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A POV-Based User Model: From Learning Preferences to Learning Personal Ontologies

机译:基于POV的用户模型:从学习偏好到学习个人本体

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In recent years a variety of ontology-based recommender systems, which make use of a domain ontology to characterize the user model, have shown to be very effective. There are however some open issues with this approach, such as: 1) the creation of an ontology is an expensive process; 2) the ontology seldom takes into account the perspectives of target user communities; 3) different groups of users may have different domain conceptualizations; 4) the ontology is usually static and not able to learn automatically new semantic relationships or properties. To address these points, I propose an approach to automatically build multiple personal ontology views (POVs) from user feedbacks, tailored to specific user groups and exploited for recommendation purpose via spreading activation techniques.
机译:近年来,使用域本体的基于本体的推荐系统来表征用户模型,已显示非常有效。然而,这种方法有一些开放问题,如:1)本体的创建是一个昂贵的过程; 2)本体中很少考虑到目标用户社区的角度; 3)不同的用户组可能具有不同的域概念化; 4)本体通常是静态的,无法自动学习新的语义关系或属性。要解决这些点,我提出了一种方法来自动构建来自用户反馈的多个个人本体视图(POV),针对特定用户组定制,并通过传播激活技术来利用推荐目的。

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