WO2022183507A1 - 一种测量间隔增强的方法及装置、终端设备、网络设备 - Google Patents
一种测量间隔增强的方法及装置、终端设备、网络设备 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
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- H04W36/00—Hand-off or reselection arrangements
- H04W36/0005—Control or signalling for completing the hand-off
- H04W36/0083—Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
- H04W36/0085—Hand-off measurements
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Definitions
- the embodiments of the present application relate to the field of mobile communication technologies, and in particular, to a method and apparatus for enhancing a measurement interval, a terminal device, and a network device.
- the network may configure a specific time window for the terminal device, and the terminal device performs measurement within the specific time window, thereby performing mobility handover based on the measurement result.
- a specific time window is called a Measurement Gap (MG), which can also be referred to as a gap (gap).
- MG Measurement Gap
- a network configures a measurement interval for a terminal device, only one measurement interval can be configured in a period. The duration of 1 measurement interval is limited, resulting in lower measurement efficiency.
- Embodiments of the present application provide a method and apparatus for enhancing measurement interval, terminal equipment, and network equipment.
- the terminal device receives configuration information of a coexistence measurement interval, the coexistence measurement interval includes a plurality of measurement intervals, wherein the plurality of measurement intervals are configured within the first time period and/or the plurality of measurement intervals are used for the second measurements over time.
- the apparatus for enhancing the measurement interval provided by the embodiment of the present application is applied to terminal equipment, and the apparatus includes:
- a receiving unit configured to receive configuration information of a coexistence measurement interval, where the coexistence measurement interval includes a plurality of measurement intervals, wherein the plurality of measurement intervals are configured within the first time period and/or the plurality of measurement intervals are used for measurements during the second time period.
- the network device sends configuration information of a coexistence measurement interval, the coexistence measurement interval includes a plurality of measurement intervals, wherein the plurality of measurement intervals are configured within the first time period and/or the plurality of measurement intervals are used for the second measurements over time.
- the device for enhancing the measurement interval provided by the embodiment of the present application is applied to network equipment, and the device includes:
- a sending unit configured to send configuration information of a coexistence measurement interval, where the coexistence measurement interval includes multiple measurement intervals, wherein the multiple measurement intervals are configured within the first time period and/or the multiple measurement intervals are used for measurements during the second time period.
- the terminal device provided by the embodiments of the present application includes a processor and a memory.
- the memory is used for storing a computer program
- the processor is used for calling and running the computer program stored in the memory to execute the above-mentioned method for enhancing the measurement interval.
- the network device provided by the embodiments of the present application includes a processor and a memory.
- the memory is used for storing a computer program
- the processor is used for calling and running the computer program stored in the memory to execute the above-mentioned method for enhancing the measurement interval.
- the chip provided by the embodiment of the present application is used to implement the above-mentioned method for enhancing the measurement interval.
- the chip includes: a processor for invoking and running a computer program from the memory, so that the device installed with the chip executes the above-mentioned method for enhancing the measurement interval.
- the computer-readable storage medium provided by the embodiment of the present application is used for storing a computer program, and the computer program enables a computer to execute the above-mentioned method for enhancing the measurement interval.
- the computer program product provided by the embodiments of the present application includes computer program instructions, and the computer program instructions cause a computer to execute the above-mentioned method for enhancing the measurement interval.
- the computer program provided by the embodiments of the present application when running on a computer, causes the computer to execute the above-mentioned method for enhancing the measurement interval.
- the network configures the coexistence measurement interval for the terminal device, and the coexistence measurement interval includes multiple measurement intervals, so that the terminal device can use multiple measurement intervals for measurement.
- the duration of the interval may cover multiple reference signal measurement time windows or multiple reference signals, thereby improving measurement efficiency.
- FIG. 1 is a schematic diagram of a communication system architecture provided by an embodiment of the present application.
- FIG. 2 is a schematic flowchart of a method for enhancing measurement interval provided by an embodiment of the present application
- FIG. 3 is a schematic structural diagram 1 of a device for enhancing measurement interval provided by an embodiment of the present application
- FIG. 4 is a schematic diagram 2 of the structural composition of the device for enhancing the measurement interval provided by the embodiment of the present application;
- FIG. 5 is a schematic structural diagram of a communication device provided by an embodiment of the present application.
- FIG. 6 is a schematic structural diagram of a chip according to an embodiment of the present application.
- FIG. 7 is a schematic block diagram of a communication system provided by an embodiment of the present application.
- LTE Long Term Evolution
- FDD Frequency Division Duplex
- TDD Time Division Duplex
- 5G communication systems or future communication systems etc.
- the communication system 100 may include a network device 110, and the network device 110 may be a device that communicates with a terminal 120 (or referred to as a communication terminal, a terminal).
- the network device 110 may provide communication coverage for a particular geographic area and may communicate with terminals located within the coverage area.
- the network device 110 may be an evolved base station (Evolutional Node B, eNB or eNodeB) in an LTE system, or a wireless controller in a cloud radio access network (Cloud Radio Access Network, CRAN), or the
- the network device can be a mobile switching center, a relay station, an access point, a vehicle-mounted device, a wearable device, a hub, a switch, a bridge, a router, a network-side device in a 5G network, or a network device in a future communication system.
- the communication system 100 also includes at least one terminal 120 located within the coverage of the network device 110 .
- Terminal includes, but is not limited to, connections via wired lines, such as via Public Switched Telephone Networks (PSTN), Digital Subscriber Line (DSL), digital cable, direct cable connections; and/or another data connection/network; and/or via a wireless interface, e.g. for cellular networks, Wireless Local Area Networks (WLAN), digital television networks such as DVB-H networks, satellite networks, AM-FM A broadcast transmitter; and/or a device of another terminal configured to receive/transmit a communication signal; and/or an Internet of Things (IoT) device.
- PSTN Public Switched Telephone Networks
- DSL Digital Subscriber Line
- WLAN Wireless Local Area Networks
- WLAN Wireless Local Area Networks
- digital television networks such as DVB-H networks, satellite networks, AM-FM A broadcast transmitter
- IoT Internet of Things
- a terminal arranged to communicate through a wireless interface may be referred to as a "wireless communication terminal", “wireless terminal” or “mobile terminal”.
- mobile terminals include, but are not limited to, satellite or cellular telephones; Personal Communications System (PCS) terminals that may combine cellular radio telephones with data processing, facsimile, and data communications capabilities; may include radio telephones, pagers, Internet/Intranet PDAs with networking access, web browsers, memo pads, calendars, and/or Global Positioning System (GPS) receivers; and conventional laptop and/or palmtop receivers or others including radiotelephone transceivers electronic device.
- PCS Personal Communications System
- GPS Global Positioning System
- a terminal may refer to an access terminal, user equipment (UE), subscriber unit, subscriber station, mobile station, mobile station, remote station, remote terminal, mobile device, user terminal, terminal, wireless communication device, user agent, or user device.
- the access terminal may be a cellular phone, a cordless phone, a Session Initiation Protocol (SIP) phone, a Wireless Local Loop (WLL) station, a Personal Digital Assistant (PDA), a wireless communication Functional handheld devices, computing devices or other processing devices connected to wireless modems, in-vehicle devices, wearable devices, terminals in 5G networks or terminals in future evolved PLMNs, etc.
- SIP Session Initiation Protocol
- WLL Wireless Local Loop
- PDA Personal Digital Assistant
- direct terminal (Device to Device, D2D) communication may be performed between the terminals 120 .
- the 5G communication system or the 5G network may also be referred to as a new radio (New Radio, NR) system or an NR network.
- New Radio NR
- NR New Radio
- FIG. 1 exemplarily shows one network device and two terminals.
- the communication system 100 may include multiple network devices, and the coverage of each network device may include other numbers of terminals. This embodiment of the present application This is not limited.
- the communication system 100 may further include other network entities such as a network controller and a mobility management entity, which are not limited in this embodiment of the present application.
- network entities such as a network controller and a mobility management entity, which are not limited in this embodiment of the present application.
- a device having a communication function in the network/system may be referred to as a communication device.
- the communication device may include a network device 110 and a terminal 120 with a communication function, and the network device 110 and the terminal 120 may be the specific devices described above, which will not be repeated here;
- the device may further include other devices in the communication system 100, such as other network entities such as a network controller and a mobility management entity, which are not limited in this embodiment of the present application.
- the network can configure the terminal device to measure the reference signal of the target neighbor cell within a specific time window, where the target neighbor cell can be an intra-frequency neighbor cell, an inter-frequency neighbor cell, or a different network neighbor cell.
- the measurement quantity of the reference signal may be Reference Signal Received Power (RSRP), or Reference Signal Received Quality (RSRQ), or Signal to Interference plus Noise Ratio (Signal to Interference plus Noise). Ratio, SINR).
- RSRP Reference Signal Received Power
- RSRQ Reference Signal Received Quality
- SINR Signal to Interference plus Noise Ratio
- FR Frequency range
- FR1 and FR2 the corresponding frequency ranges of FR1 and FR2 are shown in Table 1 below, FR1 is also called sub 6GHz frequency band, FR2 is also called millimeter wave band. It should be noted that the frequency ranges corresponding to FR1 and FR2 are not limited to the frequency ranges shown in Table 1, and can also be adjusted.
- the terminal device According to whether the terminal device supports the ability of FR1 and FR2 to work independently, there are two types of gaps for the measurement interval, one is the UE granularity measurement interval (per UE gap), the other is the FR granularity measurement interval (per FR gap), and further , per FR gap is further divided into per FR1 gap and per FR2 gap.
- per UE gap is also called gapUE
- per FR1 gap is also called gapFR1
- per FR2 gap is also called gapFR2.
- the terminal device introduces a capability indication of whether to support FR1 and FR2 to work independently.
- the capability indication is called independentGapConfig.
- the capability indication is used for the network to determine whether the measurement interval of the per FR type can be configured, such as per FR1 gap, per FR2 gap. Specifically, if the capability indication is used to indicate that the terminal device supports FR1 and FR2 to work independently, the network can configure the per FR type measurement interval; if the capability indication is used to indicate that the terminal device does not support FR1 and FR2 to work independently, the network cannot configure For the measurement interval of the per FR type, only the measurement interval of the per UE type (ie, the per UE gap) can be configured.
