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Cooperative behavior acquisition of multiple autonomous mobile robots by an objective-based reinforcement learning system

Kunikazu Kobayashi, Koji Nakano, Takashi Kuremoto, Masanao Obayashi

发表年份
2007
引用次数
8

摘要

The present paper proposes an objective-based reinforcement learning system for multiple autonomous mobile robots to acquire cooperative behavior. The proposed system employs profit sharing (PS) as a learning method. A major characteristic of the system is using two kinds of PS tables. One is to learn cooperative behavior using information on other agents' positions and the other is to learn how to control basic movements. Through computer simulation and real robot experiment using a garbage-collection problem, the performance of the proposed system is evaluated. As a result, it is verified that agents select the most available garbage for cooperative behavior using visual information in an unknown environment and move to the target avoiding obstacles.

关键词

Reinforcement learningMobile robotComputer scienceRobotGarbageArtificial intelligenceHuman–computer interaction

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