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Personalized Web search for improving retrieval effectiveness

机译:个性化Web搜索以提高检索效率

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摘要

Current Web search engines are built to serve all users, independent of the special needs of any individual user. Personalization of Web search is to carry out retrieval for each user incorporating his/her interests. We propose a novel technique to learn user profiles from users' search histories. The user profiles are then used to improve retrieval effectiveness in Web search. A user profile and a general profile are learned from the user's search history and a category hierarchy, respectively. These two profiles are combined to map a user query into a set of categories which represent the user's search intention and serve as a context to disambiguate the words in the user's query. Web search is conducted based on both the user query and the set of categories. Several profile learning and category mapping algorithms and a fusion algorithm are provided and evaluated. Experimental results indicate that our technique to personalize Web search is both effective and efficient.
机译:当前的Web搜索引擎旨在为所有用户提供服务,而与任何单个用户的特殊需求无关。 Web搜索的个性化应针对每个结合其兴趣的用户进行检索。我们提出了一种从用户的搜索历史中学习用户资料的新颖技术。然后,使用用户配置文件来提高Web搜索中的检索效率。分别从用户的搜索历史和类别层次结构中学习用户配置文件和常规配置文件。将这两个配置文件组合起来,可以将用户查询映射到一组类别中,这些类别代表用户的搜索意图,并用作上下文以消除用户查询中的单词歧义。基于用户查询和类别集进行Web搜索。提供并评估了几种轮廓学习和类别映射算法以及融合算法。实验结果表明,我们用于个性化Web搜索的技术既有效又高效。

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