WO2020192444A1 - 一种数据传输方法及设备 - Google Patents

一种数据传输方法及设备 Download PDF

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Publication number
WO2020192444A1
WO2020192444A1 PCT/CN2020/079070 CN2020079070W WO2020192444A1 WO 2020192444 A1 WO2020192444 A1 WO 2020192444A1 CN 2020079070 W CN2020079070 W CN 2020079070W WO 2020192444 A1 WO2020192444 A1 WO 2020192444A1
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Prior art keywords
logical channel
data transmission
resource
terminal
priority
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PCT/CN2020/079070
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English (en)
French (fr)
Inventor
赵亚利
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电信科学技术研究院有限公司
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Publication of WO2020192444A1 publication Critical patent/WO2020192444A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/54Allocation or scheduling criteria for wireless resources based on quality criteria
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W24/00Supervisory, monitoring or testing arrangements
    • H04W24/08Testing, supervising or monitoring using real traffic
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0453Resources in frequency domain, e.g. a carrier in FDMA
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/56Allocation or scheduling criteria for wireless resources based on priority criteria

Definitions

  • This application relates to the field of communication technology, and in particular to a data transmission method and device.
  • New Radio supports three mainstream services: Enhanced Mobile Broadband (eMBB); Massive Machine Type Communications (mMTC); High-reliability and low-latency communications (Ultra-Reliable and Low Latency Communications, URLLC).
  • eMBB services are generally delay-sensitive, while URLLC services are delay-sensitive services.
  • IIOT Industry Internet of Things
  • the terminal ignores all data transmission except random access during the measurement period.
  • a terminal configured with a measurement gap, there may be collisions between its data transmission resources and the measurement gap.
  • FIG. 1 is a schematic diagram of the collision between the data transmission resources of the terminal and the measurement interval in an embodiment of the application.
  • the terminal ignores the data transmission and performs measurement at the measurement interval, that is, the measurement interval is always prioritized, resulting in interruption of high-priority services , Thereby affecting the user experience.
  • this application provides a data transmission method and device.
  • an embodiment of the present application provides a data transmission method.
  • the method includes:
  • the terminal determines the operation mode according to the type of the data transmission resource and/or the quality of service (QoS) parameter of the logical channel corresponding to the data transmission resource.
  • the operation mode is to perform measurement in the measurement interval or perform data transmission and reception normally in the measurement interval;
  • the terminal performs related operations according to the determined operation mode.
  • the terminal and the network side device respectively determine the corresponding operation mode according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource
  • the corresponding operation mode is determined according to the type of data transmission resource and the QoS parameter of the logical channel corresponding to the data transmission resource, or the corresponding operation mode is determined jointly by the type of data transmission resource and the QoS parameter of the logical channel corresponding to the data transmission resource.
  • the type of the data transmission resource includes a dynamic scheduling resource and a pre-configured resource
  • the terminal is based on the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource.
  • the terminal determines to normally perform data transmission and reception during the measurement interval;
  • the terminal determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource; or
  • the terminal determines an operation mode according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the terminal when the type of data transmission resource is a dynamic scheduling resource, the terminal normally performs data transmission and reception or determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource.
  • the type of data transmission resource is a pre-configured resource, the Configure the QoS parameters of the logical channel corresponding to the resource and determine the operation mode.
  • the operation mode can be determined when the type of the data transmission resource is different and the QoS parameter of the logical channel corresponding to the data transmission resource is different.
  • the terminal determining the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource includes:
  • the terminal determines whether the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than the first preset threshold, and if so, the The terminal determines to perform data transmission and reception normally during the measurement interval; otherwise, the terminal determines to perform the measurement during the measurement interval; or
  • the terminal determines whether the delay requirement of the logical channel with the highest delay requirement among the logical channels that allow the use of the dynamic scheduling resource is higher than a second preset threshold; if so, Then the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval.
  • the terminal when the type of the data transmission resource is a dynamic scheduling resource, the priority of the logical channel with the highest priority among the logical channels corresponding to the dynamic scheduling resource is higher than the first preset threshold and the logical channel corresponding to the dynamic scheduling resource
  • the terminal When the delay requirement of the logical channel with the highest medium delay requirement is higher than the second preset threshold, the terminal normally performs data transmission and reception during the measurement interval, which can enable data with higher priority or higher delay requirement to be transmitted in time.
  • the QoS parameter is priority
  • the terminal determining the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource includes:
  • the terminal judges whether the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource satisfies the first condition
  • the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval;
  • the first condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the third preset threshold.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among the other logical channels that do not use pre-configured resources and have data transmission requirements on the Uu interface.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the third preset threshold, it means that the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource has a higher priority .
  • the terminal and the network side device normally perform data transmission and reception during the measurement interval, so that the data with higher priority can be transmitted in time.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the priority in the QoS parameter of the logical channel can reflect the priority requirement of the service, it can ensure that the service with high priority requirement is processed in time.
  • the QoS parameter is a delay requirement
  • the terminal determining the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource includes:
  • the terminal judges whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the second condition;
  • the terminal determines to perform data transmission and reception normally in the measurement interval, otherwise the terminal determines to perform the measurement in the measurement interval;
  • the second condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the fourth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement among the corresponding logical channels of the pre-configured resources is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel with the highest delay requirement is higher than the fourth preset threshold value or higher than the length of the measurement interval or higher than the data transmission terminal caused by the measurement.
  • the duration is long, it means that the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resources has a higher delay requirement.
  • the terminal and the network side device normally perform data transmission and reception during the measurement interval, which can ensure timely transmission of data with high latency requirements.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the delay requirements in the QoS parameters of the logical channels can reflect the delay requirements of the services, it can ensure that the services with high delay requirements are processed in time.
  • the operation mode determined by the terminal is to normally perform data transmission and reception at a measurement interval
  • the method further includes:
  • the terminal After the configured measurement interval delay duration is reached, the terminal performs measurement through the measurement interval, where the measurement interval delay duration is configured through broadcast or dedicated signaling.
  • the measurement is performed after the measurement interval delay time configured on the network side is reached, which can ensure that the number of measurements does not decrease, thereby ensuring measurement accuracy.
  • the terminal further includes:
  • the terminal determines that the configured measurement interval delay duration does not exceed N measurement periods, where N is a positive integer.
  • the embodiments of the present application also provide another data transmission method on the network side device side, and the method includes:
  • the network side device determines that the measurement interval of the terminal collides with the data transmission resource of the terminal
  • the network-side device determines an operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource; wherein the operation mode is that no operation is performed on the terminal during the measurement interval or Data transmission and reception are performed normally during the measurement interval.
  • the terminal and the network side device respectively determine the corresponding operation mode according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource
  • the corresponding operation mode is determined according to the type of data transmission resource and the QoS parameter of the logical channel corresponding to the data transmission resource, or the corresponding operation mode is determined jointly by the type of data transmission resource and the QoS parameter of the logical channel corresponding to the data transmission resource.
  • the network side device determines the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource, including:
  • the network side device determines to normally perform data transmission and reception during the measurement interval;
  • the network side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource; or
  • the network side device determines an operation mode according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the network side device when the type of data transmission resource is a dynamic scheduling resource, the network side device normally performs data transmission and reception with the terminal through the data transmission resource of the terminal or determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource.
  • the operation mode is determined according to the QoS parameters of the logical channel corresponding to the pre-configured resource. The operation can be determined when the type of data transmission resource is different and the QoS parameter of the logical channel corresponding to the data transmission resource is different the way.
  • the network-side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource, including:
  • the network-side device determines that data needs to be transmitted ;
  • the network side device determines Need to transfer data.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the dynamic scheduling resource is higher than the fifth preset threshold or the logic corresponding to the dynamic scheduling resource
  • the delay requirement of the logical channel with the highest delay requirement in the channel is higher than the sixth preset threshold
  • the network side equipment and terminal normally perform data transmission and reception during the measurement interval, which can make the priority or delay requirement higher Data is transmitted in time.
  • the QoS parameter is priority
  • the network-side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource, including:
  • the network side device judges whether the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource satisfies the third condition
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the third condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the seventh preset threshold.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among the other logical channels that do not use pre-configured resources and have data transmission requirements on the Uu interface.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the seventh preset threshold, it means that the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource has a higher priority .
  • the terminal and the network-side device normally perform data transmission and reception during the measurement interval, which enables timely transmission of higher priority data.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the network-side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource, including:
  • the network side device judges whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the fourth condition;
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the fourth condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the eighth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel with the highest delay requirement is higher than the eighth preset threshold or the length of the measurement interval or higher than the data transmission terminal caused by the measurement.
  • the duration is long, it means that the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resources has a higher delay requirement.
  • the terminal and the network side device normally perform data transmission and reception during the measurement interval, which can ensure timely transmission of data with high latency requirements.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the method after transmitting data with the terminal through the data transmission resource of the terminal, the method further includes:
  • the network side device configures the measurement interval delay time of the terminal for the terminal through broadcast or dedicated signaling.
  • the network side device configures the measurement interval delay time for the terminal. After the measurement interval delay time is reached, the terminal performs measurement at the measurement interval to ensure that the measurement interval does not decrease and the measurement accuracy is guaranteed.
  • an embodiment of the present application also provides a terminal, which includes a processor, a memory, and a transceiver;
  • the processor is used to read and execute the program in the memory:
  • the operation mode is determined according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource, wherein the operation mode is to perform measurement at the measurement interval Or perform data transmission and reception normally during the measurement interval;
  • the processor is specifically configured to execute:
  • the type of the data transmission resource is a dynamic scheduling resource, it is determined to normally perform data transmission and reception during the measurement interval; or
  • the operation mode is determined according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource.
  • the operation mode is determined according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the processor is specifically further configured to execute:
  • the QoS parameter is priority
  • the QoS parameter is a delay requirement
  • determine whether the delay requirement of the logical channel with the highest delay requirement among the logical channels that are allowed to use the dynamic scheduling resource is higher than the second preset threshold, and if so, determine whether the delay requirement is higher than the second preset threshold. Perform data transmission and reception normally; otherwise, make sure to perform measurement at the measurement interval.
  • the QoS parameter is priority
  • the processor is also specifically configured to execute:
  • the first condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the third preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the processor is also specifically configured to execute:
  • the second condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the fourth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement among the corresponding logical channels of the pre-configured resources is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the determined operation mode is to normally perform data transmission and reception during the measurement interval
  • the processor is further configured to perform:
  • measurement interval delay time After the configured measurement interval delay time is reached, measurement is performed through the measurement interval, where the measurement interval delay time is configured through broadcast or dedicated signaling.
  • the processor is further configured to execute:
  • an embodiment of the present application also provides a network side device, which includes a processor, a memory, and a transceiver;
  • the processor is used to read and execute the program in the memory:
  • the operation mode is determined according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource; wherein the operation mode is that no operation is performed on the terminal during the measurement interval or the operation is normally performed during the measurement interval Data sending and receiving.
  • the processor is specifically configured to execute:
  • the type of the data transmission resource is a dynamic scheduling resource, it is determined to normally perform data transmission and reception during the measurement interval; or
  • the operation mode is determined according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource.
  • the operation mode is determined according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the processor is specifically further configured to execute:
  • the QoS parameter is priority, determining that the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than the fifth preset threshold, determining that data needs to be transmitted; or
  • the QoS parameter is a delay requirement, it is determined that the delay requirement of the logical channel with the highest delay requirement among the logical channels that are allowed to use the dynamic scheduling resource is higher than the sixth preset threshold, and it is determined that data needs to be transmitted.
  • the QoS parameter is priority
  • the processor is also specifically configured to execute:
  • the third condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the seventh preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the processor is also specifically configured to execute:
  • the fourth condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the eighth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the processor is further configured to execute:
  • the measurement interval delay time of the terminal is configured for the terminal through broadcast or dedicated signaling.
  • an embodiment of the present application also provides another terminal, and the terminal includes:
  • the first determining module is configured to determine the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource after the terminal collides with the data transmission resource at the measurement interval, wherein the The operation mode is to perform measurement during the measurement interval or to perform data transmission and reception normally during the measurement interval;
  • the first execution module is used for the terminal to execute related operations according to the determined operation mode.
  • the embodiments of the present application also provide another network-side device, and the network-side device includes:
  • the second determining module is used for the network side device to determine that the measurement interval of the terminal collides with the data transmission resource of the terminal;
  • the second execution module is used for the network side device to determine the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource;
  • the terminal does not perform any operation or normally performs data transmission and reception during the measurement interval.
