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The bayesian approach to belief propagation in digital ecosystems

机译:贝叶斯主义在数字生态系统中信仰传播的方法

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Bayesian belief propagation is flexible and highly adaptable in not only machine learning and artificial intelligence methodologies, but also to newer forms of learning involving agent interactions in digital ecosystems, specifically Multi-Agent Systems. One important property of such systems is agent autonomy. An aspect of agent autonomy, enactive knowledge, is investigated here through a Bayesian extension called TAN that supports learning through interactions with the environment. Finally, various scenarios are simulated for an appropriate modelling environment with suggestions for future work.
机译:贝叶斯信仰传播不仅是机器学习和人工智能方法的灵活性,高度适应,而且是涉及代理商在数字生态系统中的代理相互作用的新形式,特别是多智能体系。这种系统的一个重要属性是代理人自治。通过称为TAN的贝叶斯延伸来研究代理自主权,生与头道的一个方面,并通过与环境的互动支持学习。最后,为适当的建模环境模拟各种场景,建议未来的工作。

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