WO2020216088A1 - 频点测量方法、装置以及存储介质 - Google Patents

频点测量方法、装置以及存储介质 Download PDF

Info

Publication number
WO2020216088A1
WO2020216088A1 PCT/CN2020/084421 CN2020084421W WO2020216088A1 WO 2020216088 A1 WO2020216088 A1 WO 2020216088A1 CN 2020084421 W CN2020084421 W CN 2020084421W WO 2020216088 A1 WO2020216088 A1 WO 2020216088A1
Authority
WO
WIPO (PCT)
Prior art keywords
frequency point
measurement interval
measurement
communication device
interval ratio
Prior art date
Application number
PCT/CN2020/084421
Other languages
English (en)
French (fr)
Inventor
韩静
李红
张萌
Original Assignee
华为技术有限公司
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by 华为技术有限公司 filed Critical 华为技术有限公司
Publication of WO2020216088A1 publication Critical patent/WO2020216088A1/zh

Links

Images

Classifications

    • 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
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0453Resources in frequency domain, e.g. a carrier in FDMA
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal

Definitions

  • This application relates to the field of communications technology, and in particular to a frequency point measurement method, device, and storage medium.
  • NR new radio
  • the communication device When the communication device is measured at the same frequency of NR and the synchronization signal block (SSB) of the serving cell is not within the bandwidth part (BWP) currently activated by the communication device, NR inter-frequency frequency measurement or inter-system frequency measurement At this time, the communication device needs to move the receiving radio frequency chain from the BWP currently receiving data to the target frequency point to be measured, so an interruption to the data reception will occur, that is, a measurement gap will be generated.
  • SSB synchronization signal block
  • the network device configures the period of the measurement interval, the time domain position, and the length of the measurement interval, so that the communication device can determine each measurement interval, and then perform frequency point measurement at each measurement interval. Since the terminal device can only measure one target frequency point to be measured in a certain measurement interval, how to share the measurement interval for all target frequency points to be measured of the communication device is an urgent problem to be solved.
  • the embodiments of the present application provide a frequency point measurement method, device, and storage medium, which solve the problem of how all target frequency points to be measured of a communication device in the related art share a measurement interval.
  • an embodiment of the present application provides a frequency point measurement method, including:
  • the communication device receives the measurement configuration message sent by the network device; where the measurement configuration message includes: the identification of the frequency point group to which each target frequency point to be tested belongs, and at least one measurement interval ratio corresponding to each frequency point group; The total number of frequency point groups is less than or equal to the maximum number of frequency point groups supported by the communication device;
  • the communication device performs frequency point measurement on the shared measurement interval according to the identifier of the frequency point group to which each target frequency point belongs and at least one measurement interval ratio corresponding to each frequency point group.
  • the communication device uses the network device according to the maximum number of frequency point groups supported by the communication device for the frequency point group of each target frequency point to be measured configured by the communication device. Identification, and at least one measurement interval ratio corresponding to each frequency point grouping, perform frequency point measurement on the shared measurement interval.
  • the network device in the embodiment of the present application can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure one or Multiple measurement interval ratios, so that the communication device can divide each target frequency point into different frequency point groups according to the frequency point group identification of each target frequency point, and apply different measurement interval ratios to perform frequency measurement on the shared measurement interval.
  • Point measurement enables network equipment to configure the communication equipment with measurement opportunities for different target frequency points in the shared measurement interval according to their own wireless resource management and mobility management strategies and the use of different target frequency points, making different The target frequency points of the application have different measurement performance, which is beneficial to the network equipment to achieve better wireless resource management and mobility management.
  • the communication device performs frequency point measurement on the shared measurement interval according to the identification of the frequency point group to which each target frequency point belongs and at least one measurement interval ratio corresponding to each frequency point group, including :
  • the communication device divides each target frequency point into different frequency point groups according to the identifier of the frequency point group to which each target frequency point belongs;
  • the communication device For any frequency point grouping, the communication device performs frequency point measurement on the shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point grouping.
  • the communication device performs frequency point measurement on the shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point group, including :
  • the communication device determines the target measurement interval ratio corresponding to the frequency point group from among the multiple measurement interval ratios corresponding to the frequency point group according to the measurement interval ratio indication information sent by the network device; wherein, the measurement interval ratio indication information is used for Indicate the target measurement interval ratio corresponding to the frequency point group;
  • the communication device performs frequency point measurement on the shared measurement interval according to the target measurement interval ratio corresponding to the frequency point grouping.
  • the network device can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure multiple measurement interval ratios for each frequency point group.
  • the measurement interval ratio indication information can quickly control the communication device to dynamically switch the measurement interval ratio corresponding to each frequency point group, thereby realizing the measurement opportunity that can more flexibly configure different target frequency points.
  • the communication device starts from the frequency point according to the measurement interval ratio indication information sent by the network device.
  • the target measurement interval ratio corresponding to the frequency point group is determined, including:
  • the communication device determines the target measurement interval ratio corresponding to the frequency point group from the multiple measurement interval ratios corresponding to the frequency point group according to the identifier of the target measurement interval ratio corresponding to the frequency point group.
  • the communication device if the measurement interval ratio indication information includes signal strength thresholds corresponding to different measurement interval ratios corresponding to the frequency point grouping, the communication device according to the measurement interval ratio indication information sent by the network device, The target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios corresponding to the frequency point group, including:
  • the communication device determines the target measurement interval corresponding to the frequency group from the multiple measurement interval ratios corresponding to the frequency group according to the signal strength of the serving cell and the signal strength threshold corresponding to the different measurement interval ratios corresponding to the frequency group proportion.
  • the communication device performs frequency point measurement on the shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point grouping, including:
  • the communication device divides the frequency point group into different sub-frequency point groups according to the preset frequency point type
  • the communication device For any sub-frequency point grouping in the frequency point group, the communication device performs frequency point measurement on the shared measurement interval according to the measurement interval ratio corresponding to the frequency point group and the measurement interval ratio corresponding to the sub-frequency point group;
  • the measurement interval ratio corresponding to the sub-frequency point grouping is a measurement interval ratio preset by the system or a measurement interval ratio configured for the network device.
  • the communication device can divide the target frequency points into different frequency points according to the identification of the frequency point group to which each target frequency point belongs to the network device according to the maximum number of frequency point groups supported by the communication device. Frequency point grouping, further according to the preset frequency point type, each frequency point group can be divided into different sub-frequency point groups again, so as to realize the measurement opportunity of different target frequency points can be configured more flexibly, making the goals of different purposes The frequency points have different measurement performance.
  • the communication device if the identifier of the frequency point group to which the target frequency point belongs is used to indicate the group identifier in the preset frequency point type to which the target frequency point belongs, the communication device according to the frequency point to which each target frequency point belongs
  • the group identification which divides each target frequency point into different frequency point groups, including:
  • the communication device divides each target frequency point into different first frequency point groups according to the preset frequency point type
  • the communication device divides the first frequency point group into different second frequency point groups according to the group identifier in the preset frequency point type to which each target frequency point belongs;
  • the communication device performs frequency point measurement on the shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point grouping, including:
  • the communication device uses the measurement interval ratio corresponding to the first frequency point group and the measurement interval ratio corresponding to the second frequency point group in the shared measurement Frequency point measurement is performed at intervals; wherein the measurement interval ratio corresponding to the first frequency point group is a measurement interval ratio preset by the system or a measurement interval ratio configured for the network device.
  • the communication device can divide each target frequency point into different frequency point groups according to the preset frequency point type, and further according to the network equipment according to the maximum number of frequency point groups supported by the communication device as the communication
  • the identification of the frequency point group to which each target frequency point belongs to the device configuration divides each frequency point group into different frequency point groups again, thus realizing the measurement opportunity of different target frequency points can be configured more flexibly, making the target frequency points for different purposes There are different measurement capabilities.
  • the preset frequency point type is configured by the network device for the communication device, or preset by the system.
  • the preset frequency point types include: same frequency frequency point type, same system non-same frequency frequency point type, and different system frequency point type.
  • the method further includes:
  • the communication device sends a terminal capability message to the network device; wherein the terminal capability message includes the maximum number of frequency point groups supported by the communication device.
  • the scaling factor of the measurement performance corresponding to any frequency point group is equal to the reciprocal of the target measurement interval ratio corresponding to the frequency point group.
  • the scaling factor of the measurement performance corresponding to any sub-frequency point group in any frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the frequency point group, which corresponds to the sub-frequency point group The product between the reciprocal of the measurement interval ratio.
  • the scaling factor of the measurement performance corresponding to any second frequency point group in any first frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the first frequency point group, and The product of the reciprocal of the measurement interval ratio corresponding to the second frequency group.
  • an embodiment of the present application provides a frequency point measurement method, including:
  • the network device obtains the maximum number of frequency point groups supported by the communication device
  • the network device sends a measurement configuration message to the communication device; where the measurement configuration message includes: the identification of the frequency point group to which each target frequency point to be measured belongs, and at least one measurement interval ratio corresponding to each frequency point group; each The total number of frequency point groups is less than or equal to the maximum number of frequency point groups supported by the communication device.
  • the network device configures the communication device with the identification of the frequency point group to which each target frequency point to be measured belongs according to the maximum number of frequency point groups supported by the communication device, and each frequency point At least one measurement interval ratio corresponding to the point group, so that the communication device performs frequency measurement on the shared measurement interval according to the identification of the frequency point group to which each target frequency point to be measured belongs and the at least one measurement interval ratio corresponding to each frequency point group.
  • Point measurement In the embodiment of the frequency point measurement method provided by the second aspect, the network device configures the communication device with the identification of the frequency point group to which each target frequency point to be measured belongs according to the maximum number of frequency point groups supported by the communication device, and each frequency point At least one measurement interval ratio corresponding to the point group, so that the communication device performs frequency measurement on the shared measurement interval according to the identification of the frequency point group to which each target frequency point to be measured belongs and the at least one measurement interval ratio corresponding to each frequency point group. Point measurement.
  • the network device in the embodiment of the present application can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure one or Multiple measurement interval ratios, so that the communication device can divide each target frequency point into different frequency point groups according to the frequency point group identification of each target frequency point, and apply different measurement interval ratios to perform frequency measurement on the shared measurement interval.
  • Point measurement allows network equipment to configure different target frequency measurement opportunities for communication equipment more flexibly according to its own wireless resource management and mobility management strategies and the use of different target frequency points, so that there are target frequency points for different purposes. Different measurement performance helps network equipment to achieve better radio resource management and mobility management.
  • the method further includes:
  • the network device sends the measurement interval ratio indication information to the communication device; wherein the measurement interval ratio indication information is used to indicate the target measurement interval ratio corresponding to the frequency point group.
  • the network device can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure multiple measurement interval ratios for each frequency point group.
  • the measurement interval ratio indication information can quickly control the communication device to dynamically switch the measurement interval ratio corresponding to each frequency point group, thereby realizing the measurement opportunity that can more flexibly configure different target frequency points.
  • the measurement interval ratio indication information includes an identifier of the target measurement interval ratio corresponding to the frequency point group.
  • the measurement interval ratio indication information includes signal strength thresholds corresponding to different measurement interval ratios corresponding to the frequency point group.
  • the network device acquiring the maximum number of frequency point groups supported by the communication device includes:
  • the network device receives the terminal capability message sent by the communication device; wherein the terminal capability message includes the maximum number of frequency point groups supported by the communication device.
  • an embodiment of the present application provides a communication device, including:
  • the transceiver module is used to receive a measurement configuration message sent by a network device;
  • the measurement configuration message includes: the identification of the frequency point group to which each target frequency point to be measured belongs, and at least one measurement interval ratio corresponding to each frequency point group ;
  • the total number of each frequency point group is less than or equal to the maximum number of frequency point groups supported by the communication device;
  • the processing module is configured to perform frequency point measurement on the shared measurement interval according to the identifier of the frequency point group to which each target frequency point belongs and at least one measurement interval ratio corresponding to each frequency point group.
  • the processing module is specifically used for:
  • each target frequency point According to the identifier of the frequency point group to which each target frequency point belongs, divide each target frequency point into different frequency point groups;
  • frequency point measurement is performed on the shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point grouping.
  • the processing module is specifically configured to:
  • the target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios corresponding to the frequency point group; wherein the measurement interval ratio indication information is used to indicate the frequency point group.
  • the frequency point measurement is performed on the shared measurement interval.
  • the processing module is specifically configured to:
  • the target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios corresponding to the frequency point group.
  • the processing module is specifically configured to:
  • the target measurement interval ratio corresponding to the frequency group is determined from the multiple measurement interval ratios corresponding to the frequency group.
  • the processing module is specifically used for:
  • the frequency point measurement is performed on the shared measurement interval according to the measurement interval ratio corresponding to the frequency point group and the measurement interval ratio corresponding to the sub-frequency point group;
  • the measurement interval ratio corresponding to the sub-frequency point grouping is the measurement interval ratio preset by the system or the measurement interval ratio configured for the network device.
  • the processing module is specifically configured to:
  • the measurement interval ratio corresponding to the first frequency point grouping and the measurement interval ratio corresponding to the second frequency point grouping are performed on the shared measurement interval.
  • the preset frequency point type is configured by the network device for the communication device, or preset by the system.
  • the preset frequency point types include: same frequency frequency point type, same system non-same frequency frequency point type, and different system frequency point type.
  • the transceiver module is further configured to send a terminal capability message to the network device; wherein the terminal capability message includes the maximum number of frequency point groups supported by the communication device.
  • the scaling factor of the measurement performance corresponding to any frequency point group is equal to the reciprocal of the target measurement interval ratio corresponding to the frequency point group.
  • the scaling factor of the measurement performance corresponding to any sub-frequency point group in any frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the frequency point group, which corresponds to the sub-frequency point group The product between the reciprocal of the measurement interval ratio.
  • the scaling factor of the measurement performance corresponding to any second frequency point group in any first frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the first frequency point group, and The product of the reciprocal of the measurement interval ratio corresponding to the second frequency group.
  • an embodiment of the present application provides a network device, including:
  • Processing module for obtaining the maximum number of frequency point groups supported by the communication device
  • the transceiver module is used to send a measurement configuration message to the communication device; wherein the measurement configuration message includes: the identification of the frequency point group to which each target frequency point to be measured belongs, and at least one measurement interval ratio corresponding to each frequency point group ; The total number of frequency point groups is less than or equal to the maximum number of frequency point groups supported by the communication device.
  • the transceiver module is further used to: send measurement interval ratio indication information to the communication device; wherein, the measurement interval ratio indication information is used to indicate The target measurement interval ratio corresponding to the frequency group.
  • the measurement interval ratio indication information includes an identifier of the target measurement interval ratio corresponding to the frequency point group.
  • the measurement interval ratio indication information includes signal strength thresholds corresponding to different measurement interval ratios corresponding to the frequency point group.
  • the transceiver module is further configured to: receive a terminal capability message sent by the communication device; wherein, the terminal capability message includes the maximum number of frequency point groups supported by the communication device;
  • the processing module is specifically configured to obtain the maximum number of frequency point groups supported by the communication device according to the terminal capability message received by the transceiver module.
  • an embodiment of the present application provides a communication device, including a processor and a memory, where the memory is used to store instructions or programs, and the processor is used to execute the instructions or programs stored in the memory. Wherein, when the instruction or program stored in the memory is executed by the processor, the communication device is used to implement the method described in the first aspect or any implementation manner of the first aspect.
  • an embodiment of the present application provides a network device, including a processor and a memory, where the memory is used to store instructions or programs, and the processor is used to execute the instructions or programs stored in the memory. Wherein, when the instruction or program stored in the memory is executed by the processor, the network device is used to implement the method described in the second aspect or any implementation manner of the second aspect.
  • an embodiment of the present application provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the method described in the first aspect or any one of the first aspects is implemented .
  • an embodiment of the present application provides a computer-readable storage medium on which a computer program is stored, and when the computer program is executed by a processor, the method described in the second aspect or any of the second aspects is implemented .
  • an embodiment of the present application provides a frequency point measurement device, including a memory, a processor, and a program stored in the memory and capable of running on the processor.
  • the processor implements the first aspect when the program is executed. Or the method described in any implementation manner of the first aspect.
