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CONVERGENCE RATES FOR A CLASS OF EVOLUTIONARY ALGORITHMS WITH ELITIST STRATEGY
Authors:Ding Lixin  Kang Lishan State Key Lab of Software Engineering  Wuhan University  Wuhan   China
Affiliation:Ding Lixin,Kang Lishan State Key Lab of Software Engineering,Wuhan University,Wuhan 430072,China
Abstract:This paper discusses the convergence rates about a class of evolutionary algorithms in general search spaces by means of the ergodic theory in Markov chain and some techniques in Banach algebra. Under certain conditions that transition probability functions of Markov chains corresponding to evolutionary algorithms satisfy, the authors obtain the convergence rates of the exponential order. Furthermore, they also analyze the characteristics of the conditions which can be met by genetic operators and selection strategies.
Keywords:Convergence rate   Markov chain   Banach algebra   genetic operator   elitist selection   evolutionary algorithms
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