WO2021004193A1 - 能力信息以及信道状态信息的反馈方法和装置 - Google Patents
能力信息以及信道状态信息的反馈方法和装置 Download PDFInfo
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/0413—MIMO systems
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0658—Feedback reduction
- H04B7/0663—Feedback reduction using vector or matrix manipulations
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
- H04L5/0057—Physical resource allocation for CQI
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/0413—MIMO systems
- H04B7/0417—Feedback systems
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/0413—MIMO systems
- H04B7/0456—Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0621—Feedback content
- H04B7/0626—Channel coefficients, e.g. channel state information [CSI]
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B7/00—Radio transmission systems, i.e. using radiation field
- H04B7/02—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
- H04B7/04—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
- H04B7/06—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station
- H04B7/0613—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission
- H04B7/0615—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal
- H04B7/0619—Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas at the transmitting station using simultaneous transmission of weighted versions of same signal using feedback from receiving side
- H04B7/0621—Feedback content
- H04B7/0628—Diversity capabilities
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0053—Allocation of signalling, i.e. of overhead other than pilot signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L25/00—Baseband systems
- H04L25/02—Details ; arrangements for supplying electrical power along data transmission lines
- H04L25/0202—Channel estimation
- H04L25/0224—Channel estimation using sounding signals
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04L—TRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
- H04L5/00—Arrangements affording multiple use of the transmission path
- H04L5/003—Arrangements for allocating sub-channels of the transmission path
- H04L5/0048—Allocation of pilot signals, i.e. of signals known to the receiver
Definitions
- the present invention relates to the field of communications, and in particular to a method and device for feedback of capability information and channel state information.
- the precoding matrix or beamforming vector needs to better match the channel, which requires the transmitter to be able to better obtain channel state information (CSI). Therefore, CSI feedback is a key technology to achieve high-performance precoding or beamforming in MIMO systems.
- the quantized feedback of the channel matrix will bring relatively large feedback overhead. Since the base station cannot know the actual feedback rank of the terminal, the resources allocated by the base station for CSI feedback may be insufficient, and the terminal needs to discard part of the channel state information according to an agreed criterion. In addition, the computational complexity of high-performance precoding is relatively high, and different types of terminals have different computational capabilities. Therefore, it is necessary for the terminal to feed back its supported capability information to facilitate the scheduling of the base station.
- the embodiment of the present invention provides a method and device for feedback of capability information and channel state information, so as to at least solve the problem of relatively large feedback overhead caused by quantization feedback of the channel matrix when CSI feedback is performed in the related art.
- CSI quantization feedback technology is an important part of MIMO technology.
- DFT vectors or variations of DFT vectors are usually used, for example, the Kronecker product of multiple DFT vectors, or the level of DFT vectors In the concatenated form, or the phase adjustment form of the cascaded DFT vector, the terminal reports the precoding indication information of the above form to the base station through quantization feedback.
- This type of precoding codebook can be classified as the first type of codebook. This type of codebook has low overhead, but has low CSI quantization accuracy and limited performance.
- Another type of codebook combines linear weighting of DFT vectors or Kronecker products of DFT vectors. The weighted combined vector is called the codebook base vector.
- the codebook base vector information, the amplitude and phase information of the weighting coefficients As precoding indication information is fed back to the base station, such a precoding codebook can be classified as a second type of codebook.
- the precoding codebook in adjacent frequency domain units obtained from the second type codebook has correlation. This correlation can be used to compress in the frequency domain using the DFT matrix to further reduce the overhead of the second type codebook.
- This codebook is called the second type of frequency domain compression codebook.
- the terminal usually feeds back rank information RI, indicating the number of layers it feeds back.
- rank information RI indicating the number of layers it feeds back.
- the second type of frequency domain compression codebook of a certain layer can be expressed as:
- W 1 is the spatial basis vector, and the dimension of W 1 is 2N 1 N 2 ⁇ 2L, and its form is:
- N 1 N 2 represents the number of reference signal ports
- N 1 represents the number of horizontal reference signal ports
- N 2 represents the number of vertical reference signal ports
- the coefficient 2 represents dual polarization.
- L(L ⁇ 2,4,6 ⁇ ) first basis vectors v 0 , v 1 ,..., v L-1 are orthogonal to each other, and the specific form is:
- W 1 the information in W 1 is fed back by broadband, that is, for different frequency domain units and different layers in the entire CSI feedback bandwidth, the information in W 1 is the same.
- W f represents the base vector in the frequency domain, the selection of each layer is independent, and its dimension is N 3 ⁇ M:
- N 3 represents the number of precoding subbands
- N SB represents the number of CQI subbands.
- the second basis vector can be selected from the set of size N 3 ; if N 3 >19, then n ⁇ mod ⁇ (n 0 ,n 0 +1,...,n 0 +N′ 3 -1),N 3 ⁇ ( Scale Factor ), This time from the second base vector of size N 'selection set 3. It is the weighting coefficient of the first base vector and the second base vector, and its dimension is 2L ⁇ M, and its amplitude and phase need to be quantized and fed back. will Rows 1 to L are called the first antenna port group; The L+1 to 2L lines of the second antenna port group.
- the antenna port group at the index position of the weighting coefficient reference amplitude is called the strong polarization direction, and correspondingly, the other antenna port group is called the weak polarization direction.
- the amplitude of the weighting coefficient in the strong polarization direction is quantized, and differential quantization is performed with 1 as a reference.
- a quantization reference amplitude is determined in the weighting coefficient of the weak polarization direction, and the amplitude of the weighting coefficient of the weak polarization direction is quantized, and the quantization reference amplitude is used as a reference for differential quantization.
- the quantization overhead of the quantization reference amplitude is 4 bits
- the amplitude quantization overhead of each weighted coefficient is 3 bits
- the phase quantization overhead of each weighted coefficient is 3 bits or 4 bits.
- the bitmap indicates the index position for selecting the weighting coefficient.
- the terminal needs to feed back L first base vector selection instructions, M second base vector selection instructions for each layer, and weight coefficient information for each layer.
- the weighting coefficient information includes: bitmap information, weighting coefficient amplitude information, weighting coefficient amplitude information, index position of weighting coefficient reference amplitude, and quantized reference amplitude.
- the base station cannot know the actual rank fed back by the terminal, the resources allocated by the base station for feedback of channel state information may be insufficient, and the terminal needs to discard part of the channel state information according to an agreed criterion.
- the computational complexity of high-performance precoding is relatively high, and different types of terminals have different computational capabilities. Therefore, it is necessary for the terminal to feed back its supported capability information to facilitate scheduling by the base station.
- a capability information feedback method including: a first communication node sends capability information indicating the first communication node to a second communication node; and the first communication node receives the second communication node The parameter signaling corresponding to the capability of the first communication node sent by the communication node.
- the capability information includes at least one of the following: the maximum number of reference signal ports, the maximum number of reference resources in each frequency band, the maximum support for the sum of all reference signal ports in each frequency band, and whether to support sub-band channel state information feedback , Maximum number of supported layers, maximum number of supported first base vectors, maximum number of supported second base vectors, maximum supported optional set size of second base vectors, maximum supported number of CQI subbands, maximum supported number of precoding subbands , The maximum support for the feedback ratio of the weighting coefficient, the maximum support for the size of the product of the first base vector number and the second base vector number, the number of CPUs, and the maximum number of CPUs that can be simultaneously occupied by a channel state information report.
- the optional set of second basis vectors includes a greater number of basis vectors than the number of second basis vectors, and the second basis vectors are selected from the optional set of second basis vectors.
- the number of CPUs is the number of channel state information processing units of the first communication node, wherein the channel state information processing units are used to reflect the ability of the first communication node to process channel state information.
- the parameter signaling includes: the configuration information used for calculating the channel state information report, the channel carrying the channel state information report, and the resource size; wherein the channel carrying the channel state information report includes at least one of the following: one or more A control channel, a shared channel.
- the configuration information used for calculating the channel state information report includes at least one of the following: a set of reference resources used for calculating the channel state information report, a reference signal resource used for calculating the channel state information report, the maximum feedback rank, and the first base
- the second basis vector number related parameter is used to determine the second basis vector number.
- the maximum feedbackable rank when the maximum feedbackable rank is not configured in the configuration information used for calculating the channel state information report, the maximum feedbackable rank defaults to the maximum number of supported layers in the capability information of the first communication node.
- the configuration information used for calculating the channel state information report cannot exceed the capability of the first communication node.
- the parameter signaling uses an index value to indicate part of the parameter information.
- the partial parameter information includes at least one of the following: the number of the first basis vectors, the parameters related to the number of the second basis vectors, the feedback ratio of the weighting coefficient, and the scale factor.
- the part of the parameter information indicated by the index value uses an index list jointly agreed by the first communication node and the second communication node.
- the index list is one index list or multiple index lists.
- the first communication node determines which list to use through specific parameters included in parameter signaling.
- the specific parameter includes at least one: the number of ports of the reference signal, the maximum feedbackable rank, and the number of precoding subbands.
- the embodiment of the present invention also provides a method for feeding back channel state information, including: a first communication node calculates channel state information, and sends a first type of signaling to a second communication node; wherein, the first type of signaling is sent The resource is less than the resource required to send the actual channel state information, and part of the precoding information is discarded according to the priority order.
