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COLLABORATIVE WEB SEARCH BASED ON USER INTEREST SIMILARITY

机译:基于用户兴趣相似度的协作式Web搜索

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摘要

The motivation behind personal information agents resides in the enormous amount of information available on the Web, which has created a pressing need for effective personalized techniques. In order to assists Web search these agents rely on user profiles modeling information preferences, interests and habits that help to contextualize user queries. In communities of people with similar interests, collaboration among agents fosters knowledge sharing and, consequently, potentially improves the results of individual agents by taking advantage of the knowledge acquired by other agents. In this paper, we propose an agent-based recommender system for supporting collaborative Web search in groups of users with partial similarity of interests. Empirical evaluation showed that the interaction among personal agents increases the performance of the overall recommender system, demonstrating the potential of the approach to reduce the burden of finding information on the Web.
机译:个人信息代理背后的动机在于网络上可用的大量信息,这迫切需要有效的个性化技术。为了帮助进行Web搜索,这些代理依靠用户配置文件对信息的喜好,兴趣和习惯进行建模,以帮助实现用户查询的上下文。在具有相似兴趣的人的社区中,代理商之间的协作促进了知识共享,因此,可以利用其他代理商获得的知识来提高单个代理商的业绩。在本文中,我们提出了一种基于代理的推荐系统,用于支持部分兴趣相似的用户组中的协作Web搜索。实证评估表明,个人代理之间的交互作用提高了整个推荐系统的性能,这表明该方法有可能减轻在Web上查找信息的负担。

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