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Papers

Machine Learning-Based Estimation Of Wave Direction For Unmanned Surface Vehicles

2024-12-17 · Manele Ait Habouche, Mickaël Kerboeuf, Goulven Guillou, Jean-Philippe Babau

Unmanned Surface Vehicles (USVs) have become critical tools for marine exploration, environmental monitoring, and autonomous navigation. Accurate estimation of wave direction is essential for improving USV navigation and ensuring operational safety, but traditional methods often suffer from high costs and limited spatial resolution. This paper proposes a machine learning-based approach leveraging LSTM (Long Short-Term Memory) networks to predict wave direction using sensor data collected from USVs. Experimental results show the capability of the LSTM model to learn temporal dependencies and provide accurate predictions, outperforming simpler baselines.

📄 PDF Abstract BibTeX arXiv:2412.16205

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Tasks

Autonomous Navigation

Methods 이 논문이 사용한 방법론

Tanh Activation 설명 없음
Sigmoid Activation 설명 없음
LSTM An LSTM is a type of recurrent neural network that addresses the vanishing gradient problem in vanilla…

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