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An application of F-transform to a regression model based on Theil's method

机译:F变换在基于Theil方法的回归模型中的应用

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Regression Analysis is an analyzing method of regression model to explain the statistical relationship between explanatory variables and response variables. This paper propose a new regression analysis applying Theil's method based on F-transform. The main advantage of Theil's method in regression is the robustness, which means that it is not sensitive to outliers. The proposed method uses the median of rates of increments which are obtained from F-transform, based all possible pairs of F-transformed data in order to estimate the coefficients of fuzzy regression model. An example is given to show that the proposed regression analysis applying Theil's method based on F-transform is more robust than the least squares estimation (LSE) and even more robust than the original Theil's method.
机译:回归分析是一种回归模型的分析方法,用于解释解释变量和响应变量之间的统计关系。本文提出了一种基于泰尔方法的基于F变换的回归分析方法。 Theil方法在回归方面的主要优势是鲁棒性,这意味着它对异常值不敏感。所提出的方法使用从F变换获得的增量速率的中位数,基于所有可能的F变换数据对,以估计模糊回归模型的系数。给出了一个例子,表明采用基于F变换的泰尔(Theil)方法的回归分析比最小二乘估计(LSE)更鲁棒,甚至比原始泰尔(Theil)方法更鲁棒。

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