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Document Re-ranking Based on Topic-Comment Structure

机译:基于主题评论结构的文档重排

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摘要

This paper introduces a novel approach for document re-ranking in information retrieval based on topic-comment structure of texts. While most information retrieval models make the assumption that relevant documents are about the query and that aboutness can be captured considering bags of words only, we rather consider a more sophisticated analysis of discourse to capture document relevance by distinguishing the topic of a text from what is said about the topic (comment) in the text. The topic-comment structure of texts is extracted automatically from the first retrieved documents which are then re-ranked so that the top documents are the ones that share their topics with the query. The evaluation on TREC collections shows that the method significantly improves the retrieval performance.
机译:本文介绍了一种基于文本主题-评论结构的信息检索中文档重新排序的新方法。尽管大多数信息检索模型都假设相关文档是关于查询的,并且仅通过单词袋就可以捕获相关性,但是我们宁愿考虑对话语进行更复杂的分析,以通过区分文本主题和内容来捕获文档相关性。在文字中提到主题(评论)。文本的主题注释结构是从第一个检索到的文档中自动提取的,然后对其重新排序,从而使顶部文档是与查询共享其主题的文档。对TREC集合的评估表明,该方法显着提高了检索性能。

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