一种基于区间2型模糊集的分类信息过滤方法

F. P. Romero, J. Serrano-Guerrero, J. A. Olivas, Andrés Soto
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引用次数: 0

摘要

基于类别的信息过滤是根据一组类似项目的类别来表示用户偏好的。当只考虑一种静态解释时,使用类型1模糊集提供了一种很好的方法来表示类别。当文档对两个不同的用户具有不同的含义时,这种表示是不够的,因为存在一定程度的主观性。另一方面,在一些环境中,2型模糊集已被成功地应用于比1型模糊集更有效地管理不确定性。本文提出了一种在不断有新信息(新闻、电子邮件等)且涉及多个用户的环境中有效管理过滤过程中不确定性的方法。提出的解决方案是基于基于类别的过滤方法的扩展,使用区间2型模糊集来表示每个类别和用户偏好。实验结果表明了该方法的可行性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A category-based information filtering approach based on interval type 2 fuzzy sets
Category-based information filtering is ground on the representation of user preferences according to a set of categories of similar items. The use of type 1 fuzzy sets provides a good method to represent categories when only one static interpretation of them is considered. This representation is not enough when documents do not have the same meaning for two different users because there are some degrees of subjectivity. On the other hand, type 2 fuzzy sets have been successfully applied to manage uncertainty more effectively than type-1 fuzzy sets in several environments. This paper presents a method to manage efficiently uncertainties in the filtering process in environments where there is a constant flow of new information (news, e-mail, etc.) and multiple users are involved. The proposed solution is based on the extension of the categories-based filtering method using interval type 2 fuzzy sets for representing each category and the user preferences. Experimental results, that illustrate the feasibility of this approach, are provided.
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