- the method before sending the first type of signaling to the second communication node, the method further includes: the first communication node receives parameter signaling of the second communication node, and the parameter signaling includes: Calculate the configuration information used for the channel state information report, the channel and resource size for sending the first type of signaling.
- the first type of signaling includes one or more channel state information reports; wherein, the channel state information report includes at least one of the following: rank indication information, modulation and coding information, layer indication information, reference signal resource indication information , Precoding information.
- the precoding information includes at least one of the following: the total number of weighting coefficients of all layers, the selection indication of the first base vector, the selection indication of the second base vector of each layer, and the weighting coefficient information of each layer;
- the weighting coefficient is the weighting coefficient of the first basis vector and the second basis vector, and the weighting coefficient information of each layer includes: bitmap information, weighting coefficient amplitude information, weighting coefficient phase information, weighting coefficient reference amplitude The index position and the quantized reference amplitude.
- the amplitude information of the weighting coefficient and the phase information of the weighting coefficient are quantized information of the weighting coefficient that needs to be fed back, and the bitmap information is used to indicate the index position of the weighting factor that needs to be fed back.
- a channel state information report is composed of two parts, including the first part of channel state information and the second part of channel state information; wherein, the resource size occupied by the first part of channel state information is fixed, and is used to indicate the second part of channel state information.
- the size of the resources occupied by the status information is composed of two parts, including the first part of channel state information and the second part of channel state information; wherein, the resource size occupied by the first part of channel state information is fixed, and is used to indicate the second part of channel state information. The size of the resources occupied by the status information.
- the first part of channel state information includes: rank indication information and the total number of weighting coefficients of all layers in the second part of channel state information.
- the second part of the channel state information includes: the selection indication of the first base vector, the selection indication of the second base vector of each layer, and the weight coefficient information of each layer.
- the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted according to the priority principle;
- the priority principle adopts one of the following methods: the priority is from the highest to the layer index, the first A base vector index, a second base vector index; the priority is the layer index, the second base vector index, and the first base vector index in order of priority; the priority is the first base vector index and the second base vector in order of priority Index, layer index; the priority is the second base vector index, the first base vector index, and the layer index in order of priority; the priority is the first base vector index, the second base vector index, and the antenna port group index in order of the highest priority.
- Layer index priority from high to the second base vector index, first base vector index, antenna port group index, layer index; priority from high to the antenna port group index, first base vector index, Two base vector index and layer index; the priority is from high to the antenna port group index, the second base vector index, the first base vector index, and the layer index.
- the actual channel state information is information calculated by the first communication node according to configuration information used for calculating the channel state information report.
- the discarding part of the precoding information according to the priority order includes one of the following ways: discarding part of the amplitude information of the weighting coefficient with the lowest priority and the phase information of the weighting coefficient with the lowest priority, so that the resources for sending the first signaling , Enough to send the remaining actual channel state information; discard part of the amplitude information of the weighting coefficient with the lowest priority, the phase information of the weighting coefficient with the lowest priority, and the bitmap information with the lowest priority, so that the resources for sending the first signaling are sufficient Send the remaining actual channel state information.
- the embodiment of the present invention also provides a parameter signaling sending method, including: a second communication node receives the capability information used to indicate the first communication node sent by the first communication node; and the second communication node sends the The first communication node sends parameter signaling corresponding to the capability of the first communication node.
- the parameter signaling includes: the configuration information used for calculating the channel state information report, the channel carrying the channel state information report, and the resource size; wherein the channel carrying the channel state information report includes at least one of the following: one or more A control channel, a shared channel.
- the configuration information used for calculating the channel state information report includes at least one of the following: a set of reference resources used for calculating the channel state information report, reference signal resources used for calculating the channel state information report, the maximum feedbackable rank, and the first base
- the second basis vector number related parameter is used to determine the second basis vector number.
- the parameter signaling uses an index value to indicate part of the parameter information.
- the partial parameter information includes at least one of the following: the number of the first basis vector, the parameters related to the number of the second basis vector, the feedback ratio of the weighting coefficient, and the scale factor.
- the part of the parameter information indicated by the index value uses an index list jointly agreed by the first communication node and the second communication node.
- the index list is one index list or multiple index lists.
- the first communication node determines which list to use through specific parameters included in the parameter signaling.
- the specific parameter includes at least one: the number of ports of the reference signal, the maximum feedbackable rank, and the number of precoding subbands.
- the embodiment of the present invention also provides a channel state information feedback device, which is located at a first communication node, and includes: a sending module configured to send to a second communication node the capability information of the first communication node; a receiving module, To receive parameter signaling corresponding to the capability of the first communication node sent by the second communication node.
- the embodiment of the present invention also provides a feedback device for channel state information, which is located at a first communication node and includes: a calculation module configured to calculate channel state information and send the first type of signaling to the second communication node; The resources of the first type of signaling are less than the resources required for sending channel state information, and part of the precoding information is discarded according to the priority order.
- the device also includes a receiving module configured to receive parameter signaling of the second communication node before the sending module sends the first type of signaling, where the parameter signaling is used to instruct to calculate a channel state information report The parameters used, the channel and resource size for sending the first type of signaling.
- the embodiment of the present invention also provides a parameter signaling sending device, which is located in a second communication node, and includes: a receiving module configured to receive the capability information sent by the first communication node and used to indicate the first communication node; a sending module , Set to send parameter signaling corresponding to the capability of the first communication node to the first communication node.
- a storage medium in which a computer program is stored, wherein the computer program is configured to execute the steps in the foregoing method embodiment when running.
- an electronic device including a memory and a processor, the memory stores a computer program, and the processor is configured to run the computer program to execute the above method embodiments Steps in.
- the first communication node feeds back its supported capability information to the second communication node, which is convenient for the second communication node to perform scheduling based on the capability of the first communication node.
- the high-performance precoding configurable parameters are relatively low.
- the second communication node can reduce the signaling overhead by configuring indexes of some parameter combinations.
- Fig. 1 is a schematic structural diagram of a mobile terminal according to an embodiment of the present invention.
- FIG. 2 is a flowchart of a method for feedback of capability information according to an embodiment of the present invention
- Figure 3 is a flowchart of a method for channel state information feedback according to an embodiment of the present invention.
- FIG. 4 is a flowchart of a method for feedback of capability information according to an embodiment of the present invention.
- 5(a) and (b) are schematic diagrams of the weighting coefficients of the 0th layer and the first layer of feedback according to an embodiment of the present invention
- Figure 6 is a schematic structural diagram of a capability information feedback device according to an embodiment of the present invention.
- Fig. 7 is a schematic structural diagram of a channel state information feedback device according to an embodiment of the present invention.
- Fig. 8 is a schematic structural diagram of a signaling parameter sending apparatus according to an embodiment of the present invention.
- FIG. 1 is a block diagram of the hardware structure of the mobile terminal according to the method embodiment of the present invention.
- the mobile terminal may include one or more (only one is shown in FIG. 1) processor 102 (the processor 102 may include, but is not limited to, a processing device such as a microprocessor MCU or a programmable logic device FPGA. ) And a memory 104 for storing data.
- the above mobile terminal may also include a transmission device 106 and an input/output device 108 for communication functions.
- the structure shown in FIG. 1 is only for illustration, and does not limit the structure of the above-mentioned mobile terminal.
- the mobile terminal 10 may also include more or fewer components than those shown in FIG. 1, or have a different configuration from that shown in FIG.
- the memory 104 may be configured to store computer programs, for example, software programs and modules of application software, such as the corresponding computer programs in the method embodiments of the present invention.
- the processor 102 executes various functions by running the computer programs stored in the memory 104 Application and data processing, namely to achieve the above method.
- the memory 104 may include a high-speed random access memory, and may also include a non-volatile memory, such as one or more magnetic storage devices, flash memory, or other non-volatile solid-state memory.
- the memory 104 may further include a memory remotely provided with respect to the processor 102, and these remote memories may be connected to the mobile terminal 10 via a network. Examples of the aforementioned networks include but are not limited to the Internet, corporate intranets, local area networks, mobile communication networks, and combinations thereof.
- the transmission device 106 is configured to receive or transmit data via a network.
- the above-mentioned specific example of the network may include a wireless network provided by the communication provider of the mobile terminal 10.
- the transmission device 106 includes a network adapter (Network Interface Controller, NIC for short), which can be connected to other network devices through a base station to communicate with the Internet.
- the transmission device 106 may be a radio frequency (Radio Frequency, referred to as RF) module, which is configured to communicate with the Internet in a wireless manner.
- RF Radio Frequency
- FIG. 2 is a flowchart according to an embodiment of the present invention.
- the first communication node may be a mobile terminal
- the second communication node The node may be a base station.
- the process includes the following steps:
- Step S202 The first communication node sends the capability information indicating the first communication node to the second communication node;
- Step S204 The first communication node receives the parameter signaling corresponding to the capability of the first communication node sent by the second communication node.
- FIG. 3 is a flowchart according to an embodiment of the present invention.
- the first communication node may be a mobile terminal
- the second communication node may be a base station.
