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Adaptive critic-based quaternion neuro-fuzzy controller design with application to chaos control

机译:基于自适应批评的季度神经模糊控制器设计,应用于混沌控制

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Neuro-fuzzy control structures despite all of the advantages from both neural networks features and fuzzy inference engines always get in trouble due to a large number of fuzzy rules which is because of the high order of the system or the large number of divisions considered for each input. In this paper, a new adaptive neuro-fuzzy controller is proposed based on the quaternion numbers, and thus the mentioned problem of large rule numbers is solved by using the quaternion back propagation concept. Furthermore, utilizing reinforcement learning which assesses output value produced by a critic is another strength of the proposed method. Finally, in order to show the superiority and effectiveness of the proposed controller in comparison with conventional neuro-fuzzy ones, a complex and challenging chaos control problem which is a chaotic spinning disk control is provided. (C) 2018 Elsevier B.V. All rights reserved.
机译:神经模糊控制结构尽管神经网络的特征和模糊推理引擎的所有优点始终由于大量的模糊规则而遇到麻烦,这是因为系统的高阶或每个都考虑的大量划分 输入。 本文基于四元数提出了一种新的自适应神经模糊控制器,因此通过使用四元数回到传播概念来解决大规模数量的提到的问题。 此外,利用增强学习,评估评论家产生的输出值是拟议方法的另一个强度。 最后,为了展示所提出的控制器的优越性和有效性与传统的神经模糊器相比,提供了一种复杂和挑战的混沌控制问题,其是混沌旋转盘控制。 (c)2018 Elsevier B.v.保留所有权利。

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