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基于一种新的核函数的模糊粗糙集
引用本文:叶秋萍,张红英. 基于一种新的核函数的模糊粗糙集[J]. 计算机科学, 2017, 44(9): 70-73, 87
作者姓名:叶秋萍  张红英
作者单位:西安交通大学数学与统计学院 西安710049,西安交通大学数学与统计学院 西安710049
摘    要:模糊粗糙集作为模糊集与粗糙集的结合体,能够有效处理数据的复杂性和不确定性。由模糊相似关系产生的模糊粒结构可以对模糊粗糙集中不确定性的概念进行近似。核函数和模糊相似关系分别是机器学习和模糊粗糙集的核心因素,因此借助模糊相似关系和核函数之间的关系,构造了一种新的核函数,并定义了相应的核模糊粗糙集。最后通过实例说明新构造的核函数具有一定的推广性。

关 键 词:模糊粗糙集  核函数  模糊相似关系
收稿时间:2016-08-04
修稿时间:2016-09-24

Fuzzy Rough Sets Based on New Kernel Functions
YE Qiu-ping and ZHANG Hong-ying. Fuzzy Rough Sets Based on New Kernel Functions[J]. Computer Science, 2017, 44(9): 70-73, 87
Authors:YE Qiu-ping and ZHANG Hong-ying
Abstract:Fuzzy rough sets,as a combination of fuzzy sets and rough sets,can deal with the complexity and uncertainty of data sets effectively.Fuzzy granule structures derived by fuzzy similarity relations are used to study the quantitative fuzzy rough sets.Kernel functions and fuzzy similarity relations are the key factors of machine learning and fuzzy rough sets.With the relationship between the fuzzy similarity relation and the kernel function,this paper presented a new approach to construct kernel function and gave the corresponding fuzzy rough sets.Moreover,this paper gave a comparative experimental analysis,and the results show that the new kernel function has generality.
Keywords:Fuzzy rough sets  Kernel functions  Fuzzy similarity relations
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