- the process includes the following steps:
- Step S304 the first communication node calculates the channel state information, and sends the first type of signaling to the second communication node; wherein, the resources for sending the first type of signaling are less than the resources required for sending the actual channel state information, according to The priority order discards part of the precoding information.
- the method further includes step S302: the first communication node receives parameter signaling of the second communication node, where the parameter signaling includes: configuration information used for calculating the channel state information report, sending the first type of information Make the channel and resource size.
- FIG. 4 is a flowchart according to an embodiment of the present invention.
- the first communication node may be a mobile terminal
- the second communication node may be a base station.
- the process includes the following steps:
- Step S402 The second communication node receives the capability information used to indicate the first communication node sent by the first communication node;
- Step S404 The second communication node sends parameter signaling corresponding to the capability of the first communication node to the first communication node.
- the terminal can feed back capability information in the following manner.
- the terminal feedbacks the following capability information: the maximum number of reference signal ports, the maximum number of reference resources in each frequency band, the maximum support for the sum of all reference signal ports in each frequency band, whether to support subband channel state information feedback, the maximum number of supported layers, And other terminal capability information.
- the feedback of some other terminal capability information can take one of the following implementation modes:
- the first base vector number L that can be processed is terminal capability information. As shown in Table 1 below, in an embodiment, under a certain number of ports, the terminal selects one of the terminal capability 1, the terminal capability 2, and the terminal capability 3 according to its own processing capability and feeds it back to the base station.
- the terminal feeds back the maximum number L of first base vectors that can be supported.
- the number of first base vectors L and the number of precoding subbands N 3 that can be processed are terminal capability information.
- the terminal selects one of the terminal capability (L) 1, the terminal capability (L) 2, and the terminal capability (L) 3 according to its own processing capability. Then select one of terminal capability (N 3 ) 1 and terminal capability (N 3 ) 2, and feed it back to the base station.
- the terminal selects one of terminal capabilities (L) 1, terminal capabilities (L) 2, and terminal capabilities (L) 3 according to its own processing capabilities , And then select one of terminal capabilities (N 3 ) 1, terminal capabilities (N 3 ) 2, and terminal capabilities (N 3 ) 3, and feed it back to the base station.
- the terminal feeds back the maximum number of first base vectors L that can be supported and the maximum number of precoding subbands N 3 that can be supported.
- the number of first base vectors L, the number of precoding subbands N 3 and the number of second base vectors M that can be processed are terminal capability information.
- a specific embodiment is that, as shown in Table 4, under a specific number of ports, the terminal selects one of the terminal capability (L) 1, the terminal capability (L) 2, and the terminal capability (L) 3 according to its own processing capability. , Then select one of terminal capability (N 3 )1 and terminal capability (N 3 )2, and finally select one from terminal capability (M)1 and terminal capability (M)2, and feed it back to the base station.
- the terminal selects one of terminal capabilities (L) 1, terminal capabilities (L) 2, and terminal capabilities (L) 3 according to its own processing capabilities. , Select one from terminal capability (N 3 ) 1, terminal capability (N 3 ) 2, and finally select one from terminal capability (M) 1, terminal capability (M) 2 and terminal capability (M) 3, and feed it back to the base station .
- the terminal under a specific number of ports, the terminal selects one of terminal capabilities (L) 1, terminal capabilities (L) 2, and terminal capabilities (L) 3 according to its own processing capabilities. Then select one of terminal capability (N 3 ) 1, terminal capability (N 3 ) 2 and terminal capability (N 3 ) 3, and finally select one from terminal capability (M) 1, terminal capability (M) 2, and feed it back to Base station.
- the terminal selects from terminal capability (L) 1, terminal capability (L) 2, and terminal capability (L) 3 according to its own processing capability One, and then select one from terminal capability (N 3 ) 1, terminal capability (N 3 ) 2 and terminal capability (N 3 ) 3, and finally from terminal capability (M) 1, terminal capability (M) 2 and terminal capability ( M) Select one of 3 and feed it back to the base station.
- the terminal feeds back the maximum number of first base vectors that can be supported L, the maximum number of precoding subbands that can be supported N 3 and the maximum number of second base vectors that can be supported M.
- Embodiment 1-4
- the number of first base vectors that can be processed L, the number of precoding subbands N 3, the number of second base vectors M is terminal capability information, and the feedback ratio ⁇ of weighting coefficients is capability information.
- the terminal feedbacks the maximum number of first base vectors that can be supported L, the maximum number of precoding subbands that can be supported N 3 , and the maximum number of second base vectors that can be supported M And the maximum supportable weighting coefficient feedback ratio ⁇ .
- part of the parameter information configured by the base station to calculate the channel state information report can be in the form of an index table.
- the terminal can obtain part of the parameter information used for calculating the channel state information report through one of the following embodiments.
- Embodiment 2-1
- the configuration of ⁇ the number of first base vectors L, the parameter p, the feedback ratio ⁇ of the weighting coefficient ⁇ is determined.
- the number of ports of the reference signal in Table 8 is less than 32
- the number of ports of the reference signal in Table 9 is greater than or equal to 32, and the number of ports of the reference signal can be determined to be used. Is it Table 8 or Table 9, and then the configuration of ⁇ L,(v 0 ,y 0 ), ⁇ or ⁇ L,v 0 , ⁇ can be determined according to the index value.
- the configuration of ⁇ the number of first base vectors L, the parameter p, the feedback ratio ⁇ of the weighting coefficient, the scale factor ⁇ is determined.
- the number of ports of the reference signal in Table 10 is less than 32 and N 3 ⁇ 19, and the number of ports of the reference signal in Table 11 is greater than or equal to 32 and N 3 ⁇ 19.
- the number of ports of the reference signal is less than 32 and N 3 >19
- the number of ports of the reference signal is greater than or equal to 32 and N 3 >19.
- the configuration of ⁇ the number L of the first base vector, the parameter p, the feedback ratio ⁇ of the weighting coefficient, the scale factor ⁇ is determined.
- the number of ports of the reference signal in Table 14 is less than 32, and the number of ports of the reference signal in Table 15 is greater than or equal to 32. According to the number of reference signal ports, you can determine which table is used, and then according to the index value, you can determine ⁇ L,v 0 , ⁇ , ⁇ or ⁇ L,(v 0 ,y 0 ), ⁇ , ⁇ Configuration. Where ⁇ 1 ⁇ 2 , and
- the index value can only be configured as an even number or only an odd number, and the value of the default scale factor ⁇ is invalid; when the number of precoding subbands N 3 ⁇ 19 , The value of the scale factor ⁇ is valid.
- the configuration of ⁇ number of first basis vectors L, parameter p, feedback ratio ⁇ of weighting coefficient ⁇ is determined.
- a specific implementation is that, as shown in Table 16 and Table 17, the maximum feedback rank of Table 16 is 2, and the maximum feedback rank of Table 17 is 4. According to the maximum rank that can be fed back, you can determine whether to use Table 16 or Table 17, and then determine the configuration of ⁇ L, v 0 , ⁇ or ⁇ L, (v 0 , y 0 ), ⁇ according to the index value .
- the configuration of ⁇ the number of first base vectors L, parameter P, weighted coefficient feedback ratio ⁇ , parameter ⁇ is determined.
- a specific implementation is that, as shown in Tables 18, 19, 20, and 21, the maximum feedback rank in Table 18 is 2 and N 3 ⁇ 19, and the maximum feedback rank in Table 19 is 2 and N 3 >19.
- the rank of the maximum feedback in Table 20 is 4 and N 3 ⁇ 19
- the rank of the maximum feedback in Table 21 is 4 and N 3 >19.
- the configuration of ⁇ the number of first basis vectors L, the parameter p, the feedback ratio ⁇ of the weighting coefficient, the parameter ⁇ is determined according to the size and index value of the maximum rank that can be fed back.
- a specific implementation is that, as shown in Tables 22 and 23, the maximum feedback rank in Table 22 is 2, and the maximum feedback rank in Table 23 is 4. According to the maximum feedback rank and the number of precoding subbands, it is possible to determine which table is used, and then according to the index value, ⁇ L,v 0 , ⁇ , ⁇ or ⁇ L,(v 0 , y 0 ), ⁇ , ⁇ configuration. Where ⁇ 1 ⁇ 2 , and In addition, when the number of precoding subbands N 3 ⁇ 19, the index value can only be configured as an even number or only an odd number, and the value of the default scale factor ⁇ is invalid; when the number of precoding subbands N 3 ⁇ 19 , The value of the scale factor ⁇ is valid.
- the terminal and the base station agree to adopt one of the following implementation manners to feed back the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient.
- the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted in the order of priority from high to low of the layer index, the first base vector index, and the second base vector index.
- the priority of the layer index refers to that the weighting coefficient with the lowest layer index corresponds to the highest priority; the first basis vector index corresponds to the matrix The row index of the row index, the weighting coefficient with the lowest row index corresponds to the highest priority; the second base vector index corresponds to the matrix The column index of the column index with the lowest weighting coefficient corresponds to the highest priority.
- the bitmap information, the magnitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted in the order of priority from high to low of the layer index, the second base vector index, and the first base vector index.
