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Context-Aware Semantic Communication for the Wireless Networks (2505.23249v1)

Published 29 May 2025 in cs.NI and eess.SP

Abstract: In next-generation wireless networks, supporting real-time applications such as augmented reality, autonomous driving, and immersive Metaverse services demands stringent constraints on bandwidth, latency, and reliability. Existing semantic communication (SemCom) approaches typically rely on static models, overlooking dynamic conditions and contextual cues vital for efficient transmission. To address these challenges, we propose CaSemCom, a context-aware SemCom framework that leverages a LLM-based gating mechanism and a Mixture of Experts (MoE) architecture to adaptively select and encode only high-impact semantic features across multiple data modalities. Our multimodal, multi-user case study demonstrates that CaSemCom significantly improves reconstructed image fidelity while reducing bandwidth usage, outperforming single-agent deep reinforcement learning (DRL) methods and traditional baselines in convergence speed, semantic accuracy, and retransmission overhead.

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Authors (8)
  1. Guangyuan Liu (17 papers)
  2. Yinqiu Liu (28 papers)
  3. Jiacheng Wang (132 papers)
  4. Hongyang Du (154 papers)
  5. Dusit Niyato (671 papers)
  6. Jiawen Kang (204 papers)
  7. Zehui Xiong (177 papers)
  8. Abbas Jamalipour (68 papers)

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