CN111587543B - Channel state information matrix information processing method and communication device - Google Patents

Channel state information matrix information processing method and communication device Download PDF

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CN111587543B
CN111587543B CN201880086544.0A CN201880086544A CN111587543B CN 111587543 B CN111587543 B CN 111587543B CN 201880086544 A CN201880086544 A CN 201880086544A CN 111587543 B CN111587543 B CN 111587543B
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channel state
state information
matrix
information matrix
frequency domain
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CN111587543A (en
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王绪振
马欣
叶威
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Huawei Technologies Co Ltd
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/0413MIMO systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04BTRANSMISSION
    • H04B7/00Radio transmission systems, i.e. using radiation field
    • H04B7/02Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas
    • H04B7/04Diversity systems; Multi-antenna system, i.e. transmission or reception using multiple antennas using two or more spaced independent antennas
    • H04B7/0413MIMO systems
    • H04B7/0456Selection of precoding matrices or codebooks, e.g. using matrices antenna weighting
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L27/00Modulated-carrier systems
    • H04L27/26Systems using multi-frequency codes

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Abstract

The application provides a channel state information matrix information processing method and a communication device, wherein the method comprises the following steps: the first communication device firstly determines channel state information matrix indicating information, and then transmits the channel state information matrix indicating information, wherein the channel state information matrix indicated by the channel state information matrix indicating information satisfies formulas (1) - (2) or formulas (3) - (4). The feedback quantity of the indication information of the channel state information matrix is small, so that the feedback quantity carried by the indication information of the channel state information matrix is obviously reduced compared with the feedback quantity of the indication information for acquiring the channel state information with the same precision in the prior art, and the occupation of effective resources can be greatly reduced; or under the condition of feeding back the indication information of the same amount of channel state information, the accuracy of the access network equipment for acquiring the channel state information can be greatly improved, so that the performance of the whole system is improved. The method provided by the embodiment can be applied to communication systems, such as V2X, LTE-V, V2V, internet of vehicles, MTC, IoT, LTE-M, M2M, internet of things, and the like.

Description

Channel state information matrix information processing method and communication device
Technical Field
The present application relates to communications technologies, and in particular, to a method and a communications apparatus for processing channel state information matrix information.
Background
In a large-scale multiple-Input multiple-Output (Massive MIMO) technology, a large-scale array antenna is adopted at a base station end, and a large number of antennas are configured to obtain higher antenna freedom and support more users, so that the purpose of improving the cell throughput is achieved, and the cell performance is greatly improved. In a Frequency Division multiplexing (FDD) system using Massive MIMO, uplink and downlink channels do not have uplink and downlink reciprocity, and therefore downlink channel information needs to be fed back to an access network device through a terminal. Specifically, the terminal feeds back Channel State Information (CSI) to the access network device, and the access network device eliminates interference between users according to the CSI. Therefore, in an FDD system using Massive MIMO, how to report CSI with high accuracy is a key to improve the performance of a cell.
However, the feedback of the high-precision CSI by the terminal may result in excessive resource occupied by the CSI, which may further increase system overhead and reduce the utilization rate of system resources.
Disclosure of Invention
The application provides a channel state information matrix information processing method and a communication device, which are used for solving the problem that in the prior art, CSI occupies too many resources.
A first aspect of the present application provides a method for processing channel state information matrix information, where the method includes:
the first communication device first determines the channel state information matrix indication information and then transmits the channel state information matrix indication information.
Wherein the channel state information matrix indication information is used for indicating N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is Wk,N3Is an integer greater than 0; k is an integer of 1 to N3And is and
l=1,
Figure GPA0000291337150000031
Figure GPA0000291337150000032
is the kth column of the matrix W, W ═ W1,αkIs a real number; alternatively, the first and second electrodes may be,
when l is equal to 2, the reaction solution is,
Figure GPA0000291337150000033
Figure GPA0000291337150000034
column 1 of (a) is the kth column of the matrix W,
Figure GPA0000291337150000035
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,2,βk,1Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure GPA0000291337150000041
wherein the content of the first and second substances,
Figure GPA0000291337150000042
satisfy the requirement of
Figure GPA0000291337150000043
Alternatively, the first and second electrodes may be,
Figure GPA0000291337150000044
wherein the content of the first and second substances,
Figure GPA0000291337150000045
satisfy the requirement of
Figure GPA0000291337150000046
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure GPA0000291337150000047
is of length N1The line vectors of (a) are,
Figure GPA0000291337150000048
is of length N2The line vectors of (a) are,
Figure GPA0000291337150000049
is of length N3The line vectors of (a) are,
Figure GPA00002913371500000410
and
Figure GPA00002913371500000411
in the case of a real number,
Figure GPA00002913371500000412
and
Figure GPA00002913371500000413
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure GPA00002913371500000414
is a length 2 row vector.
In the method, the first communication device determines the channel state information matrix indicating information, and the channel state information matrix indicated by the channel state information matrix indicating information satisfies equations (1) - (2) or equations (3) - (4). The feedback quantity of the indication information of the channel state information matrix is small, so that the feedback quantity carried by the indication information of the channel state information matrix is obviously reduced compared with the feedback quantity of the indication information for acquiring the channel state information with the same precision in the prior art, and the occupation of effective resources can be greatly reduced; or under the condition of feeding back the indication information of the same amount of channel state information, the accuracy of the access network equipment for acquiring the channel state information can be greatly improved, so that the performance of the whole system is improved.
In one possible design, the N3Channel state information matrix and N3One-to-one correspondence of frequency domain resource units, N3The kth channel state information matrix W in the channel state information matriceskAnd said N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23};
Said N is3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by each frequency domain resource unit is more than or equal to N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
In one possible design of the system, the system may be,
Figure GPA00002913371500000415
the following expression is satisfied:
Figure GPA00002913371500000416
Figure GPA0000291337150000051
Figure GPA0000291337150000052
Figure GPA0000291337150000053
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0.
Figure GPA0000291337150000054
Is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure GPA0000291337150000055
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure GPA0000291337150000056
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure GPA0000291337150000057
is 0 or more and 2O or less4-an integer of 1.
In the method, based on the consideration that the channel information has sparse characteristics in some transform domains, the feedback quantity of the CSI reported by the terminal to the access network equipment can be greatly compressed, so that in the application, the codebook structure is based on the transform domain, and the terminal only reports the code words corresponding to the components with larger information quantity in the transform domain, so that the feedback quantity can be greatly compressed under the condition of ensuring the precision of the reported CSI.
In one possible design of the system, the system may be,
Figure GPA0000291337150000058
the following expression is satisfied:
Figure GPA0000291337150000059
Figure GPA00002913371500000510
Figure GPA00002913371500000511
Figure GPA00002913371500000512
wherein the content of the first and second substances,
Figure GPA00002913371500000513
Figure GPA00002913371500000514
according to the method, the constructed code words are subjected to oversampling, the resolution ratio of the code words can be greatly increased after oversampling processing, the redundancy of a codebook is improved, and the mapping of a channel on the codebook can be sparse, so that a terminal can select fewer code words to report CSI to access network equipment, and meanwhile, the access network equipment can obtain higher accuracy of the CSI.
In one possible design, the channel state information matrix indication information includes an indication
Figure GPA00002913371500000515
And
Figure GPA00002913371500000516
information, indication
Figure GPA00002913371500000517
And
Figure GPA00002913371500000518
and indicate
Figure GPA00002913371500000519
And
Figure GPA00002913371500000520
the information of (1).
In one possible design, P, L, N1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
In the method, the signaling is performed through physical signaling, RRC signaling or predefiningManner to indicate P, L, N involved in feeding back channel state information1、N2、N3、O1、O2、O3、O4The complexity and the feedback quantity can be flexibly controlled and realized by part or all of the parameters in the method, and the requirements of various scenes on the accuracy of the feedback quantity and the channel state information are met.
In one possible design, the channel state information matrix is a channel information matrix or a precoding matrix.
In the method, the channel state information matrix can be a precoding matrix or channel information, and the processing can enable the terminal to have more flexibility in algorithm design and implementation.
A second aspect of the present application provides a method for processing channel state information matrix information, the method including:
and the second communication device receives the channel state information matrix indication information and determines the channel state information matrix according to the channel state information matrix indication information.
Wherein the channel state information matrix indication information is used for indicating N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is Wk,N3Is an integer greater than 0, k is an integer, and k is greater than or equal to 1 and less than or equal to N3And is and
l=1,
Figure GPA0000291337150000061
Figure GPA0000291337150000062
is the kth column of the matrix W, W ═ W1,αkIs a real number;
l=2,
Figure GPA0000291337150000063
Figure GPA0000291337150000064
column 1 of (a) is the kth column of the matrix W,
Figure GPA0000291337150000065
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,1、βk,2Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure GPA0000291337150000066
wherein the content of the first and second substances,
Figure GPA0000291337150000067
satisfy the requirement of
Figure GPA0000291337150000068
Alternatively, the first and second electrodes may be,
Figure GPA0000291337150000069
wherein the content of the first and second substances,
Figure GPA00002913371500000610
satisfy the requirement of
Figure GPA00002913371500000611
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure GPA00002913371500000612
is of length N1The line vectors of (a) are,
Figure GPA0000291337150000071
is of length N2The line vectors of (a) are,
Figure GPA0000291337150000072
is of length N3The line vectors of (a) are,
Figure GPA0000291337150000073
and
Figure GPA0000291337150000074
in the case of a real number,
Figure GPA0000291337150000075
and
Figure GPA0000291337150000076
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure GPA0000291337150000077
is a length 2 row vector.
In one possible design, the N3Channel state information matrix and N3One-to-one correspondence of frequency domain resource units, N3The kth channel state information matrix W in the channel state information matriceskAnd said N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23};
Said N is3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by each frequency domain resource unit is more than or equal to N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
In one possible design of the system, the system may be,
Figure GPA0000291337150000078
the following expression is satisfied:
Figure GPA0000291337150000079
Figure GPA00002913371500000710
Figure GPA00002913371500000711
Figure GPA00002913371500000712
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0 and are each,
Figure GPA00002913371500000713
is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure GPA00002913371500000714
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure GPA00002913371500000715
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure GPA00002913371500000716
is 0 or more and 2O or less4-an integer of 1.
In one possible design of the system, the system may be,
Figure GPA00002913371500000717
the following expression is satisfied:
Figure GPA00002913371500000718
Figure GPA00002913371500000719
Figure GPA00002913371500000720
Figure GPA00002913371500000721
wherein the content of the first and second substances,
Figure GPA00002913371500000722
Figure GPA00002913371500000723
in one possible design, the channel state information matrix indication information includes an indication
Figure GPA00002913371500000724
And
Figure GPA0000291337150000081
information, indication
Figure GPA0000291337150000082
And
Figure GPA0000291337150000083
and, indicate
Figure GPA0000291337150000084
Figure GPA0000291337150000085
And
Figure GPA0000291337150000086
the information of (1).
