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Sea State Estimation Using Quadratic Discriminant Analysis and Partial Least Squares Regression

机译:使用二次判别分析和偏最小二乘回归的海水估计

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This paper proposes non-model based sea state estimation methods for a dynamically positioned vessel. Sea state estimation entails finding the wave direction, significant wave height and peak wave period and is done based on sensor data of the vessel response. Sea state estimation is of importance because it assists the on board decision system and provides weather information for the relevant geographical position. In this paper, the methods for sea state estimation are based on machine learning algorithms, rather than the vessel transfer function. The models are trained and tested using simulated time series of response data, and yield promising results.
机译:本文提出了一种动态定位船舶的非模型的海水位估计方法。 SEA状态估计需要找到波方向,显着的波浪高度和峰值波段,并且基于血管响应的传感器数据完成。 海州估计是重要的,因为它有助于船上决策系统,并为相关地理位置提供天气信息。 在本文中,海拔估计方法基于机器学习算法,而不是血管传递函数。 使用模拟时间序列的响应数据训练和测试模型,并产生了有希望的结果。

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