • the processor 211 determines that the size of the entire data for the plurality of external electronic devices 230 is greater than or equal to a predefined size, and determines whether or not the plurality of USB devices between the plurality of external electronic devices 230 and the hub device 220 are A respective protocol used in the communications may be switched from the second protocol to the first protocol.
  • the processor 211 may independently (or individually) change a protocol used for a plurality of USB communications.
  • the processor 211 converts the protocol used for the first USB communication from the second protocol (eg, USB 2.0 protocol) based on the fact that the size of data for the first external electronic device 231 is greater than or equal to the predefined size. It may switch to the first protocol (eg, USB 3.0 protocol).
  • the processor 211 may transmit the data to the first external electronic device 231 through the first USB communication based on the first protocol. After the data is transmitted, the processor 211 may switch a protocol for first USB communication from a first protocol to a second protocol.
  • the processor 211 when the data for the first external electronic device 231 is larger than a predefined size, the processor 211 temporarily switches the protocol for the first USB communication from the second protocol to the first protocol and transmits the data. can do. After the data is transmitted, the processor 211 may switch the protocol for the first USB communication from the first protocol to the second protocol.
  • the first protocol may mean an upper protocol (an upper version protocol).
  • the second protocol may mean a lower protocol (lower version protocol).
  • the processor 211 may change a protocol used for the first USB communication from an upper protocol to a lower protocol.
  • the processor 211 may perform the first USB communication based on the fact that the wire length from the processor 211 (or the electronic device 210) to the first external electronic device 231 is longer than a specified value.
  • the protocol used may be switched from the first protocol to the second protocol.
  • the processor 211 determines the protocol used for the first USB communication based on identifying that at least one connection device is configured between the electronic device 210 and the first external electronic device 231. It is possible to switch from the first protocol to the second protocol.
  • the processor 211 converts a protocol used for the first USB communication from a first protocol to a second protocol based on a standard of a protocol supported by the electronic device 210 to the first external electronic device 231. can switch
  • the first protocol may mean a lower protocol (lower version protocol).
  • the second protocol may mean an upper protocol (an upper version of a protocol).
  • the processor 211 may change a protocol used for the first USB communication from a lower protocol to an upper protocol.
  • the processor 211 may perform the first USB communication based on the fact that the wire length from the processor 211 (or the electronic device 210) to the first external electronic device 231 is less than or equal to a specified value.
  • the protocol used may be switched from the first protocol to the second protocol. For example, since the communication state of the first USB communication is not smooth, the processor 211 changes the protocol used for the first USB communication to the first protocol, which is a lower protocol, and then changes the communication state to the communication state of the first USB communication. After is smoothly changed, the protocol may be changed to the second protocol.
  • the processor 211 may switch a protocol used for the first USB communication from the first protocol to the second protocol based on identifying that configuration information of the first USB communication is changed. For example, the processor 211 converts the protocol used for the first USB communication from the first protocol based on identifying that the application (or software) of the electronic device 210 or the first external electronic device 231 is changed. You can switch to the second protocol. For example, the processor 211 changes the protocol used for the first USB communication from the first protocol to the second protocol based on identifying that the performance of the electronic device 210 or the first external electronic device 231 is improved. can switch a protocol used for the first USB communication from the first protocol to the second protocol based on identifying that configuration information of the first USB communication is changed. For example, the processor 211 converts the protocol used for the first USB communication from the first protocol based on identifying that the application (or software) of the electronic device 210 or the first external electronic device 231 is changed. You can switch to the second protocol. For example, the processor 211 changes the protocol used for the first USB
  • the processor 211 converts a protocol used for a first USB communication from a first protocol to a second protocol based on communication stability and communication speed of a plurality of USB communications with respect to the plurality of external electronic devices 230 . can be converted to
  • the processor 211 may fix a protocol for a plurality of USB communications between the plurality of external electronic devices 230 and the hub device 220 .
  • the processor 211 may set a protocol for a plurality of USB communications as a fixed protocol (eg, USB 2.0 protocol) regardless of a communication state.
  • the processor 211 may independently change the power supplied to the plurality of external electronic devices 230 .
  • the processor 211 may control only the amount of power supplied to the first external electronic device 231 of the plurality of external electronic devices 230 to exceed a predefined amount. While the level of power supplied to the external electronic devices excluding the first external electronic device 231 among the plurality of external electronic devices 230 is controlled to be less than or equal to a predefined level, the first external electronic device 231 The amount of power supplied to may be set to exceed a predefined amount.
  • the processor 211 transmits a signal for controlling the amount of power supplied to the first external electronic device 231 among the plurality of external electronic devices 230 to exceed a predefined amount, to the hub device 220.
