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Context-Aware Ontological Hybrid Recommender System For IPTV

机译:用于IPTV的上下文感知本体混合推荐系统

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摘要

With the huge growing amount of information continuously produced, shared and available online, finding relevant and beneficial contents or services at a single or few clicks have become almost impossible. Most of the time, we will be returned with thousands of irrelevant web links. As such, a recommender system which recommends contents or services that likely meet the user's needs is crucial, especially in the IPTV domain when the choices for program selection has no time and physical boundary restriction. The two major recommendation techniques are content based and collaborative filtering. Nevertheless, such techniques still suffer from several problems such as cold start, data sparsity and over specialization. Our proposed system namely COHRS is a context-aware recommender system based on ontological profiling under the IPTV domain. Ontological approach improves user profiling process and thus improving the accuracy of a recommendation system. Experimental evaluations indicate that COHRS is able to overcome the drawbacks such as over specialization, data sparsity and inefficiency issue of most traditional recommender systems.
机译:随着不断产生,共享和在线获取的大量信息不断增加,单击或单击几下即可找到相关且有益的内容或服务几乎变得不可能。在大多数情况下,我们将获得数千个不相关的Web链接。因此,推荐系统可能是很重要的,它可以推荐可能满足用户需求的内容或服务,特别是在IPTV域中,因为节目选择的选择没有时间和物理边界的限制。两种主要的推荐技术是基于内容的过滤和协作过滤。然而,这样的技术仍然遭受诸如冷启动,数据稀疏性和过度专业化的若干问题。我们提出的系统COHRS是基于IPTV领域的本体分析的上下文感知推荐系统。本体方法改善了用户配置文件的过程,从而提高了推荐系统的准确性。实验评估表明,COHRS能够克服大多数传统推荐系统过度专业化,数据稀疏和效率低下等缺点。

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