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Adaptive elitist-population based genetic algorithm for multimodal function optimization (2003)
| Content Provider | CiteSeerX |
|---|---|
| Author | Leung, Kwong-Sak Liang, Yong |
| Description | In GECCO 2003, LNCS 2723 |
| Abstract | Abstract. This paper introduces a new technique called adaptive elitistpopulation search method for allowing unimodal function optimization methods to be extended to efficiently locate all optima of multimodal problems. The technique is based on the concept of adaptively adjusting the population size according to the individuals ’ dissimilarity and the novel elitist genetic operators. Incorporation of the technique in any known evolutionary algorithm leads to a multimodal version of the algorithm. As a case study, genetic algorithms(GAs) have been endowed with the multimodal technique, yielding an adaptive elitist-population based genetic algorithm(AEGA). The AEGA has been shown to be very efficient and effective in finding multiple solutions of the benchmark multimodal optimization problems. 1 |
| File Format | |
| Publisher Date | 2003-01-01 |
| Access Restriction | Open |
| Subject Keyword | Multimodal Problem Genetic Algorithm Multimodal Technique Individual Dissimilarity Population Size Benchmark Multimodal Optimization Problem Novel Elitist Genetic Operator Multimodal Version Adaptive Elitistpopulation Search Method Known Evolutionary Algorithm Adaptive Elitist-population Unimodal Function Optimization Method Multimodal Function Optimization New Technique Multiple Solution |
| Content Type | Text |
| Resource Type | Article |