基于模糊逻辑的学习方法的最优决策

P. Kravets, V. Lytvyn, Y. Burov, V. Vysotska, L. Chyrun, V. Panasyuk
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引用次数: 0

摘要

本工作旨在发展基于强化学习方法的模糊逻辑智能体的功能和结构,并将其应用于解决不确定条件下决策的实际问题。为了实现这一目标,利用基于生产规则知识库的模糊推理,开发了智能代理的运行算法。针对智能体在单元空间中寻找函数的最优值并根据模糊逻辑规则确定运动方向的任务,对所开发算法的有效性进行了实证验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Making Optimal Decisions with Learning Method Based on Fuzzy Logic
This work aims to develop the functions and structure of intelligent agents with fuzzy logic based on methods of reinforcement learning and their application to solve practical problems of decision-making in conditions of uncertainty. To achieve this goal, it is used fuzzy inference based on production rules knowledge bases to develop an algorithm for the operation of an intelligent agent. The empirical verification of the developed algorithm efficacy is carried out for the task of agent finding the optimal value of the function in the cell space with the determination of the direction of movement according to the rules of fuzzy logic.
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