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Using temporal bursts for query modeling

机译:使用时间突发进行查询建模

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We present an approach to query modeling that leverages the temporal distribution of documents in an initially retrieved set of documents. In news-related document collections such distributions lend to exhibit bursts. Here, we deline a burst to be a time period where unusually many documents are published. In our approach we detect bursts in result lists returned for a query. We then model the term distributions of the bursts using a reduced result list and select its most descriptive terms. Finally, we merge the sets of terms obtained in this manner so as to arrive at a reformulation of the original query. For query sets that consist of both temporal and non-temporal queries, our query modeling approach incorporates an effective selection method of terms. We consistently and significantly improve over various baselines, such as relevance models, on both news collections and a collection of blog posts.
机译:我们提出了一种查询建模的方法,该方法利用了最初检索到的文档集中的文档的时间分布。在与新闻有关的文献收藏中,这样的发行表现出突发性。在这里,我们将突发描述为一个时间段,在该时间段内,会发布许多文档。在我们的方法中,我们在查询返回的结果列表中检测突发。然后,我们使用简化的结果列表为突发的项分布建模,并选择其最具描述性的项。最后,我们合并以这种方式获得的术语集,以便重新制定原始查询。对于同时包含时间查询和非时间查询的查询集,我们的查询建模方法采用了有效的术语选择方法。我们在新闻收集和博客文章收集的各种基准(例如相关性模型)上持续且显着改善。

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