Fractional weak adversarial networks for the stationary fractional advection dispersion equations

Dian Feng, Zhiwei Yang, Sen Zou
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Abstract

In this article, we propose the fractional weak adversarial networks (f-WANs) for the stationary fractional advection dispersion equations based on their weak formulas. This enables us to handle less regular solutions for the fractional equations. To handle the non-local property of the fractional derivatives, convolutional layers and special loss functions are introduced in this neural network. Numerical experiments for both smooth and less regular solutions show the validity of f-WANs.

Abstract Image

静态分数平流扩散方程的分数弱对抗网络
在本文中,我们根据分式平流扩散方程的弱公式,提出了用于静态分式平流扩散方程的分式弱对抗网络(f-WAN)。这使我们能够处理分数方程的较少规则解。为了处理分数导数的非局部特性,该神经网络引入了卷积层和特殊损失函数。针对平滑解和非规则解的数值实验表明了 f-WAN 的有效性。
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