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Burst the Filter Bubble: Using Semantic Web to Enable Serendipity

机译:消除筛选器气泡:使用语义网启用偶然性

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Personalization techniques aim at helping people dealing with the ever growing amount of information by filtering it according to their interests. However, to avoid the information overload, such techniques often create an over-personalization effect, i.e. users are exposed only to the content systems assume they would like. To break this "personalization bubble" we introduce the notion of serendipity as a performance measure for recommendation algorithms. For this, we first identify aspects from the user perspective, which can determine level and type of serendipity desired by users. Then, we propose a user model that can facilitate such user requirements, and enables serendipitous recommendations. The use case for this work focuses on TV recommender systems, however the ultimate goal is to explore the transferability of this method to different domains. This paper covers the work done in the first eight months of research and describes the plan for the entire PhD trajectory.
机译:个性化技术旨在根据人们的兴趣过滤信息,以帮助人们处理不断增长的信息。但是,为了避免信息过载,这样的技术通常会产生过度个性化的效果,即,用户仅在假设他们愿意的情况下才接触内容系统。为了打破这种“个性化泡沫”,我们引入了偶然性的概念,作为推荐算法的一种性能指标。为此,我们首先从用户角度确定方面,这些方面可以确定用户所需的意外事件的级别和类型。然后,我们提出了一个用户模型,该模型可以促进此类用户需求并实现偶然性推荐。这项工作的用例集中在电视推荐系统上,但是最终目标是探索这种方法在不同领域的可移植性。本文涵盖了研究的前八个月所做的工作,并描述了整个博士学位轨迹的计划。

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