WO2019037506A1 - 一种测量间隙确定方法、用户终端和网络侧设备 - Google Patents

一种测量间隙确定方法、用户终端和网络侧设备 Download PDF

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Publication number
WO2019037506A1
WO2019037506A1 PCT/CN2018/089541 CN2018089541W WO2019037506A1 WO 2019037506 A1 WO2019037506 A1 WO 2019037506A1 CN 2018089541 W CN2018089541 W CN 2018089541W WO 2019037506 A1 WO2019037506 A1 WO 2019037506A1
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Prior art keywords
synchronization signal
bwp
signal block
measurement
configuration information
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PCT/CN2018/089541
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English (en)
French (fr)
Inventor
达人
赵铮
任斌
李铁
郑方政
艾托尼
Original Assignee
电信科学技术研究院有限公司
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Priority to EP18848710.2A priority Critical patent/EP3675403B1/en
Priority to US16/641,127 priority patent/US11438127B2/en
Publication of WO2019037506A1 publication Critical patent/WO2019037506A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • H04W56/0035Synchronisation arrangements detecting errors in frequency or phase
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0078Timing of allocation
    • H04L5/0082Timing of allocation at predetermined intervals
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • H04W56/001Synchronization between nodes
    • H04W56/0015Synchronization between nodes one node acting as a reference for the others
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2602Signal structure
    • H04L27/2605Symbol extensions, e.g. Zero Tail, Unique Word [UW]
    • H04L27/2607Cyclic extensions
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0058Allocation criteria
    • H04L5/0064Rate requirement of the data, e.g. scalable bandwidth, data priority
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • H04L5/0092Indication of how the channel is divided
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/02Arrangements for optimising operational condition
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/10Scheduling measurement reports ; Arrangements for measurement reports
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W56/00Synchronisation arrangements
    • H04W56/001Synchronization between nodes

Definitions

  • the present disclosure relates to the field of communications technologies, and in particular, to a measurement gap determining method, a user terminal, and a network side device.
  • LTE Long Term Evolution
  • NR Next Radio
  • Embodiments of the present disclosure provide a measurement gap determination method, a user terminal, and a network side device to solve the problem of excessive measurement gap.
  • Embodiments of the present disclosure provide a method for determining a measurement gap, including:
  • the user terminal receives measurement configuration information sent by the network side device, where the measurement configuration information is measurement configuration information of a synchronization signal block actually sent on at least one Band Width Part (BWP), where the user terminal receives the When measuring configuration information, the user terminal works in a BWP that does not send a synchronization signal block;
  • BWP Band Width Part
  • the user terminal performs synchronization signal block measurement on the at least one BWP within the measurement gap.
  • the measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • Measurement configuration information of N synchronization signal blocks in the M synchronization signal blocks actually transmitted on the at least one BWP wherein the N synchronization signal blocks are in the M synchronization signal blocks according to a detection probability from high to The first N sync signal blocks in the low order, the detection probability is the detection probability of the user terminal for the sync signal block, the N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N .
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • RRM Radio Resource Management
  • the user terminal determines, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP, including:
  • the user terminal determines, according to the measurement configuration information, a measurement gap pattern for performing synchronization block measurement on the BWP, wherein the measurement gap pattern includes at least one of the BWPs Local measurement gap; or
  • the user terminal determines, according to the measurement configuration information, a measurement gap pattern for performing synchronization signal block measurement on the at least two BWPs, where the measurement gap pattern includes A measurement gap pattern for each of the at least two BWPs, the measurement gap pattern of each BWP including at least one partial measurement gap of the BWP.
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • Embodiments of the present disclosure provide a method for determining a measurement gap, including:
  • the network side device generates measurement configuration information of the synchronization signal block actually sent on the at least one BWP;
  • the network side device sends the measurement configuration information to the user terminal, wherein when the network side device sends the measurement configuration information to the user terminal, the user terminal works in a BWP that does not send a synchronization signal block.
  • the method further includes:
  • the network side device estimates M synchronization signal blocks actually sent on the at least one BWP;
  • the network side device selects, in the M synchronization signal blocks, the first N synchronization signal blocks according to the order of detection probability from high to low, and the detection probability is a detection probability of the user terminal for the synchronization signal block, N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N;
  • the measurement configuration information measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the method further includes:
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the network side device determines, according to the measurement configuration information, a measurement gap used by the user terminal to perform synchronization signal block measurement on the at least one BWP, including:
  • the network side device determines, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement in the BWP, where the measurement gap pattern includes At least one partial measurement gap of the BWP; or
  • the network side device determines, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement in the at least two BWPs, where
  • the measurement gap pattern includes a measurement gap pattern for each of the at least two BWPs, and the measurement gap pattern of each BWP includes at least one partial measurement gap of the BWP.
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the embodiment of the present disclosure further provides a user terminal, including:
  • a receiving module configured to receive measurement configuration information sent by the network side device, where the measurement configuration information is measurement configuration information of a synchronization signal block actually sent by the at least one bandwidth part BWP, where the user terminal receives the measurement configuration information
  • the user terminal operates in a BWP that does not transmit a synchronization signal block
  • a determining module configured to determine, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP;
  • a measuring module configured to perform synchronous signal block measurement on the at least one BWP in the measurement gap.
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the determining module is configured to: if the at least one BWP is a BWP, determine, according to the measurement configuration information, a measurement gap pattern used for performing synchronization signal block measurement on the BWP, where the measurement gap pattern Including at least one local measurement gap of the BWP; or
  • the determining module is configured to: if the at least one BWP is at least two BWPs, determine, according to the measurement configuration information, a measurement gap pattern for performing synchronization signal block measurement on the at least two BWPs, the measurement gap pattern A measurement gap pattern for each of the at least two BWPs is included, and the measurement gap pattern of each BWP includes at least one partial measurement gap of the BWP.
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the embodiment of the present disclosure further provides a network side device, including:
  • a generating module configured to generate measurement configuration information of the synchronization signal block actually sent on the at least one BWP
  • a sending module configured to send the measurement configuration information to the user terminal, where the network side device sends the measurement configuration information to the user terminal, the user terminal works in a BWP that does not send a synchronization signal block.
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the network side device further includes:
  • a determining module configured to determine, according to the measurement configuration information, a measurement gap used by the user terminal to perform synchronization signal block measurement in the at least one BWP;
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the determining module is configured to: if the at least one BWP is a BWP, determine, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement in the BWP, where The measurement gap pattern includes at least one partial measurement gap of the BWP; or
  • the determining module is configured to determine, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement on the at least two BWPs, according to the measurement configuration information,
  • the measurement gap pattern includes a measurement gap pattern for each of the at least two BWPs, and the measurement gap pattern for each BWP includes at least one partial measurement gap of the BWP.
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • An embodiment of the present disclosure further provides a user terminal, including: a transceiver, a memory, a processor, and a computer program stored on the memory and operable on the processor, the transceiver being configured to receive a network side Measurement configuration information sent by the device, where the measurement configuration information is measurement configuration information of a synchronization signal block actually sent on the at least one bandwidth portion BWP, wherein when the user terminal receives the measurement configuration information, the user terminal works a BWP that does not transmit a sync block;
  • the transceiver is further configured to determine, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP;
  • the transceiver is further configured to perform synchronization signal block measurement on the at least one BWP in the measurement gap;
  • the transceiver is configured to receive measurement configuration information sent by a network side device, where the measurement configuration information is measurement configuration information of a synchronization signal block actually sent on at least one bandwidth part BWP, where the user terminal receives the measurement When configuring information, the user terminal works in a BWP that does not send a synchronization signal block;
  • the processor is configured to read a program in the memory and perform the following process:
  • the transceiver is further configured to perform synchronization signal block measurement on the at least one BWP within the measurement gap.
  • the measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • Measurement configuration information of N synchronization signal blocks in the M synchronization signal blocks actually transmitted on the at least one BWP wherein the N synchronization signal blocks are in the M synchronization signal blocks according to a detection probability from high to The first N sync signal blocks in the low order, the detection probability is the detection probability of the user terminal for the sync signal block, the N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N .
