WO2020132905A1 - 小区信号质量的测量方法、装置、设备及系统 - Google Patents

小区信号质量的测量方法、装置、设备及系统 Download PDF

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Publication number
WO2020132905A1
WO2020132905A1 PCT/CN2018/123633 CN2018123633W WO2020132905A1 WO 2020132905 A1 WO2020132905 A1 WO 2020132905A1 CN 2018123633 W CN2018123633 W CN 2018123633W WO 2020132905 A1 WO2020132905 A1 WO 2020132905A1
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WIPO (PCT)
Prior art keywords
mobility
measurement
measurement configuration
terminal
signal quality
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PCT/CN2018/123633
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English (en)
French (fr)
Inventor
刘洋
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北京小米移动软件有限公司
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Application filed by 北京小米移动软件有限公司 filed Critical 北京小米移动软件有限公司
Priority to PCT/CN2018/123633 priority Critical patent/WO2020132905A1/zh
Priority to CN201880002590.8A priority patent/CN109792623A/zh
Publication of WO2020132905A1 publication Critical patent/WO2020132905A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/08Testing, supervising or monitoring using real traffic
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports

Definitions

  • the present disclosure relates to the field of communications, and in particular, to a method, device, equipment, and system for measuring cell signal quality.
  • the terminal When the terminal moves in the cell and the signal strength of the terminal connection is insufficient to ensure the service quality, the terminal reselects the appropriate cell for connection according to the result of the mobility measurement, thereby ensuring uninterrupted service and guaranteed service quality of the terminal.
  • the base station configures the terminal with a measurement configuration for the terminal's mobility measurement.
  • the terminal performs mobility measurement according to the measurement configuration configured by the base station, and obtains the result of the mobility measurement, so as to select a suitable camping cell according to the result of the mobility measurement.
  • the embodiments of the present application provide a method, device, equipment and system for measuring the signal quality of a cell, which can solve the problem that when the terminal remains stationary or the moving range is small, the terminal still uses the measurement configuration provided in the related art to perform mobility measurement, which is easy
  • the problems caused by the surplus of measurement and the waste of power are as follows:
  • a method for measuring cell signal quality includes:
  • the terminal sends mobility capabilities to the access network equipment
  • the terminal receives the measurement configuration of the cell signal quality sent by the access network device, and the measurement configuration is configured by the access network device according to the mobility capability;
  • the terminal measures the signal quality of the cell according to the measurement configuration.
  • the mobility capabilities include at least one of the following capabilities:
  • the mobility capabilities include the normal mobility and the low mobility
  • the terminal receives two sets of measurement configurations of the cell signal quality sent by the access network device, the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and, A second measurement configuration under said low mobility;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration Less than the second measurement period in the second measurement configuration.
  • the terminal determines the current mobility state
  • the terminal When the mobility state is in the normal mobility, the terminal performs the measurement of the signal quality of the cell according to the first measurement configuration;
  • the terminal When the mobility state is at the low mobility, the terminal performs the measurement of the signal quality of the cell according to the second measurement configuration.
  • the terminal generates a measurement report according to the measurement of the cell signal quality performed by the second measurement configuration, and the measurement report includes a first measurement state change;
  • the terminal sends the measurement report to the access network device.
  • the terminal receives the first duration and the second duration sent by the access network device, where the first duration is the duration when the first measurement configuration takes effect, and the first The second time period is the time period during which the second measurement configuration takes effect;
  • the terminal alternately uses the first measurement configuration and the second measurement configuration according to the first duration and the second duration to measure the cell signal quality.
  • the mobility capabilities include the normal mobility and the low mobility
  • the terminal receives a first measurement configuration of the cell signal quality sent by the access network device, where the first measurement configuration is the first measurement configuration for the normal mobility;
  • the terminal receives a second measurement configuration of the cell signal quality sent by the access network device, where the second measurement configuration is a second measurement configuration for the low mobility.
  • the terminal when the mobility state is in the normal mobility, the terminal measures the signal quality of the cell according to the first measurement configuration;
  • the effective measurement configuration is switched from the first measurement configuration to the second measurement configuration
  • the terminal When the mobility state is at the low mobility, the terminal performs the measurement of the signal quality of the cell according to the second measurement configuration.
  • the mobility capabilities include: the normal mobility and the high mobility;
  • the terminal receives two sets of measurement configurations of the cell signal quality sent by the access network device, the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and, A third measurement configuration under said high mobility;
  • the power consumption of the first measurement configuration is less than the power consumption of the third measurement configuration.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration Less than the first measurement period in the first measurement configuration.
  • the terminal determines the current mobility state
  • the terminal When the mobility state is in the normal mobility, the terminal performs the measurement of the signal quality of the cell according to the first measurement configuration;
  • the terminal When the mobility state is at the high mobility, the terminal performs the measurement of the signal quality of the cell according to the third measurement configuration.
  • the terminal generates a measurement report according to the measurement of the cell signal quality performed by the third measurement configuration, and the measurement report includes a second measurement state change;
  • the terminal sends the measurement report to the access network device.
  • the terminal receives the first duration and the third duration sent by the access network device, where the first duration is the duration when the first measurement configuration is effective, and the first The three-time period is the time period during which the third measurement configuration takes effect;
  • the terminal alternately uses the first measurement configuration and the third measurement configuration according to the first duration and the third duration to measure the signal quality of the cell.
  • the mobility capabilities include: the normal mobility and the high mobility;
  • the terminal receives a first measurement configuration of the cell signal quality sent by the access network device, where the first measurement configuration is the first measurement configuration for the normal mobility;
  • the terminal receives a third measurement configuration of the cell signal quality sent by the access network device, where the third measurement configuration is a third measurement configuration for the high mobility.
  • the terminal when the mobility state is in the normal mobility, the terminal measures the signal quality of the cell according to the first measurement configuration;
  • the effective measurement configuration is switched from the first measurement configuration to the third measurement configuration
  • the terminal When the mobility state is at the high mobility, the terminal performs the measurement of the signal quality of the cell according to the third measurement configuration.
  • the terminal displays a setting interface
  • the setting interface includes a control for changing the mobility capability
  • the terminal determines the changed mobility capability when receiving the setting signal on the control
  • the terminal sends the modified mobility capability to the access network device
  • the terminal receives the measurement configuration of the cell signal quality sent again by the access network device, and the measurement configuration sent again is configured by the access network device according to the changed mobility capability;
  • the terminal performs measurement of the signal quality of the cell according to the measurement configuration sent again.
  • the mobility capability includes the normal mobility
  • the terminal receives the first measurement configuration of the cell signal quality sent by the access network device;
  • the terminal measures the signal quality of the cell according to the first measurement configuration.
  • the mobility capability includes the low mobility
  • the terminal receives the second measurement configuration of the cell signal quality sent by the access network device
  • the terminal measures the signal quality of the cell according to the second measurement configuration.
  • a method for measuring cell signal quality includes:
  • the access network equipment receives the mobility capability sent by the terminal;
  • the access network device generates a measurement configuration of the cell signal quality according to the mobility capability
  • the access network device sends the cell signal quality measurement configuration to the terminal.
  • the mobility capabilities include at least one of the following capabilities:
  • the mobility capabilities include the normal mobility and the low mobility
  • the access network device sends to the terminal two sets of measurement configurations of the cell signal quality, the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and, for The second measurement configuration under the low mobility;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration Less than the second measurement period in the second measurement configuration.
  • the mobility capabilities include the normal mobility and the low mobility
  • the access network device sends a first measurement configuration of the cell signal quality to the terminal, where the first measurement configuration is a measurement configuration for the normal mobility;
  • the access network device receives the first measurement state change sent by the terminal;
  • the access network device changes and sends a second measurement configuration of the cell signal quality to the terminal according to the first measurement state, where the second measurement configuration is a measurement configuration for the low mobility;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the access network device receives a measurement report sent by the terminal, where the measurement report includes the first measurement state change.
  • the mobility capabilities include the normal mobility and the low mobility
  • the access network device sends the two sets of measurement configurations of the cell signal quality to the terminal, and the first duration and the second duration;
  • the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and a second measurement configuration for the low mobility, the first duration is the first The length of time during which the measurement configuration takes effect, and the second time duration is the time during which the second measurement configuration takes effect.
  • the mobility capabilities include the normal mobility and the high mobility
  • the access network device sends to the terminal two sets of measurement configurations of the cell signal quality, the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and, for The third measurement configuration under the high mobility;
  • the power consumption of the first measurement configuration is less than the power consumption of the third measurement configuration.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration Less than the first measurement period in the first measurement configuration.
  • the mobility capabilities include the normal mobility and the high mobility
  • the access network device sends a first measurement configuration of the cell signal quality to the terminal, where the first measurement configuration is a measurement configuration for the normal mobility;
  • the access network device receives the second measurement state change sent by the terminal
  • the access network device changes and sends a third measurement configuration of the cell signal quality to the terminal according to the second measurement state, where the third measurement configuration is a measurement configuration for the high mobility;
  • the power consumption of the first measurement configuration is less than the power consumption of the third measurement configuration.
  • the access network device receives a measurement report sent by the terminal, where the measurement report includes the second measurement state change.
  • the mobility capabilities include the normal mobility and the high mobility
  • the access network device sends the two sets of measurement configurations of the cell signal quality to the terminal, and the first duration and the third duration;
  • the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and a third measurement configuration for the high mobility, the first duration is the first The length of time during which the measurement configuration takes effect, and the third time duration is the time during which the third measurement configuration takes effect.
  • the method further includes:
  • the access network device receives the modified mobility capability sent by the terminal;
  • the access network device sends the cell signal quality measurement configuration to the terminal again according to the modified mobility capability.
  • a cell signal quality measurement device includes:
  • the first sending module is configured to send mobility capabilities to the access network device
  • the first receiving module is configured to receive a measurement configuration of the cell signal quality sent by the access network device, where the measurement configuration is configured by the access network device according to the mobility capability;
  • the measurement module is configured to measure the signal quality of the cell according to the measurement configuration.
  • the mobility capabilities include at least one of the following capabilities:
  • the mobility capabilities include the normal mobility and the low mobility
  • the first receiving module is configured to receive two sets of measurement configurations of the cell signal quality sent by the access network device, the two sets of measurement configurations including: a first for the normal mobility A measurement configuration, and, a second measurement configuration for the low mobility;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration Less than the second measurement period in the second measurement configuration.
  • the measurement module includes:
  • the judgment unit is configured to judge the current mobility state
  • the measurement unit is configured to measure the signal quality of the cell according to the first measurement configuration when the mobility state is in the normal mobility
  • the measurement unit is configured to measure the signal quality of the cell according to the second measurement configuration when the mobility state is the low mobility.
  • the device further includes:
  • a generating module configured to measure the signal quality of the cell according to the second measurement configuration, and generate a measurement report, the measurement report including a first measurement state change
  • the first sending module is configured to send the measurement report to the access network device.
  • the device further includes:
  • the first receiving module is configured to receive a first duration and a second duration sent by the access network device, the first duration is a duration when the first measurement configuration takes effect, and the second duration is a Describe the length of time the second measurement configuration takes effect;
  • the measurement module is configured to alternately use the first measurement configuration and the second measurement configuration according to the first duration and the second duration to measure the cell signal quality.
  • the mobility capabilities include the normal mobility and the low mobility
  • the first receiving module includes:
  • a first receiving unit configured to receive a first measurement configuration of the cell signal quality sent by the access network device, the first measurement configuration being the first measurement configuration under the normal mobility
  • a first sending unit configured to send a first measurement state change to the access network device when the current mobility state is switched from the normal mobility to the low mobility;
  • the first receiving unit is configured to receive a second measurement configuration of the cell signal quality sent by the access network device, where the second measurement configuration is used for the second measurement under the low mobility Configuration.
  • the measurement module includes:
  • the measurement unit is configured to measure the signal quality of the cell according to the first measurement configuration when the mobility state is in the normal mobility
  • the judging unit is configured to judge that when the current mobility state is switched from the normal mobility to the low mobility, the effective measurement configuration is switched from the first measurement configuration to the first Two measurement configuration;
  • the measurement unit is configured to measure the signal quality of the cell according to the second measurement configuration when the mobility state is the low mobility.
  • the mobility capabilities include: the normal mobility and the high mobility;
  • the first receiving module is configured to receive two sets of measurement configurations of the cell signal quality sent by the access network device, the two sets of measurement configurations including: a first for the normal mobility A measurement configuration, and, a third measurement configuration for the high mobility;
  • the power consumption of the first measurement configuration is less than the power consumption of the third measurement configuration.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration Less than the first measurement period in the first measurement configuration.
  • the measurement module includes:
  • the judging unit is configured to judge the current mobility state
  • the measurement unit is configured to measure the signal quality of the cell according to the first measurement configuration when the mobility state is in the normal mobility
  • the measurement unit is configured to measure the signal quality of the cell according to the third measurement configuration when the mobility state is in the high mobility.
  • the generating module is configured to generate a measurement report of high mobility measurement according to the measurement of the signal quality of the cell according to the third measurement configuration, and the measurement report includes a second measurement state change;
  • the first sending module is configured to send the measurement report to the access network device.
  • the first receiving module is configured to receive a first duration and a third duration sent by the access network device, where the first duration is the first measurement configuration
  • the effective time, the third time is the time when the third measurement configuration is effective
  • the measurement module is configured to alternately use the first measurement configuration and the third measurement configuration according to the first duration and the third duration to measure the cell signal quality.
  • the mobility capabilities include: the normal mobility and the high mobility;
  • the first receiving module includes:
  • the first receiving unit is configured to receive a first measurement configuration of the cell signal quality sent by the access network device, where the first measurement configuration is used for the first measurement under the normal mobility Configuration
  • the first sending unit is configured to send a second measurement state change to the access network device when the current mobility state is switched from the normal mobility to the high mobility;
  • the first receiving unit is configured to receive a third measurement configuration of the cell signal quality sent by the access network device, where the third measurement configuration is used for the third measurement under the high mobility Configuration.
  • the measurement module includes:
  • the measurement unit is configured to measure the signal quality of the cell according to the first measurement configuration when the mobility state is in the normal mobility
  • the judging unit is configured to judge that when the current mobility state is switched from the normal mobility to the high mobility, the effective measurement configuration is switched from the first measurement configuration to the first Three measurement configurations;
  • the measurement unit is configured to measure the cell signal quality according to the third measurement configuration when the mobility state is in the high mobility.
  • the device further includes:
  • the display module is configured to display a setting interface, and the setting interface includes controls for changing the mobility capability;
  • the first receiving module is configured to determine the changed mobility capability when receiving the setting signal on the control
  • the first sending module is configured to send the changed mobility capability to the access network device
  • the first receiving module is configured to receive a measurement configuration of the cell signal quality sent again by the access network device, where the measurement configuration sent again is the mobility of the access network device according to the modified Ability configuration
  • the measurement module is configured to measure the signal quality of the cell according to the re-transmitted measurement configuration.
  • the mobility capability includes the normal mobility
  • the first receiving module is configured to receive a first measurement configuration of the cell signal quality sent by the access network device
  • the measurement module is configured to measure the signal quality of the cell according to the first measurement configuration.
  • the mobility capability includes the low mobility
  • the first receiving module is configured to receive a second measurement configuration of the cell signal quality sent by the access network device
  • the measurement module is configured to measure the signal quality of the cell according to the second measurement configuration.
  • a cell signal quality measurement device includes:
  • the second receiving module is configured to receive the mobility capability sent by the terminal
  • a generating module configured to generate a measurement configuration of the signal quality of the cell according to the mobility capability
  • the second sending module is configured to send the cell signal quality measurement configuration to the terminal.
  • the mobility capabilities include at least one of the following capabilities:
  • the mobility capabilities include the normal mobility and the low mobility
  • the second sending module is configured to send two sets of measurement configurations of the cell signal quality to the terminal, the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and For the second measurement configuration under the low mobility;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration Less than the second measurement period in the second measurement configuration.
  • the mobility capabilities include the normal mobility and the low mobility
  • the second sending module includes:
  • a second sending unit configured to send a first measurement configuration of the cell signal quality to the terminal, the first measurement configuration being a measurement configuration under the normal mobility
  • a second receiving unit configured to receive the first measurement state change sent by the terminal
  • the second sending unit is configured to change a second measurement configuration of the cell signal quality to the terminal according to the first measurement state, the second measurement configuration is used for the low mobility Measurement configuration;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the second receiving module is configured to receive a measurement report sent by the terminal, where the measurement report includes a first measurement state change.
  • the mobility capabilities include the normal mobility and the low mobility
  • the second sending module is configured to send two sets of measurement configurations of the cell signal quality to the terminal, and a first duration and a second duration;
  • the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and a second measurement configuration for the low mobility, the first duration is the first The length of time during which the measurement configuration takes effect, and the second time duration is the time during which the second measurement configuration takes effect.
  • the mobility capabilities include the normal mobility and the high mobility
  • the second sending module is configured to send two sets of measurement configurations of the cell signal quality to the terminal, the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and For the third measurement configuration under the high mobility;
  • the power consumption of the first measurement configuration is less than the power consumption of the third measurement configuration.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration Less than the first measurement period in the first measurement configuration.
  • the mobility capabilities include the normal mobility and the high mobility
  • the second sending module includes:
  • the second sending unit is configured to send a first measurement configuration of the cell signal quality to the terminal, the first measurement configuration is a measurement configuration for the normal mobility;
  • the second receiving unit is configured to receive the second measurement state change sent by the terminal
  • the second sending unit is configured to change a third measurement configuration of the cell signal quality to the terminal according to the second measurement state, the third measurement configuration is used for the high mobility Measurement configuration;
  • the power consumption of the first measurement configuration is less than the power consumption of the third measurement configuration.
  • the second receiving module is configured to receive a measurement report sent by the terminal, where the measurement report includes the second measurement state change.
  • the mobility capabilities include the normal mobility and the high mobility
  • the second sending module is configured to send two sets of measurement configurations of the cell signal quality to the terminal, and a first duration and a third duration;
  • the two sets of measurement configurations include: a first measurement configuration for the normal mobility, and a third measurement configuration for the high mobility, the first duration is the first The length of time during which the measurement configuration takes effect, and the third time duration is the time during which the third measurement configuration takes effect.
  • the device further includes:
  • the second receiving module is configured to receive the modified mobility capability sent by the terminal
  • the second sending module is configured to send the cell signal quality measurement configuration to the terminal again according to the modified mobility capability.
  • a terminal including: a processor; a transceiver connected to the processor; a memory for storing processor executable instructions; wherein, the processing The device is configured to implement the cell signal quality measurement method described above.
  • an access network device includes: a processor; a transmitter and a receiver connected to the processor; A memory of instructions; wherein, the processor is configured to implement the method for measuring cell signal quality as described above.
  • a communication system the system includes: a terminal and an access network device; the terminal includes a cell signal quality measurement device as described above; the access network The device includes the cell signal quality measurement device as described above.
  • a communication system the system includes: a terminal and an access network device; the terminal includes the terminal described above; the access network device includes the above Access network equipment.
  • a chip is provided, the chip includes a programmable logic circuit and/or program instructions, and when the chip is running, the method for measuring the signal quality of a cell as described above is implemented.
  • a computer storage medium includes programmable logic circuits and/or program instructions, and when the computer storage medium runs, the cell signal as described above is implemented Method of measuring quality.
  • a computer program product includes programmable logic circuits and/or program instructions, and when the computer program product is running, the cell signal as described above is implemented Method of measuring quality.
  • the cell signal quality measurement configuration corresponding to the terminal's mobility capability is obtained, and the cell signal quality measurement is performed according to the measurement configuration.
  • the mobility state of the terminal can be distinguished, and the measurement configuration corresponding to the mobility state is configured by the access network device according to different mobility, so that the mobility measurement of the terminal can be applied to the terminal Of mobility. Therefore, different measurement configurations are required for different mobility.
  • FIG. 1 is a schematic diagram of a network structure of a communication system provided by an exemplary embodiment of the present application
  • FIG. 2 is a schematic diagram of an implementation environment when a terminal is in a low mobility state according to an exemplary embodiment of the present application
  • FIG. 3 is a flowchart of a method for measuring cell signal quality provided by an exemplary embodiment of the present application
  • FIG. 4 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 5 is a flowchart of a signal quality measurement method provided by another exemplary embodiment of the present application.
  • FIG. 6 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 7 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 8 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 9 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 10 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 11 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 12 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 13 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • FIG. 14 is a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • 15 is a schematic diagram of a setting interface provided by another exemplary embodiment of the present application.
  • FIG. 16 is a schematic structural diagram of a cell signal quality measurement device provided by an exemplary embodiment of the present application.
  • 17 is a schematic structural diagram of a measurement module provided by another exemplary embodiment of the present application.
  • FIG. 18 is a schematic structural diagram of a first receiving module provided by an exemplary embodiment of the present application.
  • FIG. 19 is a schematic structural diagram of a cell signal quality measurement device provided by an exemplary embodiment of the present application.
  • 20 is a schematic structural diagram of a second sending module provided by an exemplary embodiment of the present application.
  • 21 is a block diagram of a communication device provided by an exemplary embodiment of the present application.
  • 22 is a block diagram of a communication system provided by an exemplary embodiment of the present application.
  • 3GPP carried out research on terminal power saving in the second version of 5G. Power saving includes multiple aspects: connection state control channel detection optimization, optimized terminal discontinuous reception process control, and reduced measurement requirements for radio resource management Wait.
