WO2018218444A1 - 接收和上报测量信号的方法、装置、基站和用户设备 - Google Patents

接收和上报测量信号的方法、装置、基站和用户设备 Download PDF

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Publication number
WO2018218444A1
WO2018218444A1 PCT/CN2017/086378 CN2017086378W WO2018218444A1 WO 2018218444 A1 WO2018218444 A1 WO 2018218444A1 CN 2017086378 W CN2017086378 W CN 2017086378W WO 2018218444 A1 WO2018218444 A1 WO 2018218444A1
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Prior art keywords
measurement
current
configuration information
measurement signal
measurement configuration
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PCT/CN2017/086378
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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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Publication date
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 ES17911859T priority Critical patent/ES2932618T3/es
Priority to PCT/CN2017/086378 priority patent/WO2018218444A1/zh
Priority to CN201780000393.8A priority patent/CN108521878B/zh
Priority to EP17911859.1A priority patent/EP3605918B1/en
Publication of WO2018218444A1 publication Critical patent/WO2018218444A1/zh
Priority to US16/655,585 priority patent/US11304083B2/en

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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
    • H04B7/0686Hybrid systems, i.e. switching and simultaneous transmission
    • H04B7/0695Hybrid systems, i.e. switching and simultaneous transmission using beam selection
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports
    • 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
    • H04B7/0408Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas using two or more beams, i.e. beam diversity
    • 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
    • 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
    • H04L5/0053Allocation of signaling, i.e. of overhead other than pilot signals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/24Cell structures
    • H04W16/28Cell structures using beam steering
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices

Definitions

  • the present disclosure relates to the field of communications technologies, and in particular, to a method, an apparatus, a base station, a user equipment, and a computer readable storage medium for receiving and reporting measurement signals.
  • the measurement reference signal is based on beam scanning, so the management of the measurement beam is different from that of the LTE system.
  • the system configures only one of the beams as the measurement reference signal beam of the UE, but the beam configured by the system is not necessarily the optimal beam. Therefore, the UE performs beam measurement based on the system configuration.
  • the signal may not be accurate enough.
  • the present application discloses a method, apparatus, base station, user equipment, and computer readable storage medium for receiving and reporting measurement signals to improve the accuracy of measurement signals of a UE in a multi-beam coverage scenario.
  • a method of receiving a measurement signal comprising:
  • the first measurement configuration information includes multiple beams configured by the current base station for the current UE;
  • the generating the first measurement configuration information for the current UE according to the multi-beam measurement capability information includes:
  • the first measurement configuration information is generated for the current UE, where the current measurement base station includes the current base station The plurality of beams configured by the current UE.
  • the multiple beams include one main beam and at least one auxiliary beam
  • the first measurement configuration information further includes measurement resources corresponding to the main beam and the at least one auxiliary beam, respectively, and
  • the measurement resource corresponding to the main beam is larger than the measurement resource corresponding to each auxiliary beam, and the first measurement signal includes a first measurement signal corresponding to each beam;
  • the method further includes:
  • the method before the updating the measurement resource corresponding to each beam, the method further includes:
  • the third measurement configuration information is generated, where the current measurement information includes the current base station. a single beam configured by the UE, and the single beam is the reference beam, where the first preset threshold is greater than a second preset threshold;
  • the method before the updating the measurement resource corresponding to each beam, the method further includes:
  • the third measurement configuration information is generated, where the third measurement configuration information includes a single beam configured by the current base station for the current UE, and the single beam is the reference beam, where the first preset The threshold is greater than the second preset threshold;
  • the first measurement configuration information further includes measurement resources corresponding to each beam, and the measurement resources corresponding to each beam are the same, and the first measurement signal includes a corresponding to each beam. a measurement signal;
  • the method further includes:
  • the third measurement configuration information is generated, where the current measurement information includes the current base station. a single beam configured by the UE, and the single beam is the reference beam, where the first preset threshold is greater than a second preset threshold;
  • the first measurement configuration information further includes measurement resources corresponding to each beam, and the measurement resources corresponding to each beam are the same, and the first measurement signal includes a corresponding to each beam. a measurement signal;
  • the method further includes:
  • the third measurement configuration information is generated, where the third measurement configuration information includes the current base station. a single beam configured by the UE, and the single beam is the reference beam, where the first preset threshold is greater than a second preset threshold;
  • the multiple measurements in the first measurement configuration information include adjacent beams, and the first measurement configuration information further includes indication information of simultaneous measurement of adjacent beams, where the first measurement Configuration information for the current UE And generating, according to the adjacent beam and the indication information, a first measurement signal corresponding to each beam.
  • a method for reporting a measurement signal comprising:
  • first measurement configuration information that is sent according to the multiple beam measurement capability information, where the first measurement configuration information includes multiple beams that are configured by the current base station for the current UE;
  • the receiving the first measurement configuration information that is sent by the base station according to the multi-beam measurement capability information includes:
  • Second measurement configuration information that is sent according to the multiple beam measurement capability information, where the second measurement configuration information includes a single beam that is configured by the current base station for the current UE;
  • the method further includes:
  • the multiple indicators in the first measurement configuration information include adjacent beams
  • the first measurement configuration information further includes indication information that is simultaneously measured by adjacent beams, according to the Generating the first measurement signal by the multiple beams included in the first measurement configuration information, including:
  • an apparatus for receiving a measurement signal comprising:
  • the first receiving module is configured to receive the multi-beam measurement capability information reported by the current UE;
  • a generating module configured to generate, according to the multi-beam measurement capability information received by the first receiving module, a current UE a first measurement configuration information, where the first measurement configuration information includes multiple beams configured by the current base station for the current UE;
  • a first sending module configured to send the first measurement configuration information generated by the generating module to the current UE, where the current UE is configured according to the multiple included in the first measurement configuration information Generating a first measurement signal;
  • the second receiving module is configured to receive the first measurement signal generated by the current UE and generated according to the first measurement configuration information sent by the first sending module.
  • the generating module includes:
  • a first generation sub-module configured to generate second measurement configuration information for the current UE according to the multi-beam measurement capability information, where the second measurement configuration information includes a single beam configured by the current base station for the current UE;
  • a sending submodule configured to send, to the current UE, the second measurement configuration information generated by the first generation submodule, for the UE to use the single ticket included in the second measurement configuration information a second measurement signal of beamforming;
  • the receiving submodule is configured to receive the second measurement signal generated by the current UE according to the second measurement configuration information sent by the sending submodule;
  • the second generation submodule is configured to generate the first measurement configuration information for the current UE if the second measurement signal received by the receiving submodule is inconsistent with the estimated second measurement signal,
  • the first measurement configuration information includes the multiple beams configured by the current base station for the current UE.
  • the multiple beams include one main beam and at least one auxiliary beam
  • the first measurement configuration information further includes measurement resources corresponding to the main beam and the at least one auxiliary beam, respectively, and
  • the measurement resource corresponding to the primary beam is larger than the measurement resource corresponding to each secondary beam
  • the first measurement signal includes a first measurement signal corresponding to each beam; the device further includes:
  • a confirmation update module configured to confirm, after the second receiving module receives the first measurement signal reported by the current UE, that the current UE is in the location according to the first measurement signal corresponding to each beam Determining the geometrical center of the plurality of beams, and updating the measurement resources corresponding to each of the beams, so that the measurement resources corresponding to the primary beam are equal to the measurement resources corresponding to each of the secondary beams;
  • the third receiving module is configured to receive the first measurement signal corresponding to each beam that is reported by the current UE according to the updated measurement resource of the acknowledgment update module.
  • the apparatus further includes:
  • a first determining module configured to determine a reference beam according to the first measurement signal corresponding to each beam before the confirmation update module updates the measurement resource corresponding to each beam;
  • a first acknowledgment generating module configured to generate third measurement configuration information, if the signal of the cell where the current UE is located is greater than the first preset threshold, and the signal of the neighboring cell is smaller than the second preset threshold, the third measurement
  • the configuration information includes a single beam configured by the current base station for the current UE, and the single beam is the reference beam determined by the first determining module, where the first preset threshold is greater than a second preset threshold.
  • a second sending module configured to send the third measurement configuration information generated by the first acknowledgement generating module to the current UE, where the UE is configured according to the third measurement configuration information Generating a third measurement signal by a single beam;
  • the fourth receiving module is configured to receive the third measurement signal that is generated by the current UE and is generated according to the third measurement configuration information sent by the second sending module.
  • the apparatus further includes:
  • a second determining module configured to determine a reference beam according to the first measurement signal corresponding to each beam before the confirmation update module updates the measurement resource corresponding to each beam;
  • a second acknowledgment generating module configured to generate third measurement configuration information, if the signal of the cell where the current UE is located is smaller than the first preset threshold, and the signal of the neighboring cell is greater than the second preset threshold, the third measurement
  • the configuration information includes a single beam configured by the current base station for the current UE, and the single beam is the reference beam determined by the second determining module, where the first preset threshold is greater than a second preset threshold.
  • a third sending module configured to send the third measurement configuration information generated by the second acknowledgment generating module to the current UE, to be used by the UE according to the single beam included in the third measurement configuration information Generating a third measurement signal;
  • the fifth receiving module is configured to receive the third measurement signal generated by the current UE and generated by the third measurement configuration information sent by the third sending module.
  • the first measurement configuration information further includes measurement resources corresponding to each beam, and the measurement resources corresponding to each beam are the same, and the first measurement signal includes a corresponding to each beam. a measurement signal;
  • the device also includes:
  • a third determining module configured to: after the second receiving module receives the first measurement signal reported by the current UE, determine a reference beam according to the first measurement signal corresponding to each beam;
  • a third acknowledgement generating module configured to: if it is confirmed that the signal of the cell where the current UE is located is greater than a first preset threshold If the signal of the neighboring cell is smaller than the second preset threshold, the third measurement configuration information is generated, where the third measurement configuration information includes a single beam configured by the current base station for the current UE, and the single beam is the third Determining, by the module, the reference beam, where the first preset threshold is greater than a second preset threshold;
  • a fourth sending module configured to send the third measurement configuration information generated by the third acknowledgement generating module to the current UE, where the UE is configured according to the third measurement configuration information included in the third Generating a third measurement signal by a single beam;
  • the sixth receiving module is configured to receive the third measurement signal that is generated by the current UE and is generated according to the third measurement configuration information that is sent by the fourth sending module.
  • the first measurement configuration information further includes measurement resources corresponding to each beam, and the measurement resources corresponding to each beam are the same, and the first measurement signal includes a corresponding to each beam. a measurement signal;
  • the device also includes:
  • a fourth determining module configured to: after the second receiving module receives the first measurement signal reported by the current UE, determine a reference beam according to the first measurement signal corresponding to each beam;
  • a fourth acknowledgment generating module configured to generate third measurement configuration information, if the signal of the cell where the current UE is located is smaller than the first preset threshold, and the signal of the neighboring cell is greater than the second preset threshold, the third measurement
  • the configuration information includes a single beam configured by the current base station for the current UE, and the single beam is the reference beam determined by the fourth determining module, where the first preset threshold is greater than a second preset threshold.
  • a fifth sending module configured to send the third measurement configuration information to the current UE, where the UE generates a third measurement signal according to the single beam included in the third measurement configuration information
  • the seventh receiving module is configured to receive the third measurement signal generated by the current UE and generated by the third measurement configuration information sent by the fifth sending module.
  • the multiple measurements in the first measurement configuration information include adjacent beams, and the first measurement configuration information further includes indication information of simultaneous measurement of adjacent beams, where the first measurement The configuration information is used by the current UE to simultaneously generate a first measurement signal corresponding to each beam according to the adjacent beam and the indication information.
  • an apparatus for reporting a measurement signal comprising:
  • the first reporting module is configured to report the multi-beam measurement capability information of the current UE to the base station;
  • the first receiving module is configured to receive the first measurement configuration information that is sent by the base station according to the multi-beam measurement capability information reported by the first reporting module, where the first measurement configuration information includes the current base station Current UE Multiple beams placed;
  • a first generation module configured to generate a first measurement signal according to the multiple beams included in the first measurement configuration information received by the first receiving module
  • the second reporting module is configured to report the first measurement signal generated by the first generation module to the base station.
  • the first receiving module includes:
  • the first receiving submodule is configured to receive the second measurement configuration information that is sent by the base station according to the multi-beam measurement capability information, where the second measurement configuration information includes the current base station configured for the current UE Beam
  • Generating a submodule configured to generate a second measurement signal according to the single beam included in the second measurement configuration information received by the first receiving submodule;
  • the reporting sub-module is configured to report the second measurement signal generated by the generating sub-module to the base station;
  • the second receiving submodule is configured to receive the first measurement configuration information that is sent by the base station according to the second measurement signal reported by the reporting submodule.
  • the apparatus further includes:
  • the second receiving module is configured to receive the third measurement configuration information that is sent by the base station, where the third measurement configuration information includes a single beam that is configured by the current base station for the current UE;
  • a second generation module configured to generate a third measurement signal according to the single beam included in the third measurement configuration information received by the second receiving module
  • the third reporting module is configured to report the third measurement signal generated by the second generation module to the base station.
  • the multiple indicators in the first measurement configuration information include adjacent beams, and the first measurement configuration information further includes indication information that is simultaneously measured by adjacent beams, where the first generation Module, configured as:
  • a base station including:
  • a memory for storing processor executable instructions
  • processor is configured to:
  • the first measurement configuration information includes multiple beams configured by the current base station for the current UE;
  • a user equipment including:
  • a memory for storing processor executable instructions
  • processor is configured to:
  • first measurement configuration information that is sent according to the multiple beam measurement capability information, where the first measurement configuration information includes multiple beams that are configured by the current base station for the current UE;
  • a computer readable storage medium having stored thereon a computer program, the program being implemented by a processor to implement the step of receiving a measurement signal.
  • a computer readable storage medium having stored thereon a computer program that, when executed by a processor, implements the steps of a method of reporting a measurement signal.
