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Parameters Extraction for Fuzzy Modeling of Nonlinear System

机译:非线性系统模糊建模的参数提取

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The modeling and identification of nonlinear systems are important but challenging problems. Because of numerous advantages fuzzy models are often preferred to describe such systems. However, in many cases the generated models are very complex. In the paper, a new fuzzy modeling method of nonlinear system is proposed. The fuzzy model is identified as black-box model with input-output training data. A modified self-organizing map (MSOM) network is developed for generating parameters of fuzzy model. Based on the MSOM, fuzzy rules are determined automatically according to the distribution of training data in the input-output space. Simulating example indicates that the fuzzy modeling method is effective.
机译:非线性系统的建模和识别是重要但具有挑战性的问题。由于具有许多优点,通常优选使用模糊模型来描述此类系统。但是,在许多情况下,生成的模型非常复杂。本文提出了一种新的非线性系统模糊建模方法。模糊模型被识别为具有输入输出训练数据的黑盒模型。开发了一种改进的自组织映射网络(MSOM),用于生成模糊模型的参数。基于MSOM,根据训练数据在输入输出空间中的分布,自动确定模糊规则。仿真实例表明模糊建模方法是有效的。

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