WO2023060447A1 - Procédé et appareil d'envoi de signal, procédé et appareil de réception de signal, dispositif, et support de stockage - Google Patents

Procédé et appareil d'envoi de signal, procédé et appareil de réception de signal, dispositif, et support de stockage Download PDF

Info

Publication number
WO2023060447A1
WO2023060447A1 PCT/CN2021/123355 CN2021123355W WO2023060447A1 WO 2023060447 A1 WO2023060447 A1 WO 2023060447A1 CN 2021123355 W CN2021123355 W CN 2021123355W WO 2023060447 A1 WO2023060447 A1 WO 2023060447A1
Authority
WO
WIPO (PCT)
Prior art keywords
terminal
signal
time
wake
control information
Prior art date
Application number
PCT/CN2021/123355
Other languages
English (en)
Chinese (zh)
Inventor
丁伊
赵振山
林晖闵
Original Assignee
Oppo广东移动通信有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Oppo广东移动通信有限公司 filed Critical Oppo广东移动通信有限公司
Priority to CN202180101296.4A priority Critical patent/CN117813781A/zh
Priority to PCT/CN2021/123355 priority patent/WO2023060447A1/fr
Publication of WO2023060447A1 publication Critical patent/WO2023060447A1/fr

Links

Images

Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L1/00Arrangements for detecting or preventing errors in the information received
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y02TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
    • Y02DCLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
    • Y02D30/00Reducing energy consumption in communication networks
    • Y02D30/70Reducing energy consumption in communication networks in wireless communication networks