  • an embodiment of the present application provides a frequency point measurement device, including a memory, a processor, and a program stored on the memory and capable of running on the processor.
  • the processor implements the second aspect when the program is executed. Or the method described in any implementation of the second aspect.
  • an embodiment of the present application provides a chip system.
  • the chip system includes a processor and may also include a memory for implementing the method described in the first aspect or any one of the first aspects.
  • the chip system can be composed of chips, or can include chips and other discrete devices.
  • an embodiment of the present application provides a chip system that includes a processor and may also include a memory, configured to implement the method described in the second aspect or any one of the second aspects.
  • the chip system can be composed of chips, or can include chips and other discrete devices.
  • an embodiment of the present application provides a communication system, including the communication device described in the third aspect or any implementation of the third aspect, and the fourth aspect or any implementation of the fourth aspect.
  • the network equipment including the communication device described in the third aspect or any implementation of the third aspect, and the fourth aspect or any implementation of the fourth aspect.
  • an embodiment of the present application provides a communication system, including the communication device described in the fifth aspect or any implementation manner of the fifth aspect, and the sixth aspect or any implementation manner of the sixth aspect.
  • the network equipment including the communication device described in the fifth aspect or any implementation manner of the fifth aspect, and the sixth aspect or any implementation manner of the sixth aspect.
  • FIG. 1 is a schematic structural diagram of a communication system provided by an embodiment of this application.
  • FIG. 2 is a schematic flowchart of a frequency point measurement method provided by an embodiment of this application.
  • FIG. 3 is a schematic flowchart of a frequency point measurement method provided by another embodiment of this application.
  • FIG. 5 is a schematic flowchart of a frequency point measurement method provided by another embodiment of this application.
  • FIG. 6 is a schematic flowchart of a frequency point measurement method provided by another embodiment of this application.
  • FIG. 7 is a schematic structural diagram of a communication device provided by an embodiment of this application.
  • FIG. 8 is a schematic structural diagram of a communication device provided by another embodiment of this application.
  • FIG. 9 is a schematic structural diagram of a network device provided by an embodiment of this application.
  • FIG. 10 is a schematic structural diagram of a network device provided by another embodiment of this application.
  • FIG. 11 is a schematic structural diagram of a frequency point measurement device provided by an embodiment of this application.
  • FIG. 12 is a schematic structural diagram of a frequency point measurement device provided by another embodiment of this application.
  • FIG. 13 is a schematic structural diagram of a frequency point measurement device provided by another embodiment of this application.
  • FIG. 14 is a schematic structural diagram of a frequency point measurement device provided by another embodiment of this application.
  • Fig. 1 is a schematic structural diagram of a communication system provided by an embodiment of the application.
  • the communication system may include: a network device 01 and a communication device 02; of course, the communication system may also include multiple communication devices 02, which is not limited in the embodiment of the present application.
  • the frequency measurement process between the network device 01 and each communication device 02 is similar, in the embodiment of the present application, the frequency measurement process between the network device 01 and any communication device 02 is taken as an example for description.
  • the communication system involved in the embodiments of the present application may be a long term evolution (LTE) communication system or an NR communication system (for example, the fifth-generation mobile communication technology (5th-generation, 5G)); of course, the communication system is also It may be other types of communication systems, which are not limited in the embodiments of the present application.
  • LTE long term evolution
  • NR NR-generation
  • 5G fifth-generation mobile communication technology
  • the execution subject of the method on the network device side can be the network device or the device in the network device (it should be noted that the network device is described as an example in the embodiment provided in this application) .
  • the device in the network device may be a chip system, circuit, or module, etc., which is not limited in this application.
  • the execution subject of the method on the communication device side may be the communication device or a device in the communication device (it should be noted that the communication device is described as an example in the embodiment provided in this application) .
  • the device in the communication device may be a chip system, a circuit, or a module, etc., which is not limited in this application.
  • the network equipment involved in the embodiments of the present application may include, but is not limited to: a base station, and a transmission reception point (TRP).
  • the base station also known as the radio access network (RAN) equipment, is a device that connects the terminal to the wireless network, which can be global system of mobile communication (GSM) or code division
  • GSM global system of mobile communication
  • BTS base transceiver station
  • CDMA code division multiple access
  • WCDMA wideband code division multiple access
  • WCDMA wideband code division multiple access
  • evolutional node B, eNB or eNodeB in the long term evolution (LTE), or the relay station or access point, or the base station (gNodeB, gNB) in the 5G network, etc., are not limited herein.
  • the communication devices involved in the embodiments of the present application may also be referred to as terminal devices.
  • the terminal device can be a wireless terminal or a wired terminal.
  • a wireless terminal can be a device that provides voice and/or other service data connectivity to users, a handheld device with wireless connection function, or other processing devices connected to a wireless modem.
  • a wireless terminal can communicate with one or more core networks via a radio access network (RAN).
  • the wireless terminal can be a mobile terminal, such as a mobile phone (or "cellular" phone) and a computer with a mobile terminal For example, they can be portable, pocket-sized, handheld, computer-built or vehicle-mounted mobile devices, which exchange language and/or data with the wireless access network.
  • Wireless terminals can also be called systems, subscriber units, subscriber stations, mobile stations, mobile stations, remote stations, remote terminals, and access terminals.
  • Access terminal access terminal
  • user terminal user terminal
  • user agent user agent
  • user equipment user device or user equipment, UE
  • the terminal device or network device involved in the embodiments of the present application may include a hardware layer, an operating system layer running on the hardware layer, and an application layer running on the operating system layer.
  • This hardware layer includes hardware such as central processing unit (dentral processing unit, CPU), memory management unit (memory management unit, MMU), and memory (also called main memory).
  • the operating system may be any one or more computer operating systems that implement business processing through processes, for example, Linux operating system, Unix operating system, Android operating system, iOS operating system or windows operating system.
  • the application layer includes applications such as browsers, address books, word processing software, and instant messaging software.
  • At least one refers to one or more, and “multiple” refers to two or more.
  • the following at least one item (a)” or similar expressions refers to any combination of these items, including any combination of a single item (a) or plural items (a).
  • at least one item (a) of a, b, or c can represent: a, b, c, ab, ac, bc, or abc, where a, b, and c can be single or multiple .
  • the measurement interval ratio of any frequency point group involved in the embodiment of the present application is used to indicate the probability of measuring the frequency points in the frequency point group in the shared measurement interval.
  • any frequency point grouping since it cannot monopolize all the measurement opportunities in the measurement interval, it uses the measurement opportunities in the shared measurement interval according to the measurement interval ratio involved in the embodiment, and its measurement performance needs to be performed according to the measurement interval ratio.
  • Zoom. Understandably, the frequency point can also be understood as frequency.
  • the frequency point is a bandwidth of 800Mhz, which refers to a bandwidth where the center frequency point is 800Mhz.
  • the scaling factor of the measurement performance corresponding to any frequency point group involved in the embodiment of the present application is used to indicate the scaling factor used to measure the measurement duration of the frequency point group or the cell identification/detection duration in the shared measurement interval.
  • the preset frequency point type in the communication device involved in the embodiment of the present application may be configured by the network device for the communication device, or preset by the system.
  • the preset frequency point type in the network device involved in the embodiment of the present application may be preset by the system.
  • the preset frequency point types involved in the embodiments of this application may include, but are not limited to, the following types: same frequency frequency point type, same system non-same frequency frequency point type, different system frequency point type, frequency measurement priority higher than preset priority Point type, frequency point type with measurement priority not higher than preset priority, frequency point type of primary cell (primary cell, PCell), frequency point type of primary and secondary cell (primary secondary cell, PSCell), etc.
  • the frequency point measurement method, device, and storage medium provided by the embodiments of the present application flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device through the network device, and Configure one or more measurement interval ratios for each frequency point group, so that the communication device can divide each target frequency point into different frequency point groups and apply different measurement interval ratios according to the frequency point group identification of each target frequency point Perform frequency point measurements on the shared measurement interval.
  • the network equipment in the embodiments of the present application can more flexibly configure measurement opportunities for different target frequency points for the communication equipment according to its own wireless resource management and mobility management strategies and the use of different target frequency points, so that the communication equipment can be used for different purposes.
  • the target frequency points have different measurement performance, which is beneficial to the network equipment to achieve better radio resource management and mobility management.
  • FIG. 2 is a schematic flowchart of a frequency point measurement method provided by an embodiment of the application. As shown in Figure 2, the method of the embodiment of the present application may include:
  • Step S201 The network device obtains the maximum number of frequency point groups supported by the communication device.
  • the network device obtains the maximum number of frequency point groups supported by the communication device in the shared measurement interval, so as to configure each communication device to be tested according to the maximum number of frequency point groups supported by the communication device
  • the identifier of any frequency point group in the embodiment of the present application may be the group number corresponding to the frequency point group, or other group identifiers corresponding to the frequency point group.
  • the identifier of frequency group 1 may be group number 1 and the identifier of frequency group 2 may be group number 2; or, the identifier of frequency group 1 may be group identifier a and the identifier of frequency group 2 may be group identifier b.
  • any frequency point group corresponds to J measurement interval ratios (J is an integer greater than 1)
  • J is an integer greater than 1
  • X 1,j represents the proportion of the j-th measurement interval corresponding to frequency point group 1
  • X m,j represents the j-th measurement interval corresponding to frequency point group m proportion.
  • the network device may obtain the maximum number of frequency point groups supported by the communication device by receiving a terminal capability message sent by the communication device to the network device, where the terminal capability message may include but is not limited to The maximum number of frequency point groups supported by the communication device.
  • the network device may also query other network devices connected to the communication device last time for the maximum number of frequency point groups supported by the communication device.
  • Step S202 The network device sends a measurement configuration message to the communication device.
  • the network device can be based on its own wireless resource management and mobility management strategies and the use of different target frequency points, etc., combined with the maximum number of frequency point groups supported by the communication device M, as the communication
  • the device is configured with the identification of the frequency point group to which each target frequency point to be tested belongs, and at least one measurement interval ratio corresponding to each frequency point group, where the total number of each frequency point group is less than or equal to the frequency point group supported by the communication device
  • the maximum number is M.
  • Step S203 The communication device receives the measurement configuration message sent by the network device.
  • Step S204 The communication device performs frequency point measurement on the shared measurement interval according to the identification of the frequency point group to which each target frequency point belongs and at least one measurement interval ratio corresponding to each frequency point group.
  • the communication device may group according to the identifier of the frequency point group to which each target frequency point belongs, and perform frequency point measurement on the shared measurement interval according to at least one measurement interval ratio corresponding to each frequency point group.
  • the communication device may divide each target frequency point into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs.
  • the identification of the frequency point group to which the point belongs is to divide the target frequency points with the same identification of the frequency point group into a group.
  • the communication device can assign target frequency point 1 to one according to the identifier of the frequency point group to which each target frequency point belongs.
  • Group, target frequency 2 and target frequency 4 are a group, and target frequency 3 is a group.
  • the communication device performs frequency point measurement on the shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point grouping.
  • the communication device performs frequency point measurement on a shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point grouping.
  • any frequency point group corresponds to a measurement interval ratio
  • the communication device can perform frequency points on the shared measurement interval according to the measurement interval ratio corresponding to the frequency point group. measuring. For example, for the frequency point group m, the communication device may perform frequency point measurement on the shared measurement interval according to the measurement interval ratio X m corresponding to the frequency point group m.
  • any frequency point group uses the shared measurement interval with the probability of its corresponding measurement interval ratio
  • the scale factor of the measurement performance corresponding to any frequency point group is equal to the inverse of the measurement interval ratio corresponding to the frequency point group.
  • the scaling factor of the measurement performance corresponding to frequency point group m is equal to the reciprocal of the measurement interval ratio X m corresponding to frequency point group m.
  • the communication device can correspond to the frequency point group according to the measurement interval ratio indication information sent by the network device
  • the target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios; wherein the measurement interval ratio indication information is used to indicate the target measurement interval ratio corresponding to the frequency point group.
  • the communication device performs frequency point measurement on the shared measurement interval according to the target measurement interval ratio corresponding to the frequency point grouping.
  • the network device may send measurement interval ratio indication information to the communication device, wherein, the measurement interval ratio indication information is used to indicate the target measurement interval ratio corresponding to the frequency point group.
  • the measurement interval ratio indication information may include an identifier of the target measurement interval ratio corresponding to the frequency point grouping, such as the aforementioned parameter j.
  • the measurement interval ratio indication information may include signal strength thresholds corresponding to different measurement interval ratios corresponding to the frequency point group, for example, signal strength thresholds corresponding to different parameters j.
  • the communication device can determine the target measurement interval ratio corresponding to the frequency point group from the multiple measurement interval ratios corresponding to the frequency point group according to the measurement interval ratio indication information sent by the network device.
  • the communication device may correspond to the frequency point group according to the identifier of the target measurement interval ratio corresponding to the frequency point group
  • the target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios.
  • the measurement interval ratio indication information may include the target measurement interval ratio identifier j corresponding to the frequency point group m, and the communication device may according to the target measurement interval ratio identifier j corresponding to the frequency point group m,
  • the target measurement interval ratio X m,j corresponding to the frequency point group m is determined from the J measurement interval ratios corresponding to the frequency point group m.
  • the communication device may be based on the signal strength of the serving cell and the frequency point grouping corresponding to different signal strengths.
  • the signal strength threshold value corresponding to the measurement interval ratio, and the target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios corresponding to the frequency point group.
  • the measurement interval ratio indication information may include the signal strength thresholds corresponding to the J measurement interval ratios corresponding to frequency point group m, and then the communication device may group frequency points according to the signal strength of the serving cell.
  • the signal strength thresholds corresponding to the J measurement interval ratios corresponding to m the target signal strength threshold matched by the signal strength of the serving cell is determined, and the measurement interval ratio corresponding to the target signal strength threshold is determined as the target measurement interval ratio.
  • the scaling factor of the measurement performance corresponding to any frequency point group is equal to the reciprocal of the target measurement interval ratio corresponding to the frequency point group.
  • any frequency point group corresponds to a measurement interval ratio
  • the communication device can divide the frequency point group into different sub-frequency points according to the preset frequency point type Grouping; for any sub-frequency point grouping in the frequency point grouping, the communication device can perform frequency on the shared measurement interval according to the measurement interval ratio corresponding to the frequency point grouping and the measurement interval ratio corresponding to the sub-frequency point grouping. Point measurement.
  • the measurement interval ratio corresponding to any sub-frequency point grouping involved in the embodiment of the present application may be a measurement interval ratio preset by the system, or may be a measurement interval ratio configured for the network device. It should be noted that the sum of the measurement interval ratios corresponding to each sub-frequency point group of any frequency point group is equal to 1.
  • the communication device may further divide the frequency point group into different sub-frequency point groups according to the preset frequency point type; For any sub-frequency point grouping in the frequency point grouping, the communication device may use the product of the measurement interval ratio corresponding to the frequency point grouping and the measurement interval ratio corresponding to the sub-frequency point grouping as the actual measurement interval ratio. The frequency point measurement is performed at the measurement interval.
  • the communication device further divides frequency point group m into sub-frequency point group 1 and sub-frequency point group 2 according to the preset frequency point type, and sub-frequency point group 1
  • the corresponding measurement interval ratio is Y and the measurement interval ratio corresponding to sub-frequency point group 2 is 1-Y.
  • the communication device can compare the measurement interval ratio X m corresponding to frequency point group m to sub-frequency point group m
  • the product of the measurement interval ratio Y corresponding to point group 1 is used as the actual measurement interval ratio, and the frequency point measurement is performed on the shared measurement interval;
  • the communication device can divide the measurement interval ratio corresponding to frequency point group m
  • the product of X m and the measurement interval ratio 1-Y corresponding to the sub-frequency point group 2 is used as the actual measurement interval ratio, and the frequency point measurement is performed on the shared measurement interval.
  • the scaling factor of the measurement performance corresponding to any sub-frequency group in any frequency group is equal to: the reciprocal of the measurement interval ratio corresponding to the frequency group, and the reciprocal of the measurement interval ratio corresponding to the sub-frequency group The product between.
  • the scaling factor of the measurement performance corresponding to sub-frequency point group 1 in frequency point group m is equal to: the reciprocal of the measurement interval ratio X m corresponding to frequency point group m, and the reciprocal of measurement interval ratio Y corresponding to sub-frequency point group 1
  • the scaling factor of the measurement performance corresponding to sub-frequency point group 2 in frequency point group m is equal to: the measurement interval ratio X m corresponding to frequency point group m
  • the reciprocal of is the product of the reciprocal of the measurement interval ratio 1-Y corresponding to the sub-frequency point group 2, namely (1/X m )*(1/(1-Y)).
  • the communication device can divide each target frequency point into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs; for any frequency point grouping, the communication equipment At least one measurement interval ratio corresponding to the frequency point grouping, and other possible implementations of the "frequency point measurement on the shared measurement interval" are introduced.
  • the communication device can first divide each target frequency point into different first frequency point groups according to the preset frequency point type; for any first frequency point group, the communication device can first The frequency point belongs to the group identifier in the preset frequency point type corresponding to the first frequency point group, and each target frequency point in the first frequency point group is further divided into different second frequency point groups. Further, for any second frequency point group in any first frequency point group, the communication device may share the measurement interval ratio corresponding to the first frequency point group and the measurement interval ratio corresponding to the second frequency point group. The frequency point measurement is performed at the measurement interval.
