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A multi-sequential number-theoretic optimization algorithm using clustering methods

A multi-sequential number-theoretic optimization algorithm using clustering methods
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摘要 A multi-sequential number-theoretic optimization method based on clustering was developed and applied to the optimization of functions with many local extrema. Details of the procedure to generate the clusters and the sequential schedules were given. The algorithm was assessed by comparing its performance with generalized simulated annealing algorithm in a difficult instructive example and a D-optimum experimental design problem. It is shown the presented algorithm to be more effective and reliable based on the two examples.
出处 《Journal of Central South University of Technology》 2005年第z1期283-293,共11页 中南工业大学学报(英文版)
基金 Project supported by the Postdoctoral Science Foundation of Central South University
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  • 1方开泰,1989年
  • 2Wang Y,科学通报,1981年,26卷,485页

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