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User-Involved Preference Elicitation for Product Search and Recommender Systems

机译:用户对产品搜索和推荐系统的偏好诱导

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We address user system interaction issues in product search and recommender systems: how to help users select the most preferential item from a large collection of alternatives. As such systems must crucially rely on an accurate and complete model of user preferences, the acquisition of this model becomes the central subject of our paper. Many tools used today do not satisfactorily assist users to establish this model because they do not adequately focus on fundamental decision objectives, help them reveal hidden preferences, revise conflicting preferences, or explicitly reason about tradeoffs. As a result, users fail to find the outcomes that best satisfy their needs and preferences. In this article, we provide some analyses of common areas of design pitfalls and derive a set of design guidelines that assist the user in avoiding these problems in three important areas: user preference elicitation, preference revision, and explanation interfaces. For each area, we describe the state-of-the-art of the developed techniques and discuss concrete scenarios where they have been applied and tested.
机译:我们解决产品搜索和推荐系统中的用户系统交互问题:如何帮助用户从大量替代产品中选择最优惠的商品。由于此类系统必须严格依赖用户偏好的准确而完整的模型,因此获取此模型成为我们论文的重点。当今使用的许多工具不能令人满意地帮助用户建立该模型,因为他们没有充分关注基本决策目标,无法帮助他们揭示隐藏的偏好,修改冲突的偏好或明确权衡取舍。结果,用户无法找到最能满足其需求和偏好的结果。在本文中,我们对设计陷阱的常见领域进行了一些分析,并得出了一组设计准则,这些准则可帮助用户避免在三个重要领域中避免这些问题:用户偏好启发,偏好修改和说明界面。对于每个领域,我们都描述了最新技术的发展水平,并讨论了已应用和测试这些技术的具体方案。

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