WO2024019286A1 - Twt 모드 또는 절전 모드를 지원하는 전자 장치 및 전자 장치의 동작 방법 - Google Patents
Twt 모드 또는 절전 모드를 지원하는 전자 장치 및 전자 장치의 동작 방법 Download PDFInfo
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- WO2024019286A1 WO2024019286A1 PCT/KR2023/006215 KR2023006215W WO2024019286A1 WO 2024019286 A1 WO2024019286 A1 WO 2024019286A1 KR 2023006215 W KR2023006215 W KR 2023006215W WO 2024019286 A1 WO2024019286 A1 WO 2024019286A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W84/00—Network topologies
- H04W84/02—Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
- H04W84/10—Small scale networks; Flat hierarchical networks
- H04W84/12—WLAN [Wireless Local Area Networks]
Definitions
- Various embodiments of the present invention relate to electronic devices and operating methods of electronic devices, and in particular, to wireless communication technology supporting TWT mode or power saving mode.
- Wi-Fi wireless local network
- IEEE 802.11 IEEE 802.11
- Electronic devices provide various services (e.g., UHD quality video streaming service, AR (augmented reality) service, VR (virtual reality) service) using relatively large capacity data through wireless communication supporting high transmission rates.
- AR augmented reality
- VR virtual reality
- MR mixed reality
- the IEEE 802.11 ax technical standard introduces a target wake time (TWT) function to improve battery performance of various electronic devices connected to an access point (AP).
- the TWT function may be a function of transmitting or receiving data between an electronic device and an AP during a specified time (target wake time duration).
- the electronic device may transmit or receive data during specified times and may not transmit or receive data during other times outside of the specified times.
- the TWT function is attracting attention as a function that can reduce power consumption that occurs when performing short-range wireless communication of electronic devices.
- the IEEE 802.11 be (or Wi-Fi 7) technical standard plans to introduce technology to support multi-link operation (MLO) to improve the speed of data transmission and reception and reduce latency.
- MLO multi-link operation
- Electronic devices that support multi-link operations are expected to be able to transmit or receive data through multiple links, thereby achieving relatively high transmission speeds and low latency.
- the electronic device can activate a communication circuit supporting short-range wireless communication, receive data transmitted by an external electronic device (or AP), or transmit data to an external electronic device during a specified time (or TWT duration). there is.
- the electronic device may disable the communication circuitry for any time other than the designated time. Electronic devices that support TWT mode can reduce power consumption by disabling communication circuitry for periods other than specified times.
- An electronic device is a power-saving device that places communication circuits supporting short-range wireless communication into an idle state (or doze state) when transmission or reception of packets does not occur for a specified period of time after transmission or reception of packets is completed.
- a power saving mode may be supported. By switching the communication circuit to an idle state, the electronic device can reduce power consumption that occurs by maintaining the communication circuit in an active state even when no packets are transmitted or received.
- An electronic device may include a communication circuit that transmits or receives data through at least one link created between an external electronic device and the electronic device.
- An electronic device may include a processor.
- the processor may check time intervals between packets transmitted or received through the at least one link.
- the processor may check the ratio of time intervals that are less than or equal to a specified value among the time intervals.
- the processor switches the communication circuit to a deactivated state in a TWT (target wake time) mode in which the communication circuit is switched to the active state at specified times based on the ratio, or when transmission or reception of the packet does not occur for a specified time. You can select one of the switching power saving modes.
- the processor may be configured to control the communication circuit based on the selected mode.
- a method of operating an electronic device may include checking time intervals between packets transmitted or received through at least one link created between an external electronic device and the electronic device. .
- a method of operating an electronic device may include checking a ratio of a time interval that is less than or equal to a specified value among the time intervals and a time interval that is greater than or equal to the specified value among the time intervals.
- the operating method of the electronic device is a target wake time (TWT) mode in which the communication circuit of the electronic device is switched to the active state at specified times based on the ratio, or when transmission or reception of the packet does not occur for a specified time,
- TWT target wake time
- the operation may include selecting one of power saving modes that switches the communication circuit to a deactivated state.
- a method of operating an electronic device may include controlling the communication circuit based on the selected mode.
- An electronic device and a method of operating the electronic device may select a TWT mode or a power saving mode based on the ratio of time intervals in which the time intervals of packets transmitted or received through at least one link are less than or equal to a specified value.
- the electronic device selects a power saving mode when the ratio of time intervals of packets transmitted or received over at least one link having a specified size or less is greater than or equal to a specified value, thereby activating a communication circuit in a TWT mode at specified periods. Higher power efficiency can be achieved compared to .
- the electronic device selects the TWT mode when the time interval of packets transmitted or received through at least one link has a specified size or less and the ratio of time intervals is less than or equal to a specified value, resulting in relatively frequent transmission or reception of packets. As a result, higher power efficiency can be achieved compared to power saving mode, which does not allow entry into deactivation mode.
- FIG. 1 is a block diagram of an electronic device according to various embodiments of the present invention.
- Figure 2 is a block diagram of a program according to various embodiments.
- FIG. 3 is a diagram illustrating an example in which an electronic device and an external electronic device operate in multi-link operation (MLO), according to various embodiments of the present invention.
- MLO multi-link operation
- FIG. 4A is a diagram illustrating an example in which an electronic device controls a communication circuit based on target wake time (TWT) according to various embodiments of the present invention.
- TWT target wake time
- FIG. 4B is a diagram illustrating an example in which an electronic device and an external electronic device perform a TWT operation according to various embodiments of the present invention.
- FIG. 4C is a diagram illustrating an example in which an electronic device controls a communication circuit based on a power saving mode according to various embodiments of the present invention.
- FIG. 4D is a diagram illustrating an example in which an electronic device controls a communication circuit based on one of the TWT mode and the power saving mode according to various embodiments of the present invention.
- FIG. 5 is a block diagram of an electronic device according to various embodiments of the present invention.
- FIG. 6A is a diagram illustrating an embodiment of selecting either a power saving mode or a TWT mode based on the ratio of time intervals of packet time intervals that are less than a specified value in an electronic device according to various embodiments of the present invention. am.
- FIG. 6B is a diagram illustrating an embodiment of selecting either a power saving mode or a TWT mode based on the ratio of time intervals of packet time intervals that are less than a specified value in an electronic device according to various embodiments of the present invention. am.
- FIG. 7A is a diagram illustrating an embodiment of transmitting or receiving a packet through a plurality of links in an electronic device according to various embodiments of the present invention.
- FIG. 7B shows an electronic device in accordance with various embodiments of the present invention, showing a mode in either a power saving mode or a TWT mode based on the ratio of time intervals of packets transmitted or received through a plurality of links that are less than or equal to a specified value.
- This diagram illustrates an embodiment of selecting a mode.
- Figure 8 is an operational flowchart showing a method of operating an electronic device according to various embodiments of the present invention.
- Figure 9 is an operational flowchart showing a method of operating an electronic device according to various embodiments of the present invention.
- FIG. 1 is a block diagram of an electronic device 101 in a network environment 100, according to various embodiments.
- the electronic device 101 communicates with the electronic device 102 through a first network 198 (e.g., a short-range wireless communication network) or a second network 199. It is possible to communicate with the electronic device 104 or the server 108 through (e.g., 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.
- a first network 198 e.g., a short-range wireless communication network
- a second network 199 e.g., a second network 199.
- the electronic device 101 may communicate with the electronic device 104 through the server 108.
- the electronic device 101 includes a processor 120, a memory 130, an input module 150, an audio output module 155, a display module 160, an audio module 170, and a sensor module ( 176), interface 177, connection terminal 178, haptic module 179, camera module 180, power management module 188, battery 189, communication module 190, subscriber identification module 196 , or may include an antenna module 197.
- at least one of these components eg, the connection terminal 178) may be omitted or one or more other components may be added to the electronic device 101.
- some of these components e.g., sensor module 176, camera module 180, or antenna module 197) are integrated into one component (e.g., display module 160). It can be.
- the processor 120 for example, executes software (e.g., program 140) to operate at least one other component (e.g., hardware or software component) of the electronic device 101 connected to the processor 120. It can be controlled and various data processing or calculations can be performed. According to one embodiment, as at least part of data processing or computation, the processor 120 stores commands or data received from another component (e.g., sensor module 176 or communication module 190) in volatile memory 132. The commands or data stored in the volatile memory 132 can be processed, and the resulting data can be stored in the non-volatile memory 134.
- software e.g., program 140
- the processor 120 stores commands or data received from another component (e.g., sensor module 176 or communication module 190) in volatile memory 132.
- the commands or data stored in the volatile memory 132 can be processed, and the resulting data can be stored in the non-volatile memory 134.
- the processor 120 includes a main processor 121 (e.g., a central processing unit or an application processor) or an auxiliary processor 123 that can operate independently or together (e.g., a graphics processing unit, a neural network processing unit ( It may include a neural processing unit (NPU), an image signal processor, a sensor hub processor, or a communication processor).
- a main processor 121 e.g., a central processing unit or an application processor
- auxiliary processor 123 e.g., a graphics processing unit, a neural network processing unit ( It may include a neural processing unit (NPU), an image signal processor, a sensor hub processor, or a communication processor.
- the electronic device 101 includes a main processor 121 and a secondary processor 123
- the secondary processor 123 may be set to use lower power than the main processor 121 or be specialized for a designated function. You can.
- the auxiliary processor 123 may be implemented separately from the main processor 121 or as part of it.
- the auxiliary processor 123 may, for example, act on behalf of the main processor 121 while the main processor 121 is in an inactive (e.g., sleep) state, or while the main processor 121 is in an active (e.g., application execution) state. ), together with the main processor 121, at least one of the components of the electronic device 101 (e.g., the display module 160, the sensor module 176, or the communication module 190) At least some of the functions or states related to can be controlled.
- co-processor 123 e.g., image signal processor or communication processor
- may be implemented as part of another functionally related component e.g., camera module 180 or communication module 190. there is.
- the auxiliary processor 123 may include a hardware structure specialized for processing artificial intelligence models.
- Artificial intelligence models can be created through machine learning. For example, such learning may be performed in the electronic device 101 itself, where artificial intelligence is performed, or may be performed through a separate server (e.g., server 108).
- Learning algorithms may include, for example, supervised learning, unsupervised learning, semi-supervised learning, or reinforcement learning, but It is not limited.
- An artificial intelligence model may include multiple artificial neural network layers.
- Artificial neural networks include deep neural network (DNN), convolutional neural network (CNN), recurrent neural network (RNN), restricted boltzmann machine (RBM), belief deep network (DBN), bidirectional recurrent deep neural network (BRDNN), It may be one of deep Q-networks or a combination of two or more of the above, but is not limited to the examples described above.
- artificial intelligence models may additionally or alternatively include software 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. Data may include, for example, input data or output data for software (e.g., program 140) and instructions related thereto.
- 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 application 146.
- the input module 150 may receive commands or data to be used in a component of the electronic device 101 (e.g., the processor 120) from outside the electronic device 101 (e.g., a user).
- the input module 150 may include, for example, a microphone, mouse, keyboard, keys (eg, buttons), or digital pen (eg, 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. Speakers can be used for general purposes such as multimedia playback or recording playback.
