WO2021155732A1 - 一种信号传输方法及设备 - Google Patents

一种信号传输方法及设备 Download PDF

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Publication number
WO2021155732A1
WO2021155732A1 PCT/CN2021/070731 CN2021070731W WO2021155732A1 WO 2021155732 A1 WO2021155732 A1 WO 2021155732A1 CN 2021070731 W CN2021070731 W CN 2021070731W WO 2021155732 A1 WO2021155732 A1 WO 2021155732A1
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WIPO (PCT)
Prior art keywords
signal
transmission
transmission time
time
signals
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PCT/CN2021/070731
Other languages
English (en)
French (fr)
Inventor
杨美英
王加庆
罗晨
孙韶辉
Original Assignee
大唐移动通信设备有限公司
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Application filed by 大唐移动通信设备有限公司 filed Critical 大唐移动通信设备有限公司
Priority to US17/797,533 priority Critical patent/US20230056906A1/en
Priority to EP21751042.9A priority patent/EP4102896A4/en
Publication of WO2021155732A1 publication Critical patent/WO2021155732A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0636Feedback format
    • H04B7/0639Using selective indices, e.g. of a codebook, e.g. pre-distortion matrix index [PMI] or for beam selection
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0225Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
    • H04W52/0248Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal dependent on the time of the day, e.g. according to expected transmission activity
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0225Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
    • H04W52/0229Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal where the received signal is a wanted signal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0212Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave
    • H04W52/0216Power saving arrangements in terminal devices managed by the network, e.g. network or access point is master and terminal is slave using a pre-established activity schedule, e.g. traffic indication frame
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0225Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
    • H04W52/0241Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal where no transmission is received, e.g. out of range of the transmitter
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W52/00Power management, e.g. TPC [Transmission Power Control], power saving or power classes
    • H04W52/02Power saving arrangements
    • H04W52/0209Power saving arrangements in terminal devices
    • H04W52/0261Power saving arrangements in terminal devices managing power supply demand, e.g. depending on battery level
    • H04W52/0274Power saving arrangements in terminal devices managing power supply demand, e.g. depending on battery level by switching on or off the equipment or parts thereof
    • H04W52/028Power saving arrangements in terminal devices managing power supply demand, e.g. depending on battery level by switching on or off the equipment or parts thereof switching on or off only a part of the equipment circuit blocks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W68/00User notification, e.g. alerting and paging, for incoming communication, change of service or the like
    • H04W68/005Transmission of information for alerting of incoming communication
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/28Discontinuous transmission [DTX]; Discontinuous reception [DRX]
    • 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

  • This application relates to the field of wireless communication technology, and in particular to a signal transmission method and equipment.
  • the network side needs to send a variety of signals to the terminal to implement different functions.
  • these signals may include tracking reference signal (Tracking reference signal, TRS)/Channel state indicator reference signal (Channel sate indicator-reference signal, CSI-RS), synchronization Information block (Synchronization signal block, SSB), paging signal (Paging), etc.
  • TRS can be used for time-frequency tracking
  • CSI-RS can be used for channel quality acquisition
  • reference signal received power Reference Signal Received Power, RSRP
  • TRS/CSI-RS can also be used As an energy-saving signal, it instructs the terminal whether to wake up for downlink control information (Downlink Control Information, DCI) reception.
  • the SSB can be used to implement synchronization operations, or perform radio resource management (Radio resource management, RRM) measurement or mobility measurement. Paging can wake up the terminal for signal monitoring.
  • RRM Radio resource management
  • the above-mentioned signals can be sent periodically, and usually have different sending periods. How to indicate the transmission and reception relationship between the above-mentioned signals in order to reduce the power consumption of the terminal is a problem that needs to be solved at present.
  • the embodiments of the present application provide a signal transmission method and device.
  • a signal transmission method including: a base station configures transmission resources of at least two signals among a first signal, a second signal, and a third signal, and transmits the at least two signals according to the transmission resources of the at least two signals.
  • Two kinds of signals are Among the at least two kinds of signals, the transmission and reception of one signal is indicated by at least one other signal; the first signal is a signal used for at least one of synchronization, beam measurement, beam acquisition, and RRM measurement.
  • the second signal is a signal used for at least one function of synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement, channel state indicator (CSI) measurement, and terminal wake-up.
  • the signal is used for paging.
  • a signal transmission method including: a terminal receives transmission resources of at least two signals among a first signal, a second signal, and a third signal configured by a base station, and receives according to the transmission resources of the at least two signals The at least two signals.
  • the transmission and reception of one signal is indicated by at least one other signal;
  • the first signal is a signal used for at least one of synchronization, beam measurement, beam acquisition, and RRM measurement.
  • the second signal is a signal used for at least one function of synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement, CSI measurement, and terminal wake-up
  • the third signal is a signal used for paging.
  • a base station including: a processor, a memory, and a transceiver;
  • the transceiver receives and sends data under the control of the processor
  • the memory stores computer instructions
  • the processor is configured to read the computer instructions and execute the signal transmission method provided in the first aspect.
  • a terminal including: a processor, a memory, and a transceiver;
  • the transceiver receives and sends data under the control of the processor; the memory stores computer instructions;
  • the processor is configured to read the computer instruction and execute the signal transmission method provided in the second aspect described above.
  • a base station including: a processing module configured to configure transmission resources of at least two signals among a first signal, a second signal, and a third signal.
  • a processing module configured to configure transmission resources of at least two signals among a first signal, a second signal, and a third signal.
  • one signal is sent and received It is indicated by at least one other signal; wherein, the first signal is a signal used for at least one of synchronization, beam measurement, beam acquisition, and RRM measurement, and the second signal is used for synchronization and fine synchronization.
  • the sending module is configured to send the at least two kinds of signals according to the sending resources of the at least two kinds of signals.
  • a terminal including: a receiving module configured to receive transmission resources of at least two signals among a first signal, a second signal, and a third signal configured by a base station, one of the at least two signals The transmission and reception of signals is indicated by at least one other signal; wherein, the first signal is a signal used for at least one of synchronization, beam measurement, beam acquisition, and RRM measurement, and the second signal is used for synchronization , Fine synchronization, beam measurement, beam acquisition, RRM measurement, CSI measurement, and terminal wake-up signal, the third signal is a signal used for paging; and, according to the at least two kinds of signals The transmission resource receives the at least two kinds of signals.
  • a computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are used to make the computer execute the signal transmission method as described in the first aspect .
  • a computer-readable storage medium stores computer-executable instructions for causing the computer to execute the signal transmission method according to the second aspect .
  • the base station configures transmission resources of at least two signals among the first signal, the second signal, and the third signal, and transmits the at least two signals according to the transmission resources of the at least two signals.
  • the first signal is a signal used for at least one function of synchronization, beam measurement, beam acquisition, and RRM
  • the second signal is a signal used for synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement, CSI
  • the third signal is a signal used for paging.
  • the terminal can learn the transmission and reception related configuration of the other signal through one or two of the above three signals, and then The power consumption of the terminal can be reduced.
  • Fig. 1 exemplarily shows the processing flow diagram of SSB, TRS and paging signal
  • FIG. 2 exemplarily shows a schematic diagram of a signal sending flow on the base station side according to an embodiment of the present application
  • FIG. 3 exemplarily shows a schematic diagram of a signal receiving process on the terminal side according to an embodiment of the present application
  • FIG. 4, FIG. 5, and FIG. 6 respectively exemplarily show the processing flow diagrams of SSB, TRS, and paging signal in an embodiment of the present application;
  • FIG. 7 exemplarily shows a schematic structural diagram of a base station provided in an embodiment of the present application.
  • FIG. 8 exemplarily shows a schematic structural diagram of a terminal provided by an embodiment of the present application.
  • FIG. 9 exemplarily shows a schematic structural diagram of a base station provided by another embodiment of the present application.
  • Fig. 10 exemplarily shows a schematic structural diagram of a terminal provided by another embodiment of the present application.
  • the network side device is a device that provides wireless communication functions for the terminal, including but not limited to: gNB in 5G, radio network controller (RNC), node B (node B, NB) ), base station controller (BSC), base transceiver station (base transceiver station, BTS), home base station (for example, home evolved nodeB, or home node B, HNB), baseband unit (BaseBand Unit, BBU), Transmission point (transmitting and receiving point, TRP), transmission point (transmitting point, TP), mobile switching center, etc.
  • the base station in this application may also be a device that provides wireless communication functions for terminals in other communication systems that may appear in the future. In the embodiments of the present application, "base station" is taken as an example for description.
  • a terminal is a device that can provide users with voice and/or data connectivity.
  • terminal devices include handheld devices with wireless connection functions, vehicle-mounted devices, and so on.
  • terminal devices can be: mobile phones (mobile phones), tablets, notebook computers, handheld computers, mobile Internet devices (MID), wearable devices, virtual reality (VR) devices, augmented reality (augmented reality (AR) equipment, wireless terminals in industrial control, wireless terminals in self-driving (self-driving), wireless terminals in smart grid (smart grid), transportation safety (transportation safety)
  • a wireless terminal a wireless terminal in a smart city, or a wireless terminal in a smart home, etc.
  • the base station needs to send a variety of signals to the terminal to implement different functions, for example, these signals may include TRS/CSI-RS, SSB, paging signal (Paging), and so on.
  • these signals may include TRS/CSI-RS, SSB, paging signal (Paging), and so on.
  • TRS/CSI-RS is defined in the NR R16 standard.
  • TRS can be used for time-frequency tracking
  • CSI-RS can be used for channel quality acquisition, RSRP channel measurement, mobility measurement, and so on.
  • TRS/CSI-RS can also be used as energy-saving signals to instruct the terminal whether to wake up for DCI reception, thereby reducing the terminal's radio resource control (Radio Resource Control, RRC) idle state (RRC-idle) Power consumption.
  • RRC Radio Resource Control
  • Method 1 send periodically. Configure TRS/CSI-RS transmission resources through RRC signaling, including time-frequency spatial resources, report content, etc., when the configured period arrives, the TRS/CSI-RS transmission is performed on the configured resources;
  • Method 2 semi-persistent scheduling and sending. Configure TRS/CSI-RS transmission resources through RRC signaling, report type, trigger TRS/CSI-RS transmission through dynamic signaling; when TRS/CSI-RS transmission is not required, perform TRS/CSI-RS through dynamic signaling Deactivation;
  • TRS/CSI-RS transmission is triggered through L1 (layer 1) dynamic signaling, where TRS/CSI-RS transmission can be in DRX-on (DRX activation period, where DRX is Discontinuous Reception
  • DRX activation period where DRX is Discontinuous Reception
  • the L1 dynamic signaling may be DCI format0-1, and the CSI request (CSI request) bit field in the DCI is used to trigger the transmission of TRS/CSI-RS.
  • the terminal can monitor in the RRC idle state, RRC-Inactive state (RRC-Inactive) and RRC connected state; for TRS/CSI-RS semi-persistent scheduling transmission, the terminal can be connected in RRC Monitor in the RRC connection state; for TRS/CSI-RS dynamic transmission (aperiodic transmission), the terminal can monitor in the RRC connected state.
  • RRC-Inactive RRC-Inactive
  • RRC connected state for TRS/CSI-RS semi-persistent scheduling transmission, the terminal can be connected in RRC Monitor in the RRC connection state; for TRS/CSI-RS dynamic transmission (aperiodic transmission), the terminal can monitor in the RRC connected state.
  • SSB is configured periodically, and the terminal can perform SSB monitoring and synchronization operations, or perform RRM measurement or mobility measurement, etc., when the SSB period arrives.
  • the paging signal is configured periodically.
  • the terminal can determine its own PO moment through a paging frame (Paging Frame) PF and a paging opportunity (Paging Occasion, PO), and monitor the paging signal at the PO moment.
  • Paging Frame paging frame
  • PO paging opportunity
  • the terminal needs to wake up to monitor whether it has a paging signal for itself.
  • the operation process on the terminal side can be shown in Figure 1.
  • the terminal periodically monitors the SSB for synchronization and/or RRM measurement; the terminal periodically monitors the TRS for precise channel time-frequency synchronization; the terminal periodically monitors the paging signal (Paging) in the PO position Perform paging DCI reception and monitoring. If the paging DCI for yourself is monitored, the subsequent PDSCH demodulation and decoding will be performed. If the paging DCI for yourself is not monitored, the paging signal will continue to be monitored in the next paging cycle.
  • the period of the SSB can be 5ms, 10ms, 20ms, 40ms, 80ms, or 160ms.
  • the TRS/CSI-RS cycle can be 10ms, 20ms, 40ms, or 80ms (take 15KHZ as an example), and the time domain offset (offset) can be configured, and the value range of the offset is [0ms, 32ms].
  • the period of the paging signal (Paging) can be 32 radio frames, 64 radio frames, 128 radio frames, or 256 radio frames.
  • the position of the PO can be in a PF according to the configuration of the synchronization signal (SS). For one or more time slots, the starting position of the PO depends on the offset configuration of the SS and the offset configuration of the PO.
  • the terminal After the terminal receives the SSB for synchronization, if it needs to receive a paging signal (Paging), it needs to perform fine synchronization or time-frequency tracking based on TRS before PO. If the sending time of TRS/CSR-RS is far away from the sending time of SSB, the terminal needs to wait a long time after receiving the SSB to receive the TRS to complete the fine synchronization, and then the Paging DCI can be received.
  • Paging paging signal
  • the terminal needs to periodically wake up to receive SSB, TRS, and paging signals (Paging), which brings greater power consumption. For example, if the time interval between SSB and TRS is large, the terminal In order to receive these signals periodically, deep sleep cannot be entered, which causes additional power consumption. Further, if the time interval between the SSB, the TRS and the paging signal (Paging) is relatively large, it may cause errors in the demodulation and decoding of the DCI of the paging signal (Paging), thereby causing unnecessary power consumption.
  • the embodiments of the application provide a signal transmission method and equipment.
  • the sending and receiving of one of the signals is instructed by the other one or more signals, so that the terminal can learn Signal transceiving related configuration (such as whether it is necessary to receive a certain signal, or a certain signal transmission resource), thereby reducing the power consumption of the terminal.
  • the embodiments of the present application can be applied to signal configuration and transmission in the RRC idle state (RRC-Idle).
  • FIG. 2 exemplarily shows a schematic diagram of a signal sending process implemented on the base station side according to an embodiment of the present application. As shown in the figure, the process may include:
  • the base station configures transmission resources of at least two signals among the first signal, the second signal, and the third signal, where the transmission and reception of one signal among the at least two signals is indicated by the other at least one signal.
  • the first signal, the second signal, and the third signal are different signals.
  • the first signal may be a signal used to implement at least one function of synchronization, beam measurement, beam acquisition, and RRM measurement, and may also be a signal used to implement at least one of the following functions: broadcast, system message.
  • the first signal may be at least one of the following signals or information: SSB, secondary synchronization signal (SSS), primary synchronization signal (PSS), physical broadcast channel (Physical Broadcast Channel, PBCH), legacy system Message (Remaining system information, RMSI); it can carry at least one of the following information, including synchronization information, broadcast information, and system information.
  • the second signal may be a signal used to implement at least one function of synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement, CSI measurement, and terminal wake-up, and may also be used to implement at least one of the following functions Signal: channel tracking, phase tracking, positioning.
  • the second signal can be at least one of the following signals: TRS, CSI-RS, wake-up signal (Wake-up signal, WUS), phase tracking reference signal (PT-RS), positioning reference signal (Positioning reference signa) , P-RS).
  • the second signal may include at least one of a cell-level signal, a terminal group-level (UE-group) signal, and a terminal-level (UE-specific) signal.
  • the third signal may be a signal used for paging, such as a paging signal (Paging).
  • Paging paging signal
  • the base station sends the at least two types of signals according to the transmission resources of the at least two types of signals.
  • the sending and receiving of a signal is indicated by at least another signal, which refers to whether a signal needs to be sent or received, which can be indicated by another one or two signals, or the sending resource of a signal can be Indication by another one or two signals, or a combination of the above.
  • it may include at least one of the following situations:
  • the sending and receiving of the first signal is indicated by at least one of the second signal and the third signal;
  • Fig. 3 exemplarily shows a schematic diagram of a signal receiving process implemented on the terminal side according to an embodiment of the present application. As shown in the figure, the process may include:
  • the terminal receives transmission resources of at least two signals among the first signal, the second signal, and the third signal configured by the base station, and among the at least two signals, the transmission and reception of one signal is indicated by the other at least one signal.
  • S302 The terminal receives the at least two types of signals according to the transmission resources of the at least two types of signals.
  • the base station configures transmission resources of at least two signals among the first signal, the second signal, and the third signal, and transmits the at least two signals according to the transmission resources of the at least two signals.
  • the first signal is a signal used for at least one function of synchronization, beam measurement, beam acquisition, and RRM
  • the second signal is a signal used for synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement, CSI
  • the third signal is a signal used for paging.
  • the terminal can learn the transmission and reception related configuration of the other signal through one or two of the above three signals, and then The power consumption of the terminal can be reduced.
  • Example 1 The first signal indicates the sending and receiving of the second signal.