  • the measurement interval ratio corresponding to any first frequency point group involved in the embodiments of the present application may be a measurement interval ratio preset by the system, or may be a measurement interval ratio configured for the network device. It should be noted that the sum of the measurement interval proportions corresponding to each first frequency point group is equal to 1.
  • the communication device first divides the target frequency points into the first frequency point group 1 of the same frequency frequency point type and the first frequency point group 1 of the same frequency frequency point type and the first frequency point group 1 of the non-same frequency frequency point type according to the preset same frequency frequency point type and the same system non-same frequency frequency point type.
  • the communication device can be based on the same frequency frequency point that each target frequency point belongs to
  • the group identifier in the type, the target frequency points in the first frequency point group 1 are further divided into different second frequency point groups, and the group identifiers in the non-same frequency frequency point types of the same system to which each target frequency point belongs,
  • the target frequency points in the first frequency point group 2 are further divided into different second frequency point groups.
  • the communication device may determine the measurement interval ratio Y corresponding to the first frequency point group 1 and the measurement interval ratio corresponding to the second frequency point group.
  • the product is used as the actual measurement interval ratio, and the frequency point measurement is performed on the shared measurement interval; for any second frequency point group in the first frequency point group 2, the communication device can measure according to the first frequency point group 2
  • the product of the interval ratio 1-Y and the measurement interval ratio corresponding to the second frequency point grouping is used as the actual measurement interval ratio, and the frequency point measurement is performed on the shared measurement interval.
  • the scaling factor of the measurement performance corresponding to any second frequency point group in any first frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the first frequency point group, which corresponds to the second frequency point group The product between the reciprocal of the measurement interval ratio.
  • the scaling factor of the measurement performance corresponding to the second frequency point group m in the first frequency point group 1 is equal to: the reciprocal of the measurement interval ratio Y corresponding to the first frequency point group 1, which corresponds to the second frequency point group m
  • the product between the reciprocals of the measurement interval ratio X m namely (1/Y)*(1/X m );
  • the scaling factor of the measurement performance corresponding to the second frequency point group m in the first frequency point group 2 is equal to:
  • the communication device is configured with the identification of the frequency group to which each target frequency point to be tested belongs to, and at least one corresponding to each frequency point group according to the maximum number of frequency point groups supported by the communication device through the network device Measurement interval ratio; further, the communication device performs frequency measurement on the shared measurement interval according to the identification of the frequency point group to which each target frequency point to be measured belongs and at least one measurement interval ratio corresponding to each frequency point group configured by the network device. Point measurement.
  • the network device in the embodiment of the present application can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure one or Multiple measurement interval ratios, so that the communication device can divide each target frequency point into different frequency point groups according to the frequency point group identification of each target frequency point, and apply different measurement interval ratios to perform frequency measurement on the shared measurement interval.
  • Point measurement The network equipment in the embodiments of the present application can more flexibly configure the communication equipment with measurement opportunities of different target frequency points in the shared measurement interval according to its own wireless resource management and mobility management strategies and the use of different target frequency points. This makes the target frequency points for different purposes have different measurement performance, which is beneficial to the network equipment to achieve better radio resource management and mobility management.
  • FIG. 3 is a schematic flowchart of a frequency point measurement method provided by another embodiment of this application.
  • the embodiment of the present application introduces an embodiment in which the communication device divides each target frequency point into different frequency point groups according to the identifier of the frequency point group to which each target frequency point belongs.
  • the method of the embodiment of the present application may include:
  • Step S301 The communication device sends a terminal capability message to the network device.
  • the communication device may send a terminal capability message to the network device when accessing the network, where the terminal capability message may include but is not limited to the maximum number M of frequency point groups supported by the communication device.
  • Step S302 The network device configures, according to the maximum number of frequency point groups supported by the communication device, the identification of the frequency point group to which each target frequency point to be tested belongs to and the measurement interval ratio corresponding to each frequency point group.
  • the network device can be based on its own wireless resource management and mobility management strategies and the use of different target frequency points, etc., combined with the maximum number of frequency point groups supported by the communication device M, as the communication
  • the device is configured with the identification of the frequency point group to which each target frequency point to be tested belongs, and the measurement interval ratio corresponding to each frequency point group.
  • the total number m of each frequency point group is less than or equal to the maximum number M of frequency point groups supported by the communication device
  • the measurement interval ratio corresponding to frequency point group 1 is X 1
  • the measurement interval corresponding to frequency point group 2 The ratio is X 2 ,...
  • the measurement interval ratio corresponding to the frequency point group m is X m .
  • Step S303 The network device sends a measurement configuration message to the communication device.
  • the measurement configuration message may include, but is not limited to: the identification of the frequency point group to which each target frequency point belongs, and the measurement interval ratio corresponding to each frequency point group.
  • Step S304 The communication device divides each target frequency point into different frequency point groups according to the identifier of the frequency point group to which each target frequency point belongs.
  • Step S305 For any frequency point grouping, the communication device performs frequency point measurement on the shared measurement interval according to the measurement interval ratio corresponding to the frequency point grouping.
  • the scaling factor of the measurement performance corresponding to any frequency point group is equal to the reciprocal of the measurement interval ratio corresponding to the frequency point group.
  • the network device can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure a corresponding measurement for each frequency point group Interval ratio, so that the communication device can divide each target frequency point into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs, and apply different measurement interval ratios to perform frequency point measurement on the shared measurement interval. It can be seen that the measurement opportunity that can configure different target frequency points more flexibly is realized, so that target frequency points of different purposes have different measurement performance.
  • FIG. 4 is a schematic flowchart of a frequency point measurement method provided by another embodiment of this application.
  • the communication device in the embodiment of this application divides the target frequency points into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs, and further divides each target frequency point into different frequency point groups according to the preset frequency point type.
  • the frequency point grouping is again divided into different sub-frequency point groups corresponding to embodiments for introduction.
  • the method of the embodiment of the present application may include:
  • Step S401 The communication device sends a terminal capability message to the network device.
  • the communication device may send a terminal capability message to the network device when accessing the network, where the terminal capability message may include but is not limited to the maximum number M of frequency point groups supported by the communication device.
  • Step S402 The network device configures the communication device with the identification of the frequency group to which each target frequency point belongs and the measurement interval ratio corresponding to each frequency group according to the maximum number of frequency point groups supported by the communication device.
  • Step S403 The network device sends a measurement configuration message to the communication device.
  • the measurement configuration message may include, but is not limited to: the identification of the frequency point group to which each target frequency point belongs, and the measurement interval ratio corresponding to each frequency point group.
  • Step S404 The communication device divides each target frequency point into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs.
  • Step S405 For any frequency point grouping, the communication device divides the frequency point group into different sub-frequency point groups according to the preset frequency point type.
  • the measurement interval ratio corresponding to any sub-frequency point group may be a measurement interval ratio preset by the system, or may be a measurement interval ratio configured for the network device. It should be noted that the sum of the measurement interval ratios corresponding to each sub-frequency point group of any frequency point group is equal to 1.
  • the communication device divides the target frequency points in frequency point group m1 into sub-frequency point group 1 and sub-frequency point group 2 according to the preset frequency point type, where sub-frequency point group 1 corresponds to The measurement interval ratio is Y and the measurement interval ratio corresponding to sub-frequency point group 2 is 1-Y.
  • Step S406 For any sub-frequency point grouping in any frequency point grouping, the communication device performs frequency on the shared measurement interval according to the measurement interval ratio corresponding to the frequency point group and the measurement interval ratio corresponding to the sub-frequency point grouping. Point measurement.
  • the communication device may use the product of the measurement interval ratio X m1 corresponding to frequency point group m1 and the measurement interval ratio Y corresponding to sub-frequency point group 1 as the actual measurement interval
  • the communication device can compare the measurement interval ratio X m1 corresponding to frequency point group m1 to that of sub-frequency point grouping 2.
  • the product of the measurement interval ratio 1-Y is used as the actual measurement interval ratio, and the frequency point measurement is performed on the shared measurement interval.
  • the scaling factor of the measurement performance corresponding to any sub-frequency point group in any frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the frequency point group, and the reciprocal of the measurement interval ratio corresponding to the sub-frequency point group The product between.
  • the network device can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure a corresponding measurement for each frequency point group
  • the interval ratio so that the communication device can divide each target frequency point into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs, and further divide each frequency point group into different frequency point groups according to the preset frequency point type
  • Different sub-frequency points are grouped, so as to realize the measurement opportunity of different target frequency points can be configured more flexibly, so that the target frequency points of different purposes have different measurement performance.
  • FIG. 5 is a schematic flowchart of a frequency point measurement method provided by another embodiment of this application.
  • the communication device further divides each target frequency point into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs.
  • the frequency point grouping is again divided into different frequency point groups corresponding to embodiments for introduction.
  • the method of the embodiment of the present application may include:
  • Step S501 The communication device sends a terminal capability message to the network device.
  • the communication device may send a terminal capability message to the network device when accessing the network, where the terminal capability message may include but is not limited to the maximum number M of frequency point groups supported by the communication device.
  • Step S502 The network device configures, according to the maximum number of frequency point groups supported by the communication device, the identification of the frequency point group to which each target frequency point to be tested belongs to, and the measurement interval ratio corresponding to each frequency point group.
  • the identifier of the frequency point group to which any target frequency point belongs is used to indicate the group identifier in the preset frequency point type to which the target frequency point belongs (that is, the preset frequency point type is considered).
  • Step S503 The network device sends a measurement configuration message to the communication device.
  • the measurement configuration message may include, but is not limited to: the identification of the frequency point group to which each target frequency point belongs, and the measurement interval ratio corresponding to each frequency point group.
  • Step S504 The communication device divides each target frequency point into different first frequency point groups according to the preset frequency point type.
  • the measurement interval ratio corresponding to any first frequency point group may be a measurement interval ratio preset by the system, or may be a measurement interval ratio configured for the network device. It should be noted that the sum of the measurement interval proportions corresponding to each first frequency point group is equal to 1.
  • the communication device first divides the target frequency points into the first frequency point group 1 of the same frequency frequency point type and the first frequency point group 1 of the same frequency frequency point type and the same system non-same frequency frequency point type according to the preset same frequency frequency point type and the same system non-same frequency frequency point type.
  • the first frequency point group 2, and the measurement interval ratio corresponding to the first frequency point group 1 is Y
  • the measurement interval ratio corresponding to the first frequency point group 2 is 1-Y.
  • Step S505 For any first frequency point grouping, the communication device determines each target in the first frequency point group according to the group identifier in the preset frequency point type corresponding to the first frequency point group to which each target frequency point belongs The frequency points are further divided into different second frequency point groups.
  • the communication device may further divide the target frequency points in the first frequency point group 1 into different second frequency points according to the group identifier in the same frequency frequency point type to which each target frequency point belongs Grouping; for the first frequency point group 2, the communication device can further divide the target frequency points in the first frequency point group 2 into different first frequency points according to the group identifiers in the non-same frequency frequency point types of the same system to which each target frequency point belongs Two frequency point grouping.
  • Step S506 For any second frequency point grouping in any first frequency point grouping, the communication device uses the measurement interval ratio corresponding to the first frequency point grouping and the measurement interval ratio corresponding to the second frequency point grouping in the shared Perform frequency point measurement at the measurement interval.
  • the scaling factor of the measurement performance corresponding to any second frequency point group in any first frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the first frequency point group, which corresponds to the second frequency point group The product of the reciprocal of the measurement interval ratio.
  • the network device can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure a corresponding measurement for each frequency point group Interval ratio, so that the communication device can divide each target frequency point into different frequency point groups according to the preset frequency point type, and further divide each frequency point group into different frequency point groups according to the identification of the frequency point group to which each target frequency point belongs
  • the frequency points are grouped to realize the measurement opportunities of different target frequency points can be configured more flexibly, so that the target frequency points of different purposes have different measurement performance.
  • FIG. 6 is a schematic flowchart of a frequency point measurement method provided by another embodiment of this application.
  • the embodiment of the present application introduces an embodiment corresponding to the network device configuring multiple measurement interval ratios for each frequency point group.
  • the method of the embodiment of the present application may include:
  • Step S601 The communication device sends a terminal capability message to the network device.
  • the communication device may send a terminal capability message to the network device when accessing the network, where the terminal capability message may include but is not limited to the maximum number M of frequency point groups supported by the communication device.
  • Step S602 The network device configures the communication device with the identification of the frequency group to which each target frequency point belongs to be tested according to the maximum number of frequency point groups supported by the communication device, and the ratio of multiple measurement intervals corresponding to each frequency point group .
  • Step S603 The network device sends a measurement configuration message to the communication device.
  • the measurement configuration message may include, but is not limited to: an identifier of the frequency point group to which each target frequency point belongs, and multiple measurement interval ratios corresponding to each frequency point group.
  • the network device may send to the communication device to indicate the frequency point group The measurement interval ratio indication information of the corresponding target measurement interval ratio.
  • the measurement interval ratio indication information may be carried in a media access control (MAC) message.
  • MAC media access control
  • the measurement interval ratio indication information may be carried in the measurement configuration message.
  • Step S604 The communication device divides each target frequency point into different frequency point groups according to the identifier of the frequency point group to which each target frequency point belongs.
  • Step S605 For any frequency point grouping, the communication device determines the target measurement interval ratio corresponding to the frequency point grouping from the multiple measurement interval ratios corresponding to the frequency point group according to the measurement interval ratio indication information sent by the network device, and According to the target measurement interval ratio corresponding to the frequency point grouping, the frequency point measurement is performed on the shared measurement interval.
  • the communication device when the communication device receives the measurement interval ratio indication information within a preset period of time, the communication device may set the shared measurement interval according to the target measurement interval ratio corresponding to the frequency point grouping. When the preset duration is exceeded, the communication device can perform frequency point measurement on the shared measurement interval according to the default measurement interval ratio among the multiple measurement interval ratios corresponding to the frequency point group.
  • the scaling factor of the measurement performance corresponding to any frequency point group is equal to the reciprocal of the target measurement interval ratio corresponding to the frequency point group;
  • the scaling factor of the measurement performance corresponding to any frequency point group is equal to the reciprocal of the default measurement interval ratio corresponding to the frequency point group.
  • the network device can flexibly group and configure each target frequency point to be tested by the communication device according to the maximum number of frequency point groups supported by the communication device, and configure multiple measurement interval ratios for each frequency point group .
  • the measurement interval ratio indication information can quickly control the communication device to dynamically switch the used measurement interval ratio, thereby realizing the measurement opportunity that can configure different target frequency points more flexibly. For example, when the network device finds that the load exceeds the preset load upper limit threshold, it can adjust the measurement interval ratio by sending the measurement interval ratio indication information to the communication device, so that the communication device can use more measurement intervals for measuring larger capacity and larger load.
  • Low target frequency points so as to quickly find target frequency points that can be used for load balancing; when the network device finds that the load is lower than the preset load lower threshold, it can adjust the measurement interval ratio by sending the measurement interval ratio indication information to the communication device.
  • the network device can control the communication device to dynamically switch the measurement interval ratio through the signal strength threshold corresponding to the measurement interval ratio, so that the communication device can use more measurement intervals for measuring mobility when the signal strength of the serving cell is low.
  • the target frequency point so as to quickly find the target frequency point that can be used for mobility management operations such as handover.
  • FIG. 7 is a schematic structural diagram of a communication device provided by an embodiment of this application.
  • the communication device 70 of this embodiment may include: a transceiver module 701 and a processing module 702.
  • the transceiver module 701 is configured to receive a measurement configuration message sent by a network device; wherein, the measurement configuration message includes: the identification of the frequency point group to which each target frequency point to be tested belongs, and the at least one corresponding to each frequency point group A measurement interval ratio; the total number of each frequency point group is less than or equal to the maximum number of frequency point groups supported by the communication device;
  • the processing module 702 is configured to perform frequency point measurement on the shared measurement interval according to the identifier of the frequency point group to which each target frequency point belongs and at least one measurement interval ratio corresponding to each frequency point group.
  • processing module 702 is specifically configured to:
  • each target frequency point According to the identifier of the frequency point group to which each target frequency point belongs, divide each target frequency point into different frequency point groups;
  • frequency point measurement is performed on the shared measurement interval according to at least one measurement interval ratio corresponding to the frequency point grouping.
  • the processing module 702 is specifically configured to:
  • the target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios corresponding to the frequency point group; wherein the measurement interval ratio indication information is used to indicate the frequency point group.
  • the frequency point measurement is performed on the shared measurement interval.
  • the processing module 702 is specifically configured to:
  • the target measurement interval ratio corresponding to the frequency point group is determined from the multiple measurement interval ratios corresponding to the frequency point group.
  • the processing module 702 is specifically configured to:
  • the target measurement interval ratio corresponding to the frequency group is determined from the multiple measurement interval ratios corresponding to the frequency group.
  • processing module 702 is specifically configured to:
  • the frequency point measurement is performed on the shared measurement interval according to the measurement interval ratio corresponding to the frequency point group and the measurement interval ratio corresponding to the sub-frequency point group;
  • the measurement interval ratio corresponding to the sub-frequency point grouping is the measurement interval ratio preset by the system or the measurement interval ratio configured for the network device.
  • the processing module 702 is specifically configured to:
  • the measurement interval ratio corresponding to the first frequency point grouping and the measurement interval ratio corresponding to the second frequency point grouping are performed on the shared measurement interval.
  • the preset frequency point type is configured by the network device for the communication device, or preset by the system.
  • the preset frequency point types include: same frequency frequency point type, same system non-same frequency frequency point type, and different system frequency point type.
  • the transceiver module 701 is further configured to send a terminal capability message to the network device; wherein the terminal capability message includes the maximum number of frequency point groups supported by the communication device.
  • the scaling factor of the measurement performance corresponding to any frequency point group is equal to the reciprocal of the target measurement interval ratio corresponding to the frequency point group.
  • the scaling factor of the measurement performance corresponding to any sub-frequency point group in any frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the frequency point group, which corresponds to the sub-frequency point group The product between the reciprocal of the measurement interval ratio.
  • the scaling factor of the measurement performance corresponding to any second frequency point group in any first frequency point group is equal to: the reciprocal of the measurement interval ratio corresponding to the first frequency point group, and The product of the reciprocal of the measurement interval ratio corresponding to the second frequency group.
  • processing module 702 in the embodiment of the present application may be implemented by a processor or processor-related circuit components
  • transceiver module 701 may be implemented by a transceiver or transceiver-related circuit components.
  • the communication device provided in the embodiment of the present application may be used to implement the technical solution related to the communication device in the embodiment of the frequency point measurement method of the present application.
  • the implementation principles and technical effects are similar, and details are not repeated here.
  • FIG. 8 is a schematic structural diagram of a communication device provided by another embodiment of this application.
  • the communication device 80 in this embodiment may include: a processor 801 and a memory 802.
  • the communication device 80 may further include a transceiver 803 for sending and receiving information and/or messages.
  • the memory 802 is used to store instructions or programs
  • the processor 801 is used to execute instructions or programs stored in the memory 802.
  • the communication device is used to execute the technical solution of the communication device in the embodiment of the frequency point measurement method of the present application. The implementation principle and technical effect are similar. No longer.
  • FIG. 9 is a schematic structural diagram of a network device provided by an embodiment of this application.
  • the network device 90 of this embodiment may include: a processing module 901 and a transceiver module 902.
  • processing module 901 is used to obtain the maximum number of frequency point groups supported by the communication device;
  • the transceiver module 902 is configured to send a measurement configuration message to the communication device; where the measurement configuration message includes: the identification of the frequency point group to which each target frequency point to be measured belongs, and at least one measurement corresponding to each frequency point group Interval ratio; the total number of each frequency point group is less than or equal to the maximum number of frequency point groups supported by the communication device.
  • the transceiver module 902 is further configured to: send measurement interval ratio indication information to the communication device; wherein, the measurement interval ratio indication information is used for Indicates the target measurement interval ratio corresponding to the frequency point group.
  • the measurement interval ratio indication information includes an identifier of the target measurement interval ratio corresponding to the frequency point group.
  • the measurement interval ratio indication information includes signal strength thresholds corresponding to different measurement interval ratios corresponding to the frequency point group.
  • the transceiver module 902 is further configured to: receive a terminal capability message sent by the communication device; wherein, the terminal capability message includes the maximum number of frequency point groups supported by the communication device;
  • the processing module 901 is specifically configured to obtain the maximum number of frequency point groups supported by the communication device according to the terminal capability message received by the transceiver module 902.
  • processing module 901 in the embodiment of the present application may be implemented by a processor or processor-related circuit components
  • transceiver module 902 may be implemented by a transceiver or transceiver-related circuit components.
  • the network device provided by the embodiment of the present application can be used to implement the technical solution about the network device in the above-mentioned frequency point measurement method embodiment of the present application.
  • the implementation principles and technical effects are similar, and details are not described herein again.
  • FIG. 10 is a schematic structural diagram of a network device provided by another embodiment of this application.
  • the network device 100 of this embodiment may include: a processor 1001 and a memory 1002.
  • the network device 100 may further include a transceiver 1003 for sending and receiving information and/or messages.
  • the memory 1002 is used to store instructions or programs
  • the processor 1001 is used to execute instructions or programs stored in the memory 1002.
  • the network device is used to execute the technical solution of the network device in the embodiment of the frequency point measurement method of the present application.
  • the implementation principle and technical effect are similar. Here No longer.
  • An embodiment of the present application also provides a frequency point measurement device, which may be a communication device or a circuit.
  • the frequency point measurement device can be used to perform the actions performed by the communication device in the foregoing method embodiments of the present application.
  • FIG. 11 is a schematic structural diagram of a frequency measurement device provided by an embodiment of the application.
  • the frequency measurement device is a communication device
  • FIG. 11 shows a simplified structural diagram of a communication device. It is easy to understand and easy to illustrate.
  • the communication device uses a mobile phone as an example.
  • the communication device includes a processor, a memory, a radio frequency circuit, an antenna, and an input and output device.
  • the processor is mainly used to process the communication protocol and communication data, and to control the communication device, execute the software program, and process the data of the software program.
  • the memory is mainly used to store software programs and data.
  • the radio frequency circuit is mainly used for the conversion of baseband signal and radio frequency signal and the processing of radio frequency signal.
  • the antenna is mainly used to send and receive radio frequency signals in the form of electromagnetic waves.
  • Input and output devices such as touch screens, display screens, and keyboards, are mainly used to receive data input by users and output data to users. It should be noted that some types of communication equipment may not have input and output devices.
  • the processor When data needs to be sent, the processor performs baseband processing on the data to be sent, and outputs the baseband signal to the radio frequency circuit.
  • the radio frequency circuit performs radio frequency processing on the baseband signal and sends the radio frequency signal to the outside in the form of electromagnetic waves through the antenna.
  • the radio frequency circuit receives the radio frequency signal through the antenna, converts the radio frequency signal into a baseband signal, and outputs the baseband signal to the processor, and the processor converts the baseband signal into data and processes the data.
  • FIG. 11 In an actual communication device product, there may be one or more processors and one or more memories.
  • the memory may also be referred to as a storage medium or storage device.
  • the memory may be set independently of the processor, or may be integrated with the processor, which is not limited in the embodiment of the present application.
  • the antenna and radio frequency circuit with the transceiver function may be regarded as the transceiver unit of the communication device, and the processor with the processing function may be regarded as the processing unit of the communication device.
  • the communication device includes a transceiver unit 1110 and a processing unit 1120.
  • the transceiver unit may also be referred to as a transceiver, a transceiver, a transceiver, and so on.
  • the processing unit may also be called a processor, a processing board, a processing module, a processing device, and so on.
  • the device for implementing the receiving function in the transceiver unit 1110 can be regarded as the receiving unit, and the device for implementing the sending function in the transceiver unit 1110 as the sending unit, that is, the transceiver unit 1110 includes a receiving unit and a sending unit.
  • the transceiver unit may sometimes be called a transceiver, a transceiver, or a transceiver circuit.
  • the receiving unit may sometimes be called a receiver, receiver, or receiving circuit.
  • the transmitting unit may sometimes be called a transmitter, a transmitter, or a transmitting circuit.
  • transceiving unit 1110 is used to perform the sending operation and the receiving operation on the communication device side in the foregoing method embodiment
  • processing unit 1120 is used to perform other operations on the communication device in the foregoing method embodiment except for the transceiving operation.
  • the transceiver unit 1110 is configured to perform the receiving operation on the communication device side in step S203 in FIG. 2, and/or the transceiver unit 1110 is also configured to perform other transceiver operations on the communication device side in the embodiment of the present application.
  • the processing unit 1120 is configured to execute step S204 in FIG. 2 and/or the processing unit 1120 is further configured to execute other processing steps on the communication device side in the embodiment of the present application.
  • the transceiver unit 1110 is used to perform the sending operation on the communication device side in step S301 in FIG. 3, and/or the transceiver unit 1110 is also used to perform other operations on the communication device side in the embodiment of the present application.
  • the processing unit 1120 is configured to execute steps S304 and S305 in FIG. 3, and/or the processing unit 1120 is further configured to execute other processing steps on the communication device side in the embodiment of the present application.
  • the transceiver unit 1110 is used to perform the sending operation on the communication device side in step S401 in FIG. 4, and/or the transceiver unit 1110 is also used to perform other operations on the communication device side in the embodiment of the present application.
  • the processing unit 1120 is configured to execute steps S404 to S406 in FIG. 4, and/or the processing unit 1120 is further configured to execute other processing steps on the communication device side in the embodiment of the present application.
  • the transceiver unit 1110 is used to perform the sending operation on the communication device side in step 501 in FIG. 5, and/or the transceiver unit 1110 is also used to perform other operations on the communication device side in the embodiment of the present application.
  • the processing unit 1120 is configured to execute steps S504 to S506 in FIG. 5, and/or the processing unit 1120 is further configured to execute other processing steps on the communication device side in the embodiment of the present application.
  • the transceiver unit 1110 is used to perform the sending operation on the communication device side in step S601 in FIG. 6, and/or the transceiver unit 1110 is also used to perform other operations on the communication device side in the embodiment of the present application.
  • the processing unit 1120 is configured to execute steps S604 and S605 in FIG. 6, and/or the processing unit 1120 is further configured to execute other processing steps on the communication device side in the embodiment of the present application.
  • the device may include a transceiver unit and a processing unit.
  • the transceiver unit may be an input/output circuit and/or a communication interface;
  • the processing unit is an integrated processor or microprocessor or integrated circuit.
  • FIG. 12 is a schematic structural diagram of a frequency point measurement device provided by another embodiment of the application.
  • the frequency point measurement device in this embodiment is a communication device
  • the device shown in FIG. 12 can be referred to.
  • the device can perform functions similar to the communication device 80 in FIG. 8.
  • the device includes a processor 1210, a data sending processor 1220, and a data receiving processor 1230.
  • the processing module 702 in the foregoing embodiment may be the processor 1210 in FIG. 12, and completes corresponding functions.
  • the transceiver module 701 in the foregoing embodiment may be the receiving data processor 1230 and/or the sending data processor 1220 in FIG. 12.
  • the channel encoder and the channel decoder are shown in FIG. 12, it can be understood that these modules do not constitute a restrictive description of this embodiment, and are only illustrative.
  • FIG. 13 is a schematic structural diagram of a frequency point measurement device provided by another embodiment of this application, and FIG. 13 shows another form of this embodiment.
  • the processing device 1300 includes modules such as a modulation subsystem, a central processing subsystem, and a peripheral subsystem.
  • the frequency point measuring device in this embodiment can be used as the modulation subsystem.
  • the modulation subsystem may include a processor 1303 and an interface 1304.
  • the processor 1303 completes the function of the aforementioned processing module 702, and the interface 1304 completes the function of the aforementioned transceiver module 701.
  • the modulation subsystem includes a memory 1306, a processor 1303, and a program stored in the memory 1306 and running on the processor.
  • the processor 1303 executes the program on the communication device side in the above method embodiment. Methods. It should be noted that the memory 1306 can be non-volatile or volatile, and its location can be located inside the modulation subsystem or in the processing device 1300, as long as the memory 1306 can be connected to the The processor 1303 is fine.
  • a computer-readable storage medium is provided with instructions stored thereon.
  • the instructions are executed, the method on the communication device side in the foregoing method embodiment is executed, and the implementation principles and technical effects are similar. I won't repeat them here.
  • a computer program product containing instructions is provided.
  • the instructions are executed, the method on the communication device side in the above method embodiment is executed.
  • the implementation principles and technical effects are similar, and will not be repeated here. .
  • the embodiments of the present application also provide a chip system, which includes a processor and may also include a memory, which is used to implement the method on the communication device side in the foregoing method embodiment.
  • the implementation principles and technical effects are similar and will not be repeated here.
  • the chip system can be composed of chips, or can include chips and other discrete devices.
  • FIG. 14 is a schematic structural diagram of a frequency point measurement device provided by another embodiment of the application.
  • the frequency point measurement device in this embodiment is a network device
  • the network device may be as shown in FIG. 14, and the frequency point measurement device 1400 includes One or more radio frequency units, such as a remote radio unit (RRU) 1410 and one or more baseband units (BBU) (also called digital unit, DU) 1420.
  • the RRU 1410 may be called a transceiver module, which corresponds to the transceiver 1003 in FIG. 10.
  • the transceiver module may also be called a transceiver, a transceiver circuit, etc., which may include at least one antenna 1411 and a radio frequency unit 1412 .
  • the RRU 1410 part is mainly used for sending and receiving of radio frequency signals and conversion of radio frequency signals and baseband signals, for example, for sending instruction information to a communication device.
  • the 1410 part of the BBU is mainly used for baseband processing and control of network equipment.
  • the RRU 1410 and the BBU 1420 may be physically set together, or may be physically separated, that is, distributed network equipment.
  • the BBU 1420 is the control center of the network equipment, and can also be called the processing module, which can correspond to the processor 1001 in Figure 10, and is mainly used to complete baseband processing functions, such as channel coding, multiplexing, modulation, spread spectrum, etc. .
  • the BBU processing module
  • the BBU may be used to control the network device to execute the operation flow of the network device in the foregoing method embodiment.
  • the BBU 1420 may be composed of one or more single boards, and multiple single boards may jointly support a radio access network (such as an LTE network) of a single access standard, or support different access standards. Wireless access network (such as LTE network, 5G network or other networks).
  • the BBU 1420 also includes a memory 1421 and a processor 1422.
  • the memory 1421 is used to store necessary instructions and data.
  • the processor 1422 is used to control the network device to perform necessary actions, for example, used to control the network device to execute the operation flow of the network device in the foregoing method embodiment.
  • the memory 1421 and the processor 1422 may serve one or more single boards. In other words, the memory and the processor can be set separately on each board. It can also be that multiple boards share the same memory and processor. In addition, necessary circuits can be provided on each board.
  • the embodiment of the present application also provides a computer-readable storage medium on which an instruction is stored.
  • the instruction is executed, the method on the network device side in the above method embodiment is executed.
  • the implementation principle and technical effect are similar, and will not be repeated here. .
  • the embodiments of the present application also provide a computer program product containing instructions that, when executed, execute the method on the network device side in the foregoing method embodiments, and the implementation principles and technical effects are similar, and will not be repeated here.
  • the embodiment of the present application also provides a chip system, which includes a processor and may also include a memory, which is used to implement the method on the network device side in the above method embodiment.
  • the implementation principles and technical effects are similar, and will not be repeated here.
  • the chip system can be composed of chips, or can include chips and other discrete devices.
  • the embodiment of the present application provides a communication system including at least one network device and at least one communication device.
  • the communication device can adopt the structure in any of the above-mentioned embodiments shown in FIG. 7, FIG. 8, and FIG. 11 to FIG. 13, and correspondingly, it can execute the technical solution provided by the above-mentioned frequency point measurement method embodiment, and its implementation The principle and technical effect are similar, and will not be repeated here.
  • the network device may adopt the structure in any of the embodiments shown in FIG. 9, FIG. 10, or FIG. 14, which correspondingly can execute the technical solutions provided in the above frequency point measurement method embodiments, and the implementation principles and technical effects are similar. I won't repeat them here.
  • the processor involved in the embodiments of the present application may be a general-purpose processor, a digital signal processor, an application specific integrated circuit, a field programmable gate array or other programmable logic device, a discrete gate or transistor logic device, a discrete hardware component, and may implement or Perform the methods, steps, and logic block diagrams disclosed in the embodiments of the present application.
  • the general-purpose processor may be a microprocessor or any conventional processor.
  • the steps of the method disclosed in the embodiments of the present application may be directly embodied as being executed and completed by a hardware processor, or executed and completed by a combination of hardware and software modules in the processor.
  • the memory involved in the embodiment of the present application may be a non-volatile memory, such as a hard disk drive (HDD) or a solid-state drive (SSD), etc., or a volatile memory (volatile memory), for example Random-access memory (random-access memory, RAM).
  • the memory is any other medium that can be used to carry or store desired program codes in the form of instructions or data structures and that can be accessed by a computer, but is not limited thereto.
  • the disclosed device and method may be implemented in other ways.
  • the device embodiments described above are only illustrative.
  • the division of the units is only a logical function division, and there may be other divisions in actual implementation, for example, multiple units or components can be combined or It can be integrated into another system, or some features can be ignored or not implemented.
  • the displayed or discussed mutual coupling or direct coupling or communication connection may be indirect coupling or communication connection through some interfaces, devices or units, and may be in electrical, mechanical or other forms.
  • the units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place, or they may be distributed on multiple network units. Some or all of the units may be selected according to actual needs to achieve the objectives of the solutions of the embodiments.
  • each unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist alone physically, or two or more units may be integrated into one unit.
  • the above-mentioned integrated unit may be implemented in the form of hardware, or may be implemented in the form of hardware plus software functional units.
  • the size of the sequence number of each process does not mean the order of execution.
  • the order of execution of each process should be determined by its function and internal logic.
  • the implementation process of the embodiments of this application should constitute any limitation.
  • all or part of the implementation may be implemented by software, hardware, firmware, or any combination thereof.
  • software it can be implemented in the form of a computer program product in whole or in part.
  • the computer program product includes one or more computer instructions.
  • the computer may be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices.
  • the computer instructions may be stored in a computer-readable storage medium or transmitted from one computer-readable storage medium to another computer-readable storage medium.
  • the computer instructions may be transmitted from a website, computer, server, or data center.
  • the computer-readable storage medium may be any available medium that can be accessed by a computer or a data storage device such as a server or a data center integrated with one or more available media.
  • the usable medium may be a magnetic medium (for example, a floppy disk, a hard disk, a magnetic tape), an optical medium (for example, a DVD), or a semiconductor medium (for example, a solid state disk (SSD)).

