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    专

    一种杨树糖转运蛋白基因PagSWEET15b及其编码蛋白和应用

    1262020057100C
    发明人
    王丽娟, 郝心怡, 胡建军, 王哲舒, 范志斌
    受让人
    RES INST FORESTRY CHINESE ACAD FORESTRY (CLYK-C)
    申请人
    Analog Devices Inc.
    申请号
    015682
    申请日
    2011-11-30
    公开(公告)号
    1262020057100C
    公开(公告)日
    2013-08-31
    IPC分类号
    G06F019/00
    CPC分类号
    -
    优先权号
    017885
    优先权日
    2020-02-12
    摘要

    NOVELTY - The method involves transmitting instruction information to an access network device by a control plane network element. Notification of whether a quality of service (QoS) of a server quality QoS flow is guaranteed Information about candidate QoS files of the QoS flow that the access network device is supported. Notification information and information of the candidate QoS file from the access network device are received by the control plane network element. Notification information notifies that the QoS of the QoS flow is not guaranteed. A QoS parameter corresponding to the candidate QoS file are transmitted to a terminal device by the control plane network element.

    USE - Method for establishing communication in a communication system for e.g. a fifth generation communication system through a control plane network element by using a communication device (all claimed).

    ADVANTAGE - The method enables transmitting the QoS parameter corresponding to the candidate QoS file to the terminal device by a control plane network element, so that the user of the access network device can easily know the candidate quality of service (QoS) file that is being executed by the access device, thus improving the user experience of the user. The method enables allowing the user to select the candidate file that can be supported by the user plane network elements, thus reducing the load on the network elements and the network resources of the network device.

    DETAILED DESCRIPTION - INDEPENDENT CLAIMS are also included for:

    a method for establishing communication in a communication system for e.g. a communication system through a first access network device by using a communication device (claimed),fifth generation

    a method for establishing communication in a communication system for e.g. a communication system through a user plane access network element by using a communication device (claimed),fifth generation

    a computer readable storage medium comprising a set of instructions for establishing communication in a communication system for e.g. a communication system through a control plane network element by using a communication device; andfifth generation

    a computer program product comprising a set of instructions for establishing communication in a communication system for e.g. a communication system through a control plane network element by using a communication device;fifth generation

    DESCRIPTION OF DRAWING(S) - The drawing shows a flow chart illustrating a method for establishing communication in a communication system for through a control plane network element by using a communication device (Drawing includes non-English language text).

    权利要求
    1 . A package anchor for a package having folds comprising: a line with a first end and a second end; an anchor attached to the first end of the line and a cinch attached to the second end of the line; where the line is attached to the anchor at a center hole; and where the line is integral to the cinch; the cinch has a first section and a second section where the first section has adhesive and the second section does not have adhesive; and, the anchor is attached to the package between folds.
    2 . The package anchor of claim 1 where the line is also spooled onto the anchor.
    3 . The package anchor of claim 1 where the cinch is a twistable wire.
    4 . The package anchor of claim 1 where the anchor further comprises a pre-scored fold line.
    5 . A package anchor system for attaching a package to a door and a door frame, the system comprising: a spool; a strap, at least partially wrapped around the spool, the strap having a width with two wires separated by the width and where the wires are covered by plastic film with a center line having a plurality of holes; and, a zipper lock slidable on the strap, the zipper lock having a first slot and a second slot where the second slot has an internal tooth.
    6 . The package anchor system of claim 5 where the system further comprises an attachment ring having a first part attached to a door frame and a second part attached to a door; where the strap is attachable to the attachment ring.
    7 . The package anchor system of claim 5 where the first part of the attachment ring comprises a U-shaped frame and hook and the second part of the attachment ring comprises a U-shaped frame and hook.
    8 . The package anchor system of claim 5 where the first slot and the second slot each has wire channels.
    9 . A package anchor system for attaching a package to a house with a fixed exterior object, the system comprising: a staple attachable to the package; a strap mounted to the staple, the strap having a width with two wires separated by the width and where the wires are covered by plastic film with a center line of a plurality of holes; and, a zipper lock slidable on the strap, the zipper lock having a first slot and a second slot where the second slot has an internal tooth and where the first slot and second slot have wire channels.
    10 . The package anchor system of claim 9 where the staple is mounted to the package within 0.375 inches or less from a folding edge of an internal bi-folding flap and located at an outside edge of the flap on the package.
    说明书
    [0001]CROSS-REFERENCE TO RELATED APPLICATIONS
    [0002]This application is a continuation of International Application No. PCT/CN2012/076898, filed on Jun. 14, 2012, which is hereby incorporated by reference in its entirety.
    [0003]TECHNICAL FIELD
    [0004]The present invention relates to the field of mobile communications, and in particular, to a method for determining a precoding matrix indicator, a user equipment, abase station evolved NodeB, and a system.
    [0005]BACKGROUND
    [0006]A multiple-input multiple-output (multiple-input multiple-output, MIMO) radio system can obtain diversity and array gains by means of transmit precoding and receive signal combination. A system that utilizes precoding may be expressed as: y=H{circumflex over (V)}s+n
    [0007]where y represents a vector of a received signal, H represents a channel matrix, {circumflex over (V)} represents a precoding matrix, s represents a vector of a transmitted symbol, and n represents a measurement noise.
    [0008]Optimal precoding generally requires that channel state information (Channel State Information, CSI) is completely known by a transmitter. A commonly used method is that a user equipment (User Equipment, UE) or a mobile station (Mobile Station, MS) (hereinafter generally referred to as UE) quantizes instantaneous CSI and feeds back the CSI to a NodeB (NodeB), which includes a base station (Base station, BS), an access point (Access Point), a transmission point (Transmission Point, TP), or an evolved NodeB (Evolved Node B, eNB), where the evolved NodeB is generally referred to as an eNB. CSI information that is fed back by an existing Long Term Evolution (Long Term Evolution, LTE) R8 system includes information such as a rank indicator (Rank Indicator, RI), a precoding matrix indicator (Precoding Matrix Indicator, PMI), and a channel quality indicator (Channel Quality Indicator, CQI), where the RI and the PMI respectively indicate the number of layers used and a precoding matrix. A set of used precoding matrices is generally referred to as a codebook, where each precoding matrix is a codeword in the codebook. To reduce system costs and meet higher requirements on the system capacity and coverage, an active antenna system (AAS) is already widely deployed in practice. Compared with an existing base station antenna, the AAS further provides a degree of freedom in design for the vertical direction.
    [0009]An existing 4-antenna codebook, which is designed based on Householder transformation, of an LTE R8 system and an existing 8-antenna codebook, which is designed based on dual codebooks, of an LTE R10 system are mainly designed for a horizontal antenna, but a degree of freedom of a vertical antenna is not considered. When the 4-antenna codebook and the 8-antenna codebook are directly used in deployment of an AAS base station antenna, system performance severely deteriorates.