- the receiver can be used to receive incoming calls. According to one embodiment, the receiver may be implemented separately from the speaker or as part of it.
- the display module 160 can 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 configured to detect a touch, or a pressure sensor configured to measure the intensity of force generated by the touch.
- the audio module 170 can convert sound into an electrical signal or, conversely, convert an electrical signal into sound. 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 (e.g., directly or wirelessly connected to the electronic device 101). Sound may be output through the electronic device 102 (e.g., speaker or headphone).
- the electronic device 102 e.g., speaker or headphone
- the sensor module 176 detects the operating state (e.g., power or temperature) of the electronic device 101 or the external environmental state (e.g., user state) and generates an electrical signal or data value corresponding to the detected state. can do.
- the sensor module 176 includes, 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 biometric sensor, It may include a temperature sensor, humidity sensor, or light sensor.
- the interface 177 may support one or more designated protocols that can be used to connect the electronic device 101 directly or wirelessly with an external electronic device (eg, the electronic device 102).
- the interface 177 may include, for example, a high definition multimedia interface (HDMI), a universal serial bus (USB) interface, an SD card interface, or an audio interface.
- 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 can be physically connected to an external electronic device (eg, the electronic device 102).
- the connection terminal 178 may include, for example, an HDMI connector, a USB connector, an SD card connector, or an audio connector (eg, a headphone connector).
- the haptic module 179 can convert electrical signals into mechanical stimulation (e.g., vibration or movement) or electrical stimulation that the user can 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 can capture still images and moving images.
- the camera module 180 may include one or more lenses, image sensors, image signal processors, or flashes.
- the power management module 188 can manage power supplied to the electronic device 101.
- the power management module 188 may be implemented as at least a part of, for example, a power management integrated circuit (PMIC).
- PMIC power management integrated circuit
- the battery 189 may supply power to at least one component of the electronic device 101.
- the battery 189 may include, for example, a non-rechargeable primary battery, a rechargeable secondary battery, or a fuel cell.
- Communication module 190 is configured to provide a direct (e.g., wired) communication channel or wireless communication channel between electronic device 101 and an external electronic device (e.g., electronic device 102, electronic device 104, or server 108). It can support establishment and communication through established communication channels. Communication module 190 operates independently of processor 120 (e.g., an application processor) and may include one or more communication processors that support direct (e.g., wired) communication or wireless communication.
- processor 120 e.g., an application processor
- the communication module 190 is a wireless communication module 192 (e.g., 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 (e.g., : LAN (local area network) communication module, or power line communication module) may be included.
- a wireless communication module 192 e.g., 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 e.g., : LAN (local area network) communication module, or power line communication module
- the corresponding communication module is a first network 198 (e.g., a short-range communication network such as Bluetooth, wireless fidelity (WiFi) direct, or infrared data association (IrDA)) or a second network 199 (e.g., legacy It may communicate with an external electronic device 104 through a telecommunication network such as a cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (e.g., LAN or WAN).
- a telecommunication network such as a cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (e.g., LAN or WAN).
- a telecommunication network such as a cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (e.g., LAN or WAN).
- a telecommunication network such as a cellular network, a 5G network, a next-generation communication network
- the wireless communication module 192 uses subscriber information (e.g., 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 e.g., International Mobile Subscriber Identifier (IMSI)
- IMSI International Mobile Subscriber Identifier
- the wireless communication module 192 may support 5G networks after 4G networks and next-generation communication technologies, for example, NR access technology (new radio access technology).
- NR access technology provides high-speed transmission of high-capacity data (eMBB (enhanced mobile broadband)), minimization of terminal power and access to multiple terminals (mMTC (massive machine type communications)), or high reliability and low latency (URLLC (ultra-reliable and low latency). -latency communications)) can be supported.
- the wireless communication module 192 may support high frequency bands (eg, mmWave bands), for example, to achieve high data rates.
- the wireless communication module 192 uses various technologies to secure performance in high frequency bands, for example, beamforming, massive array multiple-input and multiple-output (MIMO), and full-dimensional multiplexing. It can support technologies such as input/output (FD-MIMO: full dimensional MIMO), array antenna, analog beam-forming, or large scale antenna.
- the wireless communication module 192 may support various requirements specified in the electronic device 101, an external electronic device (e.g., electronic device 104), or a network system (e.g., second network 199).
- the wireless communication module 192 supports Peak data rate (e.g., 20 Gbps or more) for realizing eMBB, loss coverage (e.g., 164 dB or less) for realizing mmTC, or U-plane latency (e.g., 164 dB or less) for realizing URLLC.
- Peak data rate e.g., 20 Gbps or more
- loss coverage e.g., 164 dB or less
- U-plane latency e.g., 164 dB or less
- the antenna module 197 may transmit or receive signals or power to or from the outside (eg, an external electronic device).
- the antenna module 197 may include an antenna including a radiator made 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 connected to the plurality of antennas by, for example, the communication module 190. can be selected. Signals or power may be transmitted or received between the communication module 190 and an external electronic device through the at least one selected antenna.
- other components eg, radio frequency integrated circuit (RFIC) may be additionally formed as part of the antenna module 197.
- RFIC radio frequency integrated circuit
- a mmWave antenna module includes: a printed circuit board, an RFIC disposed on or adjacent to a first side (e.g., bottom side) of the printed circuit board and capable of supporting a designated high frequency band (e.g., mmWave band); And a plurality of antennas (e.g., array antennas) disposed on or adjacent to the second side (e.g., top or side) of the printed circuit board and capable of transmitting or receiving signals in the designated high frequency band. can do.
- a first side e.g., bottom side
- a designated high frequency band e.g., mmWave band
- a plurality of antennas e.g., array antennas
- peripheral devices e.g., 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 of the same or different type as the electronic device 101.
- all or part of the operations performed in the electronic device 101 may be executed in one or more of the external electronic devices 102, 104, or 108.
- the electronic device 101 may perform the function or service instead of executing the function or service on its own.
- one or more external electronic devices may be requested to perform at least part of the function or service.
- One or more external electronic devices that have received the request may execute at least part of the requested function or service, or an additional function or service related to the request, and transmit the result of the execution to the electronic device 101.
- the electronic device 101 may process the result as is or additionally and provide it as at least part of a response to the request.
- cloud computing distributed computing, mobile edge computing (MEC), or client-server computing technology can 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.
- 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 (e.g., smart home, smart city, smart car, or healthcare) based on 5G communication technology and IoT-related technology.
- Figure 2 is a block diagram 200 illustrating program 140 according to various embodiments.
- the program 140 includes an operating system 142, middleware 144, or an application 146 executable on the operating system 142 for controlling one or more resources of the electronic device 101. It can be included.
- Operating system 142 may include, for example, Android TM , iOS TM , Windows TM , Symbian TM , Tizen TM , or Bada TM .
- At least some of the programs 140 are preloaded into the electronic device 101, for example, at the time of manufacturing, or are stored in an external electronic device (e.g., the electronic device 102 or 104, or a server) when used by a user. It can be downloaded or updated from 108)).
- an external electronic device e.g., the electronic device 102 or 104, or a server
- the operating system 142 may control management (eg, allocation or retrieval) of one or more system resources (eg, process, memory, or power) of the electronic device 101 .
- Operating system 142 may additionally or alternatively operate on other hardware devices of electronic device 101, such as input device 150, audio output device 155, display device 160, audio module 170. , sensor module 176, interface 177, haptic module 179, camera module 180, power management module 188, battery 189, communication module 190, subscriber identification module 196, or It may include one or more driver programs for driving the antenna module 197.
- the middleware 144 may provide various functions to the application 146 so that functions or information provided from one or more resources of the electronic device 101 can be used by the application 146.
- the middleware 144 includes, for example, an application manager 201, a window manager 203, a multimedia manager 205, a resource manager 207, a power manager 209, a database manager 211, and a package manager 213. ), connectivity manager (215), notification manager (217), location manager (219), graphics manager (221), security manager (223), call manager (225), or voice recognition manager (227). You can.
- the application manager 201 may, for example, manage the life cycle of the application 146.
- the window manager 203 may, for example, manage one or more GUI resources used on the screen.
- the multimedia manager 205 identifies one or more formats required for playing media files, and encodes or decodes the corresponding media file using a codec suitable for the selected format. It can be done.
- the resource manager 207 may, for example, manage the source code of the application 146 or the memory space of the memory 130.
- the power manager 209 manages, for example, the capacity, temperature, or power of the battery 189, and may use this information to determine or provide related information necessary for the operation of the electronic device 101. . According to one embodiment, the power manager 209 may interface with a basic input/output system (BIOS) (not shown) of the electronic device 101.
- BIOS basic input/output system
- Database manager 211 may create, search, or change a database to be used by application 146, for example.
- the package manager 213 may, for example, manage the installation or update of applications distributed in the form of package files.
- the connectivity manager 215 may manage, for example, a wireless connection or direct connection between the electronic device 101 and an external electronic device.
- the notification manager 217 may provide a function for notifying the user of the occurrence of a designated event (eg, an incoming call, message, or alarm).
- the location manager 219 may, for example, manage location information of the electronic device 101.
- the graphics manager 221 may, for example, manage one or more graphic effects to be provided to the user or a user interface related thereto.
- Security manager 223 may provide, for example, system security or user authentication.
- the telephony manager 225 may manage, for example, a voice call function or a video call function provided by the electronic device 101.
- the voice recognition manager 227 transmits the user's voice data to the server 108 and provides a command corresponding to a function to be performed in the electronic device 101 based at least in part on the voice data, Alternatively, text data converted based at least in part on the voice data may be received from the server 108.
- the middleware 244 may dynamically delete some existing components or add new components.
- at least a portion of the middleware 144 may be included as part of the operating system 142 or may be implemented as separate software different from the operating system 142.
- the application 146 includes, for example, home 251, dialer 253, SMS/MMS (255), instant message (IM) 257, browser 259, camera 261, and alarm 263. , Contacts (265), Voice Recognition (267), Email (269), Calendar (271), Media Player (273), Album (275), Watch (277), Health (279) (such as exercise amount or blood sugar) It may include applications that measure biometric information) or environmental information 281 (e.g., measure atmospheric pressure, humidity, or temperature information). According to one embodiment, the application 146 may further include an information exchange application (not shown) that can support information exchange between the electronic device 101 and an external electronic device.
- an information exchange application not shown
- the information exchange application may include, for example, a notification relay application configured to deliver designated information (e.g., calls, messages, or alarms) to an external electronic device, or a device management application configured to manage the external electronic device.
- the notification relay application for example, transmits notification information corresponding to a specified event (e.g., mail reception) generated in another application (e.g., email application 269) of the electronic device 101 to an external electronic device. You can. Additionally or alternatively, the notification relay application may receive notification information from an external electronic device and provide it to the user of the electronic device 101.
- the device management application may, for example, control the power (e.g., turn-on or turn-on) of an external electronic device or some component thereof (e.g., display device 160 or camera module 180) that communicates with the electronic device 101. -off) or functions (e.g., brightness, resolution, or focus of the display device 160 or the camera module 180) can be controlled.
- a device management application may additionally or alternatively support installation, deletion, or update of applications running on external electronic devices.