Landscapes

  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Mobile Radio Communication Systems (AREA)

Abstract

本申请实施例提供一种频点测量方法、装置以及存储介质,该方法包括:通信设备通过网络设备根据该通信设备所支持的频点分组的最大个数为该通信设备配置的各待测的目标频点所属频点分组的标识,以及各频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。可见,本申请实施例中网络设备可以根据通信设备所支持的频点分组的最大个数灵活地为通信设备配置不同目标频点在共享的测量间隔上的测量机会,使得不同用途的目标频点有不同的测量性能。

Description

频点测量方法、装置以及存储介质
本申请要求于2019年4月25日提交中国专利局、申请号为201910340560.4、申请名称为“频点测量方法、装置以及存储介质”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及通信技术领域,尤其涉及一种频点测量方法、装置以及存储介质。
背景技术
通常情况下,支持新无线(new radio,NR)制式通信的通信设备,需要在服务频点、服务频点以外的NR异频频点和其它制式的异***频点上进行频点测量。
当通信设备在NR同频频点测量且服务小区的同步信号块(synchronization signal block,SSB)不在通信设备当前激活的带宽段(bandwidth part,BWP)内、NR异频频点测量或异***频点测量时,通信设备需要将接收射频链从当前进行数据接收的BWP移至待测的目标频点,因此会产生对数据接收的中断,即产生测量间隔(measurement gap)。
相关技术中,网络设备会配置测量间隔的周期、时域位置以及测量间隔的长度等,以便通信设备可以确定各测量间隔,进而在各测量间隔进行频点测量。由于终端设备在某个测量间隔只能对一个待测的目标频点进行测量,因此,通信设备的所有待测的目标频点如何共享测量间隔是亟需解决的问题。
发明内容
本申请实施例提供一种频点测量方法、装置以及存储介质,解决了相关技术中的通信设备的所有待测的目标频点如何共享测量间隔的问题。
第一方面,本申请实施例提供一种频点测量方法,包括:
通信设备接收网络设备发送的测量配置消息;其中,该测量配置消息中包括:待测的各目标频点所属频点分组的标识,以及各该频点分组对应的至少一个测量间隔比例;各该频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数;
该通信设备根据各该目标频点所属频点分组的标识以及各该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
第一方面提供的频点测量方法实施例中,通信设备通过网络设备根据该通信设备所支持的频点分组的最大个数为该通信设备配置的各待测的目标频点所属频点分组的标识,以及各频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。可见,本申请实施例中网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通 信设备待测的各目标频点进行分组配置,并为每个频点分组配置一个或多个测量间隔比例,以便于通信设备可以根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组,并应用不同的测量间隔比例在共享的测量间隔上进行频点测量,使得网络设备可以根据自身无线资源管理和移动性管理的策略以及对不同目标频点的使用,更灵活地为通信设备配置不同目标频点在共享的测量间隔上的测量机会,使得不同用途的目标频点有不同的测量性能,从而有利于网络设备实现更好的无线资源管理和移动性管理。
在一种可能的实现方式中,该通信设备根据各该目标频点所属频点分组的标识以及各该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
该通信设备根据各该目标频点所属频点分组的标识,将各该目标频点划分为不同的频点分组;
对于任意该频点分组,该通信设备根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
在一种可能的实现方式中,若该频点分组对应多个测量间隔比例,则该通信设备根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
该通信设备根据该网络设备发送的测量间隔比例指示信息,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例;其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例;
该通信设备根据该频点分组对应的目标测量间隔比例,在共享的测量间隔上进行频点测量。
本实现方式中,网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置且为各频点分组配置多个测量间隔比例,通过测量间隔比例指示信息可以快速地控制通信设备动态地切换各频点分组对应的测量间隔比例,从而实现了可以更灵活地配置不同目标频点的测量机会。
在一种可能的实现方式中,若该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识,则该通信设备根据该网络设备发送的测量间隔比例指示信息,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例,包括:
该通信设备根据该频点分组对应的目标测量间隔比例的标识,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,若该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值,则该通信设备根据该网络设备发送的测量间隔比例指示信息,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例,包括:
该通信设备根据服务小区的信号强度以及该频点分组对应的不同测量间隔比例所对应的信号强度阈值,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,该通信设备根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
该通信设备根据预设频点类型将该频点分组划分为不同的子频点分组;
对于该频点分组中的任意该子频点分组,该通信设备根据该频点分组对应的测量间隔 比例以及该子频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,该子频点分组对应的测量间隔比例为***预设的测量间隔比例或者为该网络设备配置的测量间隔比例。
本实现方式中,通信设备可以根据网络设备根据该通信设备所支持的频点分组的最大个数为该通信设备配置的各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组,进一步地根据预设频点类型还可以将各频点分组再次划分为不同的子频点分组,从而实现了可以更灵活地配置不同目标频点的测量机会,使得不同用途的目标频点有不同的测量性能。
在一种可能的实现方式中,若该目标频点所属频点分组的标识用于指示该目标频点所属预设频点类型中的分组标识,该通信设备根据各该目标频点所属频点分组的标识,将各该目标频点划分为不同的频点分组,包括:
该通信设备根据预设频点类型将各该目标频点划分为不同的第一频点分组;
对于任意该第一频点分组,该通信设备根据各该目标频点所属预设频点类型中的分组标识,将该第一频点分组划分为不同的第二频点分组;
对应地,对于任意该频点分组,该通信设备根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
对于任意该第一频点分组中的任意该第二频点分组,该通信设备根据该第一频点分组对应的测量间隔比例以及该第二频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,该第一频点分组对应的测量间隔比例为***预设的测量间隔比例或者为该网络设备配置的测量间隔比例。
本实现方式中,通信设备可以根据预设频点类型将各目标频点划分为不同的频点分组后,进一步地根据网络设备根据该通信设备所支持的频点分组的最大个数为该通信设备配置的各目标频点所属频点分组的标识将各频点分组再次划分为不同的频点分组,从而实现了可以更灵活地配置不同目标频点的测量机会,使得不同用途的目标频点有不同的测量性能。
在一种可能的实现方式中,该预设频点类型为该网络设备为该通信设备配置的,或者为***预设的。
在一种可能的实现方式中,该预设频点类型包括:同频频点类型、同***非同频频点类型和异***频点类型。
在一种可能的实现方式中,该方法还包括:
该通信设备向该网络设备发送终端能力消息;其中,该终端能力消息中包括该通信设备支持的频点分组的最大个数。
在一种可能的实现方式中,任意该频点分组对应的测量性能的缩放因子等于该频点分组对应的目标测量间隔比例的倒数。
在一种可能的实现方式中,任意该频点分组中的任意该子频点分组对应的测量性能的缩放因子等于:该频点分组对应的测量间隔比例的倒数,与该子频点分组对应的测量间隔比例的倒数之间的乘积。
在一种可能的实现方式中,任意该第一频点分组中的任意该第二频点分组对应的测量性能的缩放因子等于:该第一频点分组对应的测量间隔比例的倒数,与该第二频点分组对 应的测量间隔比例的倒数之间的乘积。
第二方面,本申请实施例提供一种频点测量方法,包括:
网络设备获取通信设备所支持的频点分组的最大个数;
该网络设备向该通信设备发送测量配置消息;其中,该测量配置消息中包括:各待测的目标频点所属频点分组的标识,以及各该频点分组对应的至少一个测量间隔比例;各该频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数。
第二方面提供的频点测量方法实施例中,网络设备根据通信设备所支持的频点分组的最大个数为该通信设备配置各待测的目标频点所属频点分组的标识,以及各频点分组对应的至少一个测量间隔比例,以便于该通信设备根据各待测的目标频点所属频点分组的标识以及各频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。可见,本申请实施例中网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置,并为每个频点分组配置一个或多个测量间隔比例,以便于通信设备可以根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组,并应用不同的测量间隔比例在共享的测量间隔上进行频点测量,使得网络设备可以根据自身无线资源管理和移动性管理的策略以及对不同目标频点的使用,更灵活地为通信设备配置不同目标频点的测量机会,使得不同用途的目标频点有不同的测量性能,从而有利于网络设备实现更好的无线资源管理和移动性管理。
在一种可能的实现方式中,若该频点分组对应多个测量间隔比例,该方法还包括:
该网络设备向该通信设备发送测量间隔比例指示信息;其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例。
本实现方式中,网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置且为各频点分组配置多个测量间隔比例,通过测量间隔比例指示信息可以快速地控制通信设备动态地切换各频点分组对应的测量间隔比例,从而实现了可以更灵活地配置不同目标频点的测量机会。
在一种可能的实现方式中,该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识。
在一种可能的实现方式中,该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值。
在一种可能的实现方式中,该网络设备获取通信设备所支持的频点分组的最大个数,包括:
该网络设备接收该通信设备发送的终端能力消息;其中,该终端能力消息中包括该通信设备支持的频点分组的最大个数。
第三方面,本申请实施例提供一种通信设备,包括:
收发模块,用于接收网络设备发送的测量配置消息;其中,该测量配置消息中包括:待测的各目标频点所属频点分组的标识,以及各该频点分组对应的至少一个测量间隔比例;各该频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数;
处理模块,用于根据各该目标频点所属频点分组的标识以及各该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
在一种可能的实现方式中,该处理模块具体用于:
根据各该目标频点所属频点分组的标识,将各该目标频点划分为不同的频点分组;
对于任意该频点分组,根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
在一种可能的实现方式中,若该频点分组对应多个测量间隔比例,该处理模块具体用于:
根据该网络设备发送的测量间隔比例指示信息,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例;其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例;
根据该频点分组对应的目标测量间隔比例,在共享的测量间隔上进行频点测量。
在一种可能的实现方式中,若该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识,该处理模块具体用于:
根据该频点分组对应的目标测量间隔比例的标识,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,若该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值,该处理模块具体用于:
根据服务小区的信号强度以及该频点分组对应的不同测量间隔比例所对应的信号强度阈值,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,该处理模块具体用于:
根据预设频点类型将该频点分组划分为不同的子频点分组;
对于该频点分组中的任意该子频点分组,根据该频点分组对应的测量间隔比例以及该子频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,该子频点分组对应的测量间隔比例为***预设的测量间隔比例或者为该网络设备配置的测量间隔比例。
在一种可能的实现方式中,若该目标频点所属频点分组的标识用于指示该目标频点所属预设频点类型中的分组标识,该处理模块具体用于:
根据预设频点类型将各该目标频点划分为不同的第一频点分组;
对于任意该第一频点分组,根据各该目标频点所属预设频点类型中的分组标识,将该第一频点分组划分为不同的第二频点分组;
对于任意该第一频点分组中的任意该第二频点分组,根据该第一频点分组对应的测量间隔比例以及该第二频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,该第一频点分组对应的测量间隔比例为***预设的测量间隔比例或者为该网络设备配置的测量间隔比例。
在一种可能的实现方式中,该预设频点类型为该网络设备为该通信设备配置的,或者为***预设的。
在一种可能的实现方式中,该预设频点类型包括:同频频点类型、同***非同频频点类型和异***频点类型。
在一种可能的实现方式中,该收发模块还用于:向该网络设备发送终端能力消息;其中,该终端能力消息中包括该通信设备支持的频点分组的最大个数。
在一种可能的实现方式中,任意该频点分组对应的测量性能的缩放因子等于该频点分组对应的目标测量间隔比例的倒数。
在一种可能的实现方式中,任意该频点分组中的任意该子频点分组对应的测量性能的缩放因子等于:该频点分组对应的测量间隔比例的倒数,与该子频点分组对应的测量间隔比例的倒数之间的乘积。
在一种可能的实现方式中,任意该第一频点分组中的任意该第二频点分组对应的测量性能的缩放因子等于:该第一频点分组对应的测量间隔比例的倒数,与该第二频点分组对应的测量间隔比例的倒数之间的乘积。
第四方面,本申请实施例提供一种网络设备,包括:
处理模块,用于获取通信设备所支持的频点分组的最大个数;
收发模块,用于向该通信设备发送测量配置消息;其中,该测量配置消息中包括:各待测的目标频点所属频点分组的标识,以及各该频点分组对应的至少一个测量间隔比例;各该频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数。
在一种可能的实现方式中,若该频点分组对应多个测量间隔比例,该收发模块还用于:向该通信设备发送测量间隔比例指示信息;其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识。
在一种可能的实现方式中,该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值。
在一种可能的实现方式中,该收发模块还用于:接收该通信设备发送的终端能力消息;其中,该终端能力消息中包括该通信设备支持的频点分组的最大个数;
该处理模块具体用于:根据该收发模块所接收的该终端能力消息获取该通信设备所支持的频点分组的最大个数。
第五方面,本申请实施例提供一种通信设备,包括:处理器和存储器,该存储器用于存储指令或程序,该处理器用于执行该存储器中存储的指令或程序。其中,该存储器中存储的指令或程序被该处理器执行时,该通信设备用于实现上述第一方面或第一方面的任一实现方式所述的方法。
第六方面,本申请实施例提供一种网络设备,包括:处理器和存储器,该存储器用于存储指令或程序,该处理器用于执行该存储器中存储的指令或程序。其中,该存储器中存储的指令或程序被该处理器执行时,该网络设备用于实现上述第二方面或第二方面的任一实现方式所述的方法。
第七方面,本申请实施例提供一种计算机可读存储介质,其上存储有计算机程序,该计算机程序被处理器执行时实现上述第一方面或第一方面的任一实现方式所述的方法。
第八方面,本申请实施例提供一种计算机可读存储介质,其上存储有计算机程序,该计算机程序被处理器执行时实现上述第二方面或第二方面的任一实现方式所述的方法。
第九方面,本申请实施例提供一种频点测量装置,包括存储器、处理器及存储在该存储器上并可在该处理器上运行的程序,该处理器执行该程序时实现上述第一方面或第一方面的任一实现方式所述的方法。
第十方面,本申请实施例提供一种频点测量装置,包括存储器、处理器及存储在该存储器上并可在该处理器上运行的程序,该处理器执行该程序时实现上述第二方面或第二方面的任一实现方式所述的法。
第十一方面,本申请实施例提供了一种芯片***,该芯片***包括处理器,还可以包括存储器,用于实现上述第一方面或第一方面的任一实现方式所述的方法。该芯片***可以由芯片构成,也可以包含芯片和其他分立器件。
第十二方面,本申请实施例提供了一种芯片***,该芯片***包括处理器,还可以包括存储器,用于实现上述第二方面或第二方面的任一实现方式所述的方法。该芯片***可以由芯片构成,也可以包含芯片和其他分立器件。
第十三方面,本申请实施例提供了一种通信***,包括上述第三方面或第三方面的任一实现方式所述的通信设备,以及上述第四方面或第四方面的任一实现方式所述的网络设备。
第十四方面,本申请实施例提供了一种通信***,包括上述第五方面或第五方面的任一实现方式所述的通信设备,以及上述第六方面或第六方面的任一实现方式所述的网络设备。
附图说明
图1为本申请实施例提供的通信***的结构示意图;
图2为本申请一实施例提供的频点测量方法的流程示意图;
图3为本申请另一实施例提供的频点测量方法的流程示意图;
图4为本申请另一实施例提供的频点测量方法的流程示意图;
图5为本申请另一实施例提供的频点测量方法的流程示意图;
图6为本申请另一实施例提供的频点测量方法的流程示意图;
图7为本申请一实施例提供的通信设备的结构示意图;
图8为本申请另一实施例提供的通信设备的结构示意图;
图9为本申请一实施例提供的网络设备的结构示意图;
图10为本申请另一实施例提供的网络设备的结构示意图;
图11为本申请一实施例提供的频点测量装置的结构示意图;
图12为本申请另一实施例提供的频点测量装置的结构示意图;
图13为本申请另一实施例提供的频点测量装置的结构示意图;
图14为本申请另一实施例提供的频点测量装置的结构示意图。
具体实施方式
首先,对本申请实施例所涉及的通信场景和部分词汇进行解释说明。
图1为本申请实施例提供的通信***的结构示意图。如图1所示,通信***可以包括:网络设备01和通信设备02;当然,该通信***中还可以包括多个通信设备02,本申请实施例中对此并不作限制。考虑到网络设备01与每个通信设备02之间进行频点测量的过程类似,本申请实施例中以网络设备01与任一通信设备02之间进行频点 测量的过程为例进行说明。
本申请实施例中涉及的通信***可以为长期演进(long term evolution,LTE)通信***或NR通信***(例如,第五代移动通信技术(5th-generation,5G));当然,该通信***还可以为其它类型的通信***,本申请实施例中对此并不作限制。
本申请实施例中,执行网络设备侧方法的执行主体可以是网络设备,也可以是网络设备中的装置(需要说明的是,在本申请提供的实施例中以网络设备为例进行描述的)。示例性地,网络设备中的装置可以是芯片***、电路或者模块等,本申请不作限制。
本申请实施例中,执行通信设备侧方法的执行主体可以是通信设备,也可以是通信设备中的装置(需要说明的是,在本申请提供的实施例中以通信设备为例进行描述的)。示例性地,通信设备中的装置可以是芯片***、电路或者模块等,本申请不作限制。
本申请实施例中涉及的网络设备可以包括但不限于:基站、发送接收点(transmission reception point,TRP)。其中,基站:又称为无线接入网(radio access network,RAN)设备,是一种将终端接入到无线网络的设备,可以是全球移动通讯(global system of mobile communication,GSM)或码分多址(code division multiple access,CDMA)中的基站(base transceiver station,BTS),也可以是宽带码分多址(wideband code division multiple access,WCDMA)中的基站(nodeB,NB),还可以是长期演进(long term evolution,LTE)中的演进型基站(evolutional node B,eNB或eNodeB),或者中继站或接入点,或者5G网络中的基站(gNodeB,gNB)等,在此并不限定。
本申请实施例中涉及的通信设备,或者可以称为终端设备。终端设备可以是无线终端也可以是有线终端,无线终端可以是指向用户提供语音和/或其他业务数据连通性的设备,具有无线连接功能的手持式设备、或连接到无线调制解调器的其他处理设备。无线终端可以经无线接入网(radio access network,RAN)与一个或多个核心网进行通信,无线终端可以是移动终端,如移动电话(或称为“蜂窝”电话)和具有移动终端的计算机,例如,可以是便携式、袖珍式、手持式、计算机内置的或者车载的移动装置,它们与无线接入网交换语言和/或数据。例如,个人通信业务(personal communication service,PCS)电话、无绳电话、会话发起协议(session initiation protocol,SIP)话机、无线本地环路(wireless local loop,WLL)站、个人数字助理(personal digital assistant,PDA)等设备。无线终端也可以称为***、订户单元(subscriber unit)、订户站(subscriber station),移动站(mobile station)、移动台(mobile)、远程站(remote station)、远程终端(remote terminal)、接入终端(access terminal)、用户终端(user terminal)、用户代理(user agent)、用户设备(user device or user equipment,UE),在此不作限定。
