WO2020143526A1 - 上行信道的配置方法、传输方法、网络侧设备及终端 - Google Patents
上行信道的配置方法、传输方法、网络侧设备及终端 Download PDFInfo
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Definitions
- Embodiments of the present disclosure relate to the field of communication technologies, and in particular, to an uplink channel configuration method, transmission method, network-side device, and terminal.
- PUCCH Physical Uplink shared channel
- Physical Uplink Control Channel Physical Uplink Control Channel
- UCI Uplink Control Information
- HARQ Hybrid Automatic Retransmission Request
- PUSCH mainly carries uplink service data.
- the communication system of the related art only supports the configuration of the network-side device or indicates the transmission parameter of an upstream channel.
- the terminal needs to transmit multiple uplink channels, for example, the terminal transmits uplink channels to multiple transmission and reception points (Transmission and Receiving Points, TRP), the network side device needs to perform multiple configurations or instructions, resulting in a large signaling overhead.
- TRP Transmission and Receiving Points
- Embodiments of the present disclosure provide an uplink channel configuration method, a transmission method, a network-side device, and a terminal, to solve that the communication system of the related art only supports the configuration of the network-side device or indicates a transmission parameter of an uplink channel, resulting in a higher signaling overhead The big problem.
- an embodiment of the present disclosure provides an uplink channel configuration method, which is applied to a network-side device.
- the method includes:
- the indication information is used to indicate the transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel; N is greater than 1 Integer.
- an embodiment of the present disclosure provides an uplink channel transmission method, which is applied to a terminal.
- the method includes:
- the uplink channel is transmitted according to transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel, and N is an integer greater than 1.
- an embodiment of the present disclosure further provides a terminal, the terminal includes:
- a sending module configured to send indication information to the terminal, where the indication information is used to indicate transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel; N is an integer greater than 1.
- an embodiment of the present disclosure further provides a terminal.
- the terminal includes:
- the transmission module is configured to perform uplink channel transmission according to transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel, and N is an integer greater than 1 .
- an embodiment of the present disclosure also provides a network-side device.
- the network-side device includes a processor, a memory, and a computer program stored on the memory and executable on the processor.
- the computer program is When the processor executes, it implements the steps of the uplink channel configuration method described above.
- an embodiment of the present disclosure further provides a terminal, the terminal includes a processor, a memory, and a computer program stored on the memory and executable on the processor, and the computer program is used by the processor When executed, the steps of the above-mentioned uplink channel configuration method are implemented.
- an embodiment of the present disclosure also provides a computer-readable storage medium that stores a computer program on the computer-readable storage medium, and when the computer program is executed by a processor, implements the above-described uplink channel configuration method Step, or, as described above, the uplink channel transmission method.
- the network side device may use one indication information to simultaneously indicate the transmission parameters corresponding to the N uplink channels, and/or the transmission parameters corresponding to at least two target transmissions of the target uplink channel, thereby reducing signaling Overhead.
- FIG. 1 is a structural diagram of a network system applicable to an embodiment of the present disclosure
- FIG. 2 is a flowchart of an uplink channel configuration method provided by an embodiment of the present disclosure
- FIG. 3a is one of the schematic diagrams of the precoding information and layer number signaling fields provided by the embodiment of the present disclosure
- FIG. 3b is the second schematic diagram of the precoding information and the layer signaling domain provided by the embodiment of the present disclosure.
- FIG. 3c is the third schematic diagram of the precoding information and the layer number signaling domain provided by the embodiment of the present disclosure.
- FIG 5 is one of the structural diagrams of the network side device provided by the embodiment of the present disclosure.
- FIG. 7 is a second structural diagram of a network-side device provided by an embodiment of the present disclosure.
- FIG. 8 is a second structural diagram of a terminal provided by an embodiment of the present disclosure.
- FIG. 1 is a structural diagram of a network system applicable to an embodiment of the present disclosure. As shown in FIG. 1, it includes a terminal 11 and a network side device 12, wherein between the terminal 11 and the network side device 12 may be Communicate.
- the terminal 11 may also be referred to as a user terminal (User Equipment, UE).
- the terminal 11 may be a mobile phone, a tablet computer (Tablet Personal Computer), a laptop computer (Laptop Computer), an individual Terminal-side devices such as Personal Assistant (PDA), Mobile Internet Device (MID), Wearable Device (Wearable Device), or in-vehicle devices, it should be noted that in the embodiments of the present disclosure, it is not The specific type of the terminal 11 is defined.
- the network-side device 12 may be a base station or TRP.
- TRP may be defined by at least one of the following: a control resource set (Control Resource Set, CORESET) or a control resource set group; an explicitly defined TRP (Explicitly defined TRP); a transmission configuration indication state (Transmission Configuration) Indication State, TCI State, transmission configuration indication state list or transmission configuration indication state pool (TCI State/List/Pool); QCL information or QCL group information; spatial relationship information or spatial relationship group information; physical downlink control channel (Physical Downlink Control Channel, PDCCH) scrambling identification or PDCCH scrambling identification group (PDCCH Scrambling ID or ID group); Physical Downlink Shared Channel (Physical Downlink Shared Channel, PDSCH) scrambling identification or PDSCH scrambling identification group (PDSCH Scrambling ID or ID group ); PDCCH configuration signaling element (PDCCH-Config signaling element); PDSCH configuration signaling element (PDSCH-Config signaling element (PDSCH-Con
- MIMO Multiple Input Multiple Output
- OFDM Orthogonal Frequency Division Multiplexing
- the dimension of MIMO technology is continuously expanding.
- LTE Rel-8 up to 4 layers of MIMO transmission can be supported.
- Rel-9 multi-user MIMO (Multi-User MIMO, MU-MIMO) technology is enhanced, and transmission mode (Transmission Mode, TM)-8 MU-MIMO transmission can support up to 4 downlink data layers.
- TM Transmission Mode
- Rel-10 the transmission capacity of single-user MIMO (Single-User MIMO, SU-MIMO) is extended to a maximum of 8 data layers.
- the industry is further advancing MIMO technology in the direction of 3D and large-scale.
- the 3rd Generation Partnership Project (3GPP) is carrying out research and standardization of New Radio (NR) MIMO. It can be expected in the next generation of the fifth (5 th generation, 5G) mobile communication system, larger, more antenna ports the MIMO technology to be introduced.
- 5G fifth generation
- Massive MIMO technology uses a large-scale antenna array, which can greatly improve the system band utilization efficiency and support a larger number of access users. Therefore, major research organizations regard Massive MIMO technology as one of the most potential physical layer technologies in the next generation mobile communication system.
- the digital-analog hybrid beamforming technology came into being. That is, on the basis of the related-art digital domain beamforming, a first-level beam is added to the RF signal near the front end of the antenna system Shape-Simulated beam shaping (or simulated shaping).
- the analog shaping can achieve a relatively rough match between the transmitted signal and the channel in a relatively simple manner.
- the dimension of the equivalent channel formed after analog shaping is smaller than the actual number of antennas, so the required AD/DA conversion devices, the number of digital channels and the corresponding baseband processing complexity can be greatly reduced.
- the residual interference of the analog forming part can be processed again in the digital domain, thereby ensuring the quality of MU-MIMO transmission.
- digital-analog hybrid beamforming is a compromise between performance and complexity, and has high practical prospects in systems with high frequency bands, large bandwidths, or a large number of antennas.
- the system will support the work of bands up to 6GHz (gigahertz) above, up to approximately 100GHz.
- the high frequency band has relatively abundant idle frequency resources, which can provide greater throughput for data transmission.
- 3GPP is carrying out research and standardization of NR mid-to-high frequency bands.
- the high-frequency signal has a short wavelength.
- more antenna array elements can be placed on the same size antenna panel, and beamforming technology is used to form directivity A stronger beam with narrower lobes. Therefore, the combination of large-scale antennas and high-frequency communications is also one of the future trends.
- Analog beamforming is transmitted at full bandwidth, and each polarization direction array element on the panel of each high-frequency antenna array can only transmit analog beams in a time-division multiplexing manner.
- the forming weight of the analog beam is achieved by adjusting the parameters of the RF front-end phase shifter and other devices.
- the simulation beam shaping vector is usually trained in a polling manner, that is, the array elements in each polarization direction of each antenna panel are sequentially transmitted in a time-division multiplexing manner at a prescribed time (ie, candidate shaping) Vector), the terminal feeds back the beam report after the measurement, for the network side to use the training signal to realize the simulated beam transmission when transmitting the service next time.
- the content of the beam report usually includes the reference signal resource identifier used by the relatively optimal number of transmit beams and the measured received power of each transmit beam.
- the reference signal resource identifier may include: channel state information reference signal resource indicator (CSI-RS Resource Indicator, CRI) or synchronization signal block resource indicator (SSB Resource Indicator, SSBRI); the received power may include: layer 1-reference Signal received power (Layer 1-Reference Signal Received Power, L1-RSRP).
- CRI channel state information reference signal resource indicator
- SSB Resource Indicator SSBRI
- L1-RSRP Layer 1-reference Signal received power
- the starting points for PUCCH design include:
- the PUCCH transmission content may include at least one of the following: Acknowledgement (ACK) or Negative Acknowledgement (NACK); Scheduling Request (SR); Channel State Information (Channel State Information, CSI).
- ACK Acknowledgement
- NACK Negative Acknowledgement
- SR Scheduling Request
- CSI Channel State Information
- the shortest can be 1 symbol.
- the length of PUCCH is from 1 to 14 symbols, and supports multiple PUCCH repeated transmission, such as Long PUCCH coverage is large.
- a new computer-generated sequence (Computer Generated Sequence, CGS) for pilot and UCI, using a single carrier discrete Fourier transform spread spectrum orthogonal frequency division multiplexing based on Discrete Fourier Transform (DFT) (DFT-Spread-OFDM, DFT-S-OFDM) is used to ensure coverage, and for non-coverage restricted PUCCH, a multi-carrier transmission design based on cyclic prefix OFDM (Cyclic Prefix OFDM, CP-OFDM) is adopted.
- DFT Discrete Fourier Transform
- CP-OFDM Cyclic Prefix OFDM
- the network side device configures PUCCH related information for the UE through Radio Resource Control (RRC) signaling.
- the information element (Information, element, IE) for the UE Specific Specific PUCCH parameter configuration for the Per Bandwidth Part (Bandwidth Part, BWP) is PUCCH-Config, which includes: PUCCH resource information, PUCCH Format, PDSCH and its ACK/NACK Timing information, PUCCH Spatial Relation information, etc.
