WO2020030049A1 - 信息元素的传输方法及装置、信息传输方法及装置 - Google Patents

信息元素的传输方法及装置、信息传输方法及装置 Download PDF

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Publication number
WO2020030049A1
WO2020030049A1 PCT/CN2019/099809 CN2019099809W WO2020030049A1 WO 2020030049 A1 WO2020030049 A1 WO 2020030049A1 CN 2019099809 W CN2019099809 W CN 2019099809W WO 2020030049 A1 WO2020030049 A1 WO 2020030049A1
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uplink
uplink information
priority
index
spatial relationship
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PCT/CN2019/099809
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English (en)
French (fr)
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高波
李儒岳
鲁照华
姚珂
张淑娟
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中兴通讯股份有限公司
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Priority to US17/265,609 priority Critical patent/US11595829B2/en
Priority to EP19846131.1A priority patent/EP3836674A4/en
Publication of WO2020030049A1 publication Critical patent/WO2020030049A1/zh

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W16/00Network planning, e.g. coverage or traffic planning tools; Network deployment, e.g. resource partitioning or cells structures
    • H04W16/24Cell structures
    • H04W16/28Cell structures using beam steering
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L5/00Arrangements affording multiple use of the transmission path
    • H04L5/0091Signaling for the administration of the divided path
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/0404Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas the mobile station comprising multiple antennas, e.g. to provide uplink diversity
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/0628Diversity capabilities
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0686Hybrid systems, i.e. switching and simultaneous transmission
    • H04B7/0695Hybrid systems, i.e. switching and simultaneous transmission using beam selection
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0446Resources in time domain, e.g. slots or frames
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/0453Resources in frequency domain, e.g. a carrier in FDMA
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/04Wireless resource allocation
    • H04W72/044Wireless resource allocation based on the type of the allocated resource
    • H04W72/046Wireless resource allocation based on the type of the allocated resource the resource being in the space domain, e.g. beams
    • 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
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W72/00Local resource management
    • H04W72/50Allocation or scheduling criteria for wireless resources
    • H04W72/56Allocation or scheduling criteria for wireless resources based on priority criteria
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/002Transmission of channel access control information
    • H04W74/004Transmission of channel access control information in the uplink, i.e. towards network
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W74/00Wireless channel access
    • H04W74/08Non-scheduled access, e.g. ALOHA
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/0413MIMO systems
    • H04B7/0456Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting
    • H04B7/046Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting taking physical layer constraints into account
    • H04B7/0469Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting taking physical layer constraints into account taking special antenna structures, e.g. cross polarized antennas into account
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/06Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
    • H04B7/0613Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
    • H04B7/0615Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
    • H04B7/0619Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
    • H04B7/0621Feedback content
    • H04B7/063Parameters other than those covered in groups H04B7/0623 - H04B7/0634, e.g. channel matrix rank or transmit mode selection

Definitions

  • This application relates to, but is not limited to, the field of communications, and in particular, to a method and device for transmitting information elements, and a method and device for transmitting information.
  • the ultra-wide bandwidth high-frequency band (namely, millimeter wave communication) has become an important direction for the development of mobile communications in the future, attracting the attention of academia and industry worldwide.
  • the advantages of millimeter waves have become increasingly attractive.
  • standards organizations such as the Institute of Electrical and Electronic Engineers (Electronic and Electronic Engineers, IEEE) 3rd Generation Partnership Project (3rd Generation, Partnership Project, 3GPP) have begun to start the corresponding standardization work.
  • 3rd Generation, Partnership Project, 3GPP 3rd Generation, Partnership Project, 3GPP
  • high-frequency communication will become an important innovation point of the fifth generation of mobile communication technology (5th Generation, New Access Technology) with its significant advantages of large bandwidth. .
  • each antenna panel can generate multiple beams.
  • the user equipment (UE) terminal There is a similar situation for the user equipment (UE) terminal. Therefore, an analog domain and a digital domain must be provided. Receiving method of reference signal, data channel and control channel in multiple beams under mixed conditions.
  • the embodiments of the present application provide a method and an apparatus for transmitting information elements, and an information transmission method and apparatus, so as to at least solve the problem of collision when transmitting uplink information elements in the related art.
  • a method for transmitting an information element includes: a first communication node receiving spatial relationship information configured for a plurality of uplink information elements transmitted by a second communication node; The spatial relationship information transmits the plurality of uplink information elements.
  • an information transmission method including: determining, by a second communication node, spatial relationship information configured for multiple uplink information elements of the first communication node; and transmitting the spatial relationship information to all The first communication node is described.
  • an apparatus for transmitting an information element including: a receiving module configured to receive spatial relationship information configured for a plurality of uplink information elements transmitted by a second communication node; a first transmission module For transmitting the plurality of uplink information elements according to the spatial relationship information.
  • an information transmission device including: a determining module, configured to determine spatial relationship information configured for multiple uplink elements of the first communication node; and a second transmission module, configured to: Transmitting the spatial relationship information to the first communication node.
  • a terminal including: a communication device configured to receive spatial relationship information configured for multiple uplink information elements transmitted by a second communication node; and a processor configured to The spatial relationship information transmits the plurality of uplink information elements.
  • a storage medium stores a computer program, and the computer program is configured to execute the steps in any one of the foregoing method embodiments when running.
  • an electronic device which includes a memory and a processor.
  • the memory stores a computer program
  • the processor is configured to run the computer program to execute any one of the foregoing. Steps in a method embodiment.
  • the first communication node receives the spatial relationship information configured for multiple uplink information elements transmitted by the second communication node, and transmits multiple uplink information elements based on the spatial relationship information.
  • the above technical solution is adopted and the second communication node configuration is adopted.
  • the transmission of uplink information elements by spatial relationship information solves the problem of collision when transmitting uplink information elements in related technologies.
  • the second communication node uniformly sets the transmitted spatial relationship information, which reduces collisions between uplink information elements and provides transmission and reception. End and antenna resource utilization efficiency.
  • FIG. 1 is a block diagram of a hardware structure of a mobile terminal according to an embodiment of the present application
  • FIG. 2 is a flowchart of a method for transmitting an information element according to an embodiment of the present application
  • FIG. 4 is a schematic diagram of an embodiment of uplink multi-beam transmission according to the present application.
  • 5 is a schematic diagram of an embodiment of a physical layer uplink shared channel + physical layer uplink control channel spatial relationship information collision
  • FIG. 6 is a schematic diagram of another embodiment of collision of spatial relationship information of a physical layer uplink shared channel + a physical layer uplink control channel of the present application;
  • FIG. 7 is a schematic diagram of an embodiment of a sounding reference signal + physical layer uplink control channel spatial relationship information collision involved in this application;
  • FIG. 8 is a schematic diagram of an embodiment of spatial relationship information collision during scheduled and scheduling-free transmission according to this application.
  • An embodiment of the present application provides a mobile communication network (including but not limited to a 5G mobile communication network), and a network architecture of the network may include a network side device (for example, a base station) and a terminal.
  • a network side device for example, a base station
  • This embodiment provides an information transmission method that can be run on the above network architecture. It should be noted that the operating environment of the above information transmission method provided in the embodiment of the present application is not limited to the above network architecture.
  • FIG. 1 is a block diagram of a hardware structure of a mobile terminal in a method for transmitting information elements according to an embodiment of the present application.
  • the mobile terminal 10 may include one or more (only one is shown in FIG. 1) a processor 102 (the processor 102 may include but is not limited to a microprocessor (Microcontroller Unit, MCU) or a programmable logic device (Field, Programmable, Array, FPGA, etc.) and a memory 104 for storing data.
  • MCU microprocessor
  • FPGA programmable logic device
  • the mobile terminal may further include a transmission device 106 and an input / output device 108 for communication functions.
  • a transmission device 106 and an input / output device 108 for communication functions.
  • the structure shown in FIG. 1 is only a schematic, and it does not limit the structure of the mobile terminal.
  • the mobile terminal 10 may further include more or fewer components than those shown in FIG. 1, or have a different configuration from that shown in FIG. 1.
  • the memory 104 may be used to store software programs and modules of application software, such as program instructions / modules corresponding to information element transmission methods in the embodiments of the present application.
  • the processor 102 executes the software programs and modules stored in the memory 104 to execute Various functional applications and data processing implement the methods described above.
  • the memory 104 may include a high-speed random access memory, and may further include a non-volatile memory, such as one or more magnetic storage devices, a flash memory, or other non-volatile solid-state memory.
  • the memory 104 may further include a memory remotely disposed with respect to the processor 102, and these remote memories may be connected to the mobile terminal 10 through a network. Examples of the above networks include, but are not limited to, the Internet, an intranet, a local area network, a mobile communication network, and combinations thereof.
  • the transmission device 106 is used for receiving or transmitting data via a network.
  • a specific example of the above network may include a wireless network provided by a communication provider of the mobile terminal 10.
  • the transmission device 106 includes a network adapter (Network Interface Controller, NIC), which can be connected to other network devices through a base station so as to communicate with the Internet.
  • the transmission device 106 may be a radio frequency (RF) module, which is used to communicate with the Internet in a wireless manner.
  • RF radio frequency
  • FIG. 2 is a flowchart of a method for transmitting an information element according to an embodiment of the present application. As shown in FIG. 2, the process includes the following steps:
  • Step S202 The first communication node receives the spatial relationship information configured for the multiple uplink information elements transmitted by the second communication node;
  • the first communication node may be a terminal, and the second communication node may be a base station, but is not limited thereto.
  • Step S204 Transmit the multiple uplink information elements according to the spatial relationship information.
  • the first communication node receives the spatial relationship information configured for the multiple uplink information elements transmitted by the second communication node, and transmits multiple uplink information elements based on the spatial relationship information.
  • the above technical solution is adopted according to the configuration of the second communication node.
  • the transmission of uplink information elements by spatial relationship information solves the problem of collision when transmitting uplink information elements in related technologies.
  • the second communication node uniformly sets the transmitted spatial relationship information, which reduces collisions between uplink information elements and provides transmission and reception. End and antenna resource utilization efficiency.
  • the uplink information element includes at least one of the following: an uplink reference signal, an uplink data channel, and an uplink control channel.
  • the spatial relationship information includes at least one of the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the spatial relationship information of the uplink control channel configuration is not limited to the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the plurality of uplink information elements have at least one of the following characteristics:
  • Transmitting the multiple uplink information elements simultaneously can also be understood as sending multiple uplink information elements simultaneously;
  • the multiple uplink information elements are associated with the same time unit
  • the time units associated with the multiple uplink information elements partially or completely overlap
  • the time unit is an orthogonal frequency division multiplexing (OFDM) symbol, or a sub-orthogonal frequency division multiplexing (sub-OFDM) symbol, or a slot.
  • OFDM orthogonal frequency division multiplexing
  • sub-OFDM sub-orthogonal frequency division multiplexing
  • transmitting the plurality of uplink information elements according to the spatial relationship information includes:
  • Processing the plurality of uplink information elements according to a priority criterion includes at least one of the following:
  • the spatial relationship of the low-priority uplink information elements is covered into a specific spatial relationship
  • Low-priority uplink information elements are transmitted using specific spatial filters
  • the spatial relationship of all uplink information elements is transmitted using a specific spatial filter
  • the parameter X is an integer.
  • the parameter X of the uplink information element includes at least one of the following:
  • the uplink information element is associated with the number of different packets.
  • the number of packets associated with the uplink information element may have the same meaning.
  • the parameter X of the uplink information element includes at least one of the following:
  • the number of spatial filters associated with the uplink information element is the number of spatial filters associated with the uplink information element
  • the uplink information element is associated with the maximum number of spatial filters of the same packet.
  • the parameter X is less than or equal to the threshold.
  • the specific spatial relationship includes at least one of the following:
  • the lowest index, the highest index, or the spatial relationship associated with the P predefined indexes the lowest index, the highest index, or the spatial relationship associated with the P predefined indexes
  • the preset index includes at least one of the following: a cell index, a carrier index, a Bandwidth Part (BWP) index, a control channel resource set index, and a control channel resource index;
  • BWP Bandwidth Part
  • N, M, and P are positive integers greater than or equal to 1.
  • the spatial relationship association grouping index Y of the low-priority uplink information element wherein,
  • the number of spatial relationships associated with the grouping index Y is greater than the threshold
  • the number of different spatial relationships associated with the grouping index Y is greater than the threshold
  • Y is an integer.
  • the specific spatial filter includes at least one of the following:
  • the lowest index, the highest index, or the spatial filters of specific R predefined indexes are Among the preset indexes associated with the low-priority uplink information elements, the lowest index, the highest index, or the spatial filters of specific R predefined indexes;
  • the lowest index, the highest index, or a spatial filter associated with a specific S predefined index is Among the preset indexes associated with the packet association associated with the low-priority uplink information element, the lowest index, the highest index, or a spatial filter associated with a specific S predefined index;
  • a reference filter and a spatial filter associated with the reference signal in the spatial relationship information with the low priority uplink information element
  • the preset index includes at least one of the following: a cell index, a carrier index, a bandwidth part BWP index, a control channel resource set index, and a control channel resource index;
  • R, Q, and S are positive integers greater than or equal to 1.
  • the spatial filter associated packet index W of the low-priority uplink information element where:
  • the number of spatial filters associated with the packet index W is greater than the threshold
  • the number of different spatial filters associated with the packet index W is greater than the threshold
  • W is an integer.
  • the threshold includes one of the following: 1, 2, 3, 4.
