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Fuzzy least-squares algorithms for interactive fuzzy linear regression models

机译:交互式模糊线性回归模型的模糊最小二乘算法

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摘要

Fuzzy regression analysis can be thought of as a fuzzy variation of classical regression analysis. It has been widely studied and applied in diverse areas. In general, the analysis of fuzzy regression models can be roughly divided into two categories. The first is based on Tanaka's linear-programming approach. The second category is based on the fuzzy least-squares approach. In this paper, new types of fuzzy least-squares algorithms with a noise cluster for interactive fuzzy linear regression models are proposed. These algorithms are robust for the estimation of fuzzy linear regression models, especially when outliers are present. Numerical examples are given to detail the effectiveness of this approach.
机译:模糊回归分析可以看作是经典回归分析的模糊变体。它已被广泛研究并应用于不同领域。通常,模糊回归模型的分析可以大致分为两类。第一种是基于田中的线性编程方法。第二类基于模糊最小二乘法。针对交互式模糊线性回归模型,提出了一种新型的带有噪声簇的模糊最小二乘算法。这些算法对于模糊线性回归模型的估计具有鲁棒性,尤其是在存在异常值时。数值示例详细说明了该方法的有效性。

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