- the IE used for Cell Specific PUCCH parameter configuration is PUCCH-ConfigCommon, which includes: PUCCH resource information, group frequency hopping information, etc.
- PUCCH path loss and power control related information will also be configured.
- PUCCH Spatial Relation Information represents the spatial relationship between Reference RS and PUCCH, that is, the uplink spatial parameter information used to transmit PUCCH.
- Reference RS can be: SSB, CSI reference signal (CSI-Reference Signal, CSI-RS) or sounding Reference signal (SoundingReferenceSignal, SRS), if the network-side device configures multiple Spatial Relations through RRC signaling, the network-side device also needs to access the Control-Control Element (MAC) via the Medium Command to select one of them.
- CSI-Reference Signal CSI-Reference Signal
- SRS SoundingReferenceSignal
- PUSCH is a channel for transmitting uplink data and signaling.
- the network side device configures PUSCH related information through RRC signaling.
- the IE for the PUSCH parameter configuration of the specific BWP UE is PUSCH-Config, which includes: data scrambling information, precoding information, demodulation reference signal (Demodulation Reference (Signal, DMRS) information, power control information, frequency hopping information , Resource allocation information, modulation and coding scheme (Modulation and Coding Scheme, MCS) information, resource block group (Resource, Block, Group, RBG) information, etc.
- the IE used for the parameter configuration of Cell Specific PUSCH is PUSCH-ConfigCommon, which includes: group frequency hopping information, resource allocation information, etc.
- the power control information of PUSCH will also be configured.
- the Spatial Relation Information of the PUSCH is that when DCI carried by the PDCCH schedules the PUSCH, each SRI Codepoint in the sounding reference signal resource indicator field (SRS resource indicator field, SRI) in the DCI indicates a SRI, which is used to Indicate the Spatial Relation of PUSCH.
- SRS resource indicator field SRI
- the signaling field "Precoding information and layers of" in DCI is used to indicate the information of the codebook (codebook) used by PUSCH, for example Including transmission precoding matrix indicator (Transmitted Precoding Matrix Indicator (TPMI) information, Layer number information (or called Rank indicator (RI) information), etc.
- the network side device is Codebook information determined by measuring the SRS sent by the UE . The UE can learn the information of the codebook that sends the PUSCH according to the signaling domain.
- Non-codebook Based PUSCH For Non-codebook Based PUSCH (non-codebook PUSCH), the signaling field in the DCI "SRS resource” indicator (SRI signaling field) is used to indicate the precoding information of the PUSCH, that is, the PUSCH precoding weight and the letter Make the SRS resource indicated by the domain the same.
- SRI signaling field the signaling field in the DCI "SRS resource” indicator
- the beam information, Spatial Relation information, Spatial Domain Transmission information, Spatial Filter information, and Quasi-Co-location (QCL) information have the same meaning, and all refer to beam information.
- the communication system of the related art only supports network side device configuration or indicates transmission parameters of one uplink channel (such as one PUSCH and one PUCCH), such as precoding information.
- the present disclosure may support network side device configuration or indication of multiple upstream channels (such as each channel is sent to a different TRP), and/or different parts of the target upstream channel (such as each transmission during repeated transmission, frequency hopping during frequency hopping) Transmission parameters before and after frequency transmission, or different parts of the channel transmitted at different times), such as: precoding information, spatial relationship information (beam), etc.
- the following describes the uplink channel configuration method according to an embodiment of the present disclosure.
- FIG. 2 is a flowchart of an uplink channel configuration method provided by an embodiment of the present disclosure.
- the uplink channel configuration method shown in FIG. 2 is applied to the network-side device.
- the method for configuring the uplink channel of the embodiment of the present disclosure may include the following steps:
- Step 201 Send instruction information to the terminal, where the instruction information is used to indicate transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel; N is Integer greater than 1.
- the indication information may be used to simultaneously indicate the transmission parameters corresponding to the N uplink channels.
- the N uplink channels correspond to M transceiver points TRP, where M is an integer greater than 1.
- M may be less than or equal to N, that is, one TRP may correspond to one or more upstream channels.
- the indication information may be used to simultaneously indicate transmission parameters corresponding to at least two target transmissions of the target uplink channel.
- the number of target uplink channels may be equal to or greater than 1.
- the indication information is used to indicate at least two target transmissions of the target uplink channel.
- the target transmission can be understood as: the indication information is used to indicate at least two of each uplink channel in the target uplink channel
- the transmission parameters corresponding to the target transmission may be equal or unequal.
- the target transmission may be represented as: repeated transmission, frequency hopping transmission, or fractional transmission. It should be understood that the content of each transmission in the fractional transmission may be a different part of the target content.
- the target uplink channel may be understood as at least one uplink channel among the N uplink channels.
- the indication information may be transmitted through at least one of RRC layer information, MAC layer information, and physical layer control information; wherein, the RRC layer information includes RRC signaling; and the MAC layer information includes MAC CE ;
- the physical layer control information includes DCI.
- the information type carrying the indication information may be specifically determined according to the type of the transmission parameter of the uplink channel indicated by the indication information.
- the transmission information may include, but is not limited to, at least one of the following: uplink channel transmission scheme, precoding information, spatial relationship information, and transmission frequency information.
- the network side device may use one indication information to simultaneously indicate transmission parameters corresponding to N uplink channels, and/or at least two target transmission transmission parameters corresponding to the target uplink channel, so that Reduce signaling overhead.
- the uplink channel may be PUSCH and/or PUCCH.
- the following describes the scenario where the uplink channel is PUSCH and the uplink channel is PUCCH.
- Scenario 1 The uplink channel is PUSCH.
- the indication information is transmitted through downlink control information DCI.
- the DCI includes a first signaling domain, and the first signaling domain is used to indicate an uplink transmission scheme of the PUSCH;
- the uplink transmission scheme includes at least one of the following: uplink diversity transmission PUSCH, codebook-based PUSCH and non-codebook PUSCH.
- the first signaling domain may be a newly added signaling domain in DCI or an existing signaling domain in DCI.
- the first signaling field is a precoding information and layer number signaling field
- the precoding information and layer number signaling field uses a first code point to indicate a PUSCH uplink transmission scheme.
- the precoding information and layer number signaling fields are the "Precoding Information and Numbers of Layers" in the foregoing content.
- DCI format 0_0 is used to indicate uplink diversity transmission
- DCI format0_1 is used to indicate codebook or non-codebook based PUSCH.
- precoding information and the first code point in the signaling layer of the layer can be used to indicate: uplink Diversity transmission of PUSCH, PUSCH based on codebook or PUSCH without codebook. In this way, the terminal does not need to use multiple formats during blind detection, which can reduce overhead.
- the specific representation of the PUSCH uplink transmission scheme indicated by the first code point is determined based on the type of the first code point and/or the value of the first code point.
- the first code point is a reserved code point, a new code point, a code point in which the transmission precoding matrix indicates that TPMI is a special value, or a code point in which the number of layers is a special value
- the first The uplink transmission scheme of PUSCH indicated by a code point is: PUSCH or PUSCH in a non-codebook is sent in uplink diversity.
- the special value of TPMI is a value different from the conventional value of TPMI; the special value of the number of layers is a value different from the conventional value of the number of layers.
- the special value may be determined in advance, and the special value indicating that the PUSCH is sent by the uplink diversity and the PUSCH indicating the non-codebook are different, so as to improve the accuracy of the uplink transmission scheme for the terminal to recognize the PUSCH.
- FIG. 3a is a representation form of the precoding information and layer signaling field of the related art
- FIG. 3b is a representation form of the precoding information and layer signaling field of the embodiment of the present disclosure.
- the precoding information and layer signaling field shown in Figure 3a is composed of 4 bits, including 16 code points.
- code point 0 to code point 11 in FIG. 3a are unreserved code points, including the indicated layer value and TPMI value, and the layer value and TPMI value indicated in the unreserved code point in FIG. 3a are conventional values;
- Point 12 to code point 15 are reserved code points.
- the precoding information and layer number signaling fields shown in FIG. 3b are obtained by modifying and expanding the code points in the precoding information and layer number signaling fields described in FIG. 3a. Specifically, the signaling domain of the precoding information and the number of layers shown in FIG. 3b: the TPMI value of code point 4 in FIG. 3a is changed from 0 to a special value of 100; the layer value of code point 9 in 3a is changed from 2 Changed to a special value of 10; the code point 12 in 3a is used to indicate the PUSCH uplink transmission scheme; on the basis of 3a, code points 16 to 31 are added.
- the TPMI value of the code point 4 in FIG. 3b is a special value
- the code point in FIG. 3b 4 can be used to indicate that PUSCH or non-codebook PUSCH is sent in uplink diversity.
- the layer value of the code point 9 in FIG. 3b is a special value
- the precoding information and the layer number signaling field can use the code point 9 in FIG. 3b to indicate the PUSCH uplink transmission scheme
- the code point in FIG. 3b 9 can be used to indicate that PUSCH or non-codebook PUSCH is sent in uplink diversity.
- the code point 12 in FIG. 3b is a reserved code point before indicating the PUSCH uplink transmission scheme
- the code point 12 may be used to indicate that the PUSCH or the non-codebook PUSCH is sent in uplink diversity.
- the precoding information and the layer number signaling field can use any one of the code points 16 to 31 to indicate: uplink diversity to send PUSCH or non-codebook PUSCH.
- the reserved code points may be reserved code points inherent in the precoding information and the layer signaling domain, as shown in FIG. 3b ⁇ 12 ⁇ The code point 12.
- the reserved code point may be understood as: a reserved code point converted from a non-reserved code point in the precoding information and layer signaling domain.
- FIG. 3a is another representation form of the precoding information and the layer signaling field in the embodiment of the present disclosure.
- the precoding information and layer number signaling fields shown in FIG. 3b are obtained by modifying the code points in the precoding information and layer number signaling fields described in FIG. 3a. Specifically, the signaling domain of the precoding information and the number of layers shown in FIG. 3b: the code points of the layers other than the indication 1 layer, code point 4 to code point 11, are converted into reserved code points. In this way, the terminal can use the converted reserved code point indication to send PUSCH or non-codebook PUSCH in uplink diversity.
- the number of PUSCH layers may be fixed at one. Since the number of PUSCH layers is fixed at 1, compared to the precoding information and layer signaling fields in the scenario where the number of PUSCH layers is greater than 1, the precoding information and layer signaling fields of the embodiments of the present disclosure need to be indicated The number of layers is reduced. In this way, the embodiments of the present disclosure can convert the code points in the precoding information and layer signaling field in the scenario where the number of PUSCH layers is greater than 1 to indicate the contents of layers other than layer 1 into reserved code points , Used to indicate other types of transmission parameters, such as: used to indicate the uplink transmission scheme of the uplink channel, precoding information, or beam information. That is to say, in the embodiment of the present disclosure, by fixing the PUSCH layer number to 1, the precoding information and the layer number signaling field can use the same bit number to indicate more transmission parameter types.
