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Finite element approximations of general fully nonlinear second order elliptic partial differential equations based on the vanishing moment method

机译:基于消失矩法的完全完全非线性二阶椭圆型偏微分方程的有限元逼近

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The vanishing moment method was introduced by the authors in Feng and Neilan (2009) as a reliable methodology for computing viscosity solutions of fully nonlinear second order partial differential equations (PDEs). It is based on the simple idea of approximating a "hard-to-handle" fully nonlinear second order PDE by a family (parameterized by a small parameter e) of "easy-to-handle" quasilinear fourth order PDEs. The primary objective of this article is to present a comprehensive finite element analysis for the vanishing moment approximation of general fully nonlinear second order elliptic PDEs which fulfill some structure conditions. Abstract methodological and convergence analysis frameworks of conforming finite element methods are first developed for fully nonlinear second order PDEs in a general setting. The abstract framework is then applied to three prototypical nonlinear equations, namely, the Monge-Ampere equation, the equation of prescribed Gauss curvature, and the infinity-Laplacian equation. Numerical experiments are presented for each problem to validate the theoretical error estimate results and to gauge the efficiency of the proposed numerical methods and the vanishing moment methodology.
机译:消失矩法是作者在Feng和Neilan(2009)中引入的,它是一种用于计算完全非线性二阶偏微分方程(PDE)粘性溶液的可靠方法。它基于一个简单的想法,即通过一个“易于处理”准线性四阶PDE族(由小参数e参数化)来近似“难以处理”的完全非线性二阶PDE。本文的主要目的是针对满足某些结构条件的一般完全非线性二阶椭圆PDE的消失矩逼近提供一个全面的有限元分析。首先,在一般情况下,针对完全非线性的二阶PDE,开发了符合有限元方法的抽象方法和收敛分析框架。然后将抽象框架应用于三个原型非线性方程,即Monge-Ampere方程,规定的高斯曲率方程和Infinity-Laplacian方程。针对每个问题进行了数值实验,以验证理论误差估计结果并评估所提出数值方法和消失矩方法的效率。

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