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An unsupervised learning based simplification on ship motion model and its verification

机译:基于无监督学习的船舶运动模型简化及其验证

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摘要

In this paper, simplification method for ship model is proposed. Firstly, sensitivity index with a depressive strategy is introduced to characterize the significance of hydrodynamic coefficients for higher accuracy. Secondly, an unsupervised learning based simplification is proposed and can properly and effectively reduce the hydrodynamic coefficients. Thirdly, open-loop and closed-loop simulation are carried out to verify that simplification. Experiment result shows that clustering are effective in horizontal rotational movement and horizontal zigzag maneuver with the maximum and minimum errors of the motion parameters are 4.75% and 0.24% respectively within acceptable range.
机译:本文提出了舰船模型的简化方法。首先,引入具有压抑策略的灵敏度指标来表征流体力学系数对于提高精度的重要性。其次,提出了一种基于无监督学习的简化方法,可以适当有效地减小水动力系数。第三,进行开环和闭环仿真以验证其简化性。实验结果表明,聚类在水平旋转运动和水平曲折操纵中均有效,运动参数的最大和最小误差分别在可接受的范围内,分别为4.75%和0.24%。

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