- the priority of the layer index refers to that the weighting coefficient with the lowest layer index corresponds to the highest priority; the second base vector index corresponds to the matrix Column index, the weighting coefficient with the lowest column index corresponds to the highest priority; the first basis vector index corresponds to the matrix The row index of the row index, the weighting coefficient with the lowest row index corresponds to the highest priority.
- Embodiment 3-3 is a diagrammatic representation of Embodiment 3-3.
- the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted in the order of the first base vector index, the second base vector index, and the priority of the layer index from high to low.
- the first basis vector index corresponds to the matrix
- the row index of the row index, the weighting coefficient with the lowest row index corresponds to the highest priority
- the second basis vector index corresponds to the matrix
- the priority of the layer index refers to the priority corresponding to the weighting coefficient with the lowest layer index.
- the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted in the order of priority of the second base vector index, the first base vector index, and the layer index from high to low.
- the second basis vector index corresponds to the matrix
- the column index of the column index, the weighting coefficient with the lowest column index corresponds to the highest priority
- the first basis vector index corresponds to the matrix
- the priority of the layer index refers to the priority corresponding to the weighting coefficient with the lowest layer index.
- the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted according to the priority order of the first base vector index, the second base vector index, the antenna port group index, and the layer index.
- the first basis vector index corresponds to the matrix The row index of the row index, the weighting coefficient with the lowest row index corresponds to the highest priority; the second basis vector index corresponds to the matrix The priority of the weighting coefficient corresponding to the lowest column index is the highest; the priority of the antenna port group index, wherein the priority of the weighting coefficient of the strong polarization direction is higher than the weighting coefficient of the weak polarization direction; the layer
- the priority of the index refers to the priority corresponding to the lowest weighting coefficient of the layer index.
- the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted in the order of priority from high to low of the second base vector index, the first base vector index, the antenna port group index, and the layer index.
- the second basis vector index corresponds to the matrix
- the column index of the column index, the weighting coefficient with the lowest column index corresponds to the highest priority
- the first basis vector index corresponds to the matrix
- the priority of the weighting coefficient with the lowest row index corresponds to the highest priority
- the priority of the antenna port group index wherein the priority of the weighting coefficient of the strong polarization direction is higher than that of the weak polarization direction
- the layer The priority of the index refers to the priority corresponding to the lowest weighting coefficient of the layer index.
- the bitmap information, the amplitude information of the weighting coefficient, and the phase information of the weighting coefficient are each sorted according to the priority order of the antenna port group index, the first base vector index, the second base vector index, and the layer index from high to low.
- the priority of the antenna port group index wherein the priority of the weighting coefficient of the strong polarization direction is higher than the weighting coefficient of the weak polarization direction;
- the first basis vector index corresponds to the matrix
- the row index of the row index, the weighting coefficient with the lowest row index corresponds to the highest priority;
- the second basis vector index corresponds to the matrix
- the priority of the layer index refers to the priority corresponding to the weighting coefficient with the lowest layer index.
- the bitmap information, the amplitude information of the weighting coefficients, and the phase information of the weighting coefficients are each sorted according to the priority order of the antenna port group index, the second base vector index, the first base vector index, and the layer index.
- the priority of the antenna port group index wherein the priority of the weighting coefficient of the strong polarization direction is higher than the weighting coefficient of the weak polarization direction; the second basis vector index corresponds to the matrix Column index, the weighting coefficient with the lowest column index corresponds to the highest priority; the first basis vector index corresponds to the matrix For the row index of the row index, the weighting coefficient with the lowest row index corresponds to the highest priority; the priority of the layer index refers to the priority corresponding to the weighting coefficient with the lowest layer index.
- a channel state information report consists of two parts.
- the first part of the channel state information occupies a fixed size of resources and is used to indicate the resource size of the second part of the channel state information.
- the first part of channel state information includes, but is not limited to: rank indication information, and the total number of weighting coefficients of all layers in the second part of channel state information.
- the second part of the channel state information includes but is not limited to: the selection indication of the first base vector, the selection indication of the second base vector of each layer, and the weighting coefficient of each layer. Since the base station cannot know the actual feedback rank of the terminal, the resources allocated by the base station for feedback of the channel state information report may be insufficient, and the terminal needs to discard part of the precoding information according to the priority order. Specifically, the discarding principle can choose one of the following two implementation manners.
- Embodiment 4-1 is a diagrammatic representation of Embodiment 4-1:
- Sub-embodiment 4-1-1 part of the amplitude information of the weighting coefficient with the lowest priority and the phase information of the weighting coefficient with the lowest priority are discarded. According to the above criteria, until the resources for transmitting the first type of signaling are sufficient to transmit the actual channel state information. At the same time, the total number of weighting coefficients for all layers is recalculated, and the total number of weighting coefficients for all layers in the first part of the channel state information is updated.
- Sub-embodiment 4-1-2 A part of the amplitude information of the weighting coefficient with the lowest priority and the phase information of the weighting coefficient with the lowest priority are discarded. According to the above criteria, until the resources for transmitting the first type of signaling are sufficient to transmit the actual channel state information. At the same time, the total number of weighting coefficients of all layers in the first part of the channel state information is not updated, and feedback is still performed according to the total number of weighting coefficients of all layers before discarding. In this way, the base station can implicitly know the number of weighting coefficients discarded by the terminal, which is beneficial to the base station for scheduling.
- Embodiment 4-2 is a diagrammatic representation of Embodiment 4-2.
- Sub-embodiment 4-2-1 A part of the amplitude information of the weighting coefficient with the lowest priority and the phase information of the weighting coefficient with the lowest priority are discarded. At the same time, part of the bitmap information with the lowest priority is discarded. The part of the bitmap information with the lowest priority refers to discarding the part of the bitmap information corresponding to the weighting coefficient with the lowest priority. According to the above criteria, until the resources for transmitting the first type of signaling are sufficient to transmit the actual channel state information. At the same time, the total number of weighting coefficients for all layers is recalculated, and the total number of weighting coefficients for all layers in the first part of the channel state information is updated.
- Sub-embodiment 4-2-2 A part of the amplitude information of the weighting coefficient with the lowest priority and the phase information of the weighting coefficient with the lowest priority are discarded. At the same time, part of the bitmap information with the lowest priority is discarded. The part of the bitmap information with the lowest priority refers to discarding the part of the bitmap information corresponding to the weighting coefficient with the lowest priority. At the same time, the total number of weighting coefficients of all layers in the first part of the channel state information is not updated, and feedback is still performed according to the total number of weighting coefficients of all layers before discarding. In this way, the base station can implicitly know the number of weighting coefficients discarded by the terminal, which is beneficial to the base station for scheduling.
- the weighting coefficients that need to be fed back are the weighting coefficients marked with serial numbers as shown in Figure 5(a) and (b), where Figure 5(a) and (b) represent the 0th layer and the 1st layer, respectively.
- the weighting coefficients numbered 2 and 8 are the index positions of the reference amplitudes of the weighting coefficients of layer 0 and layer 1, respectively.
- the shaded parts indicate the strong polarization direction of each layer.
- the bitmap information is: 11001110 01100000 00000011 01110110; if the index position of the weighting coefficient reference amplitude of each layer does not need to feed back the bitmap information, the bitmap information is : 100110 01100000 00000011 01110110.
- the amplitude information of the weighting coefficients and the phase information of the weighting coefficients are as shown in Table 24, wherein the weighting coefficients indicated by the index positions of the reference amplitudes of the weighting coefficients of each layer do not need to feed back the amplitude and phase information.
- the bitmap information after discarding is: 11001110 01110000000000000011 01100; if the index position of the weighting coefficient reference amplitude of each layer does not need to feed back the bitmap information, discard it The following bitmap information is: 100110 01100000 00000011 01100.
- the amplitude information of the weighting coefficients and the phase information of the weighting coefficients are shown in Table 25. The weighting coefficients indicated by the index positions of the reference amplitudes of the weighting coefficients of each layer do not need to feed back the amplitude and phase information:
- the bitmap information is: 11100100 00100111 11000010 00010110; if the index position of the weighting coefficient reference amplitude of each layer does not need to feed back the bitmap information, the bitmap information is : 100100 00100111 11000010 00010110.
- the amplitude information of the weighting coefficients and the phase information of the weighting coefficients are shown in Table 26, where the weighting coefficients indicated by the index positions of the reference amplitudes of the weighting coefficients of each layer do not need to feedback the amplitude and phase information:
- the bitmap information after discarding is: 11100100 00100111 11000010 00000; if the index position of the weighting coefficient reference amplitude of each layer does not need to feed back the bitmap information, discard it The following bitmap information is: 100100 00100111 11000010 00000.
- the amplitude information of the weighting coefficients and the phase information of the weighting coefficients are shown in Table 27, where the weighting coefficients indicated by the index positions of the reference amplitudes of the weighting coefficients of each layer do not need to feedback the amplitude and phase information:
- the method according to the above embodiment can be implemented by means of software plus the necessary general hardware platform, of course, it can also be implemented by hardware, but in many cases the former is Better implementation.
- the technical solution of the present invention essentially or the part that contributes to the existing technology can be embodied in the form of a software product, and the computer software product is stored in a storage medium (such as ROM/RAM, magnetic disk, The optical disc) includes several instructions to enable a terminal device (which can be a mobile phone, a computer, a server, or a network device, etc.) to execute the method described in each embodiment of the present invention.
