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Método computacional para la identificación de funciones de pertenencia en entornos de lógica difusa

机译:弥漫逻辑环境中归属函数识别的计算方法

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Fuzzy logic is commonly useful to represent the human logic behavior, and in particular in the design of both decision-making systems and classifiers. A big part of its accuracy is provided by the membership functions which usually are selected from a traditional group, e.g., triangular, pi and gamma functions, without considering the data behavior in the scope of application. Therefore, a wrong selection of it may have a negative effect on the accuracy of the decisions and classifications of the Fuzzy logic-based systems. In order to address this issue, in this paper, we propose a method for discovering membership functions, according to the data behavior in the scope of application. The proposal covers two processes, in the first, the guidelines for data preparation are provided, and in the second process, the discovery stages of the membership function are described. According to an evaluation of a model prototype, the proposal enables to confirm whether a traditional membership function is the most suitable, or alternatively, it allows to discover other special functions such as the |sinc(x)|. In relation to the |sinc(x) function, it's concluded that it can be a great choice to emulate the periodicity, which is a feature commonly seen in the data behavior in certain scopes of application.
机译:模糊逻辑通常用于代表人类逻辑行为,特别是在决策系统和分类器的设计中。其准确性的一部分是由通常选自传统组,例如三角形,PI和伽马功能的成员函数提供的,而不考虑应用范围中的数据行为。因此,错误的选择可能对基于模糊逻辑的系统的决策的准确性和分类的准确性产生负面影响。为了解决这个问题,在本文中,我们提出了一种根据应用范围内的数据行为来发现隶属函数的方法。该提案涵盖了两个过程,首先,提供了数据准备的指导方针,并在第二个过程中,描述了成员函数的发现阶段。根据模型原型的评估,该提案可以确认传统的成员函数是否是最合适的,或者,它允许发现其他特殊功能,如SING(x)|。关于| sinc(x)函数,它得出结论,模拟周期性可能是一个很好的选择,这是在某些应用范围内的数据行为中常见的一个特征。

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