Definitions

  • the present application relates to the field of mobile communication, and in particular to a signal sending method, a signal receiving method, a device, a device, and a storage medium.
  • sidelink (Sidelink, SL) transmission refers to direct communication data transmission between terminals through a sidelink.
  • the Discontinuous Reception (DRX) mechanism is introduced in SL transmission.
  • DRX Discontinuous Reception
  • Cycle On Duration and DRX Cycle
  • sidelink signal detection can be performed during the activation time period, which can save continuous sidelink signal detection. Power consumption due to uplink signal detection.
  • Embodiments of the present application provide a signal sending method, a signal receiving method, a device, a device, and a storage medium. Described technical scheme is as follows:
  • a method for sending a signal including:
  • the first device sends a wake-up or sleep signal to the second terminal within the target time range, where the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • a signal receiving method comprising:
  • the second terminal receives the wake-up or sleep signal sent by the first device within the target time range, where the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • a signal sending device is provided, and the device includes:
  • a sending module configured for the first device to send a wake-up or sleep signal to the second terminal within a target time range, where the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • an information receiving device includes:
  • the receiving module is configured for the second terminal to receive a wake-up or sleep signal sent by the first device within a target time range, where the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • a communication device includes a processor and a memory, a computer program is stored in the memory, and the processor executes the computer program to realize the above-mentioned signal transmission method and/or signal reception method.
  • a computer-readable storage medium where a computer program is stored in the storage medium, and the computer program is used to be executed by a processor to implement the above signal sending method and/or Signal reception method.
  • a chip is provided, the chip includes a programmable logic circuit and/or program instructions, and when the chip is running, it is used to implement the above signal sending method and/or signal receiving method .
  • a computer program product or computer program includes computer instructions, the computer instructions are stored in a computer-readable storage medium, and the processor reads from the The computer-readable storage medium reads and executes the computer instructions, so as to implement the above signal sending method and/or signal receiving method.
  • the control mechanism for the terminal to perform sidelink signal detection is enriched.
  • the wake-up or sleep signal will determine whether to perform sidelink signal detection
  • There is sidelink data linking which avoids the problem of performing sidelink signal detection during the active period when there is no sidelink data transmission, and saves unnecessary power consumption.
  • FIG. 1 is a schematic diagram of an SL communication network architecture provided by an exemplary embodiment of the present application
  • FIG. 2 is a schematic diagram of an SL communication network architecture within network coverage
  • FIG. 3 is a schematic diagram of a partial network coverage SL communication network architecture
  • FIG. 4 is a schematic diagram of an SL communication network architecture outside network coverage
  • Fig. 5 is the schematic diagram of the physical layer structure of SL communication
  • FIG. 6 is a schematic diagram of a DRX cycle
  • FIG. 7 is a flowchart of a signal sending/receiving method provided by an embodiment of the present application.
  • FIG. 8 is a schematic diagram of an SL communication network architecture in which the first terminal sends a wake-up or sleep signal according to an embodiment of the present application
  • FIG. 9 is a flowchart of a signal sending/receiving method provided by an embodiment of the present application.
  • Fig. 10 is a schematic diagram of determining an activation time period provided by an embodiment of the present application.
  • FIG. 11 is a flowchart of a signal sending/receiving method provided by an embodiment of the present application.
  • FIG. 12 is a schematic diagram of an SL communication network architecture in which a network device sends a wake-up or sleep signal according to an embodiment of the present application
  • FIG. 13 is a flowchart of a signal sending/receiving method provided by an embodiment of the present application.
  • FIG. 14 is a flowchart of a signal sending/receiving method provided by an embodiment of the present application.
  • Fig. 15 is a block diagram of a signal sending device provided by an embodiment of the present application.
  • Fig. 16 is a block diagram of a signal receiving device provided by an embodiment of the present application.
  • Fig. 17 is a schematic structural diagram of a communication device provided by an embodiment of the present application.
  • the network architecture and business scenarios described in the embodiments of the present application are for more clearly illustrating the technical solutions of the embodiments of the present application, and do not constitute limitations on the technical solutions provided by the embodiments of the present application.
  • the evolution of the technology and the emergence of new business scenarios, the technical solutions provided in the embodiments of this application are also applicable to similar technical problems.
  • first, second, etc. may be used in the present disclosure to describe various information, the information should not be limited to these terms. These terms are only used to distinguish information of the same type from one another.
  • a first parameter may also be called a second parameter, and similarly, a second parameter may also be called a first parameter.
  • the word "if” as used herein may be interpreted as “at” or “when” or “in response to a determination.”
  • IoV communication includes Vehicle to Vehicle (V2V) communication, Vehicle to Infrastructure (V2I) communication and Vehicle to People (V2P) communication.
  • V2V Vehicle to Vehicle
  • V2I Vehicle to Infrastructure
  • V2P Vehicle to People
  • Utilizing existing cellular communication technology to support IoV communication can effectively utilize deployed base stations, reduce equipment overhead, and facilitate the provision of services with Quality of Service (QoS) guarantees, thereby meeting the needs of IOV services .
  • QoS Quality of Service
  • the communication of the Internet of Vehicles is supported through the cellular network, specifically referring to the Cellular based V2X (C-V2X) technology.
  • C-V2X the communication between vehicle-mounted devices (such as vehicle-mounted terminals) and other devices can be relayed through base stations and core network devices, that is, the communication link between terminals and base stations in the original cellular network is used to realize the communication between vehicle-mounted devices and other devices.
  • Communication between other devices including uplink (UpLink, UL) communication and downlink (DownLink, DL) communication).
  • Vehicle-mounted devices and other devices can also communicate directly through direct links (also called sidelinks) between devices.
  • Sidelink communication is a device-to-device communication method with high spectral efficiency and low transmission delay.
  • the sidelink has two transmission modes.
  • the first transmission mode is: the network device allocates transmission resources for the terminal (vehicle device), and the terminal performs sidelink data transmission on the allocated transmission resources.
  • the second transmission mode is: the network device allocates a resource pool for the terminal, and the terminal selects one or more transmission resources from the resource pool for data transmission on the sidelink.
  • the terminal may select transmission resources from the resource pool by listening, or select transmission resources from the resource pool by random selection.
  • the sidelink communication has the characteristics of short delay and low overhead, and is very suitable for direct communication between on-board equipment and other peripheral equipment close to the geographical location.
  • 5G new air interface New Radio, NR
  • 5G new air interface New Radio, NR
  • 5G V2X sidelink can provide higher communication rate, shorter communication delay, and more reliable communication quality.
  • Fig. 1 shows a schematic diagram of an SL communication network architecture provided by an exemplary embodiment of the present application.
  • the SL communication network architecture may include: a core network 11 , an access network 12 and a terminal 13 .
  • the core network 11 includes several core network devices.
  • the functions of the core network equipment are mainly to provide user connections, manage users, and carry out services, and provide an interface to the external network as a bearer network.
  • the core network of the fifth generation mobile communication technology (5th Generation, 5G) NR system may include access and mobility management function (Access and Mobility Management Function, AMF) entity, user plane function (User Plane Function, UPF) Entities and Session Management Function (Session Management Function, SMF) entities and other devices.
  • AMF Access and Mobility Management Function
  • UPF User Plane Function
  • SMF Session Management Function
  • the access network 12 includes several access network devices 14.
  • the access network in the 5G NR system can be called a new generation radio access network (New Generation-Radio Access Network, NG-RAN).
  • the access network device 14 is a device deployed in the access network 12 to provide a wireless communication function for the terminal 13 .
  • the access network device 14 may include various forms of macro base stations, micro base stations, relay stations, access points and so on.
  • the names of devices with access network device functions may be different.
  • gNodeB Next Generation Node B
  • the name "access network equipment” may change.
  • the above-mentioned devices that provide the wireless communication function for the terminal 13 are collectively referred to as access network devices.
