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arxiv: 1212.0090 · v3 · pith:OBE6KHXFnew · submitted 2012-12-01 · 🧮 math.NA · cs.NA

Computation of eigenvalues by numerical upscaling

classification 🧮 math.NA cs.NA
keywords eigenvalueeigenvalueselementfinitelow-dimensionalnumericalupscalingalgebraic
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We present numerical upscaling techniques for a class of linear second-order self-adjoint elliptic partial differential operators (or their high-resolution finite element discretization). As prototypes for the application of our theory we consider benchmark multi-scale eigenvalue problems in reservoir modeling and material science. We compute a low-dimensional generalized (possibly mesh free) finite element space that preserves the lowermost eigenvalues in a superconvergent way. The approximate eigenpairs are then obtained by solving the corresponding low-dimensional algebraic eigenvalue problem. The rigorous error bounds are based on two-scale decompositions of $H^1_0(\Omega)$ by means of a certain Cl\'ement-type quasi-interpolation operator.

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