- gapFR1 per FR1 gap
- the measurement interval belonging to the per FR1 gap type is only applicable to the measurement of FR1.
- Per FR1 gap and per UE gap do not support simultaneous configuration.
- E-UTRA-NR Dual Connectivity (EN-DC) mode the master node (Master Node, MN) is in LTE mode, the secondary node (Secondary Node, SN) is in NR mode, only MN Per FR1 gap can be configured.
- MN Master Node
- SN Secondary Node
- gapFR2 per FR2 gap
- the measurement interval belonging to the per FR2 gap type is only applicable to FR2 measurements.
- Per FR2 gap and per UE gap do not support simultaneous configuration. Both per FR2 gap and per FR1 gap support simultaneous configuration.
- the terminal device can perform independent measurements for FR1 and FR2, and the terminal device can be configured with a measurement interval of the per FR gap type, such as the per FR1 gap type of measurement interval. Measurement interval, per FR2 gap type of measurement interval.
- the measurement interval belonging to the per UE gap type applies to measurements in all frequency bands (including FR1 and FR2).
- MN is LTE standard
- SN is NR standard
- only MN can configure per UE gap. If per UE gap is configured, per FR gap (such as per FR1 gap, per FR2 gap) cannot be configured again.
- the terminal equipment is not allowed to send any data and does not expect to adjust the receivers of the primary and secondary carriers.
- the network configures the measurement configuration (MeasConfig) through RRC dedicated signaling, as shown in Table 2 below.
- MeasConfig includes measurement interval configuration and measurement object configuration, where the measurement interval configuration is measGapConfig, and the measurement object configuration is measObjectToAddModList.
- the configuration information of a measurement interval includes: measurement interval offset (ie gapOffset), period of measurement interval (ie MGRP), duration of measurement interval (ie MGL).
- the measurement interval offset is used to determine the starting point of the measurement interval.
- the type of a measurement interval can be per UE gap, or per FR1 gap, or per FR2 gap.
- 24 patterns of measurement intervals (referred to as interval patterns for short) are supported, and different interval patterns correspond to different MGRPs and/or MGLs.
- Some spacing patterns are used for FR1 measurement, corresponding to per FR1 gap; some spacing patterns are used for FR2 measurement, corresponding to per FR2 gap.
- spacing patterns for measuring Positioning Reference Signal can be introduced.
- PRS Positioning Reference Signal
- Table 5 which gives the spacing The patterns are identified as two spacing patterns of 24 and 25, which are used to measure the PRS.
- the configuration information of a measurement object can be configured with the SMTC associated with the measurement object, and the configuration of the SMTC can support ⁇ 5, 10, 20, 40, 80, 160
- the period of ⁇ ms, and the window length of ⁇ 1,2,3,4,5 ⁇ ms, the time offset (time offset) of SMTC is strongly correlated with the period, and the value is ⁇ 0,...,period-1, ⁇ . Since the carrier frequency is no longer included in the measurement object, the SMTC can be configured independently for each MO instead of each frequency.
- one frequency layer can be configured with two SMTCs (SMTC and SMTC2), and the two SMTCs have the same time offset but different periods.
- SMTC and SMTC2 For inter-frequency measurement in the RRC connected state, only one SMTC is configured. It can be seen that SMTC2 only supports configuration for co-frequency measurement. It should be pointed out that the period of SMTC2 is shorter than that of SMTC; the time offset of SMTC2 can follow that of SMTC.
- SMTC can be configured independently for each MO instead of each frequency point, which leads to a measurement interval that often cannot cover the time windows of multiple SMTCs or multiple reference signals, where multiple SMTCs may belong to different The MOs or belong to the same MO (the case of the same frequency), if you want to realize the measurement in multiple SMTC time windows or realize the measurement of multiple reference signals, a long measurement time is required, resulting in low measurement efficiency.
- the following technical solutions of the embodiments of the present application are proposed.
- FIG. 2 is a schematic flowchart of a method for enhancing measurement interval provided by an embodiment of the present application. As shown in FIG. 2 , the method for enhancing measurement interval includes the following steps:
- Step 201 The terminal device receives configuration information of a coexistence measurement interval, where the coexistence measurement interval includes multiple measurement intervals, wherein the multiple measurement intervals are configured within the first time period and/or the multiple measurement intervals are used for measurements during the second time period.
- the network device sends configuration information of the coexistence measurement interval (concurrent gap), and correspondingly, the terminal device receives the configuration information of the coexistence measurement gap.
- the coexistence measurement interval includes multiple measurement intervals. Here, a plurality of measurement intervals have a coexistence relationship.
- the coexistence relationship between multiple measurement intervals may be embodied in: the multiple measurement intervals are configured within the first time period.
- the coexistence relationship between multiple measurement intervals may be embodied in: the multiple measurement intervals are used for measurement in the second time period.
- the first time period has one of the following characteristics:
- the time window of the first time period is periodic
- the time window of the first time period is aperiodic.
- the time window of the first time period is aperiodic, for example, the time window of the first time period is triggered once.
- the second time period has at least one of the following characteristics:
- the time window of the second time period covers all of the plurality of measurement intervals
- the time window of the second time period covers a portion of the plurality of measurement intervals
- the start of the time window of the second time period is the start of the first activated measurement interval of the plurality of measurement intervals.
- the second period of time includes the first period of time.
- the gap type of the measurement interval may be per UE gap or per FR gap. Further, per FR gap can be further divided into per FR1 gap and per FR2 gap.
- the interval pattern of the measurement interval may be any one of the interval patterns shown in Table 4 or Table 5, but is not limited thereto, and the interval pattern of the measurement interval may also be other newly introduced interval patterns.
- the multiple measurement intervals are per UE gap.
- the coexistence measurement interval includes measurement interval 1, measurement interval 2, and measurement interval 3.
- the gap types of these three measurement intervals are all per UE gaps.
- the coexistence measurement interval includes three per UE gaps.
- the plurality of measurement intervals are per FR gap.
- the coexistence measurement interval includes measurement interval 1, measurement interval 2, and measurement interval 3.
- the gap types of these three measurement intervals are all per FR gaps.
- the coexistence measurement interval includes three per FR gaps.
- the multiple measurement intervals are per UE gap.
- the coexistence measurement interval includes measurement interval 1, measurement interval 2, and measurement interval 3.
- the gap types of these three measurement intervals are all per UE gaps.
- the coexistence measurement interval includes three per UE gaps.
- the coexistence measurement interval includes measurement interval 1, measurement interval 2, and measurement interval 3.
- the gap types of these three measurement intervals are all per FR gaps.
- the coexistence measurement interval includes three per FR gaps.
- the coexistence measurement interval includes measurement interval 1, measurement interval 2 and measurement interval 3.
- the gap type of measurement interval 1 is per UE gap, and the gap type of measurement interval 2 and measurement interval 3 is per FR gap.
- the coexistence measurement The interval consists of 1 per UE gap and 2 per FR gap.
- the coexistence measurement interval includes measurement interval 1, measurement interval 2 and measurement interval 3.
- the gap type of measurement interval 1 is per FR gap
- the gap type of measurement interval 2 and measurement interval 3 is per UE gap.
- the coexistence measurement The interval consists of 1 per FR gap and 2 per UE gap.
- the network device configures the coexistence measurement interval for the terminal device, it needs to meet the specified restriction.
- the coexistence measurement interval satisfies at least one of the following constraints:
- the total number of measurement intervals in the coexistence measurement interval is less than or equal to the first number
- the number of per UE gaps in the coexistence measurement interval is less than or equal to the second number
- the number of per FR gaps in the coexistence measurement interval is less than or equal to a third number, and the number of per FR gaps is equal to the number of per FR1 gaps plus the number of per FR2 gaps;
- the number of per FR1 gaps in the coexistence measurement interval is less than or equal to a fourth number
- the number of per FR2 gaps in the coexistence measurement interval is less than or equal to the fifth number.
- the above limitation can be embodied by the capability information supported by the terminal device, and the terminal device reports the capability information supported by the terminal device, and the capability information is used to indicate at least one of the following:
- the total number of measurement intervals supported by the terminal device is at most the first number
- the number of per UE gap supported by the terminal device is at most the second number
- the maximum number of per FR gaps supported by the terminal device is a third number
- the number of per FR1 gaps supported by the terminal device is at most the fourth number
- the number of per FR2 gaps supported by the terminal device is at most the fifth number.
- the network device configures a coexistence measurement interval that satisfies the restriction for the terminal device according to the capability information reported by the terminal device. For example: the terminal device reports capability information, which is used to indicate that the terminal device supports a maximum of X per UE gaps, and the terminal device supports a maximum of Y per FR gaps, and X and Y are positive integers; According to the capability information, the network device configures at most X per UE gaps and Y per FR gaps for the terminal device.
- the coexistence measurement interval is configured by different network nodes.
- the following describes how to configure the coexistence measurement interval based on different network scenarios.
- the description of the MN may also be replaced by the primary cell (PCell), and the description of the SN may also be replaced by the primary and secondary cells (PSCell).
- Scenario 1 NR SA scenario
- the multiple measurement intervals are all configured by the MN.
- the first part of the measurement intervals in the multiple measurement intervals is configured by the MN, and the second part of the measurement intervals in the multiple measurement intervals is configured by the secondary node SN configuration.
- the multiple measurement intervals are all configured by the MN.
- the first part of the measurement intervals in the plurality of measurement intervals is configured by the MN, and the second part of the measurement intervals in the plurality of measurement intervals is configured by the SN.
- the multiple measurement intervals are all configured by the MN.
- the MR-DC is an EN-DC
- the MN is of the LTE standard
- the SN is of the NR standard.
- the per UE gap and/or the per FR1 gap in the plurality of measurement intervals is configured by the MN
- the per FR2 gap in the plurality of measurement intervals is configured by the SN.
- the MR-DC is an NE-DC
- the MN is of the NR standard
- the MN is of the LTE standard.
