首页> 外文会议>7th European Conference on Principles and Practice of Knowledge Discovery in Databases; Sep 22-26, 2003; Cavtat-Dubrovnik, Croatia >Preference Mining: A Novel Approach on Mining User Preferences for Personalized Applications
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Preference Mining: A Novel Approach on Mining User Preferences for Personalized Applications

机译:首选项挖掘:一种针对个性化应用程序挖掘用户首选项的新颖方法

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摘要

Advanced personalized e-applications require comprehensive knowledge about their user's likes and dislikes in order to provide individual product recommendations, personal customer advice and custom-tailored product offers. In our approach we model such preferences as strict partial orders with "A is better than B" semantics, which has been proven to be very suitable in various e-applications. In this paper we present novel Preference Mining techniques for detecting strict partial order preferences in user log data. The main advantage of our approach is the semantic expressiveness of the Preference Mining results. Experimental evaluations prove the effectiveness and efficiency of our algorithms. Since the Preference Mining implementation uses sophisticated SQL statements to execute all data-intensive operations on database layer, our algorithms scale well even for large log data sets. With our approach personalized e-applications can gain valuable knowledge about their customers' preferences, which is essential for a qualified customer service.
机译:先进的个性化电子应用程序需要全面了解其用户的好恶,才能提供个性化的产品推荐,个性化的客户建议和量身定制的产品。在我们的方法中,我们使用“ A优于B”语义对诸如严格偏序的首选项进行建模,这已被证明非常适用于各种电子应用程序。在本文中,我们提出了用于检测用户日志数据中严格的偏序偏好的新颖的偏好挖掘技术。我们的方法的主要优势是偏好挖掘结果的语义表达。实验评估证明了我们算法的有效性和效率。由于首选项挖掘实现使用复杂的SQL语句在数据库层上执行所有数据密集型操作,因此即使对于大型日志数据集,我们的算法也可以很好地扩展。使用我们的方法,个性化的电子应用程序可以获取有关其客户偏好的宝贵知识,这对于提供合格的客户服务至关重要。

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