数字电视的语义推荐系统:从人口刻板印象到个性化推荐

J. Avila, X. Riofrio, K. Palacio-Baus, M. Espinoza-Mejía, Víctor Saquicela
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引用次数: 4

摘要

与模拟传输相比,数字电视(DTV)标准允许更多的可用电视台,从而提供更大的娱乐服务。在这种情况下,推荐系统(RS)通过根据用户的偏好和兴趣将他们的选择缩小到一个减少的集合来支持用户选择娱乐内容。然而,新用户或个人资料不完整的用户会阻碍系统产生准确的推荐,这在RS的早期阶段更为明显。本文建议使用基于用户注册期间获得的最小用户属性的人口统计定型方法。此外,我们提出了一个实验程序,可以用来比较系统的准确性为创建原型和用户广泛使用的系统。
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Semantic Recommender Systems for Digital TV: From Demographic Stereotyping to Personalized Recommendations
Compared to analog transmissions, Digital Television (DTV) standards allows a higher number of available TV stations and consequently, a larger entertainment offer. In this context, Recommender Systems (RS) support users in choosing entertainment content by narrowing their options to a reduced set based on their preferences an interests. However, new users or those having incomplete profiles prevent the system to produce accurate recommendations, which is more noticeable in early stages of the RS. This paper proposes the use of a demographic stereotyping approach based on minimal user attributes acquired during user registration. Furthermore, we propose an experimental procedure that can be used to compare the system accuracy for the created stereotypes and for users making extensive use of the system.
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