- a capability information and channel state information feedback device is also provided.
- the device is configured to implement the above-mentioned embodiments and preferred implementations, and what has been described will not be repeated.
- the terms “module” and “unit” can be a combination of software and/or hardware that implements predetermined functions.
- the devices described in the following embodiments are preferably implemented by software, hardware or a combination of software and hardware is also possible and conceived.
- Fig. 6 is a structural block diagram of a capability information feedback device according to an embodiment of the present invention, and the device is located at a first communication node.
- the first communication node may be a mobile terminal, and the second communication node may be a base station.
- the device includes a sending module 10 and a receiving module 20.
- the sending module 10 is configured to send the capability information indicating the first communication node to the second communication node.
- the receiving module 20 is configured to receive parameter signaling corresponding to the capability of the first communication node sent by the second communication node.
- Fig. 7 is a structural block diagram of a device for feedback of channel state information according to an embodiment of the present invention, and the device is located at a first communication node.
- the first communication node may be a mobile terminal, and the second communication node may be a base station.
- the device includes a calculation module 40.
- the calculation module 40 is configured to calculate the channel state information and send the first type of signaling to the second communication node; wherein, the resources for sending the first type of signaling are less than the resources required for sending the channel state information, according to the priority order Some precoding information is discarded.
- the device may further include a receiving module 30.
- the receiving module 30 is configured to receive parameter signaling of the second communication node before the sending module sends the first type of signaling, where the parameter signaling is used to indicate the parameters used for calculating the channel state information report and the sending Channel and resource size of the first type of signaling.
- Fig. 8 is a structural block diagram of a parameter signaling sending device according to an embodiment of the present invention, and the device is located at a second communication node.
- the first communication node may be a mobile terminal, and the second communication node may be a base station.
- the device includes a receiving module 50 and a sending module 60.
- the receiving module 50 is configured to receive the capability information used for indicating the first communication node sent by the first communication node.
- the sending module 60 is configured to send parameter signaling corresponding to the capability of the first communication node to the first communication node.
- each of the above modules can be implemented by software or hardware.
- it can be implemented in the following manner, but not limited to this: the above modules are all located in the same processor; or, the above modules are combined in any combination The forms are located in different processors.
- the embodiment of the present invention also provides a storage medium in which a computer program is stored, wherein the computer program is configured to execute the steps in the foregoing method embodiment when running.
- the foregoing storage medium may include, but is not limited to: U disk, Read-Only Memory (Read-Only Memory, ROM for short), Random Access Memory (Random Access Memory, RAM for short), Various media that can store computer programs, such as mobile hard disks, magnetic disks, or optical disks.
- An embodiment of the present invention also provides an electronic device including a memory and a processor, the memory is stored with a computer program, and the processor is configured to run the computer program to execute the steps in the above method embodiment.
- modules or steps of the present invention can be implemented by a general computing device. They can be concentrated on a single computing device or distributed in a network composed of multiple computing devices. Above, alternatively, they can be implemented with program codes executable by the computing device, so that they can be stored in the storage device for execution by the computing device, and in some cases, can be executed in a different order than here. Perform the steps shown or described, or fabricate them into individual integrated circuit modules, or fabricate multiple modules or steps of them into a single integrated circuit module to achieve. In this way, the present invention is not limited to any specific combination of hardware and software.