  • the measurement frequency and measurement period in the measurement requirements for radio resource management are all for all terminals, that is, mobility is not distinguished.
  • two types of terminal mobility states are classified: normal mobility state and low mobility state.
  • the measurement requirements of radio resource management include Measurement configuration for normal mobility and measurement configuration for low mobility. Compared with the measurement configuration of normal mobility, the measurement requirement of the low mobility is reduced, so that the power consumption of the terminal in the low mobility state is reduced.
  • the network structure in the communication system is shown in FIG. 1.
  • the macro cell 101 (a cell provided by a macro base station) is used as a skeleton
  • the micro cell 102 (a cell provided by a micro base station/pico base station) is a supplementary and hot spot coverage architecture.
  • the macro cell 101 is characterized by a large coverage area, and the micro cell 102 has a small coverage area.
  • cell reselection or handover may occur according to the change in signal strength.
  • the terminal remains stationary or the moving range is very small, if it does not distinguish between mobility and continue to use the normal mobility measurement configuration for measurement, a lot of unnecessary measurements are consumed, resulting in the consumption of terminal power. Therefore, in this case, defining a low-mobility measurement configuration corresponding to the low-mobility state of the terminal reduces unnecessary consumption and achieves the purpose of power saving.
  • the base station informs the terminal to start the measurement configuration of low mobility. If the base station determines that the terminal switches from the low mobility state to the normal mobility state, then the base station generates air interface signaling when sending the handover result to the terminal, so neither the wireless resource perspective nor the interference perspective is the optimal solution. Therefore, the low mobility state judgment criterion of the terminal is configured by the base station, and the base station sends the configured judgment criterion to the terminal, and the terminal itself judges the low mobility state according to the received judgment criterion.
  • the terminal After the terminal determines that it is in a low mobility state, the terminal switches from the normal mobility measurement configuration to the low mobility measurement configuration, the low mobility measurement configuration is different from the normal mobility measurement configuration.
  • the embodiments of the present application provide a method, device, equipment and system for measuring the signal quality of a cell. After determining that its mobility measurement needs to be handed over, the terminal obtains a measurement configuration corresponding to the mobility state after the handover to perform the corresponding Mobility measurement, to achieve low-mobility measurement configuration when the terminal is in a low-mobility state to achieve power saving.
  • FIG. 2 shows a schematic diagram of an implementation environment when a terminal is in a low mobility state according to an exemplary embodiment of the present application.
  • the terminal performs mobility measurement within a coverage area of 3 cells, and the base station is used for access.
  • FIG. 2 includes a terminal 201, a first cell 202, a second cell 203, and a third cell 204. Each of the three cells has its own base station.
  • the terminal 201 is within the coverage of 3 cells.
  • the terminal 201 moves back and forth according to the direction indicated by the arrow.
  • the terminal 201 is configured to report to the base station of the cell where the terminal is currently located according to its current mobility capability.
  • the base station of the first cell 202 is used to configure an appropriate measurement configuration for mobility measurement according to the mobility capability reported by the terminal 201, and send the measurement configuration to the terminal 201.
  • the base station of the second cell 203 is used to configure an appropriate measurement configuration for mobility measurement according to the mobility capability reported by the terminal 201, and send the measurement configuration to the terminal 201.
  • the base station of the third cell 204 is used to configure an appropriate measurement configuration of mobility measurement according to the mobility capability reported by the terminal 201, and send the measurement configuration to the terminal 201.
  • the number of cells on the peripheral side of the terminal may be more than three, and this embodiment does not limit the number of cells on the peripheral side of the terminal.
  • the terminal performs corresponding mobility measurement according to the measurement configuration sent by the base station, for example, performs normal mobility measurement according to the first measurement configuration of normal mobility, and performs low mobility according to the second measurement configuration of low mobility. Mobility measurement, so that when the terminal is in a low mobility state, the second measurement configuration with low mobility is used for measurement, so as to avoid waste of power due to the measurement of cell signal quality.
  • FIG. 3 shows a flowchart of a method for measuring cell signal quality provided by an exemplary embodiment of the present application.
  • the method may be applied to the communication system shown in FIG. 1.
  • an access network device is a base station.
  • the method includes:
  • Step 301 the terminal sends the mobility capability to the base station.
  • the mobility capability is used to determine the category to which the terminal belongs, that is, to distinguish whether the terminal is a fixed terminal or a non-fixed terminal.
  • Fixed terminals include terminals that do not move for a long time and are fixed in one location, for example, various sensor terminals for detecting a certain detection object in the Internet of Things, or fixed-line terminals.
  • Non-stationary terminals include mobile terminals that are not necessarily fixed in one location, such as mobile phones or connected vehicles.
  • the mobility capability of the terminal will be converted according to different actual use scenarios, that is, the fixed terminal is converted into a non-fixed terminal, and the non-fixed terminal is converted into a fixed terminal.
  • the fixed terminal is converted into a non-fixed terminal
  • the non-fixed terminal is converted into a fixed terminal.
  • the mobile phone is a fixed terminal
  • the mobile phone is used again as a mobile phone
  • the mobile phone is a non-fixed terminal.
  • the mobility capabilities of the terminal include at least one of the following capabilities:
  • low mobility is a mobile state where the terminal remains immobile or has a moving range smaller than the first range within a preset time
  • high mobility is a mobile state where the terminal moving range within the preset time is greater than the second range.
  • the second range is larger than the first range.
  • Step 302 the base station receives the mobility capability sent by the terminal.
  • Step 303 The base station generates a measurement configuration of cell signal quality according to the mobility capability.
  • the base station configures a measurement configuration corresponding to the mobility capability of the terminal according to the received mobility capability of the terminal.
  • the measurement configuration is a relevant measurement parameter when the terminal performs mobility measurement on the signal quality of the cell, and is used to enable the terminal to perform mobility measurement corresponding to the measurement configuration.
  • the cell signal quality is a criterion for selecting a cell when the terminal performs cell reselection or cell handover, and is used by the terminal to select a cell that ensures continuous service or better service according to the cell signal quality for camping.
  • the mobility capabilities of the terminal include normal mobility.
  • the base station configures the first measurement configuration corresponding to the normal mobility according to the normal mobility sent by the terminal.
  • the first measurement configuration is a measurement configuration for normal mobility.
  • the base station sends the first measurement configuration of the cell signal quality to the terminal.
  • the mobility capabilities of the terminal include low mobility.
  • the base station configures the second measurement configuration corresponding to the low mobility according to the low mobility sent by the terminal.
  • the second measurement configuration is a measurement configuration for low mobility.
  • the base station sends the second measurement configuration of the cell signal quality to the terminal.
  • the mobility capabilities of the terminal include normal mobility and low mobility.
  • the base station respectively configures a first measurement configuration corresponding to normal mobility and a second measurement configuration corresponding to low mobility according to normal mobility and low mobility sent by the terminal.
  • the base station sends the first measurement configuration and the second measurement configuration of the cell signal quality to the terminal.
  • the base station when the mobility capability of the terminal includes normal mobility and low mobility, the base station sends the first measurement configuration and the second measurement configuration to the terminal at the same time; or, the base station sends The terminal sends the first measurement configuration and the second measurement configuration.
  • the mobility capabilities of the terminal include normal mobility and high mobility.
  • the base station respectively configures a first measurement configuration corresponding to normal mobility and a third measurement configuration corresponding to high mobility according to normal mobility and high mobility sent by the terminal.
  • the base station sends the first measurement configuration and the third measurement configuration of the cell signal quality to the terminal.
  • the base station when the mobility capabilities of the terminal include normal mobility and high mobility, the base station sends the first measurement configuration and the third measurement configuration to the terminal at the same time; or, the base station sends The terminal sends the first measurement configuration and the third measurement configuration.
  • the mobility capabilities of the terminal include normal mobility, low mobility, and high mobility.
  • the base station respectively configures a first measurement configuration corresponding to normal mobility, a second measurement configuration corresponding to low mobility, and a third measurement corresponding to high mobility according to the normal mobility, low mobility, and high mobility sent by the terminal. Configuration.
  • the base station sends the first measurement configuration, the second measurement configuration, and the third measurement configuration of the cell signal quality to the terminal.
  • the base station when the mobility capabilities of the terminal include normal mobility, low mobility, and high mobility, the base station simultaneously sends the first measurement configuration, the second measurement configuration, and the third measurement configuration to the terminal; or, the base station sends according to the terminal
  • the measurement report of the server sends the first measurement configuration, the second measurement configuration, and the third measurement configuration to the terminal at different timings.
  • Step 304 The base station sends the cell signal quality measurement configuration to the terminal.
  • Step 305 The terminal receives the measurement configuration of the cell signal quality sent by the base station.
  • the mobility capabilities of the terminal include normal mobility.
  • the terminal receives the first measurement configuration of the cell signal quality sent by the base station.
  • the mobility capabilities of the terminal include low mobility.
  • the terminal receives the second measurement configuration of the cell signal quality sent by the base station.
  • the mobility capabilities of the terminal include normal mobility and low mobility.
  • the terminal receives the first measurement configuration and the second measurement configuration of the cell signal quality sent by the base station.
  • the time of the first measurement configuration and the second measurement configuration received by the terminal may be the same or different.
  • the mobility capabilities of the terminal include normal mobility and high mobility.
  • the terminal receives the first measurement configuration and the third measurement configuration of the cell signal quality sent by the base station.
  • the time of the first measurement configuration and the third measurement configuration received by the terminal may be simultaneous or not at the same time.
  • the mobility capabilities of the terminal include normal mobility, low mobility, and high mobility.
  • the terminal receives the first measurement configuration, the second measurement configuration, and the third measurement configuration of the cell signal quality sent by the base station.
  • the times of the first measurement configuration, the second measurement configuration and the third measurement configuration received by the terminal may be simultaneous or not at the same time.
  • Step 306 The terminal performs cell signal quality measurement according to the measurement configuration.
  • the terminal performs cell signal quality measurement according to the measurement configuration, and the measurement is a mobility measurement corresponding to the measurement configuration.
  • the mobility capabilities of the terminal include normal mobility.
  • the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the mobility capabilities of the terminal include low mobility.
  • the terminal performs cell signal quality measurement according to the second measurement configuration.
  • the mobility capabilities of the terminal include normal mobility and low mobility.
  • the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the terminal performs cell signal quality measurement according to the second measurement configuration.
  • the mobility capabilities of the terminal include normal mobility and high mobility.
  • the terminal When the current mobility state of the terminal is normal mobility, the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the mobility state that the terminal is currently in is high mobility, the terminal performs cell signal quality measurement according to the third measurement configuration.
  • the mobility capabilities of the terminal include normal mobility, low mobility, and high mobility.
  • the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the terminal performs cell signal quality measurement according to the second measurement configuration.
  • the terminal performs cell signal quality measurement according to the third measurement configuration.
  • the method provided in the embodiments of the present application obtains the measurement configuration of the cell signal quality corresponding to the mobility capability of the terminal through the mobility capability sent by the terminal to the access network device, and performs the cell signal quality measurement according to the measurement configuration measuring.
  • the mobility state of the terminal can be distinguished, and the measurement configuration corresponding to the mobility state is configured by the access network device according to different mobility, so that the mobility measurement of the terminal can be applied to the terminal Of mobility. Therefore, different measurement configurations are required for different mobility.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 4 shows a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application. This method can be applied to the communication system shown in FIG. 1.
  • the access network device is a base station as an example. .
  • the method includes:
  • Step 401 the terminal sends the mobility capability to the base station.
  • the mobility capability is used to determine the category to which the terminal belongs, that is, to distinguish whether the terminal is a fixed terminal or a non-fixed terminal.
  • Fixed terminals include terminals that do not move for a long time and are fixed in one location, for example, various sensor terminals for detecting a certain detection object in the Internet of Things, or fixed-line terminals.
  • Non-stationary terminals include mobile terminals that are not necessarily fixed in one location, such as mobile phones or connected vehicles.
  • the mobility capability of the terminal will be converted according to different actual use scenarios, that is, the fixed terminal is converted into a non-fixed terminal, and the non-fixed terminal is converted into a fixed terminal.
  • the fixed terminal is converted into a non-fixed terminal
  • the non-fixed terminal is converted into a fixed terminal.
  • the mobile phone is a fixed terminal
  • the mobile phone is used again as a mobile phone
  • the mobile phone is a non-fixed terminal.
  • the mobility capability of the terminal includes any one of the following three situations:
  • Low mobility is a state of mobility distinguished from normal mobility.
  • low mobility is a mobility state in which the moving range is small within a predetermined time or no movement occurs within a predetermined time.
  • step 402 the base station receives the mobility capability sent by the terminal.
  • the base station receives the mobility capability sent by the terminal.
  • the mobility capability is used to indicate that the terminal has both normal mobility and low mobility capabilities.
  • Low mobility is a mobility state distinguished from normal mobility.
  • Low mobility is a mobile state where the terminal remains stationary or the moving range is smaller than the first range within a preset time.
  • Step 403 The base station generates a measurement configuration of cell signal quality according to mobility capabilities.
  • the base station sends two sets of measurement configurations of the cell signal quality to the terminal.
  • the two sets of measurement configurations include: a first measurement configuration for normal mobility and a second measurement configuration for low mobility.
  • the base station configures two sets of measurement configurations corresponding to normal mobility and low mobility according to the received mobility capabilities. That is, the base station configures the first measurement configuration according to the mobility capability of normal mobility; the base station configures the second measurement configuration according to the mobility capability of low mobility.
  • the first measurement configuration is a measurement parameter when the terminal performs normal mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in the normal mobility state.
  • the second measurement configuration is a measurement parameter when the terminal performs low mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in a low mobility state.
  • the cell signal quality is a criterion for selecting a cell when the terminal performs cell reselection or cell handover, and is used by the terminal to select a cell signal that ensures continuous service or better service according to the cell signal quality.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration is less than in the second measurement configuration The second measurement period.
  • the value of the measurement period includes at least one of sf160, sf256, sf320, sf512, and sf640, where sf represents a system frame, sf160 represents 160 system frames, and 160 system frames It means 160 milliseconds.
  • the base station simultaneously sends the first measurement configuration and the second measurement configuration used for cell signal quality measurement to the terminal.
  • Step 405 The terminal receives two sets of measurement configurations of cell signal quality sent by the base station.
  • the terminal simultaneously receives the first measurement configuration and the second measurement configuration of the cell signal quality sent by the base station.
  • step 406 the terminal determines the current mobility state.
  • the terminal determines the current mobility state. When the terminal's current mobility state is the normal mobility state, go to step 407; when the terminal's current mobility state is the low mobility state, go to step 408.
  • Step 407 When the mobility state is normal mobility, the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the terminal When the terminal judges that the terminal is in the normal mobility state, it triggers the effective condition of the normal mobility measurement.
  • the terminal starts normal mobility measurement, and the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the effective condition of the normal mobility measurement is used when the terminal judges that the terminal is in the normal mobility state, and starts the normal mobility measurement.
  • Step 408 When the mobility state is low, the terminal performs cell signal quality measurement according to the second measurement configuration.
  • the terminal When the terminal judges that the terminal is in the low mobility state, it triggers the effective condition of the low mobility measurement.
  • the terminal starts low mobility measurement, and the terminal performs cell signal quality measurement according to the second measurement configuration.
  • the validity condition of the low mobility measurement is used when the terminal determines that the terminal is in the low mobility state, and starts the low mobility measurement.
  • the terminal after triggering the effective condition of the low mobility measurement and starting the low mobility measurement, the terminal immediately sends a measurement report to the base station.
  • the measurement report includes the first measurement state change, that is, the measurement report includes the terminal’s normal mobility.
  • the state is switched to a low mobility state, and the cell signal quality is measured according to the second measurement configuration.
  • the effective conditions of normal mobility measurement and low mobility measurement are configured by the base station and sent to the terminal together with the two sets of measurement configurations, or separately from the two sets of measurement configurations; Or, the effective condition of normal mobility measurement and the effective condition of low mobility measurement are built in the terminal, and the terminal stores the effective condition of normal mobility measurement and the effective condition of low mobility measurement in the memory.
  • the method provided in the embodiments of the present application obtains the measurement configuration of the cell signal quality corresponding to the mobility capability of the terminal through the mobility capability sent by the terminal to the access network device, and performs the cell signal quality measurement according to the measurement configuration measuring.
  • the mobility state of the terminal can be distinguished, and the measurement configuration corresponding to the mobility state is configured by the access network device according to different mobility, so that the mobility measurement of the terminal can be applied to the terminal Of mobility. Therefore, different measurement configurations are required for different mobility.
  • the mobility capabilities of the terminal include normal mobility and low mobility.
  • the base station configures two sets of measurement configurations according to the two mobility capabilities that the terminal has at the same time, so that the terminal's mobility status is different.
  • Corresponding measurement configuration when the terminal is in the normal mobility state, the normal mobility measurement is performed, and when the terminal is in the low mobility state, the low mobility measurement is performed, thereby avoiding the use of the normal mobility measurement when the terminal is in the low mobility state, and reducing the power consumption. waste.
  • the base station simultaneously sends two sets of measurement configurations to the terminal, so that the terminal can quickly determine the current mobility state, and the terminal's mobility measurement switching process is rapid.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • the method for determining the current mobility state of the terminal in step 405 is shown in FIG. 5.
  • the method uses an access network device as a base station as an example.
  • the method includes:
  • Step 501 The base station sends a signal strength threshold corresponding to n cells to the terminal.
  • the signal strength threshold is used to trigger the terminal to determine the mobility state when the signal strength of n cells meets the signal strength threshold corresponding to n cells, respectively. Integer greater than 2.
  • the base station configures the signal strength threshold of each of the n cells according to the signal strength of n cells, where n is an integer greater than 2.
  • the n cells include a cell where the terminal is located and n-1 neighbor cells; or, the n cells include n neighbor cells other than the cell where the terminal is located.
  • n cells are all macro cells, and n is a positive integer; or, n cells include k macro cells and n-k micro cells, and k is a positive integer not greater than n.
  • the signal strength threshold is used to compare with the signal strength of the cell measured by the terminal to determine the mobility state of the terminal.
  • the signal strength threshold of each cell is the same, or the signal strength threshold of each cell is different, or the signal strength threshold of each cell exists.
  • the signal strength threshold of some cells is the same, other cells are not the same.
  • the signal strength threshold corresponding to each cell includes a first signal strength threshold.
  • the signal strength threshold corresponding to each cell includes a first signal strength threshold and a second signal strength threshold, and the first signal strength threshold is less than the second signal strength threshold.
  • the base station sends a signal strength configuration list to the terminal, and the signal strength configuration list includes signal strength thresholds corresponding to n cells.
  • step 502 the terminal receives a signal strength threshold corresponding to n cells sent by the base station.
  • the terminal receives the signal strength threshold of each of the n cells sent by the base station.
  • the terminal receives the signal strength configuration list sent by the base station.
  • step 503 the terminal measures the signal strength of n cells within a predetermined time.
  • the terminal measures the signal strength of n cells within a predetermined time to obtain the signal strength of each cell in the n cells within a predetermined time.
  • Step 504 The terminal determines the mobility state of the terminal when the signal strengths of the n cells meet the signal strength thresholds corresponding to the n cells.
  • the terminal compares the measured signal strength of each of the n cells with the signal strength threshold corresponding to each cell, and determines that the signal strength of each of the n cells satisfies the signal corresponding to each cell Strength threshold, the terminal determines its own mobility status.
  • the terminal determines that the terminal itself is in a low mobility state within a predetermined time.
  • the terminal determines that the terminal itself is in a high mobility state within a predetermined time.
  • the signal strength of the terminal in n cells is respectively greater than the first signal strength threshold corresponding to n cells, and the signal strength threshold of n cells is smaller than the second signal corresponding to n cells, respectively At the strength threshold, it is determined that the terminal itself is in a low mobility state within a predetermined time.
  • the signal strength of the terminal in n cells is less than the first signal strength threshold corresponding to n cells, respectively, or the signal strength threshold of n cells is greater than the second signal strength threshold corresponding to n cells, it is determined that the terminal itself is within a predetermined time Inside is in a state of high mobility.
  • the terminal switches its own mobility measurement configuration from the normal mobility measurement configuration to the low mobility measurement configuration.
  • the low-mobility measurement configuration reduces the number of measurement frequency points and/or the measurement period is extended, so that when the terminal is in a low-mobility state, power consumption is reduced, and power saving is achieved the goal of.
  • the terminal switches its own mobility measurement configuration from the normal mobility measurement configuration to the high mobility measurement configuration.
  • the measurement configuration of high mobility increases the number of measurement frequency points, and/or shortens the measurement period, so as to realize the accuracy of the result of the mobility measurement when the terminal is in a high mobility state Sex.
  • the method provided by the embodiment of the present application determines the mobility state of the terminal by measuring the signal strength of n cells within a predetermined time and when the signal strength of n cells respectively meets the number limit strength threshold corresponding to n cells By measuring the signal strength of n cells, the purpose of determining the mobility state of the terminal is determined.
  • the above-mentioned steps performed by the terminal can be individually implemented as the signal quality measurement method on the terminal side; the above-mentioned steps performed by the base station can be separately implemented as the signal quality measurement method on the access network device side.
  • the terminal no longer performs the step of determining the current mobility state, and alternately uses the first measurement according to the first duration and the second duration configured by the base station
  • the configuration and the second measurement configuration that is, periodically performing normal mobility measurement and low mobility measurement alternately.
  • the above steps 406 to 408 are replaced with steps 4061 to 4063.