  • the embodiments of the present application also provide a computer storable medium on which a computer program is stored.
  • the program is executed by a processor, the steps of any method in the terminal-side data transmission or the network-side device-side data transmission are realized. Any of the steps of the method.
  • FIG. 1 is a schematic diagram of collision of data transmission resources and measurement intervals of a terminal in an embodiment of the application
  • FIG. 2 is a schematic diagram of a system structure for data transmission in an embodiment of the application
  • FIG. 3 is a schematic diagram of an application scenario of a data transmission system in an embodiment of the application
  • FIG. 4 is a schematic diagram of another application scenario of a data transmission system in an embodiment of this application.
  • FIG. 5 is a schematic diagram of another application scenario of a data transmission system in an embodiment of the application.
  • FIG. 6 is a schematic diagram of another application scenario of a data transmission system in an embodiment of the application.
  • FIG. 7 is a schematic diagram of another application scenario of a data transmission system in an embodiment of the application.
  • FIG. 8 is a terminal provided by an embodiment of this application.
  • FIG. 9 is a network side device provided by an embodiment of this application.
  • FIG. 11 is a flowchart of a data transmission method on the network side device side in an embodiment of the application.
  • FIG. 12 is another terminal provided by an embodiment of this application.
  • FIG. 13 is another network side device provided by an embodiment of this application.
  • Pre-configured resources refer to resources that are allocated to the terminal in advance by the network side and do not need to be dynamically scheduled. Both the downlink and uplink in the NR system support pre-configured resources.
  • the NR downlink pre-configured resource is semi-persistent scheduling (Semi-Persistent Scheduling, SPS).
  • SPS semi-persistent Scheduling
  • the so-called semi-persistent scheduling means that the network side configures the radio network temporary identity (RNTI), period and other information corresponding to the semi-persistent resource through radio resource control (Radio Resource Control, RRC) signaling.
  • RNTI radio network temporary identity
  • RRC Radio Resource Control
  • the base station subsequently uses the physical downlink control channel (Physical Downlink Control Channel, PDCCH) signaling activates downlink SPS resources, and the PDCCH carries information such as specific time/frequency positions of the downlink pre-configured resources.
  • PDCCH Physical Downlink Control Channel
  • the allocation of uplink pre-configured resources in NR is divided into two types, which are called Type 1 Configured Grant and Type 2 Configured Grant.
  • Configured authorization type 1 means that the base station allocates specific uplink resources to the terminal through RRC signaling, including resource period, corresponding pre-configured authorization-radio network temporary identification (Configured Scheduling RNTI, CS-RNTI), time-frequency resource location, and specific transmission Format (such as Modulation and Coding Scheme (MCS)), etc.
  • the terminal obtains periodic uplink transmission resources according to the configuration information, and can immediately transmit uplink data according to the allocated periodic uplink transmission resources.
  • Configuration authorization type 2 refers to the period during which the base station allocates periodic uplink transmission resources and CS-RNTI to the terminal through RRC signaling.
  • the base station subsequently activates or activates the pre-configured resources of authorization type 2 through PDCCH signaling, and the base station activates the configuration authorization type 2 PDCCH signaling indicates specific transmission resources, including time-frequency resource transmission format, etc.
  • Dynamic resource scheduling means that the base station uses PDCCH signaling to allocate a single resource to the terminal.
  • the terminal parses the time-frequency resource location and transmission format indicated in the PDCCH signaling, and the time-frequency resource of the terminal The location sends uplink data according to the specified transmission format.
  • the terminal In order to support the mobility of the terminal, the terminal needs to support a measurement mechanism.
  • the measurement object of the terminal may be different from the frequency of the current serving cell.
  • the network needs to configure a measurement gap for the terminal. The terminal adjusts the transceiver during the measurement gap to perform measurement at other frequencies.
  • the terminal when the terminal needs to perform measurement, it ignores all data transmission except random access. During the measurement interval, the terminal behaves as follows:
  • Hybrid Automatic Repeat reQuest Hybrid Automatic Repeat reQuest, HARQ
  • SR scheduling request
  • CSI Channel State Information
  • SRS pilot reference symbols
  • Msg3 message 3
  • the terminal can only receive and send data related to random access, and cannot send and receive any other data, which will cause service interruption and affect user experience.
  • the terminal After the terminal collides with the data transmission resource in the measurement interval, it determines whether to perform measurement in the measurement interval or in the measurement interval according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource. Perform data transmission and reception normally. The terminal performs related operations according to the determined operation mode. At the same time, after the network-side device determines that the measurement interval of the terminal collides with the data transmission resource of the terminal, the network-side device determines that the measurement interval corresponds to the data transmission resource type and/or the QoS parameters of the logical channel corresponding to the data transmission resource. The terminal does not perform any operation or normally performs data transmission and reception during the measurement interval.
  • the terminal is a device with wireless communication function, which can be deployed on the land, including indoor or outdoor, handheld or vehicle-mounted; it can also be deployed on the water (such as ships, etc.); it can also be deployed in the air (such as Airplanes, balloons and satellites etc.).
  • the terminal may be a mobile phone (Mobile Phone), a tablet computer (pad), a computer with wireless transceiver function, a virtual reality (VR) terminal, an augmented reality (Augmented Reality, AR) terminal, an industrial control (Industrial Control)
  • the network side device is a device that provides wireless communication functions for the terminal, including but not limited to: 5G base station (gNB) and wireless network in the 5th Generation mobile communication technology (5G) Controller (Radio Network Controller, RNC), Node B (Node B, NB), Base Station Controller (BSC), Base Transceiver Station (BTS), Home base station (for example, Home Evolved NodeB), Or Home Node B (HNB), BaseBand Unit (BBU), Transmission Point (Transmitting and Receiving Point, TRP), Transmitting Point (TP), Mobile Switching Center, etc.
  • the base station in this application may also be a device that provides wireless communication functions for the terminal in other communication systems that may appear in the future.
  • FIG. 2 is a schematic structural diagram of a system for data transmission in an embodiment of the application.
  • the system includes:
  • the terminal 10 is configured to determine an operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource after the measurement interval collides with the data transmission resource, where the operation mode is Perform measurement during the measurement interval or perform data transmission and reception normally during the measurement interval; perform related operations according to the determined operation mode.
  • the network side device 11 is configured to determine that the measurement interval of the terminal collides with the data transmission resource of the terminal; determine the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource; The operation mode is that no operation is performed on the terminal during the measurement interval or data transmission and reception is normally performed during the measurement interval.
  • the terminal and the network side device after determining that the measurement interval of the terminal collides with the data transmission resource of the terminal, respectively determine the corresponding QoS parameters according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource.
  • the operation mode realizes that the corresponding operation mode is determined according to the type of data transmission resource and the QoS parameter of the logical channel corresponding to the data transmission resource, or the corresponding operation mode is determined by the type of data transmission resource and the QoS parameter of the logical channel corresponding to the data transmission resource. Operation method.
  • the NR system supports two resource allocation methods, namely pre-configured resources and dynamic scheduling resources.
  • three methods for determining operation modes are provided for pre-configured resources and dynamic scheduling resources, including:
  • the terminal determines to normally perform data transmission and reception during the measurement interval.
  • the terminal determines the operation mode according to the QoS parameter of the logical channel corresponding to the dynamic scheduling resource.
  • the terminal determines the operation mode according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the method for the network side device to determine the operation mode is the same as that of the terminal, and will not be repeated.
  • the network side device and the terminal when the type of the data transmission resource is a dynamic scheduling resource, the network side device and the terminal normally perform data transmission and reception or further determine the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource.
  • the operation mode is determined according to the QoS parameters of the logical channel corresponding to the pre-configured resource.
  • the network since the measurement interval is configured by the network, the network still performs dynamic scheduling when it knows that the measurement interval exists, which means that dynamically scheduled data needs to be transmitted in time. Therefore, the type of data transmission resource is dynamic scheduling resource At the time, the terminal and the network side equipment normally perform data transmission and reception during the measurement interval.
  • the above method can ensure timely transmission of data that needs to be dynamically scheduled.
  • the QoS parameter can be a priority or a delay requirement.
  • the following is a detailed description of the two cases where the QoS parameters are priority or delay requirements, including the following points 1-2:
  • the terminal determines whether the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than that of the logical channel restriction parameters (LCH restrictions) corresponding to the logical channel If the first preset threshold is true, the terminal determines to normally perform data transmission and reception during the measurement interval; otherwise, the terminal determines to perform the measurement during the measurement interval.
  • LCH restrictions logical channel restriction parameters
  • the network side device determines that the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than the fifth preset threshold value, the network side device determines that data needs to be transmitted.
  • the first preset threshold value and the fifth preset threshold value may be pre-configured or configured by the network side device.
  • it can be set such that the lower the priority value, the higher the corresponding priority.
  • it can also be set as the higher the priority value, the higher the corresponding priority.
  • the first preset threshold is configured by the network side device as 3, and it is determined that the priority value of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is 1. Since the lower the priority value is, the higher the corresponding priority is. Therefore, in this example, it is determined that the priority of the logical channel with the higher priority among the logical channels allowed to use the dynamic scheduling resource is higher than the first preset Threshold value, the terminal determines to normally perform data transmission and reception during the measurement interval.
  • the fifth preset threshold value and the first preset threshold value may be set to the same value, for example, both the fifth preset threshold value and the first preset threshold value are set to 3.
  • the terminal determines whether the delay requirement of the logical channel with the highest delay requirement among the logical channels allowed to use the dynamic scheduling resource is higher than a second preset threshold, and if so, Then the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval.
  • the network side device determines that the delay requirement of the logical channel with the highest delay requirement among the logical channels that are allowed to use the dynamic scheduling resource is higher than the sixth preset threshold, the network side device determines that data needs to be transmitted.
  • the second preset threshold value and the sixth preset threshold value may be pre-configured or configured by the network side device. Specifically, the lower the value of the delay requirement, the higher the corresponding delay requirement. For example, the second preset threshold is pre-configured to 0.5ms, and it is determined that the delay requirement of the logical channel with the highest delay requirement among the logical channels that are allowed to use the dynamic scheduling resource is 0.4ms, because the delay requirement is lower. , which indicates that the corresponding delay requirement is higher.
  • the terminal determines that the delay requirement of the logical channel with the highest delay requirement among the logical channels that allow the use of the dynamic scheduling resource is higher than the second preset threshold, and the terminal determines to perform data transmission and reception normally during the measurement interval.
  • the second preset threshold value and the sixth preset threshold value can be set to the same value, for example, both the second preset threshold value and the sixth preset threshold value are set to 0.5 ms .
  • the type of data transmission resource is a dynamic scheduling resource
  • the dynamic scheduling when the priority of the logical channel with the highest priority among the logical channels corresponding to the dynamic scheduling resource is higher than the first preset threshold, the dynamic scheduling When the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the resource is higher than the second preset threshold, the terminal and the network side device normally perform data transmission and reception during the measurement interval, which can make the priority or delay higher Highly required data is transmitted in time.
  • the QoS parameter can be the priority or the delay requirement.
  • the following is a detailed description of the two cases where QoS parameters are priority or delay requirements, including the following points 1)-2):
  • the priority can be set as the lower the priority value, the higher the corresponding priority.
  • the priority of logical channel 1 is 1, and the priority of logical channel 2 is 2, so the priority of logical channel 1 is higher than the priority of logical channel 2.
  • it can also be set to a high priority value, which means the priority is high.
  • the lower the priority value, the higher the corresponding priority is taken as an example for description.
  • the terminal judges whether the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource meets the first condition
  • the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the first condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use pre-configured resources and have data transmission requirements on the Uu interface. ;
  • the UE accesses the fixed network part of the Wideband Code Division Multiple Access (WCDMA) system through the Uu interface.
  • the Uu interface is the most important interface in the WCDMA system. For example, the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is 3, and the priority of the logical channel with the highest priority among the logical channels with data transmission requirements on the Uu interface is 2, because the priority value is low The longer it is, the corresponding priority is high. Therefore, the priority of the logical channel with the highest priority among the logical channels with data transmission requirements on the Uu interface is higher than that of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources. Priority, the terminal determines to measure at the measurement interval.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the third preset threshold.
  • condition 1) and condition 2) are the execution methods of the terminal test equipment.
  • the network side equipment when determining the specific operation mode, the network side equipment can determine the priority in the logical channel corresponding to the pre-configured resource Whether the priority of the highest logical channel meets the third condition;
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the third condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use pre-configured resources and have data transmission requirements on the Uu interface. level;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is 3
  • the priority of the logical channel with the highest priority among the logical channels that require data transmission on the Uu interface is 2.