- the number of bits in the precoding information and layer signaling field can be reduced, so that the number of bits saved in the precoding information and layer signaling field can be used to form a new
- the signaling field is used to indicate other types of transmission parameters.
- the network-side device can reduce the number of bits in the precoding information and layer signaling field to 2, and use the saved 4 bits to form a new indication field.
- the number of PUSCH layers may also be fixed to 1, to reduce inter-layer interference and improve transmission performance.
- the DCI includes a second signaling domain, and the second signaling domain is used to indicate PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain
- the DCI uses 1 precoding information and the layer number signaling field to indicate N codebook-based PUSCH precoding information; or,
- the DCI uses N pieces of precoding information and a layer number signaling field to indicate N pieces of codebook-based PUSCH precoding information.
- DCI uses N precoding information and layer signaling fields to indicate N codebook-based PUSCH precoding information
- DCI uses 1 precoding information and layer signaling fields Indicating 1 PUSCH precoding information based on codebook.
- the DCI may also determine the number of precoding information and layer signaling fields included in the DCI according to the number of TRPs corresponding to the N codebook-based PUSCHs.
- the DCI may use M precoding information and layer signaling fields to indicate N codebook-based PUSCH precoding information, where each The precoding information and the layer number signaling field may be used to indicate the precoding information of the PUSCH based on the codebook corresponding to one TRP.
- the precoding information may be understood as codebook information.
- the second signaling domain is the precoding information and the layer signaling domain; the precoding information and the layer signaling domain are reserved
- the code point indicates the uplink diversity to transmit the precoding information of PUSCH.
- the reserved code point can be understood as: a reserved code point converted from the precoding information and the non-reserved code point in the signaling layer of the layer. Repeat again.
- the second signaling domain may be a newly added signaling domain.
- precoding information for sending PUSCH in uplink diversity can be predefined.
- the terminal may use the Cycling Precoding (Cyclic Precoding) method to determine the precoding information for the PUSCH sent by the uplink diversity when transmitting the PUSCH sent by the uplink diversity.
- the terminal may use Precoding information 1 is transmitted; when the terminal performs the second uplink diversity transmission PUSCH transmission, the precoding information 2 can be used for transmission; when the terminal performs the third uplink diversity transmission PUSCH transmission, the precoding information 1 can be used For transmission; the terminal may use precoding information 2 for transmission when performing the fourth uplink diversity transmission PUSCH transmission, and so on.
- the DCI further includes a third signaling field, and the third signaling field is used to indicate the target The number of transmissions of the PUSCH target transmission.
- the third signaling field may explicitly or implicitly indicate the number of transmissions of the target transmission.
- the third signaling domain may include the specific transmission number P of the target transmission.
- the third signaling domain does not include the specific number of transmissions P of the target transmission, but may include other information that can be used to indicate the number of transmissions of the target transmission.
- the third signaling domain may indicate the number of transmissions of frequency hopping transmission by carrying a physical resource block (Physical Resource Block, PRB) corresponding to each frequency hopping transmission.
- PRB Physical Resource Block
- the terminal detects that three PRBs before and after frequency hopping are indicated in the third signaling domain, it may determine that the number of transmissions of frequency hopping transmission is 3.
- the second signaling domain may be a newly added signaling domain.
- the second signaling domain may also be a signaling domain of the related art.
- the second signaling domain It may be a precoding information and layer number signaling domain; or, in the case where the precoding information corresponds to at least two target transmissions of a target PUSCH that is not a codebook, the second signaling domain is a sounding reference signal resource indication SRI Signaling domain.
- the precoding information and the layer number signaling field, and the SRI signaling field can indicate the precoding information of the PUSCH by using bits or code points saved by fixing the layer number to 1.
- the second signaling field may indicate precoding information for each target transmission in at least two target transmissions of the target transmission channel.
- the second signaling field may also only indicate precoding information for each target transmission in S target transmissions included in at least two transmissions of the target transmission channel.
- the second signaling field only indicates at least two transmissions of the target transmission channel to include precoding information for each target transmission in S target transmissions
- the terminal may recycle pre-encoded information for each target transmission in S times of target transmission based on a preset mode to perform at least two target transmissions on the target transmission channel, where the preset mode may be passed by the network side device High-level signaling pre-configuration, or pre-defined in the protocol, and then indicating the pre-configured preset mode through the second signaling field.
- the second signaling field indicates that the precoding information of the first transmission of the target transmission channel is precoding information 1, and the precoding information of the second transmission of the target transmission channel
- the encoded information is pre-encoded information 2
- the terminal can use the pre-encoded information 1, pre-encoded information 2, pre-encoded information 1, and pre-encoded information 2 successively when performing the target transmission of the target transmission channel 4 times; or, pre-encoded information Information 1, precoding information 2, precoding information 2, precoding information 1, etc.
- the terminal may use precoding information of each target transmission in the S target transmissions of the target transmission channel indicated by the second signaling domain to obtain at least two target transmissions in the target transmission channel.
- the precoding information of the target and then use the precoding information of each target transmission in the at least two target transmissions obtained by the transformation to perform at least two target transmissions.
- the uplink channel is PUCCH.
- the indication information is transmitted through at least one of radio resource control RRC layer information, media access control MAC layer information, and physical layer control information;
- the RRC layer information includes RRC signaling; the MAC layer information includes MAC control element CE; and the physical layer control information includes DCI.
- the indication information includes first sub-instruction information, and the first sub-instruction information is used to indicate Q spatial relationship information, where Q is greater than or equal to Integer of N.
- the first sub-indicating information may be used to indicate Q spatial relationship information of the PUCCH on the low frequency range (Frequency) (FR).
- the first sub-indicating information may be transmitted through RRC signaling.
- the indication information may further include second sub-instruction information, and the second sub-instruction information is used to indicate spatial relationship information of each PUCCH of the N PUCCHs .
- the Q spatial relationship information may be used as the spatial relationship information of each PUCCH according to a preset order. In this case, the second sub-instruction information is not required, and signaling overhead can be reduced.
- the indication information further includes second sub-indication information, and the second sub-indication information is used to indicate spatial relationship information of each PUCCH among the N PUCCHs.
- the second sub-indicating information may be MAC CE.
- the second sub-indicating information is used to select spatial relationship information for each of the N PUCCHs.
- the first sub-indicating information includes G group spatial relationship information, and the spatial relationship information of the G group spatial relationship information constitutes the Q spatial relationship information;
- G is equal to 1; or, G is equal to N; or, the value of G is equal to the number of N PUCCH packets.
- the indication information may include second sub-instruction information for selecting spatial relationship information for each of the N PUCCHs.
- the Q pieces of spatial relationship information are used as the spatial relationship information of each PUCCH in a preset order, and at this time, the second sub-instruction information is not required.
- the network-side device configures one set of spatial relationship information for each of the N PUCCHs. If the amount of spatial relationship information included in the spatial relationship information group corresponding to a PUCCH is greater than 1, the network-side device may also send second sub-instruction information to select one spatial relationship information from the corresponding spatial relationship information group for the PUCCH .
- the network side device may send the second sub-instruction information for each PUCCH in the group of PUCCH, and select a space from the spatial relationship information group corresponding to the group of PUCCH Relationship information.
- the present disclosure does not limit the grouping rule of N PUCCHs.
- the grouping rule of N PUCCHs may be: dividing PUCCHs corresponding to the same TRP into a group, but not limited to this.
- the uplink channel is PUCCH or PUSCH.
- the indication information includes third sub-instruction information, and the third sub-instruction information is used to indicate Spatial relationship information of at least two target transmissions of the target uplink channel;
- the quantity of the spatial relationship information is equal to or not equal to the transmission times of the target transmission of the target uplink channel.
- the number of spatial relationship information is equal to the number of target uplink channels, that is, each uplink channel in the target uplink channel corresponds to one piece of spatial relationship information.
- the third sub-instruction information in this scenario can be transmitted through DCI.
- the indication information may be used to indicate spatial relationship information of at least two target transmissions of the target uplink channel on the high-frequency FR2.
- the third sub-display information can be used for the spatial relationship information of each target transmission in at least two target transmissions of the target uplink channel.
- the terminal may recycle the spatial relationship information.
- J target transmissions in the at least two target transmissions on the target uplink channel may multiplex the first spatial relationship information in the spatial relationship information For transmission.
- the terminal may repeatedly use the first spatial relationship information J times. It should be understood that J is greater than 1 and less than or equal to the number of transmissions of the target transmission of the target transmission channel.
- the quantity of the first spatial relationship information may be equal to or greater than 1, and when the quantity of the first spatial relationship information is greater than 1, the number of target transmissions corresponding to each first spatial relationship information may be equal or unequal .
- the J target transmissions are any of the following: odd target transmissions in at least two target transmissions of the target uplink channel; even target transmissions in at least two target transmissions of the target uplink channel ; The first J target transmissions in at least two target transmissions of the target uplink channel; The last J target transmissions in at least two target transmissions of the target uplink channel.
- the present disclosure does not limit the selection mode for selecting J target transmissions from at least two target transmissions.
- the terminal may also recycle the spatial relationship information when performing at least two target transmissions on the target uplink channel according to the transmission order.
- the loop may be a sequential loop or a reverse loop.
- the third sub-indicating information only indicates that there are 3 spatial relationship information of the target uplink channel, which are: spatial relationship information a, spatial relationship information b, and space Relationship information c.
- the spatial relationship information used by the terminal for the six target transmissions of the target uplink channel in succession may be: spatial relationship information a, spatial relationship information b, spatial relationship information c, spatial relationship information a, spatial relationship information b and Spatial relationship information c.
- the spatial relationship information used by the terminal for six target transmissions in succession may be: spatial relationship information a, spatial relationship information b, spatial relationship information c, spatial relationship information c, spatial relationship information b, spatial relationship information a .
- the terminal may select a spatial relationship from the spatial relationship information for each transmission of at least two target transmissions of the target uplink channel information.
- the at least two target transmissions of the target uplink channel may be transmitted using the second spatial relationship information in the spatial relationship information. It should be noted that the quantity of the second spatial relationship information is equal to the number of transmissions of the target transmission of the target uplink channel.