本申请实施例中涉及的终端设备或网络设备可以包括硬件层、运行在硬件层之上的操作***层,以及运行在操作***层上的应用层。该硬件层包括中央处理器(dentral processing unit,CPU)、内存管理单元(memory management unit,MMU)和内存(也称为主存)等硬件。该操作***可以是任意一种或多种通过进程(process)实现业务 处理的计算机操作***,例如,Linux操作***、Unix操作***、Android操作***、iOS操作***或windows操作***等。该应用层包含浏览器、通讯录、文字处理软件、即时通信软件等应用。
本申请实施例中的“至少一个”是指一个或者多个,“多个”是指两个或两个以上。“以下至少一项(个)”或其类似表达,是指的这些项中的任意组合,包括单项(个)或复数项(个)的任意组合。例如,a,b,或c中的至少一项(个),可以表示:a,b,c,a-b,a-c,b-c,或a-b-c,其中a,b,c可以是单个,也可以是多个。
本申请实施例中涉及的任意频点分组的测量间隔比例用于指示共享的测量间隔中用于测量该频点分组内频点的概率。对于任意一频点分组,由于其不能独占所有的测量间隔上的测量机会,而是以实施例中涉及的测量间隔比例使用共享的测量间隔上的测量机会,其测量性能需要根据测量间隔比例进行缩放。可以理解的,频点也可以被理解为频率。举例而言,频点为800Mhz的带宽,指代中心频点为800Mhz的带宽。
本申请实施例中涉及的任意频点分组对应的测量性能的缩放因子用于指示共享的测量间隔中用于测量该频点分组的测量时长或小区识别/检测时长的缩放倍数。
本申请实施例中涉及的通信设备中的预设频点类型可以为网络设备为通信设备配置的,或者为***预设的。
本申请实施例中涉及的网络设备中的预设频点类型可以为***预设的。
本申请实施例中涉及的预设频点类型可以包括但不限于以下类型:同频频点类型、同***非同频频点类型、异***频点类型、测量优先级高于预设优先级的频点类型、测量优先级不高于预设优先级的频点类型、主小区(primary cell,PCell)所在频点类型,主辅小区(primary secondary cell,PSCell)所在频点类型等。
本申请实施例提供的频点测量方法、装置以及存储介质,通过网络设备根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置,并为每个频点分组配置一个或多个测量间隔比例,以便于通信设备可以根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组并应用不同的测量间隔比例在共享的测量间隔上进行频点测量。可见,本申请实施例中的网络设备可以根据自身无线资源管理和移动性管理的策略以及对不同目标频点的使用,更灵活地为通信设备配置不同目标频点的测量机会,使得不同用途的目标频点有不同的测量性能,从而有利于网络设备实现更好的无线资源管理和移动性管理。
下面以具体地实施例对本申请的技术方案进行详细说明。下面这几个具体的实施例可以相互结合,对于相同或相似的概念或过程可能在某些实施例中不再赘述。
图2为本申请一实施例提供的频点测量方法的流程示意图。如图2所示,本申请实施例的方法可以包括:
步骤S201、网络设备获取通信设备所支持的频点分组的最大个数。
本步骤中,网络设备获取通信设备在共享的测量间隔中所支持的频点分组的最大个数,以便于根据该通信设备所支持的频点分组的最大个数为该通信设备配置各待测的目标频点所属频点分组的标识,以及各频点分组对应的至少一个测量间隔比例,其中,各频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数M。
本申请实施例中的任意频点分组的标识可以为该频点分组对应的分组号,或者该 频点分组对应的其它分组标识。例如,频点分组1的标识可以为分组号1以及频点分组2的标识可以为分组号2;或者,频点分组1的标识可以为分组标识a以及频点分组2的标识可以为分组标识b。
本申请实施例中,假设总共有m个频点分组(1<=m<=M),任意频点分组分别对应一个测量间隔比例X m,则X 1+X 2+...+X m=1,其中,X m表示频点分组m对应的测量间隔比例。
本申请实施例中,假设总共有m个频点分组,任意频点分组分别对应J个测量间隔比例(J为大于1的整数),则X 1,j+X 2,j+...+X m,j=1,其中,1<j<=J,X 1,j表示频点分组1对应的第j个测量间隔比例,X m,j表示频点分组m对应的第j个测量间隔比例。
示例性地,该网络设备可以通过接收该通信设备向该网络设备所发送的终端能力消息,获取该通信设备支持的频点分组的最大个数,其中,该终端能力消息中可以包括但不限于该通信设备支持的频点分组的最大个数。
又一示例性地,该网络设备还可以通过向该通信设备上一次连接的其它网络设备查询该通信设备所支持的频点分组的最大个数。
步骤S202、该网络设备向该通信设备发送测量配置消息。
本步骤中,该网络设备可以根据自身无线资源管理和移动性管理的策略以及对不同目标频点的使用情况等,并结合该通信设备所支持的频点分组的最大个数M,为该通信设备配置各待测的目标频点所属频点分组的标识,以及各频点分组对应的至少一个测量间隔比例,其中,各频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数M。
步骤S203、该通信设备接收该网络设备发送的该测量配置消息。
步骤S204、该通信设备根据各该目标频点所属频点分组的标识以及各该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
本步骤中,该通信设备可以根据各目标频点所属频点分组的标识进行分组,并根据各频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
可选地,该通信设备可以根据各目标频点所属频点分组的标识,将各目标频点划分为不同的频点分组。示例性地,若任意目标频点所属频点分组的标识用于指示该目标频点所属的频点分组的标识(即未考虑预设频点类型),则该通信设备可以直接根据各目标频点所属频点分组的标识,将所属频点分组的标识相同的各目标频点划分为一组。例如,假设目标频点1所属频点分组的标识为频点分组1的标识、目标频点2所属频点分组的标识为频点分组2的标识、目标频点3所属频点分组的标识为频点分组3的标识,以及目标频点4所属频点分组的标识为频点分组2的标识,则该通信设备可以根据各目标频点所属频点分组的标识,将目标频点1为一组、目标频点2和目标频点4为一组,目标频点3为一组。
进一步地,对于任意频点分组,该通信设备根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
本申请实施例的下述部分对“对于任意频点分组,该通信设备根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量”的可实现方式进行介绍。
一种可能的实现方式中,若任意频点分组分别对应一个测量间隔比例,则对于任 意频点分组,该通信设备可以根据该频点分组对应的测量间隔比例在共享的测量间隔上进行频点测量。例如,对于频点分组m,该通信设备可以根据该频点分组m对应的测量间隔比例X m在共享的测量间隔上进行频点测量。
本实现方式中,任意频点分组以其对应测量间隔比例的概率使用共享的测量间隔,任意频点分组对应的测量性能的缩放因子等于该频点分组对应的测量间隔比例的倒数。例如,频点分组m对应的测量性能的缩放因子等于频点分组m对应的测量间隔比例X m的倒数。
另一种可能的实现方式中,若任意频点分组对应多个测量间隔比例,则对于任意频点分组,该通信设备可以根据该网络设备发送的测量间隔比例指示信息,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例;其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例。进一步地,该通信设备根据该频点分组对应的目标测量间隔比例,在共享的测量间隔上进行频点测量。
本实现方式中,由于任意频点分组对应多个测量间隔比例,为了便于该通信设备确定出该频点分组对应的目标测量间隔比例,该网络设备可以向该通信设备发送测量间隔比例指示信息,其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例。示例性地,该测量间隔比例指示信息可以包括该频点分组对应的目标测量间隔比例的标识,例如上述参数j。又一示例性地,该测量间隔比例指示信息可以包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值,例如,不同参数j所对应的信号强度阈值。
对应地,该通信设备可以根据该网络设备所发送的测量间隔比例指示信息从该频点分组对应的多个测量间隔比例中确定出该频点分组对应的目标测量间隔比例。
示例性地,若该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识,则该通信设备可以根据该频点分组对应的目标测量间隔比例的标识,从该频点分组对应的多个测量间隔比例中确定出该频点分组对应的目标测量间隔比例。例如,对于频点分组m,该测量间隔比例指示信息可以包括频点分组m对应的目标测量间隔比例的标识j,则该通信设备可以根据频点分组m对应的目标测量间隔比例的标识j,从频点分组m对应的J个测量间隔比例中确定出频点分组m对应的目标测量间隔比例X m,j
又一示例性地,若该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值,则该通信设备可以根据服务小区的信号强度以及该频点分组对应的不同测量间隔比例所对应的信号强度阈值,从该频点分组对应的多个测量间隔比例中确定出该频点分组对应的目标测量间隔比例。
例如,对于频点分组m,该测量间隔比例指示信息可以包括频点分组m对应的J个测量间隔比例分别对应的信号强度阈值,则该通信设备可以根据服务小区的信号强度,从频点分组m对应的J个测量间隔比例分别对应的信号强度阈值中确定出该服务小区的信号强度所匹配的目标信号强度阈值,进而确定该目标信号强度阈值对应的测量间隔比例为目标测量间隔比例。
本实现方式中,任意频点分组对应的测量性能的缩放因子等于该频点分组对应的目标测量间隔比例的倒数。
另一种可能的实现方式中,若任意频点分组分别对应一个测量间隔比例,则对于任意频点分组,该通信设备可以根据预设频点类型将该频点分组划分为不同的子频点分组;对于该频点分组中的任意该子频点分组,该通信设备可以根据该频点分组对应的测量间隔比例以及该子频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量。
本申请实施例中涉及的任意子频点分组对应的测量间隔比例可以为***预设的测量间隔比例,或者可以为该网络设备配置的测量间隔比例。需要说明的是,任意频点分组的各子频点分组对应的测量间隔比例的总和等于1。
本实现方式中,对于根据各目标频点所属频点分组的标识所划分的任意频点分组,该通信设备可以进一步根据预设频点类型将该频点分组划分为不同的子频点分组;对于该频点分组中的任意该子频点分组,该通信设备可以将该频点分组对应的测量间隔比例与该子频点分组对应的测量间隔比例的乘积作为实际的测量间隔比例,在共享的测量间隔上进行频点测量。
例如,假设频点分组m对应的测量间隔比例为X m,该通信设备根据预设频点类型将频点分组m进一步划分为子频点分组1和子频点分组2,且子频点分组1对应的测量间隔比例为Y以及子频点分组2对应的测量间隔比例为1-Y,则对于子频点分组1,该通信设备可以将频点分组m对应的测量间隔比例X m与子频点分组1对应的测量间隔比例Y的乘积作为实际的测量间隔比例,在共享的测量间隔上进行频点测量;对于子频点分组2,该通信设备可以将频点分组m对应的测量间隔比例X m与子频点分组2对应的测量间隔比例1-Y的乘积作为实际的测量间隔比例,在共享的测量间隔上进行频点测量。
本实现方式中,任意频点分组中的任意子频点分组对应的测量性能的缩放因子等于:该频点分组对应的测量间隔比例的倒数,与该子频点分组对应的测量间隔比例的倒数之间的乘积。
例如,频点分组m中的子频点分组1对应的测量性能的缩放因子等于:频点分组m对应的测量间隔比例X m的倒数,与子频点分组1对应的测量间隔比例Y的倒数之间的乘积,即(1/X m)*(1/Y);频点分组m中的子频点分组2对应的测量性能的缩放因子等于:频点分组m对应的测量间隔比例X m的倒数,与子频点分组2对应的测量间隔比例1-Y的倒数之间的乘积,即(1/X m)*(1/(1-Y))。
本申请实施例的下述部分对上述“该通信设备可以根据各目标频点所属频点分组的标识,将各目标频点划分为不同的频点分组;对于任意频点分组,该通信设备根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量”的其它可实现方式进行介绍。
一种可能的实现方式中,若任意目标频点所属频点分组的标识用于指示该目标频点所属预设频点类型中的分组标识(即考虑了预设频点类型),任意频点分组分别对应一个测量间隔比例,则该通信设备可以根据预设频点类型先将各目标频点划分为不同的第一频点分组;对于任意第一频点分组,该通信设备可以根据各目标频点所属该第一频点分组所对应的预设频点类型中的分组标识,将该第一频点分组中的各目标频点进一步划分为不同的第二频点分组。进一步地,对于任意第一频点分组中的任意第二频点分组,该通信设备可以根据该第一频点分组对应的测量间隔比例以及该第二频 点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量。
本申请实施例中涉及的任意第一频点分组对应的测量间隔比例可以为***预设的测量间隔比例,或者可以为该网络设备配置的测量间隔比例。需要说明的是,各第一频点分组对应的测量间隔比例的总和等于1。
例如,假设该通信设备根据预设的同频频点类型和同***非同频频点类型先将各目标频点划分为同频频点类型的第一频点分组1和非同频频点类型的第一频点分组2,且第一频点分组1对应的测量间隔比例为Y以及第一频点分组2对应的测量间隔比例为1-Y,则该通信设备可以根据各目标频点所属同频频点类型中的分组标识,将第一频点分组1中的目标频点进一步划分为不同的第二频点分组,以及可以根据各目标频点所属同***非同频频点类型中的分组标识,将第一频点分组2中的目标频点进一步划分为不同的第二频点分组。
进一步地,对于第一频点分组1中的任意第二频点分组,该通信设备可以根据该第一频点分组1对应的测量间隔比例Y与该第二频点分组对应的测量间隔比例的乘积作为实际的测量间隔比例,在共享的测量间隔上进行频点测量;对于第一频点分组2中的任意第二频点分组,该通信设备可以根据该第一频点分组2对应的测量间隔比例1-Y与该第二频点分组对应的测量间隔比例的乘积作为实际的测量间隔比例,在共享的测量间隔上进行频点测量。
本实现方式中,任意第一频点分组中的任意第二频点分组对应的测量性能的缩放因子等于:该第一频点分组对应的测量间隔比例的倒数,与该第二频点分组对应的测量间隔比例的倒数之间的乘积。
例如,第一频点分组1中的第二频点分组m对应的测量性能的缩放因子等于:该第一频点分组1对应的测量间隔比例Y的倒数,与该第二频点分组m对应的测量间隔比例X m的倒数之间的乘积,即(1/Y)*(1/X m);第一频点分组2中的第二频点分组m对应的测量性能的缩放因子等于:该第一频点分组2对应的测量间隔比例1-Y的倒数,与该第二频点分组m对应的测量间隔比例X m的倒数之间的乘积,即(1/(1-Y))*(1/X m)。
本申请实施例中,通过网络设备根据通信设备所支持的频点分组的最大个数为该通信设备配置各待测的目标频点所属频点分组的标识,以及各频点分组对应的至少一个测量间隔比例;进一步地,该通信设备根据该网络设备配置的各待测的目标频点所属频点分组的标识以及各频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。可见,本申请实施例中网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置,并为每个频点分组配置一个或多个测量间隔比例,以便于通信设备可以根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组,并应用不同的测量间隔比例在共享的测量间隔上进行频点测量。本申请实施例中的网络设备可以根据自身无线资源管理和移动性管理的策略以及对不同目标频点的使用,更灵活地为通信设备配置不同目标频点在共享的测量间隔上的测量机会,使得不同用途的目标频点有不同的测量性能,从而有利于网络设备实现更好的无线资源管理和移动性管理。
图3为本申请另一实施例提供的频点测量方法的流程示意图。在上述实施例的基 础上,本申请实施例对通信设备根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组所对应的实施例进行介绍。如图3所示,本申请实施例的方法可以包括:
步骤S301、通信设备向网络设备发送终端能力消息。
示例性地,该通信设备可以在接入网络时向该网络设备发送终端能力消息,其中,该终端能力消息中可以包括但不限于该通信设备支持的频点分组的最大个数M。
步骤S302、该网络设备根据该通信设备支持的频点分组的最大个数为该通信设备配置待测的各目标频点所属频点分组的标识,以及各频点分组对应的测量间隔比例。
本步骤中,该网络设备可以根据自身无线资源管理和移动性管理的策略以及对不同目标频点的使用情况等,并结合该通信设备所支持的频点分组的最大个数M,为该通信设备配置待测的各目标频点所属频点分组的标识,以及各频点分组对应的测量间隔比例。
示例性地,各频点分组的总数m小于或等于该通信设备所支持的频点分组的最大个数M,频点分组1对应的测量间隔比例为X 1,频点分组2对应的测量间隔比例为X 2,…,频点分组m对应的测量间隔比例为X m
步骤S303、该网络设备向该通信设备发送测量配置消息。
示例性地,该测量配置消息中可以包括但不限于:各目标频点所属频点分组的标识,以及各频点分组对应的测量间隔比例。
步骤S304、该通信设备根据各目标频点所属频点分组的标识,将各目标频点划分为不同的频点分组。
步骤S305、对于任意频点分组,该通信设备根据该频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量。
示例性地,任意频点分组对应的测量性能的缩放因子等于该频点分组对应的测量间隔比例的倒数。
本申请实施例中,网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置,并为每个频点分组配置对应的测量间隔比例,以便于通信设备可以根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组,并应用不同的测量间隔比例在共享的测量间隔上进行频点测量。可见,实现了可以更灵活地配置不同目标频点的测量机会,使得不同用途的目标频点有不同的测量性能。
图4为本申请另一实施例提供的频点测量方法的流程示意图。在上述实施例的基础上,本申请实施例对通信设备在根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组后,进一步根据预设频点类型将各频点分组再次划分为不同的子频点分组所对应的实施例进行介绍。如图4所示,本申请实施例的方法可以包括:
步骤S401、通信设备向网络设备发送终端能力消息。
示例性地,该通信设备可以在接入网络时向该网络设备发送终端能力消息,其中,该终端能力消息中可以包括但不限于该通信设备支持的频点分组的最大个数M。
步骤S402、该网络设备根据该通信设备支持的频点分组的最大个数为该通信设备 配置待测的各目标频点所属频点分组的标识,以及各频点分组对应的测量间隔比例。
示例性地,各频点分组的总数m1小于或等于该通信设备所支持的频点分组的最大个数M(例如1<=m1<=M/2),频点分组1对应的测量间隔比例为X 1,频点分组2对应的测量间隔比例为X 2,…,频点分组m1对应的测量间隔比例为X m1,其中,X 1+X 2+...+X m1=1。
步骤S403、该网络设备向该通信设备发送测量配置消息。
示例性地,该测量配置消息中可以包括但不限于:各目标频点所属频点分组的标识,以及各频点分组对应的测量间隔比例。
步骤S404、该通信设备根据各目标频点所属频点分组的标识,将各目标频点划分为不同的频点分组。
步骤S405、对于任意频点分组,该通信设备根据预设频点类型将该频点分组划分为不同的子频点分组。
示例性地,任意子频点分组对应的测量间隔比例可以为***预设的测量间隔比例,或者可以为该网络设备配置的测量间隔比例。需要说明的是,任意频点分组的各子频点分组对应的测量间隔比例的总和等于1。
例如,对于频点分组m1,该通信设备根据预设频点类型将该频点分组m1中的目标频点划分为子频点分组1和子频点分组2,其中,子频点分组1对应的测量间隔比例为Y以及子频点分组2对应的测量间隔比例为1-Y。
步骤S406、对于任意频点分组中的任意该子频点分组,该通信设备根据该频点分组对应的测量间隔比例以及该子频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量。
例如,对于频点分组m1中的子频点分组1,该通信设备可以将频点分组m1对应的测量间隔比例X m1与子频点分组1对应的测量间隔比例Y的乘积作为实际的测量间隔比例,在共享的测量间隔上进行频点测量;对于频点分组m1中的子频点分组2,该通信设备可以将频点分组m1对应的测量间隔比例X m1与子频点分组2对应的测量间隔比例1-Y的乘积作为实际的测量间隔比例,在共享的测量间隔上进行频点测量。
示例性地,任意频点分组中的任意子频点分组对应的测量性能的缩放因子等于:该频点分组对应的测量间隔比例的倒数,与该子频点分组对应的测量间隔比例的倒数之间的乘积。
本申请实施例中,网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置,并为每个频点分组配置对应的测量间隔比例,以便于通信设备可以根据各目标频点所属频点分组的标识将各目标频点划分为不同的频点分组,进一步地根据预设频点类型还可以将各频点分组再次划分为不同的子频点分组,从而实现了可以更灵活地配置不同目标频点的测量机会,使得不同用途的目标频点有不同的测量性能。
图5为本申请另一实施例提供的频点测量方法的流程示意图。在上述实施例的基础上,本申请实施例对通信设备在根据预设频点类型将各目标频点划分为不同的频点分组后,进一步根据各目标频点所属频点分组的标识将各频点分组再次划分为不同的频点分组所对应的实施例进行介绍。如图5所示,本申请实施例的方法可以包括:
步骤S501、通信设备向网络设备发送终端能力消息。
示例性地,该通信设备可以在接入网络时向该网络设备发送终端能力消息,其中,该终端能力消息中可以包括但不限于该通信设备支持的频点分组的最大个数M。
步骤S502、该网络设备根据该通信设备支持的频点分组的最大个数为该通信设备配置待测的各目标频点所属频点分组的标识,以及各频点分组对应的测量间隔比例。
示例性地,任意目标频点所属频点分组的标识用于指示该目标频点所属预设频点类型中的分组标识(即考虑了预设频点类型)。
示例性地,各频点分组的总数m1小于或等于该通信设备所支持的频点分组的最大个数M(例如1<=m1<=M/2),频点分组1对应的测量间隔比例为X 1,频点分组2对应的测量间隔比例为X 2,…,频点分组m1对应的测量间隔比例为X m1,其中,X 1+X 2+...+X m1=1。
步骤S503、该网络设备向该通信设备发送测量配置消息。
示例性地,该测量配置消息中可以包括但不限于:各目标频点所属频点分组的标识,以及各频点分组对应的测量间隔比例。
步骤S504、该通信设备根据预设频点类型将各目标频点划分为不同的第一频点分组。
示例性地,任意第一频点分组对应的测量间隔比例可以为***预设的测量间隔比例,或者可以为该网络设备配置的测量间隔比例。需要说明的是,各第一频点分组对应的测量间隔比例的总和等于1。
例如,假设该通信设备根据预设的同频频点类型和同***非同频频点类型先将各目标频点划分为同频频点类型的第一频点分组1和同***非同频频点类型的第一频点分组2,且第一频点分组1对应的测量间隔比例为Y以及第一频点分组2对应的测量间隔比例为1-Y。
步骤S505、对于任意第一频点分组,该通信设备根据各目标频点所属该第一频点分组所对应的预设频点类型中的分组标识,将该第一频点分组中的各目标频点进一步划分为不同的第二频点分组。
例如,对于第一频点分组1,该通信设备可以根据各目标频点所属同频频点类型中的分组标识,将第一频点分组1中的目标频点进一步划分为不同的第二频点分组;对于第一频点分组2,该通信设备可以根据各目标频点所属同***非同频频点类型中的分组标识,将第一频点分组2中的目标频点进一步划分为不同的第二频点分组。
步骤S506、对于任意第一频点分组中的任意第二频点分组,该通信设备根据该第一频点分组对应的测量间隔比例以及该第二频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量。
