WO2021017603A1 - 一种节能信号的传输方法、基站及终端设备 - Google Patents
一种节能信号的传输方法、基站及终端设备 Download PDFInfo
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- WO2021017603A1 WO2021017603A1 PCT/CN2020/093026 CN2020093026W WO2021017603A1 WO 2021017603 A1 WO2021017603 A1 WO 2021017603A1 CN 2020093026 W CN2020093026 W CN 2020093026W WO 2021017603 A1 WO2021017603 A1 WO 2021017603A1
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0212—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is leader and terminal is follower
- H04W52/0216—Power saving arrangements in terminal devices managed by the network, e.g. network or access point is leader and terminal is follower using a pre-established activity schedule, e.g. traffic indication frame
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0225—Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
- H04W52/0229—Power 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
- H04W52/0232—Power 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 according to average transmission signal activity
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0225—Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
- H04W52/0229—Power 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
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0225—Power saving arrangements in terminal devices using monitoring of external events, e.g. the presence of a signal
- H04W52/0229—Power 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
- H04W52/0235—Power 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 where the received signal is a power saving command
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W52/00—Power management, e.g. Transmission Power Control [TPC] or power classes
- H04W52/02—Power saving arrangements
- H04W52/0209—Power saving arrangements in terminal devices
- H04W52/0261—Power saving arrangements in terminal devices managing power supply demand, e.g. depending on battery level
- H04W52/0274—Power 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
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/04—Wireless resource allocation
- H04W72/044—Wireless resource allocation based on the type of the allocated resource
- H04W72/0446—Resources in time domain, e.g. slots or frames
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W72/00—Local resource management
- H04W72/20—Control channels or signalling for resource management
- H04W72/23—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
- H04W72/231—Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal the control data signalling from the layers above the physical layer, e.g. RRC or MAC-CE signalling
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/20—Manipulation of established connections
- H04W76/28—Discontinuous transmission [DTX]; Discontinuous reception [DRX]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04W—WIRELESS COMMUNICATION NETWORKS
- H04W76/00—Connection management
- H04W76/20—Manipulation of established connections
- H04W76/27—Transitions between radio resource control [RRC] states
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- Y—GENERAL 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
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02D—CLIMATE CHANGE MITIGATION TECHNOLOGIES IN INFORMATION AND COMMUNICATION TECHNOLOGIES [ICT], I.E. INFORMATION AND COMMUNICATION TECHNOLOGIES AIMING AT THE REDUCTION OF THEIR OWN ENERGY USE
- Y02D30/00—Reducing energy consumption in communication networks
- Y02D30/70—Reducing energy consumption in communication networks in wireless communication networks
Definitions
- the present invention relates to the field of communication technology, in particular to a method for transmitting energy-saving signals, a base station and terminal equipment.
- the energy-saving topic of user equipment (UE) in work item (WI) proposes to use wake-up signal (WUS) based on the physical downlink control channel (PDCCH) to indicate the energy saving of the UE information.
- WUS wake-up signal
- PDCCH physical downlink control channel
- the energy saving information includes at least one of the following information, including: cross-slot scheduling information, information triggering the transmission of reference signals, channel state information (CSI), bandwidth partial (BWP)/secondary cell ( secondary cell (Scell) switching information, multiple input multiple output (MIMO) layer number adjustment/antenna number adjustment information, control resource set (CORESET), search space and candidate position indication information, PDCCH monitoring period information, PDCCH skip indication information, etc.
- CSI channel state information
- BWP bandwidth partial
- Scell secondary cell
- MIMO multiple input multiple output
- CORESET control resource set
- search space and candidate position indication information PDCCH monitoring period information
- PDCCH skip indication information etc.
- the energy-saving signal can indicate whether the terminal needs to detect the PDCCH of the base station and other information in the next discontinuous reception (DRX) cycle, so that the terminal can use lower power to monitor the energy-saving signal and skip subsequent invalid PDCCHs Monitoring, and then achieve the effect of reducing the power consumption of the terminal.
- the energy-saving signal needs to be designed together with the continuous discontinuous reception (connected mode DRX, C-DRX) parameters.
- the standard specifies that one energy-saving signal can indicate multiple DRX cycles, and the energy-saving signal can be activated in DRX
- the previous time offset is sent at the offset, and the above design has the following situations:
- the energy-saving signal supported in long term evolution (LTE) machine type communication (MTC) is based on sequence design, and it is used to indicate whether there is a paging transmission in the next paging cycle.
- LTE long term evolution
- MTC machine type communication
- the difference between terminal energy saving in NR and LTE MTC is that NR mainly focuses on energy saving in the connected state.
- the DRX configuration period in NR can be long or short.
- the short DRX cycle is 2 ms and the long DRX cycle is 10240 ms.
- the service types in the connected state are widely distributed.
- the DRX cycle of NR is usually a combination of shortDRXcycle and longDRXcycle.
- the embodiment of the present invention provides an energy-saving signal transmission method, configuration method, base station, and terminal equipment to solve the technical problem of how to configure the number of DRX cycles indicated by the energy-saving signal in the prior art.
- an embodiment of the present invention provides a method for transmitting energy saving signals, which is applied to a base station, and the method includes:
- the energy-saving signal carries energy-saving information
- the energy-saving information is used to instruct the terminal device to receive at least one first configuration of a discontinuous DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1;
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the sending the energy saving signal to the terminal device includes:
- the method before sending the energy saving signal to the terminal device, the method further includes:
- the candidate position at the sending moment is equal to an integer multiple of the time length of the Y first cycles;
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the Y first cycles, and the candidate position of the transmission time is located at the time before the activation period that is an integer multiple of the time length of the Y first cycles In the window; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position of the transmission time is located before the activation period that is an integer multiple of the time length of the maximum K first cycles Within the time window of; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position of the transmission time is located at a time before the active period that is an integer multiple of the time length of the maximum N DRX cycles In the window; or,
- the candidate location of the sending moment is located in the overlapping part of the time window of at least one activation period of the first period where the terminal device is currently located and the subsequent activation period of the terminal device at least the first period and/or the second period .
- the candidate position at the sending moment includes any one of the following situations, it is determined not to send or skip sending the energy-saving signal:
- the candidate position of the sending moment is located at the start moment, the end moment or the first period of the first period; or,
- the candidate position of the sending moment is outside the time window before the activation period of the first cycle; or,
- the candidate position at the sending moment is within the first cycle, and the next DRX cycle indicated by the energy-saving signal this time is the second cycle; or,
- the candidate position of the sending moment is located in the overlapping part of the time window before the active period of the first cycle of the terminal device and the next DRX cycle of the terminal device, and the next DRX cycle is the first One cycle or second cycle.
- the method before sending the energy saving signal to the terminal device, the method further includes:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or pre-defined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- the sending the energy saving signal to the terminal device includes:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- any two energy-saving signals sent by the base station to the terminal device include at least one of the first period and/or at least one of the second period.
- an embodiment of the present invention provides a method for transmitting an energy-saving signal, which is applied to a terminal device, and the method includes:
- the energy-saving signal carried energy-saving information
- the energy-saving information is used to indicate the terminal device at least a first configuration of a discontinuous reception DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1.
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the receiving the energy saving signal sent by the base station includes:
- the method before receiving the energy saving signal, the method further includes:
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the Y first cycles, and the candidate position for receiving the energy-saving signal is located at an integer multiple of the time length of the Y first cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position for receiving the energy-saving signal is located within the time length of the maximum K first cycles In the time window before the activation period of integer multiples; or,
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position for receiving the energy saving signal is located at an integer multiple of the time length of the maximum N DRX cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is located in a time window before at least one activation period of the first period where the terminal device is currently located and at least the subsequent activation period of the terminal device at least the first period and/or the second period The overlapping part.
- the candidate position for receiving the energy saving signal includes any one of the following situations, it is determined not to send or skip sending the energy saving signal:
- the candidate position for receiving the energy-saving signal is located at the start time, end time, or within the first period of the first period in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is outside the time window before the activation period of the first cycle in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is located in the first cycle, and the next DRX cycle indicated by the energy-saving signal is the second cycle; or,
- the candidate location for receiving the energy-saving signal is located in the overlapping part of the time window before the active period of the first cycle where the energy saving signal is currently located and the active period of the next DRX cycle of the self, and the next DRX cycle is the first cycle or The second cycle.
- the method before receiving the energy saving signal, the method further includes:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or predefined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- the receiving the energy saving signal sent by the base station includes:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- At least one of the first period and/or at least one of the second period is included between the terminal device receiving any two energy-saving signals sent by the base station.
- an embodiment of the present invention provides a base station, including:
- Memory used to store instructions
- the processor is used to read instructions in the memory and execute the following process:
- the energy-saving signal carries energy-saving information
- the energy-saving information is used to instruct the terminal device to receive at least one first configuration of a discontinuous DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1;
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the processor is used to:
- the processor before sending the energy saving signal to the terminal device, the processor is configured to:
- the candidate position at the sending moment is equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the Y first cycles, and the candidate position of the transmission time is located at the time before the activation period that is an integer multiple of the time length of the Y first cycles In the window; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position of the transmission time is located before the activation period that is an integer multiple of the time length of the maximum K first cycles Within the time window of; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position of the transmission time is located at a time before the active period that is an integer multiple of the time length of the maximum N DRX cycles In the window; or,
- the candidate location of the sending moment is located in the overlapping part of the time window of at least one activation period of the first period where the terminal device is currently located and the subsequent activation period of the terminal device at least the first period and/or the second period .