  • the threshold is determined according to the capability information and / or configuration information of the first communication node, wherein the configuration information is configured by the second communication node.
  • the priority criterion includes at least one of the following:
  • the uplink data channel has priority over the uplink reference signal
  • the uplink data channel has priority over the uplink control channel
  • the multi-slot uplink data channel takes precedence over the uplink control channel
  • the multi-slot uplink data channel takes precedence over the uplink reference signal
  • the uplink reference signal has priority over the uplink control channel
  • the scheduling-based uplink data channel takes precedence over the scheduling-free uplink data channel
  • the information elements under the primary cell or the primary carrier take precedence over the information elements under the secondary cell or the secondary carrier.
  • the priority criterion includes at least one of the following:
  • the uplink control channel has priority over the uplink reference signal
  • the uplink control channel has priority over the uplink data channel
  • the uplink reference signal has priority over the uplink data channel
  • the scheduling-free uplink data channel takes precedence over the scheduling-based uplink data channel.
  • the priority criterion includes at least one of the following:
  • Aperiodic uplink information elements take precedence over periodic uplink information elements
  • Aperiodic uplink information elements take precedence over semi-continuous uplink information elements
  • the semi-continuous uplink information element takes precedence over the periodic uplink information element.
  • the priority criterion includes at least one of the following:
  • a priority of the uplink information element is determined by using a Bandwidth Part (BWP) index, a carrier index, or a cell index.
  • BWP Bandwidth Part
  • FIG. 3 is a flowchart of an information transmission method according to the application document. As shown in FIG. 3, the method includes the following steps:
  • Step S302 The second communication node determines spatial relationship information configured for multiple uplink information elements of the first communication node.
  • Step S304 transmitting the spatial relationship information to the first communication node.
  • the above technical solution is adopted to solve the problem of collision when transmitting uplink information elements in the related technology.
  • the spatial relationship information transmitted by the second communication node is uniformly set, which reduces collisions between the uplink information elements, and provides the transceiver end and antenna resources Utilization efficiency.
  • the second communication node receives the uplink information element transmitted by the first communication node according to the spatial relationship information.
  • the uplink information element includes at least one of the following: an uplink reference signal, an uplink data channel, and an uplink control channel.
  • the spatial relationship information includes at least one of the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the spatial relationship information of the uplink control channel configuration is not limited to the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the plurality of uplink information elements have at least one of the following characteristics: the plurality of uplink information elements are transmitted simultaneously; the plurality of uplink information elements are associated with the same time unit; The associated time units are partially or completely overlapped; wherein, the time units are orthogonal frequency division multiplexed OFDM symbols, or sub-orthogonal frequency division multiplexed sub-OFDM symbols, or subframe slots.
  • the analog beam is assumed to not collide, but with the increase of antenna panels at the UE and the base station, different spatial relationships or different uplink transmission space filters are used. Channels and reference signals can be sent simultaneously under different antenna panels, so guidelines need to be formulated to release the flexibility of base station scheduling.
  • a constraint method for the spatial relationship configuration of uplink reference signals, uplink control channels, and uplink data channels and a training method for multiple antenna panels are formulated.
  • the capability information of the terminal UE in this application document, also referred to as the first communication node
  • the configuration information of the base station in this application document, also referred to as the second communication node
  • a method for reasonably avoiding conflicts and a back-off criterion for the first communication node at the time of conflict collision are provided.
  • a combination of uplink reference signals or channel collisions may occur as follows:
  • PUCCH Physical uplink control channel + PUCCH
  • PUSCH Physical uplink shared channel + PUSCH
  • PUCCH + PUCCH and PUCCH + PUSCH only occur when they come from different cell groups, and the remaining combinations may be signal or channel collisions between different cells, or may be signal or channel collisions of the same cell.
  • the grouping includes at least one of the following: group A grouping, group B grouping, and group C grouping.
  • the type A group is called an antenna panel, or a panel, or an antenna array
  • the type B group is called a sub-antenna panel, or a sub-panel, or a sub-antenna array
  • the type C group is This is called beam grouping.
  • the grouping criterion of the group A includes at least one of the following:
  • the grouping criteria of the group A include at least one of the following
  • # 5 packet includes E type B packets
  • E is an integer greater than or equal to 1.
  • the grouping criterion of the type B group includes at least one of the following:
  • the grouping criteria of the group C group includes at least one of the following:
  • Reference signals or channels associated with the same packet can be sent simultaneously, or reference signals or channels with different spatial relationships or different spatial filters associated with the same packet can be sent simultaneously;
  • the reference signals or channels associated with the same packet can be received simultaneously, or the reference signals or channels associated with the same packet with different spatial relationships or different spatial filters can be received simultaneously.
  • the capability information includes at least one of the following:
  • # 1 the number of type A packets of the first communication node
  • # 3 send the number of uplink information elements simultaneously, or the maximum number of simultaneous uplink information elements
  • # 4 the number of uplink reference signal resource sets used for beam management, or the maximum number of uplink reference signal resource sets used for beam management;
  • # 5 simultaneously receive the number of downlink information elements, or the maximum number of simultaneous downlink information elements
  • # 6 The number of channel feature assumptions of the downlink information element received simultaneously, or the maximum number of channel feature assumptions of the downlink information element received simultaneously;
  • # 7 Simultaneously receive the number of downlink information elements hypothesized with different channel characteristics, or, simultaneously, receive the maximum number of downlink information elements with different channel characteristic assumptions;
  • # 8 The number or maximum number of uplink demodulation reference signal (DMRS) port groups, or, in the joint transmission mode, the number or maximum number of uplink DMRS port groups;
  • DMRS uplink demodulation reference signal
  • # 9 The number or maximum number of PUCCH groups, or the number or maximum number of cell groups;
  • # 12 Supports capability information for multiple DMRS groups.
  • the configuration information of the second communication node includes at least one of the following:
  • # 3 The number of the B-th packet under the A-type packet of the second communication node
  • # 4 The number of spatial relationships of uplink information elements sent simultaneously, or the maximum number of spatial relationships of uplink information elements sent simultaneously;
  • # 7 the number or maximum number of uplink DMRS port groups, or, in the joint transmission mode, the number or maximum number of uplink DMRS port groups;
  • # 8 The number or maximum number of PUCCH groups, or the number or maximum number of cell groups;
  • the uplink reference signal in this application document includes at least one of the following:
  • SRS Sounding reference signal
  • DMRS Demodulation reference signal
  • the downlink reference signal in this application document is at least one of the following:
  • CSI-RS Channel state information reference signal
  • DMRS Downlink demodulation reference signal
  • CSI-RS Channel state information reference signal for tracking
  • Spatial relationship also known as spatial relationship information, carries one or more reference reference signals (reference RSs) to represent or indicate the uplink space of the associated reference signal or channel (also referred to as the target reference signal or target channel). filter.
  • reference RSs reference reference signals
  • a reference signal or channel (also referred to as a target reference signal or a target channel) is configured with spatial relationship information, and the UE determines an uplink spatial filter of the reference signal or channel.
  • the different spatial relationships refer to different reference signals (reference RSs) in a spatial relationship associated with multiple reference signals or channels.
  • reference RSs reference signals
  • the same spatial relationship refers to that a reference reference signal in a spatial relationship associated with multiple reference signals or channels is the same or the same as the reference signal itself.
  • the reference signal under the associated spatial relationship is a reference reference signal in which one or more spatial relationship information is nested.
  • the reference signal (reference RS) is composed of at least one of the following: a reference signal resource index, a reference signal set index, a reference signal configuration index, or a grouping index.
  • Channel characteristics assumptions can be: Quasi Co-location (QCL), spatial QCL, Transmission Configuration Indication (TCI), spatial filter information, antenna group information, reference One or more of a set of signals.
  • the quasi co-location is composed of one or more reference reference signals (reference RS) and quasi-co-location parameters associated with the reference reference signal, and the involved quasi-co-location parameters include at least one or a combination of the following: Spread, Doppler shift, delay spread, average delay, average gain, and spatial parameters; further, the spatial parameters may include spatial reception parameters, such as angle of arrival, spatial correlation of the received beam, average delay, time-frequency Correlation of channel response (including phase information), etc.
  • the quasi co-location is composed of one or more reference reference signal sets, and each reference reference signal set includes one or more reference reference signals (reference RS) and quasi co-location parameters associated with the reference reference signals.
  • the spatial filter information may be the spatial filter configuration information that the base station wants the UE to implement, or may be the spatial filter configuration information of the base station itself;
  • the channel characteristic assumptions are different, and only the differences in spatial parameters may be considered, that is, if two RSs are included in the TCI, only whether the reference RS associated with the spatial parameter is the same is used as a judgment. Same or not.
  • the reference signal (reference RS) is composed of at least one of the following: a reference signal resource index, a reference signal set index, a reference signal configuration index, or a grouping index.
  • the beam may be a resource (for example, a spatial filter at the transmitting end, a spatial filter at the receiving end, precoding at the transmitting end, precoding at the receiving end, antenna port, antenna weight vector, antenna weight matrix, etc.), and the beam number may be replaced with Resource index (such as reference signal resource index), because the beam can be bound to some time-frequency code resources for transmission.
  • the beam may also be a transmission (transmit / receive) mode; the transmission mode may include space division multiplexing, frequency domain / time domain diversity, and the like.
  • This application document provides a method for sending an uplink information element, which is applied to a first communication node.
  • the method includes the following steps:
  • the information element includes at least one of the following: A1 reference signals, A2 data channels, and A3 control channels.
  • A1, A2, and A3 are integers greater than or equal to 1.
  • the spatial relationship information configured by the uplink element includes at least one of the following:
  • Spatial relationship information configured by an uplink reference signal associated with the uplink data channel, and spatial relationship information configured by an uplink control channel associated with the uplink data channel.
  • the uplink information element has at least one of the following characteristics:
  • the time unit is an OFDM symbol, or a sub-OFDM symbol, or a slot.
  • the parameter X of the information element is greater than the threshold, according to the priority criterion, it includes at least one of the following:
  • the parameter X of the information element includes at least one of the following:
  • # 1 the number of spatial relationships of the information elements, or the number of different spatial relationships of the information elements
  • parameter X of the information element includes at least one of the following:
  • # 1 the number of spatial filters associated with the information element, or the number of different spatial filters of the information element
  • # 2 Under the information element, associate the number of spatial filters of the same packet, or associate the number of spatial filters of the same packet;
  • the parameter X may be made smaller than or equal to the threshold.
  • the threshold includes one of the following: 1, 2, 3, 4, and / or the threshold is determined by the capability information of the first information node and / or the configuration information of the second communication node.
  • # 2 The spatial relationship of the lowest, highest, or specific N indexes under the preset index, or the spatial relationship of the main carrier or cell index;
  • # 3 The spatial relationship of the lowest, highest, or specific N indexes under the preset index associated with the low priority element, or the spatial relationship of the primary carrier or the primary cell associated with the low priority element;
  • # 5 The spatial relationship associated with the primary carrier or primary cell associated with the packet associated with the low priority element
  • # 6 is associated with the spatial relationship of the high priority element of the same group with the low priority element
  • the preset index includes at least one of the following: a cell index, a carrier index, a bandwidth part BWP index, a control channel resource set index, and a control channel resource index;
  • N is a positive integer greater than or equal to 1.
  • the spatial relationship of the low-priority element is associated with the grouping index X.
  • the number of spatial relationships associated with the grouping index X is greater than the threshold, or, under the information element, the number of different spatial relationships associated with the grouping index X is greater than the threshold.
  • the spatial filter in the above application document includes at least one of the following:
  • # 3 The spatial filter of the lowest, highest, or specific N indexes under the preset index associated with the low priority element, or the spatial filter of the main carrier or the main cell associated with the low priority element;
  • the preset index includes at least one of the following: a cell index, a carrier index, a bandwidth part BWP index, a control channel resource set index, and a control channel resource index;
  • N is a positive integer greater than or equal to 1.
  • the spatial filter of the low-priority element is associated with a grouping index X.
  • the number of spatial filters associated with the grouping index X is greater than the threshold, or, under the information element, the number of different spatial filters associated with the grouping index X is greater than the threshold.
  • # 3 uplink reference signal which has priority over the uplink control channel
  • the scheduling-based uplink data channel takes precedence over the scheduling-free uplink data channel.
  • the priority criteria include at least one of the following:
  • the scheduling-free uplink data channel takes precedence over the scheduling-based uplink data channel.
  • the priority criteria include at least one of the following:
  • the priority criteria include at least one of the following:
  • # 3 Determine the priority by the type or serial number of the RNTI
  • # 4 Use BWP index, carrier index or cell index to determine priority.
  • the lowest index or the highest index or the specific index has a high priority.
  • FIG. 4 is a schematic diagram of an embodiment of uplink multi-beam transmission according to the present application.
  • the UE in the uplink transmission, the UE has two panels and can simultaneously send two beams from different panels, which is called panel- a and panel-b.
  • panel- a and panel-b From the perspective of grouping, there are two Type A groupings at the UE.
  • the grouping rules are as follows:
  • Reference signals or channels associated with different packets can be sent simultaneously;
  • Panel-a also called UE Antenna Group-a (UAG-a)
  • UAG-a UE Antenna Group-a
  • Link-0 is constructed by using Beam-2 on the UE side and Beam-b on the base station side
  • Link-2 is built by using Beam-3 on the UE side and Beam-a on the base station side.
