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A Recommendation Framework towards Personalized Services in Intelligent Museum

机译:智能博物馆个性化服务推荐框架

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Museum visitors are being overloaded with increasing amount and variety of information that heavens their burden to locate what is really interesting. Development of personalized service for museum visitors makes a promising effort to alleviate the problem. In this paper, a recommendation framework and the related algorithms are proposed for intelligent museum. Using both the explicit and implicit visit behaviors data, preference learning algorithm computes the preference of a visitor in exhibits. Exhibit recommendation algorithm takes a visitor’s preference and the public evaluation history on exhibits into account in the pre-selection and refinement of recommended exhibits. We implemented the recommendation framework based on our previously developed smart museum platform, iMuseum. The effectiveness of the proposed framework and algorithms are verified through experiments.
机译:博物馆访客随着数量和各种各样的信息而被过载,以定位真正有趣的东西。为博物馆访问者的个性化服务的开发是有希望减轻问题的有希望的努力。本文提出了一个推荐框架和相关算法,为智能博物馆提出。使用显式和隐式访问行为数据,偏好学习算法计算展品中的访问者的偏好。展览推荐算法在预选择和改进推荐展品的预选和改进方面考虑到访客的偏好和公众评估历史。我们根据我们以前开发的智能博物馆平台,Imuseum实施了推荐框架。通过实验验证了所提出的框架和算法的有效性。

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