- the candidate position at the sending moment includes any one of the following situations, it is determined not to send or skip sending the energy-saving signal:
- the candidate position of the sending moment is located at the start moment, the end moment, or the first period of the first period; or,
- the candidate position of the sending moment is outside the time window before the activation period of the first cycle; or,
- the candidate position at the sending moment is within the first cycle, and the next DRX cycle indicated by the energy-saving signal this time is the second cycle; or,
- the candidate position of the sending moment is located in the overlapping part of the time window before the active period of the first cycle of the terminal device and the next DRX cycle of the terminal device, and the next DRX cycle is the first One cycle or second cycle.
- the processor before sending the energy saving signal to the terminal device, the processor is configured to:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or pre-defined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- the processor is used to:
- the preset time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- any two energy-saving signals sent by the base station to the terminal device include at least one of the first period and/or at least one of the second period.
- an embodiment of the present invention provides a terminal device, including:
- Memory used to store instructions
- the processor is used to read instructions in the memory and execute the following process:
- the energy-saving signal carried energy-saving information
- the energy-saving information is used to indicate the terminal device at least a first configuration of a discontinuous reception DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1.
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the receiving the energy saving signal sent by the base station includes:
- the processor before receiving the energy saving signal, the processor is configured to:
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the Y first cycles, and the candidate position for receiving the energy-saving signal is located at an integer multiple of the time length of the Y first cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position for receiving the energy-saving signal is located within the time length of the maximum K first cycles In the time window before the activation period of integer multiples; or,
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position for receiving the energy saving signal is located at an integer multiple of the time length of the maximum N DRX cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is located in a time window before at least one activation period of the first period where the terminal device is currently located and at least the subsequent activation period of the terminal device at least the first period and/or the second period The overlapping part.
- the candidate position for receiving the energy saving signal includes any one of the following situations, it is determined not to send or skip sending the energy saving signal:
- the candidate position for receiving the energy-saving signal is located at the start time, end time, or within the first period of the first period in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is outside the time window before the activation period of the first cycle in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is located in the first cycle, and the next DRX cycle indicated by the energy-saving signal is the second cycle; or,
- the candidate location for receiving the energy-saving signal is located in the overlapping part of the time window before the active period of the first cycle where the energy saving signal is currently located and the active period of the next DRX cycle of the self, and the next DRX cycle is the first cycle or The second cycle.
- the processor before receiving the energy saving signal, the processor is configured to:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or predefined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- the processor is used to:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- At least one of the first period and/or at least one of the second period is included between the terminal device receiving any two energy-saving signals sent by the base station.
- an embodiment of the present invention provides a base station, including:
- the configuration module is configured to configure an energy-saving signal for a terminal device, the energy-saving signal carries energy-saving information, and the energy-saving information is used to indicate the first configuration of at least one discontinuous reception DRX cycle of the terminal device, and the at least one DRX cycle includes At least one first period and/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period,
- the first configuration of the DRX cycle includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, the N, the K, and the The Y is an integer greater than or equal to 1;
- the sending module is used to send the energy saving signal to the terminal device.
- an embodiment of the present invention provides a terminal device, including:
- the receiving module is configured to receive an energy-saving signal sent by a base station, the energy-saving signal carries energy-saving information, and the energy-saving information is used to indicate the first configuration of at least one discontinuous reception DRX cycle of the terminal device, and the at least one DRX cycle includes At least one first period and/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, so
- the first configuration of the DRX cycle includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, the N, the K, and the Y is an integer greater than or equal to 1.
- an embodiment of the present invention provides a computer-readable storage medium having computer instructions stored on the computer-readable storage medium.
- the computer instructions are executed by a processor, the implementation of The steps of the method.
- an embodiment of the present invention provides a computer-readable storage medium having computer instructions stored on the computer-readable storage medium.
- the computer instructions are executed by a processor, the implementation is as described in the second aspect. The steps of the method.
- the base station can configure an energy-saving signal for the terminal device.
- the energy-saving signal carries energy-saving information.
- the energy-saving information can indicate the first configuration of at least one DRX cycle of the terminal device.
- the at least one DRX cycle includes at least one first cycle and/or at least one The second cycle, the first cycle and the second cycle are long cycles and/or short cycles, and the first cycle is different from the second cycle, the first configuration of the DRX cycle includes the maximum number of DRX cycles N and the maximum number of the first cycle At least one of K and the number Y of the first cycle, N, K, and Y are all integers greater than or equal to 1, so that the energy-saving signal can indicate to the terminal device for any combination of DRX cycles of different lengths, and solve the existing problems.
- the technical problem of how to configure the number of DRX cycles indicated by the energy saving signal and achieve the technical effect of improving the energy saving effect, reducing the transmission delay, and improving the performance of the terminal device.
- FIG. 1 is a flowchart of a method for transmitting energy saving signals according to an embodiment of the present invention
- FIG. 2 is a schematic diagram of the configuration of the DRX cycle provided by an embodiment of the present invention.
- FIG. 3 is a schematic diagram of a relationship between an energy-saving signal and a DRX cycle according to an embodiment of the present invention
- FIG. 4 is a schematic diagram of another relationship between an energy-saving signal and a DRX cycle according to an embodiment of the present invention
- FIG. 5 is a schematic diagram of another relationship between an energy-saving signal and a DRX cycle according to an embodiment of the present invention
- FIG. 6 is a schematic diagram of a physical structure of a base station provided by an embodiment of the present invention.
- FIG. 7 is a schematic diagram of the physical structure of a terminal device according to an embodiment of the present invention.
- FIG. 8 is a schematic structural diagram of a base station provided by an embodiment of the present invention.
- FIG. 9 is a schematic structural diagram of a terminal device according to an embodiment of the present invention.
- the transmission method applied to the base station includes:
- the energy-saving signal carries energy-saving information
- the energy-saving information is used to instruct the terminal device to receive at least one first configuration of a discontinuous DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1;
- the transmission method applied to terminal equipment includes:
- the energy-saving signal carried energy-saving information
- the energy-saving information is used to indicate the terminal device at least a first configuration of a discontinuous reception DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1.
- the terminal device in the embodiment of the present invention includes a device that provides users with voice and/or data connectivity, for example, it may include a handheld device with a wireless connection function or a processing device connected to a wireless modem.
- the terminal device can communicate with the core network via a radio access network (RAN), and exchange voice and/or data with the RAN.
- the terminal equipment may include user equipment (UE), wireless terminal equipment, mobile terminal equipment, subscriber unit (subscriber unit), subscriber station (subscriber station), mobile station (mobile station), mobile station (mobile), remote Station (remote station), access point (access point, AP), remote terminal equipment (remote terminal), access terminal equipment (access terminal), user terminal equipment (user terminal), user agent (user agent), or user Equipment (user device), etc.
- it may include mobile phones (or “cellular” phones), computers with mobile terminal devices, portable, pocket-sized, handheld, computer-built or vehicle-mounted mobile devices, smart wearable devices, and so on.
- PCS personal communication service
- PCS personal communication service
- SIP session initiation protocol
- WLL wireless local loop
- PDA personal digital assistants
- restricted devices such as devices with low power consumption, or devices with limited storage capabilities, or devices with limited computing capabilities. Examples include barcodes, radio frequency identification (RFID), sensors, global positioning system (GPS), laser scanners and other information sensing equipment.
- RFID radio frequency identification
- GPS global positioning system
- laser scanners and other information sensing equipment.
- the terminal device may also be a wearable device.
- Wearable devices can also be called wearable smart devices. It is a general term for the application of wearable technology to intelligently design daily wear and develop wearable devices, such as glasses, gloves, watches, clothing and shoes.
- a wearable device is a portable device that is directly worn on the body or integrated into the user's clothes or accessories. Wearable devices are not only a hardware device, but also realize powerful functions through software support, data interaction, and cloud interaction.
- wearable smart devices include full-featured, large-sized, complete or partial functions that can be achieved without relying on smart phones, such as smart watches or smart glasses, and only focus on a certain type of application function, and need to cooperate with other devices such as smart phones.
- Use such as various smart bracelets, smart helmets, smart jewelry, etc. for physical sign monitoring.
- the base station in the embodiment of the present invention may be an access network (access network, AN) device, specifically refers to a device in the access network that communicates with wireless terminal devices through one or more cells at an air interface, or, for example, a V2X technology
- the network equipment in is a roadside unit (RSU).
- the base station can be used to convert received air frames and Internet Protocol (IP) packets to each other, and act as a router between the terminal device and the rest of the access network, where the rest of the access network can include an IP network.
- the RSU can be a fixed infrastructure entity supporting vehicle-to-everything (V2X) applications, and can exchange messages with other entities supporting V2X applications.
- the access network equipment can also coordinate the attribute management of the air interface.
- the access network equipment may include a long-term evolution (LTE) system or an evolved base station (NodeB or eNB or e-NodeB, evolutional NodeB) in a long term evolution-advanced (LTE-A) system. ), or it may also include the next generation node B (gNB) in the 5G new radio (NR) system, or it may also include the cloud access network (cloud radio access network, Cloud RAN) system Centralized unit (CU) and distributed unit (DU) are not limited in the embodiment of the present invention.
