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Automatic text categorization and its application to text retrieval

机译:自动文本分类及其在文本检索中的应用

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We develop an automatic text categorization approach and investigate its application to text retrieval. The categorization approach is derived from a combination of a learning paradigm known as instance-based learning and an advanced document retrieval technique known as retrieval feedback. We demonstrate the effectiveness of our categorization approach using two real-world document collections from the MEDLINE database. Next, we investigate the application of automatic categorization to text retrieval. Our experiments clearly indicate that automatic categorization improves the retrieval performance compared with no categorization. We also demonstrate that the retrieval performance using automatic categorization achieves the same retrieval quality as the performance using manual categorization. Furthermore, detailed analysis of the retrieval performance on each individual test query is provided.
机译:我们开发了一种自动文本分类方法,并研究了其在文本检索中的应用。分类方法是从学习范例(称为基于实例的学习)和高级文档检索技术(称为检索反馈)的组合得出的。我们使用MEDLINE数据库中的两个实际文档集来证明我们的分类方法的有效性。接下来,我们研究自动分类在文本检索中的应用。我们的实验清楚地表明,与不分类相比,自动分类可以提高检索性能。我们还证明,使用自动分类的检索性能可实现与使用手动分类的检索性能相同的检索质量。此外,提供了对每个单独的测试查询的检索性能的详细分析。

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