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WO2018054211A1 - 一种进行上行数据操作的方法和设备 - Google Patents

一种进行上行数据操作的方法和设备 Download PDF

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Publication number
WO2018054211A1
WO2018054211A1 PCT/CN2017/100241 CN2017100241W WO2018054211A1 WO 2018054211 A1 WO2018054211 A1 WO 2018054211A1 CN 2017100241 W CN2017100241 W CN 2017100241W WO 2018054211 A1 WO2018054211 A1 WO 2018054211A1
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WO
WIPO (PCT)
Prior art keywords
numerology
correspondence
bearer
terminal
scheduling signaling
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/CN2017/100241
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English (en)
French (fr)
Inventor
赵亚利
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
China Academy of Telecommunications Technology CATT
Original Assignee
China Academy of Telecommunications Technology CATT
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by China Academy of Telecommunications Technology CATT filed Critical China Academy of Telecommunications Technology CATT
Priority to JP2019515837A priority Critical patent/JP6845310B2/ja
Priority to US16/335,671 priority patent/US10708939B2/en
Priority to EP17852279.3A priority patent/EP3518598B1/en
Priority to KR1020197011688A priority patent/KR102212432B1/ko
Publication of WO2018054211A1 publication Critical patent/WO2018054211A1/zh
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0001Arrangements for dividing the transmission path
    • H04L5/0003Two-dimensional division
    • H04L5/0005Time-frequency
    • H04L5/0007Time-frequency the frequencies being orthogonal, e.g. OFDM(A) or DMT
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/12Wireless traffic scheduling
    • H04W72/1263Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows
    • H04W72/1268Mapping of traffic onto schedule, e.g. scheduled allocation or multiplexing of flows of uplink data flows
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/20Control channels or signalling for resource management
    • H04W72/21Control channels or signalling for resource management in the uplink direction of a wireless link, i.e. towards the network
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes
    • H04L27/2601Multicarrier modulation systems
    • H04L27/2602Signal structure
    • H04L27/26025Numerology, i.e. varying one or more of symbol duration, subcarrier spacing, Fourier transform size, sampling rate or down-clocking
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0044Allocation of payload; Allocation of data channels, e.g. PDSCH or PUSCH
    • 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
    • H04W72/20Control channels or signalling for resource management
    • H04W72/23Control channels or signalling for resource management in the downlink direction of a wireless link, i.e. towards a terminal
    • 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
    • H04W72/543Allocation or scheduling criteria for wireless resources based on quality criteria based on requested quality, e.g. QoS
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/003Arrangements for allocating sub-channels of the transmission path
    • H04L5/0037Inter-user or inter-terminal allocation

Definitions

  • the present invention relates to the field of wireless communication technologies, and in particular, to a method and device for performing uplink data operations.
  • Numerology is a term of the RAN (Radio Access Network) 1, which includes various aspects such as subcarrier spacing, CP (Cyclic Prefix) length, and the like.
  • the network side nodes are divided into CU (Central Unit) and TRP (Transmission Reception Point), and the user side nodes are terminals. .
  • CU Central Unit
  • TRP Transmission Reception Point
  • the network side node includes a CU and TRP two-layer network structure.
  • One or more TRPs can simultaneously serve the terminal for data transmission.
  • 3GPP (3rd Generation Partnership Project) RAN1 introduces a variety of numerology designs, and it has been clarified that different numerologies can be time division/frequency division multiplexing.
  • a possible MAC Medium Access Control
  • the network side separately schedules each numerology.
  • 3GPP RAN1 introduces a variety of different numerology designs, different services have different QoS (Quality of Service) requirements, so different services will use different services. Numerology transmission, in this case how to determine the resources for uplink data transmission has not yet a feasible solution.
  • QoS Quality of Service
  • the present invention provides a method and a device for performing an uplink data operation, which can enable a terminal to determine uplink data transmission for a scenario in which multiple types of nanology are introduced.
  • the terminal determines, according to the first correspondence between the numerology and the uplink scheduling signaling, the uplink scheduling signaling corresponding to the numerology configured by the terminal on the network side;
  • the terminal performs an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the bearer is a radio bearer or a logical channel.
  • the method further includes:
  • the terminal determines the first correspondence relationship and/or the second correspondence relationship according to the configuration of the network side device.
  • the terminal determines the first correspondence of the network side device configuration by using part or all of the following manners:
  • the terminal is based on the physical resource corresponding to the uplink scheduling signaling configured by the network side device or the physical resource corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, and the numerology and uplink scheduling signaling or uplink data transmission.
  • the terminal determines the first correspondence according to the network slice identifier carried in the uplink scheduling signaling configured by the network side device, and the fourth correspondence between the numerology and the network slice identifier.
  • the terminal determines the second correspondence of the network side device configuration by using part or all of the following manners:
  • the terminal according to the seventh correspondence between the QoS parameter and the network slice identifier notified by the network side device through broadcast or dedicated signaling, and the QoS parameter of the bearer configured when the terminal bearer is established, and the network side device is configured by broadcast or dedicated signaling.
  • the fourth correspondence between the numerology and the network slice identifier determines the second correspondence.
  • the terminal performs an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, including:
  • the terminal performs resource allocation and organizes uplink data packets according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the terminal according to the determined numerology corresponding uplink scheduling signaling and The bearer corresponding to the numerology allocates resources, including:
  • the terminal determines an allocation sequence according to a priority of a bearer corresponding to the numerology
  • the terminal allocates resources for each bearer according to the unassigned resources corresponding to the uplink scheduling signaling according to the PBR of each bearer;
  • the terminal After the terminal allocates resources for each bearer, it determines whether the allocation condition is met;
  • the allocation condition allocates resources or resources exhausted for all bearer data.
  • the terminal before performing the uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, the terminal further includes:
  • the terminal performs an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, including:
  • the terminal performs an uplink data operation according to the determined physical layer parameter, the uplink scheduling signaling corresponding to the numerology, and the bearer corresponding to the numerology.
  • the network side device determines the first configuration information and the second configuration information, where the first configuration information is used to determine a first correspondence between the numerology and the uplink scheduling signaling, where the second configuration information is used to determine the numerology and the bearer Second correspondence;
  • the network side device sends the configuration information to the terminal, so that the terminal determines the uplink scheduling signaling according to the first correspondence, and determines the bearer according to the second correspondence, and according to the bearer and the The bearer performs an uplink data operation.
  • the first configuration information includes some or all of the following information:
  • the second configuration information includes some or all of the following information:
  • the method further includes:
  • the network side device configures parameters of the numerology for the terminal by using broadcast or dedicated signaling, so that the terminal performs data transmission by using the allocated resources according to the parameters of the numerology.
  • a terminal for performing uplink data operation according to an embodiment of the present invention where the terminal includes:
  • a signaling determining module configured to determine uplink scheduling signaling corresponding to the numerology configured by the terminal on the network side according to the first correspondence between the numerology and the uplink scheduling signaling;
  • An information determining module configured to determine, according to a second correspondence between the numerology and the bearer, a bearer corresponding to the numerology configured by the network side;
  • the processing module is configured to perform an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the bearer is a radio bearer or a logical channel.
  • processing module is further configured to:
  • processing module is specifically configured to determine, by using part or all of the following manners, the first correspondence relationship of the network side device configuration:
  • the network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling and the fourth correspondence between the numerology and the network slice identifier, according to the network switch slice identifier corresponding to the uplink scheduling signaling configured by the network side device, or the network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, Determining the first correspondence;
  • processing module is specifically configured to determine the second correspondence of the network side device configuration by using part or all of the following manners:
  • the fourth correspondence of the network slice identifier determines the second correspondence.
  • processing module is specifically configured to:
  • the resource allocation and the organization of the uplink data packet are performed according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • processing module is specifically configured to:
  • resources are allocated for each bearer according to the unassigned resources corresponding to the uplink scheduling signaling according to each bearer of the PBR;
  • the allocation condition allocates resources or resources exhausted for all bearer data.
  • processing module is specifically configured to:
  • the uplink data operation is performed according to the determined physical layer parameter, the uplink scheduling signaling corresponding to the numerology, and the bearer corresponding to the numerology.
  • a network side device that performs resource allocation according to an embodiment of the present invention, where the network side device includes:
  • a configuration determining module configured to determine first configuration information and second configuration information, where the first configuration information is used to determine a first correspondence between numerology and uplink scheduling signaling, and the second configuration information is used to determine The second correspondence between the numerology and the bearer;
  • a transmission module configured to send the configuration information to the terminal, so that the terminal determines uplink scheduling signaling according to the first correspondence, and determines a bearer according to the second correspondence, and according to the bearer and the The bearer performs an uplink data operation.
  • the first configuration information includes some or all of the following information:
  • the second configuration information includes some or all of the following information:
  • the transmission module is further configured to:
  • the terminal is configured with parameters of the numerology by broadcast or dedicated signaling, so that the terminal performs data transmission through the allocated resources according to the parameters of the numerology.
  • a processor for reading a program in the memory performing the following process:
  • a transceiver for receiving and transmitting data under the control of a processor.
  • a processor for reading a program in the memory performing the following process:
  • Determining first configuration information and second configuration information wherein the first configuration information is used to determine a first correspondence between numerology and uplink scheduling signaling, and the second configuration information is used to determine a numerology and a second of the bearer Corresponding relationship; transmitting, by the transceiver, the configuration information to the terminal, so that the terminal determines uplink scheduling signaling according to the first correspondence, and according to the The two correspondences determine the bearer, and perform uplink data operations according to the bearer and the bearer.
  • a transceiver for receiving and transmitting data under the control of a processor.
  • the terminal determines the uplink scheduling signaling according to the first correspondence between the numerology and the uplink scheduling signaling, and determines the bearer according to the second correspondence between the numerology and the bearer, and then performs signaling and bearer according to the uplink. Perform upstream data operations.
  • the terminal can perform the uplink data operation according to the first correspondence between the numerology and the uplink scheduling signaling and the second correspondence between the numerology and the bearer, so that the terminal can perform the uplink data operation in the scenario for the numerology; Further improved system performance.
  • FIG. 1 is a schematic structural diagram of a system for performing uplink data operations according to an embodiment of the present invention
  • FIG. 2 is a schematic structural diagram of a first terminal according to an embodiment of the present invention.
