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Constellation Design for Deep Joint Source-Channel Coding

delete2022-01-01
delete10
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OA
AI
M
Mengyang Wang
J
Jiahui Li
M
Mengyao Ma
范
范晓鹏 (Xiaopeng Fan) *
DOI:10.1109/LSP.2022.3184251delete
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Abstract

Abstract

En 中文
Deep learning-based joint source-channel coding (JSCC) has shown excellent performance in image and feature transmission. However, the output values of the JSCC encoder are continuous, which makes the constellation of modulation complex and dense. It is hard and expensive to design radio frequency chains for transmitting such full-resolution constellation points. In this paper, two methods of mapping the full-resolution constellation to finite constellation are proposed for real system implementation. The constellation mapping results of the proposed methods correspond to regular constellation and irregular constellation, respectively. We apply the methods to existing deep JSCC models and evaluate them on AWGN channels with different signal-to-noise ratios (SNRs). Experimental results show that the proposed methods outperform the traditional uniform quadrature amplitude modulation (QAM) constellation mapping method by only adding a few additional parameters.
Keywords:
Quadrature amplitude modulation
Quantization (signal)
Channel coding
Receivers
Computational modeling
Clustering algorithms
Backpropagation
Constellation design
constellation mapping methods
deep joint source-channel coding

Journal

IEEE Signal Processing Magazine cover
IEEE Signal Processing Magazine
IF:
9.6
Papers:
1.1W
Citations:
1.7W

Organization

H
harbin institute of technology
Scholars:
8.0W
Papers: 6.6W
Citations: 66
H
huawei technologies
Scholars:
3.3K
Papers: 2.9K
Citations: 1
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