In one possible design, the method for determining the csi matrix by the second communications device according to the csi matrix indicator includes:
the second communication device obtains the indication information according to the channel state information matrix
Figure GPA0000291337150000087
Figure GPA0000291337150000088
And
Figure GPA0000291337150000089
the second communication device is based on
Figure GPA00002913371500000810
O1、O2、O3And the following formula, calculated to obtain
Figure GPA00002913371500000811
Figure GPA00002913371500000812
Figure GPA00002913371500000813
Figure GPA00002913371500000814
The second communication device is based on
Figure GPA00002913371500000815
N1、N2、N3、O1、O2、O3And the following formula, calculated to obtain
Figure GPA00002913371500000816
And
Figure GPA00002913371500000817
Figure GPA00002913371500000818
Figure GPA00002913371500000819
Figure GPA00002913371500000820
the second communication device is based on
Figure GPA00002913371500000821
P, L, formula (1) and formula (2), calculating to obtain a channel state information matrix;
said second communication means according to alphakOr βk,1、βk,2And normalizing the channel state information matrix.
In one possible design, the method for determining the csi matrix by the second communications device according to the csi matrix indicator includes:
the second communication device obtains the indication information according to the channel state information matrix
Figure GPA00002913371500000822
Figure GPA00002913371500000823
And
Figure GPA00002913371500000824
the second communication device is based on
Figure GPA00002913371500000825
O1、O2、O3、O4And the following formula, calculated to obtain
Figure GPA0000291337150000091
Figure GPA0000291337150000092
Figure GPA0000291337150000093
Figure GPA0000291337150000094
Figure GPA0000291337150000095
The second communication device is based on
Figure GPA0000291337150000096
N1、N2、N3、O1、O2、O3、O4And the following formula, calculated to obtain
Figure GPA0000291337150000097
And
Figure GPA0000291337150000098
Figure GPA0000291337150000099
Figure GPA00002913371500000910
Figure GPA00002913371500000911
Figure GPA00002913371500000912
the second communication device is based on
Figure GPA00002913371500000913
P, L, formula (3) and formula (4), calculating to obtain a channel state information matrix;
said second communication means according to alphakOr βk,1、βk,2And normalizing the channel state information matrix.
In one possible design, P, L, N1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
In one possible design, the channel state information matrix is a channel information matrix or a precoding matrix.
A third aspect of the present application provides a communication apparatus that implements the function of the first communication apparatus in the first aspect. These functions may be implemented by hardware, or by hardware executing corresponding software. The hardware or software includes one or more modules corresponding to the above-described functions.
In one possible design, the communication device may include a processing module and a sending module, which may perform the respective functions in the first aspect, such as: the processing module is used for determining the indication information of the channel state information matrix; and the sending module is used for sending the channel state information matrix indication information.
A fourth aspect of the present application provides a communication apparatus that realizes the function of the second communication apparatus in the second aspect. These functions may be implemented by hardware, or by hardware executing corresponding software. The hardware or software includes one or more modules corresponding to the above-described functions.
In one possible design, the communication device may include a receiving module and a processing module, which may perform the respective functions in the second aspect, such as: the receiving module is used for receiving the channel state information matrix indication information; and the processing module is used for determining the channel state information matrix according to the channel state information matrix indication information.
A fifth aspect of the present application provides a communication apparatus, comprising: a memory and a processor. The memory is configured to store program instructions, and the processor is configured to call the program instructions in the memory to implement the functions of the first communication device in the first aspect.
A sixth aspect of the present application provides a communication apparatus comprising: a memory and a processor. The memory is used for storing program instructions, and the processor is used for calling the program instructions in the memory to realize the functions of the second communication device in the second aspect.
A seventh aspect of the present application provides a chip for a first communication device, the chip comprising: at least one communication interface, at least one processor, and at least one memory, wherein the communication interface, the processor, and the memory are interconnected by a circuit (or a bus in some cases), and the processor invokes instructions stored in the memory to perform the method steps of the first aspect.
An eighth aspect of the present application provides a chip for a second communication device, the chip comprising: at least one communication interface, at least one processor, and at least one memory, wherein the communication interface, the processor, and the memory are interconnected by a circuit (or a bus in some cases), and the processor invokes instructions stored in the memory to perform the method steps of the second aspect.
A ninth aspect of the present application provides a computer readable storage medium having stored thereon a computer program comprising program instructions which, when executed by a module, cause the module to perform the method of the first aspect described above.
A tenth aspect of the present application provides a computer-readable storage medium storing a computer program comprising program instructions which, when executed by a module, cause the module to perform the method of the second aspect described above.
An eleventh aspect of the present application provides a non-volatile storage medium having one or more program codes stored therein, which when executed by a terminal, performs the associated method steps performed by the first communication device of the first aspect.
A twelfth aspect of the present application provides a non-volatile storage medium having one or more program codes stored therein, where the program codes are executed by an access network device, and the access network device executes the relevant method steps executed by the second communication device in the second aspect.
A thirteenth aspect of the present application provides a computer program product comprising one or more computer instructions which, when loaded and executed on a computer, performs the method steps of the first aspect described above.
A fourteenth aspect of the present application provides a computer program product comprising one or more computer instructions which, when loaded and executed on a computer, performs the method steps of the second aspect described above.
Drawings
FIG. 1 is a system architecture diagram suitable for use with the present application;
fig. 2 is a schematic structural diagram of a dual-polarized array antenna provided in the present application;
fig. 3 is an interaction flowchart of an embodiment of a channel state information matrix information processing method provided in the present application;
fig. 4 is a schematic flowchart of an embodiment of a channel state information matrix information processing method provided in the present application;
fig. 5 is a schematic flowchart of an embodiment of a channel state information matrix information processing method provided in the present application;
fig. 6 is a block diagram of a communication device provided in the present application;
fig. 7 is a block diagram of a communication device provided in the present application;
fig. 8 is a block diagram of a communication device provided herein;
fig. 9 is a block diagram of a communication device provided herein;
FIG. 10 is a block diagram of a chip provided herein;
fig. 11 is a block diagram of another chip provided in the present application.
Detailed Description
The channel state information matrix information processing method and device provided by the application can be applied to the system architecture shown in fig. 1. As shown in fig. 1, the system includes: the access network equipment sends data to the terminal through the antenna. With the introduction of MassiveMIMO technology, the structure of the antenna is developed into a dual-polarized array antenna. Fig. 2 is a schematic structural diagram of a dual-polarized array antenna provided in the present application, where each cross line in fig. 2 represents an antenna array, and each oblique line in the cross line represents a polarization direction.
For better understanding of the technical solutions of the present application, the following explains the network elements referred to in fig. 1 and other terms referred to in the present application:
1) the first communication device: the first communication device may be a terminal or a processing chip in a terminal, the terminal may be a wireless terminal or a wired terminal, the wireless terminal may be a device providing voice and/or other service data connectivity to a user, a handheld device having a wireless connection function, or other processing device connected to a wireless modem. Wireless terminals, which may be mobile terminals such as mobile telephones (or "cellular" telephones) and computers having mobile terminals, such as portable, pocket, hand-held, computer-included, or vehicle-mounted mobile devices, may communicate with one or more core networks via a Radio Access Network (RAN), which may exchange language and/or data with the RAN. Examples of such devices include Personal Communication Service (PCS) phones, cordless phones, Session Initiation Protocol (SIP) phones, Wireless Local Loop (WLL) stations, and Personal Digital Assistants (PDAs). A wireless Terminal may also be referred to as a system, a Subscriber Unit (Subscriber Unit), a Subscriber Station (Subscriber Station), a Mobile Station (Mobile), a Remote Station (Remote Station), a Remote Terminal (Remote Terminal), an Access Terminal (Access Terminal), a User Terminal (User Terminal), a User Agent (User Agent), and a User Device or User Equipment (User Equipment), which are not limited herein.
2) And a second processing device: the second processing means may be an access network device, which may be a base station, or an access point, or may refer to a device in an access network that communicates over the air interface with wireless terminals over one or more sectors, or a processing chip in an access network device. The base station may be configured to interconvert received air frames and IP packets as a router between the wireless terminal and the rest of the access network, which may include an Internet Protocol (IP) network. The base station may also coordinate management of attributes for the air interface. For example, the Base Station may be a Base Transceiver Station (BTS) in Global System for Mobile communications (GSM) or Code Division Multiple Access (CDMA), a Base Station (NodeB, NB) in Wideband Code Division Multiple Access (WCDMA), an evolved Node B (eNB, eNodeB) in Long Term Evolution (Long Term Evolution, LTE), a relay Station or an Access point, or a Base Station (gNB) in a 5G network, and the like, but is not limited thereto.
3) The term "plurality" means two or more, and the other terms are similar. "and/or" describes the association relationship of the associated objects, meaning that there may be three relationships, e.g., a and/or B, which may mean: a exists alone, A and B exist simultaneously, and B exists alone. The character "/" generally indicates that the former and latter associated objects are in an "or" relationship.
First, the parameters, symbol flags, and concepts related to the present application are explained below, and the parameters, symbol flags, and concepts have the same meaning on the first communication apparatus and the second communication apparatus side.
(1) P: representing the number of selected time domain multipaths after IDFT
(2) L: representing the number of vectors used for linear combining in one multipath
(3) N1, N2: respectively representing the horizontal and vertical antenna dimensions. When N is present1Representing the size of the horizontal antenna dimension, N2Represents the vertical antenna dimension size; when N is present2Representing the size of the horizontal antenna dimension, N1Indicating the vertical antenna dimension.
(4) N3: representing transform domain dimension size of codebook
(5)O1、O2、O3、O4: representing oversampled parameters
(6)
Figure GPA0000291337150000121
Expressed as kronecker product
(7)(A)TRepresenting transposing a matrix or vector A
(8)(A)*Representing conjugation of a matrix or vector A
(9)(A)HRepresenting conjugate transposing of a matrix or vector A
(10) A (1, 1) represents that the elements indicated by a matrix A with a first dimension of 1, all values of a second dimension and a third dimension of 1 are taken as the following elements: "means taking all values in that dimension.
(11) [ a: b ]: represents [ a: b ═ a, a +1, a +2, …, b ], where a, b are integers and b > a.
(12) L a |: representing the modulo of a complex number a.
(13) angle (a): indicating the phase of the complex number a is calculated.
