WO2022184107A1 - 间隙配置方法、装置、设备及存储介质 - Google Patents

间隙配置方法、装置、设备及存储介质 Download PDF

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Publication number
WO2022184107A1
WO2022184107A1 PCT/CN2022/078867 CN2022078867W WO2022184107A1 WO 2022184107 A1 WO2022184107 A1 WO 2022184107A1 CN 2022078867 W CN2022078867 W CN 2022078867W WO 2022184107 A1 WO2022184107 A1 WO 2022184107A1
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Prior art keywords
gap
target
target gap
configuration
configuration information
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PCT/CN2022/078867
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English (en)
French (fr)
Inventor
刘选兵
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维沃移动通信有限公司
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Priority to JP2023547280A priority Critical patent/JP2024506579A/ja
Priority to EP22762570.4A priority patent/EP4277437A1/en
Publication of WO2022184107A1 publication Critical patent/WO2022184107A1/zh
Priority to US18/241,385 priority patent/US20230413094A1/en

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0083Determination of parameters used for hand-off, e.g. generation or modification of neighbour cell lists
    • H04W36/0085Hand-off measurements
    • H04W36/0088Scheduling hand-off measurements
    • 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
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/02Arrangements for optimising operational condition
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W8/00Network data management
    • H04W8/18Processing of user or subscriber data, e.g. subscribed services, user preferences or user profiles; Transfer of user or subscriber data
    • H04W8/183Processing at user equipment or user record carrier
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W88/00Devices specially adapted for wireless communication networks, e.g. terminals, base stations or access point devices
    • H04W88/02Terminal devices
    • H04W88/06Terminal devices adapted for operation in multiple networks or having at least two operational modes, e.g. multi-mode terminals

Definitions

  • the present application belongs to the field of communication technologies, and in particular relates to a gap configuration method, apparatus, device and storage medium.
  • multi-card terminals there are not only single-card terminals, but also dual-card or multi-card terminals on the market, which are collectively referred to as multi-card terminals.
  • the capabilities of the multi-card terminal can be single-send single-receive, single-send double-receive, and double-send double-receive.
  • a feature of Doka terminals is that they can reside on multiple networks at the same time.
  • the network configures a measurement gap (gap) for the terminal so that the terminal can perform measurement tasks, such as a New Radio (New Radio, NR) measurement task or a Long Term Evolution (Long Term Evolution, LTE) measurement task or other similar measurements.
  • measurement tasks such as a New Radio (New Radio, NR) measurement task or a Long Term Evolution (Long Term Evolution, LTE) measurement task or other similar measurements.
  • task that is, the existing gap gap is mainly used for measurement tasks; for some terminals, to perform dual-card tasks such as tasks in idle mode such as paging, measurement, cell search, background public land mobile search (Public Land Mobile Network Search, PLMN Search), etc.
  • the measurement gap cannot support the terminal to complete all multi-card task types.
  • the purpose of the embodiments of the present application is to provide a gap configuration method, apparatus, device, and storage medium, which can efficiently support gap requirements of multiple multi-card tasks and reduce the impact of multi-card tasks on terminal data throughput.
  • a gap configuration method comprising:
  • the terminal receives the first configuration information sent by the network side device, where the first configuration information includes the configuration information of the target gap;
  • the terminal executes the target task based on the configuration information of the target gap
  • the target tasks include measurement tasks and/or non-measurement tasks.
  • a gap configuration method comprising:
  • the network side device determines the configuration information of the target gap
  • the network side device sends first configuration information to the terminal, where the first configuration information includes the configuration information of the target gap;
  • the configuration information of the target gap is used to instruct the terminal to perform a target task in the target gap, and the target task includes a measurement task and/or a non-measurement task.
  • a gap configuration device comprising:
  • a first receiving module configured to receive first configuration information sent by the network-side device, where the first configuration information includes the configuration information of the target gap;
  • a first execution module configured to execute the target task based on the configuration information of the target gap
  • the target tasks include measurement tasks and/or non-measurement tasks.
  • a gap configuration device comprising:
  • the first determination module is used to determine the configuration information of the target gap
  • a first sending module configured to send first configuration information to the terminal, where the first configuration information includes the configuration information of the target gap
  • the configuration information of the target gap is used to instruct the terminal to perform a target task in the target gap, and the target task includes a measurement task and/or a non-measurement task.
  • a terminal in a fifth aspect, includes a processor, a memory, and a program or instruction stored on the memory and executable on the processor, when the program or instruction is executed by the processor.
  • a network side device in a sixth aspect, includes a processor, a memory, and a program or instruction stored on the memory and executable on the processor, the program or instruction being executed by the The processor implements the steps of the method as described in the first aspect when executed.
  • a readable storage medium is provided, and a program or an instruction is stored on the readable storage medium, and when the program or instruction is executed by a processor, the steps of the method described in the first aspect, or the The steps of the method of the second aspect.
  • a chip in an eighth aspect, includes a processor and a communication interface, the communication interface is coupled to the processor, and the processor is configured to run a program or an instruction to implement the method according to the first aspect steps, or steps of implementing the method according to the second aspect.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • FIG. 1 is a block diagram of a wireless communication system to which an embodiment of the present application can be applied;
  • FIG. 2 is one of the schematic flowcharts of the gap configuration method provided by the embodiment of the present application.
  • FIG. 3 is a second schematic flowchart of a gap configuration method provided by an embodiment of the present application.
  • FIG. 4 is one of the schematic structural diagrams of the gap configuration device provided by the embodiment of the present application.
  • FIG. 5 is a second schematic structural diagram of a gap configuration device provided by an embodiment of the present application.
  • FIG. 6 is a schematic structural diagram of a communication device provided by an embodiment of the present application.
  • FIG. 7 is a schematic diagram of a hardware structure of a terminal provided by an embodiment of the present application.
  • FIG. 8 is a schematic diagram of a hardware structure of a network side device provided by an embodiment of the present application.
  • first, second and the like in the description and claims of the present application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It is to be understood that the data so used are interchangeable under appropriate circumstances so that the embodiments of the present application can be practiced in sequences other than those illustrated or described herein, and "first”, “second” distinguishes Usually it is a class, and the number of objects is not limited.
  • the first object may be one or multiple.
  • “and/or” in the description and claims indicates at least one of the connected objects, and the character “/" generally indicates that the associated objects are in an "or” relationship.
  • LTE Long Term Evolution
  • LTE-Advanced LTE-Advanced
  • LTE-A Long Term Evolution
  • CDMA Code Division Multiple Access
  • TDMA Time Division Multiple Access
  • FDMA Frequency Division Multiple Access
  • OFDMA Orthogonal Frequency Division Multiple Access
  • SC-FDMA Single-carrier Frequency-Division Multiple Access
  • system and “network” in the embodiments of the present application are often used interchangeably, and the described technology can be used not only for the above-mentioned systems and radio technologies, but also for other systems and radio technologies.
  • NR New Radio
  • the following description describes a New Radio (NR) system for example purposes, and uses NR terminology in most of the description below, but these techniques can also be applied to applications other than NR system applications, such as 6th Generation (6th Generation) , 6G) communication system.
  • 6th Generation 6th Generation
  • 6G 6th Generation
  • FIG. 1 shows a block diagram of a wireless communication system to which the embodiments of the present application can be applied.
  • the wireless communication system includes a terminal 11 and a network-side device 12 .
  • the terminal 11 may also be referred to as a terminal device or a user terminal (User Equipment, UE), and the terminal 11 may be a mobile phone, a tablet computer (Tablet Personal Computer), a laptop computer (Laptop Computer) or a notebook computer, a personal digital Assistant (Personal Digital Assistant, PDA), PDA, Netbook, Ultra-mobile Personal Computer (UMPC), Mobile Internet Device (MID), Augmented Reality (AR)/Virtual Reality (virtual reality, VR) device, robot, wearable device (Wearable Device), vehicle-mounted device (VUE), pedestrian terminal (PUE), smart home (home devices with wireless communication functions, such as refrigerators, TVs, washing machines or furniture etc.), game consoles, personal computers (PCs), teller machines or self-service machines and other terminal-side devices, wearable devices include: smart watches
  • the network side device 12 may include an access network device or a core network device, wherein the access network device 12 may also be referred to as a radio access network device, a radio access network (Radio Access Network, RAN), a radio access network function or Radio access network unit.
  • the access network device 12 may include a base station, a WLAN access point, or a WiFi node, etc., and the base station may be referred to as a Node B, an evolved Node B, an access point, a Base Transceiver Station (BTS), a radio base station, a radio base station, or a radio base station.
  • BTS Base Transceiver Station
  • the base station is not limited to specific technical vocabulary, it should be noted that in this application, only the base station in the NR system is used as an example, but the specific type of the base station is not limited.
  • the core network equipment may include, but is not limited to, at least one of the following: core network node, core network function, mobility management entity (Mobility Management Entity, MME), access mobility management function (Access and Mobility Management Function, AMF), session management function (Session Management Function, SMF), User Plane Function (UPF), Policy Control Function (Policy Control Function, PCF), Policy and Charging Rules Function (Policy and Charging Rules Function, PCRF), edge application services Discovery function (Edge Application Server Discovery Function, EASDF), Unified Data Management (Unified Data Management, UDM), Unified Data Repository (Unified Data Repository, UDR), Home Subscriber Server (Home Subscriber Server, HSS), centralized network configuration ( Centralized network configuration, CNC), Network Repository Function (NRF), Network Exposure Function (NEF), Local NEF (Local NEF, or L-NEF), Binding Support Function (Binding Support Function, BSF), Application Function (AF), etc. It should be noted that, in the embodiments of the present application, only the core
  • FIG. 2 is one of the schematic flowcharts of the gap configuration method provided by the embodiment of the present application. As shown in FIG. 2 , the method includes the following steps:
  • Step 200 the terminal receives the first configuration information sent by the network side device, where the first configuration information includes the configuration information of the target gap;
  • the terminal executes the target task based on the configuration information of the target gap
  • the target tasks include measurement tasks and/or non-measurement tasks.
  • Time-division multiplexing is usually used in communication systems to solve the task scheduling problem of terminal resource conflicts.
  • a single-card terminal is configured with a measurement gap to perform inter-frequency measurement and wireless access technology.
  • Inter-RAT, IRAT inter-frequency measurement and wireless access technology.
  • the network-side device can configure a measurement gap for the terminal, so that the terminal can perform the NR measurement task.
  • the network-side device can allocate a measurement gap, and the terminal can use the allocated measurement gap to perform measurement tasks.
  • the terminal can report the measurement gap requirements, including whether a gap is required, and the frequency band that requires a gap, intra-frequency measurement, inter-frequency measurement, and Inter-RAT measurement that require a gap.
  • the gap measurement configuration field description table in Table 1 below shows some common measurement gaps.
  • FR1 and FR2 are frequency band 1 Frequency Range 1 and frequency band 2 Frequency Range 2.
  • a new configuration of the gap can be designed to meet the requirements of various types of target tasks, such as measurement tasks and/or non-measurement tasks.
  • the network side device determines the configuration information of the target gap, it can transmit it to the terminal.
  • the network-side device may transmit first configuration information to the terminal, where the first configuration information includes configuration information of the target gap.
  • the terminal can determine the target gap based on the configuration information of the target gap, and can also use the target gap to perform the target task.
  • the gap attribute domain set or gap pattern of the target gap is an optional gap type; it is different from gaps such as gapFR2, gapFR1, and gapUE.
  • the terminal UE1 may receive a first configuration message sent by the network side device, where the first configuration message may include optional target gap configuration information.
  • the target gap can be used by UE1 to perform target tasks, such as multi-SIM (Multi-SIM) tasks, tasks such as UE1 switching to other networks.
  • target tasks such as multi-SIM (Multi-SIM) tasks, tasks such as UE1 switching to other networks.
  • Multi-SIM multi-SIM
  • the UE1 can use the target gap to stop data transmission and reception; or not use the target gap and continue normal data transmission and reception.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the target task includes:
  • Multi-card tasks are measurement tasks and/or non-measurement tasks of other terminals, and the other terminals are associated with the terminals.
  • a feature of a multi-card terminal is that it can reside on multiple networks at the same time, but the implementation of the multi-card terminal is different, and some terminals can transmit and receive simultaneously on multiple networks without affecting each other.
  • the terminal can reside on multiple networks at the same time, it may reside on two networks in a time-division manner, that is, UE1 resides on network A for a period of time and listens to the paging of network A for a period of time.
  • UE1 resides on network B and listens to network B's paging.
  • UE1 connects to network A for a period of time to send and receive data, and for a period of time UE1 wants to receive paging on network B. Or UE1 receives data on network A for a period of time, and UE1 needs to establish a connection on network B or send and receive data for a period of time.
  • the multi-card task is a measurement task and/or a non-measurement task of other UE2;
  • UE1 may perform measurement tasks and/or non-measurement tasks of UE2 in the target gap.
  • UE1 is the terminal.
  • UE2 is the other terminal.
  • UE1 and UE2 may belong to the same physical device; for example, SIM1 and SIM2 in a dual-SIM mobile phone.
  • UE1 and UE2 can be two associated UEs, such as a mobile terminal and a device communicatively connected to the mobile terminal, and the device can communicate with the network side device;
  • UE1 and UE2 may belong to the same user; for example, SIM1 and virtual card SIM2 in the mobile phone.
  • the target task includes:
  • a multi-card task is the task of other terminals, and the other terminals are associated with the terminals.
  • the target task includes:
  • a multi-card task is a task of another terminal, and the other terminal and the terminal are terminals belonging to the same device.
  • the configuration information of the target gap includes:
  • the independent target gap is configured independently, or the independent target gap is configured together with at least one measurement gap.
  • the target gap configuration can be implemented in multiple ways, including independent target gaps and/or non-independent target gaps, where:
  • An independent target gap which can coexist with the traditional measurement gap or exist independently;
  • a non-independent target gap such as configuring a target gap pattern based on a measurement gap.
  • the network side device may configure an independent target gap for the terminal, so the configuration information of the target gap may include: configuration information for configuring the independent target gap.
  • the independent target gap may be configured separately, for example, the network side device may only configure the target gap.
  • the independent target gap is configured together with at least one measurement gap.
  • the network side device may configure one or more of the target gap and the measurement gap (eg, gapFR2, gapFR1, and gapUE).