    [0010]SUMMARY
    [0011]Embodiments of the present invention provide a method for determining a precoding matrix indicator, a user equipment, a base station evolved NodeB eNB, and a system, which use a precoding matrix that supports vertical and horizontal quantization, and can fully use a degree of freedom of an active antenna system in a vertical direction, thereby improving CSI feedback accuracy and system throughput.
    [0012]According to one aspect, an embodiment of the present invention provides a method for determining a precoding matrix indicator, where the method includes:
    [0013]receiving a reference signal sent by a base station;
    [0014]selecting, based on the reference signal, a precoding matrix from a codebook, where a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 , where
    [0015]W 1 is a block diagonal matrix, that is, W 1 =diag{X 1 , . . . , X N B }, where each block matrix X i is a kronecker product of a matrix A i and a matrix B i , that is, and X i =A i B i , and 1≦i≦N B ; the W 1 includes at least one block matrix, that is, the number of block matrices is N B ≧1; and
    [0016]sending a precoding matrix indicator PMI to the base station, where the PMI corresponds to the selected precoding matrix, so that the base station obtains the precoding matrix according to the PMI.
    [0017]According to another aspect, an embodiment of the present invention further provides a method for determining a precoding matrix indicator, where the method includes:
    [0018]sending a reference signal to a user equipment UE; and
    [0019]receiving a precoding matrix indicator PMI sent by the UE, where the PMI corresponds to a precoding matrix that is selected by the UE, based on the reference signal, from a codebook; and a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 , where
    [0020]W 1 is a block diagonal matrix, that is, W 1 =diag{X 1 , . . . , X N B }, where each block matrix X i is a kronecker product of a matrix A i and a matrix B i , that is, X i =A i B i , and 1≦i≦N B ; and the matrix W 1 includes at least one block matrix, that is, the number of block matrices is N B ≧1.
    [0021]According to another aspect, correspondingly, an embodiment of the present invention provides a user equipment UE, including:
    [0022]a receiving unit, configured to receive a reference signal sent by a base station;
    [0023]a selecting unit, configured to select, based on the reference signal, a precoding matrix from a codebook, where a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 , where
    [0024]W 1 is a block diagonal matrix, that is, W 1 =diag{X 1 , . . . , X N B }, where each block matrix X i is a kronecker product of a matrix A i and a matrix B i , that is, X i =A i B i and 1≦i≦N B ; and the W 1 includes at least one block matrix, that is, the number of block matrices is N B ≧1; and
    [0025]a sending unit, configured to send a precoding matrix indicator PMI to the base station, where the PMI corresponds to the selected precoding matrix, so that the base station obtains the precoding matrix according to the PMI.
    [0026]According to another aspect, correspondingly, an embodiment of the present invention provides a base station eNB, including:
    [0027]a sending unit, configured to send a reference signal to a user equipment UE; and
    [0028]a receiving unit, configured to receive a precoding matrix indicator PMI sent by the UE, where the PMI corresponds to a precoding matrix that is selected by the UE, based on the reference signal, from a codebook; and a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 , where
    [0029]W 1 is a block diagonal matrix, that is, W 1 =diag{X 1 , . . . , X N B }, where each block matrix X i is a kronecker product of a matrix A i and a matrix B i , that is, X i =A i B i , and 1≦i≦N B ; and the matrix W 1 includes at least one block matrix, that is, the number of block matrices is N B ≧1.
    [0030]According to another aspect, correspondingly, an embodiment of the present invention further provides a system for determining a precoding matrix indicator, including the foregoing terminal UE and base station eNB.
    [0031]The method for determining a precoding matrix indicator, the user equipment UE, the base station eNB, and the system according to the embodiments of the present invention utilize a precoding matrix that supports vertical and horizontal quantization, which can not only use a degree of freedom in a horizontal direction, but also can use a degree of freedom in a vertical direction, thereby greatly improving CSI feedback accuracy and system throughput.
    [0032]BRIEF DESCRIPTION OF THE DRAWINGS FIG. 1 is a flowchart of a first embodiment of a method for determining a precoding matrix indicator according to the present invention; FIG. 2 is a flowchart of a second embodiment of a method for determining a precoding matrix indicator according to the present invention; FIG. 3 is a schematic structural diagram of composition of a system for determining a precoding matrix indicator according to the present invention; FIG. 4 is a schematic structural diagram of composition of a user equipment UE in FIG. 3 ; and FIG. 5 is a schematic structural diagram of composition of a base station eNB in FIG. 3 .
    [0033]DETAILED DESCRIPTION
    [0034]The following further describes the technical solutions of the present invention in detail with reference to the accompanying drawings and embodiments.
    [0035]According to embodiments of the present invention, a codebook scheme is designed for an actual network deployment and antenna configuration, and especially for a base station antenna configuration condition of an active antenna system. According to the codebook scheme, a UE selects and reports a PMI, and a NodeB performs precoding according to PMI information reported by the UE, so as to improve performance of a system with the foregoing antenna configuration and especially with the AAS base station antenna configuration. The base station antenna can not only use a degree of freedom in a horizontal direction, but also can use a degree of freedom in a vertical direction.
    [0036]FIG. 1 is a flowchart of a first embodiment of a method for determining a precoding matrix indicator according to the present invention. As shown in the figure, this embodiment specifically includes the following steps:
    [0037]Step 101 : Receive a reference signal sent by a base station.
    [0038]Specifically, the reference signal sent by the base station may include a channel state information reference signal (channel state information Reference Signal, CSI RS), a demodulation reference signal (demodulation RS, DM RS), or a cell-specific reference signal (cell-specific RS, CRS). A user equipment UE may obtain a resource configuration of the reference signal by receiving a notification (for example, RRC (Radio Resource Control) signaling or downlink control information DCI) from an eNB or based on a cell identity ID, and obtain the reference signal from a corresponding resource or subframe.
