WO2022151089A1 - 信息处理方法及装置、通信设备及存储介质 - Google Patents

信息处理方法及装置、通信设备及存储介质 Download PDF

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Publication number
WO2022151089A1
WO2022151089A1 PCT/CN2021/071582 CN2021071582W WO2022151089A1 WO 2022151089 A1 WO2022151089 A1 WO 2022151089A1 CN 2021071582 W CN2021071582 W CN 2021071582W WO 2022151089 A1 WO2022151089 A1 WO 2022151089A1
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Prior art keywords
reference signal
condition
information
condition information
base station
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PCT/CN2021/071582
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English (en)
French (fr)
Inventor
刘洋
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北京小米移动软件有限公司
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Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to PCT/CN2021/071582 priority Critical patent/WO2022151089A1/zh
Priority to CN202180000186.9A priority patent/CN115088385A/zh
Priority to EP21918304.3A priority patent/EP4280800A1/en
Priority to US18/271,831 priority patent/US20240088966A1/en
Publication of WO2022151089A1 publication Critical patent/WO2022151089A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/0626Channel coefficients, e.g. channel state information [CSI]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • H04L5/005Allocation of pilot signals, i.e. of signals known to the receiver of common pilots, i.e. pilots destined for multiple users or terminals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0048Allocation of pilot signals, i.e. of signals known to the receiver
    • H04L5/0051Allocation of pilot signals, i.e. of signals known to the receiver of dedicated pilots, i.e. pilots destined for a single user or terminal
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0096Indication of changes in allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • H04W56/001Synchronization between nodes
    • H04W56/0015Synchronization between nodes one node acting as a reference for the others
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W68/00User notification, e.g. alerting and paging, for incoming communication, change of service or the like
    • H04W68/02Arrangements for increasing efficiency of notification or paging channel
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • H04W72/232Control 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 physical layer, e.g. DCI signalling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W68/00User notification, e.g. alerting and paging, for incoming communication, change of service or the like
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/27Transitions between radio resource control [RRC] states
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W76/00Connection management
    • H04W76/20Manipulation of established connections
    • H04W76/28Discontinuous transmission [DTX]; Discontinuous reception [DRX]

Definitions

  • the present disclosure relates to the field of wireless communication technologies, but is not limited to the field of wireless communication technologies, and in particular, relates to an information processing method and apparatus, a communication device, and a storage medium.
  • UE User Equipment
  • the network side needs to page the UE through a paging message to prompt the UE to exit the disconnected state and initiate a connection to the connected state; otherwise The UE continues to remain in a disconnected state with low power consumption.
  • a discontinuous reception Discontinuous Reception, DRX
  • Embodiments of the present disclosure provide an information processing method and apparatus, a communication device, and a storage medium.
  • a first aspect of the embodiments of the present disclosure provides an information processing method, wherein, when applied to a base station, the method includes: sending effective condition information of a reference signal, wherein the effective condition information indicates that the reference signal is used for the first Validation conditions for a use.
  • a second aspect of the embodiments of the present disclosure provides an information processing method, which is applied to a user equipment UE, and the method includes: receiving validation condition information of a reference signal, wherein the validation condition information indicates the reference signal Validation conditions for first use.
  • a third aspect of the embodiments of the present disclosure provides an information processing apparatus, wherein, when applied to a base station, the apparatus includes:
  • the sending module is configured to send valid condition information of the reference signal, wherein the valid condition information indicates the valid condition for the reference signal to be used for the first use.
  • a fourth aspect of the embodiments of the present disclosure provides an information processing apparatus, wherein, when applied to a user equipment UE, the apparatus includes: a receiving module configured to receive valid condition information of a reference signal, wherein the valid condition information, Indicates a valid condition for the reference signal to be used for the first use.
  • a fifth aspect of the embodiments of the present disclosure provides a communication device, including a processor, a transceiver, a memory, and an executable program stored on the memory and capable of being run by the processor, wherein the processor runs the executable program The program executes the method provided in the first aspect or the second aspect.
  • a sixth aspect of the embodiments of the present disclosure provides a computer storage medium, where an executable program is stored in the computer storage medium; after the executable program is executed by a processor, the method provided in the foregoing first aspect or the second aspect can be implemented .
  • the technical solutions provided by the embodiments of the present disclosure can be used by the UE to determine whether the first purpose of the reference signal is valid by issuing the valid condition information of the reference signal. Knowing that using reference signals to replace at least part of the SSB measurement to achieve the first purpose such as RRM measurement and/or synchronization with the base station can further save UE power consumption compared to completely using the SSB measurement to achieve the first purpose.
  • FIG. 1 is a schematic structural diagram of a wireless communication system according to an exemplary embodiment
  • FIG. 2A is a schematic flowchart of an information processing method according to an exemplary embodiment
  • 2B is a schematic flowchart of an information processing method according to an exemplary embodiment
  • FIG. 3 is a schematic flowchart of an information processing method according to an exemplary embodiment
  • FIG. 4A is a schematic flowchart of an information processing method according to an exemplary embodiment
  • FIG. 4B is a schematic flowchart of an information processing method according to an exemplary embodiment
  • FIG. 5 is a schematic flowchart of an information processing method according to an exemplary embodiment
  • FIG. 6 is a schematic structural diagram of an apparatus for processing valid condition information of a reference signal according to an exemplary embodiment
  • FIG. 7 is a schematic structural diagram of an apparatus for processing valid condition information of a reference signal according to an exemplary embodiment
  • FIG. 8 is a schematic structural diagram of a UE according to an exemplary embodiment
  • Fig. 9 is a schematic structural diagram of a base station according to an exemplary embodiment.
  • first, second, third, etc. may be used in embodiments of the present disclosure to describe various pieces of information, such information should not be limited to these terms. These terms are only used to distinguish the same type of information from each other.
  • the first information may also be referred to as the second information, and similarly, the second information may also be referred to as the first information.
  • the word "if” as used herein can be interpreted as “at” or "when” or "in response to determining.”
  • FIG. 1 shows a schematic structural diagram of a wireless communication system provided by an embodiment of the present disclosure.
  • the wireless communication system is a communication system based on cellular mobile communication technology, and the wireless communication system may include: several UEs 11 and several base stations 12 .
  • the UE11 may be a device that provides voice and/or data connectivity to the user.
  • the UE11 may communicate with one or more core networks via a Radio Access Network (RAN), and the UE11 may be an IoT UE, such as a sensor device, a mobile phone (or "cellular" phone) and an IoT-enabled UE.
  • RAN Radio Access Network
  • the UE's computer for example, may be a stationary, portable, pocket-sized, hand-held, computer-built-in, or vehicle-mounted device.
  • a station For example, a station (Station, STA), a subscriber unit (subscriber unit), a subscriber station (subscriber station), a mobile station (mobile station), a mobile station (mobile), a remote station (remote station), an access point, a remote UE ( remote terminal), access UE (access terminal), user device (user terminal), user agent (user agent), user equipment (user device), or user UE (user equipment, UE).
  • the UE11 may also be a device of an unmanned aerial vehicle.
  • the UE 11 may also be an in-vehicle device, for example, a trip computer with a wireless communication function, or a wireless communication device connected to an external trip computer.
  • the UE11 may also be a roadside device, for example, may be a streetlight, a signal light, or other roadside device having a wireless communication function.
  • the base station 12 may be a network-side device in a wireless communication system.
  • the wireless communication system may be a fourth generation mobile communication (the 4th generation mobile communication, 4G) system, also known as a long term evolution (Long Term Evolution, LTE) system; or, the wireless communication system may also be a 5G system, Also known as new radio (NR) system or 5G NR system.
  • the wireless communication system may also be a next-generation system of the 5G system.
  • the access network in the 5G system can be called NG-RAN (New Generation-Radio Access Network, a new generation of radio access network).
  • the MTC system may be a network-side device in a wireless communication system.
  • the base station 12 may be an evolved base station (eNB) used in the 4G system.
  • the base station 12 may also be a base station (gNB) that adopts a centralized distributed architecture in a 5G system.
  • eNB evolved base station
  • gNB base station
  • the base station 12 adopts a centralized distributed architecture it usually includes a centralized unit (central unit, CU) and at least two distributed units (distributed unit, DU).
  • the centralized unit is provided with a protocol stack of a Packet Data Convergence Protocol (PDCP) layer, a Radio Link Control Protocol (Radio Link Control, RLC) layer, and a Media Access Control (Media Access Control, MAC) layer; distribution A physical (Physical, PHY) layer protocol stack is set in the unit, and the specific implementation manner of the base station 12 is not limited in this embodiment of the present disclosure.
  • PDCP Packet Data Convergence Protocol
  • RLC Radio Link Control Protocol
  • MAC Media Access Control
  • distribution A physical (Physical, PHY) layer protocol stack is set in the unit, and the specific implementation manner of the base station 12 is not limited in this embodiment of the present disclosure.
  • a wireless connection can be established between the base station 12 and the UE 11 through a wireless air interface.
  • the wireless air interface is a wireless air interface based on the fourth generation mobile communication network technology (4G) standard; or, the wireless air interface is a wireless air interface based on the fifth generation mobile communication network technology (5G) standard, such as
  • the wireless air interface is a new air interface; alternatively, the wireless air interface may also be a wireless air interface based on a 5G next-generation mobile communication network technology standard.
  • an E2E (End to End, end-to-end) connection may also be established between UE11.
  • V2V vehicle to vehicle, vehicle-to-vehicle
  • V2I vehicle to Infrastructure, vehicle-to-roadside equipment
  • V2P vehicle to pedestrian, vehicle-to-person communication in vehicle-to-everything (V2X) communication etc. scene.
  • the above wireless communication system may further include a network management device 13 .
  • the network management device 13 may be a core network device in a wireless communication system, for example, the network management device 13 may be a mobility management entity (Mobility Management Entity) in an evolved packet core network (Evolved Packet Core, EPC). MME).
  • the network management device may also be other core network devices, such as a serving gateway (Serving GateWay, SGW), a public data network gateway (Public Data Network GateWay, PGW), a policy and charging rules functional unit (Policy and Charging Rules) Function, PCRF) or home subscriber server (Home Subscriber Server, HSS), etc.
  • the implementation form of the network management device 13 is not limited in this embodiment of the present disclosure.
  • an embodiment of the present disclosure provides an information processing method, wherein, when applied to a base station, the method includes:
  • the validation condition information of the reference signal is sent, wherein the validation condition information indicates the validation condition for the reference signal to be used for the first use.
  • the embodiments of the present disclosure are applied to a base station, and the base station may be an access device on the network side such as an evolved base station (eNB) or a 5G base station (gNB).
  • eNB evolved base station
  • gNB 5G base station
  • the reference signal can be any reference signal other than SSB.
  • the reference signal may be: a reference signal covering the entire cell, or a reference signal covering a part of the cell.
  • the use of the reference signal may replace part or all of the SSB to perform the use of the SSB, that is, the first use may be one or more of the uses of the SSB.
  • the reference signals include, but are not limited to, tracking reference signals TRS and/or channel state information CSI-reference signals RS.
  • TRS and/or CSI-RS may be a second use distinct from the first use.
  • the reference signal here may include: a reference signal such as TRS and/or CSI-RS to replace the measurement of the SSB, so as to realize the RRM measurement of the current cell and/or the neighboring cell.
  • a reference signal such as TRS and/or CSI-RS to replace the measurement of the SSB, so as to realize the RRM measurement of the current cell and/or the neighboring cell.
  • the reference signal here may include: a reference signal such as TRS and/or CSI-RS to replace the measurement of the SSB to realize synchronization between the UE and the base station of the cell.
  • a reference signal such as TRS and/or CSI-RS to replace the measurement of the SSB to realize synchronization between the UE and the base station of the cell.
  • the TRS and/or CSI-RS may originally be a reference signal delivered to a UE in a connected state.
  • CSI-RS can be used for UE in connected state to perform intra-cell channel measurement.
  • the TRS may be used to determine the beam for communication between the UE in the connected state and the base station.
  • condition information for RRM measurement may be issued for a UE in a disconnected state.
  • the UEs in the disconnected state may include at least: UEs in an idle state and/or UEs in an inactive state.
  • the first use includes but is not limited to: the first use includes: the reference signal is used for radio resource management RRM measurement and/or used for synchronization between user equipment UE and the base station .
  • the RRM measurement here includes, but is not limited to, the UE's RRM measurement on the serving cell and/or the RRM measurement on the neighboring cell.
  • the serving cell here may also be called: the local cell.
  • the TRS/CSI-RS here is the TRS/CSI-RS sent by the serving cell.
