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Robust Semantic Communications for Speech Transmission

Robust Semantic Communications for Speech Transmission

来源:Arxiv_logoArxiv
英文摘要

In this paper, we propose a robust semantic communication system for speech transmission, named Ross-S2T, by delivering the essential semantic information. Specifically, we consider the speech-to-text translation (S2TT) as the transmission goal. First, a new deep semantic encoder is developed to convert speech in the source language to textual features associated with the target language, facilitating the end-to-end semantic exchange to perform the S2TT task and reducing the transmission data without performance degradation. To mitigate semantic impairments inherent in the corrupted speech, a novel generative adversarial network (GAN)-enabled deep semantic compensator is established to estimate the lost semantic information within the speech and extract deep semantic features simultaneously, which enables robust semantic transmission for corrupted speech. Furthermore, a semantic probe-aided compensator is devised to enhance the semantic fidelity of recovered semantic features and improve the understandability of the target text. According to simulation results, the proposed Ross-S2T exhibits superior S2TT performance compared to conventional approaches and high robustness against semantic impairments.

Zhenzi Weng、Zhijin Qin、Geoffrey Ye Li

通信

Zhenzi Weng,Zhijin Qin,Geoffrey Ye Li.Robust Semantic Communications for Speech Transmission[EB/OL].(2025-07-04)[2025-07-16].https://arxiv.org/abs/2403.05187.点此复制

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