  • the first measurement configuration information that includes multiple beams is generated for the current UE according to the multi-beam measurement capability information reported by the current UE, so that the current UE can generate the first measurement signal according to multiple beams included in the first measurement configuration information, thereby improving
  • the UE measures the accuracy of the signal in a multi-beam coverage scenario.
  • the measurement resources corresponding to each beam are updated, so that the measurement resources corresponding to the main beam are equal to the measurement resources corresponding to each auxiliary beam, thereby reasonably for each beam. Minute With measurement resources, and can ensure the accuracy of the measurement signal.
  • the current UE can generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • the current UE can generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • the base station can send the first measurement configuration information to the current UE according to the multi-beam measurement capability information reported by the current UE by reporting the multi-beam measurement capability information of the current UE to the base station, and the current UE may receive the first measurement configuration information according to the
  • the first measurement signal is generated by the plurality of beams included in the measurement configuration information, and the first measurement signal is reported to the base station, thereby improving the accuracy of the measurement signal of the UE in the multi-beam coverage scenario.
  • the single beam is changed to multiple beams, so that the UE can generate the first measurement signal based on multiple beams, thereby facilitating the accuracy of the measurement signal.
  • the third measurement signal is generated by receiving the third measurement configuration information sent by the base station, and the third measurement signal is generated according to the single beam included in the third measurement configuration information, so that the third measurement signal is reported to the base station to ensure the accuracy of the measurement signal.
  • FIG. 1 is a flow chart showing a method of receiving a measurement signal according to an exemplary embodiment of the present application
  • FIG. 2 is a flowchart of generating first measurement configuration information for a current UE according to multi-beam measurement capability information according to an exemplary embodiment of the present application
  • FIG. 3 is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application.
  • FIG. 4A is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application.
  • FIG. 4B is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application.
  • FIG. 5A is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application.
  • FIG. 5B is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application.
  • FIG. 6 is a flowchart of a method for reporting a measurement signal according to an exemplary embodiment of the present application.
  • FIG. 7A is a flowchart of first measurement configuration information sent by a receiving base station according to multi-beam measurement capability information according to an exemplary embodiment of the present application.
  • FIG. 7B is a flowchart of another method for reporting a measurement signal according to an exemplary embodiment of the present application.
  • FIG. 8 is a block diagram of an apparatus for receiving a measurement signal, according to an exemplary embodiment
  • FIG. 9A is a block diagram of another apparatus for receiving a measurement signal, according to an exemplary embodiment.
  • 9B is a block diagram of another apparatus for receiving a measurement signal, according to an exemplary embodiment.
  • 9C is a block diagram of another apparatus for receiving a measurement signal, according to an exemplary embodiment.
  • 9D is a block diagram of another apparatus for receiving a measurement signal, according to an exemplary embodiment.
  • 9E is a block diagram of another apparatus for receiving a measurement signal, according to an exemplary embodiment.
  • FIG. 9F is a block diagram of another apparatus for receiving a measurement signal, according to an exemplary embodiment.
  • FIG. 10 is a block diagram of an apparatus for reporting a measurement signal, according to an exemplary embodiment
  • FIG. 11A is a block diagram of another apparatus for reporting a measurement signal, according to an exemplary embodiment.
  • FIG. 11B is a block diagram of another apparatus for reporting a measurement signal, according to an exemplary embodiment.
  • FIG. 12 is a block diagram of an apparatus suitable for receiving a measurement signal, according to an exemplary embodiment
  • FIG. 13 is a block diagram of an apparatus suitable for reporting a measurement signal, according to an exemplary embodiment.
  • FIG. 1 is a flowchart of a method for receiving a measurement signal according to an exemplary embodiment of the present application. The embodiment is described from a base station side. As shown in FIG. 1 , the method includes:
  • step S101 the multi-beam measurement capability information reported by the current UE is received.
  • the current UE may report its own multi-beam measurement capability information to the base station, or report the information to the base station.
  • Single beam measurement capability information may be report its own multi-beam measurement capability information to the base station, or report the information to the base station.
  • the first measurement configuration information is generated for the current UE according to the multi-beam measurement capability information, where the first measurement configuration information includes multiple beams configured by the current base station for the current UE.
  • the base station receives the multi-beam measurement capability information reported by the current UE, so as to generate the first measurement configuration information according to the multi-beam measurement capability information reported by the current UE. If the current UE has multi-beam measurement capability, the base station may configure single-beam or multi-beam measurement capability for the current UE, but if the current UE has single-beam measurement capability, the base station may only configure single-beam measurement capability for the current UE.
  • the base station can configure multiple beams for the current UE.
  • the multiple indicators in the first measurement configuration information may be adjacent beams, and the first measurement configuration information may further include indication information that the adjacent beams are simultaneously measured.
  • step S103 the first measurement configuration information is sent to the current UE, where the UE generates the first measurement signal according to the multiple beams included in the first measurement configuration information.
  • the current UE may generate the first measurement signal according to the multiple beams included in the first measurement configuration information, so as to improve the accuracy of the measurement signal. For example, a corresponding measurement signal may be generated based on the signal synchronization blocks of the plurality of beams, and the measurement signal may be smoothed to obtain a first measurement signal, and the first measurement signal is reported to the base station.
  • the current UE may simultaneously generate the first corresponding to each beam according to the adjacent beam and the indication information. The signal is measured and the first measurement signal is reported to the base station.
  • step S104 the first measurement signal reported by the current UE is received.
  • the base station can receive the first measurement signal reported by the current UE.
  • the first measurement configuration information including the multiple beams is generated for the current UE according to the multi-beam measurement capability information reported by the current UE, so that the current UE may generate the first measurement according to the multiple beams included in the first measurement configuration information. Signal, thereby improving the accuracy of the measurement signal of the UE in a multi-beam coverage scenario.
  • FIG. 2 is a flowchart of generating first measurement configuration information for a current UE according to multi-beam measurement capability information according to an exemplary embodiment of the present application. As shown in FIG. 2, generating first measurement configuration information may include:
  • step S201 generating second measurement configuration information for the current UE according to the multi-beam measurement capability information, where the The second measurement configuration information includes a single beam configured by the current base station for the current UE.
  • the base station may first configure a single beam for the current UE.
  • step S202 the second measurement configuration information is sent to the current UE for the second measurement signal generated by the UE according to the single beam included in the second measurement configuration information.
  • the base station may send the configured single beam to the current UE.
  • the current UE may generate a second measurement signal according to the single beam, and report the second measurement signal to the base station.
  • step S203 the second measurement signal reported by the current UE is received.
  • step S204 if the received second measurement signal and the estimated second measurement signal are inconsistent, the first measurement configuration information is generated for the current UE, where the first measurement configuration information includes multiple beams configured by the current base station for the current UE. .
  • the base station can reconfigure the beam for the current UE. For example, multiple beams can be configured for the current UE. .
  • the process of generating the first measurement configuration information shown in FIG. 2 may be applied to step S102 in FIG. 1 , that is, since the current UE has multiple beam measurement capabilities, the base station may configure multiple beams for the current UE.
  • a single beam can be configured for the current UE first. If the second measurement signal generated based on the single beam is not accurate enough, the single beam is changed to multiple beams.
  • the accuracy of the measurement signal is improved.
  • FIG. 3 is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application.
  • the embodiment is described on the basis of the embodiment shown in FIG. 1.
  • multiple beams may be used.
  • the first measurement configuration information may further include measurement resources corresponding to the main beam and the at least one auxiliary beam, and the measurement resources corresponding to the main beam are larger than the measurement corresponding to each auxiliary beam.
  • the first measurement signal includes a first measurement signal corresponding to each of the beams.
  • the method may further include:
  • step S301 if it is confirmed that the current UE is in the geometric center of the multiple beams according to the first measurement signal corresponding to each beam, the measurement resources corresponding to each beam are updated, so that the measurement resources corresponding to the main beam are equal to The measurement resource corresponding to each secondary beam.
  • the geometric center is different, for example, for two beams, the geometric center is the middle of the two beams.
  • the base station indicates that the current UE is in the middle of the two beams according to the first measurement signal corresponding to the two beams, indicating the main beam and the auxiliary beam.
  • the required measurement resources are the same, so the measurement resources corresponding to each beam can be updated, so that the measurement resource corresponding to the main beam is equal to the measurement resource corresponding to the auxiliary beam.
  • step S302 the first measurement signal corresponding to each beam that is reported by the current UE according to the updated measurement resource is received.
  • the current UE may report the first measurement signal corresponding to each beam according to the updated measurement resource.
  • the measurement resources corresponding to each beam are updated, so that the measurement resources corresponding to the main beam are equal to the measurement resources corresponding to each auxiliary beam, thereby The beams are reasonably allocated to the measurement resources and the accuracy of the measurement signals is guaranteed.
  • FIG. 4A is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application. The embodiment is described on the basis of the embodiment shown in FIG. 3, as shown in FIG. 4A, in the above step S301. Previously, the method could also include:
  • step S401 a reference beam is determined according to a first measurement signal corresponding to each beam.
  • a beam with a good signal is selected as a reference beam from the first measurement signal corresponding to each beam.
  • step S402 if it is confirmed that the signal of the cell where the current UE is located is greater than the first preset threshold, and the signal of the neighboring cell is smaller than the second preset threshold, the third measurement configuration information is generated, where the third measurement configuration information includes the current base station.
  • a single beam configured by the current UE, and the single beam is a reference beam.
  • the first preset threshold is greater than the second preset threshold.
  • a single beam can be configured for the current UE, and the single beam can be a reference beam.
  • the measurement reporting process is basically the same as the measurement reporting process of the current UE still in the current cell, and the difference is the same.
  • the judgment condition is different, that is, as shown in FIG. 4B, step S402 can be replaced with step S402'.
  • step S402 if it is confirmed that the signal of the cell where the current UE is located is smaller than the first preset threshold, and the signal of the neighboring cell is greater than the second preset threshold, the third measurement configuration information is generated, where the third measurement configuration information includes the current base station.
  • a single beam configured by the current UE, and the single beam is a reference beam.
  • the process of reporting a measurement signal by the UE is the same in both cases, the reference beams of the two are different, because the beam belongs to the cell, and the cell is switched, and the beams of different cells are definitely different.
  • step S403 the third measurement configuration information is sent to the current UE for the UE to generate a third measurement signal according to the single beam included in the third measurement configuration information.
  • step S404 the third measurement signal reported by the current UE is received.
  • the current UE may generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • FIG. 5A is a flowchart of another method for receiving a measurement signal according to an exemplary embodiment of the present application.
  • the embodiment is described on the basis of the embodiment shown in FIG. 1.
  • the first measurement configuration is performed.
  • the information may also include measurement resources corresponding to each beam, and the measurement resources corresponding to each beam are the same, and the first measurement signal includes a first measurement signal corresponding to each beam, as shown in FIG. 5A, in the above steps.
  • the method may further include:
  • step S501 a reference beam is determined according to a first measurement signal corresponding to each beam.
  • a beam with a good signal is selected as a reference beam from the first measurement signal corresponding to each beam.
  • step S502 if it is confirmed that the signal of the cell where the current UE is located is greater than the first preset threshold, and the signal of the neighboring cell is smaller than the second preset threshold, the third measurement configuration information is generated, where the third measurement configuration information includes the current base station.
  • a single beam configured by the current UE, and the single beam is a reference beam.
  • the first preset threshold is greater than the second preset threshold.
  • a single beam can be configured for the current UE, and the single beam can be a reference beam.
  • the measurement reporting process is basically the same as the measurement reporting process of the current UE still in the current cell, and the difference is the same. The judgment condition is different, that is, as shown in FIG. 5B, step S502 can be replaced with step S502'.
  • step S502 if it is confirmed that the signal of the cell where the current UE is located is smaller than the first preset threshold, and the signal of the neighboring cell is greater than the second preset threshold, the third measurement configuration information is generated, where the third measurement configuration information includes the current base station.
  • a single beam configured by the current UE, and the single beam is a reference beam.
  • the process of reporting a measurement signal by the UE is the same in both cases, the reference beams of the two are different, because the beam belongs to the cell, and the cell is switched, and the beams of different cells are definitely different.
  • step S503 the third measurement configuration information is sent to the current UE for the UE to generate a third measurement signal according to the single beam included in the third measurement configuration information.
  • step S504 the third measurement signal reported by the current UE is received.
  • the current UE may generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • FIG. 6 is a flowchart of a method for reporting a measurement signal according to an exemplary embodiment of the present application. The embodiment is described from the UE side. As shown in FIG. 6, the method for reporting a measurement signal includes:
  • step S601 the multi-beam measurement capability information of the current UE is reported to the base station.
  • the current UE can report its own multi-beam measurement capability information to the base station.
  • step S602 the first measurement configuration information that is sent by the base station according to the multi-beam measurement capability information is included, where the first measurement configuration information includes multiple beams that are configured by the current base station for the current UE.
  • the base station may generate the first measurement configuration information according to the multi-beam measurement capability information reported by the current UE, and send the first measurement configuration information to the current UE.
  • the multiple indicators in the first measurement configuration information may be adjacent beams, and the first measurement configuration information may further include indication information that the adjacent beams are simultaneously measured.
  • step S603 a first measurement signal is generated according to the plurality of beams included in the first measurement configuration information.
  • the current UE may generate the first measurement signal according to the multiple beams included in the first measurement configuration information to improve the accuracy of the measurement signal. For example, a corresponding measurement signal may be generated based on a signal synchronization block of a plurality of beams, and the measurement signal may be smoothed to obtain a first measurement signal.
  • the current UE may simultaneously generate a first measurement signal corresponding to each beam according to the adjacent beam and the indication information.
  • step S604 the first measurement signal is reported to the base station.
  • the current UE may report the first measurement signal to the base station.
  • the multi-beam measurement capability information of the current UE is reported to the base station, so that the base station can send the first measurement configuration information to the current UE according to the multi-beam measurement capability information reported by the current UE, and the current UE receives the first measurement configuration information.
