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Online prediction of ship roll motion based on a coarse and fine tuning fixed grid wavelet network

机译:基于粗调和微调固定网格小波网络的船舶侧倾运动在线预测

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A new coarse and fine tuning fixed grid wavelet network is proposed for online predicting ship roll motion in regular waves. This wavelet network is composed of discrete wavelet basis functions, whose structure and parameters are adjusted online based on a sliding data window. Coarse tuning refers to changing the structure of the wavelet network, and fine tuning refers to only changing the coefficients of the wavelet network. In every sliding data window, the Givens rotation method is first used to finely tune the wavelet network, then the orthogonal least squares algorithm and the error reduction ratio criterion will be used to coarsely tune the wavelet network if the fine tuning network does not satisfy the relevant conditions for model validation. This process guarantees that the method can establish not only the model of the weakly nonlinear motion but also the model of the strongly nonlinear motion. In this way, a concise prediction model of ship roll motion is obtained. This network exploits the attractive features of wavelet and the fitting capability of conventional neural network. The prediction results show that the modeling method is feasible, and it provides an effective tool for online predicting ship roll motion.
机译:提出了一种新的粗调和细调固定网格小波网络,用于在线预测规则波中的船舶侧倾运动。该小波网络由离散的小波基函数组成,其结构和参数可根据滑动数据窗口进行在线调整。粗调是指改变小波网络的结构,而精调是指仅改变小波网络的系数。在每个滑动数据窗口中,首先使用Givens旋转方法对小波网络进行微调,然后,如果微调网络不满足小波网络的要求,则将使用正交最小二乘算法和误差减少率准则对小波网络进行粗调。模型验证的相关条件。这个过程保证了该方法不仅可以建立弱非线性运动的模型,而且可以建立强非线性运动的模型。这样,获得了船舶侧倾运动的简洁预测模型。该网络利用了小波的吸引力特征和传统神经网络的拟合能力。预测结果表明,该建模方法是可行的,为在线预测船舶侧倾运动提供了有效的工具。

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