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the determining, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP includes:
  • the measurement gap pattern includes at least one partial measurement gap of the BWP, if the at least one BWP is a BWP;
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • An embodiment of the present disclosure further provides a network side device, including: a transceiver, a memory, a processor, and a computer program stored on the memory and operable on the processor, the processor is configured to read in a memory
  • the program that performs the following process:
  • the transceiver is configured to send the measurement configuration information to a user terminal, where when the network side device sends the measurement configuration information to the user terminal, the user terminal works in a BWP that does not send a synchronization signal block. .
  • the processor is further configured to read a program in the memory, and perform the following process:
  • N is greater than or equal to An integer of 1, the M being an integer greater than or equal to N;
  • the measurement configuration information measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the processor is further configured to read a program in the memory, and perform the following process:
  • the transceiver is further configured to determine, according to the measurement configuration information, a measurement gap used by the user terminal to perform synchronization signal block measurement in the at least one BWP;
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the determining, according to the measurement configuration information, the measurement gap used by the user terminal to perform synchronization signal block measurement in the at least one BWP includes:
  • the measurement gap pattern includes at least one of the BWPs, according to the measurement configuration information, if the at least one BWP is a BWP. Local measurement gap; or
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the embodiment of the present disclosure further provides a computer readable storage medium, where the computer program is stored, and when the program is executed by the processor, the steps in the measurement gap determination method on the user terminal side provided by the embodiment of the present disclosure are implemented.
  • the embodiment of the present disclosure further provides a computer readable storage medium, where the computer program is stored, and the program is executed by the processor to implement the steps in the measurement gap determination method on the network side device side provided by the embodiment of the present disclosure.
  • the user terminal receives the measurement configuration information sent by the network side device, where the measurement configuration information is measurement configuration information of the synchronization signal block actually sent on the at least one bandwidth part BWP, where the user terminal receives the
  • the user terminal operates on a BWP that does not transmit a synchronization signal block; the user terminal determines, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement in the at least one BWP; The user terminal performs synchronization signal block measurement on the at least one BWP within the measurement gap. Since it is only necessary to determine the measurement gap based on the measurement configuration information of the synchronization signal block of the at least one BWP, the embodiment of the present disclosure can reduce the measurement gap compared to the periodic measurement gap of the related art.
  • FIG. 1 is a schematic structural diagram of a network applicable to an embodiment of the present disclosure
  • FIG. 2 is a flowchart of a method for determining a measurement gap according to an embodiment of the present disclosure
  • FIG. 3 is a schematic diagram of a measurement gap provided by an embodiment of the present disclosure.
  • FIG. 4 is a flowchart of another method for determining a measurement gap according to an embodiment of the present disclosure
  • FIG. 5 is a structural diagram of a user terminal according to an embodiment of the present disclosure.
  • FIG. 6 is a structural diagram of another network side device according to an embodiment of the present disclosure.
  • FIG. 7 is a structural diagram of another network side device according to an embodiment of the present disclosure.
  • FIG. 8 is a structural diagram of another network side device according to an embodiment of the present disclosure.
  • FIG. 9 is a structural diagram of another user terminal according to an embodiment of the present disclosure.
  • FIG. 10 is a structural diagram of another network side device according to an embodiment of the present disclosure.
  • FIG. 1 is a schematic diagram of a network structure applicable to an embodiment of the present disclosure.
  • a user equipment (User Equipment, UE) 11 and a network side device 12 are illustrated.
  • the user terminal 11 may be a mobile phone or a tablet.
  • Terminal-side devices such as Tablet Personal Computer, Laptop Computer, Personal Digital Assistant (PDA), Mobile Internet Device (MID), or Wearable Device It should be noted that the specific type of the user terminal 11 is not limited in the embodiment of the present disclosure.
  • the network side device 12 may be a base station, for example, a macro station, an LTE eNB, a 5G NR NB, etc.; the network side device 12 may also be a small station, such as a low power node (LPN) pico, a femto, etc., or The network side device 12 may be an access point (AP); the base station may also be a network node formed by a central unit (CU) and a plurality of transmission reception points (TRPs) managed and controlled by the central unit (CU). . It should be noted that the specific type of the network side device 12 is not limited in the embodiment of the present disclosure.
  • FIG. 2 is a flowchart of a method for determining a measurement gap according to an embodiment of the present disclosure. As shown in FIG. 2, the method includes:
  • the user terminal receives the measurement configuration information sent by the network side device, where the measurement configuration information is measurement configuration information of the synchronization signal block actually sent by the at least one bandwidth part BWP, where the user terminal receives the measurement configuration information.
  • the user terminal works in a BWP that does not send a synchronization signal block;
  • the user terminal determines, according to the measurement configuration information, a measurement gap used for performing synchronization signal block measurement in the at least one BWP.
  • the user terminal performs synchronization signal block measurement on the at least one BWP in the measurement gap.
  • the at least one BWP may be other BWPs in the same component carrier as the user terminal working BWP, where the component carrier may also be referred to as a component carrier.
  • the measurement configuration information may be an index, a frequency location, or a time domain location of the synchronization signal (SS) block, and the like, which is not limited in this embodiment.
  • SS synchronization signal
  • the user terminal may determine the transmission position of the synchronization signal block by using the measurement configuration information of the synchronization signal block, and further determine the measurement gap of detecting the synchronization signal block.
  • the above-mentioned actually transmitted synchronization signal block can be understood as a synchronization signal block that is actually sent on the BWP.
  • the embodiment of the present disclosure does not limit when the synchronization signal blocks are sent. For example, in step 202, Then send it.
  • the user terminal may be a narrowband user terminal, where the narrowband user terminal may be a user terminal working on one or more BWPs.
  • the user terminal When the user terminal receives the measurement configuration information, the user terminal works in a BWP that does not send a synchronization signal block, and receives measurement configuration information of the BWP of the actual transmission synchronization signal block sent by the network side device.
  • the network side device may configure each carrier into multiple BWPs by semi-static, each BWP may be configured to send or not to send a synchronization signal block, and the narrowband user terminal may be configured not to send the synchronization signal block.
  • Service BWP works.
  • the user terminal Determining, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP, the user terminal determining, according to the measurement configuration information, a transmission location of the actually transmitted synchronization signal block in the at least one BWP. In turn, a measurement gap for measuring these actually transmitted sync signal blocks is determined.
  • the user terminal can determine the measurement gap for performing the synchronization signal block measurement on the at least one BWP according to the measurement configuration information of the synchronization signal block, so that the measurement gap can be set only when the time domain position of the synchronization signal block is actually transmitted.
  • the time domain location that is not actually transmitted does not set the measurement gap, thereby reducing the measurement gap to minimize the service interruption of the user terminal to improve the communication performance of the user terminal.
  • the measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • Measurement configuration information of N synchronization signal blocks in the M synchronization signal blocks actually transmitted on the at least one BWP wherein the N synchronization signal blocks are in the M synchronization signal blocks according to a detection probability from high to The first N sync signal blocks in the low order, the detection probability is the detection probability of the user terminal for the sync signal block, the N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N .
  • the M synchronization signal blocks may be synchronization signal blocks that may be detected by the user terminal.
  • the beam direction used when the M synchronization signal blocks are transmitted can cover the location of the user terminal.
  • the network side device may estimate a synchronization signal block that the user terminal may detect based on a beam direction in which the data service is provided to the user terminal, and a beam direction of the actual synchronization signal block transmission configured on the other BWP. For example, the network side device provides the beam direction of the data service to the user terminal, determines the location of the user terminal, and determines the relationship between the beam direction used when the actual synchronization signal block configured on the other BWP is transmitted and the location of the user terminal. It is thus determined that the user terminal may detect the corresponding sync signal block. Then, the network side device selects the first N sync signal blocks in the order of the detection probability from high to low in the sync block signal that the user terminal may detect. The first N synchronization signal blocks may be synchronization signal blocks that are most likely to be detected by the user terminal selected by the network side device according to the beam direction used when the synchronization signal blocks are actually transmitted and the position of the user terminal.
