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Convolution Hierarchical Deep-learning Neural Networks (C-HiDeNN): finite elements, isogeometric analysis, tensor decomposition, and beyond.

Authors :
Lu, Ye
Li, Hengyang
Zhang, Lei
Park, Chanwook
Mojumder, Satyajit
Knapik, Stefan
Sang, Zhongsheng
Tang, Shaoqiang
Apley, Daniel W.
Wagner, Gregory J.
Liu, Wing Kam
Source :
Computational Mechanics; Aug2023, Vol. 72 Issue 2, p333-362, 30p
Publication Year :
2023

Abstract

This paper presents a general Convolution Hierarchical Deep-learning Neural Networks (C-HiDeNN) computational framework for solving partial differential equations. This is the first paper of a series of papers devoted to C-HiDeNN. We focus on the theoretical foundation and formulation of the method. The C-HiDeNN framework provides a flexible way to construct high-order C n approximation with arbitrary convergence rates and automatic mesh adaptivity. By constraining the C-HiDeNN to build certain functions, it can be degenerated to a specification, the so-called convolution finite element method (C-FEM). The C-FEM will be presented in detail and used to study the numerical performance of the convolution approximation. The C-FEM combines the standard C 0 FE shape function and the meshfree-type radial basis interpolation. It has been demonstrated that the C-FEM can achieve arbitrary orders of smoothness and convergence rates by adjusting the different controlling parameters, such as the patch function dilation parameter and polynomial order, without increasing the degrees of freedom of the discretized systems, compared to FEM. We will also present the convolution tensor decomposition method under the reduced-order modeling setup. The proposed methods are expected to provide highly efficient solutions for extra-large scale problems while maintaining superior accuracy. The applications to transient heat transfer problems in additive manufacturing, topology optimization, GPU-based parallelization, and convolution isogeometric analysis have been discussed. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01787675
Volume :
72
Issue :
2
Database :
Complementary Index
Journal :
Computational Mechanics
Publication Type :
Academic Journal
Accession number :
164493080
Full Text :
https://doi.org/10.1007/s00466-023-02336-5