- the per UE gap and/or the per FR2 gap in the plurality of measurement intervals is configured by the MN
- the per FR1 gap in the plurality of measurement intervals is configured by the SN; alternatively, the plurality of measurement intervals Both the per UE gap and/or the per FR gap in the interval are configured by the MN.
- the MN and the SN can communicate with each other.
- the MN and the SN can communicate with each other.
- negotiation some information to better configure the measurement interval. This will be described below.
- the number and/or type of the first part of the measurement interval is notified by the MN to the SN, for the SN to determine the number of configurable measurement intervals and/or or type; or, the number and/or type of the second partial measurement interval is notified to the MN by the SN, for the MN to determine the number and/or type of the measurement interval that can be configured.
- the number and/or type of the first partial measurement interval is used by the MN to determine first suggestion information, and the first suggestion information is notified to the MN by the MN SN, the first suggestion information is used to indicate the number and/or type of measurement intervals that the MN proposes to configure the SN; or, the number and/or type of the second part of the measurement interval is used for the SN determination Second suggestion information, the second suggestion information is notified to the MN by the SN, and the second suggestion information is used to indicate the number and/or type of measurement intervals that the SN recommends the MN to configure.
- the terminal device reports its capability information, where the capability information is used to indicate the number of measurement intervals and the type of measurement intervals supported by the terminal device.
- the number of measurement intervals supported by the terminal device may refer to the foregoing solution, for example, including at least one of the first number, the second number, the third number, the fourth number, and the fifth number.
- the type of measurement interval supported by the terminal device is, for example, per UE gap or per FR gap. If the terminal equipment reports its capability information to the MN, the MN can notify the SN of the capability information.
- the MN may configure the first part of the measurement interval according to the capability information of the terminal device, and then notify the SN of the number and/or type of the first part of the measurement interval.
- the number and/or type of measurement intervals configured to configure the second portion of measurement intervals.
- the coexistence measurement interval formed by the first part of the measurement interval configured by the MN and the second part of the measurement interval configured by the SN satisfies the restriction indicated by the capability information of the terminal device.
- the MN may configure the first part of the measurement interval according to the capability information of the terminal device, and then determine the number and/or type of the measurement interval that the SN can configure according to the number and/or type of the first part of the measurement interval; the MN sends the first suggestion information to the SN , which is used to indicate the number and/or type of measurement intervals that the MN proposes to configure the SN.
- the SN can configure the second part of the measurement interval according to the capability information of the terminal device, and then notify the MN of the number and/or type of the second part of the measurement interval, and the MN can configure the second part of the measurement interval according to the capability information of the terminal device and the number of the second part of the measurement interval. and/or type determines the number and/or type of measurement intervals that can be configured to configure the first portion of measurement intervals.
- the coexistence measurement interval formed by the first part of the measurement interval configured by the MN and the second part of the measurement interval configured by the SN satisfies the restriction indicated by the capability information of the terminal device.
- the SN may configure the second part of the measurement interval according to the capability information of the terminal device, and then determine the number and/or type of the measurement interval that the MN can configure according to the number and/or type of the second part of the measurement interval; the SN sends the second part of the measurement interval to the MN.
- Recommendation information used to indicate the number and/or type of measurement intervals that the SN recommends the MN to configure.
- the information exchanged between the MN and the SN may be carried in the configuration information of CG-config or CG-configinfo.
- each measurement interval in the plurality of measurement intervals is associated with a list, and the list includes at least one of the following: a frequency list, a frequency band list, and a measurement object list ;
- the association relationship between each measurement interval in the first part of the measurement interval and the list is notified by the MN to the SN, for the SN to combine each measurement interval in the second part of the measurement interval with the list. and/or, the association relationship between each measurement interval in the second part of the measurement interval and the list is notified to the MN by the SN, for the The MN re-determines the measurement interval associated with each list in combination with the association relationship between each measurement interval in the first part of the measurement interval and the list.
- the first part of the measurement interval configured by the MN includes measurement interval 1, measurement interval 2 and measurement interval 3; among them, measurement interval 1 is per FR1 gap, associated frequency list 1 or measurement object list 1; measurement interval 2 is per FR1 gap, The associated frequency list 2 or the measurement object list 2; the measurement interval 3 is per UE gap, and the associated frequency list 3 or the measurement object list 3.
- the second part of the measurement interval of the SN configuration includes measurement interval 4, which is per FR2 gap, associated frequency list 4 or measurement object list 4.
- the multiple coexisting measurement intervals may be configured according to different basis, which will be described below.
- Solution A The multiple measurement intervals are configured according to the reference signal measurement time window of the measurement object.
- the measurement interval is used for SSB measurement, and the multiple measurement intervals are configured according to the SMTC of the measurement object.
- the SMTC is used to determine the SSB measurement time window.
- the measurement interval is also applicable to the measurement of other reference signals such as CSI-RS, or PRS, etc.
- the reference signal measurement time window may be a corresponding CSI-RS measurement time window, or a PRS measurement time window, or the like.
- the reference signal measurement time window as the SMTC (that is, the SSB measurement time window) as an example, but it is not limited to this, and the reference signal measurement time window can also be other reference signals.
- Measurement time window such as CSI-RS measurement time window, PRS measurement time window, etc.
- the plurality of measurement objects are grouped according to the period of the reference signal measurement time window of the plurality of measurement objects, and a measurement interval associated with the group of measurement objects is configured for each group of measurement objects.
- multiple groups of measurement objects are allowed to be associated with the same measurement interval.
- the period of the SMTC of the measurement object 1 and the measurement object 2 are both 20ms, and the periods of the SMTC of the measurement object 3 and the measurement object 4 are both 40ms.
- the measurement object 1 and the measurement object 2 are grouped into a group, a measurement interval 1 is configured for the group of measurement objects, and the MGL of the measurement interval 1 can be 20ms.
- the measurement object 3 and the measurement object 4 are grouped into a group, a measurement interval 2 is configured for this group of measurement objects, and the MGL of the measurement interval 2 can be 40ms.
- the plurality of measurement objects are grouped according to the time offsets of the reference signal measurement time windows of the plurality of measurement objects, and a measurement interval associated with the group of measurement objects is configured for each group of measurement objects. Further, optionally, when the periods of the reference signal measurement time windows of the multiple measurement objects are the same, the multiple measurement intervals associated with the multiple groups of measurement objects have the following characteristics: the same period, the same length, and different measurement interval offsets .
- the SMTC periods of measurement object 1, measurement object 2, measurement object 3, and measurement object 4 are all the same, for example, 20 ms.
- the time offset of the SMTC of the measurement object 1 and the measurement object 2 is ⁇ 1
- the time offset of the SMTC of the measurement object 3 and the measurement object 4 is ⁇ 2.
- Group measurement object 1 and measurement object 2 into a group, and configure a measurement interval 1 for this group of measurement objects.
- the measurement object 3 and the measurement object 4 are grouped into a group, and a measurement interval 2 is configured for this group of measurement objects.
- the period and length of the measurement interval 1 and the measurement interval 2 are the same, that is, the measurement interval 1 and the measurement interval 2 correspond to the same interval pattern identifier, but the measurement interval offsets of the measurement interval 1 and the measurement interval 2 are different.
- Solution B The multiple measurement intervals are configured according to the type of reference signal.
- the type of the reference signal includes at least one of the following: a synchronization signal block (SSB), a channel state indication reference signal (CSI-RS), and a positioning reference signal (PRS).
- SSB synchronization signal block
- CSI-RS channel state indication reference signal
- PRS positioning reference signal
- the terminal device measures SSB and PRS at the same time, the measurement interval for measuring SSB is measurement interval 1, and the measurement interval for measuring PRS is measurement interval 2.
- measurement interval 1 and measurement interval 2 correspond to different interval pattern identifiers.
- Solution C The multiple measurement intervals are configured according to the radio access technology (RAT) type of the network.
- RAT radio access technology
- configure measurement interval 1 for NR which is used for the measurement of NR frequency or NR measurement object.
- Configure measurement interval 2 for LTE which is used for measurement of LTE frequency or NR measurement object.
- configure per FR1 gap for NR FR1 For example: configure per FR1 gap for NR FR1, configure per FR2 gap for NR FR2, and configure per FR1 gap for LTE.
- Solution D The multiple measurement intervals are configured according to a frequency list.
- intra-frequency list 1 intra-frequency list 1
- inter-frequency list 1 intra-frequency list 1
- intra-frequency list 2 intra-frequency list 2
- inter-frequency list 2 inter-frequency list 2
- Scheme E The multiple measurement intervals are configured according to the frequency band list.
- one measurement interval can be configured separately for the unlicensed band.
- Scheme F The multiple measurement intervals are configured according to the measurement object list.
- the configured coexistence measurement interval may be updated (that is, maintained), which will be described below.
- one or more pre-configured measurement intervals may be pre-configured through RRC dedicated signaling, and the pre-configured measurement intervals may be used after being subsequently activated.
- the preconfigured measurement interval is activated and affects the configured coexistence measurement interval.
- the coexistence measurement interval includes the preconfigured measurement interval and the multiple measurement intervals. After the preconfigured measurement interval is deactivated, the coexistence measurement interval includes the plurality of measurement intervals.
- the preconfigured measurement interval when determining whether the coexistence measurement interval meets the limit, the preconfigured measurement interval is not considered, and the preconfigured measurement interval can be directly activated and coexist with multiple configured measurement intervals.
- the coexistence measurement interval includes the preconfigured measurement interval and the multiple measurement intervals; Alternatively, if the preconfigured measurement interval and the plurality of measurement intervals do not meet a specified limit, the coexistence measurement interval is updated based on the priority of the measurement intervals.
- the preconfigured measurement interval is considered. If the preconfigured measurement interval and multiple configured measurement intervals meet the specified limit, the preconfigured measurement interval coexist with the multiple measurement intervals; or, if the preconfigured measurement interval and the configured multiple measurement intervals do not meet the specified limit, the coexistence measurement interval is updated based on the priority of the measurement intervals.