- the second spatial relationship information is: P spatial relationship information arranged in the top order in the spatial relationship information; or, the second spatial relationship information is: the spatial relationship with the target spatial relationship in the spatial relationship information P spatial relationship information with the smallest spatial distance of information; wherein the target spatial relationship information is the spatial relationship information used in the historical transmission of the uplink channel corresponding to at least two target transmissions of the target uplink channel; P is the The number of transmissions for the target transmission on the target upstream channel.
- the present disclosure does not limit the selection mode for selecting the second spatial relationship information from the spatial relationship information.
- FIG. 4 is a flowchart of an uplink channel transmission method provided by an embodiment of the present disclosure.
- the uplink channel transmission method shown in FIG. 4 can be applied to the terminal.
- the uplink channel transmission method may include the following steps:
- Step 401 Perform uplink channel transmission according to uplink channel transmission parameters, where the transmission parameters correspond to: N uplink channels, and/or at least two target transmissions of the target uplink channel, and N is an integer greater than 1.
- the transmission parameters of the uplink channel may be predefined and/or configured by the network side device.
- the transmission parameter includes: a predefined number of layers of the upstream channel, and the number of layers is 1.
- Fixing the number of uplink channels to 1 has at least the following beneficial effects: on the one hand, it can reduce inter-layer interference and improve transmission performance; on the other hand, it can save the number of bits indicating the layer information, so that the saved bit number can be used to indicate Other types of transmission parameters.
- the transmission parameter includes: a first association between the number of transmissions of the target transmission of the predefined target uplink channel and the precoding information Relationship; and/or, the second association relationship between the transmission times of the target transmission of the predefined target uplink channel and the spatial relationship information.
- the terminal can determine the precoding information and/or the spatial relationship information of each transmission without any instruction from the network side device during each of the at least two transmissions of the target uplink channel, thereby reducing signaling overhead.
- the method before performing the uplink channel transmission according to the transmission parameters of the uplink channel, the method further includes:
- the transmission information of the upstream channel is configured by the network-side device.
- the transmission parameter corresponds to N uplink channels
- the N uplink channels correspond to M transceiver points TRP, where M is an integer greater than 1; or,
- the target transmission is: repeated transmission, frequency hopping transmission, or fractional transmission.
- the TRP is defined by at least one of the following: a control resource set or a control resource set group; an explicitly defined TRP; a transmission configuration indication status, a transmission configuration indication status list, or a transmission configuration indication status pool; QCL information or QCL Group information; spatial relationship information or spatial relationship group information; physical downlink control channel PDCCH scrambling identifier or PDCCH scrambling identifier group; physical downlink shared channel PDSCH scrambling identifier or PDSCH scrambling identifier group; PDCCH configuration signaling element; PDSCH configuration Signaling element.
- the indication information is transmitted through downlink control information DCI.
- the DCI includes a first signaling domain, and the first signaling domain is used to indicate an uplink transmission scheme of the PUSCH;
- the uplink transmission scheme includes at least one of the following: uplink diversity transmission PUSCH, codebook-based PUSCH and non-codebook PUSCH.
- the first signaling field is a precoding information and layer number signaling field
- the precoding information and layer number signaling field uses a first code point to indicate a PUSCH uplink transmission scheme.
- the first code point is a reserved code point, a new code point, a code point in which the transmission precoding matrix indicates that TPMI is a special value, or a code point in which the number of layers is a special value
- the first The uplink transmission scheme of PUSCH indicated by a code point is: PUSCH or PUSCH in a non-codebook is sent in uplink diversity.
- the DCI includes a second signaling domain, and the second signaling domain is used to indicate PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain
- the DCI uses 1 precoding information and the layer number signaling field to indicate N codebook-based PUSCH precoding information; or,
- the DCI uses N pieces of precoding information and a layer number signaling field to indicate N pieces of codebook-based PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain; the precoding information and the layer signaling domain are reserved
- the code point indicates the uplink diversity to transmit the precoding information of PUSCH.
- the DCI further includes a third signaling field, where the third signaling field is used to indicate the target PUSCH target transmission. Number of transmissions.
- the second signaling domain is the precoding information and the layer signaling domain
- the second signaling domain is a sounding reference signal resource indication SRI signaling domain.
- the uplink channel is a physical uplink control channel PUCCH
- the indication information is transmitted through at least one of radio resource control RRC layer information, media access control MAC layer information, and physical layer control information;
- the RRC layer information includes RRC signaling; the MAC layer information includes MAC control element CE; and the physical layer control information includes DCI.
- the indication information includes first sub-instruction information, and the first sub-instruction information is used to indicate Q spatial relationship information, where Q is greater than or equal to Integer of N.
- the first sub-instruction information includes G group spatial relationship information, and the spatial relationship information of the G group spatial relationship information constitutes the Q spatial relationship information;
- G is equal to 1; or, G is equal to N; or, the value of G is equal to the number of N PUCCH packets.
- the indication information further includes second sub-instruction information, and the second sub-instruction information is used to indicate spatial relationship information of each PUCCH among the N PUCCHs.
- the indication information includes third sub-indication information, and the third sub-indication information is used to indicate at least the target uplink channel. Spatial relationship information transmitted by two targets;
- the quantity of the spatial relationship information is equal to or not equal to the transmission times of the target transmission of the target uplink channel.
- the uplink channel transmission according to the transmission parameters of the uplink channel includes: the target uplink channel At least two target transmissions of J times multiplexing the first spatial relationship information in the multiplexed spatial relationship information for target transmission.
- the J target transmissions are any of the following:
- An odd number of target transmissions in at least two target transmissions of the target uplink channel is an odd number of target transmissions in at least two target transmissions of the target uplink channel
- An even number of target transmissions in at least two target transmissions of the target uplink channel is an even number of target transmissions in at least two target transmissions of the target uplink channel
- the last J target transmissions in the at least two target transmissions of the target uplink channel is the last J target transmissions in the at least two target transmissions of the target uplink channel.
- the uplink channel transmission according to the uplink channel transmission parameters includes: the target uplink channel At least two of the target transmissions are transmitted using the second spatial relationship information in the spatial relationship information, and the number of the second spatial relationship information is equal to the number of transmissions of the target transmission of the target uplink channel.
- the second spatial relationship information is: P spatial relationship information in the top order in the spatial relationship information; or,
- the second spatial relationship information is: P spatial relationship information with the smallest spatial distance from the target spatial relationship information in the spatial relationship information;
- the target spatial relationship information is spatial relationship information used in historical transmission of the uplink channel corresponding to at least two target transmissions of the target uplink channel; P is the number of transmissions of the target transmission of the target uplink channel.
- this embodiment is an implementation manner of the terminal corresponding to the method embodiment of FIG. 2, therefore, you can refer to the related description in the above method embodiment, and the same beneficial effects can be achieved. In order to avoid repeating the description, it will not be repeated here.
- the terminal may perform uplink channel transmission according to transmission parameters corresponding to N uplink channels and/or at least two target transmissions of the target uplink channel, thereby improving transmission performance.
- a signaling field "Precoding information and numbers of layers" is used in DCI.
- the common signaling domain "Precoding information and numbers of layers" is used in DCI, and when DCI uses this signaling domain to indicate the codebook information of PUSCH, the signaling in the signaling domain The value also indicates that the UE sends PUSCH codebook information to multiple TRPs.
- the number of PUSCH layers is fixed at one.
- DCI format 0_0 indicates uplink diversity transmission
- DCI format 0_1 indicates codebook or non-codebook based PUSCH.
- the precoding information used may be any of the following:
- the related technique is to indicate the number of times of uplink data repetition by the RRC parameter "Pusch-Aggregation Factor".
- different uplink beam information may be used, which may be used by the DCI to indicate the Spatial Relation Information used for each PUSCH transmission.
- Precoding information can be associated or mapped with each repeated transmission and/or frequency hopping transmission.
- DCI indicates precoding information for each transmission when PUSCH is repeatedly transmitted and/or frequency hopped.
- Each repeated transmission and/or frequency hopping transmission can be associated or mapped with the signaling value of the signaling domain "SRS resource”.
- DCI is used to instruct the UE to repeat the precoding information for each TRP transmission and/or frequency hopping transmission for each transmission.
- each repeated transmission, and frequency hopping transmission can be associated or mapped with the signaling value of the signaling domain "SRS resource".
- the network uses RRC signaling to configure multiple sets of spatial correlation information for PUCCH, each set corresponding to a TRP.
- the network uses MAC CE to select one for each TRP.
- the network uses RRC signaling to configure multiple sets of spatial correlation information for PUCCH, each set corresponding to a set of TRP.
- the network uses MAC CE for each TRP in each set of TRP, and selects one of them in the corresponding spatial correlation information.
- the network uses RRC signaling to configure the spatial information of PUCCH, and then uses MAC CE to select the spatial information of PUCCH for each TRP.
- the above a to c can be used for PUCCH transmission on FR1.
- the network indicates the aforementioned pattern, that is, the spatial correlation information used for each transmission.
- the former is smaller than the latter, and the same number of spatial correlation information as the number of repeated transmissions can be taken, for example, intercepted according to a preset rule.
- the former is greater than the latter, and the same spatial correlation information can be used for multiple transmissions during repeated transmissions. For example, repeated use of spatial correlation information.
- the number of layers is fixed at 1;
- the number of layers is fixed at 1;
- the network uses RRC+MAC and Spatial Relation information of each TRP PUCCH.
- the association or mapping relationship between each transmission and the spatial correlation information is predefined.
- the same number of spatial correlation information as the number of repeated transmissions is used, or the same spatial correlation information is used for multiple transmissions during repeated transmissions.
- the present disclosure proposes to design a new indication and transmission method to support the transmission of PUSCH and PUCCH between the UE and multiple TRPs in the scenario where the UE is connected with multiple TRPs.
- the present disclosure not only supports multiple TRP scenarios, but can be used in a broad sense for the UE to send multiple PUSCH/PUCCH or different parts of a channel, that is, multiple target transmissions of a channel.
- it can be applied to multiple services such as ultra-reliable and low-latency communications (Ultra-Reliable and Low Latency Communications, URLLC).
- FIG. 5 is one of the structural diagrams of the network side device provided by the embodiment of the present disclosure.
- the network side device 500 includes:
- the transmission module 501 is configured to perform uplink channel transmission according to transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel, where N is greater than 1. Integer.
- a sending module configured to send indication information to the network side device, where the indication information is used to indicate transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two targets of the target uplink channel Transmission; N is an integer greater than 1.
- the transmission parameter corresponds to N uplink channels
- the N uplink channels correspond to M transceiver points TRP, where M is an integer greater than 1; or,
- the target transmission is: repeated transmission, frequency hopping transmission, or fractional transmission.