  • the TRS/CSI-RS here may be the TRS/CSI-RS sent by the neighbor cell.
  • the validation condition information may include one or more bits, at least indicating that the reference signal is used for purposes other than the original purpose of the reference signal, such as performing one or more purposes of the SSB.
  • an embodiment of the present disclosure provides an information processing method, wherein, when applied to a base station, the method includes:
  • S110 Send validating condition information of a reference signal, where the reference signal includes: TRS and/or CSI-RS; the validating condition information indicates a validating condition for the reference signal to be used for a first use; the first Uses include: the reference signal is used for radio resource management RRM measurement and/or for synchronization between user equipment UE and the base station.
  • the validation condition information may include one or more bits, at least indicating valid conditions for the TRS/CSI-RS to be used for RRM measurement.
  • the method further includes:
  • the configuration information of the reference signal is delivered.
  • the configuration information includes: configuration information of reference signals of the current cell and/or configuration information of reference signals of neighboring cells.
  • the RRM measurement includes: the RRM measurement of the neighboring cell, and the method further includes:
  • the configuration information of the reference signal of the neighboring cell is delivered in the current cell.
  • the UE By receiving the configuration information of the reference signal of the neighboring cell and issuing the configuration information of the reference signal in the own cell, it is equivalent to informing the UE of the time-frequency resource information of the transmission of the reference signal of the neighboring cell.
  • the reference signal configuration information of the adjacent cell is measured.
  • the configuration information of the reference signal sent by the neighbor cell is periodically received, and/or the configuration information of the reference signal of the neighbor cell sent by the neighbor cell when the reference signal is updated is received.
  • the reference signal may be a cell-level reference signal and/or a UE-level reference signal. If the RRM measurement involves the measurement of a reference signal of a neighboring cell, the reference signal can be selected as a cell-level reference signal, so that all neighboring cells of a cell can share the cell-level reference signal for RRM measurement.
  • the effective condition information can be carried in the RRM measurement-related signaling sent by the base station to the UE. After the UE receives the RRM measurement-related signaling, the UE does not directly perform RRM relaxation measurement, but based on the RRM measurement-related signaling. Effective condition information, it is determined that when the effective conditions are met, the effect of using a reference signal or the like to replace the SSB to realize the RRM relaxation measurement effect.
  • the UE can determine whether to perform RRM measurement according to the reference signal. If the conditions indicated by the effective condition information are met, the SSB measurement is reduced in the idle state, and TRS and/or CSI-RS are used instead of SSB measurement. , reducing the time that the UE maintains the awake state to measure the SSB, thereby saving the power consumption of the UE. If the condition indicated by the effective condition is not met, the UE will not use the reference signal such as TRS/CSI-RS to perform RRM measurement, but will continue to use the SSB to perform RRM measurement.
  • the reference signal such as TRS/CSI-RS
  • the measurement result of the RRM measurement here can be used for the mobility management of the UE.
  • the network side and/or the base station may instruct the UE to perform cell handover and/or cell reselection through the RRM measurement result, so that the UE is always connected to one of the cells with the best communication quality currently with the UE.
  • Threshold information indicating that one or more thresholds are satisfied corresponding to the valid condition for RRM measurement and/or the valid condition for synchronization
  • the identification of the effective condition for example, both the base station and the UE are allowed to know several candidate conditions that can be used as the effective condition, and set an identification for these candidate conditions, and carry at least one of the identifications in the effective condition information. It is possible to know the specific content of the valid conditions for RRM measurement using TRS/CSI-RS.
  • the UE simultaneously measures SSB, TRS and/or CSI-RS within the time of maintaining the awake state, so the UE can collect multiple samples at one time point, reducing the duration of preset sampling points due to sampling, Thus, the duration of the UE maintaining the awake state is reduced, thereby saving the power consumption of the UE.
  • the bandwidth of TRS and/or CSI-RS may be larger than that of SSB. If the measurement of TRS and/or CSI-RS is used to replace the measurement of SSB, the number of samples required in the process of measuring SSB may be reduced, Thus, the duration of the UE maintaining the wake-up state is reduced, and the power consumption of the UE can also be saved.
  • the effective condition information for sending the reference signal includes:
  • the validating condition information of the reference signal is transmitted.
  • the effective condition information for using TRS/CSI-RS for RRM measurement is issued, otherwise, the effective condition information for using TRS/CSI-RS for RRM measurement is not issued, which can reduce the Unnecessary signaling overhead; on the other hand, it reduces the UE's determination of whether the conditions for using TRS/CSI-RS for RRM measurement are satisfied based on the validation condition information.
  • An embodiment of the present disclosure provides a method for processing a valid condition of a reference signal, which may include:
  • the validation condition information for the reference signal is not sent.
  • the S110 may include:
  • the validation condition information is sent through high layer signaling.
  • the higher layer signaling includes but is not limited to: RRC signaling and/or MAC layer signaling.
  • the MAC signaling may include at least a MAC Control Element (Control Element, CE).
  • CE MAC Control Element
  • the validating condition information may also be sent through broadcast signaling.
  • the broadcast signaling includes, but is not limited to: a main message block (Main Information Block, MIB) and/or a system message block (System Imformation Block, SIB) 1.
  • MIB Main Information Block
  • SIB System Imformation Block
  • the effective condition information includes:
  • first condition information indicating a first condition that allows the reference signal to be used for RRM measurement
  • the second condition information indicates a second condition allowing the reference signal to be used for synchronization between the UE and the base station.
  • the UE can determine whether to perform RRM measurement through TRS/CSI-RS currently according to the first condition information.
  • the UE can perform synchronization with the base station according to whether the second condition information currently uses TRS/CSI-RS.
  • TRS/CSI-RS may be used for synchronization and/or RRM measurements at the same time.
  • case 1 the TRS/CSI-RS alone can be used for RRM measurement when the first condition indicated by the first condition information is satisfied;
  • case 2 the TRS/CSI-RS alone meets the second condition information indicated can be used for RRM measurement when the second condition of the The second condition indicated by the information can be used for RRM measurement.
  • the first condition information includes threshold information indicating that the reference signal is allowed to perform RRM measurement.
  • a single threshold indicated by the threshold information, and/or a threshold range indicated by multiple thresholds is currently satisfied according to the threshold indicated by the threshold information.
  • the threshold information indicates at least one of the following:
  • a signal-to-noise ratio threshold wherein the first condition is satisfied when the signal-to-noise ratio of the reference signal is greater than the signal-to-noise ratio threshold
  • a time difference threshold range wherein the first condition is satisfied when the transmission time difference between the reference signal and the synchronization signal SSB is within the time difference threshold range.
  • the UE measures TRS/CSI-RS in the awake state, and obtains the signal-to-noise ratio of TRS/CSI-RS. If the signal-to-noise ratio is large enough, exemplarily greater than the signal-to-noise ratio threshold, then the signal-to-noise ratio is obtained based on the TRS/CSI-RS The measurement result of the RRM measurement, thereby ensuring the accuracy of the RRM measurement.
  • the transmission time difference between the reference signal and the SSB is within the time difference threshold, so that the measurement of the reference signal can be used to replace part or all of the SSB for RRM measurement, which can reduce the power consumption of the UE due to the RRM measurement.
  • the transmission time difference between the reference signal and the SSB is within the time difference threshold, which may include, but is not limited to: the transmission time difference between the reference signal and the SSB is less than the first set threshold.
  • the duration of the wake-up state which saves power.
  • the first set threshold may be determined according to the transmission time difference between SSBs, for example, the first set threshold is less than or equal to the transmission time difference of two adjacent SSBs, or less than the two SSBs with the largest transmission time difference.
  • the transmission time difference between the reference signal and the SSB is within the time difference threshold, which may also include, but is not limited to: the transmission time difference between the reference signal and the SSB is greater than the second setting. threshold. If the reference signal and the SSB are located on different frequency bands, or after the bandwidths of the reference signal and the SSB overlap, the bandwidth is larger; if the UE operates with a larger bandwidth, it also has a larger bandwidth. At this time, if the transmission time difference between the reference signal and the SSB is greater than the second set threshold, the bandwidth to be measured by the UE is reduced when the SSB and the reference signal overlap in the time domain.
  • the second set threshold may be greater than 0 or equal to 0.
  • the preset range here may be determined by the network side according to the configuration of the reference signal and the configuration of the SSB.
  • the upper limit value and the lower limit value of the preset range may be the same as the signal-to-noise ratio threshold as the threshold information delivered by the network side, and received by the UE.
  • the first condition for allowing the reference signal to be used for RRM measurement includes at least one of the following:
  • the signal-to-noise ratio of the reference signal is greater than the signal-to-noise ratio threshold
  • the transmission time difference between the reference signal and the synchronization signal block SSB is within the time difference threshold range
  • the valid indication under paging DCI may be a condition parallel to the first condition corresponding to the threshold information carried in the first condition information.
  • the valid indication under paging DCI can be a supplementary condition of the first condition corresponding to the threshold information carried in the first condition information.
  • the threshold information of the first condition information is empty, it is equivalent to informing the UE that after receiving the validation indication carried by the paging DCI, it is considered that the condition for allowing the use of the reference signal to perform RRM measurement is valid.
  • the base station may also issue an instruction to instruct the UE to use TRS/CSI-RS for RRM measurement.
  • the validation indication can be carried by various DCIs. DCI delivery is characterized by a fast delivery rate.
  • satisfying the first condition may include:
  • the paging DCI is used to carry the validation indication.
  • the paging DCI may indicate the DCI for sending the resource information of the paging message, and an indication bit is added in the paging DCI, so when the UE is in the awake state monitoring the paging DCI, it synchronously monitors the effective condition of the reference signal for RRM measurement. information, without the need to wake up at an additional time to monitor the effective indication, thereby saving the power consumption of the UE again.
  • the valid indication may be a reserved bit or a reserved bit value in the paging DCI.
  • reserved bits may be temporarily reserved bits that are not allocated for any information use. The bits corresponding to the reserved bit values may have been allocated to other information for use, but some of these bits have not been used, and such unused bit values may be regarded as reserved values. For example, there are two bits with four values, three of which have been used to indicate other information, and the remaining one can be used as valid bits. At this time, if the two bits have the above three values, it can be considered that the base station does not download the valid bit and the UE also cannot receive the valid bit.
  • the UE will also receive the paging DCI carrying the paging DCI through the reception of the paging DCI. valid bits.
  • the above is an example of the valid condition for the reference signal indicated by the valid condition information to be used for RRM measurement.
  • it can also be other examples, such as measuring the reference signal received power of the TRS/CSI-RS (Reference Signal Received Power, RSRP) or the reference signal received quality (Reference Signal Received Quality, RSPQ) is greater than the corresponding threshold, it can be considered that the reference signal is used for RRM measurement validation conditions.
  • TRS/CSI-RS Reference Signal Received Power
  • RSPQ Reference Signal Received Quality
  • the paging DCI carries not only the indication bits of the resource parameters of the paging occasion PO, but also the validation bits, so that the content carried by the paging DCI is increased.
  • the receiving the validating indication carried by the paging DCI further includes: receiving the validating indication carried by the paging DCI in the current PO cycle or the first M cycles.
  • M is a positive integer greater than or equal to 2.
  • the validation indication is carried by a reserved bit of the paging DCI.
  • the receiving the validating indication carried by the paging DCI includes: receiving the validating indication carried by the paging DCI of the last PO cycle. After receiving the indication carried by the paging DCI of the previous PO cycle, the reference signal is used for the valid indication of RRM measurement in the current PO paging cycle.
  • the TRS/CSI-RS is automatically used for the RRM measurement in this PO period.
  • the paging DCI of the previous PO period If the paging DCI of the previous PO period is received and the valid indication indicating that the use of the reference signal for RRM measurement is allowed in the current PO period is received, it is determined that the first condition is satisfied, which is equivalent to the duration of one determination of the first condition being one PO period. .
  • the paging DCI of the previous PO period carries the validation indication, indicating whether the first condition is satisfied in the current PO period, so that the base station can flexibly and dynamically inform the UE whether to use the reference signal for RRM measurement.
  • the receiving a valid indication carried by the paging downlink control information DCI includes:
  • a validating indication carried by the paging DCI is received.
  • This situation is applicable when the network side does not determine the appropriate threshold information, and then downloads the validity condition information first, and then informs the UE that the RRM measurement using the reference signal is valid through the validation indication carried by the paging DCI.
  • the first condition information includes a threshold field and an indication field.
  • the threshold value field carries threshold value information; the indication field is used to indicate whether to use the received valid bit to indicate that the reference signal is used to perform RRM measurement.