- the specified restrictions include at least one of the following restrictions:
- the total number of the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to the first number
- the preconfigured measurement interval belongs to the per UE gap, and the number of the per UE gap in the preconfigured measurement interval and the multiple measurement intervals is less than or equal to the second number;
- the preconfigured measurement interval belongs to the per FR gap, and the number of the per FR gap in the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to a third number;
- the preconfigured measurement interval belongs to per FR1 gap, and the number of per FR1 gaps in the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to a fourth number;
- the preconfigured measurement interval belongs to the per FR2 gap, and the number of per FR2 gaps in the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to the fifth number.
- the coexistence measurement interval is updated based on the priority of the measurement interval, which can be implemented in the following ways:
- the first measurement interval is discarded, and the coexistence measurement interval includes the preconfigured measurement interval interval and a measurement interval of the plurality of measurement intervals other than the first measurement interval; or,
- the preconfigured measurement interval is discarded, and the coexistence measurement interval includes the plurality of measurements interval.
- the priority of N measurement intervals in the plurality of measurement intervals is lower than the priority of the preconfigured measurement interval, and N is a positive integer; the first measurement interval is the N The measurement interval with the lowest priority among the measurement intervals. In some optional embodiments, the N measurement intervals are of the same gap type as the preconfigured measurement intervals.
- a second measurement interval is added to the coexistence measurement interval.
- the second measurement interval is a previously discarded measurement interval.
- the second measurement interval is of the same gap type as the preconfigured measurement interval.
- the coexistence measurement interval includes the multiple measurement intervals; or, if the multiple measurement intervals do not meet the specified limit, the coexistence measurement interval The interval is updated based on the priority of the measurement interval.
- the specified restrictions include at least one of the following restrictions:
- the total number of the plurality of measurement intervals is less than or equal to the first number
- the number of per UE gaps in the multiple measurement intervals is less than or equal to the second number
- the number of per FR gaps in the plurality of measurement intervals is less than or equal to a third number
- the number of per FR1 gaps in the plurality of measurement intervals is less than or equal to a fourth number
- the number of per FR2 gaps in the plurality of measurement intervals is less than or equal to the fifth number.
- the coexistence measurement interval is updated based on the priority of the measurement interval, which can be implemented in the following ways:
- the first measurement interval determined according to the priority is discarded, and the coexistence measurement interval includes measurement intervals other than the first measurement interval among the plurality of measurement intervals.
- the first measurement interval determined according to the priority refers to: the measurement interval with the lowest priority among the multiple measurement intervals; or, the per UE among the multiple measurement intervals The measurement interval with the lowest priority in the gap; or, the measurement interval with the lowest priority in the per FR gap among the plurality of measurement intervals; or the lowest priority in the per FR1 gap among the plurality of measurement intervals The measurement interval; or, the measurement interval with the lowest priority in the per FR2 gap among the multiple measurement intervals.
- multiple measurement intervals can cover more measurement objects or measure reference signals together, thereby avoiding the complexity and delay caused by reconfiguration, and improving the Efficiency of mobility handoffs. Further, shorter measurement intervals can be configured to reduce throughput loss and impact on existing network and terminal device performance. In addition, based on the coordination between network nodes, it is possible to flexibly match the measurement intervals of some frequency points or measurement objects in batches.
- FIG. 3 is a schematic structural diagram 1 of a device for enhancing measurement interval provided by an embodiment of the present application. As shown in FIG. 3 , which is applied to terminal equipment, the device for enhancing measurement interval includes:
- a receiving unit 301 configured to receive configuration information of a coexistence measurement interval, where the coexistence measurement interval includes a plurality of measurement intervals, wherein the plurality of measurement intervals are configured within a first time period and/or the plurality of measurement intervals for measurements in the second time period.
- the first time period has one of the following characteristics:
- the time window of the first time period is periodic
- the time window of the first time period is aperiodic.
- the second time period has at least one of the following characteristics:
- the time window of the second time period covers all of the plurality of measurement intervals
- the time window of the second time period covers a portion of the plurality of measurement intervals
- the start of the time window of the second time period is the start of the first activated measurement interval of the plurality of measurement intervals.
- the second period of time includes the first period of time.
- the multiple measurement intervals are per UE gap; or,
- the multiple measurement intervals are per FR gap.
- the multiple measurement intervals are per UE gap; or,
- there is at least one per FR gap in the plurality of measurement intervals including:
- a part of the measurement intervals in the multiple measurement intervals is per UE gap, and another part of the measurement intervals is per FR gap; or,
- the multiple measurement intervals are per FR gap.
- the coexistence measurement interval satisfies at least one of the following constraints:
- the total number of measurement intervals in the coexistence measurement interval is less than or equal to the first number
- the number of per UE gaps in the coexistence measurement interval is less than or equal to the second number
- the number of per FR gaps in the coexistence measurement interval is less than or equal to a third number, and the number of per FR gaps is equal to the number of per FR1 gaps plus the number of per FR2 gaps;
- the number of per FR1 gaps in the coexistence measurement interval is less than or equal to a fourth number
- the number of per FR2 gaps in the coexistence measurement interval is less than or equal to the fifth number.
- the apparatus further comprises:
- a sending unit (not shown in the figure), configured to report capability information supported by the terminal device, where the capability information is used to indicate at least one of the following:
- the total number of measurement intervals supported by the terminal device is at most the first number
- the number of per UE gap supported by the terminal device is at most the second number
- the maximum number of per FR gaps supported by the terminal device is a third number
- the number of per FR1 gaps supported by the terminal device is at most the fourth number
- the number of per FR2 gaps supported by the terminal device is at most the fifth number.
- the plurality of measurement intervals are all configured by the MN.
- a first part of the measurement intervals in the plurality of measurement intervals is configured by the MN, and a second part of the measurement intervals in the plurality of measurement intervals is configured by the SN; or,
- the plurality of measurement intervals are all configured by the MN.
- a first part of the measurement intervals in the plurality of measurement intervals is configured by the MN, and a second part of the measurement intervals in the plurality of measurement intervals is configured by the SN; or,
- the plurality of measurement intervals are all configured by the MN.
- MR-DC when the MR-DC is an EN-DC,
- the per UE gap and/or the per FR1 gap in the plurality of measurement intervals is configured by the MN, and the per FR2 gap in the plurality of measurement intervals is configured by the SN.
- the MR-DC is an NE-DC
- the per UE gap and/or the per FR2 gap in the plurality of measurement intervals is configured by the MN, and the per FR1 gap in the plurality of measurement intervals is configured by the SN; or,
- the per UE gap and/or the per FR gap in the multiple measurement intervals are configured by the MN.
- the number and/or type of the first part of the measurement interval is notified by the MN to the SN, for the SN to determine the number and/or type of the measurement interval that can be configured; or,
- the number and/or type of the second part of the measurement interval is notified to the MN by the SN, for the MN to determine the number and/or type of the measurement interval that can be configured.
- the number and/or type of the first partial measurement interval is used by the MN to determine first suggestion information, the first suggestion information is notified by the MN to the SN, and the first suggestion information is notified to the SN by the MN.
- a proposal information is used to indicate the number and/or type of measurement intervals that the MN proposes to configure the SN; or,
- the number and/or type of the second partial measurement interval is used by the SN to determine second advice information, the second advice information is notified to the MN by the SN, and the second advice information is used to indicate the
- the SN proposes the number and/or type of measurement intervals configured by the MN.
- each measurement interval in the plurality of measurement intervals is associated with a list, and the list includes at least one of the following: a frequency list, a frequency band list, and a measurement object list;
- the association relationship between each measurement interval in the first part of the measurement interval and the list is notified by the MN to the SN, so that the SN combines the relationship between each measurement interval in the second part of the measurement interval and the list.
- the association relationship between each measurement interval in the second part of the measurement interval and the list is notified to the MN by the SN, so that the MN combines the relationship between each measurement interval in the first part of the measurement interval and the list
- the association relationship of redetermines the measurement interval associated with each list.
- the multiple measurement intervals are configured according to the reference signal measurement time window of the measurement object.
- the multiple measurement intervals are configured according to the reference signal measurement time window of the measurement object, including:
- the multiple measurement objects are grouped according to the period of the reference signal measurement time window of the multiple measurement objects, and a measurement interval associated with the group of measurement objects is configured for each group of measurement objects.
- the multiple measurement intervals are configured according to the reference signal measurement time window of the measurement object, including:
- the multiple measurement objects are grouped according to the time offsets of the reference signal measurement time windows of the multiple measurement objects, and a measurement interval associated with the group of measurement objects is configured for each group of measurement objects.
- the multiple measurement intervals associated with the multiple groups of measurement objects have the following characteristics: the same period, the same length, and the measurement interval deviation settings are different.
- the multiple measurement intervals are configured according to the type of reference signal.
- the type of the reference signal includes at least one of the following: SSB, CSI-RS, and PRS.
- the multiple measurement intervals are configured according to the RAT type of the network.
- the multiple measurement intervals are configured according to a frequency list.
- the multiple measurement intervals are configured according to a frequency band list.
- the multiple measurement intervals are configured according to a measurement object list.
- the coexistence measurement interval includes the preconfigured measurement interval and the plurality of measurement intervals.
- the coexistence measurement interval includes the plurality of measurement intervals.
- the coexistence measurement interval includes the preconfigured measurement interval and the plurality of measurement intervals; or,
- the coexistence measurement interval is updated based on the priority of the measurement interval.
- the specified restrictions include at least one of the following restrictions:
- the total number of the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to the first number
- the preconfigured measurement interval belongs to the per UE gap, and the number of the per UE gap in the preconfigured measurement interval and the multiple measurement intervals is less than or equal to the second number;
- the preconfigured measurement interval belongs to the per FR gap, and the number of the per FR gap in the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to a third number;
- the preconfigured measurement interval belongs to per FR1 gap, and the number of per FR1 gaps in the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to a fourth number;
- the preconfigured measurement interval belongs to the per FR2 gap, and the number of per FR2 gaps in the preconfigured measurement interval and the plurality of measurement intervals is less than or equal to the fifth number.
- the coexistence measurement interval is updated based on the priority of the measurement interval, including:
- the first measurement interval is discarded, and the coexistence measurement interval includes the preconfigured measurement interval interval and a measurement interval of the plurality of measurement intervals other than the first measurement interval; or,
- the preconfigured measurement interval is discarded, and the coexistence measurement interval includes the plurality of measurements interval.
