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Genetic Algorithms Applied to Multi-Objective Aerodynamic Shape Optimization

Genetic Algorithms Applied to Multi-Objective Aerodynamic Shape Optimization

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Product Details
Author:
Nasa Technical Reports Server (Ntrs)
Publisher:
Bibliogov
Publication Date:
Jul 23, 2013
Number of pages:
50 pages
Binding:
Paperback or Softback
ISBN-10:
1287245412
ISBN-13:
9781287245414

Overview

A genetic algorithm approach suitable for solving multi-objective problems is described and evaluated using a series of aerodynamic shape optimization problems. Several new features including two variations of a binning selection algorithm and a gene-space transformation procedure are included. The genetic algorithm is suitable for finding Pareto optimal solutions in search spaces that are defined by any number of genes and that contain any number of local extrema. A new masking array capability is included allowing any gene or gene subset to be eliminated as decision variables from the design space. This allows determination of the effect of a single gene or gene subset on the Pareto optimal solution. Results indicate that the genetic algorithm optimization approach is flexible in application and reliable. The binning selection algorithms generally provide Pareto front quality enhancements and moderate convergence efficiency improvements for most of the problems solved.


  • | Author: Nasa Technical Reports Server (Ntrs)
  • | Publisher: Bibliogov
  • | Publication Date: Jul 23, 2013
  • | Number of Pages: 50 pages
  • | Binding: Paperback or Softback
  • | ISBN-10: 1287245412
  • | ISBN-13: 9781287245414

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