  • the replacement steps are as follows:
  • Step 4061 The base station sends a first duration and a second duration to the terminal.
  • the first duration is the duration when the first measurement configuration takes effect
  • the second duration is the duration when the second measurement configuration takes effect.
  • the base station reduces the terminal's mobility measurement requirements according to the mobility measurement report sent by the terminal. Based on the first measurement configuration and the second measurement configuration, the base station configures the first duration and the second duration on the premise that it does not affect the terminal to perform mobility measurement.
  • the first duration is the duration when the first measurement configuration takes effect, that is, the terminal performs normal mobility measurement within the first duration.
  • the second duration is the duration during which the second measurement configuration takes effect, that is, the terminal performs low mobility measurement within the second duration.
  • the base station sends the first duration and the second duration to the terminal.
  • Step 4062 the terminal receives the first duration and the second duration sent by the base station.
  • Step 4063 The terminal alternately uses the first measurement configuration and the second measurement configuration according to the first duration and the second duration to perform cell signal quality measurement.
  • the terminal uses the first measurement configuration to perform normal mobility measurement of the cell signal quality within the first duration.
  • the terminal uses the second measurement configuration to perform low mobility measurement of the cell signal quality within the second duration.
  • the base station sends the two durations and the two sets of measurement configurations to the terminal at the same time, or the base station sends the two durations and the two sets of measurements separately to the terminal, and whether the two durations and the two sets of measurement configurations are sent simultaneously or separately
  • the sending and the order of sending separately are not limited in this embodiment.
  • the method provided in the embodiment of the present application periodically uses the first measurement configuration and the second measurement configuration alternately, and on the premise of reducing the resource consumption of the air interface signaling between the terminal and the base station, power saving is also achieved.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 7 shows a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application. This method can be applied to the implementation environment shown in FIG. 1.
  • the access network device is a base station as an example. .
  • the method includes:
  • Steps 701 to 703 are the same as steps 401 to 403 and will not be repeated here.
  • step 704 the base station sends the first measurement configuration of the cell signal quality to the terminal, and the first measurement configuration is the first measurement configuration for normal mobility.
  • the mobility capabilities of the terminal include normal mobility and low mobility.
  • the terminal sends mobility capabilities to the base station.
  • Low mobility is a state of mobility distinguished from normal mobility. Compared with normal mobility, low mobility is a mobility state in which the moving range is small within a predetermined time or no movement occurs within a predetermined time.
  • the normal mobility state is defaulted to the mobility capability in the initial state. Therefore, the terminal first sends the mobility capability of normal mobility to the base station, and the base station configures the first measurement configuration according to the normal mobility.
  • the first measurement configuration is a measurement parameter when the terminal performs normal mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in the normal mobility state.
  • the cell signal quality is a criterion for selecting a cell when the terminal performs cell reselection or cell handover, and is used by the terminal to select a cell signal that ensures continuous service or better service according to the cell signal quality.
  • the base station sends the configured first measurement configuration for cell signal quality measurement to the terminal.
  • Step 705 The terminal receives the first measurement configuration of the cell signal quality sent by the base station.
  • Step 706 When the mobility state is normal mobility, the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the terminal When the terminal is in normal mobility, the terminal triggers the effective condition for normal mobility measurement.
  • the terminal starts normal mobility measurement, and the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the effective condition of the normal mobility measurement is used when the terminal judges that the terminal is in the normal mobility state, and starts the normal mobility measurement.
  • step 707 the terminal sends the first measurement state change to the base station when the current mobility state is switched from normal mobility to low mobility.
  • the terminal When determining that the current mobility state is switched from normal mobility to low mobility, the terminal sends the first measurement state change to the base station.
  • the first measurement state change is used by the terminal to prompt the base station that the current mobility state is switched from normal mobility to low mobility.
  • the terminal after starting the low mobility measurement, the terminal immediately sends a measurement report to the base station.
  • the measurement report includes the first measurement state change, that is, the measurement report includes the terminal switching from the normal mobility state to the low mobility state.
  • the method for the terminal to determine the current mobility state is shown in FIG. 5 and will not be repeated here.
  • Step 708 The base station receives the first measurement state change sent by the terminal.
  • Step 709 The base station sends a second measurement configuration of the cell signal quality to the terminal according to the change of the first measurement state.
  • the second measurement configuration is the second measurement configuration for low mobility.
  • the base station determines that the current mobility state of the terminal is switched from the normal mobility state to the low mobility state according to the received first measurement state change.
  • the base station configures the second measurement configuration corresponding to the low mobility according to the low mobility.
  • the second measurement configuration is a measurement parameter when the terminal performs low mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in a low mobility state.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration is less than in the second measurement configuration The second measurement period.
  • the value of the measurement period includes at least one of sf160, sf256, sf320, sf512, and sf640, where sf represents a system frame, sf160 represents 160 system frames, and 160 system frames represent 160 milliseconds.
  • the base station sends the configured second measurement configuration for cell signal quality measurement to the terminal.
  • Step 710 The terminal receives the second measurement configuration of the cell signal quality sent by the base station.
  • step 711 the terminal determines that when the current mobility state is switched from normal mobility to low mobility, the effective measurement configuration is switched from the first measurement configuration to the second measurement configuration.
  • the terminal determines that the current mobility state is switched from normal mobility to low mobility
  • the first measurement configuration is deleted, and the second measurement configuration is enabled; or, the terminal determines the current mobility
  • the first measurement configuration is disabled and the second measurement configuration is started.
  • Step 712 When the mobility state is low, the terminal performs cell signal quality measurement according to the second measurement configuration.
  • the terminal judges that the terminal is in the low mobility state again, the low mobility measurement is started, and the terminal performs cell signal quality measurement according to the second measurement configuration.
  • the terminal sends the measurement report obtained by the low mobility measurement to the base station, and the report includes the first measurement state change.
  • the effective measurement configuration is switched from the second measurement configuration to the first measurement configuration again.
  • the method provided by the embodiment of the present application can reduce the amount of data that the base station needs to carry in the configuration signaling in a single configuration process by separately sending two sets of measurement configurations, thereby saving air interface resources.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 8 shows a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application.
  • This method can be applied to the implementation environment shown in FIG. 1.
  • This embodiment uses an access network device as a base station as an example. .
  • the method includes:
  • Step 801 the terminal sends the mobility capability to the base station.
  • the mobility capabilities of the terminal include normal mobility and high mobility.
  • High mobility is a state of mobility distinguished from normal mobility.
  • High mobility is a mobile state in which the mobile range of the terminal within a preset time is greater than the second range.
  • Step 802 the base station receives the mobility capability sent by the terminal.
  • the base station receives the mobility capability sent by the terminal.
  • the mobility capability is used to indicate that the terminal has both normal mobility and high mobility capabilities.
  • Step 803 the base station generates a measurement configuration of cell signal quality according to the mobility capability.
  • Step 804 the base station sends two sets of measurement configurations of the cell signal quality to the terminal.
  • the two sets of measurement configurations include: a first measurement configuration for normal mobility and a third measurement configuration for high mobility.
  • the base station configures two sets of measurement configurations corresponding to normal mobility and high mobility respectively according to the received mobility capability, that is, the base station configures the first measurement configuration according to the mobility capability of normal mobility; the base station configures the mobility according to high mobility Sexual ability, configure the third measurement configuration.
  • the first measurement configuration is a measurement parameter when the terminal performs normal mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in the normal mobility state.
  • the third measurement configuration is a measurement parameter when the terminal performs high mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in a high mobility state.
  • the cell signal quality is a criterion for selecting a cell when the terminal performs cell reselection or cell handover, and is used by the terminal to select a cell signal that ensures continuous service or better service according to the cell signal quality.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration is less than in the first measurement configuration The third measurement period.
  • the value of the measurement period includes: at least one of sf160, sf256, sf320, sf512, and sf640, where sf represents a system frame, sf160 represents 160 system frames, and 160 system frames It means 160 milliseconds.
  • the base station simultaneously sends the first measurement configuration and the third measurement configuration used for cell signal quality measurement to the terminal.
  • step 805 the terminal receives two sets of measurement configurations of the cell signal quality sent by the base station.
  • the terminal simultaneously receives the first measurement configuration and the third measurement configuration of the cell signal quality sent by the base station.
  • step 806 the terminal determines the current mobility state.
  • the terminal determines the current mobility state. When the terminal's current mobility state is the normal mobility state, go to step 807; when the terminal's current mobility state is the high mobility state, go to step 808.
  • the terminal judges the current mobility state by referring to the method shown in FIG. 5, which will not be repeated here.
  • Step 807 When the mobility state is normal mobility, the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the terminal When the terminal judges that the terminal is in the normal mobility state, it triggers the effective condition of the normal mobility measurement.
  • the terminal starts normal mobility measurement, and the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the effective condition of the normal mobility measurement is used when the terminal judges that the terminal is in the normal mobility state, and starts the normal mobility measurement.
  • Step 808 When the mobility state is high mobility, the terminal performs cell signal quality measurement according to the third measurement configuration.
  • the terminal determines that the terminal is in the high mobility state, it triggers the effective condition of the high mobility measurement.
  • the terminal starts high mobility measurement, and the terminal performs cell signal quality measurement according to the third measurement configuration.
  • the effective condition of the high mobility measurement is used for the terminal to start the high mobility measurement when it determines that the terminal is in the high mobility state.
  • the terminal triggers the effective condition of the high mobility measurement and starts the high mobility measurement, and then immediately sends a measurement report to the base station.
  • the measurement report includes the second measurement state change, that is, the measurement report includes the terminal’s normal mobility.
  • the state is switched to a high mobility state, and the cell signal quality is measured according to the third measurement configuration.
  • the effective conditions for normal mobility measurement and the effective conditions for high mobility measurement are configured by the base station and sent to the terminal together with the two sets of measurement configurations, or separately from the two sets of measurement configurations; Or, the effective condition of normal mobility measurement and the effective condition of high mobility measurement are built in by the terminal, and the terminal stores the effective condition of normal mobility measurement and the effective condition of high mobility measurement in the memory.
  • the mobility capabilities of the terminal include normal mobility and high mobility.
  • the base station configures two sets of measurement configurations according to the two mobility capabilities that the terminal has at the same time, so that the terminal's mobility status is different.
  • Corresponding measurement configuration when the terminal is in the normal mobility state, the normal mobility measurement is performed, and when the terminal is in the high mobility state, the high mobility measurement is performed, thereby avoiding the terminal being in the high mobility state but using the measurement results caused by the normal mobility measurement Inaccurate.
  • the base station simultaneously sends two sets of measurement configurations to the terminal, so that the terminal can quickly determine the current mobility state, and the terminal's mobility measurement switching process is rapid.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • the terminal no longer performs the step of judging the current mobility state, and alternately uses the first measurement according to the first duration and the third duration configured by the base station Configuration and the third measurement configuration, that is, the normal mobility measurement and the high mobility measurement are alternately performed periodically.
  • the above steps 806 to 808 are replaced with steps 8061 to 8063.
  • the replacement steps are as follows:
  • Step 8061 The base station sends a first duration and a third duration to the terminal.
  • the first duration is the duration when the first measurement configuration takes effect
  • the third duration is the duration when the third measurement configuration takes effect.
  • the base station Based on the first measurement configuration and the third measurement configuration, the base station configures the first duration and the third duration based on the premise that the terminal does not affect the mobility measurement.
  • the first duration is the duration when the first measurement configuration takes effect, that is, the terminal performs normal mobility measurement within the first duration.
  • the third duration is the duration when the third measurement configuration takes effect, that is, the terminal performs high mobility measurement within the third duration.
  • the base station sends the first duration and the third duration to the terminal.
  • Step 8062 the terminal receives the first duration and the third duration sent by the base station.
  • Step 8063 The terminal alternately uses the first measurement configuration and the third measurement configuration according to the first duration and the third duration to perform cell signal quality measurement.
  • the terminal uses the first measurement configuration to perform normal mobility measurement of the cell signal quality within the first duration.
  • the terminal uses the third measurement configuration to perform high mobility measurement of the cell signal quality within the third duration.
  • the base station sends the two durations and two sets of measurement configurations to the terminal at the same time, or the base station sends the two durations and the two sets of measurements separately to the terminal, and whether the two durations and the two sets of measurement configurations are sent simultaneously or separately
  • the sending and the order of sending separately are not limited in this embodiment.
  • the method provided in the embodiment of the present application periodically uses the first measurement configuration and the second measurement configuration alternately, and on the premise of reducing the resource consumption of the air interface signaling between the terminal and the base station, power saving is also achieved.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 10 shows a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application. This method can be applied to the implementation environment shown in FIG. 1.
  • the access network device is a base station as an example. .
  • the method includes:
  • Steps 1001 to 1003 are the same as steps 801 to 803, and will not be repeated here.
  • Step 1004 The base station sends a first measurement configuration of the cell signal quality to the terminal.
  • the first measurement configuration is the first measurement configuration for normal mobility.
  • the mobility capabilities of the terminal include normal mobility and high mobility.
  • the terminal sends mobility capabilities to the base station.
  • High mobility is a state of mobility distinguished from normal mobility. Compared with normal mobility, high mobility is a mobility state with a larger movement range within a predetermined time.
  • the normal mobility state is defaulted to the mobility capability in the initial state. Therefore, the terminal first sends the mobility capability of normal mobility to the base station, and the base station configures the first measurement configuration according to the normal mobility.
  • the first measurement configuration is a measurement parameter when the terminal performs normal mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in the normal mobility state.
  • the cell signal quality is a criterion for selecting a cell when the terminal performs cell reselection or cell handover, and is used by the terminal to select a cell signal that ensures continuous service or better service according to the cell signal quality.
  • the base station sends the configured first measurement configuration for cell signal quality measurement to the terminal.
  • Step 1005 The terminal receives the first measurement configuration of the cell signal quality sent by the base station.
  • Step 1006 When the mobility state is normal mobility, the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the terminal When the terminal is in normal mobility, the terminal triggers the effective condition for normal mobility measurement.
  • the terminal starts normal mobility measurement, and the terminal performs cell signal quality measurement according to the first measurement configuration.
  • the effective condition of the normal mobility measurement is used when the terminal judges that the terminal is in the normal mobility state, and starts the normal mobility measurement.
  • Step 1007 When the current mobility state of the terminal is switched from normal mobility to high mobility, the terminal sends a second measurement state change to the base station.
  • the terminal When the terminal determines that the current mobility state is switched from normal mobility to high mobility, it sends a second measurement state change to the base station.
  • the second measurement state change is used by the terminal to prompt the base station that the current mobility state is switched from normal mobility to high mobility.
  • the terminal after starting the high mobility measurement, the terminal immediately sends a measurement report to the base station.
  • the measurement report includes the second measurement state change, that is, the measurement report includes the terminal switching from the normal mobility state to the high mobility state.
  • the method for the terminal to determine the current mobility state is shown in FIG. 5 and will not be repeated here.
  • Step 1008 the base station receives the second measurement state change sent by the terminal.
  • the base station sends a third measurement configuration of the cell signal quality to the terminal according to the change of the second measurement state.
  • the third measurement configuration is a third measurement configuration for high mobility.
  • the base station determines that the current mobility state of the terminal is switched from the normal mobility state to the high mobility state according to the received second measurement state change.
  • the base station configures a third measurement configuration corresponding to high mobility according to high mobility.
  • the third measurement configuration is a measurement parameter when the terminal performs high mobility measurement on the cell signal quality, and is used for the measurement of the cell signal quality when the terminal is in a high mobility state.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration is less than in the first measurement configuration The first measurement cycle.
  • the value of the measurement period includes at least one of sf160, sf256, sf320, sf512, and sf640, where sf represents a system frame, sf160 represents 160 system frames, and 160 system frames represent 160 milliseconds.
  • the base station sends the configured third measurement configuration for cell signal quality measurement to the terminal.
  • Step 1010 The terminal receives the third measurement configuration of the cell signal quality sent by the base station.
  • step 1011 when the terminal determines that the current mobility state is switched from normal mobility to high mobility, the effective measurement configuration is switched from the first measurement configuration to the third measurement configuration.
  • the terminal determines that the current mobility state is switched from normal mobility to high mobility
  • the first measurement configuration is deleted, and the third measurement configuration is enabled; or, the terminal determines the current mobility
  • the first measurement configuration is disabled and the third measurement configuration is started.
  • Step 1012 When the mobility state is high mobility, the terminal performs cell signal quality measurement according to the third measurement configuration.
  • the terminal judges that the terminal is in the high mobility state again, it starts high mobility measurement, and the terminal performs cell signal quality measurement according to the third measurement configuration.
  • the terminal sends the measurement report obtained by the high mobility measurement to the base station, and the measurement report includes the second measurement state change.
  • the effective measurement configuration is switched from the third measurement configuration to the first measurement configuration again.
  • the method provided by the embodiment of the present application can reduce the amount of data that the base station needs to carry in the configuration signaling in a single configuration process by separately sending two sets of measurement configurations, thereby saving air interface resources.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 11 shows a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application. This method can be applied to the implementation environment shown in FIG. 1.
  • the access network device is a base station as an example. .
  • the method includes:
  • Step 1101 the terminal sends the mobility capability to the base station.
  • the mobility capabilities of the terminal include normal mobility, low mobility, and high mobility.
  • Both low mobility and high mobility are distinguished mobility states compared to normal mobility.
  • Low mobility is the mobile state where the terminal remains stationary or the moving range is smaller than the first range within a preset time
  • high mobility is the mobile state where the terminal's moving range is greater than the second range within the preset time.
  • Step 1102 the base station receives the mobility capability sent by the terminal.
  • the base station receives the mobility capability sent by the terminal.
  • the mobility capability is used to indicate that the terminal has the capabilities of normal mobility, low mobility, and high mobility.
  • Step 1103 the base station generates a measurement configuration of cell signal quality according to the mobility capability.
  • Step 1104 the base station sends three sets of measurement configurations of cell signal quality to the terminal.
  • the three sets of measurement configurations include: a first measurement configuration for normal mobility, a second measurement configuration for low mobility, and, Used for the third measurement configuration under high mobility.
  • the base station configures three sets of measurement configurations corresponding to normal mobility, low mobility, and high mobility according to the received mobility capabilities, that is, the base station configures the first measurement configuration according to the mobility capabilities of normal mobility; For the mobility capability of mobility, configure the second measurement configuration; the base station configures the third measurement configuration according to the mobility capability of high mobility.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration is less than in the second measurement configuration The second measurement period.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration is less than the third measurement in the first measurement configuration cycle.
  • the base station simultaneously sends the first measurement configuration, the second measurement configuration, and the third measurement configuration for cell signal quality measurement to the terminal.
  • step 1105 the terminal receives three sets of measurement configurations of cell signal quality sent by the base station.
  • the terminal simultaneously receives the first measurement configuration, the second measurement configuration, and the third measurement configuration of the cell signal quality sent by the base station.
  • Step 1106 the terminal judges the current mobility state.
  • the terminal determines the current mobility state.
  • the terminal's current mobility state is the normal mobility state, go to step 1107; when the terminal's current mobility state is the low mobility state, go to step 1108; when the mobility state that the terminal is currently in is a high mobility state, go to step 1109.
  • the terminal judges the current mobility state by referring to the method shown in FIG. 5, which will not be repeated here.
  • step 1107 to step 1109 is the same as that of the foregoing embodiment, and will not be repeated here.
  • the mobility capabilities of the terminal include normal mobility, low mobility, and high mobility.
  • the base station configures three sets of measurement configurations according to the three mobility capabilities simultaneously possessed by the terminal, so that the mobility status of the terminal At different times, the corresponding measurement configuration is used to avoid inaccurate measurement results caused by normal mobility measurement when the terminal is in a high mobility state, and waste of power caused by normal mobility measurement when the terminal is in a low mobility state.
  • the base station simultaneously sends three sets of measurement configurations to the terminal, so that the terminal can immediately switch to the measurement configuration corresponding to the current mobility state to determine the current mobility state, so that the terminal’s
  • the handover process of mobility measurement is rapid.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • the terminal alternately uses the first measurement configuration, the second measurement configuration, and the third measurement according to the first duration, the second duration, and the third duration configured by the base station Configuration, that is, periodically perform normal mobility measurement, low mobility measurement and high mobility measurement.
  • the above steps 1106 to 1108 are replaced with steps 11061 to 11063.
  • the replacement steps are as follows:
  • Step 11061 the base station sends a first duration, a second duration, and a third duration to the terminal.
  • the first duration is the duration when the first measurement configuration takes effect
  • the second duration is the duration when the second measurement configuration takes effect
  • the third duration is the third measurement The length of time the configuration takes effect.
  • the base station Based on the first measurement configuration, the second measurement configuration, and the third measurement configuration, the base station configures the first duration, the second duration, and the third duration based on the premise that the terminal does not affect the mobility measurement.
  • the base station sends the first duration, the second duration, and the third duration to the terminal.
  • Step 11062 the terminal receives the first duration, the second duration, and the third duration sent by the base station.
  • Step 11063 The terminal alternately uses the first measurement configuration, the second measurement configuration, and the third measurement configuration according to the first duration, the second duration, and the third duration to perform cell signal quality measurement.
  • the terminal uses the first measurement configuration to perform normal mobility measurement of the cell signal quality within the first duration.
  • the terminal uses the second measurement configuration to perform low mobility measurement of the cell signal quality within the second duration.
  • the terminal uses the third measurement configuration to perform high mobility measurement of the cell signal quality within the third duration.
