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A Bayesian network model for user's preference estimation of personalized TV service

机译:贝叶斯网络模型,用于用户个性化电视服务的偏好估计

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In this paper, we propose a statistical method to inference user's preference on watching TV programs. The inference of preference is one of core modules for the personalized TV service, and we introduce a structure for the service. We designed a signal model for usage history and user preference data, and a statistical model as a Bayesian network, and developed an inference method based on message passing algorithm. With a set of real TV viewers' watching records at terrestrial TV receiver, we tested our inference model and present the inference results or genre or channel preference given day and time.
机译:在本文中,我们提出了一种统计方法来推断用户在观看电视节目时的偏好。偏好推断是个性化电视服务的核心模块之一,我们介绍了该服务的结构。我们针对使用历史和用户偏好数据设计了一个信号模型,并设计了一个作为贝叶斯网络的统计模型,并开发了一种基于消息传递算法的推理方法。通过一组实际的电视观众在地面电视接收机处的观看记录,我们测试了我们的推理模型,并给出了推理结果或类型或给定日期和时间的频道偏好。

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