  • FIG. 3 is a schematic structural diagram of a first network side device according to an embodiment of the present invention.
  • FIG. 4 is a schematic structural diagram of a second terminal according to an embodiment of the present invention.
  • FIG. 5 is a schematic structural diagram of a second network side device according to an embodiment of the present invention.
  • FIG. 6 is a schematic flowchart of a method for performing an uplink data operation according to an embodiment of the present invention
  • FIG. 7 is a schematic flowchart of a method for performing uplink data operation by a network side device auxiliary terminal according to an embodiment of the present invention.
  • the system for performing uplink data operations in the embodiment of the present invention includes: a terminal 10 and a network side device 20.
  • the terminal 10 is configured to determine uplink scheduling signaling corresponding to the numerology configured by the terminal on the network side according to the first correspondence between the numerology and the uplink scheduling signaling, and determine the network side according to the second correspondence between the numerology and the bearer.
  • the bearer corresponding to the numerology configured for the terminal performs the uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the terminal determines the uplink scheduling signaling according to the first correspondence between the numerology and the uplink scheduling signaling, and determines the bearer according to the second correspondence between the numerology and the bearer, and performs signaling and bearer according to the uplink. Perform upstream data operations.
  • the terminal can perform the uplink data operation according to the first correspondence between the numerology and the uplink scheduling signaling and the second correspondence between the numerology and the bearer, so that the terminal can perform the uplink data operation in the scenario for the numerology; Further improved system performance.
  • the bearer in the embodiment of the present invention may be a radio bearer and/or a logical channel.
  • the network side device 20 may determine the first configuration information and the second configuration information, where the first configuration information is used to determine a first correspondence between the numerology and the uplink scheduling signaling, where the second configuration information And determining a second correspondence between the numerology and the bearer; sending the configuration information to the terminal.
  • the terminal determines the first correspondence relationship and/or the second correspondence relationship according to the configuration of the network side device.
  • the first configuration information includes a first correspondence.
  • the network side device carries the numerology identifier in the uplink scheduling signaling, and sends the scheduling signaling to the terminal.
  • the terminal is carried in the uplink scheduling signaling configured by the network side device.
  • the numerology identifier determines the first correspondence.
  • the network side device directly carries the numerology identifier in the uplink scheduling signaling.
  • the terminal directly associates the numerology corresponding to the numerology identifier with the uplink scheduling signaling of the bearer identifier.
  • the above notification by scheduling signaling is only an example, and any manner in which the first correspondence can be notified to the terminal is applicable to the embodiment of the present invention.
  • the second configuration information includes the physical resource corresponding to the uplink scheduling signaling or the physical resource corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling.
  • the network side device configures, for the terminal, a physical resource corresponding to the uplink scheduling signaling, or a physical resource corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling;
  • the terminal according to the physical resource corresponding to the uplink scheduling signaling configured by the network side device or the physical resource corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, and the numerology and uplink scheduling signaling or And determining, by the third correspondence of the physical resources of the uplink data transmission, the first correspondence.
  • the network side device configures physical resources corresponding to the uplink scheduling signaling for the terminal
  • the terminal can determine the corresponding numerology according to the third correspondence between the numerology and the physical resource corresponding to the uplink scheduling signaling, and then establish a correspondence between the numerology corresponding to the physical resource and the uplink scheduling signaling.
  • the network side device configures an uplink data transmission resource corresponding to the uplink scheduling signaling for the terminal
  • the terminal can determine the corresponding numerology according to the third correspondence between the numerology and the physical resource corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, and then establish the numerology corresponding to the physical resource and the uplink scheduling signaling. Correspondence relationship.
  • the first configuration information includes a network switch slice identifier corresponding to the uplink scheduling signaling or a network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling.
  • the network side device configures, for the terminal, the network switch slice identifier corresponding to the uplink scheduling signaling (that is, the network switch slice identifier is bound to the uplink scheduling signaling) or the uplink data transmission resource corresponding to the uplink scheduling signaling.
  • the network switch slice identifier ie, the network switch slice identifier and the upper Row data transfer resource binding
  • the network side device configures the network switch slice identifier corresponding to the uplink scheduling signaling for the terminal;
  • the terminal can determine the corresponding numerology according to the fourth correspondence between the numerology and the network slice identifier, and then establish a correspondence between the numerology corresponding to the network switch slice identifier and the uplink scheduling signaling.
  • the network side device configures, for the terminal, a network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling;
  • the terminal can determine the corresponding numerology according to the fourth correspondence between the numerology and the network slice identifier, and then establish a correspondence between the numerology corresponding to the network switch slice identifier and the uplink scheduling signaling.
  • the first configuration information includes a network slice identifier.
  • the network slice identifier carried by the network side device in the uplink scheduling signaling
  • the terminal determines the first correspondence according to the network slice identifier carried in the uplink scheduling signaling configured by the network side device, and the fourth correspondence between the numerology and the network slice identifier.
  • the terminal may determine the numerology corresponding to the network slice identifier according to the fourth correspondence, and then establish the uplink scheduling signaling and the determined numerology including the network slice identifier. Correspondence relationship.
  • the network side device can directly configure the first correspondence to the terminal.
  • the first configuration information includes a second correspondence between the bearer and the numerology.
  • the network side device may configure the bearer for the terminal when the terminal bearer is established.
  • the terminal determines a second correspondence between the bearer configured by the network side device and the numerology when the bearer is established.
  • the network side device can directly configure the second correspondence to the terminal.
  • the configuration of the terminal when the bearer is established is only an example, as long as the terminal can be configured at any time before the terminal uses the second correspondence.
  • the second configuration information includes a second correspondence between the bearer and the numerology.
  • the network side device carries the second correspondence between the bearer and the numerology in the uplink scheduling signaling, and sends the uplink scheduling signaling to the terminal.
  • the terminal determines a second correspondence between the bearer configured by the network side device and the numerology configured by the uplink scheduling signaling.
  • the network side device can directly configure the second correspondence to the terminal.
  • the configuration of the terminal by using the uplink scheduling signaling is only an example, and any information that can configure the second correspondence to the terminal uses the embodiment of the present invention.
  • the third configuration information includes a fourth correspondence between the numerology and the network slice identifier, and a fifth correspondence between the QoS parameter and the numerology.
  • the network side device carries the fifth correspondence between the QoS parameter and the numerology in the uplink scheduling signaling, and sends the uplink scheduling signaling to the terminal; and configures the bearer and the QoS parameter for the terminal when the terminal bearer is established.
  • the sixth correspondence ;
  • the terminal determines, according to the fifth correspondence between the QoS parameter and the numerology carried in the uplink scheduling signaling configured by the network side device, and the sixth correspondence between the bearer and the QoS parameter configured when the terminal bearer is established.
  • the second correspondence is described.
  • the terminal can correspond to the same QoS according to the fifth correspondence between the QoS parameter and the numerology carried in the uplink scheduling signaling configured by the network side device, and the sixth correspondence between the bearer and the QoS parameter configured when the terminal bearer is established.
  • a correspondence is established between the parameter's numerology and the bearer.
  • the configuration of the terminal through uplink scheduling signaling is only an example, as long as Any information capable of configuring the fifth correspondence to the terminal uses the embodiment of the present invention.
  • the sixth correspondence is configured for the terminal when the bearer is established, and is only an example, as long as the terminal can be configured at any time before the terminal uses the second correspondence.
  • the fourth configuration information includes a fourth correspondence between the numerology and the network slice identifier, and a fifth correspondence between the QoS parameter and the numerology.
  • the network side device configures a fifth correspondence between the QoS parameter and the numerology for the terminal by using broadcast or dedicated signaling; and configuring a sixth correspondence between the bearer and the QoS parameter for the terminal when the terminal bearer is established;
  • the terminal determines the second correspondence according to the fifth correspondence between the QoS parameter notified by the network side device by using the broadcast or the dedicated signaling and the fifth relation of the numerology, and the sixth correspondence between the bearer configured by the terminal bearer and the QoS parameter. relationship.
  • the terminal can correspond to the same QoS according to the fifth correspondence between the QoS parameter and the numerology carried in the uplink scheduling signaling configured by the network side device, and the sixth correspondence between the bearer and the QoS parameter configured when the terminal bearer is established.
  • a correspondence is established between the parameter's numerology and the bearer.
  • the foregoing configuration of the terminal by broadcast or dedicated signaling is only an example, and any embodiment that can configure the fifth correspondence to the terminal uses the embodiment of the present invention.
  • the sixth correspondence is configured for the terminal when the bearer is established, and is only an example, as long as the terminal can be configured at any time before the terminal uses the second correspondence.
  • the fifth configuration information includes a network slice identifier.
  • the network side device may configure a network slice identifier for the terminal when the terminal bearer is established;
  • the terminal determines the second correspondence according to the network slice identifier carried in the bearer setup and the fourth correspondence between the numerology and the network slice identifier.
  • the terminal determines the numerology corresponding to the configured network slice identifier according to the fourth correspondence between the numerology and the network slice identifier, and establishes a correspondence between the determined numerology and the established bearer.
  • the configuration of the terminal when the bearer is established is only an example, as long as the terminal makes The terminal can be configured at any time before the second correspondence.
  • the sixth configuration information includes a seventh correspondence between the QoS parameter and the network slice identifier, and a fourth correspondence between the numerology and the network slice identifier.
  • the network side device configures, by using broadcast or dedicated signaling, a seventh correspondence between the QoS parameter and the network slice identifier, and a fourth correspondence between the numerology and the network slice identifier configured by the terminal by using broadcast or dedicated signaling, and Configuring QoS parameters of the bearer for the terminal when the terminal bearer is established;
  • the fourth correspondence between the numerology of the signaling configuration and the network slice identifier determines the second correspondence.
  • the terminal can know the network slice identifier corresponding to the QoS parameter configured when the bearer is established according to the seventh correspondence between the QoS parameter and the network slice identifier; and then determine the previously determined network slice according to the fourth correspondence between the numerology and the network slice identifier. Identify the corresponding numerology; finally, the relationship between the determined numerology and the established bearer can be established.
  • the above-mentioned uplink scheduling signaling may be any scheduling signaling, such as a PDCCH (Physical Downlink Control Channel).
  • PDCCH Physical Downlink Control Channel
  • the performing uplink data operations by the terminal includes performing resource allocation and organizing uplink data packets.