  • the priority is high. Therefore, the priority of the logical channel with the highest priority among the logical channels with data transmission needs on the Uu interface is higher than the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources.
  • the network side device determines that no operation is performed on the terminal during the measurement interval.
  • Condition (2) The priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the seventh preset threshold.
  • the third condition may also be the same as the first condition.
  • the third preset threshold value and the seventh preset threshold value may be preconfiguration (preconfiguration), or may be configured by the network side device.
  • the third preset threshold value and the seventh preset threshold value may be set to the same value, for example, both the third preset threshold value and the seventh preset threshold value are set to 1.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the logical channel with the highest priority among the other logical channels of the Uu interface that do not use the pre-configured resources and have data transmission requirements.
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the preset threshold, it means that the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource has a higher priority high.
  • the terminal and the network side device normally perform data transmission and reception during the measurement interval, so that the data with higher priority can be transmitted in time.
  • the delay requirements of the pre-configured resources are explained.
  • the lower the value of the delay requirements the higher the corresponding delay requirements.
  • the delay requirement of logical channel 3 is 0.6ms
  • the delay requirement of logical channel 4 is 0.5ms
  • the delay requirement of logical channel 4 is higher than that of logical channel 3. .
  • the terminal determines the operation mode for further explanation. The terminal judges whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the second condition;
  • the terminal determines to perform data transmission and reception normally in the measurement interval, otherwise the terminal determines to perform the measurement in the measurement interval;
  • the delay requirement of the logical channel may be the value of the delay parameter in the QoS parameter of the logical channel, or the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel The difference.
  • the value of the delay parameter in the QoS parameter of the logical channel is 0.8ms
  • the waiting time of the logical channel is 0.3ms
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resources can be It is 0.8ms, or it can be 0.5ms.
  • the second condition includes at least one of the following:
  • the network side device judges whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the fourth condition;
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the fourth condition includes at least one of the following:
  • the eighth preset threshold value and the fourth preset threshold value may be pre-configured or configured by the network side device.
  • the fourth preset threshold value and the eighth preset threshold value may be set to the same value, or may be set to different values.
  • the fourth preset threshold value and the eighth preset threshold value may be set to 0.5 ms.
  • the logical channel corresponding to the pre-configured resources has the highest delay requirement.
  • the time delay of the logical channel is required to be higher than the length of the measurement interval, and it is determined that the data transmission and reception is normally performed during the measurement interval.
  • the corresponding logical channel of the pre-configured resource is higher than the data transmission interruption time caused by the measurement. It is determined that the data transmission and reception is performed normally during the measurement interval.
  • the fourth condition may be the same as the second condition.
  • the delay requirement of the logical channel with the highest delay requirement is higher than the preset threshold or the length of the measurement interval or higher than the data transmission caused by the measurement.
  • the terminal duration is long, it means that the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resources has a higher delay requirement.
  • the terminal and the network side device normally perform data transmission and reception during the measurement interval, which can ensure timely transmission of data with high latency requirements.
  • the terminal and the network side device respectively perform related operations after determining the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource.
  • the terminal if the operation mode determined by the terminal is to normally perform data transmission and reception at the measurement interval, the terminal performs data transmission and reception at the measurement interval, and after the configured measurement interval delay time is reached, measurement is performed through the measurement interval.
  • the measurement interval delay is configured through broadcast or dedicated signaling.
  • the network side device configures the terminal measurement interval delay length for the terminal through broadcast or dedicated signaling.
  • the measurement interval delay time does not exceed N measurement periods, and N is a positive integer. Therefore, after the configured measurement interval delay time is reached, the terminal determines that the configured measurement interval delay time does not exceed N measurement cycles before performing measurement through the measurement interval, where N is a positive integer.
  • N can be set to a positive integer such as 2 or 3.
  • N can also be set to 1. If the measurement interval delay is longer than 1 measurement period, the measurement will be cancelled.
  • the network-side device sends dynamic scheduling signaling to the terminal to allocate data transmission resources at time T2 to the terminal.
  • the type of the data transmission resource is a dynamic scheduling resource.
  • the dynamic scheduling signaling can be either uplink dynamic scheduling signaling or downlink dynamic scheduling signaling. If it is for uplink dynamic scheduling signaling, the allocated dynamic scheduling resource at time T2 is an uplink transmission resource; if it is for downlink dynamic scheduling signaling, then the allocated dynamic scheduling resource at time T2 is a downlink data transmission resource.
  • the terminal determines the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource. Specifically, since the type of the data transmission resource is a dynamic scheduling resource, the terminal determines to normally perform data transmission and reception during the measurement interval. In other words, at T2, the terminal needs to perform data transmission and reception normally according to the instructions of the dynamic scheduling signaling.
  • the measurement interval delay time can be configured by the network side equipment through broadcast or dedicated signaling. As shown in Figure 3, the measurement interval delay time is t. Among them, t does not exceed 1 measurement period. Whether the measurement can be performed at the measurement interval after the delay t needs to be determined by the terminal again according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource.
  • the network side device sends pre-configured resource configuration signaling to the terminal for configuring parameters such as RNTI and period corresponding to the pre-configured resource.
  • the pre-configured resources include but are not limited to: SPS resources, resources corresponding to Type 1 configured grant, and resources corresponding to Type 2 configured grant.
  • the pre-configured resource configuration signaling may be configuration signaling for uplink pre-configured resources, or it may be configuration signaling for downlink pre-configured resources.
  • the network side device needs to send the pre-configured resource activation signaling to the terminal at time T2. If the pre-configured resource is an SPS resource or a resource corresponding to the Type 1 configured grant, no pre-configured resource activation signaling is required.
  • the terminal determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource.
  • the QoS parameter is the priority. Specifically, the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use pre-configured resources and have data transmission requirements on the Uu interface. Then the terminal determines that at time T3, data transmission and reception are performed normally.
  • the measurement interval can be ignored or delayed.
  • the delay duration of the measurement interval may be configured by the network side device through broadcast or dedicated signaling. As shown in Figure 4, the measurement interval delay time is t. Among them, t does not exceed one measurement period. Whether the measurement interval after the delay can be measured still needs to be determined by the terminal again according to the type of the data transmission resource and/or the quality of service QoS parameter of the logical channel corresponding to the data transmission resource.
  • the network side device sends pre-configured resource configuration signaling to the terminal for configuring parameters such as RNTI and period corresponding to the pre-configured resource.
  • the pre-configured resource configuration signaling may be configuration signaling for uplink pre-configured resources or may be configuration signaling for downlink pre-configured resources.
  • the network side device needs to send the pre-configured resource activation signaling to the terminal at time T2. If the pre-configured resource is an SPS resource or a resource corresponding to the Type 1 configured grant, no pre-configured resource activation signaling is required.
  • the pre-configured resource collides with the measurement interval, and the terminal determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource.
  • the QoS parameter is a priority parameter. Specifically, when the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the third preset threshold, the terminal determines to normally perform data transmission and reception at time T3.
  • the measurement interval can be ignored or delayed.
  • the delay duration of the measurement interval may be configured by the network side device through broadcast or dedicated signaling. As shown in Figure 5, the delay time of the measurement interval is t. Among them, t does not exceed 1 measurement period. Whether the measurement interval after the delay can be measured still needs to be determined by the terminal again according to the type of the data transmission resource and/or the quality of service QoS parameter of the logical channel corresponding to the data transmission resource.
  • the network-side device sends pre-configured resource configuration signaling to the terminal for configuring parameters such as RNTI and period corresponding to the pre-configured resource.
  • the pre-configured resource configuration signaling may be configuration signaling for uplink pre-configured resources, or it may be configuration signaling for downlink pre-configured resources.
  • the network side device needs to send the pre-configured resource activation signaling to the terminal at time T2. If the pre-configured resource is an SPS resource or a resource corresponding to the Type 1 configured grant, no pre-configured resource activation signaling is required.
  • the pre-configured resource collides with the measurement interval, and the terminal determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource.
  • the QoS parameter is the delay requirement. Specifically, if the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the second condition, it is determined that the data transmission and reception is normally performed at the time T3.
  • the second condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement is higher than the fourth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement among the corresponding logical channels of the pre-configured resources is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is the delay parameter value in the QoS parameter of the logical channel.
  • the processing of the measurement interval can be ignored or delayed.
  • the delay duration of the measurement interval is configured by the network side device through broadcast or dedicated signaling. As shown in Figure 6, the delay duration of the measurement interval is t. Among them, t does not exceed 1 measurement period. Whether the measurement interval after the delay can be measured still needs to be determined by the terminal again according to the type of the data transmission resource and/or the quality of service QoS parameter of the logical channel corresponding to the data transmission resource.
  • the network-side device sends pre-configured resource configuration signaling to the terminal for configuring parameters such as RNTI and period corresponding to the pre-configured resource.
  • the pre-configured resource configuration signaling may be the configuration of uplink pre-configured resources or the configuration signaling of downlink pre-configured resources.
  • the network side device needs to send the pre-configured resource activation signaling to the terminal at time T2. If the pre-configured resource is an SPS resource or a resource corresponding to the Type 1 configured grant, no pre-configured resource activation signaling is required.
  • the measurement interval collides with the pre-configured resource at time T3, and the terminal determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource.
  • the QoS parameter is the delay requirement. Specifically, if the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource satisfies the second condition (not described here), it is determined that the data transmission and reception is normally performed at time T3.
  • the difference here from the embodiment shown in FIG. 6 is that the delay requirement of the logical channel is the difference between the delay parameter value in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the processing of the measurement interval can be ignored or delayed.
  • the delay duration of the measurement interval is configured by the network side device through broadcast or dedicated signaling. As shown in Figure 7, the delay duration of the measurement interval is t. Among them, t does not exceed 1 measurement period. Whether the measurement interval after the delay can be measured still needs to be determined by the terminal again according to the type of the data transmission resource and/or the quality of service QoS parameter of the logical channel corresponding to the data transmission resource.
  • a terminal provided by an embodiment of this application includes: at least one processor 800 and at least one memory 801, wherein the memory 801 stores program code, and when the program code is used by the processor When 800 is executed, the processor 800 is caused to execute the following process:
  • the operation mode is determined according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource, wherein the operation mode is to perform measurement at the measurement interval Or perform data transmission and reception normally during the measurement interval;
  • processor 800 is specifically configured to execute:
  • the type of the data transmission resource is a dynamic scheduling resource, it is determined to normally perform data transmission and reception during the measurement interval; or
  • the operation mode is determined according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource.
  • the operation mode is determined according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • processor 800 is specifically further configured to execute:
  • the QoS parameter is priority
  • the QoS parameter is a delay requirement
  • determine whether the delay requirement of the logical channel with the highest delay requirement among the logical channels that are allowed to use the dynamic scheduling resource is higher than the second preset threshold, and if so, determine whether the delay requirement is higher than the second preset threshold. Perform data transmission and reception normally; otherwise, make sure to perform measurement at the measurement interval.
  • the QoS parameter is priority
  • the processor 800 is specifically further configured to execute:
  • the first condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the third preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the processor 800 is specifically further configured to execute:
  • the second condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the fourth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the determined operation mode is to perform data transmission and reception normally during the measurement interval
  • the processor 800 is further configured to perform:
  • measurement interval delay time After the configured measurement interval delay time is reached, measurement is performed through the measurement interval, where the measurement interval delay time is configured through broadcast or dedicated signaling.
  • the processor 800 is further configured to execute:
  • the network side device includes: at least one processor 900 and at least one memory 901, where the memory 901 stores program code, and when the program code is executed by the processor 900, the processor 900 is caused to execute The following process:
  • the operation mode is determined according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource; wherein the operation mode is that no operation is performed on the terminal during the measurement interval or the operation is normally performed during the measurement interval Data sending and receiving.
  • processor 900 is specifically configured to execute:
  • the type of the data transmission resource is a dynamic scheduling resource, it is determined to normally perform data transmission and reception during the measurement interval; or
  • the operation mode is determined according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource.
  • the operation mode is determined according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • processor 900 is specifically further configured to execute:
  • the QoS parameter is a priority, determining that the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than the fifth preset threshold, determining that data needs to be transmitted; or
  • the QoS parameter is a delay requirement, it is determined that the delay requirement of the logical channel with the highest delay requirement among the logical channels that are allowed to use the dynamic scheduling resource is higher than the sixth preset threshold, and it is determined that data needs to be transmitted.
