DocumentCode :
2462400
Title :
Comparison between Single-Objective and Multi-Objective Genetic Algorithms: Performance Comparison and Performance Measures
Author :
Ishibuchi, Hisao ; Nojima, Yusuke ; Doi, Tsutomu
Author_Institution :
Osaka Prefecture Univ., Osaka
fYear :
0
fDate :
0-0 0
Firstpage :
1143
Lastpage :
1150
Abstract :
We compare single-objective genetic algorithms (SOGAs) with multi-objective genetic algorithms (MOGAs) in their applications to multi-objective knapsack problems. First we discuss difficulties in comparing a single solution by SOGAs with a solution set by MOGAs. We also discuss difficulties in comparing several solutions from multiple runs of SOGAs with a large number of solutions from a single run of MOGAs. It is shown that existing performance measures are not necessarily suitable for such comparison. Then we compare SOGAs with MOGAs through computational experiments on multi-objective knapsack problems. Experimental results on two-objective problems show that MOGAs outperform SOGAs even when they are evaluated with respect to a scalar fitness function used in SOGAs. This is because MOGAs are more likely to escape from local optima. On the other hand, experimental results on four-objective problems show that the search ability of MOGAs is degraded by the increase in the number of objectives. Finally we suggest a framework of hybrid algorithms where a scalar fitness function in SOGAs is probabilistically used in MOGAs to improve the convergence of solutions to the Pareto front.
Keywords :
genetic algorithms; knapsack problems; multi-objective genetic algorithms; multi-objective knapsack problems; scalar fitness function; single-objective genetic algorithms; Computational intelligence; Computer architecture; Computer science; Degradation; Evolutionary computation; Genetic algorithms; Hybrid power systems; Intelligent systems; Pareto optimization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Evolutionary Computation, 2006. CEC 2006. IEEE Congress on
Conference_Location :
Vancouver, BC
Print_ISBN :
0-7803-9487-9
Type :
conf
DOI :
10.1109/CEC.2006.1688438
Filename :
1688438
Link To Document :
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