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An Improved Cuckoo Search Algorithm for Multi-Objective Optimization 被引量:2

An Improved Cuckoo Search Algorithm for Multi-Objective Optimization
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摘要 The recently proposed Cuckoo search algorithm is an evolutionary algorithm based on probability. It surpasses other algorithms in solving the multi-modal discontinuous and nonlinear problems. Searches made by it are very efficient because it adopts Levy flight to carry out random walks. This paper proposes an improved version of cuckoo search for multi-objective problems(IMOCS). Combined with nondominated sorting, crowding distance and Levy flights, elitism strategy is applied to improve the algorithm. Then numerical studies are conducted to compare the algorithm with DEMO and NSGA-II against some benchmark test functions. Result shows that our improved cuckoo search algorithm convergences rapidly and performs efficienly. The recently proposed Cuckoo search algorithm is an evolutionary algorithm based on probability. It surpasses other algorithms in solving the multi-modal discontinuous and nonlinear problems. Searches made by it are very efficient because it adopts Levy flight to carry out random walks. This paper proposes an improved version of cuckoo search for multi-objective problems(IMOCS). Combined with nondominated sorting, crowding distance and Levy flights, elitism strategy is applied to improve the algorithm. Then numerical studies are conducted to compare the algorithm with DEMO and NSGA-II against some benchmark test functions. Result shows that our improved cuckoo search algorithm convergences rapidly and performs efficienly.
出处 《Wuhan University Journal of Natural Sciences》 CAS CSCD 2017年第4期289-294,共6页 武汉大学学报(自然科学英文版)
基金 Supported by the National Natural Science Foundation of China(71471140)
关键词 multi-objective optimization evolutionary algorithm Cuckoo search Levy flight multi-objective optimization evolutionary algorithm Cuckoo search Levy flight
作者简介 Biography: TIAN Mingzheng, male, Master candidate, research direction: optimization algorithm. E-mail: alvin tian@foxmail.comTo whom correspondence should be addressed. E-mail: zpwan-whu@126.com
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