  • the QoS parameter is priority
  • the processor 900 is specifically further configured to execute:
  • the third condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the seventh preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the processor 900 is specifically further configured to execute:
  • the fourth condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the eighth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the processor 900 is further configured to execute:
  • the measurement interval delay time of the terminal is configured for the terminal through broadcast or dedicated signaling.
  • the embodiment of the present application also provides a data transmission method. Since the system corresponding to the method is the network side device and terminal in the embodiment of the present application, and the principle of the method to solve the problem is similar to that of the system, The implementation of this method can refer to the implementation of the system, and the repetition will not be repeated.
  • FIG. 10 is a flowchart of a data transmission method on the terminal side in an embodiment of this application. The process includes the following steps:
  • Step 1001 After the measurement interval collides with the data transmission resource, the terminal determines the operation mode according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource, where the operation mode is Perform measurement at the measurement interval or perform data transmission and reception normally during the measurement interval.
  • Step 1002 The terminal performs related operations according to the determined operation mode.
  • the types of the data transmission resources include dynamic scheduling resources and pre-configured resources.
  • the above step 1002 can be specifically executed as follows: the terminal according to the type of the data transmission resource and/or the logical channel corresponding to the data transmission resource QoS parameters to determine the operation mode, including:
  • the terminal determines to normally perform data transmission and reception during the measurement interval;
  • the terminal determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource; or
  • the terminal determines an operation mode according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the terminal determining the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource includes:
  • the terminal determines whether the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than the first preset threshold, and if so, the The terminal determines to perform data transmission and reception normally during the measurement interval; otherwise, the terminal determines to perform the measurement during the measurement interval; or
  • the terminal determines whether the delay requirement of the logical channel with the highest delay requirement among the logical channels that allow the use of the dynamic scheduling resource is higher than a second preset threshold; if so, Then the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval.
  • the QoS parameter is priority
  • the terminal determining the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource includes:
  • the terminal judges whether the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource satisfies the first condition
  • the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval;
  • the first condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the third preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the terminal determining the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource includes:
  • the terminal judges whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the second condition;
  • the terminal determines to perform data transmission and reception normally in the measurement interval, otherwise the terminal determines to perform the measurement in the measurement interval;
  • the second condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the fourth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement among the corresponding logical channels of the pre-configured resources is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the operation mode determined by the terminal is to normally perform data transmission and reception at a measurement interval
  • the method further includes:
  • the terminal After the configured measurement interval delay duration is reached, the terminal performs measurement through the measurement interval, where the measurement interval delay duration is configured through broadcast or dedicated signaling.
  • the method further includes:
  • the terminal determines that the configured measurement interval delay duration does not exceed N measurement periods, where N is a positive integer.
  • FIG. 11 is a flowchart of a data transmission method on the network side device side in an embodiment of the application. The process includes the following steps:
  • Step 1101 The network side device determines that the measurement interval of the terminal collides with the data transmission resource of the terminal.
  • Step 1102 The network-side device determines an operation mode according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource; wherein the operation mode is not performed for the terminal during the measurement interval Any operation or normal data transmission and reception during the measurement interval.
  • the network side device determines the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource, including:
  • the network side device determines to normally perform data transmission and reception during the measurement interval;
  • the network side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource; or
  • the network side device determines an operation mode according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the network-side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource, including:
  • the network-side device determines that data needs to be transmitted ;
  • the network side device determines Need to transfer data.
  • the QoS parameter is priority
  • the network-side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource, including:
  • the network side device judges whether the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource satisfies the third condition
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the third condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the seventh preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the network-side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the pre-configured resource, including:
  • the network side device judges whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the fourth condition;
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the fourth condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the eighth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the method further includes:
  • the network side device configures the measurement interval delay time of the terminal for the terminal through broadcast or dedicated signaling.
  • FIG. 12 is a schematic diagram of another terminal in an embodiment of this application.
  • the terminal includes:
  • the first determining module 1201 is configured to determine the operation mode according to the type of the data transmission resource and/or the QoS parameter of the logical channel corresponding to the data transmission resource after the terminal collides with the data transmission resource at the measurement interval, wherein The operation mode is to perform measurement in the measurement interval or perform data transmission and reception normally in the measurement interval;
  • the first execution module 1202 is used for the terminal to execute related operations according to the determined operation mode.
  • the first determining module 1201 is specifically configured to: if the type of the data transmission resource is a dynamic scheduling resource, the terminal determines to normally perform data transmission and reception at a measurement interval; or
  • the terminal determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource; or
  • the terminal determines an operation mode according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the first determining module 1201 is specifically further configured to, if the QoS parameter is a priority, the terminal determines whether the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than the priority of the first logical channel. A preset threshold value, if yes, the terminal determines to perform data transmission and reception normally during the measurement interval; otherwise, the terminal determines to perform the measurement during the measurement interval; or
  • the terminal determines whether the delay requirement of the logical channel with the highest delay requirement among the logical channels that allow the use of the dynamic scheduling resource is higher than a second preset threshold; if so, Then the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval.
  • the QoS parameter is priority
  • the first determining module 1201 is specifically used for the terminal to determine whether the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource meets the first condition;
  • the terminal determines to perform data transmission and reception normally in the measurement interval; otherwise, the terminal determines to perform the measurement in the measurement interval;
  • the first condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the third preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the first determining module 1201 is specifically further configured to determine whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the second condition;
  • the terminal determines to perform data transmission and reception normally in the measurement interval, otherwise the terminal determines to perform the measurement in the measurement interval;
  • the second condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the fourth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement among the corresponding logical channels of the pre-configured resources is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the operation mode determined by the terminal is to normally perform data transmission and reception during the measurement interval
  • the first execution module 1202 is further configured to perform measurement through the measurement interval after the configured measurement interval delay duration is reached, wherein the measurement interval delay duration is broadcast Or dedicated signaling configuration.
  • the first execution module 1202 is further configured for the terminal to determine that the configured measurement interval delay time does not exceed N measurement cycles before performing measurement through the measurement interval, where N Is a positive integer.
  • the network side equipment includes:
  • the second determining module 1301 is used for the network side device to determine that the measurement interval of the terminal collides with the data transmission resource of the terminal;
  • the second execution module 1302 is used for the network side device to determine the operation mode according to the type of the data transmission resource and/or the QoS parameters of the logical channel corresponding to the data transmission resource; wherein the operation mode is for The terminal does not perform any operation or normally performs data transmission and reception during the measurement interval.
  • the second determining module 1301 is specifically configured to: if the type of the data transmission resource is a dynamic scheduling resource, the network side device determines to normally perform data transceiving during the measurement interval; or
  • the network side device determines the operation mode according to the QoS parameters of the logical channel corresponding to the dynamic scheduling resource; or
  • the network side device determines an operation mode according to the QoS parameter of the logical channel corresponding to the pre-configured resource.
  • the second determining module 1301 is specifically configured to, if the QoS parameter is a priority, determine that the priority of the logical channel with the highest priority among the logical channels allowed to use the dynamic scheduling resource is higher than the fifth preset threshold Value, the network side device determines that data needs to be transmitted; or
  • the network side device determines Need to transfer data.
  • the QoS parameter is priority
  • the second determining module 1301 is also specifically configured to determine whether the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource meets the third condition;
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the third condition includes at least one of the following:
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resources is higher than the priority of the logical channel with the highest priority among other logical channels that do not use the pre-configured resources and have data transmission requirements on the Uu interface;
  • the priority of the logical channel with the highest priority among the logical channels corresponding to the pre-configured resource is higher than the seventh preset threshold.
  • the priority of the logical channel is the priority in the QoS parameter of the logical channel.
  • the QoS parameter is a delay requirement
  • the second determining module 1301 is specifically further configured to: the network side device determines whether the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource meets the fourth condition;
  • the network-side device determines to normally perform data transmission and reception during the measurement interval; otherwise, the network-side device does not perform any operation on the terminal during the measurement interval;
  • the fourth condition includes at least one of the following:
  • the delay requirement of the logical channel with the highest delay requirement among the logical channels corresponding to the pre-configured resource is higher than the eighth preset threshold
  • the delay requirement of the logical channel with the highest delay requirement is higher than the length of the measurement interval
  • the delay requirement of the logical channel with the highest delay requirement is higher than the data transmission interruption time caused by the measurement.
  • the delay requirement of the logical channel is a delay parameter value in the QoS parameter of the logical channel.
  • the delay requirement of the logical channel is the difference between the value of the delay parameter in the QoS parameter of the logical channel and the waiting time of the logical channel.
  • the second execution module 1302 is further configured to configure the measurement interval delay time of the terminal for the terminal by the network side device through broadcast or dedicated signaling .
  • An embodiment of the present application further provides a computer-readable non-volatile storage medium, including program code, when the program code runs on a computing terminal, the program code is used to make the computing terminal execute the implementation of the present application.
  • a computer-readable non-volatile storage medium including program code, when the program code runs on a computing terminal, the program code is used to make the computing terminal execute the implementation of the present application. Example of the steps of the data transfer method.
  • this application may take the form of a computer program product on a computer-usable or computer-readable storage medium, which has a computer-usable or computer-readable program code implemented in the medium to be used by the instruction execution system or Used in conjunction with the instruction execution system.
  • a computer-usable or computer-readable medium can be any medium that can contain, store, communicate, transmit, or transmit a program for use by an instruction execution system, device, or device, or in combination with an instruction execution system, Device or equipment use.