(14) Layer (b): the layer in the present application corresponds to the concept of rank, with rank 1 corresponding to data transmission of layer 1 and rank 2 corresponding to data transmission of layer 2.
Optionally, at least one of the parameters shown in (1) to (5) above is indicated by physical layer signaling or Radio Resource Control (RRC) signaling, or the parameters shown in (1) to (5) above may also be a predefined value. Wherein the predefined value refers to a value defined by a protocol or a value defined by the first communication device and/or the second communication device.
P, L, N involved in feeding back channel state information is indicated by physical signaling, RRC signaling or predefined means in the present application1、N2、N3、O1、O2、O3、O4The complexity and the feedback quantity can be flexibly controlled and realized by part or all of the parameters in the method, and the requirements of various scenes on the accuracy of the feedback quantity and the channel state information are met.
Fig. 3 is an interaction flowchart of an embodiment of a channel state information matrix information processing method provided in the present application, and as shown in fig. 3, the method includes:
s301, the first communication device determines channel state information matrix indication information.
The first communication device may be the terminal.
Wherein, the channel state information matrix indication information is used for indicating N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is WkWherein k is an integer, and k is not less than 1 and not more than N3And is and
l=1,
Figure GPA0000291337150000131
Figure GPA0000291337150000132
is the kth column of the matrix W, W ═ W1,αkTo normalize the coefficient, alphakIs a real number; alternatively, the first and second electrodes may be,
when l is equal to 2, the reaction solution is,
Figure GPA0000291337150000133
Figure GPA0000291337150000134
column 1 of (a) is the kth column of the matrix W,
Figure GPA0000291337150000135
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,2,βk,1To normalize the coefficient, betak,2,βk,1Are real numbers.
Wl1,2, satisfying the following formula (1) or (3):
Figure GPA0000291337150000136
wherein the content of the first and second substances,
Figure GPA0000291337150000137
satisfy the requirement of
Figure GPA0000291337150000138
Alternatively, the first and second electrodes may be,
Figure GPA0000291337150000139
wherein the content of the first and second substances,
Figure GPA00002913371500001310
satisfy the requirement of
Figure GPA00002913371500001311
Wherein, in the formula (1) and the formula (3),
Figure GPA00002913371500001312
is of length N1The line vectors of (a) are,
Figure GPA00002913371500001313
is of length N2The line vectors of (a) are,
Figure GPA00002913371500001314
is of length N3Is a vector of the transform domain matrix,
Figure GPA00002913371500001315
and
Figure GPA00002913371500001316
in the case of a real number,
Figure GPA00002913371500001317
and
Figure GPA00002913371500001318
is a complex number with a modulus of 1. In the formula (3), the first and second groups,
Figure GPA00002913371500001319
is a length 2 row vector.
In addition, the above l represents the number of layers of the antenna.
Specifically, the above equations (1) and (2) correspond to a scenario in which the weighting coefficients are calculated individually for each polarization direction of the antenna, and the above equations (3) and (4) correspond to a scenario in which the weighting coefficients are calculated jointly for two polarization directions of the antenna.
In one example, the first communication device may calculate the channel state information matrix indicator based on a specific formula or determine the channel state information matrix indicator by traversing the channel state information matrix.
A specific method for calculating the channel state information matrix indication information based on a specific formula will be described in detail in the following embodiments.
The method for determining the indication information of the channel state information matrix by traversing the channel state information matrix comprises the following steps:
and traversing all code words in the codebook, wherein the code words are generated according to the formula (2) or the formula (4). And then, calculating the correlation between the channel information and the original frequency domain channel information, and selecting the optimal oversampling parameter according to the criterion of the maximum correlation. After the optimal oversampling parameters are determined, the P transform domain indexes selected by the transform domain are determined. And then, traversing all the selected transform domain indexes, and calculating to obtain L vector indication indexes and vector weighting coefficients for each selected transform domain index, thereby obtaining all the channel state information matrix indication information.
Correspondingly, at the receiving end, that is, at the access network device side, a channel state information matrix is obtained by using a weighted combination method, where the weighted combination satisfies the above formula (1) or the above formula (3).
S302, the first communication device transmits the channel state information matrix indication information.
And S303, the second communication device determines the channel state information matrix according to the channel state information matrix indication information.
The CSI matrix indicator forms downlink CSI, and the first communication device sends the downlink CSI to the second communication device, where the second communication device may specifically be the access network device.
After receiving the channel state information matrix indication information, the second communication device may determine the channel state information matrix according to the channel state information matrix indication information, or, when the channel state information matrix is a precoding matrix, in some specific scenarios, the second communication device may also directly determine the channel state information matrix according to actual needs without according to the channel state information matrix indication information.
For example, in some specific scenarios, for a channel state information matrix with a column number of 2 (i.e., l is 2), the access network device determines that only 1 column of the channel state information matrix is needed, and then the access network device selects 1 column of the channel state information matrix as the channel state information matrix.
A specific method for determining the channel state information matrix according to the channel state information matrix indication information by the second communication device will be described in detail in the following embodiments.
Optionally, the channel state information matrix may be a channel information matrix or a precoding matrix. The following embodiments of the present application take a channel information matrix as an example to describe a specific implementation process of the present application, and a process related to a precoding matrix is also described in the following embodiments.
In the application, the channel state information matrix may be a precoding matrix or channel information, and such processing enables the terminal to have more flexibility in algorithm design and implementation.
In this embodiment, the first communication device determines channel state information matrix indicating information that indicates a channel state information matrix satisfying equations (1) to (2) or satisfying equations (3) to (4). The feedback quantity of the indication information of the channel state information matrix is small, so that the feedback quantity carried by the indication information of the channel state information matrix is obviously reduced compared with the feedback quantity of the indication information for acquiring the channel state information with the same precision in the prior art, and the occupation of effective resources can be greatly reduced; or under the condition of feeding back the indication information of the same amount of channel state information, the accuracy of the access network equipment for acquiring the channel state information can be greatly improved, so that the performance of the whole system is improved.
A specific procedure for the first communication device to determine the above-mentioned channel state information matrix indication information is first described below.
For ease of understanding, the following embodiments refer to a system bandwidth of 10 Resource Blocks (RBs), where a Resource Block refers to a time-frequency unit occupying a certain time width and frequency width in the time-frequency domain. The number of antennas of the first communication device is 2, the antennas are arranged in 1 row and 2 columns, and the antennas of the second communication deviceThe number 4 is given as an example, and correspondingly, N1=2,N2=1,N310. In addition, in the following examples of the present application, P is 2, L is 1, and O is assumed1=4,O2=1,O3=2。
The specific procedure for the first communication device to determine the channel state information matrix indication information in step S301 is as follows.
Fig. 4 is a schematic flowchart of an embodiment of a channel state information matrix information processing method provided in the present application, and as shown in fig. 4, a process of determining channel state information matrix indication information by a first communication device is as follows:
s401, channel estimation is carried out to obtain a frequency domain channel information matrix H.
The frequency domain channel information matrix H is a three-dimensional matrix, the first dimension represents the number of antennas at the first communication device end, the size is 2, the second dimension represents the number of antennas at the second communication device end, the size is 4, and the third dimension represents the number of frequency domains RB, the size is 10.
Further, in order to enable the second communication device side to obtain the accurate frequency domain channel information matrix H, the following processing of step S402 and the subsequent steps may be performed to obtain the channel state information matrix indicating information capable of indicating N3A channel state information matrix, N3Each channel state information matrix can reflect a frequency domain channel information matrix H, and N is3Each channel state information matrix satisfies the above formula (1) or (3).
S402, calculating orthogonal basis oversampling parameters according to the frequency domain channel information matrix H
Figure GPA0000291337150000151
And channel state information matrix indication index pmi3,pmi3Is used for indicating
Figure GPA0000291337150000152
Wherein the content of the first and second substances,
Figure GPA0000291337150000153
and
Figure GPA0000291337150000154
the following relationship is satisfied,
Figure GPA0000291337150000155
wherein the content of the first and second substances,
Figure GPA0000291337150000156
according to the method and the device, oversampling operation is carried out on the constructed code words, after oversampling processing, the resolution ratio of the code words can be greatly increased, the redundancy of the codebook is improved, mapping of a channel on the codebook can be sparse, the terminal can select fewer code words to report CSI to the access network equipment, and meanwhile the access network equipment can obtain higher accuracy of the CSI.
It should be noted that, if the channel state information matrix in this application is a precoding matrix, after the step S401 is executed, Singular Value Decomposition (SVD) may be performed on the frequency domain channel information matrix H to obtain a corresponding precoding matrix, and in this step, an orthogonal basis oversampling parameter is calculated according to the obtained precoding matrix
Figure GPA0000291337150000157
And channel state information matrix indication index pmi3The subsequent specific processing manner is the same as the processing manner corresponding to the channel information matrix, and is not described in detail below.
As an alternative implementation, the first communication device calculates the orthogonal base oversampling parameter according to the frequency domain channel information matrix H
Figure GPA0000291337150000158
And channel state information matrix indication index pmi3Then, transform domain transformation may be performed first to obtain a transform domain channel information matrix corresponding to the frequency domain channel information matrix H. Furthermore, when transforming the domainWhen the transform supports oversampling, the orthogonal base oversampling parameter is calculated according to the transform domain channel information matrix
Figure GPA0000291337150000159
And channel state information matrix indication index pmi3Wherein each pmi3The selected transform domain dimension index may be represented. And when the transform domain transform does not support oversampling, then O3Is 1, i.e. no oversampling, without feedback of quadrature-based oversampling parameters
Figure GPA00002913371500001510
Only the indication index pmi of the channel state information matrix needs to be calculated according to the channel information matrix of the transform domain3
For example, when the first communication apparatus performs Transform domain Transform, Inverse Discrete Fourier Transform (IDFT) Transform may be performed, or Discrete Fourier Transform (DFT) Transform, Discrete Cosine Transform (DCT) Transform, or the like may be performed.
Wherein, when in the codebook
Figure GPA00002913371500001511
When the corresponding transform domain is DFT transform, the corresponding DFT matrix FDFTSatisfy, DFT transform corresponding DFT matrix gammaDFTTo (1) a
Figure GPA0000291337150000161
Is listed as
Figure GPA0000291337150000162
Figure GPA0000291337150000163
When in the codebook
Figure GPA0000291337150000164
When the corresponding transform domain is DCT transformCorresponding DCT matrix of
Figure GPA0000291337150000165
Is listed as
Figure GPA0000291337150000166
Figure GPA0000291337150000167
In this step, the IDFT transform is used to illustrate that the first communication device performs transform domain transform and calculates the orthogonal basis over-sampling parameter
Figure GPA0000291337150000168
And channel state information matrix indication index pmi3The process of (1).
