Solving Multimodal problems by Coincidence Algorithm

Kiatsopon Waiyapara, Prabhas Chongstitvatana · 2012

In general, Multimodal optimization is hard problems even for Evolutionary Algorithm. Using a Genetic Algorithm (GA) to solve these problems, the algorithm cannot converge to solutions easily. This work presents a study of Coincidence Algorithm (COIN) to solve these problems. COIN has an ability to retain multiple solutions in its model; hence it is suitable for Multimodal optimization problems. The experiment is carried out to illustrate this capability. The benchmarks are designed for comparing the problem solving behavior of COIN against a Genetic Algorithm.

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