  • the hub device 220 may set the amount of power supplied to the first external electronic device 231 to exceed a predefined amount.
  • the processor 211 may transmit, to the first external electronic device 231, a signal for controlling the level of power supplied to the first external electronic device 231 to exceed a predefined level. . Based on the signal, the first external electronic device 231 may set the level of power supplied to the first external electronic device 231 to exceed a predefined level.
  • FIG. 8 is a flowchart illustrating an operation of a hub device according to various embodiments. This method may be executed by the hub device 220 shown in FIG. 4 and the processor 221 of the hub device 220 .
  • the processor 221 of the hub device 220 transmits a first signal from the first external electronic device 231 to a third integrated circuit among a plurality of second integrated circuits 223.
  • a first signal from the first external electronic device 231 to a third integrated circuit among a plurality of second integrated circuits 223.
  • the processor 221 may use a first external electronic device among the plurality of external electronic devices 230.
  • the first signal from 231 may be received through a third integrated circuit used for connection between the first external electronic device 231 and the electronic device 210 .
  • the plurality of external electronic devices 230 may be connected to the second integrated circuits 223 one-to-one.
  • the third integrated circuit and the first external electronic device 231 may be connected one to one.
  • the processor 211 independently (or individually) performs USB communication between the hub device 220 and the first external electronic device 231 through a third integrated circuit connected to the first external electronic device 231 in a one-to-one manner. can be controlled with
  • the processor 221 may transmit a first signal to the electronic device 210 through the first integrated circuit 222.
  • the first signal may be transmitted to the electronic device 210 through the hub device 220 .
  • the processor 221 may transmit the first signal from the third integrated circuit to the first integrated circuit 222 .
  • the processor 221 may transmit the first signal to the electronic device 210 through the first integrated circuit 222 .
  • the processor 221 performs a second process for converting a protocol used in a connection between the first external electronic device 231 and the hub device 220 from the electronic device 210 from the first protocol to the second protocol.
  • signal can be received.
  • the processor 221 may receive the second signal through the first integrated circuit 222 .
  • the processor 221 may switch a protocol used in a connection between the first external electronic device 231 and the hub device 220 from the first protocol to the second protocol through the third integrated circuit.
  • the processor 221 may receive a signal for changing a protocol used in a connection between the first external electronic device 231 and the hub device 220 from the first external electronic device 231. .
  • the processor 221 may switch a protocol used in a connection between the first external electronic device 231 and the hub device 220 from the first protocol to the second protocol based on the received signal.
  • the processor 221 may receive a third signal for controlling current supplied to the plurality of external electronic devices 230 through the first integrated circuit 222 from the electronic device 210. there is. Based on the third signal, the processor 221 may control the amount of current supplied to the plurality of external electronic devices 230 through the plurality of second integrated circuits 223 to be less than or equal to a predefined amount. .
  • FIG. 9 is a flowchart illustrating an operation of a first external electronic device according to various embodiments. It can be executed by the first external electronic device 231 shown in FIG. 5 and the processor 501 of the first external electronic device 231 .
  • the processor 501 of the first external electronic device 231 may identify the electronic device 210 connected through the hub device 220.
  • the processor 501 may receive an address for USB communication from the electronic device 210 as a host USB device.
  • the processor 501 controls the first external electronic device from the hub device 220 in a state where the amount of power supplied through the hub device 220 controlled by the electronic device 210 is equal to or less than a predefined amount.
  • a signal for switching a protocol used for USB communication between the 231 and the hub device 220 from the first protocol to the second protocol may be received.
  • the processor 501 may operate in a first operation mode (eg, a test mode or a special process mode).
  • the processor 501 may limit the amount of power supplied through the hub device 220 in the first operation mode to a predefined amount or less.
  • the processor 501 may limit the amount of current supplied through the hub device 220 in the first operation mode to a predefined amount or less.
  • the processor 501 may receive a control signal for operating in the first operation mode from the electronic device 210 .
  • the processor 501 may change the operation mode of the first external electronic device 231 from the second operation mode (eg, basic operation mode) to the first operation mode based on the control signal.
  • the processor 501 may receive an input for operating in the first operation mode. Based on the input, the processor 501 may change the operation mode of the first external electronic device 231 from the second operation mode to the first operation mode.
  • the processor 501 is a protocol used for USB communication between the first external electronic device 231 and the hub device 220 from the hub device 220 while operating in the first operation mode.
  • a signal for switching from the first protocol to the second protocol may be received.
  • the processor 501 may switch the protocol from the first protocol to the second protocol based on the signal. For example, the processor 501 may release USB communication according to the first protocol based on the signal. Based on the signal, the processor 501 may establish a connection with the hub device 220 through USB communication according to the second protocol.