  • the number of terminals 13 is generally multiple, and one or more terminals 13 may be distributed in a cell managed by each access network device 14 .
  • the terminal 13 may include various handheld devices with wireless communication functions, vehicle-mounted devices, wearable devices, computing devices or other processing devices connected to wireless modems, as well as various forms of user equipment, mobile stations (Mobile Station, MS), etc. wait.
  • the devices mentioned above are collectively referred to as terminals.
  • the access network device 14 and the core network device communicate with each other through some air technology, such as the NG interface in the 5G NR system.
  • the access network device 14 and the terminal 13 communicate with each other through a certain air technology, such as a Uu interface.
  • Terminal 13 and terminal 13 can communicate with each other through a direct connection communication interface (such as PC5 interface), corresponding Specifically, the communication link established based on the direct communication interface may be referred to as a direct link or SL.
  • SL transmission is direct communication data transmission between terminals through sidelinks. Unlike traditional cellular systems where communication data is received or sent through access network equipment, SL transmission has the characteristics of short delay and low overhead. It is suitable for communication between two terminals with close geographical location (such as vehicle equipment and other peripheral equipment with close geographical location). It should be noted that, in FIG.
  • the terminal in this application refers to any device that communicates using the SL technology.
  • the "5G NR system" in the embodiments of the present disclosure may also be called a 5G system or an NR system, but those skilled in the art can understand its meaning.
  • the technical solution described in the embodiments of the present disclosure can be applied to the 5G NR system, and can also be applied to the subsequent evolution system of the 5G NR system.
  • the UE and the terminal in the embodiments of the present disclosure express the same meaning, and the two can replace each other.
  • the side link communication according to the network coverage of the communicating terminal, it can be divided into outbound communication inside the network coverage, side link communication under partial network coverage, and outbound communication outside the network coverage.
  • Fig. 2 shows a schematic diagram of an SL communication network architecture within network coverage. All terminals 13 performing lateral communication are within the coverage of the same access network device 14 , and all terminals 13 can perform lateral communication based on the same lateral configuration by receiving configuration signaling from the access network device 14 .
  • Fig. 3 shows a schematic diagram of a partial network coverage SL communication network architecture.
  • the first terminal 131 performing lateral communication is located within the coverage of the base station.
  • the first terminal 131 can receive configuration signaling from the access network device 14 and perform lateral communication according to the configuration of the access network device 14 .
  • the second terminal 132 outside the network coverage cannot receive the configuration signaling of the access network device 14. In this case, the second terminal 132 outside the network coverage will
  • the information carried in the sidelink broadcast channel (Physical Sidelink Broadcast Channel, PSBCH) sent by the first terminal 131 within the network coverage determines the sidelink configuration, and performs sidelink communication.
  • PSBCH Physical Sidelink Broadcast Channel
  • Fig. 4 shows a schematic diagram of an SL communication network architecture outside network coverage. All the terminals 13 performing lateral communication are located outside the coverage of the network, and all terminals 13 determine the lateral configuration according to the pre-configuration information to perform lateral communication.
  • 3GPP defines two transmission modes: Mode A and Mode B.
  • Mode A also known as mode 1 or base station scheduling mode: the transmission resources of the terminal are allocated by the access network equipment (such as the base station), and the terminal communicates data on the sidelink according to the transmission resources allocated by the access network equipment Transmission, wherein, the access network device may allocate transmission resources for a single transmission to the terminal, and may also allocate transmission resources for semi-static transmission to the terminal.
  • the access network equipment such as the base station
  • the terminal communicates data on the sidelink according to the transmission resources allocated by the access network equipment Transmission, wherein, the access network device may allocate transmission resources for a single transmission to the terminal, and may also allocate transmission resources for semi-static transmission to the terminal.
  • Mode B also known as mode 2 or UE self-selected resource mode: the terminal selects transmission resources from the resource pool by itself to transmit communication data. Specifically, the terminal may select transmission resources from the resource pool by listening, or select transmission resources from the resource pool by random selection.
  • a Physical Sidelink Control Channel (PSCCH) is used to carry first sidelink control information
  • a Physical Sidelink Shared Channel (Physical Sidelink Shared Channel, PSSCH) is used to carry data and second sidelink control information.
  • PSCCH and PSSCH are sent in the same slot.
  • the above-mentioned first lateral control information and second lateral control information may be two lateral control information with different functions.
  • the first sideline control information is carried in the PSCCH, which mainly includes domains related to resource interception, so that other terminals can perform resource exclusion and resource selection after decoding.
  • the PSSCH also carries second sidelink control information.
  • the second sidelink control information mainly includes data demodulation-related fields, so as to facilitate other terminals to demodulate data in the PSSCH.
  • the terminal selects transmission resources to send data by itself.
  • Resource reservation is the premise of resource selection.
  • Resource reservation refers to that the terminal sends first sideline control information in the PSCCH to reserve resources to be used next.
  • resource reservation within a Transport Block (TB) is supported as well as resource reservation between TBs.
  • a user terminal In a wireless network, a user terminal (User Equipment, UE) must always monitor the Physical Downlink Control Channel (PDCCH), and send and receive data according to the instruction message sent by the network side, which results in power consumption and data transmission of the UE.
  • the time delay is relatively large. Therefore, the 3GPP standard protocol starts to introduce a discontinuous reception mechanism (Discontinuous Reception, DRX) energy saving strategy in the LTE system.
  • DRX discontinuous Reception
  • the basic mechanism of DRX is to configure a DRX cycle for UE.
  • the DRX cycle consists of an active time period and DRX opportunity (Opportunity for DRX): during the active time period, UE monitors and receives PDCCH; during the DRX opportunity time, UE does not receive PDCCH to reduce power consumption.
  • the terminal controls the terminal to be in an active state or a dormant state according to some timer parameters configured by the network.
  • the drx-onDurationTimer parameter indicates the length of the active time period
  • the drx-LongCycleStartOffset parameter and the drx-SlotOffset parameter indicate the start position of the DRX cycle.
  • the terminal starts a timer whose length is the value indicated by the drx-onDurationTimer parameter at the starting position of the DRX cycle, and keeps the active state before the timer is reduced to 0.
  • the terminal When the terminal is within the activation time period, that is, before the On duration timer decreases to 0, if the terminal detects PDCCH, it will also start timers such as the inactivity timer and the retransmission timer to extend the activation state. Used to receive scheduled data or retransmit.
  • FIG. 6 shows a schematic diagram of a DRX cycle.
  • a DRX cycle 11 includes an active time period 12 and a DRX opportunity 13 .
  • Fig. 7 provides a flow chart of a signal sending/receiving method provided by an embodiment of the present application.
  • the first device in this method may be executed by the access network device or terminal shown in Fig. 1, and the second terminal may be executed by the access network device or terminal shown in Fig. 1
  • the terminal execution shown, the method includes:
  • Step 502 the first device sends a wake-up or sleep signal to the second terminal within the target time range
  • the first device may be a network device, or may be a first terminal;
  • the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • the wake-up signal is used to instruct the second terminal to perform sidelink signal detection;
  • the sleep signal is used to instruct the second terminal not to perform sidelink signal detection.
  • Step 504 the second terminal receives the wake-up or sleep signal sent by the first device within the target time range
  • the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • the second terminal performs sidelink signal detection when receiving the wake-up signal.
  • the second terminal does not perform sidelink signal detection.
  • the method provided by this embodiment enriches the control mechanism for the terminal to perform sidelink signal detection by introducing a wake-up or sleep signal to indicate whether the terminal performs sidelink signal detection. Whether the wake-up or sleep signal is performed
  • the sidelink signal detection is associated with whether there is sidelink data, which avoids the problem of performing sidelink signal detection during the active time period when there is no sidelink data transmission, and saves unnecessary power consumption.
  • the methods for configuring the target time range include but are not limited to any of the following:
  • the target time range is configured from the first terminal to the second terminal;
  • the first terminal configures the target time range to the second terminal by using PC5-radio resource control (Radio Resource Control, RRC) through the PC5 interface.
