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Integrating User Reviews and Ratings for Enhanced Personalized Searching

机译:集成用户评论和评分以增强个性化搜索

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摘要

With the development of e-commerce, websites such as Amazon and eBay have become very popular. Users post reviews of products and rate the helpfulness of reviews on these websites. Reviews written by a user and reviews rated by a user reflect the user's interests and disinterest. Thus, they are very useful for user profiling. In this study, the authors explore users' reviews and ratings of reviews for personalized searching and propose a review-based user profiling method. To satisfy a user's basic information needs, expressed in the form of a query, they also propose a priority-based result ranking strategy. For evaluation, they conduct experiments on a real-life data set. The experimental results show that their method can significantly improve retrieval quality.
机译:随着电子商务的发展,诸如Amazon和eBay的网站已变得非常流行。用户在这些网站上发布产品评论并评价评论的有用性。用户撰写的评论和用户评分的评论反映了用户的兴趣和不感兴趣。因此,它们对于用户概要分析非常有用。在这项研究中,作者探索了用户的评论和评论的等级以进行个性化搜索,并提出了基于评论的用户分析方法。为了满足用户以查询形式表示的基本信息需求,他们还提出了基于优先级的结果排名策略。为了进行评估,他们对真实数据集进行了实验。实验结果表明,该方法可以显着提高检索质量。

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