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A goal programming approach to fuzzy linear regression with fuzzy input–output data

机译:具有模糊输入输出数据的模糊线性回归的目标规划方法

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摘要

Fuzzy linear regression is an active area of research. In the literature, fuzziness is considered in outputs and/or in inputs. This paper focuses on both fuzzy inputs and fuzzy outputs. First, some approximations for multiplication of two triangular fuzzy numbers are introduced. Then, to evaluate the fuzzy linear regression, the best approximation is selected to minimize a suitable function via goal programming. An important feature of the proposed model is that it takes into account the centers of fuzzy data as well as their spreads. Moreover, it is flexible to deal with both symmetric and non-symmetric data. Furthermore, it can handle the crisp inputs and trapezoidal fuzzy outputs easily. To show the efficiency of the proposed model, some numerical examples are solved and compared with some earlier methods.
机译:模糊线性回归是一个活跃的研究领域。在文献中,在输出和/或输入中考虑了模糊性。本文着重于模糊输入和模糊输出。首先,介绍了两个三角模糊数相乘的一些近似方法。然后,为了评估模糊线性回归,通过目标编程选择最佳近似值以最小化合适的函数。提出的模型的一个重要特征是它考虑了模糊数据的中心及其散布。而且,可以灵活地处理对称和非对称数据。此外,它可以轻松处理清晰的输入和梯形模糊输出。为了显示所提出模型的效率,对一些数值示例进行了求解,并与一些早期方法进行了比较。

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