  • the target time range configured by the first terminal to the second terminal may be independently configured by the first terminal, or may be configured by the first terminal according to configuration information sent by the network device.
  • the target time range is configured by the network device to the second terminal;
  • the network device configures the target time range for the second terminal.
  • the network device simultaneously configures the same target time range for the first terminal and the second terminal.
  • the target time frame is pre-configured
  • the target time range is predefined by the communication protocol.
  • the target time range may be a continuous time unit or a discontinuous time unit.
  • FIG. 8 shows the SL communication in which the first terminal sends a wake-up or sleep signal according to an embodiment of the present application.
  • Schematic diagram of the network architecture The network device 14 sends scheduling information to the first terminal 131 , and the first terminal 131 sends a wake-up signal or a sleep signal to the second terminal 132 .
  • the first device is the first terminal.
  • side link communication is used between the first terminal and the second terminal.
  • Communication between the first terminal and the second terminal may be through the PC5 interface.
  • unicast data is transmitted between the first terminal and the second terminal.
  • the first terminal is in an RRC connected (Connected) state with the network device.
  • the state between the second terminal and the network device includes but is not limited to any one of the following: RRC connected (Connected) state, RRC idle (Idle) state, and RRC inactive (Inactive) state.
  • the second terminal is usually within the coverage of the network device, but the situation that the second terminal is not within the coverage of the network device is not excluded.
  • the first device is the first terminal
  • the situation that there is sidelink data to be transmitted that is, the situation that the first terminal sends the first SR and/or the first BSR to the network device is introduced:
  • Fig. 9 provides a flow chart of a signal sending/receiving method provided by an embodiment of the present application.
  • the network device in this method can be executed by the access network device shown in Fig. 1, and the first terminal and the second terminal can be executed by the method shown in Fig. 1 As shown in the terminal execution, the method includes:
  • Step 512 the first terminal sends the DRX configuration to the second terminal;
  • the wakeup or sleep signal is used to indicate whether the second terminal performs sidelink signal detection during the active time period in the DRX configuration.
  • the activation time period includes a time period corresponding to an activation period (On Duration) timer.
  • the parameters of DRX configuration include but not limited to at least one of the following:
  • the second terminal sends auxiliary information to the first terminal.
  • the auxiliary information is used to determine the DRX configuration of the second terminal or to suggest the DRX configuration of the second terminal.
  • the auxiliary information includes parameters for determining or suggesting the DRX configuration of the second terminal.
  • the first terminal reports the auxiliary information to the network device.
  • the configuration information of the DRX configuration is generated by the network device according to the auxiliary information.
  • the first terminal determines the DRX configuration according to the configuration information sent by the network device, and sends the DRX configuration to the second terminal.
  • Step 514 the second terminal receives the DRX configuration sent by the first terminal
  • the target time range may be related to the active time period in the DRX configuration, or may not be related to the active time period in the DRX configuration.
  • the relationship between the target time range and the activation time period includes but is not limited to:
  • the start point of the target time range is determined by the start position X of the active time period
  • the end of the target time range is determined by the start position X of the active time period.
  • relation 1 shows the situation that the starting point of the target time range is determined by the starting position X of the active time period, and the starting point of the target time range is the starting position X of the active time period.
  • Relation 2 shows that the end point of the target time range is determined by the start position X of the active time period, and the end point of the target time range is the fifth time slot before the start position X of the active time period.
  • the target time range includes but is not limited to any of the following:
  • part of the time slots are the bits with the first value in the bitmap with length L corresponding to the L time slots time slot;
  • the part time slots are the bits with the first value in the bitmap with a length of L corresponding to the L time slots time slot.
  • forward indicates the time domain position direction earlier than the reference point; similarly, backward indicates the time domain position direction later than the reference point.
  • the configuration method of at least one item in M, N, K, L and the bitmap includes but is not limited to any of the following:
  • the first terminal configures to the second terminal by using the PC5-RRC through the PC5 interface.
  • the configuration from the first terminal to the second terminal may be independently configured by the first terminal, or may be configured by the first terminal according to configuration information sent by the network device.
  • the network device configures the second terminal.
  • is pre-configured
  • the second terminal when the second terminal is within the coverage of the network device, the second terminal reports the DRX configuration to the network device.
  • Step 516 the first terminal sends the first SR and/or the first BSR to the network device;
  • a scheduling request (Scheduling Request, SR) or a buffer status report (Buffer Status Report, BSR) is used to request a network device to send scheduling information.
  • SR is used to indicate whether there is sidelink data to be transmitted
  • BSR is used to indicate the amount of sidelink data.
  • the first terminal may send the first SR and the first BSR to the network device, or may only send the first SR or the first BSR to the network device.
  • Step 518 The network device receives the first SR and/or the first BSR sent by the first terminal;
  • the network device receives the first SR and/or the first BSR sent by the first terminal, and determines corresponding scheduling information according to the first SR and/or the first BSR sent by the first terminal.
  • the first SR and the second SR may be the same or different; similarly, the first BSR and the second BSR may be the same or different.
  • Step 520 the network device sends scheduling information to the first terminal
  • Scheduling information is used to schedule transmission resources.
  • the scheduling information is used to schedule the first time-frequency resource and/or the third time-frequency resource.
  • the scheduling information is downlink control information (Downlink Control Information, DCI).
  • DCI Downlink Control Information
  • the scheduling information is used to schedule the first time-frequency resource and/or the third time-frequency resource, that is, the first time-frequency resource and the third time-frequency resource can be sent in one piece of scheduling information, or It can be sent separately in multiple scheduling messages.
  • description is made by taking the scheduling information as an example for scheduling the first time-frequency resource and the third time-frequency resource.
  • the first time-frequency resource is used for the first terminal to send a wake-up signal to the second terminal, and in other embodiments of the present application, the first time-frequency resource can also be used for the first terminal to send a sleep signal to the second terminal .
  • the third time-frequency resource is used for the first terminal to send sidelink data to the second terminal. That is, the sidelink data requested by the first SR to be sent.
  • the third time-frequency resource may or may not be within the activation time period, and no limitation is imposed on this.
  • the third time-frequency resource includes at least one time-frequency resource within the activation time period.
  • the first time-frequency resource and the third time-frequency resource may be the same transmission resource, or may be different transmission resources.
  • the quantity of the first time-frequency resource may be one or multiple.
  • the number of the second time-frequency resource and/or the third time-frequency resource may be one or multiple.
  • Step 522 the first terminal receives the scheduling information of the network equipment, and determines the first time-frequency resource and the third time-frequency resource;
  • the first time-frequency resource is used for the first terminal to send a wake-up signal to the second terminal.
  • the third time-frequency resource is used for the first terminal to send sidelink data to the second terminal.
  • the first time-frequency resource includes but is not limited to any of the following:
  • PSCCH Physical Sidelink Control Channel
  • PSCCH Physical Sidelink Shared Channel
  • the wake-up or sleep signal is carried in the PSCCH or PSSCH;
  • the information carried by the PSSCH includes but is not limited to any of the following:
  • the PSSCH carries the second side row control information and filling data
  • the PSSCH only carries padding data
  • the PSSCH only carries the second side row control information
  • the PSSCH carries the second sidelink control information and the sidelink data to be transmitted of the first terminal.
  • the third time-frequency resource includes but not limited to: PSCCH and PSSCH.
  • Step 524 The first terminal sends a wake-up signal to the second terminal based on the first time-frequency resource scheduled by the scheduling information within the target time range;
  • the first time-frequency resource is determined by the first terminal within the target time range based on the scheduling information sent by the network device; that is, the first terminal sends a wake-up message to the second terminal based on the first time-frequency resource scheduled by the scheduling information within the target time range Signal.