  • the network-side device can configure the target gap and gapFR1 at the same time.
  • the network-side device can configure the target gap, gapFR1, and gapFR2 at the same time.
  • the configuration information of the independent target gap includes at least one of the following:
  • the reference serving cell where the target gap is located and/or the cell group where the target gap is located;
  • the frequency range of the target gap is the frequency range of the target gap.
  • the configuration information of the independent target gap may include but is not limited to any one or any combination of the following:
  • the cell group where the target gap is located (Master cell group (MCG), and Secondary Cell Group (SCG));
  • the frequency range of the target gap is the frequency range of the target gap.
  • the network side device can configure the target gap: GapMsim in the RRC reconfiguration message, or configure the target gap: GapMsim in the MeasGapConfig IE;
  • the attributes of the target gap that can be configured on the network side device include:
  • the reference serving cell (refServCellMsim-rxx) where the target gap is located, such as the primary cell or the primary and secondary cells;
  • Target gap cycle (mgrp-rxx), value range, enumeration ⁇ ms320, ms640, ms1280, ms2560 ⁇ ;
  • Target gap offset (gapOffset-rxx), integer (0-2559);
  • Target gap length (mgl-rxx), N milliseconds, N is an integer
  • the frequency range of the target gap enumerated ⁇ FR1, FR2, FR1 and FR2 ⁇ ; where "FR1 and FR2" indicates that the target gap can be applied to FR1 and FR2, and can also be represented by "UE".
  • the frequency range of the target gap may include FR1 and/or FR2.
  • performing the target task based on the configuration information of the target gap includes:
  • the configuration information that is in the same cell as the configuration information of the independent target gap and is configured with the same type of information as the configuration information of the target gap is ignored.
  • the configuration information of the target gap can be used;
  • the terminal may ignore the configuration information of other gaps.
  • the suffix "-rxx” is the configuration information of the target gap, and the gapOffset INTEGER(0..159) and gapOffset-rxx INTEGER(0..2559) OPTIONAL are configured in the same cell, --Cond MSIM, at this time, when using the target gap, the configuration information of the target gap is used, and the configuration information of gapOffset INTEGER (0..159) is ignored. Other types of configuration information and so on.
  • Cond MSIM indicates that this field is optional when configuring the gap pattern for the terminal UE to perform target tasks such as multi-card tasks. Otherwise, the domain does not exist.
  • the configuration type of its configuration information includes any of the following:
  • the cell group where the gap is located (the primary cell group MCG, and the secondary cell group SCG);
  • a gap such as the configuration information of the target gap
  • it can be called the gap attribute domain set gap pattern of the target gap, which includes multiple attribute thresholds, and each attribute threshold corresponds to one of the above types.
  • the independent target gap partially or completely overlaps with at least one measurement gap.
  • multiple gaps can overlap, including full overlap and partial overlap.
  • an independent target gap can partially or completely overlap with any other measurement gap.
  • performing the target task based on the configuration information of the target gap includes at least one of the following:
  • the first measurement task is ignored, which is the task corresponding to the measurement gap that partially or completely overlaps the independent target gap.
  • the terminal can use the longest gap among all overlapping gaps to perform the corresponding task;
  • the terminal can use the target gap to perform the target task, such as a multi-card task;
  • the terminal may ignore other measurement gap purposes.
  • the configuration information of the target gap gap includes:
  • configuration information of a dependent target gap is configured based on the configuration of the first measurement gap, wherein the dependent target gap and the first measurement gap correspond to the same reference serving cell.
  • the target gap configuration can be implemented in multiple ways, including independent target gaps and/or non-independent target gaps, where:
  • An independent target gap which can coexist with the traditional measurement gap or exist independently;
  • a non-independent target gap such as configuring a target gap pattern based on a measurement gap.
  • a non-independent target gap can be configured on the basis of its configuration to adapt to the needs of the task.
  • the configuration information of the target gap gap may include configuration information for configuring the dependent target gap.
  • the non-independent target gap may correspond to the same reference serving cell as any other gap.
  • UE1 can use the non-independent target gap to stop data transmission and reception; or it can continue data transmission and reception without using the non-independent target gap.
  • the configuration information of the non-independent target gap includes at least one of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the configuration information of the non-independent target gap may include but is not limited to any one or any combination of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the network-side device can configure the target gap: GapMsim in the RRC reconfiguration message, or configure the gap pattern of the target gap: GapMsim in the MeasGapConfig IE.
  • the attributes of the target gap that can be configured on the network side device include:
  • Target gap cycle (mgrp-rxx), value range, enumeration ⁇ ms320, ms640, ms1280, ms2560 ⁇ ;
  • Target gap offset (gapOffset-rxx), integer (0-2559);
  • Target gap length (mgl-rxx), N milliseconds, where N is an integer.
  • the part with the suffix "-rxx" is the configuration information part of the target gap.
  • Cond MSIM indicates that this field is optionally present when configuring the gap pattern for the UE to perform target tasks such as multi-card tasks. Otherwise, the domain does not exist.
  • the dependent target gap partially or completely overlaps with at least one measurement gap.
  • multiple gaps can overlap, including full overlap and partial overlap.
  • multiple gaps configured in the first configuration information may overlap, including complete overlap and partial overlap.
  • the dependent target gap may partially or completely overlap with any other measurement gap.
  • performing the target task based on the configuration information of the target gap includes at least one of the following:
  • the second measurement task is a task corresponding to the measurement gap partially or completely overlapping with the dependent target gap;
  • the all overlapping gaps include the independent target gap and the measurement gap partially or completely overlapping with the independent target gap.
  • the terminal can use the longest gap among all overlapping gaps to perform the corresponding task;
  • the terminal can use the target gap to perform the target task, such as a multi-card task;
  • the terminal can ignore other measurement gap purposes
  • the terminal may use a collection of the gap times when there are overlapping gaps, and execute tasks corresponding to multiple gaps within the collection time.
  • the first configuration information includes: configuration information of the non-independent target gap, and configuration information of other non-independent gaps;
  • the configuration information of the other non-independent gaps is the configuration information of other non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • the first configuration information may include multiple sets of gap patterns, such as gap patterns of the target gap and gap patterns of other measurement gaps.
  • the first configuration information includes multiple sets of gap patterns
  • at least one set of gap patterns may take effect, and the set of gap patterns that take effect may be used as the gap pattern of the target gap.
  • the multiple sets of gap patterns included in the first configuration information may all be non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • performing the target task based on the configuration information of the target gap includes:
  • the target gap is only used in the context of performing the target task.
  • the target gap when the target gap includes an independent target gap and/or a non-independent target gap, in the configuration of the target gap, the target gap or the attribute of the target gap can optionally exist when the target condition is satisfied.
  • the target condition may include when the gap is configured for multi-card purpose or multi-card task.
  • the terminal can be configured to use the target gap only in case of multi-card tasks.
  • performing the target task based on the configuration information of the target gap includes:
  • the target gap takes effect alone, or the target gap and at least one measurement gap take effect in parallel.
  • the target gap when the target gap includes an independent target gap and/or a non-independent target gap, the target gap can take effect in parallel with other measurement gap modes such as gapFR2, gapFR1, or gapUE and other measurement gap modes;
  • the target gap when the target gap includes an independent target gap and/or a non-independent target gap, the target gap can take effect alone.
  • the target gap is optionally valid. That is, the terminal can choose to use the target gap or not to use the target gap;
  • the terminal can selectively enable or disable the target gap based on the requirements of the task to be executed;
  • the target gap can take effect at any time thereafter.
  • the method further includes:
  • the terminal sends a target gap configuration request to the network side device, where the target gap configuration request is used to request configuration information of the target gap gap.
  • the method also includes:
  • the terminal sends a configuration request of the target gap to the network side device
  • the configuration request of the target gap includes at least one of the following:
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • FIG. 3 is a second schematic flowchart of a gap configuration method provided by an embodiment of the present application. As shown in FIG. 3 , the method includes the following steps:
  • Step 300 the network side device determines the configuration information of the target gap
  • Step 310 the network side device sends first configuration information to the terminal, where the first configuration information includes the configuration information of the target gap;
  • the configuration information of the target gap is used to instruct the terminal to perform a target task in the target gap, and the target task includes a measurement task and/or a non-measurement task.
  • a new configuration of the gap can be designed to meet the requirements of various types of target tasks, such as measurement tasks and/or non-measurement tasks.
  • the network side device may determine the configuration information of the target gap, and after determining the configuration information of the target gap, may transmit it to the terminal.
  • the network-side device may transmit first configuration information to the terminal, where the first configuration information includes configuration information of the target gap.
  • the terminal can determine the target gap based on the configuration information of the target gap, and can also use the target gap to perform the target task.
  • the gap attribute domain set gap pattern of the target gap is an optional gap type; it is different from gaps such as gapFR2, gapFR1, and gapUE.
  • the terminal UE1 may receive a first configuration message sent by the network side device, where the first configuration message may include optional target gap configuration information.
  • the target gap can be used by UE1 to perform target tasks, such as multi-SIM (Multi-SIM) tasks, tasks such as UE1 switching to other networks.
  • target tasks such as multi-SIM (Multi-SIM) tasks, tasks such as UE1 switching to other networks.
  • Multi-SIM multi-SIM
  • UE1 can use the target gap to stop data transmission and reception; or not use the target gap and continue normal data transmission and reception.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the target task includes:
  • Multi-card tasks are measurement tasks and/or non-measurement tasks of other terminals, and the other terminals are associated with the terminals.
  • a feature of a multi-card terminal is that it can reside in multiple networks at the same time, but the implementation of the multi-card terminal is different, and some terminals can transmit and receive simultaneously in multiple networks without affecting each other.
  • the terminal can reside on multiple networks at the same time, it may reside on two networks in a time-division manner.
  • Network B resides listening to Network B's paging. Or connect to send and receive data on network A for a period of time, and receive paging on network B for a period of time. Or receive data on network A for a period of time, and establish a connection or send and receive data on network B for a period of time.
  • the multi-card task is a measurement task and/or a non-measurement task of other terminal UE2;
  • the terminal UE1 may perform the measurement task and/or the non-measurement task of the UE2 in the target gap.
  • UE1 and UE2 may belong to the same physical device; for example, SIM1 and SIM2 in a dual-SIM mobile phone.
  • UE1 and UE2 can be two associated UEs, such as a mobile terminal and a device communicatively connected to the mobile terminal, and the device can communicate with the network side device;
  • UE1 and UE2 can be two associated UEs, such as a mobile terminal and a device connected to the mobile terminal via Bluetooth, and the Bluetooth device can communicate with the network side device;
  • UE1 and UE2 may belong to the same user; for example, SIM1 and virtual card SIM2 in the mobile phone.
  • the determining the configuration information of the target gap gap includes:
  • the target gap configuration can be implemented in multiple ways, including independent target gaps and/or non-independent target gaps, where:
  • An independent target gap which can coexist with the traditional measurement gap or exist independently;
  • a non-independent target gap such as configuring a target gap pattern based on a measurement gap.
  • the network side device may configure an independent target gap for the terminal, so the configuration information of the target gap may include: configuration information for configuring the independent target gap.
  • the independent target gap may be configured separately, for example, the network side device may only configure the target gap.
  • the independent target gap is configured together with at least one measurement gap.
  • the network side device may configure one or more of the target gap and the measurement gap (eg, gapFR2, gapFR1, and gapUE).
  • the network-side device can configure the target gap and gapFR1 at the same time.
  • the network-side device can configure the target gap, gapFR1, and gapFR2 at the same time.
  • the configuration information of the independent target gap includes at least one of the following:
  • the reference serving cell where the target gap is located and/or the cell group where the target gap is located;
  • the frequency range of the target gap is the frequency range of the target gap.
  • the configuration information of the independent target gap may include but is not limited to any one or any combination of the following:
  • the cell group where the target gap is located (the primary cell group MCG, and the secondary cell group SCG);
  • the frequency range of the target gap is the frequency range of the target gap.
  • the network side device can configure the target gap: GapMsim in the RRC reconfiguration message, or configure the target gap: GapMsim in the MeasGapConfig IE;
  • the attributes of the target gap that can be configured on the network side device include:
  • the reference serving cell (refServCellMsim-rxx) where the target gap is located, such as the primary cell or the primary and secondary cells;
  • Target gap cycle (mgrp-rxx), value range, enumeration ⁇ ms320, ms640, ms1280, ms2560 ⁇ ;
  • Target gap offset (gapOffset-rxx), integer (0-2559);
  • Target gap length (mgl-rxx), N milliseconds, N is an integer
  • the independent target gap partially or completely overlaps with at least one measurement gap.
  • multiple gaps can overlap, including full overlap and partial overlap.
  • an independent target gap can partially or completely overlap with any other measurement gap.
  • the determining the configuration information of the target gap gap includes:
  • a dependent target gap is configured based on the configuration of the first measurement gap, wherein the dependent target gap and the first measurement gap correspond to the same reference serving cell.
  • the target gap configuration can be implemented in multiple ways, including independent target gaps and/or non-independent target gaps, where:
  • An independent target gap which can coexist with the traditional measurement gap or exist independently;
  • a non-independent target gap such as configuring a target gap pattern in a measurement gap.
  • a non-independent target gap can be configured on the basis of its configuration to adapt to the needs of the task.
  • the configuration information of the target gap gap may include configuration information for configuring the dependent target gap.
  • the non-independent target gap may correspond to the same reference serving cell as any other gap.
  • UE1 can use the non-independent target gap to stop data transmission and reception; or it can continue data transmission and reception without using the non-independent target gap.
  • the configuration information of the non-independent target gap includes at least one of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the configuration information of the non-independent target gap may include but is not limited to any one or any combination of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the network-side device can configure the target gap: GapMsim in the RRC reconfiguration message, or configure the gap pattern of the target gap: GapMsim in the MeasGapConfig IE.
  • the attributes of the target gap that can be configured on the network side device include:
  • Target gap cycle (mgrp-rxx), value range, enumeration ⁇ ms320, ms640, ms1280, ms2560 ⁇ ;
  • Target gap offset (gapOffset-rxx), integer (0-2559);
  • Target gap length (mgl-rxx), N milliseconds, where N is an integer.
  • the non-independent target gap partially overlaps or completely overlaps with a target gap corresponding to at least one measurement gap at least one second target attribute set.
