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Cross-system user modeling and personalization on the Social Web

机译:社交网络上的跨系统用户建模和个性化

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摘要

In order to adapt functionality to their individual users, systems need information about these users. The Social Web provides opportunities to gather user data from outside the system itself. Aggregated user data may be useful to address cold-start problems as well as sparse user profiles, but this depends on the nature of individual user profiles distributed on the Social Web. For example, does it make sense to re-use Flickr profiles to recommend bookmarks in Delicious? In this article, we study distributed form-based and tag-based user profiles, based on a large dataset aggregated from the Social Web. We analyze the completeness, consistency and replication of form-based profiles, which users explicitly create by filling out forms at Social Web systems such as Twitter, Facebook and Linkedln. We also investigate tag-based profiles, which result from social tagging activities in systems such as Flickr, Delicious and StumbleUpon: to what extent do tag-based profiles overlap between different systems, what are the benefits of aggregating tag-based profiles. Based on these insights, we developed and evaluated the performance of several cross-system user modeling strategies in the context of recommender systems. The evaluation results show that the proposed methods solve the cold-start problem and improve recommendation quality significantly, even beyond the cold-start.
机译:为了使功能适应其单个用户,系统需要有关这些用户的信息。社交网络提供了从系统本身之外收集用户数据的机会。汇总的用户数据可能对于解决冷启动问题以及稀疏的用户配置文件很有用,但这取决于在社交网站上分发的各个用户配置文件的性质。例如,重新使用Flickr个人资料来推荐Delicious中的书签是否有意义?在本文中,我们基于从社交网站聚合的大型数据集,研究了基于表单和基于标签的分布式用户配置文件。我们分析基于表单的配置文件的完整性,一致性和复制性,这些配置文件是用户通过在诸如Twitter,Facebook和Linkedln等社交网络系统上填写表单来显式创建的。我们还研究基于标签的配置文件,这些配置文件是由Flickr,Delicious和StumbleUpon等系统中的社会标签活动产生的:基于标签的配置文件在不同系统之间的重叠程度如何,汇总基于标签的配置文件有什么好处。基于这些见解,我们在推荐系统的背景下开发并评估了几种跨系统用户建模策略的性能。评估结果表明,所提出的方法甚至可以解决冷启动问题,并显着提高推荐质量,甚至超越冷启动。

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