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Deep Learning Aided Low Complex Breadth-First Tree Search for MIMO Detection

delete2024-06-01
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PRE
AI
J
Junhui Zhao *
F
Feifei Gao
G
Geoffrey Ye Li
DOI:10.1109/TWC.2023.3330816delete
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摘要

摘要

En 中文
In this paper, we propose a deep learning based breadth-first sphere decoding (SD) scheme to reduce the detection complexity for multiple-input multiple-output (MIMO) communication systems. Specifically, we first design the DenseNet-based deep neural network (DN-DNN) to provide the pruning threshold for SD at each layer. Then, we develop modified number-based SD (MNSD) to reduce the complexity of SD by constraining the number of visited nodes at each layer with the output of DN-DNN. We use a distance-based SD (DSD) to further reduce the complexity of MNSD by constraining the accumulated distance at each layer with the output of DN-DNN. Compared with the traditional M-best SD with $M=16$ , the proposed MNSD achieves similar performance but reduces about 25% complexity for QPSK modulation; the proposed DSD has better performance with up to 75% complexity reduction at the high SNR region for 16QAM.
Keyword:
Complexity theory
MIMO communication
Detectors
Artificial neural networks
Modulation
Wireless communication
Deep learning
MIMO detection
deep learning
sphere decoding
deep neural network

期刊

IEEE Transactions on Wireless Communications 封面图
IEEE Transactions on Wireless Communications
IF:
10.7
论文数:
1.3W
被引数:
5.3W

机构

T
tsinghua university
学者数:
11.9W
论文数: 10.0W
被引数: 137
B
Beijing Jiaotong University
学者数:
2.2W
论文数: 1.7W
被引数: 1.2W
I
Imperial College London
学者数:
8.3W
论文数: 7.3W
被引数: 11.1W
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