  • Link-1 and Link-0 / 2 can be transmitted simultaneously, but Link-0 and Link-2 cannot be transmitted simultaneously.
  • the beam corresponds to a reference signal index.
  • FIG. 5 is a schematic diagram of an embodiment of a physical layer uplink shared channel + physical layer uplink control channel spatial relationship information collision embodiment of the present application.
  • Pcell and Scell considering a scenario of Pcell and Scell transmission, Pcell and Scell in Slot- ⁇ n ⁇ and When Slot- ⁇ n + 1 ⁇ , different UAGs are associated respectively. In this way, the scheduled transmission of the Pcell and the Scell will not cause a conflict exceeding the capabilities of the UE. Therefore, both Pcell and Scell can transmit uplink control channels and data channels according to their respective configurations.
  • PUSCH Physical layer uplink shared channel
  • PUCCH physical layer uplink control channel
  • FIG. 6 is a schematic diagram of another embodiment of a physical layer uplink shared channel + physical layer uplink control channel spatial relationship information collision in this application.
  • PUSCH-1 and PUSCH-2 under Pcell use the same spatial relationship information as PUSCH-1 and PUSCH-2 under Scell, that is, no collision occurs, so the transmission can proceed normally.
  • PUCCH-1 / 2 of Pcell and PUSCH-1 / 2 of Scell need to use different spatial relationship information under UAG-b, which exceeds the capabilities of the UE.
  • Sounding reference signal (SRS) Sounding reference signal
  • PUCCH-1 and PUCCH-2 need to obey the spatial relationship of PUSCH-1 / 2 transmitted simultaneously. That is, the spatial relationship information of PUCCH-1 and PUCCH-2 needs to be modified to ⁇ [Beam-2, UAG-b] ⁇ .
  • FIG. 7 is a schematic diagram of an embodiment of a sounding reference signal + physical layer uplink control channel spatial relationship information collision involved in this application.
  • Aperiodic (AP) -SRS and PUCCH-2 need to be transmitted simultaneously, but for the same packet (UAG-b) has different spatial relationship information, namely ⁇ [Beam-2, UAG-b] ⁇ , ⁇ [Beam-3, UAG-b] ⁇ .
  • uplink reference signal, prior to uplink control channel (or, “non-periodic uplink reference signal, prior to uplink control channel”)
  • PUCCH2 needs to obey the spatial relationship of AP-SRS transmitted simultaneously. That is, the spatial relationship information of PUCCH-2 needs to be modified to ⁇ [Beam-2, UAG-b] ⁇ , or the spatial filter of PUCCH-2 is determined according to the spatial relationship information ⁇ [Beam-2, UAG-b] ⁇ .
  • FIG. 8 is a schematic diagram of an embodiment of spatial relationship information collision during scheduled and scheduling-free transmission according to this application. As shown in FIG. 8, under the same packet, the spatial relationship between Pcell and Scell transmission conflicts.
  • the spatial relationship of the periodic SRS is modified to ⁇ [Beam-2, UAG-b] ⁇ , or the periodic SRS (also The spatial filter called periodic SRS (P-SRS) is determined according to the spatial relationship of the grant-based PUSCH of Pcell ⁇ [Beam-2, UAG-b] ⁇ .
  • the UE's ability to send a reference signal or channel at the same time and the base station's configuration to support simultaneous transmission of the reference signal or channel it specifies the uplink beam training under simultaneous uplink multiple beam transmission.
  • the spatial relationship of the low-priority reference signal or channel after the collision is covered by a pre-configured constraint criterion to meet the requirements of the UE end capability and the base station end configuration, thereby improving the efficiency of the beam at the transmitting end and the antenna resource utilization.
  • a device for transmitting information elements is also provided.
  • the device is used to implement the foregoing embodiments and implementation manners, and the descriptions will not be repeated.
  • the term "module” may implement a combination of software and / or hardware for a predetermined function.
  • the devices described in the following embodiments are preferably implemented in software, implementation in hardware, or a combination of software and hardware is also possible and conceived.
  • a device for transmitting an information element including:
  • a receiving module configured to receive spatial relationship information configured for multiple uplink information elements transmitted by the second communication node;
  • a first transmission module is configured to transmit the multiple uplink information elements according to the spatial relationship information.
  • the first communication node receives the spatial relationship information configured for multiple uplink information elements transmitted by the second communication node, and transmits multiple uplink information elements based on the spatial relationship information.
  • the configured spatial relationship information transmits the uplink information element, which solves the problem of collision when transmitting the uplink information element in the related technology.
  • the second communication node uniformly sets the transmitted spatial relationship information, which reduces the collision between the uplink information elements and provides Utilization efficiency of transceiver resources and antenna resources.
  • the uplink information element includes at least one of the following: an uplink reference signal, an uplink data channel, and an uplink control channel.
  • the spatial relationship information includes at least one of the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the spatial relationship information of the uplink control channel configuration is not limited to the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the plurality of uplink information elements have at least one of the following characteristics:
  • Transmitting the multiple uplink information elements simultaneously can also be understood as sending multiple uplink information elements simultaneously;
  • the multiple uplink information elements are associated with the same time unit
  • the time units associated with the multiple uplink information elements partially or completely overlap
  • the time unit is an OFDM symbol, or a sub-OFDM symbol, or a slot.
  • the first transmitting module for transmitting the multiple uplink information elements according to the spatial relationship information includes:
  • Processing the plurality of uplink information elements according to a priority criterion includes at least one of the following:
  • the spatial relationship of the low-priority uplink information elements is covered into a specific spatial relationship
  • Low-priority uplink information elements are transmitted using specific spatial filters
  • the spatial relationship of all uplink information elements is transmitted using a specific spatial filter
  • the parameter X is an integer.
  • the parameter X of the uplink information element includes at least one of the following:
  • the uplink information element is associated with the number of different packets.
  • the number of packets associated with the uplink information element may have the same meaning.
  • the parameter X of the uplink information element includes at least one of the following:
  • the number of spatial filters associated with the uplink information element is the number of spatial filters associated with the uplink information element
  • the uplink information element is associated with the maximum number of spatial filters of the same packet.
  • the parameter X is less than or equal to the threshold.
  • the specific spatial relationship includes at least one of the following:
  • the lowest index, the highest index, or the spatial relationship associated with the P predefined indexes the lowest index, the highest index, or the spatial relationship associated with the P predefined indexes
  • the preset index includes at least one of the following: a cell index, a carrier index, a bandwidth part BWP index, a control channel resource set index, and a control channel resource index;
  • N, M, and P are positive integers greater than or equal to 1.
  • the spatial relationship association grouping index Y of the low-priority uplink information element wherein,
  • the number of spatial relationships associated with the grouping index Y is greater than the threshold
  • the number of different spatial relationships associated with the grouping index Y is greater than the threshold
  • Y is an integer.
  • the specific spatial filter includes at least one of the following:
  • the lowest index, the highest index, or the spatial filters associated with the S predefined indexes are Among the preset indexes associated with the packet associated with the low-priority uplink information element, the lowest index, the highest index, or the spatial filters associated with the S predefined indexes;
  • a reference filter and a spatial filter associated with the reference signal in the spatial relationship information with the low priority uplink information element
  • the preset index includes at least one of the following: a cell index, a carrier index, a bandwidth part BWP index, a control channel resource set index, and a control channel resource index;
  • R, Q, and S are positive integers greater than or equal to 1.
  • the spatial filter associated packet index W of the low-priority uplink information element where:
  • the number of spatial filters associated with the packet index W is greater than the threshold
  • the number of different spatial filters associated with the packet index W is greater than the threshold
  • W is an integer.
  • the threshold includes one of the following: 1, 2, 3, 4.
  • the threshold is determined according to the capability information and / or configuration information of the first communication node, wherein the configuration information is configured by the second communication node.
  • the priority criterion includes at least one of the following:
  • the uplink data channel has priority over the uplink reference signal
  • the uplink data channel has priority over the uplink control channel
  • the multi-slot uplink data channel takes precedence over the uplink control channel
  • the multi-slot uplink data channel takes precedence over the uplink reference signal
  • the uplink reference signal has priority over the uplink control channel
  • the scheduling-based uplink data channel takes precedence over the scheduling-free uplink data channel
  • the information elements under the primary cell or the primary carrier take precedence over the information elements under the secondary cell or the secondary carrier.
  • the priority criterion includes at least one of the following:
  • the uplink control channel has priority over the uplink reference signal
  • the uplink control channel has priority over the uplink data channel
  • the uplink reference signal has priority over the uplink data channel
  • the scheduling-free uplink data channel takes precedence over the scheduling-based uplink data channel.
  • the priority criterion includes at least one of the following:
  • Aperiodic uplink information elements take precedence over periodic uplink information elements
  • Aperiodic uplink information elements take precedence over semi-continuous uplink information elements
  • the semi-continuous uplink information element takes precedence over the periodic uplink information element.
  • the priority criterion includes at least one of the following:
  • the uplink information element priority is determined by a BWP index, a carrier index, or a cell index.
  • an information transmission device including:
  • a determining module configured to determine spatial relationship information configured for multiple uplink elements of the first communication node
  • a second transmission module is configured to transmit the spatial relationship information to the first communication node.
  • the above technical solution is adopted to solve the problem of collision when transmitting uplink information elements in the related technology.
  • the spatial relationship information transmitted by the second communication node is uniformly set, which reduces collisions between the uplink information elements, and provides the transceiver end and antenna resources Utilization efficiency.
  • the uplink information element includes at least one of the following: an uplink reference signal, an uplink data channel, and an uplink control channel.
  • the spatial relationship information includes at least one of the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the spatial relationship information of the uplink control channel configuration is not limited to the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the plurality of uplink information elements have at least one of the following characteristics: the plurality of uplink information elements are transmitted simultaneously; the plurality of uplink information elements are associated with the same time unit; The associated time units are partially or completely overlapped; wherein, the time units are orthogonal frequency division multiplexed OFDM symbols, or sub-orthogonal frequency division multiplexed sub-OFDM symbols, or subframe slots.
  • the above modules can be implemented by software or hardware. For the latter, they can be implemented in the following ways, but are not limited to the above: the above modules are located in the same processor; or the above modules are arbitrarily combined The forms are located in different processors.
  • a terminal including:
  • a communication device configured to receive spatial relationship information configured for multiple uplink information elements transmitted by a second communication node
  • a processor configured to transmit the multiple uplink information elements according to the spatial relationship information.
  • the first communication node receives the spatial relationship information configured for the multiple uplink information elements transmitted by the second communication node, and transmits multiple uplink information elements based on the spatial relationship information.
  • the spatial relationship information configured by the second communication node is adopted.
  • the transmission of uplink information elements solves the problem of collisions in the transmission of uplink information elements in related technologies.
  • the second communication node uniformly sets the spatial relationship information to be transmitted, reduces collisions between uplink information elements, and provides the transceiver end and antenna resources. Utilization efficiency.
  • the uplink information element includes at least one of the following: an uplink reference signal, an uplink data channel, and an uplink control channel.
  • the spatial relationship information includes at least one of the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the spatial relationship information of the uplink control channel configuration is not limited to the following: spatial relationship information of an uplink reference signal configuration associated with the uplink data channel; and the uplink data channel associated with the uplink data channel.
  • the plurality of uplink information elements have at least one of the following characteristics:
  • Transmitting the multiple uplink information elements simultaneously can also be understood as sending multiple uplink information elements simultaneously;
  • the multiple uplink information elements are associated with the same time unit
  • the time units associated with the multiple uplink information elements partially or completely overlap
  • the time unit is an orthogonal frequency division multiplexing (OFDM) symbol, or a sub-OFDM symbol, or a slot.
  • OFDM orthogonal frequency division multiplexing
  • the processor transmitting the multiple uplink information elements according to the spatial relationship information includes:
  • Processing the plurality of uplink information elements according to a priority criterion includes at least one of the following:
  • the spatial relationship of the low-priority uplink information elements is covered into a specific spatial relationship
  • Low-priority uplink information elements are transmitted using specific spatial filters
  • the spatial relationship of all uplink information elements is transmitted using a specific spatial filter
  • the parameter X is an integer.
  • the parameter X of the uplink information element includes at least one of the following:
  • the uplink information element is associated with the number of different packets.
  • the number of packets associated with the uplink information element may have the same meaning.
  • the parameter X of the uplink information element includes at least one of the following:
  • the number of spatial filters associated with the uplink information element is the number of spatial filters associated with the uplink information element
  • the uplink information element is associated with the maximum number of spatial filters of the same packet.
  • the parameter X is less than or equal to the threshold.
  • the specific spatial relationship includes at least one of the following:
  • the lowest index, the highest index, or the spatial relationship associated with the P predefined indexes the lowest index, the highest index, or the spatial relationship associated with the P predefined indexes
  • the preset index includes at least one of the following: a cell index, a carrier index, a bandwidth part BWP index, a control channel resource set index, and a control channel resource index;
  • N, M, and P are positive integers greater than or equal to 1.
  • the spatial relationship association grouping index Y of the low-priority uplink information element wherein,
  • the number of spatial relationships associated with the grouping index Y is greater than the threshold
  • the number of different spatial relationships associated with the grouping index Y is greater than the threshold
  • Y is an integer.