- LTE long-term evolution
- NodeB or eNB or e-NodeB, evolutional NodeB evolutional NodeB
- LTE-A long term evolution-advanced
- gNB next generation node B
- NR new radio
- Cloud RAN Cloud radio access network
- Centralized unit (CU) and distributed unit (DU) are not limited in the embodiment of the present invention.
- the first embodiment of the present invention provides a method for transmitting energy saving signals, which is applied to a base station, and the method includes the following steps:
- Step S101 Configure an energy-saving signal for a terminal device, where the energy-saving signal carries energy-saving information, and the energy-saving information is used to instruct the terminal device to receive a first configuration of at least one discontinuous DRX cycle, and the at least one DRX cycle includes at least one A first period and/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the The first configuration of the DRX cycle includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, the N, the K, and the Y All are integers greater than or equal to 1;
- Step S102 Send the energy saving signal to the terminal device.
- the energy saving signal in this embodiment may also be referred to as an energy saving channel, an energy saving signal/channel, or an energy saving configuration.
- the energy-saving signal carries energy-saving information.
- the energy-saving information can be at least one of the following information, including: cross-slot scheduling information, triggering reference signal transmission, channel state information (CSI), and partial bandwidth (bandwidth) partial, BWP)/secondary cell (secondary cell, Scell) switching information, multiple input multiple output (multiple input multiple output, MIMO) layer number adjustment/antenna number adjustment information, control resource set (CORESET), Search space and candidate position indication information, PDCCH monitoring period information, PDCCH skip indication information, etc.
- the energy-saving signal is based on PDCCH.
- the energy-saving signal in this embodiment may be obtained by redefining the information field based on the existing DCI format.
- the existing DCI format may be in the current standard
- the defined DCI format0 series, DCI-foramt1 series, DCI-format2 series, or the energy-saving signal is designed based on the new DCI format.
- the new DCI format refers to other DCI formats that do not include the above DCI format, or,
- the energy saving signal is designed based on sequence.
- step S101 is executed.
- the energy saving information in the embodiment of the present invention can indicate the first configuration of at least one DRX cycle of the terminal device.
- At least one DRX cycle in this embodiment may be the first cycle and/or the second cycle.
- the first period and the second period are long periods and/or short periods, that is, when the first period is a long period, the second period is a short period, and when the first period is a short period, the second period is a long period.
- the two cycles are different, or the first cycle is a long cycle, and the second cycle is also a long cycle.
- the first cycle and the second cycle are different, which can be due to different DRX parameters.
- the DRX cycle parameters are different, or the DRX ondurationtimer parameters are different, Or the inacitivity timer of DRX is different, or the offset of DRX is different.
- long cycle and short cycle are relative concepts, and it does not mean that the time length of each long cycle is fixed or the time length of each short cycle is fixed, for example, the time length of a cycle is greater than a preset threshold When determining that the period is a long period. For example, at least one DRX cycle includes five first cycles, and the first cycle at this time is a long cycle, then the five DRX cycles are all long cycles.
- the first configuration includes at least one of the maximum number of DRX cycles N, the maximum number of first cycles K, and the number Y of first cycles, and the N, the K, and the Y are all greater than or equal to An integer of 1.
- Table 1 shows multiple situations of the first configuration.
- the maximum number N of DRX cycles does not limit the number of the first cycle and the second cycle.
- the maximum number N of DRX cycles is used to indicate that the terminal device can have at most N DRX cycles before receiving the next energy-saving signal.
- the maximum number K of the first cycle only limits the number of first cycles that the terminal device can have before receiving the next energy saving signal, and does not limit the number of second cycles.
- the number Y of the first cycle is to limit the number of the first cycle before the terminal device receives the next energy saving signal to Y.
- the energy saving information is used to indicate the maximum N DRX after the energy saving signal sent by the base station to the terminal device this time Cycle, wherein the at most N DRX cycles include at least one of the first cycle and/or at least one of the second cycle, the number of DRX cycles indicated by the energy-saving signal is N1, and the base station communicates to all
- the number of DRX cycles indicated by the energy saving signal sent by the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N.
- the number of DRX cycles indicated by multiple energy-saving signals sent by a base station to the same terminal device may be the same or different. For example, if the base station sends energy-saving signals to the terminal device twice, the first configuration carried in the two energy-saving signals is the same. Including the maximum number of DRX cycles, where the maximum number carried by the first energy-saving signal is N1, and the maximum number carried by the second energy-saving signal is N2. N1 can be equal to N2, N can be greater than N2, and N1 can also be less than N2.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- the energy saving information is used to indicate a maximum of K first cycles after the energy saving signal sent by the base station this time
- the number of DRX cycles indicated by the energy-saving signal sent this time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 is the same or different, the K1 is less than or equal to the K, and the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time .
- the first configuration includes the maximum number of DRX cycles N and the number of first cycles Y, which means that the terminal device has at most N DRX cycles after receiving this energy-saving signal and there are Y One cycle.
- the maximum N DRX cycles may include or exclude the second cycle.
- the second cycle is included, the number of the second cycle is at most NY, and when the second cycle is not included, the first cycle is fixed Of Y.
- any two adjacent DRX cycles in at least one DRX cycle in the embodiment of the present invention are continuous in time or discontinuous in time.
- at least one DRX cycle includes 3 DRX cycles, which are cycle 1 to cycle 3.
- cycle 1 and cycle 2 are continuous in time, that is, cycle 2 is after the end of cycle 1 Starting time.
- period 2 and period 3 are not continuous in time, for example, there is a period of continuous reception between period 2 and period 3.
- any two energy saving signals sent by the base station to the terminal device include at least one first period and/or at least one second period.
- Any two energy-saving signals here are any two of all energy-saving signals sent by the base station to the same terminal device.
- the base station has sent a total of 4 energy-saving signals to the terminal device.
- Between the first energy-saving signal and the fourth energy-saving signal It also includes at least one first cycle and/or at least one second cycle. It should be noted that the configuration of at least one DRX cycle between every two energy-saving signals may be dynamically changed.
- the configuration of A first cycle is indicated between the first energy-saving signal and the second energy-saving signal
- the configuration of B first cycles is indicated between the second energy-saving signal and the third energy-saving signal
- a and B are both integers greater than or equal to 1
- A is not equal to B.
- C first-cycle configurations are indicated
- D first-cycle configurations are indicated, and both C and D are greater than An integer equal to 1, and C is not equal to D.
- the dynamic configuration in this embodiment may be based on timer or DRX configuration, and the timer is the physical layer or the MAC layer.
- the physical layer parameters include, but are not limited to, the length of time the terminal device receives data, the length of time the terminal device stops receiving data, or the processing capability of the terminal device.
- step S102 is executed.
- the method in this embodiment further includes sending the time offset or the maximum time offset corresponding to the energy saving signal to the terminal device and determining whether to send the energy saving signal.
- sending the time offset or the maximum time offset corresponding to the energy-saving signal to the terminal device may adopt the following methods:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or pre-defined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- a fixed time offset offset configured semi-statically by (Radio resource control, RRC) is supported.
- RRC Radio resource control
- the DRX configuration of an RRC signaling includes a short-period shortDRXcycle and a long-period longDRXcycle configuration.
- a fixed offset cannot match two different DRXcycles at the same time.
- Figure 2 shows the relationship between shortDRXcycle and longDRXcycle and offset. Among them, offset1 matches the service characteristics of longDRXcycle, offset2 matches the service characteristics of shortDRXcycle, and the value of offset1 is greater than the value of offset2.
- both shortDRXcycle and longDRXcycle use offset2
- because offset2 matches the service characteristics of shortDRXcycle that is, the UE in shortDRXcycle will not be in a deep sleep state, and the wake-up time of offset2 for the UE is short.
- the UE takes a long time to wake up, so that the use of offset2 will cause the UE to fail to wake up successfully, and the UE cannot normally receive data sent by the base station.
- both oshortDRXcycle and longDRXcycle use offset1
- the offset when switching to shortDRXcycle, the offset will appear in the active period DRX_on in the shortDRXcycle, that is, the UE will receive the offset when it is in the awake state, so that it cannot correctly indicate the arrival of the service and achieve energy saving .
- the service arrival and energy saving can be better indicated, and the effect of reducing the power consumption of the UE can be achieved.
- the candidate position at the sending moment is equal to an integer multiple of the time length of the Y first cycles;
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the Y first cycles, and the candidate position of the transmission time is located at the time before the activation period that is an integer multiple of the time length of the Y first cycles In the window; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position of the transmission time is located before the activation period that is an integer multiple of the time length of the maximum K first cycles Within the time window of; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position of the transmission time is located at a time before the active period that is an integer multiple of the time length of the maximum N DRX cycles In the window; or,
- the candidate location of the sending moment is located in the overlapping part of the time window of at least one activation period of the first period where the terminal device is currently located and the subsequent activation period of the terminal device at least the first period and/or the second period .
- the candidate position at the sending moment includes any one of the following situations, it is determined not to send or skip sending the energy-saving signal:
- the candidate position of the sending moment is located at the start moment, the end moment, or the first period of the first period; or,
- the candidate position of the sending moment is outside the time window before the activation period of the first cycle; or,
- the candidate position at the sending moment is within the first cycle, and the next DRX cycle indicated by the energy-saving signal this time is the second cycle; or,
- the candidate position of the sending moment is located in the overlapping part of the time window before the active period of the first cycle of the terminal device and the next DRX cycle of the terminal device, and the next DRX cycle is the first One cycle or second cycle.