- FIG. 3 is a diagram illustrating an example in which an electronic device and an access point (AP) operate in multi-link operation (MLO), according to various embodiments of the present invention.
- AP access point
- MLO multi-link operation
- the wireless LAN system 300 may include an electronic device 310 and/or an external electronic device 320.
- the electronic device 310 may perform wireless communication with an external electronic device 320 through short-range wireless communication.
- Wireless communication may refer to various communication methods that both the electronic device 310 and/or the external electronic device 320 can support.
- wireless communication may be Wi-Fi.
- the external electronic device 320 may function as a base station that provides wireless communication to at least one electronic device 310 located within the communication radius of the wireless LAN system 300.
- the external electronic device 320 may include an access point (AP) that complies with the IEEE 802.11 standard.
- the electronic device 310 may include a station (STA) that complies with the IEEE 802.11 standard.
- the electronic device 310 and/or the external electronic device 320 may support multi-link operation (multi-link operation, MLO).
- Multi-link operation may be an operation mode that transmits or receives data through a plurality of links (eg, the first link 331 and the second link 332).
- Multi-link operation may be an operation mode that transmits or receives data through multiple links based on multiple bands or channels.
- the electronic device 310 includes a plurality of communication circuits (e.g., a first communication circuit 311 and/or a second communication circuit 312) to support multi-link operations. can do.
- the first communication circuit 311 can transmit data to the external electronic device 320 through the first link 331, or receive data transmitted by the external electronic device 320 through the first link 331. there is.
- the first communication circuit 311 may output or receive a signal in the frequency band corresponding to the first link 331 through the first antenna 313.
- the second communication circuit 312 can transmit data to the external electronic device 320 through the second link 332, or receive data transmitted by the external electronic device 320 through the second link 332. there is.
- the second communication circuit 312 may output or receive a signal in the frequency band corresponding to the second link 332 through the second antenna 314.
- the first communication circuit 311 and/or the second communication circuit 312 may be integrated into one communication circuit.
- the external electronic device 320 includes a plurality of communication circuits (e.g., a third communication circuit 321 and/or a fourth communication circuit 322) to support multi-link operations. It can be included.
- the third communication circuit 321 may transmit data to the electronic device 310 through the first link 331 or receive data transmitted by the electronic device 310 through the first link 331.
- the third communication circuit 321 may output or receive a signal in the frequency band corresponding to the first link 331 through the third antenna 323.
- the fourth communication circuit 322 may transmit data to the electronic device 310 through the second link 332 or receive data transmitted by the electronic device 310 through the second link 332.
- the fourth communication circuit 322 may output or receive a signal in the frequency band corresponding to the second link 332 through the fourth antenna 324.
- the third communication circuit 321 and/or the fourth communication circuit 322 may be integrated and implemented as one communication circuit.
- the frequency band of the first link 331 and the frequency band of the second link 333 may be different from each other.
- the frequency band of the first link 331 may be 2.5 GHz
- the frequency band of the second link 332 may be 5 GHz or 6 GHz.
- the first link 331 and the second link 332 may also use electronic devices other than the electronic device 310.
- the electronic device 310 may support a carrier sense multiple access with collision avoidance (CSMA/CA) method.
- CSMA/CA carrier sense multiple access with collision avoidance
- the CSMA/CA method may be a method of performing data transmission when a specific link is in an idle state.
- the electronic device 310 supporting CSMA/CA detects whether another electronic device is transmitting data through a specific link, and when detecting transmission of data, defers transmission of data through the specific link. And you can wait.
- Electronic device 310 that supports CSMA/CA responds to detecting that another electronic device is not transmitting data over a particular link, in a specified manner (e.g., activating a timer, and transmitting data when the timer expires). Accordingly, data can be transmitted through a specific link. Through the above method, the electronic device 310 can transmit and/or receive data using a specific link without colliding with other electronic devices.
- the first link 331 and/or the second link 332 supported by multi-link operation may independently support CSMA/CA.
- the electronic device 310 supporting the CSMA/CA method can check whether a specific link is in an idle state before transmitting data.
- the electronic device 310 may transmit data through a specific link that is in an idle state.
- the electronic device 310 may check whether the first link 331 is in an idle state based on information related to the idle state of the first link 331 included in data transmitted by the external electronic device 320. .
- Information related to the idle state of the first link 331 may include a clear channel assessment (CCA) field and/or a network allocation vector (NAV) configuration field.
- Information related to the idle state of the first link 331 includes an RTS (ready to send) message requesting data transmission through the first link 331, and an RTS (ready to send) message indicating that data is waiting to be received through the first link 331. It can be included in a CTS (clear to send) message.
- the electronic device 310 may check whether a specific link is in an idle state by referring to the clear channel assessment (CCA) field and/or the network allocation vector (NAV) configuration field.
- the electronic device 310 determines whether the first link 331 is physically idle by referring to the CCA status field, and determines whether the first link 331 is logically idle by referring to the NAV configuration field. You can judge whether or not.
- the electronic device 310 activates a timer and, after the specified time expires, transmits data to the external electronic device 320 through the first link 331. You can.
- the electronic device 310 may check whether the second link 332 is in an idle state based on information related to the idle state of the second link 332 included in data transmitted by the external electronic device 320. .
- Information related to the idle state of the second link 332 may include a clear channel assessment (CCA) field and/or a network allocation vector (NAV) configuration field.
- Information related to the idle state of the second link 332 includes a ready to send (RTS) message requesting permission to transmit data through the second link 332 and waiting to receive data through the second link 332. It may be included in the indicating CTS (clear to send) message.
- the electronic device 310 may check whether a specific link is in an idle state by referring to the clear channel assessment (CCA) field and/or the network allocation vector (NAV) configuration field. The electronic device 310 determines whether the second link 332 is physically idle by referring to the CCA status field, and determines whether the second link 332 is logically idle by referring to the NAV configuration field. You can judge whether or not. In response to confirming that a specific link is in an idle state, the electronic device 310 may activate a timer and transmit data to the external electronic device 320 through the second link 332 after the specified time expires.
- CCA clear channel assessment
- NAV network allocation vector
- FIG. 4A is a diagram illustrating an embodiment in which an electronic device controls a communication circuit based on target wake time (TWT).
- TWT target wake time
- An electronic device may support a target wake time (TWT) in which data is received and/or transmitted at specified times, and data is not received and/or transmitted during other times. there is.
- TWT target wake time
- TWT is a function proposed in the IEEE 802.11 standard, where an electronic device transmits and/or receives data through short-range wireless communication during a specified time, and enters an idle state (or inactive state) for any time other than the specified time. , the power consumed when performing short-range wireless communication can be reduced.
- TWT parameters may be parameters required to perform the TWT function.
- the TWT parameters include Target Wake Time (411) indicating the activation point of data transmission and/or reception, TWT duration (or TWT SP) indicating the section in which data transmission and/or reception can be performed. (service period)) (412-a, 412-b, 412-c) and/or indicates the interval (or interval) between the activation time of data transmission and/or reception and the next activation time of data transmission and/or reception. It may include at least one of the TWT wake intervals (413-a, 413-b).
- the electronic device 310 may transmit the generated TWT parameters to the external electronic device 320 during a negotiation process related to activation of the TWT function.
- the external electronic device 320 may transmit data to the electronic device 310 for a specific period of time (e.g., 412-a, 412-b, and/or 412-c) based on the TWT parameter.
- the electronic device 310 may transmit data to the external electronic device 320 during a specific period (eg, 412-a, 412-b, and/or 412-c).
- the electronic device 310 uses a communication circuit (e.g., the first communication circuit 311 of FIG. 3) and/or a second communication circuit for a specific period of time (e.g., 412-a, 412-b, and/or 412-c). (312)) can be activated, and during other periods (e.g., 414-a and/or 414-b), the communication circuits 311 and 312 are deactivated, thereby reducing the power consumed by the communication circuits 311 and 312. can be reduced.
- a communication circuit e.g., the first communication circuit 311 of FIG. 3
- a second communication circuit for a specific period of time e.g., 412-a, 412-b, and/or 412-c.
- the electronic device 310 that supports transmission and/or reception of data through a plurality of links (e.g., the first link 331 and/or the second link 332 in FIG. 3) includes a TWT function for each link. You can also set . According to one embodiment, the electronic device 310 may transmit and/or receive data using all of the plurality of links during the same time while the TWT function of the plurality of links is activated.
- FIG. 4B is a diagram illustrating an embodiment in which an electronic device performs a TWT operation.
- the electronic device 310 (e.g., the electronic device 310 of FIG. 3) is connected to the external electronic device 320 (e.g., the external electronic device 320 of FIG. 3) and the external electronic device 320. Through negotiation, you can activate the TWT function and set TWT parameters.
- the electronic device 310 may transmit a TWT request message 421 requesting TWT negotiation to the external electronic device 320 in order to activate the TWT function.
- the TWT request message 421 may include TWT parameters generated by the electronic device 310.
- TWT parameters may be parameters required to perform the TWT function.
- the TWT parameters include Target Wake Time 423 indicating the activation point of data transmission and/or reception, TWT duration (or TWT SP) indicating the section in which data transmission and/or reception can be performed. (service period)) (424, 427) and/or TWT wake interval (426, 429) indicating the interval (or interval) between the activation time of data transmission and/or reception and the next activation time of data transmission and/or reception. ) may include at least one of
- the external electronic device 320 receives the TWT request message 421, modifies (or maintains as is) the TWT parameters included in the TWT request message 421, and modifies the modified TWT parameters (or TWT request message 421 ) may be transmitted to the electronic device 310.
- the electronic device 310 may perform operations based on the TWT parameters included in the TWT response message.
- the electronic device 310 may transmit data to the external electronic device 320 (311) during a specific period (424, 427).
- the electronic device 310 may activate communication circuitry (e.g., wireless communication module 192 of FIG. 1) during certain periods 424 and 427, and may activate communication circuitry 192 during other periods 425 and 428. By deactivating , power consumption by the communication circuit 192 can be reduced.
- FIG. 4C is a diagram illustrating an embodiment in which an electronic device controls a communication circuit based on a power saving mode.
- An electronic device when transmission or reception of a packet does not occur for a specified time after the transmission or reception of a packet is completed, puts the communication circuit supporting short-distance wireless communication in an idle state (Alternatively, a power saving mode that switches to a deactivated state (doze state) may be supported. By switching the communication circuit to an idle state, the electronic device 310 can reduce power consumption caused by maintaining the communication circuit in an active state even in situations where packet transmission or reception does not occur.
- the electronic device 310 may activate a counter capable of counting the designated time 433.
- the electronic device 310 may check (or monitor) whether packet transmission or reception occurs during the designated time 433.
- the electronic device 310 may maintain the communication circuit in an activated state (or not switch to an idle state) until the specified time 433 expires.
- the electronic device 310 may detect that transmission or reception of the packet 434 occurs a certain time 432 after transmission or reception of the packet 431 is completed.
- the constant time 432 may be less than the specified time 433 assigned to the counter.
- the electronic device 310 may keep the communication circuit active and/or deactivate the counter, and transmit or receive the packet 434.
- the electronic device 310 may reactivate the counter and check (or monitor) whether transmission or reception of the packet occurs during the specified time 435. .