  • the measurement gap required by the user terminal can be further reduced.
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the index of the at least one BWP may be a BWP index in a component carrier where the BWP of the synchronization signal block that does not transmit the synchronization signal block of the user terminal is located, and the frequency position may also be a frequency position in the component carrier.
  • the above set of synchronization signal blocks may also be referred to as a synchronization signal block burst group.
  • the user terminal may determine the frequency location and the transmission configuration by using a correspondence between the index obtained in advance and the frequency location and the transmission configuration; If the measurement configuration information includes only the frequency location, the index and the transmission configuration may be determined by using the pre-acquired correspondence relationship; if the measurement configuration information includes only the transmission configuration, the index and the frequency position may be determined by the pre-acquired correspondence. .
  • the foregoing transmission configuration may also include only the index or time position of the actually transmitted synchronization signal block in the above-mentioned synchronization signal block set, the transmission period, the time offset of the synchronization signal block set, and the carrier interval and synchronization signal block of the synchronization signal block. At least one of the cyclic prefixes is not described here.
  • the above-mentioned measurement configuration information network side device may be notified by the system information broadcast or notified to the user terminal by the RRC signaling specific to the user terminal.
  • the user terminal is notified by Remaining Minimum System Information (RMSI) or other System Information (OSI).
  • RMSI Remaining Minimum System Information
  • OSI System Information
  • the user terminal can accurately determine the at least one BWP and the transmission configuration of the synchronization signal block actually sent by the BWP by using the foregoing measurement configuration information, thereby accurately determining the measurement gap for detecting the actually transmitted synchronization signal block. To further reduce the measurement gap of the user terminal.
  • the foregoing measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the user measurement terminal may further reduce the measurement gap by using the foregoing measurement configuration information, because the user terminal can more accurately determine, at which gaps, the synchronization signals actually transmitted by the network side device according to the additional measurement configuration information. Piece.
  • the foregoing user terminal determines, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP, including:
  • the user terminal determines, according to the measurement configuration information, a measurement gap pattern for performing synchronization block measurement on the BWP, wherein the measurement gap pattern includes at least one of the BWPs Local measurement gap; or
  • the user terminal determines, according to the measurement configuration information, a measurement gap pattern for performing synchronization signal block measurement on the at least two BWPs, where the measurement gap pattern includes A measurement gap pattern for each of the at least two BWPs, the measurement gap pattern of each BWP including at least one partial measurement gap of the BWP.
  • the user terminal is configured to measure the synchronization signal block from only one BWP, and if the at least one BWP is at least two BWPs, it can be understood that the user terminal is configured to measure multiple Synchronization signal block in BWP.
  • the measurement gap pattern includes at least one local measurement gap of the BWP, and the measurement gap pattern is composed of at least one partial measurement gap of the BWP.
  • the measurement gap pattern of each BWP may be a measurement gap pattern for the synchronization signal block measurement at the BWP.
  • the above measurement gap pattern may be determined during a transmission period of the synchronization signal block, and the network side device in one local measurement gap may actually transmit one or more synchronization signal blocks.
  • the local measurement gap may be equal to the transmission time of the T synchronization signal blocks plus the frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than 1
  • the T sync signal blocks are T sync signal blocks that are consecutive in the time domain.
  • the transmission time of the synchronization signal block may be 4 or 5 OFDM symbols, which is not limited in this embodiment.
  • a BWP is used as an example, in the transmission period of the synchronization signal block set (the transmission period of the synchronization signal block set here may also be referred to as the transmission period of the synchronization signal block, because the two are consistent
  • there are 8 candidate sync signal block transmission locations ie, the transmission locations of 8 candidate sync signal blocks in a set of sync signal blocks.
  • the measurement gap pattern of the BWP may include the local measurement gap 1 and the local measurement gap 2.
  • each local measurement gap and the corresponding measurement gap pattern can be accurately determined, so that the measurement gap can be further reduced.
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the user terminal can measure the synchronization signal block without being affected by the data service, so as to improve the measurement performance.
  • the user terminal receives the measurement configuration information sent by the network side device, where the measurement configuration information is measurement configuration information of the synchronization signal block actually sent on the at least one bandwidth part BWP, where the user terminal receives the
  • the user terminal operates on a BWP that does not transmit a synchronization signal block; the user terminal determines, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement in the at least one BWP; The user terminal performs synchronization signal block measurement on the at least one BWP within the measurement gap. Since the measurement gap is only determined based on the measurement configuration information of the synchronization signal block of at least one BWP, the disclosed embodiment can reduce the measurement gap compared to the periodic measurement gap of the related art.
  • FIG. 4 is a flowchart of another method for determining a measurement gap according to an embodiment of the present disclosure. As shown in FIG. 4, the method includes the following steps:
  • the network side device generates measurement configuration information of the synchronization signal block actually sent by the at least one BWP.
  • the network side device sends the measurement configuration information to the user terminal, where the network side device sends the measurement configuration information to the user terminal, the user terminal works in a BWP that does not send a synchronization signal block. .
  • the method further includes:
  • the network side device estimates M synchronization signal blocks actually sent on the at least one BWP;
  • the network side device selects, in the M synchronization signal blocks, the first N synchronization signal blocks according to the order of detection probability from high to low, and the detection probability is a detection probability of the user terminal for the synchronization signal block, N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N;
  • the measurement configuration information measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the method further includes:
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the network side device determines, according to the measurement configuration information, a measurement gap used by the user terminal to perform synchronization signal block measurement on the at least one BWP, including:
  • the network side device determines, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement in the BWP, where the measurement gap pattern includes At least one partial measurement gap of the BWP; or
  • the network side device determines, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement in the at least two BWPs, where
  • the measurement gap pattern includes a measurement gap pattern for each of the at least two BWPs, and the measurement gap pattern of each BWP includes at least one partial measurement gap of the BWP.
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the present embodiment is an implementation manner of the network side device corresponding to the embodiment shown in FIG. 2, and a specific implementation manner of the embodiment may refer to the related description of the embodiment shown in FIG. This embodiment will not be described again, and the same advantageous effects can be achieved.
  • FIG. 5 is a structural diagram of a user terminal according to an embodiment of the present disclosure. As shown in FIG. 5, the user terminal 500 includes:
  • the receiving module 501 is configured to receive measurement configuration information that is sent by the network side device, where the measurement configuration information is measurement configuration information of a synchronization signal block that is actually sent on the at least one bandwidth part BWP, where the user terminal receives the measurement configuration. Information, the user terminal works in a BWP that does not send a synchronization signal block;
  • a determining module 502 configured to determine, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP;
  • the measuring module 503 is configured to perform synchronization signal block measurement on the at least one BWP in the measurement gap.
  • the measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • Measurement configuration information of N synchronization signal blocks in the M synchronization signal blocks actually transmitted on the at least one BWP wherein the N synchronization signal blocks are in the M synchronization signal blocks according to a detection probability from high to The first N sync signal blocks in the low order, the detection probability is the detection probability of the user terminal for the sync signal block, the N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N .
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the determining module 502 is configured to: if the at least one BWP is a BWP, determine, according to the measurement configuration information, a measurement gap pattern used for performing synchronization signal block measurement on the BWP, where the measurement gap is The pattern includes at least one local measurement gap of the BWP; or
  • the determining module 502 is configured to: if the at least one BWP is at least two BWPs, determine, according to the measurement configuration information, a measurement gap pattern for performing synchronization signal block measurement on the at least two BWPs, where the measurement gap is The pattern includes a measurement gap pattern for each of the at least two BWPs, and the measurement gap pattern for each BWP includes at least one partial measurement gap of the BWP.
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the user terminal 500 may be a user terminal in any embodiment of the method in the embodiment of the disclosure, and any implementation manner of the user terminal in the method embodiment of the disclosure may be used in this embodiment.
  • the above-mentioned user terminal 500 in the embodiment is implemented, and the same beneficial effects are achieved, and details are not described herein again.
  • FIG. 6 is a structural diagram of a network side device according to an embodiment of the present disclosure.