- a DRX cycle includes inside active time (that is, the UE is in the awake state and becomes active) and outside active time (that is, the UE is in the dormant state, also called the inactive state).
- inside active time that is, the UE is in the awake state and becomes active
- outside active time that is, the UE is in the dormant state, also called the inactive state.
- the inactivity timer can be used to extend the active time of the UE so that the UE can continue to receive data.
- the energy-saving signal is a new PDCCH-based energy-saving signal in DCI format.
- the UE uses the packet service radio network temporary identifier (PS-RNTI) to detect the new one.
- PS-RNTI packet service radio network temporary identifier
- the energy-saving signal in the DCI format is an energy-saving signal in the traditional DCI format used in LTE when the UE is in an active state.
- the UE uses a radio network temporary identifier (RNTI) to detect the energy-saving signal in the traditional DCI format.
- Figure 3 shows a schematic diagram of the UE receiving energy-saving signals in NR.
- the UE receives the energy-saving signal in the traditional DCI format in the active state, and the UE receives the energy-saving signal in the new DCI format in the inactive state.
- Figures 4 and 5 show the situation where the UE receives the energy-saving signal when the UE has not completed data reception in the active state and the inactive timer extends the active time of the UE.
- different time windows are set to deal with the problem of signal overlap, so that the terminal device can accurately detect and receive the energy-saving signal and determine the configuration of the offset.
- step S102 When performing step S102, the following methods can be adopted:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- the length of the time window is the value of the first time offset.
- the DRX cycle can be the first cycle or the second cycle, but regardless of the first cycle or The first time offset of the second cycle at this time is the same.
- the first time offset corresponds to a long cycle. Even if the current DRX cycle is a short cycle, the first time offset here is still Corresponding to the long cycle.
- the length of the time window is equal to the value of the first time offset plus the length of the active period of the current DRX cycle.
- the second time offset in the current DRX cycle is set as the starting point.
- the end time of the current DRX cycle is the time window of the end point.
- the second embodiment of the present invention provides an energy-saving signal transmission method, which is applied to terminal equipment, and the method includes:
- the energy-saving signal carried energy-saving information
- the energy-saving information is used to indicate the terminal device at least a first configuration of a discontinuous reception DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1.
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the receiving the energy saving signal sent by the base station includes:
- the method before receiving the energy saving signal, the method further includes:
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the Y first cycles, and the candidate position for receiving the energy-saving signal is located at an integer multiple of the time length of the Y first cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position for receiving the energy-saving signal is located within the time length of the maximum K first cycles In the time window before the activation period of integer multiples; or,
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position for receiving the energy saving signal is located at an integer multiple of the time length of the maximum N DRX cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is located in a time window before at least one activation period of the first period where the terminal device is currently located and at least the subsequent activation period of the terminal device at least the first period and/or the second period The overlapping part.
- the candidate position for receiving the energy saving signal includes any one of the following situations, it is determined not to send or skip sending the energy saving signal:
- the candidate position for receiving the energy-saving signal is located at the start time, end time, or within the first period of the first period in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is outside the time window before the activation period of the first cycle in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is located in the first cycle, and the next DRX cycle indicated by the energy-saving signal is the second cycle; or,
- the candidate location for receiving the energy-saving signal is located in the overlapping part of the time window before the active period of the first cycle where the energy saving signal is currently located and the active period of the next DRX cycle of the self, and the next DRX cycle is the first cycle or The second cycle.
- the method before receiving the energy saving signal, the method further includes:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or predefined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- the receiving the energy saving signal sent by the base station includes:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- At least one of the first period and/or at least one of the second period is included between the terminal device receiving any two energy-saving signals sent by the base station.
- Embodiment 3 of the present invention provides a base station 60, including:
- the memory 601 is used to store instructions
- the processor 602 is configured to read instructions in the memory and execute the following process:
- the energy-saving signal carries energy-saving information
- the energy-saving information is used to instruct the terminal device to receive at least one first configuration of a discontinuous DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1;
- the memory 601 is connected to the processor 602, and the connection mode includes a wired connection and a wireless connection.
- the memory 601 stores instructions that can be executed by the processor 602, and the processor 602 executes the steps of the method described in the foregoing method embodiment by executing the instructions stored in the memory 601.
- the processor 602 body may include a central processing unit (CPU), an application specific integrated circuit (ASIC), and may be one or more integrated circuits for controlling program execution. It is a hardware circuit developed using a field programmable gate array (FPGA), which can be a baseband processor.
- CPU central processing unit
- ASIC application specific integrated circuit
- FPGA field programmable gate array
- the processor 602 may include at least one processing core.
- the memory 601 may include read only memory (ROM), random access memory (RAM), and disk storage.
- ROM read only memory
- RAM random access memory
- disk storage disk storage.
- the memory 601 is also used to store data required by the processor 602 during operation.
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the processor is used to:
- the processor before sending the energy saving signal to the terminal device, the processor is configured to:
- the candidate position at the sending moment is equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the Y first cycles, and the candidate position of the transmission time is located at the time before the activation period that is an integer multiple of the time length of the Y first cycles In the window; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position of the transmission time is located before the activation period that is an integer multiple of the time length of the maximum K first cycles Within the time window of; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position of the transmission time is located at a time before the active period that is an integer multiple of the time length of the maximum N DRX cycles In the window; or,
- the candidate location of the sending moment is located in the overlapping part of the time window of at least one activation period of the first period where the terminal device is currently located and the subsequent activation period of the terminal device at least the first period and/or the second period .
- the candidate position at the sending moment includes any one of the following situations, it is determined not to send or skip sending the energy-saving signal:
- the candidate position of the sending moment is located at the start moment, the end moment, or the first period of the first period; or,
- the candidate position of the sending moment is outside the time window before the activation period of the first cycle; or,
- the candidate position at the sending moment is within the first cycle, and the next DRX cycle indicated by the energy-saving signal this time is the second cycle; or,
- the candidate position of the sending moment is located in the overlapping part of the time window before the active period of the first cycle of the terminal device and the next DRX cycle of the terminal device, and the next DRX cycle is the first One cycle or second cycle.
- the processor before sending the energy saving signal to the terminal device, the processor is configured to:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or pre-defined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- the processor is used to:
- the preset time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- any two energy-saving signals sent by the base station to the terminal device include at least one of the first period and/or at least one of the second period.
- the fourth embodiment of the present invention provides a terminal device 70, including:
- the memory 701 is used to store instructions
- the processor 702 is configured to read instructions in the memory and execute the following process:
- the energy-saving signal carried energy-saving information
- the energy-saving information is used to indicate the terminal device at least a first configuration of a discontinuous reception DRX cycle
- the at least one DRX cycle includes at least one first cycle And/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period, the DRX period
- the first configuration includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, and the N, the K, and the Y are all greater than An integer equal to 1.
- the memory 701 is connected to the processor 702, and the connection mode includes a wired connection and a wireless connection.
- the memory 701 stores instructions that can be executed by the processor 702, and the processor 702 executes the steps of the method described in the foregoing method embodiment by executing the instructions stored in the memory 701.
- the processor 702 body may include a central processing unit (CPU), an application specific integrated circuit (ASIC), and may be one or more integrated circuits for controlling program execution. It is a hardware circuit developed using a field programmable gate array (FPGA), which can be a baseband processor.
- CPU central processing unit
- ASIC application specific integrated circuit
- FPGA field programmable gate array
- the processor 702 may include at least one processing core.
- the memory 701 may include a read only memory (ROM), a random access memory (RAM), and a disk memory.
- ROM read only memory
- RAM random access memory
- the memory 701 is also used to store data required by the processor 702 during operation.
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the receiving the energy saving signal sent by the base station includes:
- the processor before receiving the energy saving signal, the processor is configured to:
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the Y first cycles;
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles;
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the maximum K first periods;
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the Y first cycles;
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum K first cycles;
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles;
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the Y first cycles, and the candidate position for receiving the energy-saving signal is located at an integer multiple of the time length of the Y first cycles Within the time window before the activation period; or
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position for receiving the energy-saving signal is located within the time length of the maximum K first cycles Within the time window before the activation period that is an integer multiple; or
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position for receiving the energy saving signal is located at an integer multiple of the time length of the maximum N DRX cycles Within the time window before the activation period; or
- the candidate position for receiving the energy-saving signal is located in a time window before at least one activation period of the first period where the terminal device is currently located and at least the subsequent activation period of the terminal device at least the first period and/or the second period The overlapping part.
- the candidate position for receiving the energy saving signal includes any one of the following situations, it is determined not to send or skip sending the energy saving signal:
- the candidate position for receiving the energy-saving signal is located at the start time, end time, or within the first period of the first period in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is outside the time window before the activation period of the first cycle in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is located in the first cycle, and the next DRX cycle indicated by the energy-saving signal is the second cycle; or,
- the candidate location for receiving the energy-saving signal is located in the overlapping part of the time window before the active period of the first cycle where the energy saving signal is currently located and the active period of the next DRX cycle of the self, and the next DRX cycle is the first cycle or The second cycle.
- the processor before receiving the energy saving signal, the processor is configured to:
- time offset and the maximum time offset are pre-configured by the base station for the terminal device , where the time offset and the maximum time offset are pre-configured by the base station for the terminal device ,
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, or dynamically configured Or predefined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling.
- the processor is used to:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- At least one of the first period and/or at least one of the second period is included between the terminal device receiving any two energy-saving signals sent by the base station.