- the electronic device 310 may confirm that no packet transmission or reception occurs during the specified time 435 assigned to the counter, and may switch the communication circuit to an idle state based on expiration of the specified time 435. there is.
- the electronic device 310 can reduce power consumption by switching the communication circuit to an idle state.
- the electronic device 310 may switch the communication circuit back to the active state based on confirmation that transmission or reception of a packet has occurred and perform transmission or reception of the packet.
- the electronic device 310 detects the presence of a packet to be transmitted by the external electronic device 320 to the electronic device 310, which is included in a beacon transmitted by the external electronic device (e.g., the external electronic device 320 in FIG. 3).
- the indicating TIM (traffic indication map) element can be checked, the communication circuit can be switched back to the active state, and a packet can be received from the external electronic device 320.
- FIG. 4D is a diagram illustrating an embodiment in which an electronic device controls a communication circuit based on one of TWT mode or power saving mode.
- An electronic device may transmit or receive a packet using the TWT mode shown in FIG. 4B or the power saving mode shown in FIG. 4C.
- transmitting or receiving packets using the TWT mode is different from transmitting or receiving packets using the power saving mode. Compared to this, relatively low power consumption can be achieved.
- the electronic device 310 can transmit or receive packets before the power saving mode counter expires, thereby switching the communication circuit to an idle state. It can be prevented.
- FIG. 5 is a block diagram of an electronic device according to various embodiments of the present invention.
- the electronic device (e.g., the electronic device 310 in FIG. 3) includes a communication circuit 510 (e.g., the first communication circuit 311 or the second communication circuit 312 in FIG. 4b) and/or a processor 520 ( For example, it may include the processor 120 of FIG. 1).
- a communication circuit 510 e.g., the first communication circuit 311 or the second communication circuit 312 in FIG. 4b
- a processor 520 For example, it may include the processor 120 of FIG. 1).
- Communication circuit 510 may include various circuit structures used for modulating and/or demodulating signals within electronic device 310.
- the communication circuit 510 modulates a baseband signal into a RF (radio frequency) band signal to be output through an antenna (not shown), or modulates an RF band signal received through an antenna into a baseband signal. It can be demodulated into a signal in the band and transmitted to the processor 520.
- RF radio frequency
- the communication circuit 510 may receive a packet transmitted from an external electronic device (e.g., the external electronic device 320 of FIG. 3) through at least one link, or may transmit a packet to the external electronic device 320.
- an external electronic device e.g., the external electronic device 320 of FIG. 3
- the communication circuit 510 may support multi-link operation (MLO).
- MLO multi-link operation
- the communication circuit 510 sends a plurality of packets to an external electronic device (e.g., the external electronic device in FIG. 3) through a first link (e.g., the first link 331 in FIG. 3).
- Data transmitted by the external electronic device 320 may be transmitted to the electronic device 320 or data transmitted by the external electronic device 320 may be received through the first link 331.
- the communication circuit 510 transmits a packet to the external electronic device 320 through a second link (e.g., the second link 332 in FIG. 3) or transmits the packet to the external electronic device 320 through the second link 332. You can receive packets transmitted by .
- the communication circuit 510 may output or receive a signal in the frequency band corresponding to the first link 331 through an antenna (not shown), and may output or receive a signal in the frequency band corresponding to the second link 332 through the antenna. It can be output or received through (not shown).
- the frequency band of the first link 331 and the frequency band of the second link 333 may be different from each other.
- the frequency band of the first link 331 may be 2.5 GHz
- the frequency band of the second link 332 may be 5 GHz or 6 GHz.
- Communication circuit 510 may support TWT mode and/or power saving mode.
- TWT mode the communication circuit 510 is activated every specified time (e.g., target wake time 423 in FIG. 4b), and communication is performed during a specified period (e.g., TWT SP (service period) 424, 427 in FIG. 4b).
- TWT SP service period
- This may be a mode in which packets can be transmitted or received by keeping the circuit 510 active.
- the power saving mode may be a mode in which the communication circuit 510 is switched to a deactivated state when no packet transmission or reception occurs for a designated time (e.g., designated time 433 in FIG. 4C).
- the communication circuit 510 may operate in TWT mode or power saving mode based on control of the processor 520.
- the processor 520 may perform an operation of receiving data transmitted by an application processor (e.g., processor 120 of FIG. 1) and generating a packet for transmitting the received data to the external electronic device 320. there is.
- the processor 520 may be defined as a communication processor (or communication processor) included in a communication module (eg, the wireless communication module 192 of FIG. 1).
- the processor 520 generates a packet by performing channel coding based on data transmitted by an application processor (e.g., the application processor 120 of FIG. 1), or the external electronic device 320 It is possible to check whether at least part of the transmitted data has an error or, if an error occurs, to perform an error recovery operation (e.g., HARQ (hybrid auto repeat request)).
- HARQ hybrid auto repeat request
- the processor 520 may be operatively connected to the communication circuit 510 and control the operation of the communication circuit 510 .
- the processor 520 may receive data transmitted by the application processor 120 and select a link to use for transmitting or receiving a packet corresponding to the data based on the characteristics of the service included in the data.
- the processor 520 may control the communication circuit 510 using either a TWT mode or a power saving mode.
- the processor 520 selects a mode based on the time interval between packets transmitted or received through at least one link (e.g., the first link 331). Therefore, either TWT mode or power saving mode can be selected.
- the processor 520 may check time intervals between packets transmitted or received through at least one link (eg, the first link 331).
- the time interval between packets may mean an interval between a first time point that is substantially the same as the time when transmission or reception of a packet is completed and a second time point that is substantially the same as the time when transmission or reception of the next packet begins.
- the processor 520 may identify a time interval having a value less than (or less than) a specified value among the time intervals between packets.
- the designated size is a value generated based on the value assigned to the timer activated in power saving mode, and may be the same as or a similar value to the value assigned to the timer.
- control of the communication circuit 510 using the power saving mode provides higher power efficiency compared to control of the communication circuit 510 using the TWT mode. It can be implemented.
- control of the communication circuit 510 using the TWT mode provides higher power efficiency compared to control of the communication circuit 510 using the power saving mode. It can be implemented.
- the processor 520 may check the ratio of time intervals between packets that are less than (or less than) a specified size.
- the ratio of time intervals may be the ratio of the sum of time intervals that are less than (or less than) a specified size and the total sum of time intervals between packets.
- the ratio of time intervals may be the ratio of the number of time intervals less than (or less than) a specified size and the number of time intervals between packets.
- the processor 520 may select either the TWT mode or the power saving mode based on the confirmed ratio.
- Processor 520 may select a TWT mode based on confirming that the confirmed ratio is greater than (or greater than) a specified value (e.g., 0.5).
- a specified value e.g., 0.5
- a situation where the confirmed rate is greater than (or exceeds) the specified value may mean that a state in which the time interval between packets is smaller than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets may occur relatively frequently. If a state in which the time interval is smaller than the value assigned to the timer set in power saving mode occurs relatively frequently, control of the communication circuit 510 using the TWT mode has a higher Power efficiency can be realized.
- the processor 520 may select a power saving mode based on confirming that the confirmed ratio is less than (or less than) a specified value (eg, 0.5).
- a situation where the confirmed rate is less than (or less than) a specified value may mean that a state in which the time interval between packets is greater than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets occurs relatively frequently. If a state in which the time interval is greater than the value assigned to the timer set in the power saving mode occurs relatively frequently, control of the communication circuit 510 using the power saving mode has a higher Power efficiency can be realized.
- the processor 520 may control the communication circuit 510 based on the selected mode.
- the processor 520 selects the TWT mode based on confirming that the confirmed ratio is greater than (or exceeds) a specified value (e.g., 0.5), and configures the communication circuit 510 to operate in the TWT mode. ) can be controlled.
- a specified value e.g., 0.5
- the processor 520 may perform TWT negotiation with an external electronic device (eg, the external electronic device 320 of FIG. 3) to support a target wake time (TWT) function.
- an external electronic device eg, the external electronic device 320 of FIG. 3
- TWT target wake time
- the processor 520 may generate TWT parameters during the TWT negotiation process. According to one embodiment, the processor 520 may generate TWT parameters based on the state of the electronic device 310.
- the state of the electronic device 310 may include the size of data (or traffic) to be transmitted or received by the electronic device 310, quality of service (QoS) requirements, or contention of at least one link among a plurality of links. It may include at least one contention level.
- QoS quality of service
- the processor 520 includes a Target Wake Time indicating the activation point of data transmission and/or reception (e.g., 411 in FIG. 4A), and a TWT duration indicating a section in which data transmission and/or reception can be performed (e.g., 412-a, 412-b, 412-c) of FIG. 4A and/or TWT wake indicating the interval (or interval) between the activation time of data transmission and/or reception and the next activation time of data transmission and/or reception.
- a TWT parameter including at least one of intervals (e.g., 413-a and 413-b in FIG. 4A) can be created.
- the processor 520 sets a TWT duration with a relatively large length and/or a TWT wake interval with a relatively small length, based on performing a service that requires relatively high-capacity data transmission and relatively low latency. can be created.
- the processor 520 may perform a TWT duration having a relatively small length and/or a TWT having a relatively long length based on performing a service that does not require a relatively small amount of data transmission and relatively low latency.
- a wake interval can be created.
- the processor 520 may transmit a TWT negotiation message including the generated TWT parameters to the external electronic device 320.
- the processor 520 may select a power saving mode and control the communication circuit 510 to operate in the power saving mode, based on confirming that the confirmed ratio is less than (or less than) a specified value (e.g., 0.5). .
- the processor 520 may control the communication circuit 510 to transmit information indicating that the electronic device 310 operates in the power saving mode to the external electronic device 320. While operating in a power saving mode, the processor 520 may activate the communication circuit 510 for a certain period of time to receive data (or beacons) transmitted by the external electronic device 320. As the external electronic device 320 receives information indicating that the electronic device 310 operates in a power saving mode, the packet to be transmitted to the electronic device 310 is stored in a buffer implemented inside the external electronic device 320. It can be saved in (buffer).
- the external electronic device 320 may transmit to the electronic device 310 a beacon or action frame containing information indicating the existence of a packet to be transmitted to the electronic device 310.
- the electronic device 310 determines the activation state of the communication circuit 510 as it receives a beacon or action frame containing information indicating the presence of a packet to be transmitted while the communication circuit 510 is activated for a portion of the period. You can switch to (or maintain the activated state of the communication circuit 510).
- a situation where the confirmed rate is less than (or less than) a specified value may mean that a state in which the time interval between packets is greater than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets occurs relatively frequently. If a state in which the time interval is greater than the value assigned to the timer set in the power saving mode occurs relatively frequently, control of the communication circuit 510 using the power saving mode has a higher Power efficiency can be realized.
- the processor 520 can achieve lower power consumption by selecting an appropriate mode depending on the situation, either the TWT mode or the power saving mode, through the operations described above.
- Processor 520 may continuously monitor the ratio and adjust the operating mode based on changing conditions related to whether the ratio is above (or above) a specified value. For example, if the processor 520 determines that the ratio is above a specified value (e.g., 0.5) and decreases below a specified value, the processor 520 may control the communication circuit 510 to switch from the TWT mode to the power saving mode. there is.