  • the first condition information does not carry the threshold information may include: the threshold field where the preset information is located is empty; and/or, the threshold field carries The bit sequence of is a preset bit sequence; and/or, in another embodiment, the bit value carried in the indication field indicates that the received validation instruction is valid.
  • the first condition information may include a threshold field and not include the indication field; if the threshold field is empty or a preset bit sequence, it implicitly informs the use of whether a valid bit is received to determine whether to use the reference The signal is subjected to RRM measurements.
  • the validating condition information is a semi-static period configuration.
  • the validating condition information is semi-static periodic configuration, that is, the validating condition information is semi-static periodic configuration or semi-static periodic scheduling. That is, the effective condition information is effective in the scheduled semi-static period, and inactive in the unscheduled period.
  • the effective condition information is effective in a certain semi-static period, it means that the effective condition information is effective in the semi-static period, and the UE can determine whether to use the reference signal for RRM measurement and/or for the UE and the base station according to the effective condition information. Otherwise, the UE does not determine to use the reference signal for RRM measurement and/or for synchronization between the UE and the base station according to the valid condition information.
  • the semi-static periodic configuration is adopted, on the one hand, periodic configuration is realized;
  • the method for processing valid condition information of a reference signal further includes:
  • S120 Deliver the DCI for activating or deactivating the effective condition information of the semi-static period configuration.
  • the validation condition information processing methods provided in the embodiments of the present disclosure may be used alone, or may be used in combination with the methods shown in FIG. 2 and the like.
  • the semi-static period configuration is activated or deactivated through DCI, that is, the period range in which the effective condition is indicated by the DCI, or the period range in which the effective condition is not in effect is indicated.
  • the effective condition information is configured in a semi-static period.
  • the effective condition information is effective in the periods corresponding to the semi-static periods, which can be activated through the activation indication carried by the DCI, and/or in which semi-static periods correspond to
  • the effective condition information does not take effect within the period of , and can be deactivated through the deactivation indication carried by the DCI. If the effective condition information is deactivated in a semi-static period, it means that the effective condition information is not effective in the semi-static period, and the UE does not need to determine whether to use the reference signal for RRM measurement and/or for the communication between the UE and the base station according to the effective condition information. synchronization.
  • the effective condition information is activated in a certain semi-static period, it indicates that the effective condition information is effective in the semi-static period, and the UE can determine whether to use the reference signal for RRM measurement and/or for the UE and the base station according to the effective condition information. synchronization between.
  • the DCI may be the aforementioned paging DCI, or any other DCI other than the paging DCI that does not carry the resource parameters of the paging message.
  • the base station first sends the validating condition information of the reference signal, and then sends the DCI to activate the validating condition information during the semi-static period or before the semi-static period in which the effect of the validating condition information needs to be activated. condition information.
  • the UE will judge by itself whether the effective conditions for using the reference signal for RRM measurement and/or synchronization with the base station are met, and if the corresponding conditions are met, the detection and execution using the reference signal is performed.
  • the RRM measures and/or achieves synchronization between the UE and the base station.
  • an embodiment of the present disclosure provides an information processing method, which is applied to a UE, including:
  • Receive validation condition information of the reference signal wherein the validation condition information indicates the validation condition for the reference signal to be used for the first use.
  • the processing method of the reference signal is a method applied in the UE.
  • the UE may be various types of UEs.
  • the UE may be a UE supporting discontinuous reception (DRX) mode or extended discontinuous reception (e-DRX) mode.
  • DRX discontinuous reception
  • e-DRX extended discontinuous reception
  • the UE may receive the valid condition information in a connected state or a disconnected state.
  • the disconnected state here may include an idle state or an inactive state.
  • the reference signal here includes, but is not limited to, the aforementioned TRS and/or CSI-RS.
  • the first use here includes, but is not limited to, RRM measurement and/or synchronization between the UE and the base station.
  • an embodiment of the present disclosure provides an information processing method, wherein, applied to a user equipment UE, the method includes:
  • S210 Receive validation condition information of a reference signal, where the reference signal includes: TRS and/or CSI-RS; the validation condition information indicates validation conditions for the reference signal to be used for a first use; the first Uses include: the reference signal is used for radio resource management RRM measurement and/or for synchronization between user equipment UE and the base station.
  • the processing method of the reference signal is a method applied in the UE.
  • the UE may be various types of UEs.
  • the UE may determine to use the reference signal for RRM measurement and/or for synchronization between the UE and the base station according to the valid condition information.
  • the UE If the UE does not meet the conditions indicated by the effective condition information when it needs to perform RRM measurement, it will not perform RRM measurement with reference signals such as TRS/CSI-RS, but will continue to use SSB to perform RRM measurement.
  • the measurement result of the RRM measurement of the current cell is obtained by measuring the SSB of the current cell
  • the RRM measurement of the adjacent cell is obtained by measuring the SSB of the adjacent cell.
  • the RRM measurement may include: the RRM measurement of the current cell and/or the RRM measurement of the neighboring cell.
  • the UE If the UE does not meet the conditions indicated by the effective condition information when it needs to synchronize with the base station, it will not synchronize with reference signals such as TRS/CSI-RS, but will continue to use the SSB to synchronize with the base station.
  • reference signals such as TRS/CSI-RS
  • the UE when the UE receives the validation condition information, when RRM measurement needs to be performed and/or according to the transmission timing of the TRS/CSI-RS, the UE determines whether the use of the TRS/CSI-RS is satisfied according to the validation condition information. If the conditions for the RS to perform the RRM measurement are met, when the reference signals such as TRS/CSI-RS are issued, the TRS/CSI-RS is measured and the measurement result of the RRM measurement is obtained according to the measurement result of the TRS/CSI-RS.
  • the S210 may include:
  • the validating condition information is carried in high-layer signaling.
  • the higher layer signaling includes but is not limited to RRC signaling and/or MAC layer signaling.
  • the effective condition information includes:
  • first condition information indicating a first condition that allows the reference signal to be used for RRM measurement
  • the second condition information indicates a second condition allowing the reference signal to be used for synchronization between the UE and the base station.
  • the first condition information includes:
  • the threshold information may be: a specific value and/or a threshold index of the corresponding threshold.
  • the threshold information is information that can be used by the UE to determine the corresponding threshold.
  • the threshold information indicates one of the following:
  • a signal-to-noise ratio threshold wherein the first condition is satisfied when the signal-to-noise ratio of the reference signal is greater than the signal-to-noise ratio threshold
  • a time difference threshold range wherein the first condition is satisfied when the transmission time difference between the reference signal and the synchronization signal SSB is within the time difference threshold range.
  • the signal-to-noise ratio of the reference signal defined by the signal-to-noise ratio threshold value may be considered to satisfy the first condition if the signal-to-noise ratio of the reference signal is sufficiently large.
  • the time difference between the reference signal and the SSB transmitted in the time domain is determined according to the configuration information of the reference signal and the SSB, and the first condition can be considered to be satisfied when the time difference is within the time difference threshold range.
  • the threshold information may indicate both a signal-to-noise ratio threshold and a time difference threshold range, when the signal-to-noise ratio of the reference signal is greater than the signal-to-noise ratio threshold, and when the reference signal and the synchronization signal SSB When the transmission time difference of is within the time difference threshold range, it may be considered that the first condition is satisfied.
  • satisfying the first condition may include: receiving an effective indication carried by the paging downlink control information DCI.
  • the base station can also indicate that the UE in the disconnected state can use the reference signal to perform RRM measurement by paging the DCI.
  • the paging DCI carries a validation bit.
  • the receiving an effective indication carried by the paging downlink control information DCI includes: in response to the first condition information not carrying the threshold information, receiving the effective indication carried by the paging DCI.
  • the UE if the UE receives the first condition information of the effective condition information without the threshold information, it will determine whether the paging DCI carries the effective indication; after receiving the effective indication, it is determined that the first condition is met, otherwise It can be considered that the first condition is not met. If the first condition is met, the UE will use the reference signal to perform RRM measurement, and if the first condition is not met, the UE will not use the reference signal to perform RRM measurement.
  • the validation indication is carried by a reserved bit of the paging DCI.
  • the effective indication may be carried by the paging DCI in the current PO cycle, or may be carried by the paging DCI in the previous m PO cycles.
  • the receiving the validating indication carried by the paging DCI includes: receiving the validating indication carried by the paging DCI of the last PO cycle.
  • the paging DCI of the previous PO cycle carries the validation indication, indicating whether the first condition is satisfied in the current PO period, so that the base station can flexibly and dynamically inform the UE whether to use the reference signal for RRM measurement.
  • the validating condition information is a semi-static period configuration.
  • the semi-static periodic configuration is adopted to realize the periodic configuration of the effective condition information, and at the same time, the semi-static periodic configuration can be deactivated and activated to realize flexible and dynamic control of whether the effective condition information is effective or not.
  • the method further includes:
  • S220 Receive the DCI for activating or deactivating the condition information of the semi-static period configuration.
  • the DCI may indicate a semi-static period during which the valid condition information is applied.
  • an embodiment of the present disclosure provides an information processing apparatus, wherein, when applied to a base station, the apparatus includes:
  • the sending module 110 is configured to send valid condition information of the reference signal, where the valid condition information indicates the valid condition for the reference signal to be used for the first use.
  • the reference signals include: tracking reference signals TRS and/or channel state information CSI-reference signals RS.
  • the first use includes: the reference signal is used for radio resource management RRM measurement and/or for synchronization between user equipment UE and the base station.
  • the sending module 110 is configured to send valid condition information of a reference signal, wherein the reference signal includes: a tracking reference signal TRS and/or a channel state information CSI-reference signal RS; the valid condition information , indicating a valid condition for the reference signal to be used for the first use; the first use includes: the reference signal is used for radio resource management RRM measurement and/or used for synchronization between the user equipment UE and the base station.
  • the reference signal includes: a tracking reference signal TRS and/or a channel state information CSI-reference signal RS
  • the valid condition information indicating a valid condition for the reference signal to be used for the first use
  • the first use includes: the reference signal is used for radio resource management RRM measurement and/or used for synchronization between the user equipment UE and the base station.
  • the sending module 110 may include a program module; after the program module is executed by the processor, the sending of the effective condition information can be realized.
  • the sending module 110 may include: a software-hardware combination module; the software-hardware combination module includes various programmable arrays; the programmable arrays include but are not limited to: field programmable arrays and/or Complex programmable arrays.
  • the sending module 110 may include: a pure hardware module; the pure hardware module includes but is not limited to: an application-specific integrated circuit.
  • the sending module 110 is configured to send the validation condition information through higher layer signaling.
  • the effective condition information includes:
  • first condition information indicating a first condition that allows the reference signal to be used for RRM measurement
  • the second condition information indicates a second condition allowing the reference signal to be used for synchronization between the UE and the base station.
  • the first condition information includes:
  • the threshold information indicates one of the following:
  • a signal-to-noise ratio threshold wherein the first condition is satisfied when the signal-to-noise ratio of the reference signal is greater than the signal-to-noise ratio threshold
  • a time difference threshold range wherein the first condition is satisfied when the transmission time difference between the reference signal and the synchronization signal SSB is within the time difference threshold range.
  • satisfying the first condition includes:
  • the receiving the validating indication carried by the paging downlink control information DCI includes: in response to the first condition information not carrying the threshold information, receiving the validating indication carried by the paging DCI.
  • the validation indication is carried by a reserved bit of the paging DCI.
  • the receiving the validating indication carried by the paging DCI includes: receiving the validating indication carried by the paging DCI of the last PO cycle.
  • the validation condition information is a semi-static period configuration.
  • the sending module 110 is further configured to deliver the DCI for activating or deactivating the semi-static period configuration.
  • an embodiment of the present disclosure provides an information processing apparatus, wherein, when applied to a user equipment UE, the method includes:
  • the receiving module 210 is configured to receive validating condition information of the reference signal, wherein the validating condition information indicates the validating condition that the reference signal is used for the first use.
  • the reference signal includes a tracking reference signal TRS and/or a channel state information CSI-reference signal RS.
  • the first use includes: the reference signal is used for radio resource management RRM measurement and/or for synchronization between user equipment UE and the base station.
  • the receiving module 210 is configured to receive valid condition information of a reference signal, wherein the reference signal includes: a tracking reference signal TRS and/or a channel state information CSI-reference signal RS; the valid condition information , indicating a valid condition for the reference signal to be used for the first use; the first use includes: the reference signal is used for radio resource management RRM measurement and/or used for synchronization between the user equipment UE and the base station.
