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Content Classification and Recommendation Techniques for Viewing Electronic Programming Guide on a Portable Device

机译:用于在便携式设备上查看电子编程引导的内容分类和推荐技术

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With the merge of digital television (DTV) and exponential growth of broadcasting network, an overwhelmingly amount of information has been made available to a consumer's home. Therefore, how to provide consumers with the right amount of information becomes a challenging problem. In this paper, we propose an electronic programming guide (EPG) recommender based on natural language processing techniques, more specifically, text classification. This recommender has been implemented as a service on a home network that facilitates the personalized browsing and recommendation of TV programs on a portable remote device. Evaluations of our Maximum Entropy text classifier were performed on multiple categories of TV programs, and a near 80% retrieval rate is achieved using a small set of training data.
机译:随着数字电视(DTV)和广播网络的指数增长的合并,已经向消费者的家提供了绝大多数信息。因此,如何为消费者提供正确的信息成为一个具有挑战性的问题。在本文中,我们提出了一种基于自然语言处理技术的电子编程指南(EPG)推荐器,更具体地,文本分类。此推荐人已在家庭网络上实现为服务,促进了在便携式远程设备上的个性化浏览和电视节目的推荐。我们的最大熵文本分类器的评估是对多个类别的电视节目执行的,并且使用一小组训练数据来实现接近80%的检索率。

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