Abstract

本申请提供一种数据传输方法及设备,涉及通信技术领域,用以解决现有技术中终端在测量间隔和数据传输资源碰撞时,总是优先测量间隔,导致高优先业务也会中断的问题。本方法包括:终端在测量间隔与数据传输资源发生碰撞后,根据数据传输资源的类型和/或数据传输资源对应的逻辑信道的服务质量QoS参数,确定操作方式;终端根据确定的操作方式执行相关操作。在确定终端的测量间隔与终端的数据传输资源发生碰撞后,终端和网络侧设备分别根据数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数确定相应操作方式,或者由数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数共同确定相应的操作方式。

Description

一种数据传输方法及设备
相关申请的交叉引用
本申请要求在2019年03月26日提交中国专利局、申请号为201910234552.1、申请名称为“一种数据传输方法及设备”的中国专利申请的优先权,其全部内容通过引用结合在本申请中。
技术领域
本申请涉及通信技术领域,尤其涉及一种数据传输方法及设备。
背景技术
新空口(New Radio,NR)支持三种主流业务:增强型宽带通信(enhanced Mobile Broadband,eMBB);大量机器类型通信(massive Machine Type Communications,mMTC);高可靠低时延通信(Ultra-Reliable and Low Latency Communications,URLLC)。其中,eMBB业务一般来说时延不敏感,而URLLC业务则是时延敏感的业务。例如,工业物联网(Industry Internet of Things,IIOT)业务端到端业务时延可低至0.5ms。
LTE系统中,终端在测量期间,会忽略除随机接入外的所有数据传输。而对于配置了测量间隔(measurement gap)的终端,其数据传输资源和测量间隔可能存在碰撞。参阅图1,为本申请实施例中终端的数据传输资源和测量间隔碰撞的示意图。目前,终端在测量间隔和数据传输资源碰撞时(如图1中标有“X”的资源),会忽略数据传输,在测量间隔进行测量,即总是优先测量间隔,导致高优先业务也会中断,从而影响用户的体验。
发明内容
终端在测量间隔进行测量的期间,只能接收和发送与随机接入相关的数据,其他任何数据的都不可以收发,即总是优先测量间隔,导致高优先业务 也会中断。本申请基于上述问题,提供了一种数据传输方法及设备。
第一方面,本申请实施例提供一种数据传输方法。该方法包括:
终端在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的服务质量(Quality of Service,QoS)参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
所述终端根据确定的操作方式执行相关操作。
上述方法,在确定终端的测量间隔与终端的数据传输资源发生碰撞后,终端和网络侧设备分别根据数据传输资源的类型和/或数据传输资源对应的逻辑信道的QoS参数确定相应的操作方式,实现了分别根据数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数确定相应操作方式,或者由数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数共同确定相应的操作方式。
一种可能的实施方式中,所述数据传输资源的类型包括动态调度资源和预配置资源,所述终端根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,包括:
若所述数据传输资源的类型为动态调度资源,则所述终端确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
上述方法,在数据传输资源的类型为动态调度资源时,终端正常执行数据收发或者根据动态调度资源对应的逻辑信道的QoS参数确定操作方式,在数据传输资源的类型为预配置资源时,根据预配置资源对应的逻辑信道的QoS参数,确定操作方式,能够在数据传输资源的类型不同和数据传输资源对应的逻辑信道的QoS参数不同的情况下,确定操作方式。
一种可能的实施方式中,所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,包括:
若所述QoS参数为优先级,所述终端确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;或
若所述QoS参数为时延要求,所述终端确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量。
上述方法,在数据传输资源的类型为动态调度资源时,在动态调度资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第一预设门限值、动态调度资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第二预设门限值时,终端在测量间隔正常执行数据收发,能够使得优先级较高或者时延要求较高的数据及时传输。
一种可能的实施方式中,所述QoS参数为优先级;
所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
所述终端判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;
所述第一条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三 预设门限值。
上述方法,在预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级,或者预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值时,表示预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级较高。此时,终端和网络侧设备在测量间隔正常执行数据收发,能够使优先级较高的数据及时传输。
一种可能的实施方式中,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
上述方法,由于逻辑信道的QoS参数中的优先级能够反映业务的优先级要求,从而能够保证优先级要求高的业务被及时处理。
一种可能的实施方式中,所述QoS参数为时延要求;
所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
所述终端判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
如果是,则所述终端确定在测量间隔正常执行数据收发,否则所述终端确定在测量间隔进行测量;
所述第二条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
上述方法,在预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值或者高于测量间隔的长度或者高于进行测量时 导致的数据传输终端时长时,表示预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求较高。此时,终端和网络侧设备在测量间隔正常执行数据收发,能够保证具有高时延要求的数据及时传输。
一种可能的实施方式中,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
上述方法,由于逻辑信道的QoS参数中的时延要求能够反映业务的时延要求,从而能够保证时延要求高的业务被及时处理。
一种可能的实施方式中,所述终端确定的操作方式为在测量间隔正常执行数据收发;
所述终端根据确定的操作方式执行相关操作之后,还包括:
所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
上述方法,在网络侧配置的测量间隔延迟时长达到后,进行测量,能够保证测量次数不减少,从而保证测量精度。
一种可能的实施方式中,所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前还包括:
所述终端确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
上述方法,通过测量间隔延迟时长,延迟执行测量,能够尽量保证测量次数不减少,从而保证测量精度。
第二方面,本申请实施例还提供另一种网络侧设备侧的数据传输方法,该方法包括:
网络侧设备确定终端的测量间隔与终端的数据传输资源发生碰撞;
所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针 对所述终端不执行任何操作或在测量间隔正常执行数据收发。
上述方法,在确定终端的测量间隔与终端的数据传输资源发生碰撞后,终端和网络侧设备分别根据数据传输资源的类型和/或数据传输资源对应的逻辑信道的QoS参数确定相应的操作方式,实现了分别根据数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数确定相应操作方式,或者由数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数共同确定相应的操作方式。
一种可能的实施方式中,所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式,包括:
若所述数据传输资源的类型为动态调度资源,则所述网络侧设备确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
上述方法,在数据传输资源的类型为动态调度资源时,网络侧设备通过终端的数据传输资源与终端正常执行数据收发或者根据动态调度资源对应的逻辑信道的QoS参数确定操作方式,在数据传输资源的类型为预配置资源时,根据预配置资源对应的逻辑信道的QoS参数,确定操作方式,能够在数据传输资源的类型不同和数据传输资源对应的逻辑信道的QoS参数不同的情况下,确定操作方式。
一种可能的实施方式中,所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,包括:
若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限值时,所述网络侧设备确定需要传输数据;或
若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信 道中时延要求最高的逻辑信道的时延要求高于第六预设门限值时,所述网络侧设备确定需要传输数据。
上述方法,在数据传输资源的类型为动态调度资源时,在动态调度资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限值时或者动态调度资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限值时,网络侧设备和终端在测量间隔正常执行数据收发,能够使得优先级较高或者时延要求较高的数据及时传输。
一种可能的实施方式中,所述QoS参数为优先级;
所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
所述网络侧设备判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第三条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
上述方法,在预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级,或者预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值时,表示预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级较高。此时,终端和网络侧设备在测量间隔正常执行数据收发,能够使优先级较高的数据及时传输。
一种可能的实施方式中,所述逻辑信道的优先级是所述逻辑信道的QoS 参数中的优先级。
一种可能的实施方式中,所述QoS参数为时延要求;
所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
所述网络侧设备判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第四条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
上述方法,在预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值或者高于测量间隔的长度或者高于进行测量时导致的数据传输终端时长时,表示预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求较高。此时,终端和网络侧设备在测量间隔正常执行数据收发,能够保证具有高时延要求的数据及时传输。
一种可能的实施方式中,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
一种可能的实施方式中,通过所述终端的数据传输资源与所述终端传输数据之后,还包括:
所述网络侧设备通过广播或专用信令为终端配置所述终端的测量间隔延 迟时长。
上述方法,由网络侧设备为终端配置测量间隔延迟时长,在测量间隔延迟时长达到后,终端在测量间隔进行测量,从而保证测量间隔不减少,保证测量精度。
第三方面,本申请实施例还提供一种终端,该终端包括:处理器、存储器和收发机;
其中,所述处理器,用于读取存储器中的程序并执行:
在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
根据确定的操作方式执行相关操作。
一种可能的实施方式中,所述处理器具体用于执行:
若所述数据传输资源的类型为动态调度资源,则确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
一种可能的实施方式中,所述处理器具体还用于执行:
若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限,如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量;或
若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限,如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量。
一种可能的实施方式中,所述QoS参数为优先级;
所述处理器具体还用于执行:
判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量;
所述第一条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
一种可能的实施方式中,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
一种可能的实施方式中,所述QoS参数为时延要求;
所述处理器具体还用于执行:
判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
如果是,则确定在测量间隔正常执行数据收发,否则确定在测量间隔进行测量;
所述第二条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
一种可能的实施方式中,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
一种可能的实施方式中,确定的操作方式为在测量间隔正常执行数据收发;
根据确定的操作方式执行相关操作之后,所述处理器还用于执行:
在配置的测量间隔延迟时长达到后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
一种可能的实施方式中,在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前,所述处理器还用于执行:
确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
第四方面,本申请实施例还提供一种网络侧设备,该网络侧设备包括:处理器、存储器和收发机;
其中,所述处理器,用于读取存储器中的程序并执行:
确定终端的测量间隔与终端的数据传输资源发生碰撞;
根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
一种可能的实施方式中,所述处理器具体用于执行:
若所述数据传输资源的类型为动态调度资源,则确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
一种可能的实施方式中,所述处理器具体还用于执行:
若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限时,确定需要传输数据; 或
若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限时,确定需要传输数据。
一种可能的实施方式中,所述QoS参数为优先级;
所述处理器具体还用于执行:
判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
如果是,则确定在测量间隔正常执行数据收发;否则在测量间隔针对所述终端不执行任何操作;
所述第三条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
一种可能的实施方式中,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
一种可能的实施方式中,所述QoS参数为时延要求;
所述处理器具体还用于执行:
判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
如果是,则确定在测量间隔正常执行数据收发;否则在测量间隔针对所述终端不执行任何操作;
所述第四条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
一种可能的实施方式中,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
一种可能的实施方式中,通过所述终端的数据传输资源与所述终端传输数据之后,所述处理器还用于执行:
通过广播或专用信令为终端配置所述终端的测量间隔延迟时长。
第五方面,本申请实施例还提供另一种终端,所述终端包括:
第一确定模块,用于终端在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
第一执行模块,用于所述终端根据确定的操作方式执行相关操作。
第六方面,本申请实施例还提供另一种网络侧设备,该网络侧设备包括:
第二确定模块,用于网络侧设备确定终端的测量间隔与终端的数据传输资源发生碰撞;
第二执行模块,用于所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
第七方面,本申请实施例还提供一种计算机可存储介质,其上存储有计算机程序,该程序被处理器执行时实现终端侧数据传输中任一方法的步骤或网络侧设备侧数据传输中任一所述方法的步骤。
另外,第三方面至第七方面中任一种实现方式所带来的技术效果可参见第一方面及第二方面中不同实现方式所带来的技术效果,此处不再赘述。
本申请的这些方面或其他方面在以下实施例的描述中会更加简明易懂。
附图说明
为了更清楚地说明本申请实施例的技术方案,下面将对本申请实施例中所需要使用的附图作简单地介绍,显而易见地,下面所介绍的附图仅仅是本申请的一些实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据这些附图获得其他的附图。
图1为本申请实施例中终端的数据传输资源和测量间隔碰撞的示意图;
图2为本申请实施例中一种用于数据传输的系统结构示意图;
图3为本申请实施例中一种数据传输系统的应用场景示意图;
图4为本申请实施例中一种数据传输系统的另一应用场景示意图;
图5为本申请实施例中一种数据传输系统的另一应用场景示意图;
图6为本申请实施例中一种数据传输系统的另一应用场景示意图;
图7为本申请实施例中一种数据传输系统的另一应用场景示意图;
图8为本申请实施例提供的一种终端;
图9为本申请实施例提供的一种网络侧设备;
图10为本申请实施例中终端侧一种数据传输方法的流程图;
图11为本申请实施例中网络侧设备侧一种数据传输方法的流程图;
图12为本申请实施例提供的另一种终端;
图13为本申请实施例提供的另一种网络侧设备。
具体实施方式
以下,对本申请实施例中的部分用语进行解释说明,以便于本领域技术人员理解。
(1)“和/或”,描述关联对象的关联关系,表示可以存在三种关系,例如, A和/或B,可以表示:单独存在A,同时存在A和B,单独存在B这三种情况。字符“/”一般表示前后关联对象是一种“或”的关系。
(2)预配置资源,指网络侧预先分配给终端,无需动态调度的资源。NR系统中下行和上行都支持预配置资源。NR下行预配置资源为半持续调度(Semi-Persistent Scheduling,SPS)。所谓半持续调度是网络侧通过无线资源控制(Radio Resource Control,RRC)信令配置半持续资源对应的无线网络临时标识(Radio Network Temporary Identity,RNTI)、周期等信息,基站后续通过物理下行控制信道(Physical Downlink Control Channel,PDCCH)信令激活下行SPS资源,PDCCH中携带下行预配置资源的具体时/频位等信息。NR中上行预配置资源的分配分为两种,称为配置授权类型1(Type 1 Configured Grant)和配置授权类型2(Type 2 Configured Grant)。配置授权类型1是指基站通过RRC信令给终端分配具体的上行资源,包括资源周期、对应的预配置授权-无线网络临时标识(Configured Scheduling RNTI,CS-RNTI)、时频资源位置、具体传输格式(如调制与编码策略(Modulation and Coding Scheme,MCS))等,终端根据该配置信息获得周期性的上行传输资源,可以立刻根据该分配的周期性上行传输资源传输上行数据。预配置资源配置中,还可以配置相应的逻辑信道是否可以使用配置授权类型1的资源。配置授权类型2是指基站通过RRC信令给终端分配周期性上行传输资源的周期、CS-RNTI,基站后续通过PDCCH信令激活或激活配置授权类型2的预配置资源,基站在激活配置授权类型2的PDCCH信令中指示具体传输资源,包括时频资源传输格式等。
