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SpringerBriefs in Optimization

SpringerBriefs in Optimization

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SpringerBriefs in Optimization

Goberna, Miguel A.; López, Marco A.

Post-Optimal Analysis in Linear Semi-Infinite Optimization examines the following topics in regards to linear semi-infinite optimization: modeling uncertainty, qualitative stability analysis, quantitative stability analysis and sensitivity analysis. Linear semi-infinite optimization (LSIO) deals with linear optimization problems where the dimension of the decision space or the number of constraints is infinite. The authors compare the post-optimal analysis with alternative approaches to uncertain LSIO problems and provide readers with criteria to choose the best way to model a given uncertain LSIO problem depending on the nature and quality of the data along with the available software. This work also contains open problems which readers will find intriguing a challenging. Post-Optimal Analysis in Linear Semi-Infinite Optimization is aimed toward researchers, graduate and post-graduate students of mathematics interested in optimization, parametric optimization and related topics.

Details

Published by: Springer

Publication Date: 2014-01-07

Format: Paperback

ISBN-13: 9781489980434

DOI: 10.1007/978-1-4899-8044-1

Dimensions: 235cm x155cm

Pages: 121

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