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Extending the Rocchio Relevance Feedback Algorithm to Provide Contextual Retrieval

机译:扩展Rocchio相关反馈算法以提供上下文检索

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摘要

Contextual retrieval supports differences amongst users in their information seeking requests. The Web, which is very dynamic and nearly universally accessible, is an environment in which it is increasingly difficult for users to find documents that satisfy their specific information needs. This problem is amplified as users tend to use short queries. Contextual retrieval attempts to address this problem by incorporating knowledge about the user and past retrieval results in the search process. In this paper we explore a feedback technique based on the Rocchio algorithm that significantly reduces demands on the user while maintaining comparable performance on the Reuters-21578 corpus.
机译:上下文检索支持用户在寻求请求中的用户之间的差异。 Web是非常动态和几乎普遍的访问,是用户越来越困难,用户可以找到满足其特定信息需求的文档。当用户倾向于使用短查询时,此问题被放大。背景检索尝试通过将关于用户的知识和过去的检索结果纳入搜索过程来解决此问题。在本文中,我们探讨了基于Rocchio算法的反馈技术,可以显着降低用户的需求,同时在Reuters-21578语料库上保持可比性。

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