(3)动态调度资源,是指基站用PDCCH信令对终端进行单次资源分配,上行动态调度资源中,终端解析PDCCH信令中指示的时频资源位置、传输格式,在终端的时频资源位置按照指定的传输格式发送上行数据。
(4)测量间隔,为了支持终端的移动性,终端需要支持测量机制。终端的测量对象可能与当前服务小区频点不同,网络需要为终端配置测量间隔(measurement gap),终端在measurement gap调整收发机去其他频点执行测 量。
本申请实施例描述的网络架构以及业务场景是为了更加清楚的说明本申请实施例的技术方案,并不构成对于本申请实施例提供的技术方案的限定,本领域普通技术人员可知,随着网络架构的演变和新业务场景的出现,本申请实施例提供的技术方案对于类似的技术问题,同样适用。
LTE系统中,终端需要进行测量时,会忽略除随机接入外的所有数据传输。在测量间隔,终端的行为如下:
不再执行混合自动重传请求(Hybrid Automatic Repeat reQuest,HARQ)反馈,调度请求(Scheduling Request,SR)发送以及信道状态信息(Channel State Information,CSI)上报;不再上报导频参考符号(Sounding Reference Symbols,SRS);除随机接入过程中的消息3(Msg3)外,不再执行任何UL数据传输;如果此时随机接入响应窗口(ra-Response Window)或竞争解决定时器(ra-Contention Resolution Timer)正在运行,终端需要侦听PDCCH信令,否则终端将停止侦听PDCCH信令。
也就是说,终端在测量间隔,只能接收和发送与随机接入相关的数据,其他任何数据的都不可以收发,会导致业务被中断,影响用户的体验。
本申请针对上述场景,所述终端在测量间隔与数据传输资源发生碰撞后,根据数据传输资源的类型和/或数据传输资源对应的逻辑信道的QoS参数,确定在测量间隔进行测量或在测量间隔正常执行数据收发。所述终端根据确定的操作方式执行相关操作。同时,网络侧设备确定终端的测量间隔与终端的数据传输资源发生碰撞后,所述网络侧设备根据数据传输资源的类型和/或数据传输资源对应的逻辑信道的QoS参数,确定在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
其中,所述终端,是一种具有无线通信功能的设备,可以部署在陆地上,包括室内或室外、手持或车载;也可以部署在水面上(如轮船等);还可以部署在空中(例如飞机、气球和卫星上等)。所述终端可以是手机(Mobile Phone)、平板电脑(pad)、带无线收发功能的电脑、虚拟现实(Virtual Reality,VR) 终端、增强现实(Augmented Reality,AR)终端、工业控制(Industrial Control)中的无线终端、无人驾驶(Self Driving)中的无线终端、远程医疗(Remote Medical)中的无线终端、智能电网(Smart Grid)中的无线终端、运输安全(Transportation Safety)中的无线终端、智慧城市(Smart City)中的无线终端、智慧家庭(Smart Home)中的无线终端等;还可以是各种形式的UE,移动台(Mobile Station,MS),所述终端设备(Terminal Device)。
所述网络侧设备,是一种为所述终端提供无线通信功能的设备,包括但不限于:第五代移动通信(the 5th Generation mobile communication technology,5G)中的5G基站(gNB)、无线网络控制器(Radio Network Controller,RNC)、节点B(Node B,NB)、基站控制器(Base Station Controller,BSC)、基站收发台(Base Transceiver Station,BTS)、家庭基站(例如,Home Evolved NodeB,或Home Node B,HNB)、基带单元(BaseBand Unit,BBU)、传输点(Transmitting and Receiving Point,TRP)、发射点(Transmitting Point,TP)、移动交换中心等。本申请中的基站还可以是未来可能出现的其他通信系统中为所述终端提供无线通信功能的设备。
为了使本申请的目的、技术方案和优点更加清楚,下面将结合附图对本申请作进一步地详细描述,显然,所描述的实施例仅仅是本申请一部份实施例,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在没有做出创造性劳动前提下所获得的所有其它实施例,都属于本申请保护的范围。
针对上述场景,本申请实施例提供一种用于数据传输的系统,参阅图2,为本申请实施例中一种用于数据传输的系统结构示意图。该系统中包括:
终端10,用于在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;根据确定的操作方式执行相关操作。
网络侧设备11,用于确定终端的测量间隔与终端的数据传输资源发生碰 撞;根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
本申请实施例中,在确定终端的测量间隔与终端的数据传输资源发生碰撞后,终端和网络侧设备分别根据数据传输资源的类型和/或数据传输资源对应的逻辑信道的QoS参数确定相应的操作方式,实现了分别根据数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数确定相应操作方式,或者由数据传输资源的类型和数据传输资源对应的逻辑信道的QoS参数共同确定相应的操作方式。
目前,NR系统支持两种资源分配方式,分别为预配置资源和动态调度资源。本申请实施例中,针对预配置资源和动态调度资源,提供三种确定操作方式的方法,包括:
第一种方式,若所述数据传输资源的类型为动态调度资源,则所述终端确定在测量间隔正常执行数据收发。
第二种方式,若所述数据传输资源的类型为动态调度资源,则所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式。
第三种方式,若所述数据资源的类型为预配置资源,则所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
具体实施时,网络侧设备确定操作方式的方法与终端相同,不再赘述。
本申请实施例中,在数据传输资源的类型为动态调度资源时,网络侧设备和终端正常执行数据收发或者进一步根据动态调度资源对应的逻辑信道的QoS参数确定操作方式。在数据传输资源的类型为预配置资源时,根据预配置资源对应的逻辑信道的QoS参数,确定操作方式。通过此方法实施例能够在数据传输资源的类型不同和数据传输资源对应的逻辑信道的QoS参数不同的各种情况下,确定对应的操作方式。
具体实施时,由于测量间隔是网络配置的,网络知道测量间隔存在的前提下,仍然进行动态调度,这就意味着动态调度的数据需要及时传输,所以, 在数据传输资源的类型为动态调度资源时,终端和网络侧设备在测量间隔正常执行数据收发。
上述方法,能够保证需要动态调度的数据及时传输。
接下来对第二种方式进行详细的说明。本申请实施例中,QoS参数可以是优先级,也可以是时延要求。下面以QoS参数分别是优先级或者时延要求的两种情况进行详细说明,包括以下第1-2两点:
1、QoS参数为优先级:
若所述QoS参数为优先级,所述终端根据逻辑信道对应的逻辑信道限制参数(LCH restrictions),确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则所述终端确定在测量间隔进行测量。
网络侧设备确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限值时,所述网络侧设备确定需要传输数据。
具体实施时,第一预设门限值和第五预设门限值可以是预配置也可以由网络侧设备配置。可选的,可以设置为优先级取值越低,表示其对应的优先级越高。当然,也可以设置为优先级取值越高,表示其对应的优先级越高。例如,第一预设门限值由网络侧设备配置为3,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级取值为1。由于优先级取值越低,表示其对应的优先级越高,所以,该举例说明中确定允许使用所述动态调度资源的逻辑信道中优先级高的逻辑信道的优先级高于第一预设门限值,则终端确定在测量间隔正常执行数据收发。
可选的,可以将第五预设门限值和第一预设门限值设置为相同的数值,例如,将第五预设门限值和第一预设门限值都设置为3。
2、QoS参数为时延要求:
若所述QoS参数为时延要求,所述终端确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限值, 如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量。
网络侧设备确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限值时,所述网络侧设备确定需要传输数据。
具体实施时,第二预设门限值和第六预设门限值可以是预配置也可以由网络侧设备配置。具体的,时延要求取值越低时,表示其对应的时延要求越高。例如,第二预设门限值预配置为0.5ms,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求为0.4ms,由于时延要求取值越低,表示其对应的时延要求越高。所以,上述举例说明中确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第二预设门限值,则终端确定在测量间隔正常执行数据收发。
可选的,可以将第二预设门限值和第六预设门限值设置为相同的数值,例如,将第二预设门限值和第六预设门限值都设置为0.5ms。
本申请实施例中,在数据传输资源的类型为动态调度资源时,在动态调度资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第一预设门限值时、在动态调度资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第二预设门限值时,终端和网络侧设备在测量间隔正常执行数据收发,能够使得优先级较高或者时延要求较高的数据及时传输。
接下来对本申请实施方式中第三种方式进行详细说明。其中,QoS参数可以是优先级,也可以是时延要求。下面分别以QoS参数是优先级或者时延要求的两种情况进行详细说明,包括以下第1)-2)点:
1)、QoS参数为优先级:
具体实施时,可以将优先级设置为优先级取值越低时,表示其对应的优先级越高。例如,预配置资源对应的逻辑信道中,逻辑信道1的优先级取值为1,逻辑信道2的优先级取值为2,则逻辑信道1的优先级高于逻辑信道2的优先级。可选的,也可以设置为优先级取值高时,表示优先级高。本申请 实施例中,以优先级取值越低时,表示其对应的优先级越高为例进行说明。
终端判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量。
其中,具体实施时,逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
所述第一条件至少包括以下中的一种:
条件1)、预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级,高于Uu接口其他不使用预配置资源且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
具体的,UE通过Uu接口接入到宽带码分多址(Wideband Code Division Multiple Access,WCDMA)系统的固定网络部分,Uu接口是WCDMA系统中最重要的接口。例如,预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级为3,Uu接口有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级为2,由于优先级取值低越时,表示其对应的优先级高,所以,Uu接口有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级,高于预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级,终端确定在测量间隔测量。
条件2)、预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
上述条件1)和条件2)是终端测设备的执行方式,针对网络侧设备而言,在确定具体的操作方式时,所述网络侧设备可判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
具体的,逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第三条件至少包括以下中的一种:
条件(1)、预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
具体实施时,若预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级为3,Uu接口有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级为2,由于优先级取值低时,表示优先级高,所以,Uu接口有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级高于预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级,网络侧设备确定在测量间隔针对所述终端不执行任何操作。
条件(2)、预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
可选的,网络侧设备判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件时,第三条件也可以与第一条件相同。
具体实施时,第三预设门限值和第七预设门限值可以是预配置(preconfiguration),也可以由网络侧设备配置。可选的,可以将第三预设门限值和第七预设门限值设置为相同的数值,例如,将第三预设门限值和第七预设门限值都设置为1。
本申请实施例中,在预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级,或者预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于预设门限值时,表示预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级较高。此时,终端和网络侧设备在测量间隔正常执行数据收发,能够使优先级较高的数据及时传输。
2)、QoS参数为时延要求:
首先,对预配置资源的时延要求进行说明,具体实施时,时延要求取值越低时,表示其对应的时延要求越高。例如,预配置资源对应的逻辑信道中, 逻辑信道3的时延要求为0.6ms,逻辑信道4的时延要求为0.5ms,则逻辑信道4的时延要求高于逻辑信道3的时延要求。
在介绍时延要求后,对终端确定操作方式做进一步说明。所述终端判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
如果是,则所述终端确定在测量间隔正常执行数据收发,否则所述终端确定在测量间隔进行测量;
具体的,所述逻辑信道的时延要求可以是逻辑信道的QoS参数中的时延参数值,也可以是所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。例如,逻辑信道的QoS参数中的时延参数值为0.8ms,所述逻辑信道已等待的时长为0.3ms,则预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求可以是0.8ms,或者也可以是0.5ms。
所述第二条件至少包括以下中的一种:
条件(1)预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
条件(2)预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
条件(3)预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
网络侧设备判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第四条件至少包括以下中的一种:
条件(1)预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
具体实施时,第八预设门限值和第四预设门限值可以预配置,也可以由 网络侧设备配置。可选的,可以将第四预设门限值和第八预设门限值设置为相同的数值,也可以设置为不同的数值。例如,可以将第四预设门限值和第八预设门限值设置为0.5ms。
条件(2)预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
具体实施时,若测量间隔的长度为0.9ms,预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求为0.7ms,则预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度,确定在测量间隔正常执行数据收发。
条件(3)预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
具体实施时,若终端进行测量时导致的数据传输终端时长为0.6ms,预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求为0.3ms,则预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长,确定在测量间隔正常执行数据收发。
可选的,网络侧设备判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件时,第四条件可以与第二条件相同。
本申请实施例中,在预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于预设门限值或者高于测量间隔的长度或者高于进行测量时导致的数据传输终端时长时,表示预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求较高。此时,终端和网络侧设备在测量间隔正常执行数据收发,能够保证具有高时延要求的数据及时传输。
终端和网络侧设备根据数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式之后,分别执行相关操作。
在一个实施例中,若终端确定的操作方式为在测量间隔正常执行数据收发,则终端在测量间隔执行数据收发之后,在配置的测量间隔延迟时长达到 后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
相应的,为了实现延迟执行测量间隔的测量,网络侧设备在通过终端的数据传输资源与终端传输数据之后,网络侧设备通过广播或专用信令为终端配置所述终端的测量间隔延迟时长。
可选的,测量间隔延迟时长不超过N个测量周期,N为正整数。所以,在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前,所述终端确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
具体实施时,N可以设置为2或者3等正整数。可选的,也可将N设置为1,若测量间隔延迟时长超过1个测量周期,则取消本次测量。
下面列举几个实施例对本申请实施例中提供的一种数据传输系统进行详细的说明。
实施例1:
参阅图3,为本申请实施例中一种数据传输系统的应用场景示意图。在T1时刻,网络侧设备向终端发送动态调度信令为终端分配T2时刻的数据传输资源。该数据传输资源的类型为动态调度资源。其中,动态调度信令可以是针对上行的动态调度信令也可以是针对下行的动态调度信令。如果是针对上行的动态调度信令,则分配的T2时刻的动态调度资源是上行传输资源;如果是针对下行的动态调度信令,则分配的T2时刻的动态调度资源是下行数据传输资源。
T2时刻的动态调度资源和measuremen gap碰撞,则终端根据数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式。具体的,由于所述数据传输资源的类型为动态调度资源,则所述终端确定在测量间隔正常执行数据收发。也就是说,T2时刻终端需要按照动态调度信令的指示,正常执行数据收发。
如果终端在T3时刻正常执行数据收发,在终端政策执行数据收发之后,对测量间隔的处理可以是忽略或者延迟进行。具体的,测量间隔延迟时长可 以由网络侧设备通过广播或专用信令配置。如图3中,测量间隔延迟时长为t。其中,t不超过1个测量周期。延迟t之后的测量间隔是否能够进行测量,还需要终端再次根据数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定。
实施例2:
参阅图4,为本申请实施例中一种数据传输系统的另一应用场景示意图。在T1时刻,网络侧设备向终端发送预配置资源配置信令,用于配置预配置资源对应的RNTI,周期等参数。其中,预配置资源包括但不限于:SPS资源、Type 1 configured grant对应的资源以及Type 2 configured grant对应的资源。预配置资源配置信令可以是针对上行的预配置资源的配置信令,也可以是针对下行的预配置资源的配置信令。
若预配置资源为Type 2 configured grant对应的资源时,需要网络侧设备在T2时刻向终端发送预配置资源激活信令。若预配置资源为SPS资源或者Type 1 configured grant对应的资源则不需要预配置资源激活信令。
如图4所示,在T3时刻预配置资源和测量间隔碰撞,终端根据预配置资源对应的逻辑信道的QoS参数,确定操作方式。其中,QoS参数为优先级。具体的,预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级,则终端确定在T3时刻,正常执行数据收发。
