Shunpu Tang, Qianqian Yang
Downlink channel state information (CSI) feedback is essential for frequency-division duplex massive MIMO, yet the feedback overhead grows rapidly with the numbers of antennas and subcarriers. To reduce this overhead, most deep learning approaches compress CSI by treating it as a generic image, leaving its low-rank multipath structure unexploited. In contrast, model-driven alternatives explicitly embed this structure in iterative recovery, but at the cost of high computational complexity and latency. To overcome these limitations, we propose a low-rank prior-guided (LRP) framework that performs learnable rank-one sensing at the user equipment to compress CSI into low-dimensional codewords, and reconstructs CSI by direct rank-one synthesis at the base station. Both compression and reconstruction are jointly optimized, and fully exploit the low-rank structure of CSI. We further develop DCRNetV2, which preserves LRP as its backbone and uses gated dilated-convolutional residual paths to compensate for finite-rank errors. Experimental results show that LRP outperforms iterative model-based methods with lower complexity, and DCRNetV2 achieves a better accuracy-complexity tradeoff than existing learning-based methods.
@article{a4b68d8e-e57a-4cd0-b1e8-24fbeaf00f69,
title={LOW-RANK PRIOR-GUIDED RANK-ONE SENSING FOR EFFICIENT CSI FEEDBACK},
author={Shunpu Tang and Qianqian Yang},
year={2022},
language={en}
}TY - JOUR TI - LOW-RANK PRIOR-GUIDED RANK-ONE SENSING FOR EFFICIENT CSI FEEDBACK AU - Shunpu Tang AU - Qianqian Yang PY - 2022 LA - en ER -
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