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Video on demand recommender system for internet protocol television service based on explicit information fusion

机译:基于显式信息融合的互联网协议电视服务视频点播推荐系统

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Internet protocol television (IPTV) provides video on demand (VOD), internet service, and real-time broadcasting to users as a service that combines broadcasting and communication technology. Among various services, the sales of VOD are profitable because VODs offer relatively strong direct revenue models in IPTV services. However, the development of a VOD recommender system for IPTV service is highly challenging owing to the lack of explicit preference information of users in an IPTV environment. Previous studies for IPTV VOD recommender systems have attempted to solve the data sparsity problem through implicit preference information; however, it is better to utilize explicit preference information to improve the performance of system. Recently, IPTV service providers have provided their own over-the-top (OTT) services such that explicit preference information of users for items can be combined. Therefore, we proposed a novel information fusion method for an IPTV VOD recommender system that integrates the explicit information of both IPTV and OTT services. In addition, we utilized the probabilistic matrix factorization, that guarantees high performance in most recommender systems, as a recommender algorithm in this study. Finally, we conducted comparative evaluations based on various metrics and validated that the information fusion of IPTV and OTT services contribute to the IPTV VOD recommender system. (C) 2019 Elsevier Ltd. All rights reserved.
机译:Internet协议电视(IPTV)作为结合广播和通信技术的服务,向用户提供视频点播(VOD),Internet服务和实时广播。在各种服务中,VOD的销售是有利可图的,因为VOD在IPTV服务中提供了相对强大的直接收入模型。然而,由于在IPTV环境中用户的明确的偏好信息的缺乏,用于IPTV服务的VOD推荐系统的开发是非常具有挑战性的。先前对IPTV VOD推荐器系统的研究已经尝试通过隐式偏好信息来解决数据稀疏性问题。但是,最好利用显式的偏好信息来提高系统性能。近来,IPTV服务提供商已经提供了他们自己的空中(OTT)服务,从而可以组合用户对项目的明确偏好信息。因此,我们为IPTV VOD推荐系统提出了一种新颖的信息融合方法,该方法融合了IPTV和OTT服务的显式信息。此外,在本研究中,我们利用概率矩阵分解法(在大多数推荐器系统中保证高性能)作为推荐器算法。最后,我们基于各种指标进行了比较评估,并验证了IPTV和OTT服务的信息融合有助于IPTV VOD推荐系统。 (C)2019 Elsevier Ltd.保留所有权利。

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