  • multiple gaps can overlap, including full overlap and partial overlap.
  • multiple gaps configured in the first configuration information may overlap, including complete overlap and partial overlap.
  • the dependent target gap may partially or completely overlap with any other measurement gap.
  • the first configuration information includes: configuration information of the non-independent target gap, and configuration information of other non-independent gaps;
  • the configuration information of the other non-independent gaps is the configuration information of other non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • the first configuration information may include multiple sets of gap patterns, such as gap patterns of the target gap and gap patterns of other measurement gaps.
  • the first configuration information includes multiple sets of gap patterns
  • at least one set of gap patterns may take effect, and the set of gap patterns that take effect may be used as the gap pattern of the target gap.
  • the multiple sets of gap patterns included in the first configuration information may all be non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • the determining the configuration information of the target gap gap includes:
  • the configuration request of the target gap includes at least one of the following:
  • the network side device may determine the configuration information of the target gap gap corresponding to the request based on the configuration request of the target gap of the terminal.
  • the network side device may determine the configuration information of the target gap gap based on protocol pre-definition.
  • the configuration request based on the target gap sent by the terminal determines the configuration information, including at least one of the following:
  • the configuration request of the target gap includes the period of the target task, determining the period of the target gap based on the period of the target task;
  • the length of the target gap is determined based on the execution duration of the target task
  • the configuration request of the target gap includes a start time request of the target gap, determining the offset of the target gap based on the start time request of the target gap;
  • the configuration request of the target gap includes a length request of the target gap, determining the length of the target gap based on the length request of the target gap;
  • the configuration request of the target gap includes a period request of the target gap, determining the period of the target gap based on the period request of the target gap;
  • the frequency range of the target gap is determined based on the frequency range request of the target gap.
  • the terminal may send a target gap configuration request to the network side, where the target gap configuration request may include relevant requirements of the target task or configuration requirements of the target gap.
  • the configuration request of the target gap may include the period of the target task, and when determining the target gap period, the network-side device may determine that the target gap period is longer than or equal to the period of the target task;
  • the configuration request of the target gap may include a period request of the target gap.
  • the network-side device may determine that the target gap period is longer than or equal to the period request of the target gap.
  • the network side device may determine it according to a request reported by the UE or a protocol agreement.
  • the configuration request of the target gap may include the execution duration of the target task.
  • the network-side device may determine that the target gap length is longer than or equal to the execution duration of the target task.
  • the configuration request of the target gap may include a request for the length of the target gap.
  • the network-side device may determine that the length of the target gap is longer than or equal to the length request of the target gap.
  • the network side device determines the length of the target gap, it may be determined according to a request reported by the UE or a protocol agreement.
  • the configuration request of the target gap may include the frequency range request of the target gap, and when determining the frequency range of the target gap, the network side device may determine that the target gap frequency range includes or is equal to the frequency range request of the target gap.
  • the network side device may determine it according to a request reported by the UE or a protocol agreement.
  • the network side can simultaneously determine any one or any combination of the following:
  • the frequency offset of the target gap The frequency offset of the target gap; the length of the target gap; the period of the target gap; and, the frequency range of the target gap.
  • the network side can simultaneously determine any one or any combination of the following according to the request reported by the UE or the agreement:
  • the frequency offset of the target gap The frequency offset of the target gap; the length of the target gap; the period of the target gap; and, the frequency range of the target gap.
  • the configuration request for the target gap may include the period and execution duration of the target task.
  • the network-side device may determine that the target gap period is longer than or includes the period of the target task, and determines that the target gap length is longer than or equal to the target gap period. The execution time of the task.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the execution body may be a gap configuration device, or a control module in the gap configuration device for executing the gap configuration method.
  • the gap configuration method provided by the embodiment of the present application is described by taking the gap configuration method performed by the gap configuration device as an example.
  • FIG. 4 is a schematic structural diagram of a gap configuration apparatus provided by an embodiment of the present application. As shown in FIG. 4 , the apparatus includes: a first receiving module 410 and a first executing module 420 . in:
  • the first receiving module 410 is configured to receive the first configuration information sent by the network side device, where the first configuration information includes the configuration information of the target gap;
  • the first execution module 420 is configured to execute the target task based on the configuration information of the target gap;
  • the target tasks include measurement tasks and/or non-measurement tasks.
  • the gap configuration apparatus may receive, through the first receiving module 410, the first configuration information sent by the network-side device, where the first configuration information includes the configuration information of the target gap; it may also be based on the configuration information of the target gap, through The first execution module 420 executes the target task.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the target task includes:
  • Multi-card tasks are measurement tasks and/or non-measurement tasks of other terminals, and the other terminals are associated with the terminals.
  • the configuration information of the target gap includes:
  • the independent target gap is configured independently, or the independent target gap is configured together with at least one measurement gap.
  • the configuration information of the independent target gap includes at least one of the following:
  • the reference serving cell where the target gap is located and/or the cell group where the target gap is located;
  • the frequency range of the target gap is the frequency range of the target gap.
  • the first execution module is further configured to:
  • the configuration information that is in the same cell as the configuration information of the independent target gap and is configured with the same type of information as the configuration information of the target gap is ignored.
  • the independent target gap partially or completely overlaps with at least one measurement gap.
  • the first execution module is further configured to:
  • the first measurement task is ignored, which is the task corresponding to the measurement gap that partially or completely overlaps the independent target gap.
  • the configuration information of the target gap gap includes:
  • configuration information of a dependent target gap is configured based on the configuration of the first measurement gap, wherein the dependent target gap and the first measurement gap correspond to the same reference serving cell.
  • the configuration information of the non-independent target gap includes at least one of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the dependent target gap partially or completely overlaps with at least one measurement gap.
  • the first execution module is further configured to:
  • the second measurement task is a task corresponding to the measurement gap partially or completely overlapping with the dependent target gap;
  • the all overlapping gaps include the independent target gap and the measurement gap partially or completely overlapping with the independent target gap.
  • the first configuration information includes: configuration information of the non-independent target gap, and configuration information of other non-independent gaps;
  • the configuration information of the other non-independent gaps is the configuration information of other non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • the first execution module is further configured to:
  • the target gap is only used in the context of performing the target task.
  • the first execution module is further configured to:
  • the target gap takes effect alone, or the target gap and at least one measurement gap take effect in parallel.
  • the device further includes:
  • the second sending module is used to send the configuration request of the target gap to the network side device
  • the configuration request of the target gap includes at least one of the following:
  • Target task period ; target task execution duration; target gap start time request; target gap length request; target gap period request; and target gap frequency range request.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the gap configuration device in this embodiment of the present application may be a device with an operating system or an electronic device, and may also be a component, an integrated circuit, or a chip in a terminal.
  • the electronic device may be a mobile terminal or a non-mobile terminal.
  • the mobile terminal may include, but is not limited to, the types of terminals 11 listed above, and the non-mobile terminal may be a server, a network attached storage (NAS), a personal computer (personal computer, PC), a television ( television, TV), teller machine, or self-service machine, etc., which are not specifically limited in the embodiments of the present application.
  • the gap configuration apparatus provided in this embodiment of the present application can implement each process implemented by the method embodiment in FIG. 2 and achieve the same technical effect. To avoid repetition, details are not described here.
  • FIG. 5 is a second schematic structural diagram of a gap configuration apparatus provided by an embodiment of the present application. As shown in FIG. 5 , the apparatus includes: a first determining module 510 and a first sending module 520 . in:
  • the first determining module 510 is used to determine the configuration information of the target gap
  • the first sending module 520 is configured to send first configuration information to the terminal, where the first configuration information includes the configuration information of the target gap;
  • the configuration information of the target gap is used to instruct the terminal to perform a target task in the target gap, and the target task includes a measurement task and/or a non-measurement task.
  • the gap configuration apparatus may determine the configuration information of the target gap through the first determining module 510, and may also send the first configuration information to the terminal through the first sending module 520, where the first configuration information includes the configuration of the target gap. information, instructing the terminal to perform a target task in the target gap, where the target task includes a measurement task and/or a non-measurement task.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the target task includes:
  • Multi-card tasks are measurement tasks and/or non-measurement tasks of other terminals, and the other terminals are associated with the terminals.
  • the first determining module is also used for:
  • the configuration information of the independent target gap includes at least one of the following:
  • the reference serving cell where the target gap is located and/or the cell group where the target gap is located;
  • the frequency range of the target gap is the frequency range of the target gap.
  • the independent target gap partially or completely overlaps with at least one measurement gap.
  • the first determining module is further configured to:
  • a dependent target gap is configured based on the configuration of the first measurement gap, wherein the dependent target gap and the first measurement gap correspond to the same reference serving cell.
  • the configuration information of the non-independent target gap includes at least one of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the non-independent target gap partially overlaps or completely overlaps with a target gap corresponding to at least one measurement gap at least one second target attribute set.
  • the first configuration information includes: configuration information of the non-independent target gap, and configuration information of other non-independent gaps;
  • the configuration information of the other non-independent gaps is the configuration information of other non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • the first determining module is also used for:
  • the configuration request of the target gap includes at least one of the following:
  • the first determining module is further configured to perform at least one of the following:
  • the configuration request of the target gap includes the period of the target task, determining the period of the target gap based on the period of the target task;
  • the length of the target gap is determined based on the execution duration of the target task
  • the configuration request of the target gap includes a start time request of the target gap, determining the offset of the target gap based on the start time request of the target gap;
  • the configuration request of the target gap includes a length request of the target gap, determining the length of the target gap based on the length request of the target gap;
  • the configuration request of the target gap includes a period request of the target gap, based on the period request of the target gap, determine the period of the target gap;
  • the frequency range of the target gap is determined based on the frequency range request of the target gap.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the gap configuration device in this embodiment of the present application may be a device, or may be a component, an integrated circuit, or a chip in a terminal.
  • the device may be a mobile terminal or a non-mobile terminal.
  • the mobile terminal may include, but is not limited to, the types of terminals 11 listed above, and the non-mobile terminal may be a server, a network attached storage (NAS), a personal computer (personal computer, PC), a television ( television, TV), teller machine, or self-service machine, etc., which are not specifically limited in the embodiments of the present application.
  • the gap configuration device in the embodiment of the present application may be a device with an operating system.
  • the operating system may be an Android (Android) operating system, an ios operating system, or other possible operating systems, which are not specifically limited in the embodiments of the present application.
  • the gap configuration apparatus provided in this embodiment of the present application can implement each process implemented by the method embodiment in FIG. 3 , and achieve the same technical effect. To avoid repetition, details are not described here.
  • FIG. 6 is a schematic structural diagram of a communication device provided by an embodiment of the present application.
  • a communication device 600 includes a processor 601 and a memory 602, which are stored in the memory 602 and can be stored in the processor 601
  • the communication device 600 is a terminal, when the program or instruction is executed by the processor 601, each process of the above method embodiments can be implemented, and the same technical effect can be achieved.
  • the communication device 600 is a network-side device, when the program or instruction is executed by the processor 601, each process of the above method embodiments can be implemented, and the same technical effect can be achieved. To avoid repetition, details are not repeated here.
  • FIG. 7 is a schematic diagram of a hardware structure of a terminal provided by an embodiment of the present application.
  • the terminal 700 includes but is not limited to: a radio frequency unit 701, a network module 702, an audio output unit 703, an input unit 704, a sensor 705, a display unit 706, a user input unit 707, an interface unit 708, a memory 709, and a processor 710, etc. at least part of the components.
  • the terminal 700 may also include a power source (such as a battery) for supplying power to various components, and the power source may be logically connected to the processor 710 through a power management system, so as to manage charging, discharging, and power consumption through the power management system management and other functions.
  • a power source such as a battery
  • the terminal structure shown in FIG. 7 does not constitute a limitation on the terminal, and the terminal may include more or less components than shown, or combine some components, or arrange different components, which will not be repeated here.
  • the input unit 704 may include a graphics processor (Graphics Processing Unit, GPU) 7041 and a microphone 7042. Such as camera) to obtain still pictures or video image data for processing.
  • the display unit 706 may include a display panel 7061, which may be configured in the form of a liquid crystal display, an organic light emitting diode, or the like.
  • the user input unit 707 includes a touch panel 7071 and other input devices 7072 .
  • the touch panel 7071 is also called a touch screen.
  • the touch panel 7071 may include two parts, a touch detection device and a touch controller.
  • Other input devices 7072 may include, but are not limited to, physical keyboards, function keys (such as volume control keys, switch keys, etc.), trackballs, mice, and joysticks, which will not be repeated here.
  • the radio frequency unit 701 processes the information from the communication peer end after receiving the information; in addition, sends the information to be transmitted to the communication peer end.
  • the radio frequency unit 701 includes, but is not limited to, an antenna, at least one amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, and the like.
  • Memory 709 may be used to store software programs or instructions as well as various data.
  • the memory 709 may mainly include a storage program or instruction area and a storage data area, wherein the storage program or instruction area may store an operating system, an application program or instruction required for at least one function (such as a sound playback function, an image playback function, etc.) and the like.
  • the memory 709 may include a high-speed random access memory, and may also include a non-volatile memory, wherein the non-volatile memory may be a read-only memory (Read-Only Memory, ROM), a programmable read-only memory (Programmable ROM) , PROM), erasable programmable read-only memory (Erasable PROM, EPROM), electrically erasable programmable read-only memory (Electrically EPROM, EEPROM) or flash memory.
  • ROM Read-Only Memory
  • PROM programmable read-only memory
  • PROM erasable programmable read-only memory
  • Erasable PROM Erasable PROM
  • EPROM electrically erasable programmable read-only memory
  • EEPROM electrically erasable programmable read-only memory
  • flash memory for example at least one magnetic disk storage device, flash memory device, or other non-volatile solid state storage device.
  • the processor 710 may include one or more processing units; optionally, the processor 710 may integrate an application processor and a modem processor, wherein the application processor mainly processes the operating system, user interface, application programs or instructions, etc., Modem processors mainly deal with wireless communications, such as baseband processors. It can be understood that, the above-mentioned modulation and demodulation processor may not be integrated into the processor 710.
  • processor 710 is used for:
  • the terminal receives the first configuration information sent by the network side device, where the first configuration information includes the configuration information of the target gap;
  • the terminal executes the target task based on the configuration information of the target gap
  • the target tasks include measurement tasks and/or non-measurement tasks.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the target task includes:
  • Multi-card tasks are measurement tasks and/or non-measurement tasks of other terminals, and the other terminals are associated with the terminals.
