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Fuzzy reinforcement learning

机译:模糊强化学习

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摘要

Fuzzy logic represents an extension of classical logic, giving modes of approximate reasoning in an environment of uncertainty and imprecision. Fuzzy inference systems incorporates human knowledge into their knowledge base on the conclusions of the fuzzy rules, which are affected by subjective decisions. In this paper we show how the reinforcement learning technique can be used to tune the conclusion part of a fuzzy inference system. The fuzzy reinforcement learning technique is illustrated using two examples: the cart centering problem and the autonomous navigation problem. [References: 10]
机译:模糊逻辑代表了经典逻辑的扩展,在不确定和不精确的环境中提供了近似推理的模式。模糊推理系统基于受主观决定影响的模糊规则的结论,将人类知识纳入其知识库。在本文中,我们展示了如何使用强化学习技术来调整模糊推理系统的结论部分。使用两个示例说明了模糊强化学习技术:推车对中问题和自主导航问题。 [参考:10]

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