  • the first measurement signal may be generated according to the multiple beams included in the first measurement configuration information, and the first measurement signal is reported to the base station, thereby improving the accuracy of the measurement signal of the UE in the multi-beam coverage scenario.
  • FIG. 7A is a flowchart of a first measurement configuration information sent by a receiving base station according to multi-beam measurement capability information according to an exemplary embodiment of the present application. As shown in FIG. 7A, the receiving base station sends the first measurement information according to multi-beam measurement capability information.
  • a measurement configuration information includes:
  • step S701 the second measurement configuration information that is sent by the base station according to the multi-beam measurement capability information is included, where the second measurement configuration information includes a single beam configured by the current base station for the current UE.
  • the base station may first configure a single beam for the current UE.
  • step S702 a second measurement signal is generated according to a single beam included in the second measurement configuration information.
  • the second measurement signal may be generated according to the single beam.
  • step S703 the second measurement signal is reported to the base station.
  • the current UE may report the second measurement signal to the base station.
  • step S704 the first measurement configuration information sent by the base station according to the second measurement signal is received.
  • the current UE may be reconfigured with a beam.
  • the first measurement configuration information including multiple beams may be sent to the current UE.
  • the second measurement signal is generated according to the single beam included in the second measurement configuration information sent by the base station, and the first measurement configuration information sent by the base station according to the second measurement signal is received to implement the single beam generation based
  • the single beam is changed to multiple beams, so that the UE can generate the first measurement signal based on multiple beams, thereby improving the accuracy of the measurement signal.
  • FIG. 7B is a flowchart of another method for reporting a measurement signal according to an exemplary embodiment of the present application. As shown in FIG. 7B, the method may further include:
  • step S801 the third measurement configuration information sent by the base station is received, where the third measurement configuration information includes a single beam configured by the current base station for the current UE.
  • the current UE may receive the third measurement configuration information sent by the base station, where the third measurement configuration information may include a single beam configured by the current base station for the current UE, where the single beam may be a measurement signal of multiple beams corresponding to the current UE. Better beam.
  • step S802 a third measurement signal is generated according to a single beam included in the third measurement configuration information.
  • the current UE may generate a third measurement signal according to a single beam included in the third measurement configuration information.
  • step S803 the third measurement signal is reported to the base station.
  • the current UE may report the third measurement signal to the base station.
  • the third measurement configuration information is generated by the receiving base station, and the third measurement signal is generated according to the single beam included in the third measurement configuration information, and the third measurement signal is reported to the base station to ensure the accuracy of the measurement signal.
  • FIG. 8 is a block diagram of an apparatus for receiving a measurement signal, as shown in FIG. 8, the apparatus includes: a first receiving module 81, a generating module 82, a first transmitting module 83, and a second receiving, according to an exemplary embodiment.
  • Module 84 is a block diagram of an apparatus for receiving a measurement signal, as shown in FIG. 8, the apparatus includes: a first receiving module 81, a generating module 82, a first transmitting module 83, and a second receiving, according to an exemplary embodiment.
  • Module 84 is a block diagram of an apparatus for receiving a measurement signal, as shown in FIG. 8, the apparatus includes: a first receiving module 81, a generating module 82, a first transmitting module 83, and a second receiving, according to an exemplary embodiment.
  • Module 84 is a block diagram of an apparatus for receiving a measurement signal, as shown in FIG. 8, the apparatus includes: a first receiving module 81, a generating module 82, a first transmitting module
  • the first receiving module 81 is configured to receive the multi-beam measurement capability information reported by the current UE.
  • the current UE may report its own multi-beam measurement capability information to the base station, and may also report its own single-beam measurement capability information to the base station.
  • the generating module 82 is configured to generate first measurement configuration information for the current UE according to the multi-beam measurement capability information received by the first receiving module 81, where the first measurement configuration information includes multiple beams configured by the current base station for the current UE.
  • the base station receives the multi-beam measurement capability information reported by the current UE, so as to generate the first measurement configuration information according to the multi-beam measurement capability information reported by the current UE. If the current UE has multi-beam measurement capability, the base station may configure single-beam or multi-beam measurement capability for the current UE, but if the current UE has single-beam measurement capability, the base station may only configure single-beam measurement capability for the current UE.
  • the base station can configure multiple beams for the current UE.
  • the multiple indicators in the first measurement configuration information may be adjacent beams, and the first measurement configuration information may further include indication information that the adjacent beams are simultaneously measured.
  • the first sending module 83 is configured to send the first measurement configuration information generated by the generating module 82 to the current UE, to And configured to generate, by the current UE, the first measurement signal according to the multiple beams included in the first measurement configuration information.
  • the current UE may generate the first measurement signal according to the multiple beams included in the first measurement configuration information, so as to improve the accuracy of the measurement signal. For example, a corresponding measurement signal may be generated based on the signal synchronization blocks of the plurality of beams, and the measurement signal may be smoothed to obtain a first measurement signal, and the first measurement signal is reported to the base station.
  • the current UE may simultaneously generate the first corresponding to each beam according to the adjacent beam and the indication information. The signal is measured and the first measurement signal is reported to the base station.
  • the second receiving module 84 is configured to receive the first measurement signal generated by the current UE and generated according to the first measurement configuration information sent by the first sending module 83.
  • the base station can receive the first measurement signal reported by the current UE.
  • the first measurement configuration information including the multiple beams is generated for the current UE according to the multi-beam measurement capability information reported by the current UE, so that the current UE may generate the first measurement according to the multiple beams included in the first measurement configuration information. Signal, thereby improving the accuracy of the measurement signal of the UE in a multi-beam coverage scenario.
  • FIG. 9A is a block diagram of another apparatus for receiving a measurement signal according to an exemplary embodiment.
  • the generating module 82 may include: a first generator.
  • the first generation sub-module 821 is configured to generate second measurement configuration information for the current UE according to the multi-beam measurement capability information, where the second measurement configuration information includes a single beam configured by the current base station for the current UE.
  • the base station may first configure a single beam for the current UE.
  • the sending sub-module 822 is configured to send the second measurement configuration information generated by the first generation sub-module 821 to the current UE for the second measurement signal generated by the UE according to the single beam included in the second measurement configuration information.
  • the base station may send the configured single beam to the current UE.
  • the current UE may generate a second measurement signal according to the single beam, and report the second measurement signal to the base station.
  • the receiving submodule 823 is configured to receive the second measurement signal generated by the current UE and generated according to the second measurement configuration information sent by the sending submodule 822.
  • the second generation sub-module 824 is configured to receive the second measurement signal received by the sub-module 823 and the estimated second measurement If the quantity signals are inconsistent, the first measurement configuration information is generated for the current UE, where the first measurement configuration information includes multiple beams configured by the current base station for the current UE.
  • the base station can reconfigure the beam for the current UE. For example, multiple beams can be configured for the current UE. .
  • the accuracy of the measurement signal is improved.
  • FIG. 9B is a block diagram of another apparatus for receiving a measurement signal, according to an embodiment of FIG. 8 , the multiple beams include one main beam and at least one auxiliary beam, the first measurement, according to an exemplary embodiment.
  • the configuration information further includes measurement resources corresponding to the main beam and the at least one auxiliary beam, and the measurement resource corresponding to the main beam is larger than the measurement resource corresponding to each auxiliary beam, and the first measurement signal includes a corresponding to each beam.
  • the apparatus may further include: a confirmation update module 85 and a third reception module 86.
  • the acknowledgment update module 85 is configured to: after the second receiving module 84 receives the first measurement signal reported by the current UE, if it is confirmed according to the first measurement signal corresponding to each beam that the current UE is in the geometric center of the multiple beams, the update and A measurement resource corresponding to each beam, so that the measurement resource corresponding to the main beam is equal to the measurement resource corresponding to each auxiliary beam.
  • the geometric center is different, for example, for two beams, the geometric center is the middle of the two beams.
  • the base station indicates that the current UE is in the middle of the two beams according to the first measurement signal corresponding to the two beams, indicating the main beam and the auxiliary beam.
  • the required measurement resources are the same, so the measurement resources corresponding to each beam can be updated, so that the measurement resource corresponding to the main beam is equal to the measurement resource corresponding to the auxiliary beam.
  • the third receiving module 86 is configured to receive the first measurement signal corresponding to each beam that is reported by the current UE according to the updated measurement resource by the acknowledgment update module 85.
  • the current UE may report the first measurement signal corresponding to each beam according to the updated measurement resource.
  • the measurement resources corresponding to each beam are updated, so that the measurement resources corresponding to the main beam are equal to the measurement resources corresponding to each auxiliary beam, thereby The beams are reasonably allocated to the measurement resources and the accuracy of the measurement signals is guaranteed.
  • FIG. 9C is a block diagram of another apparatus for receiving a measurement signal according to an exemplary embodiment. As shown in FIG. 9C, on the basis of the embodiment shown in FIG. 9B, the apparatus further includes: a first determining module 87. The first confirmation generation module 88, the second transmission module 89, and the fourth reception module 90.
  • the first determining module 87 is configured to determine the reference beam from the first measurement signal corresponding to each beam before the acknowledgment update module 85 updates the measurement resources corresponding to each beam.
  • a beam with a good signal is selected as a reference beam from the first measurement signal corresponding to each beam.
  • the first acknowledgment generating module 88 is configured to: if it is confirmed that the signal of the cell where the current UE is located is greater than the first preset threshold, and the signal of the neighboring cell is smaller than the second preset threshold, the third measurement configuration information is included, where the third measurement configuration information is included.
  • the current base station is a single beam configured by the current UE, and the single beam is the reference beam determined by the first determining module 87, wherein the first preset threshold is greater than the second preset threshold.
  • the first preset threshold is greater than the second preset threshold.
  • a single beam can be configured for the current UE, and the single beam can be a reference beam.
  • the signal of the cell where the current UE is located is greater than the first preset threshold and the signal of the neighboring cell is smaller than the second preset threshold, it indicates that the current UE is still in the local cell.
  • the second sending module 89 is configured to send, to the current UE, third measurement configuration information generated by the first acknowledgement generating module 88, for the UE to generate a third measurement signal according to the single beam included in the third measurement configuration information.
  • the fourth receiving module 90 is configured to receive the third measurement signal generated by the current UE and generated according to the third measurement configuration information sent by the second sending module 89.
  • the current UE may generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • FIG. 9D is a block diagram of another apparatus for receiving a measurement signal according to an exemplary embodiment. As shown in FIG. 9D, on the basis of the embodiment shown in FIG. 9B, the apparatus may further include: a second determining module. 91. The second confirmation generation module 92, the third transmission module 93, and the fifth receiving module 94.
  • the second determining module 91 is configured to determine the reference beam according to the first measurement signal corresponding to each beam before confirming that the update module updates the measurement resource corresponding to each beam.
  • the second acknowledgement generating module 92 is configured to: if it is confirmed that the signal of the cell where the current UE is located is less than the first preset threshold And the signal of the neighboring cell is greater than the second preset threshold, the third measurement configuration information is generated, where the third measurement configuration information includes a single beam configured by the current base station for the current UE, and the single beam is the reference beam determined by the second determining module 91.
  • the first preset threshold is greater than the second preset threshold.
  • the measurement reporting process is basically the same as the measurement reporting process of the current UE still in the current cell.
  • the third sending module 93 is configured to send, to the current UE, third measurement configuration information generated by the second acknowledgment generating module 92, for the UE to generate a third measurement signal according to the single beam included in the third measurement configuration information;
  • the fifth receiving module 94 is configured to receive the third measurement signal generated by the current UE and generated according to the third measurement configuration information sent by the third sending module 93.
  • the current UE may generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • FIG. 9E is a block diagram of another apparatus for receiving a measurement signal according to an exemplary embodiment of the present invention.
  • the first measurement configuration information further includes measurement resources corresponding to each beam.
  • the measurement resource corresponding to each beam is the same, the first measurement signal includes a first measurement signal corresponding to each beam, as shown in FIG. 9E, the device may further include: a third determining module 95, a third acknowledgement generation The module 96, the fourth transmitting module 97 and the sixth receiving module 98.
  • the third determining module 95 is configured to determine the reference beam according to the first measurement signal corresponding to each beam after the second receiving module 84 receives the first measurement signal reported by the current UE.
  • the third acknowledgment generating module 96 is configured to generate third measurement configuration information, if the signal of the cell where the current UE is located is greater than the first preset threshold, and the signal of the neighboring cell is smaller than the second preset threshold, where the third measurement configuration information is included.
  • the current base station is a single beam configured by the current UE, and the single beam is a reference beam determined by the third determining module 95, where the first preset threshold is greater than the second preset threshold.
  • the fourth sending module 97 is configured to send the third measurement configuration information generated by the third acknowledgement generating module 96 to the current UE, for the UE to generate the third measurement signal according to the single beam included in the third measurement configuration information.
  • the sixth receiving module 98 is configured to receive the third measurement signal generated by the current UE and generated according to the third measurement configuration information sent by the fourth sending module 97.
  • the current UE may generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • FIG. 9F is a block diagram of another apparatus for receiving a measurement signal according to an exemplary embodiment of the present invention.
  • the first measurement configuration information further includes measurement resources corresponding to each beam.
  • the measurement resource corresponding to each beam is the same
  • the first measurement signal includes a first measurement signal corresponding to each beam, as shown in FIG. 9F
  • the device may further include: a fourth determining module 99, a fourth confirmation generation The module 100, the fifth sending module 101, and the seventh receiving module 102.
  • the fourth determining module 99 is configured to determine the reference beam according to the first measurement signal corresponding to each beam after the second receiving module 84 receives the first measurement signal reported by the current UE.
  • the fourth acknowledgment generation module 100 is configured to generate third measurement configuration information, if the signal of the cell where the current UE is located is smaller than the first preset threshold, and the signal of the neighboring cell is greater than the second preset threshold, where the third measurement configuration information is included.