    [0039]Step 102 : Select, based on the reference signal, a precoding matrix from a codebook, where a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 , that is: W=W 1 W 2 (1)
    [0040]where W 1 is a block diagonal matrix, that is: W 1 =diag{ X 1 , . . . ,X N B } (2)
    [0041]where each block matrix X i is a Kronecker (kronecker) product of a matrix A i and a matrix B i , that is: X i =A i B i ,1≦ i≦N B (3)
    [0042]the W 1 includes at least one block matrix, that is, the number N B of block matrices is: N B ≧1 (4)
    [0043]Specifically, each column of the matrix A i or of the matrix B i in formula (3) may be a discrete Fourier transform (Discrete Fourier Transform, DFT) vector or may be a column vector of a Hadamard (Hadamard) matrix, that is: A i =[a 0 a 1 . . . a N a -1 ] (5) B i =[b 0 b 1 . . . b N b -1 ] (6) therefore: a k ε{f 0 ,f 1 , . . . ,f N f -1 },k= 0, . . . N a −1 (7) or a k ε{h 0 ,h 1 , . . . ,h N h -1 },k= 0, . . . , N a −1 (8) or b l ε{f 0 ,f 1 , . . . f N f -1 },l= 0, . . . , N b −1 (9) or b l ε{h 0 ,h 1 , . . . h N h -1 },l= 0, . . . , N b −1 (10)
    [0044]where N a and N b represent the numbers of columns of the matrix A i and the matrix B i , respectively; h m , m=0, . . . , N h −1 represents a column vector of the Hadamard matrix, where N h represents the number of columns of the Hadamard matrix; and f h , n=0, . . . , N f −1 represents a DFT vector, where N f is the number of DFT vectors, and the DFT vector f n may be represented as:
    [0045]f n ⁡ [ ⅇ j ⁢ 2 ⁢ ⁢ π · 0 · n N ⅇ j ⁢ 2 ⁢ ⁢ π · 1 · n N … ⅇ j ⁢ 2 ⁢ ⁢ π · ( M - 1 ) · n N ] T ( 11 )
    [0046]where both M and N are integers.
    [0047]Specifically, the matrix A i or the matrix B i in formula (3) may also be a precoding matrix in a 2-antenna codebook or a 4-antenna codebook of an LTE R8 system, or in an 8-antenna codebook of an LTE R10 system.
    [0048]Further, the matrix W 2 is used to select or weight and combine a column vector in the matrix W 1 , so as to form the matrix W.
    [0049]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may separately be: A i =a 0 ,i= 1,2 (12) where:
    [0050]a 0 ∈ { f 0 , f 1 , … ⁢ , f 3 } ( 13 ) [ f 0 , f 1 , f 2 , f 3 ] = diag ⁢ { 1 , ⅇ j ⁢ ⁢ n ⁢ ⁢ π / 8 , ⅇ j ⁢ ⁢ n ⁢ ⁢ π / 4 , ⅇ j ⁢ ⁢ 3 ⁢ ⁢ n / 8 } ⁢ F 4 , ⁢ n = 0 , 1 , 2 , 3 ( 14 ) F 4 = 1 2 × [ 1 1 1 1 1 j - 1 - j 1 - 1 1 - 1 1 - j - 1 j ] ⁢ ⁢ or ( 15 ) a k ∈ { h 0 , h 1 , … ⁢ , h 3 } , ⁢ k = 0 , … ⁢ , 3 ( 16 ) [ h 0 , h 1 , … ⁢ , h 3 ] = 1 2 × H 4 ( 17 )
    [0051]where H 4 is a Hadamard (Hadamard) matrix of order 4.
    [0052]B i ∈ { [ b ( 2 ⁢ ⁢ k ) ⁢ mod ⁢ ⁢ 32 b ( 2 ⁢ ⁢ k + 1 ) ⁢ mod ⁢ ⁢ 32 b ( 2 ⁢ ⁢ k + 2 ) ⁢ mod ⁢ ⁢ 32 b ( 2 ⁢ ⁢ k + 3 ) ⁢ mod ⁢ ⁢ 32 ] ⁢ : ⁢ ⁢ k = 0 , 1 , … ⁢ , 15 } , i = 1 , 2 ( 18 ) b ( 2 ⁢ ⁢ k + l ) ⁢ mod ⁢ ⁢ 32 = [ ⅇ j ⁢ 2 ⁢ ⁢ π · 0 · ( ( 2 ⁢ ⁢ k + l ) ⁢ mod ⁢ ⁢ 32 ) 32 ⅇ j ⁢ 2 ⁢ ⁢ π · 1 · ( ( 2 ⁢ ⁢ k + l ) ⁢ mod ⁢ ⁢ 32 ) 32 ⅇ j ⁢ 2 ⁢ ⁢ π · 2 · ( ( 2 ⁢ ⁢ k + l ) ⁢ mod ⁢ ⁢ 32 ) 32 ⅇ j ⁢ 2 ⁢ ⁢ π · 3 · ( ( 2 ⁢ ⁢ k + l ) ⁢ mod ⁢ ⁢ 32 ) 32 ] , ⁢ l = 0 , 1 , 2 , 3 ( 19 )
    [0053]where x mod y represents an operation of x mod y; and j represent a unit pure imaginary number, that is, j=√{square root over (−1)}; or
    [0054]B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system.
    [0055]⁢ W 2 ∈ { 1 2 ⁡ [ Y Y ] , 1 2 ⁡ [ Y j ⁢ ⁢ Y ] , 1 2 ⁡ [ Y - Y ] , 1 2 ⁡ [ Y - j ⁢ ⁢ Y ] } ( 20 ) ⁢ Y ∈ { e ~ 1 , e ~ 2 , e ~ 3 , e ~ 4 } ⁢ ⁢ ⁢ or ( 21 ) ⁢ W 2 ∈ { 1 2 ⁡ [ Y 1 Y 2 Y 1 - Y 2 ] , 1 2 ⁡ [ Y 1 Y 2 j ⁢ ⁢ Y 1 - j ⁢ ⁢ Y 2 ] } ( 22 ) ( Y 1 , Y 2 ) ∈ { ( e ~ 1 , e ~ 1 ) , ( e ~ 2 , e ~ 2 ) , ( e ~ 3 , e ~ 3 ) , ( e ~ 4 , e ~ 4 ) , ( e ~ 1 , e ~ 2 ) ⁢ ( e ~ 2 , e ~ 3 ) ⁢ ( e ~ 1 , e ~ 4 ) ⁢ ( e ~ 2 , e ~ 4 ) } ( 23 )
    [0056]where {tilde over (e)} n , n=1, 2, 3, 4 represents a 4×1 selection vector in which all elements are 0 except the n th element being 1.
    [0057]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may also separately be: A i =[a 0 a 1 ],i= 1,2 (24) a 0 ,a 1 ε{f 0 ,f 1 , . . . ,f 3 }=(25)
    [0058]where f i , i=0, . . . , 3 is shown in formula (14).