- the TRP is defined by at least one of the following: a control resource set or a control resource set group; an explicitly defined TRP; a transmission configuration indication status, a transmission configuration indication status list, or a transmission configuration indication status pool; QCL information or QCL Group information; spatial relationship information or spatial relationship group information; physical downlink control channel PDCCH scrambling identifier or PDCCH scrambling identifier group; physical downlink shared channel PDSCH scrambling identifier or PDSCH scrambling identifier group; PDCCH configuration signaling element; PDSCH configuration Signaling element.
- the indication information is transmitted through downlink control information DCI.
- the DCI includes a first signaling domain, and the first signaling domain is used to indicate an uplink transmission scheme of the PUSCH;
- the uplink transmission scheme includes at least one of the following: uplink diversity transmission PUSCH, codebook-based PUSCH and non-codebook PUSCH.
- the first signaling field is a precoding information and layer number signaling field
- the precoding information and layer number signaling field uses a first code point to indicate a PUSCH uplink transmission scheme.
- the first code point is a reserved code point, a new code point, a code point in which the transmission precoding matrix indicates that TPMI is a special value, or a code point in which the number of layers is a special value
- the first The uplink transmission scheme of PUSCH indicated by a code point is: PUSCH or PUSCH in a non-codebook is sent in uplink diversity.
- the DCI includes a second signaling domain, and the second signaling domain is used to indicate PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain
- the DCI uses 1 precoding information and a layer number signaling field to indicate N codebook-based PUSCH precoding information; or,
- the DCI uses N pieces of precoding information and a layer number signaling field to indicate N pieces of codebook-based PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain; the precoding information and the layer signaling domain are reserved
- the code point indicates the uplink diversity to transmit the precoding information of PUSCH.
- the DCI further includes a third signaling field, where the third signaling field is used to indicate the target PUSCH target transmission. Number of transmissions.
- the second signaling domain is the precoding information and the layer signaling domain
- the second signaling domain is a sounding reference signal resource indication SRI signaling domain.
- the uplink channel is a physical uplink control channel PUCCH
- the indication information is transmitted through at least one of radio resource control RRC layer information, media access control MAC layer information, and physical layer control information;
- the RRC layer information includes RRC signaling; the MAC layer information includes MAC control element CE; and the physical layer control information includes DCI.
- the indication information includes first sub-instruction information, and the first sub-instruction information is used to indicate Q spatial relationship information, where Q is greater than or equal to Integer of N.
- the first sub-instruction information includes G group spatial relationship information, and the spatial relationship information of the G group spatial relationship information constitutes the Q spatial relationship information;
- G is equal to 1; or, G is equal to N; or, the value of G is equal to the number of N PUCCH packets.
- the indication information further includes second sub-instruction information, and the second sub-instruction information is used to indicate spatial relationship information of each PUCCH among the N PUCCHs.
- the indication information includes third sub-indication information, and the third sub-indication information is used to indicate at least the target uplink channel. Spatial relationship information transmitted by two targets;
- the quantity of the spatial relationship information is equal to or not equal to the transmission times of the target transmission of the target uplink channel.
- the network-side device 500 can implement various processes in the method embodiment of FIG. 2 of the present disclosure and achieve the same beneficial effects. To avoid repetition, details are not described here.
- FIG. 6 is one of structural diagrams of a terminal provided by an embodiment of the present disclosure. As shown in FIG. 6, the terminal 600 includes:
- the transmission module 601 is configured to perform uplink channel transmission according to transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel, N is greater than 1. Integer.
- the transmission parameter includes: a predefined number of layers of the upstream channel, and the number of layers is 1.
- the transmission parameter includes: a first association between the number of transmissions of the target transmission of the predefined target uplink channel and the precoding information Relationship; and/or, the second association relationship between the transmission times of the target transmission of the predefined target uplink channel and the spatial relationship information.
- the terminal 600 further includes:
- the receiving module is configured to receive indication information sent by the network-side device before performing uplink channel transmission according to the uplink channel transmission parameters, where the indication information is used to indicate the uplink channel transmission parameters.
- the transmission parameter corresponds to N uplink channels
- the N uplink channels correspond to M transceiver points TRP, where M is an integer greater than 1; or,
- the target transmission is: repeated transmission, frequency hopping transmission, or fractional transmission.
- the TRP is defined by at least one of the following: a control resource set or a control resource set group; an explicitly defined TRP; a transmission configuration indication status, a transmission configuration indication status list, or a transmission configuration indication status pool; QCL information or QCL Group information; spatial relationship information or spatial relationship group information; physical downlink control channel PDCCH scrambling identifier or PDCCH scrambling identifier group; physical downlink shared channel PDSCH scrambling identifier or PDSCH scrambling identifier group; PDCCH configuration signaling element; PDSCH configuration Signaling element.
- the indication information is transmitted through downlink control information DCI.
- the DCI includes a first signaling domain, and the first signaling domain is used to indicate an uplink transmission scheme of the PUSCH;
- the uplink transmission scheme includes at least one of the following: uplink diversity transmission PUSCH, codebook-based PUSCH and non-codebook PUSCH.
- the first signaling field is a precoding information and layer number signaling field
- the precoding information and layer number signaling field uses a first code point to indicate a PUSCH uplink transmission scheme.
- the first code point is a reserved code point, a new code point, a code point in which the transmission precoding matrix indicates that TPMI is a special value, or a code point in which the number of layers is a special value
- the first The uplink transmission scheme of PUSCH indicated by a code point is: PUSCH or PUSCH in a non-codebook is sent in uplink diversity.
- the DCI includes a second signaling domain, and the second signaling domain is used to indicate PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain
- the DCI uses 1 precoding information and the layer number signaling field to indicate N codebook-based PUSCH precoding information; or,
- the DCI uses N pieces of precoding information and a layer number signaling field to indicate N pieces of codebook-based PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain; the precoding information and the layer signaling domain are reserved
- the code point indicates the uplink diversity to transmit the precoding information of PUSCH.
- the DCI further includes a third signaling field, where the third signaling field is used to indicate the target PUSCH target transmission. Number of transmissions.
- the second signaling domain is the precoding information and the layer signaling domain
- the second signaling domain is a sounding reference signal resource indication SRI signaling domain.
- the uplink channel is a physical uplink control channel PUCCH
- the indication information is transmitted through at least one of radio resource control RRC layer information, media access control MAC layer information, and physical layer control information;
- the RRC layer information includes RRC signaling; the MAC layer information includes MAC control element CE; and the physical layer control information includes DCI.
- the indication information includes first sub-instruction information, and the first sub-instruction information is used to indicate Q spatial relationship information, where Q is greater than or equal to Integer of N.
- the first sub-instruction information includes G group spatial relationship information, and the spatial relationship information of the G group spatial relationship information constitutes the Q spatial relationship information;
- G is equal to 1; or, G is equal to N; or, the value of G is equal to the number of N PUCCH packets.
- the indication information further includes second sub-instruction information, and the second sub-instruction information is used to indicate spatial relationship information of each PUCCH among the N PUCCHs.
- the indication information includes third sub-indication information, and the third sub-indication information is used to indicate at least the target uplink channel. Spatial relationship information transmitted by two targets;
- the quantity of the spatial relationship information is equal to or not equal to the transmission times of the target transmission of the target uplink channel.
- the transmission module 601 is specifically configured to: in at least two target transmissions of the target uplink channel J times the target transmission multiplexes the spatial relationship information in the first spatial relationship information for transmission.
- the J target transmissions are any of the following:
- An odd number of target transmissions in at least two target transmissions of the target uplink channel is an odd number of target transmissions in at least two target transmissions of the target uplink channel
- An even number of target transmissions in at least two target transmissions of the target uplink channel is an even number of target transmissions in at least two target transmissions of the target uplink channel
- the last J target transmissions in the at least two target transmissions of the target uplink channel is the last J target transmissions in the at least two target transmissions of the target uplink channel.
- the transmission module 601 is specifically configured to: use at least two target transmissions of the target uplink channel The second spatial relationship information in the spatial relationship information is transmitted, and the number of the second spatial relationship information is equal to the number of transmissions of the target transmission of the target uplink channel.
- the second spatial relationship information is: P spatial relationship information in the top order in the spatial relationship information; or,
- the second spatial relationship information is: P spatial relationship information with the smallest spatial distance from the target spatial relationship information in the spatial relationship information;
- the target spatial relationship information is spatial relationship information used in historical transmission of the uplink channel corresponding to at least two target transmissions of the target uplink channel; P is the number of transmissions of the target transmission of the target uplink channel.
- the terminal 600 can implement various processes in the method embodiment of FIG. 4 of the present disclosure, and achieve the same beneficial effects. To avoid repetition, details are not described here.
- FIG. 7 is a second structural diagram of a network-side device provided by an embodiment of the present disclosure.
- the network-side device 700 includes: a processor 701, a memory 702, a user interface 703, a transceiver 704, and a bus interface.
- the network-side device 700 further includes: a computer program stored on the memory 702 and executable on the processor 701. When the computer program is executed by the processor 701, the following steps are implemented:
- the indication information is used to indicate the transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel; N is greater than 1 Integer.
- the transmission parameter corresponds to N uplink channels
- the N uplink channels correspond to M transceiver points TRP, where M is an integer greater than 1; or,
- the target transmission is: repeated transmission, frequency hopping transmission, or fractional transmission.
- the TRP is defined by at least one of the following: a control resource set or a control resource set group; an explicitly defined TRP; a transmission configuration indication status, a transmission configuration indication status list, or a transmission configuration indication status pool; QCL information or QCL Group information; spatial relationship information or spatial relationship group information; physical downlink control channel PDCCH scrambling identifier or PDCCH scrambling identifier group; physical downlink shared channel PDSCH scrambling identifier or PDSCH scrambling identifier group; PDCCH configuration signaling element; PDSCH configuration Signaling element.
- the indication information is transmitted through downlink control information DCI.
- the DCI includes a first signaling domain, and the first signaling domain is used to indicate an uplink transmission scheme of the PUSCH;
- the uplink transmission scheme includes at least one of the following: uplink diversity transmission PUSCH, codebook-based PUSCH and non-codebook PUSCH.
- the first signaling field is a precoding information and layer number signaling field
- the precoding information and layer number signaling field uses a first code point to indicate a PUSCH uplink transmission scheme.
- the first code point is a reserved code point, a new code point, a code point in which the transmission precoding matrix indicates that TPMI is a special value, or a code point in which the number of layers is a special value
- the first The uplink transmission scheme of PUSCH indicated by a code point is: PUSCH or PUSCH in a non-codebook is sent in uplink diversity.
