生産システム部門講演会講演論文集
Online ISSN : 2424-3108
セッションID: 4104
会議情報
確率ネットワークによる学習エージェントの獲得戦略保存と適用に関する一考察(環境適応型知的人工システム)
篠原 一真大倉 和博田浦 俊春
著者情報
会議録・要旨集 フリー

詳細
抄録
Reinforcement learning is one of effective mechanisms which enable an agent to acquire its behavior. But when an environmental change occurs, the agent has to learn again from scratch. In this paper, the agent system is constructed by using the probabilistic network in order to cope with this problem. In concrete terms, an agent acquires its action through reinforcement learning, and its result is replaced to a probabilistic network which is a more flexible expression. Through the navigation problem, the availability of the proposal technique is shown.
著者関連情報
© 2004 一般社団法人 日本機械学会
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