A multi-user precoding method and device based on packet beam
A multi-user, pre-coding technology, applied in digital transmission systems, error prevention, electrical components, etc., can solve the problems of complex multi-user pre-coding algorithms, uncomplicated multi-user pre-coding, etc., and achieve the effect of performance improvement
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Embodiment 1
[0040] The embodiment of the present invention is applied in a multi-user MIMO (Multiple-Input Multiple-Out-put) system. The base station in the cell is configured with M transmitting antennas. The number of users in the cell is more than two, and the configurations are the same time-frequency resources. For multiple users in a single cell, the multi-user precoding method based on packet beams includes:
[0041] Step 1. Construct the packet beam matrix W s ; the matrix W s The number of rows is the number of transmitting antennas M, and the number of columns is the number of selected non-overlapping beams; the matrix W s The column vector of represents the weight vector of beam i formed by each M antenna.
[0042] In the embodiment of the present invention, four non-overlapping beams are selected as an example for illustration, and the matrix Ws Expressed as follows:
[0043] Among them, the first column corresponds to beam 1, the second column corresponds to beam 2, the...
Embodiment 2
[0057] The embodiment of the present invention is a specific example based on the implementation described in Embodiment 1. In this embodiment, the number of base station transmit antennas in the cell is M=4, the eNB transmit layer of the base station is 2 layers, and the number of users is 2 , the reception of each user is 1 layer, the beams are divided into 2 groups, one group includes two beams, and the beams in the group are orthogonal, such as figure 2 As shown, the implementation steps are as follows:
[0058] Step 1. Construct the packet beam matrix W s ,
[0059] Packet beam matrix W s The columns of represent the weight vectors for beam formation, that is, the first column corresponds to beam 1, the second column corresponds to beam 2, the third column corresponds to beam 3, and the fourth column corresponds to beam 4, and the beams do not overlap each other;
[0060] Step 2. Divide beam 1 and beam 3 into a first beam group, and beam 1 and beam 3 are orthogonal;...
Embodiment 3
[0069] The embodiment of the present invention is still a specific example based on the implementation described in Embodiment 1. In this embodiment, the number of base station transmit antennas in the cell is M=4, the eNB transmit layer is 4 layers, and the number of users is 2 , the reception of each user is 2 layers, and the beams are 1 group. A group includes two beams, and the beams in the group are orthogonal. The specific implementation steps are as follows:
[0070] Step 1. Construct the packet beam matrix W s ,
[0071] Packet beam matrix W s The columns of are the weight vectors for beamforming. In the embodiment of the present invention, a beam is composed of 2 layers, that is, the first and second columns correspond to beam 1, the third and fourth columns correspond to beam 3, and there is no repeated coverage between the beams;
[0072] Step 2. Divide the beam 1 and the beam 3 into a beam group, and the beam 1 and the beam 3 are orthogonal.
[0073] Step 3: ...
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Abstract
Description
Claims
Application Information
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