  • the network side device 600 includes:
  • a generating module 601, configured to generate measurement configuration information of a synchronization signal block actually sent on at least one BWP;
  • the sending module 602 is configured to send the measurement configuration information to the user terminal, where the network side device works on the BWP that does not send the synchronization signal block when the network side device sends the measurement configuration information to the user terminal.
  • the network side device 600 further includes:
  • An estimation module 603, configured to estimate M synchronization signal blocks actually sent on the at least one BWP;
  • a selection module 604 configured to select, in the M synchronization signal blocks, the first N synchronization signal blocks according to a sequence of detection probability from high to low, where the detection probability is a detection probability of the user terminal for the synchronization signal block, N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N;
  • the measurement configuration information measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the network side device 600 further includes:
  • a determining module 605 configured to determine, according to the measurement configuration information, a measurement gap used by the user terminal to perform synchronization signal block measurement in the at least one BWP;
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the determining module 605 is configured to: if the at least one BWP is a BWP, determine, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement in the BWP, where The measurement gap pattern includes at least one partial measurement gap of the BWP; or
  • the determining module 605 is configured to determine, according to the measurement configuration information, a measurement gap pattern used by the user terminal to perform synchronization signal block measurement on the at least two BWPs, according to the measurement configuration information, if the at least one BWP is at least two BWPs.
  • the measurement gap pattern includes a measurement gap pattern for each of the at least two BWPs, and the measurement gap pattern of each BWP includes at least one partial measurement gap of the BWP.
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the network side device 600 may be the network side device in any of the method embodiments in the embodiment of the disclosure, and any implementation manner of the network side device in the method embodiment in the embodiment of the disclosure It can be implemented by the above-mentioned network side device 600 in this embodiment, and achieve the same beneficial effects, and details are not described herein again.
  • FIG. 9 is a structural diagram of another user terminal according to an embodiment of the present disclosure.
  • the user terminal includes: a transceiver 910, a memory 920, a processor 900, and a memory stored in the memory.
  • a computer program on 920 and operable on the processor wherein:
  • the transceiver 910 is configured to receive measurement configuration information that is sent by the network side device, where the measurement configuration information is measurement configuration information of a synchronization signal block that is actually sent on the at least one bandwidth part BWP, where the user terminal receives the When measuring configuration information, the user terminal works in a BWP that does not send a synchronization signal block;
  • the transceiver 910 is further configured to determine, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP;
  • the transceiver 910 is further configured to perform synchronization signal block measurement on the at least one BWP in the measurement gap;
  • the transceiver 910 is configured to receive measurement configuration information that is sent by the network side device, where the measurement configuration information is measurement configuration information of a synchronization signal block that is actually sent on the at least one bandwidth part BWP, where the user terminal receives the When measuring configuration information, the user terminal works in a BWP that does not send a synchronization signal block;
  • the processor 900 is configured to read a program in the memory 920 and perform the following process:
  • the transceiver 910 is further configured to perform synchronization signal block measurement on the at least one BWP in the measurement gap.
  • the measurement gap for determining the synchronization signal block measurement in the at least one BWP may be performed by the transceiver 910 or the processor 900 according to the measurement configuration information.
  • the transceiver 910 is configured to receive and transmit data under the control of the processor 900.
  • the bus architecture may include any number of interconnected buses and bridges, specifically linked by one or more processors represented by processor 900 and various circuits of memory represented by memory 920.
  • the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and, therefore, will not be further described herein.
  • the bus interface provides an interface.
  • Transceiver 910 can be a plurality of components, including a transmitter and a receiver, providing means for communicating with various other devices on a transmission medium.
  • the processor 900 is responsible for managing the bus architecture and general processing, and the memory 920 can store data used by the processor 900 in performing operations.
  • the memory 920 does not limit one device only on the user terminal, and the memory 920 and the processor 900 may be separated in different geographical locations in the future.
  • the measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • Measurement configuration information of N synchronization signal blocks in the M synchronization signal blocks actually transmitted on the at least one BWP wherein the N synchronization signal blocks are in the M synchronization signal blocks according to a detection probability from high to The first N sync signal blocks in the low order, the detection probability is the detection probability of the user terminal for the sync signal block, the N is an integer greater than or equal to 1, and the M is an integer greater than or equal to N .
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the determining, according to the measurement configuration information, a measurement gap for performing synchronization signal block measurement on the at least one BWP includes:
  • the measurement gap pattern includes at least one partial measurement gap of the BWP, if the at least one BWP is a BWP;
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the foregoing user terminal may be a user terminal in any embodiment of the method in the embodiment of the disclosure, and any implementation manner of the user terminal in the method embodiment in the embodiment of the disclosure may be implemented by the implementation.
  • the above-mentioned user terminal in the example is implemented, and the same beneficial effects are achieved, and details are not described herein again.
  • FIG. 10 is a structural diagram of another network side device according to an embodiment of the present disclosure.
  • the network side device includes: a transceiver 1010, a memory 1020, a processor 1000, and the A computer program on memory 1020 and operable on the processor, wherein:
  • the processor 1000 is configured to read a program in the memory 1020 and perform the following process:
  • the transceiver 1010 is configured to send the measurement configuration information to a user terminal, where the network side device sends the measurement configuration information to the user terminal, where the user terminal works without transmitting a synchronization signal block. BWP.
  • the transceiver 1010 is configured to receive and transmit data under the control of the processor 1000.
  • the bus architecture can include any number of interconnected buses and bridges, specifically linked by one or more processors represented by processor 1000 and various circuits of memory represented by memory 1020.
  • the bus architecture can also link various other circuits such as peripherals, voltage regulators, and power management circuits, which are well known in the art and, therefore, will not be further described herein.
  • the bus interface provides an interface.
  • the transceiver 1010 can be a plurality of components, including a transmitter and a receiver, providing means for communicating with various other devices on a transmission medium.
  • the processor 1000 is responsible for managing the bus architecture and general processing, and the memory 1020 can store data used by the processor 1000 in performing operations.
  • the processor 1000 is further configured to read a program in the memory 1020, and perform the following process:
  • N is greater than or equal to An integer of 1, the M being an integer greater than or equal to N;
  • the measurement configuration information of the synchronization signal block actually sent on the at least one BWP includes:
  • the measurement configuration information includes at least one of the following:
  • the transmission configuration includes at least one of the following:
  • An index of a synchronization signal block actually transmitted in the synchronization signal block set, a time position of a synchronization signal block actually transmitted in the synchronization signal block set, a transmission period of the synchronization signal block set, and a time offset of the synchronization signal block set Transmitting, a carrier interval of the synchronization signal block and a cyclic prefix of the synchronization signal block, wherein the synchronization signal block set is a synchronization signal block set to which the synchronization signal block actually transmitted on the at least one BWP belongs.
  • the measurement configuration information further includes at least one of the following:
  • An index table of the BWP to be measured by the user terminal a synchronization signal block set to be measured by the user terminal in each BWP in the index table, and a radio resource management RRM measurement period of each BWP in the index table, The start time of the RRM measurement of each BWP in the index table, the stop time of the RRM measurement of each BWP in the index table, and the measurement report period.
  • the processor 1000 is further configured to read a program in the memory 1020, and perform the following process:
  • the transceiver 1010 is further configured to determine, according to the measurement configuration information, a measurement gap used by the user terminal to perform synchronization signal block measurement in the at least one BWP;
  • the network side device does not provide data service services to the user terminal in the measurement gap.
  • the determining, according to the measurement configuration information, the measurement gap used by the user terminal to perform synchronization signal block measurement in the at least one BWP includes:
  • the measurement gap pattern includes at least one of the BWPs, according to the measurement configuration information, if the at least one BWP is a BWP. Local measurement gap; or
  • the local measurement gap is equal to a transmission time of T synchronization signal blocks plus a frequency modulation time on both sides of the T synchronization signal blocks, where T is an integer greater than or equal to 1, and if T is greater than At 1 o'clock, the T sync signal blocks are T sync signal blocks that are consecutive in time domain.
