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Formal concept analysis support for web document clustering based on social tagging

机译:基于社交标记的Web文档聚类的正式概念分析支持

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摘要

Web document clustering is one of the most important research branches of Clustering Analyzing. The objective of web document clustering is to meet the need of retrieving web document efficiently from massive information in Internet. Recently social tagging is the important form of document organization in web 2.0, and the tagging as a document descriptor is used to improve the effectiveness of web searching. But a web document usually belongs to various category of tagging, which may lead to the difficulty of browsing web document based on single tagging. This paper explores the use of Formal Concept Analysis (FCA) as mathematical tool to analyze the social tagging of web document, and presents a model for web document clustering based on tagging semantic. Furthermore, taking community web site Douban as an example, the model is applied to allow users to tag and serendipitously browse web document using Formal Concept Analysis.
机译:Web文档群集是聚类分析最重要的研究分支之一。 Web文档聚类的目标是满足在Internet中的大规模信息中有效地检索Web文档的需求。最近,社交标记是Web 2.0中的文档组织的重要形式,而标签用作文档描述符用于提高Web搜索的有效性。但是,Web文档通常属于各种类别的标记,这可能导致基于单个标记浏览Web文档的难度。本文探讨了使用正式概念分析(FCA)作为分析Web文档的社交标记的数学工具,并提出了基于标记语义的Web文档聚类模型。此外,将社区网站辅导为例,应用模型以允许用户使用正式概念分析标记和Serentiply浏览Web文档。

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