  • the format of the wake-up signal includes but is not limited to any of the following:
  • the wake-up signal in this application is also applicable to the new information formats.
  • the wake-up signal is the side data of the first terminal or the medium access control protocol data unit (Medium Access Control Packet Data Unit, MAC PDU) to be sent, there is no need to design a new wake-up signal, namely
  • the scheduling information is within the target time range, and multiple transmissions are scheduled for the first terminal in order to increase the number of transmissions and improve communication reliability.
  • Step 526 the second terminal performs sidelink signal detection in subsequent T1 activation time periods
  • the sidelink on which the second terminal performs signal detection includes but not limited to at least one of the following: PSCCH and PSSCH.
  • T1 is an integer greater than 0, and the configuration method of T1 includes but is not limited to any of the following:
  • T1 is configured from the first terminal to the second terminal
  • the first terminal configures to the second terminal by using the PC5-RRC through the PC5 interface.
  • the configuration from the first terminal to the second terminal may be independently configured by the first terminal, or may be configured by the first terminal according to configuration information sent by the network device.
  • T1 is configured by the network device to the second terminal;
  • the network device configures the second terminal.
  • ⁇ T1 is pre-configured
  • T1 is predefined by the communication protocol.
  • the second terminal when the second terminal receives the wake-up signal, it is within the range of the activation time period, and the T1 activation time periods in this embodiment include the current activation time period.
  • Step 528 the first terminal sends sidelink data to the second terminal in the third time-frequency resource
  • the third time-frequency resource is determined by the first terminal based on the scheduling information sent by the network device. That is, the first terminal sends sidelink data to the second terminal on the third time-frequency resource scheduled based on the scheduling information.
  • the third time-frequency resource includes at least one time-frequency resource within the activation time period.
  • the method provided in this embodiment introduces a wake-up signal to instruct the terminal to perform sidelink signal detection, associates the sidelink signal detection with the existence of sidelink data, and the first terminal sends a wake-up signal to the second terminal.
  • the second terminal performs sidelink signal detection during the active time period, saving unnecessary power consumption.
  • Figure 11 provides the A flowchart of a signal sending/receiving method provided by an embodiment, the network device in this method may be executed by the access network device shown in FIG. 1 , the first terminal and the second terminal may be executed by the terminal shown in FIG. 1 , The method includes:
  • Step 532 the first terminal sends the DRX configuration to the second terminal
  • step 512 For this step, reference may be made to step 512 in the above embodiment, and details are not repeated in this embodiment.
  • Step 534 the second terminal receives the DRX configuration sent by the first terminal
  • step 514 For this step, reference may be made to step 514 in the above embodiment, and details are not repeated in this embodiment.
  • Step 536 The network device sends scheduling information to the first terminal
  • Scheduling information is used to schedule transmission resources.
  • the scheduling information is used to schedule the first time-frequency resource. That is, when the network device does not receive the first SR and/or the first BSR sent by the first terminal, only the first time-frequency resource is scheduled to the first terminal.
  • the first time-frequency resource is used for the first terminal to send the dormancy signal to the second terminal.
  • Step 538 The first terminal receives the scheduling information of the network equipment, and determines the first time-frequency resource
  • the first time-frequency resource is determined by the first terminal within a target time range based on the scheduling information sent by the network device; the first time-frequency resource is used for the first terminal to send a dormancy signal to the second terminal.
  • Step 540 The first terminal sends a dormancy signal to the second terminal based on the first time-frequency resource scheduled by the scheduling information within the target time range;
  • the first time-frequency resource is determined by the first terminal within the target time range based on the scheduling information sent by the network device; that is, the first terminal sends a dormancy message to the second terminal based on the first time-frequency resource scheduled within the target time range based on the scheduling information. Signal.
  • the format of the dormancy signal includes but is not limited to any of the following:
  • Step 542 the second terminal does not perform sidelink signal detection in the subsequent T2 activation time periods
  • the sidelink on which the second terminal does not perform signal detection includes but is not limited to at least one of the following: PSCCH and PSSCH.
  • T2 is an integer greater than 0, and the configuration method of T2 includes but is not limited to any of the following:
  • T2 is configured from the first terminal to the second terminal
  • the first terminal configures to the second terminal by using the PC5-RRC through the PC5 interface.
  • the configuration from the first terminal to the second terminal may be independently configured by the first terminal, or may be configured by the first terminal according to configuration information sent by the network device.
  • T2 is configured by the network device to the second terminal
  • the network device configures the second terminal.
  • ⁇ T2 is pre-configured
  • T2 is predefined by the communication protocol.
  • the second terminal when the second terminal receives the dormancy signal, it is within the range of the activation time period, and the T2 activation time periods in this embodiment include the current activation time period.
  • the dormancy signal is introduced to instruct the terminal not to perform sidelink signal detection, and the non-performance of sidelink signal detection is associated with the absence of sidelink data.
  • the terminal sends a dormancy signal, which avoids the problem of performing sidelink signal detection during the active period when there is no sidelink data transmission, and saves unnecessary power consumption.
  • FIG. 12 shows an SL communication network architecture in which a network device sends a wake-up or sleep signal according to an embodiment of the present application schematic diagram.
  • the network device 14 sends a wake-up signal or a sleep signal to the second terminal 132 , and the first terminal 131 sends sidelink data to the second terminal 132 according to the schedule of the network device 14 .
  • the first device is a network device.
  • side link communication is used between the first terminal and the second terminal.
  • Communication between the first terminal and the second terminal may be through the PC5 interface.
  • unicast data is transmitted between the first terminal and the second terminal.
  • the first terminal is in an RRC connected (Connected) state with the network device.
  • the state between the second terminal and the network device includes but is not limited to any one of the following: RRC connected (Connected) state, RRC idle (Idle) state, and RRC inactive (Inactive) state.
  • the second terminal is within the coverage of the network device.
  • the first device is a network device
  • the case where there is side data to be transmitted that is, the case where the first terminal sends the second SR and/or the second BSR to the network device is introduced:
  • Figure 13 provides a flow chart of a signal sending/receiving method provided by an embodiment of the present application.
  • the network device in this method can be executed by the access network device shown in Figure 1, and the first terminal and the second terminal can be implemented by the method shown in Figure 1 As shown in the terminal execution, the method includes:
  • Step 552 the first terminal sends the DRX configuration to the second terminal
  • step 512 For this step, reference may be made to step 512 in the above embodiment, and details are not repeated in this embodiment.
  • Step 554 the second terminal receives the DRX configuration sent by the first terminal
  • step 514 For this step, reference may be made to step 514 in the above embodiment, and details are not repeated in this embodiment.
  • Step 556 the first terminal sends a second SR and/or a second BSR to the network device;
  • step 516 For this step, reference may be made to step 516 in the above embodiment, and details are not repeated in this embodiment.
  • the first terminal may send the second SR and the second BSR to the network device, or may only send the second SR or the second BSR to the network device.
  • Step 558 The network device receives the second SR and/or the second BSR sent by the first terminal;
  • the network device receives the second SR and/or the second BSR sent by the first terminal, and determines corresponding scheduling information according to the second SR and/or the second BSR sent by the first terminal.
  • Step 560 The network device sends scheduling information to the first terminal
  • Scheduling information is used to schedule transmission resources.
  • the scheduling information is used to schedule the third time-frequency resource.
  • the scheduling information is used to schedule the third time-frequency resource.
  • the third time-frequency resource is used for the first terminal to send sidelink data to the second terminal. That is, the sidelink data requested by the second SR to be sent.
  • the third time-frequency resource may or may not be within the activation time period, and no limitation is imposed on this.
  • the third time-frequency resource includes at least one time-frequency resource within an activation time period.
  • Step 562 the first terminal receives the scheduling information of the network equipment, and determines the third time-frequency resource
  • the third time-frequency resource is used for the first terminal to send sidelink data to the second terminal.
