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A Stratified Acoustic Model Accounting for Phase Shifts for Underwater Acoustic Networks

机译:水下声学网络相移的分层声学模型

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摘要

Accurate acoustic channel models are critical for the study of underwater acoustic networks. Existing models include physics-based models and empirical approximation models. The former enjoy good accuracy, but incur heavy computational load, rendering them impractical in large networks. On the other hand, the latter are computationally inexpensive but inaccurate since they do not account for the complex effects of boundary reflection losses, the multi-path phenomenon and ray bending in the stratified ocean medium. In this paper, we propose a Stratified Acoustic Model (SAM) based on frequency-independent geometrical ray tracing, accounting for each ray's phase shift during the propagation. It is a feasible channel model for large scale underwater acoustic network simulation, allowing us to predict the transmission loss with much lower computational complexity than the traditional physics-based models. The accuracy of the model is validated via comparisons with the experimental measurements in two different oceans. Satisfactory agreements with the measurements and with other computationally intensive classical physics-based models are demonstrated.
机译:准确的声通道模型对于研究水下声网络至关重要。现有模型包括基于物理的模型和经验近似模型。前者具有良好的准确性,但会带来沉重的计算负担,使其在大型网络中不切实际。另一方面,后者在计算上不昂贵,但不准确,因为它们没有考虑到分层海洋介质中边界反射损耗,多径现象和射线弯曲的复杂影响。在本文中,我们提出了一种基于频率独立的几何射线跟踪的分层声学模型(SAM),该模型考虑了传播过程中每条射线的相移。它是用于大规模水下声网络仿真的可行通道模型,使我们能够以比传统的基于物理的模型低得多的计算复杂度来预测传输损耗。通过与两个不同海洋中的实验测量值进行比较,验证了模型的准确性。证明了与测量结果以及与其他计算密集型基于古典物理学的模型具有令人满意的一致性。

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