  • the network side device may be the network side device in any of the method embodiments in the embodiment of the disclosure, and any implementation manner of the network side device in the method embodiment in the embodiment of the disclosure may be used. It is implemented by the above network side device in this embodiment, and achieves the same beneficial effects, and details are not described herein again.
  • the embodiment of the present disclosure further provides a computer readable storage medium, where the computer program is stored, and when the program is executed by the processor, the steps in the measurement gap determination method on the user terminal side provided by the embodiment of the present disclosure are implemented.
  • the embodiment of the present disclosure further provides a computer readable storage medium, where the computer program is stored, and the program is executed by the processor to implement the steps in the measurement gap determination method on the network side device side provided by the embodiment of the present disclosure.
  • the disclosed method and apparatus may be implemented in other manners.
  • the device embodiments described above are merely illustrative.
  • the division of the unit is only a logical function division.
  • there may be another division manner for example, multiple units or components may be combined or Can be integrated into another system, or some features can be ignored or not executed.
  • the mutual coupling or direct coupling or communication connection shown or discussed may be an indirect coupling or communication connection through some interface, device or unit, and may be in an electrical, mechanical or other form.
  • each functional unit in various embodiments of the present disclosure may be integrated into one processing unit, or each unit may be physically included separately, or two or more units may be integrated into one unit.
  • the above integrated unit can be implemented in the form of hardware or in the form of hardware plus software functional units.
  • the above-described integrated unit implemented in the form of a software functional unit can be stored in a computer readable storage medium.
  • the above software functional unit is stored in a storage medium and includes a plurality of instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) to perform part of the steps of the transceiving method of the various embodiments of the present disclosure.
  • the foregoing storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk, and the like, which can store program codes. .

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Abstract

提供一种测量间隙确定方法、用户终端和网络侧设备,该方法包括:用户终端接收网络侧设备发送的至少一个BWP的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;所述用户终端在所述测量间隙内对所述至少一个BWP进行同步信号块测量。

Description

一种测量间隙确定方法、用户终端和网络侧设备
相关申请的交叉引用
本申请主张在2017年8月24日在中国提交的中国专利申请No.201710736917.1的优先权,其全部内容通过引用包含于此。
技术领域
本公开涉及通信技术领域,尤其涉及一种测量间隙确定方法、用户终端和网络侧设备。
背景技术
在通信***中,用户终端经常需要进行测量,其中,测量是在测量间隙中进行的。在长期演进(Long Term Evolution,LTE)***中,只支持两种测量间隙模式,这两种测量间隙模式的测量间隙周期分别为40ms和80ms。但是未来通信***和LTE***具有不同的同步信号设计,例如:下一代无线电(New Radio,NR)***和LTE***具有不同的同步信号设计。如果还采用LTE***支持的测量间隙模式,就会导致测量间隙过多。
发明内容
本公开实施例提供一种测量间隙确定方法、用户终端和网络侧设备,以解决测量间隙过多的问题。
本公开实施例提供一种测量间隙确定方法,包括:
用户终端接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分(Band Width Part,BWP)上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
所述用户终端在所述测量间隙内对所述至少一个BWP进行同步信号块 测量。
可选地,所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
所述至少一个BWP上实际发送的M个同步信号块中的N个同步信号块的测量配置信息,其中,所述N个同步信号块为所述M个同步信号块中按照检测概率从高到低的排序中的前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数。
可选地,所述测量配置信息包括如下至少一项:
所述至少一个BWP中实际发送的同步信号块在BWP中的索引、所述至少一个BWP中实际发送的同步信号块在BWP中的频率位置和所述至少一个BWP中每个BWP上发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理(Radio Resource Management,RRM)测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则所述用户终端根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则所述用户终端根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
可选地,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
本公开实施例提供一种测量间隙确定方法,包括:
网络侧设备生成至少一个BWP上实际发送的同步信号块的测量配置信息;
所述网络侧设备向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
可选地,所述方法还包括:
所述网络侧设备估计所述至少一个BWP上实际发送的M个同步信号块;
所述网络侧设备在所述M个同步信号块中按照检测概率从高到低的排序选择前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数;
所述至少一个BWP上实际发送的同步信号块的测量配置信息测量配置信息包括:
所述N个同步信号块的测量配置信息。
可选地,所述测量配置信息包括如下至少一项:
所述至少一个BWP中实际发送的同步信号块在BWP中的索引、所述至少一个BWP中实际发送的同步信号块在BWP中的频率位置和所述至少一个BWP中每个BWP上发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述方法还包括:
所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
可选地,所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
本公开实施例还提供一种用户终端,包括:
接收模块,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
确定模块,用于根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
测量模块,用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
可选地,所述测量配置信息包括如下至少一项:
所述至少一个BWP中实际发送的同步信号块在BWP中的索引、所述至少一个BWP中实际发送的同步信号块在BWP中的频率位置和所述至少一个BWP中每个BWP上发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述确定模块用于若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
所述确定模块用于若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
本公开实施例还提供一种网络侧设备,包括:
生成模块,用于生成至少一个BWP上实际发送的同步信号块的测量配置信息;
发送模块,用于向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
可选地,所述测量配置信息包括如下至少一项:
所述至少一个BWP中实际发送的同步信号块在BWP中的索引、所述至少一个BWP中实际发送的同步信号块在BWP中的频率位置和所述至少一个BWP中每个BWP上发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述网络侧设备还包括:
确定模块,用于根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
可选地,所述确定模块用于若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
所述确定模块用于若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
本公开实施例还提供一种用户终端,包括:收发机、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计算机程序,所述收发机,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
所述收发机还用于根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
所述收发机还用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量;
或者,
所述收发机,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
所述处理器用于读取存储器中的程序,执行下列过程:
根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
所述收发机还用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
可选地,所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
所述至少一个BWP上实际发送的M个同步信号块中的N个同步信号块的测量配置信息,其中,所述N个同步信号块为所述M个同步信号块中按照检测概率从高到低的排序中的前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数。