  • the base station configures at least the transmission resources of the first signal and the second signal, and may further configure the transmission resources of the third signal, where the first signal may be used to indicate the transmission and reception of the second signal.
  • the first signal may include at least one of the first indication information and the second indication information, and the first indication information is used to indicate whether to send and receive the second signal (for example, the first indication information is used to indicate the base station Whether to send the second signal, or whether the terminal needs to receive the second signal), the second indication information is used to indicate the sending resource of the second signal.
  • the first indication information is used to indicate whether to send and receive the second signal (for example, the first indication information is used to indicate the base station Whether to send the second signal, or whether the terminal needs to receive the second signal)
  • the second indication information is used to indicate the sending resource of the second signal.
  • the first indication information may be 1-bit indication information. When its value is 0, it means that the terminal needs to receive the second signal, and when its value is 1, it means that the terminal does not need to receive the second signal, and vice versa. .
  • Fig. 4 exemplarily shows a schematic diagram of transmission of a first signal and a second signal.
  • the value of the first indication information in the first signal is 0 (the first SSB and the third SSB in the figure)
  • no second signal is sent after that, and the first signal in the first signal
  • the value of the indication information is 1, (the second SSB in the figure)
  • a second signal is sent thereafter.
  • the second indication information is a resource index of a transmission resource of the second signal.
  • the number of bits of the second indication information can be defined.
  • the second indication information can be 2-bit information for indicating The 4 sending resources.
  • the transmission resource of the second signal may include at least one of the following transmission resources: a transmission resource configured by RRC signaling, a predetermined transmission resource, and a transmission resource associated with the transmission resource of the first signal.
  • the foregoing transmission resource configured by RRC signaling may include: the transmission resource of the second signal configured in the RRC connected state (RRC-connected), and the transmission resource of the second signal configured in the RRC idle state (RRC-Idle),
  • the transmission resource of the second signal configured in the RRC inactive state (RRC-inactive) is the transmission resource of the second signal configured using the saved RRC-connected configuration.
  • the foregoing transmission resource associated with the transmission resource of the first signal may include one or any combination of the following:
  • a transmission resource whose time interval with the transmission resource of the first signal in the time domain is not greater than the set time interval.
  • the set time interval includes at least one time interval unit, and the time interval unit includes at least one of the following: a radio frame, a half frame, a subframe, a time slot, and a symbol.
  • the set time interval is 2 subframes, in the time domain, the time interval between the transmission resource of the second signal and the transmission resource of the first signal does not exceed 2 subframes, that is, the time interval between the transmission resource of the second signal and the transmission resource of the first signal.
  • Resources whose time interval between sending resources is within 2 subframes may be used as the sending resource of the second signal.
  • the time interval may be 1 subframe or the time interval may be 2. Subframes, it may also be the following situation: the time interval between the transmission resources of part of the second signal and the transmission resources of the first signal is 1 subframe, and the time interval between the transmission resources of part of the second signal and the transmission resources of the first signal is 1 subframe. The time interval is 2 subframes.
  • Fig. 5 exemplarily shows a schematic diagram of transmission of a first signal and a second signal.
  • the second signal is configured to be sent (the first indication information in the second SSB and the third SSB in the figure is 1)
  • the second signal is sent and the second signal is sent.
  • the transmission time of the signal is associated with the transmission time of the first signal. Specifically, there is one or more time interval units between the transmission time of the second signal and the transmission time of the first signal.
  • Fig. 6 exemplarily shows a schematic diagram of transmission of a first signal and a second signal.
  • the sending time of the second signal is the same as that of the second signal.
  • the transmission time of a signal is associated, specifically, there is one or more time interval units between the transmission time of the second signal and the transmission time of the first signal.
  • the frequency domain interval with the transmission resource of the first signal in the frequency domain is not greater than the transmission resource with the set frequency domain interval.
  • the set frequency domain interval includes at least one frequency domain interval unit, and the frequency domain interval unit includes at least one of the following: a carrier, a resource block (Resource block, RB), and a resource element (Resource element, RE).
  • the set frequency domain interval is 4 RBs, then in the frequency domain, the frequency domain interval between the transmission resource of the second signal and the transmission resource of the first signal does not exceed 4 sub-RBs, that is, the same as the first signal.
  • the resources whose frequency domain interval is within 4 RBs (including the frequency domain interval of 4 RBs) between the signal transmission resources may be used as the second signal transmission resource.
  • the beam spacing with the transmission resource of the first signal in the spatial beam direction is not greater than the transmission resource with the set spatial spacing.
  • the set spatial interval includes at least one spatial beam interval unit, and the spatial beam interval unit includes at least one of radians and degrees. For example, if the set spatial interval is 2 radians, in the spatial domain, the beam interval between the transmission resource of the second signal and the transmission resource of the first signal does not exceed 2 radians.
  • the terminal receives the transmission resources of the first signal and the second signal configured by the base station. If the base station also configures the transmission resource of the third signal, the terminal also receives the transmission resource of the third signal configured by the base station, and configures it according to the base station configuration.
  • the sending resource receives the corresponding signal.
  • the terminal determines that it needs to receive the second signal according to the first indication information, it will be configured according to the base station.
  • the sending resource of the second signal receives the second signal. If the terminal determines that it does not need to receive the second signal according to the first indication information, it does not receive the second signal.
  • the terminal determines that it needs to receive the second signal according to the first indication information, it will perform the second signal according to the second indication.
  • the sending resource indicated by the information receives the second signal. If the terminal determines that it does not need to receive the second signal according to the first indication information, it does not receive the second signal.
  • the terminal determines that it needs to receive the second signal, and transmits according to the second indication information.
  • the resource receives the second signal.
  • Example 2 The second signal indicates the sending and receiving of the first signal.
  • the base station configures at least the transmission resources of the first signal and the second signal, and may further configure the transmission resources of the third signal, where the second signal may be used to indicate the transmission and reception of the first signal.
  • the second signal includes at least one of third indication information and fourth indication information
  • the third indication information is used to indicate whether to send and receive the first signal (for example, the third indication information is used to indicate whether the base station Sending the first signal, or whether the terminal needs to receive the first signal)
  • the fourth indication information is used to indicate the sending resource of the first signal.
  • the third indication information may be 1-bit indication information. When its value is 0, it means that the terminal needs to receive the first signal, and when its value is 1, it means that the terminal does not need to receive the first signal, and vice versa. .
  • the fourth indication information is the resource index of the transmission resource of the first signal.
  • the number of bits of the fourth indication information can be defined.
  • the fourth indication information can be 2-bit information for indicating The 4 sending resources.
  • the transmission resource of the first signal includes at least one of the following transmission resources: a transmission resource configured by RRC signaling, a predetermined transmission resource, and a transmission resource associated with the transmission resource of the second signal.
  • the foregoing transmission resource configured by RRC signaling may include: the transmission resource of the second signal configured in the RRC connected state (RRC-connected), and the transmission resource of the second signal configured in the RRC idle state (RRC-Idle),
  • the transmission resource of the second signal configured in the RRC inactive state (RRC-inactive) is the transmission resource of the second signal configured using the saved RRC-connected configuration.
  • the foregoing transmission resource associated with the transmission resource of the second signal may include one or any combination of the following:
  • a transmission resource whose time interval with the transmission resource of the second signal in the time domain is not greater than the set time interval.
  • the set time interval includes at least one time interval unit, and the time interval unit includes at least one of the following: a radio frame, a half frame, a subframe, a time slot, and a symbol.
  • the set time interval is 2 subframes, in the time domain, the time interval between the transmission resource of the first signal and the transmission resource of the second signal does not exceed 2 subframes, that is, the time interval with the second signal Resources whose time interval between sending resources is within 2 subframes (including 2 subframes) may be used as the sending resource of the first signal.
  • the time interval can be 1 subframe or the time interval can be 2 Subframes, it may also be the following situation: the time interval between the transmission resources of part of the first signal and the transmission resources of the second signal is 1 subframe, and the time interval between the transmission resources of part of the first signal and the transmission resources of the second signal is 1 subframe.
  • the time interval is 2 subframes.
  • the frequency domain interval with the transmission resource of the second signal in the frequency domain is not greater than the transmission resource with the set frequency domain interval.
  • the set frequency domain interval includes at least one frequency domain interval unit, and the frequency domain interval unit includes at least one of the following: carrier, RB, and RE.
  • the set frequency domain interval is 4 RBs, then in the frequency domain, the frequency domain interval between the transmission resource of the first signal and the transmission resource of the second signal does not exceed 4 sub-RBs, that is, the same as the second signal.
  • the resources whose frequency domain interval is within 4 RBs (including the frequency domain interval of 4 RBs) between the signal transmission resources may be used as the transmission resource of the first signal.
  • the beam spacing with the transmission resource of the second signal in the spatial beam direction is not greater than the transmission resource with the set spatial spacing.
  • the set spatial interval includes at least one spatial beam interval unit, and the spatial beam interval unit includes at least one of radians and degrees. For example, if the set spatial interval is 2 radians, in the spatial domain, the beam interval between the transmission resource of the first signal and the transmission resource of the second signal does not exceed 2 radians.
  • the terminal receives the transmission resources of the first signal and the second signal configured by the base station. If the base station also configures the transmission resources of the third signal, the terminal also receives the transmission resources of the third signal configured by the base station, and configures it according to the base station configuration.
  • the sending resource receives the corresponding signal.
  • the terminal determines that it needs to receive the first signal according to the third indication information, it will be configured according to the base station.
  • the transmission resource of the first signal receives the first signal. If the terminal determines that it does not need to receive the first signal according to the third indication information, it does not receive the first signal.
  • the terminal determines that it needs to receive the first signal according to the third indication information, then according to the fourth indication The sending resource indicated by the information receives the first signal. If the terminal determines that it does not need to receive the first signal according to the third indication information, it does not receive the first signal.
  • the terminal determines that it needs to receive the first signal, and according to the fourth indication information indicates The sending resource receives the first signal.
  • Example 3 The third signal indicates the transmission and reception of the first signal.
  • the base station configures transmission resources of the first signal, the second signal, and the third signal, where the third signal may be used to indicate the transmission and reception of the first signal.
  • the sending moment of the first signal is indicated by the sending moment of the third signal.
  • the transmission time of the first signal is the same as the transmission time of the third signal, or the transmission time of the first signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal.
  • the terminal receives the transmission resources of the first signal, the second signal, and the third signal configured by the base station, and receives corresponding signals according to the transmission resources configured by the base station.
  • the terminal determines the transmission time of the first signal according to the transmission time of the third signal, and receives the first signal according to the transmission time of the first signal.
  • the base station configures whether to send the third signal at time M. If the third signal is sent at time M, the base station sends the first signal at time (Mk), where k is a positive integer not less than zero, so that the first signal The transmission and reception of the signal is no later than the time of the PF (Paging Frame) where the third signal is located, or the transmission and reception of the first signal is no later than the time of the PO (Paging Opportunity) where the third signal is located.
  • Mk a positive integer not less than zero
  • the base station does not transmit the third signal, the base station does not configure the transmission of the first signal.
  • Example 4 The third signal indicates the sending and receiving of the first signal.
  • the base station configures transmission resources of the first signal, the second signal, and the third signal, where the third signal may be used to indicate the transmission and reception of the second signal.
  • the sending moment of the second signal is indicated by the sending moment of the third signal, where the sending moment of the second signal is the same as the sending moment of the third signal, or the sending moment of the second signal is at the sending moment of the third signal
  • the time before and from the sending time of the third signal is the set time offset.
  • the terminal receives the transmission resources of the first signal, the second signal, and the third signal configured by the base station, and receives corresponding signals according to the transmission resources configured by the base station.
  • the terminal determines the sending moment of the second signal according to the sending moment of the third signal, and receives the second signal according to the sending moment of the second signal.
  • the base station configures whether to send the third signal at time M. If the third signal is sent at time M, the base station sends the second signal at time (Mn), where n is a positive integer not less than zero, so that the second signal The transmission and reception of the signal is no later than the time of the PF (Paging Frame) where the third signal is located, or the transmission and reception of the second signal is no later than the time of the PO (Paging Opportunity) where the third signal is located.
  • Mn a positive integer not less than zero
  • the base station does not transmit the third signal, the base station does not configure the transmission of the second signal.
  • Example 5 The third signal indicates the transmission and reception of the first signal and the second signal.
  • the base station configures the transmission resources of the first signal, the second signal, and the third signal, where the third signal can be used to indicate the transmission and reception of the first signal and the second signal.
  • the transmission time of the first signal and the second signal are indicated by the transmission time of the third signal.
  • the transmission time of the first signal and the second signal are the same as the transmission time of the third signal.
  • the transmission time of the first signal is the same as the transmission time of the second signal, and the transmission time is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal.
  • the transmission time of the first signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal
  • the transmission time of the second signal is the same as the transmission time of the third signal. same.
  • the transmission time of the first signal is before the transmission time of the third signal and is a first time offset from the transmission time of the third signal
  • the transmission time of the second signal is at the time of the third signal.
  • the second time offset is set before and after the transmission time of the third signal, and the first time offset is greater than the second time offset.
  • the terminal receives the transmission resources of the first signal, the second signal, and the third signal configured by the base station, and receives corresponding signals according to the transmission resources configured by the base station.
  • the terminal determines the transmission time of the first signal and the second signal according to the transmission time of the third signal, receives the first signal according to the transmission time of the first signal, and receives the second signal according to the transmission time of the second signal.
  • the base station configures whether to send the third signal at time M. If the third signal is sent at time M, the base station sends the first signal at time (Mk) and the second signal at time (Mn), where k and n is a positive integer not less than zero, n ⁇ k. Since n ⁇ k, the transmission time of the second signal is not earlier than the transmission time of the first signal. Since n ⁇ 0, the transmission and reception of the second signal is no later than the time of the PF (paging frame) where the third signal is located, or the transmission and reception of the second signal is no later than the time of the PO (paging opportunity) where the third signal is located.
  • the base station does not transmit the third signal, the base station does not configure the transmission of the first signal and the transmission of the second signal.
  • Example 6 The first signal indicates the sending and receiving of the third signal.
  • the base station configures the transmission resources of the first signal, the second signal, and the third signal, where the first signal may be used to indicate the transmission and reception of the third signal.
  • the sending moment of the third signal is indicated by the sending moment of the first signal, where the sending moment of the third signal is the same as the sending moment of the first signal, or the sending moment of the third signal is at the sending moment of the first signal. After the time and from the sending time of the first signal, it is the set time offset.
  • the terminal receives the transmission resources of the first signal, the second signal, and the third signal configured by the base station, and receives corresponding signals according to the transmission resources configured by the base station.
  • the terminal determines the transmission time of the third signal according to the transmission time of the first signal, and receives the third signal according to the transmission time of the third signal.
  • the base station sends the third signal at time (N+x), where x is a positive integer not less than zero, so that the third signal is sent and received no earlier than the first signal.
  • N+x is a positive integer not less than zero
  • Example 7 The second signal indicates the sending and receiving of the third signal.
  • the base station configures at least the transmission resources of the second signal and the third signal, and further, the transmission resources of the first signal may also be configured.
  • the second signal can be used to indicate the transmission and reception of the third signal.
  • the sending moment of the third signal is indicated by the sending moment of the second signal, where the sending moment of the third signal is the same as the sending moment of the second signal, or the sending moment of the third signal is at the sending moment of the second signal.
  • the time and from the sending time of the second signal it is a set time offset.
  • the terminal receives the transmission resources of the second signal and the third signal configured by the base station. Further, if the base station is configured with the transmission resources of the first signal, the terminal receives the transmission resources of the first signal configured by the base station, and then according to the base station The configured transmission resource receives the corresponding signal. The terminal determines the transmission time of the third signal according to the transmission time of the second signal, and receives the third signal according to the transmission time of the third signal.
  • the base station sends the third signal at time (P+y), where y is a positive integer not less than zero, so that the third signal is sent and received no earlier than the second signal. The time at which the signal was sent.
  • Example 8 The first signal and the second signal jointly indicate the sending and receiving of the third signal.
  • the base station configures the transmission resources of the first signal, the second signal, and the third signal, where the first signal and the second signal may jointly indicate the transmission and reception of the third signal.
  • the first signal includes at least one of fifth indication information and sixth indication information
  • the fifth indication information is used to indicate whether a terminal in the first terminal group performs transmission and reception of the second signal.
  • the sixth indication information is used to indicate the transmission resource of the second signal to the terminal in the first terminal group.
  • the sending moment of the third signal is indicated by the sending moment of the second signal, where the sending moment of the third signal is the same as the sending moment of the second signal, or the sending moment of the third signal is after the sending moment of the second signal and the distance
  • the sending moment of the second signal is the set time offset.
  • the terminal On the terminal side, the terminal receives the transmission resources of the first signal, the second signal, and the third signal configured by the base station, and receives corresponding signals according to the transmission resources configured by the base station.
