Real-Coded Genetic Algorithm for Rule-Based Flood Control Reservoir Management |
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Authors: | Chang Fi-John Chen Li |
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Affiliation: | (1) Department of Agriculture Engineering, National Taiwan University, Tapei, Taiwan, Republic of China;(2) Department of Civil Engineering, CHUNG-HUA University, Hsin-Chu, Taiwan, Republic of China |
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Abstract: | Genetic algorithms (GAs) have been fairly successful in a diverse range of optimization problems, providing an efficient and robust way for guiding a search even in a complex system and in the absence of domain knowledge. In this paper, two types of genetic algorithms, real-coded and binary-coded, are examined for function optimization and applied to the optimization of a flood control reservoir model. The results show that both genetic algorithms are more efficient and robust than the random search method, with the real-coded GA performing better in terms of efficiency and precision than the binary-coded GA. |
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Keywords: | binary-coded GA flood control fuzzy control real-coded GA reservoir optimization |
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