- a specified value e.g., 0.5
- the processor 520 may receive information indicating the operation mode from the application processor 120 and select the TWT mode or the power saving mode based on the information indicating the operation mode.
- the application processor 120 may monitor packets transmitted to the processor 520.
- the application processor 120 may check the ratio of time intervals between packets delivered to the processor 520 that are less than (or less than) a specified size.
- the application processor 120 may change the operation mode when a condition related to whether the confirmed ratio is greater than (or exceeds) a specified value changes. For example, when the application processor 510 determines that the ratio decreases below a specified value while being above a specified value (e.g., 0.5), it sends information instructing the processor 520 to switch from the TWT mode to the power saving mode.
- a specified value e.g., 0.5
- the processor 520 may control the communication circuit 510 to switch from the TWT mode to the power saving mode as it receives information instructing to switch from the TWT mode to the power saving mode. For example, when the application processor 510 determines that the ratio increases to a specified value or more while being below a specified value (e.g., 0.5), it sends information instructing the processor 520 to switch from the power saving mode to the TWT mode. It can be sent to .
- the processor 520 may control the communication circuit 510 to switch from the power saving mode to the TWT mode upon receiving information instructing to switch from the power saving mode to the TWT mode.
- the processor 520 may, based on the type of service running on the electronic device 500, select one of the time intervals between packets being transmitted or received, having a specified size or less. Based on the ratio, it can be determined whether to perform the operation of selecting either the TWT mode or the power saving mode.
- the processor 520 based on confirming that the service type running on the electronic device 500 is a designated service type, selects a time interval less than or equal to the specified size among the time intervals between transmitted or received packets. Based on the ratio of the interval, it may be determined to perform an operation to select either the TWT mode or the power saving mode.
- the type of service may refer to the type of service determined by the service type (TID) defined in the IEEE 802.11 standard.
- the type of service is a first type (e.g., voice data type (AC_VO), video data type (AC_VI)) that requires a relatively high transmission rate or low latency (e.g., real-time).
- a second type e.g, background (AC_BK) and/or best effort (AC_BE)
- AC_BE best effort
- the processor 520 may receive information indicating the type of service from the application processor 120.
- the application processor 120 provides the type of protocol used to transmit or receive packets (e.g., user datagram protocol (UDP), transmission control protocol (TCP), information on the port used to transmit or receive packets, and/ Alternatively, based on the identification information of the application transmitting the packet, the type of service running on the electronic device 500 can be confirmed.
- the processor 520 may provide information indicating the type of service transmitted by the application processor 120. can be received, and it can be confirmed whether the service type running on the electronic device 500 is one of the first type or the second type.
- the processor 520 determines the ratio of time intervals having a specified size or less among the time intervals between transmitted or received packets. Based on this, it may be decided to perform an operation to select either the TWT mode or the power saving mode.
- the processor 520 determines the ratio of time intervals having a specified size or less among the time intervals between transmitted or received packets. Based on this, it may be decided not to perform the operation of selecting either the TWT mode or the power saving mode.
- the processor 520 may control the communication circuit 510 using the TWT mode regardless of the time interval ratio, based on confirming that the service type running on the electronic device 500 is the first type.
- the processor 520 regardless of the type of service running on the electronic device 500, based on the ratio of time intervals having a specified size or less among the time intervals between transmitted or received packets.
- An operation can be performed to select either TWT mode or power saving mode.
- the embodiment described above is shown as using the time interval of packets transmitted or received through one link, but when the electronic device 500 supports transmission or reception of packets through multiple links (or , can also be applied (if MLO mode is supported). An embodiment using the time interval of packets transmitted or received through multiple links will be described later with reference to FIGS. 7A and 7B.
- FIG. 6A is a diagram illustrating an embodiment of selecting either a power saving mode or a TWT mode based on the ratio of time intervals of packet time intervals that are less than a specified value in an electronic device according to various embodiments of the present invention. am.
- FIG. 6A shows packets 601, 602, 603, 604, and 605 transmitted or received through at least one link (eg, the first link 331 in FIG. 3).
- An electronic device may control a communication circuit (e.g., the communication circuit 510 of FIG. 5) using either a TWT mode or a power saving mode.
- a communication circuit e.g., the communication circuit 510 of FIG. 5
- the electronic device 310 selects between packets 601, 602, 603, 604, and 605 transmitted or received through at least one link 331. Based on the time interval (611, 612, 613, 614), either TWT mode or power saving mode can be selected.
- the processor 520 can check the time intervals 611, 612, 613, and 614 between packets 601, 602, 603, 604, and 605 transmitted or received through at least one link 331. there is.
- the time intervals 611, 612, 613, and 614 are less than or equal to a specified value (e.g., the value assigned to the counter activated in power saving mode), It is assumed that some other time intervals 612 are greater than the specified value, and the sum of the lengths of some time intervals 611, 613, and 614 is assumed to be greater than the length of some other time intervals 612.
- a specified value e.g., the value assigned to the counter activated in power saving mode
- the processor 520 among the time intervals 611, 612, 613, 614 between the packets 601, 602, 603, 604, and 605, is a time interval 611, 613, less than (or less than) a specified size. 614) ratio can be confirmed.
- the ratio of the time intervals is the sum of the time intervals 611, 613, 614 of less than (or less than) a specified size, and the time intervals 611, 612, and It may be the ratio of the total sum of 613, 614).
- the ratio of time intervals is the number of time intervals 611, 613, 614 less than (or less than) a specified size and the time intervals 611, 612 between packets 601, 602, 603, 604, 605. , 613, 614).
- the electronic device 310 may select either the TWT mode or the power saving mode based on the confirmed ratio of time intervals.
- the electronic device 310 may select the TWT mode based on confirming that the confirmed ratio is greater than (or greater than) a specified value (eg, 0.5).
- the situation where the confirmed rate is greater than (or exceeds) the specified value is when the time intervals (611, 612, 613, 614) between the packets (601, 602, 603, 604, 605) are assigned to the timer set in power saving mode. This may mean that a state less than the value occurs relatively frequently, and the time intervals (611, 612, 613, 614) between packets (601, 602, 603, 604, 605) are assigned to the timer set in sleep mode. If a state smaller than the specified value occurs relatively frequently, control of the communication circuit 510 using the TWT mode can achieve higher power efficiency than control of the communication circuit 510 using the power saving mode.
- a specified value e.g, 0.5
- the electronic device 310 selects the TWT mode based on confirming that the confirmed ratio is greater than (or exceeds) a specified value (e.g., 0.5), and uses a communication circuit to operate in the TWT mode. 510) can be controlled.
- a specified value e.g., 0.5
- the electronic device 310 may perform TWT negotiation with an external electronic device (eg, the external electronic device 320 of FIG. 3) in order to support a target wake time (TWT) function.
- an external electronic device eg, the external electronic device 320 of FIG. 3
- TWT target wake time
- the electronic device 310 may generate TWT parameters during the TWT negotiation process. According to one embodiment, the electronic device 310 may generate TWT parameters based on the state of the electronic device 310.
- the state of the electronic device 310 may include the size of data (or traffic) to be transmitted or received by the electronic device 310, quality of service (QoS) requirements, or contention of at least one link among a plurality of links. It may include at least one contention level.
- the electronic device 310 includes a Target Wake Time indicating the activation point of data transmission and/or reception (e.g., 411 in FIG. 4A), and a TWT duration indicating a section in which data transmission and/or reception can be performed (e.g. : TWT indicating the interval (or interval) between the activation time of data transmission and/or reception (412-a, 412-b, 412-c) of FIG. 4A and/or the next activation time of data transmission and/or reception.
- a TWT parameter including at least one of the wake intervals (e.g., 413-a and 413-b in FIG. 4A) can be created.
- the electronic device 310 Based on performing a service that requires relatively high-capacity data transmission and relatively low latency, the electronic device 310 provides a TWT duration with a relatively large length and/or a TWT wake interval with a relatively small length. can be created. Alternatively, the electronic device 310 may have a TWT duration with a relatively small length and/or a TWT duration with a relatively long length, based on performing a service that does not require relatively large data transmission and relatively low latency. A TWT wake interval can be created.
- FIG. 6B is a diagram illustrating an embodiment of selecting either a power saving mode or a TWT mode based on the ratio of time intervals of packet time intervals that are less than a specified value in an electronic device according to various embodiments of the present invention. am.
- FIG. 6B shows packets 621, 622, 623, and 624 transmitted or received through at least one link (eg, the first link 331 in FIG. 3).
- An electronic device may control a communication circuit (e.g., the communication circuit 510 of FIG. 5) using either a TWT mode or a power saving mode.
- a communication circuit e.g., the communication circuit 510 of FIG. 5
- the electronic device 310 selects the time between packets 621, 622, 623, and 624 transmitted or received through at least one link 331. Based on the intervals 631, 632, and 633, either TWT mode or power saving mode can be selected.
- the processor 520 may check the time intervals 631, 632, and 633 between packets 621, 622, 623, and 624 transmitted or received through at least one link 331.
- time intervals 631, 633 are greater than or equal to a specified value (e.g., the value assigned to the counter activated in sleep mode), and some other times are
- the interval 632 is assumed to be less than or equal to a specified value, and the sum of the lengths of some time intervals 631 and 633 is assumed to be greater than the length of some other time intervals 632.
- the processor 520 may check the ratio of the time interval 632 of the time intervals 631, 632, and 633 between the packets 621, 622, 623, and 624 that are less than (or less than) a specified size. .
- the ratio of time intervals is the ratio of the sum of time intervals 632 of a specified size or less and the total sum of time intervals 631, 632, 633 between packets 621, 622, 623, 624. It can be. Alternatively, the ratio of time intervals is the number of time intervals 632 less than (or less than) a specified size and the number of time intervals 631, 632, 633 between packets 621, 622, 623, and 624. It could be a ratio.
- the electronic device 310 may select either the TWT mode or the power saving mode based on the confirmed ratio of time intervals.
- the electronic device 310 selects a power saving mode based on confirming that the confirmed ratio of time intervals is less than (or less than) a specified value (e.g., 0.5) and configures the communication circuit 510 to operate in the power saving mode. You can control it.
- a specified value e.g., 0.5
- the electronic device 310 may control the communication circuit 510 to transmit information indicating that the electronic device 310 operates in a power saving mode to the external electronic device 320. While operating in a power saving mode, the electronic device 310 may activate the communication circuit 510 for a certain period of time to receive data (or beacons) transmitted by the external electronic device 320. As the external electronic device 320 receives information indicating that the electronic device 310 operates in a power saving mode, the packet to be transmitted to the electronic device 310 is stored in a buffer implemented inside the external electronic device 320. It can be saved in (buffer).
- the external electronic device 320 may transmit to the electronic device 310 a beacon or action frame containing information indicating the existence of a packet to be transmitted to the electronic device 310.
- the electronic device 310 determines the activation state of the communication circuit 510 as it receives a beacon or action frame containing information indicating the presence of a packet to be transmitted while the communication circuit 510 is activated for a portion of the period. You can switch to (or maintain the activated state of the communication circuit 510).
- FIG. 7A is a diagram illustrating an embodiment of transmitting or receiving a packet through a plurality of links in an electronic device according to various embodiments of the present invention.