  • the signal receiving operation of the terminal may include:
  • the second signal is received according to the transmission resource configured by the base station For the second signal, determine the transmission time of the third signal according to the transmission time of the second signal, and receive the third signal according to the transmission time of the third signal; if the terminal determines that the second signal does not need to be received according to the fifth indication information, then Not receiving the second signal and the third signal;
  • the first signal received by the terminal includes the fifth indication information and the sixth indication information, and according to the fifth indication information, it is determined that the second signal needs to be received, then the second signal is received according to the transmission resource indicated by the sixth indication information , Determine the sending moment of the third signal according to the sending moment of the second signal, and receive the third signal according to the sending moment of the third signal; if the terminal determines that the second signal does not need to be received according to the fifth indication information, it does not receive the second signal The second signal and the third signal;
  • the terminal determines that it needs to receive the second signal, receives the second signal according to the transmission resource indicated by the sixth indication information, and according to the first signal
  • the sending moment of the second signal determines the sending moment of the third signal, and the third signal is received according to the sending moment of the third signal.
  • signal reception can be performed in a conventional manner.
  • the base station may transmit the first signal and prohibit the transmission of the second signal; in other embodiments, the base station The first signal and the second signal may be sent, wherein at least one resource unit is spaced between the second signal and the first signal, and the resource unit includes a time domain resource unit, a frequency domain resource unit, a code domain resource unit, and a space domain resource unit At least one of them.
  • the time domain resource unit may include at least one of the following: radio frame, half frame, subframe, time slot, and symbol;
  • the frequency domain resource unit may include at least one of the following: carrier, RB, RE; and the space resource
  • the unit may include at least one of radians and degrees.
  • the base station configures to transmit the first signal, and configures to transmit the second signal after a resource interval of at least one resource unit after the first signal.
  • the base station configures to transmit the second signal, and configures the first signal to be transmitted at a resource interval of at least one resource before the second signal.
  • the embodiments of the present application can solve the design of the transmission pattern of the first signal, the second signal, and the third signal in the RRC idle state (RRC-idle) or the RRC inactive state (RRC-inactive).
  • RRC-idle the RRC idle state
  • RRC-inactive the RRC inactive state
  • an embodiment of the present application also provides a base station, which can implement the functions of the base station side in the foregoing embodiment.
  • FIG. 7 exemplarily shows the structure of a base station in an embodiment of the present application.
  • the base station may include a processing module 701 and a sending module 702.
  • the processing module 701 is configured to configure transmission resources of at least two signals among the first signal, the second signal, and the third signal, and among the at least two signals, the transmission and reception of one signal is instructed by the other at least one signal;
  • the first signal is a signal used for at least one function of synchronization, beam measurement, beam acquisition, and RRM measurement
  • the second signal is a signal used for synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement
  • the third signal is a signal used for paging.
  • the sending module 702 is configured to send the at least two kinds of signals according to the sending resources of the at least two kinds of signals.
  • the processing module 701 is specifically configured to: configure transmission resources of the first signal and the second signal, where the first signal includes at least one of the first indication information and the second indication information, and the first signal
  • the indication information is used to indicate whether to send and receive the second signal
  • the second indication information is used to indicate the transmission resource of the second signal.
  • the second indication information is the resource index of the transmission resource of the second signal; the transmission resource of the second signal includes the transmission resource configured by RRC signaling, the pre-appointed transmission resource, and the transmission resource of the first signal. At least one of the transmission resources associated with the transmission resource.
  • the transmission resource associated with the transmission resource of the first signal includes one or any combination of the following: a transmission resource whose time interval with the transmission resource of the first signal in the time domain is not greater than a set time interval, The frequency domain interval from the transmission resource of the first signal in the frequency domain is not greater than the transmission resource of the set frequency domain interval, and the beam interval from the transmission resource of the first signal in the spatial beam direction is not greater than the transmission resource of the preset spatial interval, and
  • the transmission resources of the first signal are orthogonal transmission resources in the code domain.
  • the processing module 701 is specifically configured to: configure transmission resources of the first signal and the second signal, where the second signal includes at least one of the third indication information and the fourth indication information, and the third The indication information is used to indicate whether to send and receive the first signal, and the fourth indication information is used to indicate the transmission resource of the first signal.
  • the fourth indication information is the resource index of the transmission resource of the first signal; the transmission resource of the first signal includes the transmission resource configured by RRC signaling, the pre-appointed transmission resource, and the transmission resource of the second signal. At least one of the transmission resources associated with the transmission resource.
  • the transmission resource associated with the transmission resource of the second signal includes one or any combination of the following: a transmission resource whose time interval with the transmission resource of the second signal in the time domain is not greater than a set time interval, The frequency domain interval with the second signal transmission resource in the frequency domain is not greater than the transmission resource with the set frequency domain interval, and the beam interval with the second signal transmission resource in the spatial beam direction is not greater than the transmission resource with the set spatial interval, and
  • the transmission resources of the second signal are orthogonal transmission resources in the code domain.
  • the processing module 701 is specifically configured to configure transmission resources of the first signal and the third signal, and the transmission time of the first signal is indicated by the transmission time of the third signal, where the transmission time of the first signal is the same as that of the third signal.
  • the transmission time of the signal is the same, or the transmission time of the first signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal.
  • the processing module 701 is specifically configured to: configure transmission resources of the second signal and the third signal, and the transmission time of the second signal is indicated by the transmission time of the third signal, where the transmission time of the second signal is the same as that of the third signal.
  • the transmission time of the signal is the same, or the transmission time of the second signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal.
  • the processing module 701 is specifically configured to configure transmission resources of the first signal, the second signal, and the third signal, and the transmission time of the first signal and the second signal is indicated by the transmission time of the third signal, where: The transmission time of the first signal and the second signal is the same as the transmission time of the third signal; or, the transmission time of the first signal is the same as the transmission time of the second signal and the transmission time is before the transmission time of the third signal and is at a distance from the first signal.
  • the transmission time of the three signals is the set time offset; or, the transmission time of the first signal is before the transmission time of the third signal and the distance from the transmission time of the third signal is the set time offset, the transmission of the second signal
  • the time is the same as the transmission time of the third signal; or, the transmission time of the first signal is before the transmission time of the third signal and the distance from the transmission time of the third signal is the set first time offset, and the transmission time of the second signal Before and after the sending moment of the third signal is a set second time offset, the first time offset is greater than the second time offset.
  • the processing module 701 is specifically configured to configure the transmission resources of the first signal and the third signal, and the transmission time of the third signal is indicated by the transmission time of the first signal.
  • the transmission time of the signal is the same, or the transmission time of the third signal is after the transmission time of the first signal and is a set time offset from the transmission time of the first signal.
  • the processing module 701 is specifically configured to: configure transmission resources of the second signal and the third signal, and the transmission time of the third signal is indicated by the transmission time of the second signal, where the transmission time of the third signal is the same as that of the second signal.
  • the transmission time of the signal is the same, or the transmission time of the third signal is after the transmission time of the second signal and is a set time offset from the transmission time of the second signal.
  • the processing module 701 is specifically configured to configure transmission resources of the first signal, the second signal, and the third signal, where: the first signal includes at least one of the fifth indication information and the sixth indication information, and The fifth indication information is used to indicate whether the terminal in the first terminal group is to send and receive the second signal, and the sixth indication information is used to indicate the transmission resource of the second signal to the terminal in the first terminal group;
  • the transmission time is indicated by the transmission time of the second signal, where the transmission time of the third signal is the same as the transmission time of the second signal, or the transmission time of the third signal is after the transmission time of the second signal and is at a distance from the second signal.
  • the sending time is the set time offset.
  • the processing module 701 is further configured to: if the transmission resource of the first signal conflicts with the transmission resource of the second signal, send the first signal and prohibit sending the second signal; or, send the first signal and the second signal.
  • Two signals wherein there is at least one resource unit spaced between the second signal and the first signal, and the resource unit includes at least one of a time domain resource unit, a frequency domain resource unit, a code domain resource unit, and a space domain resource unit.
  • the first signal includes at least one of the following signals: SSB, SSS, PSS, PBCH, RMSI;
  • the second signal includes at least one of the following signals: TRS, CSI-RS, WUS, PT-RS, P-RS;
  • the third signal includes the paging signal.
  • an embodiment of the present application also provides a terminal, which can implement the aforementioned terminal-side functions.
  • FIG. 8 exemplarily shows the structure of the terminal in the embodiment of the present application.
  • the terminal may include a processing module 801 and a receiving module 802.
  • the receiving module 802 under the control of the processing module 801, is configured to receive the transmission resources of at least two signals among the first signal, the second signal, and the third signal configured by the base station, and receive the transmission resources of the at least two signals according to the transmission resources of the at least two signals. Said at least two signals.
  • the transmission and reception of one signal is indicated by at least one other signal; wherein, the first signal is used for at least one function of synchronization, beam measurement, beam acquisition, and RRM measurement
  • the second signal is a signal used for at least one function of synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement, CSI measurement, and terminal wake-up, and the third signal is used for paging Signal.
  • the description of the above-mentioned first signal, second signal and third signal is the same as the previous embodiment, and will not be repeated here.
  • the first signal received by the terminal includes at least one of first indication information and second indication information, and the first indication information is used to indicate whether to send and receive the second signal, and the second indication
  • the information is used to indicate the transmission resource of the second signal, and the receiving module 802, under the control of the processing module 801, is specifically used to:
  • the terminal determines that it needs to receive the second signal according to the first indication information, then the second signal is received according to the transmission resource of the second signal configured by the base station ;
  • the terminal determines that it needs to receive the second signal according to the first indication information, then according to the second indication information Sending the resource to receive the second signal;
  • the terminal determines that it needs to receive the second signal, and receives the second signal according to the transmission resource indicated by the second indication information.
  • the second indication information is the resource index of the transmission resource of the second signal; the transmission resource of the second signal includes the transmission resource configured by RRC signaling, the pre-appointed transmission resource, and the transmission resource of the first signal. At least one of the associated transmission resources.
  • the transmission resource associated with the transmission resource of the first signal includes one or any combination of the following: a transmission resource whose time interval with the transmission resource of the first signal in the time domain is not greater than a set time interval, The frequency domain interval from the transmission resource of the first signal in the frequency domain is not greater than the transmission resource of the set frequency domain interval, and the beam interval from the transmission resource of the first signal in the spatial beam direction is not greater than the transmission resource of the preset spatial interval, and
  • the transmission resources of the first signal are orthogonal transmission resources in the code domain.
  • the second signal received by the terminal includes at least one of third indication information and fourth indication information, and the third indication information is used to indicate whether to send and receive the first signal, and the fourth indication information Used to indicate the transmission resource of the first signal, then:
  • the processing module 801 determines according to the third indication information that it is necessary to receive the first signal, the receiving module 802 is used to configure the transmission resource of the first signal according to the base station Receive the first signal;
  • the processing module 801 determines according to the third indication information that it is necessary to receive the first signal, then the receiving module 802 performs according to the fourth indication information. Indicating that the transmission resource indicated by the indication information receives the first signal;
  • the processing module 801 determines that the first signal needs to be received, and the receiving module 802 receives the first signal according to the transmission resource indicated by the fourth indication information.
  • the fourth indication information is the resource index of the transmission resource of the first signal; the transmission resource of the first signal includes the transmission resource configured by RRC signaling, the pre-appointed transmission resource, and the transmission resource of the second signal. At least one of the associated transmission resources.
  • the transmission resource associated with the transmission resource of the second signal includes one or any combination of the following: a transmission resource whose time interval with the transmission resource of the second signal in the time domain is not greater than a set time interval, The frequency domain interval with the second signal transmission resource in the frequency domain is not greater than the transmission resource with the set frequency domain interval, and the beam interval with the second signal transmission resource in the spatial beam direction is not greater than the transmission resource with the set spatial interval, and
  • the transmission resources of the second signal are orthogonal transmission resources in the code domain.
  • the receiving module 802 receives the transmission resources of the first signal and the third signal configured by the base station, and the transmission time of the first signal is indicated by the transmission time of the third signal.
  • the transmission time of the three signals is the same, or the transmission time of the first signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal; then the receiving module 802 is under the control of the processing module 801,
  • the transmission time of the first signal is determined according to the transmission time of the third signal, and the first signal is received according to the transmission time of the first signal.
  • the receiving module 802 receives the transmission resources of the second signal and the third signal configured by the base station, and the transmission time of the second signal is indicated by the transmission time of the third signal.
  • the transmission time of the three signals is the same, or the transmission time of the second signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal; then the receiving module 802 is under the control of the processing module 801,
  • the transmission time of the second signal is determined according to the transmission time of the third signal, and the second signal is received according to the transmission time of the second signal.
  • the receiving module 802 receives the transmission resources of the first signal, the second signal, and the third signal configured by the base station, and the transmission time of the first signal and the second signal is indicated by the transmission time of the third signal, where: The transmission time of the first signal and the second signal is the same as the transmission time of the third signal, or the transmission time of the first signal is the same as the transmission time of the second signal and the transmission time is before the transmission time of the third signal and is at a distance from the first signal.
  • the transmission time of the three signals is the set time offset, or the transmission time of the first signal is before the transmission time of the third signal and the distance from the transmission time of the third signal is the set time offset, the transmission time of the second signal
  • the transmission time of the third signal is the same as that of the third signal, or the transmission time of the first signal is before the transmission time of the third signal and is the first time offset from the transmission time of the third signal, and the transmission time of the second signal is at the first time offset.
  • the second time offset is set before and after the transmission time of the third signal, and the first time offset is greater than the second time offset; then the receiving module 802 is under the control of the processing module 801 Next, determine the transmission time of the first signal and the second signal according to the transmission time of the third signal, receive the first signal according to the transmission time of the first signal, and receive the second signal according to the transmission time of the second signal.
  • the receiving module 802 receives the transmission resources of the first signal and the third signal configured by the base station, and the transmission time of the third signal is indicated by the transmission time of the first signal.
  • the transmission time of the first signal is the same, or the transmission time of the third signal is after the transmission time of the first signal and is a set time offset from the transmission time of the first signal; then the receiving module 802 is under the control of the processing module 801,
  • the transmission time of the third signal is determined according to the transmission time of the first signal, and the third signal is received according to the transmission time of the third signal.
  • the receiving module 802 receives the transmission resources of the second signal and the third signal configured by the base station, and the transmission time of the third signal is indicated by the transmission time of the second signal.
  • the transmission time of the two signals is the same, or the transmission time of the third signal is after the transmission time of the second signal and is a set time offset from the transmission time of the second signal; then the receiving module 802 is under the control of the processing module 801,
  • the transmission time of the third signal is determined according to the transmission time of the second signal, and the third signal is received according to the transmission time of the third signal.
  • the receiving module 802 receives transmission resources of the first signal, the second signal, and the third signal configured by the base station, where:
  • the first signal includes at least one of the fifth indication information and the sixth indication information, the fifth indication information is used to indicate whether the terminal in the first terminal group is to send and receive the second signal, and the sixth indication information is used To indicate the transmission resource of the second signal to the terminal in the first terminal group;
  • the sending moment of the third signal is indicated by the sending moment of the second signal, where the sending moment of the third signal is the same as the sending moment of the second signal, or the sending moment of the third signal is after the sending moment of the second signal and the distance
  • the sending moment of the second signal is the set time offset
  • the receiving module 802 under the control of the processing module 801, executes:
  • the terminal is a terminal in the first terminal group, and the received first signal includes the fifth indication information, and according to the fifth indication information, it is determined that the second signal needs to be received, then The second signal is received by the transmission resource of the second signal configured by the base station, the transmission time of the third signal is determined according to the transmission time of the second signal, and the third signal is received according to the transmission time of the third signal;
  • the terminal is a terminal in the first terminal group, and the received first signal includes fifth indication information and sixth indication information, and according to the fifth indication information, it is determined that the second signal needs to be received , Receive the second signal according to the transmission resource indicated by the sixth indication information, determine the transmission time of the third signal according to the transmission time of the second signal, and receive the third signal according to the transmission time of the third signal;
  • the terminal determines that the second signal needs to be received, and indicates according to the sixth indication information
  • the transmission resource receives the second signal, determines the transmission time of the third signal according to the transmission time of the second signal, and receives the third signal according to the transmission time of the third signal.
  • the first signal includes at least one of the following signals: SSB, SSS, PSS, PBCH, RMSI;
  • the second signal includes at least one of the following signals: TRS, CSI-RS, WUS, PT-RS, P-RS;
  • the third signal includes the paging signal.
  • an embodiment of the present application also provides a base station, which can implement the functions of the base station side in the foregoing embodiment.
  • Fig. 9 exemplarily shows a schematic structural diagram of a base station in an embodiment of the present application.
  • the base station may include: a processor 901, a memory 902, a transceiver 903, and a bus interface 904.
  • the processor 901 is responsible for managing the bus architecture and general processing, and the memory 902 can store data used by the processor 901 when performing operations.
  • the transceiver 903 is used to receive and send data under the control of the processor 901.
  • the bus architecture may include any number of interconnected buses and bridges. Specifically, one or more processors represented by the processor 901 and various circuits of the memory represented by the memory 902 are linked together.
  • the bus architecture can also link various other circuits such as peripheral devices, voltage regulators, power management circuits, etc., which are all known in the art, and therefore, no further descriptions are provided herein.