  • FIG. 10 is a signal flow diagram of an electronic device, a hub device, and a first external electronic device according to various embodiments.
  • the processor 501 of the first external electronic device 231 may transmit a first signal to the electronic device 210 through the hub device 220.
  • the processor 501 may transmit the first signal to the third integrated circuit of the hub device 220 .
  • the hub device 220 may transmit the first signal to the electronic device 210 through the first integrated circuit 222 .
  • Operation 1001 may correspond to operations 810 and 820 of FIG. 8 .
  • the processor 211 of the electronic device 210 may identify the first external electronic device 231.
  • the processor 211 may identify that the first external electronic device 231 (or the plurality of external electronic devices 230 ) are connected through the hub device 220 .
  • the processor 211 may identify the first external electronic device 231 based on the first signal received from the first external electronic device 231 .
  • the processor 211 of the electronic device 210 may allocate an address to the first external electronic device 231 (or the plurality of external electronic devices 230).
  • the processor 211 may transmit information for address allocation to the first external electronic device 231 .
  • the processor 211 of the electronic device 210 may change an operation mode for supplying power to the first external electronic device 231 (or the plurality of external electronic devices 230) to a low power mode.
  • Operations 1002 to 1004 may correspond to operation 710 of FIG. 7 .
  • the processor 211 of the electronic device 210 may transmit a signal for requesting current control to the hub device 220.
  • the hub device 220 may receive a signal for requesting current control from the electronic device 210 .
  • the processor 211 may transmit a signal for requesting current control to the first external electronic device 231 .
  • the processor 221 of the hub device 220 may control current to the first external electronic device 231 .
  • the processor 221 may limit the current supplied to the first external electronic device 231 to a predefined level or less.
  • the first external electronic device 231 may limit the current supplied through the hub device 220 .
  • the processor 501 of the first external electronic device 231 may limit the current supplied from the hub device 220 to a predefined level or less.
  • the processor 211 of the electronic device 210 may perform data communication through the first external electronic device 231 and the hub device 220.
  • the processor 501 of the first external electronic device 231 communicates data through the electronic device 210 and the hub device 220 in a state where the current supplied from the hub device 220 is limited to a predefined level or less. can be performed.
  • the processor 211 of the electronic device 210 may identify a communication state with the first external electronic device 231.
  • the processor 211 may identify a communication state with the first external electronic device 231 in a state in which the operation mode is changed to the low power mode.
  • the processor 211 may identify a communication state with the first external electronic device 231 by identifying an error occurrence frequency of data transmitted and received between the electronic device 210 and the first external electronic device 231.
  • can Operation 1008 may correspond to operation 720 of FIG. 7 .
  • the processor 211 of the electronic device 210 may determine protocol conversion. For example, the processor 211 determines to switch (or change) a protocol used in the first USB communication between the first external electronic device 231 and the hub device 220 from the first protocol to the second protocol.
  • the processor 211 of the electronic device 210 may transmit a second signal to the hub device 220 through the hub device 220.
  • the processor 221 of the hub device 220 may receive the second signal from the electronic device 210 .
  • the second signal may be a signal for switching a protocol used in the first USB communication between the first external electronic device 231 and the hub device 220 from the first protocol to the second protocol.
  • the processor 221 of the hub device 220 may transmit the second signal to the first external electronic device 231.
  • the processor 221 of the hub device 220 converts the protocol used in the first USB communication between the first external electronic device 231 and the hub device 220 to a first protocol based on the second signal. It is possible to switch to the second protocol from According to an embodiment, the processor 501 of the first external electronic device 231 is used in the first USB communication between the first external electronic device 231 and the hub device 220 based on the second signal. The protocol may be switched from the first protocol to the second protocol.
  • operations 1009 to 1011 may correspond to operations 830 and 840 of FIG. 8 .
  • operations 1009 to 1011 may correspond to operations 920 to 930 of FIG. 9 .
  • FIG. 11 illustrates a structure of a function pin of a type-C USB interface according to various embodiments.
  • the C-type USB interface 1100 may include a first part at the top and a second part at the bottom.
  • the first part may include pins A1 to A12.
  • the second part may include pins B1 to B12.
  • the first part and the second part may have structures symmetrical to each other.
  • a plurality of pins (eg, 24 pins) included in the C-type USB interface 1100 may constitute one electrical path.
  • pins of A4, A9, B4, and B9 may constitute at least one electrical path used to supply power.
  • the pins of A6, A7, B6, and B7 may constitute at least one electrical path used to transmit data according to the protocol of the USB 2.0 standard.