  • the third time-frequency resource includes but not limited to: PSCCH and PSSCH.
  • Step 564 The network device sends a wake-up signal to the second terminal on the second time-frequency resource within the target time range;
  • the second time-frequency resource is a physical downlink control channel (Physical Downlink Control Channel, PDCCH).
  • PDCCH Physical Downlink Control Channel
  • the format of the wake-up signal is a downlink control information format.
  • the downlink control information is the control information carried in the PDCCH. It should be noted that with the development of mobile communication technology, new information formats may appear in downlink control information, and the wake-up signal in this application is also applicable to new information formats.
  • the wake-up signal is DCI format 2_6 (Format 2_6).
  • Step 566 the second terminal performs sidelink signal detection in subsequent T1 activation time periods
  • step 526 For this step, reference may be made to step 526 in the above embodiment, and details are not repeated in this embodiment.
  • Step 568 the first terminal sends sidelink data to the second terminal in the third time-frequency resource
  • step 528 For this step, reference may be made to step 528 in the above embodiment, and details are not repeated in this embodiment.
  • the method provided in this embodiment introduces a wake-up signal to instruct the terminal to perform sidelink signal detection, associates sidelink signal detection with the existence of sidelink data, and the network device sends a wake-up signal to the second terminal , only when there is sidelink data transmission, the second terminal performs sidelink signal detection during the active time period, which saves unnecessary power consumption.
  • the first device is a network device
  • the case where there is no sidelink data to be transmitted that is, the case where the first terminal does not send the second SR and/or the second BSR to the network device:
  • Fig. 14 provides a flow chart of a signal sending/receiving method provided by an embodiment of the present application.
  • the network device in this method can be executed by the access network device shown in Fig. 1, and the first terminal and the second terminal can be executed by the method shown in Fig. 1 As shown in the terminal execution, the method includes:
  • Step 572 the first terminal sends the DRX configuration to the second terminal;
  • step 512 For this step, reference may be made to step 512 in the above embodiment, and details are not repeated in this embodiment.
  • Step 574 the second terminal receives the DRX configuration sent by the first terminal
  • step 514 For this step, reference may be made to step 514 in the above embodiment, and details are not repeated in this embodiment.
  • Step 576 The network device sends a dormancy signal to the second terminal on the second time-frequency resource within the target time range;
  • the second time-frequency resource is a physical downlink control channel (Physical Downlink Control Channel, PDCCH).
  • PDCCH Physical Downlink Control Channel
  • the format of the dormancy signal is a downlink control information format.
  • the downlink control information is the control information carried in the PDCCH. It should be noted that with the development of mobile communication technology, new information formats may appear in downlink control information, and the dormant signal in this application is also applicable to new information formats.
  • the sleep signal is DCI format 2_6 (Format 2_6).
  • Step 578 The second terminal does not perform sidelink signal detection in the subsequent T2 activation time periods
  • step 542 for this step, reference may be made to step 542 in the above embodiment, and details are not repeated in this embodiment.
  • the method provided in this embodiment introduces a dormant signal to instruct the terminal not to perform sidelink signal detection, associates no sidelink signal detection with the absence of sidelink data, and sends the network device to the second terminal Sending the dormancy signal avoids the problem of performing sidelink signal detection during the active time period when there is no sidelink data transmission, and saves unnecessary power consumption.
  • Fig. 15 shows a block diagram of a signal sending device provided by an exemplary embodiment of the present application, the device includes:
  • the sending module 610 is configured for the first device to send a wake-up or sleep signal to the second terminal within a target time range, where the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • the first device is a first terminal
  • sidelink communication is used between the first terminal and the second terminal
  • the apparatus further includes:
  • a receiving module 620 configured for the first terminal to receive scheduling information of network equipment
  • the sending module 610 is configured to: the first terminal sends the wake-up or sleep signal to the second terminal based on the first time-frequency resources scheduled by the scheduling information within the target time range.
  • the sending module 610 is also configured to:
  • the first terminal sends a first SR and/or a first BSR to the network device, where the first SR or the first BSR is used to request the network device to send the scheduling information.
  • the first time-frequency resource is:
  • PSCCH or, PSCCH and PSSCH; or, PSFCH.
  • the wake-up or sleep signal is carried in PSCCH or PSSCH.
  • the wake-up or sleep signal is carried in the PSCCH
  • the PSSCH carries the second side line control information and padding data; or, the PSSCH only carries padding data; or, the PSSCH only carries the second side line control information; or, the PSSCH carries the second side line control information and the data to be transmitted by the first terminal.
  • the wake-up or sleep signal is:
  • the first device is a network device; the sending module 610 is configured to:
  • the network device When the network device receives the second SR and/or the second BSR sent by the first terminal, send the wake-up signal to the second terminal on a second time-frequency resource within the target time range;
  • the network does not receive the second SR and/or the second BSR sent by the first terminal, send the second time-frequency resource within the target time range to the second terminal Send the sleep signal.
  • the second time-frequency resource is: a physical downlink control channel PDCCH.
  • the wake-up or sleep signal is in a downlink control information format.
  • the sending module 610 is also configured to:
  • the first terminal sends a discontinuous reception DRX configuration to the second terminal, and the wake-up or dormancy signal is used to indicate whether the second terminal performs sidelink signal detection during the active time period in the DRX configuration .
  • the target time range is configured by the first terminal to the second terminal; or, the target time range is configured by the network device to the second terminal; or , the target time range is preconfigured; or, the target time range is predefined by a communication protocol.
  • the target time range is a continuous time unit or a discontinuous time unit.
  • the starting point of the target time range is determined by the starting position X of the activation time period
  • the end point of the target time range is determined by the starting position X of the activation time period.
  • the target time range includes: taking the Mth time slot before the start position X as a reference point, N time slots consecutive backwards; or, starting from the The Mth time slot before the starting position X is used as a reference point, and N consecutive time slots are forward; or, taking the starting position X as a reference point, K consecutive time slots are backward; or, using the above
  • the starting position X is the reference point, the forward continuous K time slots; or, taking the starting position X as the reference point, part of the forward continuous L time slots, the partial time slots are The time slot corresponding to the bit with the first value in the L time slot in the bitmap with a length of L; or, taking the starting position X as a reference point, in the backward consecutive L time slots Partial time slots, where the partial time slots are the time slots corresponding to the bit with the first value in the L time slots in the length-L bitmap.
  • At least one of the M, N, K, L and the bitmap configured by the first terminal to the second terminal; or, configured by the network device configured to the second terminal; or, pre-configured; or, predefined by a communication protocol.
  • the wake-up signal is used to instruct sidelink signal detection to be performed in subsequent T1 activation time periods.
  • the T1 is configured from the first terminal to the second terminal; or, the T1 is configured from the network device to the second terminal; or, the T1 is preconfigured; or, the T1 is predefined by a communication protocol.
  • the dormancy signal is used to indicate that sidelink signal detection is not to be performed in subsequent T2 activation time periods.
  • the T2 is configured from the first terminal to the second terminal; or, the T2 is configured from the network device to the second terminal; or, the T2 is preconfigured; or, the T2 is predefined by a communication protocol.
  • Fig. 16 shows a block diagram of a signal receiving device provided by an exemplary embodiment of the present application, the device includes:
  • the receiving module 710 is configured for the second terminal to receive a wake-up or sleep signal sent by the first device within a target time range, where the wake-up or sleep signal is used to indicate whether the second terminal performs sidelink signal detection.
  • the first device is a first terminal
  • sidelink communication is used between the first terminal and the second terminal
  • the receiving module 710 is configured to: The second terminal receives the wake-up or sleep signal sent by the first device on the first time-frequency resource within the target time range;
  • the first time-frequency resource is determined by the first terminal within the target time range based on the scheduling information sent by the network device.
  • the first time-frequency resource is: PSCCH; or, PSCCH and PSSCH; or, PSFCH.
  • the wake-up or sleep signal is carried in PSCCH or PSSCH.
  • the wake-up or sleep signal is carried in the PSCCH