  • the specific spatial filter includes at least one of the following:
  • a spatial filter with the lowest index, the highest index, or R predefined indexes Among the preset indexes associated with the low-priority uplink information elements, a spatial filter with the lowest index, the highest index, or R predefined indexes;
  • the lowest index, the highest index, or the spatial filters associated with the S predefined indexes are Among the preset indexes associated with the packet associated with the low-priority uplink information element, the lowest index, the highest index, or the spatial filters associated with the S predefined indexes;
  • a reference filter and a spatial filter associated with the reference signal in the spatial relationship information with the low priority uplink information element
  • the preset index includes at least one of the following: a cell index, a carrier index, a bandwidth part BWP index, a control channel resource set index, and a control channel resource index;
  • R, Q, and S are positive integers greater than or equal to 1.
  • the spatial filter associated packet index W of the low-priority uplink information element where:
  • the number of spatial filters associated with the packet index W is greater than the threshold
  • the number of different spatial filters associated with the packet index W is greater than the threshold
  • W is an integer.
  • the threshold includes one of the following: 1, 2, 3, 4.
  • the threshold is determined according to the capability information and / or configuration information of the first communication node, wherein the configuration information is configured by the second communication node.
  • the priority criterion includes at least one of the following:
  • the uplink data channel has priority over the uplink reference signal
  • the uplink data channel has priority over the uplink control channel
  • the multi-slot uplink data channel takes precedence over the uplink control channel
  • the multi-slot uplink data channel takes precedence over the uplink reference signal
  • the uplink reference signal has priority over the uplink control channel
  • the scheduling-based uplink data channel takes precedence over the scheduling-free uplink data channel
  • the information elements under the primary cell or the primary carrier take precedence over the information elements under the secondary cell or the secondary carrier.
  • the priority criterion includes at least one of the following:
  • the uplink control channel has priority over the uplink reference signal
  • the uplink control channel has priority over the uplink data channel
  • the uplink reference signal has priority over the uplink data channel
  • the scheduling-free uplink data channel takes precedence over the scheduling-based uplink data channel.
  • the priority criterion includes at least one of the following:
  • Aperiodic uplink information elements take precedence over periodic uplink information elements
  • Aperiodic uplink information elements take precedence over semi-continuous uplink information elements
  • the semi-continuous uplink information element takes precedence over the periodic uplink information element.
  • the priority criterion includes at least one of the following:
  • a priority of the uplink information element is determined by using a Bandwidth Part (BWP) index, a carrier index, or a cell index.
  • BWP Bandwidth Part
  • An embodiment of the present application further provides a storage medium.
  • the foregoing storage medium may be configured to store program code for performing the following steps:
  • the first communication node receives spatial relationship information configured for multiple uplink information elements transmitted by the second communication node;
  • the foregoing storage medium may include, but is not limited to, a U disk, a read-only memory (ROM, Read-Only Memory), a random access memory (RAM, Random Access Memory), a mobile hard disk, and a magnetic disk.
  • Various media such as discs or optical discs that can store program codes.
  • An embodiment of the present application further provides an electronic device including a memory and a processor.
  • the memory stores a computer program
  • the processor is configured to run the computer program to perform the steps in any one of the foregoing method embodiments.
  • the electronic device may further include a transmission device and an input-output device, wherein the transmission device is connected to the processor, and the input-output device is connected to the processor.
  • the foregoing processor may be configured to execute the following steps by a computer program:
  • the first communication node receives the spatial relationship information configured for multiple uplink information elements transmitted by the second communication node;
  • modules or steps of the present application may be implemented by a general-purpose computing device, and they may be concentrated on a single computing device or distributed in a network composed of multiple computing devices.
  • they may be implemented with program code executable by a computing device, so that they may be stored in a storage device and executed by the computing device, and in some cases, may be in a different order than here
  • the steps shown or described are performed either by making them into individual integrated circuit modules or by making multiple modules or steps into a single integrated circuit module. As such, this application is not limited to any particular combination of hardware and software.

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Abstract

本申请提供了一种信息元素的传输方法及装置、信息传输方法及装置,其中,该信息元素的传输方法包括:第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息,第一通信节点依据该空间关系信息传输多个上行信息元素。本文还公开了一种终端、存储介质以及电子装置。

Description

信息元素的传输方法及装置、信息传输方法及装置
本申请要求在2018年08月09日提交中国专利局、申请号为201810904593.2的中国专利申请的优先权,该申请的全部内容通过引用结合在本申请中。
技术领域
本申请涉及但不限于通信领域,具体而言,涉及一种信息元素的传输方法及装置、信息传输方法及装置。
背景技术
在相关技术中,超宽带宽的高频段(即毫米波通信),成为未来移动通信发展的重要方向,吸引了全球的学术界和产业界的目光。在当下日益拥塞的频谱资源和物理网大量接入情况下,毫米波的优势变得越来越有吸引力,在很多标准组织,例如电气与电子工程师协会(Institute of Electrical and Electronic Engineers,IEEE)、第三代合作伙伴计划(3rd Generation Partnership Project,3GPP)都开始展开相应的标准化工作。例如,在3GPP标准组,高频段通信凭借着其大带宽的显著优势将会成为第五代移动通信技术(5th Generation,5G)New Radio Access Technology(New RAT,新接入技术)的重要创新点。
对于基站而言,可以存在着多个天线面板,而每个天线面板可以产生多个波束,对于用户设备(User Equipment,UE)端而言也有类似的情况,因此要提供一个模拟域和数字域混合情况下多波束下的参考信号,数据信道和控制信道的接收方法。
针对相关技术中传输上行信息元素时存在碰撞的问题,目前还没有有效的解决方案。
发明内容
本申请实施例提供了一种信息元素的传输方法及装置、信息传输方法及装置,以至少解决相关技术中传输上行信息元素时存在碰撞的问题。
根据本申请的一个实施例,提供了一种信息元素的传输方法,包括:第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;第一通信节点依据所述空间关系信息传输所述多个上行信息元素。
根据本申请的另一个实施例,还提供了一种信息传输方法,包括:第二通信节点确定为第一通信节点的多个上行信息元素配置的空间关系信息;传输所 述空间关系信息至所述第一通信节点。
