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Hierarchical Classification for Multiple, Distributed Web Databases

机译:多个分布式Web数据库的层次分类

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The proliferation of online information resources increases the importance of effective and efficient distributed searching. This research aims to provide an alternative hierarchical categorization and search capability based on a Baysian network learning algorithm. Our proposed approach, which is grounded on automatic textual analysis of web content of online web databases, attempts to address the database selection problem by first classifying web databases into a hierarchy of topic categories. The experimental results reported here demonstrate that such a classification approach not only effectively reduces the class search space, but also helps to significantly improve accuracy on classification performance.
机译:在线信息资源的激增增加了有效而高效的分布式搜索的重要性。本研究旨在提供一种基于贝叶斯网络学习算法的替代层次分类和搜索功能。我们提出的方法基于对在线Web数据库的Web内容进行自动文本分析,试图通过首先将Web数据库分类为主题类别的层次结构来解决数据库选择问题。此处报告的实验结果表明,这种分类方法不仅有效地减少了类别搜索空间,而且还有助于显着提高分类性能的准确性。

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