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Abstract
Description
| 端口数 | 终端能力1 | 终端能力2 | 终端能力3 |
| 4 | 支持L=2 | 不支持 | 不支持 |
| 8 | 支持L=2 | 支持L=2和L=4 | 不支持 |
| 12 | 支持L=2 | 支持L=2和L=4 | 不支持 |
| 16 | 支持L=2 | 支持L=2和L=4 | 不支持 |
| 24 | 支持L=2 | 支持L=2和L=4 | 不支持 |
| 32 | 支持L=2 | 支持L=2和L=4 | 支持L=2、L=4和L=6 |
| 索引值 | {L,(v 0,y 0),β} |
| 0 | {2,(1/4,1/8),1/4} |
| 1 | {2,(1/4,1/8),1/2} |
| 2 | {2,(1/4,1/8),3/4} |
| 3 | {2,(1/4,1/4),1/4} |
| 4 | {2,(1/4,1/4),1/2} |
| 5 | {2,(1/4,1/4),3/4} |
| 6 | {2,(1/2,1/2),1/4} |
| 7 | {2,(1/2,1/2),1/2} |
| 8 | {2,(1/2,1/2),3/4} |
| 9 | {4,(1/4,1/8),1/4} |
| 10 | {4,(1/4,1/8),1/2} |
| 11 | {4,(1/4,1/8),3/4} |
| 12 | {4,(1/4,1/4),1/4} |
| 13 | {4,(1/4,1/4),1/2} |
| 14 | {4,(1/4,1/4),3/4} |
| 15 | {4,(1/2,1/4),1/4} |
| 16 | {4,(1/2,1/4),1/2} |
| 17 | {4,(1/2,1/4),3/4} |
| 索引值 | {L,v 0,β} |
| 0 | {2,1/4,1/4} |
| 1 | {2,1/4,1/2} |
| 2 | {2,1/4,3/4} |
| 3 | {2,1/2,1/4} |
| 4 | {2,1/2,1/2} |
| 5 | {2,1/2,3/4} |
| 6 | {4,1/4,1/4} |
| 7 | {4,1/4,1/2} |
| 8 | {4,1/4,3/4} |
| 9 | {4,1/2,1/4} |
| 10 | {4,1/2,1/2} |
| 11 | {4,1/2,3/4} |
| 12 | {6,1/4,1/4} |
| 13 | {6,1/4,1/2} |
| 14 | {6,1/4,3/4} |
| 15 | {6,1/2,1/4} |
| 索引值 | {L,(v 0,y 0),β} |
| 0 | {2,(1/4,1/8),1/4} |
| 1 | {2,(1/4,1/8),1/2} |
| 2 | {2,(1/4,1/8),3/4} |
| 3 | {2,(1/4,1/4),1/4} |
| 4 | {2,(1/4,1/4),1/2} |
| 5 | {2,(1/4,1/4),3/4} |
| 6 | {2,(1/2,1/2),1/4} |
| 7 | {2,(1/2,1/2),1/2} |
| 8 | {2,(1/2,1/2),3/4} |
| 9 | {4,(1/4,1/8),1/4} |
| 10 | {4,(1/4,1/8),1/2} |
| 11 | {4,(1/4,1/8),3/4} |
| 12 | {4,(1/4,1/4),1/4} |
| 13 | {4,(1/4,1/4),1/2} |
| 14 | {4,(1/4,1/4),3/4} |
| 15 | {4,(1/2,1/4),1/4} |
| 16 | {4,(1/2,1/4),1/2} |
| 17 | {4,(1/2,1/4),3/4} |
| 索引值 | {L,v 0,β} |
| 0 | {2,1/4,1/4} |
| 1 | {2,1/4,1/2} |
| 2 | {2,1/4,3/4} |
| 3 | {2,1/2,1/4} |
| 4 | {2,1/2,1/2} |
| 5 | {2,1/2,3/4} |
| 6 | {4,1/4,1/4} |
| 7 | {4,1/4,1/2} |
| 8 | {4,1/4,3/4} |
| 9 | {4,1/2,1/4} |
| 10 | {4,1/2,1/2} |
| 11 | {4,1/2,3/4} |
| 12 | {6,1/4,1/4} |
| 13 | {6,1/4,1/2} |
| 14 | {6,1/4,3/4} |
| 15 | {6,1/2,1/4} |
| 索引值 | {L,v 0,β,α} |
| 0 | {2,1/4,1/4,α 1} |
| 1 | {2,1/4,1/4,α 2} |
| 2 | {2,1/4,1/2,α 1} |
| 3 | {2,1/4,1/2,α 2} |
| 4 | {2,1/4,3/4,α 1} |
| 5 | {2,1/4,3/4,α 2} |
| 6 | {2,1/2,1/4,α 1} |
| 7 | {2,1/2,1/4,α 2} |
| 8 | {2,1/2,1/2,α 1} |
| 9 | {2,1/2,1/2,α 2} |
| 10 | {2,1/2,3/4,α 1} |
| 11 | {2,1/2,3/4,α 2} |
| 12 | {4,1/4,1/4,α 1} |
| 13 | {4,1/4,1/4,α 2} |
| 14 | {4,1/4,1/2,α 1} |
| 15 | {4,1/4,1/2,α 2} |
| 16 | {4,1/4,3/4,α 1} |
| 17 | {4,1/4,3/4,α 2} |
| 18 | {4,1/2,1/4,α 1} |
| 19 | {4,1/2,1/4,α 2} |
| 20 | {4,1/2,1/2,α 1} |
| 21 | {4,1/2,1/2,α 2} |
| 22 | {4,1/2,3/4,α 1} |
| 23 | {4,1/2,3/4,α 2} |
| 索引值 | {L,v 0,β,α} |
| 0 | {2,1/4,1/4,α 1} |
| 1 | {2,1/4,1/4,α 2} |
| 2 | {2,1/4,1/2,α 1} |
| 3 | {2,1/4,1/2,α 2} |
| 4 | {2,1/4,3/4,α 1} |
| 5 | {2,1/4,3/4,α 2} |
| 6 | {2,1/2,1/4,α 1} |
| 7 | {2,1/2,1/4,α 2} |
| 8 | {2,1/2,1/2,α 1} |
| 9 | {2,1/2,1/2,α 2} |
| 10 | {2,1/2,3/4,α 1} |
| 11 | {2,1/2,3/4,α 2} |
| 12 | {4,1/4,1/4,α 1} |
| 13 | {4,1/4,1/4,α 2} |
| 14 | {4,1/4,1/2,α 1} |
| 15 | {4,1/4,1/2,α 2} |
| 16 | {4,1/4,3/4,α 1} |
| 17 | {4,1/4,3/4,α 2} |
| 18 | {4,1/2,1/4,α 1} |
| 19 | {4,1/2,1/4,α 2} |
| 20 | {4,1/2,1/2,α 1} |
| 21 | {4,1/2,1/2,α 2} |
| 22 | {4,1/2,3/4,α 1} |
| 23 | {4,1/2,3/4,α 2} |
| 24 | {6,1/4,1/4,α 1} |
| 25 | {6,1/4,1/4,α 2} |
| 26 | {6,1/4,1/2,α 1} |
| 27 | {6,1/4,1/2,α 2} |
| 28 | {6,1/4,3/4,α 1} |
| 29 | {6,1/4,3/4,α 2} |
| 30 | {6,1/2,1/4,α 1} |
| 31 | {6,1/2,1/4,α 2} |
| 索引值 | {L,v 0,β,α} |
| 0 | {2,1/4,1/4,α 1} |
| 1 | {2,1/4,1/4,α 2} |
| 2 | {2,1/4,1/2,α 1} |
| 3 | {2,1/4,1/2,α 2} |
| 4 | {2,1/4,3/4,α 1} |
| 5 | {2,1/4,3/4,α 2} |
| 6 | {2,1/2,1/4,α 1} |
| 7 | {2,1/2,1/4,α 2} |
| 8 | {2,1/2,1/2,α 1} |
| 9 | {2,1/2,1/2,α 2} |
| 10 | {2,1/2,3/4,α 1} |
| 11 | {2,1/2,3/4,α 2} |
| 12 | {4,1/4,1/4,α 1} |
| 13 | {4,1/4,1/4,α 2} |
| 14 | {4,1/4,1/2,α 1} |
| 15 | {4,1/4,1/2,α 2} |
| 16 | {4,1/4,3/4,α 1} |
| 17 | {4,1/4,3/4,α 2} |
| 18 | {4,1/2,1/4,α 1} |
| 19 | {4,1/2,1/4,α 2} |
| 20 | {4,1/2,1/2,α 1} |
| 21 | {4,1/2,1/2,α 2} |
| 22 | {4,1/2,3/4,α 1} |
| 23 | {4,1/2,3/4,α 2} |
| 索引值 | {L,v 0,β,α} |
| 0 | {2,1/4,1/4,α 1} |
| 1 | {2,1/4,1/4,α 2} |
| 2 | {2,1/4,1/2,α 1} |
| 3 | {2,1/4,1/2,α 2} |
| 4 | {2,1/4,3/4,α 1} |
| 5 | {2,1/4,3/4,α 2} |
| 6 | {2,1/2,1/4,α 1} |
| 7 | {2,1/2,1/4,α 2} |
| 8 | {2,1/2,1/2,α 1} |
| 9 | {2,1/2,1/2,α 2} |
| 10 | {2,1/2,3/4,α 1} |
| 11 | {2,1/2,3/4,α 2} |
| 12 | {4,1/4,1/4,α 1} |
| 13 | {4,1/4,1/4,α 2} |
| 14 | {4,1/4,1/2,α 1} |
| 15 | {4,1/4,1/2,α 2} |
| 16 | {4,1/4,3/4,α 1} |
| 17 | {4,1/4,3/4,α 2} |
| 18 | {4,1/2,1/4,α 1} |
| 19 | {4,1/2,1/4,α 2} |
| 20 | {4,1/2,1/2,α 1} |
| 21 | {4,1/2,1/2,α 2} |
| 22 | {4,1/2,3/4,α 1} |
| 23 | {4,1/2,3/4,α 2} |
| 24 | {6,1/4,1/4,α 1} |
| 25 | {6,1/4,1/4,α 2} |
| 26 | {6,1/4,1/2,α 1} |
| 27 | {6,1/4,1/2,α 2} |
| 28 | {6,1/4,3/4,α 1} |
| 29 | {6,1/4,3/4,α 2} |
| 30 | {6,1/2,1/4,α 1} |
| 31 | {6,1/2,1/4,α 2} |
| 索引值 | {L,v 0,β} |
| 0 | {2,1/4,1/4} |
| 1 | {2,1/4,1/2} |
| 2 | {2,1/4,3/4} |
| 3 | {2,1/2,1/4} |
| 4 | {2,1/2,1/2} |
| 5 | {2,1/2,3/4} |