  • the current base station is a single beam configured by the current UE, and the single beam is a reference beam determined by the fourth determining module 99, where the first preset threshold is greater than the second preset threshold.
  • the fifth sending module 101 is configured to send the third measurement configuration information generated by the fourth acknowledgement generating module 100 to the current UE, for the UE to generate the third measurement signal according to the single beam included in the third measurement configuration information.
  • the seventh receiving module 102 is configured to receive the third measurement signal generated by the current UE and generated according to the third measurement configuration information sent by the fifth sending module 101.
  • the current UE may generate a third measurement signal according to the configured reference beam to improve the accuracy of the measurement signal.
  • FIG. 10 is a block diagram of an apparatus for reporting a measurement signal according to an exemplary embodiment.
  • the apparatus for reporting a measurement signal includes: a first reporting module 110, a first receiving module 120, and a first generating module. 130 and a second reporting module 140.
  • the first reporting module 110 is configured to report the multi-beam measurement capability information of the current UE to the base station.
  • the current UE can report its own multi-beam measurement capability information to the base station.
  • the first receiving module 120 is configured to receive the first measurement configuration information that is sent by the base station according to the multi-beam measurement capability information reported by the first reporting module 110, where the first measurement configuration information includes multiple beams that are configured by the current base station for the current UE.
  • the base station may generate the first measurement configuration information according to the multi-beam measurement capability information reported by the current UE, and send the first measurement configuration information to the current UE.
  • the multiple indicators in the first measurement configuration information may be adjacent beams, and the first measurement configuration information may further include indication information that the adjacent beams are simultaneously measured.
  • the first generation module 130 is configured to generate a first measurement signal according to the plurality of beams included in the first measurement configuration information received by the first receiving module 120.
  • the current UE may generate the first measurement signal according to the multiple beams included in the first measurement configuration information to improve the accuracy of the measurement signal. For example, a corresponding measurement signal may be generated based on a signal synchronization block of a plurality of beams, and the measurement signal may be smoothed to obtain a first measurement signal.
  • the current UE may simultaneously generate the first corresponding to each beam according to the adjacent beam and the indication information. Measurement signal.
  • the second reporting module 140 is configured to report the first measurement signal generated by the first generation module 130 to the base station.
  • the current UE may report the first measurement signal to the base station.
  • the multi-beam measurement capability information of the current UE is reported to the base station, so that the base station can send the first measurement configuration information to the current UE according to the multi-beam measurement capability information reported by the current UE, and the current UE receives the first measurement configuration information.
  • the first measurement signal may be generated according to the multiple beams included in the first measurement configuration information, and the first measurement signal is reported to the base station, thereby improving the accuracy of the measurement signal of the UE in the multi-beam coverage scenario.
  • FIG. 11A is a block diagram of another apparatus for reporting a measurement signal according to an exemplary embodiment.
  • the first receiving module 120 may include: The receiving submodule 1201, the generating submodule 1202, the reporting submodule 1203, and the second receiving submodule 1204.
  • the first receiving sub-module 1201 is configured to receive the second measurement configuration information that is sent by the base station according to the multi-beam measurement capability information, where the second measurement configuration information includes a single beam that is configured by the current base station for the current UE.
  • the base station may first configure a single beam for the current UE.
  • the generating submodule 1202 is configured to generate a second measurement signal according to a single beam included in the second measurement configuration information received by the first receiving submodule 1201.
  • the second measurement signal may be generated according to the single beam.
  • the reporting sub-module 1203 is configured to report the second measurement signal generated by the generating sub-module 1202 to the base station.
  • the current UE may report the second measurement signal to the base station.
  • the second receiving sub-module 1204 is configured to receive first measurement configuration information that is sent by the base station according to the second measurement signal reported by the reporting sub-module 1203.
  • the current UE may be reconfigured with a beam.
  • the first measurement configuration information including multiple beams may be sent to the current UE.
  • the second measurement signal is generated according to the single beam included in the second measurement configuration information sent by the base station, and the first measurement configuration information sent by the base station according to the second measurement signal is received to implement the single beam generation based
  • the single beam is changed to multiple beams, so that the UE can generate the first measurement signal based on multiple beams, thereby improving the accuracy of the measurement signal.
  • FIG. 11B is a block diagram of another apparatus for reporting a measurement signal according to an exemplary embodiment. As shown in FIG. 11B, on the basis of the embodiment shown in FIG. 10, the apparatus may further include: a second receiving module. 150. The second generation module 160 and the third reporting module 170.
  • the second receiving module 150 is configured to receive the third measurement configuration information that is sent by the base station, where the third measurement configuration information includes a single beam that is configured by the current base station for the current UE.
  • the current UE may receive the third measurement configuration information sent by the base station, where the third measurement configuration information may include a single beam configured by the current base station for the current UE, where the single beam may be a measurement signal of multiple beams corresponding to the current UE. Better beam.
  • the second generation module 160 is configured to generate a third measurement signal according to a single beam included in the third measurement configuration information received by the second receiving module 150.
  • the current UE may generate a third measurement signal according to a single beam included in the third measurement configuration information.
  • the third reporting module 170 is configured to report the third measurement signal generated by the second generation module 160 to the base station.
  • the current UE may report the third measurement signal to the base station.
  • the third measurement configuration information is generated by the receiving base station, and the third measurement signal is generated according to the single beam included in the third measurement configuration information, and the third measurement signal is reported to the base station to ensure the accuracy of the measurement signal.
  • FIG. 12 is a block diagram of an apparatus suitable for receiving a measurement signal, according to an exemplary embodiment.
  • Apparatus 1200 can be provided as a base station.
  • apparatus 1200 includes a processing component 1222, a wireless transmit/receive component 1224, an antenna component 1226, and a signal processing portion specific to the wireless interface.
  • the processing component 1222 can further include one or more processors.
  • One of the processing components 1222 can be configured to:
  • the first measurement configuration information includes multiple beams configured by the current base station for the current UE;
  • FIG. 13 is a block diagram of an apparatus suitable for reporting a measurement signal, according to an exemplary embodiment.
  • the device 1300 can be a user device such as a mobile phone, a computer, a digital broadcast terminal, a messaging device, a game console, a tablet device, a medical device, a fitness device, a personal digital assistant, and the like.
  • device 1300 can include one or more of the following components: processing component 1302, memory 1304, power component 1306, multimedia component 1308, audio component 1310, input/output (I/O) interface 1312, sensor component 1314, And a communication component 1316.
  • Processing component 1302 typically controls the overall operation of device 1300, such as operations associated with display, telephone calls, data communications, camera operations, and recording operations.
  • Processing component 1302 can include one or more processors 1320 to execute instructions to perform all or part of the steps of the above described methods.
  • processing component 1302 can include one or more modules to facilitate interaction between component 1302 and other components.
  • processing component 1302 can include a multimedia module to facilitate interaction between multimedia component 1308 and processing component 1302.
  • Memory 1304 is configured to store various types of data to support operation at device 1300. Examples of such data include instructions for any application or method operating on device 1300, contact data, phone book data, messages, pictures, videos, and the like.
  • Memory 1304 can be implemented by any type of volatile or non-volatile storage device, or a 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, Disk 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
  • Disk Disk or Optical Disk.
  • Power component 1306 provides power to various components of device 1300.
  • Power component 1306 can include a power management system, one or more power sources, and other components associated with generating, managing, and distributing power for device 1300.
  • the multimedia component 1308 includes a screen between the device 1300 and the user that provides an output interface.
  • the screen can include a liquid crystal display (LCD) and a touch panel (TP). If the screen includes a touch panel, the screen The screen can be implemented as a touch screen to receive input signals from the user.
  • the touch panel includes one or more touch sensors to sense touches, slides, and gestures on the touch panel. The touch sensor can sense not only the boundaries of the touch or sliding action, but also the duration and pressure associated with the touch or slide operation.
  • the multimedia component 1308 includes a front camera and/or a rear camera. When the device 1300 is in an operation mode, such as a shooting mode or a video mode, the front camera and/or the rear camera can receive external multimedia data. Each front and rear camera can be a fixed optical lens system or have focal length and optical zoom capabilities.
  • the audio component 1310 is configured to output and/or input an audio signal.
  • the audio component 1310 includes a microphone (MIC) that is configured to receive an external audio signal when the device 1300 is in an operational mode, such as a call mode, a recording mode, and a voice recognition mode.
  • the received audio signal may be further stored in memory 1304 or transmitted via communication component 1316.
  • the audio component 1310 also includes a speaker for outputting an audio signal.
  • the I/O interface 1312 provides an interface between the processing component 1302 and the 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, a home button, a volume button, a start button, and a lock button.
  • Sensor assembly 1314 includes one or more sensors for providing device 1300 with a status assessment of various aspects.
  • the sensor assembly 1314 can detect an open/closed state of the device 1300, the relative positioning of the components, such as a display and a keypad of the device 1300, and the sensor component 1314 can also detect a change in position of a component of the device 1300 or device 1300, the user The presence or absence of contact with device 1300, device 1300 orientation or acceleration/deceleration and temperature variation of device 1300.
  • Sensor assembly 1314 can include a proximity sensor configured to detect the presence of nearby objects without any physical contact.
  • Sensor assembly 1314 may also include a light sensor, such as a CMOS or CCD image sensor, for use in imaging applications.
  • the sensor component 1314 can also include an acceleration sensor, a gyro sensor, a magnetic sensor, a pressure sensor, or a temperature sensor.
  • Communication component 1316 is configured to facilitate wired or wireless communication between device 1300 and other devices.
  • the device 1300 can access a wireless network based on a communication standard, such as WiFi, 2G or 3G, or a combination thereof.
  • the communication component 1316 receives broadcast signals or broadcast associated information from an external broadcast management system via a broadcast channel.
  • communication component 1316 also includes a near field communication (NFC) module to facilitate short range communication.
  • NFC near field communication
  • the NFC module can 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
  • apparatus 1300 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 A gate array (FPGA), controller, microcontroller, microprocessor, or other electronic component implementation for performing the above methods.
  • ASICs application specific integrated circuits
  • DSPs digital signal processors
  • DSPDs digital signal processing devices
  • PLDs programmable logic devices
  • FPGA field programmable A gate array
  • controller microcontroller, microprocessor, or other electronic component implementation for performing the above methods.
  • non-transitory computer readable storage medium comprising instructions, such as a memory 1304 comprising instructions executable by processor 1320 of apparatus 1300 to perform the above method.
  • the non-transitory computer readable storage medium can be a ROM, a random access memory (RAM), a CD-ROM, a magnetic tape, a floppy disk, and an optical data storage device.
  • the device embodiment since it basically corresponds to the method embodiment, reference may be made to the partial description of the method embodiment.
  • the device embodiments described above are merely illustrative, wherein the units described as separate components may or may not be physically separate, and the components displayed as units may or may not be physical units, ie may be located A place, or it can be distributed to multiple network units. Some or all of the modules may be selected according to actual needs to achieve the purpose of the solution of the embodiment. Those of ordinary skill in the art can understand and implement without any creative effort.

