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Published in: Optimization and Engineering 2/2016

06-10-2015

A matrix-free augmented lagrangian algorithm with application to large-scale structural design optimization

Authors: Sylvain Arreckx, Andrew Lambe, Joaquim R. R. A. Martins, Dominique Orban

Published in: Optimization and Engineering | Issue 2/2016

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Abstract

In many large engineering design problems, it is not computationally feasible or realistic to store Jacobians or Hessians explicitly. Matrix-free implementations of standard optimization methods—implementations that do not explicitly form Jacobians and Hessians, and possibly use quasi-Newton approximations—circumvent those restrictions, but such implementations are virtually non-existent. We develop a matrix-free augmented-Lagrangian algorithm for nonconvex problems with both equality and inequality constraints. Our implementation is developed in the Python language, is available as an open-source package, and allows for approximating Hessian and Jacobian information.We show that our approach solves problems from the CUTEr and COPS test sets in a comparable number of iterations to state-of-the-art solvers. We report numerical results on a structural design problem that is typical in aircraft wing design optimization. The matrix-free approach makes solving problems with thousands of design variables and constraints tractable, even when function and gradient evaluations are costly.

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Metadata
Title
A matrix-free augmented lagrangian algorithm with application to large-scale structural design optimization
Authors
Sylvain Arreckx
Andrew Lambe
Joaquim R. R. A. Martins
Dominique Orban
Publication date
06-10-2015
Publisher
Springer US
Published in
Optimization and Engineering / Issue 2/2016
Print ISSN: 1389-4420
Electronic ISSN: 1573-2924
DOI
https://doi.org/10.1007/s11081-015-9287-9

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