The specific process is as follows:
and step 1, performing IDFT transformation.
When the codebook is a DFT transform domain codebook, performing oversampling IDFT transform on each transmitting and receiving antenna link of a corresponding UE end-to-end frequency domain channel information matrix H, wherein the number of IDFT transform points is O3*N3. According to the foregoing parameter examples, O here3=2,N310. For the antenna i of the second communication devicetxAntenna i with first communication devicerxCorresponding channel link H (i)rx,itx1: 10) to O3*N3IDFT transform of 2x 10 x 20 points. Wherein, the IDFT matrix gamma corresponding to the IDFT transformIDFTTo (1)
Figure GPA0000291337150000169
Expressed by the above formula (6). When the transform domain is IDFT transform, the corresponding IDFT matrix is the second one
Figure GPA00002913371500001610
The rows satisfy the following formula (6):
Figure GPA00002913371500001611
wherein the content of the first and second substances,
Figure GPA00002913371500001612
ΓIDFTsize of O3N3Line N3And (4) columns.
Then there is gammaDFT=(ΓIDFT)H
Figure GPA00002913371500001613
Figure GPA00002913371500001614
Is expressed as size N3The unit matrix of (2).
After IDFT transformation, Hf (i) is obtainedrx,itx1: 20), wherein itxIs an integer of 1 to itx≤4,irxIs an integer of 1 to irx≤2。
It should be noted that, based on the consideration that the channel information has a sparse characteristic in some transform domains, the feedback amount of the CSI reported by the terminal to the access network device can be greatly compressed, and therefore, in the present application, the codebook structure is based on the transform domain, and the terminal only reports the codeword corresponding to the component with a larger information amount in the transform domain, so that the feedback amount can be greatly compressed under the condition of ensuring the accuracy of the reported CSI.
Step 2, traversing all irxAnd itx,1≤irx≤N2=2,1≤itx≤N1Hf, Hf1 and Hf2 were obtained as 4.
The first dimension of the Hf matrix is 2, the second dimension is 4, and the third dimension is 20.
The Hf1 and the Hf2 were Hf (: 2: 20), i.e., Hf1 was a matrix corresponding to the odd-numbered indices in the third dimension of the Hf matrix and the size was equal to H, and Hf2 was a matrix corresponding to the even-numbered indices in the third dimension of the Hf matrix and the size was equal to H.
And 3, respectively calculating the sum of all the transmit-receive antenna link powers corresponding to idxF of each time domain point subjected to IDFT transformation for Hf1 and Hf2, wherein idxF is more than or equal to 1 and less than or equal to 10.
Specifically, the antenna power sum corresponding to Hf1 and Hf2 was calculated using the following formula.
Figure GPA0000291337150000171
Figure GPA0000291337150000172
Wherein, pathPow1 and pathPow2 are both vectors of 1 row and 10 columns.
And 4, calculating pathPowP1 and pathPowP2 according to pathPow1 and pathPow 2.
Where pathPowP1 is the power sum of the largest P points in pathPow1, pathPow2 is the power sum of the largest P points in pathPow2, where P is 2 according to the parameter example described above.
Further, the indexes of the largest P time domain points (here, 2 time domain points) corresponding to the pathPowP1 and pathPowP2 are recorded, respectively
Figure GPA0000291337150000173
Step 5, determining orthogonal base oversampling parameters according to pathPowP1, pathPowP2 and the indexes of the time domain points
Figure GPA0000291337150000174
And channel state information matrix indication index pmi3,pmi3Is used for indicating
Figure GPA0000291337150000175
And (4) information.
Specifically, if pathPowP1 is greater than or equal to pathPowP2, then:
Q3=q3=0,
Figure GPA0000291337150000176
Hf0=Hf1
if pathPowP1 < pathPowP2, then:
Q3=q3=1,
Figure GPA0000291337150000177
Hf0=Hf2
through the above process, can obtain
Figure GPA0000291337150000178
Further, under the scenario of jointly calculating the weighting coefficients for two polarizations, dual-polarization phase oversampling parameters also need to be calculated
Figure GPA0000291337150000179
And dual polarization phase indication information pmi4
Wherein the content of the first and second substances,
Figure GPA00002913371500001710
is as in the following formula (7)
Figure GPA00002913371500001711
pmi4To indicate in the following formula (7)
Figure GPA00002913371500001712
Figure GPA0000291337150000181
Wherein the content of the first and second substances,
Figure GPA0000291337150000182
illustratively, it can be calculated as follows
Figure GPA0000291337150000183
And pmi4
Firstly, according to the frequency domain indication information H, calculating
Figure GPA0000291337150000184
And calculate
Figure GPA0000291337150000185
Wherein the content of the first and second substances,
Figure GPA0000291337150000186
is an integer, and
Figure GPA0000291337150000187
in this embodiment, O4Is 2, therefore
Figure GPA0000291337150000188
Wherein
Figure GPA0000291337150000189
Indicating rounding down on a. q. q.s4=m4-O4n4
Can obtain
Figure GPA00002913371500001810
S403, calculating oversampling parameters
Figure GPA00002913371500001811
And channel state information matrix indication index pmi1、pmi2,pmi1Is used for indicating
Figure GPA00002913371500001812
pmi2Is used for indicating
Figure GPA00002913371500001813
Wherein the content of the first and second substances,
Figure GPA00002913371500001814
the following relationship is satisfied.
Figure GPA00002913371500001815
Wherein the content of the first and second substances,
Figure GPA00002913371500001816
specifically, this step is performed by traversing
Figure GPA00002913371500001817
Calculating q1,q2And pmi1,pmi2. This step S403 may be regarded as a process of performing vector decomposition on the channel information of one multipath in the time domain after IDFT to obtain vector indication information.
The specific process is as follows:
step 1, for any group
Figure GPA00002913371500001818
And determining the corresponding orthogonal basis matrix.
Specifically, order
Figure GPA00002913371500001819
Wherein the orthogonal basis matrix
Figure GPA00002913371500001820
To (1) a
Figure GPA00002913371500001821
The columns may be represented as:
Figure GPA00002913371500001822
Figure GPA00002913371500001823
Figure GPA00002913371500001824
wherein the content of the first and second substances,
Figure GPA0000291337150000191
namely, it is
Figure GPA0000291337150000192
Namely, it is
Figure GPA0000291337150000193
In addition, for equation (10), if N is2When 1 or more, then equation (10) can be expressed as:
Figure GPA0000291337150000194
further, with
Figure GPA0000291337150000195
Corresponding orthogonal basis matrix
Figure GPA0000291337150000196
Figure GPA0000291337150000197
Figure GPA0000291337150000198
The size is 2x 2.
In another case, in a scenario where the weighting coefficients are calculated jointly for two polarizations, the following equation (12) is used instead of the above equation (11).
Figure GPA0000291337150000199
Wherein the content of the first and second substances,
Figure GPA00002913371500001910
m4by the above formula(7) And (4) calculating.
Step 2, determined for the above steps
Figure GPA00002913371500001911
Traversing pmi3Is calculated to obtain each pmi3The power sum of the maximum L vectors of power corresponding to the element is calculated according to the power sum to obtain the channel state information matrix indication index
Figure GPA00002913371500001912
And a weighting factor.
For arbitrarily selected
Figure GPA00002913371500001913
idxP is set to {0, 1}, having
Figure GPA00002913371500001914
The size is 1 row and 4 columns,
Figure GPA00002913371500001915
the size is 1 row and 4 columns.
In particular, first for the selected
Figure GPA00002913371500001916
And
Figure GPA00002913371500001917
the weighting coefficient is calculated using the following formula (13):
Figure GPA00002913371500001918
wherein, in the above formula
Figure GPA00002913371500001919
The subscript p0 indicates the first polarization,
Figure GPA00002913371500001920
the subscript p1 indicates the second polarization. Upper label(1) Representing a first UE antenna, and superscript (2) a second UE antenna.
Figure GPA00002913371500001921
Respectively representing the weighting coefficients of the corresponding UE antenna and the corresponding polarization direction, and the weights are vectors of 1 row and 2 columns.
Next, the vector power sum is calculated using the following equation (14):
Figure GPA00002913371500001922
wherein the powcuf size is 1 × 2.
Further, the largest L values of powCof are selected and summed and recorded as
Figure GPA0000291337150000201
According to the above parameter example, L is 1, so the largest powCof value is selected, which corresponds to the index idxL, and 1 ≦ idxL ≦ 2, having
Figure GPA0000291337150000202
Saving the corresponding channel state information matrix indication index as
Figure GPA0000291337150000203
The corresponding weighting coefficients are respectively:
Figure GPA0000291337150000204
where | a | represents the modulus of the complex number a and angle (a) represents the phase of the complex number a.
Step 3, traversing idxP epsilon {0, 1}, and respectively calculating by using the method in the step 2 to obtain the following information:
Figure GPA0000291337150000205
Figure GPA0000291337150000206
Figure GPA0000291337150000207
step 4, calculating the power sum of the maximum L vectors of all the multipath by using the following formula (16):
Figure GPA0000291337150000208
step 5, traversing all
Figure GPA0000291337150000209
And
Figure GPA00002913371500002010
Figure GPA00002913371500002011
and (5) repeating the step 1 to the step 4.
Step 6, selecting
Figure GPA00002913371500002012
Maximum value corresponds to
Figure GPA00002913371500002013
As the above oversampling parameter
Figure GPA00002913371500002014
Figure GPA00002913371500002015
Through the above process, can obtain
Figure GPA00002913371500002016
Step 7, according to the selected { q1,q2Determining the channel state information matrix indication index pmi1,pmi2
Figure GPA00002913371500002017
Figure GPA0000291337150000211
Through the above process, can obtain
Figure GPA0000291337150000212
And determining the channel state information matrix weighting information according to the weighting coefficient.
Specifically, the weighting information Ω ═ ω1,θ1,ω2,θ2In which ω is1For amplitude information of the UE antenna 1, theta1For phase information, omega, of the UE antenna 12For amplitude information of the UE antenna 2, theta2Is the phase information of the UE antenna 2.
Wherein, ω is1Including that in the above formula (1)
Figure GPA0000291337150000213
ω2Including in the following formula (1)
Figure GPA0000291337150000214
Figure GPA0000291337150000215
θ1Including that in the above formula (1)
Figure GPA0000291337150000216
θ2Including that in the above formula (1)
Figure GPA0000291337150000217
Figure GPA0000291337150000218
Wherein the content of the first and second substances,
Figure GPA0000291337150000219
and
Figure GPA00002913371500002110
in the case of a real number,
Figure GPA00002913371500002111
and
Figure GPA00002913371500002112
is a complex number with a modulus of 1.