  • the terminal may determine the allocation order according to the priority of the bearer and perform allocation.
  • the terminal determines an allocation sequence according to a priority of a bearer corresponding to the numerology
  • the terminal allocates resources for each bearer from the unallocated resources corresponding to the uplink scheduling signaling according to the PBR (Prioritized Bit Rate) of each bearer according to the allocation order;
  • the terminal After the terminal allocates resources for each bearer, it determines whether the allocation condition is met;
  • the allocation condition allocates resources or resources exhausted for all bearer data.
  • bearer A there are three bearers, bearer A, bearer B, and bearer C.
  • the order of assignment is determined according to the priority of the bearer corresponding to the numerology: bearer C, bearer A, and bearer B.
  • the PBRs of the bearer C are allocated resources for the bearer C from all the unallocated resources, and then the resources are allocated to the bearer A from all the unallocated resources according to the PBR of the bearer A, and finally all the unallocated resources are obtained according to the PBR of the bearer B. Assign resources to bearer B.
  • resources are allocated for each bearer in the order of bearer C, bearer A, and bearer B, until all bearer data is allocated resources or resources. Depleted (that is, the resources that have been allocated are already allocated).
  • the terminal may determine an eighth correspondence between the numerology and the physical layer parameter according to the protocol convention or the configuration of the network side device by using broadcast or dedicated signaling.
  • the terminal When the terminal performs an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, the terminal determines the physical layer parameter according to the eighth correspondence relationship;
  • the terminal performs an uplink data operation according to the determined physical layer parameter, the uplink scheduling signaling corresponding to the numerology, and the bearer corresponding to the numerology.
  • the physical layer parameters include but are not limited to some or all of the following parameters:
  • TTI Transmission Time Interval
  • the first terminal of the embodiment of the present invention includes:
  • the signaling determining module 200 is configured to determine uplink scheduling signaling corresponding to the numerology configured by the terminal on the network side according to the first correspondence between the numerology and the uplink scheduling signaling;
  • the information determining module 201 is configured to determine, according to the second correspondence between the numerology and the bearer, the bearer corresponding to the numerology configured by the network side;
  • the processing module 202 is configured to perform an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the bearer is a radio bearer or a logical channel.
  • processing module 202 is further configured to:
  • processing module 202 is specifically configured to determine, by using part or all of the following manners, the first correspondence relationship of the network side device configuration:
  • the network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling and the fourth correspondence between the numerology and the network slice identifier, according to the network switch slice identifier corresponding to the uplink scheduling signaling configured by the network side device, or the network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, Determining the first correspondence;
  • processing module 202 is specifically configured to determine the second correspondence of the network side device configuration by using part or all of the following manners:
  • the fourth correspondence of the network slice identifier determines the second correspondence.
  • processing module 202 is specifically configured to:
  • the resource allocation and the organization of the uplink data packet are performed according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • processing module 202 is specifically configured to:
  • resources are allocated for each bearer according to the unassigned resources corresponding to the uplink scheduling signaling according to each bearer of the PBR;
  • the allocation condition allocates resources or resources exhausted for all bearer data.
  • processing module 202 is specifically configured to:
  • the uplink data operation is performed according to the determined physical layer parameter, the uplink scheduling signaling corresponding to the numerology, and the bearer corresponding to the numerology.
  • the first network side device in the embodiment of the present invention includes:
  • the configuration determining module 300 is configured to determine first configuration information and second configuration information, where the first configuration information is used to determine a first correspondence between numerology and uplink scheduling signaling, where the second configuration information is used Determining a second correspondence between the numerology and the bearer;
  • the transmitting module 301 is configured to send the configuration information to the terminal, so that the terminal determines uplink scheduling signaling according to the first correspondence, and determines a bearer according to the second correspondence, and according to the bearer and The bearer performs an uplink data operation.
  • the first configuration information includes some or all of the following information:
  • the second configuration information includes some or all of the following information:
  • the transmission module 301 is further configured to:
  • the terminal is configured with parameters of the numerology by broadcast or dedicated signaling, so that the terminal performs data transmission through the allocated resources according to the parameters of the numerology.
  • a second terminal in the embodiment of the present invention includes:
  • the processor 401 is configured to read a program in the memory 404 and perform the following process:
  • the transceiver 402 is configured to receive and transmit data under the control of the processor 401.
  • the bearer is a radio bearer or a logical channel.
  • the processor 401 is further configured to:
  • the processor 401 is specifically configured to determine, by using part or all of the following manners, the first correspondence of the network side device configuration:
  • the network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling and the fourth correspondence between the numerology and the network slice identifier, according to the network switch slice identifier corresponding to the uplink scheduling signaling configured by the network side device, or the network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, Determining the first correspondence;
  • the processor 401 is specifically configured to determine the second correspondence of the network side device configuration by using part or all of the following manners:
  • the fourth correspondence of the network slice identifier determines the second correspondence.
  • the processor 401 is specifically configured to:
  • the resource allocation and the organization of the uplink data packet are performed according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the processor 401 is specifically configured to:
  • resources are allocated for each bearer according to the unassigned resources corresponding to the uplink scheduling signaling according to each bearer of the PBR;
  • the allocation condition allocates resources or resources exhausted for all bearer data.
  • the processor 401 is specifically configured to:
  • the uplink data operation is performed according to the determined physical layer parameter, the uplink scheduling signaling corresponding to the numerology, and the bearer corresponding to the numerology.
  • a bus architecture (represented by bus 400), which may include any number of interconnected buses and bridges, will include one or more processors and memory 404 represented by general purpose processor 401.
  • the various circuits of the memory are linked together.
  • the bus 400 can also link various other circuits, such as peripherals, voltage regulators, and power management circuits, as is known in the art and, therefore, will not be further described herein.
  • Bus interface 403 provides an interface between bus 400 and transceiver 402.
  • Transceiver 402 can be an element or a plurality of elements, such as a plurality of receivers and transmitters, providing means for communicating with various other devices on a transmission medium.
  • transceiver 402 receives external data from other devices.
  • the transceiver 402 is configured to send the processed data of the processor 401 to other devices.
  • a user interface 405 can also be provided, such as a keypad, display, speaker, microphone, joystick.
  • the processor 401 is responsible for managing the bus 400 and the usual processing, running a general purpose operating system as described above.
  • the memory 404 can be used to store data used by the processor 401 in performing operations.
  • the processor 401 may be a CPU (Central Embedded Device), an ASIC (Application Specific Integrated Circuit), an FPGA (Field-Programmable Gate Array), or a CPLD (Complex Programmable Logic Device). , complex programmable logic devices).
  • CPU Central Embedded Device
  • ASIC Application Specific Integrated Circuit
  • FPGA Field-Programmable Gate Array
  • CPLD Complex Programmable Logic Device
  • the second network side device of the embodiment of the present invention includes:
  • the processor 501 is configured to read a program in the memory 504 and perform the following process:
  • the configuration information is sent to the terminal by the transceiver 502, so that the terminal determines the uplink scheduling signaling according to the first correspondence, and determines the bearer according to the second correspondence, and according to the bearer And performing uplink data operations with the bearer.
  • the transceiver 502 is configured to receive and transmit data under the control of the processor 501.
  • the first configuration information includes some or all of the following information:
  • the second configuration information includes some or all of the following information:
  • processor 501 is further configured to:
  • the terminal is configured with parameters of the numerology by broadcast or dedicated signaling, so that the terminal performs data transmission through the allocated resources according to the parameters of the numerology.
  • bus 500 can include any number of interconnected buses and bridges, and bus 500 will include one or more processors represented by processor 501 and memory represented by memory 504. The various circuits are linked together. The bus 500 can also link various other circuits, such as peripherals, voltage regulators, and power management circuits, as is known in the art, and therefore, will not be further described herein.
  • Bus interface 503 provides an interface between bus 500 and transceiver 502. Transceiver 502 can be an element or a plurality of elements, such as multiple receivers and transmitters, providing means for communicating with various other devices on a transmission medium. Data processed by processor 501 is transmitted over wireless medium via antenna 505. Further, antenna 505 also receives the data and transmits the data to processor 501.
  • the processor 501 is responsible for managing the bus 500 and the usual processing, and can also provide various functions including timing, peripheral interfaces, voltage regulation, power management, and other control functions. And the memory 504 It can be used to store data used by the processor 501 when performing operations.
  • the processor 501 can be a CPU, an ASIC, an FPGA, or a CPLD.
  • the method for performing the uplink data operation is also provided in the embodiment of the present invention.
  • the method for solving the problem is similar to the method for performing the uplink data operation in the embodiment of the present invention. Therefore, the method can be implemented by referring to the method. The implementation, repetitions will not be repeated.
  • the method for performing uplink data operations in the embodiment of the present invention includes:
  • Step 600 The terminal determines, according to the first correspondence between the numerology and the uplink scheduling signaling, the uplink scheduling signaling corresponding to the numerology configured by the terminal on the network side;
  • Step 601 The terminal determines, according to the second correspondence between the numerology and the bearer, the bearer corresponding to the numerology configured by the network on the network side;
  • Step 602 The terminal performs an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the bearer is a radio bearer or a logical channel.
  • the method further includes:
  • the terminal determines the first correspondence relationship and/or the second correspondence relationship according to the configuration of the network side device.
  • the terminal determines the first correspondence of the network side device configuration by using part or all of the following manners:
  • the terminal is based on the physical resource corresponding to the uplink scheduling signaling configured by the network side device or the physical resource corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, and the numerology and uplink scheduling signaling or uplink data transmission.
  • the terminal determines the first correspondence according to the network slice identifier carried in the uplink scheduling signaling configured by the network side device, and the fourth correspondence between the numerology and the network slice identifier.
  • the terminal determines the second correspondence of the network side device configuration by using part or all of the following manners:
  • the terminal according to the seventh correspondence between the QoS parameter and the network slice identifier notified by the network side device through broadcast or dedicated signaling, and the QoS parameter of the bearer configured when the terminal bearer is established, and the network side device is configured by broadcast or dedicated signaling.
  • the fourth correspondence between the numerology and the network slice identifier determines the second correspondence.
  • the terminal performs an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, including:
  • the terminal performs resource allocation and organizes uplink data packets according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology.