  • the reference signal includes: a tracking reference signal TRS and/or a channel state information CSI-reference signal RS
  • the valid condition information indicating a valid condition for the reference signal to be used for the first use
  • the first use includes: the reference signal is used for radio resource management RRM measurement and/or used for synchronization between the user equipment UE and the base station.
  • the receiving module 210 may include a program module; after the program module is executed by the processor, it can realize the receiving of the valid condition information.
  • the receiving module 210 may include: a software-hardware combination module; the software-hardware combination module includes various programmable arrays; the programmable arrays include but are not limited to: field programmable arrays and/or Complex programmable arrays.
  • the receiving module 210 may include: a pure hardware module; the pure hardware module includes but is not limited to: an application specific integrated circuit.
  • the receiving module 210 is configured to receive the validation condition information sent by higher layer signaling.
  • the effective condition information includes:
  • first condition information indicating a first condition that allows the reference signal to be used for RRM measurement
  • the second condition information indicates a second condition allowing the reference signal to be used for synchronization between the UE and the base station.
  • the first condition information includes:
  • the threshold information indicates at least one of the following:
  • a signal-to-noise ratio threshold wherein the first condition is satisfied when the signal-to-noise ratio of the reference signal is greater than the signal-to-noise ratio threshold
  • a time difference threshold range wherein the first condition is satisfied when the transmission time difference between the reference signal and the synchronization signal SSB is within the time difference threshold range.
  • satisfying the first condition includes:
  • the receiving a valid indication carried by the paging downlink control information DCI includes:
  • a validating indication carried by the paging DCI is received.
  • the validation indication is carried by a reserved bit of the paging DCI.
  • the receiving the validating indication carried by the paging DCI includes: receiving the validating indication carried by the paging DCI of the last PO cycle.
  • the validating condition information is a semi-static period configuration.
  • the receiving module 210 is further configured to receive the DCI for activating or deactivating the condition information of the semi-static period configuration.
  • the process of receiving paging includes detecting the PDCCH from the corresponding search space of the PO, and then deciphering the paging (Paging DCI). Paging message sent.
  • the UE then demodulates the paging message; if the paging ID in the paging message is its own, it initiates a connection, otherwise it continues to sleep; if no DCI is detected, it means that it has not been received during the wake-up (DRX_on) cycle of discontinuous reception. paging.
  • the DRX of the UE in the idle state/disconnected state refers to the process in which the UE wakes up near the PO location within the T period and receives paging with reference to a certain period T.
  • UEs in inactive states such as idle state/inactive state share the TRS/CSI-RS configuration class in the connected state.
  • the reference signal in the connected state is actually oriented to a cell or a group of UEs (although the configuration is UE granularity).
  • the UE performs fine synchronization by receiving three periods of SSB in a non-cell center; if the UE knows that there is a configured TRS/CSI-RS, it can synchronize with one period of SSB. This is actually using TRS/CSI-RS for
  • periodically configured TRS/CSI-RS and the possibility of configuration in the time domain position of the SIB is relatively large, and other RRC signaling is not excluded;
  • the energy per resource unit (Energy Per Resource element, EPRE) of TRS/CSI-RS is a configuration value relative to the SSB, and RRM measurement and/or synchronization with the base station can be performed according to the configuration value.
  • the base station sends configuration condition information of the shared TRS/CSI-RS that can be used for RRM measurement of the cell.
  • condition refers to the effective condition configured through high-layer signaling, whether the shared TRS/CSI-RS is allowed to be used for the RRM measurement of the cell.
  • the validating conditions may include:
  • the measurement method of using TRS/CSI-RS to perform RRM measurement takes effect.
  • the effective condition may also include:
  • the measurement method of using TRS/CSI-RS to perform RRM measurement takes effect.
  • the base station may also use the RRM measurement in the next PO period by using the DCI of the previous PO period and the UE in the idle state/inactive state.
  • the bit that indicates whether the paging DCI is valid or not, can be used as a reserved bit in the paging DCI.
  • TRS/CSI-RS is a semi-static configuration
  • DCI is equivalent to a dynamic effective switch based on this, similar to a semi-static switch.
  • the configuration of the TRS/CSI-RS here includes, but is not limited to, the configuration of the foregoing TRS/CSI-RS validation conditions and/or the resource configuration of the TRS/CSI-RS, and the like.
  • the resource configuration at least includes: resource parameters of TRS/CSI-RS.
  • the UE determines whether the shared TRS/CSI-RS and other reference signals can be used for the RRM measurement of the cell according to the information configured by the high-level signaling.
  • the RRM relaxation measurement here refers to reducing the number of measured SSBs and/or reducing the sampling points of measured SSBs during RRM measurement.
  • the UE uses the above reference signal for RRM measurement, otherwise it continues to use SSB for RRM measurement.
  • Embodiments of the present disclosure provide a communication device, including:
  • memory for storing processor-executable instructions
  • the processor is connected to the memory;
  • the processor is configured to execute the method for processing valid condition information of the reference signal provided by any of the foregoing technical solutions.
  • the processor may include various types of storage media, which are non-transitory computer storage media that can continue to memorize information stored thereon after the communication device is powered down.
  • the communication device includes a base station or a UE.
  • the processor may be connected to the memory through a bus, etc., for reading the executable program stored on the memory, for example, at least one of the methods shown in FIG. 2A, FIG. 2B, FIG. 3, FIG. 4A, and FIG. 4B to FIG. one of them.
  • FIG. 8 is a block diagram of a UE (UE) 800 according to an exemplary embodiment.
  • UE 800 may be a mobile phone, computer, digital broadcast user equipment, messaging device, game console, tablet device, medical device, fitness device, personal digital assistant, and the like.
  • UE 800 may include one or more of the following components: processing component 802, memory 804, power supply component 806, multimedia component 808, audio component 810, input/output (I/O) interface 812, sensor component 814, and Communication component 816.
  • the processing component 802 generally controls the overall operations of the UE 800, such as operations associated with display, phone calls, data communications, camera operations, and recording operations.
  • the processing component 802 can include one or more processors 820 to execute instructions to perform all or some of the steps of the methods described above.
  • processing component 802 may include one or more modules that facilitate interaction between processing component 802 and other components.
  • processing component 802 may include a multimedia module to facilitate interaction between multimedia component 808 and processing component 802.
  • Memory 804 is configured to store various types of data to support operation at UE 800 . Examples of such data include instructions for any application or method operating on the UE 800, contact data, phonebook data, messages, pictures, videos, etc.
  • Memory 804 may be implemented by any type of volatile or nonvolatile storage device or combination thereof, such as static random access memory (SRAM), electrically erasable programmable read only memory (EEPROM), erasable Programmable Read Only Memory (EPROM), Programmable Read Only Memory (PROM), Read Only Memory (ROM), Magnetic Memory, Flash Memory, Magnetic or Optical Disk.
  • SRAM static random access memory
  • EEPROM electrically erasable programmable read only memory
  • EPROM erasable Programmable Read Only Memory
  • PROM Programmable Read Only Memory
  • ROM Read Only Memory
  • Magnetic Memory Flash Memory
  • Magnetic or Optical Disk Magnetic Disk
  • Power supply component 806 provides power to various components of UE 800 .
  • Power components 806 may include a power management system, one or more power supplies, and other components associated with generating, managing, and distributing power to UE 800 .
  • Multimedia component 808 includes screens that provide an output interface between the UE 800 and the user.
  • the screen may include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen may be implemented as a touch screen to receive input signals from a user.
  • the touch panel includes one or more touch sensors to sense touch, swipe, and gestures on the touch panel. The touch sensor may not only sense the boundaries of a touch or swipe action, but also detect the duration and pressure associated with the touch or swipe action.
  • the multimedia component 808 includes a front-facing camera and/or a rear-facing camera. When the UE 800 is in an operation mode, such as a shooting mode or a video mode, the front camera and/or the rear camera may receive external multimedia data. Each of the front and rear cameras can be a fixed optical lens system or have focal length and optical zoom capability.
  • Audio component 810 is configured to output and/or input audio signals.
  • the audio component 810 includes a microphone (MIC) that is configured to receive external audio signals when the UE 800 is in operating modes, such as call mode, recording mode, and voice recognition mode.
  • the received audio signal may be further stored in memory 804 or transmitted via communication component 816 .
  • audio component 810 also includes a speaker for outputting audio signals.
  • the I/O interface 812 provides an interface between the processing component 802 and a peripheral interface module, which may be a keyboard, a click wheel, a button, or the like. These buttons may include, but are not limited to: home button, volume buttons, start button, and lock button.
  • Sensor component 814 includes one or more sensors for providing various aspects of status assessment for UE 800 .
  • the sensor component 814 can detect the open/closed state of the device 800, the relative positioning of components, such as the display and keypad of the UE 800, the sensor component 814 can also detect the position change of the UE 800 or a component of the UE 800, the user and the UE 800. Presence or absence of UE800 contact, UE800 orientation or acceleration/deceleration and UE800 temperature changes.
  • Sensor assembly 814 may include a proximity sensor configured to detect the presence of nearby objects in the absence of any physical contact.
  • Sensor assembly 814 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor assembly 814 may also include an acceleration sensor, a gyroscope sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communication component 816 is configured to facilitate wired or wireless communications between UE 800 and other devices.
  • the UE 800 may access a wireless network based on a communication standard, such as WiFi, 2G or 3G, or a combination thereof.
  • the communication component 816 receives broadcast signals or broadcast related information from an external broadcast management system via a broadcast channel.
  • the communication component 816 also includes a near field communication (NFC) module to facilitate short-range communication.
  • NFC near field communication
  • the NFC module may be implemented based on radio frequency identification (RFID) technology, infrared data association (IrDA) technology, ultra-wideband (UWB) technology, Bluetooth (BT) technology and other technologies.
  • RFID radio frequency identification
  • IrDA infrared data association
  • UWB ultra-wideband
  • Bluetooth Bluetooth
  • UE 800 may be implemented by one or more application specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field programmable gates An array (FPGA), controller, microcontroller, microprocessor, or other electronic component implementation for performing the above method.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGA field programmable gates
  • controller microcontroller, microprocessor, or other electronic component implementation for performing the above method.
  • non-transitory computer-readable storage medium including instructions, such as a memory 804 including instructions, which are executable by the processor 820 of the UE 800 to perform the above method.
  • the non-transitory computer-readable storage medium may be ROM, random access memory (RAM), CD-ROM, magnetic tape, floppy disk, optical data storage device, and the like.
  • an embodiment of the present disclosure shows a structure of a base station.
  • the base station 900 may be provided as a network-side device.
  • base station 900 includes a processing component 922, which further includes one or more processors, and a memory resource, represented by memory 932, for storing instructions executable by processing component 922, such as application programs.
  • An application program stored in memory 932 may include one or more modules, each corresponding to a set of instructions.
  • the processing component 922 is configured to execute instructions to execute any of the aforementioned methods applied to the base station, eg, as shown in FIGS. 2A , 2B, 3, 4A, 4B-5.
  • the base station 900 may also include a power supply assembly 926 configured to perform power management of the base station 900, a wired or wireless network interface 950 configured to connect the base station 900 to a network, and an input output (I/O) interface 958.
  • Base station 900 may operate based on an operating system stored in memory 932, such as Windows ServerTM, Mac OS XTM, UnixTM, LinuxTM, FreeBSDTM or the like.

