Visualizing search results based on multi-label classification

Zhihua Wei, D. Miao, Rui Zhao, Chen Xie, Zhifei Zhang
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引用次数: 3

Abstract

Search engine has played an important role in information society. However, it is not very easy to find interest information from too much returned search results. Web search visualization system aims at helping users to locate interest documents rapidly from a great amount of returned search results. This paper explores visualization of Web search results based on multi-label text classification method. It conducts a multi-label classification process on the results from search engine. In this framework, users could browse interest information according to category label added by our algorithm. A paralleled Naïve Bayes multi-label classification algorithm is proposed for this application. A two-step feature selection algorithm is constructed to reduce the effect on Naïve Bayes classifier resulted from feature correlation and feature redundancy. A prototype system, named TJ-MLWC, is developed, which has the function of browsing search results by one or several categories.
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基于多标签分类的搜索结果可视化
搜索引擎在信息社会中扮演着重要的角色。然而,从大量返回的搜索结果中找到感兴趣的信息并不容易。Web搜索可视化系统旨在帮助用户从大量返回的搜索结果中快速定位感兴趣的文档。本文探讨了基于多标签文本分类方法的Web搜索结果可视化。它对搜索引擎的结果进行多标签分类处理。在该框架中,用户可以根据算法添加的类别标签浏览感兴趣的信息。提出了一种平行的Naïve贝叶斯多标签分类算法。为了减少特征相关性和特征冗余对Naïve贝叶斯分类器的影响,构造了一种两步特征选择算法。开发了一个原型系统TJ-MLWC,该系统具有按一个或多个类别浏览搜索结果的功能。
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