ω1And theta1The method specifically comprises the following steps:
Figure GPA00002913371500002113
Figure GPA00002913371500002114
i.e. obtainable from above
Figure GPA00002913371500002115
ω2And theta2The method specifically comprises the following steps:
Figure GPA0000291337150000221
Figure GPA0000291337150000222
by the above process, the noodle can be obtained
Figure GPA0000291337150000223
Figure GPA0000291337150000224
In another case, in a scenario where the weighting coefficients are calculated jointly for two polarizations, the weighting coefficients for the two polarizations are calculated jointly, and thus the above equation (13) is not used, but the following equation (18) is used.
Figure GPA0000291337150000225
Accordingly, the following formula (19) is used instead of the formula (13).
powCof=|cof(1)|2++|cof(2)|2 (19)
Accordingly, the following formula (20) is used instead of the formula (15).
Figure GPA0000291337150000226
Thereby obtaining:
Figure GPA0000291337150000231
Figure GPA0000291337150000232
Figure GPA0000291337150000233
Figure GPA0000291337150000234
wherein, ω is1Including that in the above formula (3)
Figure GPA0000291337150000235
ω2Is as in the following formula (3)
Figure GPA0000291337150000236
θ1Is in the above formula (3)
Figure GPA0000291337150000237
θ2Is in the above formula (3)
Figure GPA0000291337150000238
If the rest of the step is kept unchanged, the following contents can be obtained finally in the step:
Figure GPA0000291337150000239
Figure GPA00002913371500002310
Figure GPA00002913371500002311
further, the first communication apparatus transmits the channel state information matrix indication information to the second communication apparatus according to the above step S302.
In an alternative embodiment, the channel state information matrix indication information sent by the first communication device to the second communication device includes the oversampling parameter determined by the above steps
Figure GPA00002913371500002312
Channel state information matrix indication index pmi1,pmi2,pmi3And channel state information matrix weighting information omega ═ omega1,θ1,ω2,θ2}. Under the scene of jointly calculating the weighting coefficients by two polarizations, the method also comprises a dual-polarization phase oversampling parameter q4With dual polarization phaseBit indication information pmi4
Specifically, the csi matrix indicator includes { Q, pmi, Ω }, where Q ═ Q1,q2,q3,q4},pmi={pmi1,pmi2,pmi3Or Q ═ Q }1,q2,q3},pmi={pmi1,pmi2,pmi3,pmi4}。
That is, when the weighting coefficient is calculated individually for each polarization of the antenna, the indication information of the channel state information matrix includes an indication
Figure GPA00002913371500002313
Information, indication
Figure GPA00002913371500002314
And indicate
Figure GPA00002913371500002315
Figure GPA0000291337150000241
And
Figure GPA0000291337150000242
the information of (a), wherein,
Figure GPA0000291337150000243
and
Figure GPA0000291337150000244
which represents the magnitude of the weighting coefficient,
Figure GPA0000291337150000245
and
Figure GPA0000291337150000246
representing the weighting factor phase, with a value of 1 or 2.
When the antenna each polarization joint calculates the weighting coefficient, the channel state information matrix indication information includesInclude an indication
Figure GPA0000291337150000247
Information, indication
Figure GPA0000291337150000248
And indicate
Figure GPA0000291337150000249
And the information of (a) to (b), wherein,
Figure GPA00002913371500002410
which represents the magnitude of the weighting coefficient,
Figure GPA00002913371500002411
representing the weighting factor phase, with a value of 1 or 2.
And has:
Figure GPA00002913371500002412
in yet another alternative embodiment, the first communication device may send only some of the above information to the second communication device. Illustratively, if O1If 1, the first communication device does not need to transmit q to the second communication device1If O is2If 1, the first communication device does not need to transmit q to the second communication device2If O is3If 1, the first communication device does not need to transmit q to the second communication device3In the scenario of jointly calculating the weighting coefficients for two polarizations, if O is4If 1, the first communication device does not need to transmit q to the second communication device4. In addition, if N1If 1, the first communication device does not need to transmit n to the second communication device1If N is present2If 1, the first communication device does not need to transmit n to the second communication device2If N is present3If 1, the first communication device does not need to transmit n to the second communication device3
A specific method for determining the channel state information matrix according to the channel state information matrix indication information by the second communication device is described below.
Optionally, after receiving the channel state information matrix indication information, the second communications apparatus may calculate the channel state information matrix based on the formula in the foregoing embodiment, or the second communications apparatus may also obtain the channel state information matrix based on a Discrete Fourier Transform (DFT) and linear combination method.
The following first describes a process of calculating a channel state information matrix by the second communication device based on the formula in the above embodiment.
In the following embodiments, the case where all the parameters are included in the csi matrix indicator is taken as an example, and the second communication device may obtain the remaining parameter values according to the above correspondence relationship when only some of the parameters are included in the csi matrix indicator.
Fig. 5 is a schematic flowchart of an embodiment of a channel state information matrix information processing method provided in the present application, and as shown in fig. 5, a process of calculating a channel state information matrix by a second communication device is as follows:
s501, the second communication device obtains the oversampling parameter according to the channel state information matrix indication information
Figure GPA00002913371500002413
Figure GPA0000291337150000251
Channel state information matrix indication index pmi1,pmi2,pmi3And channel state information matrix weighting information omega ═ omega1,θ1,ω2,θ2}。
Specifically, the second communication device may obtain the channel state information matrix indication information
Figure GPA0000291337150000252
Figure GPA0000291337150000253
And
Figure GPA0000291337150000254
under another condition, in a scenario of jointly calculating the weighting coefficients for two polarizations, the second communication device may further obtain a dual-polarization phase oversampling parameter q according to the channel state information matrix indication information4And dual polarization phase indication information pmi4
And S502, the second communication device calculates to obtain first data according to the acquired parameters.
Wherein the first data is specifically
Figure GPA0000291337150000255
Then, in particular, the second communication device is based on
Figure GPA0000291337150000256
O1、O2、O3And formula (5) and formula (8) calculated to obtain
Figure GPA0000291337150000257
Wherein the content of the first and second substances,
Figure GPA0000291337150000258
the above formula (5) and formula (8) are satisfied, respectively.
Alternatively, in the scenario where the weighting coefficients are jointly calculated for two polarizations, the second communication device may also simultaneously calculate the weighting coefficients according to q4And pmi4Is calculated to obtain
Figure GPA0000291337150000259
Wherein the content of the first and second substances,
Figure GPA00002913371500002510
Figure GPA00002913371500002511
and S503, the second communication device calculates second data according to the first data.
Wherein the second data is specifically
Figure GPA00002913371500002512
And
Figure GPA00002913371500002513
then, in particular, the second communication device is based on
Figure GPA00002913371500002514
N1、N2、N3、O1、O2、O3And equations (9) and (10), and, either equation (6-0) or equation (6-1), are calculated
Figure GPA00002913371500002515
And
Figure GPA00002913371500002516
wherein the content of the first and second substances,
Figure GPA00002913371500002517
satisfies the above-mentioned formula (9),
Figure GPA00002913371500002518
satisfies the above-mentioned formula (10),
Figure GPA00002913371500002519
satisfies the above formula (6-0) or formula (6-1), in which formula N1、N2、O1、O2、O3、O4Are all integers greater than 0 and are each,
Figure GPA00002913371500002520
is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure GPA00002913371500002521
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure GPA00002913371500002522
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure GPA00002913371500002523
is 0 or more and 2O or less4-an integer of 1.
Alternatively, in the scenario where the weighting coefficients are jointly calculated for two polarizations, the second communication device may also simultaneously calculate the weighting coefficients based on
Figure GPA0000291337150000261
Is calculated to obtain
Figure GPA0000291337150000262
And S504, the second communication device calculates the channel state information matrix according to the second data.
In particular, the second communication device is based on
Figure GPA0000291337150000263
P, L, formula (1) and formula (2), and calculating to obtain the channel state information matrix.
Specifically, the above formula (1) is
Figure GPA0000291337150000264
I.e. the channel state information matrix satisfies this equation (1).
The above formula (2) is
Figure GPA0000291337150000265
I.e. calculated from the above equations (9) and (10)
Figure GPA0000291337150000266
And calculated from the formula (6-0) or the formula (6-1)
Figure GPA0000291337150000267
The product of the kronecker product is obtained by calculation
Figure GPA0000291337150000268
Alternatively, in the scenario where the weighting coefficients are jointly calculated for two polarizations, the second communication device may also simultaneously calculate the weighting coefficients based on
Figure GPA0000291337150000269
And calculated according to equations (3) and (4).
Specifically, the above formula (3) is
Figure GPA00002913371500002610
I.e. the channel state information matrix satisfies this equation (3).
The above formula (4) is
Figure GPA00002913371500002611
I.e. calculated from the above equations (9) and (10)
Figure GPA00002913371500002612
And calculated from the formula (6-0) or the formula (6-1)
Figure GPA00002913371500002613
And according to
Figure GPA00002913371500002614
The kronecker product multiplication is carried out to obtain the product in the formula (4)
Figure GPA00002913371500002615
Wherein, the above
Figure GPA00002913371500002616
Represents a vector in a corresponding matrix of transform domain transform, which may be DFT transform, DCT transform, or the like. The above equation (6-0) corresponds to the DFT transform, and the above equation (6-1) corresponds to the DCT transform.
That is, the DFT matrix F when the transform domain is DFT transformDFTSatisfy, DFT transform corresponding DFT matrix gammaDFTTo (1) a
Figure GPA0000291337150000271
Is listed as
Figure GPA0000291337150000272
DCT matrix number when the transform domain is DCT transform
Figure GPA0000291337150000273
Is listed as
Figure GPA0000291337150000274
And S505, the second communication device normalizes the channel state information matrix according to the normalization coefficient.
In particular, alphakIs a normalized coefficient at the number of layers 1, betak,1、βk,2Is a normalized coefficient at the number of layers of 2.
For the k-th channel state information matrix W of the N3 channel state information matriceskWhen the number of layers l is 1,
Figure GPA0000291337150000275
Figure GPA0000291337150000276
is the kth column of the matrix W, W ═ W1. When the number of layers l is 2,
Figure GPA0000291337150000277
Figure GPA0000291337150000278
column 1 of (a) is the kth column of the matrix W,
Figure GPA0000291337150000279
column 2 of (A) is the Nth of the matrix W3+ k columns.
In another embodiment, N is as described in the previous embodiments3Channel state information matrix and N3The frequency domain resource units are in one-to-one correspondence. Specifically, the N is3The kth channel state information matrix W in the channel state information matriceskAnd the N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, wherein k is an integer and belongs to {1,23}。
Optionally, the N3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by the frequency domain resource units is more than or equal to the N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k1And k2Are two specific values of k, and k2Greater than k1
It should be noted that, if the channel state information matrix is a precoding matrix, the second communication device may obtain the precoding matrix according to the channel information matrix after obtaining the channel information matrix according to the processing of the foregoing steps.