  • the bus interface provides the interface.
  • the processor 901 is responsible for managing the bus architecture and general processing, and the memory 902 can store data used by the processor 901 when performing operations.
  • the process disclosed in the embodiment of the present application may be applied to the processor 901 or implemented by the processor 901.
  • each step of the signal processing flow can be completed by an integrated logic circuit of hardware in the processor 901 or instructions in the form of software.
  • the processor 901 may be a general-purpose processor, a digital signal processor, an application specific integrated circuit, a field programmable gate array or other programmable logic device, a discrete gate or transistor logic device, a discrete hardware component, and can implement or execute the The disclosed methods, steps and logic block diagrams.
  • the general-purpose processor may be a microprocessor or any conventional processor or the like.
  • the steps of the method disclosed in combination with the embodiments of the present application may be directly embodied as being executed and completed by a hardware processor, or executed and completed by a combination of hardware and software modules in the processor.
  • the software module can be located in a mature storage medium in the field, such as random access memory, flash memory, read-only memory, programmable read-only memory, or electrically erasable programmable memory, registers.
  • the storage medium is located in the memory 902, and the processor 901 reads the information in the memory 902, and completes the steps of the signal processing flow in combination with its hardware.
  • the processor 901 is configured to read computer instructions in the memory 902 and execute the functions implemented on the base station side in the flow shown in FIG. 2.
  • the processor 901 may read computer instructions in the memory 902, and perform the following operations: configure the transmission resources of at least two of the first signal, the second signal, and the third signal, and according to the transmission of the at least two signals
  • the resource transmits the at least two kinds of signals.
  • the transmission and reception of one signal is indicated by at least one other signal.
  • the first signal is a signal used for at least one function of synchronization, beam measurement, beam acquisition, and RRM measurement
  • the second signal is a signal used for synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement
  • the third signal is a signal used for paging.
  • the description of the above-mentioned first signal, second signal and third signal is the same as the previous embodiment, and will not be repeated here.
  • the processor 901 is specifically configured to:
  • the first signal includes at least one of the first indication information and the second indication information
  • the first indication information is used to indicate whether to perform the second signal
  • the second indication information is used to indicate the sending resource of the second signal.
  • the second indication information is a resource index of a transmission resource of the second signal
  • the transmission resource of the second signal includes at least one of a transmission resource configured by radio resource control RRC signaling, a predetermined transmission resource, and a transmission resource associated with the transmission resource of the first signal.
  • the transmission resource associated with the transmission resource of the first signal includes one or any combination of the following:
  • the frequency domain interval with the transmission resource of the first signal in the frequency domain is not greater than the transmission resource with the set frequency domain interval
  • the beam spacing from the transmission resource of the first signal in the spatial beam direction is not greater than the transmission resource of the set spatial spacing
  • the processor 901 is specifically configured to:
  • the second signal includes at least one of the third indication information and the fourth indication information
  • the third indication information is used to indicate whether to perform the first signal
  • the fourth indication information is used to indicate the sending resource of the first signal.
  • the fourth indication information is a resource index of a transmission resource of the first signal
  • the transmission resource of the first signal includes at least one of a transmission resource configured by RRC signaling, a predetermined transmission resource, and a transmission resource associated with the transmission resource of the second signal.
  • the transmission resource associated with the transmission resource of the second signal includes one or any combination of the following:
  • the frequency domain interval with the transmission resource of the second signal in the frequency domain is not greater than the transmission resource with the set frequency domain interval
  • the beam spacing from the transmission resource of the second signal in the spatial beam direction is not greater than the transmission resource of the set spatial spacing
  • a transmission resource orthogonal to the transmission resource of the second signal in the code domain is orthogonal to the transmission resource of the second signal in the code domain.
  • the processor 901 is specifically configured to:
  • the transmission time of the first signal is indicated by the transmission time of the third signal, where the transmission time of the first signal is the same as the transmission time of the third signal, or the transmission time of the first signal
  • the transmission time is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal.
  • the processor 901 is specifically configured to:
  • the transmission time of the second signal is indicated by the transmission time of the third signal, where the transmission time of the second signal is the same as the transmission time of the third signal, or the transmission time of the second signal.
  • the transmission time is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal.
  • the processor 901 is specifically configured to:
  • the transmission time of the first signal and the second signal is indicated by the transmission time of the third signal, where:
  • the sending time of the first signal and the second signal is the same as the sending time of the third signal.
  • the transmission time of the first signal is the same as the transmission time of the second signal and the transmission time is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal;
  • the transmission time of the first signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal, and the transmission time of the second signal is the same as the transmission time of the third signal;
  • the transmission time of the first signal is before the transmission time of the third signal and is the first time offset from the transmission time of the third signal
  • the transmission time of the second signal is before the transmission time of the third signal and the distance from the third signal.
  • the sending time of the signal is a set second time offset, and the first time offset is greater than the second time offset.
  • the processor 901 is specifically configured to:
  • the transmission time of the third signal is indicated by the transmission time of the first signal.
  • the transmission time of the third signal is the same as the transmission time of the first signal, or the transmission time of the third signal
  • the transmission time is after the transmission time of the first signal and is a set time offset from the transmission time of the first signal.
  • the processor 901 is specifically configured to:
  • the transmission time of the third signal is indicated by the transmission time of the second signal.
  • the transmission time of the third signal is the same as the transmission time of the second signal, or the transmission time of the third signal
  • the transmission time is after the transmission time of the second signal and is a set time offset from the transmission time of the second signal.
  • the processor 901 is specifically configured to:
  • the first signal includes at least one of the fifth indication information and the sixth indication information, the fifth indication information is used to indicate whether the terminal in the first terminal group is to send and receive the second signal, and the sixth indication information is used To indicate the transmission resource of the second signal to the terminal in the first terminal group;
  • the sending moment of the third signal is indicated by the sending moment of the second signal, where the sending moment of the third signal is the same as the sending moment of the second signal, or the sending moment of the third signal is after the sending moment of the second signal and the distance
  • the sending moment of the second signal is the set time offset.
  • the processor 901 is further configured to:
  • the resource unit includes a time domain resource unit, a frequency domain resource unit, a code domain resource unit, and a space resource unit. At least one of.
  • the first signal includes at least one of the following signals: SSB, SSS, PSS, PBCH, RMSI;
  • the second signal includes at least one of the following signals: TRS, CSI-RS, WUS, PT-RS, P-RS;
  • the third signal includes the paging signal.
  • an embodiment of the present application also provides a terminal, which can implement the terminal side functions in the foregoing embodiment.
  • FIG. 10 exemplarily shows a schematic structural diagram of a terminal in an embodiment of the present application.
  • the terminal may include a processor 1001, a memory 1002, a transceiver 1003, and a bus interface 1004.
  • the processor 1001 is responsible for managing the bus architecture and general processing, and the memory 10902 can store data used by the processor 1001 when performing operations.
  • the transceiver 1003 is used to receive and transmit data under the control of the processor 1001.
  • the bus architecture may include any number of interconnected buses and bridges. Specifically, one or more processors represented by the processor 1001 and various circuits of the memory represented by the memory 1002 are linked together.
  • the bus architecture can also link various other circuits such as peripheral devices, voltage regulators, power management circuits, etc., which are all known in the art, and therefore, no further descriptions are provided herein.
  • the bus interface provides the interface.
  • the processor 1001 is responsible for managing the bus architecture and general processing, and the memory 1002 can store data used by the processor 1001 when performing operations.
  • the process disclosed in the embodiment of the present application may be applied to the processor 1001 or implemented by the processor 1001.
  • each step of the signal processing flow can be completed by an integrated logic circuit of hardware in the processor 1001 or instructions in the form of software.
  • the processor 901 may be a general-purpose processor, a digital signal processor, an application specific integrated circuit, a field programmable gate array or other programmable logic device, a discrete gate or transistor logic device, a discrete hardware component, and can implement or execute the The disclosed methods, steps and logic block diagrams.
  • the general-purpose processor may be a microprocessor or any conventional processor or the like.
  • the steps of the method disclosed in combination with the embodiments of the present application may be directly embodied as being executed and completed by a hardware processor, or executed and completed by a combination of hardware and software modules in the processor.
  • the software module can be located in a mature storage medium in the field, such as random access memory, flash memory, read-only memory, programmable read-only memory, or electrically erasable programmable memory, registers.
  • the storage medium is located in the memory 1002, and the processor 1001 reads the information in the memory 1002, and completes the steps of the signal processing flow in combination with its hardware.
  • the processor 1001 is configured to read computer instructions in the memory 1002 and execute functions implemented on the terminal side in the process shown in FIG. 3.
  • the processor 1001 may read computer instructions in the memory 1002, and perform the following operations: receive transmission resources of at least two signals among the first signal, the second signal, and the third signal configured by the base station, and according to the at least two signals
  • the signal transmission resource receives the at least two kinds of signals.
  • the transmission and reception of one signal is indicated by at least one other signal.
  • the first signal is a signal used for at least one function of synchronization, beam measurement, beam acquisition, and RRM measurement
  • the second signal is a signal used for synchronization, fine synchronization, beam measurement, beam acquisition, RRM measurement
  • the third signal is a signal used for paging.
  • the description of the above-mentioned first signal, second signal and third signal is the same as the previous embodiment, and will not be repeated here.
  • the first signal includes at least one of first indication information and second indication information
  • the first indication information is used to indicate whether to send and receive the second signal
  • the second indication information is used to Indicates the transmission resource of the second signal
  • the processor 1001 is specifically configured to:
  • the first signal includes the first indication information, and it is determined according to the first indication information that it is necessary to receive the second signal, receive the second signal according to the transmission resource of the second signal configured by the base station;
  • the first signal includes the first indication information and the second indication information, and it is determined according to the first indication information that it is necessary to receive the second signal, then receive according to the transmission resource indicated by the second indication information Second signal
  • the first signal includes the second indication information
  • it is determined that the second signal needs to be received and the second signal is received according to the transmission resource indicated by the second indication information.
  • the second indication information is a resource index of a transmission resource of the second signal
  • the transmission resource of the second signal includes at least one of a transmission resource configured by RRC signaling, a predetermined transmission resource, and a transmission resource associated with the transmission resource of the first signal.
  • the transmission resource associated with the transmission resource of the first signal includes one or any combination of the following:
  • the frequency domain interval with the transmission resource of the first signal in the frequency domain is not greater than the transmission resource with the set frequency domain interval
  • the beam spacing with the transmission resource of the first signal in the spatial beam direction is not greater than the transmission resource of the set spatial spacing
  • the second signal includes at least one of third indication information and fourth indication information, the third indication information is used to indicate whether to send and receive the first signal, and the fourth indication information is used to Indicate the sending resource of the first signal;
  • the processor 1001 is specifically configured to:
  • the second signal includes the third indication information, and it is determined according to the third indication information that the first signal needs to be received, the first signal is received according to the transmission resource of the first signal configured by the base station;
  • the second signal includes the third indication information and the fourth indication information, and it is determined according to the third indication information that it is necessary to receive the first signal, then receive according to the transmission resource indicated by the fourth indication information First signal
  • the second signal includes the fourth indication information, it is determined that the first signal needs to be received, and the first signal is received according to the transmission resource indicated by the fourth indication information.
  • the fourth indication information is a resource index of a transmission resource of the first signal
  • the transmission resource of the first signal includes at least one of a transmission resource configured by RRC signaling, a predetermined transmission resource, and a transmission resource associated with the transmission resource of the second signal.
  • the transmission resource associated with the transmission resource of the second signal includes one or any combination of the following:
  • the frequency domain interval with the transmission resource of the second signal in the frequency domain is not greater than the transmission resource with the set frequency domain interval
  • the beam spacing from the transmission resource of the second signal in the spatial beam direction is not greater than the transmission resource of the set spatial spacing
  • a transmission resource orthogonal to the transmission resource of the second signal in the code domain is orthogonal to the transmission resource of the second signal in the code domain.
  • the receiving base station configures the transmission resources of at least two signals among the first signal, the second signal, and the third signal, and among the at least two signals, one signal is transmitted and received by the other at least one signal.
  • the processor 1001 is specifically configured to:
  • the transmission time of the first signal is indicated by the transmission time of the third signal, wherein the transmission time of the first signal is the same as the transmission time of the third signal, Or the transmission time of the first signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal;
  • the processor 1001 When receiving the at least two types of signals according to the transmission resources of the at least two types of signals, the processor 1001 is specifically configured to:
  • the transmission time of the first signal is determined according to the transmission time of the third signal, and the first signal is received according to the transmission time of the first signal.
  • the receiving base station configures the transmission resources of at least two signals among the first signal, the second signal, and the third signal, and among the at least two signals, one signal is transmitted and received by the other at least one signal.
  • the processor 1001 is specifically configured to:
  • the transmission time of the second signal is indicated by the transmission time of the third signal, wherein the transmission time of the second signal is the same as the transmission time of the third signal, Or the transmission time of the second signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal;
  • the processor 1001 When receiving the at least two kinds of signals according to the transmission resources of the at least two kinds of signals, the processor 1001 is specifically configured to:
  • the transmission time of the second signal is determined according to the transmission time of the third signal, and the second signal is received according to the transmission time of the second signal.
  • the receiving base station configures the transmission resources of at least two signals among the first signal, the second signal, and the third signal, and among the at least two signals, one signal is transmitted and received by the other at least one signal.
  • the processor 1001 is specifically configured to:
  • the transmission resources of the first signal, the second signal, and the third signal configured by the base station are received, and the transmission time of the first signal and the second signal is indicated by the transmission time of the third signal, where:
  • the sending time of the first signal and the second signal is the same as the sending time of the third signal.
  • the transmission time of the first signal is the same as the transmission time of the second signal and the transmission time is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal;
  • the transmission time of the first signal is before the transmission time of the third signal and is a set time offset from the transmission time of the third signal, and the transmission time of the second signal is the same as the transmission time of the third signal;
  • the transmission time of the first signal is before the transmission time of the third signal and is the first time offset from the transmission time of the third signal
  • the transmission time of the second signal is before the transmission time of the third signal and the distance from the third signal.
  • the sending moment of the signal is a set second time offset, and the first time offset is greater than the second time offset;
  • the processor 1001 is specifically configured to:
  • the transmission time of the first signal and the second signal are determined according to the transmission time of the third signal, the first signal is received according to the transmission time of the first signal, and the second signal is received according to the transmission time of the second signal.
  • the receiving base station configures the transmission resources of at least two signals among the first signal, the second signal, and the third signal, and among the at least two signals, one signal is transmitted and received by the other at least one signal.
  • the processor 1001 is specifically configured to:
  • the transmission time of the third signal is indicated by the transmission time of the first signal, wherein the transmission time of the third signal is the same as the transmission time of the first signal, Or the transmission time of the third signal is after the transmission time of the first signal and is a set time offset from the transmission time of the first signal;
  • the processor 1001 is specifically configured to:
  • the transmission time of the third signal is determined according to the transmission time of the first signal, and the third signal is received according to the transmission time of the third signal.
  • the receiving base station configures the transmission resources of at least two signals among the first signal, the second signal, and the third signal, and among the at least two signals, one signal is transmitted and received by the other at least one signal.
  • the processor 1001 is specifically configured to:
  • the transmission time of the third signal is indicated by the transmission time of the second signal, wherein the transmission time of the third signal is the same as the transmission time of the second signal, Or the transmission time of the third signal is after the transmission time of the second signal and is a set time offset from the transmission time of the second signal;
  • the processor 1001 When receiving the at least two types of signals according to the transmission resources of the at least two types of signals, the processor 1001 is specifically configured to:
  • the transmission time of the third signal is determined according to the transmission time of the second signal, and the third signal is received according to the transmission time of the third signal.
  • the receiving base station configures the transmission resources of at least two signals among the first signal, the second signal, and the third signal, and among the at least two signals, one signal is transmitted and received by the other at least one signal.
  • the processor 1001 is specifically configured to:
  • the first signal includes at least one of the fifth indication information and the sixth indication information, the fifth indication information is used to indicate whether the terminal in the first terminal group is to send and receive the second signal, and the sixth indication information is used To indicate the transmission resource of the second signal to the terminal in the first terminal group;
  • the sending moment of the third signal is indicated by the sending moment of the second signal, where the sending moment of the third signal is the same as the sending moment of the second signal, or the sending moment of the third signal is after the sending moment of the second signal and the distance
  • the sending moment of the second signal is the set time offset
  • the processor 1001 is specifically configured to:
  • the terminal is a terminal in the first terminal group, and the received first signal includes the fifth indication information, and according to the fifth indication information, it is determined that the second signal needs to be received, then The second signal is received by the transmission resource of the second signal configured by the base station, the transmission time of the third signal is determined according to the transmission time of the second signal, and the third signal is received according to the transmission time of the third signal;
  • the terminal is a terminal in the first terminal group, and the received first signal includes fifth indication information and sixth indication information, and according to the fifth indication information, it is determined that the second signal needs to be received , Receive the second signal according to the transmission resource indicated by the sixth indication information, determine the transmission time of the third signal according to the transmission time of the second signal, and receive the third signal according to the transmission time of the third signal;
  • the terminal is a terminal in the first terminal group, and the received first signal includes the sixth indication information, it is determined that the second signal needs to be received, based on the transmission resource indicated by the sixth indication information
  • the second signal is received, the transmission time of the third signal is determined according to the transmission time of the second signal, and the third signal is received according to the transmission time of the third signal.
