Interval valued fuzzy rough classifier and its application on privacy protection

Suyun Zhao, Si Lin
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Abstract

Currently, most works on interval valued problems mainly focus on attribute reduction (i.e., feature selection) by using rough set technologies. However, less research work on classifier building on interval-valued problems has been conducted. It is promising to propose an approach to build classifier for interval-valued problems. In this paper, we propose a classification approach based on interval valued fuzzy rough sets. First, the concept of interval valued fuzzy granules are proposed, which is the crucial notion to build the reduction framework for the interval-valued databases. Second, the idea to keep the critical value invariant before and after reduction is selected. Third, the structure of reduction rule is completely studied by using the discernibility vector approach. After the description of rule inference system, a set of rules covering all the objects can be obtained, which is used as a rule based classifier for future classification. Finally, numerical examples are presented to illustrate feasibility and affectivity of the proposed method in the application of privacy protection.
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区间值模糊粗糙分类器及其在隐私保护中的应用
目前,大多数关于区间值问题的研究主要集中在利用粗糙集技术进行属性约简(即特征选择)。然而,关于区间值问题分类器构建的研究较少。本文提出了一种区间值问题分类器的构建方法。本文提出了一种基于区间值模糊粗糙集的分类方法。首先,提出区间值模糊粒的概念,这是构建区间值数据库约简框架的关键概念。其次,选择约简前后保持临界值不变的思路。第三,采用可别性向量方法对约简规则的结构进行了全面研究。在对规则推理系统进行描述后,可以得到一组覆盖所有对象的规则,作为基于规则的分类器,用于以后的分类。最后,通过数值算例说明了该方法在隐私保护应用中的可行性和有效性。
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