- An electronic device may support multi-link operation (MLO), which transmits or receives packets through a plurality of links.
- MLO multi-link operation
- the electronic device 310 includes a first link (e.g., the first link 331 in FIG. 3) 701, a second link (e.g., the second link 332 in FIG. 3) 703, and/or 3 Packets can be transmitted or received to an external electronic device (e.g., external electronic device 320 in FIG. 3) through link 705.
- a first link e.g., the first link 331 in FIG. 3
- a second link e.g., the second link 332 in FIG. 3
- 3 Packets can be transmitted or received to an external electronic device (e.g., external electronic device 320 in FIG. 3) through link 705.
- the electronic device 310 may transmit or receive the first packet 711 and the second packet 712 to the external electronic device 320 through the first link 701.
- the electronic device 310 may transmit or receive the third packet 713 to the external electronic device 320 through the second link 703.
- the electronic device 310 may transmit or receive the fourth packet 714 to the external electronic device 320 through the third link 705.
- the first packet 711 is received or transmitted before the third packet 713
- the third packet 713 is received or transmitted before the fourth packet 714
- the fourth packet 713 is received or transmitted before the fourth packet 714. It is assumed that the packet 714 is received or transmitted before the second packet 712.
- the electronic device 310 may check time intervals of packets transmitted or received through the first link 701, the second link 703, and/or the third link 705. The electronic device 310 selects one of the TWT mode and the power saving mode based on the time interval and the ratio of time intervals having a size less than or equal to a specified value among the time intervals, and links to be confirmed are selected.
- the communication circuit 510 can be controlled to operate in the selected mode.
- the electronic device 310 may select the TWT mode based on the identified ratio of time intervals being at least (or exceeding) a specified amount.
- the electronic device 310 may select a power saving mode based on the confirmed ratio of time intervals being less than (or less than) a specified amount. Specific examples will be described later in FIG. 7B.
- FIG. 7B shows an electronic device according to various embodiments of the present invention, showing a mode in either a power saving mode or a TWT mode based on the ratio of time intervals of packets transmitted or received through a plurality of links that are less than a specified value.
- This diagram illustrates an embodiment of selecting a mode.
- the electronic device (e.g., the electronic device 310 of FIG. 5) monitors time intervals of packets transmitted or received through the first link 701, the second link 703, and/or the third link 705. You can check it.
- the electronic device 310 is configured to set a time interval between the first packet 711 transmitted or received through the first link 701 and the third packet 713 transmitted or received through the second link 703. You can check (721).
- the time interval 721 between the first packet 711 and the third packet 713 is substantially the same as the time of completion of transmission or reception of the first packet 711 and the transmission of the third packet 713. Alternatively, it may mean an interval between a reception start point and a second time that is substantially the same.
- the electronic device 310 may check whether the time interval 721 between the first packet 711 and the third packet 713 is less than (or less than) a specified size.
- the designated size is a value generated based on the value assigned to the timer activated in power saving mode, and may be the same as or a similar value to the value assigned to the timer.
- the electronic device 310 determines the time interval between the third packet 713 transmitted or received through the second link 703 and the fourth packet 714 transmitted or received through the third link 705. You can check (723).
- the time interval 723 between the third packet 713 and the fourth packet 714 is substantially the same as the time of completion of transmission or reception of the third packet 713 and the transmission of the fourth packet 714. Alternatively, it may mean an interval between a reception start point and a fourth time that is substantially the same.
- the electronic device 310 may check whether the time interval 723 between the third packet 713 and the fourth packet 714 is less than (or less than) a specified size.
- the electronic device 310 determines the time interval between the fourth packet 714 transmitted or received through the third link 705 and the second packet 712 transmitted or received through the first link 701. You can check (725).
- the time interval 725 between the fourth packet 714 and the second packet 712 is substantially the same as the time of completion of transmission or reception of the fourth packet 714 and the transmission of the second packet 712. Alternatively, it may mean an interval between the reception start point and a sixth time that is substantially the same.
- the electronic device 310 may check whether the time interval 725 between the fourth packet 714 and the second packet 712 is less than (or less than) a specified size.
- the electronic device 310 selects one of the TWT mode and the power saving mode based on the time interval and the ratio of time intervals having a size less than or equal to a specified value among the time intervals, and links to be confirmed are selected.
- the communication circuit 510 can be controlled to operate in the selected mode.
- the electronic device 310 may select the TWT mode based on the fact that the confirmed ratio is greater than (or exceeds) a specified size.
- the electronic device 310 may select a power saving mode based on the fact that the confirmed ratio is less than (or less than) a specified size.
- the electronic device 310 may select the TWT mode based on confirming that the confirmed ratio of time intervals is greater than (or greater than) a specified value (eg, 0.5).
- a situation where the confirmed ratio of time intervals is greater than (or exceeds) a specified value may mean that a state in which the time interval between packets is less than the value assigned to the timer set in power saving mode occurs relatively frequently, and packets If a state occurs relatively frequently where the time interval between the values is smaller than the value assigned to the timer set in the power saving mode, control of the communication circuit 510 using the TWT mode is controlled by the control of the communication circuit 510 using the power saving mode. Higher power efficiency can be achieved compared to
- the electronic device 310 may select a power saving mode based on confirming that the confirmed ratio of time intervals is less than (or less than) a specified value (eg, 0.5).
- a situation where the confirmed rate is less than (or less than) a specified value may mean that a state in which the time interval between packets is greater than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets occurs relatively frequently. If a state in which the time interval is greater than the value assigned to the timer set in the power saving mode occurs relatively frequently, control of the communication circuit 510 using the power saving mode has a higher Power efficiency can be realized.
- the electronic device 310 selects the TWT mode based on confirming that the confirmed ratio is greater than (or exceeds) a specified value (e.g., 0.5), and uses a communication circuit to operate in the TWT mode. 510) can be controlled.
- a specified value e.g., 0.5
- the electronic device 310 may perform TWT negotiation with an external electronic device (eg, the external electronic device 320 of FIG. 3) in order to support a target wake time (TWT) function.
- an external electronic device eg, the external electronic device 320 of FIG. 3
- TWT target wake time
- the electronic device 310 may generate TWT parameters during the TWT negotiation process.
- the processor 520 may generate TWT parameters based on the state of the electronic device 310.
- the state of the electronic device 310 may include the size of data (or traffic) to be transmitted or received by the electronic device 310, quality of service (QoS) requirements, or contention of at least one link among a plurality of links. It may include at least one contention level.
- QoS quality of service
- the electronic device 310 includes a Target Wake Time indicating the activation point of data transmission and/or reception (e.g., 411 in FIG. 4A), and a TWT duration indicating a section in which data transmission and/or reception can be performed (e.g. : TWT indicating the interval (or interval) between the activation time of data transmission and/or reception (412-a, 412-b, 412-c) of FIG. 4A and/or the next activation time of data transmission and/or reception.
- a TWT parameter including at least one of the wake intervals (e.g., 413-a and 413-b in FIG. 4A) can be created.
- the electronic device 310 Based on performing a service that requires relatively high-capacity data transmission and relatively low latency, the electronic device 310 provides a TWT duration with a relatively large length and/or a TWT wake interval with a relatively small length. can be created.
- the processor 520 may provide TWT duration with a relatively small length and/or TWT with a relatively long length based on performing a service that does not require relatively large data transmission and relatively low latency.
- a wake interval can be created.
- the electronic device 310 may add information indicating a link operating in TWT mode to a message (or beacon) including TWT parameters.
- a link operating in TWT mode may include a link where packets whose time intervals are subject to confirmation are transmitted or received.
- the first link 701, the second link 703, and/or the third link 705 may be a link where packets subject to confirmation of the time interval are transmitted or received, and include TWT parameters.
- the message may include information indicating that the first link 701, the second link 703, and/or the third link 705 are links operating in TWT mode.
- a message containing TWT parameters is sent to the first link 701. And/or information indicating that the second link 703 is a link operating in TWT mode may be included. Since packets subject to time interval confirmation are not transmitted or received through the third link 705, the message including TWT parameters does not include information indicating that the third link 705 is a link operating in TWT mode. It may not be possible.
- Figure 8 is a flowchart illustrating a method of operating an electronic device according to various embodiments of the present invention.
- the electronic device may check time intervals of packets transmitted or received through at least one link.
- the time interval between packets may mean an interval between a first time point that is substantially the same as the time when transmission or reception of a packet is completed and a second time point that is substantially the same as the time when transmission or reception of the next packet begins.
- the electronic device 310 may check the ratio of time intervals that are less than or equal to a specified value among time intervals.
- the designated size is a value generated based on the value assigned to the timer activated in power saving mode, and may be the same as or a similar value to the value assigned to the timer.
- control of the communication circuit 510 using the power saving mode provides higher power efficiency compared to control of the communication circuit 510 using the TWT mode. It can be implemented.
- control of the communication circuit 510 using the TWT mode provides higher power efficiency compared to control of the communication circuit 510 using the power saving mode. It can be implemented.
- the electronic device 310 may check the ratio of time intervals between packets that are less than (or less than) a specified size.
- the ratio of time intervals may be the ratio of the sum of time intervals that are less than (or less than) a specified size and the total sum of time intervals between packets.
- the ratio of time intervals may be the ratio of the number of time intervals less than (or less than) a specified size and the number of time intervals between packets.
- the electronic device 310 may select one of target wake time (TWT) mode or power saving mode based on the confirmed ratio of time intervals.
- TWT target wake time
- the electronic device 310 may select the TWT mode based on confirming that the confirmed ratio of time intervals is greater than (or greater than) a specified value (eg, 0.5).
- a situation where the confirmed ratio of time intervals is greater than (or exceeds) a specified value may mean that a state in which the time interval between packets is less than the value assigned to the timer set in power saving mode occurs relatively frequently, and packets If a state occurs relatively frequently where the time interval between the values is smaller than the value assigned to the timer set in the power saving mode, control of the communication circuit 510 using the TWT mode is controlled by the control of the communication circuit 510 using the power saving mode. Higher power efficiency can be achieved compared to
- the electronic device 310 may select a power saving mode based on confirming that the confirmed ratio of time intervals is less than (or less than) a specified value (eg, 0.5).
- a situation where the confirmed rate is less than (or less than) a specified value may mean that a state in which the time interval between packets is greater than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets occurs relatively frequently. If a state in which the time interval is greater than the value assigned to the timer set in the power saving mode occurs relatively frequently, control of the communication circuit 510 using the power saving mode has a higher Power efficiency can be realized.
- the electronic device 310 may control the communication circuit 510 using the selected mode in operation 840.
- processor 520 selects a TWT mode based on confirming that the identified ratio of time intervals is greater than (or exceeds) a specified value (e.g., 0.5) and communicates to operate in the TWT mode.
- the circuit 510 can be controlled.
- the electronic device 310 may perform TWT negotiation with an external electronic device (eg, the external electronic device 320 of FIG. 3) in order to support a target wake time (TWT) function.
- an external electronic device eg, the external electronic device 320 of FIG. 3
- TWT target wake time
- the electronic device 310 may generate TWT parameters during the TWT negotiation process.
- the processor 520 may generate TWT parameters based on the state of the electronic device 310.
