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Avoiding Geometry Improvement in Derivative-Free Model-Based Methods via Randomization

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arxiv 2305.17336 v1 pith:BE54G7YA submitted 2023-05-27 math.OC

classification math.OC
keywords derivative-freemodel-basedbasismethodssketchingavoidinggeometryimprovement
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We present a technique for model-based derivative-free optimization called \emph{basis sketching}. Basis sketching consists of taking random sketches of the Vandermonde matrix employed in constructing an interpolation model. This randomization enables weakening the general requirement in model-based derivative-free methods that interpolation sets contain a full-dimensional set of affinely independent points in every iteration. Practically, this weakening provides a theoretically justified means of avoiding potentially expensive geometry improvement steps in many model-based derivative-free methods. We demonstrate this practicality by extending the nonlinear least squares solver, \texttt{POUNDers} to a variant that employs basis sketching and we observe encouraging results on higher dimensional problems.

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    A bilevel algorithm combining Bayesian optimization (uncertainty space) and local derivative-free models (design space) finds a RAE2822 airfoil with up to 52% higher lift-to-drag ratio at high Mach conditions, using 2...

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