  • the base station sends the three durations and three sets of measurement configurations to the terminal at the same time, or the base station sends the three durations and the three sets of measurements separately to the terminal, and whether the three durations and the three sets of measurement configurations are sent simultaneously or separately
  • the sending and the order of sending separately are not limited in this embodiment.
  • the method provided in the embodiment of the present application periodically uses the first measurement configuration and the second measurement configuration alternately, and on the premise of reducing the resource consumption of the air interface signaling between the terminal and the base station, power saving is also achieved.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 13 shows a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application. This method can be applied to the implementation environment shown in FIG. 1.
  • the access network device is a base station as an example. .
  • the method includes:
  • Steps 1301 to 1303 are the same as steps 1101 to 1103, and will not be repeated here.
  • step 1304 to step 1312 is the same as the content of step 704 to step 712 shown in FIG. 7, so step 1304 to step 1312 can refer to step 704 to step 712 shown in FIG. 7 and will not be repeated here.
  • step 1313 to step 1318 is the same as the content of step 1007 to step 1012 shown in FIG. 10, so step 1313 to step 1318 can refer to step 1007 to step 1012 shown in FIG. 10, and will not be repeated here.
  • the switching process may be to switch from the mobility state to the normal mobility state first, and then switch from the normal mobility state to the high mobility Alternatively, the handover process may also be to directly switch from the low mobility state to the high mobility state, and this embodiment does not limit the handover process.
  • the switching process is also the same.
  • the method provided by the embodiment of the present application can reduce the amount of data that the base station needs to carry in the configuration signaling in a single configuration process by separately sending two sets of measurement configurations, thereby saving air interface resources.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 14 shows a flowchart of a method for measuring cell signal quality provided by another exemplary embodiment of the present application. This method can be applied to the implementation environment shown in FIG. 1.
  • the access network device is a base station as an example. .
  • the method includes:
  • Step 1401 the terminal displays a setting interface, and the setting interface includes controls for changing mobility capabilities.
  • the setting interface is an interface for manually changing the mobility capability of the terminal.
  • the user manually changes the mobility capability of the terminal through the setting interface displayed on the terminal, so that the changed terminal is more suitable for the mobility state.
  • FIG. 15 Schematically, referring to FIG. 15, a schematic diagram of a setting interface 900 displayed by the terminal is shown.
  • a first slider 901, a second slider 902 and a third slider 903 are displayed on the setting interface 900, the first slider 901 is used to prohibit or start normal mobility, and the second slider 902 is used to prohibit or start low movement
  • the third slider 903 is used to prohibit or activate high mobility.
  • the user manually sets the mobility capability of the terminal through the three slider keys on the setting interface 900.
  • the usage scenarios corresponding to the low mobility on the setting interface 900 in FIG. 15 include usage scenarios of fixed-line terminals and various sensor terminals for detecting a certain detection object in the Internet of Things, where the terminals are located at a long position Use scenarios where time does not change. For example, when using a mobile phone as a landline, the location of the mobile phone does not change for a long time.
  • Use scenarios corresponding to high mobility include use scenarios in which the location of high-speed rail and other terminals changes rapidly within a short period of time. For example, when the terminal is located on the high-speed rail, the high-speed mobility is used to ensure that the high-speed rail moves at a high speed, and the business can still continue.
  • the usage scenarios corresponding to normal mobility are between the usage scenarios corresponding to the two mobility capabilities of low mobility and high mobility.
  • Step 1402 when the terminal receives the setting signal on the control, it determines the changed mobility capability.
  • the setting signal is a signal generated when the control for changing the mobility ability on the setting interface is triggered.
  • the terminal When the terminal receives the setting signal on the control, it determines that the control is triggered. The terminal determines the changed mobility capability of the terminal according to the setting signal. The changed mobility capability is the mobility capability of the terminal after the control for changing the mobility capability on the setting interface is triggered.
  • Step 1403 the terminal sends the modified mobility capability to the base station.
  • Step 1404 the base station receives the modified mobility capability sent by the terminal.
  • Step 1405 the base station sends the cell signal quality measurement configuration to the terminal again according to the changed mobility capability.
  • the base station determines the current mobility state of the terminal according to the changed mobility capability.
  • the base station configures the measurement configuration of the cell signal quality corresponding to the current mobility state according to the current mobility state of the terminal.
  • step 1406 the terminal receives the measurement configuration of the cell signal quality sent by the base station again.
  • the measurement configuration sent again is configured by the base station according to the changed mobility capability.
  • step 1407 the terminal performs cell signal quality measurement according to the measurement configuration sent again.
  • the terminal performs cell signal quality measurement according to the retransmitted measurement configuration.
  • the retransmitted measurement configuration is a measurement configuration corresponding to the current mobility state of the terminal.
  • the method provided in the embodiment of the present application changes the mobility capability of the terminal through the setting interface when the mobility capability of the terminal needs to be changed, and receives the re-sent measurement configuration corresponding to the changed mobility capability, so that the terminal mobility After the capability changes, it can be adjusted to the corresponding mobility measurement to achieve the purpose of saving power.
  • the method provided by the embodiments of the present application is also applicable to the embodiments shown in FIG. 3 to FIG. 14, that is, when the mobility capabilities of the terminal provided by the embodiments shown in FIG. 3 to FIG. 14 for a long time
  • the method provided in this embodiment changes the mobility capability of the terminal, so that the usage scenario of the terminal is consistent with its mobility capability. For example, when a mobile phone is used as a fixed phone in a family, the mobile phone is a fixed terminal, and when the mobile phone is used again as a mobile phone, the mobile phone is a non-fixed terminal.
  • the above steps performed by the terminal can be individually implemented as a method for measuring the cell signal quality on the terminal side; the above steps performed by the base station can be separately implemented as a method for measuring the cell signal quality on the access network device side.
  • FIG. 16 shows a schematic structural diagram of a cell signal quality measurement device provided by an exemplary embodiment of the present application.
  • the device may be implemented as all or part of a terminal through software, hardware, or a combination of the two.
  • the device includes:
  • the first sending module 1010 is configured to send mobility capabilities to the access network device
  • the first receiving module 1020 is configured to receive the measurement configuration of the cell signal quality sent by the access network device, and the measurement configuration is configured by the access network device according to mobility capabilities;
  • the measurement module 1030 is configured to perform cell signal quality measurement according to the measurement configuration.
  • the mobility capabilities include at least one of the following capabilities:
  • the mobility capabilities include normal mobility and low mobility
  • the first receiving module 1020 is configured to receive two sets of measurement configurations of the cell signal quality sent by the access network device.
  • the two sets of measurement configurations include: a first measurement configuration for normal mobility, and Second measurement configuration under mobility;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration is less than in the second measurement configuration The second measurement period.
  • the measurement module 1030 includes:
  • the judging unit 1031 is configured to judge the current mobility state
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the first measurement configuration when the mobility state is normal mobility;
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the second measurement configuration when the mobility state is low mobility.
  • the device further includes:
  • the generating module 1040 is configured to perform the measurement of the cell signal quality according to the second measurement configuration to generate a low mobility measurement report, where the low mobility measurement report includes the first measurement state change;
  • the first sending module 1010 is configured to send a low mobility measurement report to the access network device.
  • the first receiving module 1020 is configured to receive the first duration and the second duration sent by the access network device.
  • the first duration is the duration when the first measurement configuration takes effect, and the second duration Is the length of time the second measurement configuration takes effect;
  • the measurement module 1030 is configured to alternately use the first measurement configuration and the second measurement configuration according to the first duration and the second duration to perform cell signal quality measurement.
  • the mobility capabilities include normal mobility and low mobility
  • the first receiving module 1020 includes:
  • the first receiving unit 1021 is configured to receive a first measurement configuration of the cell signal quality sent by the access network device, where the first measurement configuration is the first measurement configuration for normal mobility;
  • the first sending unit 1022 is configured to send the first measurement state change to the access network device when the current mobility state is switched from normal mobility to low mobility;
  • the first receiving unit 1021 is configured to receive a second measurement configuration of the cell signal quality sent by the access network device, and the second measurement configuration is a second measurement configuration for low mobility.
  • the measurement module 1030 includes:
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the first measurement configuration when the mobility state is normal mobility;
  • the judging unit 1031 is configured to judge that when the current mobility state is switched from normal mobility to low mobility, the effective measurement configuration is switched from the first measurement configuration to the second measurement configuration;
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the second measurement configuration when the mobility state is low mobility.
  • the mobility capabilities include: normal mobility and high mobility;
  • the first receiving module 1020 is configured to receive two sets of measurement configurations of the cell signal quality sent by the access network device.
  • the two sets of measurement configurations include: a first measurement configuration for normal mobility, and The third measurement configuration under mobility;
  • the power consumption of the first measurement configuration is smaller than the power consumption of the third measurement configuration.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration is less than in the first measurement configuration The first measurement cycle.
  • the measurement module 1030 includes:
  • the judging unit 1031 is configured to judge the current mobility state
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the first measurement configuration when the mobility state is normal mobility;
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the third measurement configuration when the mobility state is high mobility.
  • the generating module 1040 is configured to generate a measurement report of the high mobility measurement according to the measurement of the cell signal quality according to the third measurement configuration, and the measurement report includes the second measurement state change;
  • the first sending module 1010 is configured to send a measurement report to the access network device.
  • the first receiving module 1020 is configured to receive the first duration and the third duration sent by the access network device.
  • the first duration is the duration when the first measurement configuration takes effect, and the third duration Is the length of time that the third measurement configuration takes effect;
  • the measurement module 1030 is configured to alternately use the first measurement configuration and the third measurement configuration according to the first duration and the third duration to perform cell signal quality measurement.
  • the mobility capabilities include: normal mobility and high mobility;
  • the first receiving module 1020 includes:
  • the first receiving unit 1021 is configured to receive a first measurement configuration of the cell signal quality sent by the access network device, where the first measurement configuration is the first measurement configuration for normal mobility;
  • the first sending unit 1022 is configured to send the second measurement state change to the access network device when the current mobility state is switched from normal mobility to high mobility;
  • the first receiving unit 1021 is configured to receive a third measurement configuration of the cell signal quality sent by the access network device, and the third measurement configuration is a third measurement configuration for high mobility.
  • the measurement module 1030 includes:
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the first measurement configuration when the mobility state is normal mobility;
  • the judging unit 1031 is configured to judge that when the current mobility state is switched from normal mobility to high mobility, the effective measurement configuration is switched from the first measurement configuration to the third measurement configuration;
  • the measurement unit 1032 is configured to perform cell signal quality measurement according to the third measurement configuration when the mobility state is high mobility.
  • the device further includes:
  • the display module 1050 is configured to display a setting interface, and the setting interface includes controls for changing mobility capabilities;
  • the first receiving module 1020 is configured to determine the changed mobility capability when receiving the setting signal on the control
  • the first sending module 1010 is configured to send the changed mobility capability to the access network device
  • the first receiving module 1020 is configured to receive the measurement configuration of the cell signal quality sent by the access network device again.
  • the measurement configuration sent again is configured by the access network device according to the changed mobility capability;
  • the measurement module 1030 is configured to measure the signal quality of the cell according to the measurement configuration sent again.
  • FIG. 19 shows a schematic structural diagram of a cell signal quality measurement device provided by an exemplary embodiment of the present application.
  • the device may be implemented as all or part of a terminal through software, hardware, or a combination of the two.
  • the device includes:
  • the second receiving module 1310 is configured to receive the mobility capability sent by the terminal
  • the generating module 1320 is configured to generate a measurement configuration of the signal quality of the cell according to the mobility capability
  • the second sending module 1330 is configured to send the cell signal quality measurement configuration to the terminal.
  • the mobility capabilities include at least one of the following capabilities: normal mobility, low mobility, and high mobility.
  • the mobility capabilities include the normal mobility and the low mobility
  • the second sending module 1330 is configured to send two sets of measurement configurations of cell signal quality to the terminal.
  • the two sets of measurement configurations include: a first measurement configuration for normal mobility, and, for low mobility Second measurement configuration;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the number of first frequency points to be measured in the first measurement configuration is greater than the number of second frequency points to be measured in the second measurement configuration; and/or, the first measurement period in the first measurement configuration is less than in the second measurement configuration The second measurement period.
  • the second receiving module 1310 is configured to receive a low mobility measurement report sent by the terminal, the low mobility measurement report including the first measurement state change.
  • the device further includes:
  • the second sending module is configured to send a first duration and a second duration to the terminal.
  • the first duration is the duration when the first measurement configuration takes effect
  • the second duration is the duration when the second measurement configuration takes effect.
  • the mobility capabilities include normal mobility and low mobility
  • the second sending module 1330 includes:
  • the second sending unit 1331 is configured to send the first measurement configuration of the cell signal quality to the terminal, and the first measurement configuration is the first measurement configuration for normal mobility;
  • the second receiving unit 1332 is configured to receive the first measurement state change sent by the terminal
  • the second sending unit 1331 is configured to send a second measurement configuration of cell signal quality to the terminal according to the first measurement state change, the second measurement configuration is a second measurement configuration for low mobility;
  • the power consumption of the second measurement configuration is less than the power consumption of the first measurement configuration.
  • the mobility capabilities include normal mobility and high mobility
  • the second sending module 1330 is configured to send two sets of measurement configurations of cell signal quality to the terminal.
  • the two sets of measurement configurations include: a first measurement configuration for normal mobility, and, for high mobility Third measurement configuration;
  • the power consumption of the first measurement configuration is smaller than the power consumption of the third measurement configuration.
  • the number of third frequency points to be measured in the third measurement configuration is greater than the number of first frequency points to be measured in the first measurement configuration; and/or, the third measurement period in the third measurement configuration is less than in the first measurement configuration The first measurement cycle.
  • the mobility capabilities include normal mobility and high mobility
  • the second sending module 1330 includes:
  • the second sending unit 1331 is configured to send a first measurement configuration of cell signal quality to the terminal, where the first measurement configuration is a measurement configuration for normal mobility;
  • the second receiving unit 1332 is configured to receive the second measurement state change sent by the terminal
  • the second sending unit 1331 is configured to change the third measurement configuration for sending the cell signal quality to the terminal according to the second measurement state, and the third measurement configuration is a measurement configuration for high mobility;
  • the power consumption of the first measurement configuration is smaller than the power consumption of the third measurement configuration.
  • the second receiving module 1310 is configured to receive the measurement report sent by the terminal, and the measurement report includes the second measurement state change.
  • the mobility capabilities include normal mobility and high mobility
  • the second sending module 1330 is configured to send two sets of measurement configurations of cell signal quality to the terminal, and the first duration and the third duration;
  • the two sets of measurement configurations include: the first measurement configuration for normal mobility, and the third measurement configuration for high mobility.
  • the first duration is the length of time that the first measurement configuration is in effect
  • the third duration is The length of time that the third measurement configuration takes effect.
  • the second receiving module 1310 is configured to receive the modified mobility capability sent by the terminal;
  • the second sending module 1320 is configured to send the cell signal quality measurement configuration to the terminal again according to the modified mobility capability.
  • the cell signal quality measurement device provided in the above embodiment performs cell signal quality measurement
  • only the above division of each functional module is used as an example for illustration.
  • the above functions may be allocated as needed Different functional modules are completed, that is, the internal structure of the device is divided into different functional modules to complete all or part of the functions described above.
  • the cell signal quality measurement device and the cell signal quality measurement method method embodiments provided in the above embodiments belong to the same concept. For the specific implementation process, see the method embodiments, and details are not described here.
  • the sending module in the above embodiments may be implemented by a communication chip, or may be implemented by a communication chip and a processor in cooperation; and/or, the receiving module in the above embodiments may be implemented by a communication chip, or by communication The chip and the processor are implemented together.
  • FIG. 21 shows a block diagram of a communication device 1500 provided by an exemplary embodiment of the present application.
  • the communication device 1500 may be a terminal or an access network device.
  • the communication device 1500 may include a processor 1501, a receiver 1502, a transmitter 1503, and a memory 1504.
  • the receiver 1502, the transmitter 1503, and the memory 1504 are respectively connected to the processor 1501 through a bus.
  • the processor 1501 includes one or more processing cores.
  • the processor 1501 executes the method executed by the terminal or the access network device in the uplink data transmission method provided by the embodiment of the present disclosure by running software programs and modules.
  • the memory 1504 may be used to store software programs and modules. Specifically, the memory 1504 may store an operating system 15041 and an application program module 15042 required for at least one function.
  • the receiver 1502 is used to receive communication data sent by other devices, and the transmitter 1503 is used to send communication data to other devices.
  • FIG. 22 shows a block diagram of a communication system 1600 provided by an exemplary embodiment of the present application.
  • the communication system 1600 includes: an access network device 1601 and a terminal 1602.
  • the access network device 1601 and the terminal 1602 are used to perform the cell signal quality measurement method performed in the embodiments shown in FIGS. 3 to 15.
  • a computer-readable storage medium is also provided.
  • the computer-readable storage medium is a non-volatile computer-readable storage medium.
  • the computer-readable storage medium stores a computer program, and the stored When the computer program is executed by the processing component, the method for measuring the signal quality of a cell provided by the foregoing embodiments of the present application can be implemented.
  • An embodiment of the present application also provides a computer program product that stores instructions that, when run on a computer, enable the computer to execute the cell signal quality measurement method provided by the embodiment of the present application.
  • An embodiment of the present application further provides a chip, which includes programmable logic circuits and/or program instructions, and when the chip is running, the method for measuring the signal quality of a cell provided in the embodiment of the present application can be performed.
  • the program may be stored in a computer-readable storage medium.
  • the mentioned storage medium may be a read-only memory, a magnetic disk or an optical disk.