  • the first signal includes at least one of the following signals: SSB, SSS, PSS, PBCH, RMSI;
  • the second signal includes at least one of the following signals: TRS, CSI-RS, WUS, PT-RS, P-RS;
  • the third signal includes the paging signal.
  • the foregoing terminal provided by the embodiment of the present invention can implement all the method steps implemented in the foregoing method embodiment, and can achieve the same technical effect, and it will not be described in this embodiment as being the same as the method embodiment. The part and beneficial effects of this will be described in detail.
  • the embodiments of the present application also provide a computer-readable storage medium, and the computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are used to make the computer execute the method executed by the base station in the above-mentioned embodiment.
  • the embodiments of the present application also provide a computer-readable storage medium, and the computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are used to make the computer execute the method executed by the terminal in the above-mentioned embodiment.
  • this application can be provided as methods, systems, or computer program products. Therefore, this application may adopt the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware. Moreover, this application may adopt the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program codes.
  • computer-usable storage media including but not limited to disk storage, CD-ROM, optical storage, etc.
  • These computer program instructions can also be stored in a computer-readable memory that can guide a computer or other programmable data processing equipment to work in a specific manner, so that the instructions stored in the computer-readable memory produce an article of manufacture including the instruction device.
  • the device implements the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.
  • These computer program instructions can also be loaded on a computer or other programmable data processing equipment, so that a series of operation steps are executed on the computer or other programmable equipment to produce computer-implemented processing, so as to execute on the computer or other programmable equipment.
  • the instructions provide steps for implementing the functions specified in one process or multiple processes in the flowchart and/or one block or multiple blocks in the block diagram.

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Abstract

本申请公开了一种信号传输方法及设备。本申请中,基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,并根据所述至少两种信号的发送资源发送所述至少两种信号。其中,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示。所述第一信号为用于同步、波束测量、波束获取、RRM中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。采用本申请可降低终端的功耗。

Description

一种信号传输方法及设备
相关申请的交叉引用
本申请要求在2020年02月07日提交中国专利局、申请号为202010082660.4、申请名称为“一种信号传输方法及设备”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及无线通信技术领域,尤其涉及一种信号传输方法及设备。
背景技术
网络侧需要向终端发送多种信号以实现不同的功能,比如这些信号可包括跟踪参考信号(Tracking reference signal,TRS)/信道状态指示参考信号(Channel sate indicator-reference signal,CSI-RS)、同步信息块(Synchronization signal block,SSB)、寻呼信号(Paging)等。
其中,TRS可以用于时频跟踪,CSI-RS可以用于信道质量获取、参考信号接收功率(Reference Signal Received Power,RSRP)信道测量、移动性测量等,TRS/CSI-RS还可以被用来作为节能信号,指示终端是否唤醒进行下行链路控制信息(Downlink Control Information,DCI)的接收。SSB可以用来实现同步操作,或者进行无线资源管理(Radio resource management,RRM)测量或移动性测量。寻呼信号(Paging)可以使终端醒来以进行信号监听。
上述信号可以周期性发送,并通常具有不同的发送周期。如何指示上述信号间的收发关系,以降低终端的功耗,是目前需要解决的问题。
发明内容
本申请实施例提供一种信号传输方法及设备。
第一方面,提供一种信号传输方法,包括:基站配置第一信号、第二信 号和第三信号中至少两种信号的发送资源,并根据所述至少两种信号的发送资源发送所述至少两种信号。其中,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;所述第一信号为用于同步、波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、信道状态指示(Channel sate indicator,CSI)测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。
第二方面,提供一种信号传输方法,包括:终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,并根据所述至少两种信号的发送资源接收所述至少两种信号。其中,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;所述第一信号为用于同步、波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。
第三方面,提供一种基站,包括:处理器、存储器、收发机;
所述收发机,在处理器的控制下进行数据的接收和发送;
所述存储器,存储计算机指令;
所述处理器,用于读取所述计算机指令,执行上述第一方面提供的信号传输方法。
第四方面,提供一种终端,包括:处理器、存储器、收发机;
所述收发机,在处理器的控制下进行数据的接收和发送;所述存储器,存储计算机指令;
所述处理器,用于读取所述计算机指令,执行上述第二方面提供的信号传输方法。
第五方面,提供一种基站,包括:处理模块,用于配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、 波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。发送模块,用于根据所述至少两种信号的发送资源发送所述至少两种信号。
第六方面,提供一种终端,包括:接收模块,用于接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号;以及,根据所述至少两种信号的发送资源接收所述至少两种信号。
第七方面,提供一种计算机可读存储介质,所述计算机可读存储介质存储有计算机可执行指令,所述计算机可执行指令用于使所述计算机执行如第一方面所述的信号传输方法。
第八方面,提供一种计算机可读存储介质,所述计算机可读存储介质存储有计算机可执行指令,所述计算机可执行指令用于使所述计算机执行如第二方面所述的信号传输方法。
本申请的上述实施例中,基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,并根据所述至少两种信号的发送资源发送所述至少两种信号。其中,所述第一信号为用于同步、波束测量、波束获取、RRM中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。由于上述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,因此可以使得终端通过上述三种信号中的一种或两种信号获知另外的信号的收发相关配置,进而可以降低终端的功耗。
附图说明
为了更清楚地说明本申请实施例的技术方案,下面将对本申请实施例中所需要使用的附图作简单地介绍,显而易见地,下面所介绍的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1示例性示出了SSB、TRS和寻呼信号的处理流程示意图;
图2示例性示出了本申请实施例提供的基站侧的信号发送流程示意图;
图3示例性示出了本申请实施例提供的终端侧的信号接收流程示意图;
图4、图5和图6分别示例性示出了本申请实施例中的SSB、TRS和寻呼信号的处理流程示意图;
图7示例性示出了本申请实施例提供的基站的结构示意图;
图8示例性示出了本申请实施例提供的终端的结构示意图;
图9示例性示出了本申请另外的实施例提供的基站的结构示意图;
图10示例性示出了本申请另外的实施例提供的终端的结构示意图。
具体实施方式
为了使本申请的目的、技术方案和优点更加清楚,下面将结合附图对本申请作进一步地详细描述,显然,所描述的实施例仅仅是本申请一部份实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其它实施例,都属于本申请保护的范围。
以下对本申请实施例中的部分用语进行解释说明,以便于本领域技术人员理解。
(1)本申请实施例中,名词“网络”和“系统”经常交替使用,但本领域的技术人员可以理解其含义。
(2)本申请实施例中术语“多个”是指两个或两个以上,其它量词与之类似。
(3)“和/或”,描述关联对象的关联关系,表示可以存在三种关系,例如,A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B这三种情况。字符“/”一般表示前后关联对象是一种“或”的关系。
(4)网络侧设备,是一种为所述终端提供无线通信功能的设备,包括但不限于:5G中的gNB、无线网络控制器(radio network controller,RNC)、节点B(node B,NB)、基站控制器(base station controller,BSC)、基站收发台(base transceiver station,BTS)、家庭基站(例如,home evolved nodeB,或home node B,HNB)、基带单元(BaseBand Unit,BBU)、传输点(transmitting and receiving point,TRP)、发射点(transmitting point,TP)、移动交换中心等。本申请中的基站还可以是未来可能出现的其他通信系统中为终端提供无线通信功能的设备。本申请实施例中以“基站”为例描述。
(5)终端,是一种可以向用户提供语音和/或数据连通性的设备。例如,终端设备包括具有无线连接功能的手持式设备、车载设备等。目前,终端设备可以是:手机(mobile phone)、平板电脑、笔记本电脑、掌上电脑、移动互联网设备(mobile internet device,MID)、可穿戴设备,虚拟现实(virtual reality,VR)设备、增强现实(augmented reality,AR)设备、工业控制(industrial control)中的无线终端、无人驾驶(self-driving)中的无线终端、智能电网(smart grid)中的无线终端、运输安全(transportation safety)中的无线终端、智慧城市(smart city)中的无线终端,或智慧家庭(smart home)中的无线终端等。
基站需要向终端发送多种信号以实现不同的功能,比如这些信号可包括TRS/CSI-RS、SSB、寻呼信号(Paging)等。
目前NR R16标准中定义了TRS/CSI-RS。其中,TRS可以用于时频跟踪,CSI-RS可以用于信道质量获取、RSRP信道测量、移动性测量等。进一步地,TRS/CSI-RS还可以被用来作为节能信号,指示终端是否唤醒进行DCI的接收,从而可以降低终端在无线资源控制(Radio Resource control,RRC)空闲态(RRC-idle)下的功耗。
目前NR R16标准定义的基于RRC连接态(RRC-connected)下的 TRS/CSI-RS的发送方式有三种:
方式1,周期性发送。通过RRC信令配置TRS/CSI-RS发送资源,包括时频空域资源、上报内容等,在配置的周期到来的时刻,在所配置的资源上进行TRS/CSI-RS的发送;
方式2,半持续调度发送。通过RRC信令配置TRS/CSI-RS的发送资源,上报类型,通过动态信令触发TRS/CSI-RS发送;当不需要TRS/CSI-RS发送时,通过动态信令进行TRS/CSI-RS的去激活;
方式3,非周期发送。当需要TRS/CSI-RS时,通过L1(层1)动态信令触发TRS/CSI-RS发送,其中,TRS/CSI-RS的发送可以位于DRX-on(DRX激活期,其中DRX是Discontinuous Reception的英文缩写,表示非连续接收)时刻和DRX-Off(DRX非激活期)时刻。所述L1动态信令可以是DCI format0-1,该DCI中的CSI请求(CSI request)比特域用来触发TRS/CSI-RS的发送。
对于TRS/CSI-RS周期性发送,终端可在RRC空闲态、RRC非激活态(RRC-Inactive)和RRC连接态下进行监测;对于TRS/CSI-RS半持续调度发送,终端可在RRC连接态下进行监测;对于TRS/CSI-RS动态发送(非周期发送),终端可在RRC连接态下进行监测。
SSB是周期配置的,终端可以在SSB周期到来的时刻进行SSB的监测和同步操作,或者进行RRM测量或移动性测量等。
寻呼信号(Paging)是周期配置的,终端可以通过寻呼帧(Paging Frame)PF、寻呼机会(Paging Occasion,PO)来确定自己的PO时刻,并在PO时刻进行寻呼信号的监测。在PO时刻,终端不管是否有针对自己的寻呼信号,都需要醒来进行监听。
以上述三种信号为例,终端侧的操作流程可如图1所示。如图所示,终端周期性监测SSB,用来进行同步和/或RRM测量;终端周期性监测TRS,用来进行信道时频精同步;终端周期性监测寻呼信号(Paging),在PO位置进行Paging DCI的接收和监测,如果监测到针对自己的paging DCI,则进行 后续的PDSCH的解调解码,如果没有监测到针对自己的paging DCI,则在下一个寻呼周期继续监测寻呼信号。
SSB的周期可以是5ms、10ms、20ms、40ms、80ms或160ms。TRS/CSI-RS的周期可以是10ms、20ms、40ms或80ms(以15KHZ为例),同时可以配置时域上偏移(offset),所述offset的取值范围为[0ms,32ms]。寻呼信号(Paging)的周期可以是32个无线帧、64个无线帧、128个无线帧或256个无线帧,其中,PO的位置根据同步信号(SS)的配置,可以是一个PF中的一个或多个时隙,PO的起始位置取决于SS的偏移(offset)配置和PO的偏移(offset)配置。
终端接收SSB进行同步后,若需要进行寻呼信号(Paging)的接收,则需要在PO之前基于TRS进行精同步或时频跟踪。如果TRS/CSR-RS的发送时刻距离SSB的发送时刻较远,则终端需要在接收完SSB之后,在等待较长一段时间才能接收到TRS以完成精同步,进而才能进行Paging DCI的接收。
从终端节能的角度来看,终端需要周期性的醒来接收SSB、TRS以及寻呼信号(Paging),带来的较大的功耗,例如,若SSB和TRS的时间间隔较大,则终端为了周期性的接收这些信号,不能进入深休眠,从而造成额外的功耗。进一步的,如果SSB、TRS和寻呼信号(Paging)的时间间隔较大,则可能造成寻呼信号(Paging)的DCI的解调解码出错,从而造成不必要的功耗。
本申请实施例提供了一种信号传输方法和设备,在网络侧需要向终端发送上述至少两种信号时,其中一种信号的收发由其他一种或多种信号进行指示,以使得终端可以获知信号收发相关配置(比如是否需要接收某种信号,或者某种信号的发送资源),进而可以降低终端的功耗。本申请实施例可应用于RRC空闲态(RRC-Idle)下的信号配置和传输。
下面结合附图对本申请实施例进行详细说明。
图2示例性示出了本申请实施例提供的在基站侧实现的信号发送流程示意图,如图所示,该流程可包括:
S201:基站配置第一信号、第二信号和第三信号中至少两种信号的发送 资源,其中,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示。
其中,第一信号、第二信号和第三信号为不同的信号。
所述第一信号可以是用于实现同步、波束测量、波束获取、RRM测量中至少一种功能的信号,还可以是实现以下至少一种功能的信号:广播、系统消息。第一信号可以是以下至少一种信号或信息:SSB、辅同步信号(Secondary synchronization signal,SSS)、主同步信号(Primary synchronization signal,PSS)、物理广播信道(Physical Broadcast Channel,PBCH)、遗留系统消息(Remaining system information,RMSI);可以携带以下至少一种信息,包括同步信息,广播信息,系统信息。
所述第二信号可以是用于实现同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,还可以是用于实现以下至少一种功能的信号:信道跟踪、相位跟踪、定位。第二信号可以是以下至少一种信号:TRS、CSI-RS、唤醒信号(Wake-up signal,WUS)、相位跟踪参考信号(Phase tracking reference signal,PT-RS)、定位参考信号(Positioning reference signa,P-RS)。可选地,第二信号可以包括小区级的信号、终端组级(UE-group)的信号和终端级(UE-specific)的信号中的至少一种。
所述第三信号可以是用于寻呼的信号,比如寻呼信号(Paging)。
S202:基站根据上述至少两种信号的发送资源发送上述至少两种信号。
上述流程中,一种信号的收发由另外的至少一种信号进行指示,是指一种信号是否需要发送或接收,可由另外的一种或两种信号进行指示,或者一种信号的发送资源可以由另外的一种或两种信号进行指示,或者上述内容的结合。举例来说,可包括以下情形中的至少一种:
(1)第一信号的收发由第二信号和第三信号中的至少一个进行指示;
(2)第二信号的收发由第一信号和第三信号中的至少一个进行指示;
(3)第三信号的收发由第二信号和第一信号中的至少一个进行指示。
图3示例性示出了本申请实施例提供的终端侧实现的信号接收流程示意 图,如图所示,该流程可包括:
S301:终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示。
其中,第一信号、第二信号和第三信号的相关说明与前述实施例相同,在此不再重复。
S302:终端根据上述至少两种信号的发送资源接收上述至少两种信号。
本申请的上述实施例中,基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,并根据所述至少两种信号的发送资源发送所述至少两种信号。其中,所述第一信号为用于同步、波束测量、波束获取、RRM中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。由于上述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,因此可以使得终端通过上述三种信号中的一种或两种信号获知另外的信号的收发相关配置,进而可以降低终端的功耗。
下面通过几个示例对本申请实施例中通过一个或多个信号对另外的一个或多个信号的收发进行指示的方案进行说明。
示例一:第一信号指示第二信号的收发。
示例一中,在基站侧,基站至少配置第一信号和第二信号的发送资源,还可以进一步配置第三信号的发送资源,其中,第一信号可以用来指示第二信号的收发。
可选地,第一信号中可包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发(比如第一指示信息用于指示基站是否发送第二信号,或者终端是否需要接收第二信号),所述第二指示信息用于指示第二信号的发送资源。
可选地,第一指示信息可以是1比特的指示信息,当其取值为0时表示终端需要接收第二信号,当其取值为1时表示终端不需要接收第二信号,反 之亦然。
图4示例性示出了一种第一信号、第二信号的传输示意图。如图所示,第一信号中的第一指示信息取值为0时(如图中的第一个SSB和第三个SSB),其后没有第二信号发送,第一信号中的第一指示信息取值为1时(如图中的第二个SSB),其后有第二信号发送。
可选地,第二指示信息为第二信号的发送资源的资源索引。根据第二信号的发送资源的数量,可以定义第二指示信息的比特数量,比如,如果基站为第二信号配置了4个发送资源,则第二指示信息可以是2比特的信息,用于指示该4个发送资源。
其中,第二信号的发送资源可包括以下发送资源中的至少一个:由RRC信令配置的发送资源、预先约定的发送资源、与第一信号的发送资源相关联的发送资源。
上述由RRC信令配置的发送资源可以包括:在RRC连接态(RRC-connected)下配置的第二信号的发送资源,在RRC空闲态(RRC-Idle)下配置的第二信号的发送资源,在RRC非激活态(RRC-inactive)下配置的第二信号的发送资源,是使用保存的RRC-connected配置的第二信号的发送资源。
上述与第一信号的发送资源相关联的发送资源,可包括以下之一或任意组合:
