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Noise elimination of nonlinear systems using Takagi-Sugeno model

机译:使用Takagi-Sugeno模型消除非线性系统的噪声

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In the old paper of Mukhopadhyay and Narendra, the problem of disturbance rejection in the control of nonlinear systems with additive disturbance generated by some unforced dynamical systems, was formulated and solved by using neural networks for several models of varying complexity, but the purpose of this paper is how using the fuzzy set systems in the problem of disturbance rejection, and to provide theoretical justification to existence of solution. The objective is to determine the identification model and the control law to minimize the effect of the disturbance at the output. In all cases, several stages of increasing complexity of the problem are discussed in detail. Two simulation studies based on the results discussed are included towards the end of the paper.
机译:在Mukhopadhyay和Narendra的旧论文中,通过使用神经网络对几种复杂程度不同的模型进行了建模和求解,解决了非线性系统的控制中的扰动抑制问题,该非线性系统具有一些非强迫动力系统所产生的加性扰动。本文将如何在干扰抑制问题中使用模糊集系统,并为解决方案的存在提供理论依据。目的是确定识别模型和控制规律,以最小化输出干扰的影响。在所有情况下,都详细讨论了问题日益复杂的几个阶段。到本文结尾时,根据讨论的结果进行了两项仿真研究。

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