Evolution of the Behavioral Knowledge for a Virtual Robot

Suchul Hwang, Kyung-Dal Cho · International Journal of Fuzzy Logic and Intelligent Systems · 2005

We have studied a model and application that evolves the behavioral knowledge of a virtual robot. The knowledge is represented in classification rules and a neural network, and is learned by a genetic algorithm. The model consists of a virtual robot with behavior knowledge, an environment that it moves in, and an evolution performer that includes a genetic algorithm. We have also applied our model to an environment where the robots gather food into a nest. When comparing our model with the conventional method on various test cases, our model showed superior overall learning.

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