在终端在T3时刻正常执行数据收发之后,测量间隔可以忽略或者延迟执行。具体的,测量间隔的延迟时长可以由网络侧设备通过广播或者专用信令配置。如图4中,测量间隔延迟时长为t。其中,t不超过一个测量周期。延迟之后的测量间隔是否能够进行测量还需要终端再次根据数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的服务质量QoS参数确定。
实施例3:
参阅图5,为本申请实施例中一种数据传输系统的另一应用场景示意图。在T1时刻网络侧设备向终端发送预配置资源配置信令,用于配置预配置资源 对应的RNTI、周期等参数。其中,预配置资源配置信令可以是针对上行的预配置资源的配置信令也可以是针对下行的预配置资源的配置信令。
若预配置资源为Type 2 configured grant对应的资源时,需要网络侧设备在T2时刻向终端发送预配置资源激活信令。若预配置资源为SPS资源或者Type 1 configured grant对应的资源则不需要预配置资源激活信令。
如图5所示,在T3时刻预配置资源和测量间隔碰撞,终端根据预配置资源对应的逻辑信道的QoS参数,确定操作方式。其中,QoS参数为优先级参数。具体的,预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值时,终端确定在T3时刻正常执行数据收发。
如果终端在T3时刻正常执行数据收发,在终端正常执行数据收发之后,对测量间隔可以忽略或者延迟执行。具体的,测量间隔的延迟时长可以由网络侧设备通过广播或者专用信令配置。如图5中,测量间隔的延迟时长为t。其中,t不超过1个测量周期。延迟之后的测量间隔是否能够进行测量还需要终端再次根据数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的服务质量QoS参数确定。
实施例4:
参阅图6,为本申请实施例中一种数据传输系统的另一应用场景示意图。在T1时刻,网络侧设备向终端发送预配置资源配置信令,用于配置预配置资源对应的RNTI、周期等参数。其中,预配置资源配置信令可以是针对上行的预配置资源的配置信令,也可以是针对下行的预配置资源的配置信令。
若预配置资源为Type 2 configured grant对应的资源时,需要网络侧设备在T2时刻向终端发送预配置资源激活信令。若预配置资源为SPS资源或者Type 1 configured grant对应的资源则不需要预配置资源激活信令。
如图6中,在T3时刻,预配置资源和测量间隔碰撞,终端根据预配置资源对应的逻辑信道的QoS参数,确定操作方式。其中,QoS参数为时延要求。具体的,若所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求满足第二条件时,则确定在T3时刻正常执行数据收发。第二条件至少 包括以下中的一种:
(1)、预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
(2)、预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
(3)预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
其中,逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值。
如果终端在T3时刻正常执行数据收发,在终端正常执行数据收发之后,对测量间隔的处理可以是忽略或者延迟执行。具体的,测量间隔的延迟时长由网络侧设备通过广播或者专用信令配置。如图6所示,测量间隔的延迟时长为t。其中,t不超过1个测量周期。延迟之后的测量间隔是否能够进行测量还需要终端再次根据数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的服务质量QoS参数确定。
实施例5:
参阅图7,为本申请实施例中一种数据传输系统的另一应用场景示意图。在T1时刻,网络侧设备向终端发送预配置资源配置信令,用于配置预配置资源对应的RNTI、周期等参数。其中,预配置资源配置信令可以是针对上行的预配置资源的配置也可以是针对下行的预配置资源的配置信令。
若预配置资源为Type 2 configured grant对应的资源时,需要网络侧设备在T2时刻向终端发送预配置资源激活信令。若预配置资源为SPS资源或者Type 1 configured grant对应的资源则不需要预配置资源激活信令。
如图7所示,在T3时刻测量间隔和预配置资源碰撞,终端根据预配置资源对应的逻辑信道的QoS参数,确定操作方式。其中,QoS参数为时延要求。具体的,若所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求满足第二条件(此处不再赘述),则确定在T3时刻正常执行数据收发。这里与前述图6所示实施例的区别之处在于,逻辑信道的时延要求为所述逻 辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
如果终端在T3时刻正常执行数据收发,在终端正常执行数据收发之后,对测量间隔的处理可以是忽略或者延迟执行。具体的,测量间隔的延迟时长由网络侧设备通过广播或者专用信令配置。如图7所示,测量间隔的延迟时长为t。其中,t不超过1个测量周期。延迟之后的测量间隔是否能够进行测量还需要终端再次根据数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的服务质量QoS参数确定。
基于相同的申请构思,本申请实施例中还提供一种终端和网络侧设备。参阅图8,为本申请实施例提供的一种终端,包括:至少一个处理器800、以及至少一个存储器801,其中,所述存储器801存储有程序代码,当所述程序代码被所述处理器800执行时,使得所述处理器800执行下列过程:
在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
根据确定的操作方式执行相关操作。
可选的,所述处理器800具体用于执行:
若所述数据传输资源的类型为动态调度资源,则确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
可选的,所述处理器800具体还用于执行:
若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限,如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量;或
若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信 道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限,如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量。
可选的,所述QoS参数为优先级;
所述处理器800具体还用于执行:
判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量;
所述第一条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
可选的,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
可选的,所述QoS参数为时延要求;
所述处理器800具体还用于执行:
判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
如果是,则确定在测量间隔正常执行数据收发,否则确定在测量间隔进行测量;
所述第二条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于 进行测量时导致的数据传输中断时长。
进一步的,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
可选的,确定的操作方式为在测量间隔正常执行数据收发;
根据确定的操作方式执行相关操作之后,所述处理器800还用于执行:
在配置的测量间隔延迟时长达到后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
可选的,在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前,所述处理器800还用于执行:
确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
参阅图9,为本申请实施例中提供的一种网络侧设备。该网络侧设备包括:至少一个处理器900、以及至少一个存储器901,其中,所述存储器901存储有程序代码,当所述程序代码被所述处理器900执行时,使得所述处理器900执行下列过程:
确定终端的测量间隔与终端的数据传输资源发生碰撞;
根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
进一步的,所述处理器900具体用于执行:
若所述数据传输资源的类型为动态调度资源,则确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
可选的,所述处理器900具体还用于执行:
若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限时,确定需要传输数据;或
若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限时,确定需要传输数据。
可选的,所述QoS参数为优先级;
所述处理器900具体还用于执行:
判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
如果是,则确定在测量间隔正常执行数据收发;否则在测量间隔针对所述终端不执行任何操作;
所述第三条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
可选的,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
可选的,所述QoS参数为时延要求;
所述处理器900具体还用于执行:
判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
如果是,则确定在测量间隔正常执行数据收发;否则在测量间隔针对所述终端不执行任何操作;
所述第四条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
可选的,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
可选的,通过所述终端的数据传输资源与所述终端传输数据之后,所述处理器900还用于执行:
通过广播或专用信令为终端配置所述终端的测量间隔延迟时长。
基于同一构思,本申请实施例中还提供了一种数据传输方法,由于该方法对应的系统是本申请实施例中的网络侧设备和终端,并且该方法解决问题的原理与该系统相似,因此该方法的实施可以参见系统的实施,重复之处不再赘述。
参阅图10,为本申请实施例中终端侧一种数据传输方法的流程图。该流程包括以下步骤:
步骤1001:终端在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发。
步骤1002:所述终端根据确定的操作方式执行相关操作。
进一步的,所述数据传输资源的类型包括动态调度资源和预配置资源,上述步骤1002可以具体执行为:所述终端根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,包括:
若所述数据传输资源的类型为动态调度资源,则所述终端确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
可选的,所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,包括:
若所述QoS参数为优先级,所述终端确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;或
若所述QoS参数为时延要求,所述终端确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量。
可选的,所述QoS参数为优先级;
所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
所述终端判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;
所述第一条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
可选的,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
可选的,所述QoS参数为时延要求;
所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
所述终端判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
如果是,则所述终端确定在测量间隔正常执行数据收发,否则所述终端确定在测量间隔进行测量;
所述第二条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
可选的,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
可选的,所述终端确定的操作方式为在测量间隔正常执行数据收发;
所述终端根据确定的操作方式执行相关操作之后,还包括:
所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
可选的,所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前还包括:
所述终端确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
参阅图11,为本申请实施例中网络侧设备侧一种数据传输方法流程图。该流程包括以下步骤:
步骤1101:网络侧设备确定终端的测量间隔与终端的数据传输资源发生碰撞。
步骤1102:所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
可选的,所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式,包括:
若所述数据传输资源的类型为动态调度资源,则所述网络侧设备确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
可选的,所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,包括:
若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限值时,所述网络侧设备确定需要传输数据;或
若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限值时,所述网络侧设备确定需要传输数据。
可选的,所述QoS参数为优先级;
所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定 操作方式,包括:
所述网络侧设备判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第三条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
可选的,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
可选的,所述QoS参数为时延要求;
所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
所述网络侧设备判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第四条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
可选的,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延 参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
可选的,通过所述终端的数据传输资源与所述终端传输数据之后,还包括:
所述网络侧设备通过广播或专用信令为终端配置所述终端的测量间隔延迟时长。
参阅图12,为本申请实施例中另一种终端示意图。该终端包括:
第一确定模块1201,用于终端在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
第一执行模块1202,用于所述终端根据确定的操作方式执行相关操作。
进一步的,第一确定模块1201具体用于,若所述数据传输资源的类型为动态调度资源,则所述终端确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
进一步的,第一确定模块1201具体还用于,若所述QoS参数为优先级,所述终端确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;或
若所述QoS参数为时延要求,所述终端确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量。
进一步的,所述QoS参数为优先级;
第一确定模块1201,具体还用于所述终端判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;
所述第一条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
进一步的,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
进一步的,所述QoS参数为时延要求;
第一确定模块1201具体还用于,所述终端判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
如果是,则所述终端确定在测量间隔正常执行数据收发,否则所述终端确定在测量间隔进行测量;
所述第二条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
进一步的,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
进一步的,所述终端确定的操作方式为在测量间隔正常执行数据收发;
所述终端根据确定的操作方式执行相关操作之后,第一执行模块1202还用于,所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
进一步的,所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前,第一执行模块1202还用于所述终端确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
参阅图13,为本申请实施例中另一种网络侧设备示意图。该网络侧设备包括:
第二确定模块1301,用于网络侧设备确定终端的测量间隔与终端的数据传输资源发生碰撞;
第二执行模块1302,用于所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
进一步的,第二确定模块1301具体用于,若所述数据传输资源的类型为动态调度资源,则所述网络侧设备确定在测量间隔正常执行数据收发;或
若所述数据传输资源的类型为动态调度,则所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或
若所述数据资源的类型为预配置资源,则所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
进一步的,第二确定模块1301具体用于,若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限值时,所述网络侧设备确定需要传输数据;或
若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信 道中时延要求最高的逻辑信道的时延要求高于第六预设门限值时,所述网络侧设备确定需要传输数据。
进一步的,所述QoS参数为优先级;
第二确定模块1301具体还用于,所述网络侧设备判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第三条件至少包括以下中的一种:
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
进一步的,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
进一步的,所述QoS参数为时延要求;
第二确定模块1301具体还用于,所述网络侧设备判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
所述第四条件至少包括以下中的一种:
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
进一步的,所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
进一步的,通过所述终端的数据传输资源与所述终端传输数据之后,第二执行模块1302还用于,所述网络侧设备通过广播或专用信令为终端配置所述终端的测量间隔延迟时长。
本申请实施例还提供一种计算机可读非易失性存储介质,包括程序代码,当所述程序代码在计算终端上运行时,所述程序代码用于使所述计算终端执行上述本申请实施例数据传输方法的步骤。
以上参照示出根据本申请实施例的方法、装置(系统)和/或计算机程序产品的框图和/或流程图描述本申请。应理解,可以通过计算机程序指令来实现框图和/或流程图示图的一个块以及框图和/或流程图示图的块的组合。可以将这些计算机程序指令提供给通用计算机、专用计算机的处理器和/或其它可编程数据处理装置,以产生机器,使得经由计算机处理器和/或其它可编程数据处理装置执行的指令创建用于实现框图和/或流程图块中所指定的功能/动作的方法。