Abstract

本公开实施例提供一种生效条件信息处理方法及装置、通信设备及存储介质。应用于基站中的信息处理方法,可包括:发送参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。

Description

信息处理方法及装置、通信设备及存储介质 技术领域
本公开涉及无线通信技术领域但不限于无线通信技术领域,尤其涉及一种信息处理方法及装置、通信设备及存储介质。
背景技术
用户设备(User Equipment,UE)UE进入到空闲态或者非激活态等非连接态之后,网络侧需要通过寻呼消息寻呼UE,促使UE退出非连接态并发起进入到连接态的连接;否则UE继续维持在低功耗的非连接态。针对省电UE,在没有收到针对自身的寻呼消息时,会维持在非连续接收((Discontinuous Reception,DRX)周期内的睡眠状态,以节省功耗。
发明内容
本公开实施例提供一种信息处理方法及装置、通信设备及存储介质。
本公开实施例第一方面提供一种信息处理方法,其中,应用于基站中,所述方法包括:发送参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
本公开实施例第二方面提供一种信息处理方法,其中,应用于用户设备UE中,所述方法包括:接收参考信号的生效条件信息,其中,所所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
本公开实施例第三方面提供一种信息处理装置,其中,应用于基站中,所述装置包括:
发送模块,被配置为发送参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
本公开实施例第四方面提供一种信息处理装置,其中,应用于用户设备UE中,所述装置包括:接收模块,被配置为接收参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
本公开实施例第五方面提供一种通信设备,包括处理器、收发器、存储器及存储在存储器上并能够有所述处理器运行的可执行程序,其中,所述处理器运行所述可执行程序时执行如前述第一方面或第二方面提供的方法。
本公开实施例第六方面提供一种计算机存储介质,所述计算机存储介质存储有可执行程序;所述可执行程序被处理器执行后,能够实现前述的第一方面或第二方面提供的方法。
本公开实施例提供的技术方案,通过参考信号的生效条件信息的下发,可以供UE自行确定参 考信号的第一用途的是否生效,如此,即便非连接态的UE也可以在生效条件信息,知道使用参考信号替代至少部分SSB的测量,实现RRM测量和/或与基站之间的同步等第一用途,相对于完全使用SSB的测量实现第一用途,可以进一步节省UE的功耗。
应当理解的是,以上的一般描述和后文的细节描述仅是示例性和解释性的,并不能限制本公开实施例。
附图说明
此处的附图被并入说明书中并构成本说明书的一部分,示出了符合本发明实施例,并与说明书一起用于解释本发明实施例的原理。
图1是根据一示例性实施例示出的一种无线通信系统的结构示意图;
图2A是根据一示例性实施例示出的一种信息处理方法的流程示意图;
图2B是根据一示例性实施例示出的一种信息处理方法的流程示意图;
图3是根据一示例性实施例示出的一种信息处理方法的流程示意图;
图4A是根据一示例性实施例示出的一种信息处理方法的流程示意图;
图4B是根据一示例性实施例示出的一种信息处理方法的流程示意图;
图5是根据一示例性实施例示出的一种信息处理方法的流程示意图;
图6是根据一示例性实施例示出的一种参考信号的生效条件信息处理装置的结构示意图;
图7是根据一示例性实施例示出的一种参考信号的生效条件信息处理装置的结构示意图;
图8是根据一示例性实施例示出的一种UE的结构示意图;
图9是根据一示例性实施例示出的一种基站的结构示意图。
具体实施方式
这里将详细地对示例性实施例进行说明,其示例表示在附图中。下面的描述涉及附图时,除非另有表示,不同附图中的相同数字表示相同或相似的要素。以下示例性实施例中所描述的实施方式并不代表与本发明实施例相一致的所有实施方式。相反,它们仅是与如所附权利要求书中所详述的、本发明实施例的一些方面相一致的装置和方法的例子。
在本公开实施例使用的术语是仅仅出于描述特定实施例的目的,而非旨在限制本公开实施例。在本公开实施例和所附权利要求书中所使用的单数形式的“一种”、“”和“该”也旨在包括多数形式,除非上下文清楚地表示其他含义。还应当理解,本文中使用的术语“和/或”是指并包含一个或多个相关联的列出项目的任何或所有可能组合。
应当理解,尽管在本公开实施例可能采用术语第一、第二、第三等来描述各种信息,但这些信息不应限于这些术语。这些术语仅用来将同一类型的信息彼此区分开。例如,在不脱离本公开实施例范围的情况下,第一信息也可以被称为第二信息,类似地,第二信息也可以被称为第一信息。取 决于语境,如在此所使用的词语“如果”可以被解释成为“在……时”或“当……时”或“响应于确定”。
请参考图1,其示出了本公开实施例提供的一种无线通信系统的结构示意图。如图1所示,无线通信系统是基于蜂窝移动通信技术的通信系统,该无线通信系统可以包括:若干个UE11以及若干个基站12。
其中,UE11可以是指向用户提供语音和/或数据连通性的设备。UE11可以经无线接入网(Radio Access Network,RAN)与一个或多个核心网进行通信,UE11可以是物联网UE,如传感器设备、移动电话(或称为“蜂窝”电话)和具有物联网UE的计算机,例如,可以是固定式、便携式、袖珍式、手持式、计算机内置的或者车载的装置。例如,站(Station,STA)、订户单元(subscriber unit)、订户站(subscriber station)、移动站(mobile station)、移动台(mobile)、远程站(remote station)、接入点、远程UE(remote terminal)、接入UE(access terminal)、用户装置(user terminal)、用户代理(user agent)、用户设备(user device)、或用户UE(user equipment,UE)。或者,UE11也可以是无人飞行器的设备。或者,UE11也可以是车载设备,比如,可以是具有无线通信功能的行车电脑,或者是外接行车电脑的无线通信设备。或者,UE11也可以是路边设备,比如,可以是具有无线通信功能的路灯、信号灯或者其它路边设备等。
基站12可以是无线通信系统中的网络侧设备。其中,该无线通信系统可以是第四代移动通信技术(the 4th generation mobile communication,4G)系统,又称长期演进(Long Term Evolution,LTE)系统;或者,该无线通信系统也可以是5G系统,又称新空口(new radio,NR)系统或5G NR系统。或者,该无线通信系统也可以是5G系统的再下一代系统。其中,5G系统中的接入网可以称为NG-RAN(New Generation-Radio Access Network,新一代无线接入网)。或者,MTC系统。
其中,基站12可以是4G系统中采用的演进型基站(eNB)。或者,基站12也可以是5G系统中采用集中分布式架构的基站(gNB)。当基站12采用集中分布式架构时,通常包括集中单元(central unit,CU)和至少两个分布单元(distributed unit,DU)。集中单元中设置有分组数据汇聚协议(Packet Data Convergence Protocol,PDCP)层、无线链路层控制协议(Radio Link Control,RLC)层、媒体访问控制(Media Access Control,MAC)层的协议栈;分布单元中设置有物理(Physical,PHY)层协议栈,本公开实施例对基站12的具体实现方式不加以限定。
基站12和UE11之间可以通过无线空口建立无线连接。在不同的实施方式中,该无线空口是基于第四代移动通信网络技术(4G)标准的无线空口;或者,该无线空口是基于第五代移动通信网络技术(5G)标准的无线空口,比如该无线空口是新空口;或者,该无线空口也可以是基于5G的更下一代移动通信网络技术标准的无线空口。
在一些实施例中,UE11之间还可以建立E2E(End to End,端到端)连接。比如车联网通信(vehicle to everything,V2X)中的V2V(vehicle to vehicle,车对车)通信、V2I(vehicle to Infrastructure,车对路边设备)通信和V2P(vehicle to pedestrian,车对人)通信等场景。
在一些实施例中,上述无线通信系统还可以包含网络管理设备13。
若干个基站12分别与网络管理设备13相连。其中,网络管理设备13可以是无线通信系统中的核心网设备,比如,该网络管理设备13可以是演进的数据分组核心网(Evolved Packet Core,EPC)中的移动性管理实体(Mobility Management Entity,MME)。或者,该网络管理设备也可以是其它的核心网设备,比如服务网关(Serving GateWay,SGW)、公用数据网网关(Public Data Network GateWay,PGW)、策略与计费规则功能单元(Policy and Charging Rules Function,PCRF)或者归属签约用户服务器(Home Subscriber Server,HSS)等。对于网络管理设备13的实现形态,本公开实施例不做限定。
参考如图2A所示,本公开实施例提供一种信息处理方法,其中,应用于基站中,所述方法包括:
发送参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
本公开实施例中应用于基站中,该基站可为演进型基站(eNB)或者5G基站(gNB)等网络侧的接入设备。
该参考信号可为SSB以外的任意参考信号。
在本公开实施例中,所述参考信号可为:覆盖整个小区的参考信号,或者是覆盖小区内部分区域的参考信号。
在本公开实施例中,使用参考信号可替代部分或者全部SSB执行SSB的用途,即所述第一用途可为SSB的用途中的一种或多种。
示例性地,所述参考信号包括但不限于:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS。此处的TRS和/或CSI-RS的原本用途可为区别所述第一用途的第二用途。
此处的参考信号可包括:TRS和/或CSI-RS等参考信号替代对SSB的测量,实现对本小区和/或邻小区的RRM测量。
此处的参考信号可包括:TRS和/或CSI-RS等参考信号替代对SSB的测量,实现UE与本小区的基站之间的同步。
该TRS和/或CSI-RS原本可是针对连接态的UE下发的参考信号。例如,CSI-RS可用于连接态的UE进行小区内的信道测量。TRS可以用于确定连接态的UE与基站之间通信的波束。
在本公开实施例中,该针对RRM测量的条件信息可为针对非连接态的UE下发的。该非连接态的UE至少可包括:空闲态的UE和/或非激活态的UE。
在一个实施例中,所述第一用途包括但不限于:所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
此处的RRM测量包括不限于:UE对服务小区的RRM测量和/或对邻小区的RRM测量。此处的服务小区又可以称为:本小区。
若对本小区的RRM测量时,则此处的TRS/CSI-RS为服务小区发送的TRS/CSI-RS。
若对邻小区的RRM测量时,则此处的TRS/CSI-RS可为邻小区发送的TRS/CSI-RS。
所述生效条件信息可包括一个或多个比特,至少指示参考信号用于参考信号原始用途以外的用途,例如执行SSB的一种或多种用途。
示例性地,如图2B所示,本公开实施例提供一种信息处理方法,其中,应用于基站中,所述方法包括:
S110:发送参考信号的生效条件信息,其中,所述参考信号包括:TRS和/或CSI-RS;所述生效条件信息,指示所述参考信号用于第一用途的生效条件;所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
所述生效条件信息可包括一个或多个比特,至少指示TRS/CSI-RS用于RRM测量的生效条件。
在一个实施例中,所述方法还包括:
下发所述参考信号的配置信息。
所述配置信息包括:本小区的参考信号的配置信息和/或邻小区的参考信号的配置信息。
可以理解地,所述RRM测量包括:邻小区的RRM测量,则所述方法还包括:
接收邻小区对所述参考信号的配置信息;
在本小区内下发邻小区所述参考信号的配置信息。
通过在接收邻小区的参考信号的配置信息,及在本小区内的参考信号的配置信息的下发,相当于告知UE邻小区的参考信号的发送的时频资源信息,如此,UE可以邻小区的参考信号的配置信息,进行邻小区的参考信号的测量。
在一些情况下,周期性接收邻小区发送的参考信号的配置信息,和/或接收邻小区在参考信号更新时发送的邻小区的参考信号的配置信息。
在一个实施例中,所述参考信号可为小区级别的参考信号和/或UE级别的参考信号。若所述RRM测量涉及邻小区的参考信号的测量,则可选为该参考信号为小区级别的参考信号,如此,一个小区的所有邻小区都可以共用该小区级别的参考信号进行RRM测量。
所述生效条件信息可携带在基站下发UE的RRM测量相关信令中,UE在接收到RRM测量相关信令之后不是直接进行RRM放松测量,而是自行根据从RRM测量相关信令中提取的生效条件信息,确定出在满足生效条件时,使用参考信号等替代SSB实现RRM放松测量的效果。