(1)与第一信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源。其中,所述设定时间间隔,包括至少一个时间间隔单元,所述时间间隔单元包括以下至少一种:无线帧、半帧、子帧、时隙、符号。例如,如果设定的时间间隔为2个子帧,则在时域上,第二信号的发送资源与第一信号的发送资源之间的时间间隔不超过2个子帧,即,与第一信号的发送资源之间的时间间隔在2个子帧(包括2个子帧)范围内的资源,都有可能作为第二信号的发送资源,具体可以是时间间隔为1个子帧,也可以是时间间隔为2个子帧,还可以是以下情形:部分第二信号的发送资源与第一信号的发 送资源之间的时间间隔为1个子帧,部分第二信号的发送资源与第一信号的发送资源之间的时间间隔为2个子帧。
图5示例性示出了一种第一信号和第二信号的传输示意图。如图所示,在配置第二信号发送的情况下(如图中第二个SSB和第三个SSB中的第一指示信息的取值为1的情况下),发送第二信号且第二信号的发送时刻与第一信号的发送时刻关联,具体地,第二信号的发送时刻与第一信号的发送时刻之间间隔一个或多个时间间隔单元。
图6示例性示出了一种第一信号和第二信号的传输示意图。如图所示,在配置第二信号发送的情况下(如图中每个SSB中包含有第二指示信息,且第二指示信息指示基站发送第二信号),第二信号的发送时刻与第一信号的发送时刻关联,具体地,第二信号的发送时刻与第一信号的发送时刻之间间隔一个或多个时间间隔单元。
(2)与第一信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源。其中,所述设定频域间隔,包括至少一个频域间隔单元,所述频域间隔单元包括以下至少一种:载波、资源块(Resource block,RB)、资源单元(Resource element,RE)。例如,如果设定的频域间隔为4个RB,则在频域上,第二信号的发送资源与第一信号的发送资源之间的频域间隔不超过4个子RB,即,与第一信号的发送资源之间频域间隔在4个RB(包括频域间隔为4个RB)范围内的资源,都有可能作为第二信号的发送资源。
(3)与第一信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源。其中,所述设定空域间隔包括至少一个空间波束的间隔单元,所述空间波束的间隔单元包括弧度、度中的至少一个。例如,如果设定的空域间隔为2个弧度,则在空域上,第二信号的发送资源与第一信号的发送资源之间的波束间隔不超过2个弧度。
(4)与第一信号的发送资源在码域上正交的发送资源。
在终端侧,终端接收基站配置的第一信号和第二信号的发送资源,如果基站还配置了第三信号的发送资源,则终端还接收基站配置的第三信号的发 送资源,并根据基站配置的发送资源接收相应的信号。
在一些实施例中,若终端接收到的第一信号中包括第一指示信息(不包括第二指示信息),且终端根据该第一指示信息确定需要进行第二信号的接收,则根据基站配置的第二信号的发送资源接收第二信号。如果终端根据第一指示信息确定不需要进行第二信号的接收,则不接收第二信号。
在另一些实施例中,若终端接收到的第一信号中包括第一指示信息和第二指示信息,且终端根据该第一指示信息确定需要进行第二信号的接收,则根据该第二指示信息指示的发送资源接收第二信号。如果终端根据第一指示信息确定不需要进行第二信号的接收,则不接收第二信号。
在另一些实施例中,若终端接收的第一信号中包括第二指示信息(不包括第一指示信息),则终端确定需要进行第二信号的接收,并根据该第二指示信息指示的发送资源接收第二信号。
示例二:第二信号指示第一信号的收发。
示例二中,在基站侧,基站至少配置第一信号和第二信号的发送资源,还可以进一步配置第三信号的发送资源,其中,第二信号可以用来指示第一信号的收发。
可选地,第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发(比如第三指示信息用于指示基站是否发送第一信号,或者终端是否需要接收第一信号),所述第四指示信息用于指示第一信号的发送资源。
可选地,第三指示信息可以是1比特的指示信息,当其取值为0时表示终端需要接收第一信号,当其取值为1时表示终端不需要接收第一信号,反之亦然。
可选地,第四指示信息为第一信号的发送资源的资源索引。根据第一信号的发送资源的数量,可以定义第四指示信息的比特数量,比如,如果基站为第一信号配置了4个发送资源,则第四指示信息可以是2比特的信息,用于指示该4个发送资源。
其中,第一信号的发送资源包括以下发送资源中的至少一个:由RRC信令配置的发送资源、预先约定的发送资源、与第二信号的发送资源相关联的发送资源。
上述由RRC信令配置的发送资源可以包括:在RRC连接态(RRC-connected)下配置的第二信号的发送资源,在RRC空闲态(RRC-Idle)下配置的第二信号的发送资源,在RRC非激活态(RRC-inactive)下配置的第二信号的发送资源,是使用保存的RRC-connected配置的第二信号的发送资源。
上述与第二信号的发送资源相关联的发送资源,可包括以下之一或任意组合:
(1)与第二信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源。其中,所述设定时间间隔,包括至少一个时间间隔单元,所述时间间隔单元包括以下至少一种:无线帧、半帧、子帧、时隙、符号。例如,如果设定的时间间隔为2个子帧,则在时域上,第一信号的发送资源与第二信号的发送资源之间的时间间隔不超过2个子帧,即,与第二信号的发送资源之间的时间间隔在2个子帧(包括2个子帧)范围内的资源,都有可能作为第一信号的发送资源,具体可以是时间间隔为1个子帧,也可以是时间间隔为2个子帧,还可以是以下情形:部分第一信号的发送资源与第二信号的发送资源之间的时间间隔为1个子帧,部分第一信号的发送资源与第二信号的发送资源之间的时间间隔为2个子帧。
(2)与第二信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源。其中,所述设定频域间隔,包括至少一个频域间隔单元,所述频域间隔单元包括以下至少一种:载波、RB、RE。例如,如果设定的频域间隔为4个RB,则在频域上,第一信号的发送资源与第二信号的发送资源之间的频域间隔不超过4个子RB,即,与第二信号的发送资源之间频域间隔在4个RB(包括频域间隔为4个RB)范围内的资源,都有可能作为第一信号的发送资源。
(3)与第二信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源。其中,所述设定空域间隔包括至少一个空间波束的间隔单元,所述空间波束的间隔单元包括弧度、度中的至少一个。例如,如果设定的空域间隔为2个弧度,则在空域上,第一信号的发送资源与第二信号的发送资源之间的波束间隔不超过2个弧度。
(4)与第二信号的发送资源在码域上正交的发送资源。
在终端侧,终端接收基站配置的第一信号和第二信号的发送资源,如果基站还配置了第三信号的发送资源,则终端还接收基站配置的第三信号的发送资源,并根据基站配置的发送资源接收相应的信号。
在一些实施例中,若终端接收到的第二信号中包括第三指示信息(不包括第四指示信息),且终端根据该第三指示信息确定需要进行第一信号的接收,则根据基站配置的第一信号的发送资源接收第一信号。如果终端根据第三指示信息确定不需要进行第一信号的接收,则不接收第一信号。
在另一些实施例中,若终端接收到的第二信号中包括第三指示信息和第四指示信息,且终端根据该第三指示信息确定需要进行第一信号的接收,则根据该第四指示信息指示的发送资源接收第一信号。如果终端根据第三指示信息确定不需要进行第一信号的接收,则不接收第一信号。
在另一些实施例中,若终端接收到的第二信号中包括第四指示信息(不包括第三指示信息),则终端确定需要进行第一信号的接收,并根据该第四指示信息指示的发送资源接收第一信号。
示例三:第三信号指示第一信号的收发。
示例三中,在基站侧,基站配置第一信号、第二信号和第三信号的发送资源,其中,第三信号可以用来指示第一信号的收发。
可选地,第一信号的发送时刻由第三信号的发送时刻进行指示。其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
在终端侧,终端接收基站配置的第一信号、第二信号和第三信号的发送 资源,并根据基站配置的发送资源接收相应的信号。其中,终端根据第三信号的发送时刻确定第一信号的发送时刻,并根据第一信号的发送时刻接收第一信号。
举例来说,基站配置M时刻的第三信号是否发送,如果在M时刻发送第三信号,则基站在(M-k)时刻发送第一信号,其中,k为不小于零的正整数,使得第一信号的收发不晚于第三信号所在的PF(寻呼帧)的时刻,或者第一信号的收发不晚于第三信号所在的PO(寻呼机会)的时刻。
如果基站不发送第三信号,则基站不配置第一信号的发送。
示例四:第三信号指示第一信号的收发。
示例四中,在基站侧,基站配置第一信号、第二信号和第三信号的发送资源,其中,第三信号可以用来指示第二信号的收发。
可选地,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
在终端侧,终端接收基站配置的第一信号、第二信号和第三信号的发送资源,并根据基站配置的发送资源接收相应的信号。其中,终端根据第三信号的发送时刻确定第二信号的发送时刻,并根据第二信号的发送时刻接收第二信号。
举例来说,基站配置M时刻的第三信号是否发送,如果在M时刻发送第三信号,则基站在(M-n)时刻发送第二信号,其中,n为不小于零的正整数,使得第二信号的收发不晚于第三信号所在的PF(寻呼帧)的时刻,或者第二信号的收发不晚于第三信号所在的PO(寻呼机会)的时刻。
如果基站不发送第三信号,则基站不配置第二信号的发送。
示例五:第三信号指示第一信号和第二信号的收发。
示例五中,在基站侧,基站配置第一信号、第二信号和第三信号的发送资源,其中,第三信号可以用来指示第一信号和第二信号的收发。
可选地,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指 示。在一些实施例中,第一信号和第二信号的发送时刻与第三信号的发送时刻相同。在另一些实施例中,第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移。在另一些实施例中,第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同。在另一些实施例中,第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移。
在终端侧,终端接收基站配置的第一信号、第二信号和第三信号的发送资源,并根据基站配置的发送资源接收相应的信号。其中,终端根据第三信号的发送时刻确定第一信号和第二信号的发送时刻,并根据第一信号的发送时刻接收第一信号,根据第二信号的发送时刻接收第二信号。
举例来说,基站配置M时刻的第三信号是否发送,如果在M时刻发送第三信号,则基站在(M-k)时刻发送第一信号,在(M-n)时刻发送第二信号,其中,k和n为不小于零的正整数,n≦k。由于n≦k,使得第二信号的发送时刻不早于第一信号的发送时刻。由于n≧0,使得第二信号的收发不晚于第三信号所在的PF(寻呼帧)的时刻,或者第二信号的收发不晚于第三信号所在的PO(寻呼机会)的时刻。
如果基站不发送第三信号,则基站不配置第一信号的发送和第二信号的发送。
示例六:第一信号指示第三信号的收发。
示例六中,在基站侧,基站配置第一信号、第二信号和第三信号的发送资源,其中,第一信号可以用来指示第三信号的收发。
可选地,第三信号的发送时刻由第一信号的发送时刻进行指示,其中,第三信号的发送时刻与第一信号的发送时刻相同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移。
在终端侧,终端接收基站配置的第一信号、第二信号和第三信号的发送资源,并根据基站配置的发送资源接收相应的信号。其中,终端根据第一信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
举例来说,基站配置在N时刻发送第一信号,则基站在(N+x)时刻发送第三信号,其中,x为不小于零的正整数,使得第三信号的收发不早于第一信号的发送时刻。
示例七:第二信号指示第三信号的收发。
示例七中,在基站侧,基站至少配置第二信号和第三信号的发送资源,进一步地,还可配置第一信号的发送资源。其中,第二信号可以用来指示第三信号的收发。
可选地,第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
在终端侧,终端接收基站配置的第二信号和第三信号的发送资源,进一步地,如果基站配置了第一信号的发送资源,则终端接收基站配置的第一信号的发送资源,并根据基站配置的发送资源接收相应的信号。其中,终端根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
举例来说,基站配置在P时刻发送第二信号,则基站在(P+y)时刻发送第三信号,其中,y为不小于零的正整数,使得第三信号的收发不早于第二信号的发送时刻。
示例八:第一信号和第二信号联合指示第三信号的收发。
示例八中,在基站侧,基站配置第一信号、第二信号和第三信号的发送资源,其中,第一信号和第二信号可以联合指示第三信号的收发。
可选地,第一信号中包括第五指示信息和第六指示信息中的至少一个,所述第五指示信息用于指示第一终端分组中的终端是否进行第二信号的收发, 所述第六指示信息用于向第一终端分组中的终端指示第二信号的发送资源。第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
在终端侧,终端接收基站配置的第一信号、第二信号和第三信号的发送资源,并根据基站配置的发送资源接收相应的信号。
以第一终端分组中的终端为例,终端的信号接收操作可包括:
若终端接收到的第一信号中包括第五指示信息(不包括第六指示信息)并根据该第五指示信息确定需要进行第二信号的接收,则根据基站配置的第二信号的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;如果终端根据第五指示信息确定不需要进行第二信号的接收,则不接收第二信号和第三信号;
若终端接收到的第一信号中包括第五指示信息和第六指示信息,并根据该第五指示信息确定需要进行第二信号的接收,则根据第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;如果终端根据第五指示信息确定不需要进行第二信号的接收,则不接收第二信号和第三信号;
若终端接收到的第一信号中包括第六指示信息(不包括第五指示信息),则终端确定需要进行第二信号的接收,根据第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
对于不在第一终端分组内的终端,则可按照常规方式进行信号接收。
可选地,若第一信号的发送资源与第二信号的发送资源发生冲突,则在一些实施例中,基站可以发送第一信号,并禁止发送第二信号;在另一些实施例中,基站可以发送第一信号和第二信号,其中,第二信号与第一信号之间间隔至少一个资源单元,所述资源单元包括时域资源单元、频域资源单元、码域资源单元、空域资源单元中的至少一种。所述时域资源单元可包括以下 至少一种:无线帧、半帧、子帧、时隙、符号;所述频域资源单元可包括以下至少一种:载波、RB、RE;所述空间资源单元可包括弧度、度中的至少一个。
举例来说,若第一信号的发送资源与第二信号的发送资源发生冲突,则基站配置发送第一信号,并配置在第一信号后间隔至少一个资源单元的资源间隔后发送第二信号。再举例来说,若第一信号的发送资源与第二信号的发送资源发生冲突,则基站配置发送第二信号,并配置在第二信号前间隔至少一个资源的资源间隔发送第一信号。
通过以上描述可以看出,本申请的实施例可以解决在RRC空闲态(RRC-idle)或RRC非激活态(RRC-inactive)下,第一信号,第二信号,第三信号的发送图案设计,通过三个信号联合配置的方式,降低信号之间由于参数范围不同带来的额外的功耗的问题,也可以降低寻呼信号(Paging)的不必要的监听,从而降低终端的功耗。
基于相同的技术构思,本申请实施例还提供了一种基站,可实现前述实施例中基站侧的功能。
图7示例性示出了本申请实施例中的基站的结构,如图所示,该基站可包括处理模块701和发送模块702。
处理模块701,用于配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。上述第一信号、第二信号和第三信号的说明与前述实施例相同,在此不再重复。
发送模块702,用于根据所述至少两种信号的发送资源发送所述至少两种信号。
可选地,处理模块701具体用于:配置第一信号和第二信号的发送资源, 其中,所述第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源。
可选地,所述第二指示信息为第二信号的发送资源的资源索引;所述第二信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第一信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第一信号的发送资源相关联的发送资源,包括以下之一或任意组合:与第一信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源,与第一信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源,与第一信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源,与第一信号的发送资源在码域上正交的发送资源。
可选地,处理模块701具体用于:配置第一信号和第二信号的发送资源,其中,所述第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发,所述第四指示信息用于指示第一信号的发送资源。
可选地,所述第四指示信息为第一信号的发送资源的资源索引;所述第一信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第二信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第二信号的发送资源相关联的发送资源,包括以下之一或任意组合:与第二信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源,与第二信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源,与第二信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源,与第二信号的发送资源在码域上正交的发送资源。
可选地,处理模块701具体用于:配置第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
可选地,处理模块701具体用于:配置第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
可选地,处理模块701具体用于:配置第一信号、第二信号和第三信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:第一信号和第二信号的发送时刻与第三信号的发送时刻相同;或者,第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移;或者,第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同;或者,第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移。
可选地,处理模块701具体用于:配置第一信号和第三信号的发送资源,第三信号的发送时刻由第一信号的发送时刻进行指示,其中,第三信号的发送时刻与第一信号的发送时刻相同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移。
可选地,处理模块701具体用于:配置第二信号和第三信号的发送资源,第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
可选地,处理模块701具体用于:配置第一信号、第二信号和第三信号的发送资源,其中:第一信号中包括第五指示信息和第六指示信息中的至少一个,所述第五指示信息用于指示第一终端分组中的终端是否进行第二信号的收发,所述第六指示信息用于向第一终端分组中的终端指示第二信号的发 送资源;第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
可选地,处理模块701还用于:若第一信号的发送资源与第二信号的发送资源发生冲突,则:发送第一信号,并禁止发送第二信号;或者,发送第一信号和第二信号,其中,第二信号与第一信号之间间隔至少一个资源单元,所述资源单元包括时域资源单元、频域资源单元、码域资源单元、空域资源单元中的至少一种。
可选地,第一信号,包括以下信号中的至少一个:SSB、SSS、PSS、PBCH、RMSI;
第二信号,包括以下信号中的至少一个:TRS、CSI-RS、WUS、PT-RS、P-RS;
第三信号,包括寻呼信号。
在此需要说明的是,本申请实施例提供的上述基站,能够实现上述方法实施例所实现的所有方法步骤,且能够达到相同的技术效果,在此不再对本实施例中与方法实施例相同的部分及有益效果进行具体赘述。
基于相同的技术构思,本申请实施例还提供了一种终端,可实现前述终端侧的功能。
图8示例性示出了本申请实施例中的终端的结构,如图所示,该终端可包括处理模块801和接收模块802。
接收模块802在处理模块801的控制下,用于:接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,根据所述至少两种信号的发送资源接收所述至少两种信号。其中,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。上述第一信号、 第二信号和第三信号的说明与前述实施例相同,在此不再重复。
可选地,所述终端接收的第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源,则接收模块802在处理模块801的控制下,具体用于:
若第一信号中包括所述第一指示信息,且所述终端根据所述第一指示信息确定需要进行第二信号的接收,则根据所述基站配置的第二信号的发送资源接收第二信号;
若第一信号中包括所述第一指示信息和所述第二指示信息,且所述终端根据所述第一指示信息确定需要进行第二信号的接收,则根据所述第二指示信息指示的发送资源接收第二信号;
若第一信号中包括所述第二指示信息,则所述终端确定需要进行第二信号的接收,并根据所述第二指示信息指示的发送资源接收第二信号。
可选地,所述第二指示信息为第二信号的发送资源的资源索引;第二信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第一信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第一信号的发送资源相关联的发送资源,包括以下之一或任意组合:与第一信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源,与第一信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源,与第一信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源,与第一信号的发送资源在码域上正交的发送资源。
可选地,终端接收到的第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发,所述第四指示信息用于指示第一信号的发送资源,则:
若第二信号中包括所述第三指示信息,且处理模块801根据所述第三指示信息确定需要进行第一信号的接收,则通过接收模块802根据所述基站配置的第一信号的发送资源接收第一信号;
若第二信号中包括所述第三指示信息和所述第四指示信息,且处理模块801根据所述第三指示信息确定需要进行第一信号的接收,则通过接收模块802根据所述第四指示信息指示的发送资源接收第一信号;
若第二信号中包括所述第四指示信息,则处理模块801确定需要进行第一信号的接收,并通过接收模块802根据所述第四指示信息指示的发送资源接收第一信号。
可选地,所述第四指示信息为第一信号的发送资源的资源索引;第一信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第二信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第二信号的发送资源相关联的发送资源,包括以下之一或任意组合:与第二信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源,与第二信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源,与第二信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源,与第二信号的发送资源在码域上正交的发送资源。