- the DCI includes a second signaling domain, and the second signaling domain is used to indicate PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain
- the DCI uses 1 precoding information and the layer number signaling field to indicate N codebook-based PUSCH precoding information; or,
- the DCI uses N pieces of precoding information and the layer number signaling field to indicate N pieces of codebook-based PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain; the precoding information and the layer signaling domain are reserved
- the code point indicates the uplink diversity to transmit the precoding information of PUSCH.
- the DCI further includes a third signaling field, where the third signaling field is used to indicate the target PUSCH target transmission. Number of transmissions.
- the second signaling domain is the precoding information and the layer signaling domain
- the second signaling domain is a sounding reference signal resource indication SRI signaling domain.
- the uplink channel is a physical uplink control channel PUCCH
- the indication information is transmitted through at least one of radio resource control RRC layer information, media access control MAC layer information, and physical layer control information;
- the RRC layer information includes RRC signaling; the MAC layer information includes MAC control element CE; and the physical layer control information includes DCI.
- the indication information includes first sub-instruction information, and the first sub-instruction information is used to indicate Q spatial relationship information, where Q is greater than or equal to Integer of N.
- the first sub-instruction information includes G group spatial relationship information, and the spatial relationship information of the G group spatial relationship information constitutes the Q spatial relationship information;
- G is equal to 1; or, G is equal to N; or, the value of G is equal to the number of N PUCCH packets.
- the indication information further includes second sub-instruction information, and the second sub-instruction information is used to indicate spatial relationship information of each PUCCH among the N PUCCHs.
- the indication information includes third sub-indication information, and the third sub-indication information is used to indicate at least the target uplink channel. Spatial relationship information transmitted by two targets;
- the quantity of the spatial relationship information is equal to or not equal to the transmission times of the target transmission of the target uplink channel.
- the bus architecture may include any number of interconnected buses and bridges, specifically one or more processors represented by the processor 701 and various circuits of the memory represented by the memory 702 are linked together.
- the bus architecture can also link various other circuits such as peripheral devices, voltage regulators, and power management circuits, etc., which are well known in the art, and therefore, they will not be further described in this article.
- the bus interface provides an interface.
- the transceiver 704 may be a plurality of elements, including a transmitter and a receiver, and provides a unit for communicating with various other devices on a transmission medium.
- the user interface 703 may also be an interface that can be externally connected to the required equipment.
- the connected equipment includes but is not limited to a keypad, a display, a speaker, a microphone, a joystick, and the like.
- the processor 701 is responsible for managing the bus architecture and general processing, and the memory 702 may store data used by the processor 2601 in performing operations.
- the network-side device 700 can implement various processes implemented by the network-side device in the foregoing method embodiments. To avoid repetition, details are not described herein again.
- FIG. 8 is a second structural diagram of a terminal provided by an embodiment of the present disclosure.
- the terminal may be a schematic diagram of a hardware structure of a terminal that implements various embodiments of the present disclosure.
- the terminal 800 includes but is not limited to: a radio frequency unit 801, a network module 802, an audio output unit 803, an input unit 804, a sensor 805, a display unit 806, a user input unit 807, an interface unit 808, a memory 809, processing 810, power supply 811 and other components.
- the terminal structure shown in FIG. 8 does not constitute a limitation on the terminal, and the terminal may include more or less components than those illustrated, or combine certain components, or arrange different components.
- the terminals include but are not limited to mobile phones, tablet computers, notebook computers, palmtop computers, vehicle-mounted terminals, wearable devices, pedometers, and the like.
- the radio frequency unit 801 is used for:
- the uplink channel is transmitted according to transmission parameters of the uplink channel, the transmission parameters corresponding to: N uplink channels, and/or at least two target transmissions of the target uplink channel, and N is an integer greater than 1.
- the transmission parameter includes: a predefined number of layers of the upstream channel, and the number of layers is 1.
- the transmission parameter includes: a first association between the number of transmissions of the target transmission of the predefined target uplink channel and the precoding information Relationship; and/or, the second association relationship between the transmission times of the target transmission of the predefined target uplink channel and the spatial relationship information.
- the radio frequency unit 801 is also used for:
- the network side device Before transmitting the uplink channel according to the transmission parameter of the uplink channel, receive indication information sent by the network side device, where the indication information is used to indicate the transmission parameter of the uplink channel.
- the transmission parameter corresponds to N uplink channels
- the N uplink channels correspond to M transceiver points TRP, where M is an integer greater than 1; or,
- the target transmission is: repeated transmission, frequency hopping transmission, or fractional transmission.
- the TRP is defined by at least one of the following: a control resource set or a control resource set group; an explicitly defined TRP; a transmission configuration indication status, a transmission configuration indication status list, or a transmission configuration indication status pool; QCL information or QCL Group information; spatial relationship information or spatial relationship group information; physical downlink control channel PDCCH scrambling identifier or PDCCH scrambling identifier group; physical downlink shared channel PDSCH scrambling identifier or PDSCH scrambling identifier group; PDCCH configuration signaling element; PDSCH configuration Signaling element.
- the indication information is transmitted through downlink control information DCI.
- the DCI includes a first signaling domain, and the first signaling domain is used to indicate an uplink transmission scheme of the PUSCH;
- the uplink transmission scheme includes at least one of the following: uplink diversity transmission PUSCH, codebook-based PUSCH and non-codebook PUSCH.
- the first signaling field is a precoding information and layer number signaling field
- the precoding information and layer number signaling field uses a first code point to indicate a PUSCH uplink transmission scheme.
- the first code point is a reserved code point, a new code point, a code point in which the transmission precoding matrix indicates that TPMI is a special value, or a code point in which the number of layers is a special value
- the first The uplink transmission scheme of PUSCH indicated by a code point is: PUSCH or PUSCH in a non-codebook is sent in uplink diversity.
- the DCI includes a second signaling domain, and the second signaling domain is used to indicate PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain
- the DCI uses 1 precoding information and the layer number signaling field to indicate N codebook-based PUSCH precoding information; or,
- the DCI uses N pieces of precoding information and a layer number signaling field to indicate N pieces of codebook-based PUSCH precoding information.
- the second signaling domain is the precoding information and the layer signaling domain; the precoding information and the layer signaling domain are reserved
- the code point indicates the uplink diversity to transmit the precoding information of PUSCH.
- the DCI further includes a third signaling field, where the third signaling field is used to indicate the target PUSCH target transmission. Number of transmissions.
- the second signaling domain is the precoding information and the layer signaling domain
- the second signaling domain is a sounding reference signal resource indication SRI signaling domain.
- the uplink channel is a physical uplink control channel PUCCH
- the indication information is transmitted through at least one of radio resource control RRC layer information, media access control MAC layer information, and physical layer control information;
- the RRC layer information includes RRC signaling; the MAC layer information includes MAC control element CE; and the physical layer control information includes DCI.
- the indication information includes first sub-instruction information, and the first sub-instruction information is used to indicate Q spatial relationship information, where Q is greater than or equal to Integer of N.
- the first sub-instruction information includes G group spatial relationship information, and the spatial relationship information of the G group spatial relationship information constitutes the Q spatial relationship information;
- G is equal to 1; or, G is equal to N; or, the value of G is equal to the number of N PUCCH packets.
- the indication information further includes second sub-instruction information, and the second sub-instruction information is used to indicate spatial relationship information of each PUCCH among the N PUCCHs.
- the indication information includes third sub-indication information, and the third sub-indication information is used to indicate at least the target uplink channel. Spatial relationship information transmitted by two targets;
- the quantity of the spatial relationship information is equal to or not equal to the transmission times of the target transmission of the target uplink channel.
- the radio frequency unit 801 is further used to: J in at least two target transmissions of the target uplink channel
- the secondary target transmits the first spatial relationship information in the multiplexed spatial relationship information for transmission.
- the J target transmissions are any of the following:
- An odd number of target transmissions in at least two target transmissions of the target uplink channel is an odd number of target transmissions in at least two target transmissions of the target uplink channel
- An even number of target transmissions in at least two target transmissions of the target uplink channel is an even number of target transmissions in at least two target transmissions of the target uplink channel
- the last J target transmissions in the at least two target transmissions of the target uplink channel is the last J target transmissions in the at least two target transmissions of the target uplink channel.
- the radio frequency unit 801 is further configured to use at least two target transmissions of the target uplink channel using the The second spatial relationship information in the spatial relationship information is transmitted.
- the second spatial relationship information is: P spatial relationship information in the top order in the spatial relationship information; or,
- the second spatial relationship information is: P spatial relationship information with the smallest spatial distance from the target spatial relationship information in the spatial relationship information;
- the target spatial relationship information is spatial relationship information used in historical transmission of the uplink channel corresponding to at least two target transmissions of the target uplink channel; P is the number of transmissions of the target transmission of the target uplink channel.
- the terminal 800 described above can implement various processes implemented by the terminal in the method embodiments in the embodiments of the present disclosure, and achieve the same beneficial effects. To avoid repetition, details are not described here.
- the radio frequency unit 801 may be used to receive and send signals during sending and receiving information or during a call. Specifically, after receiving the downlink data from the base station, it is processed by the processor 810; The uplink data is sent to the base station.
- the radio frequency unit 801 includes but is not limited to an antenna, at least one amplifier, a transceiver, a coupler, a low noise amplifier, a duplexer, and the like.
- the radio frequency unit 801 can also communicate with the network and other devices through a wireless communication system.
- the terminal provides users with wireless broadband Internet access through the network module 802, such as helping users send and receive e-mail, browse web pages, and access streaming media.
- the audio output unit 803 may convert the audio data received by the radio frequency unit 801 or the network module 802 or stored in the memory 809 into an audio signal and output as sound. Moreover, the audio output unit 803 may also provide audio output related to a specific function performed by the terminal 800 (eg, call signal reception sound, message reception sound, etc.).
- the audio output unit 803 includes a speaker, a buzzer, a receiver, and the like.
- the input unit 804 is used to receive audio or video signals.
- the input unit 804 may include a graphics processor (Graphics, Processing, Unit, GPU) 8041 and a microphone 8042.
- the graphics processor 8041 pairs the image of a still picture or video obtained by an image capture device (such as a camera) in a video capture mode or an image capture mode
- the data is processed.
- the processed image frame may be displayed on the display unit 806.
- the image frame processed by the graphics processor 8041 may be stored in the memory 809 (or other storage medium) or sent via the radio frequency unit 801 or the network module 802.
- the microphone 8042 can receive sound, and can process such sound into audio data.
- the processed audio data can be converted into a format that can be sent to the mobile communication base station via the radio frequency unit 801 in the case of the telephone call mode and output.