- the priorities of N measurement intervals in the plurality of measurement intervals are lower than the priorities of the preconfigured measurement intervals, and N is a positive integer;
- the first measurement interval is the measurement interval with the lowest priority among the N measurement intervals.
- the N measurement intervals are of the same gap type as the preconfigured measurement intervals.
- a second measurement interval is added to the coexistence measurement interval.
- the second measurement interval is a previously discarded measurement interval.
- the second measurement interval is of the same gap type as the preconfigured measurement interval.
- the coexistence measurement interval includes the multiple measurement intervals; or,
- the coexistence measurement interval is updated based on the priority of the measurement intervals.
- the specified restrictions include at least one of the following restrictions:
- the total number of the plurality of measurement intervals is less than or equal to the first number
- the number of per UE gaps in the multiple measurement intervals is less than or equal to the second number
- the number of per FR gaps in the plurality of measurement intervals is less than or equal to a third number
- the number of per FR1 gaps in the plurality of measurement intervals is less than or equal to a fourth number
- the number of per FR2 gaps in the plurality of measurement intervals is less than or equal to the fifth number.
- the coexistence measurement interval is updated based on the priority of the measurement interval, including:
- the first measurement interval determined according to the priority is discarded, and the coexistence measurement interval includes measurement intervals other than the first measurement interval among the plurality of measurement intervals.
- the first measurement interval determined according to the priority refers to:
- the measurement interval with the lowest priority among the per FR2 gaps among the plurality of measurement intervals is the measurement interval with the lowest priority among the per FR2 gaps among the plurality of measurement intervals.
- FIG. 4 is a second schematic diagram of the structural composition of an apparatus for enhancing measurement interval provided by an embodiment of the present application. As shown in FIG. 4 , which is applied to network equipment, the apparatus for enhancing measurement interval includes:
- a sending unit 401 configured to send configuration information of a coexistence measurement interval, where the coexistence measurement interval includes multiple measurement intervals, wherein the multiple measurement intervals are configured within a first time period and/or the multiple measurement intervals for measurements in the second time period.
- the multiple measurement intervals are per UE gap; or,
- the multiple measurement intervals are per FR gap.
- the multiple measurement intervals are per UE gap; or,
- there is at least one per FR gap in the plurality of measurement intervals including:
- a part of the measurement intervals in the multiple measurement intervals is per UE gap, and another part of the measurement intervals is per FR gap; or,
- the multiple measurement intervals are per FR gap.
- the plurality of measurement intervals are all configured by the MN.
- a first part of the measurement intervals in the plurality of measurement intervals is configured by the MN, and a second part of the measurement intervals in the plurality of measurement intervals is configured by the SN; or,
- the plurality of measurement intervals are all configured by the MN.
- a first part of the measurement intervals in the plurality of measurement intervals is configured by the MN, and a second part of the measurement intervals in the plurality of measurement intervals is configured by the SN; or,
- the plurality of measurement intervals are all configured by the MN.
- the number and/or type of the first part of the measurement interval is notified by the MN to the SN, for the SN to determine the number and/or type of the measurement interval that can be configured; or,
- the number and/or type of the second part of the measurement interval is notified to the MN by the SN, for the MN to determine the number and/or type of the measurement interval that can be configured.
- the number and/or type of the first partial measurement interval is used by the MN to determine first suggestion information, the first suggestion information is notified by the MN to the SN, and the first suggestion information is notified to the SN by the MN.
- a proposal information is used to indicate the number and/or type of measurement intervals that the MN proposes to configure the SN; or,
- the number and/or type of the second partial measurement interval is used by the SN to determine second advice information, the second advice information is notified to the MN by the SN, and the second advice information is used to indicate the
- the SN proposes the number and/or type of measurement intervals configured by the MN.
- FIG. 5 is a schematic structural diagram of a communication device 500 provided by an embodiment of the present application.
- the communication device may be a terminal device or a network device.
- the communication device 500 shown in FIG. 5 includes a processor 510, and the processor 510 may call and run a computer program from a memory to implement the methods in the embodiments of the present application.
- the communication device 500 may further include a memory 520 .
- the processor 510 may call and run a computer program from the memory 520 to implement the methods in the embodiments of the present application.
- the memory 520 may be a separate device independent of the processor 510 , or may be integrated in the processor 510 .
- the communication device 500 may further include a transceiver 530, and the processor 510 may control the transceiver 530 to communicate with other devices, specifically, may send information or data to other devices, or receive other devices Information or data sent by a device.
- the transceiver 530 may include a transmitter and a receiver.
- the transceiver 530 may further include antennas, and the number of the antennas may be one or more.
- the communication device 500 may specifically be a network device in this embodiment of the present application, and the communication device 500 may implement the corresponding processes implemented by the network device in each method in the embodiment of the present application. For brevity, details are not repeated here. .
- the communication device 500 may specifically be the mobile terminal/terminal device of the embodiments of the present application, and the communication device 500 may implement the corresponding processes implemented by the mobile terminal/terminal device in each method of the embodiments of the present application. , and will not be repeated here.
- FIG. 6 is a schematic structural diagram of a chip according to an embodiment of the present application.
- the chip 600 shown in FIG. 6 includes a processor 610, and the processor 610 can call and run a computer program from a memory, so as to implement the method in this embodiment of the present application.
- the chip 600 may further include a memory 620 .
- the processor 610 may call and run a computer program from the memory 620 to implement the methods in the embodiments of the present application.
- the memory 620 may be a separate device independent of the processor 610 , or may be integrated in the processor 610 .
- the chip 600 may further include an input interface 630 .
- the processor 610 may control the input interface 630 to communicate with other devices or chips, and specifically, may acquire information or data sent by other devices or chips.
- the chip 600 may further include an output interface 640 .
- the processor 610 can control the output interface 640 to communicate with other devices or chips, and specifically, can output information or data to other devices or chips.
- the chip can be applied to the network device in the embodiment of the present application, and the chip can implement the corresponding processes implemented by the network device in each method of the embodiment of the present application, which is not repeated here for brevity.
- the chip can be applied to the mobile terminal/terminal device in the embodiments of the present application, and the chip can implement the corresponding processes implemented by the mobile terminal/terminal device in each method of the embodiments of the present application.
- the chip can implement the corresponding processes implemented by the mobile terminal/terminal device in each method of the embodiments of the present application.
- the chip can implement the corresponding processes implemented by the mobile terminal/terminal device in each method of the embodiments of the present application.
- the chip mentioned in the embodiments of the present application may also be referred to as a system-on-chip, a system-on-chip, a system-on-chip, or a system-on-a-chip, or the like.
- FIG. 7 is a schematic block diagram of a communication system 700 provided by an embodiment of the present application. As shown in FIG. 7 , the communication system 700 includes a terminal device 710 and a network device 720 .
- the terminal device 710 can be used to implement the corresponding functions implemented by the terminal device in the above method
- the network device 720 can be used to implement the corresponding functions implemented by the network device in the above method. For brevity, details are not repeated here. .
- the processor in this embodiment of the present application may be an integrated circuit chip, which has a signal processing capability.
- each step of the above method embodiments may be completed by a hardware integrated logic circuit in a processor or an instruction in the form of software.
- the above-mentioned processor can be a general-purpose processor, a digital signal processor (Digital Signal Processor, DSP), an application specific integrated circuit (Application Specific Integrated Circuit, ASIC), an off-the-shelf programmable gate array (Field Programmable Gate Array, FPGA) or other available Programming logic devices, discrete gate or transistor logic devices, discrete hardware components.
- DSP Digital Signal Processor
- ASIC Application Specific Integrated Circuit
- FPGA Field Programmable Gate Array
- a general purpose processor may be a microprocessor or the processor may be any conventional processor or the like.
- the steps of the method disclosed in conjunction with the embodiments of the present application may be directly embodied as executed by a hardware decoding processor, or executed by a combination of hardware and software modules in the decoding processor.
- the software modules may be located in random access memory, flash memory, read-only memory, programmable read-only memory or electrically erasable programmable memory, registers and other storage media mature in the art.
- the storage medium is located in the memory, and the processor reads the information in the memory, and completes the steps of the above method in combination with its hardware.
- the memory in this embodiment of the present application may be a volatile memory or a non-volatile memory, or may include both volatile and non-volatile memory.
- the non-volatile memory may be a read-only memory (Read-Only Memory, ROM), a programmable read-only memory (Programmable ROM, PROM), an erasable programmable read-only memory (Erasable PROM, EPROM), an electrically programmable read-only memory (Erasable PROM, EPROM). Erase programmable read-only memory (Electrically EPROM, EEPROM) or flash memory.
- Volatile memory may be Random Access Memory (RAM), which acts as an external cache.
- RAM Static RAM
- DRAM Dynamic RAM
- SDRAM Synchronous DRAM
- SDRAM double data rate synchronous dynamic random access memory
- Double Data Rate SDRAM DDR SDRAM
- enhanced SDRAM ESDRAM
- synchronous link dynamic random access memory Synchlink DRAM, SLDRAM
- Direct Rambus RAM Direct Rambus RAM
- the memory in the embodiment of the present application may also be a static random access memory (static RAM, SRAM), a dynamic random access memory (dynamic RAM, DRAM), Synchronous dynamic random access memory (synchronous DRAM, SDRAM), double data rate synchronous dynamic random access memory (double data rate SDRAM, DDR SDRAM), enhanced synchronous dynamic random access memory (enhanced SDRAM, ESDRAM), synchronous connection Dynamic random access memory (synch link DRAM, SLDRAM) and direct memory bus random access memory (Direct Rambus RAM, DR RAM) and so on. That is, the memory in the embodiments of the present application is intended to include but not limited to these and any other suitable types of memory.
- Embodiments of the present application further provide a computer-readable storage medium for storing a computer program.
- the computer-readable storage medium can be applied to the network device in the embodiments of the present application, and the computer program enables the computer to execute the corresponding processes implemented by the network device in the various methods of the embodiments of the present application.
- the computer program enables the computer to execute the corresponding processes implemented by the network device in the various methods of the embodiments of the present application.