    [0059]or a 0 ,a 1 ε{h 0 ,h 1 , . . . ,h 3 } (26)
    [0060]where h i , i=0, . . . 3 is shown in formula (17);
    [0061]the matrix B i , i=1, 2 is shown in formulas (18) and (19), or the matrix B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system;
    [0062]⁢ W 2 ∈ { 1 2 ⁡ [ Y Y ] , 1 2 ⁡ [ Y j ⁢ ⁢ Y ] , 1 2 ⁡ [ Y - Y ] , 1 2 ⁡ [ Y - j ⁢ ⁢ Y ] } ( 27 ) ⁢ Y ∈ { e 1 , e 2 , e 3 , e 4 , e 5 , e 6 , e 7 , e 8 } ⁢ ⁢ ⁢ or ( 28 ) ⁢ W 2 ∈ { 1 2 ⁡ [ Y 1 Y 2 Y 1 - Y 2 ] , 1 2 ⁡ [ Y 1 Y 2 j ⁢ ⁢ Y 1 - j ⁢ ⁢ Y 2 ] } ( 29 ) ( Y 1 , Y 2 ) ∈ { ( e 1 , e 1 ) , ( e 2 , e 2 ) , ( e 3 , e 3 ) , ( e 4 , e 4 ) , ( e 1 , e 2 ) ⁢ ( e 2 , e 3 ) ⁢ ( e 1 , e 4 ) ⁢ ( e 2 , e 4 ) } ( 30 )
    [0063]where e n , n=1, 2, . . . , 8 represents an 8×1 selection vector in which all elements are 0 except the n th element being 1.
    [0064]Specifically, the selecting, based on the reference signal, a precoding matrix from a codebook includes:
    [0065]obtaining, by the user equipment UE based on the reference signal, a channel estimate; and selecting, based on a predefined criterion such as a channel capacity or throughput maximization criterion, the precoding matrix from the codebook according to the channel estimate. Selecting, based on a predefined criterion, a precoding matrix is an existing technology, and details are not described herein.
    [0066]Further, the selecting, based on the reference signal, a precoding matrix from a codebook includes:
    [0067]selecting, based on the reference signal, the precoding matrix from a codebook subset, where
    [0068]the codebook subset may be a codebook subset that is predefined; or a codebook subset that is reported by the UE to the base station eNB, determined by the base station eNB based on the report from the UE, and notified to the UE; or a codebook subset that is determined and reported by the UE, for example, a latest reported codebook subset.
    [0069]Further, the codebook subset may include:
    [0070]a subset of the matrix W 1 , the matrix A i , the matrix B i , or the matrix W 2 .
    [0071]The selecting, based on the codebook subset, the precoding matrix can further reduce feedback overheads and implementation complexity.
    [0072]Further, the codebook subsets have a same subset of the matrix W 1 the matrix A i , the matrix B i , or the matrix W 2 . In this way, the codebook subsets overlap each other, which can overcome an edge effect of channel state information quantization.
    [0073]Further, in the precoding matrix, block matrices X i and X j , i≠j may be unequal, or may also be equal. If there are multiple cases that X i and X j , i≠j are equal, for example, X i and X j , i≠j that are equal may appear in pairs, the feedback overheads can be further reduced.
    [0074]In addition, the foregoing matrix A i or matrix B i may also use another form, which is not further elaborated herein.
    [0075]It should be noted that, each of the foregoing matrices may further be multiplied by a scale factor, so as to implement power normalization or power equalization.
    [0076]Step 103 : Send a precoding matrix indicator PMI to the base station, where the PMI corresponds to the selected precoding matrix, so that the base station obtains the precoding matrix according to the PMI.
    [0077]Specifically, the precoding matrix is included in a precoding matrix set or a codebook; and the PMI is used to indicate the selected precoding matrix in the precoding matrix set or the codebook.
    [0078]Specifically, the sending a precoding matrix indicator PMI to the base station includes: sending the precoding matrix indicator PMI to the base station, where the PMI may include only one specific value. In this case, the PMI directly indicates the precoding matrix W. For example, if there are a total of 16 different precoding matrices, PMI=0, . . . , 15 may be used to respectively indicate precoding matrices W whose labels are 0, 1, . . . , 15.
    [0079]Specifically, the sending a precoding matrix indicator PMI to the base station may also include: sending precoding matrix indicators PMI 1 and PMI 2 to the base station, where PMI 1 and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B in formula (2) and the matrix W 2 , respectively; and in this case, the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 are respectively indicated by PMI 1 and PMI 2 in the codebook; or
    [0080]sending precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 to the base station, where PMI 11 , PMI 12 , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B the matrix B i , 1≦i≦N B , and the matrix W 2 , respectively; and in this case, the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 are respectively indicated by PMI 11 , PMI 12 , and PMI 2 in the codebook.
    [0081]Further, the precoding matrix indicators PMI 1 and PMI 2 , or the precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 have different time domain granularities or frequency domain granularities, for example, PMI 1 and PMI 2 , or PMI 11 , PMI 12 , and PMI 2 separately indicate different periods or bandwidth channel features, or are obtained based on different subframe periods or subband sizes.
    [0082]Alternatively, further, the precoding matrix indicators PMI 11 and PMI 12 are sent to the base station according to different time periods.
    [0083]Specifically, the sending a precoding matrix indicator PMI to the base station may also include: sending precoding matrix indicators PMI 1,i , 1≦i≦N B and PMI 2 to the base station, where PMI 1,i , 1≦i≦N B and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 , respectively; or
    [0084]sending precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 to the base station, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 , respectively.
    [0085]Specifically, the sending a precoding matrix indicator PMI to the base station may also include: sending precoding matrix indicators PMI 1,i , 1≦i≦N B /2 and PMI 2 to the base station, where PMI 1,i , 1≦i≦N B /2 and PMI 2 are used to indicate a matrix X 2i-1 =X 2i =A 2i B 2i , 1≦i≦N B /2 and the matrix W 2 , respectively; and in this case, X 2i-1 =X 2i , and the matrices appear in pairs; or
    [0086]sending precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 to the base station, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate a matrix A 2i-1 =A 2i , 1≦i≦N B /2, the matrix B 2i-1 =B 2i , 1≦i≦N B /2, and the matrix W 2 , respectively; and in this case, A 2i-1 =A 2i , B 2i =B 2i , and the matrices appear in pairs.
    [0087]Specifically, the sending a precoding matrix indicator PMI to the base station may be sending, by the UE, the precoding matrix indicator PMI to the base station through a physical uplink control channel (Physical Uplink Control Channel, PUCCH) or a physical uplink shared channel (Physical Uplink Shared Channel, PUSCH).
    [0088]Further, the sending a precoding matrix indicator PMI to the base station may be separately sending, by the UE by using different subframes or according to different periods, the foregoing PMI 1 and PMI 2 ; or PMI 11 , PMI 12 , and PMI 2 ; or PMI 1,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 1,i , 1≦i≦N B /2, and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2 and PMI 2 to the base station.
    [0089]Further, the sending a precoding matrix indicator PMI to the base station may also be separately sending, by the UE for different subbands or subband sizes in a frequency domain, the foregoing PMI 1 and PMI 2 ; or PMI 11 , PMI 12 , and PMI 2 ; or PMI 1,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 1,i , 1≦i≦N B /2, and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2 and PMI 2 to the base station.