可选地,所述测量配置信息包括如下至少一项:
所述至少一个BWP中实际发送的同步信号块在BWP中的索引、所述至少一个BWP中实际发送的同步信号块在BWP中的频率位置和所述至少一个BWP中每个BWP上发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
可选地,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
本公开实施例还提供一种网络侧设备,包括:收发机、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计算机程序,所述处理器用于读取存储器中的程序,执行下列过程:
生成至少一个BWP上实际发送的同步信号块的测量配置信息;
所述收发机,用于向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
可选地,所述处理器还用于读取存储器中的程序,执行下列过程:
估计所述至少一个BWP上实际发送的M个同步信号块;
在所述M个同步信号块中按照检测概率从高到低的排序选择前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数;
所述至少一个BWP上实际发送的同步信号块的测量配置信息测量配置信息包括:
所述N个同步信号块的测量配置信息。
可选地,所述测量配置信息包括如下至少一项:
所述至少一个BWP中实际发送的同步信号块在BWP中的索引、所述至少一个BWP中实际发送的同步信号块在BWP中的频率位置和所述至少一个BWP中每个BWP上发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索 引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述处理器还用于读取存储器中的程序,执行下列过程:
根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
或者,
所述收发机还用于根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
可选地,所述根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
本公开实施例还提供一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现本公开实施例提供的用户终端侧的测量间隙确定方法中的步骤。
本公开实施例还提供一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现本公开实施例提供的网络侧设备侧的测量间隙确定方法中的步骤。
本公开实施例中,用户终端接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配 置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;所述用户终端在所述测量间隙内对所述至少一个BWP进行同步信号块测量。由于只需要根据至少一个BWP的同步信号块的测量配置信息确定测量间隙,从而相比相关技术周期性的测量间隙,本公开实施例可以减少测量间隙。
附图说明
为了更清楚地说明本公开实施例的技术方案,下面将对本公开实施例中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本公开的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动性的前提下,还可以根据这些附图获得其他的附图。
图1是本公开实施例可应用的网络结构示意图;
图2是本公开实施例提供的一种测量间隙确定方法的流程图;
图3是本公开实施例提供的一种测量间隙的示意图;
图4是本公开实施例提供的另一种测量间隙确定方法的流程图;
图5是本公开实施例提供的一种用户终端的结构图;
图6是本公开实施例提供的另一种网络侧设备的结构图;
图7是本公开实施例提供的另一种网络侧设备的结构图;
图8是本公开实施例提供的另一种网络侧设备的结构图;
图9是本公开实施例提供的另一种用户终端的结构图;
图10是本公开实施例提供的另一种网络侧设备的结构图。
具体实施方式
为使本公开要解决的技术问题、技术方案和优点更加清楚,下面将结合附图及具体实施例进行详细描述。
参见图1,图1是本公开实施例可应用的网络结构示意图,如图1所示,包括用户终端(User Equipment,UE)11和网络侧设备12,其中,用户终端11可以是手机、平板电脑(Tablet Personal Computer)、膝上型电脑(Laptop  Computer)、个人数字助理(Personal Digital Assistant,PDA)、移动上网装置(Mobile Internet Device,MID)或可穿戴式设备(Wearable Device)等终端侧设备,需要说明的是,在本公开实施例中并不限定用户终端11的具体类型。网络侧设备12可以是基站,例如:宏站、LTE eNB、5G NR NB等;网络侧设备12也可以是小站,如低功率节点(Low Power Node,LPN)pico、femto等小站,或者网络侧设备12可以接入点(Access Point,AP);基站也可以是中央单元(Central Unit,CU)与其管理是和控制的多个传输接收点(Transmission Reception Point,TRP)共同组成的网络节点。需要说明的是,在本公开实施例中并不限定网络侧设备12的具体类型。
请参见图2,图2是本公开实施例提供的一种测量间隙确定方法的流程图,如图2所示,包括:
201、用户终端接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
202、所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
203、所述用户终端在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
其中,上述至少一个BWP可以是与用户终端工作BWP的同一分量载波中的其它BWP,其中,分量载波也可以称作成员载波。
其中,上述测量配置信息可以是同步信号(Synchronization Signal,SS)块的索引、频率位置或者时域位置等等信息,对此本公开实施例不作限定。
本公开实施例中,用户终端通过同步信号块的测量配置信息可以确定该同步信号块的传输位置,进而确定检测该同步信号块的测量间隙。需要说明的是,上述实际发送的同步信号块可以理解为,在上述BWP上会实际发送的同步信号块,本公开实施例并不限定这些同步信号块在何时发送,例如:可以在步骤202之后发送。
另外,本公开实施例中,上述用户终端可以是窄带用户终端,其中,窄 带用户终端可以是工作在一个或者多个BWP上的用户终端。
上述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP,接收网络侧设备发送的实际传输同步信号块的BWP的测量配置信息。本公开实施例中,网络侧设备可以通过半静态将每个载波配置成多个BWP,每个BWP可以配置为发送或不发送同步信号块,且窄带用户终端可以配置在不发送同步信号块的服务BWP下工作。
上述根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙可以是:用户终端根据上述测量配置信息,确定上述至少一个BWP中实际发送同步信号块的传输位置,进而确定用于测量这些实际发送的同步信号块的测量间隙。
通过上述步骤可以实现用户终端根据同步信号块的测量配置信息,确定用于在至少一个BWP进行同步信号块测量的测量间隙,这样可以实现只有实际发送同步信号块的时域位置,才设置测量间隙,而不实际发送的时域位置不设置测量间隙,从而减少测量间隙,以尽可能减少用户终端的服务中断,以提高用户终端通信性能。
可选地,所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
所述至少一个BWP上实际发送的M个同步信号块中的N个同步信号块的测量配置信息,其中,所述N个同步信号块为所述M个同步信号块中按照检测概率从高到低的排序中的前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数。
其中,上述M个同步信号块可以是用户终端可能检测到的同步信号块,例如:M个同步信号块发送时使用的波束方向能够覆盖所述用户终端所在位置。
该实施方式中,可以是网络侧设备基于其对用户终端提供数据服务的波束方向,以及在其他BWP上配置的实际同步信号块传输的波束方向来估计用户终端可能检测到的同步信号块。例如:通过网络侧设备对用户终端提供数据服务的波束方向,确定用户终端所在位置,进而判断在其他BWP上配置的 实际同步信号块发送时使用的波束方向与用户终端所在位置之间的关系,从而判断出用户终端可能检测到相应的同步信号块。然后,网络侧设备在用户终端可能检测的同步块信号中,按照检测概率从高到低的排序选择的前N个同步信号块。其中,前N个同步信号块可以是网络侧设备根据各同步信号块实际发送时使用的波束方向和用户终端的位置来选择的用户终端最可能检测的同步信号块。
该实施方式中,由于只向用户终端发送上述N个同步信号块的测量配置信息,从而可以进一步减少用户终端所需要的测量间隙。
可选地,所述测量配置信息包括如下至少一项:
实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
其中,上述至少一个BWP的索引可以是用户终端工作的不发送同步信号块的BWP所在的分量载波中的BWP索引,上述频率位置也可以是在分量载波中的频率位置。
上述同步信号块集合也可以称作同步信号块突发组。
需要说明的是,该实施方式中,若上述测量配置信息只包括索引时,用户终端可以通过预先获取的索引与频率位置和传输配置三者之间的对应关系,确定频率位置和传输配置;同时,若上述测量配置信息只包括频率位置时,可以通过预先获取的对应关系,确定索引和传输配置;若上述测量配置信息只包括传输配置时,可以通过预先获取的对应关系,确定索引和频率位置。同理,上述传输配置也可以只包括上述同步信号块集合中实际发送的同步信号块的索引或者时间位置、传输周期、同步信号块集合的时间偏移和同 步信号块的载波间隔和同步信号块的循环前缀中的至少一项,此处不作赘述。
另外,上述测量配置信息网络侧设备可以通过***信息广播发送或者通过用户终端特定的RRC信令来通知给用户终端。例如:通过剩余最小***信息(Remaining Minimum System Information,RMSI)或者其他***信息(Other System Information,OSI)等通知给用户终端。
该实施方式中,用户终端通过上述测量配置信息可以准确地确定上述至少一个BWP,以及这些BWP实际发送的同步信号块的传输配置,进而准确确定用于检测实际发送的同步信号块的测量间隙,以进一步减少用户终端的测量间隙。
可选地,上述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
该实施方式中,通过上述附加的测量配置信息可以帮助用户终端进一步减少测量间隙,因为,用户终端基于上述附加的测量配置信息可以更加准确地确定需要在哪些间隙测量网络侧设备实际发送的同步信号块。
可选地,上述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则所述用户终端根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则所述用户终端根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
若所述至少一个BWP为一个BWP可以理解为,用户终端被配置为仅从一个BWP测量同步信号块,上述若所述至少一个BWP为至少两个BWP可以理解为,用户终端被配置去测量多个BWP里的同步信号块。
上述测量间隙图样包括该BWP的至少一个局部测量间隙可以是,该测量间隙图样由该BWP的至少一个局部测量间隙组成。每个BWP的测量间隙图样可以是,用于在该BWP进行同步信号块测量的测量间隙图样。
另外,上述测量间隙图样可以是在同步信号块的传输周期内确定的,且一个局部测量间隙中网络侧设备可以实际发送一个或者多个同步信号块。例如:上述局部测量间隙可以等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
其中,上述调频时间可以是射频(Radio Frequency,RF)调频时间,例如:RF调频时间设为X(X>=1)个正交频分复用(Orthogonal Frequency Division Multiplexing,OFDM)。而上述同步信号块的传输时间可以是4或5个OFDM符号,对此本公开实施例不作限定。例如:如图3所示,以一个BWP进行举例,在同步信号块集合的传输周期(这里的同步信号块集合的传输周期也可以称作同步信号块的传输周期,因为这二者是一致的)内,有8个候选同步信号块的传输位置,即一个同步信号块集合中有8个候选同步信号块的传输位置。在实际发送同步信号块只有5个。那么,该BWP的测量间隙图样就可以包括局部测量间隙1和局部测量间隙2。
该实施方式中,可以准确确定各个局部测量间隙,以及相应的测量间隙图样,从而可以进一步减少测量间隙。
可选地,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
这样可以实现用户终端在测量同步信号块不会受到数据业务的影响,以提高测量性能。
本公开实施例中,用户终端接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;所述用户终端在所述测量间隙内对所述至少一个BWP进行同步信号块测量。由于只需要根据至 少一个BWP的同步信号块的测量配置信息确定测量间隙,从而相比相关技术周期性的测量间隙,本公开实施例可以减少测量间隙。
请参见图4,图4是本公开实施例提供的另一种测量间隙确定方法的流程图,如图4所示,包括以下步骤:
401、网络侧设备生成至少一个BWP上实际发送的同步信号块的测量配置信息;
402、所述网络侧设备向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
可选地,所述方法还包括:
所述网络侧设备估计所述至少一个BWP上实际发送的M个同步信号块;
所述网络侧设备在所述M个同步信号块中按照检测概率从高到低的排序选择前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数;
所述至少一个BWP上实际发送的同步信号块的测量配置信息测量配置信息包括:
所述N个同步信号块的测量配置信息。
可选地,所述测量配置信息包括如下至少一项:
实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述方法还包括:
所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
可选地,所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
需要说明的是,本实施例作为与图2所示的实施例中对应的网络侧设备的实施方式,其具体的实施方式可以参见图2所示的实施例的相关说明,为了避免重复说明,本实施例不再赘述,且还可以达到相同有益效果。
请参见图5,图5是本公开实施例提供的一种用户终端的结构图,如图5所示,用户终端500包括:
接收模块501,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息, 其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
确定模块502,用于根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
测量模块503,用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
可选地,所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
所述至少一个BWP上实际发送的M个同步信号块中的N个同步信号块的测量配置信息,其中,所述N个同步信号块为所述M个同步信号块中按照检测概率从高到低的排序中的前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数。
可选地,所述测量配置信息包括如下至少一项:
实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述确定模块502用于若所述至少一个BWP为一个BWP,则 根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
所述确定模块502用于若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
可选地,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
需要说明的是,本实施例中上述用户终端500可以是本公开实施例中方法实施例中任意实施方式的用户终端,本公开实施例中方法实施例中用户终端的任意实施方式都可以被本实施例中的上述用户终端500所实现,以及达到相同的有益效果,此处不再赘述。
请参见图6,图6是本公开实施例提供的一种网络侧设备的结构图,如图6所示,网络侧设备600包括:
生成模块601,用于生成至少一个BWP上实际发送的同步信号块的测量配置信息;
发送模块602,用于向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
可选地,如图7所示,所述网络侧设备600还包括:
估计模块603,用于估计所述至少一个BWP上实际发送的M个同步信号块;
选择模块604,用于在所述M个同步信号块中按照检测概率从高到低的排序选择前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数;
所述至少一个BWP上实际发送的同步信号块的测量配置信息测量配置信息包括:
所述N个同步信号块的测量配置信息。
可选地,所述测量配置信息包括如下至少一项:
实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,如图8所示,所述网络侧设备600还包括:
确定模块605,用于根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
可选地,所述确定模块605用于若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
所述确定模块605用于若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信 号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
需要说明的是,本实施例中上述网络侧设备600可以是本公开实施例中方法实施例中任意实施方式的网络侧设备,本公开实施例中方法实施例中网络侧设备的任意实施方式都可以被本实施例中的上述网络侧设备600所实现,以及达到相同的有益效果,此处不再赘述。
请参考图9,图9是本公开实施例提供的另一种用户终端的结构图,如图9所示,该用户终端包括:收发机910、存储器920、处理器900及存储在所述存储器920上并可在所述处理器上运行的计算机程序,其中:
所述收发机910,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
所述收发机910还用于根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
所述收发机910还用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量;
或者,
所述收发机910,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
所述处理器900用于读取存储器920中的程序,执行下列过程:
根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
所述收发机910还用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
通过上述可知,上述根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙可以是由收发机910或者处理器900执行的。
其中,收发机910,用于在处理器900的控制下接收和发送数据。
在图9中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器900代表的一个或多个处理器和存储器920代表的存储器的各种电路链接在一起。总线架构还可以将诸如***设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。收发机910可以是多个元件,即包括发送机和接收机,提供用于在传输介质上与各种其他装置通信的单元。
处理器900负责管理总线架构和通常的处理,存储器920可以存储处理器900在执行操作时所使用的数据。
需要说明的是,存储器920并不限定只在用户终端上的一种设备,可以将来存储器920和处理器900分离处于不同的地理位置。
可选地,所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
所述至少一个BWP上实际发送的M个同步信号块中的N个同步信号块的测量配置信息,其中,所述N个同步信号块为所述M个同步信号块中按照检测概率从高到低的排序中的前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数。
可选地,所述测量配置信息包括如下至少一项:
实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合 中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
可选地,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
需要说明的是,本实施例中上述用户终端可以是本公开实施例中方法实施例中任意实施方式的用户终端,本公开实施例中方法实施例中用户终端的任意实施方式都可以被本实施例中的上述用户终端所实现,以及达到相同的有益效果,此处不再赘述。
请参考图10,图10是本公开实施提供的另一种网络侧设备的结构图,如图10所示,该网络侧设备包括:收发机1010、存储器1020、处理器1000 及存储在所述存储器1020上并可在所述处理器上运行的计算机程序,其中:
所述处理器1000用于读取存储器1020中的程序,执行下列过程:
生成至少一个BWP上实际发送的同步信号块的测量配置信息;
所述收发机1010,用于向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
其中,收发机1010,用于在处理器1000的控制下接收和发送数据。
在图10中,总线架构可以包括任意数量的互联的总线和桥,具体由处理器1000代表的一个或多个处理器和存储器1020代表的存储器的各种电路链接在一起。总线架构还可以将诸如***设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口提供接口。收发机1010可以是多个元件,即包括发送机和接收机,提供用于在传输介质上与各种其他装置通信的单元。
处理器1000负责管理总线架构和通常的处理,存储器1020可以存储处理器1000在执行操作时所使用的数据。
可选地,所述处理器1000还用于读取存储器1020中的程序,执行下列过程:
估计所述至少一个BWP上实际发送的M个同步信号块;
在所述M个同步信号块中按照检测概率从高到低的排序选择前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数;
所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
所述N个同步信号块的测量配置信息。
可选地,所述测量配置信息包括如下至少一项:
实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
其中,所述传输配置包括如下至少一项:
同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合 中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
可选地,所述测量配置信息还包括如下至少一项:
所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
可选地,所述处理器1000还用于读取存储器1020中的程序,执行下列过程:
根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
或者,
所述收发机1010还用于根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
可选地,所述根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
可选地,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且 若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
需要说明的是,本实施例中上述网络侧设备可以是本公开实施例中方法实施例中任意实施方式的网络侧设备,本公开实施例中方法实施例中网络侧设备的任意实施方式都可以被本实施例中的上述网络侧设备所实现,以及达到相同的有益效果,此处不再赘述。
本公开实施例还提供一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现本公开实施例提供的用户终端侧的测量间隙确定方法中的步骤。
本公开实施例还提供一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现本公开实施例提供的网络侧设备侧的测量间隙确定方法中的步骤。
在本申请所提供的几个实施例中,应该理解到,所揭露方法和装置,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。
另外,在本公开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包括,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。
上述以软件功能单元的形式实现的集成的单元,可以存储在一个计算机可读取存储介质中。上述软件功能单元存储在一个存储介质中,包括若干指令用以使得一台计算机设备(可以是个人计算机,服务器,或者网络设备等)执行本公开各个实施例所述收发方法的部分步骤。而前述的存储介质包括:U盘、移动硬盘、只读存储器(Read-Only Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、磁碟或者光盘等各种可以存储程序代码的介质。
以上所述是本公开的优选实施方式,应当指出,对于本技术领域的普通技术人员来说,在不脱离本公开所述原理的前提下,还可以作出若干改进和润饰,这些改进和润饰也应视为本公开的保护范围。

Claims (35)

  1. 一种测量间隙确定方法,包括:
    用户终端接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分(Band Width Part,BWP)上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
    所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    所述用户终端在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
  2. 如权利要求1所述的方法,其中,所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