根据本申请的另一个实施例,还提供了一种信息元素的传输装置,包括:接收模块,用于接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;第一传输模块,用于依据所述空间关系信息传输所述多个上行信息元素。
根据本申请文件的另一个实施例,还提供了一种信息传输装置,包括:确定模块,用于确定为第一通信节点的多个上行元素配置的空间关系信息;第二传输模块,用于传输所述空间关系信息至所述第一通信节点。
根据本申请文件的另一个实施例,还提供了一种终端,包括:通信装置,用于接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;处理器,用于依据所述空间关系信息传输所述多个上行信息元素。
根据本申请的又一个实施例,还提供了一种存储介质,所述存储介质中存储有计算机程序,其中,所述计算机程序被设置为运行时执行上述任一项方法实施例中的步骤。
根据本申请的又一个实施例,还提供了一种电子装置,包括存储器和处理器,所述存储器中存储有计算机程序,所述处理器被设置为运行所述计算机程序以执行上述任一项方法实施例中的步骤。
通过本申请,第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息,依据该空间关系信息传输多个上行信息元素,采用上述技术方案,依据第二通信节点配置的空间关系信息传输上行信息元素,解决了相关技术中传输上行信息元素时存在碰撞的问题,由第二通信节点统一设置传输的空间关系信息,减少了上行信息元素之间的碰撞,提供了收发端及天线资源的利用效率。
附图说明
图1是本申请实施例的一种信息元素的传输方法的移动终端的硬件结构框图;
图2是根据本申请实施例的一种信息元素的传输方法的流程图;
图3是根据本申请文件的一种信息传输方法的流程图;
图4是根据本申请的上行多波束传输的实施例示意图;
图5为本申请的物理层上行共享信道+物理层上行控制信道空间关系信息碰撞的实施例示意图;
图6为本申请的物理层上行共享信道+物理层上行控制信道空间关系信息碰 撞的另一实施例示意图;
图7为本申请所涉及的探测参考信号+物理层上行控制信道空间关系信息碰撞的实施例示意图;
图8为本申请所涉及的调度和免调度传输时空间关系信息碰撞的一实施例示意图。
具体实施方式
下文中将参考附图并结合实施例来详细说明本申请。需要说明的是,在不冲突的情况下,本申请中的实施例及实施例中的特征可以相互组合。
需要说明的是,本申请的说明书和权利要求书及上述附图中的术语“第一”、“第二”等是用于区别类似的对象,而不必用于描述特定的顺序或先后次序。
实施例一
本申请实施例中提供了一种移动通信网络(包括但不限于5G移动通信网络),该网络的网络架构可以包括网络侧设备(例如基站)和终端。在本实施例中提供了一种可运行于上述网络架构上的信息传输方法,需要说明的是,本申请实施例中提供的上述信息传输方法的运行环境并不限于上述网络架构。
本申请实施例一所提供的方法实施例可以在移动终端、计算机终端或者类似的运算装置中执行。以运行在移动终端上为例,图1是本申请实施例的一种信息元素的传输方法的移动终端的硬件结构框图。如图1所示,移动终端10可以包括一个或多个(图1中仅示出一个)处理器102(处理器102可以包括但不限于微处理器(Microcontroller Unit,MCU)或可编程逻辑器件(Field Programmable Gate Array,FPGA)等的处理装置)和用于存储数据的存储器104,可选地,上述移动终端还可以包括用于通信功能的传输装置106以及输入输出设备108。本领域普通技术人员可以理解,图1所示的结构仅为示意,其并不对上述移动终端的结构造成限定。例如,移动终端10还可包括比图1中所示更多或者更少的组件,或者具有与图1所示不同的配置。
存储器104可用于存储应用软件的软件程序以及模块,如本申请实施例中的信息元素的传输方法对应的程序指令/模块,处理器102通过运行存储在存储器104内的软件程序以及模块,从而执行各种功能应用以及数据处理,即实现上述的方法。存储器104可包括高速随机存储器,还可包括非易失性存储器,如一个或者多个磁性存储装置、闪存、或者其他非易失性固态存储器。在一些实例中,存储器104可进一步包括相对于处理器102远程设置的存储器,这些远程存储器可以通过网络连接至移动终端10。上述网络的实例包括但不限于互 联网、企业内部网、局域网、移动通信网及其组合。
传输装置106用于经由一个网络接收或者发送数据。上述的网络具体实例可包括移动终端10的通信供应商提供的无线网络。在一个实例中,传输装置106包括一个网络适配器(Network Interface Controller,NIC),其可通过基站与其他网络设备相连从而可与互联网进行通讯。在一个实例中,传输装置106可以为射频(Radio Frequency,RF)模块,其用于通过无线方式与互联网进行通讯。
在本实施例中提供了一种运行于上述移动终端的信息元素的传输方法,图2是根据本申请实施例的信息元素的传输方法流程图,如图2所示,该流程包括如下步骤:
步骤S202,第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;
第一通信节点可以是终端,第二通信节点可以是基站,但不限于此。
步骤S204,依据所述空间关系信息传输所述多个上行信息元素。
通过上述步骤,第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息,依据该空间关系信息传输多个上行信息元素,采用上述技术方案,依据第二通信节点配置的空间关系信息传输上行信息元素,解决了相关技术中传输上行信息元素时存在碰撞的问题,由第二通信节点统一设置传输的空间关系信息,减少了上行信息元素之间的碰撞,提供了收发端及天线资源的利用效率。
可选地,所述上行信息元素包括以下至少之一:上行参考信号,上行数据信道,上行控制信道。
可选地,在所述上行信息元素为上行数据信道时,所述空间关系信息包括如下至少之一:所述上行数据信道关联的上行参考信号配置的空间关系信息;所述上行数据信道关联的上行控制信道配置的空间关系信息。
可选地,所述多个上行信息元素具备以下特征至少之一:
同时传输所述多个上行信息元素,也可以理解为同时发送多个上行信息元素;
所述多个上行信息元素关联有相同的时间单元;
所述多个上行信息元素所关联时间单元部分或者全部重叠;
其中,所述时间单元为正交频分复用(orthogonal frequency division multiplexing,OFDM)符号,或者子正交频分复用(sub-orthogonal frequency division multiplexing,sub-OFDM)符号,或者slot。
可选地,当所述上行信息元素的参数X大于门限时,依据所述空间关系信息传输所述多个上行信息元素,包括:
根据优先级准则处理所述多个上行信息元素,其中,根据优先级准则处理所述多个上行信息元素,包括以下至少之一:
低优先级的上行信息元素的空间关系被覆盖成特定空间关系;
所有上行信息元素的空间关系都被覆盖成特定空间关系;
低优先级的上行信息元素使用特定空间滤波器传输;
所有上行信息元素的空间关系都使用特定空间滤波器传输;
低优先级上行信息元素不被传输;
其中,所述参数X为整数。
可选地,所述上行信息元素的参数X包括如下至少之一:
所述上行信息元素关联的空间关系的数目;
所述上行信息元素关联的不同空间关系的数目;
所述上行信息元素关联同一分组的空间关系的数目;
所述上行信息元素关联同一分组的空间关系的最大数目;
所述上行信息元素关联分组的数目;
所述上行信息元素关联不同分组的数目,此处与上行信息元素关联分组的数目可以是同一含义。
可选地,所述上行信息元素的参数X包括如下至少之一:
所述上行信息元素关联空间滤波器的数目;
所述上行信息元素关联不同空间滤波器的数目;
所述上行信息元素关联同一分组的空间滤波器的数目;
所述上行信息元素关联同一分组的空间滤波器的最大数目。
可选地,根据优先级准则处理所述多个上行信息元素之后,确定所述参数X小于或等于所述门限。
可选地,所述的特定空间关系包括如下至少之一:
高层预配置的空间关系;
高优先级上行信息元素的空间关系;
预设索引中最低索引、最高索引或者N个预定义索引的空间关系;
主载波或主小区索引的空间关系;
所述低优先级上行信息元素关联的预设索引中最低索引、最高索引或者M个预定义索引的空间关系;
所述低优先级上行信息元素关联的主载波或主小区的空间关系;
所述低优先级上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者P个预定义索引所关联的空间关系;
所述低优先级上行信息元素关联的分组关联的,主载波或主小区所关联的空间关系;
与所述低优先级上行信息元素关联同一分组的高优先级上行信息元素的空间关系;
与所述低优先级上行信息元素的空间关系信息中参照参考信号所关联的空间关系;
与所述信息元素的空间关系中参照参考信号所关联的空间关系;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分(Bandwidth part,BWP)索引,控制信道资源集合索引,控制信道资源索引;
其中,N、M和P是大于或等于1的正整数。
可选地,所述低优先级上行信息元素的空间关系关联分组索引Y,其中,
在所述低优先级信息元素下,所述分组索引Y所关联的空间关系的数目大于所述门限;或者,
在所述低优先级信息元素下,所述分组索引Y所关联的不同空间关系数目大于所述门限;
其中,所述Y为整数。
可选地,所述的特定空间滤波器包括如下至少之一:
高层预配置的空间滤波器;
高优先级上行信息元素使用的空间滤波器;
预设索引中最低索引、最高索引或者特定Q个预定义索引的空间滤波器;
主载波索引或主小区索引的空间滤波器;
所述低优先级上行信息元素关联的预设索引中,最低索引、最高索引或者特定R个预定义索引的空间滤波器;
所述低优先级上行信息元素关联的主载波索引或主小区索引的空间滤波 器;
所述低优先级上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者特定S个预定义索引所关联的空间滤波器;
所述低优先级上行信息元素关联的分组关联的,主载波索引或主小区索引所关联的空间滤波器;
与所述低优先级上行信息元素关联同一分组的高优先级上行信息元素的空间滤波器;
与所述低优先级上行信息元素的空间关系信息中参照参考信号,所关联的空间滤波器;
与所述信息元素的空间关系中参照参考信号所关联的空间滤波器;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
其中,R、Q和S是大于或等于1的正整数。
可选地,所述低优先级上行信息元素的空间滤波器关联分组索引W,其中,
在所述低优先级上行信息元素下,分组索引W所关联的空间滤波器的数目大于所述门限;或者,
在所述低优先级上行信息元素下,分组索引W所关联的不同空间滤波器数目大于所述门限,
其中,所述W为整数。
可选地,所述的门限包括如下之一:1,2,3,4。
可选地,依据所述第一通信节点的能力信息和/或配置信息确定所述门限,其中,所述配置信息由所述第二通信节点配置。
可选地,所述的优先级准则包括如下至少之一:
上行数据信道优先于上行参考信号;
上行数据信道优先于上行控制信道;
多时隙的上行数据信道优先于上行控制信道;
多时隙的上行数据信道优先于上行参考信号;
上行参考信号优先于上行控制信道;
基于调度的上行数据信道优先于基于免调度的上行数据信道;
主小区或者主载波下的信息元素优先于辅小区或辅载波下的信息元素。
可选地,所述的优先级准则包括如下至少之一:
上行控制信道优先于上行参考信号;
上行控制信道优先于上行数据信道;
上行参考信号优先于上行数据信道;
基于免调度的上行数据信道优先于基于调度的上行数据信道。
可选地,所述的优先级准则包括如下至少之一:
非周期上行信息元素优先于周期上行信息元素;
非周期上行信息元素优先于半持续上行信息元素;
半持续上行信息元素优先于周期上行信息元素。
可选地,所述的优先级准则包括如下至少之一:
以参考信号索引来确定所述上行信息元素优先级;
以控制信道资源集合索引来确定所述上行信息元素优先级;
以无线网络临时标示(Radio network temporary identifier,RNTI)的类型或者序号来确定所述上行信息元素优先级;
以部分带宽(Bandwidth part,BWP)索引,载波索引或者小区索引来确定所述上行信息元素优先级。
图3是根据本申请文件的一种信息传输方法流程图,如图3所示,该方法包括以下步骤:
步骤S302,第二通信节点确定为第一通信节点的多个上行信息元素配置的空间关系信息;
步骤S304,传输所述空间关系信息至所述第一通信节点。
采用上述技术方案,解决了相关技术中传输上行信息元素时存在碰撞的问题,由第二通信节点统一设置传输的空间关系信息,减少了上行信息元素之间的碰撞,提供了收发端及天线资源的利用效率。
可选地,在传输空间关系信息至第一通信节点之后,第二通信节点接收有第一通信节点依据该空间关系信息传输的上行信息元素。
可选地,所述上行信息元素包括以下至少之一:上行参考信号,上行数据信道,上行控制信道。
可选地,在所述上行信息元素为上行数据信道时,所述空间关系信息包括如下至少之一:所述上行数据信道关联的上行参考信号配置的空间关系信息; 所述上行数据信道关联的上行控制信道配置的空间关系信息。
可选地,所述多个上行信息元素具备以下特征至少之一:同时传输所述多个上行信息元素;所述多个上行信息元素关联有相同的时间单元;所述多个上行信息元素所关联时间单元部分或者全部重叠;其中,所述时间单元为正交频分复用OFDM符号,或者子正交频分复用sub-OFDM符号,或者子帧slot。
下面结合本申请文件的另一个实施例进行说明。
相关技术中新无线5G通信系统中,在同一个时刻下,模拟波束是假定不能发生碰撞的,但是,随着UE和基站端的天线面板的增加,不同空间关系或者使用不同上行发送空间滤波器下的信道和参考信号在面向不同的天线面板下是可以同时发送的,因此需要制定准则来释放基站调度的灵活度。
面向支持多天线面板下,制定了上行参考信号、上行控制信道、上行数据信道的空间关系配置的约束方法和面向多天线面板的训练方法。可选地,在确保在满足终端UE端(在本申请文件,又称为第一通信节点)的能力信息和/或基站端(在本申请文件,又称为第二通信节点)的配置信息下,提供了一种合理规避冲突的方法,和一种在冲突碰撞时的第一通信节点端的退避准则。
具体而言,在跨载波或者小区的情况下,可能发生上行参考信号或信道碰撞的组合如下:
PUCCH(Physical uplink control channel,物理层上行控制信道)+PUCCH;
PUSCH(Physical uplink shared channel,物理层上行共享信道)+PUSCH;
SRS+SRS;
PUCCH+PUSCH;
PUCCH+SRS;
PUSCH+SRS;
可选地,PUCCH+PUCCH和PUCCH+PUSCH仅发生在他们分别来自不同的小区组的情况,其余组合可以不同小区之间的信号或信道碰撞,也可能是同一个小区的信号或信道碰撞。
在本申请文件中,分组包括如下至少之一:第A类分组,第B类分组,第C类分组。
其中,所述的第A类分组称为天线面板,或者面板,或者天线阵列;所述的第B类分组称为子天线面板,或者子面板,或者子天线阵列;所述的第C类分组称为波束分组。
可选地,所述的第A类分组的分组准则包括如下至少之一:
#1不同分组关联的参考信号或者信道可以被同时发送;
#2不同分组关联的参考信号或者信道可以被同时接收;
#3同一分组关联的参考信号或者信道不能同时发送,或者,同一分组关联的具有不同空间关系或者不同空间滤波器的参考信号或者信道不能同时发送;
#4同一分组关联的参考信号或者信道不能同时接收,或者,同一分组关联的具有不同空间关系或者不同空间滤波器的参考信号或者信道不能同时接收;
