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Adopting user profiles and behavior patterns in a Web-TV recommendation system

机译:在网络电视推荐系统中采用用户个人资料和行为模式

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With recent advances in consumer electronics, it is noted that personalization and interactivity have become two challenging issues to further improve user experiences in watching TV. As there are thousands of TV programs broadcasted everyday, people may spend much time in finding their desirable programs. In view of this, we focus on developing a proper recommendation scheme in the Web-TV environment so that users can be recommended with appropriate programs. Specifically, we propose to estimate user preferences and ratings with both explicit and implicit information provided by users. Moreover, a prototype system which utilizes the adaptive recommendation approach is developed to illustrate the feasibility of the proposed scheme in this paper.
机译:随着消费电子产品的最新发展,注意到个性化和交互性已成为两个挑战性问题,以进一步改善用户在看电视时的体验。由于每天都有成千上万的电视节目播出,因此人们可能会花费大量时间来寻找自己想要的节目。有鉴于此,我们专注于在Web-TV环境中开发适当的推荐方案,以便可以通过适当的程序向用户推荐。具体而言,我们建议使用用户提供的显式和隐式信息来估计用户的偏好和等级。此外,开发了利用自适应推荐方法的原型系统,以说明本文提出的方案的可行性。

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