相应地,还可以用硬件和/或软件(包括固件、驻留软件、微码等)来实施本申请。更进一步地,本申请可以采取计算机可使用或计算机可读存储介质上的计算机程序产品的形式,其具有在介质中实现的计算机可使用或计算机可读程序代码,以由指令执行系统来使用或结合指令执行系统而使用。在本申请上下文中,计算机可使用或计算机可读介质可以是任意介质,其可以包含、存储、通信、传输、或传送程序,以由指令执行系统、装置或设备使用,或结合指令执行系统、装置或设备使用。
显然,本领域的技术人员可以对本申请进行各种改动和变型而不脱离本申请的精神和范围。这样,倘若本申请的这些修改和变型属于本申请权利要求及其等同技术的范围之内,则本申请也意图包含这些改动和变型在内。

Claims (45)

  1. 一种数据传输方法,所述方法包括:
    终端在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的服务质量QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
    所述终端根据确定的操作方式执行相关操作。
  2. 根据权利要求1所述的方法,其中,所述数据传输资源的类型包括动态调度资源和预配置资源,所述终端根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,包括:
    若所述数据传输资源的类型为动态调度资源,则所述终端确定在测量间隔正常执行数据收发;或
    若所述数据传输资源的类型为动态调度资源,则所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或,
    若所述数据资源的类型为预配置资源,则所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
  3. 根据权利要求2所述的方法,其中,所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,包括:
    若所述QoS参数为优先级,所述终端确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;或
    若所述QoS参数为时延要求,所述终端确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量。
  4. 根据权利要求2所述的方法,其中,所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
    若所述QoS参数为优先级,所述终端判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
    如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;
    所述第一条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级,高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
  5. 根据权利要求3或4所述的方法,其中,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
  6. 根据权利要求2所述的方法,其中,所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
    若所述QoS参数为时延要求,所述终端判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
    如果是,则所述终端确定在测量间隔正常执行数据收发,否则所述终端确定在测量间隔进行测量;
    所述第二条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
    预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
  7. 根据权利要求6所述的方法,其中:
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
  8. 根据权利要求1~4或6~7任一所述的方法,其中,所述终端确定的操作方式为在测量间隔正常执行数据收发;
    所述终端根据确定的操作方式执行相关操作之后,还包括:
    所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
  9. 根据权利要求8所述的方法,所述终端在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前还包括:
    所述终端确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
  10. 一种数据传输方法,所述方法包括:
    网络侧设备确定终端的测量间隔与终端的数据传输资源发生碰撞;
    所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
  11. 根据权利要求10所述的方法,其中,所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式,包括:
    若所述数据传输资源的类型为动态调度资源,则所述网络侧设备确定在测量间隔正常执行数据收发;或
    若所述数据传输资源的类型为动态调度资源,则所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或,
    若所述数据资源的类型为预配置资源,则所述网络侧设备根据所述预配 置资源对应的逻辑信道的QoS参数,确定操作方式。
  12. 根据权利要求11所述的方法,其中,所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,包括:
    若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限值时,所述网络侧设备确定需要传输数据;或
    若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限值时,所述网络侧设备确定需要传输数据。
  13. 根据权利要求11所述的方法,其中,所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
    所述QoS参数为优先级,所述网络侧设备判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
    如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
    所述第三条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
  14. 根据权利要求12或13所述的方法,其中,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
  15. 根据权利要求11所述的方法,其中,所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,包括:
    若所述QoS参数为时延要求,所述网络侧设备判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
    如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
    所述第四条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
  16. 根据权利要求15所述的方法,其中:
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
  17. 根据权利要求10~13或15~16任一所述的方法,通过所述终端的数据传输资源与所述终端传输数据之后,还包括:
    所述网络侧设备通过广播或专用信令为终端配置所述终端的测量间隔延迟时长。
  18. 一种终端,该终端包括:处理器、存储器和收发机;
    其中,所述处理器,用于读取存储器中的程序并执行:
    在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
    根据确定的操作方式执行相关操作。
  19. 根据权利要求18所述的终端,其中,所述处理器具体用于执行:
    若所述数据传输资源的类型为动态调度资源,则确定在测量间隔正常执行数据收发;或
    若所述数据传输资源的类型为动态调度,则根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或,
    若所述数据资源的类型为预配置资源,则根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
  20. 根据权利要求19所述的终端,其中,所述处理器具体还用于执行:
    若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限,如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量;或
    若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限,如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量。
  21. 根据权利要求19所述的终端,其中,所述处理器具体还用于执行:
    若所述QoS参数为优先级,判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
    如果是,则确定在测量间隔正常执行数据收发;否则,确定在测量间隔进行测量;
    所述第一条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
  22. 根据权利要求20或21所述的终端,其中,所述逻辑信道的优先级是所述逻辑信道的QoS参数中的优先级。
  23. 根据权利要求19所述的终端,其中,所述处理器具体还用于执行:
    若所述QoS参数为时延要求,判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
    如果是,则确定在测量间隔正常执行数据收发,否则确定在测量间隔进行测量;
    所述第二条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
    预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
  24. 根据权利要求23所述的终端,其中:
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
  25. 根据权利要求18~21或23~24任一所述的终端,其中,确定的操作方式为在测量间隔正常执行数据收发;
    根据确定的操作方式执行相关操作之后,所述处理器还用于执行:
    在配置的测量间隔延迟时长达到后,通过测量间隔进行测量,其中所述测量间隔延迟时长通过广播或专用信令配置。
  26. 根据权利要求25所述的终端,在配置的测量间隔延迟时长达到后,通过测量间隔进行测量之前,所述处理器还用于执行:
    确定配置的测量间隔延迟时长不超过N个测量周期,其中N为正整数。
  27. 一种网络侧设备,该网络侧设备包括:处理器、存储器和收发机;
    其中,所述处理器,用于读取存储器中的程序并执行:
    确定终端的测量间隔与终端的数据传输资源发生碰撞;
    根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执 行任何操作或在测量间隔正常执行数据收发。
  28. 根据权利要求27所述的设备,其中,所述处理器具体用于执行:
    若所述数据传输资源的类型为动态调度资源,则确定在测量间隔正常执行数据收发;或
    若所述数据传输资源的类型为动态调度,则根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或,
    若所述数据资源的类型为预配置资源,则根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
  29. 根据权利要求28所述的设备,其中,所述处理器具体还用于执行:
    若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限时,确定需要传输数据;或
    若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限时,确定需要传输数据。
  30. 根据权利要求28所述的设备,其中,所述处理器具体还用于执行:
    若所述QoS参数为优先级,判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
    如果是,则确定在测量间隔正常执行数据收发;否则在测量间隔针对所述终端不执行任何操作;
    所述第三条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七预设门限值。
  31. 根据权利要求29或30所述的设备,其中,所述逻辑信道的优先级 是所述逻辑信道的QoS参数中的优先级。
  32. 根据权利要求28所述的设备,其中,所述处理器具体还用于执行:
    若所述QoS参数为时延要求,判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
    如果是,则确定在测量间隔正常执行数据收发;否则在测量间隔针对所述终端不执行任何操作;
    所述第四条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
  33. 根据权利要求32所述的设备,其中:
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值;或
    所述逻辑信道的时延要求为所述逻辑信道的QoS参数中的时延参数值与所述逻辑信道已等待的时长的差值。
  34. 根据权利要求27~30或32~33任一所述的设备,通过所述终端的数据传输资源与所述终端传输数据之后,所述处理器还用于执行:
    通过广播或专用信令为终端配置所述终端的测量间隔延迟时长。
  35. 一种终端,所述终端包括:
    第一确定模块,用于终端在测量间隔与数据传输资源发生碰撞后,根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,其中所述操作方式为在测量间隔进行测量或在测量间隔正常执行数据收发;
    第一执行模块,用于所述终端根据确定的操作方式执行相关操作。
  36. 根据权利要求35所述的终端,其中,所述数据传输资源的类型包括动态调度资源和预配置资源,所述第一确定模块用于根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数,确定操作方式,具体用于:
    若所述数据传输资源的类型为动态调度资源,则所述终端确定在测量间隔正常执行数据收发;或
    若所述数据传输资源的类型为动态调度资源,则所述终端根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或,
    若所述数据资源的类型为预配置资源,则所述终端根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
  37. 根据权利要求36所述的终端,其中,所述第一确定模块用于根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,具体用于:
    若所述QoS参数为优先级,所述终端确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级是否高于第一预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;或
    若所述QoS参数为时延要求,所述终端确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求是否高于第二预设门限值,如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量。
  38. 根据权利要求36所述的终端,其中,所述第一确定模块用于根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,具体用于:
    若所述QoS参数为优先级,所述终端判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第一条件;
    如果是,则所述终端确定在测量间隔正常执行数据收发;否则,所述终端确定在测量间隔进行测量;
    所述第一条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级,高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第三预设门限值。
  39. 根据权利要求36所述的终端,其中,所述第一确定模块用于根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,具体用于:
    若所述QoS参数为时延要求,所述终端判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第二条件;
    如果是,则所述终端确定在测量间隔正常执行数据收发,否则所述终端确定在测量间隔进行测量;
    所述第二条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第四预设门限值;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
    预配置资源的对应逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
  40. 一种网络侧设备,所述网络侧设备包括:
    第二确定模块,用于网络侧设备确定终端的测量间隔与终端的数据传输资源发生碰撞;
    第二执行模块,用于所述网络侧设备根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS参数确定操作方式;其中所述操作方式为在测量间隔针对所述终端不执行任何操作或在测量间隔正常执行数据收发。
  41. 根据权利要求40所述的网络侧设备,其中,所述第二执行模块用于根据所述数据传输资源的类型和/或所述数据传输资源对应的逻辑信道的QoS 参数确定操作方式,具体用于:
    若所述数据传输资源的类型为动态调度资源,则所述网络侧设备确定在测量间隔正常执行数据收发;或
    若所述数据传输资源的类型为动态调度资源,则所述网络侧设备根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式;或,
    若所述数据资源的类型为预配置资源,则所述网络侧设备根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式。
  42. 根据权利要求41所述的网络侧设备,其中,所述第二执行模块用于根据所述动态调度资源对应的逻辑信道的QoS参数,确定操作方式,具体用于:
    若所述QoS参数为优先级,确定允许使用所述动态调度资源的逻辑信道中优先级最高的逻辑信道的优先级高于第五预设门限值时,所述网络侧设备确定需要传输数据;或
    若所述QoS参数为时延要求,确定允许使用所述动态调度资源的逻辑信道中时延要求最高的逻辑信道的时延要求高于第六预设门限值时,所述网络侧设备确定需要传输数据。
  43. 根据权利要求41所述的网络侧设备,其中,所述第二执行模块用于根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,具体用于:
    所述QoS参数为优先级,所述网络侧设备判断所述预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级是否满足第三条件;
    如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
    所述第三条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于Uu接口其他不使用预配置资源的且有数据传输需求的逻辑信道中优先级最高的逻辑信道的优先级;
    预配置资源对应的逻辑信道中优先级最高的逻辑信道的优先级高于第七 预设门限值。
  44. 根据权利要求41所述的网络侧设备,其中,所述第二执行模块用于根据所述预配置资源对应的逻辑信道的QoS参数,确定操作方式,具体用于:
    若所述QoS参数为时延要求,所述网络侧设备判断所述预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求是否满足第四条件;
    如果是,则所述网络侧设备确定在测量间隔正常执行数据收发;否则所述网络侧设备在测量间隔针对所述终端不执行任何操作;
    所述第四条件至少包括以下中的一种:
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于第八预设门限值;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于测量间隔的长度;
    预配置资源对应的逻辑信道中时延要求最高的逻辑信道的时延要求高于进行测量时导致的数据传输中断时长。
  45. 一种计算机可读存储介质,其上存储有计算机程序,其中,该程序被处理器执行时实现如权利要求1~9任一所述方法的步骤,或实现如权利要求10~17任一所述方法的步骤。
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