可选地,接收模块802接收所述基站配置的第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;则接收模块802在处理模块801的控制下,根据第三信号的发送时刻确定第一信号的发送时刻,并根据第一信号的发送时刻接收第一信号。
可选地,接收模块802接收所述基站配置的第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;则接收模块802在处理模块801的控制下,根据第三信号的发送时刻确定第二信号的发送时刻,并根据第二信号的发送时刻接收第二信号。
可选地,接收模块802接收所述基站配置的第一信号、第二信号和第三 信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:第一信号和第二信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移;则接收模块802在处理模块801的控制下,根据第三信号的发送时刻确定第一信号和第二信号的发送时刻,并根据第一信号的发送时刻接收第一信号,根据第二信号的发送时刻接收第二信号。
可选地,接收模块802接收所述基站配置的第一信号和第三信号的发送资源,第三信号的发送时刻由第一信号的发送时刻进行指示,其中,第三信号的发送时刻与第一信号的发送时刻相同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移;则接收模块802在处理模块801的控制下,根据第一信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
可选地,接收模块802接收所述基站配置的第二信号和第三信号的发送资源,第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移;则接收模块802在处理模块801的控制下,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
可选地,接收模块802接收所述基站配置的第一信号、第二信号和第三信号的发送资源,其中:
第一信号中包括第五指示信息和第六指示信息中的至少一个,所述第五 指示信息用于指示第一终端分组中的终端是否进行第二信号的收发,所述第六指示信息用于向第一终端分组中的终端指示第二信号的发送资源;
第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移;
则接收模块802在处理模块801的控制下,执行:
若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括所述第五指示信息并根据所述第五指示信息确定需要进行第二信号的接收,则根据所述基站配置的第二信号的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;
若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括第五指示信息和第六指示信息,并根据所述第五指示信息确定需要进行第二信号的接收,则根据所述第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;
若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括第六指示信息,则所述终端确定需要进行第二信号的接收,根据所述第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
可选地,第一信号,包括以下信号中的至少一个:SSB、SSS、PSS、PBCH、RMSI;
第二信号,包括以下信号中的至少一个:TRS、CSI-RS、WUS、PT-RS、P-RS;
第三信号,包括寻呼信号。
在此需要说明的是,本申请实施例提供的上述终端,能够实现上述方法实施例所实现的所有方法步骤,且能够达到相同的技术效果,在此不再对本 实施例中与方法实施例相同的部分及有益效果进行具体赘述。
基于相同的技术构思,本申请实施例还提供了一种基站,可实现前述实施例中基站侧的功能。
图9示例性示出了本申请实施例中的基站的结构示意图。如图所示,该基站可包括:处理器901、存储器902、收发机903以及总线接口904。
处理器901负责管理总线架构和通常的处理,存储器902可以存储处理器901在执行操作时所使用的数据。收发机903用于在处理器901的控制下接收和发送数据。
总线架构可以包括任意数量的互联的总线和桥,具体由处理器901代表的一个或多个处理器和存储器902代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。处理器901负责管理总线架构和通常的处理,存储器902可以存储处理器901在执行操作时所使用的数据。
本申请实施例揭示的流程,可以应用于处理器901中,或者由处理器901实现。在实现过程中,信号处理流程的各步骤可以通过处理器901中的硬件的集成逻辑电路或者软件形式的指令完成。处理器901可以是通用处理器、数字信号处理器、专用集成电路、现场可编程门阵列或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件,可以实现或者执行本申请实施例中的公开的各方法、步骤及逻辑框图。通用处理器可以是微处理器或者任何常规的处理器等。结合本申请实施例所公开的方法的步骤可以直接体现为硬件处理器执行完成,或者用处理器中的硬件及软件模块组合执行完成。软件模块可以位于随机存储器,闪存、只读存储器,可编程只读存储器或者电可擦写可编程存储器、寄存器等本领域成熟的存储介质中。该存储介质位于存储器902,处理器901读取存储器902中的信息,结合其硬件完成信号处理流程的步骤。
具体地,处理器901,用于读取存储器902中的计算机指令并执行图2所示的 流程中基站侧实现的功能。
具体地,处理器901可以读取存储器902中的计算机指令,执行以下操作:配置第一信号、第二信号和第三信号中至少两种信号的发送资源,根据所述至少两种信号的发送资源发送所述至少两种信号。其中,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示。其中,所述第一信号为用于同步、波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。上述第一信号、第二信号和第三信号的说明与前述实施例相同,在此不再重复。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第一信号和第二信号的发送资源,其中,所述第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源。
可选地,所述第二指示信息为第二信号的发送资源的资源索引;
所述第二信号的发送资源包括由无线资源控制RRC信令配置的发送资源、预先约定的发送资源、与第一信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第一信号的发送资源相关联的发送资源,包括以下之一或任意组合:
与第一信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
与第一信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源;
与第一信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔 的发送资源;
与第一信号的发送资源在码域上正交的发送资源。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第一信号和第二信号的发送资源,其中,所述第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发,所述第四指示信息用于指示第一信号的发送资源。
可选地,所述第四指示信息为第一信号的发送资源的资源索引;
所述第一信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第二信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第二信号的发送资源相关联的发送资源,包括以下之一或任意组合:
与第二信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
与第二信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源;
与第二信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源;
与第二信号的发送资源在码域上正交的发送资源。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第一信号、第二信号和第三信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:
第一信号和第二信号的发送时刻与第三信号的发送时刻相同;或者
第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移;或者
第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同;或者
第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第一信号和第三信号的发送资源,第三信号的发送时刻由第一信号的发送时刻进行指示,其中,第三信号的发送时刻与第一信号的发送时刻相 同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第二信号和第三信号的发送资源,第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
可选地,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器901具体用于:
配置第一信号、第二信号和第三信号的发送资源,其中:
第一信号中包括第五指示信息和第六指示信息中的至少一个,所述第五指示信息用于指示第一终端分组中的终端是否进行第二信号的收发,所述第六指示信息用于向第一终端分组中的终端指示第二信号的发送资源;
第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
可选地,若第一信号的发送资源与第二信号的发送资源发生冲突,则所述处理器901还用于:
发送第一信号,并禁止发送第二信号;或者
发送第一信号和第二信号,其中,第二信号与第一信号之间间隔至少一个资源单元,所述资源单元包括时域资源单元、频域资源单元、码域资源单元、空域资源单元中的至少一种。
可选地,所述第一信号,包括以下信号中的至少一个:SSB、SSS、PSS、PBCH、RMSI;
第二信号,包括以下信号中的至少一个:TRS、CSI-RS、WUS、PT-RS、P-RS;
第三信号,包括寻呼信号。
在此需要说明的是,本发明实施例提供的上述基站,能够实现上述方法实施例所实现的所有方法步骤,且能够达到相同的技术效果,在此不再对本实施例中与方法实施例相同的部分及有益效果进行具体赘述。
基于相同的技术构思,本申请实施例还提供了一种终端,可实现前述实施例中终端侧的功能。
图10示例性示出了本申请实施例中的终端的结构示意图。如图所示,该终端可包括:处理器1001、存储器1002、收发机1003以及总线接口1004。
处理器1001负责管理总线架构和通常的处理,存储器10902可以存储处理器1001在执行操作时所使用的数据。收发机1003用于在处理器1001的控制下接收和发送数据。
总线架构可以包括任意数量的互联的总线和桥,具体由处理器1001代表的一个或多个处理器和存储器1002代表的存储器的各种电路链接在一起。总线架构还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。处理器1001负责管理总线架构和通常的处理,存储器1002可以存储处理器1001在执行操作时所使用的数据。
本申请实施例揭示的流程,可以应用于处理器1001中,或者由处理器1001实现。在实现过程中,信号处理流程的各步骤可以通过处理器1001中的硬件的集成逻辑电路或者软件形式的指令完成。处理器901可以是通用处理器、数字信号处理器、专用集成电路、现场可编程门阵列或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件,可以实现或者执行本申请实施例中的公开的各方法、步骤及逻辑框图。通用处理器可以是微处理器或者任何常规的处理器等。结合本申请实施例所公开的方法的步骤可以直接体现为硬件处理器执行完成,或者用处理器中的硬件及软件模块组合执行完成。 软件模块可以位于随机存储器,闪存、只读存储器,可编程只读存储器或者电可擦写可编程存储器、寄存器等本领域成熟的存储介质中。该存储介质位于存储器1002,处理器1001读取存储器1002中的信息,结合其硬件完成信号处理流程的步骤。
具体地,处理器1001,用于读取存储器1002中的计算机指令并执行图3所示的流程中终端侧实现的功能。
具体地,处理器1001可以读取存储器1002中的计算机指令,执行以下操作:接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,根据所述至少两种信号的发送资源接收所述至少两种信号。其中,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示。其中,所述第一信号为用于同步、波束测量、波束获取、RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号。上述第一信号、第二信号和第三信号的说明与前述实施例相同,在此不再重复。
可选地,所述第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源,则所述根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器1001具体用于:
若第一信号中包括所述第一指示信息,且根据所述第一指示信息确定需要进行第二信号的接收,则根据所述基站配置的第二信号的发送资源接收第二信号;
若第一信号中包括所述第一指示信息和所述第二指示信息,且根据所述第一指示信息确定需要进行第二信号的接收,则根据所述第二指示信息指示的发送资源接收第二信号;
若第一信号中包括所述第二指示信息,则确定需要进行第二信号的接收,并根据所述第二指示信息指示的发送资源接收第二信号。
可选地,所述第二指示信息为第二信号的发送资源的资源索引;
第二信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第一信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第一信号的发送资源相关联的发送资源,包括以下之一或任意组合:
与第一信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
与第一信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源;
与第一信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源;
与第一信号的发送资源在码域上正交的发送资源。
可选地,所述第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发,所述第四指示信息用于指示第一信号的发送资源;所述处理器1001具体用于:
若第二信号中包括所述第三指示信息,且根据所述第三指示信息确定需要进行第一信号的接收,则根据所述基站配置的第一信号的发送资源接收第一信号;
若第二信号中包括所述第三指示信息和所述第四指示信息,且根据所述第三指示信息确定需要进行第一信号的接收,则根据所述第四指示信息指示的发送资源接收第一信号;
若第二信号中包括所述第四指示信息,则确定需要进行第一信号的接收,并根据所述第四指示信息指示的发送资源接收第一信号。
可选地,所述第四指示信息为第一信号的发送资源的资源索引;
第一信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第二信号的发送资源相关联的发送资源中的至少一个。
可选地,所述与第二信号的发送资源相关联的发送资源,包括以下之一 或任意组合:
与第二信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
与第二信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源;
与第二信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源;
与第二信号的发送资源在码域上正交的发送资源。
可选地,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器1001具体用于:
接收所述基站配置的第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;
根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器1001具体用于:
根据第三信号的发送时刻确定第一信号的发送时刻,并根据第一信号的发送时刻接收第一信号。
可选地,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器1001具体用于:
接收所述基站配置的第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;
根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理 器1001具体用于:
根据第三信号的发送时刻确定第二信号的发送时刻,并根据第二信号的发送时刻接收第二信号。
可选地,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器1001具体用于:
接收所述基站配置的第一信号、第二信号和第三信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:
第一信号和第二信号的发送时刻与第三信号的发送时刻相同;或者
第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移;或者
第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同;或者
第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移;
所述根据至少两种信号的发送资源接收所述至少两种信号时,所述处理器1001具体用于:
根据第三信号的发送时刻确定第一信号和第二信号的发送时刻,并根据第一信号的发送时刻接收第一信号,根据第二信号的发送时刻接收第二信号。
可选地,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器1001具体用于:
接收所述基站配置的第一信号和第三信号的发送资源,第三信号的发送时刻由第一信号的发送时刻进行指示,其中,第三信号的发送时刻与第一信 号的发送时刻相同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移;
所述根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器1001具体用于:
根据第一信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
可选地,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器1001具体用于:
接收所述基站配置的第二信号和第三信号的发送资源,第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移;
根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器1001具体用于:
根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
可选地,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器1001具体用于:
接收所述基站配置的第一信号、第二信号和第三信号的发送资源,其中:
第一信号中包括第五指示信息和第六指示信息中的至少一个,所述第五指示信息用于指示第一终端分组中的终端是否进行第二信号的收发,所述第六指示信息用于向第一终端分组中的终端指示第二信号的发送资源;
第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移;
所述根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器1001具体用于:
若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括所述第五指示信息并根据所述第五指示信息确定需要进行第二信号的接收,则根据所述基站配置的第二信号的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;
若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括第五指示信息和第六指示信息,并根据所述第五指示信息确定需要进行第二信号的接收,则根据所述第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;
若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括第六指示信息,则确定需要进行第二信号的接收,根据所述第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
可选地,所述第一信号,包括以下信号中的至少一个:SSB、SSS、PSS、PBCH、RMSI;
第二信号,包括以下信号中的至少一个:TRS、CSI-RS、WUS、PT-RS、P-RS;
第三信号,包括寻呼信号。
在此需要说明的是,本发明实施例提供的上述终端,能够实现上述方法实施例所实现的所有方法步骤,且能够达到相同的技术效果,在此不再对本实施例中与方法实施例相同的部分及有益效果进行具体赘述。
本申请实施例还提供了一种计算机可读存储介质,计算机可读存储介质存储有计算机可执行指令,计算机可执行指令用于使计算机执行上述实施例中基站所执行的方法。
本申请实施例还提供了一种计算机可读存储介质,计算机可读存储介质存储有计算机可执行指令,计算机可执行指令用于使计算机执行上述实施例中终端所执行的方法。
本领域内的技术人员应明白,本申请的实施例可提供为方法、系统、或计算机程序产品。因此,本申请可采用完全硬件实施例、完全软件实施例、或结合软件和硬件方面的实施例的形式。而且,本申请可采用在一个或多个其中包含有计算机可用程序代码的计算机可用存储介质(包括但不限于磁盘存储器、CD-ROM、光学存储器等)上实施的计算机程序产品的形式。
本申请是参照根据本申请的方法、设备(系统)、和计算机程序产品的流程图和/或方框图来描述的。应理解可由计算机程序指令实现流程图和/或方框图中的每一流程和/或方框、以及流程图和/或方框图中的流程和/或方框的结合。可提供这些计算机程序指令到通用计算机、专用计算机、嵌入式处理机或其他可编程数据处理设备的处理器以产生一个机器,使得通过计算机或其他可编程数据处理设备的处理器执行的指令产生用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的装置。
这些计算机程序指令也可存储在能引导计算机或其他可编程数据处理设备以特定方式工作的计算机可读存储器中,使得存储在该计算机可读存储器中的指令产生包括指令装置的制造品,该指令装置实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能。
这些计算机程序指令也可装载到计算机或其他可编程数据处理设备上,使得在计算机或其他可编程设备上执行一系列操作步骤以产生计算机实现的处理,从而在计算机或其他可编程设备上执行的指令提供用于实现在流程图一个流程或多个流程和/或方框图一个方框或多个方框中指定的功能的步骤。
显然,本领域的技术人员可以对本申请进行各种改动和变型而不脱离本申请的精神和范围。这样,倘若本申请的这些修改和变型属于本申请权利要求及其等同技术的范围之内,则本申请也意图包含这些改动和变型在内。

Claims (45)

  1. 一种信号传输方法,其特征在于,包括:
