Classification of adaptive memetic algorithms: a comparative study

模因算法 水准点(测量) 计算机科学 进化计算 适应(眼睛) 进化算法 趋同(经济学) 特征(语言学) 人工智能 机器学习 数学优化 算法 数学 地理 心理学 语言学 哲学 大地测量学 经济增长 经济 神经科学
作者
Yew-Soon Ong,Meng‐Hiot Lim,Ning Zhu,Kok-Wai Wong
出处
期刊:IEEE transactions on systems, man, and cybernetics [Institute of Electrical and Electronics Engineers]
卷期号:36 (1): 141-152 被引量:511
标识
DOI:10.1109/tsmcb.2005.856143
摘要

Adaptation of parameters and operators represents one of the recent most important and promising areas of research in evolutionary computations; it is a form of designing self-configuring algorithms that acclimatize to suit the problem in hand. Here, our interests are on a recent breed of hybrid evolutionary algorithms typically known as adaptive memetic algorithms (MAs). One unique feature of adaptive MAs is the choice of local search methods or memes and recent studies have shown that this choice significantly affects the performances of problem searches. In this paper, we present a classification of memes adaptation in adaptive MAs on the basis of the mechanism used and the level of historical knowledge on the memes employed. Then the asymptotic convergence properties of the adaptive MAs considered are analyzed according to the classification. Subsequently, empirical studies on representatives of adaptive MAs for different type-level meme adaptations using continuous benchmark problems indicate that global-level adaptive MAs exhibit better search performances. Finally we conclude with some promising research directions in the area.

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