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Abstract

一种小区信号质量的测量方法、装置、设备及系统,涉及通信领域,该方法包括:终端(201)向接入网设备发送移动性能力(S301);终端(201)接收接入网设备发送的小区信号质量的测量配置(S305),测量配置是接入网设备根据移动性能力配置的;终端(201)根据测量配置进行小区信号质量的测量(S306)。通过引入不同终端(201)的移动性能力,终端(201)的移动性状态得以区分出,并根据不同的移动性,由接入网设备配置与移动性状态对应的测量配置,使得终端(201)的移动性测量能够适用于终端(201)的移动性状态,从而达到不同的移动性对应有不同的测量配置。

Description

小区信号质量的测量方法、装置、设备及系统 技术领域
本公开涉及通信领域,特别涉及一种小区信号质量的测量方法、装置、设备及系统。
背景技术
当终端在小区内移动而导致终端连接的信号强度不足以保证业务质量时,终端根据移动性测量的结果,重新选择合适的小区进行连接,从而保证终端进行的业务不间断且业务质量有保障。
在相关技术中,基站针对终端的移动性测量为终端配置了测量配置。终端根据基站配置的测量配置进行移动性测量,获得移动性测量的结果,从而根据移动性测量的结果选择合适的驻留小区。
发明内容
本申请实施例提供了一种小区信号质量的测量方法、装置、设备及系统,可以解决当终端保持不动或移动范围较小时,终端依然采用相关技术中提供的测量配置进行移动性测量,容易造成测量的多余性以及电量浪费的问题,具体如下:
根据本公开实施例的一方面,提供了一种小区信号质量的测量方法,所述方法包括:
终端向接入网设备发送移动性能力;
所述终端接收所述接入网设备发送的所述小区信号质量的测量配置,所述测量配置是所述接入网设备根据所述移动性能力配置的;
所述终端根据所述测量配置进行所述小区信号质量的测量。
可选的,所述移动性能力包括如下能力中的至少一种:
正常移动性、低移动性、高移动性。
在一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述终端接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
可选的,所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量的第二频点数;和/或,所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
可选的,所述终端判断当前所处的移动性状态;
所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述终端在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
可选的,所述终端根据所述第二测量配置进行的所述小区信号质量的测量,生成测量报告,所述测量报告包括第一测量状态改变;
所述终端向所述接入网设备发送所述测量报告。
在另一种可选的实施方式中,所述终端接收所述接入网设备发送的第一时长和第二时长,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长;
所述终端根据所述第一时长和所述第二时长交替使用所述第一测量配置和所述第二测量配置,进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述终端接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
所述终端在当前所处的移动性状态从所述正常移动性切换为所述低移动性时,向所述接入网设备发送第一测量状态改变;
所述终端接收所述接入网设备发送的所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的第二测量配置。
可选的,所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述终端判断出在当前所处的移动性状态从所述正常移动性切换为所述 低移动性时,将生效的测量配置从所述第一测量配置切换为所述第二测量配置;
所述终端在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括:所述正常移动性和所述高移动性;
所述终端接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置;
其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
可选的,所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;和/或,所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
可选的,所述终端判断当前所处的移动性状态;
所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述终端在所述移动性状态处于所述高移动性时,按照所述第三测量配置进行所述小区信号质量的测量。
可选的,所述终端根据所述第三测量配置进行的所述小区信号质量的测量,生成测量报告,所述测量报告包括第二测量状态改变;
所述终端向所述接入网设备发送所述测量报告。
在另一种可选的实施方式中,所述终端接收所述接入网设备发送的第一时长和第三时长,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长;
所述终端根据所述第一时长和所述第三时长交替使用所述第一测量配置和所述第三测量配置,进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括:所述正常移动性和所述高移动性;
所述终端接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
所述终端在当前所处的移动性状态从所述正常移动性切换为所述高移动 性时,向所述接入网设备发送第二测量状态改变;
所述终端接收所述接入网设备发送的所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的第三测量配置。
可选的,所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述终端判断出在当前所处的移动性状态从所述正常移动性切换为所述高移动性时,将生效的测量配置从所述第一测量配置切换为所述第三测量配置;
所述终端在所述移动性状态处于所述高移动性时,按照所述第三测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述终端显示设置界面,所述设置界面包括用于更改所述移动性能力的控件;
所述终端在接收到所述控件上的设置信号时,确定更改后的移动性能力;
所述终端向所述接入网设备发送所述更改后的移动性能力;
所述终端接收所述接入网设备再次发送的所述小区信号质量的测量配置,所述再次发送的测量配置是所述接入网设备根据所述更改后移动性能力配置的;
所述终端根据所述再次发送的测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性;
所述终端接收所述接入网设备发送的所述小区信号质量的第一测量配置;
所述终端按照所述第一测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括所述低移动性;
所述终端接收所述接入网设备发送的所述小区信号质量的第二测量配置;
所述终端按照所述第二测量配置进行所述小区信号质量的测量。
根据本公开实施例的另一方面,提供了一种小区信号质量的测量方法,所述方法包括:
接入网设备接收终端发送的移动性能力;
所述接入网设备根据所述移动性能力生成所述小区信号质量的测量配置;
所述接入网设备向所述终端发送所述小区信号质量的测量配置。
可选的,所述移动性能力包括如下能力中的至少一种:
正常移动性、低移动性、高移动性。
在一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
可选的,所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量的第二频点数;和/或,所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述接入网设备向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
所述接入网设备接收所述终端发送的第一测量状态改变;
所述接入网设备根据所述第一测量状态改变向所述终端发送所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的测量配置;
其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
可选的,所述接入网设备接收所述终端发送的测量报告,所述测量报告包括所述第一测量状态改变。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第二时长;
所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述高移动性;
所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所 述高移动性下的第三测量配置;
其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
可选的,所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;和/或,所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述高移动性;
所述接入网设备向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
所述接入网设备接收所述终端发送的第二测量状态改变;
所述接入网设备根据所述第二测量状态改变向所述终端发送所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的测量配置;
其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
可选的,所述接入网设备接收所述终端发送的测量报告,所述测量报告包括所述第二测量状态改变。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述高移动性;
所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第三时长;
所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长。
在另一种可选的实施方式中,所述方法还包括:
所述接入网设备接收所述终端发送的更改后的移动性能力;
所述接入网设备根据所述更改后的移动性能力,向所述终端再次发送所述小区信号质量的测量配置。
根据本申请实施例的另一方面,提供了一种小区信号质量的测量装置,所述装置包括:
第一发送模块,被配置为向接入网设备发送移动性能力;
第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的 测量配置,所述测量配置是所述接入网设备根据所述移动性能力配置的;
测量模块,被配置为根据所述测量配置进行所述小区信号质量的测量。
可选的,所述移动性能力包括如下能力中的至少一种:
正常移动性、低移动性、高移动性。
在一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
可选的,所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量的第二频点数;和/或,所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
可选的,所述测量模块,包括:
判断单元,被配置为判断当前所处的移动性状态;
测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述测量单元,被配置为在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
可选的,所述装置还包括:
生成模块,被配置为根据所述第二测量配置进行的所述小区信号质量的测量,生成测量报告,所述测量报告包括第一测量状态改变;
所述第一发送模块,被配置为向所述接入网设备发送所述测量报告。
在另一种可选的实施方式中,所述装置还包括:
所述第一接收模块,被配置为接收所述接入网设备发送的第一时长和第二时长,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长;
所述测量模块,被配置为根据所述第一时长和所述第二时长交替使用所述第一测量配置和所述第二测量配置,进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述第一接收模块,包括:
第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
第一发送单元,被配置为在当前所处的移动性状态从所述正常移动性切换为所述低移动性时,向所述接入网设备发送第一测量状态改变;
所述第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的第二测量配置。
可选的,所述测量模块,包括:
所述测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述判断单元,被配置为判断出在当前所处的移动性状态从所述正常移动性切换为所述低移动性时,将生效的测量配置从所述第一测量配置切换为所述第二测量配置;
所述测量单元,被配置为在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括:所述正常移动性和所述高移动性;
所述第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置;
其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
可选的,所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;和/或,所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
可选的,所述测量模块,包括:
所述判断单元,被配置为判断当前所处的移动性状态;
所述测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述测量单元,被配置为在所述移动性状态处于所述高移动性时,按照所 述第三测量配置进行所述小区信号质量的测量。
可选的,所述生成模块,被配置为根据所述第三测量配置进行的所述小区信号质量的测量,生成高移动性测量的测量报告,所述测量报告包括第二测量状态改变;
所述第一发送模块,被配置为向所述接入网设备发送所述测量报告。
在另一种可选的实施方式中,所述第一接收模块,被配置为接收所述接入网设备发送的第一时长和第三时长,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长;
所述测量模块,被配置为根据所述第一时长和所述第三时长交替使用所述第一测量配置和所述第三测量配置,进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括:所述正常移动性和所述高移动性;
所述第一接收模块,包括:
所述第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
所述第一发送单元,被配置为在当前所处的移动性状态从所述正常移动性切换为所述高移动性时,向所述接入网设备发送第二测量状态改变;
所述第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的第三测量配置。
可选的,所述测量模块,包括:
所述测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
所述判断单元,被配置为判断出在当前所处的移动性状态从所述正常移动性切换为所述高移动性时,将生效的测量配置从所述第一测量配置切换为所述第三测量配置;
所述测量单元,被配置为在所述移动性状态处于所述高移动性时,按照所述第三测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述装置还包括:
显示模块,被配置为显示设置界面,所述设置界面包括用于更改所述移动 性能力的控件;
所述第一接收模块,被配置为在接收到所述控件上的设置信号时,确定更改后的移动性能力;
所述第一发送模块,被配置为向所述接入网设备发送所述更改后的移动性能力;
所述第一接收模块,被配置为接收所述接入网设备再次发送的所述小区信号质量的测量配置,所述再次发送的测量配置是所述接入网设备根据所述更改后移动性能力配置的;
所述测量模块,被配置为根据所述再次发送的测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性;
所述第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的第一测量配置;
所述测量模块,被配置为按照所述第一测量配置进行所述小区信号质量的测量。
在另一种可选的实施方式中,所述移动性能力包括所述低移动性;
所述第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的第二测量配置;
所述测量模块,被配置为按照所述第二测量配置进行所述小区信号质量的测量。
根据本申请实施例的另一方面,提供了一种小区信号质量的测量装置,所述装置包括:
第二接收模块,被配置为接收终端发送的移动性能力;
生成模块,被配置为根据所述移动性能力生成所述小区信号质量的测量配置;
第二发送模块,被配置为向所述终端发送所述小区信号质量的测量配置。
可选的,所述移动性能力包括如下能力中的至少一种:
正常移动性、低移动性、高移动性。
在一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测 量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
可选的,所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量的第二频点数;和/或,所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述第二发送模块,包括:
第二发送单元,被配置为向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
第二接收单元,被配置为接收所述终端发送的第一测量状态改变;
所述第二发送单元,被配置为根据所述第一测量状态改变向所述终端发送所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的测量配置;
其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
可选的,所述第二接收模块,被配置为接收所述终端发送的测量报告,所述测量报告包括第一测量状态改变。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第二时长;
所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述高移动性;
所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置;
其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
可选的,所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;和/或,所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述高移动性;
所述第二发送模块,包括:
所述第二发送单元,被配置为向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
所述第二接收单元,被配置为接收所述终端发送的第二测量状态改变;
所述第二发送单元,被配置为根据所述第二测量状态改变向所述终端发送所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的测量配置;
其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
可选的,所述第二接收模块,被配置为接收所述终端发送的测量报告,所述测量报告包括所述第二测量状态改变。
在另一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述高移动性;
所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第三时长;
所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长。
在另一种可选的实施方式中,所述装置还包括:
所述第二接收模块,被配置为接收所述终端发送的更改后的移动性能力;
所述第二发送模块,被配置为根据所述更改后的移动性能力,向所述终端再次发送所述小区信号质量的测量配置。
根据本申请实施例的另一方面,提供了一种终端,所述终端包括:处理器;与所述处理器相连的收发器;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以实现如上所述的小区信号质量的测量方法。
根据本申请实施例的另一方面,提供了一种接入网设备,所述接入网设备包括:处理器;与所述处理器相连的发射器和接收器;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以实现如上所述的小区信号质量的测量方法。
根据本申请实施例的另一方面,提供了一种通信系统,所述系统中包括:终端和接入网设备;所述终端包括如上所述的小区信号质量的测量装置;所述接入网设备包括如上所述的小区信号质量的测量装置。
根据本申请实施例的另一方面,提供了一种通信系统,所述系统中包括:终端和接入网设备;所述终端包括如上所述的终端;所述接入网设备包括如上所述的接入网设备。
根据本申请实施例的另一方面,提供了一种芯片,所述芯片包括可编程逻辑电路和/或程序指令,当所述芯片运行时,实现如上所述的小区信号质量的测量方法。
根据本申请实施例的另一方面,提供了一种计算机存储介质,所述计算机存储介质包括可编程逻辑电路和/或程序指令,当所述计算机存储介质运行时,实现如上所述的小区信号质量的测量方法。
根据本申请实施例的另一方面,提供了一种计算机程序产品,所述计算机程序产品包括可编程逻辑电路和/或程序指令,当所述计算机程序产品运行时,实现如上所述的小区信号质量的测量方法。
本申请实施例提供的技术方案带来的有益效果至少包括:
通过终端向接入网设备发送的移动性能力,获得与终端的移动性能力对应的小区信号质量的测量配置,根据测量配置进行小区信号质量的测量。通过引入不同终端的移动性能力,终端的移动性状态得以区分出,并根据不同的移动性,由接入网设备配置与移动性状态对应的测量配置,使得终端的移动性测量能够适用于终端的移动性状态。从而达到不同的移动性对应有不同的测量配置。
附图说明
图1是本申请一个示例性实施例提供的通信系统的布网结构的示意图;
图2是本申请一个示例性实施例提供的终端处于低移动性状态下时的实施环境的示意图;
图3是本申请一个示例性实施例提供的小区信号质量的测量方法的流程图;
图4是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图5是本申请另一个示例性实施例提供的信号质量测量方法的流程图;
图6是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图7是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图8是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图9是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图10是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图11是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图12是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图13是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图14是本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图;
图15是本申请另一个示例性实施例提供的设置界面的示意图;
图16是本申请一个示例性实施例提供的小区信号质量的测量装置的结构示意图;
图17是本申请另一个示例性实施例提供的测量模块的结构示意图;
图18是本申请一个示例性实施例提供的第一接收模块的结构示意图;
图19是本申请一个示例性实施例提供的小区信号质量的测量装置的结构示意图;
图20是本申请一个示例性实施例提供的第二发送模块的结构示意图;
图21是本申请一个示例性实施例提供的一种通信设备的框图;
图22是本申请一个示例性实施例提供的一种通信系统的框图。
具体实施方式
为使本申请的目的、技术方案和优点更加清楚,下面将结合附图对本申请实施方式作进一步地详细描述。
3GPP在5G的第二版本中开展了终端省电方面的研究,省电包括多个方面:连接态的控制信道检测优化,优化终端非连续接收过程的控制,和无线资源管理方面的测量要求降低等。
其中,无线资源管理方面的测量要求中的测量频率、测量周期都是针对所有终端的,即不区分移动性。而为了通过降低无线资源管理方面的测量要求以达到省电的目的,划分出两种终端的移动性状态:正常移动性状态和低移动性状态,相对应的,无线资源管理方面的测量要求包括正常移动性的测量配置和低移动性的测量配置。低移动性的测量配置相比于正常移动性的测量配置,测量要求降低,使得处于低移动性状态的终端的功耗得以降低。
通信系统中的布网结构如图1所示,通常是以宏小区101(宏基站提供的小区)作为骨架,微小区102(微基站/微微基站提供的小区)做补充和热点覆盖的架构。宏小区101的特点是覆盖范围大,微小区102覆盖范围小。终端当按照箭头103来回移动的时候,根据信号强度的变化,可能发生小区重选或切换。但如果终端保持不动或移动范围很小时,若是不区分移动性,继续采用正常移动性的测量配置进行测量,则消耗了很多不必要的测量,导致终端电量被消耗。因此,在这种情况下,定义与终端低移动性状态相对应的低移动性的测量配置,减少了不必要的消耗,达到省电的目的。
若终端的低移动性由基站确定,则由基站告知终端启动低移动性的测量配置。如果基站判断出终端从低移动性状态切换正常移动性状态,则基站向终端发送切换的结果时会产生空口信令,那么无论从无线资源的角度还是干扰的角度都不是最优方案。因此,终端的低移动性状态判断准则由基站进行配置,基站再将配置的判断准则发送给终端,由终端自身根据接收的判断准则进行低移动性状态判断。
当终端判断出自身处于低移动性状态后,终端从正常移动性的测量配置切换为低移动性的测量配置,则低移动性测量的测量配置相比于正常移动性的测量配置有所不同。