  • the configuration information of the target gap includes:
  • the independent target gap is configured independently, or the independent target gap is configured together with at least one measurement gap.
  • the configuration information of the independent target gap includes at least one of the following:
  • the reference serving cell where the target gap is located and/or the cell group where the target gap is located;
  • the frequency range of the target gap is the frequency range of the target gap.
  • processor 710 is used to:
  • the configuration information that is in the same cell as the configuration information of the independent target gap and is configured with the same type of information as the configuration information of the target gap is ignored.
  • the independent target gap partially or completely overlaps with at least one measurement gap.
  • the processor 710 is used for at least one of the following:
  • the first measurement task is ignored, which is the task corresponding to the measurement gap that partially or completely overlaps the independent target gap.
  • the configuration information of the target gap gap includes:
  • configuration information of a dependent target gap is configured based on the configuration of the first measurement gap, wherein the dependent target gap and the first measurement gap correspond to the same reference serving cell.
  • the configuration information of the non-independent target gap includes at least one of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the dependent target gap partially or completely overlaps with at least one measurement gap.
  • the processor 710 is used for at least one of the following:
  • the second measurement task is a task corresponding to the measurement gap partially or completely overlapping with the dependent target gap;
  • the all overlapping gaps include the independent target gap and the measurement gap partially or completely overlapping with the independent target gap.
  • the first configuration information includes: configuration information of the non-independent target gap, and configuration information of other non-independent gaps;
  • the configuration information of the other non-independent gaps is the configuration information of other non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • processor 710 is used to:
  • the target gap is only used in the context of performing the target task.
  • processor 710 is used to:
  • the target gap takes effect alone, or the target gap and at least one measurement gap take effect in parallel.
  • processor 710 is used to:
  • the terminal sends a configuration request of the target gap to the network side device
  • the configuration request for the target gap includes at least one of the following:
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • terminal embodiments in the embodiments of the present application are product embodiments corresponding to the foregoing method embodiments, and all implementation manners in the foregoing method embodiments are applicable to the terminal embodiments, and the same or similar technical effects can also be achieved. This will not be repeated here.
  • FIG. 8 is a schematic diagram of a hardware structure of a network side device provided by an embodiment of the present application.
  • the network side device 800 includes: an antenna 801 , a radio frequency device 802 , and a baseband device 803 .
  • the antenna 801 is connected to the radio frequency device 802 .
  • the radio frequency device 802 receives information through the antenna 801, and sends the received information to the baseband device 803 for processing.
  • the baseband device 803 processes the information to be sent and sends it to the radio frequency device 802
  • the radio frequency device 802 processes the received information and sends it out through the antenna 801 .
  • the above-mentioned frequency band processing apparatus may be located in the baseband apparatus 803 , and the method performed by the network side device in the above embodiments may be implemented in the baseband apparatus 803 .
  • the baseband apparatus 803 includes a processor 804 and a memory 805 .
  • the baseband device 803 may include, for example, at least one baseband board on which multiple chips are arranged. As shown in FIG. 8 , one of the chips is, for example, the processor 804 , which is connected to the memory 805 to call the program in the memory 805 to execute The network devices shown in the above method embodiments operate.
  • the baseband device 803 may further include a network interface 806 for exchanging information with the radio frequency device 802, and the interface is, for example, a common public radio interface (CPRI for short).
  • CPRI common public radio interface
  • the network-side device in this embodiment of the present application further includes: an instruction or program stored in the memory 805 and executable on the processor 804, and the processor 804 invokes the instruction or program in the memory 805 to execute each module shown in FIG. 3
  • processor 804 is used for:
  • the network side device determines the configuration information of the target gap
  • the network side device sends first configuration information to the terminal, where the first configuration information includes the configuration information of the target gap;
  • the configuration information of the target gap is used to instruct the terminal to perform a target task in the target gap, and the target task includes a measurement task and/or a non-measurement task.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the terminal data throughput.
  • the target task includes:
  • Multi-card tasks are measurement tasks and/or non-measurement tasks of other terminals, and the other terminals are associated with the terminals.
  • processor 804 is configured to:
  • the configuration information of the independent target gap includes at least one of the following:
  • the reference serving cell where the target gap is located and/or the cell group where the target gap is located;
  • the frequency range of the target gap is the frequency range of the target gap.
  • the independent target gap partially or completely overlaps with at least one measurement gap.
  • processor 804 is configured to:
  • a dependent target gap is configured based on the configuration of the first measurement gap, wherein the dependent target gap and the first measurement gap correspond to the same reference serving cell.
  • the configuration information of the non-independent target gap includes at least one of the following:
  • the frequency range of the target gap is the frequency range of the target gap.
  • the non-independent target gap partially overlaps or completely overlaps with a target gap corresponding to at least one measurement gap at least one second target attribute set.
  • the first configuration information includes: configuration information of the non-independent target gap, and configuration information of other non-independent gaps;
  • the configuration information of the other non-independent gaps is the configuration information of other non-independent gaps configured in the first measurement gap based on the configuration of the first measurement gap.
  • processor 804 is configured to:
  • the configuration request of the target gap includes at least one of the following:
  • Target task period ; target task execution duration; target gap start time request; target gap length request; target gap period request; and target gap frequency range request.
  • the processor 804 is configured to perform at least one of the following:
  • the period of the target gap is determined based on the period of the target task; in the case that the configuration request of the target gap includes the execution duration of the target task , based on the execution duration of the target task, determine the length of the target gap;
  • the configuration request of the target gap includes a start time request of the target gap, determining the offset of the target gap based on the start time request of the target gap;
  • the configuration request of the target gap includes a length request of the target gap, determining the length of the target gap based on the length request of the target gap;
  • the configuration request of the target gap includes a period request of the target gap, determining the period of the target gap based on the period request of the target gap;
  • the frequency range of the target gap is determined based on the frequency range request of the target gap.
  • the terminal receives the configuration information of the target gap sent by the network side device, and performs measurement tasks and/or non-measurement tasks based on the target gap, and efficiently supports various multi-card tasks by designing the configuration of the target gap meet the gap requirements and reduce the impact of multi-card tasks on the data throughput of the terminal.