  • the terminal performs resource allocation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, including:
  • the terminal determines an allocation sequence according to a priority of a bearer corresponding to the numerology
  • the terminal allocates resources for each bearer according to the unassigned resources corresponding to the uplink scheduling signaling according to the PBR of each bearer;
  • the terminal After the terminal allocates resources for each bearer, it determines whether the allocation condition is met;
  • the allocation condition allocates resources or resources exhausted for all bearer data.
  • the terminal before performing the uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, the terminal further includes:
  • the terminal performs an uplink data operation according to the determined uplink scheduling signaling corresponding to the numerology and the bearer corresponding to the numerology, including:
  • the terminal performs an uplink data operation according to the determined physical layer parameter, the uplink scheduling signaling corresponding to the numerology, and the bearer corresponding to the numerology.
  • the method for performing uplink data operation by the network side device auxiliary terminal includes:
  • Step 700 The network side device determines first configuration information and second configuration information, where the first configuration information is used to determine a first correspondence between numerology and uplink scheduling signaling, and the second configuration information is used to determine The second correspondence between the numerology and the bearer;
  • Step 701 The network side device sends the configuration information to the terminal, so that the terminal determines the uplink scheduling signaling according to the first correspondence, and determines the bearer according to the second correspondence, according to the The bearer and the bearer perform uplink data operations.
  • the first configuration information includes some or all of the following information:
  • the second configuration information includes some or all of the following information:
  • the method further includes:
  • the network side device configures parameters of the numerology for the terminal by using broadcast or dedicated signaling, so that the terminal performs data transmission by using the allocated resources according to the parameters of the numerology.
  • Step 1 The terminal determines the correspondence between the numerology and the physical layer configuration.
  • the terminal will know the various physical layer parameter configurations corresponding to the numerology in advance.
  • the physical layer parameters corresponding to the numerology may be agreed in the protocol; or may be notified to the terminal by the network side device through broadcast or dedicated signaling.
  • Step 2 The terminal receives uplink scheduling signaling of the network side device.
  • the uplink scheduling signaling (such as the PDCCH) carries the numerology identifier, and the terminal determines the correspondence between the numerology and the UL grant according to the numerology identifier carried in the uplink scheduling signaling.
  • Step 3 The terminal determines the correspondence between the numerology and the bearer.
  • the terminal may obtain the correspondence between the numerology and the bearer by using one of the following methods:
  • Alt2 carries the correspondence between the bearer and the numerology through uplink scheduling signaling (such as PDCCH);
  • Alt3 carries the correspondence between the QoS and the numerology through the uplink scheduling signaling (such as the PDCCH), and the terminal determines the correspondence between the bearer and the numerology according to the QoS parameter configuration of the bearer;
  • the uplink scheduling signaling such as the PDCCH
  • Alt4 The network side device configures the correspondence between QoS and numerology for the terminal through broadcast or dedicated signaling.
  • the terminal determines the correspondence between the bearer and the numerology according to the QoS parameters of the bearer and the correspondence between the QoS and the numerology;
  • Alt5 The network side device configures a corresponding network slice identifier when the terminal establishes a bearer.
  • the terminal determines the correspondence between the bearer and the numerology according to the correspondence between the network slice and the numerology;
  • Alt6 The terminal determines the network slice identifier according to the QoS parameter configured when the bearer is established, and determines the correspondence between the bearer and the numerology according to the correspondence between the network slice identifier and the numerology (pre-configured or broadcast by the network side device or configured by dedicated signaling). relationship.
  • Step 4 The terminal organizes a PDU (Protocol Data Unit) based on the numerology.
  • PDU Protocol Data Unit
  • the MAC layer organization submits to the underlying PDU, which is referred to herein as a MAC PDU (if the subsequent protocol stack is optimized, the PDU name may also change, where the PDU refers to It is the high-level PDU next to the physical layer).
  • the UL grant (uplink scheduling information) corresponding to the numerology is performed according to the following procedure:
  • Step 1 The terminal sorts the correspondences of all the bearers corresponding to the numerology according to the priorities of the bearers, and performs the first round of resource allocation according to the PBR corresponding to each bearer.
  • Step 2 The terminal passes the first round of resource allocation, and if there are remaining resources, the second round of resource allocation is performed according to the priority determined by step 1.
  • the second round of resource allocation is to allocate resources for all the remaining data of each bearer until all the remaining data of the bearer is allocated resources or all the resources of the UL grant corresponding to the numerology are exhausted.
  • Step 1 The terminal determines the correspondence between the numerology and the physical layer configuration.
  • the terminal will know the various physical layer parameter configurations corresponding to the numerology in advance.
  • the physical layer parameters corresponding to the numerology may be agreed in the protocol; or may be notified to the terminal by the network side device through broadcast or dedicated signaling.
  • Step 2 The terminal receives uplink scheduling signaling on the network side.
  • the numerology is bound to the physical resource corresponding to the uplink scheduling signaling or the physical resource corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, and the terminal corresponds to the physical physics corresponding to the uplink scheduling signaling configured by the network side device.
  • the physical resource corresponding to the uplink data transmission resource corresponding to the resource or the uplink scheduling signaling determines the correspondence between the numerology and the uplink scheduling signaling.
  • Step 3 The terminal determines the correspondence between the numerology and the bearer.
  • the terminal may obtain the correspondence between the numerology and the bearer by using one of the following methods:
  • Alt2 carries the correspondence between the bearer and the numerology through uplink scheduling signaling (such as PDCCH);
  • Alt3 carries the correspondence between the QoS and the numerology through the uplink scheduling signaling (such as the PDCCH), and the terminal determines the correspondence between the bearer and the numerology according to the QoS parameter configuration of the bearer;
  • the uplink scheduling signaling such as the PDCCH
  • Alt4 The network side device configures the correspondence between QoS and numerology for the terminal through broadcast or dedicated signaling.
  • the terminal determines the bearer according to the QoS parameters of the bearer and the correspondence between QoS and numerology. Correspondence with numerology;
  • Alt5 The network side device configures a corresponding network slice identifier when the terminal establishes a bearer.
  • the terminal determines the correspondence between the bearer and the numerology according to the correspondence between the network slice and the numerology;
  • Alt6 The terminal determines the network slice identifier according to the QoS parameter configured when the bearer is established, and determines the correspondence between the bearer and the numerology according to the correspondence between the network slice identifier and the numerology (pre-configured or broadcast by the network side device or configured by dedicated signaling). relationship.
  • Step 4 The terminal organizes the PDU based on the numerology.
  • the MAC layer organization submits to the underlying PDU, which is referred to herein as a MAC PDU (if the subsequent protocol stack is optimized, the PDU name may also change, where the PDU refers to It is the high-level PDU next to the physical layer).
  • the PDU group packet is processed according to the following procedure for the UL grant corresponding to the numerology:
  • Step 1 The terminal sorts the correspondences of all the bearers corresponding to the numerology according to the priorities of the bearers, and performs the first round of resource allocation according to the PBR corresponding to each bearer.
  • Step 2 The terminal passes the first round of resource allocation, and if there are remaining resources, the second round of resource allocation is performed according to the priority determined by step 1.
  • the second round of resource allocation is to allocate resources for all the remaining data of each bearer until all the remaining data of the bearer is allocated resources or all the resources of the UL grant corresponding to the numerology are exhausted.
  • Step 1 The terminal determines the correspondence between the numerology and the physical layer configuration.
  • the terminal will know the various physical layer parameter configurations corresponding to the numerology in advance.
  • the physical layer parameters corresponding to the numerology may be agreed in the protocol; or may be notified to the terminal by the network side device through broadcast or dedicated signaling.
  • Step 2 The terminal receives uplink scheduling signaling on the network side.
  • the network switch slice identifier corresponding to the uplink scheduling signaling configured by the network side device or The network switch slice identifier corresponding to the uplink data transmission resource corresponding to the uplink scheduling signaling, and the correspondence between the numerology and the network slice identifier, determine the correspondence between the numerology and the uplink scheduling signaling.
  • Step 3 The terminal determines the correspondence between the numerology and the bearer.
  • the terminal may obtain the correspondence between the numerology and the bearer by using one of the following methods:
  • Alt2 carries the correspondence between the bearer and the numerology through uplink scheduling signaling (such as PDCCH);
  • Alt3 carries the correspondence between the QoS and the numerology through the uplink scheduling signaling (such as the PDCCH), and the terminal determines the correspondence between the bearer and the numerology according to the QoS parameter configuration of the bearer;
  • the uplink scheduling signaling such as the PDCCH
  • Alt4 The network side device configures the correspondence between QoS and numerology for the terminal through broadcast or dedicated signaling.
  • the terminal determines the correspondence between the bearer and the numerology according to the QoS parameters of the bearer and the correspondence between the QoS and the numerology;
  • Alt5 The network side device configures a corresponding network slice identifier when the terminal establishes a bearer.
  • the terminal determines the correspondence between the bearer and the numerology according to the correspondence between the network slice and the numerology;
  • Alt6 The terminal determines the network slice identifier according to the QoS parameter configured when the bearer is established, and determines the correspondence between the bearer and the numerology according to the correspondence between the network slice identifier and the numerology (pre-configured or broadcast by the network side device or configured by dedicated signaling). relationship.
  • Step 4 The terminal organizes the PDU based on the numerology.
  • the MAC layer organization submits to the underlying PDU, which is referred to herein as a MAC PDU (if the subsequent protocol stack is optimized, the PDU name may also change, where the PDU refers to It is the high-level PDU next to the physical layer).
  • the PDU group packet is processed according to the following procedure for the UL grant corresponding to the numerology:
  • Step 1 The terminal sorts the correspondences of all the bearers corresponding to the numerology according to the priorities of the bearers, and performs the first round of resource allocation according to the PBR corresponding to each bearer.
  • Step 2 The terminal passes the first round of resource allocation, and if there are remaining resources, the second round of resource allocation is performed according to the priority determined by step 1.
  • the second round of resource allocation is to allocate resources for all the remaining data of each bearer until all the remaining data of the bearer is allocated resources or all the resources of the UL grant corresponding to the numerology are exhausted.
  • the application can also be implemented in hardware and/or software (including firmware, resident software, microcode, etc.). Still further, the application can take the form of a computer program product on a computer usable or computer readable storage medium having computer usable or computer readable program code embodied in a medium for use by an 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, communicate, or transport a program for use by an instruction execution system, apparatus or device, or in conjunction with an instruction execution system, Used by the device or device.