- Embodiment 5 of the present invention provides a base station 80, including:
- the configuration module 81 is configured to configure an energy-saving signal for a terminal device, the energy-saving signal carries energy-saving information, and the energy-saving information is used to indicate a first configuration of at least one discontinuous reception DRX cycle of the terminal device, the at least one DRX cycle Includes at least one first period and/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period ,
- the first configuration of the DRX cycle includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, the N, the K and The Y is an integer greater than or equal to 1;
- the sending module 82 is configured to send the energy saving signal to the terminal device.
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the sending the energy saving signal to the terminal device includes:
- the base station further includes:
- the determining module is configured to determine whether to send the energy-saving signal according to the candidate location at the time of sending the energy-saving signal and the information of the first period where the terminal device is currently located before sending the energy-saving signal to the terminal device , Wherein the candidate location at the sending moment includes any one of the following situations, then it is determined to send the energy-saving signal:
- the candidate position at the sending moment is equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position at the sending moment is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position at the sending moment is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the Y first cycles, and the candidate position of the transmission time is located at the time before the activation period that is an integer multiple of the time length of the Y first cycles In the window; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position of the transmission time is located before the activation period that is an integer multiple of the time length of the maximum K first cycles Within the time window of; or,
- the candidate position of the transmission time is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position of the transmission time is located at a time before the active period that is an integer multiple of the time length of the maximum N DRX cycles Inside the window; or
- the candidate location of the sending moment is located in the overlapping part of the time window of at least one activation period of the first period where the terminal device is currently located and the subsequent activation period of the terminal device at least the first period and/or the second period .
- the candidate position at the sending moment includes any one of the following situations, it is determined not to send or skip sending the energy-saving signal:
- the candidate position of the sending moment is located at the start moment, the end moment, or the first period of the first period; or,
- the candidate position of the sending moment is outside the time window before the activation period of the first cycle; or,
- the candidate position at the sending moment is within the first cycle, and the next DRX cycle indicated by the energy-saving signal this time is the second cycle; or,
- the candidate position of the sending moment is located in the overlapping part of the time window before the active period of the first cycle of the terminal device and the next DRX cycle of the terminal device, and the next DRX cycle is the first One cycle or second cycle.
- the configuration module is also used to:
- the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured, semi-statically configured, dynamically configured, or predefined, the time offset and the maximum time offset are configured by high-level signaling, and the high-level signaling includes RRC signaling or MAC-CE signaling.
- the sending module is specifically used for:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- any two energy-saving signals sent by the base station to the terminal device include at least one of the first period and/or at least one of the second period.
- the sixth embodiment of the present invention provides a terminal device 90, including:
- the receiving module 91 is configured to receive an energy-saving signal sent by a base station, where the energy-saving signal carries energy-saving information, and the energy-saving information is used to indicate the first configuration of at least one discontinuous reception DRX cycle of the terminal device, the at least one DRX cycle Including at least one first period and/or at least one second period, wherein the first period and the second period are long periods and/or short periods, and the first period is different from the second period,
- the first configuration of the DRX cycle includes at least one of the maximum number N of the DRX cycle, the maximum number K of the first cycle, and the number Y of the first cycle, the N, the K, and the The Y is an integer greater than or equal to 1.
- the energy saving information is used to indicate the maximum number of N after the energy saving signal sent by the base station to the terminal device this time.
- the maximum N DRX cycles include at least one of the first cycle and/or at least one of the second cycle
- the number of DRX cycles indicated by the energy saving signal is N1
- the base station last time The number of DRX cycles indicated by the energy-saving signal sent to the terminal device is N2, the N1 and the N2 are the same or different, the N1 is less than or equal to the N, and the N2 is less than or equal to the N;
- the energy saving information is used to indicate at most K first cycles after the energy saving signal sent by the base station this time;
- the number of DRX cycles indicated by the energy-saving signal sent for the second time is K1
- the number of DRX cycles indicated by the energy-saving signal sent to the terminal device by the base station last time is K2
- the K1 and the K2 are the same or different .
- the K1 is less than or equal to the K
- the K2 is less than or equal to the K;
- the energy saving information is used to indicate the configuration of Y first cycles after the energy saving signal sent by the base station this time.
- the receiving module is also used for:
- the terminal device further includes:
- the determining module is configured to determine whether to receive the energy-saving signal according to the candidate position for receiving the energy-saving signal and the information of the first period in which the energy-saving signal is received, wherein the energy-saving signal is received If the candidate location includes any one of the following situations, it is determined to receive the energy-saving signal:
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the Y first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum K first cycles; or,
- the candidate position for receiving the energy-saving signal is within a time window equal to an integer multiple of the time length of the maximum N DRX cycles; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the Y first cycles, and the candidate position for receiving the energy-saving signal is located at an integer multiple of the time length of the Y first cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is equal to an integer multiple of the time length of the maximum K first cycles, and the candidate position for receiving the energy-saving signal is located within the time length of the maximum K first cycles In the time window before the activation period of integer multiples; or,
- the candidate position for receiving the energy saving signal is equal to an integer multiple of the time length of the maximum N DRX cycles, and the candidate position for receiving the energy saving signal is located at an integer multiple of the time length of the maximum N DRX cycles Within the time window before the activation period; or,
- the candidate position for receiving the energy-saving signal is located in a time window before at least one activation period of the first period where the terminal device is currently located and at least the subsequent activation period of the terminal device at least the first period and/or the second period The overlapping part.
- the candidate position for receiving the energy saving signal includes any one of the following situations, it is determined not to send or skip sending the energy saving signal:
- the candidate position for receiving the energy-saving signal is located at the start time, end time, or within the first period of the first period in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is outside the time window before the activation period of the first cycle in which it is currently located; or,
- the candidate position for receiving the energy-saving signal is located in the first cycle, and the next DRX cycle indicated by the energy-saving signal is the second cycle; or,
- the candidate location for receiving the energy-saving signal is located in the overlapping part of the time window before the active period of the first cycle where the energy saving signal is currently located and the active period of the next DRX cycle of the self, and the next DRX cycle is the first cycle or The second cycle.
- the receiving module is also used for:
- the time offset and the maximum time offset are the The base station is configured for the terminal device in advance, the time offset and the maximum time offset are both integers greater than or equal to 0, and the time offset and the maximum time offset are statically configured , Semi-statically configured, dynamically configured, or predefined, the time offset and the maximum time offset are configured by higher layer signaling, and the higher layer signaling includes RRC signaling or MAC-CE signaling make.
- the receiving module is specifically configured to:
- the time window includes:
- the first time offset is used to indicate the sending position of the energy saving signal in the current DRX cycle
- the second time offset is used to indicate the sending of the energy saving signal in the DRX cycle after the current DRX cycle Location, the current DRX cycle is the first cycle or the second cycle.
- any two adjacent DRX cycles in the at least one DRX cycle are continuous in time or discontinuous in time.
- the first configuration of the DRX cycle when the first configuration of the DRX cycle includes the maximum number N of the at least one DRX cycle, the first configuration of the DRX cycle further includes:
- At least one of the first period and/or at least one of the second period is included between the terminal device receiving any two energy-saving signals sent by the base station.
- the seventh embodiment of the present invention provides a computer-readable storage medium, including:
- the computer-readable storage medium stores computer instructions, and when the computer instructions are executed by a processor, the steps of the method described in the first embodiment are implemented.
- the eighth embodiment of the present invention provides a computer-readable storage medium, including:
- the computer-readable storage medium stores computer instructions, and when the computer instructions are executed by the processor, the steps of the method described in the second embodiment are implemented.
- the base station may configure an energy-saving signal for the terminal device.
- the energy-saving signal carries energy-saving information.
- the energy-saving information can indicate the first configuration of at least one DRX cycle of the terminal device.
- the at least one DRX cycle includes at least one first cycle and/or At least one second cycle, the first cycle and the second cycle are long cycles and/or short cycles, and the first cycle is different from the second cycle, the first configuration of the DRX cycle includes the maximum number of DRX cycles N, the first cycle At least one of the maximum number K and the number Y of the first cycle, N, K, and Y are all integers greater than or equal to 1, so that the energy-saving signal can indicate to the terminal device for any combination of DRX cycles of different lengths, and solve
- the technical problem in the prior art is how to configure the number of DRX cycles indicated by the energy-saving signal, and achieve the technical effects of improving the energy-saving effect, reducing the transmission delay, and improving the performance of the terminal device.
- the embodiments of the present application can be provided as methods, systems, or computer program products. Therefore, the present 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, optical storage, etc.) containing computer-usable program codes.
- a computer-usable storage media including but not limited to disk storage, 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 functions specified in a flow or multiple flows in the flowchart and/or a block or multiple blocks in the block diagram.
