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An LP empirical quadrature procedure for reduced basis treatment of parametrized nonlinear PDEs

机译:用于参数化非线性PDE的减基处理的LP经验正交程序

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We present a model reduction formulation for parametrized nonlinear partial differential equations (PDEs). Our approach builds on two ingredients: reduced basis (RB) spaces which provide rapidly convergent approximations to the parametric manifold; sparse empirical quadrature rules which provide rapid evaluation of the nonlinear residual and output forms associated with the RB spaces. We identify both the RB spaces and the sparse quadrature rules in the offline stage through a greedy training procedure over the parameter domain; the procedure requires the dual norm of the finite element (FE) residual at many training points in the parameter domain, but only very few FE solutions-the snapshots retained in the RB space. The quadrature rules are identified by a linear program (LP) empirical quadrature procedure (EQP) which (i) admits efficient solution by a simplex method, and (ii) directly controls the solution error induced by the approximate quadrature. We demonstrate the formulation for a parametrized neo-Hookean beam: the dimension of the approximation space and the number of quadrature points are both reduced by two orders of magnitude relative to FE treatment, with commensurate savings in computational cost. (C) 2018 Elsevier B.V. All rights reserved.
机译:我们为参数化的非线性偏微分方程(PDE)提供了一种模型简化公式。我们的方法建立在两个要素的基础上:缩减基数(RB)空间,它提供对参数流形的快速收敛近似;稀疏经验正交规则,可以快速评估与RB空间相关的非线性残差和输出形式。通过参数域上的贪婪训练过程,我们在离线阶段识别出RB空间和稀疏正交规则。该过程需要在参数域中的许多训练点上具有有限元(FE)残差的对偶范数,但只有极少数的FE解-快照保留在RB空间中。正交规则由线性程序(LP)经验正交过程(EQP)标识,该过程(i)通过单纯形法允许有效解,并且(ii)直接控制由近似正交引起的解误差。我们演示了参数化新霍克光束的公式:相对于有限元处理,近似空间的尺寸和正交点的数量都减少了两个数量级,同时节省了计算成本。 (C)2018 Elsevier B.V.保留所有权利。

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