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An Evolutionary Fuzzy Behaviour Controller Using Genetic Algorithm in RoboCup Soccer Game

Jong-Yih Kuo, Yuan Cheng Ou

发表年份
2009
引用次数
4

摘要

The problem of an effective behavior learning of autonomous robots is one of the most important tasks of the modern robotics. In fact, it is well known that the learning to optimize actions of autonomous agents in a dynamic environment is one of the most complex challenges of the intelligent system design. In this paper, we propose a hybrid approach integrating fuzzy logic system with genetic algorithm for high-level skills learning of robots within the RoboCup simulation soccer domain. Through the experiments, we found that the proposed method has good property of computation efficiency and also has a good advantage applied to the environment of RoboCup.

关键词

Artificial intelligenceComputer scienceFuzzy logicRobotDomain (mathematical analysis)Evolutionary roboticsRoboticsGenetic algorithmEvolutionary computationProperty (philosophy)

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