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September 17, 2025Journal of Marine Science and Engineering6 citationsOpen Access

Simulation of Non-Stationary Mobile Underwater Acoustic Communication Channels Based on a Multi-Scale Time-Varying Multipath Model

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HYHonglu YanSLSongzuo LiuCPChenyu Pan

Key Points

  • The proposed model enhances accuracy in characterizing non-stationary underwater acoustic communication channels, outperforming traditional models.
  • Results indicate improved statistical distribution matching and communication performance testing in mobile scenarios over previous assumptions.
  • The multi-scale model integrates large-scale, medium-scale, and small-scale components, enabling robust simulations of acoustic environments.
  • Experimental validation confirms that the proposed framework effectively represents rapid variations and complex multipath characteristics.

Abstract

Traditional Underwater Acoustic Communication (UAC) typically assumes static or slowly varying channels over short observation periods and models multipath amplitude fluctuations with single-state statistical distributions. However, field measurements in shallow-water high-speed mobile scenarios reveal that the combined effects of rapid platform motion and dynamic environments induce multi-scale time-varying amplitude characteristics. These include distance-dependent attenuation, fluctuations in average energy, and rapid random variations. This observation directly challenges traditional single-state models and wide-sense stationary assumptions. To address this, we propose a multi-scale time-varying multipath amplitude model. Using singular spectrum analysis, we decompose amplitude sequences into hierarchical components: large-scale components modeled via acoustic propagation physics; medium-scale components characterized by Hidden Markov Models; and small-scale components described by zero-mean Gaussian distributions. Building on this model, we further develop a time-varying impulse response simulation framework validated with experimental data. The results demonstrate superior performance over conventional single-state distribution and autoregressive models in statistical distribution matching, temporal dynamics representation, and communication performance testing. The model effectively characterizes non-stationary time-varying channels, supporting high-precision modeling and simulation for mobile UAC systems.

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Cite This Study

Yan et al. (2025) studied this question.

synapsesocial.com/papers/68d4604031b076d99fa5f4bchttps://doi.org/10.3390/jmse13091765
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