  • Pins of A2, A3, A10, A11, B2, B3, B10, and B11 may form at least one electrical path used to transmit data according to the protocol of the USB 3.0 standard.
  • the processor 211 of the electronic device 210 may change an operation mode for supplying power to the plurality of external electronic devices 230 to a low power mode.
  • the processor 211 of the electronic device 210 operates the plurality of external electronic devices 230 (eg, the first external electronic device 231) in a first operation mode (eg, a test mode).
  • a first operation mode eg, a test mode
  • an operation mode for supplying power to the plurality of external electronic devices 230 may be changed to a low power mode in order to change to a special process mode).
  • the processor 211 may include at least one of a plurality of electrical paths (eg, electrical paths along 24 pins) for connection between the first external electronic device 231 and the hub device 220. A signal for inactivating the electrical path may be transmitted to the hub device 220 .
  • the processor 211 may set a CC1 pin or a CC2 pin among C-type pins to an inactive state (or CC pin off-state).
  • the processor 211 may set a CC1 pin or a CC2 pin among C-type pins to an inactive state (or CC pin off-state) by controlling the hub device 220 .
  • the processor 501 of the first external electronic device 231 may change the operation mode of the first external electronic device 231 to the first operation mode based on identifying that the CC1 pin or the CC2 pin is set to an inactive state. there is.
  • the processor 501 of the first external electronic device 231 may limit the amount of current supplied through the hub device 220 to a predefined amount or less.
  • the load of the hub device 220 may be reduced by limiting the amount of current supplied to the first external electronic device 231 to a predefined amount or less.
  • the processor 211 may transmit a signal (or command) for changing the operation mode of the first external electronic device 231 to the first operation mode to the first external electronic device 231 .
  • the processor 211 sends the first external electronic device 231 to the first external electronic device 231 based on identifying that the first external electronic device 231 is connected through the hub device 220 .
  • a signal (or command) for setting the CC1 pin or the CC2 pin to an inactive state (or CC pin off-state) may be transmitted in order to change the operation mode of the operation mode to the first operation mode.
  • the first external electronic device 231 may change the operation mode to the first operation mode based on the signal (or command).
  • the processor 501 of the first external electronic device 231 in the second operation mode, which is distinguished from the first operation mode, changes the amount of current supplied through the hub device 220 to the level required by the protocol for USB communication. It can be set to correspond to the size of the current.
  • FIG. 12 is a flowchart illustrating another operation of an electronic device according to various embodiments. This method may be executed by the electronic device 210 shown in FIG. 3 and the processor 211 of the electronic device 210 .
  • 13 is a graph of a change in voltage according to a predefined condition according to various embodiments.
  • the processor 211 of the electronic device 210 transmits a first signal for changing the state of the first external electronic device 231 from the awake state to the sleep state to the hub device 220. ) to the first external electronic device 231.
  • the first signal may include a command for controlling the state of the first external electronic device 231 .
  • the processor 211 may control the state of the first external electronic device 231 from an awake state to a sleep state by transmitting the command to the first external electronic device 231 .
  • the processor 211 determines the state of the first external electronic device 231 in a sleep state in which all functions of the first external electronic device 231 are deactivated. can be changed Since the first external electronic device 231 operates with all functions disabled, the processor 211 wakes the state of the first external electronic device 231 through a signal (eg, command) configured based on software. state may not be changeable.
  • a signal eg, command
  • the processor 211 changes a voltage applied to at least one electrical path among a plurality of electrical paths for connection between the first external electronic device 231 and the hub device 220 according to a predefined condition.
  • a second signal for controlling to be possible may be transmitted to the hub device 220 .
  • the processor 211 may perform multiple operations for connection between the first external electronic device 231 and the hub device 220.
  • a second signal may be transmitted to the hub device 220 to control a voltage applied to at least one electrical path among the electrical paths to be changed according to a predefined condition.
  • the hub device 220 may change a voltage applied to at least one electrical path among a plurality of electrical paths for connection between the first external electronic device 231 and the hub device 220 according to a predefined condition.
  • the state of the first external electronic device 231 may be changed from a sleep state to an awake state based on the voltage being changed according to a predefined condition.
  • At least one electrical path among a plurality of electrical paths may refer to an electrical path for transmitting and receiving data.
  • at least one electrical path may refer to an electrical path based on d+ and d- pins for transmitting data.
  • the processor 211 may change the state of the first external electronic device 231 from a sleep state to an awake state by changing a voltage applied to at least one electrical path according to a predefined condition.
  • a graph 1300 shows a change in voltage applied to at least one electrical path over time as the processor 211 controls the hub device 220 .
  • the horizontal axis of the graph 1300 means time.
  • a vertical axis of the graph 1300 denotes a voltage applied to at least one electrical path.