- the computer-readable storage medium can be applied to the mobile terminal/terminal device in the embodiments of the present application, and the computer program enables the computer to execute the corresponding processes implemented by the mobile terminal/terminal device in each method of the embodiments of the present application. , and are not repeated here for brevity.
- Embodiments of the present application also provide a computer program product, including computer program instructions.
- the computer program product can be applied to the network device in the embodiments of the present application, and the computer program instructions cause the computer to execute the corresponding processes implemented by the network device in each method of the embodiments of the present application. Repeat.
- the computer program product can be applied to the mobile terminal/terminal device in the embodiments of the present application, and the computer program instructions cause the computer to execute the corresponding processes implemented by the mobile terminal/terminal device in each method of the embodiments of the present application, For brevity, details are not repeated here.
- the embodiments of the present application also provide a computer program.
- the computer program can be applied to the network device in the embodiments of the present application.
- the computer program When the computer program is run on the computer, it causes the computer to execute the corresponding processes implemented by the network device in each method of the embodiments of the present application. For the sake of brevity. , and will not be repeated here.
- the computer program may be applied to the mobile terminal/terminal device in the embodiments of the present application, and when the computer program is run on the computer, the mobile terminal/terminal device implements the various methods of the computer program in the embodiments of the present application.
- the corresponding process for the sake of brevity, will not be repeated here.
- the disclosed system, apparatus and method may be implemented in other manners.
- the apparatus embodiments described above are only illustrative.
- the division of the units is only a logical function division. In actual implementation, there may be other division methods.
- multiple units or components may be combined or Can be integrated into another system, or some features can be ignored, or not implemented.
- the shown or discussed mutual coupling or direct coupling or communication connection may be through some interfaces, indirect coupling or communication connection of 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 components displayed as units may or may not be physical units, that is, may be located in one place, or may be distributed to multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution in this embodiment.
- each functional unit in each embodiment of the present application may be integrated into one processing unit, or each unit may exist physically alone, or two or more units may be integrated into one unit.
- the functions, if implemented in the form of software functional units and sold or used as independent products, may be stored in a computer-readable storage medium.
- the technical solution of the present application can be embodied in the form of a software product in essence, or the part that contributes to the prior art or the part of the technical solution.
- the computer software product is stored in a storage medium, including Several instructions are used to cause a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of the present application.
- the aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (Read-Only Memory,) ROM, random access memory (Random Access Memory, RAM), magnetic disk or optical disk and other media that can store program codes .
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Abstract
Description
频段 | 频率范围 |
FR1 | 450MHz–6GHz |
FR2 | 24.25GHz–52.6GHz |
间隔图样标识 | MGL(ms) | MGRP(ms) |
0 | 6 | 40 |
1 | 6 | 80 |
2 | 3 | 40 |
3 | 3 | 80 |
4 | 6 | 20 |
5 | 6 | 160 |
6 | 4 | 20 |
7 | 4 | 40 |
8 | 4 | 80 |
9 | 4 | 160 |
10 | 3 | 20 |
11 | 3 | 160 |
12 | 5.5 | 20 |
13 | 5.5 | 40 |
14 | 5.5 | 80 |
15 | 5.5 | 160 |
16 | 3.5 | 20 |
17 | 3.5 | 40 |
18 | 3.5 | 80 |
19 | 3.5 | 160 |
20 | 1.5 | 20 |
21 | 1.5 | 40 |
22 | 1.5 | 80 |
23 | 1.5 | 160 |
间隔图样标识 | MGL(ms) | MGRP(ms) |
24 | 10 | 80 |
25 | 20 | 160 |
Claims (114)
- 一种测量间隔增强的方法,所述方法包括:终端设备接收共存测量间隔的配置信息,所述共存测量间隔包括多个测量间隔,其中,所述多个测量间隔在第一时间段内被配置和/或所述多个测量间隔用于第二时间段内的测量。
- 根据权利要求1所述的方法,其中,所述第一时间段具有以下一种特征:所述第一时间段的时间窗口是周期性的;所述第一时间段的时间窗口是非周期性的。
- 根据权利要求1或2所述的方法,其中,所述第二时间段具有以下至少一种特征:所述第二时间段的时间窗口覆盖所述多个测量间隔的全部;所述第二时间段的时间窗口覆盖所述多个测量间隔的部分;所述第二时间段的时间窗口的起点是所述多个测量间隔中第一个被激活的测量间隔的起点。
- 根据权利要求1至3中任一项所述的方法,其中,所述第二时间段包括所述第一时间段。
- 根据权利要求1至4中任一项所述的方法,其中,在所述共存测量间隔的配置信息中,不支持UE粒度测量间隔per UE gap和FR粒度测量间隔per FR gap同时配置。
- 根据权利要求5所述的方法,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求1至4中任一项所述的方法,其中,在所述共存测量间隔的配置信息中,支持per UE gap和per FR gap同时配置。
- 根据权利要求7所述的方法,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔中至少有一个per FR gap。
- 根据权利要求8所述的方法,其中,所述多个测量间隔中至少有一个per FR gap,包括:所述多个测量间隔中的一部分测量间隔为per UE gap,另一部分测量间隔为per FR gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求7至9中任一项所述的方法,其中,所述共存测量间隔满足以下至少一种限制:所述共存测量间隔中的测量间隔总数目小于等于第一数目;所述共存测量间隔中的per UE gap的数目小于等于第二数目;所述共存测量间隔中的per FR gap的数目小于等于第三数目,所述per FR gap的数目等于per FR1 gap的数目加上per FR2 gap的数目;所述共存测量间隔中的per FR1 gap的数目小于等于第四数目;所述共存测量间隔中的per FR2 gap的数目小于等于第五数目。
- 根据权利要求10所述的方法,其中,所述方法还包括:所述终端设备上报所述终端设备支持的能力信息,所述能力信息用于指示以下至少之一:所述终端设备支持的测量间隔总数最多为第一数目;所述终端设备支持的per UE gap的数目最多为第二数目;所述终端设备支持的per FR gap的数目最多为第三数目;所述终端设备支持的per FR1 gap的数目最多为第四数目;所述终端设备支持的per FR2 gap的数目最多为第五数目。
