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Data Driven Aerodynamic Modeling Using Mamdani Fuzzy Inference Systems

机译:基于Mamdani模糊推理系统的数据驱动空气动力学建模。

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In this paper, an application of Mamdani fuzzy model has been presented for aerodynamic modeling of the fixed wing aircraft. Here, Mamdani model is used to represent the nonlinear dynamics of the aircraft. Efficacy of the rule based model has been demonstrated for the identification of the yawing moment coefficient of Advanced Technologies Testing Aircraft System (ATTAS) aircraft from the recorded flight data. The input and output spaces are divided uniformly and Gaussian type MFs are generated from the training data set. Fivefold cross validation method is used to access the adequacy of the generated fuzzy model. The parameter tracking trends and mean square errors for training and testing data sets show commendable modeling capability of Mamdani fuzzy model for extraction of aerodynamic derivatives.
机译:在本文中,提出了Mamdani模糊模型在固定翼飞机空气动力学建模中的应用。在这里,Mamdani模型用于表示飞机的非线性动力学。为了从记录的飞行数据中识别先进技术测试飞机系统(ATTAS)飞机的偏航力矩系数,已经证明了基于规则的模型的有效性。输入和输出空间被均匀划分,并从训练数据集中生成高斯型MF。五重交叉验证方法用于访问生成的模糊模型的充分性。用于训练和测试数据集的参数跟踪趋势和均方误差显示了Mamdani模糊模型用于提取空气动力学导数的可建模能力。

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