该生效条件信息下发之后,可供UE自行确定是否按照参考信号进行RRM测量,如果满足生效条件信息指示的条件,则空闲态减少对SSB的测量,采用TRS和/或CSI-RS替代SSB测量,减少UE维持在唤醒状态测量SSB的时间,从而节省UE的功耗。如果不满足生效条件指示的条件,则UE不会使用TRS/CSI-RS等参考信号进行RRM测量,而是会继续使用SSB进行RRM测量。
此处的RRM测量的测量结果,可用于UE的移动性管理。
例如,网络侧和/或基站可以通过RRM测量结果,指示UE进行小区切换和/或小区重选,从而使得UE始终连接在当前与该UE通信质量最佳的小区之一中。
所述生效条件信息的具体信息内容有多种,示例性地,以下是所述生效条件信息的具体信息内容的任意一种:
阈值信息,指示满足对应进行RRM测量的生效条件和/或进行同步的生效条件的一个或多个阈值;
生效条件的标识,例如,基站和UE都允许知晓了几个可作为生效条件的候选条件且为这些候选条件设置有标识,在生效条件信息中携带该标识中的至少一个,UE接收到之后就可以知晓可用TRS/CSI-RS进行RRM测量的生效条件的具体内容。
当然以上仅是对生效条件信息的举例,具体实现时不局限于此。
示例性地,UE在维持唤醒状态的时间内,同时测量SSB和TRS和/或CSI-RS,因此UE可以在一次时间点上采集多个样点,减少因为采样预设各样点的时长,从而减少UE维持唤醒状态的时长,从而节省UE的功耗。
又示例性地,TRS和/或CSI-RS的带宽可能比SSB大,若用对TRS和/或CSI-RS的测量取代SSB的测量,可能能够减少测量SSB过程中所需的样本个数,从而减少UE维持唤醒状态的时长等,同样也可以节省UE的功耗。
在一个实施例中,所述发送参考信号的生效条件信息,包括:
响应于配置有所述参考信号,发送所述参考信号的生效条件信息。
例如,在配置有TRS/CSI-RS,才下发使用TRS/CSI-RS进行RRM测量的生效条件信息,否则就不下发使用TRS/CSI-RS进行RRM测量的生效条件信息,一方面可以减少不必要的信令开销;另一方面,减少UE基于生效条件信息进行是否满足使用TRS/CSI-RS进行RRM测量的条件的确定。
本公开实施例提供一种参考信号的生效条件处理方法,可包括:
响应于没有配置所述参考信号,不发送所述参考信号的生效条件信息。
在一个实施例中,所述S110可包括:
通过高层信令发送所述生效条件信息。
该高层信令包括但不限于:RRC信令和/或MAC层信令。
所述MAC信令至少可包括MAC控制单元(Control Element,CE)。
在另一些实施例中,还可以通过广播信令发送所述生效条件信息。所述广播信令包括但不限于:主消息块(Main Information Block,MIB)和/或系统消息块(System Imformation Block,SIB)1。
在一个实施例中,所述生效条件信息包括:
第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
和/或
第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
通过第一条件信息的下发,UE就能够根据第一条件信息确定当前是否通过TRS/CSI-RS进行RRM测量。
通过第二条件信息的下发,UE就能够根据第二条件信息当前是否通过TRS/CSI-RS进行与基站之间的同步。
如此在一些情况下,TRS/CSI-RS可同时用于同步和/或RRM测量。
示例性地,情况1:所述TRS/CSI-RS单独在满足第一条件信息指示的第一条件时可用于RRM测量;情况2:所述TRS/CSI-RS单独在满足第二条件信息指示的第二条件时可用于RRM测量;情况3:所述TRS/CSI-RS在满足第一条件信息指示的第一条件时可用于RRM测量,且所述TRS/CSI-RS在满足第二条件信息指示的第二条件时可用于RRM测量。
在一个实施例中,所述第一条件信息包括:指示允许所述参考信号进行RRM测量的阈值信息。
该阈值信息指示的单个阈值,和/或多个阈值指示的阈值范围。如此,在UE接收到第一条件信息之后,得到阈值信息,就可以根据阈值信息指示的阈值,确定当前是否满足采用参考信号进行RRM测量的第一条件。
在一个实施例中,所述阈值信息,指示以下至少之一:
信噪比阈值,其中,在所述参考信号的信噪比大于所述信噪比阈值时满足所述第一条件;
时差阈值范围,其中,在所述参考信号与所述同步信号SSB的传输时间差位于所述时差阈值范围内时满足所述第一条件。
例如,UE在唤醒状态下测量TRS/CSI-RS,得到TRS/CSI-RS的信噪比,若信噪比足够大,示例性地的大于信噪比阈值,则基于TRS/CSI-RS得到RRM测量的测量结果,从而确保RRM测量的精确性。
再例如,参考信号与SSB的传输时间差位于时差阈值范围内,可以使得采用参考信号的测量替代部分或者全部SSB进行RRM测量,可以减少UE因为RRM测量所产生的功耗即可。
示例性地,参考信号与SSB的传输时间差位于时差阈值范围内,可包括但不限于:参考信号与SSB的传输时间差小于第一设定阈值,如此,相对于测量多个SSB,可以减少UE处于唤醒状态的时长,从而可以节省功耗。该第一设定阈值可根据SSB之间的传输时间差来确定,例如,第一设定阈值小于或等于相邻两个SSB传输时间差,或者,小于传输时间差最大的两个SSB。
示例性地,考虑到参考信号的传输带宽可能大于SSB的传输带宽,参考信号与SSB的传输时间差位于时差阈值范围内,还可包括但不限于:参考信号和SSB的传输时间差大于第二设定阈值。若参考信号和SSB位于不同的频带上,或者参考信号和SSB的带宽重叠之后,带宽较大;若UE工作较大带宽的情况下,则同样具有较大的带宽。此时,若所述参考信号和SSB的传输时间差大于第二设定阈值,减少SSB和参考信号在时域重叠时,UE待测量的带宽大小。示例性地,所述第二设定阈值可为大于0或等于0。
此处的预设范围可为网络侧根据参考信号的配置和SSB的配置确定的。该预设范围的上限值和下限值,可以和所述信噪比阈值一样作为网络侧下发的阈值信息,由UE接收。
在一个实施例中,所述允许所述参考信号用于RRM测量的第一条件包括以下至少之一:
所述参考信号的信噪比大于信噪比阈值;
所述参考信号与同步信号块SSB的传输时间差位于时差阈值范围内;
接收到寻呼下行控制信息DCI携带的生效指示。
在一个实施例中,通过寻呼DCI下发生效指示,可为与第一条件信息携带的阈值信息对应的第 一条件并列的条件。
在另一个实施例中,通过寻呼DCI下发生效指示,可为第一条件信息携带的阈值信息对应的第一条件的补充条件。示例性地,第一条件信息的阈值信息为空时,相当于告知UE在接收到寻呼DCI携带的生效指示则认为满足允许使用参考信号进行RRM测量的条件生效。
在一些情况下,基站还可以生效指示的下发,指示UE采用TRS/CSI-RS进行RRM测量。该生效指示可以由各种DCI携带。DCI下发具有下发速率快的特点。
故在一些实施例中,满足所述第一条件,可包括:
接收到寻呼下行控制信息DCI携带的生效指示。
在本公开实施例中,为了减少引入新的DCI,采用寻呼DCI携带该生效指示。所述寻呼DCI可指示发送寻呼消息的资源信息的DCI,在寻呼DCI内增加指示比特,因此UE在处于唤醒状态监听寻呼DCI时,同步监听到参考信号用于RRM测量的生效条件信息,而无需在额外的时机醒来监听生效指示,从而再次节省了UE的功耗。
例如,所述生效指示,可为所述寻呼DCI中保留比特或者保留比特值。例如,保留比特可为暂时预留着没有分配给任意信息使用的比特。保留比特值对应的比特可为已经分配给其他信息使用,但是这些比特有一些比特值还没有使用,这种没有使用的比特值可为认为是保留值。例如,有两个比特,具有4种取值,其中3种取值已经用于其他信息的指示,剩余一种指示信息,可作为生效比特使用。此时,若该两个比特的为上述3种取值,可认为基站没有下发生效比特而UE也会接收不到生效比特。若该两个比特的取值为上述3种取值以外的另一种取值,可认为基站已下发生效比特,而UE也将通过寻呼DCI的接收,接收到所述寻呼DCI携带的生效比特。
上述是对生效条件信息指示的参考信号用于RRM测量的生效条件的举例,具体实现时,还可以是其他例子,例如,测量到TRS/CSI-RS的参考信号接收功率(Reference Signal Received Power,RSRP)或者参考信号接收质量(Reference Signal Received Quality,RSPQ)大于对应的阈值,可认为满足所述参考信号用于RRM测量的生效条件。
在一个实施例中,所述寻呼DCI携带的不仅有寻呼时机PO的资源参数的指示比特,还携带有所述生效比特,如此寻呼DCI携带的内容增加了。
在另一个实施例中,所述接收到寻呼DCI携带的生效指示,还包括:在本PO周期或前M个周期接收到寻呼DCI携带的生效指示。M为大于或等于2的正整数。
在一个实施例中,所述生效指示由所述寻呼DCI的保留位携带。
在一个实施例中,所述接收到寻呼DCI携带的生效指示,包括:接收到上一个PO周期的寻呼DCI携带的生效指示。在接收到上一个PO周期的寻呼DCI携带的指示在本PO寻呼周期内所述参考信号用于RRM测量的生效指示。
若采用寻呼DCI携带的生效指示,则在上一个PO周期接收到携带有允许使用参考信号进行RRM测量的生效指示之后,则在本PO周期内自动使用TRS/CSI-RS进行RRM测量。
若接收到上一个PO周期的寻呼DCI携带且指示本PO周期内允许使用参考信号进行RRM测量 的生效指示,确定满足第一条件,相当于一次第一条件的判定的持续时长为一个PO周期。通过前一个PO周期的寻呼DCI携带生效指示,指示本PO周期内第一条件是否满足,方便基站灵活动态告知UE是否使用参考信号用于RRM测量。
在一个实施例中,所述接收到寻呼下行控制信息DCI携带的生效指示,包括:
响应于所述第一条件信息未携带所述阈值信息,接收到寻呼DCI携带的生效指示。
这种情况适用于,网络侧没有确定出合适的阈值信息,则先下发生效条件信息,再通过寻呼DCI携带的生效指示告知UE使用参考信号进行RRM测量生效。
在一个实施例中,所述第一条件信息包括阈值字段和指示字段。所述阈值字段携带阈值信息;所述指示字段用于指示是否采用接收到生效比特来指示使用参考信号进行RRM测量。此时,所述生效条件信息未携带所述阈值信息时,所述第一条件信息未携带阈值信息可包括:所述预设信息所在的阈值字段为空;和/或,所述阈值字段携带的比特序列为预设比特序列;和/或,在另一个实施例中,所述指示字段内携带的比特值指示接收到生效指示生效。
在另一个实施例中,所述第一条件信息可包含阈值字段且不包含所述指示字段;若阈值字段为空或者预设比特序列,则隐含告知采用是否接收到生效比特确定是否采用参考信号进行RRM测量。
在一个实施例中,所述生效条件信息为半静态周期配置。
在一些实施例中,所述生效条件信息为半静态周期配置,即生效条件信息是半静态的周期配置或者说半静态的周期调度的。即所述生效条件信息是在被调度的半静态周期内生效的,在其未被调度的周期内是不起作用的。
如此,若生效条件信息在某一个半静态周期生效,则表明在该半静态周期内生效条件信息生效,UE可按照生效条件信息确定是否使用参考信号进行RRM测量和/或用于供UE与基站之间的同步;否则,UE不用按照生效条件信息来确定使用参考信号进行RRM测量和/或用于供UE与基站之间的同步。
采用半静态周期配置,一方面实现了周期性配置,另一方面可以通过半静态周期的配置激活或去激活,实现配置的生效和失效的灵活控制。
如图3所示,本公开实施例提供的参考信号的生效条件信息处理方法还包括:
S120:下发激活或去激活所述半静态周期配置的生效条件信息的DCI。
本公开实施例中提供的生效条件信息处理方法可以单独使用,也可以与图2等所示的方法结合使用。
在公开实施例中,通过DCI激活或去激活半静态周期配置,即通过DCI指示生效条件作用的周期范围,或者,指示生效条件不作用的周期范围。
所述生效条件信息是半静态周期配置的,如此,在哪些半静态周期对应的周期内所述生效条件信息生效,可以通过DCI携带的激活指示进行激活,和/或,在哪些半静态周期对应的周期内所述生效条件信息不生效,可以通过DCI携带的去激活指示进行去激活。若生效条件信息在一个半静态周期去激活了,则表明在该半静态周期内生效条件信息不生效,UE无需按照生效条件信息确定是否使 用参考信号进行RRM测量和/或供UE与基站之间的同步。若生效条件信息在某一个半静态周期激活了,则表明在该半静态周期内生效条件信息生效,UE可按照生效条件信息确定是否使用参考信号进行RRM测量和/或用于供UE与基站之间的同步。
在一个实施例中,该DCI可为前述的寻呼DCI,或者寻呼DCI以外的其他的不携带寻呼消息的资源参数的任意DCI。
可以理解地,在一些实施例中,基站先下发参考信号的生效条件信息,在需要需要激活该生效条件信息作用的半静态周期内或者半静态周期之前,下发所述DCI激活所述生效条件信息。如此,UE将在生效条件信息被激活的半静态周期内,自行判断是否满足使用参考信号进行RRM测量和/或与基站之间同步的生效条件,如果满足对应条件,则使用参考信号的检测执行RRM测量和/或实现UE与基站之间的同步。
参考图4A所示,本公开实施例提供一种信息处理方法,应用于UE中,包括:
接收参考信号的生效条件信息,其中,所所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
该参考信号的处理方法为应用于UE中的方法。该UE可为各种类型的UE。
在一些实施例中,该UE可为支持非连续接收(DRX)模式或者扩展非连续接收(e-DRX)模式的UE。
UE可以在连接态下或者非连接态下接收生效条件信息。此处的非连接态可包括:空闲态或者非激活态。
在接收到所述生效条件信息之后,在进入到非连接态之后,可以根据生效条件信息确定将参考信号用于第一用途。
此处的参考信号包括但不限于前述TRS和/或CSI-RS。