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Claims (44)
- 一种节能信号的传输方法,其特征在于,应用于基站,所述方法包括:为终端设备配置节能信号,所述节能信号携带节能信息,所述节能信息用于指示所述终端设备至少一个非连续接收DRX周期的第一配置,所述至少一个DRX周期包括至少一个第一周期和/或至少一个第二周期,其中,所述第一周期和所述第二周期为长周期和/或短周期,且所述第一周期与所述第二周期不同,所述DRX周期的第一配置包括所述DRX周期的最大数量N、所述第一周期的最大数量K和所述第一周期的数量Y中的至少一个,所述N、所述K和所述Y均为大于等于1的整数;向所述终端设备发送所述节能信号。
- 如权利要求1所述的方法,其特征在于,所述DRX周期的第一配置包括所述DRX周期的最大数量N时,所述节能信息用于指示所述基站本次向所述终端设备发送的所述节能信号之后的最多N个DRX周期,其中,所述最多N个DRX周期包括至少一个所述第一周期和/或至少一个所述第二周期,所述节能信号指示的DRX周期个数为N1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为N2,所述N1和所述N2相同或不同,所述N1小于或等于所述N,所述N2小于或等于所述N;所述DRX周期的第一配置包括所述第一周期的最大数量K时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的最多K个第一周期;所述本次发送的所述节能信号指示的DRX周期个数为K1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为K2,所述K1和所述K2相同或不同,所述K1小于或等于所述K,所述K2小于或等于所述K;所述DRX周期的第一配置包括所述第一周期的数量Y时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的Y个第一周期的配置。
- 如权利要求1所述的方法,其特征在于,所述向所述终端设备发送所述节能信号,包括:在所述终端设备的激活时刻之前,向所述终端设备发送所述节能信号;或者,在所述终端设备的激活时刻,向所述终端设备发送所述节能信号;或者,在所述终端设备处于激活状态时,向所述终端设备发送所述节能信号。
- 如权利要求1-3中任一项所述的方法,其特征在于,在向所述终端设备发送所述节能信号之前,所述方法还包括:根据所述节能信号的发送时刻的候选位置与所述终端设备当前所在的第一周期的信息,确定是否发送所述节能信号,其中,所述发送时刻的候选位置包括下列情况中的任意一个,则确定发送所述节能信号:所述发送时刻的候选位置等于所述Y个第一周期的时间长度的整数倍;或所述发送时刻的候选位置等于所述最大N个DRX周期的时间长度的整数倍;或所述发送时刻的候选位置等于所述最大K个第一周期的时间长度的整数倍;或所述发送时刻的候选位置位于等于所述Y个第一周期的时间长度的整数倍的时间窗口内;或所述发送时刻的候选位置位于等于所述最大K个第一周期的时间长度的整数倍的时间窗口内;或所述发送时刻的候选位置位于等于所述最大N个DRX周期的时间长度的整数倍的时间窗口内;或所述发送时刻的候选位置等于所述Y个第一周期的时间长度的整数倍,且所述发送时刻的候选位置位于所述Y个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述发送时刻的候选位置等于所述最大K个第一周期的时间长度的整数倍,且所述发送时刻的候选位置位于所述最大K个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述发送时刻的候选位置等于所述最大N个DRX周期的时间长度的整数倍,且所述发送时刻的候选位置位于所述最大N个DRX周期的时间长度的整数倍的激活期之前的时间窗口内;或所述发送时刻的候选位置位于所述终端设备当前所在的至少一个第一周期的激活期与所述终端设备的后续至少第一周期和/或第二周期的激活期之前的时间窗口的重叠部分。
- 如权利要求4所述的方法,其特征在于,所述发送时刻的候选位置包括下列情况中的任意一个,则确定不发送或跳过发送所述节能信号:所述发送时刻的候选位置位于第一周期的开始时刻、结束时刻或第一周期内;或者,所述发送时刻的候选位置位于第一周期的激活期之前的时间窗口之外;或者,所述发送时刻的候选位置位于第一周期内,且所述本次节能信号指示的下一个DRX周期为第二周期;或者,所述发送时刻的候选位置位于所述终端设备当前所在的第一周期的激活期与所述终端设备的下一个DRX周期的激活期之前的时间窗口的重叠部分,所述下一个DRX周期为第一周期或第二周期。
- 如权利要求1-3或5中任一项所述的方法,其特征在于,在向所述终端设备发送所述节能信号之前,所述方法还包括:向所述终端设备发送与至少一个节能信号对应的时间偏移量或最大时间偏移量,所述时间偏移量和所述最大时间偏移量是所述基站预先为所述终端设备配置的,所述时间偏移量和所述最大时间偏移量均为大于等于0的整数,所述时间偏移量和所述最大时间偏移量为静态配置的、半静态配置的、动态配置的、或预定义的,所述时间偏移量和所述最大时间偏移量为高层信令配置的,所述高层信令包括RRC信令或MAC-CE信令。
- 如权利要求4所述的方法,其特征在于,所述向所述终端设备发送所述节能信号,包括:确定所述节能信号的发送时刻的候选位置位于下列任意一个时间窗口内时,向所述终端设备发送所述节能信号;其中,所述时间窗口,包括:以当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的开始时刻为终点的时间窗口,所述当前DRX周期为所述第一周期或第二周期;或者,以所述当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的结束时刻为终点的时间窗口;或者,以所述当前DRX周期内的第二时间偏移量为起点、所述当前DRX周期的结束时刻为终点的时间窗口;其中,所述第一时间偏移量用来指示所述当前DRX周期的节能信号的发送位置,所述第二时间偏移量用来指示所述当前DRX周期之后的DRX周期的节能信号的发送位置,所述当前DRX周期为所述第一周期或所述第二周期。
- 如权利要求1-3、5或7中任一项所述的方法,其特征在于,所述至少一个DRX周期中的任意两个相邻的DRX周期在时间上连续或在时间上不连续。
- 如权利要求1-3、5或7中任一项所述的方法,其特征在于,在所述DRX周期的第一配置包括所述至少一个DRX周期的最大数量N时,所述DRX周期的第一配置还包括:所述第一周期的最大数量M1和所述第二周期的最大数量M2,所述M1和所述M2均为大于等于零的整数,且M1+M2=N。
- 如权利要求1-3、5或7中任一项所述的方法,其特征在于,所述基站向所述终端设备发送的任意两个节能信号之间包括至少一个所述第一周期和/或至少一个所述第二周期。
- 一种节能信号的传输方法,其特征在于,应用于终端设备,所述方法包括:接收基站发送的节能信号,所述节能信号携带节能信息,所述节能信息 用于指示所述终端设备至少一个非连续接收DRX周期的第一配置,所述至少一个DRX周期包括至少一个第一周期和/或至少一个第二周期,其中,所述第一周期,和所述第二周期为长周期和/或短周期,且所述第一周期与第二周期不同,所述DRX周期的第一配置包括所述DRX周期的最大数量N、所述第一周期的最大数量K和所述第一周期的数量Y中的至少一个,所述N、所述K和所述Y均为大于等于1的整数。
- 如权利要求11所述的方法,其特征在于,所述DRX周期的第一配置包括所述DRX周期的最大数量N时,所述节能信息用于指示所述基站本次向所述终端设备发送的所述节能信号之后的最多N个DRX周期,其中,所述最多N个DRX周期包括至少一个所述第一周期和/或至少一个所述第二周期,所述节能信号指示的DRX周期个数为N1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为N2,所述N1和所述N2相同或不同,所述N1小于或等于所述N,所述N2小于或等于所述N;所述DRX周期的第一配置包括所述第一周期的最大数量K时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的最多K个第一周期;所述本次发送的所述节能信号指示的DRX周期个数为K1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为K2,所述K1和所述K2相同或不同,所述K1小于或等于所述K,所述K2小于或等于所述K;所述DRX周期的第一配置包括所述第一周期的数量Y时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的Y个第一周期的配置。
- 如权利要求11所述的方法,其特征在于,所述接收基站发送的节能信号,包括:在所述终端设备的激活时刻之前,接收所述节能信号;或者,在所述终端设备的激活时刻,接收所述节能信号;或者,在所述终端设备处于激活状态时,接收所述节能信号。
- 如权利要求11-13中任一项所述的方法,其特征在于,在接收所述节能信号之前,所述方法还包括:根据接收所述节能信号的候选位置与自身当前所在的第一周期的信息,确定是否接收所述节能信号,其中,所述接收所述节能信号的候选位置包括下列情况中的任意一个,则确定接收所述节能信号:所述接收所述节能信号的候选位置等于所述Y个第一周期的时间长度的整数倍;或所述接收所述节能信号的候选位置等于所述最大N个DRX周期的时间长度的整数倍;或所述接收所述节能信号的候选位置等于所述最大K个第一周期的时间长度的整数倍;或所述接收所述节能信号的候选位置位于等于所述Y个第一周期的时间长度的整数倍的时间窗口内;或所述接收所述节能信号的候选位置位于等于所述最大K个第一周期的时间长度的整数倍的时间窗口内;或所述接收所述节能信号的候选位置位于等于所述最大N个DRX周期的时间长度的整数倍的时间窗口内;或所述接收所述节能信号的候选位置等于所述Y个第一周期的时间长度的整数倍,且所述接收所述节能信号的候选位置位于所述Y个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述接收所述节能信号的候选位置等于所述最大K个第一周期的时间长度的整数倍,且所述接收所述节能信号的候选位置位于所述最大K个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述接收所述节能信号的候选位置等于所述最大N个DRX周期的时间长度的整数倍,且所述接收所述节能信号的候选位置位于所述最大N个DRX周期的时间长度的整数倍的激活期之前的时间窗口内;或所述接收所述节能信号的候选位置位于所述终端设备当前所在的至少一个第一周期的激活期与所述终端设备的后续至少第一周期和/或第二周期的激活期之前的时间窗口的重叠部分。
