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Deep Learning-Based Limited Feedback Designs for MIMO Systems
- Jang, Jeonghyeon;
- Lee, Hoon;
- Hwang, Sangwon;
- Ren, Haibao;
- Lee, Inkyu
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41초록
We study a deep learning (DL) based limited feedback methods for multi-antenna systems. Deep neural networks (DNNs) are introduced to replace an end-to-end limited feedback procedure including pilot-aided channel training process, channel codebook design, and beamforming vector selection. The DNNs are trained to yield binary feedback information as well as an efficient beamforming vector which maximizes the effective channel gain. Compared to conventional limited feedback schemes, the proposed DL method shows an 1 dB symbol error rate (SER) gain with reduced computational complexity.
키워드
MIMO; deep learning; limited feedback
- 제목
- Deep Learning-Based Limited Feedback Designs for MIMO Systems
- 저자
- Jang, Jeonghyeon; Lee, Hoon; Hwang, Sangwon; Ren, Haibao; Lee, Inkyu
- 발행일
- 2020-04
- 유형
- Article
- 권
- 9
- 호
- 4
- 페이지
- 558 ~ 561