  • the network-side device embodiments in the embodiments of the present application are product embodiments corresponding to the foregoing method embodiments, and all implementations in the foregoing method embodiments are applicable to the terminal embodiments, and can also achieve the same or similar technical effects. Therefore, it will not be repeated here.
  • Embodiments of the present application further provide a readable storage medium, where a program or an instruction is stored on the readable storage medium, and when the program or instruction is executed by a processor, each process of the foregoing gap configuration method embodiment can be achieved, and the same can be achieved. In order to avoid repetition, the technical effect will not be repeated here.
  • the processor is the processor in the terminal described in the foregoing embodiment.
  • the readable storage medium includes a computer-readable storage medium, such as a computer read-only memory (Read-Only Memory, ROM), a random access memory (Random Access Memory, RAM), a magnetic disk or an optical disk, and the like.
  • An embodiment of the present application further provides a chip, where the chip includes a processor and a communication interface, the communication interface is coupled to the processor, and the processor is used for running network-side device programs or instructions to implement the above-mentioned gap configuration method
  • the chip includes a processor and a communication interface
  • the communication interface is coupled to the processor
  • the processor is used for running network-side device programs or instructions to implement the above-mentioned gap configuration method
  • the chip mentioned in the embodiments of the present application may also be referred to as a system-on-chip, a system-on-chip, a system-on-chip, or a system-on-a-chip, or the like.
  • the method of the above embodiment can be implemented by means of software plus a necessary general hardware platform, and of course can also be implemented by hardware, but in many cases the former is better implementation.
  • the technical solution of the present application can be embodied in the form of a software product in essence or in a part that contributes to the prior art, and the computer software product is stored in a storage medium (such as ROM/RAM, magnetic disk, CD-ROM), including several instructions to make a terminal (which may be a mobile phone, a computer, a server, or a network device, etc.) execute the methods described in the various embodiments of this application.
  • a storage medium such as ROM/RAM, magnetic disk, CD-ROM

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Abstract

本申请公开了一种间隙配置方法、装置、设备及存储介质,属于通信技术领域。该方法包括:终端接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;终端基于所述目标gap的配置信息,执行目标任务;其中,所述目标任务包括测量任务和/或非测量任务。

Description

间隙配置方法、装置、设备及存储介质
相关申请的交叉引用
本申请要求于2021年03月04日提交的申请号为2021102416628,发明名称为“间隙配置方法、装置、设备及存储介质”的中国专利申请的优先权,其通过引用方式全部并入本申请。
技术领域
本申请属于通信技术领域,具体涉及一种间隙配置方法、装置、设备及存储介质。
背景技术
目前市场上不仅存在单卡终端,而且存在双卡或多卡终端,统称多卡终端。多卡终端的能力可以是单发单收、单发双收和双发双收等。多卡终端的一个特点是可以在多个网络同时驻留。
现有技术中,网络给终端配置测量间隙(gap),以便终端执行测量任务,比如新空口(New Radio,NR)测量任务或长期演进型(Long Term Evolution,LTE)的测量任务或其他类似测量任务,即现有的间隙gap主要用于测量任务;对于一些终端来说,若要执行双卡任务比如空闲模式下的任务如寻呼、测量、小区搜索、背景公共陆地移动查找(Public Land Mobile Network Search,PLMN Search)等,测量gap不能支持终端完成所有的多卡任务类型。
发明内容
本申请实施例的目的是提供一种间隙配置方法、装置、设备及存储介质,能够实现高效地支持多种多卡任务的gap需求,减少多卡任务对终端 数据吞吐量的影响。
第一方面,提供了一种间隙配置方法,该方法包括:
终端接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;
终端基于所述目标gap的配置信息,执行目标任务;
其中,所述目标任务包括测量任务和/或非测量任务。
第二方面,提供了一种间隙配置方法,该方法包括:
网络侧设备确定目标gap的配置信息;
网络侧设备向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息;
其中,所述目标gap的配置信息用于指示终端在所述目标gap执行目标任务,所述目标任务包括测量任务和/或非测量任务。
第三方面,提供了一种间隙配置装置,该装置包括:
第一接收模块,用于接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;
第一执行模块,用于基于所述目标gap的配置信息,执行目标任务;
其中,所述目标任务包括测量任务和/或非测量任务。
第四方面,提供了一种间隙配置装置,该装置包括:
第一确定模块,用于确定目标gap的配置信息;
第一发送模块,用于向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息;
其中,所述目标gap的配置信息用于指示终端在所述目标gap执行目标任务,所述目标任务包括测量任务和/或非测量任务。
第五方面,提供了一种终端,该终端包括处理器、存储器及存储在所述存储器上并可在所述处理器上运行的程序或指令,所述程序或指令被所述处理器执行时实现如第一方面所述的方法的步骤。
第六方面,提供了一种网络侧设备,该网络侧设备包括处理器、存储器及存储在所述存储器上并可在所述处理器上运行的程序或指令,所述程序或指令被所述处理器执行时实现如第一方面所述的方法的步骤。
第七方面,提供了一种可读存储介质,所述可读存储介质上存储程序或指令,所述程序或指令被处理器执行时实现如第一方面所述的方法的步骤,或者实现如第二方面所述的方法的步骤。
第八方面,提供了一种芯片,所述芯片包括处理器和通信接口,所述通信接口和所述处理器耦合,所述处理器用于运行程序或指令,实现如第一方面所述的方法的步骤,或者实现如第二方面所述的方法的步骤。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
附图说明
图1是本申请实施例可应用的一种无线通信系统的框图;
图2是本申请实施例提供的间隙配置方法的流程示意图之一;
图3是本申请实施例提供的间隙配置方法的流程示意图之二;
图4是本申请实施例提供的间隙配置装置的结构示意图之一;
图5是本申请实施例提供的间隙配置装置的结构示意图之二;
图6是本申请实施例提供的通信设备的结构示意图;
图7是本申请实施例提供的终端的硬件结构示意图;
图8是本申请实施例提供的网络侧设备的硬件结构示意图。
具体实施方式
下面将结合本申请实施例中的附图,对本申请实施例中的技术方案进 行清楚地描述,显然,所描述的实施例是本申请一部分实施例,而不是全部的实施例。基于本申请中的实施例,本领域普通技术人员所获得的所有其他实施例,都属于本申请保护的范围。
本申请的说明书和权利要求书中的术语“第一”、“第二”等是用于区别类似的对象,而不用于描述特定的顺序或先后次序。应该理解这样使用的数据在适当情况下可以互换,以便本申请的实施例能够以除了在这里图示或描述的那些以外的顺序实施,且“第一”、“第二”所区别的对象通常为一类,并不限定对象的个数,例如第一对象可以是一个,也可以是多个。此外,说明书以及权利要求中“和/或”表示所连接对象的至少其中之一,字符“/”一般表示前后关联对象是一种“或”的关系。
值得指出的是,本申请实施例所描述的技术不限于长期演进型(Long Term Evolution,LTE)/LTE的演进(LTE-Advanced,LTE-A)系统,还可用于其他无线通信系统,诸如码分多址(Code Division Multiple Access,CDMA)、时分多址(Time Division Multiple Access,TDMA)、频分多址(Frequency Division Multiple Access,FDMA)、正交频分多址(Orthogonal Frequency Division Multiple Access,OFDMA)、单载波频分多址(Single-carrier Frequency-Division Multiple Access,SC-FDMA)和其他系统。本申请实施例中的术语“系统”和“网络”常被可互换地使用,所描述的技术既可用于以上提及的系统和无线电技术,也可用于其他系统和无线电技术。以下描述出于示例目的描述了新空口(New Radio,NR)系统,并且在以下大部分描述中使用NR术语,但是这些技术也可应用于NR系统应用以外的应用,如第6代(6th Generation,6G)通信系统。
图1示出本申请实施例可应用的一种无线通信系统的框图。无线通信系统包括终端11和网络侧设备12。其中,终端11也可以称作终端设备或者用户终端(User Equipment,UE),终端11可以是手机、平板电脑(Tablet Personal Computer)、膝上型电脑(Laptop Computer)或称为笔记本电脑、 个人数字助理(Personal Digital Assistant,PDA)、掌上电脑、上网本、超级移动个人计算机(ultra-mobile personal computer,UMPC)、移动上网装置(Mobile Internet Device,MID)、增强现实(augmented reality,AR)/虚拟现实(virtual reality,VR)设备、机器人、可穿戴式设备(Wearable Device)、车载设备(VUE)、行人终端(PUE)、智能家居(具有无线通信功能的家居设备,如冰箱、电视、洗衣机或者家具等)、游戏机、个人计算机(personal computer,PC)、柜员机或者自助机等终端侧设备,可穿戴式设备包括:智能手表、智能手环、智能耳机、智能眼镜、智能首饰(智能手镯、智能手链、智能戒指、智能项链、智能脚镯、智能脚链等)、智能腕带、智能服装等。需要说明的是,在本申请实施例并不限定终端11的具体类型。网络侧设备12可以包括接入网设备或核心网设备,其中,接入网设备12也可以称为无线接入网设备、无线接入网(Radio Access Network,RAN)、无线接入网功能或无线接入网单元。接入网设备12可以包括基站、WLAN接入点或WiFi节点等,基站可被称为节点B、演进节点B、接入点、基收发机站(Base Transceiver Station,BTS)、无线电基站、无线电收发机、基本服务集(Basic Service Set,BSS)、扩展服务集(Extended Service Set,ESS)、B节点、演进型B节点(eNB)、家用B节点、家用演进型B节点、WLAN接入点、WiFi节点、发送接收点(Transmitting Receiving Point,TRP)或所述领域中其他某个合适的术语,只要达到相同的技术效果,所述基站不限于特定技术词汇,需要说明的是,在本申请实施例中仅以NR系统中的基站为例,但是并不限定基站的具体类型。核心网设备可以包含但不限于如下至少一项:核心网节点、核心网功能、移动管理实体(Mobility Management Entity,MME)、接入移动管理功能(Access and Mobility Management Function,AMF)、会话管理功能(Session Management Function,SMF)、用户平面功能(User Plane Function,UPF)、策略控制功能(Policy Control Function,PCF)、策略与计费规则功能单元(Policy and Charging Rules Function,PCRF)、边缘应用服务 发现功能(Edge Application Server Discovery Function,EASDF)、统一数据管理(Unified Data Management,UDM),统一数据仓储(Unified Data Repository,UDR)、归属用户服务器(Home Subscriber Server,HSS)、集中式网络配置(Centralized network configuration,CNC)、网络存储功能(Network Repository Function,NRF),网络开放功能(Network Exposure Function,NEF)、本地NEF(Local NEF,或L-NEF)、绑定支持功能(Binding Support Function,BSF)、应用功能(Application Function,AF)等。需要说明的是,在本申请实施例中仅以NR系统中的核心网设备为例进行介绍,并不限定核心网设备的具体类型。
下面结合附图,通过一些实施例及其应用场景对本申请实施例提供的间隙配置方法及装置进行详细地说明。
图2是本申请实施例提供的间隙配置方法的流程示意图之一,如图2所示,该方法包括如下步骤:
步骤200,终端接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;
终端基于所述目标gap的配置信息,执行目标任务;
其中,所述目标任务包括测量任务和/或非测量任务。
通信系统中通常采用时分模式即时分复用模式(time-division multiplexing,TDM Pattern)来解决终端存在资源冲突的任务调度问题,如单卡终端中配置测量gap来执行异频测量、无线接入技术(Inter-RAT,IRAT)测量等。
网络侧设备可以给终端配置测量gap,以便终端执行NR测量任务。
网络侧设备可以分配测量gap,终端可以利用分配的测量gap执行测量任务。
终端可以上报测量gap需求,包括是否需要gap,以及需要gap的频段、需要gap的同频测量、异频测量、Inter-RAT测量等。
如下表1中gap测量配置字段描述表,示出了一些常见的测量gap。
表1 测量gap配置字段描述表
Figure PCTCN2022078867-appb-000001
其中,FR1 and FR2是频段1 Frequency Range 1和频段2 Frequency Range 2。
可选地,为了克服测量gap不能支持UE完成所有的多卡任务类型的缺陷,可以设计gap的新的配置以适应各种类型的目标任务的需求,比如测量任务和/或非测量任务。
可选地,网络侧设备确定目标gap的配置信息后,可以将其传输给终端。
可选地,网络侧设备可以传输第一配置信息给终端,其中第一配置信息包括目标gap的配置信息。
可选地,终端接收到目标gap的配置信息后,可以基于目标gap的配置信息,确定目标gap,还可以使用目标gap执行目标任务。
可选地,目标gap的gap属性域集合或gap pattern是一种可选配置的gap类型;不同于gapFR2,gapFR1,gapUE等gap。
可选地,终端UE1可以接收网络侧设备发送的第一配置消息,该第一配置消息可以包括可选的目标gap的配置信息。
可选地,所述目标gap可以被UE1用于执行目标任务,如多卡(Multi-SIM)任务,UE1转换到其他网络等任务。
可选地,在使用目标gap期间,即目标gap生效,UE1可以使用目标 gap,停止数据收发;或不使用目标gap,继续正常的数据收发。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
可选地,多卡终端的一个特点是可以在多个网络同时驻留,但是多卡终端的实现方式不同,有的终端可以在多个网络同时发送和接收互不影响。同时也存在一种多卡终端,尽管终端可以在多个网络同时驻留但是可能采用时分的方式在两个网络驻留,也就是一段时间UE1在网络A驻留听网络A的paging,一段时间UE1在网络B驻留听网络B的paging。或者一段时间UE1在网络A上连接收发数据,一段时间UE1要到网络B上接收paging。或者一段时间UE1在网络A上接收数据,一段时间UE1要到网络B上建立连接或收发数据。
可选地,所述多卡任务是其他UE2的测量任务和/或非测量任务;
可选地,UE1可以在目标gap执行UE2的测量任务和/或非测量任务。
可选地,UE1是所述终端。
可选地,UE2是所述其他终端。
可选地,UE1和UE2可以属于同一个物理设备;比如双卡手机中的SIM1和SIM2。
可选地,UE1和UE2可以是相关联的两个UE,比如一个移动终端和一个与该移动终端通信连接的设备,且该设备可以与网络侧设备通信;
可选地,UE1和UE2可以属于同一个用户;比如手机中的SIM1和虚拟卡SIM2。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的任务,所述其他终端与所述终端相关联。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的任务,所述其他终端与所述终端是属于同一设备的终端。
可选地,所述目标gap的配置信息包括:
配置独立的目标gap的配置信息;
其中,所述独立的目标gap是单独配置的,或,所述独立的目标gap是与至少一个测量gap一起配置的。
可选地,目标gap配置有多种实现方式,包括独立的目标gap和/或非独立的目标gap,其中:
独立的目标gap,可与传统测量gap并存或单独存在;
非独立的目标gap,如在某测量gap基础上配置目标gap pattern。