示例性地,任意第一频点分组中的任意第二频点分组对应的测量性能的缩放因子等于:该第一频点分组对应的测量间隔比例的倒数,与该第二频点分组对应的测量间隔比例的倒数之间的乘积。
本申请实施例中,网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置,并为每个频点分组配置对应的测量间隔比例,以便于通信设备可以根据预设频点类型将各目标频点划分为不同的频点分 组后,进一步地根据各目标频点所属频点分组的标识将各频点分组再次划分为不同的频点分组,从而实现了可以更灵活地配置不同目标频点的测量机会,使得不同用途的目标频点有不同的测量性能。
图6为本申请另一实施例提供的频点测量方法的流程示意图。在上述实施例的基础上,本申请实施例对网络设备为各频点分组配置多个测量间隔比例所对应的实施例进行介绍。如图6所示,本申请实施例的方法可以包括:
步骤S601、通信设备向网络设备发送终端能力消息。
示例性地,该通信设备可以在接入网络时向该网络设备发送终端能力消息,其中,该终端能力消息中可以包括但不限于该通信设备支持的频点分组的最大个数M。
步骤S602、该网络设备根据该通信设备支持的频点分组的最大个数为该通信设备配置待测的各目标频点所属频点分组的标识,以及各频点分组对应的多个测量间隔比例。
示例性地,各频点分组的总数m小于或等于该通信设备所支持的频点分组的最大个数M,任意频点分组分别对应J个测量间隔比例,则X 1,j+X 2,j+...+X m,j=1,其中,1<j<=J,X 1,j表示频点分组1对应的第j个测量间隔比例,X m,j表示频点分组m对应的第j个测量间隔比例。
步骤S603、该网络设备向该通信设备发送测量配置消息。
示例性地,该测量配置消息中可以包括但不限于:各目标频点所属频点分组的标识,以及各频点分组对应的多个测量间隔比例。
可选地,由于任意频点分组对应多个测量间隔比例,为了便于该通信设备确定出该频点分组对应的目标测量间隔比例,该网络设备可以向该通信设备发送用于指示该频点分组对应的目标测量间隔比例的测量间隔比例指示信息。
示例性地,若该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识,则该测量间隔比例指示信息可以携带于媒体访问控制(media access control,MAC)消息中。
又一示例性地,若该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值,则该测量间隔比例指示信息可以携带于该测量配置消息中。
步骤S604、该通信设备根据各目标频点所属频点分组的标识,将各目标频点划分为不同的频点分组。
步骤S605、对于任意频点分组,该通信设备根据该网络设备发送的测量间隔比例指示信息,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例,并根据该频点分组对应的目标测量间隔比例,在共享的测量间隔上进行频点测量。
可选地,对于任意频点分组,当该通信设备在接收到该测量间隔比例指示信息后的预设时长内,该通信设备可以根据该频点分组对应的目标测量间隔比例在共享的测量间隔上进行频点测量;当超过该预设时长时,该通信设备可以根据该频点分组对应的多个测量间隔比例中的默认测量间隔比例在共享的测量间隔上进行频点测量。
示例性地,当该通信设备在接收到该测量间隔比例指示信息后的预设时长内,任意频点分组对应的测量性能的缩放因子等于该频点分组对应的目标测量间隔比例的倒数;当超过该预设时长时,任意频点分组对应的测量性能的缩放因子等于该频点分组对应的默认测量间隔比例的倒数。
本申请实施例中,网络设备可以根据通信设备所支持的频点分组的最大个数灵活地将该通信设备待测的各目标频点进行分组配置且为各频点分组配置多个测量间隔比例,通过测量间隔比例指示信息可以快速地控制通信设备动态地切换所使用的测量间隔比例,从而实现了可以更灵活地配置不同目标频点的测量机会。例如,当网络设备发现负载超过预设负载上限阈值时,可以通过向通信设备发送测量间隔比例指示信息调整测量间隔比例,使得通信设备可以将较多的测量间隔用于测量容量较大且负载较低的目标频点,从而快速地发现可以用于负载均衡的目标频点;当网络设备发现负载低于预设负载下限阈值时,可以通过向通信设备发送测量间隔比例指示信息调整测量间隔比例,使得通信设备可以平衡测量用于负载均衡的目标频点和移动性的目标频点。另外,网络设备可以通过测量间隔比例所对应的信号强度阈值控制通信设备动态切换测量间隔比例,从而使得通信设备可以在服务小区的信号强度较低时将较多的测量间隔用于测量移动性的目标频点,从而快速地发现可以用于切换等移动性管理操作的目标频点。
图7为本申请一实施例提供的通信设备的结构示意图。如图7所示,本实施例的通信设备70可以包括:收发模块701和处理模块702。
其中,该收发模块701,用于接收网络设备发送的测量配置消息;其中,该测量配置消息中包括:待测的各目标频点所属频点分组的标识,以及各该频点分组对应的至少一个测量间隔比例;各该频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数;
该处理模块702,用于根据各该目标频点所属频点分组的标识以及各该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
在一种可能的实现方式中,该处理模块702具体用于:
根据各该目标频点所属频点分组的标识,将各该目标频点划分为不同的频点分组;
对于任意该频点分组,根据该频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
在一种可能的实现方式中,若该频点分组对应多个测量间隔比例,该处理模块702具体用于:
根据该网络设备发送的测量间隔比例指示信息,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例;其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例;
根据该频点分组对应的目标测量间隔比例,在共享的测量间隔上进行频点测量。
在一种可能的实现方式中,若该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识,该处理模块702具体用于:
根据该频点分组对应的目标测量间隔比例的标识,从该频点分组对应的多个测量 间隔比例中确定该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,若该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值,该处理模块702具体用于:
根据服务小区的信号强度以及该频点分组对应的不同测量间隔比例所对应的信号强度阈值,从该频点分组对应的多个测量间隔比例中确定该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,该处理模块702具体用于:
根据预设频点类型将该频点分组划分为不同的子频点分组;
对于该频点分组中的任意该子频点分组,根据该频点分组对应的测量间隔比例以及该子频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,该子频点分组对应的测量间隔比例为***预设的测量间隔比例或者为该网络设备配置的测量间隔比例。
在一种可能的实现方式中,若该目标频点所属频点分组的标识用于指示该目标频点所属预设频点类型中的分组标识,该处理模块702具体用于:
根据预设频点类型将各该目标频点划分为不同的第一频点分组;
对于任意该第一频点分组,根据各该目标频点所属预设频点类型中的分组标识,将该第一频点分组划分为不同的第二频点分组;
对于任意该第一频点分组中的任意该第二频点分组,根据该第一频点分组对应的测量间隔比例以及该第二频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,该第一频点分组对应的测量间隔比例为***预设的测量间隔比例或者为该网络设备配置的测量间隔比例。
在一种可能的实现方式中,该预设频点类型为该网络设备为该通信设备配置的,或者为***预设的。
在一种可能的实现方式中,该预设频点类型包括:同频频点类型、同***非同频频点类型和异***频点类型。
在一种可能的实现方式中,该收发模块701还用于:向该网络设备发送终端能力消息;其中,该终端能力消息中包括该通信设备支持的频点分组的最大个数。
在一种可能的实现方式中,任意该频点分组对应的测量性能的缩放因子等于该频点分组对应的目标测量间隔比例的倒数。
在一种可能的实现方式中,任意该频点分组中的任意该子频点分组对应的测量性能的缩放因子等于:该频点分组对应的测量间隔比例的倒数,与该子频点分组对应的测量间隔比例的倒数之间的乘积。
在一种可能的实现方式中,任意该第一频点分组中的任意该第二频点分组对应的测量性能的缩放因子等于:该第一频点分组对应的测量间隔比例的倒数,与该第二频点分组对应的测量间隔比例的倒数之间的乘积。
应理解,本申请实施例中的该处理模块702可以由处理器或处理器相关电路组件实现,该收发模块701可以由收发器或收发器相关电路组件实现。
本申请实施例提供的通信设备,可以用于执行本申请上述频点测量方法实施例中关于通信设备的技术方案,其实现原理和技术效果类似,此处不再赘述。
图8为本申请另一实施例提供的通信设备的结构示意图。如图8所示,本实施例的通信设备80可以包括:处理器801和存储器802。可选地,该通信设备80还可以包括用于收发信息和/或消息的收发器803。其中,该存储器802用于存储指令或程序,该处理器801用于执行该存储器802中存储的指令或程序。该存储器802中存储的指令或程序被该处理器801执行时,该通信设备用于执行本申请上述频点测量方法实施例中关于通信设备的技术方案,其实现原理和技术效果类似,此处不再赘述。
图9为本申请一实施例提供的网络设备的结构示意图。如图9所示,本实施例的网络设备90可以包括:处理模块901和收发模块902。
其中,该处理模块901,用于获取通信设备所支持的频点分组的最大个数;
该收发模块902,用于向该通信设备发送测量配置消息;其中,该测量配置消息中包括:各待测的目标频点所属频点分组的标识,以及各该频点分组对应的至少一个测量间隔比例;各该频点分组的总数小于或等于该通信设备所支持的频点分组的最大个数。
在一种可能的实现方式中,若该频点分组对应多个测量间隔比例,该收发模块902还用于:向该通信设备发送测量间隔比例指示信息;其中,该测量间隔比例指示信息用于指示该频点分组对应的目标测量间隔比例。
在一种可能的实现方式中,该测量间隔比例指示信息包括该频点分组对应的目标测量间隔比例的标识。
在一种可能的实现方式中,该测量间隔比例指示信息包括该频点分组对应的不同测量间隔比例所对应的信号强度阈值。
在一种可能的实现方式中,该收发模块902还用于:接收该通信设备发送的终端能力消息;其中,该终端能力消息中包括该通信设备支持的频点分组的最大个数;
该处理模块901具体用于:根据该收发模块902所接收的该终端能力消息获取该通信设备所支持的频点分组的最大个数。
应理解,本申请实施例中的该处理模块901可以由处理器或处理器相关电路组件实现,该收发模块902可以由收发器或收发器相关电路组件实现。
本申请实施例提供的网络设备,可以用于执行本申请上述频点测量方法实施例中关于网络设备的技术方案,其实现原理和技术效果类似,此处不再赘述。
图10为本申请另一实施例提供的网络设备的结构示意图。如图10所示,本实施例的网络设备100可以包括:处理器1001和存储器1002。可选地,该网络设备100还可以包括用于收发信息和/或消息的收发器1003。其中,该存储器1002用于存储指令或程序,该处理器1001用于执行该存储器1002中存储的指令或程序。该存储器1002中存储的指令或程序被该处理器1001执行时,该网络设备用于执行本申请上述频点测量方法实施例中关于网络设备的技术方案,其实现原理和技术效果类似,此处不再赘述。
本申请实施例还提供一种频点测量装置,该频点测量装置可以是通信设备也可以是电路。该频点测量装置可以用于执行本申请上述方法实施例中由通信设备所执行的 动作。
图11为本申请一实施例提供的频点测量装置的结构示意图,当该频点测量装置为通信设备时,图11示出了一种简化的通信设备的结构示意图。便于理解和图示方便,图11中,通信设备以手机作为例子。如图11所示,通信设备包括处理器、存储器、射频电路、天线以及输入输出装置。处理器主要用于对通信协议以及通信数据进行处理,以及对通信设备进行控制,执行软件程序,处理软件程序的数据等。存储器主要用于存储软件程序和数据。射频电路主要用于基带信号与射频信号的转换以及对射频信号的处理。天线主要用于收发电磁波形式的射频信号。输入输出装置,例如触摸屏、显示屏,键盘等主要用于接收用户输入的数据以及对用户输出数据。需要说明的是,有些种类的通信设备可以不具有输入输出装置。
当需要发送数据时,处理器对待发送的数据进行基带处理后,输出基带信号至射频电路,射频电路将基带信号进行射频处理后将射频信号通过天线以电磁波的形式向外发送。当有数据发送到通信设备时,射频电路通过天线接收到射频信号,将射频信号转换为基带信号,并将基带信号输出至处理器,处理器将基带信号转换为数据并对该数据进行处理。为便于说明,图11中仅示出了一个存储器和处理器。在实际的通信设备产品中,可以存在一个或多个处理器和一个或多个存储器。存储器也可以称为存储介质或者存储设备等。存储器可以是独立于处理器设置,也可以是与处理器集成在一起,本申请实施例对此不做限制。
在本申请实施例中,可以将具有收发功能的天线和射频电路视为通信设备的收发单元,将具有处理功能的处理器视为通信设备的处理单元。如图11所示,通信设备包括收发单元1110和处理单元1120。收发单元也可以称为收发器、收发机、收发装置等。处理单元也可以称为处理器,处理单板,处理模块、处理装置等。可选的,可以将收发单元1110中用于实现接收功能的器件视为接收单元,将收发单元1110中用于实现发送功能的器件视为发送单元,即收发单元1110包括接收单元和发送单元。收发单元有时也可以称为收发机、收发器、或收发电路等。接收单元有时也可以称为接收机、接收器、或接收电路等。发送单元有时也可以称为发射机、发射器或者发射电路等。
应理解,收发单元1110用于执行上述方法实施例中通信设备侧的发送操作和接收操作,处理单元1120用于执行上述方法实施例中通信设备上除了收发操作之外的其他操作。
例如,在一种实现方式中,收发单元1110用于执行图2中的步骤S203中通信设备侧的接收操作,和/或收发单元1110还用于执行本申请实施例中通信设备侧的其他收发步骤。处理单元1120,用于执行图2中的步骤S204,和/或处理单元1120还用于执行本申请实施例中通信设备侧的其他处理步骤。
再例如,在另一种实现方式中,收发单元1110用于执行图3中步骤S301中通信设备侧的发送操作,和/或收发单元1110还用于执行本申请实施例中通信设备侧的其他收发步骤。处理单元1120用于执行图3中的步骤S304与步骤S305,和/或处理单元1120还用于执行本申请实施例中通信设备侧的其他处理步骤。
又例如,在再一种实现方式中,收发单元1110用于执行图4中步骤S401中通信 设备侧的发送操作,和/或收发单元1110还用于执行本申请实施例中通信设备侧的其他收发步骤。处理单元1120,用于执行图4中的步骤S404至步骤S406,和/或处理单元1120还用于执行本申请实施例中通信设备侧的其他处理步骤。
又例如,在再一种实现方式中,收发单元1110用于执行图5中步骤501中通信设备侧的发送操作,和/或收发单元1110还用于执行本申请实施例中通信设备侧的其他收发步骤。处理单元1120,用于执行图5中的步骤S504至步骤S506,和/或处理单元1120还用于执行本申请实施例中通信设备侧的其他处理步骤。
又例如,在再一种实现方式中,收发单元1110用于执行图6中步骤S601中通信设备侧的发送操作,和/或收发单元1110还用于执行本申请实施例中通信设备侧的其他收发步骤。处理单元1120,用于执行图6中的步骤S604和步骤S605,和/或处理单元1120还用于执行本申请实施例中通信设备侧的其他处理步骤。
当该频点测量装置为芯片类的装置或者电路时,该装置可以包括收发单元和处理单元。其中,所述收发单元可以是输入输出电路和/或通信接口;处理单元为集成的处理器或者微处理器或者集成电路。
图12为本申请另一实施例提供的频点测量装置的结构示意图,本实施例中的频点测量装置为通信设备时,可以参照图12所示的设备。作为一个例子,该设备可以完成类似于图8中通信设备80的功能。在图12中,该设备包括处理器1210,发送数据处理器1220,接收数据处理器1230。上述实施例中的处理模块702可以是图12中的该处理器1210,并完成相应的功能。上述实施例中的收发模块701可以是图12中的接收数据处理器1230,和/或发送数据处理器1220。虽然图12中示出了信道编码器、信道解码器,但是可以理解这些模块并不对本实施例构成限制性说明,仅是示意性的。
图13为本申请另一实施例提供的频点测量装置的结构示意图,图13示出本实施例的另一种形式。处理装置1300中包括调制子***、中央处理子***、周边子***等模块。本实施例中的频点测量装置可以作为其中的调制子***。具体的,该调制子***可以包括处理器1303,接口1304。其中处理器1303完成上述处理模块702的功能,接口1304完成上述收发模块701的功能。作为另一种变形,该调制子***包括存储器1306、处理器1303及存储在存储器1306上并可在处理器上运行的程序,该处理器1303执行该程序时实现上述方法实施例中通信设备侧的方法。需要注意的是,所述存储器1306可以是非易失性的,也可以是易失性的,其位置可以位于调制子***内部,也可以位于处理装置1300中,只要该存储器1306可以连接到所述处理器1303即可。
作为本实施例的另一种形式,提供一种计算机可读存储介质,其上存储有指令,该指令被执行时执行上述方法实施例中通信设备侧的方法,其实现原理和技术效果类似,此处不再赘述。
作为本实施例的另一种形式,提供一种包含指令的计算机程序产品,该指令被执行时执行上述方法实施例中通信设备侧的方法,其实现原理和技术效果类似,此处不再赘述。
本申请实施例还提供一种芯片***,该芯片***包括处理器,还可以包括存储器,用于实现上述方法实施例中通信设备侧的方法,其实现原理和技术效果类似,此处不再赘述。该芯片***可以由芯片构成,也可以包含芯片和其他分立器件。
图14为本申请另一实施例提供的频点测量装置的结构示意图,本实施例中的频点测量装置为网络设备时,该网络设备可以如图14所示,该频点测量装置1400包括一个或多个射频单元,如远端射频单元(remote radio unit,RRU)1410和一个或多个基带单元(baseband unit,BBU)(也可称为数字单元,digital unit,DU)1420。所述RRU 1410可以称为收发模块,与图10中的收发器1003对应,可选地,该收发模块还可以称为收发机、收发电路等等,其可以包括至少一个天线1411和射频单元1412。所述RRU 1410部分主要用于射频信号的收发以及射频信号与基带信号的转换,例如用于向通信设备发送指示信息。所述BBU 1410部分主要用于进行基带处理,对网络设备进行控制等。所述RRU 1410与BBU 1420可以是物理上设置在一起,也可以物理上分离设置的,即分布式网络设备。
所述BBU 1420为网络设备的控制中心,也可以称为处理模块,可以与图10中的处理器1001对应,主要用于完成基带处理功能,如信道编码,复用,调制,扩频等等。例如所述BBU(处理模块)可以用于控制网络设备执行上述方法实施例中关于网络设备的操作流程。
在一个示例中,所述BBU 1420可以由一个或多个单板构成,多个单板可以共同支持单一接入制式的无线接入网(如LTE网),也可以分别支持不同接入制式的无线接入网(如LTE网,5G网或其他网)。所述BBU 1420还包括存储器1421和处理器1422。所述存储器1421用以存储必要的指令和数据。所述处理器1422用于控制网络设备进行必要的动作,例如用于控制网络设备执行上述方法实施例中关于网络设备的操作流程。所述存储器1421和处理器1422可以服务于一个或多个单板。也就是说,可以每个单板上单独设置存储器和处理器。也可以是多个单板共用相同的存储器和处理器。此外每个单板上还可以设置有必要的电路。
本申请实施例还提供一种计算机可读存储介质,其上存储有指令,该指令被执行时执行上述方法实施例中网络设备侧的方法,其实现原理和技术效果类似,此处不再赘述。
本申请实施例还提供一种包含指令的计算机程序产品,该指令被执行时执行上述方法实施例中网络设备侧的方法,其实现原理和技术效果类似,此处不再赘述。
本申请实施例还提供一种芯片***,该芯片***包括处理器,还可以包括存储器,用于实现上述方法实施例中网络设备侧的方法,其实现原理和技术效果类似,此处不再赘述。该芯片***可以由芯片构成,也可以包含芯片和其他分立器件。
本申请实施例提供一种通信***,包括至少一个网络设备以及至少一个通信设备。其中,通信设备可以采用上述如图7、图8、图11至图13中任意所示实施例中的结构,其对应地,可以执行上述频点测量方法实施例所提供的技术方案,其实现原理和技术效果类似,此处不再赘述。网络设备可以采用如图9、图10或图14中任意所示实施例中的结构,其对应地,可以执行上述频点测量方法实施例所提供的技术方案,其实现原理和技术效果类似,此处不再赘述。
本申请实施例中涉及的处理器可以是通用处理器、数字信号处理器、专用集成电路、现场可编程门阵列或者其他可编程逻辑器件、分立门或者晶体管逻辑器件、分立硬件组件,可以实现或者执行本申请实施例中的公开的各方法、步骤及逻辑框图。通 用处理器可以是微处理器或者任何常规的处理器等。结合本申请实施例所公开的方法的步骤可以直接体现为硬件处理器执行完成,或者用处理器中的硬件及软件模块组合执行完成。
本申请实施例中涉及的存储器可以是非易失性存储器,比如硬盘(hard disk drive,HDD)或固态硬盘(solid-state drive,SSD)等,还可以是易失性存储器(volatile memory),例如随机存取存储器(random-access memory,RAM)。存储器是能够用于携带或存储具有指令或数据结构形式的期望的程序代码并能够由计算机存取的任何其他介质,但不限于此。
在本申请所提供的几个实施例中,应该理解到,所揭露的装置和方法,可以通过其它的方式实现。例如,以上所描述的装置实施例仅仅是示意性的,例如,所述单元的划分,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式,例如多个单元或组件可以结合或者可以集成到另一个***,或一些特征可以忽略,或不执行。另一点,所显示或讨论的相互之间的耦合或直接耦合或通信连接可以是通过一些接口,装置或单元的间接耦合或通信连接,可以是电性,机械或其它的形式。
所述作为分离部件说明的单元可以是或者也可以不是物理上分开的,作为单元显示的部件可以是或者也可以不是物理单元,即可以位于一个地方,或者也可以分布到多个网络单元上。可以根据实际的需要选择其中的部分或者全部单元来实现本实施例方案的目的。
另外,在本申请各个实施例中的各功能单元可以集成在一个处理单元中,也可以是各个单元单独物理存在,也可以两个或两个以上单元集成在一个单元中。上述集成的单元既可以采用硬件的形式实现,也可以采用硬件加软件功能单元的形式实现。
本领域普通技术人员可以理解,在本申请的各种实施例中,上述各过程的序号的大小并不意味着执行顺序的先后,各过程的执行顺序应以其功能和内在逻辑确定,而不应对本申请实施例的实施过程构成任何限定。
在上述各实施例中,可以全部或部分地通过软件、硬件、固件或者其任意组合来实现。当使用软件实现时,可以全部或部分地以计算机程序产品的形式实现。所述计算机程序产品包括一个或多个计算机指令。在计算机上加载和执行所述计算机程序指令时,全部或部分地产生按照本申请实施例所述的流程或功能。所述计算机可以是通用计算机、专用计算机、计算机网络、或者其他可编程装置。所述计算机指令可以存储在计算机可读存储介质中,或者从一个计算机可读存储介质向另一个计算机可读存储介质传输,例如,所述计算机指令可以从一个网站站点、计算机、服务器或数据中心通过有线(例如同轴电缆、光纤、数字用户线(DSL))或无线(例如红外、无线、微波等)方式向另一个网站站点、计算机、服务器或数据中心进行传输。所述计算机可读存储介质可以是计算机能够存取的任何可用介质或者是包含一个或多个可用介质集成的服务器、数据中心等数据存储设备。所述可用介质可以是磁性介质,(例如,软盘、硬盘、磁带)、光介质(例如,DVD)、或者半导体介质(例如固态硬盘Solid State Disk(SSD))等。

