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Intuitionistic Fuzzy Partial Logistic Regression Model Using Ridge Methodology

机译:利用岭方法的直观模糊局部逻辑回归模型

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摘要

This paper applies a ridge estimation approach in an existing partial logistic regression model with exact predictors, intuitionistic fuzzy responses, intuitionistic fuzzy coefficients and intuitionistic fuzzy smooth function to improve an existing intuitionistic fuzzy partial logistic regression model in the presence of multicollinearity. For this purpose, ridge methodology is also involved to estimate the parametric intuitionistic fuzzy coefficients and nonparametric intuitionistic fuzzy smooth function. Some common goodness-of-fit criteria are also used to examine the performance of the proposed regression model. The potential application of the proposed method are illustrated and compared with the intuitionistic partial logistic regression model through two numerical examples. The results clearly indicate the proposed ridge method is quite efficient in model's performances when there is multicollinearity among the predictors.
机译:本文在现有的部分逻辑回归模型中应用了具有精确的预测因子,直觉模糊响应,直觉模糊系数和直觉模糊平滑功能的脊估计方法,以改善多种性性存在的现有直观模糊部分逻辑回归模型。为此目的,岭方法也涉及估计参数化直觉模糊系数和非参数直觉模糊光滑函数。一些常见的拟合性标准也用于检查所提出的回归模型的性能。通过两个数值示例与直觉部分逻辑回归模型进行说明和比较了所提出的方法的潜在应用。结果清楚地表明,当预测器中有多种性性时,所提出的脊法在模型的性能方面非常有效。

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