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Regression analysis based on linguistic associations and perception-based logical deduction

机译:基于语言关联和基于感知的逻辑推论的回归分析

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We propose a new generalized model of linguistic variables based on fuzzy partition and its subpartitions. We use this new model for mining relationships between linguistic variables (linguistic associations) from a data set. These relationships can be interpreted as fuzzy IF-THEN rules in the implicative fuzzy inference engine, which is an extended version of the implicative inference called Perception-based Logical Deduction. We show that our extension leads to statistically significant improvements with respect to the previous model used with the help of original and successful Perception-based Logical Deduction. We perform the comparison with different measures of rule quality and five datasets. We can obtain improvements in prediction precision while retaining the interpretability of the models. We, also compare our method with the classical machine learning methods and obtain a similar quality of precision, which is very encouraging because interpretability usually leads to worse precision. (C) 2016 Elsevier Ltd. All rights reserved.
机译:我们提出了一种新的基于模糊分区及其子分区的语言变量广义模型。我们使用此新模型来挖掘数据集中的语言变量(语言关联)之间的关系。这些关系可以在隐含模糊推理引擎中解释为模糊IF-THEN规则,它是隐含推理的扩展版本,称为基于感知的逻辑推论。我们证明,在原始和成功的基于感知的逻辑推论的帮助下,我们的扩展相对于先前使用的模型在统计上有显着改进。我们使用不同的规则质量度量和五个数据集进行比较。在保留模型的可解释性的同时,我们可以提高预测精度。我们还将我们的方法与经典的机器学习方法进行比较,并获得相似的精度,这非常令人鼓舞,因为可解释性通常会导致精度下降。 (C)2016 Elsevier Ltd.保留所有权利。

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