论文标题
通过深神经网络预测流体的波
Predicting waves in fluids with deep neural network
论文作者
论文摘要
在本文中,我们提出了一种深度学习技术,用于数据驱动的流体介质中波传播的预测。该技术依赖于基于注意力的卷积复发自动编码器网络(AB-CRAN)。为了构建波传播数据的低维表示,我们采用了基于denoisis的卷积自动编码器。具有基于注意的长期短期记忆细胞的AB-Cran体系结构构成了我们的深度神经网络模型,用于游行低维特征的时间。我们评估了针对标准复发性神经网络的拟议的AB-Cran框架,用于波传播的低维学习。为了证明AB-Cran模型的有效性,我们考虑了三个基准问题,即一维线性对流,非线性粘性汉堡方程和二维圣人浅水系统。我们的新型AB-Cran结构使用基准问题的空间数据集,可以准确捕获波幅度,并长期保留溶液的波特性。与具有长期短期记忆细胞的标准复发性神经网络相比,基于注意力的序列到序列网络增加了预测的时间莫。 denoising自动编码器进一步减少了预测的平方平方误差,并提高了参数空间中的概括能力。
In this paper, we present a deep learning technique for data-driven predictions of wave propagation in a fluid medium. The technique relies on an attention-based convolutional recurrent autoencoder network (AB-CRAN). To construct a low-dimensional representation of wave propagation data, we employ a denoising-based convolutional autoencoder. The AB-CRAN architecture with attention-based long short-term memory cells forms our deep neural network model for the time marching of the low-dimensional features. We assess the proposed AB-CRAN framework against the standard recurrent neural network for the low-dimensional learning of wave propagation. To demonstrate the effectiveness of the AB-CRAN model, we consider three benchmark problems, namely, one-dimensional linear convection, the nonlinear viscous Burgers equation, and the two-dimensional Saint-Venant shallow water system. Using the spatial-temporal datasets from the benchmark problems, our novel AB-CRAN architecture accurately captures the wave amplitude and preserves the wave characteristics of the solution for long time horizons. The attention-based sequence-to-sequence network increases the time-horizon of prediction compared to the standard recurrent neural network with long short-term memory cells. The denoising autoencoder further reduces the mean squared error of prediction and improves the generalization capability in the parameter space.