  • the processor 211 may change the voltage applied to at least one electrical path according to a predefined condition by controlling the hub device 220 .
  • a voltage value changed according to a predefined condition may be changed from a first voltage value 1310 to a second voltage value 1320 within a predefined time 1330 .
  • the voltage value changed according to a predefined condition may be changed from the second voltage value 1320 to the first voltage value 1310 within a predefined time 1330 .
  • the first voltage value 1310 may be set higher than the second voltage value 1320 .
  • the first voltage value 1310 may be set to 3.3 V.
  • the second voltage value 1320 may be set to 1.8V.
  • the processor 211 may change the state of the first external electronic device 231 from a sleep state to an awake state by changing a voltage applied to at least one electrical path according to a predefined condition.
  • the processor 221 of the hub device 220 transmits a third signal for switching the state of the first external electronic device 231 to the sleep state through the first integrated circuit 222 to the electronic device ( 210).
  • the processor 221 may transmit the received third signal to the first external electronic device 231 through a third integrated circuit among the plurality of second integrated circuits 223 .
  • the processor 221 changes the state of the first external electronic device 231 from the sleep state to the awake state.
  • the processor 221 includes the first external electronic device 231 and the hub for changing the state of the first external electronic device 231 from the sleep state to the awake state through a third integrated circuit based on the fourth signal.
  • a voltage on a connection (or at least one electrical path) between devices 220 may be changed.
  • FIG. 14 is a diagram for explaining another operation of an electronic device according to various embodiments.
  • an electronic device 210 may be connected to a first external electronic device 231 to a fourth external electronic device 234 through a hub device 220 .
  • the hub device 220 may be connected to the first external electronic device 231 through the first connection 1410 based on first USB communication.
  • the hub device 220 may be connected to the second external electronic device 232 through the second connection 1420 based on the second USB communication.
  • the hub device 220 may be connected to the third external electronic device 233 through the third connection 1430 based on third USB communication.
  • the hub device 220 may be connected to the fourth external electronic device 234 through the fourth connection 1440 based on the fourth USB communication.
  • the electronic device 210 may be connected to the hub device 220 through the fifth connection 1450 based on the fifth USB communication.
  • the processor 211 of the electronic device 210 may identify information about a connection length between the electronic device 210 and the first external electronic device 231 .
  • the wiring length between the electronic device 210 and the first external electronic device 231 may be identified as the sum of the wiring length of the first connection 1410 and the wiring length of the fifth connection 1450 .
  • the processor 211 may transmit a first signal to the first external electronic device 231 through the hub device 220 .
  • the processor 211 may receive a second signal from the first external electronic device 231 in response to the first signal through the hub device 220 .
  • the processor 211 may identify information about the connection length between the electronic device 210 and the first external electronic device 231 based on the time at which the first signal is transmitted and the time at which the second signal is received. .
  • the processor 211 may identify wire lengths from the electronic device 210 to the first external electronic device 231 to the fourth external electronic device 234 .
  • At least one device for identifying a wire length between the electronic device 210 and the first external electronic device 231 may be configured. there is.
  • the processor 211 may receive information about a connection length between the electronic device 210 and the first external electronic device 231, identified in the at least one device.
  • the processor 211 may identify information about the wiring length between the electronic device 210 and the first external electronic device 231 based on the information about the wiring length input from the user.
  • the processor 211 determines the first external electronic device 231 and the hub device 220 based on information about the wire length between the electronic device 210 and the first external electronic device 231.
  • a protocol used in the first USB communication between the first and second protocols may be switched from the first protocol to the second protocol.
  • the processor 211 determines the first external electronic device 231 and the hub device (based on a wire length exceeding a first value between the electronic device 210 and the first external electronic device 231). 220), a protocol used for first USB communication between the first and second protocols may be switched from the first protocol to the second protocol.
  • the processor 211 determines that the first external electronic device 231 and the hub device ( 220) may maintain the first protocol as the protocol used for the first USB communication.
  • the processor 211 determines the distance between the first external electronic device 231 and the hub device 220 based on the length of the connection between the electronic device 210 and the first external electronic device 231. 1 Can determine (or identify) the protocol used for USB communication. For example, the processor 211 sets the protocol used for the first USB communication to a first protocol (eg, USB 3.0) based on the fact that the wire length is equal to or less than a first value (eg, 3 m). It can be determined (or identified) by the standard's protocol). For example, the processor 211 may perform the first USB communication based on the fact that the wire length exceeds a first value (eg, 3 m) and is less than or equal to a second value (eg, 5 m).
  • a first protocol eg, USB 3.0
  • a first value eg, 3 m
  • a second value eg, 5 m
  • the used protocol may be determined (or identified) as the second protocol (eg, USB 2.0 standard protocol).