    所述至少一个BWP上实际发送的M个同步信号块中的N个同步信号块的测量配置信息,其中,所述N个同步信号块为所述M个同步信号块中按照检测概率从高到低的排序中的前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数。
  3. 如权利要求1所述的方法,其中,所述测量配置信息包括如下至少一项:
    实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
    其中,所述传输配置包括如下至少一项:
    同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
  4. 如权利要求3所述的方法,其中,所述测量配置信息还包括如下至少一项:
    所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理(Radio Resource Management,RRM)测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
  5. 如权利要求1至4中任一项所述的方法,其中,所述用户终端根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
    若所述至少一个BWP为一个BWP,则所述用户终端根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
    若所述至少一个BWP为至少两个BWP,则所述用户终端根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
  6. 如权利要求5所述的方法,其中,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
  7. 如权利要求1至4中任一项所述的方法,其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
  8. 一种测量间隙确定方法,包括:
    网络侧设备生成至少一个BWP上实际发送的同步信号块的测量配置信息;
    所述网络侧设备向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
  9. 如权利要求8所述的方法,还包括:
    所述网络侧设备估计所述至少一个BWP上实际发送的M个同步信号块;
    所述网络侧设备在所述M个同步信号块中按照检测概率从高到低的排序选择前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数;
    所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
    所述N个同步信号块的测量配置信息。
  10. 如权利要求8所述的方法,其中,所述测量配置信息包括如下至少一项:
    实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
    其中,所述传输配置包括如下至少一项:
    同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
  11. 如权利要求10所述的方法,其中,所述测量配置信息还包括如下至少一项:
    所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
  12. 如权利要求8至11中任一项所述的方法,还包括:
    所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业 务服务。
  13. 如权利要求12所述的方法,其中,所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
    若所述至少一个BWP为一个BWP,则所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
    若所述至少一个BWP为至少两个BWP,则所述网络侧设备根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
  14. 如权利要求13所述的方法,其中,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
  15. 一种用户终端,包括:
    接收模块,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
    确定模块,用于根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    测量模块,用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
  16. 如权利要求15所述的用户终端,其中,所述测量配置信息包括如下至少一项:
    实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际 发送同步信号块的传输配置;
    其中,所述传输配置包括如下至少一项:
    同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
  17. 如权利要求15或16所述的用户终端,其中,所述确定模块用于若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
    所述确定模块用于若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
  18. 一种网络侧设备,包括:
    生成模块,用于生成至少一个BWP上实际发送的同步信号块的测量配置信息;
    发送模块,用于向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
  19. 如权利要求18所述的网络侧设备,其中,所述测量配置信息包括如下至少一项:
    实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
    其中,所述传输配置包括如下至少一项:
    同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所 述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
  20. 如权利要求18或19所述的网络侧设备,还包括:
    确定模块,用于根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
  21. 如权利要求20所述的网络侧设备,其中,所述确定模块用于若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
    所述确定模块用于若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
  22. 一种用户终端,包括:收发机、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计算机程序,其中,
    所述收发机,用于接收网络侧设备发送的测量配置信息,所述测量配置信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
    所述收发机还用于根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    所述收发机还用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量;
    或者,
    所述收发机,用于接收网络侧设备发送的测量配置信息,所述测量配置 信息为至少一个带宽部分BWP上实际发送的同步信号块的测量配置信息,其中,所述用户终端接收所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP;
    所述处理器用于读取存储器中的程序,执行下列过程:
    根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    所述收发机还用于在所述测量间隙内对所述至少一个BWP进行同步信号块测量。
  23. 如权利要求22所述的用户终端,其中,所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
    所述至少一个BWP上实际发送的M个同步信号块中的N个同步信号块的测量配置信息,其中,所述N个同步信号块为所述M个同步信号块中按照检测概率从高到低的排序中的前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N为大于或者等于1的整数,所述M为大于或者等于N的整数。
  24. 如权利要求23所述的用户终端,其中,所述测量配置信息包括如下至少一项:
    实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
    其中,所述传输配置包括如下至少一项:
    同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
  25. 如权利要求23所述的用户终端,其中,所述测量配置信息还包括如下至少一项:
    所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述 用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
  26. 如权利要求22至25中任一项所述的用户终端,其中,所述根据所述测量配置信息,确定用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
    若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
    若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
  27. 如权利要求26所述的用户终端,其中,所述局部测量间隙等于T个同步信号块的传输时间加上所述T个同步信号块两侧的调频时间,其中,所述T为大于或者等于1的整数,且若T大于1时,所述T个同步信号块为时域连续的T个同步信号块。
  28. 一种网络侧设备,包括:收发机、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计算机程序,其中,
    所述处理器用于读取存储器中的程序,执行下列过程:
    生成至少一个BWP上实际发送的同步信号块的测量配置信息;
    所述收发机,用于向用户终端发送所述测量配置信息,其中,所述网络侧设备向所述用户终端发送所述测量配置信息时,所述用户终端工作在不发送同步信号块的BWP。
  29. 如权利要求28所述的网络侧设备,其中,所述处理器还用于读取存储器中的程序,执行下列过程:
    估计所述至少一个BWP上实际发送的M个同步信号块;
    在所述M个同步信号块中按照检测概率从高到低的排序选择前N个同步信号块,所述检测概率为所述用户终端针对同步信号块的检测概率,所述N 为大于或者等于1的整数,所述M为大于或者等于N的整数;
    所述至少一个BWP上实际发送的同步信号块的测量配置信息包括:
    所述N个同步信号块的测量配置信息。
  30. 如权利要求28所述的网络侧设备,其中,所述测量配置信息包括如下至少一项:
    实际发送同步信号块的所述至少一个BWP的索引、实际发送同步信号块的所述至少一个BWP的频率位置和所述至少一个BWP中每个BWP上实际发送同步信号块的传输配置;
    其中,所述传输配置包括如下至少一项:
    同步信号块集合中实际发送的同步信号块的索引、所述同步信号块集合中实际发送的同步信号块的时间位置、所述同步信号块集合的传输周期、所述同步信号块集合的时间偏移、同步信号块的载波间隔和同步信号块的循环前缀,其中,所述同步信号块集合为至少一个BWP上实际发送的同步信号块所属的同步信号块集合。
  31. 如权利要求30所述的网络侧设备,其中,所述测量配置信息还包括如下至少一项:
    所述用户终端待测量的BWP的索引表、所述索引表中每个BWP中所述用户终端待测量的同步信号块集合、所述索引表中每个BWP的无线资源管理RRM测量周期、所述索引表中每个BWP的RRM测量的开始时间、所述索引表中每个BWP的RRM测量的停止时间和测量报告周期。
  32. 如权利要求28至31中任一项所述的网络侧设备,其中,所述处理器还用于读取存储器中的程序,执行下列过程:
    根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    或者,
    所述收发机还用于根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙;
    其中,在所述测量间隙内所述网络侧设备不向所述用户终端提供数据业务服务。
  33. 如权利要求32所述的网络侧设备,其中,所述根据所述测量配置信息,确定所述用户终端用于在所述至少一个BWP进行同步信号块测量的测量间隙,包括:
    若所述至少一个BWP为一个BWP,则根据所述测量配置信息,确定所述用户终端用于在该BWP进行同步信号块测量的测量间隙图样,其中,该测量间隙图样包括该BWP的至少一个局部测量间隙;或者
    若所述至少一个BWP为至少两个BWP,则根据所述测量配置信息,确定所述用户终端用于在所述至少两个BWP进行同步信号块测量的测量间隙图样,该测量间隙图样包括所述至少两个BWP中每个BWP的测量间隙图样,每个BWP的测量间隙图样包括该BWP的至少一个局部测量间隙。
  34. 一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现如权利要求1至7中任一项所述的测量间隙确定方法中的步骤。
  35. 一种计算机可读存储介质,其上存储有计算机程序,该程序被处理器执行时实现如权利要求8至14中任一项所述的测量间隙确定方法中的步骤。
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