Abstract

本公开是关于一种接收和上报测量信号的方法、装置、基站、用户设备和计算机可读存储介质。其中,接收测量信号的方法包括:接收当前UE上报的多波束测量能力信息;根据该多波束测量能力信息为当前UE生成第一测量配置信息,第一测量配置信息中包括当前基站为当前UE配置的多个波束;向当前UE发送第一测量配置信息,以用于当前UE根据第一测量配置信息中包括的多个波束生成第一测量信号;接收当前UE上报的第一测量信号。本公开实施例,通过根据当前UE上报的多波束测量能力信息为当前UE生成包括多个波束的第一测量配置信息,使得当前UE可以根据多个波束生成第一测量信号,从而提高UE处于多波束覆盖场景下测量信号的准确性。

Description

接收和上报测量信号的方法、装置、基站和用户设备 技术领域
本公开涉及通信技术领域,尤其涉及一种接收和上报测量信号的方法、装置、基站、用户设备和计算机可读存储介质。
背景技术
目前,在第三代合作伙伴计划(3rd Generation Partnership Project,简称3GPP)的第五代移动通信技术(5th Generation,简称为5G)标准化中,保证移动性的测量是必须的要求。但与长期演进(Long Term Evolution,简称为LTE)系统不同,在5G高频的系统中,测量参考信号是基于波束扫描的,因此对测量波束的管理与LTE系统不同。
相关技术中,当UE处于两个波束覆盖的中间场景下,系统只配置其中一个波束作为UE的测量参考信号波束,但系统配置的波束未必是最优波束,因此,UE基于系统配置的波束测量的信号可能不够准确。
发明内容
有鉴于此,本申请公开了一种接收和上报测量信号的方法、装置、基站、用户设备和计算机可读存储介质,以提高UE处于多波束覆盖场景下测量信号的准确性。
根据本公开实施例的第一方面,提供一种接收测量信号的方法,所述方法包括:
接收当前UE上报的多波束测量能力信息;
根据所述多波束测量能力信息为当前UE生成第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
向所述当前UE发送所述第一测量配置信息,以用于所述当前UE根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
接收所述当前UE上报的所述第一测量信号。
在一实施例中,所述根据所述多波束测量能力信息为当前UE生成第一测量配置信息,包括:
根据所述多波束测量能力信息为当前UE生成第二测量配置信息,所述第二测量配置信息 中包括所述当前基站为所述当前UE配置的单波束;
向所述当前UE发送所述第二测量配置信息,以用于所述UE根据所述第二测量配置信息中包括的所述单波束生成的第二测量信号;
接收所述当前UE上报的所述第二测量信号;
若接收的所述第二测量信号和预估的第二测量信号不一致,则为所述当前UE生成所述第一测量配置信息,所述第一测量配置信息中包括所述当前基站为所述当前UE配置的所述多个波束。
在一实施例中,所述多个波束包括一个主波束和至少一个辅波束,所述第一测量配置信息中还包括分别与所述主波束和所述至少一个辅波束对应的测量资源,且与所述主波束对应的测量资源大于与每个辅波束对应的测量资源,所述第一测量信号包括与每个波束对应的第一测量信号;
在所述接收所述当前UE上报的所述第一测量信号之后,所述方法还包括:
若根据所述与每个波束对应的第一测量信号确认所述当前UE处于所述多个波束的几何中心,则更新与每个波束对应的测量资源,以使与所述主波束对应的测量资源等于与所述每个辅波束对应的测量资源;
接收所述当前UE根据更新后的测量资源上报的与每个波束对应的第一测量信号。
在一实施例中,在所述更新与每个波束对应的测量资源之前,所述方法还包括:
根据所述与每个波束对应的第一测量信号确定参考波束;
如果确认所述当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
接收所述当前UE上报的所述第三测量信号。
在一实施例中,在所述更新与每个波束对应的测量资源之前,所述方法还包括:
根据所述与每个波束对应的第一测量信号确定参考波束;
如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设 阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
接收所述当前UE上报的所述第三测量信号。
在一实施例中,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波束对应的第一测量信号;
在所述接收所述当前UE上报的所述第一测量信号之后,所述方法还包括:
根据所述与每个波束对应的第一测量信号确定参考波束;
如果确认所述当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
接收所述当前UE上报的所述第三测量信号。
在一实施例中,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波束对应的第一测量信号;
在所述接收所述当前UE上报的所述第一测量信号之后,所述方法还包括:
根据所述与每个波束对应的第一测量信号确定参考波束;
如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
接收所述当前UE上报的所述第三测量信号。
在一实施例中,所述第一测量配置信息中的所述多个波束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述第一测量配置信息用于所述当前UE 根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
根据本公开实施例的第二方面,提供一种上报测量信号的方法,,所述方法包括:
向基站上报当前UE的多波束测量能力信息;
接收所述基站根据所述多波束测量能力信息发送的第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
向所述基站上报所述第一测量信号。
在一实施例中,所述接收所述基站根据所述多波束测量能力信息发送的第一测量配置信息,包括:
接收所述基站根据所述多波束测量能力信息发送的第二测量配置信息,所述第二测量配置信息中包括所述当前基站为所述当前UE配置的单波束;
根据所述第二测量配置信息中包括的所述单波束生成第二测量信号;
向所述基站上报所述第二测量信号;
接收所述基站根据所述第二测量信号发送的所述第一测量配置信息。
在一实施例中,所述方法还包括:
接收所述基站发送的第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束;
根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
向所述基站上报所述第三测量信号。
在一实施例中,所述第一测量配置信息中的所述多个波束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号,包括:
根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
根据本公开实施例的第三方面,提供一种接收测量信号的装置,所述装置包括:
第一接收模块,被配置为接收当前UE上报的多波束测量能力信息;
生成模块,被配置为根据所述第一接收模块接收的所述多波束测量能力信息为当前UE生 成第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
第一发送模块,被配置为向所述当前UE发送所述生成模块生成的所述第一测量配置信息,以用于所述当前UE根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
第二接收模块,被配置为接收所述当前UE上报的根据所述第一发送模块发送的所述第一测量配置信息生成的所述第一测量信号。
在一实施例中,所述生成模块包括:
第一生成子模块,被配置为根据所述多波束测量能力信息为当前UE生成第二测量配置信息,所述第二测量配置信息中包括所述当前基站为所述当前UE配置的单波束;
发送子模块,被配置为向所述当前UE发送所述第一生成子模块生成的所述第二测量配置信息,以用于所述UE根据所述第二测量配置信息中包括的所述单波束生成的第二测量信号;
接收子模块,被配置为接收所述当前UE上报的根据所述发送子模块发送的所述第二测量配置信息生成的所述第二测量信号;
第二生成子模块,被配置为若所述接收子模块接收的所述第二测量信号和预估的第二测量信号不一致,则为所述当前UE生成所述第一测量配置信息,所述第一测量配置信息中包括所述当前基站为所述当前UE配置的所述多个波束。
在一实施例中,所述多个波束包括一个主波束和至少一个辅波束,所述第一测量配置信息中还包括分别与所述主波束和所述至少一个辅波束对应的测量资源,且与所述主波束对应的测量资源大于与每个辅波束对应的测量资源,所述第一测量信号包括与每个波束对应的第一测量信号;所述装置还包括:
确认更新模块,被配置为在所述第二接收模块接收所述当前UE上报的所述第一测量信号之后,若根据所述与每个波束对应的第一测量信号确认所述当前UE处于所述多个波束的几何中心,则更新与每个波束对应的测量资源,以使与所述主波束对应的测量资源等于与所述每个辅波束对应的测量资源;
第三接收模块,被配置为接收所述当前UE根据所述确认更新模块更新后的测量资源上报的与每个波束对应的第一测量信号。
在一实施例中,所述装置还包括:
第一确定模块,被配置为在所述确认更新模块更新与每个波束对应的测量资源之前,根据所述与每个波束对应的第一测量信号确定参考波束;
第一确认生成模块,被配置为如果确认所述当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第一确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
第二发送模块,被配置为向所述当前UE发送所述第一确认生成模块生成的所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
第四接收模块,被配置为接收所述当前UE上报的根据所述第二发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
在一实施例中,所述装置还包括:
第二确定模块,被配置为在所述确认更新模块更新与每个波束对应的测量资源之前,根据所述与每个波束对应的第一测量信号确定参考波束;
第二确认生成模块,被配置为如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第二确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
第三发送模块,被配置为向所述当前UE发送所述第二确认生成模块生成的第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
第五接收模块,被配置为接收所述当前UE上报的根据所述第三发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
在一实施例中,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波束对应的第一测量信号;
所述装置还包括:
第三确定模块,被配置为在所述第二接收模块接收所述当前UE上报的所述第一测量信号之后,根据所述与每个波束对应的第一测量信号确定参考波束;
第三确认生成模块,被配置为如果确认所述当前UE所在小区的信号大于第一预设阈值且 邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第三确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
第四发送模块,被配置为向所述当前UE发送所述第三确认生成模块生成的所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
第六接收模块,被配置为接收所述当前UE上报的根据所述第四发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
在一实施例中,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波束对应的第一测量信号;
所述装置还包括:
第四确定模块,被配置为在所述第二接收模块接收所述当前UE上报的所述第一测量信号之后,根据所述与每个波束对应的第一测量信号确定参考波束;
第四确认生成模块,被配置为如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第四确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
第五发送模块,被配置为向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
第七接收模块,被配置为接收所述当前UE上报的根据所述第五发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
在一实施例中,所述第一测量配置信息中的所述多个波束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述第一测量配置信息用于所述当前UE根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
根据本公开实施例的第四方面,提供一种上报测量信号的装置,所述装置包括:
第一上报模块,被配置为向基站上报当前UE的多波束测量能力信息;
第一接收模块,被配置为接收所述基站根据所述第一上报模块上报的所述多波束测量能力信息发送的第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配 置的多个波束;
第一生成模块,被配置为根据所述第一接收模块接收的所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
第二上报模块,被配置为向所述基站上报所述第一生成模块生成的所述第一测量信号。
在一实施例中,所述第一接收模块包括:
第一接收子模块,被配置为接收所述基站根据所述多波束测量能力信息发送的第二测量配置信息,所述第二测量配置信息中包括所述当前基站为所述当前UE配置的单波束;
生成子模块,被配置为根据所述第一接收子模块接收的所述第二测量配置信息中包括的所述单波束生成第二测量信号;
上报子模块,被配置为向所述基站上报所述生成子模块生成的所述第二测量信号;
第二接收子模块,被配置为接收所述基站根据所述上报子模块上报的所述第二测量信号发送的所述第一测量配置信息。
在一实施例中,所述装置还包括:
第二接收模块,被配置为接收所述基站发送的第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束;
第二生成模块,被配置为根据所述第二接收模块接收的所述第三测量配置信息中包括的所述单波束生成第三测量信号;
第三上报模块,被配置为向所述基站上报所述第二生成模块生成的所述第三测量信号。
在一实施例中,所述第一测量配置信息中的所述多个波束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述第一生成模块,被配置为:
根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
根据本公开实施例的第五方面,提供一种基站,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为:
接收当前UE上报的多波束测量能力信息;
根据所述多波束测量能力信息为当前UE生成第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
向所述当前UE发送所述第一测量配置信息,以用于所述当前UE根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
接收所述当前UE上报的所述第一测量信号。
根据本公开实施例的第六方面,提供一种用户设备,,包括:
处理器;
用于存储处理器可执行指令的存储器;
其中,所述处理器被配置为:
向基站上报当前UE的多波束测量能力信息;
接收所述基站根据所述多波束测量能力信息发送的第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
向所述基站上报所述第一测量信号。
根据本公开实施例的第七方面,提供一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现接收测量信号的方法的步骤。
根据本公开实施例的第八方面,提供一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现上报测量信号的方法的步骤。
本公开的实施例提供的技术方案可以包括以下有益效果:
通过根据当前UE上报的多波束测量能力信息为当前UE生成包括多个波束的第一测量配置信息,使得当前UE可以根据第一测量配置信息中包括的多个波束生成第一测量信号,从而提高UE处于多波束覆盖场景下测量信号的准确性。
通过先为当前UE配置单波束,然后在基于单波束生成的第二测量信号不够准确的情况下,再将单波束改为多个波束,从而有利于提高测量信号的准确性。
通过在确认当前UE处于多个波束的几何中心后,更新与每个波束对应的测量资源,使得与主波束对应的测量资源等于与每个辅波束对应的测量资源,从而为每个波束合理地分 配测量资源,并可保证测量信号的准确性。
通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
通过向基站上报当前UE的多波束测量能力信息,使得基站可以根据当前UE上报的多波束测量能力信息向当前UE发送第一测量配置信息,当前UE在接收第一测量配置信息后,可以根据第一测量配置信息中包括的多个波束生成第一测量信号,并向基站上报第一测量信号,从而提高UE处于多波束覆盖场景下测量信号的准确性。
通过根据基站发送的第二测量配置信息中包括的单波束生成第二测量信号,并接收基站根据第二测量信号发送的第一测量配置信息,以实现在基于单波束生成的第二测量信号不够准确的情况下,将单波束改为多个波束,使得UE可以基于多个波束生成第一测量信号,从而有利于提高测量信号的准确性。