| 6 | {4,1/4,1/4} |
| 7 | {4,1/4,1/2} |
| 8 | {4,1/4,3/4} |
| 9 | {4,1/2,1/4} |
| 10 | {4,1/2,1/2} |
| 11 | {4,1/2,3/4} |
| 12 | {6,1/4,1/4} |
| 13 | {6,1/4,1/2} |
| 14 | {6,1/4,3/4} |
| 15 | {6,1/2,1/4} |
| 索引值 | {L,(v 0,y 0),β} |
| 0 | {2,(1/4,1/8),1/4} |
| 1 | {2,(1/4,1/8),1/2} |
| 2 | {2,(1/4,1/8),3/4} |
| 3 | {2,(1/4,1/4),1/4} |
| 4 | {2,(1/4,1/4),1/2} |
| 5 | {2,(1/4,1/4),3/4} |
| 6 | {2,(1/2,1/2),1/4} |
| 7 | {2,(1/2,1/2),1/2} |
| 8 | {2,(1/2,1/2),3/4} |
| 9 | {4,(1/4,1/8),1/4} |
| 10 | {4,(1/4,1/8),1/2} |
| 11 | {4,(1/4,1/8),3/4} |
| 12 | {4,(1/4,1/4),1/4} |
| 13 | {4,(1/4,1/4),1/2} |
| 14 | {4,(1/4,1/4),3/4} |
| 15 | {6,(1/4,0),1/4} |
| 16 | {6,(1/4,0),1/2} |
| 17 | {6,(1/4,0),3/4} |
| 18 | {6,(1/2,0),1/4} |
| 索引值 | {L,v 0,β} |
| 0 | {2,1/4,1/4} |
| 1 | {2,1/4,1/2} |
| 2 | {2,1/4,3/4} |
| 3 | {2,1/2,1/4} |
| 4 | {2,1/2,1/2} |
| 5 | {2,1/2,3/4} |
| 6 | {4,1/4,1/4} |
| 7 | {4,1/4,1/2} |
| 8 | {4,1/4,3/4} |
| 9 | {4,1/2,1/4} |
| 10 | {4,1/2,1/2} |
| 11 | {4,1/2,3/4} |
| 12 | {6,1/4,1/4} |
| 13 | {6,1/4,1/2} |
| 14 | {6,1/4,3/4} |
| 15 | {6,1/2,1/4} |
| 索引值 | {L,v 0,β,α} |
| 0 | {2,1/4,1/4,α 1} |
| 1 | {2,1/4,1/4,α 2} |
| 2 | {2,1/4,1/2,α 1} |
| 3 | {2,1/4,1/2,α 2} |
| 4 | {2,1/4,3/4,α 1} |
| 5 | {2,1/4,3/4,α 2} |
| 6 | {2,1/2,1/4,α 1} |
| 7 | {2,1/2,1/4,α 2} |
| 8 | {2,1/2,1/2,α 1} |
| 9 | {2,1/2,1/2,α 2} |
| 10 | {2,1/2,3/4,α 1} |
| 11 | {2,1/2,3/4,α 2} |
| 12 | {4,1/4,1/4,α 1} |
| 13 | {4,1/4,1/4,α 2} |
| 14 | {4,1/4,1/2,α 1} |
| 15 | {4,1/4,1/2,α 2} |
| 16 | {4,1/4,3/4,α 1} |
| 17 | {4,1/4,3/4,α 2} |
| 18 | {4,1/2,1/4,α 1} |
| 19 | {4,1/2,1/4,α 2} |
| 20 | {4,1/2,1/2,α 1} |
| 21 | {4,1/2,1/2,α 2} |
| 22 | {4,1/2,3/4,α 1} |
| 23 | {4,1/2,3/4,α 2} |
| 24 | {6,1/4,1/4,α 1} |
| 25 | {6,1/4,1/4,α 2} |
| 26 | {6,1/4,1/2,α 1} |
| 27 | {6,1/4,1/2,α 2} |
| 28 | {6,1/4,3/4,α 1} |
| 29 | {6,1/4,3/4,α 2} |
| 30 | {6,1/2,1/4,α 1} |
| 31 | {6,1/2,1/4,α 2} |
| 索引值 | {L,(v 0,y 0),β} |
| 0 | {2,(1/4,1/8),1/4} |
| 1 | {2,(1/4,1/8),1/2} |
| 2 | {2,(1/4,1/8),3/4} |
| 3 | {2,(1/4,1/4),1/4} |
| 4 | {2,(1/4,1/4),1/2} |
| 5 | {2,(1/4,1/4),3/4} |
| 6 | {2,(1/2,1/2),1/4} |
| 7 | {2,(1/2,1/2),1/2} |
| 8 | {2,(1/2,1/2),3/4} |
| 9 | {4,(1/4,1/8),1/4} |
| 10 | {4,(1/4,1/8),1/2} |
| 11 | {4,(1/4,1/8),3/4} |
| 12 | {4,(1/4,1/4),1/4} |
| 13 | {4,(1/4,1/4),1/2} |
| 14 | {4,(1/4,1/4),3/4} |
| 15 | {6,(1/4,0),1/4} |
| 16 | {6,(1/4,0),1/2} |
| 17 | {6,(1/4,0),3/4} |
| 18 | {6,(1/2,0),1/4} |
| 索引值 | {L,(v 0,y 0),β,α} |
| 0 | {2,(1/4,1/8),1/4,α 1} |
| 1 | {2,(1/4,1/8),1/4,α 2} |
| 2 | {2,(1/4,1/8),1/2,α 1} |
| 3 | {2,(1/4,1/8),1/2,α 2} |
| 4 | {2,(1/4,1/8),3/4,α 1} |
| 5 | {2,(1/4,1/8),3/4,α 2} |
| 6 | {2,(1/4,1/4),1/4,α 1} |
| 7 | {2,(1/4,1/4),1/4,α 2} |
| 8 | {2,(1/4,1/4),1/2,α 1} |
| 9 | {2,(1/4,1/4),3/4,α 1} |
| 10 | {2,(1/4,1/4),3/4,α 2} |
| 11 | {2,(1/2,1/2),1/4,α 1} |
| 12 | {2,(1/2,1/2),1/4,α 2} |
| 13 | {2,(1/2,1/2),1/2,α 1} |
| 14 | {2,(1/2,1/2),1/2,α 2} |
| 15 | {2,(1/2,1/2),3/4,α 1} |
| 16 | {2,(1/2,1/2),3/4,α 2} |
| 17 | {4,(1/4,1/8),1/4,α 1} |
| 18 | {4,(1/4,1/8),1/4,α 2} |
| 19 | {4,(1/4,1/8),1/2,α 1} |
| 20 | {4,(1/4,1/8),1/2,α 2} |
| 21 | {4,(1/4,1/8),3/4,α 1} |
| 22 | {4,(1/4,1/8),3/4,α 2} |
| 23 | {4,(1/4,1/4),1/4,α 1} |
| 24 | {4,(1/4,1/4),1/4,α 2} |
| 25 | {4,(1/4,1/4),1/2,α 1} |
| 26 | {4,(1/4,1/4),1/2,α 2} |
| 27 | {4,(1/4,1/4),3/4,α 1} |
| 28 | {4,(1/4,1/4),3/4,α 2} |
| 29 | {6,(1/4,0),1/4,α 1} |
| 30 | {6,(1/4,0),1/4,α 2} |
| 31 | {6,(1/4,0),1/2,α 1} |
| 32 | {6,(1/4,0),1/2,α 2} |
| 33 | {6,(1/4,0),3/4,α 1} |
| 34 | {6,(1/4,0),3/4,α 2} |
| 35 | {6,(1/2,0),1/4,α 1} |
| 36 | {6,(1/2,0),1/4,α 2} |
| 索引值 | {L,v 0,β,α} |
| 0 | {2,1/4,1/4,α 1} |
| 1 | {2,1/4,1/4,α 2} |
| 2 | {2,1/4,1/2,α 1} |
| 3 | {2,1/4,1/2,α 2} |
| 4 | {2,1/4,3/4,α 1} |
| 5 | {2,1/4,3/4,α 2} |
| 6 | {2,1/2,1/4,α 1} |
| 7 | {2,1/2,1/4,α 2} |
| 8 | {2,1/2,1/2,α 1} |
| 9 | {2,1/2,1/2,α 2} |
| 10 | {2,1/2,3/4,α 1} |
| 11 | {2,1/2,3/4,α 2} |
| 12 | {4,1/4,1/4,α 1} |
| 13 | {4,1/4,1/4,α 2} |
| 14 | {4,1/4,1/2,α 1} |
| 15 | {4,1/4,1/2,α 2} |
| 16 | {4,1/4,3/4,α 1} |
| 17 | {4,1/4,3/4,α 2} |
| 18 | {4,1/2,1/4,α 1} |
| 19 | {4,1/2,1/4,α 2} |
| 20 | {4,1/2,1/2,α 1} |
| 21 | {4,1/2,1/2,α 2} |
| 22 | {4,1/2,3/4,α 1} |
| 23 | {4,1/2,3/4,α 2} |
| 24 | {6,1/4,1/4,α 1} |
| 25 | {6,1/4,1/4,α 2} |
| 26 | {6,1/4,1/2,α 1} |
| 27 | {6,1/4,1/2,α 2} |
| 28 | {6,1/4,3/4,α 1} |
| 29 | {6,1/4,3/4,α 2} |
| 30 | {6,1/2,1/4,α 1} |
| 31 | {6,1/2,1/4,α 2} |
| 索引值 | {L,(v 0,y 0),β,α} |
| 0 | {2,(1/4,1/8),1/4,α 1} |
| 1 | {2,(1/4,1/8),1/4,α 2} |
| 2 | {2,(1/4,1/8),1/2,α 1} |
| 3 | {2,(1/4,1/8),1/2,α 2} |
| 4 | {2,(1/4,1/8),3/4,α 1} |
| 5 | {2,(1/4,1/8),3/4,α 2} |
| 6 | {2,(1/4,1/4),1/4,α 1} |
| 7 | {2,(1/4,1/4),1/4,α 2} |
| 8 | {2,(1/4,1/4),1/2,α 1} |
| 9 | {2,(1/4,1/4),3/4,α 1} |
| 10 | {2,(1/4,1/4),3/4,α 2} |
| 11 | {2,(1/2,1/2),1/4,α 1} |
| 12 | {2,(1/2,1/2),1/4,α 2} |
| 13 | {2,(1/2,1/2),1/2,α 1} |
| 14 | {2,(1/2,1/2),1/2,α 2} |
| 15 | {2,(1/2,1/2),3/4,α 1} |
| 16 | {2,(1/2,1/2),3/4,α 2} |
| 17 | {4,(1/4,1/8),1/4,α 1} |
| 18 | {4,(1/4,1/8),1/4,α 2} |