    [0090]In this embodiment of the present invention, a user equipment determines and sends a precoding matrix indicator PMI, where the PMI indicates a precoding matrix. The precoding matrix has a structure of W=W 1 W 2 , where W 1 is a block diagonal matrix in which each block matrix on a diagonal line is X i =A i B i , and i=1, . . . , N B , where the matrix A i or the matrix B i effectively supports channel state information quantization in a horizontal direction or a vertical direction, respectively. This can fully use a degree of freedom of an active antenna system AAS in a horizontal direction and a vertical direction, thereby greatly improving channel state information feedback accuracy. In addition, multiple block matrices X i may separately correspond to antenna groups of different polarizations or at different locations, so that the foregoing precoding matrix matches multiple antenna deployments or configurations. The foregoing codebook structure greatly improves performance of MIMO, and especially that of MU-MIMO. Moreover, one or more PMIS are fed back based on a subset to indicate a precoding matrix, which fully uses time/frequency domain/spatial correlation of a channel, thereby greatly reducing feedback overheads.
    [0091]FIG. 2 is a flowchart of a second embodiment of a method for determining a precoding matrix indicator according to the present invention. As shown in the figure, this embodiment specifically includes:
    [0092]Step 201 : Send a reference signal to a user equipment UE.
    [0093]Specifically, the reference signal may include a channel state information reference signal (channel state information Reference Signal, CSI RS), a demodulation reference signal (demodulation RS, DM RS), or a cell-specific reference signal (cell-specific RS, CRS). A base station eNB may notify the user equipment UE of a resource configuration of the reference signal by using RRC (Radio Resource Control) signaling or downlink control information (DCI), and instruct the UE to obtain the reference signal from a corresponding resource or subframe. The user equipment UE may also implicitly obtain, based on other information such as a cell identity ID, the resource configuration of the reference signal, and obtain the reference signal from the corresponding resource or subframe.
    [0094]Step 202 : Receive a precoding matrix indicator PMI sent by the user equipment UE, where the PMI corresponds to a precoding matrix selected by the user equipment, based on the reference signal, from a codebook; and a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 , and the precoding matrix W has a structure shown in formulas (1) to (4).
    [0095]Specifically, each column of the matrix A i or of the matrix B i may be a DFT vector or is a column vector of a Hadamard matrix, as shown in formulas (5) to (11); or
    [0096]specifically, the matrix A i or the matrix B i may also be a precoding matrix in a 2-antenna codebook or a 4-antenna codebook of an LTE R8 system, or in an 8-antenna codebook of an LTE R10 system.
    [0097]Further, the matrix W 2 is used to select or weight and combine a column vector in the matrix W 1 , so as to form the matrix W.
    [0098]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may separately be those shown in formulas (12) to (23); or B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system.
    [0099]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may separately be those shown in formulas (24) to (30); or B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system.
    [0100]Specifically, the selecting, based on the reference signal, a precoding matrix from a codebook includes:
    [0101]selecting, based on the reference signal, the precoding matrix from a codebook subset, where
    [0102]the codebook subset may be a codebook subset that is predefined; or a codebook subset that is reported by the UE to the base station eNB, determined by the base station eNB based on the report from the UE, and notified to the UE; or a codebook subset that is determined and reported by the UE, for example, a latest reported codebook subset.
    [0103]Further, the codebook subset may include a subset of the matrix W 1 , the matrix A i , the matrix B i , or the matrix W 2 .
    [0104]Further, the codebook subsets have a same subset of the matrix W 1 , the matrix A i , the matrix B i , or the matrix W 2 . In this way, the codebook subsets overlap each other, which can overcome an edge effect of channel state information quantization.
    [0105]Further, in the precoding matrix, block matrices X i and X j , i≠j may be unequal, or may also be equal. If there are multiple cases that X j and X j , i≠j are equal, for example, X i and X j , i≠j that are equal may appear in pairs, feedback overheads can be further reduced.
    [0106]In addition, the foregoing matrix A i or matrix B i may also use another form, which is not further elaborated herein.
    [0107]It should be noted that, each of the foregoing matrices may further be multiplied by a scale factor, so as to implement power normalization or power equalization.
    [0108]Specifically, the precoding matrix is included in a precoding matrix set or a codebook; and the PMI is used to indicate the selected precoding matrix in the precoding matrix set or the codebook.
    [0109]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE includes: receiving the precoding matrix indicator PMI sent by the user equipment UE, where the PMI may include only one specific value. In this case, the PMI directly indicates the precoding matrix W. For example, if there are a total of 16 different precoding matrices, PMI=0, . . . , 15 may be used to respectively indicate precoding matrices W whose labels are 0, 1, . . . , 15.
    [0110]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE may also include: receiving precoding matrix indicators PMI 1 and PMI 2 sent by the user equipment UE, where PMI 1 and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B in formula (2) and the matrix W 2 , respectively; and in this case, the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 are respectively indicated by PMI 1 and PMI 2 in the codebook; or
    [0111]receiving precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 sent by the user equipment UE, where PMI 11 , PMI 12 , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 , respectively; and in this case, the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 are respectively indicated by PMI 11 , PMI 12 , and PMI 2 in the codebook.
    [0112]Further, the precoding matrix indicators PMI 1 and PMI 2 , or the precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 have different time domain granularities or frequency domain granularities, for example, PMI 1 and PMI 2 , or PMI 11 , PMI 12 , and PMI 2 separately indicate different periods or bandwidth channel features, or are obtained based on different subframe periods or subband sizes.
    [0113]Alternatively, further, the precoding matrix indicators PMI 11 and PMI 12 are sent to the base station according to different time periods.
    [0114]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE may also include: receiving precoding matrix indicators PMI 1,i , 1≦i≦N B and PMI 2 sent by the user equipment UE, where PMI 1,i , 1≦i≦N B and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 , respectively; or
    [0115]receiving precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 sent by the user equipment UE, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B the matrix B i , 1≦i≦N B , and the matrix W 2 , respectively; or
    [0116]receiving precoding matrix indicators PMI 1,i , 1≦i≦N B /2, and PMI 2 sent by the user equipment UE, where PMI 1,i , 1≦i≦N B /2 and PMI 2 are used to indicate a matrix X 2i-1 =X 2i =A 2i B 2i , 1≦i≦N B /2, and the matrix W 2 , respectively; and in this case, X 2i-1 =X 2i , and the matrices appear in pairs; or
    [0117]receiving precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 sent by the user equipment UE, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate a matrix A 2i-1 =A 2i , 1≦i≦N B /2, the matrix B 2i-1 =B 2i , 1≦i≦N B /2, and the matrix W 2 , respectively; and in this case, A 2i-1 =A 2i , B 2i-1 =B 2i , and the matrices appear in pairs.
    [0118]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE may be receiving, through a physical uplink control channel (Physical Uplink Control Channel, PUCCH) or a physical uplink shared channel (Physical Uplink Shared Channel, PUSCH), the precoding matrix indicator PMI sent by the user equipment UE.
