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Personality-aware followee recommendation algorithms: An empirical analysis

机译:具备个性意识的追随者推荐算法:一项实证分析

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As the popularity of micro-blogging sites, expressed as the number of active users and volume of online activities, increases, the difficulty of deciding who to follow also increases. Such decision might not depend on a unique factor as users usually have several reasons for choosing whom to follow. However, most recommendation systems almost exclusively rely on only two traditional factors: graph topology and user-generated content, disregarding the effect of psychological and behavioural characteristics, such as personality, over the followee selection process. Due to its effect over people's reactions and interactions with other individuals, personality is considered as one of the primary factors that influence human behaviour. This study aims at assessing the impact of personality in the accurate prediction of followees, beyond simple topological and content-based factors. It analyses whether user personality could condition followee selection by combining personality traits with the most commonly used followee predictive factors. Results showed that an accurate appreciation of such predictive factors tied to a quantitative analysis of personality is crucial for guiding the search of potential followees, and thus, enhance recommendations.
机译:随着以活跃用户数量和在线活​​动量表示的微博站点的普及,决定谁关注的难度也增加了。这样的决定可能并不取决于唯一的因素,因为用户通常有几个选择关注对象的原因。但是,大多数推荐系统几乎完全只依赖两个传统因素:图形拓扑和用户生成的内容,而忽略了心理和行为特征(如个性)在追随者选择过程中的影响。由于其影响人们的反应和与其他人的互动,人格被认为是影响人类行为的主要因素之一。这项研究旨在评估人格因素对简单预测对象和基于内容的因素之外的准确预测对象的影响。它分析了用户个性是否可以通过将人格特质与最常用的追随者预测因素相结合来限制追随者的选择。结果表明,准确地了解与人格定量分析相关的此类预测因素对于引导潜在追随者的搜索至关重要,因此可以增强建议。

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