| 19 | {4,(1/4,1/8),1/2,α 1} |
| 20 | {4,(1/4,1/8),1/2,α 2} |
| 21 | {4,(1/4,1/8),3/4,α 1} |
| 22 | {4,(1/4,1/8),3/4,α 2} |
| 23 | {4,(1/4,1/4),1/4,α 1} |
| 24 | {4,(1/4,1/4),1/4,α 2} |
| 25 | {4,(1/4,1/4),1/2,α 1} |
| 26 | {4,(1/4,1/4),1/2,α 2} |
| 27 | {4,(1/4,1/4),3/4,α 1} |
| 28 | {4,(1/4,1/4),3/4,α 2} |
| 29 | {6,(1/4,0),1/4,α 1} |
| 30 | {6,(1/4,0),1/4,α 2} |
| 31 | {6,(1/4,0),1/2,α 1} |
| 32 | {6,(1/4,0),1/2,α 2} |
| 33 | {6,(1/4,0),3/4,α 1} |
| 34 | {6,(1/4,0),3/4,α 2} |
| 35 | {6,(1/2,0),1/4,α 1} |
| 36 | {6,(1/2,0),1/4,α 2} |
Claims (39)
- 一种能力信息反馈方法,包括:第一通信节点向第二通信节点发送指示所述第一通信节点的能力信息;所述第一通信节点接收所述第二通信节点发送的与所述第一通信节点的能力相对应的参数信令。
- 根据权利要求1所述的方法,其中,所述能力信息包括至少以下之一:参考信号的最大端口数、每个频带内最多的参考资源数目、最大支持每个频带内所有参考信号端口的总和、是否支持子带信道状态信息反馈、最大支持层数、最大支持第一基矢量数目、最大支持第二基矢量数目、最大支持第二基矢量的可选集合大小、最大支持CQI子带的数目、最大支持预编码子带的数目、最大支持加权系数的反馈比例、最大支持第一基矢量数目和第二基矢量数目乘积的大小、CPU数目、一个信道状态信息报告最大能同时占用的CPU数目。
- 根据权利要求2所述的方法,其中,所述第二基矢量可选的集合包含的基矢量数目大于第二基矢量数目,第二基矢量在所述第二基矢量可选的集合中进行选取。
- 根据权利要求2所述的方法,其中,所述CPU数目为所述第一通信节点信道状态信息处理单元的数目,其中,所述信道状态信息处理单元用于反映第一通信节点处理信道状态信息的能力。
- 根据权利要求1所述的方法,其中,所述参数信令包括:计算信道状态信息报告所用的配置信息、承载信道状态信息报告的信道及资源大小;其中,所述承载信道状态信息报告的信道包括以下至少之一:一个或者多个控制信道、共享信道。
- 根据权利要求5所述的方法,其中,所述计算信道状态信息报告所用的配置信息至少包括以下之一:计算信道状态信息报告所用的参考资源集合、计算信道状态信息报告所用的参考信号资源、最大能反馈的秩、第一基矢量数目、需要反馈CQI的子带、预编码子带大小、第二基矢量数目相关参数、加权系数的反馈比例、第二基矢量可选集合的大小、一个信道状态信息报告同时占用的CPU数目;其中,所述第二基矢量数目相关参数用于确定第二基矢量数目。
- 根据权利要求6所述的方法,其中,所述计算信道状态信息报告所用的配置信息不能超过第一通信节点的能力。
- 根据权利要求1所述的方法,其中,所述参数信令使用索引值指示部分参数信息。
- 根据权利要求8所述的方法,其中,所述部分参数信息至少包括以下之一:第一基矢量数目、第二基矢量数目相关参数、加权系数的反馈比例、比例因子。
- 根据权利要求8所述的方法,其中,所述索引值指示的部分参数信息使用所述第一通信节点和所述第二通信节点共同约定的索引列表。
- 根据权利要求10所述的方法,其中,所述索引列表为一个索引列表或者多个索引列表。
- 根据权利要求11所述的方法,其中,对于所述多个索引列表,第一通信节点通过参数信令包含的特定参数,确定使用哪一个列表。
- 根据权利要求12所述的方法,其中,所述特定参数包含至少之一:参考信号的端口数、最大能反馈的秩、预编码子带的数目。
- 一种信道状态信息的反馈方法,包括:第一通信节点计算信道状态信息,并向第二通信节点发送第一类信令;其中,发送所述第一类信令的资源,小于发送实际信道状态信息所需要的资源,依据优先级顺序丢弃部分预编码信息。
- 根据权利要求14所述的方法,其中,在向所述第二通信节点所述发送所述第一类信令之前,还包括:所述第一通信节点接收所述第二通信节点的参数信令,所述参数信令包括:计算信道状态信息报告所用的配置信息、发送第一类信令的信道及资源大小。
- 根据权利要求15所述的方法,其中,所述第一类信令包括一个或者多个信道状态信息报告;其中,所述信道状态信息报告至少包含以下之一:秩指示信息、调制编码信息、层指示信息、参考信号资源指示信息、预编码信息。
- 根据权利要求16所述的方法,其中,所述的预编码信息至少包括以下之一:所有层加权系数的总共数目、第一基矢量的选择指示、每一层第二基矢量的选择指示、每一层的加权系数信息;其中,所述加权系数为第一基矢量和第二基矢量的加权系数,所述每一层的加权系数信息包括:比特图信息、加权系数的幅度信息、加权系数的相位信息、加权系数参考幅度的索引位置、量化的参考幅度。
- 根据权利要求17所述的方法,所述加权系数的幅度信息和加权系数的相位信息为需要反馈的加权系数进行量化后的信息,其中,所述比特图信息用于指示需要反馈的加权系数的索引位置。
- 根据权利要求16所述的方法,一个信道状态信息报告由两个部分组成,包括第一部分信道状态信息和第二部分信道状态信息;其中,所述第一部分信道状态信息所占的资源大小固定,用于指示第二部分信道状态信息占用的资源大小。
- 根据权利要求19所述的方法,所述第一部分信道状态信息包括:秩指示信息、第二部分信道状态信息中所有层加权系数的总共数目。
- 根据权利要求19所述的方法,所述第二部分信道状态信息包括:第一基矢量的选择指示、每一层第二基矢量的选择指示、每一层 的加权系数信息。
- 根据权利要求17所述的方法,所述比特图信息、加权系数的幅度信息和加权系数的相位信息各自按照优先级原则进行排序;其中,所述的优先级原则,采取以下方式之一:优先级从高到依次是层索引、第一基矢量索引、第二基矢量索引;优先级从高到依次是层索引、第二基矢量索引、第一基矢量索引;优先级从高到依次是第一基矢量索引、第二基矢量索引、层索引;优先级从高到依次是第二基矢量索引、第一基矢量索引、层索引;优先级从高到依次是第一基矢量索引、第二基矢量索引、天线端口组索引、层索引;优先级从高到依次是第二基矢量索引、第一基矢量索引、天线端口组索引、层索引;优先级从高到依次是天线端口组索引、第一基矢量索引、第二基矢量索引、层索引;优先级从高到依次是天线端口组索引、第二基矢量索引、第一基矢量索引、层索引。
- 根据权利要求14所述的方法,所述实际信道状态信息为所述第一通信节点根据计算信道状态信息报告所用的配置信息,计算得到的信息。
- 根据权利要求14所述的方法,其中,所述依据优先级顺序丢弃部分预编码信息,包含以下方式之一:丢弃部分优先级最低的加权系数的幅度信息和优先级最低的加权系数的相位信息,使得发送第一信令的资源,足够发送剩余的实际信道状态信息;丢弃部分优先级最低的加权系数的幅度信息、优先级最低的加权系数的相位信息和优先级最低的比特图信息,使得发送第一信令的资 源,足够发送剩余的实际信道状态信息。
- 一种参数信令发送方法,包括:第二通信节点接收第一通信节点发送的设置为指示所述第一通信节的能力信息;所述第二通信节点向所述第一通信节点发送与所述第一通信节点的能力对应的参数信令。
- 根据权利要求25所述的方法,其中,所述参数信令包括:计算信道状态信息报告所用的配置信息、承载信道状态信息报告的信道及资源大小;其中,所述承载信道状态信息报告的信道包括以下至少之一:一个或者多个控制信道、共享信道。
- 根据权利要求26所述的方法,其中,所述计算信道状态信息报告所用的配置信息至少包括以下之一:计算信道状态信息报告所用的参考资源集合、计算信道状态信息报告所用的参考信号资源、最大能反馈的秩、第一基矢量数目、需要反馈CQI的子带、预编码子带大小、第二基矢量数目相关参数、加权系数的反馈比例、第二基矢量可选集合的大小、一个信道状态信息报告同时占用的CPU数目;其中,所述第二基矢量数目相关参数用于确定第二基矢量数目。
- 根据权利要求25所述的方法,其中,所述参数信令使用索引值指示部分参数信息。
- 根据权利要求28所述的方法,其中,所述部分参数信息至少包括以下之一:第一基矢量数目、第二基矢量数目相关参数、加权系数的反馈比例、比例因子。
- 根据权利要求28所述的方法,其中,所述索引值指示的部分参数信息使用所述第一通信节点和所述第二通信节点共同约定的索引 列表。
- 根据权利要求30所述的方法,其中,所述索引列表为一个索引列表或者多个索引列表。
- 根据权利要求31所述的方法,其中所述多个索引列表,第一通信节点通过参数信令包含的特定参数,确定使用哪一个列表。
- 根据权利要求12所述的方法,其中所述特定参数包含至少之一:参考信号的端口数、最大能反馈的秩、预编码子带的数目。
- 一种能力信息反馈装置,位于第一通信节点,包括:发送模块,设置为向第二通信节点发送指示所述第一通信节点的能力信息;接收模块,设置为接收所述第二通信节点发送的与所述第一通信节点的能力对应的参数信令。
- 一种信道状态信息的反馈装置,位于第一通信节点,包括:计算模块,设置为计算信道状态信息,并向第二通信节点发送第一类信令;其中,发送所述第一类信令的资源,小于发送信道状态信息所需要的资源,依据优先级顺序丢弃部分预编码信息。
- 根据权利要求35所述的装置,还包括:接收模块,设置为在所述发送模块发送所述第一类信令之前,接收所述第二通信节点的参数信令,所述参数信令用于指示计算信道状态信息报告所用的参数、发送第一类信令的信道及资源大小。
- 一种参数信令发送装置,位于第二通信节点,包括:接收模块,设置为接收第一通信节点发送的用于指示所述第一通信节点的能力信息;发送模块,设置为向所述第一通信节点发送与所述第一通信节点的能力对应的参数信令。
- 一种存储介质,所述存储介质中存储有计算机程序,其中,所述计算机程序被设置为运行时执行所述权利要求1至33任一项中所述的方法。
- 一种电子装置,包括存储器和处理器,所述存储器中存储有计算机程序,所述处理器被设置为运行所述计算机程序以执行所述权利要求1至33任一项中所述的方法。
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| CN115378544A (zh) * | 2021-05-19 | 2022-11-22 | 中兴通讯股份有限公司 | 一种信道状态信息传输方法、装置、通信节点及存储介质 |
| CN115834004A (zh) * | 2021-09-16 | 2023-03-21 | 维沃软件技术有限公司 | 预编码信息的指示方法和设备 |
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| CN115967417A (zh) * | 2021-10-11 | 2023-04-14 | 上海朗帛通信技术有限公司 | 一种被用于无线通信的节点中的方法和装置 |
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| EP3998711A1 (en) | 2022-05-18 |
| CN111082839A (zh) | 2020-04-28 |
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