可选地,网络侧设备可以给终端配置独立的目标gap,因此目标gap的配置信息可以包括:用于配置独立的目标gap的配置信息。
可选地,独立的目标gap可以是单独配置的,比如网络侧设备可以仅仅配置目标gap。
可选地,独立的目标gap是与至少一个测量gap一起配置的,比如网络侧设备可以配置目标gap与测量gap(如gapFR2,gapFR1,gapUE)中的一个或多个。
例如,网络侧设备可以同时配置目标gap与gapFR1。
例如,网络侧设备可以同时配置目标gap、gapFR1与gapFR2。
可选地,所述独立的目标gap的配置信息包括以下至少一项:
所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,独立的目标gap的配置信息可以包括但不限于以下任意一项或任意组合:
目标gap所在的参考服务小区;
目标gap所在的小区组(主小区组(Master cell group,MCG),和辅小区组(Secondary Cell Group,SCG));
目标gap偏移;
目标gap长度;
目标gap的周期;
所述目标gap的频率范围。
例如,网络侧设备可以在RRC重配消息中配置目标gap:GapMsim,或MeasGapConfig IE中配置目标gap:GapMsim;
其中,网络侧设备可以配置目标gap的属性包括:
目标gap所在的参考服务小区(refServCellMsim-rxx),如主小区或主辅小区;
目标gap周期(mgrp-rxx),取值范围,枚举{ms320,ms640,ms1280,ms2560};
目标gap偏移(gapOffset-rxx),整数(0-2559);
目标gap长度(mgl-rxx),N毫秒,N为整数;
目标gap的频率范围,枚举{FR1,FR2,FR1和FR2};其中”FR1和FR2”表示目标Gap可以适用于FR1和FR2,也可以用“UE”来表示。
属性名称中-rxx代表Release 17,Release 18等。
可选地,目标gap的频率范围可以包括FR1和/或FR2。
可选地,所述基于所述目标gap的配置信息,执行目标任务,包括:
使用所述独立的目标gap的配置信息;
忽略与所述独立的目标gap的配置信息在同一个信元中,且与所述目标gap的配置信息配置同一类型信息的配置信息。
可选地,在基于所述目标gap的配置信息,执行目标任务时,可以使用该目标gap的配置信息;
可选地,对于与目标gap的配置信息在同一个信元中,且与目标gap的配置信息配置同一类型的其他gap的配置信息,终端可以忽略其他gap的配置信息。
比如,以下列配置信息为例:
Figure PCTCN2022078867-appb-000002
Figure PCTCN2022078867-appb-000003
其中,后缀为“-rxx”的是目标gap的配置信息,在这同一个信元中配置了gapOffset INTEGER(0..159),以及gapOffset-rxx INTEGER(0..2559)OPTIONAL,--Cond MSIM,此时在使用目标gap时采用目标gap的配置信息,而忽略gapOffset INTEGER(0..159)这一配置信息。其他类型配置信息依此类推。
条件“Cond MSIM”表示,当配置gap pattern给终端UE用来执行目标任务如多卡任务时这个域可选存在。否则,该域不存在。
可选地,对于一个gap,其配置信息配置的类型包括以下任意一项:
该gap所在的参考服务小区;
该gap所在的小区组(主小区组MCG,和辅小区组SCG);
该gap偏移;
该gap长度;
该gap的周期;
该gap的频率范围。
可选地,对于一个gap,比如目标gap的配置信息,可以称为目标gap的gap属性域集合gap pattern,其中包括多个属性阈值,每一个属性阈值 对应一个上述类型。
可选地,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,多个gap可以重叠,包括完全重叠和部分重叠。
可选地,独立的目标gap可以与其他任意测量gap部分重叠或完全重叠。
可选地,所述基于所述目标gap的配置信息,执行目标任务,包括以下至少一项:
使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务,其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap;
使用所述独立的目标gap,执行所述目标任务;
忽略第一测量任务,所述第一测量任务是与所述独立的目标gap部分重叠或完全重叠的测量gap对应的任务。
可选地,在gap时间重叠时,终端可以使用所有重叠的gap中最长的gap,执行对应的任务;
可选地,在gap时间重叠时,终端可以使用目标gap,执行目标任务,比如多卡任务;
可选地,在gap时间重叠时,终端可以忽略其他测量gap purpose。
可选地,所述目标间隙gap的配置信息包括:
在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap的配置信息,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
可选地,目标gap配置有多种实现方式,包括独立的目标gap和/或非独立的目标gap,其中:
独立的目标gap,可与传统测量gap并存或单独存在;
非独立的目标gap,如在某测量gap基础上配置目标gap pattern。
可选地,对于一个已有的第一测量gap,在其某一属性比如长度无法满足执行目标任务时,可以在其配置的基础上配置一个非独立的目标gap,用于适应该任务的需求,因此目标间隙gap的配置信息可以包括用于配置该非独立的目标gap的配置信息。
可选地,非独立的目标gap可与其他任意gap对应相同的参考服务小区。
在非独立的目标gap使用期间,UE1可以使用非独立的目标gap,停止数据收发;或可以不使用非独立的目标gap,继续数据收发。
可选地,所述非独立的目标gap的配置信息包括以下至少一项:
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
目标gap的频率范围。
可选地,非独立的目标gap的配置信息可以包括但不限于以下任意一项或任意组合:
目标gap偏移;
目标gap长度;
目标gap的周期
目标gap的频率范围。
例如,网络侧设备可以在RRC重配消息中配置目标gap:GapMsim,或MeasGapConfig IE中配置目标gap的gap pattern:GapMsim。
其中,网络侧设备可以配置目标gap的属性包括:
目标gap周期(mgrp-rxx),取值范围,枚举{ms320,ms640,ms1280,ms2560};
目标gap偏移(gapOffset-rxx),整数(0-2559);
目标gap长度(mgl-rxx),N毫秒,N为整数。
属性名称中-rxx代表Release 17,Release 18等。
具体配置方式可以表示为:
Figure PCTCN2022078867-appb-000004
Figure PCTCN2022078867-appb-000005
其中,后缀为“-rxx”的部分为目标gap的配置信息部分。
条件“Cond MSIM”表示,当配置gap pattern给UE用来执行目标任务如多卡任务时这个域可选存在。否则,该域不存在。
可选地,所述非独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,多个gap可以重叠,包括完全重叠和部分重叠。
可选地,第一配置信息中配置的多个gap可以重叠,包括完全重叠和部分重叠。
可选地,非独立的目标gap可以与其他任意测量gap部分重叠或完全重叠。
可选地,所述基于所述目标gap的配置信息,执行目标任务,包括以下至少一项:
使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务;
使用所述非独立的目标gap,执行所述目标任务;
忽略第二测量任务,所述第二测量任务是与所述非独立的目标gap部分重叠或完全重叠的测量gap对应的任务;
使用部分或所有重叠的gap的gap时间合集,执行所述部分或所有重叠的gap对应的任务;
其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap。
可选地,在gap时间重叠时,终端可以使用所有重叠的gap中最长的gap,执行对应的任务;
可选地,在gap时间重叠时,终端可以使用目标gap,执行目标任务,比如多卡任务;
可选地,在gap时间重叠时,终端可以忽略其他测量gap purpose;
可选地,在gap时间重叠时,终端可以使用有重叠gap时的gap时间的合集,在合集时间内执行多个gap对应的任务。
可选地,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
可选地,第一配置信息可以包括多套gap pattern,比如目标gap的gap pattern与其他测量gap的gap pattern。
可选地,第一配置信息包含多套gap pattern时,可以至少有一套gap pattern生效,其中,生效的一套gap pattern可以作为目标gap的gap pattern。
可选地,第一配置信息包括的多套gap pattern可以均是基于第一测量gap的配置在第一测量gap中配置的非独立gap。
可选地,所述基于所述目标gap的配置信息,执行目标任务,包括:
仅在执行目标任务的情况下使用所述目标gap。
可选地,目标gap包括独立的目标gap和/或非独立的目标gap的情况下,在目标gap的配置中,目标gap或目标gap的属性在满足目标条件时可选存在。比如所述目标条件可以包括当配置gap用于多卡目的或多卡任务。
比如,可以配置终端仅在多卡任务的情况下使用所述目标gap。
可选地,所述基于所述目标gap的配置信息,执行目标任务,包括:
所述目标gap单独生效,或,所述目标gap和至少一个测量gap并行生效。
可选地,目标gap包括独立的目标gap和/或非独立的目标gap的情况下,目标gap可以与其他测量gap比如gapFR2,gapFR1,或gapUE等测量gap模式并行生效;
可选地,可选地,目标gap包括独立的目标gap和/或非独立的目标 gap的情况下,目标gap可以单独生效。
可选地,目标gap可选地生效。即终端可以选择使用目标gap或不使用目标gap;
可选地,终端可以基于即将执行的任务需求情况,选择性生效或不生效目标gap;
可选地,终端接收到目标gap的配置信息后,可以在此后的任意时间生效目标gap。
可选地,所述方法还包括:
终端向网络侧设备发送目标gap的配置请求,所述目标gap的配置请求用于请求目标间隙gap的配置信息。
所述方法还包括:
终端向网络侧设备发送目标gap的配置请求;
其中,所述目标gap的配置请求包括以下至少一项:
目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
图3是本申请实施例提供的间隙配置方法的流程示意图之二,如图3所示,该方法包括如下步骤:
步骤300,网络侧设备确定目标gap的配置信息;
步骤310,网络侧设备向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息;
其中,所述目标gap的配置信息用于指示终端在所述目标gap执行目 标任务,所述目标任务包括测量任务和/或非测量任务。
可选地,为了克服测量gap不能支持UE完成所有的多卡任务类型的缺陷,可以设计gap的新的配置以适应各种类型的目标任务的需求,比如测量任务和/或非测量任务。
可选地,网络侧设备可以确定目标gap的配置信息,并在确定目标gap的配置信息后,可以将其传输给终端。
可选地,网络侧设备可以传输第一配置信息给终端,其中第一配置信息包括目标gap的配置信息。
可选地,终端接收到目标gap的配置信息后,可以基于目标gap的配置信息,确定目标gap,还可以使用目标gap执行目标任务。
可选地,目标gap的gap属性域集合gap pattern是一种可选配置的gap类型;不同于gapFR2,gapFR1,gapUE等gap。
可选地,终端UE1可以接收网络侧设备发送的第一配置消息,该第一配置消息可以包括可选的目标gap的配置信息。
可选地,所述目标gap可以被UE1用于执行目标任务,如多卡(Multi-SIM)任务,UE1转换到其他网络等任务。
可选地,在使用目标gap期间,即目标gap生效,UE1可以使用目标gap,停止数据收发;或不使用目标gap,继续正常的数据收发。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
可选地,多卡终端的一个特点是可以在多个网络同时驻留,但是多卡 终端的实现方式不同,有的终端可以在多个网络同时发送和接收互不影响。同时也存在一种多卡终端,尽管终端可以在多个网络同时驻留但是可能采用时分的方式在两个网络驻留,也就是一段时间在网络A驻留听网络A的paging,一段时间在网络B驻留听网络B的paging。或者一段时间在网络A上连接收发数据,一段时间要到网络B上接收paging。或者一段时间在网络A上接收数据,一段时间要到网络B上建立连接或收发数据。
可选地,所述多卡任务是其他终端UE2的测量任务和/或非测量任务;
可选地,终端UE1可以在目标gap执行UE2的测量任务和/或非测量任务。
可选地,UE1和UE2可以属于同一个物理设备;比如双卡手机中的SIM1和SIM2。
可选地,UE1和UE2可以是相关联的两个UE,比如一个移动终端和一个与该移动终端通信连接的设备,且该设备可以与网络侧设备通信;
可选地,UE1和UE2可以是相关联的两个UE,比如一个移动终端和一个与该移动终端蓝牙连接的设备,且该蓝牙设备可以与网络侧设备通信;
可选地,UE1和UE2可以属于同一个用户;比如手机中的SIM1和虚拟卡SIM2。
可选地,所述确定目标间隙gap的配置信息,包括:
单独配置独立的目标gap,或,与至少一个测量gap同时配置独立的目标gap。
可选地,目标gap配置有多种实现方式,包括独立的目标gap和/或非独立的目标gap,其中:
独立的目标gap,可与传统测量gap并存或单独存在;
非独立的目标gap,如在某测量gap基础上配置目标gap pattern。
可选地,网络侧设备可以给终端配置独立的目标gap,因此目标gap的配置信息可以包括:用于配置独立的目标gap的配置信息。
可选地,独立的目标gap可以是单独配置的,比如网络侧设备可以仅仅配置目标gap。
可选地,独立的目标gap是与至少一个测量gap一起配置的,比如网络侧设备可以配置目标gap与测量gap(如gapFR2,gapFR1,gapUE)中的一个或多个。
例如,网络侧设备可以同时配置目标gap与gapFR1。
例如,网络侧设备可以同时配置目标gap、gapFR1与gapFR2。
可选地,所述独立的目标gap的配置信息包括以下至少一项:
所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,独立的目标gap的配置信息可以包括但不限于以下任意一项或任意组合:
目标gap所在的参考服务小区;
目标gap所在的小区组(主小区组MCG,和辅小区组SCG);
目标gap偏移;
所述目标gap的长度;
所述目标gap的周期;
所述目标gap的频率范围。
例如,网络侧设备可以在RRC重配消息中配置目标gap:GapMsim,或MeasGapConfig IE中配置目标gap:GapMsim;
其中,网络侧设备可以配置目标gap的属性包括:
目标gap所在的参考服务小区(refServCellMsim-rxx),如主小区或主辅小区;
目标gap周期(mgrp-rxx),取值范围,枚举{ms320,ms640,ms1280,ms2560};
目标gap偏移(gapOffset-rxx),整数(0-2559);
目标gap长度(mgl-rxx),N毫秒,N为整数;
属性名称中-rxx代表Release 17,Release 18等。
可选地,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,多个gap可以重叠,包括完全重叠和部分重叠。
可选地,独立的目标gap可以与其他任意测量gap部分重叠或完全重叠。
可选地,所述确定目标间隙gap的配置信息,包括:
在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
可选地,目标gap配置有多种实现方式,包括独立的目标gap和/或非独立的目标gap,其中:
独立的目标gap,可与传统测量gap并存或单独存在;
非独立的目标gap,如在某测量gap中配置目标gap pattern。
可选地,对于一个已有的第一测量gap,在其某一属性比如长度无法满足执行目标任务时,可以在其配置的基础上配置一个非独立的目标gap,用于适应该任务的需求,因此目标间隙gap的配置信息可以包括用于配置该非独立的目标gap的配置信息。
可选地,非独立的目标gap可与其他任意gap对应相同的参考服务小区。
在非独立的目标gap使用期间,UE1可以使用非独立的目标gap,停止数据收发;或可以不使用非独立的目标gap,继续数据收发。
可选地,所述非独立的目标gap的配置信息包括以下至少一项:
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,非独立的目标gap的配置信息可以包括但不限于以下任意一项或任意组合:
目标gap偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
例如,网络侧设备可以在RRC重配消息中配置目标gap:GapMsim,或MeasGapConfig IE中配置目标gap的gap pattern:GapMsim。
其中,网络侧设备可以配置目标gap的属性包括:
目标gap周期(mgrp-rxx),取值范围,枚举{ms320,ms640,ms1280,ms2560};
目标gap偏移(gapOffset-rxx),整数(0-2559);
目标gap长度(mgl-rxx),N毫秒,N为整数。
属性名称中-rxx代表Release 17,Release 18等。
可选地,所述非独立的目标gap与至少一个测量gap至少一个第二目标属性集合对应的目标gap部分重叠或完全重叠。
可选地,多个gap可以重叠,包括完全重叠和部分重叠。
可选地,第一配置信息中配置的多个gap可以重叠,包括完全重叠和部分重叠。
可选地,非独立的目标gap可以与其他任意测量gap部分重叠或完全重叠。
可选地,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
可选地,第一配置信息可以包括多套gap pattern,比如目标gap的gap pattern与其他测量gap的gap pattern。
可选地,第一配置信息包含多套gap pattern时,可以至少有一套gap pattern生效,其中,生效的一套gap pattern可以作为目标gap的gap pattern。
可选地,第一配置信息包括的多套gap pattern可以均是基于第一测量gap的配置在第一测量gap中配置的非独立gap。
可选地,所述确定目标间隙gap的配置信息,包括:
基于终端发送的目标gap的配置请求,确定所述配置信息;或
基于协议预定义,确定所述配置信息;
其中,所述目标gap的配置请求包括以下至少一项:
目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
可选地,网络侧设备在确定目标间隙gap的配置信息时,可以基于终端的目标gap的配置请求,确定该请求对应的目标间隙gap的配置信息。
可选地,网络侧设备在确定目标间隙gap的配置信息时,可以基于协议预定义,确定所述目标间隙gap的配置信息。
可选地,所述基于终端发送的目标gap的配置请求,确定所述配置信 息,包括以下至少一项:
在所述目标gap的配置请求包括目标任务的周期的情况下,基于所述目标任务的周期,确定所述目标gap的周期;
在所述目标gap的配置请求包括目标任务的执行时长的情况下,基于所述目标任务的执行时长,确定所述目标gap的长度;
在所述目标gap的配置请求包括目标gap的开始时间请求的情况下,基于所述目标gap的开始时间请求,确定所述目标gap的偏移;
在所述目标gap的配置请求包括目标gap的长度请求的情况下,基于所述目标gap的长度请求,确定所述目标gap的长度;
在所述目标gap的配置请求包括目标gap的周期请求的情况下,基于所述目标gap的周期请求,确定所述目标gap的周期;
在所述目标gap的配置请求包括目标gap的频率范围请求的情况下,基于所述目标gap的频率范围请求,确定所述目标gap的频率范围。
可选地,终端可以向网络侧发送目标gap的配置请求,该目标gap的配置请求可以包括目标任务的相关需求或者目标gap的配置需求。
可选地,目标gap的配置请求可以包括目标任务的周期,网络侧设备在确定目标gap周期时,可以确定目标gap周期长于或等于目标任务的周期;
可选地,目标gap的配置请求可以包括目标gap的周期请求,网络侧设备在确定目标gap周期时,可以确定目标gap周期长于或等于目标gap的周期请求。