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Abstract

一种进行上行数据操作的方法和设备,用以针对引入numerology的场景能够使终端确定进行上行数据传输。本发明实施例终端根据numerology和上行链路调度信令的第一对应关系确定上行链路调度信令,以及根据numerology和承载的第二对应关系确定承载,并根据上行链路调度信令和承载进行上行数据操作。由于本发明实施例终端可以根据numerology和上行链路调度信令的第一对应关系和numerology和承载的第二对应关系进行上行数据操作,从而在针对numerology的场景下能够使终端进行上行数据操作;进一步提高了系统性能。

Description

一种进行上行数据操作的方法和设备
本申请要求在2016年9月23日提交中国专利局、申请号为201610849572.6、发明名称为“一种进行上行数据操作的方法和设备”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
本发明涉及无线通信技术领域,特别涉及一种进行上行数据操作的方法和设备。
背景技术
Numerology(基带参数)是RAN(Radio Access Network,无线接入网)1的一个专业术语,包含多方面内容,比如子载波间隔,CP(Cyclic Prefix,循环前缀)长度等。
在新一代无线网络系统(5G系统)中,引入一种新的网络架构,网络侧节点分为CU(Central Unit,中央单元)和TRP(Transmission Reception Point,分布式单元),用户侧节点为终端。在网络侧,一个中央单元CU控制一定区域内部署的多个分布式单元TRP,并通过传输点TRP与终端进行空口传输。即,网络侧节点包括CU和TRP两层网络结构。一个或多个TRP可以同时为终端服务,进行数据传输。一个TRP下可以有多个波束方向的传输。
对于未来移动通信系统,3GPP(3rd Generation Partnership Project,第三代移动通信标准化组织)RAN1引入了多种numerology设计,并且已经明确不同numerology可以时分/频分复用。在引入多个numerology的情况下,一种可能的MAC(Medium Access Control,媒体接入控制)设计为:网络侧会针对每个numerology分别进行调度。
由于3GPP RAN1引入了多种不同numerology设计,不同业务的传输QoS(Quality of Service,服务质量)需求不同,因此不同业务会使用不同 numerology传输,在这种情况下中的如何确定进行上行数据传输的资源目前还没有一种可行的方案。
发明内容
本发明提供一种进行上行数据操作的方法和设备,用以针对引入多种numerology的场景能够使终端确定进行上行数据传输。
本发明实施例提供的一种进行上行数据操作的方法,该方法包括:
终端根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;
所述终端根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;
所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
可选的,所述承载为无线承载或者逻辑信道。
可选的,该方法还包括:
所述终端根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
可选的,所述终端通过下列方式中的部分或全部确定网络侧设备配置的所述第一对应关系:
所述终端根据网络侧设备配置的上行链路调度信令中携带的numerology标识确定所述第一对应关系;
所述终端根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系;
所述终端根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识, 以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系;
所述终端根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
可选的,所述终端通过下列方式中的部分或全部确定网络侧设备配置的所述第二对应关系:
所述终端在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系;
所述终端确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二对应关系;
所述终端根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系;
所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系;
所述终端根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系;
所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
可选的,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作,包括:
所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配和组织上行数据包。
可选的,所述终端根据确定的numerology对应的上行链路调度信令以及 numerology对应的承载进行资源分配,包括:
所述终端根据该numerology对应的承载的优先级确定分配顺序;
所述终端根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
所述终端在为每个承载分配完资源后,判断是否满足分配条件;
如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
可选的,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作之前,还包括:
所述终端根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系;
所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作,包括:
所述终端根据所述第八对应关系确定物理层参数;
所述终端根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
本发明实施例提供的另一种进行资源分配的方法,该方法包括:
网络侧设备确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;
所述网络侧设备向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
可选的,所述第一配置信息包括下列信息中的部分或全部:
numerology标识;
上行链路调度信令对应的物理资源;
上行链路调度信令对应的上行数据传输资源对应的物理资源;
上行链路调度信令对应的网络切片标识
上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
可选的,所述第二配置信息包括下列信息中的部分或全部:
所述第二对应关系;
numerology和网络切片标识的第四对应关系;
QoS参数和numerology的第五对应关系;
QoS参数和网络切片标识的第七对应关系;
承载和QoS参数的第六对应关系;
网络切片标识。
可选的,所述方法还包括:
所述网络侧设备通过广播或专用信令为所述终端配置numerology的参数,以使所述终端根据所述numerology的参数通过分配的资源进行数据传输。
本发明实施例提供的一种进行上行数据操作的终端,该终端包括:
信令确定模块,用于根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;
信息确定模块,用于根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;
处理模块,用于根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
可选的,所述承载为无线承载或者逻辑信道。
可选的,所述处理模块还用于:
根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
可选的,所述处理模块具体用于,通过下列方式中的部分或全部确定网络侧设备配置的所述第一对应关系:
根据网络侧设备配置的上行链路调度信令中携带的numerology标识确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
可选的,所述处理模块具体用于,通过下列方式中的部分或全部确定网络侧设备配置的所述第二对应关系:
在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系;
确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二对应关系;
根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系;
根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系;
根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系;
根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
可选的,所述处理模块具体用于:
根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配和组织上行数据包。
可选的,所述处理模块具体用于:
根据该numerology对应的承载的优先级确定分配顺序;
根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
在为每个承载分配完资源后,判断是否满足分配条件;
如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
可选的,所述处理模块具体用于:
根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系;
根据所述第八对应关系确定物理层参数;
根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
本发明实施例提供的一种进行资源分配的网络侧设备,该网络侧设备包括:
配置确定模块,用于确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;
传输模块,用于向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
可选的,所述第一配置信息包括下列信息中的部分或全部:
numerology标识;
上行链路调度信令对应的物理资源;
上行链路调度信令对应的上行数据传输资源对应的物理资源;
上行链路调度信令对应的网络切片标识
上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
可选的,所述第二配置信息包括下列信息中的部分或全部:
所述第二对应关系;
numerology和网络切片标识的第四对应关系;
QoS参数和numerology的第五对应关系;
承载和QoS参数的第六对应关系;
QoS参数和网络切片标识的第七对应关系;
网络切片标识。
可选的,所述传输模块还用于:
通过广播或专用信令为所述终端配置numerology的参数,以使所述终端根据所述numerology的参数通过分配的资源进行数据传输。
本发明实施例提供的第二种终端包括:
处理器,用于读取存储器中的程序,执行下列过程:
根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
收发机,用于在处理器的控制下接收和发送数据。
本发明实施例提供的第二种网络侧设备包括:
处理器,用于读取存储器中的程序,执行下列过程:
确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;通过收发机向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第 二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
收发机,用于在处理器的控制下接收和发送数据。
本发明实施例终端根据numerology和上行链路调度信令的第一对应关系确定上行链路调度信令,以及根据numerology和承载的第二对应关系确定承载,然后根据上行链路调度信令和承载进行上行数据操作。由于本发明实施例终端可以根据numerology和上行链路调度信令的第一对应关系和numerology和承载的第二对应关系进行上行数据操作,从而在针对numerology的场景下能够使终端进行上行数据操作;进一步提高了系统性能。
附图说明
为了更清楚地说明本发明实施例中的技术方案,下面将对实施例描述中所需要使用的附图作简要介绍,显而易见地,下面描述中的附图仅仅是本发明的一些实施例,对于本领域的普通技术人员来讲,在不付出创造性劳动性的前提下,还可以根据这些附图获得其他的附图。
图1为本发明实施例中进行上行数据操作的系统结构示意图;
图2为本发明实施例中第一种终端的结构示意图;
图3为本发明实施例中第一种网络侧设备的结构示意图;
图4为本发明实施例中第二种终端的结构示意图;
图5为本发明实施例中第二种网络侧设备的结构示意图;
图6为本发明实施例中进行上行数据操作的方法流程示意图;
图7为本发明实施例中网络侧设备辅助终端进行上行数据操作的方法流程示意图。
具体实施方式
为了使本发明的目的、技术方案和优点更加清楚,下面将结合附图对本发明作进一步地详细描述,显然,所描述的实施例仅仅是本发明一部份实施例,而不是全部的实施例。基于本发明中的实施例,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,都属于本发明保护的 范围。
如图1所示,本发明实施例进行上行数据操作的系统包括:终端10和网络侧设备20。
终端10,用于根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
本发明实施例终端根据numerology和上行链路调度信令的第一对应关系确定上行链路调度信令,以及根据numerology和承载的第二对应关系确定承载,并根据上行链路调度信令和承载进行上行数据操作。由于本发明实施例终端可以根据numerology和上行链路调度信令的第一对应关系和numerology和承载的第二对应关系进行上行数据操作,从而在针对numerology的场景下能够使终端进行上行数据操作;进一步提高了系统性能。
其中,本发明实施例的承载可以是为无线承载和/或逻辑信道。
在实施中,网络侧设备20可以确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;向终端发送所述配置信息。
相应的,所述终端根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
下面分别介绍下第一对应关系和第二对应关系的配置方案。
一、配置第一对应关系。
方式一、第一配置信息包括第一对应关系。
具体的,网络侧设备在上行链路调度信令中携带numerology标识,并将该调度信令发送给终端;
相应的,所述终端根据网络侧设备配置的上行链路的调度信令中携带的 numerology标识,确定所述第一对应关系。
这种方式是网络侧设备直接在上行链路调度信令中携带numerology标识;
终端直接将numerology标识对应的numerology和承载标识的上行链路调度信令建立对应关系。
