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Integration of Artificial Neural Networks into Operational Ocean Wave Prediction Models for Fast and Accurate Emulation of Exact Nonlinear Interactions

机译:将人工神经网络集成到可操作的海浪预测模型中,以快速精确地模拟精确的非线性相互作用

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In this paper, an implementation study was undertaken to employ Artificial Neural Networks (ANN) in third-generation ocean wave models for direct mapping of wind-wave spectra into exact nonlinear interactions. While the investigation expands on previously reported feasibility studies of Neural Network Interaction Approximations (NNIA), it focuses on a new robust neural network that is implemented in Wavewatch III (WW3) model. Several idealistic and real test scenarios were carried out. The obtained results confirm the feasibility of NNIA in terms of speeding-up model calculations and is fully capable of providing operationally acceptable model integrations. The ANN is able to emulate the exact nonlinear interaction for single-and multi-modal wave spectra with a much higher accuracy then Discrete Interaction Approximation (DIA). NNIA performs at least twice as fast as DIA and at least two hundred times faster than exact method (Web-Resio-Tracy, WRT) for a well trained dataset. The accuracy of NNIA is network configuration dependent. For most optimal network configurations, the NNIA results and scatter statistics show good agreement with exact results by means of growth curves and integral parameters. Practical possibilities for further improvements in achieving fast and highly accurate emulations using ANN for emulating time consuming exact nonlinear interactions are also suggested and discussed.
机译:在本文中,进行了一项实施研究,以在第三代海浪模型中使用人工神经网络(ANN)将风波谱直接映射为精确的非线性相互作用。尽管该调查扩展了先前报告的神经网络交互逼近(NNIA)可行性研究的范围,但它侧重于在Wavewatch III(WW3)模型中实现的新的鲁棒神经网络。进行了几种理想的和实际的测试方案。获得的结果证实了NNIA在加速模型计算方面的可行性,并且完全能够提供可操作的模型集成。与离散交互近似(DIA)相比,ANN能够以更高的精度模拟单模态和多模态波谱的精确非线性相互作用。对于训练有素的数据集,NNIA的执行速度至少是DIA的两倍,并且比精确方法(Web-Resio-Tracy,WRT)至少快200倍。 NNIA的准确性取决于网络配置。对于大多数最佳网络配置,NNIA结果和散点统计数据通过增长曲线和积分参数显示出与精确结果的良好一致性。还提出并讨论了使用ANN来模拟耗时的精确非线性相互作用来实现快速,高精度模拟的进一步改进的实际可能性。

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