可选地,网络侧设备在确定所述目标gap的周期时,可以根据UE上报的请求或协议约定来确定。
可选地,目标gap的配置请求可以包括目标任务的执行时长,网络侧设备在确定目标gap的长度时,可以确定目标gap长度长于或等于目标任务的执行时长。
可选地,目标gap的配置请求可以包括目标gap的长度请求,网络侧设备在确定目标gap的长度时,可以确定目标gap长度长于或等于目标gap的长度请求。
可选地,网络侧设备在确定所述目标gap的长度时,可以根据UE上报的请求或协议约定来确定。
可选地,目标gap的配置请求可以包括目标gap的频率范围请求,网络侧设备在确定目标gap的频率范围时,可以确定目标gap频率范围包括或等于目标gap的频率范围请求。
可选地,网络侧设备在确定所述目标gap的频率范围时,可以根据UE上报的请求或协议约定来确定。
可选地,网络侧可以同时确定以下任一项或任意组合:
目标gap的频偏;目标gap的长度;目标gap的周期;以及,目标gap的频率范围。
可选地,网络侧可以根据UE上报的请求或协议约定同时确定以下任一项或任意组合:
目标gap的频偏;目标gap的长度;目标gap的周期;以及,目标gap的频率范围。
例如,目标gap的配置请求可以包括目标任务的周期和执行时长,网络侧设备在确定目标gap周期和长度时,可以确定目标gap周期长于或包含目标任务的周期,确定目标gap长度长于或等于目标任务的执行时长。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
需要说明的是,本申请实施例提供的间隙配置方法,执行主体可以为间隙配置装置,或者,该间隙配置装置中的用于执行间隙配置方法的控制 模块。本申请实施例中以间隙配置装置执行间隙配置方法为例,说明本申请实施例提供的间隙配置装置。
图4是本申请实施例提供的间隙配置装置的结构示意图之一,如图4所示,该装置包括:第一接收模块410,和第一执行模块420。其中:
第一接收模块410用于接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;
第一执行模块420用于基于所述目标gap的配置信息,执行目标任务;
其中,所述目标任务包括测量任务和/或非测量任务。
可选地,间隙配置装置可以通过第一接收模块410接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;还可以基于所述目标gap的配置信息,通过第一执行模块420执行目标任务。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
可选地,所述目标gap的配置信息包括:
配置独立的目标gap的配置信息;
其中,所述独立的目标gap是单独配置的,或,所述独立的目标gap是与至少一个测量gap一起配置的。
可选地,所述独立的目标gap的配置信息包括以下至少一项:
所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,所述第一执行模块还用于:
使用所述独立的目标gap的配置信息;
忽略与所述独立的目标gap的配置信息在同一个信元中,且与所述目标gap的配置信息配置同一类型信息的配置信息。
可选地,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,所述第一执行模块还用于:
使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务,其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap;
使用所述独立的目标gap,执行所述目标任务;
忽略第一测量任务,所述第一测量任务是与所述独立的目标gap部分重叠或完全重叠的测量gap对应的任务。
可选地,所述目标间隙gap的配置信息包括:
在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap的配置信息,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
可选地,所述非独立的目标gap的配置信息包括以下至少一项:
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,所述非独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,所述第一执行模块还用于:
使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务;
使用所述非独立的目标gap,执行所述目标任务;
忽略第二测量任务,所述第二测量任务是与所述非独立的目标gap部分重叠或完全重叠的测量gap对应的任务;
使用部分或所有重叠的gap的gap时间合集,执行所述部分或所有重叠的gap对应的任务;
其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap。
可选地,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
可选地,所述第一执行模块还用于:
仅在执行目标任务的情况下使用所述目标gap。
可选地,所述第一执行模块还用于:
所述目标gap单独生效,或,所述目标gap和至少一个测量gap并行生效。
可选地,所述装置还包括:
第二发送模块,用于向网络侧设备发送目标gap的配置请求;
其中,所述目标gap的配置请求包括以下至少一项:
目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围 请求。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
本申请实施例中的间隙配置装置可以是具有操作系统的装置或电子设备,也可以是终端中的部件、集成电路、或芯片。该电子设备可以是移动终端,也可以为非移动终端。示例性的,移动终端可以包括但不限于上述所列举的终端11的类型,非移动终端可以为服务器、网络附属存储器(Network Attached Storage,NAS)、个人计算机(personal computer,PC)、电视机(television,TV)、柜员机或者自助机等,本申请实施例不作具体限定。
本申请实施例提供的间隙配置装置能够实现图2的方法实施例实现的各个过程,并达到相同的技术效果,为避免重复,这里不再赘述。
图5是本申请实施例提供的间隙配置装置的结构示意图之二,如图5所示,该装置包括:第一确定模块510,和第一发送模块520。其中:
第一确定模块510用于确定目标gap的配置信息;
第一发送模块520用于向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息;
其中,所述目标gap的配置信息用于指示终端在所述目标gap执行目标任务,所述目标任务包括测量任务和/或非测量任务。
可选地,间隙配置装置可以通过第一确定模块510确定目标gap的配置信息,还可以通过第一发送模块520向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息,指示终端在所述目标gap执行目标任务,所述目标任务包括测量任务和/或非测量任务。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置 信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
可选地,所述第一确定模块还用于:
单独配置独立的目标gap,或,与至少一个测量gap同时配置独立的目标gap。
可选地,所述独立的目标gap的配置信息包括以下至少一项:
所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,所述第一确定模块,还用于:
在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
可选地,所述非独立的目标gap的配置信息包括以下至少一项:
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,所述非独立的目标gap与至少一个测量gap至少一个第二目标属性集合对应的目标gap部分重叠或完全重叠。
可选地,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
可选地,所述第一确定模块还用于:
基于终端发送的目标gap的配置请求,确定所述配置信息;或
基于协议预定义,确定所述配置信息;
其中,所述目标gap的配置请求包括以下至少一项:
目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
可选地,所述第一确定模块还用于执行以下至少一项:
在所述目标gap的配置请求包括目标任务的周期的情况下,基于所述目标任务的周期,确定所述目标gap的周期;
在所述目标gap的配置请求包括目标任务的执行时长的情况下,基于所述目标任务的执行时长,确定所述目标gap的长度;
在所述目标gap的配置请求包括目标gap的开始时间请求的情况下,基于所述目标gap的开始时间请求,确定所述目标gap的偏移;
在所述目标gap的配置请求包括目标gap的长度请求的情况下,基于所述目标gap的长度请求,确定所述目标gap的长度;
在所述目标gap的配置请求包括目标gap的周期请求的情况下,基于 所述目标gap的周期请求,确定所述目标gap的周期;
在所述目标gap的配置请求包括目标gap的频率范围请求的情况下,基于所述目标gap的频率范围请求,确定所述目标gap的频率范围。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
本申请实施例中的间隙配置装置可以是装置,也可以是终端中的部件、集成电路、或芯片。该装置可以是移动终端,也可以为非移动终端。示例性的,移动终端可以包括但不限于上述所列举的终端11的类型,非移动终端可以为服务器、网络附属存储器(Network Attached Storage,NAS)、个人计算机(personal computer,PC)、电视机(television,TV)、柜员机或者自助机等,本申请实施例不作具体限定。
本申请实施例中的间隙配置装置可以为具有操作系统的装置。该操作系统可以为安卓(Android)操作系统,可以为ios操作系统,还可以为其他可能的操作系统,本申请实施例不作具体限定。
本申请实施例提供的间隙配置装置能够实现图3的方法实施例实现的各个过程,并达到相同的技术效果,为避免重复,这里不再赘述。
可选的,图6是本申请实施例提供的通信设备的结构示意图,如图6所示,通信设备600,包括处理器601,存储器602,存储在存储器602上并可在所述处理器601上运行的程序或指令,例如,该通信设备600为终端时,该程序或指令被处理器601执行时实现上述方法实施例的各个过程,且能达到相同的技术效果。该通信设备600为网络侧设备时,该程序或指令被处理器601执行时实现上述方法实施例的各个过程,且能达到相同的技术效果,为避免重复,这里不再赘述。
图7是本申请实施例提供的终端的硬件结构示意图。
该终端700包括但不限于:射频单元701、网络模块702、音频输出单元703、输入单元704、传感器705、显示单元706、用户输入单元707、接口单元708、存储器709、以及处理器710等中的至少部分部件。
本领域技术人员可以理解,终端700还可以包括给各个部件供电的电源(比如电池),电源可以通过电源管理系统与处理器710逻辑相连,从而通过电源管理系统实现管理充电、放电、以及功耗管理等功能。图7中示出的终端结构并不构成对终端的限定,终端可以包括比图示更多或更少的部件,或者组合某些部件,或者不同的部件布置,在此不再赘述。
应理解的是,本申请实施例中,输入单元704可以包括图形处理器(Graphics Processing Unit,GPU)7041和麦克风7042,图形处理器7041对在视频捕获模式或图像捕获模式中由图像捕获装置(如摄像头)获得的静态图片或视频的图像数据进行处理。显示单元706可包括显示面板7061,可以采用液晶显示器、有机发光二极管等形式来配置显示面板7061。用户输入单元707包括触控面板7071以及其他输入设备7072。触控面板7071,也称为触摸屏。触控面板7071可包括触摸检测装置和触摸控制器两个部分。其他输入设备7072可以包括但不限于物理键盘、功能键(比如音量控制按键、开关按键等)、轨迹球、鼠标、操作杆,在此不再赘述。
本申请实施例中,射频单元701将来自通信对端的信息接收后,给处理器710处理;另外,将待传输的信息发送给通信对端。通常,射频单元701包括但不限于天线、至少一个放大器、收发信机、耦合器、低噪声放大器、双工器等。
存储器709可用于存储软件程序或指令以及各种数据。存储器709可主要包括存储程序或指令区和存储数据区,其中,存储程序或指令区可存储操作系统、至少一个功能所需的应用程序或指令(比如声音播放功能、图像播放功能等)等。此外,存储器709可以包括高速随机存取存储器,还可以包括非易失性存储器,其中,非易失性存储器可以是只读存储器 (Read-Only Memory,ROM)、可编程只读存储器(Programmable ROM,PROM)、可擦除可编程只读存储器(Erasable PROM,EPROM)、电可擦除可编程只读存储器(Electrically EPROM,EEPROM)或闪存。例如至少一个磁盘存储器件、闪存器件、或其他非易失性固态存储器件。
处理器710可包括一个或多个处理单元;可选的,处理器710可集成应用处理器和调制解调处理器,其中,应用处理器主要处理操作系统、用户界面和应用程序或指令等,调制解调处理器主要处理无线通信,如基带处理器。可以理解的是,上述调制解调处理器也可以不集成到处理器710中。
其中,处理器710用于:
终端接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;
终端基于所述目标gap的配置信息,执行目标任务;
其中,所述目标任务包括测量任务和/或非测量任务。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
可选地,所述目标gap的配置信息包括:
配置独立的目标gap的配置信息;
其中,所述独立的目标gap是单独配置的,或,所述独立的目标gap是与至少一个测量gap一起配置的。
可选地,所述独立的目标gap的配置信息包括以下至少一项:
所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,处理器710用于:
使用所述独立的目标gap的配置信息;
忽略与所述独立的目标gap的配置信息在同一个信元中,且与所述目标gap的配置信息配置同一类型信息的配置信息。
可选地,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,处理器710用于以下至少一项:
使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务,其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap;
使用所述独立的目标gap,执行所述目标任务;
忽略第一测量任务,所述第一测量任务是与所述独立的目标gap部分重叠或完全重叠的测量gap对应的任务。
可选地,所述目标间隙gap的配置信息包括:
在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap的配置信息,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
可选地,所述非独立的目标gap的配置信息包括以下至少一项:
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,所述非独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,处理器710用于以下至少一项:
使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务;
使用所述非独立的目标gap,执行所述目标任务;
忽略第二测量任务,所述第二测量任务是与所述非独立的目标gap部分重叠或完全重叠的测量gap对应的任务;
使用部分或所有重叠的gap的gap时间合集,执行所述部分或所有重叠的gap对应的任务;
其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap。
可选地,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
可选地,处理器710用于:
仅在执行目标任务的情况下使用所述目标gap。
可选地,处理器710用于:
所述目标gap单独生效,或,所述目标gap和至少一个测量gap并行生效。
可选地,处理器710用于:
终端向网络侧设备发送目标gap的配置请求;
其中,所述目标gap的配置请求包括以下至少一项:
目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
本申请实施例中的终端实施例是与上述方法实施例对应的产品实施例,上述方法实施例中的所有实现方式均适用于该终端实施例,亦可达到相同或相似的技术效果,故在此不再赘述。
图8是本申请实施例提供的网络侧设备的硬件结构示意图。
如图8所示,该网络侧设备800包括:天线801、射频装置802、基带装置803。天线801与射频装置802连接。在上行方向上,射频装置802通过天线801接收信息,将接收的信息发送给基带装置803进行处理。在下行方向上,基带装置803对要发送的信息进行处理,并发送给射频装置802,射频装置802对收到的信息进行处理后经过天线801发送出去。
上述频带处理装置可以位于基带装置803中,以上实施例中网络侧设备执行的方法可以在基带装置803中实现,该基带装置803包括处理器804和存储器805。
基带装置803例如可以包括至少一个基带板,该基带板上设置有多个芯片,如图8所示,其中一个芯片例如为处理器804,与存储器805连接,以调用存储器805中的程序,执行以上方法实施例中所示的网络设备操作。
该基带装置803还可以包括网络接口806,用于与射频装置802交互信息,该接口例如为通用公共无线接口(common public radio interface,简称CPRI)。
具体地,本申请实施例的网络侧设备还包括:存储在存储器805上并可在处理器804上运行的指令或程序,处理器804调用存储器805中的指令或程序执行图3所示各模块执行的方法,并达到相同的技术效果,为避免重复,故不在此赘述。
其中,处理器804用于:
网络侧设备确定目标gap的配置信息;
网络侧设备向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息;
其中,所述目标gap的配置信息用于指示终端在所述目标gap执行目标任务,所述目标任务包括测量任务和/或非测量任务。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
可选地,所述目标任务包括:
多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
可选地,处理器804用于:
单独配置独立的目标gap,或,与至少一个测量gap同时配置独立的目标gap。
可选地,所述独立的目标gap的配置信息包括以下至少一项:
所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
可选地,处理器804用于:
在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
可选地,所述非独立的目标gap的配置信息包括以下至少一项:
所述目标gap的偏移;
所述目标gap的长度;
所述目标gap的周期;
以及,
所述目标gap的频率范围。
可选地,所述非独立的目标gap与至少一个测量gap至少一个第二目标属性集合对应的目标gap部分重叠或完全重叠。
可选地,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
可选地,处理器804用于:
基于终端发送的目标gap的配置请求,确定所述配置信息;或
基于协议预定义,确定所述配置信息;
其中,所述目标gap的配置请求包括以下至少一项:
目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围 请求。
可选地,处理器804用于执行以下至少一项:
在所述目标gap的配置请求包括目标任务的周期的情况下,基于所述目标任务的周期,确定所述目标gap的周期;在所述目标gap的配置请求包括目标任务的执行时长的情况下,基于所述目标任务的执行时长,确定所述目标gap的长度;
在所述目标gap的配置请求包括目标gap的开始时间请求的情况下,基于所述目标gap的开始时间请求,确定所述目标gap的偏移;