上面通过调度信令通知只是举例说明,任何能够将第一对应关系通知终端的方式都适用本发明实施例。
方式二、第一配置信息包括上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源。
具体的,网络侧设备为终端配置上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源;
相应的,所述终端根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系。
比如网络侧设备为终端配置上行链路调度信令对应的物理资源;
终端根据numerology和上行链路调度信令对应的物理资源的第三对应关系,就可以确定对应的numerology,之后将物理资源对应的numerology和上行链路调度信令之间建立对应关系。
比如网络侧设备为终端配置上行链路调度信令对应的上行数据传输资源;
终端根据numerology和上行链路调度信令对应的上行数据传输资源对应的物理资源的第三对应关系,就可以确定对应的numerology,之后将物理资源对应的numerology和上行链路调度信令之间建立对应关系。
方式三、第一配置信息包括上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
具体的,网络侧设备为终端配置上行链路调度信令对应的网络切换片标识(即将网络切换片标识与上行链路调度信令绑定)或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识(即将网络切换片标识与上 行数据传输资源绑定);
相应的,所述终端根据网络侧设备配置的上行链路调度信令或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
比如网络侧设备为终端配置上行链路调度信令对应的网络切换片标识;
终端根据numerology和网络切片标识的第四对应关系,就可以确定对应的numerology,之后将网络切换片标识对应的numerology和上行链路调度信令之间建立对应关系。
比如网络侧设备为终端配置上行链路调度信令对应的上行数据传输资源对应的网络切换片标识;
终端根据numerology和网络切片标识的第四对应关系,就可以确定对应的numerology,之后将网络切换片标识对应的numerology和上行链路调度信令之间建立对应关系。
方式四、第一配置信息包括网络切片标识;
具体的,网络侧设备在上行链路调度信令中携带的网络切片标识;
相应的,所述终端根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
这里终端收到包含网络切片标识的上行链路调度信令后,根据第四对应关系可以确定该网络切片标识对应的numerology;之后将包含网络切片标识的上行链路调度信令和确定的numerology建立对应关系。
需要说明的是,上面的几种方式只是举例说明,任何能够为终端配置第一对应关系的方式都适用本发明实施例,比如网络侧设备可以直接将第一对应关系配置给终端。
二、配置第二对应关系。
方式一、第二配置信息包括承载和numerology的第二对应关系。
具体的,网络侧设备可以在终端承载建立时为终端配置的承载和 numerology的第二对应关系;
相应的,所述终端在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系。
这里网络侧设备可以直接将第二对应关系配置给终端。
需要说明的是,在承载建立时为终端配置只是举例说明,只要在终端使用第二对应关系之前的任何时刻都可以为终端进行配置。
方式二、第二配置信息包括承载和numerology的第二对应关系。
具体的,网络侧设备在上行链路调度信令中携带承载和numerology的第二对应关系,并将上行链路调度信令发送给终端;
相应的,终端确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二对应关系。
这里网络侧设备可以直接将第二对应关系配置给终端。
需要说明的是,通过上行链路调度信令为终端配置只是举例说明,只要能够将第二对应关系配置给终端的任何信息都使用本发明实施例。
方式三、第二配置信息包括numerology和网络切片标识的第四对应关系和QoS参数和numerology的第五对应关系。
具体的,网络侧设备在上行链路调度信令中携带QoS参数和numerology的第五对应关系,并将上行链路调度信令发送给终端;以及在终端承载建立时为终端配置承载和QoS参数的第六对应关系;
相应的,所述终端根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系。
终端根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系,就可以将对应同一个QoS参数的numerology和承载之间建立对应关系。
需要说明的是,通过上行链路调度信令为终端配置只是举例说明,只要 能够将第五对应关系配置给终端的任何信息都使用本发明实施例。在承载建立时为终端配置第六对应关系只是举例说明,只要在终端使用第二对应关系之前的任何时刻都可以为终端进行配置。
方式四、第二配置信息包括numerology和网络切片标识的第四对应关系和QoS参数和numerology的第五对应关系。
具体的,网络侧设备通过广播或者专用信令为终端配置QoS参数和numerology的第五对应关系;以及在终端承载建立时为终端配置承载和QoS参数的第六对应关系;
相应的,所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系。
终端根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系,就可以将对应同一个QoS参数的numerology和承载之间建立对应关系。
需要说明的是,上述通过广播或者专用信令为终端配置只是举例说明,只要能够将第五对应关系配置给终端的任何信息都使用本发明实施例。在承载建立时为终端配置第六对应关系只是举例说明,只要在终端使用第二对应关系之前的任何时刻都可以为终端进行配置。
方式五、第二配置信息包括网络切片标识。
具体的,网络侧设备可以在终端承载建立时为终端配置网络切片标识;
相应的,所述终端根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
终端根据numerology和网络切片标识的第四对应关系就可以确定配置的网络切片标识对应的numerology,并将确定的numerology与建立的承载之间建立对应关系。
需要说明的是,在承载建立时为终端配置只是举例说明,只要在终端使 用第二对应关系之前的任何时刻都可以为终端进行配置。
方式六、第二配置信息包括QoS参数和网络切片标识的第七对应关系和numerology和网络切片标识的第四对应关系。
具体的,网络侧设备通过广播或者专用信令为终端配置QoS参数和网络切片标识的第七对应关系,以及通过广播或专用信令为终端配置的numerology和网络切片标识的第四对应关系,以及在终端承载建立时为终端配置承载的QoS参数;
相应的,所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
这里终端根据QoS参数和网络切片标识的第七对应关系就可以知道承载建立时配置的QoS参数对应的网络切片标识;之后根据numerology和网络切片标识的第四对应关系就可以确定之前确定的网络切片标识对应的numerology;最后就可以将确定的numerology与建立的承载之间建立对应关系。
需要说明的是,上述通过广播或者专用信令为终端配置只是举例说明,只要能够将第四对应关系和第七对应关系配置给终端的任何信息都使用本发明实施例。在承载建立时为终端配置QoS只是举例说明,只要在终端使用第二对应关系之前的任何时刻都可以为终端进行配置。
上面提到的上行链路调度信令可以是任何的调度信令,比如PDCCH(Physical Downlink Control Channel,物理下行控制信道)等。
可选的,所述终端进行上行数据操作包括进行资源分配和组织上行数据包。
其中,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配时,可以根据承载的优先级确定分配顺序并进行分配。
具体的,所述终端根据该numerology对应的承载的优先级确定分配顺序;
所述终端根据分配顺序,按照每个承载的PBR(Prioritized Bit Rate,优先化比特速率)从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
所述终端在为每个承载分配完资源后,判断是否满足分配条件;
如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
比如有三个承载,承载A、承载B和承载C,根据numerology对应的承载的优先级确定分配顺序为承载C、承载A、承载B。
先按照承载C的PBR从所有未分配的资源中为承载C分配资源,之后按照承载A的PBR从所有未分配的资源中为承载A分配资源,最后按照承载B的PBR从所有未分配的资源中为承载B分配资源。
如果有承载的数据未分配资源或可分配的资源中还有未分配的资源,则按照承载C、承载A、承载B的顺序继续为各承载分配资源,直到所有承载的数据都分配资源或资源耗尽(即可分配的资源都已经分配)。
可选的,所述终端可以根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系
所述终端在根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作时,所述终端根据所述第八对应关系确定物理层参数;
所述终端根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
其中,物理层参数包括但不限于下列参数中的部分或全部:
子载波间隔;
CP(Cyclic Prefix,循环前缀)长度;
TTI(Transmission Time Interval,发送时间间隔)长度。
如图2所示,本发明实施例第一种终端包括:
信令确定模块200,用于根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;
信息确定模块201,用于根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;
处理模块202,用于根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
可选的,所述承载为无线承载或者逻辑信道。
可选的,所述处理模块202还用于:
根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
可选的,所述处理模块202具体用于,通过下列方式中的部分或全部确定网络侧设备配置的所述第一对应关系:
根据网络侧设备配置的上行链路调度信令中携带的numerology标识确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
可选的,所述处理模块202具体用于,通过下列方式中的部分或全部确定网络侧设备配置的所述第二对应关系:
在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系;
确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二 对应关系;
根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系;
根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系;
根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系;
根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
可选的,所述处理模块202具体用于:
根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配和组织上行数据包。
可选的,所述处理模块202具体用于:
根据该numerology对应的承载的优先级确定分配顺序;
根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
在为每个承载分配完资源后,判断是否满足分配条件;
如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
可选的,所述处理模块202具体用于:
根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系;
根据所述第八对应关系确定物理层参数;
根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
如图3所示,本发明实施例第一种网络侧设备包括:
配置确定模块300,用于确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;
传输模块301,用于向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
可选的,所述第一配置信息包括下列信息中的部分或全部:
numerology标识;
上行链路调度信令对应的物理资源;
上行链路调度信令对应的上行数据传输资源对应的物理资源;
上行链路调度信令对应的网络切片标识
上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
可选的,所述第二配置信息包括下列信息中的部分或全部:
所述第二对应关系;
numerology和网络切片标识的第四对应关系;
QoS参数和numerology的第五对应关系;
承载和QoS参数的第六对应关系;
QoS参数和网络切片标识的第七对应关系;
网络切片标识。
可选的,所述传输模块301还用于:
通过广播或专用信令为所述终端配置numerology的参数,以使所述终端根据所述numerology的参数通过分配的资源进行数据传输。
如图4所示,本发明实施例第二种终端包括:
处理器401,用于读取存储器404中的程序,执行下列过程:
根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
收发机402,用于在处理器401的控制下接收和发送数据。
可选的,所述承载为无线承载或者逻辑信道。
可选的,所述处理器401还用于:
根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
可选的,所述处理器401具体用于,通过下列方式中的部分或全部确定网络侧设备配置的所述第一对应关系:
根据网络侧设备配置的上行链路调度信令中携带的numerology标识确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系;
根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
可选的,所述处理器401具体用于,通过下列方式中的部分或全部确定网络侧设备配置的所述第二对应关系:
在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系;
确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二 对应关系;
根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系;
根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系;
根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系;