    [0119]Further, the receiving a precoding matrix indicator PMI sent by the user equipment UE may be separately receiving, by the base station by using different subframes or according to different periods, the foregoing PMI 1 and PMI 2 ; or PMI 11 , PMI 12 , and PMI 2 ; or PMI 1,i , 1≦i≦N B and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2, and PMI 2 that are sent by the user equipment UE; or
    [0120]may also be receiving the foregoing PMI 1 and PMI 2 ; or PMI 11 , PMI 12 , and PMI 2 ; or PMI 1,i , 1≦i≦N B and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2, and PMI 2 that are sent for different subbands or subband sizes in a frequency domain by the user equipment UE.
    [0121]In this embodiment of the present invention, a base station eNB receives a precoding matrix indicator PMI sent by a user equipment UE, where the PMI indicates a precoding matrix. The precoding matrix has a structure of W=W 1 W 2 , where W 1 is a block diagonal matrix in which each block matrix on a diagonal line is X i =A i B i , and i=1, . . . , N B , where the matrix A i or the matrix B i effectively supports channel state information quantization in a horizontal direction or a vertical direction, respectively. This can fully use a degree of freedom of an active antenna system AAS in a horizontal direction and a vertical direction, thereby greatly improving channel state information feedback accuracy. In addition, multiple block matrices X i may separately correspond to antenna groups of different polarizations or at different locations, so that the foregoing precoding matrix matches multiple antenna deployments or configurations. The foregoing codebook structure greatly improves performance of MIMO, and especially that of MU-MIMO. Moreover, one or more PMIs are fed back based on a subset to indicate a precoding matrix, which fully uses time/frequency domain/spatial correlation of a channel, thereby greatly reducing feedback overheads.
    [0122]The following describes a system for determining a precoding matrix indicator, a user equipment UE, and a base station eNB in the present invention in detail.
    [0123]FIG. 3 is a schematic structural diagram of composition of an embodiment of a system for determining a precoding matrix indicator according to the present invention. The system according to this embodiment of the present invention includes a user equipment UE 11 and a base station eNB 12 . For a structure of the user equipment UE 11 , refer to FIG. 4 ; and for a schematic structural diagram of the base station eNB 12 , refer to FIG. 5 .
    [0124]FIG. 4 is a schematic diagram of a user equipment UE 11 for determining a precoding matrix indicator according to an embodiment of the present invention. As shown in the figure, the user equipment UE 11 ,includes: a receiving unit 111 , a selecting unit 112 , and a sending unit 113 .
    [0125]The receiving unit 111 is configured to receive a reference signal sent by a base station.
    [0126]Specifically, the reference signal sent by the base station may include a channel state information reference signal (channel state information Reference Signal, CSI RS), a demodulation reference signal (demodulation RS, DM RS), or a cell-specific reference signal (cell-specific RS, CRS). The user equipment UE may obtain a resource configuration of the reference signal by receiving a notification (for example, RRC (Radio Resource Control) signaling or downlink control information DCI) from an eNB or based on a cell identity ID, and obtain the reference signal from a corresponding resource or subframe.
    [0127]The selecting unit 112 is configured to select, based on the reference signal, a precoding matrix from a codebook, where a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 ; and the precoding matrix has the structure shown in formulas (1) to (4).
    [0128]Specifically, each column of the matrix A i or of the matrix B i may be a DFT vector or may be a column vector of a Hadamard matrix, as shown in formulas (5) to (11); or
    [0129]specifically, the matrix A i or the matrix B i may also be a precoding matrix in a 2-antenna codebook or a 4-antenna codebook of an LTE R8 system, or in an 8-antenna codebook of an LTE R10 system.
    [0130]Further, the matrix W 2 is used to select or weight and combine a column vector in the matrix W 1 , so as to form the matrix W.
    [0131]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may separately be those shown in formulas (12) to (23); or B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system.
    [0132]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may separately be those shown in formulas (24) to (30); or B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system.
    [0133]Specifically, the selecting, based on the reference signal, a precoding matrix from a codebook includes:
    [0134]obtaining, by the user equipment UE based on the reference signal, a channel estimate; and selecting, based on a predefined criterion such as a channel capacity or throughput maximization criterion, the precoding matrix from the codebook according to the channel estimate. Selecting, based on a predefined criterion, a precoding matrix is an existing technology, and details are not described herein.
    [0135]Further, the selecting, based on the reference signal, a precoding matrix from a codebook includes:
    [0136]selecting, based on the reference signal, the precoding matrix from a codebook subset, where
    [0137]the codebook subset may be a codebook subset that is predefined; or a codebook subset that is reported by the UE to the base station eNB, determined by the base station eNB based on the report from the UE, and notified to the UE; or a codebook subset that is determined and reported by the UE, for example, a latest reported codebook subset.
    [0138]Further, the codebook subset may include a subset of the matrix W 1 , the matrix A i , the matrix B i , or the matrix W 2 .
    [0139]The selecting, based on the codebook subset, the precoding matrix can further reduce feedback overheads and implementation complexity.
    [0140]Further, the codebook subsets have a same subset of the matrix W 1 , the matrix A i , the matrix B i , or the matrix W 2 . In this way, the codebook subsets overlap each other, which can overcome an edge effect of channel state information quantization.
    [0141]Further, in the precoding matrix, block matrices X i and X j , i≠j may be unequal, or may also be equal. If there are multiple cases that X i and X j , i≠j are equal, for example, X i and X j , i≠j that are equal may appear in pairs, the feedback overheads can be further reduced.
    [0142]In addition, the foregoing matrix A i or matrix B i may also use another form, which is not further elaborated herein.
    [0143]It should be noted that, each of the foregoing matrices may further be multiplied by a scale factor, so as to implement power normalization or power balancing.
    [0144]The sending unit 113 is configured to send a precoding matrix indicator PMI to the base station, where the PMI corresponds to the selected precoding matrix, so that the base station obtains the precoding matrix according to the PMI.
    [0145]Specifically, the precoding matrix is included in a precoding matrix set or a codebook; and the PMI is used to indicate the selected precoding matrix in the precoding matrix set or the codebook.
    [0146]Specifically, the sending a precoding matrix indicator PMI to the base station includes: sending the precoding matrix indicator PMI to the base station, where the PMI may include only one specific value. In this case, the PMI directly indicates the precoding matrix W. For example, if there are a total of 16 different precoding matrices, PMI=0, . . . , 15 may be used to respectively indicate precoding matrices W whose labels are 0, 1, . . . , 15.
    [0147]Specifically, the sending a precoding matrix indicator PMI to the base station may also include: sending precoding matrix indicators PMI 1 and PMI 2 to the base station, where PMI 1 and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B in formula (2) and the matrix W 2 , respectively; and in this case, the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 are respectively indicated by PMI 1 and PMI 2 in the codebook; or
    [0148]sending precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 to the base station, where PMI 11 , PMI 12 , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 respectively; and in this case, the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B and the matrix W 2 are respectively indicated by PMI 11 , PMI 12 , and PMI 2 in the codebook.