在所述目标gap的配置请求包括目标gap的长度请求的情况下,基于所述目标gap的长度请求,确定所述目标gap的长度;
在所述目标gap的配置请求包括目标gap的周期请求的情况下,基于所述目标gap的周期请求,确定所述目标gap的周期;
在所述目标gap的配置请求包括目标gap的频率范围请求的情况下,基于所述目标gap的频率范围请求,确定所述目标gap的频率范围。
在本申请实施例中,通过终端接收网络侧设备发送的目标gap的配置信息,并基于目标gap执行测量任务和/或非测量任务,通过设计目标gap的配置,高效地支持多种多卡任务的gap需求,减少多卡任务对终端数据吞吐量的影响。
本申请实施例中的网络侧设备实施例是与上述方法实施例对应的产品实施例,上述方法实施例中的所有实现方式均适用于该终端实施例,亦可达到相同或相似的技术效果,故在此不再赘述。
本申请实施例还提供一种可读存储介质,所述可读存储介质上存储有程序或指令,该程序或指令被处理器执行时实现上述间隙配置方法实施例的各个过程,且能达到相同的技术效果,为避免重复,这里不再赘述。
其中,所述处理器为上述实施例中所述的终端中的处理器。所述可读存储介质,包括计算机可读存储介质,如计算机只读存储器(Read-Only  Memory,ROM)、随机存取存储器(Random Access Memory,RAM)、磁碟或者光盘等。
本申请实施例另提供了一种芯片,所述芯片包括处理器和通信接口,所述通信接口和所述处理器耦合,所述处理器用于运行网络侧设备程序或指令,实现上述间隙配置方法实施例的各个过程,且能达到相同的技术效果,为避免重复,这里不再赘述。
应理解,本申请实施例提到的芯片还可以称为系统级芯片,系统芯片,芯片系统或片上系统芯片等。
需要说明的是,在本文中,术语“包括”、“包含”或者其任何其他变体意在涵盖非排他性的包含,从而使得包括一系列要素的过程、方法、物品或者装置不仅包括那些要素,而且还包括没有明确列出的其他要素,或者是还包括为这种过程、方法、物品或者装置所固有的要素。在没有更多限制的情况下,由语句“包括一个……”限定的要素,并不排除在包括该要素的过程、方法、物品或者装置中还存在另外的要素。此外,需要指出的是,本申请实施方式中的方法和装置的范围不限按示出或讨论的顺序来执行功能,还可包括根据所涉及的功能按基本同时的方式或按相反的顺序来执行,例如,可以按不同于所描述的次序来执行所描述的方法,并且还可以添加、省去、或组合各种步骤。另外,参照某些示例所描述的特征可在其他示例中被组合。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到上述实施例方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本申请的技术方案本质上或者说对现有技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端(可以是手机,计算机,服务器,或者网络设备等)执行本申请各个实施例所述的 方法。
上面结合附图对本申请的实施例进行了描述,但是本申请并不局限于上述的具体实施方式,上述的具体实施方式仅仅是示意性的,而不是限制性的,本领域的普通技术人员在本申请的启示下,在不脱离本申请宗旨和权利要求所保护的范围情况下,还可做出很多形式,均属于本申请的保护之内。

Claims (56)

  1. 一种间隙gap配置方法,所述方法包括:
    终端接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;
    终端基于所述目标gap的配置信息,执行目标任务;
    其中,所述目标任务包括测量任务和/或非测量任务。
  2. 根据权利要求1所述的间隙配置方法,其中,所述目标任务包括:
    多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
  3. 根据权利要求1或2所述的间隙配置方法,其中,所述目标gap的配置信息包括:
    配置独立的目标gap的配置信息;
    其中,所述独立的目标gap是单独配置的,或,所述独立的目标gap是与至少一个测量gap一起配置的。
  4. 根据权利要求3所述的间隙配置方法,其中,所述独立的目标gap的配置信息包括以下至少一项:
    所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  5. 根据权利要求4所述的间隙配置方法,其中,所述基于所述目标gap的配置信息,执行目标任务,包括:
    使用所述独立的目标gap的配置信息;
    忽略与所述独立的目标gap的配置信息在同一个信元中,且与所述目标gap的配置信息配置同一类型信息的配置信息。
  6. 根据权利要求4或5所述的间隙配置方法,其中,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
  7. 根据权利要求6所述的间隙配置方法,其中,所述基于所述目标gap的配置信息,执行目标任务,包括以下至少一项:
    使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务,其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap;
    使用所述独立的目标gap,执行所述目标任务;
    忽略第一测量任务,所述第一测量任务是与所述独立的目标gap部分重叠或完全重叠的测量gap对应的任务。
  8. 根据权利要求1或2所述的间隙配置方法,其中,所述目标间隙gap的配置信息包括:
    在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap的配置信息,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
  9. 根据权利要求8所述的间隙配置方法,其中,所述非独立的目标gap的配置信息包括以下至少一项:
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  10. 根据权利要求8或9所述的间隙配置方法,其中,所述非独立的目标gap与至少一个测量gap部分重叠或完全重叠。
  11. 根据权利要求10所述的间隙配置方法,其中,所述基于所述目标gap的配置信息,执行目标任务,包括以下至少一项:
    使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务;
    使用所述非独立的目标gap,执行所述目标任务;
    忽略第二测量任务,所述第二测量任务是与所述非独立的目标gap部分重叠或完全重叠的测量gap对应的任务;
    使用部分或所有重叠的gap的gap时间合集,执行所述部分或所有重叠的gap对应的任务;
    其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap。
  12. 根据权利要求8-11任一项所述的间隙配置方法,其中,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
    其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
  13. 根据权利要求4-11任一项所述的间隙配置方法,其中,所述基于所述目标gap的配置信息,执行目标任务,包括:
    仅在执行目标任务的情况下使用所述目标gap。
  14. 根据权利要求4-11任一项所述的间隙配置方法,其中,所述基于所述目标gap的配置信息,执行目标任务,包括:
    所述目标gap单独生效,或,所述目标gap和至少一个测量gap并行生效。
  15. 根据权利要求1-11任一项所述的间隙配置方法,其中,所述方法还包括:
    终端向网络侧设备发送目标gap的配置请求;
    其中,所述目标gap的配置请求包括以下至少一项:
    目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
  16. 一种间隙配置方法,所述方法包括:
    网络侧设备确定目标gap的配置信息;
    网络侧设备向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息;
    其中,所述目标gap的配置信息用于指示终端在所述目标gap执行目标任务,所述目标任务包括测量任务和/或非测量任务。
  17. 根据权利要求16所述的间隙配置方法,其中,所述目标任务包括:
    多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
  18. 根据权利要求16或17所述的间隙配置方法,其中,所述确定目标间隙gap的配置信息,包括:
    单独配置独立的目标gap,或,与至少一个测量gap同时配置独立的目标gap。
  19. 根据权利要求18所述的间隙配置方法,其中,所述独立的目标gap的配置信息包括以下至少一项:
    所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  20. 根据权利要求19所述的间隙配置方法,其中,所述独立的目标 gap与至少一个测量gap部分重叠或完全重叠。
  21. 根据权利要求16或17所述的间隙配置方法,其中,所述确定目标间隙gap的配置信息,包括:
    在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
  22. 根据权利要求21所述的间隙配置方法,其中,所述非独立的目标gap的配置信息包括以下至少一项:
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  23. 根据权利要求22所述的间隙配置方法,其中,所述非独立的目标gap与至少一个测量gap至少一个第二目标属性集合对应的目标gap部分重叠或完全重叠。
  24. 根据权利要求22或23所述的间隙配置方法,其中,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
    其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
  25. 根据权利要求19-24任一项所述的间隙配置方法,其中,所述确定目标间隙gap的配置信息,包括:
    基于终端发送的目标gap的配置请求,确定所述配置信息;或
    基于协议预定义,确定所述配置信息;
    其中,所述目标gap的配置请求包括以下至少一项:
    目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
  26. 根据权利要求25所述的间隙配置方法,其中,所述基于终端发送的目标gap的配置请求,确定所述配置信息,包括以下至少一项:
    在所述目标gap的配置请求包括目标任务的周期的情况下,基于所述目标任务的周期,确定所述目标gap的周期;
    在所述目标gap的配置请求包括目标任务的执行时长的情况下,基于所述目标任务的执行时长,确定所述目标gap的长度;
    在所述目标gap的配置请求包括目标gap的开始时间请求的情况下,基于所述目标gap的开始时间请求,确定所述目标gap的偏移;
    在所述目标gap的配置请求包括目标gap的长度请求的情况下,基于所述目标gap的长度请求,确定所述目标gap的长度;
    在所述目标gap的配置请求包括目标gap的周期请求的情况下,基于所述目标gap的周期请求,确定所述目标gap的周期;
    在所述目标gap的配置请求包括目标gap的频率范围请求的情况下,基于所述目标gap的频率范围请求,确定所述目标gap的频率范围。
  27. 一种间隙gap配置装置,所述装置包括:
    第一接收模块,用于接收网络侧设备发送的第一配置信息,所述第一配置信息包括目标gap的配置信息;
    第一执行模块,用于基于所述目标gap的配置信息,执行目标任务;
    其中,所述目标任务包括测量任务和/或非测量任务。
  28. 根据权利要求27所述的间隙配置装置,其中,所述目标任务包括:
    多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
  29. 根据权利要求27或28所述的间隙配置装置,其中,所述目标gap 的配置信息包括:
    配置独立的目标gap的配置信息;
    其中,所述独立的目标gap是单独配置的,或,所述独立的目标gap是与至少一个测量gap一起配置的。
  30. 根据权利要求29所述的间隙配置装置,其中,所述独立的目标gap的配置信息包括以下至少一项:
    所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  31. 根据权利要求30所述的间隙配置装置,其中,所述第一执行模块还用于:
    使用所述独立的目标gap的配置信息;
    忽略与所述独立的目标gap的配置信息在同一个信元中,且与所述目标gap的配置信息配置同一类型信息的配置信息。
  32. 根据权利要求30或31所述的间隙配置装置,其中,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
  33. 根据权利要求32所述的间隙配置装置,其中,所述第一执行模块还用于:
    使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务,其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap;
    使用所述独立的目标gap,执行所述目标任务;
    忽略第一测量任务,所述第一测量任务是与所述独立的目标gap部分重叠或完全重叠的测量gap对应的任务。
  34. 根据权利要求27或28所述的间隙配置装置,其中,所述目标间隙gap的配置信息包括:
    在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap的配置信息,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
  35. 根据权利要求34所述的间隙配置装置,其中,所述非独立的目标gap的配置信息包括以下至少一项:
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  36. 根据权利要求34或35所述的间隙配置装置,其中,所述非独立的目标gap与至少一个测量gap部分重叠或完全重叠。
  37. 根据权利要求36所述的间隙配置装置,其中,所述第一执行模块还用于:
    使用所有重叠的gap中最长的gap,执行所述最长的gap对应的任务;
    使用所述非独立的目标gap,执行所述目标任务;
    忽略第二测量任务,所述第二测量任务是与所述非独立的目标gap部分重叠或完全重叠的测量gap对应的任务;
    使用部分或所有重叠的gap的gap时间合集,执行所述部分或所有重叠的gap对应的任务;
    其中,所述所有重叠的gap包括所述独立的目标gap,以及与所述独立的目标gap部分重叠或完全重叠的测量gap。
  38. 根据权利要求34-37任一项所述的间隙配置装置,其中,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
    其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
  39. 根据权利要求30-38任一项所述的间隙配置装置,其中,所述第一执行模块还用于:
    仅在执行目标任务的情况下使用所述目标gap。
  40. 根据权利要求30-38任一项所述的间隙配置装置,其中,所述第一执行模块还用于:
    所述目标gap单独生效,或,所述目标gap和至少一个测量gap并行生效。
  41. 根据权利要求27-38任一项所述的间隙配置装置,其中,所述装置还包括:
    第二发送模块,用于向网络侧设备发送目标gap的配置请求;
    其中,所述目标gap的配置请求包括以下至少一项:
    目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
  42. 一种间隙配置装置,所述装置包括:
    第一确定模块,用于确定目标gap的配置信息;
    第一发送模块,用于向终端发送第一配置信息,所述第一配置信息包括所述目标gap的配置信息;
    其中,所述目标gap的配置信息用于指示终端在所述目标gap执行目标任务,所述目标任务包括测量任务和/或非测量任务。
  43. 根据权利要求42所述的间隙配置装置,其中,所述目标任务包括:
    多卡任务,所述多卡任务是其他终端的测量任务和/或非测量任务,所述其他终端与所述终端相关联。
  44. 根据权利要求42或43所述的间隙配置装置,其中,所述第一确定模块还用于:
    单独配置独立的目标gap,或,与至少一个测量gap同时配置独立的目标gap。
  45. 根据权利要求44所述的间隙配置装置,其中,所述独立的目标gap的配置信息包括以下至少一项:
    所述目标gap所在的参考服务小区,和/或,所述目标gap所在的小区组;
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  46. 根据权利要求45所述的间隙配置装置,其中,所述独立的目标gap与至少一个测量gap部分重叠或完全重叠。
  47. 根据权利要求42或43所述的间隙配置装置,其中,所述第一确定模块,还用于:
    在第一测量gap中,基于所述第一测量gap的配置,配置非独立的目标gap,其中,所述非独立的目标gap与所述第一测量gap对应相同的参考服务小区。
  48. 根据权利要求47所述的间隙配置装置,其中,所述非独立的目标gap的配置信息包括以下至少一项:
    所述目标gap的偏移;
    所述目标gap的长度;
    所述目标gap的周期;
    以及,
    所述目标gap的频率范围。
  49. 根据权利要求48所述的间隙配置装置,其中,所述非独立的目标gap与至少一个测量gap至少一个第二目标属性集合对应的目标gap部分重叠或完全重叠。
  50. 根据权利要求48或49所述的间隙配置装置,其中,所述第一配置信息包括:所述非独立的目标gap的配置信息,以及其他非独立的gap的配置信息;
    其中,所述其他非独立的gap的配置信息是在所述第一测量gap中,基于所述第一测量gap的配置,配置其他非独立的gap的配置信息。
  51. 根据权利要求45-50任一项所述的间隙配置装置,其中,所述第一确定模块还用于:
    基于终端发送的目标gap的配置请求,确定所述配置信息;或
    基于协议预定义,确定所述配置信息;
    其中,所述目标gap的配置请求包括以下至少一项:
    目标任务的周期;目标任务的执行时长;目标gap的开始时间请求;目标gap的长度请求;目标gap的周期请求;以及,目标gap的频率范围请求。
  52. 根据权利要求51所述的间隙配置装置,其中,所述第一确定模块还用于执行以下至少一项:
    在所述目标gap的配置请求包括目标任务的周期的情况下,基于所述目标任务的周期,确定所述目标gap的周期;
    在所述目标gap的配置请求包括目标任务的执行时长的情况下,基于所述目标任务的执行时长,确定所述目标gap的长度;
    在所述目标gap的配置请求包括目标gap的开始时间请求的情况下,基于所述目标gap的开始时间请求,确定所述目标gap的偏移;
    在所述目标gap的配置请求包括目标gap的长度请求的情况下,基于所述目标gap的长度请求,确定所述目标gap的长度;
    在所述目标gap的配置请求包括目标gap的周期请求的情况下,基于所述目标gap的周期请求,确定所述目标gap的周期;
    在所述目标gap的配置请求包括目标gap的频率范围请求的情况下,基于所述目标gap的频率范围请求,确定所述目标gap的频率范围。
  53. 一种终端,包括处理器,存储器及存储在所述存储器上并可在所述处理器上运行的程序或指令,所述程序或指令被所述处理器执行时实现如权利要求1至15任一项所述的间隙配置方法的步骤。
  54. 一种网络侧设备,包括处理器,存储器及存储在所述存储器上并可在所述处理器上运行的程序或指令,所述程序或指令被所述处理器执行时实现如权利要求16至26任一项所述的间隙配置方法的步骤。
  55. 一种可读存储介质,所述可读存储介质上存储程序或指令,所述程序或指令被处理器执行时实现如权利要求1至15任一项所述的间隙配置方法的步骤,或者实现如权利要求16至26任一项所述的间隙配置方法的步骤。
  56. 一种芯片,所述芯片包括处理器和通信接口,所述通信接口和所述处理器耦合,所述处理器用于运行程序或指令,实现如权利要求1至15任一项所述的间隙配置方法的步骤,或者实现如权利要求16至26任一项所述的间隙配置方法的步骤。
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