根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
可选的,所述处理器401具体用于:
根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配和组织上行数据包。
可选的,所述处理器401具体用于:
根据该numerology对应的承载的优先级确定分配顺序;
根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
在为每个承载分配完资源后,判断是否满足分配条件;
如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
可选的,所述处理器401具体用于:
根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系;
根据所述第八对应关系确定物理层参数;
根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
在图4中,总线架构(用总线400来代表),总线400可以包括任意数量的互联的总线和桥,总线400将包括由通用处理器401代表的一个或多个处理器和存储器404代表的存储器的各种电路链接在一起。总线400还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口403在总线400和收发机402之间提供接口。收发机402可以是一个元件,也可以是多个元件,比如多个接收器和发送器,提供用于在传输介质上与各种其他装置通信的单元。例如:收发机402从其他设备接收外部数据。收发机402用于将处理器401处理后的数据发送给其他设备。取决于计算系统的性质,还可以提供用户接口405,例如小键盘、显示器、扬声器、麦克风、操纵杆。
处理器401负责管理总线400和通常的处理,如前述所述运行通用操作系统。而存储器404可以被用于存储处理器401在执行操作时所使用的数据。
可选的,处理器401可以是CPU(中央处埋器)、ASIC(Application Specific Integrated Circuit,专用集成电路)、FPGA(Field-Programmable Gate Array,现场可编程门阵列)或CPLD(Complex Programmable Logic Device,复杂可编程逻辑器件)。
如图5所示,本发明实施例第二种网络侧设备包括:
处理器501,用于读取存储器504中的程序,执行下列过程:
确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;通过收发机502向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
收发机502,用于在处理器501的控制下接收和发送数据。
可选的,所述第一配置信息包括下列信息中的部分或全部:
numerology标识;
上行链路调度信令对应的物理资源;
上行链路调度信令对应的上行数据传输资源对应的物理资源;
上行链路调度信令对应的网络切片标识
上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
可选的,所述第二配置信息包括下列信息中的部分或全部:
所述第二对应关系;
numerology和网络切片标识的第四对应关系;
QoS参数和numerology的第五对应关系;
承载和QoS参数的第六对应关系;
QoS参数和网络切片标识的第七对应关系;
网络切片标识。
可选的,所述处理器501还用于:
通过广播或专用信令为所述终端配置numerology的参数,以使所述终端根据所述numerology的参数通过分配的资源进行数据传输。
在图5中,总线架构(用总线500来代表),总线500可以包括任意数量的互联的总线和桥,总线500将包括由处理器501代表的一个或多个处理器和存储器504代表的存储器的各种电路链接在一起。总线500还可以将诸如外围设备、稳压器和功率管理电路等之类的各种其他电路链接在一起,这些都是本领域所公知的,因此,本文不再对其进行进一步描述。总线接口503在总线500和收发机502之间提供接口。收发机502可以是一个元件,也可以是多个元件,比如多个接收器和发送器,提供用于在传输介质上与各种其他装置通信的单元。经处理器501处理的数据通过天线505在无线介质上进行传输,进一步,天线505还接收数据并将数据传送给处理器501。
处理器501负责管理总线500和通常的处理,还可以提供各种功能,包括定时,外围接口,电压调节、电源管理以及其他控制功能。而存储器504 可以被用于存储处理器501在执行操作时所使用的数据。
可选的,处理器501可以是CPU、ASIC、FPGA或CPLD。
基于同一发明构思,本发明实施例中还提供了一种进行上行数据操作的方法,由于该方法解决问题的原理与本发明实施例进行上行数据操作的方法相似,因此该方法的实施可以参见方法的实施,重复之处不再赘述。
如图6所示,本发明实施例进行上行数据操作的方法包括:
步骤600、终端根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;
步骤601、所述终端根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;
步骤602、所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
可选的,所述承载为无线承载或者逻辑信道。
可选的,该方法还包括:
所述终端根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
可选的,所述终端通过下列方式中的部分或全部确定网络侧设备配置的所述第一对应关系:
所述终端根据网络侧设备配置的上行链路调度信令中携带的numerology标识确定所述第一对应关系;
所述终端根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系;
所述终端根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系;
所述终端根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
可选的,所述终端通过下列方式中的部分或全部确定网络侧设备配置的所述第二对应关系:
所述终端在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系;
所述终端确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二对应关系;
所述终端根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系;
所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系;
所述终端根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系;
所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
可选的,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作,包括:
所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配和组织上行数据包。
可选的,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配,包括:
所述终端根据该numerology对应的承载的优先级确定分配顺序;
所述终端根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
所述终端在为每个承载分配完资源后,判断是否满足分配条件;
如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
可选的,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作之前,还包括:
所述终端根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系;
所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作,包括:
所述终端根据所述第八对应关系确定物理层参数;
所述终端根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
如图7所示,本发明实施例网络侧设备辅助终端进行上行数据操作的方法包括:
步骤700、网络侧设备确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;
步骤701、所述网络侧设备向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
可选的,所述第一配置信息包括下列信息中的部分或全部:
numerology标识;
上行链路调度信令对应的物理资源;
上行链路调度信令对应的上行数据传输资源对应的物理资源;
上行链路调度信令对应的网络切片标识
上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
可选的,所述第二配置信息包括下列信息中的部分或全部:
所述第二对应关系;
numerology和网络切片标识的第四对应关系;
QoS参数和numerology的第五对应关系;
承载和QoS参数的第六对应关系;
QoS参数和网络切片标识的第七对应关系;
网络切片标识。
可选的,所述方法还包括:
所述网络侧设备通过广播或专用信令为所述终端配置numerology的参数,以使所述终端根据所述numerology的参数通过分配的资源进行数据传输。
下面列举几个例子对本发明的方案进行详细说明。
实施例1:
步骤1:终端确定numerology和物理层配置的对应关系。
为了能够保证终端可以采用正确的numerology进行数据传输,终端会提前获知numerology对应的各种物理层参数配置。
在实施中,numerology对应的物理层参数可以在协议中约定;也可以由网络侧设备通过广播或者专用信令通知给终端。
步骤2:终端接收网络侧设备的上行链路调度信令。
其中,上行链路调度信令(比如PDCCH)中携带numerology标识,终端根据上行链路调度信令携带的numerology标识确定numerology和UL grant之间的对应关系。
步骤3:终端确定numerology和承载的对应关系。
在实施中,终端可以通过但不限于通过如下方式之一获取numerology和承载之间的对应关系:
Alt1:在承载建立时,预配置承载和numerology的对应关系;
Alt2:通过上行链路调度信令(比如PDCCH)携带承载和numerology的对应关系;
Alt3:通过上行链路调度信令(比如PDCCH)携带QoS和numerology的对应关系,终端根据承载的QoS参数配置确定承载和numerology的对应关系;
Alt4:网络侧设备通过广播或者专用信令为终端配置QoS和numerology的对应关系;
终端根据承载的QoS参数以及QoS和numerology的对应关系,确定承载和numerology的对应关系;
Alt5:网络侧设备在于终端建立承载时配置对应的网络切片标识;
终端根据网络切片和numerology的对应关系,确定承载和numerology的对应关系;
Alt6:终端根据在承载建立时配置的QoS参数确定网络切片标识,再根据网络切片标识和numerology的对应关系(预配置或由网络侧设备广播或者用专用信令配置),确定承载和numerology的对应关系。
步骤4:终端基于numerology组织PDU(Protocol Data Unit,协议数据单元)。
假设仍然采用4层用户面协议栈,即由MAC层组织递交给底层的PDU,该PDU这里称为MAC PDU(如果后续协议栈有优化,那么该PDU名称也可能会变化,这里的PDU指的是物理层紧邻的高层PDU)。
针对该numerology对应的UL grant(上行调度信息)按照如下过程进行PDU组包:
Step1:终端将该numerology对应的所有承载的对应关系按照承载的优先级排序,并根据每个承载对应的PBR进行第一轮资源分配;
Step2:终端经过第一轮资源分配,如果还有剩余资源,则按照step 1确定的优先级进行第二轮资源分配。
第二轮资源分配是为每个承载的全部剩余数据分配资源,直到所有承载剩余数据都分配好资源或者该numerology对应的UL grant的所有资源都耗尽为止。
实施例2:
步骤1:终端确定numerology和物理层配置的对应关系。
为了能够保证终端可以采用正确的numerology进行数据传输,终端会提前获知numerology对应的各种物理层参数配置。
在实施中,numerology对应的物理层参数可以在协议中约定;也可以由网络侧设备通过广播或者专用信令通知给终端。
步骤2:终端接收网络侧的上行链路调度信令。
这里将numerology和上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源绑定,终端根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,确定numerology和上行链路调度信令之间的对应关系。
步骤3:终端确定numerology和承载的对应关系。
在实施中,终端可以通过但不限于通过如下方式之一获取numerology和承载之间的对应关系:
Alt1:在承载建立时,预配置承载和numerology的对应关系;
Alt2:通过上行链路调度信令(比如PDCCH)携带承载和numerology的对应关系;
Alt3:通过上行链路调度信令(比如PDCCH)携带QoS和numerology的对应关系,终端根据承载的QoS参数配置确定承载和numerology的对应关系;
Alt4:网络侧设备通过广播或者专用信令为终端配置QoS和numerology的对应关系;
终端根据承载的QoS参数以及QoS和numerology的对应关系,确定承载 和numerology的对应关系;
Alt5:网络侧设备在于终端建立承载时配置对应的网络切片标识;
终端根据网络切片和numerology的对应关系,确定承载和numerology的对应关系;
Alt6:终端根据在承载建立时配置的QoS参数确定网络切片标识,再根据网络切片标识和numerology的对应关系(预配置或由网络侧设备广播或者用专用信令配置),确定承载和numerology的对应关系。
步骤4:终端基于numerology组织PDU。
假设仍然采用4层用户面协议栈,即由MAC层组织递交给底层的PDU,该PDU这里称为MAC PDU(如果后续协议栈有优化,那么该PDU名称也可能会变化,这里的PDU指的是物理层紧邻的高层PDU)。
针对该numerology对应的UL grant按照如下过程进行PDU组包:
Step1:终端将该numerology对应的所有承载的对应关系按照承载的优先级排序,并根据每个承载对应的PBR进行第一轮资源分配;
Step2:终端经过第一轮资源分配,如果还有剩余资源,则按照step 1确定的优先级进行第二轮资源分配。
第二轮资源分配是为每个承载的全部剩余数据分配资源,直到所有承载剩余数据都分配好资源或者该numerology对应的UL grant的所有资源都耗尽为止。
实施例3:
步骤1:终端确定numerology和物理层配置的对应关系。
为了能够保证终端可以采用正确的numerology进行数据传输,终端会提前获知numerology对应的各种物理层参数配置。
在实施中,numerology对应的物理层参数可以在协议中约定;也可以由网络侧设备通过广播或者专用信令通知给终端。
步骤2:终端接收网络侧的上行链路调度信令。
