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Towards Intelligent Communications: Large Model Empowered Semantic Communications

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arxiv 2402.13073 v2 pith:ZNM4AOGL submitted 2024-02-20 eess.SP

classification eess.SP
keywords semanticcommunicationlargecommunicationspotentialapplicationsarchitecturedesign
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Deep learning enabled semantic communications have shown great potential to significantly improve transmission efficiency and alleviate spectrum scarcity, by effectively exchanging the semantics behind the data. Recently, the emergence of large models, boasting billions of parameters, has unveiled remarkable human-like intelligence, offering a promising avenue for advancing semantic communication by enhancing semantic understanding and contextual understanding. This article systematically investigates the large model-empowered semantic communication systems from potential applications to system design. First, we propose a new semantic communication architecture that seamlessly integrates large models into semantic communication through the introduction of a memory module. Then, the typical applications are illustrated to show the benefits of the new architecture. Besides, we discuss the key designs in implementing the new semantic communication systems from module design to system training. Finally, the potential research directions are identified to boost the large model-empowered semantic communications.

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  1. AI-Empowered Channel Generation for IoV Semantic Communications in Dynamic Conditions

    cs.NI 2025-07 conditional novelty 4.0 of 10

    An IoV semantic communication system with diffusion-based channel estimation and GPT-2-based fine-tuning improves image reconstruction across changing wireless scenes.

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