本申请实施例提供了一种小区信号质量的测量方法、装置、设备及系统,终端在确定自身的移动性测量需要切换后,获取与切换后的移动性状态对应的测量配置,从而进行相应的移动性测量,以此达到终端处于低移动性状态时采用低移动性的测量配置进行测量,实现省电的目的。
图2示出了本申请一个示例性实施例提供的终端处于低移动性状态下时的实施环境的示意图,图2中以终端在3个小区覆盖的范围内进行移动性测量,基站为接入网设备为例,图2中包括:终端201、第一小区202、第二小区203和第三小区204。三个小区各自拥有各自的基站。
终端201处于3个小区覆盖范围内。终端201根据箭头指示的方向来回移动。终端201,用于根据向自身当前的移动性能力上报给终端当前所在小区的基站。
假设第一小区202为终端的驻留小区,第一小区202的基站用于根据终端201上报的移动性能力配置合适的移动性测量的测量配置,并将测量配置发送给终端201。
假设第二小区203为终端的驻留小区,第二小区203的基站用于根据终端201上报的移动性能力配置合适的移动性测量的测量配置,并将测量配置发送给终端201。
假设第三小区204为终端的驻留小区,第三小区204的基站用于根据终端201上报的移动性能力配置合适的移动性测量的测量配置,并将测量配置发送给终端201。
上述实施例仅为示意性说明,终端周侧的小区数量可以为三个以上,本实施例并不限定终端周侧的小区数量。
在本申请的一些实施例中,终端根据基站发送的测量配置进行对应的移动性测量,比如根据正常移动性的第一测量配置进行正常移动性测量,根据低移动性的第二测量配置进行低移动性测量,从而达到在终端处于低移动性状态时采用低移动性的第二测量配置进行测量,避免因小区信号质量的测量所导致的电量浪费。
图3示出了本申请一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的通信系统,本实施例以接入网设备是基站为例。该方法包括:
步骤301,终端向基站发送移动性能力。
移动性能力用于判断终端所属的类别,即用于区分终端是固定类终端,还是非固定类终端。固定类终端包括长期不发生移动的,且固定于一个位置的终端,比如,在物联网中各种用于检测某个检测对象的传感器终端,或,固话型终端。非固定类终端包括发生移动的,且不一定固定于一个位置的终端,比如,手机或车联网设备。
而且,终端的移动性能力根据实际使用场景不同会发生转化,即固定类终端转化为非固定类终端,非固定类终端转化为固定类终端。比如,将手机作为家庭中的固定电话使用时,该手机是固定类终端,而当该手机重新作为移动式的手机使用时,该手机又属于非固定类终端。
可选的,终端的移动性能力包括包括如下能力中的至少一种:
正常移动性、低移动性、高移动性。
低移动性和高移动性都是相较于正常移动性区分出的移动性状态。可选地,低移动性是终端在预设时间内保持不动或移动范围小于第一范围的移动状态,高移动性是终端在预设时间内的移动范围大于第二范围的移动状态。第二范围大于第一范围。
步骤302,基站接收终端发送的移动性能力。
步骤303,基站根据移动性能力生成小区信号质量的测量配置。
基站根据接收到的终端的移动性能力,配置与终端的移动性能力对应的测量配置。测量配置是终端在对小区信号质量进行移动性测量时的相关测量参数,用于使终端进行与测量配置对应的移动性测量。
小区信号质量是终端进行小区重选或小区切换时选择小区的标准,用于终端根据小区信号质量,选择保证业务连续进行或更优进行的小区进行驻留。
在一种可选的实施方式中,终端的移动性能力包括正常移动性。基站根据终端发送的正常移动性,配置与正常移动性对应的第一测量配置。第一测量配置是用于正常移动性下的测量配置。基站向终端发送小区信号质量的第一测量配置。
在另一种可选的实施方式中,终端的移动性能力包括低移动性。基站根据终端发送的低移动性,配置与低移动性对应的第二测量配置。第二测量配置是用于低移动性下的测量配置。基站向终端发送小区信号质量的第二测量配置。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性和低移动 性。基站根据终端发送的正常移动性和低移动性,分别配置与正常移动性对应的第一测量配置,和与低移动性对应的第二测量配置。基站向终端发送小区信号质量的第一测量配置和第二测量配置。
可选的,当终端的移动性能力包括正常移动性和低移动性时,基站向终端同时发送第一测量配置和第二测量配置;或,基站根据终端发送的移动性测量报告,分次向终端发送第一测量配置和第二测量配置。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性和高移动性。基站根据终端发送的正常移动性和高移动性,分别配置与正常移动性对应的第一测量配置,和与高移动性对应的第三测量配置。基站向终端发送小区信号质量的第一测量配置和第三测量配置。
可选的,当终端的移动性能力包括正常移动性和高移动性时,基站向终端同时发送第一测量配置和第三测量配置;或,基站根据终端发送的移动性测量报告,分次向终端发送第一测量配置和第三测量配置。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性、低移动性和高移动性。基站根据终端发送的正常移动性、低移动性和高移动性,分别配置与正常移动性对应的第一测量配置,与低移动性对应的第二测量配置,与高移动性对应的第三测量配置。基站向终端发送小区信号质量的第一测量配置、第二测量配置和第三测量配置。
可选的,当终端的移动性能力包括正常移动性、低移动性和高移动性时,基站向终端同时发送第一测量配置、第二测量配置和第三测量配置;或,基站根据终端发送的测量报告,分不同时机向终端发送第一测量配置、第二测量配置和第三测量配置。
步骤304,基站向终端发送小区信号质量的测量配置。
步骤305,终端接收基站发送的小区信号质量的测量配置。
在一种可选的实施方式中,终端的移动性能力包括正常移动性。终端接收基站发送的小区信号质量的第一测量配置。
在另一种可选的实施方式中,终端的移动性能力包括低移动性。终端接收基站发送的小区信号质量的第二测量配置。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性和低移动性。终端接收基站发送的小区信号质量的第一测量配置和第二测量配置。其中,终端接收的第一测量配置和第二测量配置的时间可以是同时的,也可以是不同 时的。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性和高移动性。终端接收基站发送的小区信号质量的第一测量配置和第三测量配置。其中,终端接收的第一测量配置和第三测量配置的时间可以是同时的,也可以是不同时的。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性、低移动性和高移动性。终端接收基站发送的小区信号质量的第一测量配置、第二测量配置和第三测量配置。其中,终端接收的第一测量配置、第二测量配置和第三测量配置的时间可以是同时的,也可以是不同时的。
步骤306,终端根据测量配置进行小区信号质量的测量。
终端根据测量配置进行小区信号质量的测量,该测量是与测量配置对应的移动性测量。
在一种可选的实施方式中,终端的移动性能力包括正常移动性。终端根据第一测量配置进行小区信号质量的测量。
在另一种可选的实施方式中,终端的移动性能力包括低移动性。终端根据第二测量配置进行小区信号质量的测量。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性和低移动性。当终端当前所处的移动性状态为正常移动性时,终端根据第一测量配置进行小区信号质量的测量。当终端当前所处的移动性状态为低移动性时,终端根据第二测量配置进行小区信号质量的测量。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性和高移动性。当终端当前所处的移动性状态为正常移动性时,终端根据第一测量配置进行小区信号质量的测量。当终端当前所处的移动性状态为高移动性时,终端根据第三测量配置进行小区信号质量的测量。
在另一种可选的实施方式中,终端的移动性能力包括正常移动性、低移动性和高移动性。当终端当前所处的移动性状态为正常移动性时,终端根据第一测量配置进行小区信号质量的测量。当终端当前所处的移动性状态为低移动性时,终端根据第二测量配置进行小区信号质量的测量。当终端当前所处的移动性状态为高移动性时,终端根据第三测量配置进行小区信号质量的测量。
综上所述,本申请实施例提供的方法,通过终端向接入网设备发送的移动性能力,获得与终端的移动性能力对应的小区信号质量的测量配置,根据测量 配置进行小区信号质量的测量。通过引入不同终端的移动性能力,终端的移动性状态得以区分出,并根据不同的移动性,由接入网设备配置与移动性状态对应的测量配置,使得终端的移动性测量能够适用于终端的移动性状态。从而达到不同的移动性对应有不同的测量配置。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
图4示出了本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的通信系统,本实施例以接入网设备是基站为例。该方法包括:
步骤401,终端向基站发送移动性能力。
移动性能力用于判断终端所属的类别,即用于区分终端是固定类终端,还是非固定类终端。固定类终端包括长期不发生移动的,且固定于一个位置的终端,比如,在物联网中各种用于检测某个检测对象的传感器终端,或,固话型终端。非固定类终端包括发生移动的,且不一定固定于一个位置的终端,比如,手机或车联网设备。
而且,终端的移动性能力根据实际使用场景不同会发生转化,即固定类终端转化为非固定类终端,非固定类终端转化为固定类终端。比如,将手机作为家庭中的固定电话使用时,该手机是固定类终端,而当该手机重新作为移动式的手机使用时,该手机又属于非固定类终端。
可选的,终端的移动性能力包括如下三种情况中的任意一种:
正常移动性;
或,低移动性;
或,正常移动性和低移动性。
低移动性是相较于正常移动性区分出的一个移动性状态。
低移动性相较于正常移动性,是在预定时间内移动范围较小或在预定时间内未发生移动的移动性状态。
步骤402,基站接收终端发送的移动性能力。
基站接收终端发送的移动性能力。该移动性能力用于指示该终端同时具备正常移动性和低移动性的能力。
低移动性是相较于正常移动性区分出的移动性状态。低移动性是终端在预设时间内保持不动或移动范围小于第一范围的移动状态。
步骤403,基站根据移动性能力生成小区信号质量的测量配置。
步骤404,基站向终端发送小区信号质量的两组测量配置,两组测量配置包括:用于在正常移动性下的第一测量配置,和,用于在低移动性下的第二测量配置。
基站根据接收到的移动性能力,配置与正常移动性和低移动性分别对应的两组测量配置。即基站根据正常移动性的移动性能力,配置第一测量配置;基站根据低移动性的移动性能力,配置第二测量配置。
第一测量配置是终端在对小区信号质量进行正常移动性测量时的测量参数,用于终端处于正常移动性状态下的小区信号质量的测量。第二测量配置是终端在对小区信号质量进行低移动性测量时的测量参数,用于终端处于低移动性状态下的小区信号质量的测量。
小区信号质量是终端进行小区重选或小区切换时选择小区的标准,用于终端根据小区信号质量,选择保证业务连续进行或更优进行的小区信号。
可选的,第一测量配置中待测量的第一频点数大于第二测量配置中待测量的第二频点数;和/或,第一测量配置中的第一测量周期小于第二测量配置中的第二测量周期。在示意性的例子中,测量周期的取值包括:sf160,sf256,sf320,sf512,sf640中的至少一个,其中,sf表示系统帧(system frame),sf160表示160个系统帧,160个系统帧表示160毫秒。
基站将用于小区信号质量测量的第一测量配置和第二测量配置同时发送给终端。
步骤405,终端接收基站发送的小区信号质量的两组测量配置。
终端同时接收基站发送的小区信号质量的第一测量配置和第二测量配置。
步骤406,终端判断当前所处的移动性状态。
终端判断当前所处的移动性状态,当终端当前所处的移动性状态是正常移动性状态时,转至步骤407;当终端当前所处的移动性状态是低移动性状态时,转至步骤408。
步骤407,终端在移动性状态处于正常移动性时,按照第一测量配置进行小区信号质量的测量。
终端在判断出终端处于正常移动性状态时,触发正常移动性测量的生效条 件。终端启动正常移动性测量,且终端按照第一测量配置进行小区信号质量的测量。
正常移动性测量的生效条件用于终端在判断出终端处于正常移动性状态时,启动正常移动性测量。
步骤408,终端在移动性状态处于低移动性时,按照第二测量配置进行小区信号质量的测量。
终端在判断出终端处于低移动性状态时,触发低移动性测量的生效条件。终端启动低移动性测量,且终端按照第二测量配置进行小区信号质量的测量。
低移动性测量的生效条件用于终端在判断出终端处于低移动性状态时,启动低移动性测量。
可选的,终端在触发低移动性测量的生效条件,启动低移动性测量后,紧接着向基站发送测量报告,该测量报告包括第一测量状态改变,即该测量报告包括终端从正常移动行状态切换为低移动性状态,且按照第二测量配置进行小区信号质量的测量。
需要说明的是,正常移动性测量的生效条件和低移动性测量的生效条件是由基站配置的,并与两组测量配置一起同时发送给终端,或,与两组测量配置分开发送给终端;或者,正常移动性测量的生效条件和低移动性测量的生效条件是由终端内置的,终端将正常移动性测量的生效条件和低移动性测量的生效条件存储于存储器中。
综上所述,本申请实施例提供的方法,通过终端向接入网设备发送的移动性能力,获得与终端的移动性能力对应的小区信号质量的测量配置,根据测量配置进行小区信号质量的测量。通过引入不同终端的移动性能力,终端的移动性状态得以区分出,并根据不同的移动性,由接入网设备配置与移动性状态对应的测量配置,使得终端的移动性测量能够适用于终端的移动性状态。从而达到不同的移动性对应有不同的测量配置。
本申请实施例提供的方法,终端的移动性能力包括正常移动性和低移动性,基站根据终端同时具备的两种移动性能力,配置两组测量配置,使得终端的移动性状态不同时,使用对应的测量配置,达到终端处于正常移动性状态时进行正常移动性测量,终端处于低移动性状态时进行低移动性测量,从而避免终端处于低移动状态时却使用正常移动性测量,减少电量的浪费。
本申请实施例提供的方法,基站同时发送两组测量配置给终端,使得终端 可以迅速判定当前所处的移动性状态,使得终端的移动性测量的切换过程迅速。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
在基于图4示出的可选的实施例中,步骤405中判断终端当前所处的移动性状态的方法如图5所示,该方法以接入网设备是基站为例,该方法包括:
步骤501,基站向终端发送n个小区对应的信号强度门限,信号强度门限,用于触发终端在n个小区的信号强度分别满足n个小区对应的信号强度门限时,确定移动性状态,n为大于2的整数。
基站根据n个小区的信号强度,配置出n个小区中的每个小区的信号强度门限,n为大于2的整数。可选的,n个小区中包括终端所在的小区和n-1个邻小区;或,n个小区中包括除终端所在的小区之外的n个邻小区。其中,n的数值为较小的数值,比如n=3。
可选的,n个小区均为宏小区,n为正整数;或,n个小区包括k个宏小区和n-k个微小区,k为不大于n的正整数。
信号强度门限用于与终端测量的小区的信号强度进行比较,判断终端的移动性状态。可选的,每个小区的信号强度门限是相同的,或者每个小区的信号强度门限是不相同的,或者每个小区的信号强度门限存在部分小区的信号强度门限是相同的,其他小区是不相同的。
在一种可选的实施方式中,每个小区对应的信号强度门限包括第一信号强度门限。
在另一种可选的实施方式中,每个小区对应的信号强度门限包括第一信号强度门限和第二信号强度门限,第一信号强度门限小于第二信号强度门限。
可选地,基站向终端发送信号强度配置列表,信号强度配置列表包括n个小区对应的信号强度门限。
步骤502,终端接收基站发送的n个小区对应的信号强度门限。
终端接收基站发送的n个小区中的每个小区的信号强度门限。
可选地,终端接收基站发送的信号强度配置列表。
步骤503,终端测量预定时间内n个小区的信号强度。
终端测量在预定时间内n个小区的信号强度,获得n个小区中每个小区的预定时间内的信号强度。
步骤504,终端在n个小区的信号强度分别满足n个小区对应的信号强度门限时,确定终端的移动性状态。
终端将测量得到的n个小区中的每个小区的信号强度分别与每个小区对应的信号强度门限进行比较,判断出n个小区中的每个小区的信号强度分别满足每个小区对应的信号强度门限,终端确定自身的移动性状态。
在一种可选的实施方式中,终端在n个小区的信号强度分别大于n个小区对应的第一信号强度门限时,确定终端自身在预定时间内处于低移动性状态。终端在n个小区的信号强度分别小于n个小区对应的第一信号强度门限时,确定终端自身在预定时间内处于高移动性状态。
在另一种可选的实施方式中,终端在n个小区的信号强度分别大于n个小区对应的第一信号强度门限,且n个小区的信号强度门限分别小于n个小区对应的第二信号强度门限时,确定终端自身在预定时间内处于低移动性状态。终端在n个小区的信号强度分别小于n个小区对应的第一信号强度门限,或,n个小区的信号强度门限分别大于n个小区对应的第二信号强度门限时,确定终端自身在预定时间内处于高移动性状态。
可选的,终端在确定自身处于低移动性状态后,将自身的移动性的测量配置从正常移动性的测量配置切换为低移动性的测量配置。低移动性的测量配置相比于正常移动性的测量配置,测量的频点个数减少,和/或,测量周期延长,以此实现终端处于低移动性状态时,电量消耗减少,达到省电的目的。
可选的,终端在确定自身处于高移动性状态后,将自身的移动性的测量配置从正常移动性的测量配置切换为高移动性的测量配置。高移动性的测量配置相比于正常移动性的测量配置,测量的频点个数增加,和/或,测量周期缩短,以此实现终端处于高移动性状态时,移动性测量的结果的准确性。
本申请实施例提供的方法,通过测量预定时间内n个小区的信号强度,并在n个小区的信号强度分别满足n个小区对应的限号强度门限时,确定终端的移动性状态,达到了通过测量n个小区的信号强度,从而确定终端的移动性状态的目的。
上述由终端执行的步骤可以单独实现成为终端侧的信号质量测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的信号质量测量方法。
在基于图4的一个可选实施例中,如图6所示,终端不再进行判断当前所处的移动性状态的步骤,根据基站配置的第一时长和第二时长,交替使用第一测量配置和第二测量配置,即周期性交替进行正常移动性测量和低移动性测量。上述步骤406至步骤408被替换为步骤4061至步骤4063,替换步骤如下:
步骤4061,基站向终端发送第一时长和第二时长,第一时长是第一测量配置生效的时长,第二时长是第二测量配置生效的时长。
基站根据终端发送的移动性测量报告,降低终端的移动性测量要求。基站根据第一测量配置和第二测量配置,在基于不影响终端进行移动性测量的前提下,配置第一时长和第二时长。
第一时长是第一测量配置生效的时长,即终端在第一时长内进行正常移动性测量。第二时长是第二测量配置生效的时长,即终端在第二时长内进行低移动性测量。
基站向终端发送第一时长和第二时长。
步骤4062,终端接收基站发送的第一时长和第二时长。
步骤4063,终端根据第一时长和第二时长交替使用第一测量配置和第二测量配置,进行小区信号质量的测量。
终端在第一时长内使用第一测量配置进行小区信号质量的正常移动性测量。终端在第二时长内使用第二测量配置进行小区信号质量的低移动性测量。
需要说明的是,基站将两个时长与两组测量配置同时发送给终端,或,基站将两个时长与两组测量分开发送给终端,对两个时长和两组测量配置是同时发送还是分开发送,以及分开发送时的先后顺序,本实施例对此不做限定。
本申请实施例提供的方法,通过周期性交替使用第一测量配置和第二测量配置,在减少终端和基站之间的空口信令的资源消耗的前提下,同样实现省电的目的。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
图7示出了本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的实施环境,本实施例以接入网设备是基站为例。该方法包括:
步骤701至步骤703与步骤401至步骤403相同,这里不再赘叙。
步骤704,基站向终端发送小区信号质量的第一测量配置,第一测量配置是用于在正常移动性下的第一测量配置。
终端的移动性能力包括正常移动性和低移动性。终端向基站发送移动性能力。
低移动性是相较于正常移动性区分出的一个移动性状态。低移动性相较于正常移动性,是在预定时间内移动范围较小或在预定时间内未发生移动的移动性状态。
可选的,终端在与网络刚建立连接的初始状态下,将正常移动性状态默认为初始状态下的移动性能力。故终端先向基站发送正常移动性的移动性能力,基站根据正常移动性,配置第一测量配置。第一测量配置是终端在对小区信号质量进行正常移动性测量时的测量参数,用于终端处于正常移动性状态下的小区信号质量的测量。小区信号质量是终端进行小区重选或小区切换时选择小区的标准,用于终端根据小区信号质量,选择保证业务连续进行或更优进行的小区信号。
基站将配置好的用于小区信号质量测量的第一测量配置发送给终端。
步骤705,终端接收基站发送的小区信号质量的第一测量配置。
步骤706,终端在移动性状态处于正常移动性时,按照第一测量配置进行小区信号质量的测量。
终端在移动性状态处于正常移动性时,触发正常移动性测量的生效条件。终端启动正常移动性测量,且终端按照第一测量配置进行小区信号质量的测量。
正常移动性测量的生效条件用于终端在判断出终端处于正常移动性状态时,启动正常移动性测量。
步骤707,终端在当前所处的移动性状态从正常移动性切换为低移动性时,向基站发送第一测量状态改变。
终端判断出当前所处的移动性状态从正常移动性切换为低移动性时,向基站发送第一测量状态改变。第一测量状态改变用于终端提示基站当前所处的移动性状态从正常移动性切换为低移动性。
可选的,终端在启动低移动性测量后,紧接着向基站发送测量报告,该测量报告包括第一测量状态改变,即该测量报告包括终端从正常移动行状态切换 为低移动性状态。
终端判断当前所处的移动性状态的方法如图5所示,这里不再赘叙。
步骤708,基站接收终端发送的第一测量状态改变。
步骤709,基站根据第一测量状态改变,向终端发送小区信号质量的第二测量配置,第二测量配置是用于在低移动性下的第二测量配置。
基站根据接收的第一测量状态改变,确定终端当前所处的移动性状态从正常移动性状态切换为低移动性状态。基站根据低移动性,配置与低移动性对应的第二测量配置。第二测量配置是终端在对小区信号质量进行低移动性测量时的测量参数,用于终端处于低移动性状态下的小区信号质量的测量。
可选的,第一测量配置中待测量的第一频点数大于第二测量配置中待测量的第二频点数;和/或,第一测量配置中的第一测量周期小于第二测量配置中的第二测量周期。在示意性的例子中,测量周期的取值包括:sf160,sf256,sf320,sf512,sf640中的至少一个,其中,sf表示系统帧,sf160表示160个系统帧,160个系统帧表示160毫秒。
基站将配置好的用于小区信号质量测量的第二测量配置发送给终端。
步骤710,终端接收基站发送的小区信号质量的第二测量配置。
步骤711,终端判断出在当前所处的移动性状态从正常移动性切换为低移动性时,将生效的测量配置从第一测量配置切换为第二测量配置。
可选的,终端判断出在当前所处的移动性状态从正常移动性切换为低移动性时,删除第一测量配置,启用第二测量配置;或,终端判断出在当前所处的移动性状态从正常移动性切换为低移动性时,禁用第一测量配置,启动第二测量配置。
步骤712,终端在移动性状态处于低移动性时,按照第二测量配置进行小区信号质量的测量。
终端在再次判断出终端处于低移动性状态时,启动低移动性测量,且终端按照第二测量配置进行小区信号质量的测量。终端将低移动性测量得到的测量报告发送给基站,报告包括第一测量状态改变。
可选的,当终端判断出当前所处的移动性状态从低移动性切换为正常移动性时,将生效的测量配置重新从第二测量配置切换为第一测量配置。
本申请实施例提供的方法,通过将两组测量配置分开发送,能够减少基站在单次配置过程中的配置信令所需要携带的数据量,从而节约空口资源。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
图8示出了本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的实施环境,本实施例以接入网设备是基站为例。该方法包括:
步骤801,终端向基站发送移动性能力。
终端的移动性能力包括正常移动性和高移动性。
高移动性都是相较于正常移动性区分出的移动性状态。高移动性是终端在预设时间内的移动范围大于第二范围的移动状态。
步骤802,基站接收终端发送的移动性能力。
基站接收终端发送的移动性能力。该移动性能力用于指示该终端同时具备正常移动性和高移动性的能力。
步骤803,基站根据移动性能力生成小区信号质量的测量配置。
步骤804,基站向终端发送小区信号质量的两组测量配置,两组测量配置包括:用于在正常移动性下的第一测量配置,和,用于在高移动性下的第三测量配置。
基站根据接收到的移动性能力,配置与正常移动性和高移动性分别对应的两组测量配置,即基站根据正常移动性的移动性能力,配置第一测量配置;基站根据高移动性的移动性能力,配置第三测量配置。
第一测量配置是终端在对小区信号质量进行正常移动性测量时的测量参数,用于终端处于正常移动性状态下的小区信号质量的测量。第三测量配置是终端在对小区信号质量进行高移动性测量时的测量参数,用于终端处于高移动性状态下的小区信号质量的测量。
小区信号质量是终端进行小区重选或小区切换时选择小区的标准,用于终端根据小区信号质量,选择保证业务连续进行或更优进行的小区信号。
可选的,第三测量配置中待测量的第三频点数大于第一测量配置中待测量的第一频点数;和/或,第三测量配置中的第三测量周期小于第一测量配置中的第三测量周期。在示意性的例子中,测量周期的取值包括:sf160,sf256,sf320,sf512,sf640中的至少一个,其中,sf表示系统帧(system frame),sf160表示 160个系统帧,160个系统帧表示160毫秒。
基站将用于小区信号质量测量的第一测量配置和第三测量配置同时发送给终端。
步骤805,终端接收基站发送的小区信号质量的两组测量配置。
终端同时接收基站发送的小区信号质量的第一测量配置和第三测量配置。
步骤806,终端判断当前所处的移动性状态。
终端判断当前所处的移动性状态,当终端当前所处的移动性状态是正常移动性状态时,转至步骤807;当终端当前所处的移动性状态是高移动性状态时,转至步骤808。
终端判断当前所处的移动性状态参见图5所示的方法,这里不再赘叙。
步骤807,终端在移动性状态处于正常移动性时,按照第一测量配置进行小区信号质量的测量。
终端在判断出终端处于正常移动性状态时,触发正常移动性测量的生效条件。终端启动正常移动性测量,且终端按照第一测量配置进行小区信号质量的测量。
正常移动性测量的生效条件用于终端在判断出终端处于正常移动性状态时,启动正常移动性测量。
步骤808,终端在移动性状态处于高移动性时,按照第三测量配置进行小区信号质量的测量。
终端在判断出终端处于高移动性状态时,触发高移动性测量的生效条件。终端启动高移动性测量,且终端按照第三测量配置进行小区信号质量的测量。
高移动性测量的生效条件用于终端在判断出终端处于高移动性状态时,启动高移动性测量。
可选的,终端在触发高移动性测量的生效条件,启动高移动性测量后,紧接着向基站发送测量报告,该测量报告包括第二测量状态改变,即该测量报告包括终端从正常移动行状态切换为高移动性状态,且按照第三测量配置进行小区信号质量的测量。
需要说明的是,正常移动性测量的生效条件和高移动性测量的生效条件是由基站配置的,并与两组测量配置一起同时发送给终端,或,与两组测量配置分开发送给终端;或者,正常移动性测量的生效条件和高移动性测量的生效条件是由终端内置的,终端将正常移动性测量的生效条件和高移动性测量的生效 条件存储于存储器中。
