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Analysis of the performance of genetic multi-step search in interpolation and extrapolation domain
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Genetic And Evolutionary Computation Conference archive
Proceedings of the 10th annual conference on Genetic and evolutionary computation table of contents
Atlanta, GA, USA
POSTER SESSION: Genetic algorithms posters table of contents
Pages 1107-1108  
Year of Publication: 2008
ISBN:978-1-60558-130-9
Authors
Yoshiko Hanada  Kansai University, Osaka, Japan
Tomoyuki Hiroyasu  Doshisha University, Kyoto, Japan
Mitsunori Miki  Doshisha University, Kyoto, Japan
Sponsors
ACM: Association for Computing Machinery
SIGEVO: ACM Special Interest Group on Genetic and Evolutionary Computation
Publisher
ACM  New York, NY, USA
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ABSTRACT

In this paper, we examine overall performances and behaviors of deterministic multi-step search in interpolation / extrapolation domain, dMSXF and dMSMF, using NK model that is one of appropriate models for analyzing fundamental search mechanisms in combinatorial problems. We focus on the local property of landscape, such as epistasis that is comprehended as ruggedness in fitness function, and investigate the efficacy of dMSXF and dMSMF and the behavior observed by tuning the level of epistasis.


REFERENCES

Note: OCR errors may be found in this Reference List extracted from the full text article. ACM has opted to expose the complete List rather than only correct and linked references.

 
1
Extrapolation-Directed Crossover for Job-shop Scheduling Problems: Complementary Combination with JOX, Proc. of GECCO 2000, pp. 973--980 (2000).
 
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Adaptation on rugged fitness landscapes, Lectures in the Sciences of Complexity, Vol. 1, pp.527--618, Addison Wesley (1989).

Collaborative Colleagues:
Yoshiko Hanada: colleagues
Tomoyuki Hiroyasu: colleagues
Mitsunori Miki: colleagues