  • the processor 211 converts the protocol used for the first USB communication to a third protocol (eg, USB 1.1 standard protocol) based on the wire length exceeding the second value (eg, 5 m). can be determined (or identified) by
  • the processor 211 may independently set protocols used for USB connections of the first external electronic device 231 to the fourth external electronic device 234 connected to the hub device 220. there is.
  • the processor 211 converts a protocol for the first USB communication into a third protocol (eg, based on a wire length between the electronic device 210 and the first external electronic device 231 exceeding the second value). For example, USB 1.1 standard protocol).
  • the processor 211 performs second USB communication (or The protocol for the third USB communication) may be set to the first protocol (eg, USB 3.0 standard protocol).
  • the processor 211 converts a protocol for the fourth USB communication into a second protocol based on a wire length between the electronic device 210 and the fourth external electronic device 234 exceeding the first value and being less than or equal to the second value. (For example, USB 2.0 standard protocol).
  • the electronic device 210 is connected to a plurality of external electronic devices 230 through one hub device 220 , but this is for convenience of description. According to an embodiment, the operation according to the above-described embodiment may be performed even when the electronic device 210 is connected to a plurality of external electronic devices through a plurality of hub devices.
  • An electronic device (eg, the electronic device 210) according to various embodiments includes a memory configured to store instructions, an integrated circuit (eg, the integrated circuit 213) for universal serial bus (USB) communication, and a processor (eg, processor 211) operatively coupled with the memory (eg, memory 212) and the integrated circuit, wherein the processor, when the instructions are executed, the hub device ( For example, based on identifying a plurality of external electronic devices (eg, a plurality of external electronic devices 230) connected through the hub device 220, power is supplied to the plurality of external electronic devices.
  • a plurality of external electronic devices eg, a plurality of external electronic devices 230
  • the processor may, when the instructions are executed, the first external electronic device and the hub device, based on whether the communication state with the first external electronic device satisfies another predefined condition. It may be further configured to switch a protocol used for the first USB communication between the devices from the second protocol to a third protocol.
  • the processor when the instructions are executed, converts the protocol from the second protocol to the first protocol based on the fact that the size of data for the first external electronic device is greater than or equal to a predefined size. can be further set to
  • the processor transmits the data to the first external electronic device through the hub device and, after the data is transmitted, converts the protocol from the first protocol to the first external electronic device. It may be further configured to switch to the second protocol.
  • the processor when the instructions are executed, the processor identifies a predefined number or more communication failures based on the plurality of communication states for each of the plurality of external electronic devices, and Further setting to switch each of the protocols used in a plurality of USB communications between the plurality of external electronic devices and the hub device from the first protocol to a second protocol based on identifying communication failures equal to or greater than the number of external electronic devices. It can be.
  • the processor may be configured to set, in the low power mode, the amount of current supplied to each of the plurality of external electronic devices to be less than or equal to a predefined amount when the instructions are executed. there is.
  • the processor when the instructions are executed, transmits a plurality of signals for setting a level of current supplied from the hub device to each of the plurality of external electronic devices to a predefined level or less. It may be further set to transmit to each of the external electronic devices of the.
  • the processor when the instructions are executed, the processor further transmits a signal for controlling the amount of current supplied to each of the plurality of external electronic devices to the predetermined amount or less to the hub device. can be set.
  • the processor when the instructions are executed, a signal for controlling the amount of power supplied to the first external electronic device among the plurality of external electronic devices to exceed the predefined amount. is set to transmit to the hub device, and the amount of power supplied to the first external electronic device is the amount of current supplied to the remaining external electronic devices other than the first external electronic device among the plurality of external electronic devices. While the size is controlled below the predefined size, it may be further set to exceed the predefined size.
  • the processor transmits a first signal for changing a state of the first external electronic device from an awake state to a sleep state through the hub device. and, after the state of the first external electronic device is changed from the awake state to the sleep state, at least one of a plurality of electrical paths for connection between the first external electronic device and the hub device.
  • a second signal for controlling a voltage applied to a path to be changed according to a predefined condition is transmitted to the hub device, and the state of the first external electronic device determines that the voltage is changed according to the predefined condition. Based on the change, the sleep state may be changed to the awake state.
  • the voltage value changed according to the predefined condition is changed from the first voltage value to the second voltage value within a predefined time, and within the predefined time, the first voltage value is changed. It may be set to change from 2 voltage values to the first voltage value.
  • the first voltage value may be set higher than the second voltage value.
  • the processor when the instructions are executed, in order to change the operation mode to the low power mode, at least one of a plurality of electrical paths for connection between the first external electronic device and the hub device. It may be further configured to transmit a signal for inactivating one electrical path to the hub device.