或者,所述的第A类分组的分组准则包括如下至少之一
#1同一分组关联的不超过E个参考信号或信道能同时发送,或者,同一分组关联的不超过E个具有不同空间关系或者不同空间滤波器的参考信号或信道能同时发送;
#2同一分组关联的超过E个参考信号或信道不能同时发送,或者,同一分组关联的超过E个具有不同空间关系或者不同空间滤波器的参考信号或信道不能同时发送;
#3同一分组关联的不超过E个参考信号或信道能同时接收,或者,同一分组关联的不超过E个具有不同空间关系或者不同空间滤波器的参考信号或信道能同时接收;
#4同一分组关联的超过E个参考信号或信道不能同时接收,或者,同一分组关联的超过E个具有不同空间关系或者不同空间滤波器的参考信号或信道不能同时接收;
#5分组内部包括E个第B类分组;
其中E是大于或等于1的整数。
可选地,所述的第B类分组的分组准则包括如下至少之一:
#1不同分组关联的参考信号或者信道可以被同时发送;
#2不同分组关联的参考信号或者信道可以被同时接收;
#3同一分组关联的参考信号或者信道不能同时发送,或者,同一分组关联的具有不同空间关系或者不同空间滤波器的参考信号或者信道不能同时发送;
#4同一分组关联的参考信号或者信道不能同时接收,或者,同一分组关联的具有不同空间关系或者不同空间滤波器的参考信号或者信道不能同时接收。
可选地,所述的第C类分组的分组准则包括如下至少之一:
#1不同分组关联的参考信号或者信道不能被同时发送;
#2不同分组关联的参考信号或者信道不能被同时接收;
#3同一分组关联的参考信号或者信道可以同时发送,或者,同一分组关联的具有不同空间关系或者不同空间滤波器的参考信号或者信道可以同时发送;
#4同一分组关联的参考信号或者信道可以同时接收,或者,同一分组关联的具有不同空间关系或者不同空间滤波器的参考信号或者信道可以同时接收。
在本申请文件中,所述的能力信息包括如下至少之一:
#1第一通信节点的第A类分组的数目;
#2第一通信节点的第A类分组下第B分组的数目;
#3同时发送上行信息元素的数目,或者,同时发送上行信息元素的最大数目;
#4用于波束管理的上行参考信号资源集合数目,或者,用于波束管理的上行参考信号资源集合最大数目;
#5同时接收下行信息元素的数目,或者,同时接收下行信息元素的最大数目;
#6同时接收下行信息元素的信道特征假设的数目,或者,同时接收下行信息元素的信道特征假设的最大数目;
#7同时接收不同信道特征假设的下行信息元素的数目,或者,同时接收不同信道特征假设的下行信息元素的最大数目;
#8上行解调参考信号(Demodulation reference signal,DMRS)端口组的数目或者最大数目,或者,在联合传输模式下,上行DMRS端口组的数目或者最大数目;
#9 PUCCH组的数目或者最大数目,或者小区组的数目或者最大数目;
#10同时接收下行信息元素的能力信息;
#11同时发送上行信息元素的能力信息;
#12支持多DMRS组的能力信息。
在本申请文件中,所述的第二通信节点配置信息包括如下至少之一:
#1所述的门限的值;
#2第二通信节点的第A类分组数目;
#3第二通信节点的第A类分组下第B分组的数目;
#4同时发送上行信息元素的空间关系数目,或者同时发送上行信息元素的空间关系的最大数目;
#5同时发送不同空间关系的上行信息元素的数目,或者,同时发送不同空间关系的上行信息元素的最大数目;
#6同时发送不同空间关系的上行信息元素的数目,或者,同时发送不同空间关系的上行信息元素的最大数目;
#7上行DMRS端口组的数目或者最大数目,或者,在联合传输模式下,上行DMRS端口组的数目或者最大数目;
#8 PUCCH组的数目或者最大数目,或者小区组的数目或者最大数目;
#9同时发送上行信息元素模式有效;
#10多上行DMRS组模式有效。
本申请文件中的所述的上行参考信号包括如下至少之一:
#1探测参考信号(Sounding reference signal,SRS);
#2相位追踪参考信号(phase-tracking reference signal,PT-RS);
#3解调参考信号(Demodulation reference signal,DMRS)。
本申请文件中的所述的下行参考信号是如下至少之一:
#1信道状态信息参考信号(Channel state information reference signal,CSI-RS);
#2相位追踪参考信号(phase-tracking reference signal,PT-RS);
#3同步信号块(Synchronization signal block,SSB);
#4同步信号/物理广播信道(Synchronization signal/physical broadcast channel,SS/PBCH);
#5下行解调参考信号(Demodulation reference signal,DMRS);
#6用于追踪的信道状态信息参考信号(CSI-RS for tracking)。
空间关系,也被称为空间关系信息,承载一个或者多个参照参考信号(reference RS)来进行表示或者指示所关联的参考信号或者信道(也称为目标参考信号,或者目标信道)的上行空间滤波器。或者,参考信号或者信道(也称为目标参考信号,或者目标信道)被配置一空间关系信息,进而UE确定所述参考信号或者信道的上行空间滤波器。
可选地,所述的空间关系不同,是指多个参考信号或信道所关联的空间关 系下的参照参考信号(reference RS)不同。
可选地,所述的空间关系相同,是指多个参考信号或信道所关联的空间关系下的参照参考信号相同或者与所述参考信号本身相同。
可选地,当参照参考信号被配置空间关系信息时,所述的所关联的空间关系下的参考信号是一次或多次空间关系信息嵌套后的参照参考信号。
其中,参照参考信号(reference RS),是由如下至少之一组成:参考信号资源索引,参考信号集合索引,参考信号配置索引,或者分组索引。
信道特征假设可以是:准共址(QCL,Quasi co-location)、空间准共址(spatial QCL)、传输配置指示状态(TCI,Transmission configuration indication)、空间滤波器信息、天线组信息、参照参考信号集合中的一种或几种。其中,准共址是由一个或者多个参照参考信号(reference RS)和所述参照参考信号关联的准共址参数构成,其中涉及的准共址参数至少包括如下之一或组合:多普勒扩展,多普勒平移,时延拓展,平均时延,平均增益和空间参数;进一步地,空间参数,可以包括空间接收参数,例如到达角,接收波束的空间相关性,平均时延,时频信道响应的相关性(包括相位信息)等。可选地,准共址是由一个或者多个参照参考信号集合构成,而每个参照参考信号集合包括一个或者多个参照参考信号(reference RS)和所述参照参考信号关联的准共址参数构成。空间滤波器信息可以为基站希望UE端实现的空间滤波器配置信息,也可以为基站自身的空间滤波器配置信息;
可选地,所述的信道特征假设不同,可以是仅考虑空间参数的不同,即TCI中如果包括两个RS,其中仅考虑与spatial parameter相关联的参照参考信号(reference RS)是否相同作为判定相同与否的准则。
其中,参照参考信号(reference RS),是由如下至少之一组成:参考信号资源索引,参考信号集合索引,参考信号配置索引,或者分组索引。
所述波束可以为一种资源(例如发送端空间滤波器,接收端空间滤波器,发端预编码,收端预编码、天线端口,天线权重矢量,天线权重矩阵等),波束序号可以被替换为资源索引(例如参考信号资源索引),因为波束可以与一些时频码资源进行传输上的绑定。波束也可以为一种传输(发送/接收)方式;所述的传输方式可以包括空分复用、频域/时域分集等。
在本申请文件中提供了一种上行信息元素的发送方法,应用于第一通信节点,该方法包括以下步骤:
接收第二通信节点发送的上行信息元素所配置的空间关系信息,确定所述上行信息元素的的发送方式。
其中,所述信息元素包括如下至少之一:A1个参考信号,A2个数据信道,A3个控制信道。
其中,A1,A2和A3是大于或等于1的整数。
可选地,当所述上行信息元素为上行数据信道时,上行元素所配置的空间关系信息,包括如下至少之一:
所述上行数据信道所关联的上行参考信号所配置的空间关系信息,所述上行数据信道所关联的上行控制信道所配置的空间关系信息。
可选地,所述的上行信息元素具有如下特征至少之一:
#0同时传输;
#1由第一通信节点同时发送;
#2关联相同的时间单元,或者所关联时间单元部分或者全部重叠;
其中,时间单元为OFDM符号,或者sub-OFDM符号,或者slot。
在上行信息元素发生碰撞后,通过以下方式进行处理:
当信息元素的参数X大于门限时,根据优先级准则,包括如下至少之一:
#1低优先级的信息元素的空间关系被覆盖成特定空间关系,或者,信息元素的空间关系都被覆盖成特定空间关系;
#2低优先级的信息元素使用特定空间滤波器发送,或者,信息元素的空间关系都使用特定空间滤波器发送;
#3低优先级元素不被发送;
其中,所述的信息元素的参数X包括如下至少之一:
#1所述信息元素的空间关系的数目,或者所述信息元素的不同空间关系的数目;
#2在所述信息元素下,关联同一分组的空间关系的数目,或者,关联同一分组的空间关系的最大数目;
#3关联分组的数目,或者,关联不同分组的数目
此外,所述的信息元素的参数X包括如下至少之一:
#1所述信息元素所关联空间滤波器的数目,或者所述信息元素的不同空间滤波器的数目;
#2在所述信息元素下,关联同一分组的空间滤波器的数目,或者,关联同一分组的空间滤波器的数目;
可选地,在所述方法执行之后,可以使得所述参数X小于或等于所述门限。
其中,所述的门限包括如下之一:1,2,3,4,和/或,所述的门限由第一信息节点的能力信息和/或第二通信节点配置信息确定。
上述申请文件中的特定空间关系包括如下至少之一:
#0高层预配置的空间关系;
#1高优先级元素的空间关系
#2所述预设索引下最低、最高或者特定的N个索引的的空间关系,或者,主载波或小区索引的空间关系;
#3所述低优先级元素关联的预设索引下最低、最高或者特定的N个索引的空间关系,或者,所述低优先级元素关联的主载波或主小区的空间关系;
#4所述低优先级元素关联的分组关联的预设索引下最低、最高或者特定的N个索引所关联的空间关系;
#5所述低优先级元素关联的分组关联的主载波或主小区所关联的空间关系;
#6与所述低优先级元素关联同一分组的高优先级元素的空间关系;
#7与所述低优先级元素的空间关系信息中参照参考信号所关联的空间关系;
#8与所述信息元素的空间关系中参照参考信号所关联的空间关系;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
其中,N是大于或等于1的正整数。
可选地,对于低优先级元素需要满足如下约束:
所述的低优先级元素的空间关系关联分组索引X。
其中,在所述信息元素下,分组索引X所关联的空间关系的数目大于所述门限,或者,在所述信息元素下,分组索引X所关联的不同空间关系数目大于所述门限。
上述申请文件中的空间滤波器包括如下至少之一:
#0高层预配置的空间滤波器;
#1高优先级元素的空间滤波器;
#2所述预设索引下最低、最高或者特定的N个索引的的空间滤波器,或者, 主载波或小区索引的空间滤波器;
#3所述低优先级元素关联的预设索引下最低、最高或者特定的N个索引的空间滤波器,或者,所述低优先级元素关联的主载波或主小区的空间滤波器;
#4所述低优先级元素关联的分组关联的预设索引下最低、最高或者特定的N个索引所关联的空间滤波器;
#5所述低优先级元素关联的分组关联的主载波或主小区所关联的空间滤波器;
#6与所述低优先级元素关联同一分组的高优先级元素的空间滤波器;
#7与所述低优先级元素的空间关系信息中参照参考信号所关联的空间滤波器;
#8与所述信息元素的空间关系中参照参考信号所关联的空间滤波器;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
其中,N是大于或等于1的正整数。
可选地,对于低优先级元素需要满足如下约束:
所述的低优先级元素的空间滤波器关联分组索引X。
其中,在所述信息元素下,分组索引X所关联的空间滤波器的数目大于所述门限,或者,在所述信息元素下,分组索引X所关联的不同空间滤波器数目大于所述门限。
本申请文件中的优先级准则包括如下至少之一:
#0上行数据信道,优先于上行参考信号
#1上行数据信道,优先于上行控制信道
#2多时隙的上行数据信道,优先于控制控制信道;
#3上行参考信号,优先于上行控制信道;
#3基于调度的上行数据信道,优先于基于免调度的上行数据信道。
#4主小区或者主载波下的信息元素,优先于辅小区或辅载波下的信息元素;
此外,所述的优先级准则包括如下至少之一:
#1上行控制信道,优先于上行参考信号;
#2上行控制信道,优先于上行数据信道;
#3基于免调度的上行数据信道,优先于基于调度的上行数据信道。
此外,所述的优先级准则包括如下至少之一:
#1非周期参考信号,优先于周期参考信号
#2非周期参考信号,优先于半持续参考信号
#3半持续参考信号,优先于周期参考信号
此外,所述的优先级准则包括如下至少之一:
#1以参考信号索引来确定优先级;
#2以控制信道资源集合索引来确定优先级;
#3以RNTI的类型或者序号来确定优先级;
#4以BWP索引,载波索引或者小区索引来确定优先级。
具体而言,最低索引或者最高索引或者特定索引下具有高优先级。
图4是根据本申请的上行多波束传输的实施例示意图,如图4所示,在上行传输中,UE端具有两个panel,同时可以发送两个来自不同panel的波束,被称为panel-a和panel-b。从分组的角度看,UE端有两个第A类分组,其分组准则具体为:
不同分组关联的参考信号或者信道可以被同时发送;
同一分组关联的具有不同空间关系的参考信号或者信道不能同时发送;
对于Panel-a,也称为UE Antenna Group-a(UAG-a),存在一个有效通信链路通过UE端的Beam-6和基站端的Beam-e构成上行Link-1。而,对于Panel-b,也称为UAG-b,存在两个有效的通信链路Link-0和Link-2,其中Link-0是通过使用UE端的Beam-2和基站端的Beam-b来构建的,而Link-2是通过使用UE端的Beam-3和基站端的Beam-a所构建的。
可选地,根据UE能力,Link-1与Link-0/2是可以同时传输的,但是Link-0和Link-2之间是不可以同时传输的。
可选地,从标准的角度看,所述的beam,对应于参考信号索引。
图5为本申请的物理层上行共享信道+物理层上行控制信道空间关系信息碰撞的实施例示意图,如图5所示,考虑Pcell和Scell传输的场景,Pcell和Scell在Slot-{n}和Slot-{n+1}时,分别关联不同的UAG。这样,Pcell和Scell的调度传输不会发生超过所述UE能力的冲突。因此,Pcell和Scell都可以根据各自的配置进行上行的控制信道和数据信道的传输。物理层上行共享信道(Physical uplink shared channel,简称为PUSCH),物理层上行控制信道(Physical uplink  control channel,简称为PUCCH)。
图6为本申请的物理层上行共享信道+物理层上行控制信道空间关系信息碰撞的另一实施例示意图,如图6所示,当Pcell和Scell使用了相同的UAG-b。Pcell下的PUSCH-1和PUSCH-2与Scell下的PUSCH-1和PUSCH-2使用了相同的空间关系信息,即没有发生冲突,因此所述的传输可以正常进行。而,Pcell的PUCCH-1/2与Scell的PUSCH-1/2需要使用UAG-b下不同的空间关系信息,超过了UE端的能力。探测参考信号(Sounding reference signal,SRS)。