  • the PSSCH carries the second side line control information and padding data; or, the PSSCH only carries padding data; or, the PSSCH only carries the second side line control information; or, the PSSCH carries the second side line control information and the data to be transmitted by the first terminal.
  • the wake-up or dormancy signal is: the format of the first sideline control information, and the first sideline control information is the sideline control information carried in the PSCCH; or, the second sideline control information A row control information format, the second side row control information is the side row control information carried in the PSSCH; or, a sequence-based signal.
  • the first device is a network device; the receiving module 710 is configured to:
  • the second terminal receives the wake-up signal sent by the network device at the second time-frequency resource within the target time range, and the wake-up signal is that the network device receives the second SR sent by the first terminal and/or or sent in case of a second BSR;
  • the second terminal receives the dormancy signal sent by the network device at the second time-frequency resource within the target time range, and the dormancy signal is that the network device does not receive the first terminal sent in the absence of the second SR and/or the second BSR.
  • the second time-frequency resource is: PDCCH.
  • the wake-up or sleep signal is in a downlink control information format.
  • the receiving module 710 is also used to:
  • the second terminal receives the DRX configuration sent by the first terminal, and the wake-up or dormancy signal is used to indicate whether the second terminal performs sidelink signal detection during an active time period in the DRX configuration.
  • the target time range is configured by the first terminal to the second terminal; or, the target time range is configured by the network device to the second terminal; or , the target time range is preconfigured; or, the target time range is predefined by a communication protocol.
  • the target time range is a continuous time unit or a discontinuous time unit.
  • the starting point of the target time range is determined by the starting position X of the activation time period
  • the end point of the target time range is determined by the starting position X of the activation time period.
  • the target time range includes: taking the Mth time slot before the start position X as a reference point, N time slots consecutive backwards; or, starting from the The Mth time slot before the starting position X is used as a reference point, and N consecutive time slots are forward; or, taking the starting position X as a reference point, K consecutive time slots are backward; or, using the above
  • the starting position X is the reference point, the forward continuous K time slots; or, taking the starting position X as the reference point, part of the forward continuous L time slots, the partial time slots are The time slot corresponding to the bit with the first value in the L time slot in the bitmap with a length of L; or, taking the starting position X as a reference point, in the backward consecutive L time slots Partial time slots, where the partial time slots are the time slots corresponding to the bit with the first value in the L time slots in the length-L bitmap.
  • At least one of the M, N, K, L and the bitmap configured by the first terminal to the second terminal; or, configured by the network device configured to the second terminal; or, pre-configured; or, predefined by a communication protocol.
  • the device further includes: a detection module 720, configured for the second terminal to perform sidelink chaining in subsequent T1 activation time periods when the second terminal receives the wake-up signal Road signal detection.
  • the T1 is configured from the first terminal to the second terminal; or, the T1 is configured from the network device to the second terminal; or, the T1 is preconfigured; or, the T1 is predefined by a communication protocol.
  • the detection module 720 is also used to:
  • the second terminal When the second terminal receives the dormancy signal, it does not perform sidelink signal detection in subsequent T2 activation time periods.
  • the T2 is configured from the first terminal to the second terminal; or, the T2 is configured from the network device to the second terminal; or, the T2 is preconfigured; or, the T2 is predefined by a communication protocol.
  • the device provided by the above embodiment realizes its functions, it only uses the division of the above-mentioned functional modules as an example for illustration. In practical applications, the above-mentioned function allocation can be completed by different functional modules according to actual needs. That is, the content structure of the device is divided into different functional modules to complete all or part of the functions described above.
  • Fig. 17 shows a schematic structural diagram of a communication device provided by an embodiment of the present application.
  • the communication device may include: a processor 801 , a receiver 802 , a transmitter 803 , a memory 804 and a bus 805 .
  • the processor 801 includes one or more processing cores, and the processor 801 executes various functional applications and information processing by running software programs and modules.
  • the receiver 802 and the transmitter 803 can be implemented as a transceiver, and the transceiver can be a communication chip.
  • the memory 804 is connected to the processor 801 through the bus 805; for example, the processor 801 can be implemented as a first IC chip, and the processor 801 and the memory 804 can be jointly implemented as a second IC chip; the first chip or the second chip can be It is an Application Specific Integrated Circuit (ASIC) chip.
  • ASIC Application Specific Integrated Circuit
  • the memory 804 may be used to store at least one computer program, and the processor 801 is used to execute the at least one computer program, so as to implement various steps in the foregoing method embodiments.
  • the memory 804 can be implemented by any type of volatile or non-volatile storage device or their combination, and the volatile or non-volatile storage device includes but not limited to: random-access memory (Random-Access Memory, RAM) , Read-Only Memory (Read-Only Memory, ROM), Erasable Programmable Read-Only Memory (EPROM), Electrically Erasable Programmable Read-Only Memory (Electrically Erasable Programmable Read-Only Memory, EEPROM), flash memory or other solid-state storage technology, compact disc read-only memory (CD-ROM), high-density digital video disc (Digital Video Disc, DVD) or other optical storage, tape cartridges, tapes, disks storage or other magnetic storage devices.
  • random-access memory Random-Access Memory
  • ROM Read-Only Memory
  • EPROM Erasable Programmable Read-Only Memory
  • EEPROM Electrically Erasable Programmable Read-Only Memory
  • flash memory or other solid-state storage technology compact disc read-only memory (CD-ROM), high-
  • An embodiment of the present application also provides a computer-readable storage medium, where a computer program is stored in the storage medium, and the computer program is configured to be executed by a processor of a multi-link device, so as to implement the above signal sending method.
  • the computer-readable storage medium may include: a read-only memory (Read-Only Memory, ROM), a random-access memory (Random-Access Memory, RAM), a solid-state hard drive (Solid State Drives, SSD) or an optical disc.
  • the random access memory may include resistive random access memory (Resistance Random Access Memory, ReRAM) and dynamic random access memory (Dynamic Random Access Memory, DRAM).
  • the embodiment of the present application also provides a chip, the chip includes a programmable logic circuit and/or program instructions, and when the chip runs on a multi-link device, it is used to implement the above signal sending method.
  • An embodiment of the present application also provides a computer program product or computer program, where the computer program product or computer program includes computer instructions, the computer instructions are stored in a computer-readable storage medium, and the processor of the multi-link device reads from the The computer-readable storage medium reads and executes the computer instructions, so as to realize the above signal sending method.
  • the "indication" mentioned in the embodiments of the present application may be a direct indication, may also be an indirect indication, and may also mean that there is an association relationship.
  • a indicates B which can mean that A directly indicates B, for example, B can be obtained through A; it can also indicate that A indirectly indicates B, for example, A indicates C, and B can be obtained through C; it can also indicate that there is an association between A and B relation.
  • the term "corresponding" may indicate that there is a direct or indirect correspondence between the two, or that there is an association between the two, or that it indicates and is indicated, configuration and is configuration etc.
  • the "plurality” mentioned herein means two or more.
  • “And/or” describes the association relationship of associated objects, indicating that there may be three types of relationships, for example, A and/or B may indicate: A exists alone, A and B exist simultaneously, and B exists independently.
  • the character “/” generally indicates that the contextual objects are an "or” relationship.
  • the numbering of the steps described herein only exemplarily shows a possible sequence of execution among the steps.
  • the above-mentioned steps may not be executed according to the order of the numbers, such as two different numbers
  • the steps are executed at the same time, or two steps with different numbers are executed in the reverse order as shown in the illustration, which is not limited in this embodiment of the present application.
  • the functions described in the embodiments of the present application may be implemented by hardware, software, firmware or any combination thereof.
  • the functions may be stored on or transmitted over as one or more instructions or code on a computer-readable medium.
  • Computer-readable media includes both computer storage media and communication media including any medium that facilitates transfer of a computer program from one place to another.
  • a storage media may be any available media that can be accessed by a general purpose or special purpose computer.