  • the protocol used for the first USB communication between the first external electronic device and the hub device may be set to one of the first protocol, the second protocol, and the third protocol. there is.
  • the processor transmits a first signal to the first external electronic device through the hub device, and transmits a response to the first signal through the hub device.
  • Receives a second signal from the first external electronic device and connects the electronic device and the first external electronic device based on the time at which the first signal is transmitted and the time at which the second signal is received. Identifying information about the length, and based on the information about the wire length between the electronic device and the first external electronic device, used for the first USB communication between the first external electronic device and the hub device It may be further configured to switch the protocol from the first protocol to the second protocol.
  • the processor determines that the first external electronic device and the hub are based on a wiring length exceeding a first value between the electronic device and the first external electronic device. It may be configured to switch the protocol used for the first USB communication between devices from the first protocol to the second protocol.
  • the processor may, when the instructions are executed, the first external electronic device and the hub device based on a connection length between the electronic device and the first external electronic device being equal to or less than a first value. It may be further configured to maintain the protocol used for the first USB communication between the USB devices as the first protocol.
  • a method of an electronic device identifies a plurality of external electronic devices (eg, the plurality of external electronic devices 230) connected through a hub device. Based on doing, changing the operation mode for supplying power to the plurality of external electronic devices to a low power mode, and in a state where the operation mode is changed to the low power mode, for each of the plurality of external electronic devices Based on an operation of identifying a plurality of communication states, and a communication state of a first external electronic device among the plurality of external electronic devices among the plurality of communication states satisfies a predefined condition, the first external electronic device satisfies a predefined condition.
  • a hub device (eg, the hub device 220) according to various embodiments includes a first integrated circuit (eg, the electronic device 210) connected to an electronic device (eg, the electronic device 210) based on universal serial bus (USB) communication.
  • integrated circuit eg, the first integrated circuit 222
  • plurality of second integrated circuits each connected to the first integrated circuit (eg, the plurality of second integrated circuits 223)
  • a processor eg, a processor 221 operably connected to the first integrated circuit and the plurality of second integrated circuits, wherein the processor connects a plurality of external electronic devices based on the USB communication.
  • a first signal from a first external electronic device among the plurality of external electronic devices may be received.
  • receive through a third integrated circuit of the plurality of second integrated circuits used for connection between a first external electronic device and the electronic device and receive the first signal through the first integrated circuit to the electronic device receive a second signal for switching a protocol used in a connection between the first external electronic device and the hub device from a first protocol to a second protocol from the electronic device; Based on the protocol, the protocol may be set to switch from the first protocol to the second protocol through the third integrated circuit.
  • the processor receives a third signal for converting a state of the first external electronic device into a sleep state from the electronic device through the first integrated circuit, and the received third signal is transmitted to the first external electronic device through the third integrated circuit, and after the state of the first external electronic device is changed to a sleep state based on the third signal, the state of the first external electronic device is determined.
  • a fourth signal for changing from the sleep state to an awake state is received, and based on the fourth signal, the state of the first external electronic device is changed from the sleep state to an awake state through the third integrated circuit. It may be further set to change the voltage associated with the connection between the first external electronic device and the hub device to change to .
  • An external electronic device includes a memory configured to store instructions, a communication circuit for universal serial bus (USB) communication, and a processor operatively connected to the memory and the communication circuit, wherein the processor comprises: When the instructions are executed, an electronic device connected through the hub device is identified, and in a state in which the size of power supplied through the hub device controlled by the electronic device is equal to or less than a predefined amount, the external electronic device is transmitted from the hub device to the external electronic device. Receive a signal for switching a protocol used for USB communication between a device and the hub device from a first protocol to a second protocol, and convert the protocol from the first protocol to the second protocol based on the signal Can be set to switch.
  • USB universal serial bus
  • Electronic devices may be devices of various types.
  • 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.
  • 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 camera e.g., a camera
  • a wearable device e.g., a smart bracelet
  • first, second, or first or secondary may simply be used to distinguish that component from other corresponding components, and may refer to that component in other respects (eg, importance or order) is not limited.
  • a (eg, first) component is said to be “coupled” or “connected” to another (eg, second) component, with or without the terms “functionally” or “communicatively.”
  • the certain component may 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 interchangeably interchangeable with terms such as, for example, logic, logic blocks, components, or circuits.
  • a module may be an integrally constructed component or a minimal unit of components or a portion thereof 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
  • a storage medium eg, internal memory 136 or external memory 138
  • a machine eg, electronic device 101
  • a processor eg, the processor 120
  • a 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.