此处的第一用于包括但不限于:RRM测量和/或UE与基站之间的同步。
如图4B所示,本公开实施例提供一种信息处理方法,其中,应用于用户设备UE中,所述方法包括:
S210:接收参考信号的生效条件信息,其中,所述参考信号包括:TRS和/或CSI-RS;所述生效条件信息,指示所述参考信号用于第一用途的生效条件;所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
该参考信号的处理方法为应用于UE中的方法。该UE可为各种类型的UE。
此处,UE在接收到所述生效条件信息之后,在进入到非连接态之后,可以根据生效条件信息确定使用参考信号进行RRM测量和/或用于UE与基站之间的同步。
若UE在需要进行RRM测量时不满足生效条件信息指示的条件,则不用TRS/CSI-RS等参考信号进行RRM测量,而是会继续使用SSB进行RRM测量。例如,通过测量本小区的SSB得到本小区的RRM测量的测量结果,通过对邻小区的SSB的测量得到邻小区的RRM测量。
值得注意的是:此处的RRM测量可包括:本小区的RRM测量和/或邻小区的RRM测量。
若UE在需要进行与基站同步时不满足生效条件信息指示的条件,则不用TRS/CSI-RS等参考信号进行同步,而是会继续使用SSB进行与基站之间的同步。
在本公开实施例中,UE接收到所述生效条件信息时,在需要进行RRM测量时和/或根据TRS/CSI-RS的传输时机,根据所述生效条件信息确定是否满足使用TRS/CSI-RS进行RRM测量的条件,若满足则在TRS/CSI-RS等参考信号下发时,测量所述TRS/CSI-RS并根据TRS/CSI-RS的测量结果得到RRM测量的测量结果。
在一个实施例中,所述S210可包括:
接收高层信令发送的所述生效条件信息。
在本公开实施例中,所述生效条件信息是携带在高层信令中的。该高层信令包括但不限于RRC信令和/或MAC层信令的。
在一个实施例中,所述生效条件信息包括:
第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
和/或,
第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
此处对第一条件信息和第二条件信息的相关描述,可以参见前述实施例,此处就不再重复了。
所述第一条件信息包括:
指示允许所述参考信号进行RRM测量的阈值信息。
该阈值信息可是:对应阈值的具体取值和/或阈值索引,总之,该阈值信息是可以供UE确定对应阈值的信息。
在一个实施例中,所述阈值信息,指示以下之一:
信噪比阈值,其中,在所述参考信号的信噪比大于所述信噪比阈值时满足所述第一条件;
时差阈值范围,其中,在所述参考信号与所述同步信号SSB的传输时间差位于所述时差阈值范围内时满足所述第一条件。
在一个实施例中,信噪比阈值限定的参考信号的信噪比,若参考信号的信噪比足够大,则可认为满足第一条件。
在另一个实施例中,会根据参考信号和SSB的配置信息,确定参考信号和SSB在时域上传输的时差,在时差位于时差阈值范围内时即可认为满足所述第一条件。
在另一个实施例中,所述阈值信息可同时指示信噪比阈值和时差阈值范围,在参考信号的信噪比大于所述信噪比阈值,且在所述参考信号与所述同步信号SSB的传输时间差位于所述时差阈值范围内时,可认为满足所述第一条件。
在一个实施例中,满足所述第一条件可包括:接收到寻呼下行控制信息DCI携带的生效指示。
基站还可以通过寻呼DCI指示处于非连接态的UE可以使用参考信号进行RRM测量。
在一个实施例中,所述寻呼DCI携带生效比特。
可以理解地,所述接收到寻呼下行控制信息DCI携带的生效指示,包括:响应于所述第一条件 信息未携带所述阈值信息,接收到寻呼DCI携带的生效指示。
在本公开实施例中,若UE接收到生效条件信息的第一条件信息中未携带阈值信息,则会确定寻呼DCI是否携带有生效指示;在接收到生效指示,确定符合第一条件,否则可认为不符合第一条件。若符合第一条件,则UE会采用参考信号进行RRM测量,若不符合第一条件,则UE不会采用参考信号进行RRM测量。
在一个实施例中,所述生效指示由所述寻呼DCI的保留位携带。
该生效指示可以有本PO周期内的寻呼DCI携带,也可以有前m个PO周期的寻呼DCI携带。
在一个实施例中,所述接收到寻呼DCI携带的生效指示,包括:接收到上一个PO周期的寻呼DCI携带的生效指示。
若在本PO周期内接收到上一个PO周期的寻呼DCI携带的生效指示,确定满足第一条件,相当于一次第一条件的判定的持续时长为一个PO周期。通过前一个PO周期的寻呼DCI携带生效指示,指示本PO周期内第一条件是否满足,方便基站灵活动态告知UE是否使用参考信号用于RRM测量。
在一个实施例中,所述生效条件信息为半静态周期配置。
采用半静态周期配置,实现了生效条件信息的周期性配置,同时也可以半静态周期配置的去激活和激活,实现灵活动态的控制生效条件信息的生效与否。
在一个实施例中,如图5所示,所述方法还包括:
S220:接收激活或去激活所述半静态周期配置的条件信息的DCI。
该DCI可以指示生效条件信息应用的半静态周期。
如图6所示,本公开实施例提供一种信息处理装置,其中,应用于基站中,所述装置包括:
发送模块110,被配置为发送参考信号的生效条件信息,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
可以理解地,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS。
可以理解地,所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
示例性地,所述发送模块110,被配置为发送参考信号的生效条件信息,其中,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS;所述生效条件信息,指示所述参考信号用于第一用途的生效条件;所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
在一个实施例中,所述发送模块110可包括程序模块;所述程序模块被处理器执行之后,能够实现生效条件信息的发送。
在另一个实施例中,所述发送模块110可包括:软硬结合模块;所述软硬结合模块包括各种可编程阵列;所述可编程阵列包括但不限于:现场可编程阵列和/或复杂可编程阵列。
在还有一些实施例中,所述发送模块110可包括:纯硬件模块;所述纯硬件模块包括但不限于: 专用集成电路。
在一些实施例中,所述发送模块110,被配置为通过高层信令发送所述生效条件信息。
在一些实施例中,所述生效条件信息包括:
第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
和/或,
第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
在一些实施例中,所述第一条件信息包括:
指示允许所述参考信号进行RRM测量的阈值信息。
在一些实施例中,所述阈值信息,指示以下之一:
信噪比阈值,其中,在所述参考信号的信噪比大于所述信噪比阈值时满足所述第一条件;
时差阈值范围,其中,在所述参考信号与所述同步信号SSB的传输时间差位于所述时差阈值范围内时满足所述第一条件。
在一些实施例中,满足所述第一条件,包括:
接收到寻呼下行控制信息DCI携带的生效指示。
在一些实施例中,所述接收到寻呼下行控制信息DCI携带的生效指示,包括:响应于所述第一条件信息未携带所述阈值信息,接收到寻呼DCI携带的生效指示。
在一些实施例中,所述生效指示由所述寻呼DCI的保留位携带。
在一些实施例中,所述接收到寻呼DCI携带的生效指示,包括:接收到上一个PO周期的寻呼DCI携带的生效指示。
在一些实施例中,所述生效条件信息为半静态周期配置。
在一些实施例中,所述发送模块110,还被配置为下发激活或去激活所述半静态周期配置的DCI。
如图7所示,本公开实施例提供一种信息处理装置,其中,应用于用户设备UE中,所述方法包括:
接收模块210,被配置为接收参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
在一个实施例中,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS。
在另一个实施例中,所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
示例性地,所述接收模块210,被配置为接收参考信号的生效条件信息,其中,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS;所述生效条件信息,指示所述参考信号用于第一用途的生效条件;所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
在一个实施例中,所述接收模块210可包括程序模块;所述程序模块被处理器执行之后,能够实现生效条件信息的接收。
在另一个实施例中,所述接收模块210可包括:软硬结合模块;所述软硬结合模块包括各种可编程阵列;所述可编程阵列包括但不限于:现场可编程阵列和/或复杂可编程阵列。
在还有一些实施例中,所述接收模块210可包括:纯硬件模块;所述纯硬件模块包括但不限于:专用集成电路。
在一个实施例中,所述接收模块210,被配置为接收高层信令发送的所述生效条件信息。
在一个实施例中,所述生效条件信息包括:
第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
和/或,
第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
在一个实施例中,所述第一条件信息包括:
指示允许所述参考信号进行RRM测量的阈值信息。
在一个实施例中,所述阈值信息,指示以下至少之一:
信噪比阈值,其中,在所述参考信号的信噪比大于所述信噪比阈值时满足所述第一条件;
时差阈值范围,其中,在所述参考信号与所述同步信号SSB的传输时间差位于所述时差阈值范围内时满足所述第一条件。
在一个实施例中,满足所述第一条件,包括:
接收到寻呼下行控制信息DCI携带的生效指示。
在一个实施例中,所述接收到寻呼下行控制信息DCI携带的生效指示,包括:
响应于所述第一条件信息未携带所述阈值信息,接收到寻呼DCI携带的生效指示。
在一个实施例中,所述生效指示由所述寻呼DCI的保留位携带。
在一个实施例中,所述接收到寻呼DCI携带的生效指示,包括:接收到上一个PO周期的寻呼DCI携带的生效指示。
在一个实施例中,所述生效条件信息为半静态周期配置。
在一个实施例中,所述接收模块210,还被配置为接收激活或去激活所述半静态周期配置的条件信息的DCI。
收寻呼过程包括从PO的对应搜索空间里检测PDCCH,进而解出寻呼(Paging DCI),如果解码到寻呼DCI内的寻呼资源参数,再根据寻呼资源参数,接收PDSCH的PO上发送的寻呼消息。UE进而解调寻呼消息;如果寻呼消息里的寻呼ID是自己的,则发起连接,否则继续睡眠;如果没有解到DCI则说明在这个非连续接收的唤醒(DRX_on)周期内没有被寻呼。
空闲态/非连接态UE的DRX,是指UE以一定周期T为参考,T时间内在PO位置附近醒来接收寻呼的过程。
在本公开实施例中,空闲态/非激活态等非激活态的UE,共享连接态的TRS/CSI-RS配置课。
连接态的参考信号实际面向小区或者一组UE(虽然配置上是UE粒度的)。
目前假设UE在非小区中心通过接收3个周期的SSB来进行精同步;如果UE知道有配置的 TRS/CSI-RS,那么可以通过一个周期的SSB来同步。这种实际上就是使用TRS/CSI-RS进行
在一些实施例中,周期性配置的TRS/CSI-RS;并且在SIB的时域位置配置可能性比较大,其他RRC信令也不排除;
配置的共享TRS/CSI-RS,如果on/off是否通知UE,也是本公开实施例中需要讨论的一个问题。TRS/CSI-RS的每资源单位的能量(Energy Per Resource element,EPRE)是相对于SSB的一个配置值,可根据该配置值进行RRM测量和/或供UE进行与基站之间的同步。
在一个实施例中,基站发送可以用于本小区RRM测量的共享TRS/CSI-RS的配置条件信息。
可以理解地,所述条件指通过高层信令配置的生效条件,是否允许使用共享TRS/CSI-RS用于本小区的RRM测量。
示例性地,该生效条件可包括:
当参考信号的信噪比大于某个阈值A,则使用TRS/CSI-RS进行RRM测量的测量方式生效。
示例性地,该生效条件还可以包括:
当参考信号和SSB时间的时间差大于t时,则使用TRS/CSI-RS进行RRM测量的测量方式生效。
在一个实施例中,基站还可以通过前一个PO周期的DCI,通过空闲态/非激活态的UE在下个PO周期使用该RRM测量。
上述寻呼DCI携带的指示是否生效的比特,可以使用的paging DCI中的保留位。
上述TRS/CSI-RS的配置是一个半静态(semi-static)的配置,而DCI相当于在此基础上的动态生效开关,类似半静态的开关。
此处的TRS/CSI-RS的配置包括但不限于:前述TRS/CSI-RS的生效条件的配置和/或TRS/CSI-RS的资源配置等。资源配置至少包括:TRS/CSI-RS的资源参数。
UE收到上述配置后,根据高层信令配置的信息确定共享TRS/CSI-RS等参考信号是否可以用于本小区的RRM测量,若参考信号可用于RRM测量,相当于实现RRM放松测量。此处的RRM放松测量是指在进行RRM测量减少测量的SSB个数和/或减少测量的SSB的采样点。
如果满足,UE使用上述参考信号进行RRM测量,否则继续使用SSB进行RRM测量.