假定优先级准则“上行数据信道,优先于上行控制信道”时,PUCCH-1和PUCCH-2需要服从同时传输的PUSCH-1/2的空间关系。即,PUCCH-1和PUCCH-2的空间关系信息需要修改成{[Beam-2,UAG-b]}。
图7为本申请所涉及的探测参考信号+物理层上行控制信道空间关系信息碰撞的实施例示意图,如图7所示,Aperiodic(AP)-SRS与PUCCH-2需要同时传输,但是对于同一分组(UAG-b)下具有不同的空间关系信息,即分别是{[Beam-2,UAG-b]}、{[Beam-3,UAG-b]}。
假定一优先级准则“上行参考信号,优先于上行控制信道”时(或者,“非周期上行参考信号,优先于上行控制信道”),PUCCH2需要服从同时传输的AP-SRS的空间关系。即,PUCCH-2的空间关系信息需要修改成{[Beam-2,UAG-b]},或者PUCCH-2的空间滤波器根据空间关系信息{[Beam-2,UAG-b]}来确定。
图8为本申请所涉及的调度和免调度传输时空间关系信息碰撞的一实施例示意图。如图8所示,在同一分组下,Pcell与Scell传输的空间关系发生了冲突。
在Slot-n,根据优先级准则“基于调度的上行数据信道,优先于基于免调度的上行数据信道”,grant-free PUSCH下的空间关系信息被修改成{[Beam-2,UAG-b]}。
在Slot-n,根据另一优先级准则“上行数据信道,优先于上行参考信号”时,周期SRS的空间关系被修改成{[Beam-2,UAG-b]},或者,周期SRS(也称为periodic SRS,P-SRS)的空间滤波器根据Pcell的grant-based的PUSCH的空间关系{[Beam-2,UAG-b]}确定。
采用上述技术方案,根据UE端反馈的同时发送参考信号或者信道的能力,以及基站端端配置可以支持的同时发送参考信号或者信道的限制信息,指定了在上行多波束同时发送下的上行波束训练,通过预先配置的约束准则来解决碰撞后的低优先级参考信号或信道的空间关系被覆盖,以满足UE端能力和基站端配置的要求,从而提高了收发端波束以及天线资源的利用效率。
通过以上的实施方式的描述,本领域的技术人员可以清楚地了解到根据上述实施例的方法可借助软件加必需的通用硬件平台的方式来实现,当然也可以通过硬件,但很多情况下前者是更佳的实施方式。基于这样的理解,本申请的技术方案本质上或者说对相关技术做出贡献的部分可以以软件产品的形式体现出来,该计算机软件产品存储在一个存储介质(如ROM/RAM、磁碟、光盘)中,包括若干指令用以使得一台终端设备(可以是手机,计算机,服务器,或者网络设备等)执行本申请各个实施例所述的方法。
实施例二
在本实施例中还提供了一种信息元素的传输装置,该装置用于实现上述实施例及实施方式,已经进行过说明的不再赘述。如以下所使用的,术语“模块”可以实现预定功能的软件和/或硬件的组合。尽管以下实施例所描述的装置较佳地以软件来实现,但是硬件,或者软件和硬件的组合的实现也是可能并被构想的。
根据本申请的另一个实施例,还提供了一种信息元素的传输装置,包括:
接收模块,用于接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;
第一传输模块,用于依据所述空间关系信息传输所述多个上行信息元素。
采用上述技术方案,第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息,依据该空间关系信息传输多个上行信息元素,采用上述技术方案,依据第二通信节点配置的空间关系信息传输上行信息元素,解决了相关技术中传输上行信息元素时存在碰撞的问题,由第二通信节点统一设置传输的空间关系信息,减少了上行信息元素之间的碰撞,提供了收发端及天线资源的利用效率。
可选地,所述上行信息元素包括以下至少之一:上行参考信号,上行数据信道,上行控制信道。
可选地,在所述上行信息元素为上行数据信道时,所述空间关系信息包括如下至少之一:所述上行数据信道关联的上行参考信号配置的空间关系信息;所述上行数据信道关联的上行控制信道配置的空间关系信息。
可选地,所述多个上行信息元素具备以下特征至少之一:
同时传输所述多个上行信息元素,也可以理解为同时发送多个上行信息元素;
所述多个上行信息元素关联有相同的时间单元;
所述多个上行信息元素所关联时间单元部分或者全部重叠;
其中,所述时间单元为OFDM符号,或者sub-OFDM符号,或者slot。
可选地,当所述上行信息元素的参数X大于门限时,所述第一传输模块用于依据所述空间关系信息传输所述多个上行信息元素,包括:
根据优先级准则处理所述多个上行信息元素,其中,根据优先级准则处理所述多个上行信息元素,包括以下至少之一:
低优先级的上行信息元素的空间关系被覆盖成特定空间关系;
所有上行信息元素的空间关系都被覆盖成特定空间关系;
低优先级的上行信息元素使用特定空间滤波器传输;
所有上行信息元素的空间关系都使用特定空间滤波器传输;
低优先级上行信息元素不被传输;
其中,所述参数X为整数。
可选地,所述上行信息元素的参数X包括如下至少之一:
所述上行信息元素关联的空间关系的数目;
所述上行信息元素关联的不同空间关系的数目;
所述上行信息元素关联同一分组的空间关系的数目;
所述上行信息元素关联同一分组的空间关系的最大数目;
所述上行信息元素关联分组的数目;
所述上行信息元素关联不同分组的数目,此处与上行信息元素关联分组的数目可以是同一含义。
可选地,所述上行信息元素的参数X包括如下至少之一:
所述上行信息元素关联空间滤波器的数目;
所述上行信息元素关联不同空间滤波器的数目;
所述上行信息元素关联同一分组的空间滤波器的数目;
所述上行信息元素关联同一分组的空间滤波器的最大数目。
可选地,根据优先级准则处理所述多个上行信息元素之后,确定所述参数X小于或等于所述门限。
可选地,所述的特定空间关系包括如下至少之一:
高层预配置的空间关系;
高优先级上行信息元素的空间关系;
预设索引中最低索引、最高索引或者N个预定义索引的空间关系;
主载波或主小区索引的空间关系;
所述低优先级上行信息元素关联的预设索引中最低索引、最高索引或者M个预定义索引的空间关系;
所述低优先级上行信息元素关联的主载波或主小区的空间关系;
所述低优先级上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者P个预定义索引所关联的空间关系;
所述低优先级上行信息元素关联的分组关联的,主载波或主小区所关联的空间关系;
与所述低优先级上行信息元素关联同一分组的高优先级上行信息元素的空间关系;
与所述低优先级上行信息元素的空间关系信息中参照参考信号所关联的空间关系;
与所述信息元素的空间关系中参照参考信号所关联的空间关系;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
其中,N、M和P是大于或等于1的正整数。
可选地,所述低优先级上行信息元素的空间关系关联分组索引Y,其中,
在所述低优先级信息元素下,所述分组索引Y所关联的空间关系的数目大于所述门限;或者,
在所述低优先级信息元素下,所述分组索引Y所关联的不同空间关系数目大于所述门限;
其中,所述Y为整数。
可选地,所述特定空间滤波器包括如下至少之一:
高层预配置的空间滤波器;
高优先级上行信息元素使用的空间滤波器;
预设索引中最低索引、最高索引或者Q个预定义索引的空间滤波器;
主载波索引或主小区索引的空间滤波器;
所述低优先级上行信息元素关联的预设索引中,最低索引、最高索引或者R 个预定义索引的空间滤波器;
所述低优先级上行信息元素关联的主载波索引或主小区索引的空间滤波器;
所述低优先级上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者S个预定义索引所关联的空间滤波器;
所述低优先级上行信息元素关联的分组关联的,主载波索引或主小区索引所关联的空间滤波器;
与所述低优先级上行信息元素关联同一分组的高优先级上行信息元素的空间滤波器;
与所述低优先级上行信息元素的空间关系信息中参照参考信号,所关联的空间滤波器;
与所述信息元素的空间关系中参照参考信号所关联的空间滤波器;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
其中,R、Q和S是大于或等于1的正整数。
可选地,所述低优先级上行信息元素的空间滤波器关联分组索引W,其中,
在所述低优先级上行信息元素下,分组索引W所关联的空间滤波器的数目大于所述门限;或者,
在所述低优先级上行信息元素下,分组索引W所关联的不同空间滤波器数目大于所述门限,
其中,所述W为整数。
可选地,所述的门限包括如下之一:1,2,3,4。
可选地,依据所述第一通信节点的能力信息和/或配置信息确定所述门限,其中,所述配置信息由所述第二通信节点配置。
可选地,所述的优先级准则包括如下至少之一:
上行数据信道优先于上行参考信号;
上行数据信道优先于上行控制信道;
多时隙的上行数据信道优先于上行控制信道;
多时隙的上行数据信道优先于上行参考信号;
上行参考信号优先于上行控制信道;
基于调度的上行数据信道优先于基于免调度的上行数据信道;
主小区或者主载波下的信息元素优先于辅小区或辅载波下的信息元素。
可选地,所述的优先级准则包括如下至少之一:
上行控制信道优先于上行参考信号;
上行控制信道优先于上行数据信道;
上行参考信号优先于上行数据信道;
基于免调度的上行数据信道优先于基于调度的上行数据信道。
可选地,所述的优先级准则包括如下至少之一:
非周期上行信息元素优先于周期上行信息元素;
非周期上行信息元素优先于半持续上行信息元素;
半持续上行信息元素优先于周期上行信息元素。
可选地,所述的优先级准则包括如下至少之一:
以参考信号索引来确定所述上行信息元素优先级;
以控制信道资源集合索引来确定所述上行信息元素优先级;
以RNTI的类型或者序号来确定所述上行信息元素优先级;
以BWP索引,载波索引或者小区索引来确定所述上行信息元素优先级。
根据本申请文件的另一个实施例,还提供了一种信息传输装置,包括:
确定模块,用于确定为第一通信节点的多个上行元素配置的空间关系信息;
第二传输模块,用于传输所述空间关系信息至所述第一通信节点。
采用上述技术方案,解决了相关技术中传输上行信息元素时存在碰撞的问题,由第二通信节点统一设置传输的空间关系信息,减少了上行信息元素之间的碰撞,提供了收发端及天线资源的利用效率。
可选地,所述上行信息元素包括以下至少之一:上行参考信号,上行数据信道,上行控制信道。
可选地,在所述上行信息元素为上行数据信道时,所述空间关系信息包括如下至少之一:所述上行数据信道关联的上行参考信号配置的空间关系信息;所述上行数据信道关联的上行控制信道配置的空间关系信息。
可选地,所述多个上行信息元素具备以下特征至少之一:同时传输所述多个上行信息元素;所述多个上行信息元素关联有相同的时间单元;所述多个上 行信息元素所关联时间单元部分或者全部重叠;其中,所述时间单元为正交频分复用OFDM符号,或者子正交频分复用sub-OFDM符号,或者子帧slot。
需要说明的是,上述各个模块是可以通过软件或硬件来实现的,对于后者,可以通过以下方式实现,但不限于此:上述模块均位于同一处理器中;或者,上述各个模块以任意组合的形式分别位于不同的处理器中。
实施例三
根据本申请文件的另一个实施例,还提供了一种终端,包括:
通信装置,用于接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;
处理器,用于依据所述空间关系信息传输所述多个上行信息元素。
第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息,依据该空间关系信息传输多个上行信息元素,采用上述技术方案,依据第二通信节点配置的空间关系信息传输上行信息元素,解决了相关技术中传输上行信息元素时存在碰撞的问题,由第二通信节点统一设置传输的空间关系信息,减少了上行信息元素之间的碰撞,提供了收发端及天线资源的利用效率。
可选地,所述上行信息元素包括以下至少之一:上行参考信号,上行数据信道,上行控制信道。
可选地,在所述上行信息元素为上行数据信道时,所述空间关系信息包括如下至少之一:所述上行数据信道关联的上行参考信号配置的空间关系信息;所述上行数据信道关联的上行控制信道配置的空间关系信息。
可选地,所述多个上行信息元素具备以下特征至少之一:
同时传输所述多个上行信息元素,也可以理解为同时发送多个上行信息元素;
所述多个上行信息元素关联有相同的时间单元;
所述多个上行信息元素所关联时间单元部分或者全部重叠;
其中,所述时间单元为正交频分复用(orthogonal frequency division multiplexing,OFDM)符号,或者sub-OFDM符号,或者slot。
可选地,当所述上行信息元素的参数X大于门限时,所述处理器依据所述空间关系信息传输所述多个上行信息元素,包括:
根据优先级准则处理所述多个上行信息元素,其中,根据优先级准则处理所述多个上行信息元素,包括以下至少之一:
低优先级的上行信息元素的空间关系被覆盖成特定空间关系;
所有上行信息元素的空间关系都被覆盖成特定空间关系;
低优先级的上行信息元素使用特定空间滤波器传输;
所有上行信息元素的空间关系都使用特定空间滤波器传输;
低优先级上行信息元素不被传输;
其中,所述参数X为整数。
可选地,所述上行信息元素的参数X包括如下至少之一:
所述上行信息元素关联的空间关系的数目;
所述上行信息元素关联的不同空间关系的数目;
所述上行信息元素关联同一分组的空间关系的数目;
所述上行信息元素关联同一分组的空间关系的最大数目;
所述上行信息元素关联分组的数目;
所述上行信息元素关联不同分组的数目,此处与上行信息元素关联分组的数目可以是同一含义。
可选地,所述上行信息元素的参数X包括如下至少之一:
所述上行信息元素关联空间滤波器的数目;
所述上行信息元素关联不同空间滤波器的数目;
所述上行信息元素关联同一分组的空间滤波器的数目;
所述上行信息元素关联同一分组的空间滤波器的最大数目。
可选地,根据优先级准则处理所述多个上行信息元素之后,确定所述参数X小于或等于所述门限。
可选地,所述的特定空间关系包括如下至少之一:
高层预配置的空间关系;
高优先级上行信息元素的空间关系;
预设索引中最低索引、最高索引或者N个预定义索引的空间关系;
主载波或主小区索引的空间关系;
所述低优先级上行信息元素关联的预设索引中最低索引、最高索引或者M个预定义索引的空间关系;
所述低优先级上行信息元素关联的主载波或主小区的空间关系;
所述低优先级上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者P个预定义索引所关联的空间关系;
所述低优先级上行信息元素关联的分组关联的,主载波或主小区所关联的空间关系;
与所述低优先级上行信息元素关联同一分组的高优先级上行信息元素的空间关系;
与所述低优先级上行信息元素的空间关系信息中参照参考信号所关联的空间关系;
与所述信息元素的空间关系中参照参考信号所关联的空间关系;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
其中,N、M和P是大于或等于1的正整数。
可选地,所述低优先级上行信息元素的空间关系关联分组索引Y,其中,
在所述低优先级信息元素下,所述分组索引Y所关联的空间关系的数目大于所述门限;或者,
在所述低优先级信息元素下,所述分组索引Y所关联的不同空间关系数目大于所述门限;
其中,所述Y为整数。
可选地,所述特定空间滤波器包括如下至少之一:
高层预配置的空间滤波器;
高优先级上行信息元素使用的空间滤波器;
预设索引中最低索引、最高索引或者Q个预定义索引的的空间滤波器;
主载波索引或主小区索引的空间滤波器;
所述低优先级上行信息元素关联的预设索引中,最低索引、最高索引或者R个预定义索引的空间滤波器;
所述低优先级上行信息元素关联的主载波索引或主小区索引的空间滤波器;