  • the storage medium is a tangible device and does not contain a signal (e.g. electromagnetic wave), and this term refers to the case where data is stored semi-permanently in the storage medium. It does not discriminate when it is temporarily stored.
  • a signal e.g. electromagnetic wave
  • the method according to various embodiments disclosed in this document may be included and provided in a computer program product.
  • Computer program products may be traded between sellers and buyers as commodities.
  • a computer program product is distributed in the form of a machine-readable storage medium (eg CD-ROM (compact disc read only memory)), or through an application store (eg Play Store) or on two user devices (eg CD-ROM). : can be distributed (e.g., downloaded or uploaded) online, directly between smart phones.
  • at least part of the computer program product may be temporarily stored or temporarily created in a device-readable storage medium such as a manufacturer's server, an application store server, or a relay server's memory.
  • each component (eg, module or program) of the above-described components may include a single object or a plurality of entities, and some of the plurality of entities may be separately disposed in other components. there is.
  • one or more components or operations among the aforementioned corresponding components may be omitted, or one or more other components or operations may be added.
  • a plurality of components eg modules or programs
  • the integrated component may perform one or more functions of each of the plurality of components identically or similarly to those performed by a corresponding component of the plurality of components prior to the integration. .
  • the actions performed by a module, program, or other component are executed sequentially, in parallel, iteratively, or heuristically, or one or more of the actions are executed in a different order, or omitted. or one or more other actions may be added.

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  • Theoretical Computer Science (AREA)
  • Physics & Mathematics (AREA)
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Abstract

Un dispositif électronique selon divers modes de réalisation comprend : une mémoire conçue pour stocker des instructions; un circuit intégré pour une communication USB; et un processeur connecté fonctionnellement à la mémoire et au circuit intégré. Le processeur peut être conçu de façon à, lorsque les instructions sont exécutées, sur la base de l'identification d'une pluralité de dispositifs électroniques externes connectés par l'intermédiaire d'un dispositif concentrateur, changer le mode de fonctionnement pour alimenter en courant électrique la pluralité de dispositifs électroniques externes à un mode de faible puissance, identifier une pluralité d'états de communication de la pluralité de dispositifs électroniques externes, respectivement, et commuter le protocole, utilisé pour une première communication USB entre le dispositif concentrateur et un premier dispositif électronique externe parmi la pluralité de dispositifs électroniques externes, d'un premier protocole à un second protocole sur la base de l'état de communication du premier dispositif électronique externe parmi la pluralité d'états de communication satisfaisant une condition prédéfinie.
PCT/KR2022/017161 2021-12-31 2022-11-03 Dispositif électronique et procédé de commande de connexions avec des dispositifs électroniques externes WO2023128219A1 (fr)

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KR20210194709 2021-12-31
KR10-2021-0194709 2021-12-31
KR10-2022-0011823 2022-01-26
KR1020220011823A KR20230103785A (ko) 2021-12-31 2022-01-26 외부 전자 장치들과의 연결을 제어하기 위한 전자 장치 및 방법

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Citations (5)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20100070465A (ko) * 2008-12-18 2010-06-28 삼성전자주식회사 유에스비 네트워크 장치의 선택적 대기 모드 지원 장치 및 방법
JP2013109461A (ja) * 2011-11-18 2013-06-06 Canon Inc Usbハブ装置及びそれを用いたシステム
JP5763519B2 (ja) * 2011-12-28 2015-08-12 ルネサスエレクトロニクス株式会社 Usbハブコントローラ、usbホストコントローラ、およびシステム
JP5794266B2 (ja) * 2013-08-30 2015-10-14 ブラザー工業株式会社 Usbホスト装置、及びusbホスト装置用のプログラム
KR20170140267A (ko) * 2015-04-28 2017-12-20 마이크로칩 테크놀로지 인코포레이티드 범용 직렬 버스 스마트 허브

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* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
KR20100070465A (ko) * 2008-12-18 2010-06-28 삼성전자주식회사 유에스비 네트워크 장치의 선택적 대기 모드 지원 장치 및 방법
JP2013109461A (ja) * 2011-11-18 2013-06-06 Canon Inc Usbハブ装置及びそれを用いたシステム
JP5763519B2 (ja) * 2011-12-28 2015-08-12 ルネサスエレクトロニクス株式会社 Usbハブコントローラ、usbホストコントローラ、およびシステム
JP5794266B2 (ja) * 2013-08-30 2015-10-14 ブラザー工業株式会社 Usbホスト装置、及びusbホスト装置用のプログラム
KR20170140267A (ko) * 2015-04-28 2017-12-20 마이크로칩 테크놀로지 인코포레이티드 범용 직렬 버스 스마트 허브

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