DGM: A deep learning algorithm for solving partial differential equations

数学 偏微分方程 伽辽金法 人工神经网络 多边形网格 基函数 算法 边界(拓扑) 计算机科学 边值问题 应用数学 数学分析 有限元法 人工智能 几何学 热力学 物理
作者
Justin Sirignano,Konstantinos Spiliopoulos
出处
期刊:Journal of Computational Physics [Elsevier BV]
卷期号:375: 1339-1364 被引量:2034
标识
DOI:10.1016/j.jcp.2018.08.029
摘要

High-dimensional PDEs have been a longstanding computational challenge. We propose to solve high-dimensional PDEs by approximating the solution with a deep neural network which is trained to satisfy the differential operator, initial condition, and boundary conditions. Our algorithm is meshfree, which is key since meshes become infeasible in higher dimensions. Instead of forming a mesh, the neural network is trained on batches of randomly sampled time and space points. The algorithm is tested on a class of high-dimensional free boundary PDEs, which we are able to accurately solve in up to 200 dimensions. The algorithm is also tested on a high-dimensional Hamilton–Jacobi–Bellman PDE and Burgers' equation. The deep learning algorithm approximates the general solution to the Burgers' equation for a continuum of different boundary conditions and physical conditions (which can be viewed as a high-dimensional space). We call the algorithm a “Deep Galerkin Method (DGM)” since it is similar in spirit to Galerkin methods, with the solution approximated by a neural network instead of a linear combination of basis functions. In addition, we prove a theorem regarding the approximation power of neural networks for a class of quasilinear parabolic PDEs.
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