Fig. 6 is a block diagram of a communication device according to the present application, where the communication device is the first communication device, and as shown in fig. 6, the communication device includes:
the processing module 601 is configured to determine channel state information matrix indication information.
Wherein, the channel state information matrix indication information is used for indicating N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is Wk,N3Is an integer greater than 0; k is an integer of 1 to N3And is and
l=1,
Figure GPA00002913371500002710
Figure GPA00002913371500002711
is the kth column of the matrix W, W ═ W1,αkIs a real number; alternatively, the first and second electrodes may be,
when l is equal to 2, the reaction solution is,
Figure GPA00002913371500002712
Figure GPA00002913371500002713
column 1 of (a) is the kth column of the matrix W,
Figure GPA00002913371500002714
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,2,βk,1Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure GPA0000291337150000281
wherein the content of the first and second substances,
Figure GPA0000291337150000282
satisfy the requirement of
Figure GPA0000291337150000283
Alternatively, the first and second electrodes may be,
Figure GPA0000291337150000284
wherein the content of the first and second substances,
Figure GPA0000291337150000285
satisfy the requirement of
Figure GPA0000291337150000286
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure GPA0000291337150000287
is of length N1The line vectors of (a) are,
Figure GPA0000291337150000288
is of length N2The line vectors of (a) are,
Figure GPA0000291337150000289
is of length N3The line vectors of (a) are,
Figure GPA00002913371500002810
and
Figure GPA00002913371500002811
in the case of a real number,
Figure GPA00002913371500002812
and
Figure GPA00002913371500002813
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure GPA00002913371500002814
is a length 2 row vector;
a sending module 602, configured to send the channel state information matrix indication information.
In an alternative embodiment, N is as described above3Channel state information matrix and N3Each frequency domain resource unit is in one-to-one correspondence, N3The kth signal in the channel state information matrixTrack status information matrix WkAnd the above-mentioned N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23}。
N is above3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by the frequency domain resource units is more than or equal to the N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
In an alternative embodiment of the method according to the invention,
Figure GPA00002913371500002815
the following expression is satisfied:
Figure GPA00002913371500002816
Figure GPA00002913371500002817
Figure GPA00002913371500002818
Figure GPA0000291337150000291
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0.
Figure GPA0000291337150000292
Is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure GPA0000291337150000293
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure GPA0000291337150000294
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure GPA0000291337150000295
is 0 or more and 2O or less4-an integer of 1.
In an alternative embodiment of the method according to the invention,
Figure GPA0000291337150000296
the following expression is satisfied:
Figure GPA0000291337150000297
Figure GPA0000291337150000298
Figure GPA0000291337150000299
Figure GPA00002913371500002910
wherein the content of the first and second substances,
Figure GPA00002913371500002911
Figure GPA00002913371500002912
in an optional implementation manner, the channel state information matrix indication information includes an indication
Figure GPA00002913371500002913
Figure GPA00002913371500002914
And
Figure GPA00002913371500002915
information, indication
Figure GPA00002913371500002916
And
Figure GPA00002913371500002917
and indicate
Figure GPA00002913371500002918
Figure GPA00002913371500002919
And
Figure GPA00002913371500002920
the information of (1).
In an alternative embodiment, P, L, N1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
In an optional implementation manner, the channel state information matrix is a channel information matrix or a precoding matrix.
Fig. 7 is a block diagram of a communication device according to the present application, where the communication device is the second communication device, and as shown in fig. 7, the communication device includes:
a receiving module 701, configured to receive channel state information matrix indication information.
Wherein, the channel state information matrix indication information is used for indicating N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information in the channel state information matrixInformation matrix is Wk,N3Is an integer greater than 0, k is an integer, and k is greater than or equal to 1 and less than or equal to N3And is and
l=1,
Figure GPA00002913371500002921
Figure GPA00002913371500002922
is the kth column of the matrix W, W ═ W1,αkIs a real number;
l=2,
Figure GPA00002913371500002923
Figure GPA00002913371500002924
column 1 of (a) is the kth column of the matrix W,
Figure GPA00002913371500002925
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,1、βk,2Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure GPA0000291337150000301
wherein the content of the first and second substances,
Figure GPA0000291337150000302
satisfy the requirement of
Figure GPA0000291337150000303
Alternatively, the first and second electrodes may be,
Figure GPA0000291337150000304
wherein the content of the first and second substances,
Figure GPA0000291337150000305
satisfy the requirement of
Figure GPA0000291337150000306
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure GPA0000291337150000307
is of length N1The line vectors of (a) are,
Figure GPA0000291337150000308
is of length N2The line vectors of (a) are,
Figure GPA0000291337150000309
is of length N3The line vectors of (a) are,
Figure GPA00002913371500003010
and
Figure GPA00002913371500003011
in the case of a real number,
Figure GPA00002913371500003012
and
Figure GPA00002913371500003013
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure GPA00002913371500003014
is a length 2 row vector.
A processing module 702, configured to determine a channel state information matrix according to the channel state information matrix indication information.
In an alternative embodiment, N is as described above3Channel state information matrix and N3Each frequency domain resource unit is in one-to-one correspondence, N3A channelThe kth channel state information matrix W in the state information matrixkAnd the above-mentioned N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23}。
N is above3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by the frequency domain resource units is more than or equal to the N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
In an alternative embodiment of the method according to the invention,
Figure GPA00002913371500003015
the following expression is satisfied:
Figure GPA00002913371500003016
Figure GPA00002913371500003017
Figure GPA0000291337150000311
Figure GPA0000291337150000312
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0.
Figure GPA0000291337150000313
Is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure GPA0000291337150000314
is 0 or more and O or less2N2-1 ofThe number of the whole numbers is an integer,
Figure GPA0000291337150000315
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure GPA0000291337150000316
is 0 or more and 2O or less4-an integer of 1.
In an alternative embodiment of the method according to the invention,
Figure GPA0000291337150000317
the following expression is satisfied:
Figure GPA0000291337150000318
Figure GPA0000291337150000319
Figure GPA00002913371500003110
Figure GPA00002913371500003111
wherein the content of the first and second substances,
Figure GPA00002913371500003112
Figure GPA00002913371500003113
in an optional implementation manner, the channel state information matrix indication information includes an indication
Figure GPA00002913371500003114
Figure GPA00002913371500003115
And
Figure GPA00002913371500003116
information, indication
Figure GPA00002913371500003117
And
Figure GPA00002913371500003118
and indicate
Figure GPA00002913371500003119
Figure GPA00002913371500003120
And
Figure GPA00002913371500003121
the information of (1).
In an alternative embodiment, P, L, N1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
In an optional implementation manner, the channel state information matrix is a channel information matrix or a precoding matrix.
Fig. 8 is a block diagram of a communication apparatus provided in the present application, and as shown in fig. 8, the communication apparatus includes:
a memory 801 and a processor 802.
The memory 801 is used for storing program instructions, and the processor 802 is used for calling the program instructions in the memory 801 to realize the functions of the first communication device in the above-mentioned method embodiments.
Fig. 9 is a block diagram of a communication apparatus provided in the present application, and as shown in fig. 9, the communication apparatus includes:
a memory 901 and a processor 902.
The memory 901 is used for storing program instructions, and the processor 902 is used for calling the program instructions in the memory 901 to implement the functions of the second communication device in the above-mentioned method embodiments.
Fig. 10 is a block diagram of a chip provided in the present application, where the chip may be used in a first communication device, and as shown in fig. 10, the chip 1000 includes: at least one communication interface 1001, at least one processor 1002, and at least one memory 1003, wherein the communication interface, the processor, and the memory are interconnected by a circuit (or a bus in some cases) 1004, and the processor 1002 calls instructions stored in the memory 1003 to execute method steps corresponding to the first communication device in the above method embodiments.
Fig. 11 is a block diagram of a chip provided in the present application, where the chip may be used in a second communication device, and as shown in fig. 11, the chip includes: the communication device comprises at least one communication interface 1101, at least one processor 1102 and at least one memory 1103, wherein the communication interface, the processor and the memory are interconnected through a circuit (or a bus in some cases) 1104, and the processor 1102 calls instructions stored in the memory 1103 to execute method steps corresponding to the second communication device in the above method embodiments.
In the above embodiments, the implementation may be wholly or partially realized by software, hardware, firmware, or any combination thereof. When implemented in software, may be implemented in whole or in part in the form of a computer program product. The computer program product includes one or more computer instructions. When the computer program instructions are loaded and executed on a computer, the procedures or functions described in accordance with the present application are generated, in whole or in part. The computer may be a general purpose computer, a special purpose computer, a network of computers, or other programmable device. The computer instructions may be stored in a computer readable storage medium or transmitted from one computer readable storage medium to another, for example, from one website site, computer, server, or data center to another website site, computer, server, or data center via wired (e.g., coaxial cable, fiber optic, Digital Subscriber Line (DSL)) or wireless (e.g., infrared, wireless, microwave, etc.). The computer-readable storage medium can be any available medium that can be accessed by a computer or a data storage device, such as a server, a data center, etc., that incorporates one or more of the available media. The usable medium may be a magnetic medium (e.g., floppy Disk, hard Disk, magnetic tape), an optical medium (e.g., DVD), or a semiconductor medium (e.g., Solid State Disk (SSD)), among others.
As will be appreciated by one skilled in the art, embodiments of the present application may be provided as a method, system, or computer program product. Accordingly, the present application may take the form of an entirely hardware embodiment, an entirely software embodiment or an embodiment combining software and hardware aspects. Furthermore, the present application may take the form of a computer program product embodied on one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROM, optical storage, and the like) having computer-usable program code embodied therein.
The present application is described with reference to flowchart illustrations and/or block diagrams of methods, apparatus (systems), and computer program products according to embodiments of the application. It will be understood that each flow and/or block of the flow diagrams and/or block diagrams, and combinations of flows and/or blocks in the flow diagrams and/or block diagrams, can be implemented by computer program instructions. These computer program instructions may be provided to a processor of a general purpose computer, special purpose computer, embedded processor, or other programmable data processing apparatus to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing apparatus, create means for implementing the functions specified in the flowchart flow or flows and/or block diagram block or blocks.
These computer program instructions may also be stored in a computer-readable memory that can direct a computer or other programmable data processing apparatus to function in a particular manner, such that the instructions stored in the computer-readable memory produce an article of manufacture including instruction means which implement the function specified in the flowchart flow or flows and/or block diagram block or blocks.