- 根据权利要求1至11中任一项所述的方法,其中,在新无线独立组网NR SA场景下,所述多个测量间隔均由主节点MN来配置。
- 根据权利要求1至11中任一项所述的方法,其中,在新无线-双连接NR-DC场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由辅节点SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求1至11中任一项所述的方法,其中,在多无线接入技术-双连接MR-DC 场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求14所述的方法,其中,所述MR-DC为EN-DC的情况下,所述多个测量间隔中的per UE gap和/或per FR1 gap由MN来配置,所述多个测量间隔中的per FR2 gap由SN来配置。
- 根据权利要求14所述的方法,其中,所述MR-DC为NE-DC的情况下,所述多个测量间隔中的per UE gap和/或per FR2 gap由MN来配置,所述多个测量间隔中的per FR1 gap由SN来配置;或者,所述多个测量间隔中的per UE gap和/或per FR gap均由MN来配置。
- 根据权利要求14至16中任一项所述的方法,其中,所述第一部分测量间隔的数目和/或类型由所述MN通知给所述SN,用于所述SN确定能够配置的测量间隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型由所述SN通知给所述MN,用于所述MN确定能够配置的测量间隔的数目和/或类型。
- 根据权利要求14至16中任一项所述的方法,其中,所述第一部分测量间隔的数目和/或类型用于所述MN确定第一建议信息,所述第一建议信息由所述MN通知给所述SN,所述第一建议信息用于指示所述MN建议所述SN配置的测量间隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型用于所述SN确定第二建议信息,所述第二建议信息由所述SN通知给所述MN,所述第二建议信息用于指示所述SN建议所述MN配置的测量间隔的数目和/或类型。
- 根据权利要求14至18中任一项所述的方法,其中,所述多个测量间隔中的每个测量间隔与一个列表具有关联关系,所述列表包括以下至少之一:频率列表、频段列表、测量对象列表;所述第一部分测量间隔中的各个测量间隔与列表之间的关联关系由所述MN通知给所述SN,用于所述SN结合所述第二部分测量间隔中的各个测量间隔与列表之间的关联关系重新确定各个列表关联的测量间隔;和/或,所述第二部分测量间隔中的各个测量间隔与列表之间的关联关系由所述SN通知给所述MN,用于所述MN结合所述第一部分测量间隔中的各个测量间隔与列表之间的关联关系重新确定各个列表关联的测量间隔。
- 根据权利要求1至19中任一项所述的方法,其中,所述多个测量间隔按照测量对象的参考信号测量时间窗口进行配置。
- 根据权利要求20所述的方法,其中,所述多个测量间隔按照测量对象的参考信号测量时间窗口进行配置,包括:按照多个测量对象的参考信号测量时间窗口的周期对所述多个测量对象进行分组,针对每组测量对象配置一个与该组测量对象关联的测量间隔。
- 根据权利要求20所述的方法,其中,所述多个测量间隔按照测量对象的参考信号测量时间窗口进行配置,包括:按照多个测量对象的参考信号测量时间窗口的时间偏置对所述多个测量对象进行分组,针对每组测量对象配置一个与该组测量对象关联的测量间隔。
- 根据权利要求22所述的方法,其中,所述多个测量对象的参考信号测量时间窗口的周期相同的情况下,多组测量对象关联的多个测量间隔具有以下特征:周期相同、长度相同、测量间隔偏置不同。
- 根据权利要求1至19中任一项所述的方法,其中,所述多个测量间隔按照参考信号的类型进行配置。
- 根据权利要求24所述的方法,其中,所述参考信号的类型包括以下至少之一:同步信号块SSB、信道状态指示参考信号CSI-RS、定位参考信号PRS。
- 根据权利要求1至19中任一项所述的方法,其中,所述多个测量间隔按照网络的无线接入技术RAT类型进行配置。
- 根据权利要求1至19中任一项所述的方法,其中,所述多个测量间隔按照频率列表进 行配置。
- 根据权利要求1至19中任一项所述的方法,其中,所述多个测量间隔按照频段列表进行配置。
- 根据权利要求1至19中任一项所述的方法,其中,所述多个测量间隔按照测量对象列表进行配置。
- 根据权利要求1至29中任一项所述的方法,其中,预配置测量间隔被激活后,所述共存测量间隔包括所述预配置测量间隔和所述多个测量间隔。
- 根据权利要求30所述的方法,其中,所述预配置测量间隔被去激活后,所述共存测量间隔包括所述多个测量间隔。
- 根据权利要求1至29中任一项所述的方法,其中,预配置测量间隔被激活后,若所述预配置测量间隔和所述多个测量间隔满足指定限制,则所述共存测量间隔包括所述预配置测量间隔和所述多个测量间隔;或者,若所述预配置测量间隔和所述多个测量间隔不满足指定限制,则所述共存测量间隔基于测量间隔的优先级进行更新。
- 根据权利要求32所述的方法,其中,所述指定限制包括以下至少一种限制:所述预配置测量间隔和所述多个测量间隔的总数目小于等于第一数目;所述预配置测量间隔属于per UE gap,所述预配置测量间隔和所述多个测量间隔中的per UE gap的数目小于等于第二数目;所述预配置测量间隔属于per FR gap,所述预配置测量间隔和所述多个测量间隔中的per FR gap的数目小于等于第三数目;所述预配置测量间隔属于per FR1 gap,所述预配置测量间隔和所述多个测量间隔中的per FR1 gap的数目小于等于第四数目;所述预配置测量间隔属于per FR2 gap,所述预配置测量间隔和所述多个测量间隔中的per FR2 gap的数目小于等于第五数目。
- 根据权利要求32或33所述的方法,其中,所述共存测量间隔基于测量间隔的优先级进行更新,包括:若所述预配置测量间隔的优先级高于所述多个测量间隔中的第一测量间隔的优先级,则所述第一测量间隔被弃用,所述共存测量间隔包括所述预配置测量间隔和所述多个测量间隔中除所述第一测量间隔以外的测量间隔;或者,若所述预配置测量间隔的优先级低于所述多个测量间隔中的每个测量间隔的优先级,则所述预配置测量间隔被弃用,所述共存测量间隔包括所述多个测量间隔。
- 根据权利要求34所述的方法,其中,所述多个测量间隔中有N个测量间隔的优先级低于所述预配置测量间隔的优先级,N为正整数;所述第一测量间隔为所述N个测量间隔中优先级最低的测量间隔。
- 根据权利要求35所述的方法,其中,所述N个测量间隔与所述预配置测量间隔的间隔gap类型相同。
- 根据权利要求32至36中任一项所述的方法,其中,所述预配置测量间隔被去激活后,所述共存测量间隔中补入第二测量间隔。
- 根据权利要求37所述的方法,其中,所述第二测量间隔为前一次被弃用的测量间隔。
- 根据权利要求37或38所述的方法,其中,所述第二测量间隔与所述预配置测量间隔的gap类型相同。
- 根据权利要求1至29中任一项所述的方法,其中,若所述多个测量间隔满足指定限制,则所述共存测量间隔包括所述多个测量间隔;或者,若所述多个测量间隔不满足指定限制,则所述共存测量间隔基于测量间隔的优先级进行更新。
- 根据权利要求40所述的方法,其中,所述指定限制包括以下至少一种限制:所述多个测量间隔的总数目小于等于第一数目;所述多个测量间隔中的per UE gap的数目小于等于第二数目;所述多个测量间隔中的per FR gap的数目小于等于第三数目;所述多个测量间隔中的per FR1 gap的数目小于等于第四数目;所述多个测量间隔中的per FR2 gap的数目小于等于第五数目。
- 根据权利要求40或41所述的方法,其中,所述共存测量间隔基于测量间隔的优先级进行更新,包括:按照优先级确定的第一测量间隔被弃用,所述共存测量间隔包括所述多个测量间隔中除所述第一测量间隔以外的测量间隔。
- 根据权利要求42所述的方法,其中,所述按照优先级确定的第一测量间隔,是指:所述多个测量间隔中的优先级最低的测量间隔;或者,所述多个测量间隔中的per UE gap中的优先级最低的测量间隔;或者,所述多个测量间隔中的per FR gap中的优先级最低的测量间隔;或者,所述多个测量间隔中的per FR1 gap中的优先级最低的测量间隔;或者,所述多个测量间隔中的per FR2 gap中的优先级最低的测量间隔。
- 一种测量间隔增强的装置,应用于终端设备,所述装置包括:接收单元,用于接收共存测量间隔的配置信息,所述共存测量间隔包括多个测量间隔,其中,所述多个测量间隔在第一时间段内被配置和/或所述多个测量间隔用于第二时间段内的测量。
- 根据权利要求44所述的装置,其中,所述第一时间段具有以下一种特征:所述第一时间段的时间窗口是周期性的;所述第一时间段的时间窗口是非周期性的。
- 根据权利要求44或45所述的装置,其中,所述第二时间段具有以下至少一种特征:所述第二时间段的时间窗口覆盖所述多个测量间隔的全部;所述第二时间段的时间窗口覆盖所述多个测量间隔的部分;所述第二时间段的时间窗口的起点是所述多个测量间隔中第一个被激活的测量间隔的起点。
- 根据权利要求44至46中任一项所述的装置,其中,所述第二时间段包括所述第一时间段。
- 根据权利要求44至47中任一项所述的装置,其中,在所述共存测量间隔的配置信息中,不支持per UE gap和per FR gap同时配置。
- 根据权利要求48所述的装置,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求44至47中任一项所述的装置,其中,在所述共存测量间隔的配置信息中,支持per UE gap和per FR gap同时配置。
- 根据权利要求50所述的装置,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔中至少有一个per FR gap。
- 根据权利要求51所述的装置,其中,所述多个测量间隔中至少有一个per FR gap,包括:所述多个测量间隔中的一部分测量间隔为per UE gap,另一部分测量间隔为per FR gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求50至52中任一项所述的装置,其中,所述共存测量间隔满足以下至少一种限制:所述共存测量间隔中的测量间隔总数目小于等于第一数目;所述共存测量间隔中的per UE gap的数目小于等于第二数目;所述共存测量间隔中的per FR gap的数目小于等于第三数目,所述per FR gap的数目等于per FR1 gap的数目加上per FR2 gap的数目;所述共存测量间隔中的per FR1 gap的数目小于等于第四数目;所述共存测量间隔中的per FR2 gap的数目小于等于第五数目。
- 根据权利要求53所述的装置,其中,所述装置还包括:发送单元,用于上报所述终端设备支持的能力信息,所述能力信息用于指示以下至少之一:所述终端设备支持的测量间隔总数最多为第一数目;所述终端设备支持的per UE gap的数目最多为第二数目;所述终端设备支持的per FR gap的数目最多为第三数目;所述终端设备支持的per FR1 gap的数目最多为第四数目;所述终端设备支持的per FR2 gap的数目最多为第五数目。
- 根据权利要求44至54中任一项所述的装置,其中,在NR SA场景下,所述多个测量间隔均由MN来配置。
- 根据权利要求44至54中任一项所述的装置,其中,在NR-DC场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求44至54中任一项所述的装置,其中,在MR-DC场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求57所述的装置,其中,所述MR-DC为EN-DC的情况下,所述多个测量间隔中的per UE gap和/或per FR1 gap由MN来配置,所述多个测量间隔中的per FR2 gap由SN来配置。
- 根据权利要求57所述的装置,其中,所述MR-DC为NE-DC的情况下,所述多个测量间隔中的per UE gap和/或per FR2 gap由MN来配置,所述多个测量间隔中的per FR1 gap由SN来配置;或者,所述多个测量间隔中的per UE gap和/或per FR gap均由MN来配置。
- 根据权利要求57至59中任一项所述的装置,其中,所述第一部分测量间隔的数目和/或类型由所述MN通知给所述SN,用于所述SN确定能够配置的测量间隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型由所述SN通知给所述MN,用于所述MN确定能够配置的测量间隔的数目和/或类型。
