A Riemannian View on Shape Optimization

Shape optimization based on the shape calculus is numerically mostly performed using steepest descent methods. This paper provides a novel framework for analyzing shape Newton optimization methods by exploiting a Riemannian perspective. A Riemannian shape Hessian is defined possessing often sought p...

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Veröffentlicht in:Foundations of computational mathematics 2014-06, Vol.14 (3), p.483-501
1. Verfasser: Schulz, Volker H.
Format: Artikel
Sprache:eng
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Zusammenfassung:Shape optimization based on the shape calculus is numerically mostly performed using steepest descent methods. This paper provides a novel framework for analyzing shape Newton optimization methods by exploiting a Riemannian perspective. A Riemannian shape Hessian is defined possessing often sought properties like symmetry and quadratic convergence for Newton optimization methods.
ISSN:1615-3375
1615-3383
DOI:10.1007/s10208-014-9200-5