These computer program instructions may also be loaded onto a computer or other programmable data processing apparatus to cause a series of operational steps to be performed on the computer or other programmable apparatus to produce a computer implemented process such that the instructions which execute on the computer or other programmable apparatus provide steps for implementing the functions specified in the flowchart flow or flows and/or block diagram block or blocks.
While the preferred embodiments of the present application have been described, additional variations and modifications in those embodiments may occur to those skilled in the art once they learn of the basic inventive concepts. Therefore, it is intended that the appended claims be interpreted as including preferred embodiments and all such alterations and modifications as fall within the scope of the application.
It will be apparent to those skilled in the art that various changes and modifications may be made in the present application without departing from the spirit and scope of the application. Thus, if such modifications and variations of the present application fall within the scope of the claims of the present application and their equivalents, the present application is also intended to include such modifications and variations.

Claims (34)

1. A channel state information matrix information processing method is characterized by comprising the following steps:
the first communication device determines channel state information matrix indication information, wherein the channel state information matrix indication information is used for indicating N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is Wk,N3Is an integer greater than 0; k is an integer of 1 to N3And is and
l=1,
Figure FDA0003040039130000011
Figure FDA0003040039130000012
is the kth column of the matrix W, W ═ W1kIs a real number; alternatively, the first and second electrodes may be,
when l is equal to 2, the reaction solution is,
Figure FDA0003040039130000013
Figure FDA0003040039130000014
column 1 of (a) is the kth column of the matrix W,
Figure FDA0003040039130000015
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,2k,1Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure FDA0003040039130000016
wherein the content of the first and second substances,
Figure FDA0003040039130000017
satisfy the requirement of
Figure FDA0003040039130000018
Alternatively, the first and second electrodes may be,
Figure FDA0003040039130000019
wherein the content of the first and second substances,
Figure FDA00030400391300000110
satisfy the requirement of
Figure FDA00030400391300000111
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure FDA00030400391300000112
is of length N1The line vectors of (a) are,
Figure FDA00030400391300000113
is of length N2The line vectors of (a) are,
Figure FDA00030400391300000114
is of length N3The line vectors of (a) are,
Figure FDA00030400391300000115
and
Figure FDA00030400391300000116
in the case of a real number,
Figure FDA00030400391300000117
and
Figure FDA00030400391300000118
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure FDA00030400391300000119
is a length 2 row vector;
the first communication device transmits the channel state information matrix indication information.
2. The method of claim 1, wherein N is3Channel state information matrix and N3One-to-one correspondence of frequency domain resource units, N3The kth of the channel state information matrixChannel state information matrix WkAnd said N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23};
Said N is3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by each frequency domain resource unit is more than or equal to N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
3. The method according to claim 1 or 2,
Figure FDA0003040039130000021
the following expression is satisfied:
Figure FDA0003040039130000022
Figure FDA0003040039130000023
Figure FDA0003040039130000024
Figure FDA0003040039130000025
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0 and are each,
Figure FDA0003040039130000026
is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure FDA0003040039130000027
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure FDA0003040039130000028
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure FDA0003040039130000029
is 0 or more and 2O or less4-an integer of 1.
4. The method according to claim 1 or 2,
Figure FDA00030400391300000210
the following expression is satisfied:
Figure FDA00030400391300000211
Figure FDA00030400391300000212
Figure FDA00030400391300000213
Figure FDA00030400391300000214
wherein the content of the first and second substances,
Figure FDA00030400391300000215
Figure FDA00030400391300000216
5. the method of claim 4, wherein the channel state information matrix indication information comprises an indication
Figure FDA00030400391300000217
And
Figure FDA00030400391300000218
information, indication
Figure FDA00030400391300000219
And
Figure FDA00030400391300000220
and indicate
Figure FDA00030400391300000221
Figure FDA00030400391300000222
And
Figure FDA00030400391300000223
the information of (1).
6. The method of claim 5, wherein P, L, N1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
7. The method according to any one of claims 1,2, 5 and 6, wherein the channel state information matrix is a channel information matrix or a precoding matrix.
8. A channel state information matrix information processing method is characterized by comprising the following steps:
the second communication device receives channel state information matrix indication information, wherein the channel state information matrix indication information is used for indicating N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is Wk,N3Is an integer greater than 0, k is an integer, and k is greater than or equal to 1 and less than or equal to N3And is and
l=1,
Figure FDA0003040039130000031
Figure FDA0003040039130000032
is the kth column of the matrix W, W ═ W1kIs a real number;
l=2,
Figure FDA0003040039130000033
Figure FDA0003040039130000034
column 1 of (a) is the kth column of the matrix W,
Figure FDA0003040039130000035
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,1、βk,2Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure FDA0003040039130000036
wherein the content of the first and second substances,
Figure FDA0003040039130000037
satisfy the requirement of
Figure FDA0003040039130000038
Alternatively, the first and second electrodes may be,
Figure FDA0003040039130000039
wherein the content of the first and second substances,
Figure FDA00030400391300000310
satisfy the requirement of
Figure FDA00030400391300000311
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure FDA00030400391300000312
is of length N1The line vectors of (a) are,
Figure FDA00030400391300000313
is of length N2The line vectors of (a) are,
Figure FDA00030400391300000314
is of length N3The line vectors of (a) are,
Figure FDA00030400391300000315
and
Figure FDA00030400391300000316
is made ofThe number of the first and second groups is,
Figure FDA00030400391300000317
and
Figure FDA00030400391300000318
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure FDA00030400391300000319
is a length 2 row vector;
and the second communication device determines a channel state information matrix according to the channel state information matrix indication information.
9. The method of claim 8, wherein N is3Channel state information matrix and N3One-to-one correspondence of frequency domain resource units, N3The kth channel state information matrix W in the channel state information matriceskAnd said N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23};
Said N is3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by each frequency domain resource unit is more than or equal to N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
10. The method according to claim 8 or 9,
Figure FDA0003040039130000041
the following expression is satisfied:
Figure FDA0003040039130000042
Figure FDA0003040039130000043
Figure FDA0003040039130000044
Figure FDA0003040039130000045
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0 and are each,
Figure FDA0003040039130000046
is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure FDA0003040039130000047
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure FDA0003040039130000048
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure FDA0003040039130000049
is 0 or more and 2O or less4-an integer of 1.
11. The method according to claim 8 or 9,
Figure FDA00030400391300000410
the following expression is satisfied:
Figure FDA00030400391300000411
Figure FDA00030400391300000412
Figure FDA00030400391300000413
Figure FDA00030400391300000414
wherein the content of the first and second substances,
Figure FDA00030400391300000415
Figure FDA00030400391300000416
12. the method of claim 11, wherein the channel state information matrix indication information comprises an indication
Figure FDA00030400391300000417
And
Figure FDA00030400391300000418
information, indication
Figure FDA00030400391300000419
And
Figure FDA00030400391300000420
and, indicate
Figure FDA00030400391300000421
And
Figure FDA00030400391300000422
the information of (1).
13. The method of claim 12, wherein the second communications device determining a channel state information matrix according to the channel state information matrix indicator information comprises:
the second communication device obtains the indication information according to the channel state information matrix
Figure FDA0003040039130000051
Figure FDA0003040039130000052
And
Figure FDA0003040039130000053
the second communication device is based on
Figure FDA0003040039130000054
O1、O2、O3And the following formula, calculated to obtain
Figure FDA0003040039130000055
Figure FDA0003040039130000056
Figure FDA0003040039130000057
Figure FDA0003040039130000058
The secondCommunication device according to
Figure FDA0003040039130000059
N1、N2、N3、O1、O2、O3And the following formula, calculated to obtain
Figure FDA00030400391300000510
And
Figure FDA00030400391300000511
Figure FDA00030400391300000512
Figure FDA00030400391300000513
Figure FDA00030400391300000514
the second communication device is based on
Figure FDA00030400391300000515
P, L, formula (1) and formula (2), calculating to obtain a channel state information matrix;
said second communication means according to alphakOr βk,1、βk,2And normalizing the channel state information matrix.
14. The method of claim 12, wherein the second communications device determining a channel state information matrix according to the channel state information matrix indicator information comprises:
the second communication device obtains the indication information according to the channel state information matrix
Figure FDA00030400391300000516
Figure FDA00030400391300000517
And
Figure FDA00030400391300000518
the second communication device is based on
Figure FDA00030400391300000519
O1、O2、O3、O4And the following formula, calculated to obtain
Figure FDA00030400391300000520
Figure FDA00030400391300000521
Figure FDA00030400391300000522
Figure FDA00030400391300000523
Figure FDA00030400391300000524
The second communication device is based on
Figure FDA0003040039130000061
N1、N2、N3、O1、O2、O3、O4And asThe following formula is obtained by calculation
Figure FDA0003040039130000062
And
Figure FDA0003040039130000063
Figure FDA0003040039130000064
Figure FDA0003040039130000065
Figure FDA0003040039130000066
Figure FDA0003040039130000067
the second communication device is based on
Figure FDA0003040039130000068
P, L, formula (3) and formula (4), calculating to obtain a channel state information matrix;
said second communication means according to alphakOr βk,1、βk,2And normalizing the channel state information matrix.
15. The method of any one of claims 12 to 14, wherein P, L, N is used1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
16. The method according to any of claims 8, 9, 12-14, wherein the channel state information matrix is a channel information matrix or a precoding matrix.
17. A communications apparatus, comprising:
a processing module, configured to determine channel state information matrix indication information, where the channel state information matrix indication information is used to indicate N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is Wk,N3Is an integer greater than 0; k is an integer of 1 to N3And is and
l=1,
Figure FDA0003040039130000069
Figure FDA00030400391300000610
is the kth column of the matrix W, W ═ W1kIs a real number; alternatively, the first and second electrodes may be,
when l is equal to 2, the reaction solution is,
Figure FDA00030400391300000611
Figure FDA00030400391300000612
column 1 of (a) is the kth column of the matrix W,
Figure FDA00030400391300000613
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,2k,1Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure FDA0003040039130000071
wherein the content of the first and second substances,
Figure FDA0003040039130000072
satisfy the requirement of
Figure FDA0003040039130000073
Alternatively, the first and second electrodes may be,
Figure FDA0003040039130000074
wherein the content of the first and second substances,
Figure FDA0003040039130000075
satisfy the requirement of
Figure FDA0003040039130000076
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure FDA0003040039130000077
is of length N1The line vectors of (a) are,
Figure FDA0003040039130000078
is of length N2The line vectors of (a) are,
Figure FDA0003040039130000079
is of length N3The line vectors of (a) are,
Figure FDA00030400391300000710
and
Figure FDA00030400391300000711
in the case of a real number,
Figure FDA00030400391300000712
and
Figure FDA00030400391300000713
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure FDA00030400391300000714
is a length 2 row vector;
and the sending module is used for sending the channel state information matrix indication information.