    基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、无线资源管理RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、信道状态指示CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号;
    所述基站根据所述至少两种信号的发送资源发送所述至少两种信号。
  2. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第一信号和第二信号的发送资源,其中,所述第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源。
  3. 如权利要求2所述的方法,其特征在于,所述第二指示信息为第二信号的发送资源的资源索引;
    所述第二信号的发送资源包括由无线资源控制RRC信令配置的发送资源、预先约定的发送资源、与第一信号的发送资源相关联的发送资源中的至少一个。
  4. 如权利要求3所述的方法,其特征在于,所述与第一信号的发送资源相关联的发送资源,包括以下之一或任意组合:
    与第一信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
    与第一信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资 源;
    与第一信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源;
    与第一信号的发送资源在码域上正交的发送资源。
  5. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第一信号和第二信号的发送资源,其中,所述第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发,所述第四指示信息用于指示第一信号的发送资源。
  6. 如权利要求5所述的方法,其特征在于,所述第四指示信息为第一信号的发送资源的资源索引;
    所述第一信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第二信号的发送资源相关联的发送资源中的至少一个。
  7. 如权利要求6所述的方法,其特征在于,所述与第二信号的发送资源相关联的发送资源,包括以下之一或任意组合:
    与第二信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
    与第二信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源;
    与第二信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源;
    与第二信号的发送资源在码域上正交的发送资源。
  8. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
  9. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
  10. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第一信号、第二信号和第三信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:
    第一信号和第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移。
  11. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、 第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第一信号和第三信号的发送资源,第三信号的发送时刻由第一信号的发送时刻进行指示,其中,第三信号的发送时刻与第一信号的发送时刻相同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移。
  12. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第二信号和第三信号的发送资源,第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
  13. 如权利要求1所述的方法,其特征在于,所述基站配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述基站配置第一信号、第二信号和第三信号的发送资源,其中:
    第一信号中包括第五指示信息和第六指示信息中的至少一个,所述第五指示信息用于指示第一终端分组中的终端是否进行第二信号的收发,所述第六指示信息用于向第一终端分组中的终端指示第二信号的发送资源;
    第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移。
  14. 如权利要求1所述的方法,其特征在于,还包括:
    若第一信号的发送资源与第二信号的发送资源发生冲突,则:
    所述基站发送第一信号,并禁止发送第二信号;或者
    所述基站发送第一信号和第二信号,其中,第二信号与第一信号之间间 隔至少一个资源单元,所述资源单元包括时域资源单元、频域资源单元、码域资源单元、空域资源单元中的至少一种。
  15. 如权利要求1-14中任一项所述的方法,其特征在于,所述第一信号,包括以下信号中的至少一个:同步信号块SSB、辅同步信号SSS、主同步信号PSS、物理广播信道PBCH、遗留系统信息RMSI;
    所述第二信号,包括以下信号中的至少一个:跟踪参考信号TRS、信道状态指示参考信号CSI-RS、唤醒信号WUS、相位跟踪参考信号PT-RS、定位参考信号P-RS;
    所述第三信号,包括寻呼信号。
  16. 一种信号传输方法,其特征在于,包括:
    终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、无线资源管理RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、信道状态指示CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号;
    所述终端根据所述至少两种信号的发送资源接收所述至少两种信号。
  17. 如权利要求16所述的方法,其特征在于,所述终端接收的第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源,则所述终端根据所述至少两种信号的发送资源接收所述至少两种信号,包括:
    若第一信号中包括所述第一指示信息,且所述终端根据所述第一指示信息确定需要进行第二信号的接收,则根据所述基站配置的第二信号的发送资源接收第二信号;
    若第一信号中包括所述第一指示信息和所述第二指示信息,且所述终端根据所述第一指示信息确定需要进行第二信号的接收,则根据所述第二指示 信息指示的发送资源接收第二信号;
    若第一信号中包括所述第二指示信息,则所述终端确定需要进行第二信号的接收,并根据所述第二指示信息指示的发送资源接收第二信号。
  18. 如权利要求17所述的方法,其特征在于,所述第二指示信息为第二信号的发送资源的资源索引;
    第二信号的发送资源包括由无线资源控制RRC信令配置的发送资源、预先约定的发送资源、与第一信号的发送资源相关联的发送资源中的至少一个。
  19. 如权利要求18所述的方法,其特征在于,所述与第一信号的发送资源相关联的发送资源,包括以下之一或任意组合:
    与第一信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
    与第一信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源;
    与第一信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源;
    与第一信号的发送资源在码域上正交的发送资源。
  20. 如权利要求16所述的方法,其特征在于,终端接收到的第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发,所述第四指示信息用于指示第一信号的发送资源;
    若第二信号中包括所述第三指示信息,且所述终端根据所述第三指示信息确定需要进行第一信号的接收,则根据所述基站配置的第一信号的发送资源接收第一信号;
    若第二信号中包括所述第三指示信息和所述第四指示信息,且所述终端根据所述第三指示信息确定需要进行第一信号的接收,则根据所述第四指示信息指示的发送资源接收第一信号;
    若第二信号中包括所述第四指示信息,则所述终端确定需要进行第一信 号的接收,并根据所述第四指示信息指示的发送资源接收第一信号。
  21. 如权利要求20所述的方法,其特征在于,所述第四指示信息为第一信号的发送资源的资源索引;
    第一信号的发送资源包括由RRC信令配置的发送资源、预先约定的发送资源、与第二信号的发送资源相关联的发送资源中的至少一个。
  22. 如权利要求21所述的方法,其特征在于,所述与第二信号的发送资源相关联的发送资源,包括以下之一或任意组合:
    与第二信号的发送资源在时域上时间间隔不大于设定时间间隔的发送资源;
    与第二信号的发送资源在频域上频域间隔不大于设定频域间隔的发送资源;
    与第二信号的发送资源在空域波束方向上波束间隔不大于设定空域间隔的发送资源;
    与第二信号的发送资源在码域上正交的发送资源。
  23. 如权利要求16所述的方法,其特征在于,所述终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述终端接收所述基站配置的第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;
    所述终端根据所述至少两种信号的发送资源接收所述至少两种信号,包括:
    所述终端根据第三信号的发送时刻确定第一信号的发送时刻,并根据第一信号的发送时刻接收第一信号。
  24. 如权利要求16所述的方法,其特征在于,所述终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种 信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述终端接收所述基站配置的第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;
    所述终端根据所述至少两种信号的发送资源接收所述至少两种信号,包括:
    所述终端根据第三信号的发送时刻确定第二信号的发送时刻,并根据第二信号的发送时刻接收第二信号。
  25. 如权利要求16所述的方法,其特征在于,所述终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述终端接收所述基站配置的第一信号、第二信号和第三信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:
    第一信号和第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移;
    所述终端根据所述至少两种信号的发送资源接收所述至少两种信号,包括:
    所述终端根据第三信号的发送时刻确定第一信号和第二信号的发送时刻, 并根据第一信号的发送时刻接收第一信号,根据第二信号的发送时刻接收第二信号。
  26. 如权利要求16所述的方法,其特征在于,所述终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述终端接收所述基站配置的第一信号和第三信号的发送资源,第三信号的发送时刻由第一信号的发送时刻进行指示,其中,第三信号的发送时刻与第一信号的发送时刻相同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移;
    所述终端根据所述至少两种信号的发送资源接收所述至少两种信号,包括:
    所述终端根据第一信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
  27. 如权利要求16所述的方法,其特征在于,所述终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述终端接收所述基站配置的第二信号和第三信号的发送资源,第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移;
    所述终端根据所述至少两种信号的发送资源接收所述至少两种信号,包括:
    所述终端根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
  28. 如权利要求16所述的方法,其特征在于,所述终端接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示,包括:
    所述终端接收所述基站配置的第一信号、第二信号和第三信号的发送资源,其中:
    第一信号中包括第五指示信息和第六指示信息中的至少一个,所述第五指示信息用于指示第一终端分组中的终端是否进行第二信号的收发,所述第六指示信息用于向第一终端分组中的终端指示第二信号的发送资源;
    第三信号的发送时刻由第二信号的发送时刻进行指示,其中,第三信号的发送时刻与第二信号的发送时刻相同,或者第三信号的发送时刻在第二信号的发送时刻之后且距离第二信号的发送时刻为设定的时间偏移;
    所述终端根据所述至少两种信号的发送资源接收所述至少两种信号,包括:
    若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括所述第五指示信息并根据所述第五指示信息确定需要进行第二信号的接收,则根据所述基站配置的第二信号的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;
    若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括第五指示信息和第六指示信息,并根据所述第五指示信息确定需要进行第二信号的接收,则根据所述第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号;
    若所述终端为所述第一终端分组中的终端,且接收到的第一信号中包括第六指示信息,则所述终端确定需要进行第二信号的接收,根据所述第六指示信息指示的发送资源接收第二信号,根据第二信号的发送时刻确定第三信号的发送时刻,并根据第三信号的发送时刻接收第三信号。
  29. 如权利要求16-28中任一项所述的方法,其特征在于,所述第一信号,包括以下信号中的至少一个:同步信号块SSB、辅同步信号SSS、主同步信号PSS、物理广播信道PBCH、遗留系统信息RMSI;
    所述第二信号,包括以下信号中的至少一个:跟踪参考信号TRS、信道状态指示参考信号CSI-RS、唤醒信号WUS、相位跟踪参考信号PT-RS、定位参考信号P-RS;
    所述第三信号,包括寻呼信号。
  30. 一种基站,其特征在于,包括:处理器、存储器、收发机;
    所述收发机,在处理器的控制下进行数据的接收和发送;
    所述存储器,存储计算机指令;
    所述处理器,用于读取所述计算机指令,执行以下操作:
    配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、无线资源管理RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、信道状态指示CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号;
    根据所述至少两种信号的发送资源发送所述至少两种信号。
  31. 如权利要求30所述的基站,其特征在于,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用于:
    配置第一信号和第二信号的发送资源,其中,所述第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源。
  32. 如权利要求30所述的基站,其特征在于,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用于:
    配置第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的 发送时刻为设定的时间偏移。
  33. 如权利要求30所述的基站,其特征在于,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用于:
    配置第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移。
  34. 如权利要求30所述的基站,其特征在于,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用于:
    配置第一信号、第二信号和第三信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:
    第一信号和第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移。
  35. 如权利要求30所述的基站,其特征在于,所述配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用于:
    配置第一信号和第三信号的发送资源,第三信号的发送时刻由第一信号 的发送时刻进行指示,其中,第三信号的发送时刻与第一信号的发送时刻相同,或者第三信号的发送时刻在第一信号的发送时刻之后且距离第一信号的发送时刻为设定的时间偏移。
  36. 一种终端,其特征在于,包括:处理器、存储器、收发机;
    所述收发机,在处理器的控制下进行数据的接收和发送;
    所述存储器,存储计算机指令;
    所述处理器,用于读取所述计算机指令,执行以下操作:
    接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、无线资源管理RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、信道状态指示CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号;
    根据所述至少两种信号的发送资源接收所述至少两种信号。
  37. 如权利要求36所述的终端,其特征在于,所述第一信号中包括第一指示信息和第二指示信息中的至少一个,所述第一指示信息用于指示是否进行第二信号的收发,所述第二指示信息用于指示第二信号的发送资源,则根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器具体用于:
    若第一信号中包括所述第一指示信息,且根据所述第一指示信息确定需要进行第二信号的接收,则根据所述基站配置的第二信号的发送资源接收第二信号;
    若第一信号中包括所述第一指示信息和所述第二指示信息,且根据所述第一指示信息确定需要进行第二信号的接收,则根据所述第二指示信息指示的发送资源接收第二信号;
    若第一信号中包括所述第二指示信息,则确定需要进行第二信号的接收,并根据所述第二指示信息指示的发送资源接收第二信号。
  38. 如权利要求36所述的终端,其特征在于,所述第二信号中包括第三指示信息和第四指示信息中的至少一个,所述第三指示信息用于指示是否进行第一信号的收发,所述第四指示信息用于指示第一信号的发送资源;所述处理器具体用于:
    若第二信号中包括所述第三指示信息,且根据所述第三指示信息确定需要进行第一信号的接收,则根据所述基站配置的第一信号的发送资源接收第一信号;
    若第二信号中包括所述第三指示信息和所述第四指示信息,且根据所述第三指示信息确定需要进行第一信号的接收,则根据所述第四指示信息指示的发送资源接收第一信号;
    若第二信号中包括所述第四指示信息,则确定需要进行第一信号的接收,并根据所述第四指示信息指示的发送资源接收第一信号。
  39. 如权利要求36所述的终端,其特征在于,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用于:
    接收所述基站配置的第一信号和第三信号的发送资源,第一信号的发送时刻由第三信号的发送时刻进行指示,其中,第一信号的发送时刻与第三信号的发送时刻相同,或者第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;
    根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器具体用于:
    根据第三信号的发送时刻确定第一信号的发送时刻,并根据第一信号的发送时刻接收第一信号。
  40. 如权利要求36所述的终端,其特征在于,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用 于:
    接收所述基站配置的第二信号和第三信号的发送资源,第二信号的发送时刻由第三信号的发送时刻进行指示,其中,第二信号的发送时刻与第三信号的发送时刻相同,或者第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移;
    根据所述至少两种信号的发送资源接收所述至少两种信号时,所述处理器具体用于:
    根据第三信号的发送时刻确定第二信号的发送时刻,并根据第二信号的发送时刻接收第二信号。
  41. 如权利要求36所述的终端,其特征在于,所述接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示时,所述处理器具体用于:
    接收所述基站配置的第一信号、第二信号和第三信号的发送资源,第一信号和第二信号的发送时刻由第三信号的发送时刻进行指示,其中:
    第一信号和第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻与第二信号的发送时刻相同且该发送时刻在第三信号的发送时刻之前,并距离第三信号的发送时刻为设定的时间偏移;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的时间偏移,第二信号的发送时刻与第三信号的发送时刻相同;或者
    第一信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第一时间偏移,第二信号的发送时刻在第三信号的发送时刻之前且距离第三信号的发送时刻为设定的第二时间偏移,所述第一时间偏移大于所述第二时间偏移;
    所述根据至少两种信号的发送资源接收所述至少两种信号时,所述处理器具体用于:
    根据第三信号的发送时刻确定第一信号和第二信号的发送时刻,并根据第一信号的发送时刻接收第一信号,根据第二信号的发送时刻接收第二信号。
  42. 一种基站,其特征在于,包括:处理模块,用于配置第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、无线资源管理RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、信道状态指示CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号;
    发送模块,用于根据所述至少两种信号的发送资源发送所述至少两种信号。
  43. 一种终端,其特征在于,包括:
    接收模块,用于接收基站配置的第一信号、第二信号和第三信号中至少两种信号的发送资源,所述至少两种信号中,一种信号的收发由另外的至少一种信号进行指示;其中,所述第一信号为用于同步、波束测量、波束获取、无线资源管理RRM测量中至少一种功能的信号,所述第二信号为用于同步、精同步、波束测量、波束获取、RRM测量、信道状态指示CSI测量、终端唤醒中的至少一种功能的信号,所述第三信号为用于寻呼的信号;以及
    根据所述至少两种信号的发送资源接收所述至少两种信号。
  44. 一种计算机可读存储介质,其特征在于,所述计算机可读存储介质存储有计算机可执行指令,所述计算机可执行指令用于使所述计算机执行如权利要求1-15中任一项所述的方法。
  45. 一种计算机可读存储介质,其特征在于,所述计算机可读存储介质存储有计算机可执行指令,所述计算机可执行指令用于使所述计算机执行如权利要求16-29中任一项所述的方法。
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