Claims (31)

  1. 一种频点测量方法,其特征在于,包括:
    通信设备接收网络设备发送的测量配置消息;其中,所述测量配置消息中包括:待测的各目标频点所属频点分组的标识,以及各所述频点分组对应的至少一个测量间隔比例;各所述频点分组的总数小于或等于所述通信设备所支持的频点分组的最大个数;
    所述通信设备根据各所述目标频点所属频点分组的标识以及各所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
  2. 根据权利要求1所述的方法,其特征在于,所述通信设备根据各所述目标频点所属频点分组的标识以及各所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
    所述通信设备根据各所述目标频点所属频点分组的标识,将各所述目标频点划分为不同的频点分组;
    对于任意所述频点分组,所述通信设备根据所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
  3. 根据权利要求2所述的方法,其特征在于,若所述频点分组对应多个测量间隔比例,则所述通信设备根据所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
    所述通信设备根据所述网络设备发送的测量间隔比例指示信息,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例;其中,所述测量间隔比例指示信息用于指示所述频点分组对应的目标测量间隔比例;
    所述通信设备根据所述频点分组对应的目标测量间隔比例,在共享的测量间隔上进行频点测量。
  4. 根据权利要求3所述的方法,其特征在于,若所述测量间隔比例指示信息包括所述频点分组对应的目标测量间隔比例的标识,则所述通信设备根据所述网络设备发送的测量间隔比例指示信息,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例,包括:
    所述通信设备根据所述频点分组对应的目标测量间隔比例的标识,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例。
  5. 根据权利要求3所述的方法,其特征在于,若所述测量间隔比例指示信息包括所述频点分组对应的不同测量间隔比例所对应的信号强度阈值,则所述通信设备根据所述网络设备发送的测量间隔比例指示信息,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例,包括:
    所述通信设备根据服务小区的信号强度以及所述频点分组对应的不同测量间隔比例所对应的信号强度阈值,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例。
  6. 根据权利要求2所述的方法,其特征在于,所述通信设备根据所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
    所述通信设备根据预设频点类型将所述频点分组划分为不同的子频点分组;
    对于所述频点分组中的任意所述子频点分组,所述通信设备根据所述频点分组对应的测量间隔比例以及所述子频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,所述子频点分组对应的测量间隔比例为***预设的测量间隔比例或者为所述网络设备配置的测量间隔比例。
  7. 根据权利要求2所述的方法,其特征在于,若所述目标频点所属频点分组的标识用于指示所述目标频点所属预设频点类型中的分组标识,所述通信设备根据各所述目标频点所属频点分组的标识,将各所述目标频点划分为不同的频点分组,包括:
    所述通信设备根据预设频点类型将各所述目标频点划分为不同的第一频点分组;
    对于任意所述第一频点分组,所述通信设备根据各所述目标频点所属预设频点类型中的分组标识,将所述第一频点分组划分为不同的第二频点分组;
    对应地,对于任意所述频点分组,所述通信设备根据所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量,包括:
    对于任意所述第一频点分组中的任意所述第二频点分组,所述通信设备根据所述第一频点分组对应的测量间隔比例以及所述第二频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,所述第一频点分组对应的测量间隔比例为***预设的测量间隔比例或者为所述网络设备配置的测量间隔比例。
  8. 根据权利要求1-7中任一项所述的方法,其特征在于,所述方法还包括:
    所述通信设备向所述网络设备发送终端能力消息;其中,所述终端能力消息中包括所述通信设备支持的频点分组的最大个数。
  9. 根据权利要求3-5中任一项所述的方法,其特征在于,任意所述频点分组对应的测量性能的缩放因子等于所述频点分组对应的目标测量间隔比例的倒数。
  10. 根据权利要求6所述的方法,其特征在于,任意所述频点分组中的任意所述子频点分组对应的测量性能的缩放因子等于:所述频点分组对应的测量间隔比例的倒数,与所述子频点分组对应的测量间隔比例的倒数之间的乘积。
  11. 根据权利要求7所述的方法,其特征在于,任意所述第一频点分组中的任意所述第二频点分组对应的测量性能的缩放因子等于:所述第一频点分组对应的测量间隔比例的倒数,与所述第二频点分组对应的测量间隔比例的倒数之间的乘积。
  12. 一种频点测量方法,其特征在于,包括:
    网络设备获取通信设备所支持的频点分组的最大个数;
    所述网络设备向所述通信设备发送测量配置消息;其中,所述测量配置消息中包括:各待测的目标频点所属频点分组的标识,以及各所述频点分组对应的至少一个测量间隔比例;各所述频点分组的总数小于或等于所述通信设备所支持的频点分组的最大个数。
  13. 根据权利要求12所述的方法,其特征在于,若所述频点分组对应多个测量间隔比例,所述方法还包括:
    所述网络设备向所述通信设备发送测量间隔比例指示信息;其中,所述测量间隔比例指示信息用于指示所述频点分组对应的目标测量间隔比例。
  14. 一种通信设备,其特征在于,包括:
    收发模块,用于接收网络设备发送的测量配置消息;其中,所述测量配置消息中包括:待测的各目标频点所属频点分组的标识,以及各所述频点分组对应的至少一个测量间隔比例;各所述频点分组的总数小于或等于所述通信设备所支持的频点分组的最大个数;
    处理模块,用于根据各所述目标频点所属频点分组的标识以及各所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
  15. 根据权利要求14所述的通信设备,其特征在于,所述处理模块具体用于:
    根据各所述目标频点所属频点分组的标识,将各所述目标频点划分为不同的频点分组;
    对于任意所述频点分组,根据所述频点分组对应的至少一个测量间隔比例,在共享的测量间隔上进行频点测量。
  16. 根据权利要求15所述的通信设备,其特征在于,若所述频点分组对应多个测量间隔比例,所述处理模块具体用于:
    根据所述网络设备发送的测量间隔比例指示信息,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例;其中,所述测量间隔比例指示信息用于指示所述频点分组对应的目标测量间隔比例;
    根据所述频点分组对应的目标测量间隔比例,在共享的测量间隔上进行频点测量。
  17. 根据权利要求16所述的通信设备,其特征在于,若所述测量间隔比例指示信息包括所述频点分组对应的目标测量间隔比例的标识,所述处理模块具体用于:
    根据所述频点分组对应的目标测量间隔比例的标识,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例。
  18. 根据权利要求16所述的通信设备,其特征在于,若所述测量间隔比例指示信息包括所述频点分组对应的不同测量间隔比例所对应的信号强度阈值,所述处理模块具体用于:
    根据服务小区的信号强度以及所述频点分组对应的不同测量间隔比例所对应的信号强度阈值,从所述频点分组对应的多个测量间隔比例中确定所述频点分组对应的目标测量间隔比例。
  19. 根据权利要求15所述的通信设备,其特征在于,所述处理模块具体用于:
    根据预设频点类型将所述频点分组划分为不同的子频点分组;
    对于所述频点分组中的任意所述子频点分组,根据所述频点分组对应的测量间隔比例以及所述子频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,所述子频点分组对应的测量间隔比例为***预设的测量间隔比例或者为所述网络设备配置的测量间隔比例。
  20. 根据权利要求15所述的通信设备,其特征在于,若所述目标频点所属频点分组的标识用于指示所述目标频点所属预设频点类型中的分组标识,所述处理模块具体用于:
    根据预设频点类型将各所述目标频点划分为不同的第一频点分组;
    对于任意所述第一频点分组,根据各所述目标频点所属预设频点类型中的分组标识,将所述第一频点分组划分为不同的第二频点分组;
    对于任意所述第一频点分组中的任意所述第二频点分组,根据所述第一频点分组对应的测量间隔比例以及所述第二频点分组对应的测量间隔比例,在共享的测量间隔上进行频点测量;其中,所述第一频点分组对应的测量间隔比例为***预设的测量间隔比例或者为所述网络设备配置的测量间隔比例。
  21. 根据权利要求14-20中任一项所述的通信设备,其特征在于,所述收发模块还用于:向所述网络设备发送终端能力消息;其中,所述终端能力消息中包括所述通信设备支持的频点分组的最大个数。
  22. 根据权利要求16-18中任一项所述的通信设备,其特征在于,任意所述频点分组对应的测量性能的缩放因子等于所述频点分组对应的目标测量间隔比例的倒数。
  23. 根据权利要求19所述的通信设备,其特征在于,任意所述频点分组中的任意所述子频点分组对应的测量性能的缩放因子等于:所述频点分组对应的测量间隔比例的倒数,与所述子频点分组对应的测量间隔比例的倒数之间的乘积。
  24. 根据权利要求20所述的通信设备,其特征在于,任意所述第一频点分组中的任意所述第二频点分组对应的测量性能的缩放因子等于:所述第一频点分组对应的测量间隔比例的倒数,与所述第二频点分组对应的测量间隔比例的倒数之间的乘积。
  25. 一种网络设备,其特征在于,包括:
    处理模块,用于获取通信设备所支持的频点分组的最大个数;
    收发模块,用于向所述通信设备发送测量配置消息;其中,所述测量配置消息中包括:各待测的目标频点所属频点分组的标识,以及各所述频点分组对应的至少一个测量间隔比例;各所述频点分组的总数小于或等于所述通信设备所支持的频点分组的最大个数。
  26. 根据权利要求25所述的网络设备,其特征在于,若所述频点分组对应多个测量间隔比例,所述收发模块还用于:向所述通信设备发送测量间隔比例指示信息;其中,所述测量间隔比例指示信息用于指示所述频点分组对应的目标测量间隔比例。
  27. 一种计算机可读存储介质,其上存储有计算机程序,其特征在于,所述计算机程序被处理器执行时实现如权利要求1至11中任一项所述的方法。
  28. 一种计算机可读存储介质,其上存储有计算机程序,其特征在于,所述计算机程序被处理器执行时实现如权利要求12至13中任一项所述的方法。
  29. 一种频点测量装置,包括存储器、处理器及存储在所述存储器上并可在所述处理器上运行的程序,其特征在于,所述处理器执行所述程序时实现权利要求1至11中任一项所述的方法。
  30. 一种频点测量装置,包括存储器、处理器及存储在所述存储器上并可在所述处理器上运行的程序,其特征在于,所述处理器执行所述程序时实现权利要求12至13中任一项所述的法。
  31. 一种通信***,其特征在于,包括:
    如权利要求14至24中任一项所述的通信设备,以及如权利要求25至26中任一项所述的网络设备。
PCT/CN2020/084421 2019-04-25 2020-04-13 频点测量方法、装置以及存储介质 WO2020216088A1 (zh)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
CN201910340560.4A CN111866925B (zh) 2019-04-25 2019-04-25 频点测量方法、装置以及存储介质
CN201910340560.4 2019-04-25

Publications (1)

Publication Number Publication Date
WO2020216088A1 true WO2020216088A1 (zh) 2020-10-29

Family

ID=72941006

Family Applications (1)

Application Number Title Priority Date Filing Date
PCT/CN2020/084421 WO2020216088A1 (zh) 2019-04-25 2020-04-13 频点测量方法、装置以及存储介质

Country Status (2)

Country Link
CN (1) CN111866925B (zh)
WO (1) WO2020216088A1 (zh)

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2023123118A1 (zh) * 2021-12-29 2023-07-06 北京小米移动软件有限公司 一种测量间隙Gap的配置方法和装置

Families Citing this family (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN116584134A (zh) * 2020-12-16 2023-08-11 Oppo广东移动通信有限公司 测量参数的确定方法、终端设备、芯片和存储介质
WO2022266966A1 (zh) * 2021-06-24 2022-12-29 Oppo广东移动通信有限公司 测量方法、测量配置方法、终端设备和网络设备
CN116746205A (zh) * 2022-01-11 2023-09-12 北京小米移动软件有限公司 信息处理方法及装置、通信设备及存储介质

Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106416350A (zh) * 2014-02-24 2017-02-15 英特尔Ip公司 测量间隙模式
US20180049080A1 (en) * 2016-08-11 2018-02-15 Nokia Solutions And Networks Oy Network controlled sharing of measurement gaps for intra and inter frequency measurements for wireless networks

Family Cites Families (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN105657730B (zh) * 2014-12-04 2019-02-05 ***通信集团公司 一种小区测量方法及装置
CN108366379A (zh) * 2017-01-26 2018-08-03 北京三星通信技术研究有限公司 测量能力上报和配置的方法、用户设备和基站
CN109151922B (zh) * 2017-06-16 2021-05-14 华为技术有限公司 测量方法、测量配置方法和相关设备
CN109413671A (zh) * 2017-08-17 2019-03-01 维沃移动通信有限公司 一种测量配置方法、基站及终端

Patent Citations (2)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
CN106416350A (zh) * 2014-02-24 2017-02-15 英特尔Ip公司 测量间隙模式
US20180049080A1 (en) * 2016-08-11 2018-02-15 Nokia Solutions And Networks Oy Network controlled sharing of measurement gaps for intra and inter frequency measurements for wireless networks

Non-Patent Citations (3)

* Cited by examiner, † Cited by third party
Title
ERICSSON: "Scaling for measurements of multiple frequency layers with gaps", 3GPP DRAFT; R4-1712486, 1 December 2017 (2017-12-01), Reno, USA, pages 1 - 4, XP051374111 *
NOKIA; NOKIA SHANGHAI BELL: "Discussion on inter-frequency measurement requirements", 3GPP DRAFT; R4-1806641, 25 May 2018 (2018-05-25), Busan, Korea, pages 1 - 5, XP051531151 *
SAMSUNG: "Discussion on Gap Sharing for UE Measurements in NE-DC", 3GPP DRAFT; R4-1903354, 12 April 2019 (2019-04-12), Xi’an, China, pages 1 - 4, XP051713784 *

Cited By (1)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2023123118A1 (zh) * 2021-12-29 2023-07-06 北京小米移动软件有限公司 一种测量间隙Gap的配置方法和装置

Also Published As

Publication number Publication date
CN111866925B (zh) 2022-01-14
CN111866925A (zh) 2020-10-30

Similar Documents

Publication Publication Date Title
WO2020216088A1 (zh) 频点测量方法、装置以及存储介质
JP7206263B2 (ja) 情報伝送方法、端末装置、およびネットワーク装置
US20210091900A1 (en) Communication method and communications apparatus
US20220322105A1 (en) Methods and apparatuses for signal transmission, signal measurement reporting, and positioning
US11129191B2 (en) Signal transmission method and device
CN110999376B (zh) 一种通信方法和装置,测量方法和测量装置,存储介质
US20190261332A1 (en) Control Information Detection Method, Control Information Sending Method, And Device
CN112187423B (zh) 信号传输方法及装置
WO2018058456A1 (zh) 信道状态信息参考信号发送方法与接收方法及设备
US11026288B2 (en) Discontinuous reception method, terminal, and network device
WO2019223659A1 (zh) 一种信号传输方法及装置
US20190053212A1 (en) Information Indication Method And Related Device
CN111093293A (zh) 一种天线信号的处理方法及装置
TWI802945B (zh) 通訊方法、裝置及系統
WO2022063261A1 (zh) 一种上行参考信号的关联方法及通信装置
JP2021530161A (ja) 通信方法及び通信機器
JP2019525545A (ja) 周波数帯処理方法及び装置
CN115334599A (zh) 一种小区切换及其控制方法及装置
WO2017166389A1 (zh) 一种资源分配指示的方法、设备及***
TW202008827A (zh) 資源配置的方法、終端設備和網路設備
WO2018202027A1 (zh) 子载波间隔类型的确定方法、装置
US20180103483A1 (en) Data transmission method and apparatus
WO2018127177A1 (zh) 一种通知通信设备的能力信息的方法及设备
WO2020192719A1 (zh) 更新波束的方法与通信装置
US20220086802A1 (en) Method for demodulating shared reference signal, terminal device, and network device

Legal Events

Date Code Title Description
121 Ep: the epo has been informed by wipo that ep was designated in this application

Ref document number: 20794165

Country of ref document: EP

Kind code of ref document: A1

NENP Non-entry into the national phase

Ref country code: DE

122 Ep: pct application non-entry in european phase

Ref document number: 20794165

Country of ref document: EP

Kind code of ref document: A1