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

La présente demande concerne le domaine des communications mobiles et divulgue un procédé et un appareil d'envoi de signal, un procédé et un appareil de réception de signal, un dispositif, et un support de stockage. Le procédé comprend l'étape suivante : un premier dispositif envoie un signal de réveil ou de sommeil à un second terminal dans une plage de temps cible, le signal de réveil ou de sommeil étant utilisé pour indiquer si le second terminal effectue une détection de signal de liaison latérale. Selon la solution technique prévue par des modes de réalisation de la présente demande, par introduction d'un signal de réveil ou de sommeil pour indiquer si un terminal effectue une détection de signal de liaison latérale pendant une période d'activation, des mécanismes de commande pour que le terminal effectue la détection de signal de liaison latérale sont enrichis, et le signal de réveil ou de sommeil relie le fait que la détection de signal de liaison latérale est effectuée ou non au fait qu'il y a ou non des données de liaison latérale, ce qui permet d'éviter le problème de réalisation de la détection de signal de liaison latérale pendant la période d'activation lorsqu'il n'y a pas de données de liaison latérale envoyées, ce qui réduit ainsi la consommation d'énergie inutile.
PCT/CN2021/123355 2021-10-12 2021-10-12 Procédé et appareil d'envoi de signal, procédé et appareil de réception de signal, dispositif, et support de stockage WO2023060447A1 (fr)

Priority Applications (2)

Application Number Priority Date Filing Date Title
CN202180101296.4A CN117813781A (zh) 2021-10-12 2021-10-12 信号发送方法、信号接收方法、装置、设备及存储介质
PCT/CN2021/123355 WO2023060447A1 (fr) 2021-10-12 2021-10-12 Procédé et appareil d'envoi de signal, procédé et appareil de réception de signal, dispositif, et support de stockage

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
PCT/CN2021/123355 WO2023060447A1 (fr) 2021-10-12 2021-10-12 Procédé et appareil d'envoi de signal, procédé et appareil de réception de signal, dispositif, et support de stockage

Publications (1)

Publication Number Publication Date
WO2023060447A1 true WO2023060447A1 (fr) 2023-04-20

Family

ID=85987910

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2021/123355 WO2023060447A1 (fr) 2021-10-12 2021-10-12 Procédé et appareil d'envoi de signal, procédé et appareil de réception de signal, dispositif, et support de stockage

Country Status (2)

Country Link
CN (1) CN117813781A (fr)
WO (1) WO2023060447A1 (fr)

Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN109219116A (zh) * 2018-08-09 2019-01-15 华为技术有限公司 一种终端设备的休眠方法及装置
WO2019047131A1 (fr) * 2017-09-07 2019-03-14 Oppo广东移动通信有限公司 Procédé de réception discontinue, dispositif de réseau et dispositif terminal
US20210306948A1 (en) * 2020-03-26 2021-09-30 Qualcomm Incorporated Independent sidelink (sl) discontinuous reception (drx)

Patent Citations (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2019047131A1 (fr) * 2017-09-07 2019-03-14 Oppo广东移动通信有限公司 Procédé de réception discontinue, dispositif de réseau et dispositif terminal
CN109219116A (zh) * 2018-08-09 2019-01-15 华为技术有限公司 一种终端设备的休眠方法及装置
US20210306948A1 (en) * 2020-03-26 2021-09-30 Qualcomm Incorporated Independent sidelink (sl) discontinuous reception (drx)

Non-Patent Citations (1)

* Cited by examiner, † Cited by third party
Title
FRAUNHOFER IIS, FRAUNHOFER HHI: "NR SL DRX", 3GPP DRAFT; R2-2009993, 3RD GENERATION PARTNERSHIP PROJECT (3GPP), MOBILE COMPETENCE CENTRE ; 650, ROUTE DES LUCIOLES ; F-06921 SOPHIA-ANTIPOLIS CEDEX ; FRANCE, vol. RAN WG2, no. e-Meeting; 20201102 - 20201113, 23 October 2020 (2020-10-23), Mobile Competence Centre ; 650, route des Lucioles ; F-06921 Sophia-Antipolis Cedex ; France , XP051942744 *

Also Published As

Publication number Publication date
CN117813781A (zh) 2024-04-02

Similar Documents

Publication Publication Date Title
US10531431B2 (en) Apparatus and method for allocating resources in device-to-device communication in wireless network
US8638704B2 (en) Sleep mode power saving in a wireless communication device
US10959174B2 (en) Wake-up radio with urgent-data criterion
US11895589B2 (en) Power-efficient communication of group-addressed frames
JP2010518721A (ja) 効率的な不連続通信を提供する方法及び装置
CN115316008A (zh) 无线侧链路通信中的节电方法和设备
KR20210098814A (ko) 무선 통신 시스템에서 단말간 통신을 위한 drx 방법 및 장치
KR20220119477A (ko) 사이드링크 통신을 위한 방법 및 디바이스
WO2019028792A1 (fr) Procédé et dispositif d'attribution de ressource
WO2021248450A1 (fr) Procédés et appareil pour opération de réception discontinue (drx) en liaison latérale
WO2021233164A1 (fr) Procédé et appareil de communication
CN115209558A (zh) 一种侧行链路的传输方法及装置
WO2022083930A1 (fr) Procédé et appareil de communication à relais
WO2022206925A1 (fr) Procédé et appareil de transmission de liaison latérale
WO2023060447A1 (fr) Procédé et appareil d'envoi de signal, procédé et appareil de réception de signal, dispositif, et support de stockage
US20230046262A1 (en) Communications devices and methods
WO2021180098A1 (fr) Procédé et appareil de communication sans fil
WO2017177440A1 (fr) Appareil et procédé de transmission de l'indication d'état, et système de communication
CN116803155A (zh) 用于管理drx和wus操作以接收mbs服务的方法和系统
CN113382379B (zh) 无线通信方法和通信装置
WO2022205365A1 (fr) Procédé et appareil de détermination de temps d'activation, dispositifs, et support de stockage
WO2022252207A1 (fr) Procédé et appareil de communication
WO2022032681A1 (fr) Procédé de transmission de données et appareil de communication
WO2023207568A1 (fr) Procédé et appareil de communication
WO2023066102A1 (fr) Procédé et appareil de communication sans fil

Legal Events

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

Ref document number: 21960196

Country of ref document: EP

Kind code of ref document: A1

WWE Wipo information: entry into national phase

Ref document number: 202180101296.4

Country of ref document: CN