通过接收基站发送的生成第三测量配置信息,并根据该第三测量配置信息中包括的单波束生成第三测量信号,向基站上报第三测量信号,以保证测量信号的准确性。
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。
附图说明
图1是本申请一示例性实施例示出的一种接收测量信号的方法的流程图;
图2是本申请一示例性实施例示出的一种根据多波束测量能力信息为当前UE生成第一测量配置信息的流程图;
图3是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图;
图4A是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图;
图4B是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图;
图5A是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图;
图5B是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图;
图6是本申请一示例性实施例示出的一种上报测量信号的方法的流程图;
图7A是本申请一示例性实施例示出的一种接收基站根据多波束测量能力信息发送的第一测量配置信息的流程图;
图7B是本申请一示例性实施例示出的另一种上报测量信号的方法的流程图;
图8是根据一示例性实施例示出的一种接收测量信号的装置的框图;
图9A是根据一示例性实施例示出的另一种接收测量信号的装置的框图;
图9B是根据一示例性实施例示出的另一种接收测量信号的装置的框图;
图9C是根据一示例性实施例示出的另一种接收测量信号的装置的框图;
图9D是根据一示例性实施例示出的另一种接收测量信号的装置的框图;
图9E是根据一示例性实施例示出的另一种接收测量信号的装置的框图;
图9F是根据一示例性实施例示出的另一种接收测量信号的装置的框图;
图10是根据一示例性实施例示出的一种上报测量信号的装置的框图;
图11A是根据一示例性实施例示出的另一种上报测量信号的装置的框图;
图11B是根据一示例性实施例示出的另一种上报测量信号的装置的框图;
图12是根据一示例性实施例示出的一种适用于接收测量信号的装置的框图;
图13是根据一示例性实施例示出的一种适用于上报测量信号的装置的框图。
具体实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进行清楚、完整地描述,显然,所描述的实施例仅仅是本申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员在没有做出创造性劳动前提下所获得的所有其他实施例,都属于本申请保护的范围。
图1是本申请一示例性实施例示出的一种接收测量信号的方法的流程图,该实施例从基站侧进行描述,如图1所示,该方法包括:
在步骤S101中,接收当前UE上报的多波束测量能力信息。
其中,当前UE可以向基站上报自己的多波束测量能力信息,也可以向基站上报自己 的单波束测量能力信息。
在步骤S102中,根据多波束测量能力信息为当前UE生成第一测量配置信息,该第一测量配置信息中包括当前基站为当前UE配置的多个波束。
基站接收当前UE上报的多波束测量能力信息,以便根据当前UE上报的多波束测量能力信息生成第一测量配置信息。如果当前UE具有多波束测量能力,则基站可以为当前UE配置单波束或者多波束测量能力,但如果当前UE具有单波束测量能力,则基站只可以为当前UE配置单波束测量能力。
在该实施例中,由于当前UE具有多波束测量能力,因此,基站可以为当前UE配置多个波束。
可选地,第一测量配置信息中的多个波束可以为相邻波束,且第一测量配置信息中还可以包括相邻波束同时测量的指示信息。
在步骤S103中,向当前UE发送第一测量配置信息,以用于UE根据第一测量配置信息中包括的多个波束生成第一测量信号。
在基站向当前UE发送包括多个波束的第一测量配置信息后,当前UE可以根据第一测量配置信息中包括的多个波束生成第一测量信号,以提高测量信号的准确性。例如,可以基于多个波束的信号同步块生成对应的测量信号,并对上述测量信号进行平滑处理,以得到第一测量信号,并向基站上报该第一测量信号。
可选地,如果第一测量配置信息中包括相邻波束同时测量的指示信息且多个波束为相邻波束,则当前UE可以根据相邻波束和指示信息同时生成与每个波束对应的第一测量信号,并向基站上报该第一测量信号。
在步骤S104中,接收当前UE上报的第一测量信号。
基站可以接收当前UE上报的第一测量信号。
上述实施例,通过根据当前UE上报的多波束测量能力信息为当前UE生成包括多个波束的第一测量配置信息,使得当前UE可以根据第一测量配置信息中包括的多个波束生成第一测量信号,从而提高UE处于多波束覆盖场景下测量信号的准确性。
图2是本申请一示例性实施例示出的一种根据多波束测量能力信息为当前UE生成第一测量配置信息的流程图,如图2所示,生成第一测量配置信息可以包括:
在步骤S201中,根据多波束测量能力信息为当前UE生成第二测量配置信息,该第 二测量配置信息中包括当前基站为当前UE配置的单波束。
在该实施例中,由于当前UE具有多波束测量能力,因此,基站可以首先为当前UE配置单波束。
在步骤S202中,向当前UE发送第二测量配置信息,以用于UE根据第二测量配置信息中包括的单波束生成的第二测量信号。
基站可以向当前UE发送配置的单波束,当前UE接收到配置的单波束后,可以根据该单波束生成第二测量信号,并向基站上报第二测量信号。
在步骤S203中,接收当前UE上报的第二测量信号。
在步骤S204中,若接收的第二测量信号和预估的第二测量信号不一致,则为当前UE生成第一测量配置信息,第一测量配置信息中包括当前基站为当前UE配置的多个波束。
若基站接收到的第二测量信号和预估的第二测量信号不一致,例如,预估的第二测量信号在一个预设阈值范围内,而如果接收到的第二测量信号未在该预设阈值范围内,则确认二者不一致,这表明当前UE基于基站配置的单波束生成的第二测量信号不够准确,因此,基站可以为当前UE重新配置波束,例如,可以为当前UE配置多个波束。
需要说明的是,图2所示生成第一测量配置信息的过程可以适用于图1中的步骤S102,即由于当前UE具有多波束测量能力,因此,基站可以为当前UE配置多个波束,也可以先为当前UE配置单波束,如果基于单波束生成的第二测量信号不够准确,再将单波束改为多个波束。
上述实施例,通过先为当前UE配置单波束,然后在基于单波束生成的第二测量信号不够准确的情况下,再将单波束改为多个波束,从而有利于提高测量信号的准确性。
图3是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图,该实施例在图1所示实施例的基础上进行描述,在该实施例中,多个波束可以包括一个主波束和至少一个辅波束,第一测量配置信息中还可以包括分别与主波束和至少一个辅波束对应的测量资源,且与主波束对应的测量资源大于与每个辅波束对应的测量资源,第一测量信号包括与每个波束对应的第一测量信号,如图3所示,在上述步骤S104之后,该方法还可以包括:
在步骤S301中,若根据与每个波束对应的第一测量信号确认当前UE处于多个波束的几何中心,则更新与每个波束对应的测量资源,以使与主波束对应的测量资源等于与每个辅波束对应的测量资源。
对于不同数量的波束,其几何中心是不同的,例如,对于两个波束而言,其几何中心为两个波束的中间。
假设多个波束为两个波束,即一个主波束和一个辅波束,基站在根据与这两个波束对应的第一测量信号确认当前UE处于两个波束的中间时,则表明主波束和辅波束所需测量资源相同,因此可以更新与每个波束对应的测量资源,以使与主波束对应的测量资源等于与辅波束对应的测量资源。
在步骤S302中,接收当前UE根据更新后的测量资源上报的与每个波束对应的第一测量信号。
在基站更新与每个波束对应的测量资源之后,当前UE可以根据更新后的测量资源上报与每个波束对应的第一测量信号。
上述实施例,通过在确认当前UE处于多个波束的几何中心后,更新与每个波束对应的测量资源,使得与主波束对应的测量资源等于与每个辅波束对应的测量资源,从而为每个波束合理地分配测量资源,并可保证测量信号的准确性。
图4A是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图,该实施例在图3所示实施例的基础上进行描述,如图4A所示,在上述步骤S301之前,该方法还可以包括:
在步骤S401中,根据与每个波束对应的第一测量信号确定参考波束。
从与每个波束对应的第一测量信号中选择信号好的波束作为参考波束。
在步骤S402中,如果确认当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,该第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为参考波束。
其中,第一预设阈值大于第二预设阈值。
由于UE具有移动性,为了提高测量信号的准确性,可以为当前UE配置单波束,且该单波束可以为参考波束。
如果确认当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则表明当前UE仍然在本小区。但如果前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则表明当前UE可以切换到邻小区。对应于当前UE切换到邻小区的情形,其测量上报过程与当前UE仍然在本小区的测量上报过程基本相同,其区别之 处在于,判断条件不同,即如图4B所示,可以将步骤S402替换为步骤S402′。
在步骤S402′中,如果确认当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为参考波束。
需要说明的是,虽然在这两种情形下UE上报测量信号的过程相同,但是,二者的参考波束却不同,因为波束是属于小区的,小区发生切换,不同小区的波束肯定不同。
在步骤S403中,向当前UE发送第三测量配置信息,以用于UE根据第三测量配置信息中包括的单波束生成第三测量信号。
在步骤S404中,接收当前UE上报的第三测量信号。
上述实施例,通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
图5A是本申请一示例性实施例示出的另一种接收测量信号的方法的流程图,该实施例在图1所示实施例的基础上进行描述,在该实施例中,第一测量配置信息中还可以包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,第一测量信号包括与每个波束对应的第一测量信号,如图5A所示,在上述步骤S104之后,该方法还可以包括:
在步骤S501中,根据与每个波束对应的第一测量信号确定参考波束。
从与每个波束对应的第一测量信号中选择信号好的波束作为参考波束。
在步骤S502中,如果确认当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,该第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为参考波束。
其中,第一预设阈值大于第二预设阈值。
由于UE具有移动性,为了提高测量信号的准确性,可以为当前UE配置单波束,且该单波束可以为参考波束。
如果确认当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则表明当前UE仍然在本小区。但如果前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则表明当前UE可以切换到邻小区。对应于当前UE切换到邻小区的情形,其测量上报过程与当前UE仍然在本小区的测量上报过程基本相同,其区别之 处在于,判断条件不同,即如图5B所示,可以将步骤S502替换为步骤S502′。
在步骤S502′中,如果确认当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为参考波束。
需要说明的是,虽然在这两种情形下UE上报测量信号的过程相同,但是,二者的参考波束却不同,因为波束是属于小区的,小区发生切换,不同小区的波束肯定不同。
在步骤S503中,向当前UE发送第三测量配置信息,以用于UE根据第三测量配置信息中包括的单波束生成第三测量信号。
在步骤S504中,接收当前UE上报的第三测量信号。
上述实施例,通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
图6是本申请一示例性实施例示出的一种上报测量信号的方法的流程图,该实施例从UE侧进行描述,如图6所示,上报测量信号的方法包括:
在步骤S601中,向基站上报当前UE的多波束测量能力信息。
其中,当前UE可以向基站上报自己的多波束测量能力信息。
在步骤S602中,接收基站根据多波束测量能力信息发送的第一测量配置信息,该第一测量配置信息中包括当前基站为当前UE配置的多个波束。
基站接收当前UE上报的多波束测量能力信息后,可以根据当前UE上报的多波束测量能力信息生成第一测量配置信息,并向当前UE发送该第一测量配置信息。
可选地,第一测量配置信息中的多个波束可以为相邻波束,且第一测量配置信息中还可以包括相邻波束同时测量的指示信息。
在步骤S603中,根据第一测量配置信息中包括的多个波束生成第一测量信号。
当前UE可以根据第一测量配置信息中包括的多个波束生成第一测量信号,以提高测量信号的准确性。例如,可以基于多个波束的信号同步块生成对应的测量信号,并对上述测量信号进行平滑处理,以得到第一测量信号。
可选地,如果第一测量配置信息中包括相邻波束同时测量的指示信息且多个波束为相 邻波束,则当前UE可以根据相邻波束和指示信息同时生成与每个波束对应的第一测量信号。
在步骤S604中,向基站上报第一测量信号。
当前UE可以向基站上报第一测量信号。
上述实施例,通过向基站上报当前UE的多波束测量能力信息,使得基站可以根据当前UE上报的多波束测量能力信息向当前UE发送第一测量配置信息,当前UE在接收第一测量配置信息后,可以根据第一测量配置信息中包括的多个波束生成第一测量信号,并向基站上报第一测量信号,从而提高UE处于多波束覆盖场景下测量信号的准确性。
图7A是本申请一示例性实施例示出的一种接收基站根据多波束测量能力信息发送的第一测量配置信息的流程图,如图7A所示,接收基站根据多波束测量能力信息发送的第一测量配置信息包括:
在步骤S701中,接收基站根据多波束测量能力信息发送的第二测量配置信息,该第二测量配置信息中包括当前基站为当前UE配置的单波束。
在该实施例中,由于当前UE具有多波束测量能力,因此,基站可以首先为当前UE配置单波束。
在步骤S702中,根据第二测量配置信息中包括的单波束生成第二测量信号。
当前UE接收到配置的单波束后,可以根据该单波束生成第二测量信号。
在步骤S703中,向基站上报第二测量信号。
当前UE可以向基站上报第二测量信号。
在步骤S704中,接收基站根据第二测量信号发送的第一测量配置信息。
若基站接收到的第二测量信号和预估的第二测量信号不一致,则可以为当前UE重新配置波束,例如,可以向当前UE发送包括多个波束的第一测量配置信息。
上述实施例,通过根据基站发送的第二测量配置信息中包括的单波束生成第二测量信号,并接收基站根据第二测量信号发送的第一测量配置信息,以实现在基于单波束生成的第二测量信号不够准确的情况下,将单波束改为多个波束,使得UE可以基于多个波束生成第一测量信号,从而有利于提高测量信号的准确性。
图7B是本申请一示例性实施例示出的另一种上报测量信号的方法的流程图,如图7B所示,该方法还可以包括:
在步骤S801中,接收基站发送的第三测量配置信息,该第三测量配置信息中包括当前基站为当前UE配置的单波束。
其中,当前UE可以接收基站发送的第三测量配置信息,该第三测量配置信息中可以包括当前基站为当前UE配置的单波束,该单波束可以是与当前UE对应的多个波束中测量信号较好的波束。
在步骤S802中,根据第三测量配置信息中包括的单波束生成第三测量信号。
当前UE可以根据第三测量配置信息中包括的单波束生成第三测量信号。
在步骤S803中,向基站上报第三测量信号。
当前UE可以向基站上报第三测量信号。
上述实施例,通过接收基站发送的生成第三测量配置信息,并根据该第三测量配置信息中包括的单波束生成第三测量信号,向基站上报第三测量信号,以保证测量信号的准确性。
图8是根据一示例性实施例示出的一种接收测量信号的装置的框图,如图8所示,该装置包括:第一接收模块81、生成模块82、第一发送模块83和第二接收模块84。
第一接收模块81被配置为接收当前UE上报的多波束测量能力信息。
其中,当前UE可以向基站上报自己的多波束测量能力信息,也可以向基站上报自己的单波束测量能力信息。
生成模块82被配置为根据第一接收模块81接收的多波束测量能力信息为当前UE生成第一测量配置信息,第一测量配置信息中包括当前基站为当前UE配置的多个波束。
基站接收当前UE上报的多波束测量能力信息,以便根据当前UE上报的多波束测量能力信息生成第一测量配置信息。如果当前UE具有多波束测量能力,则基站可以为当前UE配置单波束或者多波束测量能力,但如果当前UE具有单波束测量能力,则基站只可以为当前UE配置单波束测量能力。
在该实施例中,由于当前UE具有多波束测量能力,因此,基站可以为当前UE配置多个波束。
可选地,第一测量配置信息中的多个波束可以为相邻波束,且第一测量配置信息中还可以包括相邻波束同时测量的指示信息。
第一发送模块83被配置为向当前UE发送生成模块82生成的第一测量配置信息,以 用于当前UE根据第一测量配置信息中包括的多个波束生成第一测量信号。
在基站向当前UE发送包括多个波束的第一测量配置信息后,当前UE可以根据第一测量配置信息中包括的多个波束生成第一测量信号,以提高测量信号的准确性。例如,可以基于多个波束的信号同步块生成对应的测量信号,并对上述测量信号进行平滑处理,以得到第一测量信号,并向基站上报该第一测量信号。
可选地,如果第一测量配置信息中包括相邻波束同时测量的指示信息且多个波束为相邻波束,则当前UE可以根据相邻波束和指示信息同时生成与每个波束对应的第一测量信号,并向基站上报该第一测量信号。
第二接收模块84被配置为接收当前UE上报的根据第一发送模块83发送的第一测量配置信息生成的第一测量信号。
基站可以接收当前UE上报的第一测量信号。
上述实施例,通过根据当前UE上报的多波束测量能力信息为当前UE生成包括多个波束的第一测量配置信息,使得当前UE可以根据第一测量配置信息中包括的多个波束生成第一测量信号,从而提高UE处于多波束覆盖场景下测量信号的准确性。