本申请实施例提供的方法,终端的移动性能力包括正常移动性和高移动性,基站根据终端同时具备的两种移动性能力,配置两组测量配置,使得终端的移动性状态不同时,使用对应的测量配置,达到终端处于正常移动性状态时进行正常移动性测量,终端处于高移动性状态时进行高移动性测量,从而避免终端处于高移动性状态却使用正常移动性测量造成的测量结果不准确。
本申请实施例提供的方法,基站同时发送两组测量配置给终端,使得终端可以迅速判定当前所处的移动性状态,使得终端的移动性测量的切换过程迅速。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
在基于图8的一个可选实施例中,如图9所示,终端不再进行判断当前所处的移动性状态的步骤,根据基站配置的第一时长和第三时长,交替使用第一测量配置和第三测量配置,即周期性交替进行正常移动性测量和高移动性测量。上述步骤806至步骤808被替换为步骤8061至步骤8063,替换步骤如下:
步骤8061,基站向终端发送第一时长和第三时长,第一时长是第一测量配置生效的时长,第三时长是第三测量配置生效的时长。
基站根据第一测量配置和第三测量配置,在基于不影响终端进行移动性测量的前提下,配置第一时长和第三时长。
第一时长是第一测量配置生效的时长,即终端在第一时长内进行正常移动性测量。第三时长是第三测量配置生效的时长,即终端在第三时长内进行高移动性测量。
基站向终端发送第一时长和第三时长。
步骤8062,终端接收基站发送的第一时长和第三时长。
步骤8063,终端根据第一时长和第三时长交替使用第一测量配置和第三测量配置,进行小区信号质量的测量。
终端在第一时长内使用第一测量配置进行小区信号质量的正常移动性测量。终端在第三时长内使用第三测量配置进行小区信号质量的高移动性测量。
需要说明的是,基站将两个时长与两组测量配置同时发送给终端,或,基 站将两个时长与两组测量分开发送给终端,对两个时长和两组测量配置是同时发送还是分开发送,以及分开发送时的先后顺序,本实施例对此不做限定。
本申请实施例提供的方法,通过周期性交替使用第一测量配置和第二测量配置,在减少终端和基站之间的空口信令的资源消耗的前提下,同样实现省电的目的。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
图10示出了本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的实施环境,本实施例以接入网设备是基站为例。该方法包括:
步骤1001至步骤1003与步骤801至步骤803相同,这里不再赘叙。
步骤1004,基站向终端发送小区信号质量的第一测量配置,第一测量配置是用于在正常移动性下的第一测量配置。
终端的移动性能力包括正常移动性和高移动性。终端向基站发送移动性能力。
高移动性是相较于正常移动性区分出的一个移动性状态。高移动性相较于正常移动性,是在预定时间内移动范围较大的移动性状态。
可选的,终端在与网络刚建立连接的初始状态下,将正常移动性状态默认为初始状态下的移动性能力。故终端先向基站发送正常移动性的移动性能力,基站根据正常移动性,配置第一测量配置。第一测量配置是终端在对小区信号质量进行正常移动性测量时的测量参数,用于终端处于正常移动性状态下的小区信号质量的测量。小区信号质量是终端进行小区重选或小区切换时选择小区的标准,用于终端根据小区信号质量,选择保证业务连续进行或更优进行的小区信号。
基站将配置好的用于小区信号质量测量的第一测量配置发送给终端。
步骤1005,终端接收基站发送的小区信号质量的第一测量配置。
步骤1006,终端在移动性状态处于正常移动性时,按照第一测量配置进行小区信号质量的测量。
终端在移动性状态处于正常移动性时,触发正常移动性测量的生效条件。 终端启动正常移动性测量,且终端按照第一测量配置进行小区信号质量的测量。
正常移动性测量的生效条件用于终端在判断出终端处于正常移动性状态时,启动正常移动性测量。
步骤1007,终端在当前所处的移动性状态从正常移动性切换为高移动性时,向基站发送第二测量状态改变。
终端判断出当前所处的移动性状态从正常移动性切换为高移动性时,向基站发送第二测量状态改变。第二测量状态改变用于终端提示基站当前所处的移动性状态从正常移动性切换为高移动性。
可选的,终端在启动高移动性测量后,紧接着向基站发送测量报告,该测量报告包括第二测量状态改变,即该测量报告包括终端从正常移动行状态切换为高移动性状态。
终端判断当前所处的移动性状态的方法如图5所示,这里不再赘叙。
步骤1008,基站接收终端发送的第二测量状态改变。
步骤1009,基站根据第二测量状态改变,向终端发送小区信号质量的第三测量配置,第三测量配置是用于在高移动性下的第三测量配置。
基站根据接收的第二测量状态改变,确定终端当前所处的移动性状态从正常移动性状态切换为高移动性状态。基站根据高移动性,配置与高移动性对应的第三测量配置。第三测量配置是终端在对小区信号质量进行高移动性测量时的测量参数,用于终端处于高移动性状态下的小区信号质量的测量。
可选的,第三测量配置中待测量的第三频点数大于第一测量配置中待测量的第一频点数;和/或,第三测量配置中的第三测量周期小于第一测量配置中的第一测量周期。在示意性的例子中,测量周期的取值包括:sf160,sf256,sf320,sf512,sf640中的至少一个,其中,sf表示系统帧,sf160表示160个系统帧,160个系统帧表示160毫秒。
基站将配置好的用于小区信号质量测量的第三测量配置发送给终端。
步骤1010,终端接收基站发送的小区信号质量的第三测量配置。
步骤1011,终端判断出在当前所处的移动性状态从正常移动性切换为高移动性时,将生效的测量配置从第一测量配置切换为第三测量配置。
可选的,终端判断出在当前所处的移动性状态从正常移动性切换为高移动性时,删除第一测量配置,启用第三测量配置;或,终端判断出在当前所处的 移动性状态从正常移动性切换为高移动性时,禁用第一测量配置,启动第三测量配置。
步骤1012,终端在移动性状态处于高移动性时,按照第三测量配置进行小区信号质量的测量。
终端在再次判断出终端处于高移动性状态时,启动高移动性测量,且终端按照第三测量配置进行小区信号质量的测量。终端将高移动性测量得到的测量报告发送给基站,测量报告包括第二测量状态改变。
可选的,当终端判断出当前所处的移动性状态从高移动性切换为正常移动性时,将生效的测量配置重新从第三测量配置切换为第一测量配置。
本申请实施例提供的方法,通过将两组测量配置分开发送,能够减少基站在单次配置过程中的配置信令所需要携带的数据量,从而节约空口资源。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
图11示出了本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的实施环境,本实施例以接入网设备是基站为例。该方法包括:
步骤1101,终端向基站发送移动性能力。
终端的移动性能力包括正常移动性、低移动性和高移动性。
低移动性和高移动性都是相较于正常移动性区分出的移动性状态。低移动性是终端在预设时间内保持不动或移动范围小于第一范围的移动状态,高移动性是终端在预设时间内的移动范围大于第二范围的移动状态。
步骤1102,基站接收终端发送的移动性能力。
基站接收终端发送的移动性能力。该移动性能力用于指示该终端同时具备正常移动性、低移动性和高移动性的能力。
步骤1103,基站根据移动性能力生成小区信号质量的测量配置。
步骤1104,基站向终端发送小区信号质量的三组测量配置,三组测量配置包括:用于在正常移动性下的第一测量配置,用于在低移动性下的第二测量配置,和,用于在高移动性下的第三测量配置。
基站根据接收到的移动性能力,配置与正常移动性、低移动性和高移动性 分别对应的三组测量配置,即基站根据正常移动性的移动性能力,配置第一测量配置;基站根据低移动性的移动性能力,配置第二测量配置;基站根据高移动性的移动性能力,配置第三测量配置。
可选的,第一测量配置中待测量的第一频点数大于第二测量配置中待测量的第二频点数;和/或,第一测量配置中的第一测量周期小于第二测量配置中的第二测量周期。
第三测量配置中待测量的第三频点数大于第一测量配置中待测量的第一频点数;和/或,第三测量配置中的第三测量周期小于第一测量配置中的第三测量周期。
基站将用于小区信号质量测量的第一测量配置、第二测量配置和第三测量配置同时发送给终端。
步骤1105,终端接收基站发送的小区信号质量的三组测量配置。
终端同时接收基站发送的小区信号质量的第一测量配置、第二测量配置和第三测量配置。
步骤1106,终端判断当前所处的移动性状态。
终端判断当前所处的移动性状态,当终端当前所处的移动性状态是正常移动性状态时,转至步骤1107;当终端当前所处的移动性状态是低移动性状态时,转至步骤1108;当终端当前所处的移动性状态是高移动性状态时,转至步骤1109。
终端判断当前所处的移动性状态参见图5所示的方法,这里不再赘叙。
步骤1107至步骤1109的内容与上述实施例的内容相同,这里不再赘叙。
本申请实施例提供的方法,终端的移动性能力包括正常移动性、低移动性和高移动性,基站根据终端同时具备的三种移动性能力,配置三组测量配置,使得终端的移动性状态不同时,使用对应的测量配置,从而避免终端处于高移动性状态却使用正常移动性测量造成的测量结果不准确,终端处于低移动性状态却使用正常移动性测量造成的电量的浪费。
本申请实施例提供的方法,基站同时发送三组测量配置给终端,使得终端可以在判定当前所处的移动性状态,马上切换至与当前移动性状态对应的测量配置来进行测量,使得终端的移动性测量的切换过程迅速。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量 的测量方法。
在基于图12的一个可选实施例中,如图11所示,终端根据基站配置的第一时长、第二时长和第三时长,交替使用第一测量配置、第二测量配置和第三测量配置,即周期性交替进行正常移动性测量、低移动性测量和高移动性测量。上述步骤1106至步骤1108被替换为步骤11061至步骤11063,替换步骤如下:
步骤11061,基站向终端发送第一时长、第二时长和第三时长,第一时长是第一测量配置生效的时长,第二时长是第二测量配置生效的时长,第三时长是第三测量配置生效的时长。
基站根据第一测量配置、第二测量配置和第三测量配置,在基于不影响终端进行移动性测量的前提下,配置第一时长、第二时长和第三时长。
基站向终端发送第一时长、第二时长和第三时长。
步骤11062,终端接收基站发送的第一时长、第二时长和第三时长。
步骤11063,终端根据第一时长、第二时长和第三时长交替使用第一测量配置、第二测量配置和第三测量配置,进行小区信号质量的测量。
终端在第一时长内使用第一测量配置进行小区信号质量的正常移动性测量。终端在第二时长内使用第二测量配置进行小区信号质量的低移动性测量。终端在第三时长内使用第三测量配置进行小区信号质量的高移动性测量。
需要说明的是,基站将三个时长与三组测量配置同时发送给终端,或,基站将三个时长与三组测量分开发送给终端,对三个时长和三组测量配置是同时发送还是分开发送,以及分开发送时的先后顺序,本实施例对此不做限定。
本申请实施例提供的方法,通过周期性交替使用第一测量配置和第二测量配置,在减少终端和基站之间的空口信令的资源消耗的前提下,同样实现省电的目的。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
图13示出了本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的实施环境,本实施例以接入网设备是基站为例。该方法包括:
步骤1301至步骤1303与步骤1101至步骤1103相同,这里不再赘叙。
步骤1304至步骤1312的内容与图7所示的步骤704至步骤712内容相同,故步骤1304至步骤1312可参见图7所示的步骤704至步骤712,这里不再赘叙。
步骤1313至步骤1318的内容与图10所示的步骤1007至步骤1012内容相同,故步骤1313至步骤1318可参见图10所示的步骤1007至步骤1012,这里不再赘叙。
需要说明的是,终端的移动性状态从低移动性状态切换为高移动性状态时,切换流程可以是先从移动性状态切换为正常移动性状态,再从正常移动性状态切换为高移动性状态;或者,切换流程也可以是直接从低移动性状态切换为高移动性状态,本实施例对切换流程不做限定。终端的移动性状态从高移动性状态切换为低移动性状态时,切换流程亦然。
本申请实施例提供的方法,通过将两组测量配置分开发送,能够减少基站在单次配置过程中的配置信令所需要携带的数据量,从而节约空口资源。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
图14示出了本申请另一个示例性实施例提供的小区信号质量的测量方法的流程图,该方法可以应用于图1所示的实施环境,本实施例以接入网设备是基站为例。该方法包括:
步骤1401,终端显示设置界面,设置界面包括用于更改移动性能力的控件。
设置界面是手动更改终端的移动性能力的界面。当终端的移动性状态长期不发生变化时,用户通过终端显示的设置界面,手动更改终端的移动性能力,使得更改后的终端更适用于移动性状态。
示意性的,参见图15,示出了终端显示的设置界面900的示意图。设置界面900上显示有第一滑键901、第二滑键902和第三滑键903,第一滑键901用于禁止或启动正常移动性,第二滑键902用于禁止或启动低移动性,第三滑键903用于禁止或启动高移动性。当终端的移动性能力长时间不发生改变时,用户通过设置界面900上的三个滑键对终端的移动性能力进行手动设置。
可选的,图15中设置界面900上的低移动性对应的使用场景包括固话型 终端的使用场景和物联网中的各种用于检测某个检测对象的传感器终端等终端所处位置长时间不发生变化的使用场景。比如将手机作为座机使用,手机位置长时间的不发生变化。
高移动性对应的使用场景包括高铁等终端所处位置短时间内发生快速变化的使用场景。比如当终端位于高铁上时,使用高移动性的移动性能力以保证高铁的高速移动下,业务依旧能够持续进行。
正常移动性对应的使用场景介于低移动性和高移动性两个移动性能力对应的使用场景之间。
步骤1402,终端在接收到控件上的设置信号时,确定更改后的移动性能力。
设置信号是设置界面上的用于更改移动性能力的控件被触发时产生的信号。
终端在接收到控件上的设置信号时,确定控件被触发。终端根据设置信号,确定终端更改后的移动性能力。更改后的移动性能力是设置界面上的用于更改移动性能力的控件被触发后的终端的移动性能力。
步骤1403,终端向基站发送更改后的移动性能力。
步骤1404,基站接收终端发送的更改后的移动性能力。
步骤1405,基站根据更改后的移动性能力,向终端再次发送小区信号质量的测量配置。
基站根据更改后的移动性能力,确定终端当前所处的移动性状态。基站根据终端当前所处的移动性状态,配置与当前所处的移动性状态对应的小区信号质量的测量配置。
步骤1406,终端接收基站再次发送的小区信号质量的测量配置,再次发送的测量配置是基站根据更改后移动性能力配置的。
步骤1407,终端根据再次发送的测量配置进行小区信号质量的测量。
终端根据再次发送的测量配置进行小区信号质量的测量,该再次发送的测量配置是与终端当前所处的移动性状态对应的测量配置。
本申请实施例提供的方法,在需要更改终端的移动性能力时,通过设置界面对终端的移动性能力进行更改,并接收与更改后移动性能力对应的再次发送的测量配置,使得终端移动性能力发生改变后能够调整为对应的移动性测量,达到省电的目的。
需要说明的是,本申请实施例提供的方法同时适用于上述图3至图14示 出的实施例中,即当上述图3至图14示出的实施例提供的终端的移动性能力长时间不发生变化时,通过本实施例提供的方法改变终端的移动性能力,使得终端的使用场景与其移动性能力相一致。比如,将手机作为家庭中的固定电话使用时,该手机是固定类终端,而当该手机重新作为移动式的手机使用时,该手机又属于非固定类终端。
上述由终端执行的步骤可以单独实现成为终端侧的小区信号质量的测量方法;上述由基站执行的步骤可以单独实现成为接入网设备侧的小区信号质量的测量方法。
下述为本申请装置实施例,可以用于执行本申请方法实施例。对于本申请装置实施例中未披露的细节,请参照本申请方法实施例。
图16示出了本申请一个示例性实施例提供的小区信号质量的测量装置的结构示意图,该装置可以通过软件、硬件或者两者的结合实现成为终端的全部或一部分,该装置包括:
第一发送模块1010,被配置为向接入网设备发送移动性能力;
第一接收模块1020,被配置为接收所述接入网设备发送的小区信号质量的测量配置,测量配置是接入网设备根据移动性能力配置的;
测量模块1030,被配置为根据测量配置进行小区信号质量的测量。
可选的,移动性能力包括如下能力中的至少一种:
正常移动性、低移动性、高移动性。
在一种可选的实施方式中,移动性能力包括正常移动性和低移动性;
第一接收模块1020,被配置为接收接入网设备发送的小区信号质量的两组测量配置,两组测量配置包括:用于在正常移动性下的第一测量配置,和,用于在低移动性下的第二测量配置;
其中,第二测量配置的耗电量小于第一测量配置的耗电量。
可选的,第一测量配置中待测量的第一频点数大于第二测量配置中待测量的第二频点数;和/或,第一测量配置中的第一测量周期小于第二测量配置中的第二测量周期。
可选的,如图17所示,测量模块1030,包括:
判断单元1031,被配置为判断当前所处的移动性状态;
测量单元1032,被配置为在移动性状态处于正常移动性时,按照第一测量 配置进行小区信号质量的测量;
测量单元1032,被配置为在移动性状态处于低移动性时,按照第二测量配置进行小区信号质量的测量。
可选的,装置还包括:
生成模块1040,被配置为根据第二测量配置进行的小区信号质量的测量,生成低移动性测量报告,低移动性测量报告包括第一测量状态改变;
第一发送模块1010,被配置为向接入网设备发送低移动性测量报告。
在另一种可选的实施方式中,第一接收模块1020,被配置为接收接入网设备发送的第一时长和第二时长,第一时长是第一测量配置生效的时长,第二时长是第二测量配置生效的时长;
测量模块1030,被配置为根据第一时长和第二时长交替使用第一测量配置和第二测量配置,进行小区信号质量的测量。
在另一种可选的实施方式中,移动性能力包括正常移动性和低移动性;
如图18所示,第一接收模块1020,包括:
第一接收单元1021,被配置为接收接入网设备发送的小区信号质量的第一测量配置,第一测量配置是用于在正常移动性下的第一测量配置;
第一发送单元1022,被配置为在当前所处的移动性状态从正常移动性切换为低移动性时,向接入网设备发送第一测量状态改变;
第一接收单元1021,被配置为接收接入网设备发送的小区信号质量的第二测量配置,第二测量配置是用于在低移动性下的第二测量配置。
可选的,测量模块1030,包括:
测量单元1032,被配置为在移动性状态处于正常移动性时,按照第一测量配置进行小区信号质量的测量;
判断单元1031,被配置为判断出在当前所处的移动性状态从正常移动性切换为低移动性时,将生效的测量配置从第一测量配置切换为第二测量配置;
测量单元1032,被配置为在移动性状态处于低移动性时,按照第二测量配置进行小区信号质量的测量。
在另一种可选的实施方式中,移动性能力包括:正常移动性和高移动性;
第一接收模块1020,被配置为接收接入网设备发送的小区信号质量的两组测量配置,两组测量配置包括:用于在正常移动性下的第一测量配置,和,用于在高移动性下的第三测量配置;
其中,第一测量配置的耗电量小于第三测量配置的耗电量。
可选的,第三测量配置中待测量的第三频点数大于第一测量配置中待测量的第一频点数;和/或,第三测量配置中的第三测量周期小于第一测量配置中的第一测量周期。
可选的,测量模块1030,包括:
判断单元1031,被配置为判断当前所处的移动性状态;
测量单元1032,被配置为在移动性状态处于正常移动性时,按照第一测量配置进行小区信号质量的测量;
测量单元1032,被配置为在移动性状态处于高移动性时,按照第三测量配置进行小区信号质量的测量。
可选的,生成模块1040,被配置为根据第三测量配置进行的小区信号质量的测量,生成高移动性测量的测量报告,测量报告包括第二测量状态改变;
第一发送模块1010,被配置为向接入网设备发送测量报告。
在另一种可选的实施方式中,第一接收模块1020,被配置为接收接入网设备发送的第一时长和第三时长,第一时长是第一测量配置生效的时长,第三时长是第三测量配置生效的时长;
测量模块1030,被配置为根据第一时长和第三时长交替使用第一测量配置和第三测量配置,进行小区信号质量的测量。
在另一种可选的实施方式中,移动性能力包括:正常移动性和高移动性;
第一接收模块1020,包括:
第一接收单元1021,被配置为接收接入网设备发送的小区信号质量的第一测量配置,第一测量配置是用于在正常移动性下的第一测量配置;
第一发送单元1022,被配置为在当前所处的移动性状态从正常移动性切换为高移动性时,向接入网设备发送第二测量状态改变;
第一接收单元1021,被配置为接收接入网设备发送的小区信号质量的第三测量配置,第三测量配置是用于在高移动性下的第三测量配置。
可选的,测量模块1030,包括:
测量单元1032,被配置为在移动性状态处于正常移动性时,按照第一测量配置进行小区信号质量的测量;
判断单元1031,被配置为判断出在当前所处的移动性状态从正常移动性切换为高移动性时,将生效的测量配置从第一测量配置切换为第三测量配置;
测量单元1032,被配置为在移动性状态处于高移动性时,按照第三测量配置进行小区信号质量的测量。
在另一种可选的实施方式中,装置还包括:
显示模块1050,被配置为显示设置界面,设置界面包括用于更改移动性能力的控件;
第一接收模块1020,被配置为在接收到控件上的设置信号时,确定更改后的移动性能力;
第一发送模块1010,被配置为向接入网设备发送更改后的移动性能力;
第一接收模块1020,被配置为接收接入网设备再次发送的小区信号质量的测量配置,再次发送的测量配置是接入网设备根据更改后移动性能力配置的;
测量模块1030,被配置为根据再次发送的测量配置进行小区信号质量的测量。
图19示出了本申请一个示例性实施例提供的小区信号质量的测量装置的结构示意图,该装置可以通过软件、硬件或者两者的结合实现成为终端的全部或一部分,该装置包括:
第二接收模块1310,被配置为接收终端发送的移动性能力;
生成模块1320,被配置为根据所述移动性能力生成所述小区信号质量的测量配置;
第二发送模块1330,被配置为向终端发送小区信号质量的测量配置。
可选的,移动性能力包括如下能力中的至少一种:正常移动性、低移动性、高移动性。
在一种可选的实施方式中,所述移动性能力包括所述正常移动性和所述低移动性;
第二发送模块1330,被配置为向终端发送小区信号质量的两组测量配置,两组测量配置包括:用于在正常移动性下的第一测量配置,和,用于在低移动性下的第二测量配置;
其中,第二测量配置的耗电量小于第一测量配置的耗电量。
可选的,第一测量配置中待测量的第一频点数大于第二测量配置中待测量的第二频点数;和/或,第一测量配置中的第一测量周期小于第二测量配置中的第二测量周期。
可选的,第二接收模块1310,被配置为接收终端发送的低移动性测量报告, 低移动性测量报告包括第一测量状态改变。
在另一种可选的实施方式中,装置还包括:
第二发送模块,被配置为向终端发送第一时长和第二时长,第一时长是第一测量配置生效的时长,第二时长是第二测量配置生效的时长。
在另一种可选的实施方式中,移动性能力包括正常移动性和低移动性;
如图20所示,第二发送模块1330,包括:
第二发送单元1331,被配置为向终端发送小区信号质量的第一测量配置,第一测量配置是用于在正常移动性下的第一测量配置;
第二接收单元1332,被配置为接收终端发送的第一测量状态改变;
第二发送单元1331,被配置为根据第一测量状态改变,向终端发送小区信号质量的第二测量配置,第二测量配置是用于在低移动性下的第二测量配置;
其中,第二测量配置的耗电量小于第一测量配置的耗电量。
在另一种可选的实施方式中,移动性能力包括正常移动性和高移动性;
第二发送模块1330,被配置为向终端发送小区信号质量的两组测量配置,两组测量配置包括:用于在正常移动性下的第一测量配置,和,用于在高移动性下的第三测量配置;
其中,第一测量配置的耗电量小于第三测量配置的耗电量。
可选的,第三测量配置中待测量的第三频点数大于第一测量配置中待测量的第一频点数;和/或,第三测量配置中的第三测量周期小于第一测量配置中的第一测量周期。
在另一种可选的实施方式中,移动性能力包括正常移动性和高移动性;
第二发送模块1330,包括:
第二发送单元1331,被配置为向终端发送小区信号质量的第一测量配置,第一测量配置是用于在正常移动性下的测量配置;
第二接收单元1332,被配置为接收终端发送的第二测量状态改变;
第二发送单元1331,被配置为根据第二测量状态改变向终端发送小区信号质量的第三测量配置,第三测量配置是用于在高移动性下的测量配置;
其中,第一测量配置的耗电量小于第三测量配置的耗电量。
可选的,第二接收模块1310,被配置为接收终端发送的测量报告,测量报告包括第二测量状态改变。
在另一种可选的实施方式中,移动性能力包括正常移动性和高移动性;
第二发送模块1330,被配置为向终端发送小区信号质量的两组测量配置,以及第一时长和第三时长;
两组测量配置包括:用于在正常移动性下的第一测量配置,和,用于在高移动性下的第三测量配置,第一时长是第一测量配置生效的时长,第三时长是第三测量配置生效的时长。
在另一种可选的实施方式中,第二接收模块1310,被配置为接收终端发送的更改后的移动性能力;
第二发送模块1320,被配置为根据更改后的移动性能力,向终端再次发送小区信号质量的测量配置。
需要说明的是:上述实施例提供的小区信号质量的测量装置在进行小区信号质量的测量时,仅以上述各功能模块的划分进行举例说明,实际应用中,可以根据需要而将上述功能分配由不同的功能模块完成,即将设备的内部结构划分成不同的功能模块,以完成以上描述的全部或者部分功能。另外,上述实施例提供的小区信号质量的测量装置与小区信号质量的测量方法的方法实施例属于同一构思,其具体实现过程详见方法实施例,这里不再赘述。
需要说明的是,上述实施例中的发送模块可以由通信芯片实现,也可以由通信芯片和处理器协同实现;和/或,上述实施例中的接收模块可以由通信芯片实现,也可以由通信芯片和处理器协同实现。
图21示出了本申请一个示例性实施例提供的一种通信设备1500的框图。例如,通信设备1500可以是终端或接入网设备。如图21所示,通信设备1500可以包括:处理器1501、接收机1502、发射机1503和存储器1504。接收机1502、发射机1503和存储器1504分别通过总线与处理器1501连接。
其中,处理器1501包括一个或者一个以上处理核心,处理器1501通过运行软件程序以及模块以执行本公开实施例提供的上行数据传输方法中终端或接入网设备所执行的方法。存储器1504可用于存储软件程序以及模块。具体的,存储器1504可存储操作系统15041、至少一个功能所需的应用程序模块15042。接收机1502用于接收其他设备发送的通信数据,发射机1503用于向其他设备发送通信数据。
图22示出了本申请一个示例性实施例提供的一种通信系统1600的框图,如图22所示,该通信系统1600包括:接入网设备1601和终端1602。
其中,接入网设备1601和终端1602用于执行图3至图15所示实施例中执行的小区信号质量的测量方法。
在示例性实施例中,还提供了一种计算机可读存储介质,该计算机可读存储介质为非易失性的计算机可读存储介质,该计算机可读存储介质中存储有计算机程序,存储的计算机程序被处理组件执行时能够实现本申请上述实施例提供的小区信号质量的测量方法。
本申请实施例还提供了一种计算机程序产品,该计算机程序产品中存储有指令,当其在计算机上运行时,使得计算机能够执行本申请实施例提供的小区信号质量的测量方法。
本申请实施例还提供了一种芯片,该芯片包括可编程逻辑电路和/或程序指令,当该芯片运行时能够执行本申请实施例提供的小区信号质量的测量方法。