    [0149]Specifically, the sending a precoding matrix indicator PMI to the base station may also include: sending precoding matrix indicators PMI 1,i , 1≦i≦N B /2 and PMI 2 to the base station, where 1≦i≦N B /2 and PMI 2 are used to indicate a matrix X 2i-1 =X 2i =A 2i B 2i , 1≦i≦N B /2 and the matrix W 2 , respectively; and in this case, X 2i-1 =X 2i , and the matrices appear in pairs; or
    [0150]sending precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 to the base station, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate a matrix A 2i-1 =A 2i , 1≦i≦N B /2, the matrix B 2i-1 =B 2i , 1≦i≦N B /2, and the matrix W 2 , respectively; and in this case, A 2i-1 =A 2i , B 2i-1 =B 2i , and the matrices appear in pairs.
    [0151]Further, the precoding matrix indicators PMI 1 and PMI 2 , or the precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 have different time domain granularities or frequency domain granularities, for example, PMI 1 and PMI 2 , or PMI 11 , PMI 12 , and PMI 2 separately indicate different periods or bandwidth channel features, or are obtained based on different subframe periods or subband sizes.
    [0152]Alternatively, further, the precoding matrix indicators PMI 11 and PMI 12 are sent to the base station according to different time periods.
    [0153]Specifically, the sending a precoding matrix indicator PMI to the base station may also include: sending precoding matrix indicators PMI 1,i , 1≦i≦N B and PMI 2 to the base station, where PMI 1,i , 1≦i≦N B and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 , respectively; or
    [0154]sending precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 to the base station, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 , respectively.
    [0155]Specifically, the sending a precoding matrix indicator PMI to the base station may be sending, by the UE, the precoding matrix indicator PMI to the base station through a physical uplink control channel (Physical Uplink Control Channel, PUCCH) or a physical uplink shared channel (Physical Uplink Shared Channel, PUSCH).
    [0156]Further, the sending a precoding matrix indicator PMI to the base station may be separately sending, by the UE by using different subframes or according to different periods, the foregoing PMI 1 and PMI 2 ; or PMI 11 , PMI 12i and PMI 2 ; or PMI 1,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 1,i , 1≦i≦N B /2, and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2 and PMI 2 to the base station.
    [0157]Further, the sending a precoding matrix indicator PMI to the base station may also be separately sending, by the UE for different subbands or subband sizes in a frequency domain, the foregoing PMI 1 and PMI 2 ; or PMI 11 , PMI 12 , and PMI 2 ; or PMI 1,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 1,i , 1≦i≦N B /2, and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2 and PMI 2 to the base station.
    [0158]In this embodiment of the present invention, a user equipment determines and sends a precoding matrix indicator PMI, where the PMI indicates a precoding matrix. The precoding matrix has a structure of W=W 1 W 2 , where W 1 is a block diagonal matrix in which each block matrix on a diagonal line is X i =A i B i , and i=1, . . . , N B , where the matrix A i or the matrix B i effectively supports channel state information quantization in a horizontal direction or a vertical direction, respectively. This can fully use a degree of freedom of an active antenna system AAS in a horizontal direction and a vertical direction, thereby greatly improving channel state information feedback accuracy. In addition, multiple block matrices X i may separately correspond to antenna groups of different polarizations or at different locations, so that the foregoing precoding matrix matches multiple antenna deployments or configurations. The foregoing codebook structure greatly improves performance of MIMO, and especially that of MU-MIMO. Moreover, one or more PMIs are fed back based on a subset to indicate a precoding matrix, which fully uses time/frequency domain/spatial correlation of a channel, thereby greatly reducing feedback overheads.
    [0159]FIG. 5 is a base station eNB 12 for determining a precoding matrix indicator according to an embodiment of the present invention. As shown in the figure, the base station eNB 12 includes: a sending unit 121 and a receiving unit 122 .
    [0160]The sending unit 121 is configured to send a reference signal to a user equipment UE.
    [0161]Specifically, the reference signal may include a channel state information reference signal (channel state information Reference Signal, CSI RS), a demodulation reference signal (demodulation RS, DM RS), or a cell-specific reference signal (cell-specific RS, CRS). A base station eNB may notify the user equipment UE of a resource configuration of the reference signal by using RRC (Radio Resource Control) signaling or downlink control information (DCI), and instruct the UE to obtain the reference signal from a corresponding resource or subframe. The user equipment UE may also implicitly obtain, based on other information such as a cell identity ID, the resource configuration of the reference signal, and obtain the reference signal from the corresponding resource or subframe.
    [0162]The receiving unit 122 is configured to receive a precoding matrix indicator PMI sent by the user equipment UE, where the PMI corresponds to a precoding matrix selected, based on the reference signal, from a codebook by the user equipment; and a precoding matrix W included in the codebook is a product of two matrices W 1 and W 2 , and the precoding matrix W has the structure shown in formulas (1) to (4).
    [0163]Specifically, each column of the matrix A i or of the matrix B i may be a DFT vector or may be a column vector of a Hadamard matrix, as shown in formulas (5) to (11); or
    [0164]specifically, the matrix A i or the matrix B i may also be a precoding matrix in a 2-antenna codebook or a 4-antenna codebook of an LTE R8 system, or in an 8-antenna codebook of an LTE R10 system.
    [0165]Further, the matrix W 2 is used to select or weight and combine a column vector in the matrix W 1 , so as to form the matrix W.
    [0166]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may separately be those shown in formulas (12) to (23); or B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system.
    [0167]In an example in which the number of block matrices is N B =2 and there are 32 transmit antennas, matrices that form the precoding matrix W may separately be those shown in formulas (24) to (30); or B i is a precoding matrix in a 4-antenna rank-4 codebook of an LTE R8 system.
    [0168]Specifically, the precoding matrix selected, based on the reference signal, from a codebook includes: the precoding matrix selected, based on the reference signal, from a codebook subset, where
    [0169]the codebook subset may be a codebook subset that is predefined; or a codebook subset that is reported by the UE to the base station eNB, determined by the base station eNB based on the report from the UE, and notified to the UE; or a codebook subset that is determined and reported by the UE, for example, a latest reported codebook subset.
    [0170]Further, the codebook subset may include a subset of the matrix W 1 , the matrix A i , the matrix B i , or the matrix W 2 .
    [0171]Further, the codebook subsets have a same subset of the matrix W 1 , the matrix A i , the matrix B i , or the matrix W 2 . In this way, the codebook subsets overlap each other, which can overcome an edge effect of channel state information quantization.