图9A是根据一示例性实施例示出的另一种接收测量信号的装置的框图,如图9A所示,在上述图8所示实施例的基础上,生成模块82可以包括:第一生成子模块821、发送子模块822、接收子模块823和第二生成子模块824。
第一生成子模块821被配置为根据多波束测量能力信息为当前UE生成第二测量配置信息,第二测量配置信息中包括当前基站为当前UE配置的单波束。
在该实施例中,由于当前UE具有多波束测量能力,因此,基站可以首先为当前UE配置单波束。
发送子模块822被配置为向当前UE发送第一生成子模块821生成的第二测量配置信息,以用于UE根据第二测量配置信息中包括的单波束生成的第二测量信号。
基站可以向当前UE发送配置的单波束,当前UE接收到配置的单波束后,可以根据该单波束生成第二测量信号,并向基站上报第二测量信号。
接收子模块823被配置为接收当前UE上报的根据发送子模块822发送的第二测量配置信息生成的第二测量信号。
第二生成子模块824被配置为若接收子模块823接收的第二测量信号和预估的第二测 量信号不一致,则为当前UE生成第一测量配置信息,第一测量配置信息中包括当前基站为当前UE配置的多个波束。
若基站接收到的第二测量信号和预估的第二测量信号不一致,例如,预估的第二测量信号在一个预设阈值范围内,而如果接收到的第二测量信号未在该预设阈值范围内,则确认二者不一致,这表明当前UE基于基站配置的单波束生成的第二测量信号不够准确,因此,基站可以为当前UE重新配置波束,例如,可以为当前UE配置多个波束。
上述实施例,通过先为当前UE配置单波束,然后在基于单波束生成的第二测量信号不够准确的情况下,再将单波束改为多个波束,从而有利于提高测量信号的准确性。
图9B是根据一示例性实施例示出的另一种接收测量信号的装置的框图,在上述图8所示实施例的基础上,多个波束包括一个主波束和至少一个辅波束,第一测量配置信息中还包括分别与主波束和至少一个辅波束对应的测量资源,且与主波束对应的测量资源大于与每个辅波束对应的测量资源,第一测量信号包括与每个波束对应的第一测量信号,如图9B所示,该装置还可以包括:确认更新模块85和第三接收模块86。
确认更新模块85被配置为在第二接收模块84接收当前UE上报的第一测量信号之后,若根据与每个波束对应的第一测量信号确认当前UE处于多个波束的几何中心,则更新与每个波束对应的测量资源,以使与主波束对应的测量资源等于与每个辅波束对应的测量资源。
对于不同数量的波束,其几何中心是不同的,例如,对于两个波束而言,其几何中心为两个波束的中间。
假设多个波束为两个波束,即一个主波束和一个辅波束,基站在根据与这两个波束对应的第一测量信号确认当前UE处于两个波束的中间时,则表明主波束和辅波束所需测量资源相同,因此可以更新与每个波束对应的测量资源,以使与主波束对应的测量资源等于与辅波束对应的测量资源。
第三接收模块86被配置为接收当前UE根据确认更新模块85更新后的测量资源上报的与每个波束对应的第一测量信号。
在基站更新与每个波束对应的测量资源之后,当前UE可以根据更新后的测量资源上报与每个波束对应的第一测量信号。
上述实施例,通过在确认当前UE处于多个波束的几何中心后,更新与每个波束对应的测量资源,使得与主波束对应的测量资源等于与每个辅波束对应的测量资源,从而为每个波束合理地分配测量资源,并可保证测量信号的准确性。
图9C是根据一示例性实施例示出的另一种接收测量信号的装置的框图,如图9C所示,在上述图9B所示实施例的基础上,该装置还包括:第一确定模块87、第一确认生成模块88、第二发送模块89和第四接收模块90。
第一确定模块87被配置为在确认更新模块85更新与每个波束对应的测量资源之前,根据与每个波束对应的第一测量信号确定参考波束。
从与每个波束对应的第一测量信号中选择信号好的波束作为参考波束。
第一确认生成模块88被配置为如果确认当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为第一确定模块87确定的参考波束,其中,第一预设阈值大于第二预设阈值。
其中,第一预设阈值大于第二预设阈值。
由于UE具有移动性,为了提高测量信号的准确性,可以为当前UE配置单波束,且该单波束可以为参考波束。
如果确认当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则表明当前UE仍然在本小区。
第二发送模块89被配置为向当前UE发送第一确认生成模块88生成的第三测量配置信息,以用于UE根据第三测量配置信息中包括的单波束生成第三测量信号。
第四接收模块90被配置为接收当前UE上报的根据第二发送模块89发送的第三测量配置信息生成的第三测量信号。
上述实施例,通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
图9D是根据一示例性实施例示出的另一种接收测量信号的装置的框图,如图9D所示,在上述图9B所示实施例的基础上,该装置还可以包括:第二确定模块91、第二确认生成模块92、第三发送模块93和第五接收模块94。
第二确定模块91被配置为在确认更新模块更新与每个波束对应的测量资源之前,根据与每个波束对应的第一测量信号确定参考波束。
第二确认生成模块92被配置为如果确认当前UE所在小区的信号小于第一预设阈值 且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为第二确定模块91确定的参考波束,其中,第一预设阈值大于第二预设阈值。
如果前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则表明当前UE可以切换到邻小区。对应于当前UE切换到邻小区的情形,其测量上报过程与当前UE仍然在本小区的测量上报过程基本相同。
第三发送模块93被配置为向当前UE发送第二确认生成模块92生成的第三测量配置信息,以用于UE根据第三测量配置信息中包括的单波束生成第三测量信号;
第五接收模块94被配置为接收当前UE上报的根据第三发送模块93发送的第三测量配置信息生成的第三测量信号。
上述实施例,通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
图9E是根据一示例性实施例示出的另一种接收测量信号的装置的框图,在上述图8所示实施例的基础上,第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,第一测量信号包括与每个波束对应的第一测量信号,如图9E所示,该装置还可以包括:第三确定模块95、第三确认生成模块96、第四发送模块97和第六接收模块98。
第三确定模块95被配置为在第二接收模块84接收当前UE上报的第一测量信号之后,根据与每个波束对应的第一测量信号确定参考波束。
第三确认生成模块96被配置为如果确认当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为第三确定模块95确定的参考波束,其中,第一预设阈值大于第二预设阈值。
第四发送模块97被配置为向当前UE发送第三确认生成模块96生成的第三测量配置信息,以用于UE根据第三测量配置信息中包括的单波束生成第三测量信号。
第六接收模块98被配置为接收当前UE上报的根据第四发送模块97发送的第三测量配置信息生成的第三测量信号。
上述实施例,通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
图9F是根据一示例性实施例示出的另一种接收测量信号的装置的框图,在上述图8所示实施例的基础上,第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,第一测量信号包括与每个波束对应的第一测量信号,如图9F所示,该装置还可以包括:第四确定模块99、第四确认生成模块100、第五发送模块101和第七接收模块102。
第四确定模块99被配置为在第二接收模块84接收当前UE上报的第一测量信号之后,根据与每个波束对应的第一测量信号确定参考波束。
第四确认生成模块100被配置为如果确认当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,第三测量配置信息中包括当前基站为当前UE配置的单波束,且单波束为第四确定模块99确定的参考波束,其中,第一预设阈值大于第二预设阈值。
第五发送模块101被配置为向当前UE发送第四确认生成模块100生成的第三测量配置信息,以用于UE根据第三测量配置信息中包括的单波束生成第三测量信号。
第七接收模块102被配置为接收当前UE上报的根据第五发送模块101发送的第三测量配置信息生成的第三测量信号。
上述实施例,通过确定参考波束,并为当前UE配置单波束,且该单波束为确定的参考波束,使得当前UE可以根据配置的参考波束生成第三测量信号,以提高测量信号的准确性。
图10是根据一示例性实施例示出的一种上报测量信号的装置的框图,如图10所示,上报测量信号的装置包括:第一上报模块110、第一接收模块120、第一生成模块130和第二上报模块140。
第一上报模块110被配置为向基站上报当前UE的多波束测量能力信息。
其中,当前UE可以向基站上报自己的多波束测量能力信息。
第一接收模块120被配置为接收基站根据第一上报模块110上报的多波束测量能力信息发送的第一测量配置信息,第一测量配置信息中包括当前基站为当前UE配置的多个波束。
基站接收当前UE上报的多波束测量能力信息后,可以根据当前UE上报的多波束测量能力信息生成第一测量配置信息,并向当前UE发送该第一测量配置信息。
可选地,第一测量配置信息中的多个波束可以为相邻波束,且第一测量配置信息中还可以包括相邻波束同时测量的指示信息。
第一生成模块130被配置为根据第一接收模块120接收的第一测量配置信息中包括的多个波束生成第一测量信号。
当前UE可以根据第一测量配置信息中包括的多个波束生成第一测量信号,以提高测量信号的准确性。例如,可以基于多个波束的信号同步块生成对应的测量信号,并对上述测量信号进行平滑处理,以得到第一测量信号。
可选地,如果第一测量配置信息中包括相邻波束同时测量的指示信息且多个波束为相邻波束,则当前UE可以根据相邻波束和指示信息同时生成与每个波束对应的第一测量信号。
第二上报模块140被配置为向基站上报第一生成模块130生成的第一测量信号。
当前UE可以向基站上报第一测量信号。
上述实施例,通过向基站上报当前UE的多波束测量能力信息,使得基站可以根据当前UE上报的多波束测量能力信息向当前UE发送第一测量配置信息,当前UE在接收第一测量配置信息后,可以根据第一测量配置信息中包括的多个波束生成第一测量信号,并向基站上报第一测量信号,从而提高UE处于多波束覆盖场景下测量信号的准确性。
图11A是根据一示例性实施例示出的另一种上报测量信号的装置的框图,如图11A所示,在上述图10所示实施例的基础上,第一接收模块120可以包括:第一接收子模块1201、生成子模块1202、上报子模块1203和第二接收子模块1204。
第一接收子模块1201被配置为接收基站根据多波束测量能力信息发送的第二测量配置信息,第二测量配置信息中包括当前基站为当前UE配置的单波束。
在该实施例中,由于当前UE具有多波束测量能力,因此,基站可以首先为当前UE配置单波束。
生成子模块1202被配置为根据第一接收子模块1201接收的第二测量配置信息中包括的单波束生成第二测量信号。
当前UE接收到配置的单波束后,可以根据该单波束生成第二测量信号。
上报子模块1203被配置为向基站上报生成子模块1202生成的第二测量信号。
当前UE可以向基站上报第二测量信号。
第二接收子模块1204被配置为接收基站根据上报子模块1203上报的第二测量信号发送的第一测量配置信息。
若基站接收到的第二测量信号和预估的第二测量信号不一致,则可以为当前UE重新配置波束,例如,可以向当前UE发送包括多个波束的第一测量配置信息。
上述实施例,通过根据基站发送的第二测量配置信息中包括的单波束生成第二测量信号,并接收基站根据第二测量信号发送的第一测量配置信息,以实现在基于单波束生成的第二测量信号不够准确的情况下,将单波束改为多个波束,使得UE可以基于多个波束生成第一测量信号,从而有利于提高测量信号的准确性。
图11B是根据一示例性实施例示出的另一种上报测量信号的装置的框图,如图11B所示,在上述图10所示实施例的基础上,该装置还可以包括:第二接收模块150、第二生成模块160和第三上报模块170。
第二接收模块150被配置为接收基站发送的第三测量配置信息,第三测量配置信息中包括当前基站为当前UE配置的单波束。
其中,当前UE可以接收基站发送的第三测量配置信息,该第三测量配置信息中可以包括当前基站为当前UE配置的单波束,该单波束可以是与当前UE对应的多个波束中测量信号较好的波束。
第二生成模块160被配置为根据第二接收模块150接收的第三测量配置信息中包括的单波束生成第三测量信号。
当前UE可以根据第三测量配置信息中包括的单波束生成第三测量信号。
第三上报模块170被配置为向基站上报第二生成模块160生成的第三测量信号。
当前UE可以向基站上报第三测量信号。
上述实施例,通过接收基站发送的生成第三测量配置信息,并根据该第三测量配置信息中包括的单波束生成第三测量信号,向基站上报第三测量信号,以保证测量信号的准确性。
图12是根据一示例性实施例示出的一种适用于接收测量信号的装置的框图。装置1200可以被提供为一基站。参照图12,装置1200包括处理组件1222、无线发射/接收组件1224、天线组件1226、以及无线接口特有的信号处理部分,处理组件1222可进一步包括一个或多个处理器。
处理组件1222中的其中一个处理器可以被配置为:
接收当前UE上报的多波束测量能力信息;
根据多波束测量能力信息为当前UE生成第一测量配置信息,第一测量配置信息中包括当前基站为当前UE配置的多个波束;
向当前UE发送第一测量配置信息,以用于当前UE根据第一测量配置信息中包括的多个波束生成第一测量信号;
接收当前UE上报的第一测量信号。
图13是根据一示例性实施例示出的一种适用于上报测量信号的装置的框图。例如,装置1300可以是移动电话,计算机,数字广播终端,消息收发设备,游戏控制台,平板设备,医疗设备,健身设备,个人数字助理等用户设备。
参照图13,装置1300可以包括以下一个或多个组件:处理组件1302,存储器1304,电源组件1306,多媒体组件1308,音频组件1310,输入/输出(I/O)的接口1312,传感器组件1314,以及通信组件1316。
处理组件1302通常控制装置1300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。处理元件1302可以包括一个或多个处理器1320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1302可以包括一个或多个模块,便于处理组件1302和其他组件之间的交互。例如,处理部件1302可以包括多媒体模块,以方便多媒体组件1308和处理组件1302之间的交互。
存储器1304被配置为存储各种类型的数据以支持在设备1300的操作。这些数据的示例包括用于在装置1300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1304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1306为装置1300的各种组件提供电力。电源组件1306可以包括电源管理系统,一个或多个电源,及其他与为装置1300生成、管理和分配电力相关联的组件。
多媒体组件1308包括在装置1300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。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1308包括一个前置摄像头和/或后置摄像头。当设备1300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1310被配置为输出和/或输入音频信号。例如,音频组件1310包括一个麦克风(MIC),当装置1300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1304或经由通信组件1316发送。在一些实施例中,音频组件1310还包括一个扬声器,用于输出音频信号。
I/O接口1312为处理组件1302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1314包括一个或多个传感器,用于为装置1300提供各个方面的状态评估。例如,传感器组件1314可以检测到设备1300的打开/关闭状态,组件的相对定位,例如组件为装置1300的显示器和小键盘,传感器组件1314还可以检测装置1300或装置1300一个组件的位置改变,用户与装置1300接触的存在或不存在,装置1300方位或加速/减速和装置1300的温度变化。传感器组件1314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1314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1314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1316被配置为便于装置1300和其他设备之间有线或无线方式的通信。装置1300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,通信部件1316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,通信部件1316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,装置1300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1304,上述指令可由装置1300的处理器1320执行以完成上述方法。例如,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。
对于装置实施例而言,由于其基本对应于方法实施例,所以相关之处参见方法实施例的部分说明即可。以上所描述的装置实施例仅仅是示意性的,其中所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个网络单元上。可以根据实际的需要选择其中的部分或者全部模块来实现本实施例方案的目的。本领域普通技术人员在不付出创造性劳动的情况下,即可以理解并实施。