所述低优先级上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者S个预定义索引所关联的空间滤波器;
所述低优先级上行信息元素关联的分组关联的,主载波索引或主小区索引 所关联的空间滤波器;
与所述低优先级上行信息元素关联同一分组的高优先级上行信息元素的空间滤波器;
与所述低优先级上行信息元素的空间关系信息中参照参考信号,所关联的空间滤波器;
与所述信息元素的空间关系中参照参考信号所关联的空间滤波器;
其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
其中,R、Q和S是大于或等于1的正整数。
可选地,所述低优先级上行信息元素的空间滤波器关联分组索引W,其中,
在所述低优先级上行信息元素下,分组索引W所关联的空间滤波器的数目大于所述门限;或者,
在所述低优先级上行信息元素下,分组索引W所关联的不同空间滤波器数目大于所述门限,
其中,所述W为整数。
可选地,所述的门限包括如下之一:1,2,3,4。
可选地,依据所述第一通信节点的能力信息和/或配置信息确定所述门限,其中,所述配置信息由所述第二通信节点配置。
可选地,所述的优先级准则包括如下至少之一:
上行数据信道优先于上行参考信号;
上行数据信道优先于上行控制信道;
多时隙的上行数据信道优先于上行控制信道;
多时隙的上行数据信道优先于上行参考信号;
上行参考信号优先于上行控制信道;
基于调度的上行数据信道优先于基于免调度的上行数据信道;
主小区或者主载波下的信息元素优先于辅小区或辅载波下的信息元素。
可选地,所述的优先级准则包括如下至少之一:
上行控制信道优先于上行参考信号;
上行控制信道优先于上行数据信道;
上行参考信号优先于上行数据信道;
基于免调度的上行数据信道优先于基于调度的上行数据信道。
可选地,所述的优先级准则包括如下至少之一:
非周期上行信息元素优先于周期上行信息元素;
非周期上行信息元素优先于半持续上行信息元素;
半持续上行信息元素优先于周期上行信息元素。
可选地,所述的优先级准则包括如下至少之一:
以参考信号索引来确定所述上行信息元素优先级;
以控制信道资源集合索引来确定所述上行信息元素优先级;
以无线网络临时标示(Radio network temporary identifier,RNTI)的类型或者序号来确定所述上行信息元素优先级;
以部分带宽(Bandwidth part,BWP)索引,载波索引或者小区索引来确定所述上行信息元素优先级。
实施例四
本申请的实施例还提供了一种存储介质。可选地,在本实施例中,上述存储介质可以被设置为存储用于执行以下步骤的程序代码:
S1,第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;
S2,依据所述空间关系信息传输所述多个上行信息元素。
可选地,在本实施例中,上述存储介质可以包括但不限于:U盘、只读存储器(ROM,Read-Only Memory)、随机存取存储器(RAM,Random Access Memory)、移动硬盘、磁碟或者光盘等各种可以存储程序代码的介质。
本申请的实施例还提供了一种电子装置,包括存储器和处理器,该存储器中存储有计算机程序,该处理器被设置为运行计算机程序以执行上述任一项方法实施例中的步骤。
可选地,上述电子装置还可以包括传输装置以及输入输出设备,其中,该传输装置和上述处理器连接,该输入输出设备和上述处理器连接。
可选地,在本实施例中,上述处理器可以被设置为通过计算机程序执行以下步骤:
S1,第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空 间关系信息;
S2,依据所述空间关系信息传输所述多个上行信息元素。
可选地,本实施例中的具体示例可以参考上述实施例及可选实施方式中所描述的示例,本实施例在此不再赘述。
可选地,本实施例中的具体示例可以参考上述实施例及可选实施方式中所描述的示例,本实施例在此不再赘述。
显然,本领域的技术人员应该明白,上述的本申请的各模块或各步骤可以用通用的计算装置来实现,它们可以集中在单个的计算装置上,或者分布在多个计算装置所组成的网络上,可选地,它们可以用计算装置可执行的程序代码来实现,从而,可以将它们存储在存储装置中由计算装置来执行,并且在某些情况下,可以以不同于此处的顺序执行所示出或描述的步骤,或者将它们分别制作成各个集成电路模块,或者将它们中的多个模块或步骤制作成单个集成电路模块来实现。这样,本申请不限制于任何特定的硬件和软件结合。

Claims (29)

  1. 一种信息元素的传输方法,包括:
    第一通信节点接收第二通信节点传输的为多个上行信息元素配置的空间关系信息;
    所述第一通信节点依据所述空间关系信息传输所述多个上行信息元素。
  2. 根据权利要求1所述的方法,其中,所述上行信息元素包括以下至少之一:上行参考信号,上行数据信道,上行控制信道。
  3. 根据权利要求1所述的方法,其中,在所述上行信息元素为上行数据信道的情况下,所述空间关系信息包括如下至少之一:
    所述上行数据信道关联的上行参考信号配置的空间关系信息;
    所述上行数据信道关联的上行控制信道配置的空间关系信息。
  4. 根据权利要求1所述的方法,其中,所述多个上行信息元素的特征包括以下至少之一:
    同时传输所述多个上行信息元素;
    所述多个上行信息元素关联有相同的时间单元;
    所述多个上行信息元素所关联时间单元部分或者全部重叠;
    其中,所述时间单元为正交频分复用OFDM符号,或者子正交频分复用sub-OFDM符号,或者子帧slot。
  5. 根据权利要求1所述的方法,其中,在所述上行信息元素的参数X大于门限的情况下,所述依据所述空间关系信息传输所述多个上行信息元素,包括:
    根据优先级准则处理所述多个上行信息元素,其中,所述根据优先级准则处理所述多个上行信息元素,包括以下至少之一:
    低优先级的上行信息元素的空间关系被覆盖成特定空间关系;
    所有上行信息元素的空间关系都被覆盖成特定空间关系;
    所述低优先级的上行信息元素使用特定空间滤波器传输;
    所有上行信息元素的空间关系都使用特定空间滤波器传输;
    所述低优先级的上行信息元素不被传输;
    其中,所述参数X为整数。
  6. 根据权利要求5所述的方法,其中,所述上行信息元素的参数X包括如下至少之一:
    所述上行信息元素关联的空间关系的数目;
    所述上行信息元素关联的不同空间关系的数目;
    所述上行信息元素关联同一分组的空间关系的数目;
    所述上行信息元素关联同一分组的空间关系的最大数目;
    所述上行信息元素关联分组的数目;
    所述上行信息元素关联不同分组的数目。
  7. 根据权利要求5所述的方法,其中,所述上行信息元素的参数X包括如下至少之一:
    所述上行信息元素关联空间滤波器的数目;
    所述上行信息元素关联不同空间滤波器的数目;
    所述上行信息元素关联同一分组的空间滤波器的数目;
    所述上行信息元素关联同一分组的空间滤波器的最大数目。
  8. 根据权利要求5所述的方法,在所述根据优先级准则处理所述多个上行信息元素之后,还包括:确定所述参数X小于或等于所述门限。
  9. 根据权利要求5所述的方法,其中,所述的特定空间关系包括如下至少之一:
    高层预配置的空间关系;
    高优先级的上行信息元素的空间关系;
    预设索引中最低索引、最高索引或者N个预定义索引的空间关系;
    主载波或主小区索引的空间关系;
    所述低优先级的上行信息元素关联的预设索引中最低索引、最高索引或者M个预定义索引的空间关系;
    所述低优先级的上行信息元素关联的主载波或主小区的空间关系;
    所述低优先级的上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者P个预定义索引所关联的空间关系;
    所述低优先级的上行信息元素关联的分组关联的,主载波或主小区所关联的空间关系;
    与所述低优先级的上行信息元素关联同一分组的所述高优先级的上行信息元素的空间关系;
    与所述低优先级的上行信息元素的空间关系信息中参照参考信号所关联的空间关系;
    与所述信息元素的空间关系中参照参考信号所关联的空间关系;
    其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
    其中,所述N、所述M以及所述P是大于或等于1的正整数。
  10. 根据权利要求5所述的方法,其中,所述低优先级的上行信息元素的空间关系关联分组索引Y,其中,
    在所述低优先级的上行信息元素下,所述分组索引Y所关联的空间关系的数目大于所述门限;或者,
    在所述低优先级的上行信息元素下,所述分组索引Y所关联的不同空间关系数目大于所述门限;
    其中,所述Y为整数。
  11. 根据权利要求5所述的方法,其中,所述特定空间滤波器包括如下至少之一:
    高层预配置的空间滤波器;
    高优先级的上行信息元素使用的空间滤波器;
    预设索引中最低索引、最高索引或者Q个预定义索引的的空间滤波器;
    主载波索引或主小区索引的空间滤波器;
    所述低优先级的上行信息元素关联的预设索引中,最低索引、最高索引或者R个预定义索引的空间滤波器;
    所述低优先级的上行信息元素关联的主载波索引或主小区索引的空间滤波器;
    所述低优先级的上行信息元素关联的分组关联的预设索引中,最低索引、最高索引或者S个预定义索引所关联的空间滤波器;
    所述低优先级上行信息元素关联的分组关联的,主载波索引或主小区索引所关联的空间滤波器;
    与所述低优先级的上行信息元素关联同一分组的高优先级的上行信息元素的空间滤波器;
    与所述低优先级的上行信息元素的空间关系信息中参照参考信号,所关联 的空间滤波器;
    与所述信息元素的空间关系中参照参考信号所关联的空间滤波器;
    其中,所述预设索引包括如下至少之一:小区索引,载波索引,带宽部分BWP索引,控制信道资源集合索引,控制信道资源索引;
    其中,所述R、所述Q以及所述S是大于或等于1的正整数。
  12. 根据权利要求5所述的方法,其中,所述低优先级的上行信息元素的空间滤波器关联分组索引W,其中,
    在所述低优先级的上行信息元素下,所述分组索引W所关联的空间滤波器的数目大于所述门限;或者,
    在所述低优先级的上行信息元素下,所述分组索引W所关联的不同空间滤波器数目大于所述门限,
    其中,所述W为整数。
  13. 根据权利要求5所述的方法,其中,所述门限包括如下之一:1,2,3以及4。
  14. 根据权利要求5所述的方法,还包括:依据所述第一通信节点的能力信息和配置信息中的至少之一确定所述门限,其中,所述配置信息由所述第二通信节点配置。
  15. 根据权利要求5所述的方法,其中,所述优先级准则包括如下至少之一:
    上行数据信道优先于上行参考信号;
    所述上行数据信道优先于上行控制信道;
    多时隙的上行数据信道优先于所述上行控制信道;
    所述多时隙的上行数据信道优先于所述上行参考信号;
    所述上行参考信号优先于所述上行控制信道;
    基于调度的上行数据信道优先于基于免调度的上行数据信道;
    主小区或者主载波下的信息元素优先于辅小区或辅载波下的信息元素。
  16. 根据权利要求5所述的方法,其中,所述优先级准则包括如下至少之一:
    上行控制信道优先于上行参考信号;
    所述上行控制信道优先于上行数据信道;
    所述上行参考信号优先于所述上行数据信道;
    基于免调度的上行数据信道优先于基于调度的上行数据信道。
  17. 根据权利要求5所述的方法,其中,所述优先级准则包括如下至少之一:
    非周期上行信息元素优先于周期上行信息元素;
    所述非周期上行信息元素优先于半持续上行信息元素;
    所述半持续上行信息元素优先于所述周期上行信息元素。
  18. 根据权利要求5所述的方法,其中,所述优先级准则包括如下至少之一:
    以参考信号索引来确定所述上行信息元素优先级;
    以控制信道资源集合索引来确定所述上行信息元素优先级;
    以无线网络临时指示的类型或者序号来确定所述上行信息元素优先级;
    以部分带宽索引,载波索引或者小区索引来确定所述上行信息元素优先级。
  19. 一种信息传输方法,包括:
    第二通信节点确定为第一通信节点的多个上行信息元素配置的空间关系信息;
    所述第二通信节点传输所述空间关系信息至所述第一通信节点。
  20. 根据权利要求19所述的方法,其中,所述上行信息元素包括以下至少之一:上行参考信号,上行数据信道,上行控制信道。
  21. 根据权利要求19所述的方法,其中,在所述上行信息元素为上行数据信道的情况下,所述空间关系信息包括如下至少之一:
    所述上行数据信道关联的上行参考信号配置的空间关系信息;
    所述上行数据信道关联的上行控制信道配置的空间关系信息。
  22. 根据权利要求19所述的方法,其中,所述多个上行信息元素的特征包括以下至少之一:
    同时传输所述多个上行信息元素;
    所述多个上行信息元素关联有相同的时间单元;
    所述多个上行信息元素所关联时间单元部分或者全部重叠;
    其中,所述时间单元为正交频分复用OFDM符号,或者子正交频分复用 sub-OFDM符号,或者子帧slot。
  23. 一种信息元素的传输装置,包括:
    接收模块,设置为接收通信节点传输的为多个上行信息元素配置的空间关系信息;
    传输模块,设置为依据所述空间关系信息传输所述多个上行信息元素。
  24. 根据权利要求23所述的装置,其中,在所述上行信息元素的参数X大于门限的情况下,所述传输模块是设置为根据优先级准则处理所述多个上行信息元素,其中,根据优先级准则处理所述多个上行信息元素,包括以下至少之一:
    低优先级的上行信息元素的空间关系被覆盖成特定空间关系;
    所有上行信息元素的空间关系都被覆盖成特定空间关系;
    所述低优先级的上行信息元素使用特定空间滤波器传输;
    所有上行信息元素的空间关系都使用特定空间滤波器传输;
    所述低优先级的上行信息元素不被传输;
    其中,所述参数X为整数。
  25. 一种信息传输装置,包括:
    确定模块,设置为确定为第一通信节点的多个上行信息元素配置的空间关系信息;
    传输模块,设置为传输所述空间关系信息至所述第一通信节点。
  26. 一种终端,包括:
    通信装置,设置为接收为多个上行信息元素配置的空间关系信息;
    处理器,设置为依据所述空间关系信息传输所述多个上行信息元素。
  27. 根据权利要求26所述的终端,其中,在所述上行信息元素的参数X大于门限的情况下,所述处理器是设置为根据优先级准则处理所述多个上行信息元素,其中,根据优先级准则处理所述多个上行信息元素,包括以下至少之一:
    低优先级的上行信息元素的空间关系被覆盖成特定空间关系;
    所有上行信息元素的空间关系都被覆盖成特定空间关系;
    所述低优先级的上行信息元素使用特定空间滤波器传输;
    所有上行信息元素的空间关系都使用特定空间滤波器传输;
    所述低优先级的上行信息元素不被传输;
    其中,所述参数X为整数。
  28. 一种存储介质,所述存储介质中存储有计算机程序,其中,所述计算机程序被设置为运行时执行所述权利要求1至22任一项中所述的方法。
  29. 一种电子装置,包括存储器和处理器,所述存储器中存储有计算机程序,所述处理器被设置为运行所述计算机程序以执行所述权利要求1至22任一项中所述的方法。
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