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    A parallel direct solver for the self-adaptive hp Finite Element Method

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    Type
    Article
    Authors
    Paszyński, Maciej R.
    Pardo, David
    Torres-Verdín, Carlos
    Demkowicz, Leszek F.
    Calo, Victor M. cc
    KAUST Department
    Applied Mathematics and Computational Science Program
    Earth Science and Engineering Program
    Environmental Science and Engineering Program
    Numerical Porous Media SRI Center (NumPor)
    Physical Science and Engineering (PSE) Division
    Date
    2010-03
    Permanent link to this record
    http://hdl.handle.net/10754/561441
    
    Metadata
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    Abstract
    In this paper we present a new parallel multi-frontal direct solver, dedicated for the hp Finite Element Method (hp-FEM). The self-adaptive hp-FEM generates in a fully automatic mode, a sequence of hp-meshes delivering exponential convergence of the error with respect to the number of degrees of freedom (d.o.f.) as well as the CPU time, by performing a sequence of hp refinements starting from an arbitrary initial mesh. The solver constructs an initial elimination tree for an arbitrary initial mesh, and expands the elimination tree each time the mesh is refined. This allows us to keep track of the order of elimination for the solver. The solver also minimizes the memory usage, by de-allocating partial LU factorizations computed during the elimination stage of the solver, and recomputes them for the backward substitution stage, by utilizing only about 10% of the computational time necessary for the original computations. The solver has been tested on 3D Direct Current (DC) borehole resistivity measurement simulations problems. We measure the execution time and memory usage of the solver over a large regular mesh with 1.5 million degrees of freedom as well as on the highly non-regular mesh, generated by the self-adaptive h p-FEM, with finite elements of various sizes and polynomial orders of approximation varying from p = 1 to p = 9. From the presented experiments it follows that the parallel solver scales well up to the maximum number of utilized processors. The limit for the solver scalability is the maximum sequential part of the algorithm: the computations of the partial LU factorizations over the longest path, coming from the root of the elimination tree down to the deepest leaf. © 2009 Elsevier Inc. All rights reserved.
    Citation
    Paszyński, M., Pardo, D., Torres-Verdín, C., Demkowicz, L., & Calo, V. (2010). A parallel direct solver for the self-adaptive hp Finite Element Method. Journal of Parallel and Distributed Computing, 70(3), 270–281. doi:10.1016/j.jpdc.2009.09.007
    Publisher
    Elsevier BV
    Journal
    Journal of Parallel and Distributed Computing
    DOI
    10.1016/j.jpdc.2009.09.007
    ae974a485f413a2113503eed53cd6c53
    10.1016/j.jpdc.2009.09.007
    Scopus Count
    Collections
    Articles; Environmental Science and Engineering Program; Applied Mathematics and Computational Science Program; Physical Science and Engineering (PSE) Division; Earth Science and Engineering Program

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