需要说明的是,在本文中,诸如第一和第二等之类的关系术语仅仅用来将一个实体或者操作与另一个实体或操作区分开来,而不一定要求或者暗示这些实体或操作之间存在任何这种实际的关系或者顺序。术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者设备不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者设备所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括所述要素的过程、方法、物品或者设备中还存在另外的相同要素。
以上对本发明实施例所提供的方法和装置进行了详细介绍,本文中应用了具体个例对本发明的原理及实施方式进行了阐述,以上实施例的说明只是用于帮助理解本发明的方法及其核心思想;同时,对于本领域的一般技术人员,依据本发明的思想,在具体实施方式及应用范围上均会有改变之处,综上所述,本说明书内容不应理解为对本发明的限制。

Claims (28)

  1. 一种接收测量信号的方法,其特征在于,所述方法包括:
    接收当前UE上报的多波束测量能力信息;
    根据所述多波束测量能力信息为当前UE生成第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
    向所述当前UE发送所述第一测量配置信息,以用于所述当前UE根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
    接收所述当前UE上报的所述第一测量信号。
  2. 根据权利要求1所述的方法,其特征在于,所述根据所述多波束测量能力信息为当前UE生成第一测量配置信息,包括:
    根据所述多波束测量能力信息为当前UE生成第二测量配置信息,所述第二测量配置信息中包括所述当前基站为所述当前UE配置的单波束;
    向所述当前UE发送所述第二测量配置信息,以用于所述UE根据所述第二测量配置信息中包括的所述单波束生成的第二测量信号;
    接收所述当前UE上报的所述第二测量信号;
    若接收的所述第二测量信号和预估的第二测量信号不一致,则为所述当前UE生成所述第一测量配置信息,所述第一测量配置信息中包括所述当前基站为所述当前UE配置的所述多个波束。
  3. 根据权利要求1所述的方法,其特征在于,所述多个波束包括一个主波束和至少一个辅波束,所述第一测量配置信息中还包括分别与所述主波束和所述至少一个辅波束对应的测量资源,且与所述主波束对应的测量资源大于与每个辅波束对应的测量资源,所述第一测量信号包括与每个波束对应的第一测量信号;
    在所述接收所述当前UE上报的所述第一测量信号之后,所述方法还包括:
    若根据所述与每个波束对应的第一测量信号确认所述当前UE处于所述多个波束的几何中心,则更新与每个波束对应的测量资源,以使与所述主波束对应的测量资源等于与所述每个辅波束对应的测量资源;
    接收所述当前UE根据更新后的测量资源上报的与每个波束对应的第一测量信号。
  4. 根据权利要求3所述的方法,其特征在于,在所述更新与每个波束对应的测量资源之前,所述方法还包括:
    根据所述与每个波束对应的第一测量信号确定参考波束;
    如果确认所述当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    接收所述当前UE上报的所述第三测量信号。
  5. 根据权利要求3所述的方法,其特征在于,在所述更新与每个波束对应的测量资源之前,所述方法还包括:
    根据所述与每个波束对应的第一测量信号确定参考波束;
    如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    接收所述当前UE上报的所述第三测量信号。
  6. 根据权利要求1所述的方法,其特征在于,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波束对应的第一测量信号;
    在所述接收所述当前UE上报的所述第一测量信号之后,所述方法还包括:
    根据所述与每个波束对应的第一测量信号确定参考波束;
    如果确认所述当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    接收所述当前UE上报的所述第三测量信号。
  7. 根据权利要求1所述的方法,其特征在于,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波束对应的第一测量信号;
    在所述接收所述当前UE上报的所述第一测量信号之后,所述方法还包括:
    根据所述与每个波束对应的第一测量信号确定参考波束;
    如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    向所述当前UE发送所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    接收所述当前UE上报的所述第三测量信号。
  8. 根据权利要求1所述的方法,其特征在于,所述第一测量配置信息中的所述多个波束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述第一测量配置信息用于所述当前UE根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
  9. 一种上报测量信号的方法,其特征在于,所述方法包括:
    向基站上报当前UE的多波束测量能力信息;
    接收所述基站根据所述多波束测量能力信息发送的第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
    根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
    向所述基站上报所述第一测量信号。
  10. 根据权利要求9所述的方法,其特征在于,所述接收所述基站根据所述多波束测量能力信息发送的第一测量配置信息,包括:
    接收所述基站根据所述多波束测量能力信息发送的第二测量配置信息,所述第二测量配置信息中包括所述当前基站为所述当前UE配置的单波束;
    根据所述第二测量配置信息中包括的所述单波束生成第二测量信号;
    向所述基站上报所述第二测量信号;
    接收所述基站根据所述第二测量信号发送的所述第一测量配置信息。
  11. 根据权利要求9所述的方法,其特征在于,所述方法还包括:
    接收所述基站发送的第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束;
    根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    向所述基站上报所述第三测量信号。
  12. 根据权利要求9所述的方法,其特征在于,所述第一测量配置信息中的所述多个波 束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号,包括:
    根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
  13. 一种接收测量信号的装置,其特征在于,所述装置包括:
    第一接收模块,被配置为接收当前UE上报的多波束测量能力信息;
    生成模块,被配置为根据所述第一接收模块接收的所述多波束测量能力信息为当前UE生成第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
    第一发送模块,被配置为向所述当前UE发送所述生成模块生成的所述第一测量配置信息,以用于所述当前UE根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
    第二接收模块,被配置为接收所述当前UE上报的根据所述第一发送模块发送的所述第一测量配置信息生成的所述第一测量信号。
  14. 根据权利要求13所述的装置,其特征在于,所述生成模块包括:
    第一生成子模块,被配置为根据所述多波束测量能力信息为当前UE生成第二测量配置信息,所述第二测量配置信息中包括所述当前基站为所述当前UE配置的单波束;
    发送子模块,被配置为向所述当前UE发送所述第一生成子模块生成的所述第二测量配置信息,以用于所述UE根据所述第二测量配置信息中包括的所述单波束生成的第二测量信号;
    接收子模块,被配置为接收所述当前UE上报的根据所述发送子模块发送的所述第二测量配置信息生成的所述第二测量信号;
    第二生成子模块,被配置为若所述接收子模块接收的所述第二测量信号和预估的第二测量信号不一致,则为所述当前UE生成所述第一测量配置信息,所述第一测量配置信息中包括所述当前基站为所述当前UE配置的所述多个波束。
  15. 根据权利要求13所述的装置,其特征在于,所述多个波束包括一个主波束和至少一个辅波束,所述第一测量配置信息中还包括分别与所述主波束和所述至少一个辅波束对应的测量资源,且与所述主波束对应的测量资源大于与每个辅波束对应的测量资源,所述第一测量信号包括与每个波束对应的第一测量信号;
    所述装置还包括:
    确认更新模块,被配置为在所述第二接收模块接收所述当前UE上报的所述第一测量信 号之后,若根据所述与每个波束对应的第一测量信号确认所述当前UE处于所述多个波束的几何中心,则更新与每个波束对应的测量资源,以使与所述主波束对应的测量资源等于与所述每个辅波束对应的测量资源;
    第三接收模块,被配置为接收所述当前UE根据所述确认更新模块更新后的测量资源上报的与每个波束对应的第一测量信号。
  16. 根据权利要求15所述的装置,其特征在于,所述装置还包括:
    第一确定模块,被配置为在所述确认更新模块更新与每个波束对应的测量资源之前,根据所述与每个波束对应的第一测量信号确定参考波束;
    第一确认生成模块,被配置为如果确认所述当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第一确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    第二发送模块,被配置为向所述当前UE发送所述第一确认生成模块生成的所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    第四接收模块,被配置为接收所述当前UE上报的根据所述第二发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
  17. 根据权利要求15所述的装置,其特征在于,所述装置还包括:
    第二确定模块,被配置为在所述确认更新模块更新与每个波束对应的测量资源之前,根据所述与每个波束对应的第一测量信号确定参考波束;
    第二确认生成模块,被配置为如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第二确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    第三发送模块,被配置为向所述当前UE发送所述第二确认生成模块生成的第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    第五接收模块,被配置为接收所述当前UE上报的根据所述第三发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
  18. 根据权利要求13所述的装置,其特征在于,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波 束对应的第一测量信号;
    所述装置还包括:
    第三确定模块,被配置为在所述第二接收模块接收所述当前UE上报的所述第一测量信号之后,根据所述与每个波束对应的第一测量信号确定参考波束;
    第三确认生成模块,被配置为如果确认所述当前UE所在小区的信号大于第一预设阈值且邻小区的信号小于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第三确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    第四发送模块,被配置为向所述当前UE发送所述第三确认生成模块生成的所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    第六接收模块,被配置为接收所述当前UE上报的根据所述第四发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
  19. 根据权利要求13所述的装置,其特征在于,所述第一测量配置信息中还包括与每个波束对应的测量资源,且与每个波束对应的测量资源相同,所述第一测量信号包括与每个波束对应的第一测量信号;
    所述装置还包括:
    第四确定模块,被配置为在所述第二接收模块接收所述当前UE上报的所述第一测量信号之后,根据所述与每个波束对应的第一测量信号确定参考波束;
    第四确认生成模块,被配置为如果确认所述当前UE所在小区的信号小于第一预设阈值且邻小区的信号大于第二预设阈值,则生成第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束,且所述单波束为所述第四确定模块确定的所述参考波束,其中,所述第一预设阈值大于第二预设阈值;
    第五发送模块,被配置为向所述当前UE发送所述第四确认生成模块生成的所述第三测量配置信息,以用于所述UE根据所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    第七接收模块,被配置为接收所述当前UE上报的根据所述第五发送模块发送的所述第三测量配置信息生成的所述第三测量信号。
  20. 根据权利要求13所述的装置,其特征在于,所述第一测量配置信息中的所述多个波束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述第 一测量配置信息用于所述当前UE根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
  21. 一种上报测量信号的装置,其特征在于,所述装置包括:
    第一上报模块,被配置为向基站上报当前UE的多波束测量能力信息;
    第一接收模块,被配置为接收所述基站根据所述第一上报模块上报的所述多波束测量能力信息发送的第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
    第一生成模块,被配置为根据所述第一接收模块接收的所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
    第二上报模块,被配置为向所述基站上报所述第一生成模块生成的所述第一测量信号。
  22. 根据权利要求21所述的装置,其特征在于,所述第一接收模块包括:
    第一接收子模块,被配置为接收所述基站根据所述多波束测量能力信息发送的第二测量配置信息,所述第二测量配置信息中包括所述当前基站为所述当前UE配置的单波束;
    生成子模块,被配置为根据所述第一接收子模块接收的所述第二测量配置信息中包括的所述单波束生成第二测量信号;
    上报子模块,被配置为向所述基站上报所述生成子模块生成的所述第二测量信号;
    第二接收子模块,被配置为接收所述基站根据所述上报子模块上报的所述第二测量信号发送的所述第一测量配置信息。
  23. 根据权利要求21所述的装置,其特征在于,所述装置还包括:
    第二接收模块,被配置为接收所述基站发送的第三测量配置信息,所述第三测量配置信息中包括当前基站为所述当前UE配置的单波束;
    第二生成模块,被配置为根据所述第二接收模块接收的所述第三测量配置信息中包括的所述单波束生成第三测量信号;
    第三上报模块,被配置为向所述基站上报所述第二生成模块生成的所述第三测量信号。
  24. 根据权利要求21所述的装置,其特征在于,所述第一测量配置信息中的所述多个波束包括相邻波束,且所述第一测量配置信息中还包括相邻波束同时测量的指示信息,所述第一生成模块,被配置为:
    根据所述相邻波束和所述指示信息同时生成与每个波束对应的第一测量信号。
  25. 一种基站,其特征在于,包括:
    处理器;
    用于存储处理器可执行指令的存储器;
    其中,所述处理器被配置为:
    接收当前UE上报的多波束测量能力信息;
    根据所述多波束测量能力信息为当前UE生成第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
    向所述当前UE发送所述第一测量配置信息,以用于所述当前UE根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
    接收所述当前UE上报的所述第一测量信号。
  26. 一种用户设备,其特征在于,包括:
    处理器;
    用于存储处理器可执行指令的存储器;
    其中,所述处理器被配置为:
    向基站上报当前UE的多波束测量能力信息;
    接收所述基站根据所述多波束测量能力信息发送的第一测量配置信息,所述第一测量配置信息中包括当前基站为所述当前UE配置的多个波束;
    根据所述第一测量配置信息中包括的所述多个波束生成第一测量信号;
    向所述基站上报所述第一测量信号。
  27. 一种计算机可读存储介质,其上存储有计算机程序,其特征在于,该程序被处理器执行时实现权利要求1所述的接收测量信号的方法的步骤。
  28. 一种计算机可读存储介质,其上存储有计算机程序,其特征在于,该程序被处理器执行时实现权利要求9所述的上报测量信号的方法的步骤。
PCT/CN2017/086378 2017-05-27 2017-05-27 接收和上报测量信号的方法、装置、基站和用户设备 WO2018218444A1 (zh)

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CN108521878B (zh) 2021-06-08
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US11304083B2 (en) 2022-04-12

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