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On analyzing user preference dynamics with temporal social networks

机译:使用时间社交网络分析用户偏好动态

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The preferences adopted by individuals are constantly modified as these are driven by new experiences, natural life evolution and, mainly, influence from friends. Studying these temporal dynamics of user preferences has become increasingly important for personalization tasks in information retrieval and recommendation systems domains. However, existing models are too constrained for capturing the complexity of the underlying phenomenon. Online social networks contain rich information about social interactions and relations. Thus, these become an essential source of knowledge for the understanding of user preferences evolution. In this work, we investigate the interplay between user preferences and social networks over time. First, we propose a temporal preference model able to detect preference change events of a given user. Following this, we use temporal networks concepts to analyze the evolution of social relationships and propose strategies to detect changes in the network structure based on node centrality. Finally, we look for a correlation between preference change events and node centrality change events over Twitter and Jam social music datasets. Our findings show that there is a strong correlation between both change events, specially when modeling social interactions by means of a temporal network.
机译:个人的喜好会不断变化,因为这些是新体验,自然生活的演变以及主要是朋友的影响所驱动的。对于信息检索和推荐系统领域中的个性化任务,研究用户偏好的这些时间动态已变得越来越重要。但是,现有模型太受约束而无法捕获潜在现象的复杂性。在线社交网络包含有关社交互动和关系的丰富信息。因此,这些成为了解用户偏好演变的重要知识来源。在这项工作中,我们调查了用户偏好和社交网络之间的相互作用。首先,我们提出了一种能够检测给定用户的偏好变化事件的时间偏好模型。接下来,我们使用时态网络概念分析社会关系的演变,并提出基于节点中心性来检测网络结构变化的策略。最后,我们在Twitter和Jam社交音乐数据集上寻找偏好更改事件和节点中心性更改事件之间的相关性。我们的发现表明,两个变更事件之间都具有很强的相关性,特别是在通过时间网络对社交互动进行建模时。

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