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Fuzzy Lasso regression model with exact explanatory variables and fuzzy responses

机译:具有精确解释变量和模糊响应的模糊套索回归模型

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Fuzzy multivariate regression analysis is aimed to model the relationship between a set of fuzzy responses and a set of non-fuzzy or fuzzy explanatory variables. This paper extended the Lasso method for multiple linear regression model possessing non-fuzzy explanatory variables and fuzzy responses. The fuzzy Lasso method is able to increase the interpretability of the model by eliminating the variables irrelevant to the fuzzy response variables. For this purpose, a fuzzy penalized method was introduced to estimate unknown fuzzy regression coefficients and tuning constant. Some common goodness-of-fit criteria were also employed to examine the performance of the proposed method. The effectiveness of the proposed method was also assessed through two applied examples and a simulation study. Moreover, the proposed method was compared with several common fuzzy multiple regression models. The numerical results clearly showed higher accuracy of the proposed fuzzy Lasso method compared to the other existing fuzzy multiple regression models in determination of the noninformative explanatory variables. Thus, the proposed fuzzy Lasso regression model can be successfully applied to improve the prediction accuracy and interpretability of the fuzzy multiple regression models for real life applications in expert systems. (C) 2019 Elsevier Inc. All rights reserved.
机译:模糊多元回归分析旨在对一组模糊响应与一组非模糊或模糊解释变量之间的关系进行建模。本文将Lasso方法扩展到具有非模糊解释变量和模糊响应的多元线性回归模型。模糊套索方法能够通过消除与模糊响应变量无关的变量来提高模型的可解释性。为此,引入了一种模糊惩罚方法来估计未知的模糊回归系数和调整常数。一些常用的拟合优度标准也被用来检验所提出方法的性能。还通过两个应用实例和模拟研究评估了所提出方法的有效性。此外,将该方法与几种常见的模糊多元回归模型进行了比较。数值结果清楚地表明,与其他现有的模糊多元回归模型相比,所提出的模糊套索方法在确定非信息性解释变量方面具有更高的准确性。因此,所提出的模糊套索回归模型可以成功地用于提高模糊多元回归模型在专家系统中的实际应用中的预测准确性和可解释性。 (C)2019 Elsevier Inc.保留所有权利。

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