    [0172]Further, in the precoding matrix, block matrices X j and X j , i≠j may be unequal, or may also be equal. If there are multiple cases that X i and X j , i≠j are equal, for example, X i and X j , i≠j that are equal may appear in pairs, feedback overheads can be further reduced.
    [0173]In addition, the foregoing matrix A i or matrix B i may also use another form, which is not further elaborated herein.
    [0174]It should be noted that, each of the foregoing matrices may further be multiplied by a scale factor, so as to implement power normalization or power balancing.
    [0175]Specifically, the precoding matrix is included in a precoding matrix set or a codebook; and the PMI is used to indicate the selected precoding matrix in the precoding matrix set or the codebook.
    [0176]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE includes: receiving the precoding matrix indicator PMI sent by the user equipment UE, where the PMI may include only one specific value. In this case, the PMI directly indicates the precoding matrix W. For example, if there are a total of 16 different precoding matrices, PMI=0, . . . , 15 may be used to respectively indicate precoding matrices W whose labels are 0, 1, . . . , 15.
    [0177]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE may also include: receiving precoding matrix indicators PMI 1 and PMI 2 sent by the user equipment UE, where PMI 1 and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B in formula (2) and the matrix W 2 , respectively; and in this case, the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 are respectively indicated by PMI 1 and PMI 2 in the codebook; or
    [0178]receiving precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 sent by the user equipment UE, where PMI 11 , PMI 12 , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 , respectively; and in this case, the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B , and the matrix W 2 are respectively indicated by PMI 11 , PMI 12 , and PMI 2 in the codebook.
    [0179]Further, the precoding matrix indicators PMI 1 and PMI 2 , or the precoding matrix indicators PMI 11 , PMI 12 , and PMI 2 have different time domain granularities or frequency domain granularities, for example, PMI 1 and PMI 2 , or PMI 11 , PMI 12 , and PMI 2 separately indicate different periods or bandwidth channel features, or are obtained based on different subframe periods or subband sizes.
    [0180]Alternatively, further, the precoding matrix indicators PMI 11 and PMI 12 are sent to the base station according to different time periods.
    [0181]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE may also include: receiving precoding matrix indicators PMI 1,i , 1≦i≦N B and PMI 2 sent by the user equipment UE, where PMI 1,i , 1≦i≦N B and PMI 2 are used to indicate the matrix X i =A i B i , 1≦i≦N B and the matrix W 2 , respectively; or
    [0182]receiving precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 sent by the user equipment UE, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate the matrix A i , 1≦i≦N B , the matrix B i , 1≦i≦N B and the matrix W 2 , respectively; or
    [0183]receiving precoding matrix indicators PMI 1,i , 1≦i≦N B /2, and PMI 2 sent by the user equipment UE, where PMI 1,i , 1≦i≦N B /2 and PMI 2 are used to indicate a matrix X 2i-1 =X 2i =A 2i B 2i , 1≦i≦N B /2, and the matrix W 2 , respectively; and in this case, X 2i-1 =X 2i , and the matrices appear in pairs; or
    [0184]receiving precoding matrix indicators PMI 11,i , PMI 12,i , and PMI 2 sent by the user equipment UE, where PMI 11,i , PMI 12,i , and PMI 2 are used to indicate a matrix A 2i-1 =A 2i , 1≦i≦N B /2, the matrix B 2i-1 =B 2i , 1≦i≦N B /2, and the matrix W 2 , respectively; and in this case, A 2i-1 =A 2i , B 2i-1 =B 2i , and the matrices appear in pairs.
    [0185]Specifically, the receiving a precoding matrix indicator PMI sent by the user equipment UE may be receiving, through a physical uplink control channel (Physical Uplink Control Channel, PUCCH) or a physical uplink shared channel (Physical Uplink Shared Channel, PUSCH), the precoding matrix indicator PMI sent by the user equipment UE.
    [0186]Further, the receiving a precoding matrix indicator PMI sent by the user equipment UE may be separately receiving, by the base station by using different subframes or according to different periods, the foregoing precoding matrix indicators sent by the user equipment UE, which are PMI 1 and PMI 2 ; or PMI 11 , PMI 12 , and PMI 2 ; or PMI 1,i , 1≦i≦N B and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2, and PMI 2 ; or
    [0187]may also be receiving the foregoing PMI 1 and PMI 2 ; or PMI 11 , PMI 12 , and PMI 2 ; or PMI 1,i , 1≦i≦N B and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B , and PMI 2 ; or PMI 11,i , PMI 12,i , 1≦i≦N B /2, and PMI 2 that are sent for different subbands or subband sizes in a frequency domain by the user equipment UE.
    [0188]In this embodiment of the present invention, the base station eNB receives a precoding matrix indicator PMI sent by the user equipment UE, where the PMI indicates a precoding matrix. The precoding matrix has a structure of W=W 1 W 2 , where W 1 is a block diagonal matrix in which each block matrix on a diagonal line is X i =A i B i , and i=1, . . . , N B , where the matrix A i or the matrix B i effectively supports channel state information quantization in a horizontal direction or a vertical direction, respectively. This can fully use a degree of freedom of an active antenna system AAS in a horizontal direction and a vertical direction, thereby greatly improving CSI feedback accuracy. In addition, multiple block matrices X i may separately correspond to antenna groups of different polarizations or at different locations, so that the foregoing precoding matrix matches multiple antenna deployments or configurations. The foregoing codebook structure greatly improves performance of MIMO, and especially that of MU-MIMO. Moreover, one or more PMIS are fed back based on a subset to indicate a precoding matrix, which fully uses time/frequency domain/spatial correlation of a channel, thereby greatly reducing feedback overheads.
    [0189]A person skilled in the art may be further aware that, in combination with the examples described in the embodiments disclosed in this specification, units and algorithm steps may be implemented by electronic hardware, computer software, or a combination thereof. To clearly describe the interchangeability between the hardware and the software, the foregoing has generally described structures and steps of each example according to functions. Whether the functions are performed by hardware or software depends on particular applications and design constraint conditions of the technical solutions. A person skilled in the art may use different methods to implement the described functions for each particular application, but it should not be considered that the implementation goes beyond the scope of the present invention.
    [0190]In combination with the embodiments disclosed in this specification, method or algorithm steps may be implemented by hardware, a software module executed by a processor, or a combination thereof. The software module may reside in a random access memory (RAM), memory, a read-only memory (ROM), an electrically programmable ROM, an electrically erasable programmable ROM, a register, a hard disk, a removable disk, a CD-ROM, or any other form of storage medium known in the art.
    [0191]The foregoing specific embodiments further describe the objectives, technical solutions, and beneficial effects of the present invention in detail. It should be understood that the foregoing descriptions are merely specific embodiments of the present invention, but are not intended to limit the protection scope of the present invention. Any modification, equivalent replacement, or improvement made without departing from the spirit and principle of the present invention should fall within the protection scope of the present invention.
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