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Erschienen in: Journal of Intelligent Manufacturing 5/2014

01.10.2014

The cooperative estimation of distribution algorithm: a novel approach for semiconductor final test scheduling problems

verfasst von: Xin-Chang Hao, Jei-Zheng Wu, Chen-Fu Chien, Mitsuo Gen

Erschienen in: Journal of Intelligent Manufacturing | Ausgabe 5/2014

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Abstract

A large number of studies have been conducted in the area of semiconductor final test scheduling (SFTS) problems. As a specific example of the simultaneous multiple resources scheduling problem, intelligent manufacturing planning and scheduling based on meta-heuristic methods, such as the genetic algorithm (GA), simulated annealing, and particle swarm optimization, have become common tools for finding satisfactory solutions within reasonable computational times in real settings. However, only a few studies have analyzed the effects of interdependent relations during group decision-making activities. Moreover, for complex and large problems, local constraints and objectives from each managerial entity and their contributions toward global objectives cannot be effectively represented in a single model. This paper proposes a novel cooperative estimation of distribution algorithm (CEDA) to overcome these challenges. The CEDA extends a co-evolutionary framework incorporating a divide-and-conquer strategy. Numerous experiments have been conducted, and the results confirmed that CEDA outperforms hybrid GAs for several SFTS problems.

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Metadaten
Titel
The cooperative estimation of distribution algorithm: a novel approach for semiconductor final test scheduling problems
verfasst von
Xin-Chang Hao
Jei-Zheng Wu
Chen-Fu Chien
Mitsuo Gen
Publikationsdatum
01.10.2014
Verlag
Springer US
Erschienen in
Journal of Intelligent Manufacturing / Ausgabe 5/2014
Print ISSN: 0956-5515
Elektronische ISSN: 1572-8145
DOI
https://doi.org/10.1007/s10845-013-0746-x

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