Semantic Communication in Underwater IoT Networks for Meaning-Driven Connectivity
Ruhul Amin Khalil, Asiya Jehangir, Hanane Lamaazi, Sadaf Rubab, Nasir Saeed

TL;DR
This paper surveys recent advances in semantic communication for underwater IoT networks, emphasizing AI-powered frameworks and architectures that improve efficiency and robustness in challenging underwater environments.
Contribution
It introduces a comprehensive overview of semantic communication techniques and AI frameworks tailored for underwater IoT, highlighting new approaches and future research directions.
Findings
AI-powered semantic frameworks enhance underwater communication efficiency
Hybrid architectures enable sustainable and adaptive underwater operations
Semantic approaches improve robustness over noisy channels
Abstract
The Internet of Underwater Things (IoUT) is revolutionizing marine sensing and environmental monitoring, as well as subaquatic exploration, which are enabled by interconnected and intelligent subsystems. Nevertheless, underwater communication is constrained by narrow bandwidth, high latency, and strict energy constraints, which are the source of efficiency problems in traditional data-centric networks. To tackle these problematic issues, this work provides a survey of recent advances in Semantic Communication (SC) for IoUT, a novel communication paradigm that seeks to harness not raw symbol information but rather its meaning and/or contextual significance. In this paper, we investigate the emerging advanced AI-powered frameworks, including large language models (LLMs), diffusion-based generative encoders, and federated learning (FL), that bridge semantic compression with context-aware…
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Taxonomy
TopicsUnderwater Vehicles and Communication Systems · Underwater Acoustics Research · Wireless Signal Modulation Classification
