程耿东
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Balancing diversity and performance in global optimization
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Indexed by:期刊论文

Date of Publication:2016-10-01

Journal:STRUCTURAL AND MULTIDISCIPLINARY OPTIMIZATION

Included Journals:SCIE、EI、Scopus

Volume:54

Issue:4

Page Number:1093-1105

ISSN No.:1615-147X

Key Words:Diversity; Competitiveness; Performance compromise; Performance penalty

Abstract:This paper studies the problem of balancing diversity and performance in surrogate-based global optimization when we look for two diverse competitive designs. A previous formulation that maximizes the average performance of the two designs with constraint on diversity is compared to a new formulation that maximizes diversity for a given loss in performance with respect to a single global optimum. The loss in performance is estimated using the surrogate. Three test functions are used to compare the curves of diversity vs. performance obtained from the two formulations. Significantly, for the examples, the search for the two diverse designs produced also designs much closer in performance to the global optimum than the two designs satisfying the diversity constraint or goal. Therefore, if three designs are accepted as the outcome of the search, the loss of performance may be drastically reduced.

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Gender:Male

Alma Mater:丹麦技术大学

Degree:Doctoral Degree

School/Department:力学与航空航天学院

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