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Unsupervised Scalable Statistical Method for Identifying Influential Users in Online Social Networks

机译:用于识别在线社交网络中有影响力用户的无监督可扩展统计方法

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摘要

Billions of users interact intensively every day via Online Social Networks (OSNs) such as Facebook, Twitter, or Google+. This makes OSNs an invaluable source of information, and channel of actuation, for sectors like advertising, marketing, or politics. To get the most of OSNs, analysts need to identify influential users that can be leveraged for promoting products, distributing messages, or improving the image of companies. In this report we propose a new unsupervised method, Massive Unsupervised Outlier Detection (MUOD), based on outliers detection, for providing support in the identification of influential users. MUOD is scalable, and can hence be used in large OSNs. Moreover, it labels the outliers as of shape, magnitude, or amplitude, depending of their features. This allows classifying the outlier users in multiple different classes, which are likely to include different types of influential users. Applying MUOD to a subset of roughly 400 million Google+ users, it has allowed identifying and discriminating automatically sets of outlier users, which present features associated to different definitions of influential users, like capacity to attract engagement, capacity to attract a large number of followers, or high infection capacity.
机译:每天都有数十亿用户通过Facebook,Twitter或Google+等在线社交网络(OSN)进行密集互动。对于广告,营销或政治等行业,这使OSN成为宝贵的信息来源和促动渠道。为了充分利用OSN,分析师需要确定有影响力的用户,可以利用这些用户来推广产品,分发消息或改善公司形象。在本报告中,我们提出了一种新的无监督方法,即基于离群值检测的大规模无监督离群值检测(MUOD),可为识别有影响力的用户提供支持。 MUOD是可伸缩的,因此可以在大型OSN中使用。此外,根据异常的特征,它可以将异常值标记为形状,大小或幅度。这允许将异常用户分类为多个不同的类别,这些类别可能包括不同类型的有影响力的用户。通过将MUOD应用于大约4亿个Google+用户的子集,它可以自动识别和区分异常用户集,这些异常用户集具有与有影响力的用户的不同定义相关的功能,例如吸引互动的能力,吸引大量关注者的能力,或高感染力。

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