18. The apparatus of claim 17, wherein N is3Channel state information matrix and N3One-to-one correspondence of frequency domain resource units, N3The kth channel state information matrix W in the channel state information matriceskAnd said N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23};
Said N is3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by each frequency domain resource unit is more than or equal to N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
19. The apparatus of claim 17 or 18,
Figure FDA00030400391300000715
the following expression is satisfied:
Figure FDA00030400391300000716
Figure FDA00030400391300000717
Figure FDA00030400391300000718
Figure FDA0003040039130000081
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0 and are each,
Figure FDA0003040039130000082
is 0 or more and O or less1N1-an integer of 1, and (ii) a,
Figure FDA0003040039130000083
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure FDA0003040039130000084
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure FDA0003040039130000085
is 0 or more and 2O or less4-an integer of 1.
20. The apparatus of claim 17 or 18,
Figure FDA0003040039130000086
the following expression is satisfied:
Figure FDA0003040039130000087
Figure FDA0003040039130000088
Figure FDA0003040039130000089
Figure FDA00030400391300000810
wherein the content of the first and second substances,
Figure FDA00030400391300000811
Figure FDA00030400391300000812
21. the apparatus of claim 20, wherein the channel state information matrix indication information comprises an indication
Figure FDA00030400391300000813
And
Figure FDA00030400391300000814
information, indication
Figure FDA00030400391300000815
And
Figure FDA00030400391300000816
and indicate
Figure FDA00030400391300000817
Figure FDA00030400391300000818
And
Figure FDA00030400391300000819
the information of (1).
22. The device of claim 21, wherein P, L, N1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
23. The apparatus of any of claims 17, 18, 21, 22, wherein the channel state information matrix is a channel information matrix or a precoding matrix.
24. A communications apparatus, comprising:
a receiving module, configured to receive channel state information matrix indication information, where the channel state information matrix indication information is used to indicate N3A channel state information matrix, N3Each channel state information matrix in the channel state information matrixes is 2N1N2A matrix of rows and columns, N3The kth channel state information matrix in the channel state information matrixes is Wk,N3Is an integer greater than 0, k is an integer, and k is greater than or equal to 1 and less than or equal to N3And is and
l=1,
Figure FDA00030400391300000820
Figure FDA00030400391300000821
is the kth column of the matrix W, W ═ W1kIs a real number;
l=2,
Figure FDA00030400391300000822
Figure FDA00030400391300000823
column 1 of (a) is the kth column of the matrix W,
Figure FDA00030400391300000824
column 2 of (A) is the Nth of the matrix W3+ k columns, where W satisfies: w ═ W1 W2],βk,1、βk,2Is a real number;
Wl1,2, satisfying the following formula (1) or (3):
Figure FDA0003040039130000091
wherein the content of the first and second substances,
Figure FDA0003040039130000092
satisfy the requirement of
Figure FDA0003040039130000093
Alternatively, the first and second electrodes may be,
Figure FDA0003040039130000094
wherein the content of the first and second substances,
Figure FDA0003040039130000095
satisfy the requirement of
Figure FDA0003040039130000096
Wherein, in formula (1) and formula (3), P is an integer greater than 0, L is an integer greater than 0,
Figure FDA0003040039130000097
is of length N1The line vectors of (a) are,
Figure FDA0003040039130000098
is of length N2The line vectors of (a) are,
Figure FDA0003040039130000099
is of length N3The line vectors of (a) are,
Figure FDA00030400391300000910
and
Figure FDA00030400391300000911
in the case of a real number,
Figure FDA00030400391300000912
and
Figure FDA00030400391300000913
is a plurality of modulo 1; in the formula (3), the first and second groups,
Figure FDA00030400391300000914
is a length 2 row vector;
and the processing module is used for determining the channel state information matrix according to the channel state information matrix indication information.
25. The apparatus of claim 24, wherein N is3Channel state information matrix and N3One-to-one of frequency domain resource unitsShould be, the N3The kth channel state information matrix W in the channel state information matriceskAnd said N3The kth frequency domain resource unit of the frequency domain resource units corresponds to the kth frequency domain resource unit, k is an integer and belongs to {1,23};
Said N is3Kth frequency domain resource unit2The lowest frequency in the frequency occupied by each frequency domain resource unit is more than or equal to N3Kth frequency domain resource unit1The highest frequency of the frequencies occupied by the frequency domain resource units, wherein k2Greater than k1
26. The apparatus of claim 24 or 25,
Figure FDA00030400391300000915
the following expression is satisfied:
Figure FDA00030400391300000916
Figure FDA00030400391300000917
Figure FDA0003040039130000101
Figure FDA0003040039130000102
wherein N is1、N2、O1、O2、O3、O4Are all integers greater than 0 and are each,
Figure FDA0003040039130000103
is greater than or equal to 0O or less1N1-an integer of 1, and (ii) a,
Figure FDA0003040039130000104
is 0 or more and O or less2N2-an integer of 1, and (ii) a,
Figure FDA0003040039130000105
is 0 or more and O or less3N3-an integer of 1, and (ii) a,
Figure FDA0003040039130000106
is 0 or more and 2O or less4-an integer of 1.
27. The apparatus of claim 24 or 25,
Figure FDA0003040039130000107
the following expression is satisfied:
Figure FDA0003040039130000108
Figure FDA0003040039130000109
Figure FDA00030400391300001010
Figure FDA00030400391300001011
wherein the content of the first and second substances,
Figure FDA00030400391300001012
Figure FDA00030400391300001013
28. the apparatus of claim 27, wherein the channel state information matrix indication information comprises an indication
Figure FDA00030400391300001014
And
Figure FDA00030400391300001015
information, indication
Figure FDA00030400391300001016
And
Figure FDA00030400391300001017
and, indicate
Figure FDA00030400391300001018
Figure FDA00030400391300001019
And
Figure FDA00030400391300001020
the information of (1).
29. The apparatus of claim 28, wherein the processing module is specifically configured to:
obtaining the channel state information matrix indication information
Figure FDA00030400391300001021
Figure FDA00030400391300001022
And
Figure FDA00030400391300001023
according to
Figure FDA00030400391300001024
O1、O2、O3And the following formula, calculated to obtain
Figure FDA00030400391300001025
Figure FDA00030400391300001026
Figure FDA00030400391300001027
Figure FDA00030400391300001028
Figure FDA00030400391300001029
According to
Figure FDA00030400391300001030
N1、N2、N3、O1、O2、O3And the following formula, calculated to obtain
Figure FDA00030400391300001031
Figure FDA00030400391300001032
And
Figure FDA00030400391300001033
Figure FDA0003040039130000111
Figure FDA0003040039130000112
Figure FDA0003040039130000113
according to
Figure FDA0003040039130000114
P, L, formula (1) and formula (2), calculating to obtain a channel state information matrix;
according to alphakOr βk,1、βk,2And normalizing the channel state information matrix.
30. The apparatus of claim 28, wherein the processing module is specifically configured to:
obtaining the channel state information matrix indication information
Figure FDA0003040039130000115
Figure FDA0003040039130000116
And
Figure FDA0003040039130000117
according to
Figure FDA0003040039130000118
O1、O2、O3、O4And the following formula, calculated to obtain
Figure FDA0003040039130000119
Figure FDA00030400391300001110
Figure FDA00030400391300001111
Figure FDA00030400391300001112
Figure FDA00030400391300001113
According to
Figure FDA00030400391300001114
N1、N2、N3、O1、O2、O3、O4And the following formula, calculated to obtain
Figure FDA00030400391300001115
And
Figure FDA00030400391300001116
Figure FDA00030400391300001117
Figure FDA00030400391300001118
Figure FDA00030400391300001119
Figure FDA00030400391300001120
according to
Figure FDA0003040039130000121
P, L, formula (3) and formula (4), calculating to obtain a channel state information matrix;
according to alphakOr βk,1、βk,2And normalizing the channel state information matrix.
31. The device of any one of claims 28-30, wherein P, L, N is used as a guide for the movement of the catheter1、N2、N3、O1、O2、O3、O4Is indicated by physical layer signaling or radio resource control, RRC, signaling, or, P, L, N1、N2、N3、O1、O2、O3、O4Is a predefined value.
32. The apparatus of any of claims 24, 25, 28-30, wherein the channel state information matrix is a channel information matrix or a precoding matrix.
33. A computer-readable storage medium, characterized in that the computer storage medium stores a computer program comprising program instructions that, when executed by a module, cause the module to perform the method according to any one of claims 1-7.
34. A computer-readable storage medium, characterized in that the computer storage medium stores a computer program comprising program instructions that, when executed by a module, cause the module to perform the method according to any one of claims 8-16.
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Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2590338A2 (en) * 2010-07-02 2013-05-08 LG Electronics Inc. Method and apparatus for transmitting signals using codebooks in a wireless communication system that supports multiple antennas
CN103348608A (en) * 2010-11-01 2013-10-09 李尔登公司 System and method to coordinate transmission in distributed wireless system via user clustering
CN105024780A (en) * 2014-04-23 2015-11-04 中国移动通信集团公司 Information transmitting and confirmation and channel reconstruction method and related device and system
WO2017069580A1 (en) * 2015-10-23 2017-04-27 Samsung Electronics Co., Ltd. Precoder codebook for advanced wireless communication systems

Family Cites Families (3)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US10110286B2 (en) * 2015-03-30 2018-10-23 Samsung Electronics Co., Ltd. Method and apparatus for codebook design and signaling
US9918317B2 (en) * 2016-07-08 2018-03-13 Alcatel-Lucent Usa Inc. Apparatus configured to approximate a power coefficient in a cell-free massive MIMO wireless system and method of performing same
CN107302389A (en) * 2017-08-28 2017-10-27 南京科兴新材料科技有限公司 A kind of 3DMU MIMO pre-coding matrixes building method and device

Patent Citations (4)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP2590338A2 (en) * 2010-07-02 2013-05-08 LG Electronics Inc. Method and apparatus for transmitting signals using codebooks in a wireless communication system that supports multiple antennas
CN103348608A (en) * 2010-11-01 2013-10-09 李尔登公司 System and method to coordinate transmission in distributed wireless system via user clustering
CN105024780A (en) * 2014-04-23 2015-11-04 中国移动通信集团公司 Information transmitting and confirmation and channel reconstruction method and related device and system
WO2017069580A1 (en) * 2015-10-23 2017-04-27 Samsung Electronics Co., Ltd. Precoder codebook for advanced wireless communication systems

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