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      Krylov-subspace recycling via the POD-augmented conjugate-gradient method

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          Abstract

          This work presents a new Krylov-subspace-recycling method for efficiently solving sequences of linear systems of equations characterized by varying right-hand sides and symmetric-positive-definite matrices. As opposed to typical truncation strategies used in recycling such as deflation, we propose a truncation method inspired by goal-oriented proper orthogonal decomposition (POD) from model reduction. This idea is based on the observation that model reduction aims to compute a low-dimensional subspace that contains an accurate solution; as such, we expect the proposed method to generate a low-dimensional subspace that is well suited for computing solutions that can satisfy inexact tolerances. In particular, we propose specific goal-oriented POD `ingredients' that align the optimality properties of POD with the objective of Krylov-subspace recycling. To compute solutions in the resulting `augmented' POD subspace, we propose a hybrid direct/iterative three-stage method that leverages 1) the optimal ordering of POD basis vectors, and 2) well-conditioned reduced matrices. Numerical experiments performed on solid-mechanics problems highlight te benefits of the proposed method over existing approaches for Krylov-subspace recycling.

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          Author and article information

          Journal
          2015-12-17
          2016-01-20
          Article
          1512.05820
          c9d0b896-cc97-4483-bf1c-8ddf4c3f834d

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Custom metadata
          15A12, 15A18, 65F10, 65F15, 65F50
          math.NA

          Numerical & Computational mathematics
          Numerical & Computational mathematics

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