- 根据权利要求57至59中任一项所述的装置,其中,所述第一部分测量间隔的数目和/或类型用于所述MN确定第一建议信息,所述第一建议信息由所述MN通知给所述SN,所述第一建议信息用于指示所述MN建议所述SN配置的测量间隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型用于所述SN确定第二建议信息,所述第二建议信息由所述SN通知给所述MN,所述第二建议信息用于指示所述SN建议所述MN配置的测量间隔的数目和/或类型。
- 根据权利要求57至61中任一项所述的装置,其中,所述多个测量间隔中的每个测量间隔与一个列表具有关联关系,所述列表包括以下至少之一:频率列表、频段列表、测量对象列表;所述第一部分测量间隔中的各个测量间隔与列表之间的关联关系由所述MN通知给所述SN,用于所述SN结合所述第二部分测量间隔中的各个测量间隔与列表之间的关联关系重新确定各个列表关联的测量间隔;和/或,所述第二部分测量间隔中的各个测量间隔与列表之间的关联关系由所述SN通知给所述MN,用于所述MN结合所述第一部分测量间隔中的各个测量间隔与列表之间的关联关系重新确定各个列表关联的测量间隔。
- 根据权利要求44至62中任一项所述的装置,其中,所述多个测量间隔按照测量对象的参考信号测量时间窗口进行配置。
- 根据权利要求63所述的装置,其中,所述多个测量间隔按照测量对象的参考信号测量时间窗口进行配置,包括:按照多个测量对象的参考信号测量时间窗口的周期对所述多个测量对象进行分组,针对每组测量对象配置一个与该组测量对象关联的测量间隔。
- 根据权利要求63所述的装置,其中,所述多个测量间隔按照测量对象的参考信号测量时间窗口进行配置,包括:按照多个测量对象的参考信号测量时间窗口的时间偏置对所述多个测量对象进行分组,针对每组测量对象配置一个与该组测量对象关联的测量间隔。
- 根据权利要求65所述的装置,其中,所述多个测量对象的参考信号测量时间窗口的周期相同的情况下,多组测量对象关联的多个测量间隔具有以下特征:周期相同、长度相同、测量间隔偏置不同。
- 根据权利要求44至62中任一项所述的装置,其中,所述多个测量间隔按照参考信号的 类型进行配置。
- 根据权利要求67所述的装置,其中,所述参考信号的类型包括以下至少之一:SSB、CSI-RS、PRS。
- 根据权利要求44至62中任一项所述的装置,其中,所述多个测量间隔按照网络的RAT类型进行配置。
- 根据权利要求44至62中任一项所述的装置,其中,所述多个测量间隔按照频率列表进行配置。
- 根据权利要求44至62中任一项所述的装置,其中,所述多个测量间隔按照频段列表进行配置。
- 根据权利要求44至62中任一项所述的装置,其中,所述多个测量间隔按照测量对象列表进行配置。
- 根据权利要求44至72中任一项所述的装置,其中,预配置测量间隔被激活后,所述共存测量间隔包括所述预配置测量间隔和所述多个测量间隔。
- 根据权利要求73所述的装置,其中,所述预配置测量间隔被去激活后,所述共存测量间隔包括所述多个测量间隔。
- 根据权利要求44至72中任一项所述的装置,其中,预配置测量间隔被激活后,若所述预配置测量间隔和所述多个测量间隔满足指定限制,则所述共存测量间隔包括所述预配置测量间隔和所述多个测量间隔;或者,若所述预配置测量间隔和所述多个测量间隔不满足指定限制,则所述共存测量间隔基于测量间隔的优先级进行更新。
- 根据权利要求75所述的装置,其中,所述指定限制包括以下至少一种限制:所述预配置测量间隔和所述多个测量间隔的总数目小于等于第一数目;所述预配置测量间隔属于per UE gap,所述预配置测量间隔和所述多个测量间隔中的per UE gap的数目小于等于第二数目;所述预配置测量间隔属于per FR gap,所述预配置测量间隔和所述多个测量间隔中的per FR gap的数目小于等于第三数目;所述预配置测量间隔属于per FR1 gap,所述预配置测量间隔和所述多个测量间隔中的per FR1 gap的数目小于等于第四数目;所述预配置测量间隔属于per FR2 gap,所述预配置测量间隔和所述多个测量间隔中的per FR2 gap的数目小于等于第五数目。
- 根据权利要求75或76所述的装置,其中,所述共存测量间隔基于测量间隔的优先级进行更新,包括:若所述预配置测量间隔的优先级高于所述多个测量间隔中的第一测量间隔的优先级,则所述第一测量间隔被弃用,所述共存测量间隔包括所述预配置测量间隔和所述多个测量间隔中除所述第一测量间隔以外的测量间隔;或者,若所述预配置测量间隔的优先级低于所述多个测量间隔中的每个测量间隔的优先级,则所述预配置测量间隔被弃用,所述共存测量间隔包括所述多个测量间隔。
- 根据权利要求77所述的装置,其中,所述多个测量间隔中有N个测量间隔的优先级低于所述预配置测量间隔的优先级,N为正整数;所述第一测量间隔为所述N个测量间隔中优先级最低的测量间隔。
- 根据权利要求78所述的装置,其中,所述N个测量间隔与所述预配置测量间隔的gap类型相同。
- 根据权利要求75至79中任一项所述的装置,其中,所述预配置测量间隔被去激活后,所述共存测量间隔中补入第二测量间隔。
- 根据权利要求80所述的装置,其中,所述第二测量间隔为前一次被弃用的测量间隔。
- 根据权利要求80或81所述的装置,其中,所述第二测量间隔与所述预配置测量间隔的gap类型相同。
- 根据权利要求44至72中任一项所述的装置,其中,若所述多个测量间隔满足指定限制,则所述共存测量间隔包括所述多个测量间隔;或者,若所述多个测量间隔不满足指定限制,则所述共存测量间隔基于测量间隔的优先级进行更新。
- 根据权利要求83所述的装置,其中,所述指定限制包括以下至少一种限制:所述多个测量间隔的总数目小于等于第一数目;所述多个测量间隔中的per UE gap的数目小于等于第二数目;所述多个测量间隔中的per FR gap的数目小于等于第三数目;所述多个测量间隔中的per FR1 gap的数目小于等于第四数目;所述多个测量间隔中的per FR2 gap的数目小于等于第五数目。
- 根据权利要求83或84所述的装置,其中,所述共存测量间隔基于测量间隔的优先级进行更新,包括:按照优先级确定的第一测量间隔被弃用,所述共存测量间隔包括所述多个测量间隔中除所述第一测量间隔以外的测量间隔。
- 根据权利要求85所述的装置,其中,所述按照优先级确定的第一测量间隔,是指:所述多个测量间隔中的优先级最低的测量间隔;或者,所述多个测量间隔中的per UE gap中的优先级最低的测量间隔;或者,所述多个测量间隔中的per FR gap中的优先级最低的测量间隔;或者,所述多个测量间隔中的per FR1 gap中的优先级最低的测量间隔;或者,所述多个测量间隔中的per FR2 gap中的优先级最低的测量间隔。
- 一种测量间隔增强的方法,所述方法包括:网络设备发送共存测量间隔的配置信息,所述共存测量间隔包括多个测量间隔,其中,所述多个测量间隔在第一时间段内被配置和/或所述多个测量间隔用于第二时间段内的测量。
- 根据权利要求87所述的方法,其中,在所述共存测量间隔的配置信息中,不支持per UE gap和per FR gap同时配置。
- 根据权利要求88所述的方法,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求87所述的方法,其中,在所述共存测量间隔的配置信息中,支持per UE gap和per FR gap同时配置。
- 根据权利要求90所述的方法,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔中至少有一个per FR gap。
- 根据权利要求91所述的方法,其中,所述多个测量间隔中至少有一个per FR gap,包括:所述多个测量间隔中的一部分测量间隔为per UE gap,另一部分测量间隔为per FR gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求87至92中任一项所述的方法,其中,在NR SA场景下,所述多个测量间隔均由MN来配置。
- 根据权利要求87至92中任一项所述的方法,其中,在NR-DC场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求87至92中任一项所述的方法,其中,在MR-DC场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求95所述的方法,其中,所述第一部分测量间隔的数目和/或类型由所述MN通知给所述SN,用于所述SN确定能够配置的测量间隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型由所述SN通知给所述MN,用于所述MN确定能够配置的测量间隔的数目和/或类型。
- 根据权利要求95所述的方法,其中,所述第一部分测量间隔的数目和/或类型用于所述MN确定第一建议信息,所述第一建议信息由所述MN通知给所述SN,所述第一建议信息用于指示所述MN建议所述SN配置的测量间 隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型用于所述SN确定第二建议信息,所述第二建议信息由所述SN通知给所述MN,所述第二建议信息用于指示所述SN建议所述MN配置的测量间隔的数目和/或类型。
- 一种测量间隔增强的装置,应用于网络设备,所述装置包括:发送单元,用于发送共存测量间隔的配置信息,所述共存测量间隔包括多个测量间隔,其中,所述多个测量间隔在第一时间段内被配置和/或所述多个测量间隔用于第二时间段内的测量。
- 根据权利要求98所述的装置,其中,在所述共存测量间隔的配置信息中,不支持per UE gap和per FR gap同时配置。
- 根据权利要求99所述的装置,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求98所述的装置,其中,在所述共存测量间隔的配置信息中,支持per UE gap和per FR gap同时配置。
- 根据权利要求101所述的装置,其中,所述多个测量间隔均为per UE gap;或者,所述多个测量间隔中至少有一个per FR gap。
- 根据权利要求102所述的装置,其中,所述多个测量间隔中至少有一个per FR gap,包括:所述多个测量间隔中的一部分测量间隔为per UE gap,另一部分测量间隔为per FR gap;或者,所述多个测量间隔均为per FR gap。
- 根据权利要求98至103中任一项所述的装置,其中,在NR SA场景下,所述多个测量间隔均由MN来配置。
- 根据权利要求98至103中任一项所述的装置,其中,在NR-DC场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求98至103中任一项所述的装置,其中,在MR-DC场景下,所述多个测量间隔中的第一部分测量间隔由MN来配置,所述多个测量间隔中的第二部分测量间隔由SN来配置;或者,所述多个测量间隔均由MN来配置。
- 根据权利要求106所述的装置,其中,所述第一部分测量间隔的数目和/或类型由所述MN通知给所述SN,用于所述SN确定能够配置的测量间隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型由所述SN通知给所述MN,用于所述MN确定能够配置的测量间隔的数目和/或类型。
- 根据权利要求106所述的装置,其中,所述第一部分测量间隔的数目和/或类型用于所述MN确定第一建议信息,所述第一建议信息由所述MN通知给所述SN,所述第一建议信息用于指示所述MN建议所述SN配置的测量间隔的数目和/或类型;或者,所述第二部分测量间隔的数目和/或类型用于所述SN确定第二建议信息,所述第二建议信息由所述SN通知给所述MN,所述第二建议信息用于指示所述SN建议所述MN配置的测量间隔的数目和/或类型。
- 一种终端设备,包括:处理器和存储器,该存储器用于存储计算机程序,所述处理器用于调用并运行所述存储器中存储的计算机程序,执行如权利要求1至11中任一项所述的方法。
- 一种终端设备,包括:处理器和存储器,该存储器用于存储计算机程序,所述处理器用于调用并运行所述存储器中存储的计算机程序,执行如权利要求87至97中任一项所述的方法。
- 一种芯片,包括:处理器,用于从存储器中调用并运行计算机程序,使得安装有所述芯片的设备执行如权利要求1至11中任一项所述的方法,或者权利要求87至97中任一项所述的方法。
- 一种计算机可读存储介质,用于存储计算机程序,所述计算机程序使得计算机执行如权利要求1至11中任一项所述的方法,或者权利要求87至97中任一项所述的方法。
- 一种计算机程序产品,包括计算机程序指令,该计算机程序指令使得计算机执行如权利要求1至11中任一项所述的方法,或者权利要求87至97中任一项所述的方法。
- 一种计算机程序,所述计算机程序使得计算机执行如权利要求1至11中任一项所述的方法,或者权利要求87至97中任一项所述的方法。
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