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Frequency-based similarity measure for multimedia recommender systems

机译:多媒体推荐系统基于频率的相似性度量

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Personalized recommendation has become a pivotal aspect of online marketing and e-commerce as a means of overcoming the information overload problem. There are several recommendation techniques but collaborative recommendation is the most effective and widely used technique. It relies on either item-based or user-based nearest neighborhood algorithms which utilize some kind of similarity measure to assess the similarity between different users or items for generating the recommendations. In this paper, we present a new similarity measure which is based on rating frequency and compare its performance with the current most commonly used similarity measures. The applicability and use of this similarity measure from the perspective of multimedia content recommendation is presented and discussed.
机译:个性化推荐已成为在线营销和电子商务的关键方面,作为克服信息过载问题的一种手段。有几种推荐技术,但是协作推荐是最有效和使用最广泛的技术。它依赖于基于项目或基于用户的最近邻算法,该算法利用某种相似性度量来评估不同用户或项目之间的相似性以生成推荐。在本文中,我们提出了一种基于额定频率的新相似性度量,并将其性能与当前最常用的相似性度量进行比较。从多媒体内容推荐的角度介绍和讨论了这种相似性度量的适用性和使用。

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