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One-to-Many Semantic Communication Systems: Design, Implementation, Performance Evaluation (2209.09425v1)

Published 20 Sep 2022 in cs.LG and cs.CL

Abstract: Semantic communication in the 6G era has been deemed a promising communication paradigm to break through the bottleneck of traditional communications. However, its applications for the multi-user scenario, especially the broadcasting case, remain under-explored. To effectively exploit the benefits enabled by semantic communication, in this paper, we propose a one-to-many semantic communication system. Specifically, we propose a deep neural network (DNN) enabled semantic communication system called MR_DeepSC. By leveraging semantic features for different users, a semantic recognizer based on the pre-trained model, i.e., DistilBERT, is built to distinguish different users. Furthermore, the transfer learning is adopted to speed up the training of new receiver networks. Simulation results demonstrate that the proposed MR_DeepSC can achieve the best performance in terms of BLEU score than the other benchmarks under different channel conditions, especially in the low signal-to-noise ratio (SNR) regime.

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Authors (6)
  1. Han Hu (196 papers)
  2. Xingwu Zhu (1 paper)
  3. Fuhui Zhou (72 papers)
  4. Wei Wu (482 papers)
  5. Rose Qingyang Hu (61 papers)
  6. Hongbo Zhu (36 papers)
Citations (37)

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