当满足生效的条件之后,UE还需要基于上一个PO的DCI确定下一个周期是否可以使用TRS/CSI-RS参考信号进行本小区测量。本公开实施例提供一种通信设备,包括:
用于存储处理器可执行指令的存储器;
处理器,分别存储器连接;
其中,处理器被配置为执行前述任意技术方案提供的参考信号的生效条件信息处理方法。
处理器可包括各种类型的存储介质,该存储介质为非临时性计算机存储介质,在通信设备掉电之后能够继续记忆存储其上的信息。
这里,所述通信设备包括基站或UE。
所述处理器可以通过总线等与存储器连接,用于读取存储器上存储的可执行程序,例如,如图2A、图2B、图3、图4A、图4B至图5所示的方法的至少其中之一。
图8是根据一示例性实施例示出的一种UE(UE)800的框图。例如,UE800可以是移动电话,计算机,数字广播用户设备,消息收发设备,游戏控制台,平板设备,医疗设备,健身设备,个人数字助理等。
参照图8,UE800可以包括以下一个或多个组件:处理组件802,存储器804,电源组件806,多媒体组件808,音频组件810,输入/输出(I/O)的接口812,传感器组件814,以及通信组件816。
处理组件802通常控制UE800的整体操作,诸如与显示,电话呼叫,数据通信,相机操作和记录操作相关联的操作。处理组件802可以包括一个或多个处理器820来执行指令,以完成上述的方法的全部或部分步骤。此外,处理组件802可以包括一个或多个模块,便于处理组件802和其他组件之间的交互。例如,处理组件802可以包括多媒体模块,以方便多媒体组件808和处理组件802之间的交互。
存储器804被配置为存储各种类型的数据以支持在UE800的操作。这些数据的示例包括用于在UE800上操作的任何应用程序或方法的指令,联系人数据,电话簿数据,消息,图片,视频等。存储器804可以由任何类型的易失性或非易失性存储设备或者它们的组合实现,如静态随机存取存储器(SRAM),电可擦除可编程只读存储器(EEPROM),可擦除可编程只读存储器(EPROM),可编程只读存储器(PROM),只读存储器(ROM),磁存储器,快闪存储器,磁盘或光盘。
电源组件806为UE800的各种组件提供电力。电源组件806可以包括电源管理系统,一个或多个电源,及其他与为UE800生成、管理和分配电力相关联的组件。
多媒体组件808包括在所述UE800和用户之间的提供一个输出接口的屏幕。在一些实施例中,屏幕可以包括液晶显示器(LCD)和触摸面板(TP)。如果屏幕包括触摸面板,屏幕可以被实现为触摸屏,以接收来自用户的输入信号。触摸面板包括一个或多个触摸传感器以感测触摸、滑动和触摸面板上的手势。所述触摸传感器可以不仅感测触摸或滑动动作的边界,而且还检测与所述触摸或滑动操作相关的持续时间和压力。在一些实施例中,多媒体组件808包括一个前置摄像头和/或后置摄像头。当UE800处于操作模式,如拍摄模式或视频模式时,前置摄像头和/或后置摄像头可以接收外部的多媒体数据。每个前置摄像头和后置摄像头可以是一个固定的光学透镜系统或具有焦距和光学变焦能力。
音频组件810被配置为输出和/或输入音频信号。例如,音频组件810包括一个麦克风(MIC),当UE800处于操作模式,如呼叫模式、记录模式和语音识别模式时,麦克风被配置为接收外部音频信号。所接收的音频信号可以被进一步存储在存储器804或经由通信组件816发送。在一些实施例中,音频组件810还包括一个扬声器,用于输出音频信号。
I/O接口812为处理组件802和外围接口模块之间提供接口,上述外围接口模块可以是键盘,点击轮,按钮等。这些按钮可包括但不限于:主页按钮、音量按钮、启动按钮和锁定按钮。
传感器组件814包括一个或多个传感器,用于为UE800提供各个方面的状态评估。例如,传感器组件814可以检测到设备800的打开/关闭状态,组件的相对定位,例如所述组件为UE800的显示器和小键盘,传感器组件814还可以检测UE800或UE800一个组件的位置改变,用户与UE800接 触的存在或不存在,UE800方位或加速/减速和UE800的温度变化。传感器组件814可以包括接近传感器,被配置用来在没有任何的物理接触时检测附近物体的存在。传感器组件814还可以包括光传感器,如CMOS或CCD图像传感器,用于在成像应用中使用。在一些实施例中,该传感器组件814还可以包括加速度传感器,陀螺仪传感器,磁传感器,压力传感器或温度传感器。
通信组件816被配置为便于UE800和其他设备之间有线或无线方式的通信。UE800可以接入基于通信标准的无线网络,如WiFi,2G或3G,或它们的组合。在一个示例性实施例中,通信组件816经由广播信道接收来自外部广播管理系统的广播信号或广播相关信息。在一个示例性实施例中,所述通信组件816还包括近场通信(NFC)模块,以促进短程通信。例如,在NFC模块可基于射频识别(RFID)技术,红外数据协会(IrDA)技术,超宽带(UWB)技术,蓝牙(BT)技术和其他技术来实现。
在示例性实施例中,UE800可以被一个或多个应用专用集成电路(ASIC)、数字信号处理器(DSP)、数字信号处理设备(DSPD)、可编程逻辑器件(PLD)、现场可编程门阵列(FPGA)、控制器、微控制器、微处理器或其他电子元件实现,用于执行上述方法。
在示例性实施例中,还提供了一种包括指令的非临时性计算机可读存储介质,例如包括指令的存储器804,上述指令可由UE800的处理器820执行以完成上述方法。例如,所述非临时性计算机可读存储介质可以是ROM、随机存取存储器(RAM)、CD-ROM、磁带、软盘和光数据存储设备等。
如图9所示,本公开一实施例示出一种基站的结构。例如,基站900可以被提供为一网络侧设备。参照图9,基站900包括处理组件922,其进一步包括一个或多个处理器,以及由存储器932所代表的存储器资源,用于存储可由处理组件922的执行的指令,例如应用程序。存储器932中存储的应用程序可以包括一个或一个以上的每一个对应于一组指令的模块。此外,处理组件922被配置为执行指令,以执行上述方法前述应用在所述基站的任意方法,例如,如图2A、图2B、图3、图4A、图4B至图5所示方法。
基站900还可以包括一个电源组件926被配置为执行基站900的电源管理,一个有线或无线网络接口950被配置为将基站900连接到网络,和一个输入输出(I/O)接口958。基站900可以操作基于存储在存储器932的操作系统,例如Windows Server TM,Mac OS XTM,UnixTM,LinuxTM,FreeBSDTM或类似。
本领域技术人员在考虑说明书及实践这里公开的发明后,将容易想到本发明的其它实施方案。本公开旨在涵盖本发明的任何变型、用途或者适应性变化,这些变型、用途或者适应性变化遵循本发明的一般性原理并包括本公开未公开的本技术领域中的公知常识或惯用技术手段。说明书和实施例仅被视为示例性的,本发明的真正范围和精神由下面的权利要求指出。
应当理解的是,本发明并不局限于上面已经描述并在附图中示出的精确结构,并且可以在不脱离其范围进行各种修改和改变。本发明的范围仅由所附的权利要求来限制。

Claims (33)

  1. 一种信息处理方法,其中,应用于基站中,所述方法包括:
    发送参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
  2. 根据权利要求1所述的方法,其中,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS。
  3. 根据权利要求1或2所述的方法,其中,
    所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
  4. 根据权利要求3所述的方法,其中,所述生效条件信息包括:
    第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
    和/或,
    第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
  5. 根据权利要求4所述的方法,其中,所述第一条件信息包括:
    指示允许所述参考信号进行RRM测量的阈值信息。
  6. 根据权利要求5所述的方法,其中,所述阈值信息,指示以下至少之一:
    信噪比阈值,其中,所述参考信号的信噪比大于所述信噪比阈值时满足所述允许参考信号用于RRM测量的条件;
    时差阈值范围,其中,所述参考信号与所述同步信号SSB的传输时间差位于所述时差阈值范围内满足所述参考信号用于RRM测量的条件。
  7. 根据权利要求4所述的方法,其中,满足所述第一条件,包括:
    接收到寻呼下行控制信息DCI携带的生效指示。
  8. 根据权利要求7所述的方法,其中,所述接收到寻呼下行控制信息DCI携带的生效指示,包括:
    响应于所述第一条件信息未携带所述阈值信息,接收到寻呼DCI携带的生效指示。
  9. 根据权利要求7所述的方法,其中,所述接收到寻呼DCI携带的生效指示,包括:
    接收到上一个寻呼时机PO周期的寻呼DCI携带的生效指示。
  10. 根据权利要求1所述的方法,其中,所述生效条件信息为半静态周期配置。
  11. 根据权利要求1所述的方法,其中,所述方法还包括:
    下发激活或去激活所述半静态周期配置的DCI。
  12. 一种信息处理方法,其中,应用于用户设备UE中,所述方法包括:
    接收参考信号的生效条件信息,其中,所所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
  13. 根据权利要求12所述的方法,其中,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS。
  14. 根据权利要求12或13所述的方法,其中,所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
  15. 根据权利要求14所述的方法,其中,所述生效条件信息包括:
    第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
    和/或,
    第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
  16. 根据权利要求15所述的方法,其中,所述第一条件信息包括:
    指示允许所述参考信号进行RRM测量的阈值信息。
  17. 根据权利要求16所述的方法,其中,
    所述阈值信息,指示以下至少之一:
    信噪比阈值,其中,所述参考信号的信噪比大于所述信噪比阈值时满足所述允许参考信号用于RRM测量的条件;
    时差阈值范围,其中,所述参考信号与所述同步信号SSB的传输时间差位于所述时差阈值范围内满足所述参考信号用于RRM测量的条件。
  18. 根据权利要求15所述的方法,其中,满足所述第一条件,包括:
    接收到寻呼下行控制信息DCI携带的生效指示。
  19. 根据权利要求12所述的方法,其中,所述生效条件信息为半静态周期配置。
  20. 一种信息处理装置,其中,应用于基站中,所述装置包括:
    发送模块,被配置为发送参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
  21. 根据权利要求20所述的装置,其中,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS。
  22. 根据权利要求20或21所述的装置,其中,所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
  23. 根据权利要求22所述的装置,其中,所述生效条件信息包括:
    第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
    和/或,
    第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
  24. 根据权利要求23所述的装置,其中,所述第一条件信息包括:
    指示允许所述参考信号进行RRM测量的阈值信息。
  25. 根据权利要求23所述的装置,其中,满足所述第一条件,包括:
    接收到寻呼下行控制信息DCI携带的生效指示。
  26. 一种信息处理装置,其中,应用于用户设备UE中,所述装置包括:
    接收模块,被配置为接收参考信号的生效条件信息,其中,所述生效条件信息,指示所述参考信号用于第一用途的生效条件。
  27. 根据权利要求26所述的装置,其中,所述参考信号包括:跟踪参考信号TRS和/或信道状态信息CSI-参考信号RS。
  28. 根据权利要求26或27所述的装置,其中,所述第一用途包括:所述参考信号用于无线资源管理RRM测量和/或用于用户设备UE和所述基站之间的同步。
  29. 根据权利要求28所述的装置,其中,所述生效条件信息包括:
    第一条件信息,指示允许所述参考信号用于RRM测量的第一条件;
    和/或,
    第二条件信息,指示允许所述参考信号用于UE和所述基站同步的第二条件。
  30. 根据权利要求29所述的装置,其中,所述第一条件信息包括:
    指示允许所述参考信号进行RRM测量的阈值信息。
  31. 根据权利要求29所述的装置,其中,满足所述第一条件,包括:
    接收到寻呼下行控制信息DCI携带的生效指示。
  32. 一种通信设备,包括处理器、收发器、存储器及存储在存储器上并能够有所述处理器运行的可执行程序,其中,所述处理器运行所述可执行程序时执行如权利要求1至11或12至19任一项提供的方法。
  33. 一种计算机存储介质,所述计算机存储介质存储有可执行程序;所述可执行程序被处理器执行后,能够实现如权利要求1至11或12至19任一项提供的方法。
PCT/CN2021/071582 2021-01-13 2021-01-13 信息处理方法及装置、通信设备及存储介质 WO2022151089A1 (zh)

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