应当理解的是,在本文中提及的“多个”是指两个或两个以上。“和/或”,描述关联对象的关联关系,表示可以存在三种关系,例如,A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B这三种情况。字符“/”一般表示前后关联对象是一种“或”的关系。
本领域普通技术人员可以理解实现上述实施例的全部或部分步骤可以通过硬件来完成,也可以通过程序来指令相关的硬件完成,所述的程序可以存储于一种计算机可读存储介质中,上述提到的存储介质可以是只读存储器,磁盘或光盘等。
以上所述仅为本申请的较佳实施例,并不用以限制本申请,凡在本申请的精神和原则之内,所作的任何修改、等同替换、改进等,均应包含在本申请的保护范围之内。

Claims (64)

  1. 一种小区信号质量的测量方法,其特征在于,所述方法包括:
    终端向接入网设备发送移动性能力;
    所述终端接收所述接入网设备发送的所述小区信号质量的测量配置,所述测量配置是所述接入网设备根据所述移动性能力配置的;
    所述终端根据所述测量配置进行所述小区信号质量的测量。
  2. 根据权利要求1所述的方法,其特征在于,所述移动性能力包括如下能力中的至少一种:
    正常移动性、低移动性、高移动性。
  3. 根据权利要求2所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述终端接收所述接入网设备发送的所述小区信号质量的测量配置,包括:
    所述终端接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
    其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
  4. 根据权利要求3所述的方法,其特征在于,
    所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量的第二频点数;
    和/或,
    所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
  5. 根据权利要求3所述的方法,其特征在于,所述终端根据所述测量配置进行所述小区信号质量的测量,包括:
    所述终端判断当前所处的移动性状态;
    所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配 置进行所述小区信号质量的测量;
    所述终端在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
  6. 根据权利要求5所述的方法,其特征在于,所述终端在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量之后,还包括:
    所述终端根据所述第二测量配置进行的所述小区信号质量的测量,生成测量报告,所述测量报告包括第一测量状态改变;
    所述终端向所述接入网设备发送所述测量报告。
  7. 根据权利要求3所述的方法,其特征在于,所述方法还包括:
    所述终端接收所述接入网设备发送的第一时长和第二时长,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长;
    终端根据所述测量配置进行所述小区信号质量的测量,包括:
    所述终端根据所述第一时长和所述第二时长交替使用所述第一测量配置和所述第二测量配置,进行所述小区信号质量的测量。
  8. 根据权利要求2所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述终端接收所述接入网设备发送的所述小区信号质量的测量配置,包括:
    所述终端接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
    所述终端在当前所处的移动性状态从所述正常移动性切换为所述低移动性时,向所述接入网设备发送第一测量状态改变;
    所述终端接收所述接入网设备发送的所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的第二测量配置。
  9. 根据权利要求8所述的方法,其特征在于,所述终端根据所述测量配置进行所述小区信号质量的测量,包括:
    所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
    所述终端判断出在当前所处的移动性状态从所述正常移动性切换为所述低移动性时,将生效的测量配置从所述第一测量配置切换为所述第二测量配置;
    所述终端在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
  10. 根据权利要求2所述的方法,其特征在于,所述移动性能力包括:所述正常移动性和所述高移动性;
    所述终端接收所述接入网设备发送的所述小区信号质量的测量配置,包括:
    所述终端接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置;
    其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
  11. 根据权利要求10所述的方法,其特征在于,
    所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;
    和/或,
    所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
  12. 根据权利要求10所述的方法,其特征在于,所述终端根据所述测量配置进行所述小区信号质量的测量,包括:
    所述终端判断当前所处的移动性状态;
    所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
    所述终端在所述移动性状态处于所述高移动性时,按照所述第三测量配置进行所述小区信号质量的测量。
  13. 根据权利要求12所述的方法,其特征在于,所述终端在所述移动性状 态处于所述高移动性时,按照所述第三测量配置进行所述小区信号质量的测量之后,还包括:
    所述终端根据所述第三测量配置进行的所述小区信号质量的测量,生成测量报告,所述测量报告包括第二测量状态改变;
    所述终端向所述接入网设备发送所述测量报告。
  14. 根据权利要求10所述的方法,其特征在于,所述方法还包括:
    所述终端接收所述接入网设备发送的第一时长和第三时长,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长;
    终端根据所述测量配置进行所述小区信号质量的测量,包括:
    所述终端根据所述第一时长和所述第三时长交替使用所述第一测量配置和所述第三测量配置,进行所述小区信号质量的测量。
  15. 根据权利要求2所述的方法,其特征在于,所述移动性能力包括:所述正常移动性和所述高移动性;
    所述终端接收所述接入网设备发送的所述小区信号质量的测量配置,包括:
    所述终端接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
    所述终端在当前所处的移动性状态从所述正常移动性切换为所述高移动性时,向所述接入网设备发送第二测量状态改变;
    所述终端接收所述接入网设备发送的所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的第三测量配置。
  16. 根据权利要求15所述的方法,其特征在于,所述终端根据所述测量配置进行所述小区信号质量的测量,包括:
    所述终端在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
    所述终端判断出在当前所处的移动性状态从所述正常移动性切换为所述高移动性时,将生效的测量配置从所述第一测量配置切换为所述第三测量配置;
    所述终端在所述移动性状态处于所述高移动性时,按照所述第三测量配置 进行所述小区信号质量的测量。
  17. 根据权利要求1至16任一所述的方法,其特征在于,所述方法还包括:
    所述终端显示设置界面,所述设置界面包括用于更改所述移动性能力的控件;
    所述终端在接收到所述控件上的设置信号时,确定更改后的移动性能力;
    所述终端向所述接入网设备发送所述更改后的移动性能力;
    所述终端接收所述接入网设备再次发送的所述小区信号质量的测量配置,所述再次发送的测量配置是所述接入网设备根据所述更改后移动性能力配置的;
    所述终端根据所述再次发送的测量配置进行所述小区信号质量的测量。
  18. 一种小区信号质量的测量方法,其特征在于,所述方法包括:
    接入网设备接收终端发送的移动性能力;
    所述接入网设备根据所述移动性能力生成所述小区信号质量的测量配置;
    所述接入网设备向所述终端发送所述小区信号质量的测量配置。
  19. 根据权利要求18所述的方法,其特征在于,所述移动性能力包括如下能力中的至少一种:
    正常移动性、低移动性、高移动性。
  20. 根据权利要求19所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述接入网设备向所述终端发送所述小区信号质量的测量配置,包括:
    所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
    其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
  21. 根据权利要求20所述的方法,其特征在于,
    所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量 的第二频点数;
    和/或,
    所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
  22. 根据权利要求19所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述接入网设备向所述终端发送所述小区信号质量的测量配置,包括:
    所述接入网设备向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
    所述接入网设备接收所述终端发送的第一测量状态改变;
    所述接入网设备根据所述第一测量状态改变向所述终端发送所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的测量配置;
    其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
  23. 根据权利要求20所述的方法,其特征在于,所述接入网设备接收所述终端发送的第一测量状态改变,包括:
    所述接入网设备接收所述终端发送的测量报告,所述测量报告包括所述第一测量状态改变。
  24. 根据权利要求20所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述接入网设备向所述终端发送所述小区信号质量的测量配置,包括:
    所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第二时长;
    所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长。
  25. 根据权利要求19所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述高移动性;
    所述接入网设备向所述终端发送所述小区信号质量的测量配置,包括:
    所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置;
    其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
  26. 根据权利要求25所述的方法,其特征在于,
    所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;
    和/或,
    所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
  27. 根据权利要求19所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述高移动性;
    所述接入网设备向所述终端发送所述小区信号质量的测量配置,包括:
    所述接入网设备向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
    所述接入网设备接收所述终端发送的第二测量状态改变;
    所述接入网设备根据所述第二测量状态改变向所述终端发送所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的测量配置;
    其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
  28. 根据权利要求25所述的方法,其特征在于,所述接入网设备接收所述终端发送的第二测量状态改变,包括:
    所述接入网设备接收所述终端发送的测量报告,所述测量报告包括所述第二测量状态改变。
  29. 根据权利要求25所述的方法,其特征在于,所述移动性能力包括所述正常移动性和所述高移动性;
    所述接入网设备向所述终端发送所述小区信号质量的测量配置,包括:
    所述接入网设备向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第三时长;
    所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长。
  30. 根据权利要求18至29任一所述的方法,其特征在于,所述方法还包括:
    所述接入网设备接收所述终端发送的更改后的移动性能力;
    所述接入网设备根据所述更改后的移动性能力,向所述终端再次发送所述小区信号质量的测量配置。
  31. 一种小区信号质量的测量装置,其特征在于,所述装置包括:
    第一发送模块,被配置为向接入网设备发送移动性能力;
    第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的测量配置,所述测量配置是所述接入网设备根据所述移动性能力配置的;
    测量模块,被配置为根据所述测量配置进行所述小区信号质量的测量。
  32. 根据权利要求31所述的装置,其特征在于,所述移动性能力包括如下能力中的至少一种:
    正常移动性、低移动性、高移动性。
  33. 根据权利要求32所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
    其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
  34. 根据权利要求33所述的装置,其特征在于,
    所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量 的第二频点数;
    和/或,
    所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
  35. 根据权利要求33所述的装置,其特征在于,所述测量模块,包括:
    判断单元,被配置为判断当前所处的移动性状态;
    测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
    所述测量单元,被配置为在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
  36. 根据权利要求35所述的装置,其特征在于,所述装置还包括:
    生成模块,被配置为根据所述第二测量配置进行的所述小区信号质量的测量,生成测量报告,所述测量报告包括第一测量状态改变;
    所述第一发送模块,被配置为向所述接入网设备发送所述测量报告。
  37. 根据权利要求33所述的装置,其特征在于,所述装置还包括:
    所述第一接收模块,被配置为接收所述接入网设备发送的第一时长和第二时长,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长;
    所述测量模块,被配置为根据所述第一时长和所述第二时长交替使用所述第一测量配置和所述第二测量配置,进行所述小区信号质量的测量。
  38. 根据权利要求32所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述第一接收模块,包括:
    第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
    第一发送单元,被配置为在当前所处的移动性状态从所述正常移动性切换为所述低移动性时,向所述接入网设备发送第一测量状态改变;
    所述第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的第二测量配置。
  39. 根据权利要求38所述的装置,其特征在于,所述测量模块,包括:
    所述测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
    所述判断单元,被配置为判断出在当前所处的移动性状态从所述正常移动性切换为所述低移动性时,将生效的测量配置从所述第一测量配置切换为所述第二测量配置;
    所述测量单元,被配置为在所述移动性状态处于所述低移动性时,按照所述第二测量配置进行所述小区信号质量的测量。
  40. 根据权利要求32所述的装置,其特征在于,所述移动性能力包括:所述正常移动性和所述高移动性;
    所述第一接收模块,被配置为接收所述接入网设备发送的所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置;
    其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
  41. 根据权利要求40所述的装置,其特征在于,
    所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;
    和/或,
    所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
  42. 根据权利要求40所述的装置,其特征在于,所述测量模块,包括:
    所述判断单元,被配置为判断当前所处的移动性状态;
    所述测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
    所述测量单元,被配置为在所述移动性状态处于所述高移动性时,按照所述第三测量配置进行所述小区信号质量的测量。
  43. 根据权利要求42所述的装置,其特征在于,所述装置还包括:
    所述生成模块,被配置为根据所述第三测量配置进行的所述小区信号质量的测量,生成高移动性测量的测量报告,所述测量报告包括第二测量状态改变;
    所述第一发送模块,被配置为向所述接入网设备发送所述测量报告。
  44. 根据权利要求40所述的装置,其特征在于,所述装置还包括:
    所述第一接收模块,被配置为接收所述接入网设备发送的第一时长和第三时长,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长;
    所述测量模块,被配置为根据所述第一时长和所述第三时长交替使用所述第一测量配置和所述第三测量配置,进行所述小区信号质量的测量。
  45. 根据权利要求32所述的装置,其特征在于,所述移动性能力包括:所述正常移动性和所述高移动性;
    所述第一接收模块,包括:
    所述第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的第一测量配置;
    所述第一发送单元,被配置为在当前所处的移动性状态从所述正常移动性切换为所述高移动性时,向所述接入网设备发送第二测量状态改变;
    所述第一接收单元,被配置为接收所述接入网设备发送的所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的第三测量配置。
  46. 根据权利要求45所述的装置,其特征在于,所述测量模块,包括:
    所述测量单元,被配置为在所述移动性状态处于所述正常移动性时,按照所述第一测量配置进行所述小区信号质量的测量;
    所述判断单元,被配置为判断出在当前所处的移动性状态从所述正常移动 性切换为所述高移动性时,将生效的测量配置从所述第一测量配置切换为所述第三测量配置;
    所述测量单元,被配置为在所述移动性状态处于所述高移动性时,按照所述第三测量配置进行所述小区信号质量的测量。
  47. 根据权利要求31至46任一所述的装置,其特征在于,所述装置还包括:
    显示模块,被配置为显示设置界面,所述设置界面包括用于更改所述移动性能力的控件;
    所述第一接收模块,被配置为在接收到所述控件上的设置信号时,确定更改后的移动性能力;
    所述第一发送模块,被配置为向所述接入网设备发送所述更改后的移动性能力;
    所述第一接收模块,被配置为接收所述接入网设备再次发送的所述小区信号质量的测量配置,所述再次发送的测量配置是所述接入网设备根据所述更改后移动性能力配置的;
    所述测量模块,被配置为根据所述再次发送的测量配置进行所述小区信号质量的测量。
  48. 一种小区信号质量的测量装置,其特征在于,所述装置包括:
    第二接收模块,被配置为接收终端发送的移动性能力;
    生成模块,被配置为根据所述移动性能力生成所述小区信号质量的测量配置;
    第二发送模块,被配置为向所述终端发送所述小区信号质量的测量配置。
  49. 根据权利要求48所述的装置,其特征在于,所述移动性能力包括如下能力中的至少一种:
    正常移动性、低移动性、高移动性。
  50. 根据权利要求49所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置;
    其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
  51. 根据权利要求50所述的装置,其特征在于,
    所述第一测量配置中待测量的第一频点数大于所述第二测量配置中待测量的第二频点数;
    和/或,
    所述第一测量配置中的第一测量周期小于所述第二测量配置中的第二测量周期。
  52. 根据权利要求49所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述第二发送模块,包括:
    第二发送单元,被配置为向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
    第二接收单元,被配置为接收所述终端发送的第一测量状态改变;
    所述第二发送单元,被配置为根据所述第一测量状态改变向所述终端发送所述小区信号质量的第二测量配置,所述第二测量配置是用于在所述低移动性下的测量配置;
    其中,所述第二测量配置的耗电量小于所述第一测量配置的耗电量。
  53. 根据权利要求50所述的装置,其特征在于,所述装置还包括:
    所述第二接收模块,被配置为接收所述终端发送的测量报告,所述测量报告包括第一测量状态改变。
  54. 根据权利要求50所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述低移动性;
    所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第二时长;
    所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述低移动性下的第二测量配置,所述第一时长是所述第一测量配置生效的时长,所述第二时长是所述第二测量配置生效的时长。
  55. 根据权利要求49所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述高移动性;
    所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测量配置,所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置;
    其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
  56. 根据权利要求55所述的装置,其特征在于,
    所述第三测量配置中待测量的第三频点数大于所述第一测量配置中待测量的第一频点数;
    和/或,
    所述第三测量配置中的第三测量周期小于所述第一测量配置中的第一测量周期。
  57. 根据权利要求49所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述高移动性;
    所述第二发送模块,包括:
    所述第二发送单元,被配置为向所述终端发送所述小区信号质量的第一测量配置,所述第一测量配置是用于在所述正常移动性下的测量配置;
    所述第二接收单元,被配置为接收所述终端发送的第二测量状态改变;
    所述第二发送单元,被配置为根据所述第二测量状态改变向所述终端发送所述小区信号质量的第三测量配置,所述第三测量配置是用于在所述高移动性下的测量配置;
    其中,所述第一测量配置的耗电量小于所述第三测量配置的耗电量。
  58. 根据权利要求55所述的装置,其特征在于,
    所述第二接收模块,被配置为接收所述终端发送的测量报告,所述测量报 告包括所述第二测量状态改变。
  59. 根据权利要求55所述的装置,其特征在于,所述移动性能力包括所述正常移动性和所述高移动性;
    所述第二发送模块,被配置为向所述终端发送所述小区信号质量的两组测量配置,以及第一时长和第三时长;
    所述两组测量配置包括:用于在所述正常移动性下的第一测量配置,和,用于在所述高移动性下的第三测量配置,所述第一时长是所述第一测量配置生效的时长,所述第三时长是所述第三测量配置生效的时长。
  60. 根据权利要求48至59任一所述的装置,其特征在于,所述装置还包括:
    所述第二接收模块,被配置为接收所述终端发送的更改后的移动性能力;
    所述第二发送模块,被配置为根据所述更改后的移动性能力,向所述终端再次发送所述小区信号质量的测量配置。
  61. 一种终端,其特征在于,所述终端包括:
    处理器;
    与所述处理器相连的收发器;
    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以实现如上权利要求1至17所述的小区信号质量的测量方法。
  62. 一种接入网设备,其特征在于,所述接入网设备包括:
    处理器;
    与所述处理器相连的发射器和接收器;
    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以实现如上权利要求18至30所述的小区信号质量的测量方法。
  63. 一种通信系统,其特征在于,所述系统中包括:终端和接入网设备;
    所述终端包括如权利要求31至47任一所述的小区信号质量的测量装置;
    所述接入网设备包括如权利要求48至59任一所述的小区信号质量的测量装置。
  64. 一种通信系统,其特征在于,所述系统中包括:终端和接入网设备;
    所述终端包括如权利要求61所述的终端;
    所述接入网设备包括如权利要求62所述的接入网设备。
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