终端根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或 者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的对应关系,确定numerology和上行链路调度信令之间的对应关系。
步骤3:终端确定numerology和承载的对应关系。
在实施中,终端可以通过但不限于通过如下方式之一获取numerology和承载之间的对应关系:
Alt1:在承载建立时,预配置承载和numerology的对应关系;
Alt2:通过上行链路调度信令(比如PDCCH)携带承载和numerology的对应关系;
Alt3:通过上行链路调度信令(比如PDCCH)携带QoS和numerology的对应关系,终端根据承载的QoS参数配置确定承载和numerology的对应关系;
Alt4:网络侧设备通过广播或者专用信令为终端配置QoS和numerology的对应关系;
终端根据承载的QoS参数以及QoS和numerology的对应关系,确定承载和numerology的对应关系;
Alt5:网络侧设备在于终端建立承载时配置对应的网络切片标识;
终端根据网络切片和numerology的对应关系,确定承载和numerology的对应关系;
Alt6:终端根据在承载建立时配置的QoS参数确定网络切片标识,再根据网络切片标识和numerology的对应关系(预配置或由网络侧设备广播或者用专用信令配置),确定承载和numerology的对应关系。
步骤4:终端基于numerology组织PDU。
假设仍然采用4层用户面协议栈,即由MAC层组织递交给底层的PDU,该PDU这里称为MAC PDU(如果后续协议栈有优化,那么该PDU名称也可能会变化,这里的PDU指的是物理层紧邻的高层PDU)。
针对该numerology对应的UL grant按照如下过程进行PDU组包:
Step1:终端将该numerology对应的所有承载的对应关系按照承载的优先级排序,并根据每个承载对应的PBR进行第一轮资源分配;
Step2:终端经过第一轮资源分配,如果还有剩余资源,则按照step 1确定的优先级进行第二轮资源分配。
第二轮资源分配是为每个承载的全部剩余数据分配资源,直到所有承载剩余数据都分配好资源或者该numerology对应的UL grant的所有资源都耗尽为止。
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发明进行各种改动和变型而不脱离本发明的精神和范围。这样,倘若本发明的这些修改和变型属于本发明权利要求及其等同技术的范围之内,则本发明也意图包含这些改动和变型在内。

Claims (26)

  1. 一种进行上行数据操作的方法,其特征在于,该方法包括:
    终端根据基带参数numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;
    所述终端根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;
    所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
  2. 如权利要求1所述的方法,其特征在于,所述承载为无线承载或者逻辑信道。
  3. 如权利要求1所述的方法,其特征在于,该方法还包括:
    所述终端根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
  4. 如权利要求3所述的方法,其特征在于,所述终端通过下列方式中的部分或全部确定网络侧设备配置的所述第一对应关系:
    所述终端根据网络侧设备配置的上行链路调度信令中携带的numerology标识确定所述第一对应关系;
    所述终端根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系;
    所述终端根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系;
    所述终端根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关 系。
  5. 如权利要求3所述的方法,其特征在于,所述终端通过下列方式中的部分或全部确定网络侧设备配置的所述第二对应关系:
    所述终端在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系;
    所述终端确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二对应关系;
    所述终端根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系;
    所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系;
    所述终端根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系;
    所述终端根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
  6. 如权利要求1所述的方法,其特征在于,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作,包括:
    所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配和组织上行数据包。
  7. 如权利要求6所述的方法,其特征在于,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配,包括:
    所述终端根据该numerology对应的承载的优先级确定分配顺序;
    所述终端根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
    所述终端在为每个承载分配完资源后,判断是否满足分配条件;
    如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
    其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
  8. 如权利要求1~7任一所述的方法,其特征在于,所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作之前,还包括:
    所述终端根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系;
    所述终端根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作,包括:
    所述终端根据所述第八对应关系确定物理层参数;
    所述终端根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
  9. 一种进行资源分配的方法,其特征在于,该方法包括:
    网络侧设备确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;
    所述网络侧设备向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
  10. 如权利要求9所述的方法,其特征在于,所述第一配置信息包括下列信息中的部分或全部:
    numerology标识;
    上行链路调度信令对应的物理资源;
    上行链路调度信令对应的上行数据传输资源对应的物理资源;
    上行链路调度信令对应的网络切片标识
    上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
  11. 如权利要求9所述的方法,其特征在于,所述第二配置信息包括下列信息中的部分或全部:
    所述第二对应关系;
    numerology和网络切片标识的第四对应关系;
    QoS参数和numerology的第五对应关系;
    承载和QoS参数的第六对应关系;
    QoS参数和网络切片标识的第七对应关系;
    网络切片标识。
  12. 如权利要求9~11任一所述的方法,其特征在于,所述方法还包括:
    所述网络侧设备通过广播或专用信令为所述终端配置numerology的参数,以使所述终端根据所述numerology的参数通过分配的资源进行数据传输。
  13. 一种进行上行数据操作的终端,其特征在于,该终端包括:
    信令确定模块,用于根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;
    信息确定模块,用于根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;
    处理模块,用于根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
  14. 如权利要求13所述的终端,其特征在于,所述承载为无线承载或者逻辑信道。
  15. 如权利要求13所述的终端,其特征在于,所述处理模块还用于:
    根据网络侧设备的配置,确定所述第一对应关系和/或第二对应关系。
  16. 如权利要求15所述的终端,其特征在于,所述处理模块具体用于, 通过下列方式中的部分或全部确定网络侧设备配置的所述第一对应关系:
    根据网络侧设备配置的上行链路调度信令中携带的numerology标识确定所述第一对应关系;
    根据网络侧设备配置的上行链路调度信令对应的物理资源或者上行链路调度信令对应的上行数据传输资源对应的物理资源,以及numerology和上行链路调度信令或者上行数据传输的物理资源的第三对应关系,确定所述第一对应关系;
    根据网络侧设备配置的上行链路调度信令对应的网络切换片标识或者上行链路调度信令对应的上行数据传输资源对应的网络切换片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系;
    根据网络侧设备配置的上行链路调度信令中携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第一对应关系。
  17. 如权利要求15所述的终端,其特征在于,所述处理模块具体用于,通过下列方式中的部分或全部确定网络侧设备配置的所述第二对应关系:
    在承载建立时确定网络侧设备配置的承载和numerology的第二对应关系;
    确定网络侧设备通过上行链路调度信令配置的承载和numerology的第二对应关系;
    根据网络侧设备配置的上行链路调度信令中携带的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定确定所述第二对应关系;
    根据网络侧设备通过广播或者专用信令通知的QoS参数和numerology的第五对应关系,以及终端承载建立时配置的承载和QoS参数的第六对应关系确定所述第二对应关系;
    根据承载建立时携带的网络切片标识,以及numerology和网络切片标识的第四对应关系,确定所述第二对应关系;
    根据网络侧设备通过广播或者专用信令通知的QoS参数和网络切片标识的第七对应关系,以及终端承载建立时配置的承载的QoS参数,以及网络侧 设备通过广播或专用信令配置的numerology和网络切片标识的第四对应关系,确定所述第二对应关系。
  18. 如权利要求13所述的终端,其特征在于,所述处理模块具体用于:
    根据确定的numerology对应的上行链路调度信令以及numerology对应的承载进行资源分配和组织上行数据包。
  19. 如权利要求18所述的终端,其特征在于,所述处理模块具体用于:
    根据该numerology对应的承载的优先级确定分配顺序;
    根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源;
    在为每个承载分配完资源后,判断是否满足分配条件;
    如果不满足,则根据分配顺序,按照每个承载的PBR从上行链路调度信令对应的未分配的资源中为每个承载分配资源,直到满足分配条件;
    其中,所述分配条件为所有承载的数据都分配资源或资源耗尽。
  20. 如权利要求13~19任一所述的终端,其特征在于,所述处理模块具体用于:
    根据协议约定或者网络侧设备通过广播或专用信令的配置,确定numerology和物理层参数的第八对应关系;
    根据所述第八对应关系确定物理层参数;
    根据确定的物理层参数、numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作。
  21. 一种进行资源分配的网络侧设备,其特征在于,该网络侧设备包括:
    配置确定模块,用于确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;
    传输模块,用于向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作。
  22. 如权利要求21所述的网络侧设备,其特征在于,所述第一配置信息包括下列信息中的部分或全部:
    numerology标识;
    上行链路调度信令对应的物理资源;
    上行链路调度信令对应的上行数据传输资源对应的物理资源;
    上行链路调度信令对应的网络切片标识
    上行链路调度信令对应的上行数据传输资源对应的网络切换片标识。
  23. 如权利要求21所述的网络侧设备,其特征在于,所述第二配置信息包括下列信息中的部分或全部:
    所述第二对应关系;
    numerology和网络切片标识的第四对应关系;
    QoS参数和numerology的第五对应关系;
    承载和QoS参数的第六对应关系;
    QoS参数和网络切片标识的第七对应关系;
    网络切片标识。
  24. 如权利要求21~23任一所述的网络侧设备,其特征在于,所述传输模块还用于:
    通过广播或专用信令为所述终端配置numerology的参数,以使所述终端根据所述numerology的参数通过分配的资源进行数据传输。
  25. 一种终端,其特征在于,包括:
    处理器,用于读取存储器中的程序,执行下列过程:
    根据numerology和上行链路调度信令的第一对应关系,确定网络侧为终端配置的numerology对应的上行链路调度信令;根据numerology和承载的第二对应关系,确定网络侧为终端配置的numerology对应的承载;根据确定的numerology对应的上行链路调度信令以及numerology对应的承载,进行上行数据操作;
    收发机,用于在处理器的控制下接收和发送数据。
  26. 一种网络侧设备,其特征在于,包括:
    处理器,用于读取存储器中的程序,执行下列过程:
    确定第一配置信息和第二配置信息;其中所述第一配置信息用于确定numerology和上行链路调度信令的第一对应关系,所述第二配置信息用于确定numerology和承载的第二对应关系;通过收发机向终端发送所述配置信息,以使所述终端根据所述第一对应关系确定上行链路调度信令以及根据所述第二对应关系确定承载,并根据所述承载和所述承载进行上行数据操作;
    收发机,用于在处理器的控制下接收和发送数据。
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EP3518598A1 (en) 2019-07-31
US20200037344A1 (en) 2020-01-30
CN107872897A (zh) 2018-04-03
CN107872897B (zh) 2020-03-24
KR102212432B1 (ko) 2021-02-03
JP6845310B2 (ja) 2021-03-17
US10708939B2 (en) 2020-07-07

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