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Robust Semantic Communications With Masked VQ-VAE Enabled Codebook

delete2023-12-01
delete39
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OA
AI
Q
Qiyu Hu
G
Guangyi Zhang
Z
Zhijin Qin
蔡云龙 (Yunlong Cai) *
G
Guanding Yu
G
Geoffrey Ye Li
DOI:10.1109/TWC.2023.3265201delete
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Abstract

Abstract

En 中文
Although semantic communications have exhibited satisfactory performance on a large number of tasks, the impact of semantic noise and the robustness of the systems have not been well investigated. Semantic noise refers to the misleading between the intended semantic symbols and received ones, thus causes the failure of tasks. In this paper, we first propose a framework for the robust end-to-end semantic communication systems to combat the semantic noise. In particular, we analyze sample-dependent and sample-independent semantic noise. To combat the semantic noise, the adversarial training with weight perturbation is developed to incorporate the samples with semantic noise in the training dataset. Then, we propose to mask a portion of the input, where the semantic noise appears frequently, and design the masked vector quantized-variational autoencoder (VQ-VAE) with the noise-related masking strategy. We use a discrete codebook shared by the transmitter and the receiver for encoded feature representation. To further improve the system robustness, we develop a feature importance module (FIM) to suppress the noise-related and task-unrelated features. Thus, the transmitter simply needs to transmit the indices of these important task-related features in the codebook. Simulation results show that the proposed method can be applied in many downstream tasks and significantly improve the robustness against semantic noise with remarkable reduction on the transmission overhead.
Keywords:
Adversarial training
feature importance module (FIM)
masked vector quantized-variational autoencoder (VQ-VAE)
robust semantic communications
semantic noise

Journal

IEEE Transactions on Wireless Communications cover
IEEE Transactions on Wireless Communications
IF:
10.7
Papers:
1.3W
Citations:
5.3W

Organization

I
Imperial College London
Scholars:
8.3W
Papers: 7.3W
Citations: 11.1W
Z
zhejiang university
Scholars:
17.4W
Papers: 12.0W
Citations: 152