- the state of the electronic device 310 may include the size of data (or traffic) to be transmitted or received by the electronic device 310, quality of service (QoS) requirements, or contention of at least one link among a plurality of links. It may include at least one contention level.
- QoS quality of service
- the electronic device 310 includes a Target Wake Time indicating the activation point of data transmission and/or reception (e.g., 411 in FIG. 4A), and a TWT duration indicating a section in which data transmission and/or reception can be performed (e.g. : TWT indicating the interval (or interval) between the activation time of data transmission and/or reception (412-a, 412-b, 412-c) of FIG. 4A and/or the next activation time of data transmission and/or reception.
- a TWT parameter including at least one of the wake intervals (e.g., 413-a and 413-b in FIG. 4A) can be created.
- the electronic device 310 Based on performing a service that requires relatively high-capacity data transmission and relatively low latency, the electronic device 310 provides a TWT duration with a relatively large length and/or a TWT wake interval with a relatively small length. can be created.
- the processor 520 may provide TWT duration with a relatively small length and/or TWT with a relatively long length based on performing a service that does not require relatively large data transmission and relatively low latency.
- a wake interval can be created.
- the electronic device 310 may transmit a TWT negotiation message including the generated TWT parameters to the external electronic device 320.
- the electronic device 310 selects a power saving mode based on confirming that the confirmed ratio of time intervals is less than (or less than) a specified value (e.g., 0.5) and configures the communication circuit 510 to operate in the power saving mode. You can control it.
- a specified value e.g., 0.5
- the electronic device 310 may control the communication circuit 510 to transmit information indicating that the electronic device 310 operates in a power saving mode to the external electronic device 320. While operating in a power saving mode, the electronic device 310 may activate the communication circuit 510 for a certain period of time to receive data (or beacons) transmitted by the external electronic device 320. As the external electronic device 320 receives information indicating that the electronic device 310 operates in a power saving mode, the packet to be transmitted to the electronic device 310 is stored in a buffer implemented inside the external electronic device 320. It can be saved in (buffer).
- the external electronic device 320 may transmit to the electronic device 310 a beacon or action frame containing information indicating the existence of a packet to be transmitted to the electronic device 310.
- the electronic device 310 determines the activation state of the communication circuit 510 as it receives a beacon or action frame containing information indicating the presence of a packet to be transmitted while the communication circuit 510 is activated for a portion of the period. You can switch to (or maintain the activated state of the communication circuit 510).
- a situation where the confirmed rate is less than (or less than) a specified value may mean that a state in which the time interval between packets is greater than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets occurs relatively frequently. If a state in which the time interval is greater than the value assigned to the timer set in the power saving mode occurs relatively frequently, control of the communication circuit 510 using the power saving mode has a higher Power efficiency can be realized.
- Figure 9 is a flowchart illustrating a method of operating an electronic device according to various embodiments of the present invention.
- the electronic device may check time intervals of packets transmitted or received through at least one link.
- the time interval between packets may mean an interval between a first time point that is substantially the same as the time when transmission or reception of a packet is completed and a second time point that is substantially the same as the time when transmission or reception of the next packet begins.
- the electronic device 310 may check the ratio of time intervals that are less than or equal to a specified value among time intervals.
- the designated size is a value generated based on the value assigned to the timer activated in power saving mode, and may be the same as or a similar value to the value assigned to the timer.
- control of the communication circuit 510 using the power saving mode provides higher power efficiency compared to control of the communication circuit 510 using the TWT mode. It can be implemented.
- control of the communication circuit 510 using the TWT mode provides higher power efficiency compared to control of the communication circuit 510 using the power saving mode. It can be implemented.
- the electronic device 310 may check the ratio of time intervals between packets that are less than (or less than) a specified size.
- the ratio of time intervals may be the ratio of the sum of time intervals that are less than (or less than) a specified size and the total sum of time intervals between packets.
- the ratio of time intervals may be the ratio of the number of time intervals less than (or less than) a specified size and the number of time intervals between packets.
- the electronic device 310 may determine whether to activate the target wake time (TWT) mode based on the confirmed ratio.
- TWT target wake time
- the electronic device 310 may determine to activate the TWT mode based on confirmation that the confirmed ratio is greater than (or exceeds) a specified value (eg, 0.5).
- a situation where the confirmed rate is greater than (or exceeds) the specified value may mean that a state in which the time interval between packets is smaller than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets may occur relatively frequently. If a state in which the time interval is smaller than the value assigned to the timer set in power saving mode occurs relatively frequently, control of the communication circuit 510 using the TWT mode has a higher Power efficiency can be realized.
- the electronic device 310 may determine not to activate the TWT mode (or deactivate the TWT mode) based on confirming that the confirmed ratio is less than (or less than) a specified value (e.g., 0.5). there is.
- the electronic device 310 may operate in power saving mode.
- a situation where the confirmed rate is less than (or less than) a specified value may mean that a state in which the time interval between packets is greater than the value assigned to the timer set in power saving mode occurs relatively frequently, and the time interval between packets occurs relatively frequently. If a state in which the time interval is greater than the value assigned to the timer set in the power saving mode occurs relatively frequently, control of the communication circuit 510 using the power saving mode has a higher Power efficiency can be realized.
- the electronic device 310 may control the communication circuit 510 based on whether it is activated or not.
- processor 520 activates TWT mode based on confirming that the identified ratio of time intervals is above (or exceeds) a specified value (e.g., 0.5) and communicates to operate in TWT mode.
- a specified value e.g., 0.5
- the circuit 510 can be controlled.
- the electronic device 310 may perform TWT negotiation with an external electronic device (eg, the external electronic device 320 of FIG. 3) in order to support a target wake time (TWT) function.
- an external electronic device eg, the external electronic device 320 of FIG. 3
- TWT target wake time
- the electronic device 310 may generate TWT parameters during the TWT negotiation process.
- the processor 520 may generate TWT parameters based on the state of the electronic device 310.
- the state of the electronic device 310 may include the size of data (or traffic) to be transmitted or received by the electronic device 310, quality of service (QoS) requirements, or contention of at least one link among a plurality of links. It may include at least one contention level.
- QoS quality of service
- the electronic device 310 includes a Target Wake Time indicating the activation point of data transmission and/or reception (e.g., 411 in FIG. 4A), and a TWT duration indicating a section in which data transmission and/or reception can be performed (e.g. : TWT indicating the interval (or interval) between the activation time of data transmission and/or reception (412-a, 412-b, 412-c) of FIG. 4A and/or the next activation time of data transmission and/or reception.
- a TWT parameter including at least one of the wake intervals (e.g., 413-a and 413-b in FIG. 4A) can be created.
- the electronic device 310 Based on performing a service that requires relatively high-capacity data transmission and relatively low latency, the electronic device 310 provides a TWT duration with a relatively large length and/or a TWT wake interval with a relatively small length. can be created.
- the processor 520 may provide TWT duration with a relatively small length and/or TWT with a relatively long length based on performing a service that does not require relatively large data transmission and relatively low latency.
- a wake interval can be created.
- the electronic device 310 may transmit a TWT negotiation message including the generated TWT parameters to the external electronic device 320.
- the electronic device 310 may select a power saving mode and control the communication circuit 510 to operate in the power saving mode, based on confirming that the confirmed ratio is less than (or less than) a specified value (e.g., 0.5). there is.
- a specified value e.g., 0.5
- the electronic device 310 determines not to activate the TWT mode (or deactivates the TWT mode)
- the electronic device 310 sends information indicating that the electronic device 310 operates in a power saving mode to the external electronic device 320.
- the communication circuit 510 can be controlled to transmit. While operating in a power saving mode, the electronic device 310 may activate the communication circuit 510 for a certain period of time to receive data (or beacons) transmitted by the external electronic device 320.
- the external electronic device 320 receives information indicating that the electronic device 310 operates in a power saving mode, the packet to be transmitted to the electronic device 310 is stored in a buffer implemented inside the external electronic device 320. It can be saved in (buffer).
- the external electronic device 320 may transmit to the electronic device 310 a beacon or action frame containing information indicating the existence of a packet to be transmitted to the electronic device 310.
- the electronic device 310 determines the activation state of the communication circuit 510 as it receives a beacon or action frame containing information indicating the existence of a packet to be transmitted while the communication circuit 510 is activated for a portion of the period. You can switch to (or maintain the activated state of the communication circuit 510).
- a situation where the identified ratio of time intervals is less than (or less than) a specified value may mean that a state in which the time interval between packets is greater than the value assigned to the timer set in power saving mode occurs relatively frequently, and the packet If a state in which the time interval between them is greater than the value assigned to the timer set in the power saving mode occurs relatively frequently, control of the communication circuit 510 using the power saving mode may be replaced by control of the communication circuit 510 using the TWT mode. Higher power efficiency can be achieved compared to
- An electronic device may include a communication circuit that transmits or receives data through at least one link created between an external electronic device and the electronic device.
- An electronic device may include a processor.
- the processor may check time intervals between packets transmitted or received through the at least one link.
- the processor may check the ratio of time intervals among the time intervals that are less than or equal to a specified value.
- the processor switches the communication circuit to a deactivated state in a TWT (target wake time) mode in which the communication circuit is switched to the active state at specified times based on the ratio, or when transmission or reception of the packet does not occur for a specified time. You can select one of the switching power saving modes.
- the processor may be configured to control the communication circuit based on the selected mode.
- the processor may be set to select the TWT mode based on the ratio being greater than or equal to a specified size.
- the processor may be set to select the power saving mode based on the ratio being less than or equal to a specified size.
- the ratio may be a ratio of the length of a time interval that is less than or equal to the specified value and the length of the time interval that is greater than or equal to the specified value.
- the ratio may be a ratio of the number of time intervals that are less than or equal to the specified value and the number of time intervals that are greater than or equal to the specified value.
- the specified value may be set to be equal to the specified time of the power saving mode.
- the processor determines whether to perform an operation of checking time intervals between packets transmitted or received through the at least one link based on the type of service running on the electronic device. It can be set to decide.
- the processor while transmitting or receiving a packet to or from the external electronic device through a plurality of links, determines a connection between packets transmitted or received through at least some links among the plurality of links. You can check the time intervals.
- the processor may check the ratio of the length of a time interval that is less than or equal to the specified value among the time intervals and the length of the time interval that is greater than or equal to the specified value among the time intervals.
- the processor may select one of the target wake time (TWT) mode or the power saving mode based on the ratio of the time intervals.
- the processor may be configured to control the communication circuit so that the at least some links operate in the selected mode.
- the processor may select the TWT mode when the ratio is greater than or equal to a specified size.
- the processor may transmit the TWT mode negotiation message to the external electronic device.
- the TWT mode negotiation message may be set to include information indicating at least some of the links.
- the processor may be set to select the power saving mode when the ratio is less than or equal to a specified size.
- a method of operating an electronic device may include checking time intervals between packets transmitted or received through at least one link created between an external electronic device and the electronic device.
- a method of operating an electronic device may include checking a ratio of a time interval that is less than or equal to a specified value among the time intervals and a time interval that is greater than or equal to the specified value among the time intervals.
- the operating method of the electronic device is a TWT (target wake time) mode in which the communication circuit of the electronic device is switched to the active state at a specified time based on the ratio, or when transmission or reception of the packet does not occur for a specified time, the The operation may include selecting one of power saving modes that switches the communication circuit to a deactivated state.