- the terminal 800 further includes at least one sensor 805, such as a light sensor, a motion sensor, and other sensors.
- the light sensor includes an ambient light sensor and a proximity sensor, wherein the ambient light sensor can adjust the brightness of the display panel 8061 according to the brightness of the ambient light, and the proximity sensor can close the display panel 8061 and/or when the terminal 800 moves to the ear Or backlight.
- the accelerometer sensor can detect the magnitude of acceleration in various directions (generally three axes), and can detect the magnitude and direction of gravity when at rest, and can be used to recognize the posture of the terminal (such as horizontal and vertical screen switching, related games, Magnetometer attitude calibration), vibration recognition related functions (such as pedometer, tap), etc.; sensor 805 can also include fingerprint sensor, pressure sensor, iris sensor, molecular sensor, gyroscope, barometer, hygrometer, thermometer, infrared Sensors, etc., will not be repeated here.
- the display unit 806 is used to display information input by the user or information provided to the user.
- the display unit 806 may include a display panel 8061, and the display panel 8061 may be configured in the form of a liquid crystal display (Liquid Crystal) (LCD), an organic light emitting diode (Organic Light-Emitting Diode, OLED), or the like.
- LCD Liquid Crystal
- OLED Organic Light-Emitting Diode
- the user input unit 807 may be used to receive input numeric or character information, and generate key signal input related to user settings and function control of the terminal.
- the user input unit 807 includes a touch panel 8071 and other input devices 8072.
- the touch panel 8071 also known as a touch screen, can collect user's touch operations on or near it (for example, the user uses any suitable objects or accessories such as fingers, stylus, etc. on or near the touch panel 8071 operating).
- the touch panel 8071 may include a touch detection device and a touch controller.
- the touch detection device detects the user's touch orientation, and detects the signal brought by the touch operation, and transmits the signal to the touch controller; the touch controller receives touch information from the touch detection device and converts it into contact coordinates, and then sends To the processor 810, the command sent by the processor 810 is received and executed.
- the touch panel 8071 can be implemented in various types such as resistive, capacitive, infrared, and surface acoustic waves.
- the user input unit 807 may also include other input devices 8072.
- other input devices 8072 may include, but are not limited to, physical keyboards, function keys (such as volume control buttons, switch buttons, etc.), trackballs, mice, and joysticks, and details are not described herein again.
- the touch panel 8071 may be overlaid on the display panel 8061.
- the touch panel 8071 detects a touch operation on or near it, it is transmitted to the processor 810 to determine the type of touch event, and then the processor 810 according to the touch The type of event provides corresponding visual output on the display panel 8061.
- the touch panel 8071 and the display panel 8061 are implemented as two independent components to realize the input and output functions of the terminal, in some embodiments, the touch panel 8071 and the display panel 8061 may be integrated to The input and output functions of the terminal are implemented, which is not limited here.
- the interface unit 808 is an interface for connecting an external device to the terminal 800.
- the external device may include a wired or wireless headset port, an external power supply (or battery charger) port, a wired or wireless data port, a memory card port, a port for connecting a device with an identification module, audio input/output (input/output, I/O) port, video I/O port, headphone port, etc.
- the interface unit 808 may be used to receive input from external devices (eg, data information, power, etc.) and transmit the received input to one or more elements within the terminal 800 or may be used between the terminal 800 and external devices Transfer data between.
- the memory 809 may be used to store software programs and various data.
- the memory 809 may mainly include a storage program area and a storage data area, wherein the storage program area may store an operating system, application programs required by at least one function (such as a sound playback function, an image playback function, etc.), etc.; the storage data area may store Data created by the use of mobile phones (such as audio data, phone books, etc.), etc.
- the memory 809 may include a high-speed random access memory, and may also include a non-volatile memory, such as at least one magnetic disk storage device, a flash memory device, or other volatile solid-state storage devices.
- the processor 810 is the control center of the terminal, and uses various interfaces and lines to connect the various parts of the entire terminal, executes or executes the software programs and/or modules stored in the memory 809, and calls the data stored in the memory 809 to execute Various functions and processing data of the terminal, so as to monitor the terminal as a whole.
- the processor 810 may include one or more processing units; optionally, the processor 810 may integrate an application processor and a modem processor, where the application processor mainly processes an operating system, a user interface, and application programs, etc.
- the modulation processor mainly handles wireless communication. It can be understood that, the foregoing modem processor may not be integrated into the processor 810.
- the terminal 800 may further include a power supply 811 (such as a battery) that supplies power to various components.
- a power supply 811 (such as a battery) that supplies power to various components.
- the power supply 811 may be logically connected to the processor 810 through a power management system, thereby managing charge, discharge, and power consumption management through the power management system And other functions.
- the terminal 800 includes some function modules not shown, which will not be repeated here.
- an embodiment of the present disclosure further provides a terminal, including a processor 810, a memory 809, and a computer program stored on the memory 809 and executable on the processor 810, when the computer program is executed by the processor 810.
- a terminal including a processor 810, a memory 809, and a computer program stored on the memory 809 and executable on the processor 810, when the computer program is executed by the processor 810.
- Embodiments of the present disclosure also provide a computer-readable storage medium that stores a computer program on the computer-readable storage medium, and when the computer program is executed by a processor, implements the foregoing uplink channel configuration method embodiment or the foregoing uplink channel transmission method.
- the computer-readable storage medium such as read-only memory (Read-Only Memory, ROM), random access memory (Random Access Memory, RAM), magnetic disk or optical disk, etc.
- the disclosed device and method may be implemented in other ways.
- the device embodiments described above are only schematic.
- the division of the unit is only a logical function division, and there may be other divisions in actual implementation, for example, multiple units or components may be combined or Can be integrated into another system, or some features can be ignored, or not implemented.
- the displayed or discussed mutual coupling or direct coupling or communication connection may be indirect coupling or communication connection through some interfaces, devices or units, and may be in electrical, mechanical, or other forms.
- the units described as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units, that is, they may be located in one place or may be distributed on multiple network units. Some or all of the units may be selected according to actual needs to achieve the purpose of the solution of this embodiment.
- each functional unit in each embodiment of the present disclosure may be integrated into one processing unit, or each unit may exist alone physically, or two or more units may be integrated into one unit.
- the function is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium.
- the technical solution of the present disclosure essentially or part of the contribution to the related technology or part of the technical solution can be embodied in the form of a software product, the computer software product is stored in a storage medium, including several
- the instructions are used to cause a computer device (which may be a personal computer, a server, or a network device, etc.) to perform all or part of the steps of the methods described in the embodiments of the present disclosure.
- the foregoing storage media include various media that can store program codes, such as a U disk, a mobile hard disk, a ROM, a RAM, a magnetic disk, or an optical disk.
- the storage medium may be a magnetic disk, an optical disk, ROM, RAM, or the like.
- the embodiments described in the embodiments of the present disclosure may be implemented by hardware, software, firmware, middleware, microcode, or a combination thereof.
- the processing unit can be implemented in one or more application specific integrated circuits (Application Specific Integrated Circuits, ASIC), digital signal processor (Digital Signal Processor, DSP), digital signal processing device (DSP Device, DSPD), programmable Logic Device (Programmable Logic Device, PLD), Field Programmable Gate Array (Field-Programmable Gate Array, FPGA), general-purpose processor, controller, microcontroller, microprocessor, others for performing the functions described in this disclosure Electronic unit or its combination.
- ASIC Application Specific Integrated Circuits
- DSP Digital Signal Processor
- DSP Device digital signal processing device
- DPD digital signal processing device
- PLD programmable Logic Device
- Field Programmable Gate Array Field-Programmable Gate Array
- FPGA Field-Programmable Gate Array
- the technology described in the embodiments of the present disclosure may be implemented through modules (eg, procedures, functions, etc.) that perform the functions described in the embodiments of the present disclosure.
- the software codes can be stored in the memory and executed by the processor.
- the memory may be implemented in the processor or external to the processor.
