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A novel prediction method of relevancy for focused crawling in topic specific search

机译:专题特定搜索主题爬行的新预测方法

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A focused crawler is a web crawler which returns relevant web pages on a given topic in traversing the web. In order to determine topical relevancy, focused crawler use different classification schemes. We propose a novel method of predicting the relevancy of links in topic specific search. In this paper we focus on classification of links using decision tree induction and neural network classifiers to improve the performance of focused crawler. Our experimental results show that proposed approach has better performance than other related approaches.
机译:聚焦爬虫是一个Web爬网程序,它在给定主题返回相关的网页时遍历Web。为了确定主题相关性,聚焦履带使用不同的分类方案。我们提出了一种预测特定于专题搜索中链接相关性的新方法。在本文中,我们专注于使用决策树诱导和神经网络分类器的链路分类,以提高聚焦履带的性能。我们的实验结果表明,提出的方法具有比其他相关方法更好的性能。

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