- a method of operating an electronic device may include controlling the communication circuit based on the selected mode.
- the operation of selecting the one mode may include selecting the TWT mode when the ratio is greater than or equal to a specified size.
- selecting the one mode may include selecting the power saving mode when the ratio is less than or equal to a specified size.
- the ratio may be a ratio of the length of a time interval that is less than or equal to the specified value and the length of the time interval that is greater than or equal to the specified value.
- the ratio may be a ratio of the number of time intervals that are less than or equal to the specified value and the number of time intervals that are greater than or equal to the specified value.
- the specified value may be set to be equal to the specified time of the power saving mode.
- a method of operating an electronic device determines whether to perform an operation of checking time intervals between packets transmitted or received through the at least one link based on the type of service running on the electronic device. Additional actions may be included.
- a method of operating an electronic device includes the time between packets transmitted or received through at least some of the links while transmitting or receiving packets to and from the external electronic device through a plurality of links.
- An operation of checking intervals may be further included.
- the method of operating an electronic device may include checking the ratio of the length of a time interval that is less than or equal to the specified value among the time intervals and the length of the time interval that is greater than or equal to the specified value among the time intervals.
- the operating method of the electronic device may include selecting one of the target wake time (TWT) mode or the power saving mode for a specified time at each specified time based on the ratio.
- the method of operating the electronic device may further include controlling the communication circuit so that the at least some links operate in the selected mode.
- the method of operating an electronic device may further include selecting the TWT mode based on the ratio being greater than or equal to a specified size.
- the method of operating an electronic device may further include transmitting the TWT mode negotiation message to the external electronic device.
- the TWT mode negotiation message may include information indicating at least some of the links.
- the method of operating an electronic device may further include selecting the power saving mode based on the ratio being less than or equal to a specified size.
- Electronic devices may be of various types.
- Electronic devices may include, for example, portable communication devices (e.g., smartphones), computer devices, portable multimedia devices, portable medical devices, cameras, wearable devices, or home appliances.
- Electronic devices according to embodiments of this document are not limited to the above-described devices.
- first, second, or first or second may be used simply to distinguish one component from another, and to refer to that component in other respects (e.g., importance or order) is not limited.
- One (e.g., first) component is said to be “coupled” or “connected” to another (e.g., second) component, with or without the terms “functionally” or “communicatively.” Where mentioned, it means that any of the components can be connected to the other components directly (e.g. wired), wirelessly, or through a third component.
- module used in this document may include a unit implemented in hardware, software, or firmware, and may be used interchangeably with terms such as logic, logic block, component, or circuit, for example.
- a module may be an integrated part or a minimum unit of the parts or a part 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
- Various embodiments of the present document are one or more instructions stored in a storage medium (e.g., built-in memory 136 or external memory 138) that can be read by a machine (e.g., electronic device 101). It may be implemented as software (e.g., program 140) including these.
- a processor e.g., processor 120
- a device e.g., electronic device 101
- the one or more instructions may include code generated by a compiler or code that can be executed by an interpreter.
- Device-readable storage media may be provided in the form of non-transitory storage media.
- 'non-transitory' only means that the storage medium is a tangible device and does not contain signals (e.g. electromagnetic waves). This term refers to cases where data is stored semi-permanently in the storage medium. There is no distinction between temporary storage cases.
- Computer program products are commodities and can be traded between sellers and buyers.
- the computer program product may be distributed in the form of a machine-readable storage medium (e.g. compact disc read only memory (CD-ROM)) or through an application store (e.g. Play StoreTM) or on two user devices (e.g. It can be distributed (e.g. downloaded or uploaded) directly between smartphones) or online.
- a machine-readable storage medium e.g. compact disc read only memory (CD-ROM)
- an application store e.g. Play StoreTM
- two user devices e.g. It can be distributed (e.g. downloaded or uploaded) directly between smartphones) or online.
- at least a portion of the computer program product may be at least temporarily stored or temporarily created in a machine-readable storage medium, such as the memory of a manufacturer's server, an application store's server, or a relay server.
- each component (eg, module or program) of the above-described components may include a single entity or a plurality of entities.
- one or more of the components or operations described above may be omitted, or one or more other components or operations may be added.
- multiple components eg, modules or programs
- the integrated component may perform one or more functions of each component of the plurality of components in the same or similar manner as those performed by the corresponding component of the plurality of components prior to the integration. .
- operations performed by a module, program, or other component may be executed sequentially, in parallel, iteratively, or heuristically, or one or more of the operations may be executed in a different order, or omitted. Alternatively, one or more other operations may be added.
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Abstract
Description
Claims (15)
- 전자 장치에 있어서,외부 전자 장치와 상기 전자 장치 사이에서 설정된 적어도 하나 이상의 링크를 통해 데이터를 전송하거나, 수신하는 통신 회로; 및프로세서를 포함하고,상기 프로세서는상기 적어도 하나 이상의 링크를 통해 전송되거나, 수신되는 패킷 사이의 시간 간격들을 확인하고,상기 시간 간격들 중 지정된 값 이하인 시간 간격의 비율을 확인하고,지정된 시간마다 상기 통신 회로가 활성화 상태로 전환되는TWT(target wake time) 모드 또는 지정된 시간 동안 상기 패킷의 전송 또는 수신이 발생하지 않는 경우, 상기 통신 회로를 비활성화 상태로 전환하는 절전 모드(power saving mode) 를 상기 비율에 기반하여 선택하고,상기 선택된 모드에 기반하여 상기 통신 회로를 제어하도록 설정된 전자 장치.
- 제 1항에 있어서,상기 프로세서는상기 비율이 지정된 크기 이상 일 때 상기 TWT 모드를 선택하도록 설정된 전자 장치.
- 제 1항에 있어서,상기 프로세서는상기 비율이 지정된 크기 이하일 때 상기 절전 모드를 선택하도록 설정된 전자 장치.
- 제 1항에 있어서,상기 비율은상기 지정된 값 이하인 시간 간격들의 길이 및 상기 지정된 값 이상인 시간 간격들의 길이의 비율인 전자 장치.
- 제 1 항에 있어서,상기 비율은상기 지정된 값 이하인 시간 간격의 개수 및 상기 지정된 값 이상인 시간 간격의 개수의 비율인 전자 장치.
- 제 1 항에 있어서,상기 지정된 값은상기 절전 모드의 상기 지정된 시간과 동일한 전자 장치.
- 제 1항에 있어서,상기 프로세서는상기 전자 장치 상에 실행 중인 서비스 타입에 기반하여, 상기 적어도 하나 이상의 링크를 통해 전송되거나, 수신되는 패킷 사이의 시간 간격들을 확인하는 동작의 수행 여부를 결정하도록 설정된 전자 장치.
- 제 1항에 있어서,상기 프로세서는복수의 링크를 통해 상기 외부 전자 장치와 패킷을 전송하거나, 수신하는 동안, 상기 복수의 링크 중 적어도 일부의 링크들을 통해 전송되거나, 수신되는 패킷 사이의 시간 간격들을 확인하고,상기 시간 간격들 중 상기 지정된 값 이하인 시간 간격의 길이 및 상기 시간 간격들 중 상기 지정된 값 이상인 시간 간격의 길이의 비율을 확인하고,상기 비율에 기반하여 상기 TWT(target wake time) 모드 또는 상기 절전 모드(power saving mode) 를 선택하고,상기 적어도 일부의 링크들이 상기 선택된 모드로 동작하도록 상기 통신 회로를 제어하도록 설정된 전자 장치.
- 제 8항에 있어서,상기 프로세서는상기 비율이 지정된 크기 이상일 때 상기 TWT 모드를 선택하고,상기 TWT 모드의 협상 메시지를 상기 외부 전자 장치로 전송하고,상기 TWT 모드의 협상 메시지는상기 적어도 일부의 링크를 지시하는 정보를 포함하는 전자 장치.
- 제 8항에 있어서,상기 프로세서는상기 비율이 지정된 크기 이하일 때 상기 절전 모드를 선택하도록 설정된 전자 장치.
- 전자 장치의 동작 방법에 있어서,외부 전자 장치와 상기 전자 장치 사이에서 설정된 적어도 하나 이상의 링크를 통해 전송되거나, 수신되는 패킷 사이의 시간 간격들을 확인하는 동작;상기 시간 간격들 중 지정된 값 이하인 시간 간격 및 상기 시간 간격들 중 상기 지정된 값 이상인 시간 간격의 비율을 확인하는 동작;상기 비율에 기반하여 지정된 시간마다 상기 전자 장치의 통신 회로가 활성화 상태로 전환되는TWT(target wake time) 모드 또는 지정된 시간 동안 상기 패킷의 전송 또는 수신이 발생하지 않는 경우, 상기 통신 회로를 비활성화 상태로 전환하는 절전 모드(power saving mode) 를 선택하는 동작; 및상기 선택된 모드에 기반하여 상기 통신 회로를 제어하는 동작을 포함하는 전자 장치의 동작 방법.
- 제 11항에 있어서,상기 하나의 모드를 선택하는 동작은상기 비율이 지정된 크기 이상일 때 상기 TWT 모드를 선택하는 동작을 포함하는 전자 장치의 동작 방법.
- 제 11항에 있어서,상기 하나의 모드를 선택하는 동작은상기 비율이 지정된 크기 이하일 때 상기 절전 모드를 선택하는 동작을 포함하는 전자 장치의 동작 방법.
- 제 11항에 있어서,상기 비율은상기 지정된 값 이하인 시간 간격의 길이 및 상기 지정된 값 이상인 시간 간격의 길이의 비율인 전자 장치의 동작 방법.
- 제 11 항에 있어서,상기 비율은상기 지정된 값 이하인 시간 간격의 개수 및 상기 지정된 값 이상인 시간 간격의 개수의 비율인 전자 장치의 동작 방법.
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP23843144.9A EP4510715A4 (en) | 2022-07-18 | 2023-05-08 | ELECTRONIC DEVICE SUPPORTING TWT TIME MODE OR POWER SAVING MODE AND METHOD FOR OPERATING THE ELECTRONIC DEVICE |
| CN202380054237.5A CN119487922A (zh) | 2022-07-18 | 2023-05-08 | 支持twt模式或省电模式的电子装置及其操作方法 |
| US18/339,977 US12339727B2 (en) | 2022-07-18 | 2023-06-22 | Electronic device for supporting target wake time mode or power saving mode and method of operating the same |
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| KR10-2022-0088569 | 2022-07-18 | ||
| KR20220088569 | 2022-07-18 | ||
| KR10-2022-0145496 | 2022-11-03 | ||
| KR1020220145496A KR20240011073A (ko) | 2022-07-18 | 2022-11-03 | Twt 모드 또는 절전 모드를 지원하는 전자 장치 및 전자 장치의 동작 방법 |
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| Application Number | Title | Priority Date | Filing Date |
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| US18/339,977 Continuation US12339727B2 (en) | 2022-07-18 | 2023-06-22 | Electronic device for supporting target wake time mode or power saving mode and method of operating the same |
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| WO2024019286A1 true WO2024019286A1 (ko) | 2024-01-25 |
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