- 如权利要求14所述的方法,其特征在于,所述接收所述节能信号的候选位置包括下列情况中的任意一个,则确定不发送或跳过发送所述节能信号:所述接收所述节能信号的候选位置位于自身当前所在的第一周期的开始时刻、结束时刻或第一周期内;或者,所述接收所述节能信号的候选位置位于自身当前所在的第一周期的激活期之前的时间窗口之外;或者,所述接收所述节能信号的候选位置位于第一周期内,且所述节能信号指示的下一个DRX周期为第二周期;或者,所述接收所述节能信号的候选位置位于自身当前所在的第一周期的激活期与自身的下一个DRX周期的激活期之前的时间窗口的重叠部分,所述下一个DRX周期为第一周期或第二周期。
- 如权利要求11-13或15中任一项所述的方法,其特征在于,在接收所述节能信号之前,所述方法还包括:接收所述基站发送的、与至少一个节能信号对应的时间偏移量或最大时间偏移量,所述时间偏移量和所述最大时间偏移量是所述基站预先为所述终端设备配置的,所述时间偏移量和所述最大时间偏移量均为大于等于0的整数,所述时间偏移量和所述最大时间偏移量为静态配置的、半静态配置的、动态配置的、或预定义的,所述时间偏移量和所述最大时间偏移量为高层信令配置的,所述高层信令包括RRC信令或MAC-CE信令。
- 如权利要求14所述的方法,其特征在于,所述接收基站发送的节能信号,包括:确定接收所述节能信号的候选位置位于下列任意一个时间窗口内时,接收所述节能信号;其中,所述时间窗口,包括:以当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的开始时刻为终点的时间窗口,所述当前DRX周期为所述第一 周期或第二周期;或者,以所述当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的结束时刻为终点的时间窗口;或者,以所述当前DRX周期内的第二时间偏移量为起点、所述当前DRX周期的结束时刻为终点的时间窗口;其中,所述第一时间偏移量用来指示所述当前DRX周期的节能信号的发送位置,所述第二时间偏移量用来指示所述当前DRX周期之后的DRX周期的节能信号的发送位置,所述当前DRX周期为所述第一周期或所述第二周期。
- 如权利要求11-13、15或17中任一项所述的方法,其特征在于,所述至少一个DRX周期中的任意两个相邻的DRX周期在时间上连续或在时间上不连续。
- 如权利要求11-13、15或17中任一项所述的方法,其特征在于,在所述DRX周期的第一配置包括所述至少一个DRX周期的最大数量N时,所述DRX周期的第一配置还包括:所述第一周期的最大数量M1和所述第二周期的最大数量M2,所述M1和所述M2均为大于等于零的整数,且M1+M2=N。
- 如权利要求11-13、15或17中任一项所述的方法,其特征在于,所述终端设备接收所述基站发送的任意两个节能信号之间包括至少一个所述第一周期和/或至少一个所述第二周期。
- 一种基站,其特征在于,包括:存储器,用于存储指令;处理器,用于读取所述存储器中的指令,执行下列过程:为终端设备配置节能信号,所述节能信号携带节能信息,所述节能信息用于指示所述终端设备至少一个非连续接收DRX周期的第一配置,所述至少一个DRX周期包括至少一个第一周期和/或至少一个第二周期,其中,所述第一周期,和所述第二周期为长周期和/或短周期,且所述第一周期与第二周期不同,所述DRX周期的第一配置包括所述DRX周期的最大数量N、所述第 一周期的最大数量K和所述第一周期的数量Y中的至少一个,所述N、所述K和所述Y均为大于等于1的整数;向所述终端设备发送所述节能信号。
- 如权利要求21所述的基站,其特征在于,所述DRX周期的第一配置包括所述DRX周期的最大数量N时,所述节能信息用于指示所述基站本次向所述终端设备发送的所述节能信号之后的最多N个DRX周期,其中,所述最多N个DRX周期包括至少一个所述第一周期和/或至少一个所述第二周期,所述节能信号指示的DRX周期个数为N1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为N2,所述N1和所述N2相同或不同,所述N1小于或等于所述N,所述N2小于或等于所述N;所述DRX周期的第一配置包括所述第一周期的最大数量K时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的最多K个第一周期;所述本次发送的所述节能信号指示的DRX周期个数为K1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为K2,所述K1和所述K2相同或不同,所述K1小于或等于所述K,所述K2小于或等于所述K;所述DRX周期的第一配置包括所述第一周期的数量Y时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的Y个第一周期的配置。
- 如权利要求21所述的基站,其特征在于,所述处理器用于:在所述终端设备的激活时刻之前,向所述终端设备发送所述节能信号;或者,在所述终端设备的激活时刻,向所述终端设备发送所述节能信号;或者,在所述终端设备处于激活状态时,向所述终端设备发送所述节能信号。
- 如权利要求21-23中任一项所述的基站,其特征在于,在向所述终端设备发送所述节能信号之前,所述处理器用于:根据所述节能信号的发送时刻的候选位置与所述终端设备当前所在的第一周期的信息,确定是否发送所述节能信号,其中,所述发送时刻的候选位置包括下列情况中的任意一个,则确定发送所述节能信号:所述发送时刻的候选位置等于所述Y个第一周期的时间长度的整数倍;或所述发送时刻的候选位置等于所述最大N个DRX周期的时间长度的整数倍;或所述发送时刻的候选位置等于所述最大K个第一周期的时间长度的整数倍;或所述发送时刻的候选位置位于等于所述Y个第一周期的时间长度的整数倍的时间窗口内;或所述发送时刻的候选位置位于等于所述最大K个第一周期的时间长度的整数倍的时间窗口内;或所述发送时刻的候选位置位于等于所述最大N个DRX周期的时间长度的整数倍的时间窗口内;或所述发送时刻的候选位置等于所述Y个第一周期的时间长度的整数倍,且所述发送时刻的候选位置位于所述Y个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述发送时刻的候选位置等于所述最大K个第一周期的时间长度的整数倍,且所述发送时刻的候选位置位于所述最大K个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述发送时刻的候选位置等于所述最大N个DRX周期的时间长度的整数倍,且所述发送时刻的候选位置位于所述最大N个DRX周期的时间长度的整数倍的激活期之前的时间窗口内;或所述发送时刻的候选位置位于所述终端设备当前所在的至少一个第一周期的激活期与所述终端设备的后续至少第一周期和/或第二周期的激活期之前的时间窗口的重叠部分。
- 如权利要求24所述的基站,其特征在于,所述发送时刻的候选位置包括下列情况中的任意一个,则确定不发送或跳过发送所述节能信号:所述发送时刻的候选位置位于第一周期的开始时刻、结束时刻或第一周 期内;或者,所述发送时刻的候选位置位于第一周期的激活期之前的时间窗口之外;或者,所述发送时刻的候选位置位于第一周期内,且所述本次节能信号指示的下一个DRX周期为第二周期;或者,所述发送时刻的候选位置位于所述终端设备当前所在的第一周期的激活期与所述终端设备的下一个DRX周期的激活期之前的时间窗口的重叠部分,所述下一个DRX周期为第一周期或第二周期。
- 如权利要求21-23或25中任一项所述的基站,其特征在于,在向所述终端设备发送所述节能信号之前,所述处理器用于:向所述终端设备发送与至少一个节能信号对应的时间偏移量或最大时间偏移量,所述时间偏移量和所述最大时间偏移量是所述基站预先为所述终端设备配置的,所述时间偏移量和所述最大时间偏移量均为大于等于0的整数,所述时间偏移量和所述最大时间偏移量为静态配置的、半静态配置的、动态配置的、或预定义的,所述时间偏移量和所述最大时间偏移量为高层信令配置的,所述高层信令包括RRC信令或MAC-CE信令。
- 如权利要求26所述的基站,其特征在于,所述处理器用于:确定所述节能信号的发送时刻位于预设的时间窗口内时,向所述终端设备发送所述节能信号;其中,所述预设的时间窗口,包括:以当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的开始时刻为终点的时间窗口,所述当前DRX周期为所述第一周期或第二周期;或者,以所述当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的结束时刻为终点的时间窗口;或者,以所述当前DRX周期内的第二时间偏移量为起点、所述当前DRX周期的结束时刻为终点的时间窗口;其中,所述第一时间偏移量用来指示所述当前DRX周期的节能信号的发送位置,所述第二时间偏移量用来指示所述当前DRX周期之后的DRX周期的节能信号的发送位置,所述当前DRX周期为所述第一周期或所述第二周期。
- 如权利要求21-23、25或27中任一项所述的基站,其特征在于,所述至少一个DRX周期中的任意两个相邻的DRX周期在时间上连续或在时间上不连续。
- 如权利要求21-23、25或27中任一项所述的基站,其特征在于,在所述DRX周期的第一配置包括所述至少一个DRX周期的最大数量N时,所述DRX周期的第一配置还包括:所述第一周期的最大数量M1和所述第二周期的最大数量M2,所述M1和所述M2均为大于等于零的整数,且M1+M2=N。
- 如权利要求21-23、25或27中任一项所述的基站,其特征在于,所述基站向所述终端设备发送的任意两个节能信号之间包括至少一个所述第一周期和/或至少一个所述第二周期。
- 一种终端设备,其特征在于,包括:存储器,用于存储指令;处理器,用于读取所述存储器中的指令,执行下列过程:接收基站发送的节能信号,所述节能信号携带节能信息,所述节能信息用于指示所述终端设备至少一个非连续接收DRX周期的第一配置,所述至少一个DRX周期包括至少一个第一周期和/或至少一个第二周期,其中,所述第一周期,和所述第二周期为长周期和/或短周期,且所述第一周期与第二周期不同,所述DRX周期的第一配置包括所述DRX周期的最大数量N、所述第一周期的最大数量K和所述第一周期的数量Y中的至少一个,所述N、所述K和所述Y均为大于等于1的整数。