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Abstract
Description
Claims (46)
- 一种上行信道的指示方法,应用于网络侧设备,包括:向终端发送指示信息,所述指示信息用于指示上行信道的传输参数,所述传输参数对应于:N个上行信道,和/或,目标上行信道的至少两次目标传输;N为大于1的整数。
- 根据权利要求1所述的方法,其中:在所述传输参数对应于N个上行信道的情况下,所述N个上行信道对应M个收发点TRP,M为大于1的整数;或,在所述传输参数对应于目标上行信道的至少两次目标传输的情况下,所述目标传输为:重复传输、跳频传输或分次传输。
- 根据权利要求2所述的方法,其中,所述TRP由以下至少一项定义:控制资源集或控制资源集组;显式定义的TRP;传输配置指示状态、传输配置指示状态列表或传输配置指示状态池;准共址QCL信息或QCL组信息;空间关系信息或空间关系组信息;物理下行控制信道PDCCH加扰标识或PDCCH加扰标识组;物理下行共享信道PDSCH加扰标识或PDSCH加扰标识组;PDCCH配置信令元素;PDSCH配置信令元素。
- 根据权利要求1所述的方法,其中,在上行信道为物理上行共享信道PUSCH的情况下,所述指示信息通过下行控制信息DCI传输。
- 根据权利要求4所述的方法,其中,所述DCI包括第一信令域,所述第一信令域用于指示PUSCH的上行传输方案;其中,所述上行传输方案包括以下至少一项:上行分集发送PUSCH、基于码本的PUSCH和非码本的PUSCH。
- 根据权利要求5所述的方法,其中,所述第一信令域为预编码信息和层数信令域,所述预编码信息和层数信令域利用第一码点指示PUSCH的上行传输方案。
- 根据权利要求6所述的方法,其中,在所述第一码点为预留码点、新增码点、传输预编码矩阵指示TPMI为特殊值的码点或层数为特殊值的码点的情况下,所述第一码点指示的PUSCH的上行传输方案为:上行分集发送 PUSCH或非码本的PUSCH。
- 根据权利要求4所述的方法,其中,所述DCI中包括第二信令域,所述第二信令域用于指示PUSCH的预编码信息。
- 根据权利要求8所述的方法,其中,在预编码信息对应于N个基于码本的PUSCH的情况下,所述第二信令域为预编码信息和层数信令域;所述DCI利用1个预编码信息和层数信令域指示N个基于码本的PUSCH的预编码信息;或,所述DCI利用N个预编码信息和层数信令域指示N个基于码本的PUSCH的预编码信息。
- 根据权利要求8所述的方法,其中,在预编码信息对应于上行分集发送PUSCH的情况下,所述第二信令域为预编码信息和层数信令域;所述预编码信息和层数信令域利用预留码点指示上行分集发送PUSCH的预编码信息。
- 根据权利要求8所述的方法,其中,在预编码信息对应于目标PUSCH的至少两次目标传输的情况下,所述DCI中还包括第三信令域,所述第三信令域用于指示目标PUSCH的目标传输的传输次数。
- 根据权利要求8所述的方法,其中:在预编码信息对应于基于码本的目标PUSCH的至少两次目标传输的情况下,所述第二信令域为预编码信息和层数信令域;或,在预编码信息对应于非码本的目标PUSCH的至少两次目标传输的情况下,所述第二信令域为探测参考信号资源指示SRI信令域。
- 根据权利要求1所述的方法,其中,所述上行信道为物理上行控制信道PUCCH,所述指示信息通过无线资源控制RRC层信息、媒体接入控制MAC层信息和物理层控制信息中的至少一项传输;其中,所述RRC层信息包括RRC信令;所述MAC层信息包括MAC控制元素CE;所述物理层控制信息包括DCI。
- 根据权利要求13所述的方法,其中,在所述传输参数对应于N个PUCCH的情况下,所述指示信息包括第一子指示信息,所述第一子指示信息用于指示Q个空间关系信息,Q为大于或等于N的整数。
- 根据权利要求14所述的方法,其中,所述第一子指示信息包括G组空间关系信息,所述G组空间关系信息的空间关系信息组成所述Q个空间关系信息;其中,G等于1;或,G等于N;或,G的取值等于N个PUCCH的分组数量。
- 根据权利要求14所述的方法,其中,在Q大于N的情况下,所述指示信息还包括第二子指示信息,所述第二子指示信息用于指示所述N个PUCCH中每个PUCCH的空间关系信息。
- 根据权利要求1所述的方法,其中,在所述传输参数对应于目标上行信道的至少两次目标传输的情况下,所述指示信息包括第三子指示信息,所述第三子指示信息用于指示目标上行信道的至少两次目标传输的空间关系信息;其中,所述空间关系信息的数量等于或不等于所述目标上行信道的目标传输的传输次数。
- 一种上行信道的配置方法,应用于终端,包括:根据上行信道的传输参数,进行上行信道的传输,所述传输参数对应于:N个上行信道,和/或,目标上行信道的至少两次目标传输,N为大于1的整数。
- 根据权利要求18所述的方法,其中,所述传输参数包括:预定义的上行信道的层数,且所述层数为1。
- 根据权利要求18所述的方法,其中,在所述传输参数对应于目标上行信道的至少两次目标传输的情况下,所述传输参数包括:预定义的目标上行信道的目标传输的传输次数与预编码信息的第一关联关系;和/或,预定义的目标上行信道的目标传输的传输次数与空间关系信息的第二关联关系。
- 根据权利要求18所述的方法,其中,所述根据上行信道的传输参数,进行上行信道的传输之前,所述方法还包括:接收网络侧设备发送的指示信息,所述指示信息用于指示上行信道的传输参数。
- 根据权利要求21所述的方法,其中:在所述传输参数对应于N个上行信道的情况下,所述N个上行信道对应M个收发点TRP,M为大于1的整数;或,在所述传输参数对应于目标上行信道的至少两次目标传输的情况下,所述目标传输为:重复传输、跳频传输或分次传输。
- 根据权利要求22所述的方法,其中,所述TRP由以下至少一项定义:控制资源集或控制资源集组;显式定义的TRP;传输配置指示状态、传输配置指示状态列表或传输配置指示状态池;准共址QCL信息或QCL组信息;空间关系信息或空间关系组信息;物理下行控制信道PDCCH加扰标识或PDCCH加扰标识组;物理下行共享信道PDSCH加扰标识或PDSCH加扰标识组;PDCCH配置信令元素;PDSCH配置信令元素。
- 根据权利要求21所述的方法,其中,在上行信道为物理上行共享信道PUSCH的情况下,所述指示信息通过下行控制信息DCI传输。
- 根据权利要求24所述的方法,其中,所述DCI包括第一信令域,所述第一信令域用于指示PUSCH的上行传输方案;其中,所述上行传输方案包括以下至少一项:上行分集发送PUSCH、基于码本的PUSCH和非码本的PUSCH。
- 根据权利要求25所述的方法,其中,所述第一信令域为预编码信息和层数信令域,所述预编码信息和层数信令域利用第一码点指示PUSCH的上行传输方案。
- 根据权利要求26所述的方法,其中,在所述第一码点为预留码点、新增码点、传输预编码矩阵指示TPMI为特殊值的码点或层数为特殊值的码点的情况下,所述第一码点指示的PUSCH的上行传输方案为:上行分集发送PUSCH或非码本的PUSCH。
- 根据权利要求24所述的方法,其中,所述DCI中包括第二信令域,所述第二信令域用于指示PUSCH的预编码信息。
- 根据权利要求28所述的方法,其中,在预编码信息对应于N个基于码本的PUSCH的情况下,所述第二信令域为预编码信息和层数信令域;所述DCI利用1个预编码信息和层数信令域指示N个基于码本的PUSCH的预编码信息;或,所述DCI利用N个预编码信息和层数信令域指示N个基于码本的PUSCH的预编码信息。
- 根据权利要求28所述的方法,其中,在预编码信息对应于上行分集发送PUSCH的情况下,所述第二信令域为预编码信息和层数信令域;所述预编码信息和层数信令域利用预留码点指示上行分集发送PUSCH的预编码信息。
- 根据权利要求28所述的方法,其中,在预编码信息对应于目标PUSCH的至少两次目标传输的情况下,所述DCI中还包括第三信令域,所述第三信令域用于指示目标PUSCH的目标传输的传输次数。
- 根据权利要求28所述的方法,其中:在预编码信息对应于基于码本的目标PUSCH的至少两次目标传输的情况下,所述第二信令域为预编码信息和层数信令域;或,在预编码信息对应于非码本的目标PUSCH的至少两次目标传输的情况下,所述第二信令域为探测参考信号资源指示SRI信令域。
- 根据权利要求21所述的方法,其中,所述上行信道为物理上行控制信道PUCCH,所述指示信息通过无线资源控制RRC层信息、媒体接入控制MAC层信息和物理层控制信息中的至少一项传输;其中,所述RRC层信息包括RRC信令;所述MAC层信息包括MAC控制元素CE;所述物理层控制信息包括DCI。
- 根据权利要求33所述的方法,其中,在所述传输参数对应于N个PUCCH的情况下,所述指示信息包括第一子指示信息,所述第一子指示信息用于指示Q个空间关系信息,Q为大于或等于N的整数。
- 根据权利要求34所述的方法,其中,所述第一子指示信息包括G组空间关系信息,所述G组空间关系信息的空间关系信息组成所述Q个空间关系信息;其中,G等于1;或,G等于N;或,G的取值等于N个PUCCH的分组数量。
- 根据权利要求34所述的方法,其中,在Q大于N的情况下,所述指示信息还包括第二子指示信息,所述第二子指示信息用于指示所述N个 PUCCH中每个PUCCH的空间关系信息。
- 根据权利要求21所述的方法,其中,在所述传输参数对应于目标上行信道的至少两次目标传输的情况下,所述指示信息包括第三子指示信息,所述第三子指示信息用于指示目标上行信道的至少两次目标传输的空间关系信息;其中,所述空间关系信息的数量等于或不等于所述目标上行信道的目标传输的传输次数。
- 根据权利要求37所述的方法,其中,在所述空间关系信息的数量小于所述目标上行信道的目标传输的传输次数的情况下,所述根据上行信道的传输参数,进行上行信道的传输,包括:所述目标上行信道的至少两次目标传输中的J次目标传输复用空间关系信息中的第一空间关系信息进行传输。
- 根据权利要求38所述的方法,其中,所述J次目标传输为以下任一种传输:所述目标上行信道的至少两次目标传输中奇数次目标传输;所述目标上行信道的至少两次目标传输中的偶数次目标传输;所述目标上行信道的至少两次目标传输中的前J次目标传输;所述目标上行信道的至少两次目标传输中的后J次目标传输。
- 根据权利要求37所述的方法,其中,在所述空间关系信息的数量大于所述目标上行信道的目标传输的传输次数的情况下,所述根据上行信道的传输参数,进行上行信道的传输,包括:所述目标上行信道的至少两次目标传输使用所述空间关系信息中的第二空间关系信息进行传输,所述第二空间关系信息的数量与所述目标上行信道的目标传输的传输次数相等。
- 根据权利要求40所述的方法,其中:所述第二空间关系信息为:所述空间关系信息中排列顺序靠前的P个空间关系信息;或,所述第二空间关系信息为:所述空间关系信息中与目标空间关系信息的空间距离最小的P个空间关系信息;其中,所述目标空间关系信息为所述目标上行信道的至少两次目标传输对应的上行信道的历史传输中使用的空间关系信息;P为所述目标上行信道的目标传输的传输次数。
- 一种网络侧设备,包括:发送模块,用于向终端发送指示信息,所述指示信息用于指示上行信道的传输参数,所述传输参数对应于:N个上行信道,和/或,目标上行信道的至少两次目标传输;N为大于1的整数。
- 一种终端,包括:传输模块,用于根据上行信道的传输参数,进行上行信道的传输,所述传输参数对应于:N个上行信道,和/或,目标上行信道的至少两次目标传输,N为大于1的整数。
- 一种网络侧设备,包括处理器、存储器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述计算机程序被所述处理器执行时实现如权利要求1至17中任一项所述的上行信道的配置方法的步骤。
- 一种终端,包括处理器、存储器及存储在所述存储器上并可在所述处理器上运行的计算机程序,所述计算机程序被所述处理器执行时实现如权利要求18至41中任一项所述的上行信道的传输方法的步骤。
- 一种计算机可读存储介质,所述计算机可读存储介质上存储有计算机程序,所述计算机程序被处理器执行时实现如权利要求1至17中任一项所述的上行信道的配置方法的步骤;或者,如权利要求18至41中任一项所述的上行信道的传输方法的步骤。
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US20210336664A1 (en) | 2021-10-28 |
EP3911075A4 (en) | 2022-07-20 |
CN111278120B (zh) | 2022-07-19 |
CN115190631A (zh) | 2022-10-14 |
KR20210109628A (ko) | 2021-09-06 |
KR102602135B1 (ko) | 2023-11-13 |
EP3911075A1 (en) | 2021-11-17 |
US12003287B2 (en) | 2024-06-04 |
JP2022518403A (ja) | 2022-03-15 |
CN111278120A (zh) | 2020-06-12 |
JP7230217B2 (ja) | 2023-02-28 |
SG11202107582XA (en) | 2021-08-30 |
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