Adversarial Attack on DL-based Massive MIMO CSI Feedback

February 23, 2020 Β· Declared Dead Β· πŸ› Journal of Communications and Networks

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Authors Qing Liu, Jiajia Guo, Chao-Kai Wen, Shi Jin arXiv ID 2002.09896 Category cs.IT: Information Theory Cross-listed eess.SP Citations 40 Venue Journal of Communications and Networks Last Checked 6 months ago
Abstract
With the increasing application of deep learning (DL) algorithms in wireless communications, the physical layer faces new challenges caused by adversarial attack. Such attack has significantly affected the neural network in computer vision. We chose DL-based analog channel state information (CSI) to show the effect of adversarial attack on DL-based communication system. We present a practical method to craft white-box adversarial attack on DL-based CSI feedback process. Our simulation results showed the destructive effect adversarial attack caused on DL-based CSI feedback by analyzing the performance of normalized mean square error. We also launched a jamming attack for comparison and found that the jamming attack could be prevented with certain precautions. As DL algorithm becomes the trend in developing wireless communication, this work raises concerns regarding the security in the use of DL-based algorithms.
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