- 如权利要求31所述的终端设备,其特征在于,所述DRX周期的第一配置包括所述DRX周期的最大数量N时,所述节能信息用于指示所述基站本次向所述终端设备发送的所述节能信号之后的最多N个DRX周期,其中, 所述最多N个DRX周期包括至少一个所述第一周期和/或至少一个所述第二周期,所述节能信号指示的DRX周期个数为N1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为N2,所述N1和所述N2相同或不同,所述N1小于或等于所述N,所述N2小于或等于所述N;所述DRX周期的第一配置包括所述第一周期的最大数量K时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的最多K个第一周期;所述本次发送的所述节能信号指示的DRX周期个数为K1,所述基站上一次向所述终端设备发送的节能信号指示的DRX的周期个数为K2,所述K1和所述K2相同或不同,所述K1小于或等于所述K,所述K2小于或等于所述K;所述DRX周期的第一配置包括所述第一周期的数量Y时,所述节能信息用于指示所述基站本次发送的所述节能信号之后的Y个第一周期的配置。
- 如权利要求31所述的终端设备,其特征在于,所述接收基站发送的节能信号,包括:在所述终端设备的激活时刻之前,接收所述节能信号;或者,在所述终端设备的激活时刻,接收所述节能信号;或者,在所述终端设备处于激活状态时,接收所述节能信号。
- 如权利要求31-33中任一项所述的终端设备,其特征在于,在接收所述节能信号之前,所述处理器用于:根据接收所述节能信号的候选位置与自身当前所在的第一周期的信息,确定是否接收所述节能信号,其中,所述接收所述节能信号的候选位置包括下列情况中的任意一个,则确定接收所述节能信号:所述接收所述节能信号的候选位置等于所述Y个第一周期的时间长度的整数倍;或所述接收所述节能信号的候选位置等于所述最大N个DRX周期的时间长度的整数倍;或所述接收所述节能信号的候选位置等于所述最大K个第一周期的时间长度的整数倍;或所述接收所述节能信号的候选位置位于等于所述Y个第一周期的时间长度的整数倍的时间窗口内;或所述接收所述节能信号的候选位置位于等于所述最大K个第一周期的时间长度的整数倍的时间窗口内;或所述接收所述节能信号的候选位置位于等于所述最大N个DRX周期的时间长度的整数倍的时间窗口内;或所述接收所述节能信号的候选位置等于所述Y个第一周期的时间长度的整数倍,且所述接收所述节能信号的候选位置位于所述Y个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述接收所述节能信号的候选位置等于所述最大K个第一周期的时间长度的整数倍,且所述接收所述节能信号的候选位置位于所述最大K个第一周期的时间长度的整数倍的激活期之前的时间窗口内;或所述接收所述节能信号的候选位置等于所述最大N个DRX周期的时间长度的整数倍,且所述接收所述节能信号的候选位置位于所述最大N个DRX周期的时间长度的整数倍的激活期之前的时间窗口内;或所述接收所述节能信号的候选位置位于所述终端设备当前所在的至少一个第一周期的激活期与所述终端设备的后续至少第一周期和/或第二周期的激活期之前的时间窗口的重叠部分。
- 如权利要求34所述的终端设备,其特征在于,所述接收所述节能信号的候选位置包括下列情况中的任意一个,则确定不发送或跳过发送所述节能信号:所述接收所述节能信号的候选位置位于自身当前所在的第一周期的开始时刻、结束时刻或第一周期内;或者,所述接收所述节能信号的候选位置位于自身当前所在的第一周期的激活期之前的时间窗口之外;或者,所述接收所述节能信号的候选位置位于第一周期内,且所述节能信号指示的下一个DRX周期为第二周期;或者,所述接收所述节能信号的候选位置位于自身当前所在的第一周期的激活期与自身的下一个DRX周期的激活期之前的时间窗口的重叠部分,所述下一个DRX周期为第一周期或第二周期。
- 如权利要求31-33或35中任一项所述的终端设备,其特征在于,在接收所述节能信号之前,所述处理器用于:接收所述基站发送的、与至少一个节能信号对应的时间偏移量或最大时间偏移量,所述时间偏移量和所述最大时间偏移量是所述基站预先为所述终端设备配置的,所述时间偏移量和所述最大时间偏移量均为大于等于0的整数,所述时间偏移量和所述最大时间偏移量为静态配置的、半静态配置的、动态配置的、或预定义的,所述时间偏移量和所述最大时间偏移量为高层信令配置的,所述高层信令包括RRC信令或MAC-CE信令。
- 如权利要求36所述的终端设备,其特征在于,所述处理器用于:确定接收所述节能信号的候选位置位于下列任意一个时间窗口内时,接收所述节能信号;其中,所述时间窗口,包括:以当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的开始时刻为终点的时间窗口,所述当前DRX周期为所述第一周期或第二周期;或者,以所述当前DRX周期的激活期之前的第一时间偏移量为起点、所述当前DRX周期的激活期的结束时刻为终点的时间窗口;或者,以所述当前DRX周期内的第二时间偏移量为起点、所述当前DRX周期的结束时刻为终点的时间窗口;其中,所述第一时间偏移量用来指示所述当前DRX周期的节能信号的发送位置,所述第二时间偏移量用来指示所述当前DRX周期之后的DRX周期的节能信号的发送位置,所述当前DRX周期为所述第一周期或所述第二周期。
- 如权利要求31-33、35或37中任一项所述的终端设备,其特征在于,所述至少一个DRX周期中的任意两个相邻的DRX周期在时间上连续或在时 间上不连续。
- 如权利要求31-33、35或37中任一项所述的终端设备,其特征在于,在所述DRX周期的第一配置包括所述至少一个DRX周期的最大数量N时,所述DRX周期的第一配置还包括:所述第一周期的最大数量M1和所述第二周期的最大数量M2,所述M1和所述M2均为大于等于零的整数,且M1+M2=N。
- 如权利要求31-33、35或37中任一项所述的终端设备,其特征在于,所述终端设备接收所述基站发送的任意两个节能信号之间包括至少一个所述第一周期和/或至少一个所述第二周期。
- 一种基站,其特征在于,包括:配置模块,用于为终端设备配置节能信号,所述节能信号携带节能信息,所述节能信息用于指示所述终端设备至少一个非连续接收DRX周期的第一配置,所述至少一个DRX周期包括至少一个第一周期和/或至少一个第二周期,其中,所述第一周期,和所述第二周期为长周期和/或短周期,且所述第一周期与第二周期不同,所述DRX周期的第一配置包括所述DRX周期的最大数量N、所述第一周期的最大数量K和所述第一周期的数量Y中的至少一个,所述N、所述K和所述Y均为大于等于1的整数;发送模块,用于向所述终端设备发送所述节能信号。
- 一种终端设备,其特征在于,包括:接收模块,用于接收基站发送的节能信号,所述节能信号携带节能信息,所述节能信息用于指示所述终端设备至少一个非连续接收DRX周期的第一配置,所述至少一个DRX周期包括至少一个第一周期和/或至少一个第二周期,其中,所述第一周期,和所述第二周期为长周期和/或短周期,且所述第一周期与第二周期不同,所述DRX周期的第一配置包括所述DRX周期的最大数量N、所述第一周期的最大数量K和所述第一周期的数量Y中的至少一个,所述N、所述K和所述Y均为大于等于1的整数。
- 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 上存储有计算机指令,当所述计算机指令被处理器执行时,实现如权利要求1-10中任一项所述的方法的步骤。
- 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上存储有计算机指令,当所述计算机指令被处理器执行时,实现如权利要求11-20中任一项所述的方法的步骤。
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| US12289788B2 (en) * | 2019-06-18 | 2025-04-29 | Telefonaktiebolaget Lm Ericsson (Publ) | Adaptation of active-time PDCCH monitoring using short discontinuous reception (DRX) |
| CN113543235B (zh) * | 2020-04-14 | 2024-11-19 | 华为技术有限公司 | Drx模式的确定方法及通信装置 |
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| WO2023065256A1 (zh) * | 2021-10-21 | 2023-04-27 | 北京小米移动软件有限公司 | 信息传输方法、装置、通信设备和存储介质 |
| EP4443982A4 (en) * | 2021-11-30 | 2025-10-08 | Guangdong Oppo Mobile Telecommunications Corp Ltd | COMMUNICATION METHOD AND COMMUNICATION APPARATUS |
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- 2020-05-28 US US17/631,508 patent/US12238647B2/en active Active
- 2020-05-28 KR KR1020227005772A patent/KR102876941B1/ko active Active
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| WO2023011625A1 (zh) * | 2021-08-06 | 2023-02-09 | 大唐移动通信设备有限公司 | 一种信号收发方法、设备、装置及存储介质 |
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| US20220303901A1 (en) | 2022-09-22 |
| EP4009711A4 (en) | 2022-09-14 |
| CN112312589A (zh) | 2021-02-02 |
| CN112312589B (zh) | 2024-01-19 |
| KR20220038425A (ko) | 2022-03-28 |
| KR102876941B1 (ko) | 2025-10-24 |
| EP4009711A1 (en) | 2022-06-08 |
| US12238647B2 (en) | 2025-02-25 |
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