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If it looks like a spammer and behaves like a spammer, it must be a spammer: analysis and detection of microblogging spam accounts

机译:如果它看起来像垃圾邮件发送者,并且表现得像垃圾邮件发送者,则它一定是垃圾邮件发送者:分析和检测微博垃圾邮件帐户

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摘要

Spam in online social networks (OSNs) is a systemic problem that imposes a threat to these services in terms of undermining their value to advertisers and potential investors, as well as negatively affecting users' engagement. As spammers continuously keep creating newer accounts and evasive techniques upon being caught, a deeper understanding of their spamming strategies is vital to the design of future social media defense mechanisms. In this work, we present a unique analysis of spam accounts in OSNs viewed through the lens of their behavioral characteristics. Our analysis includes over 100 million messages collected from Twitter over the course of 1 month. We show that there exist two behaviorally distinct categories of spammers and that they employ different spamming strategies. Then, we illustrate how users in these two categories demonstrate different individual properties as well as social interaction patterns. Finally, we analyze the detectability of spam accounts with respect to three categories of features, namely content attributes, social interactions, and profile properties.
机译:在线社交网络(OSN)中的垃圾邮件是一个系统性问题,对这些服务构成威胁,损害了它们对广告主和潜在投资者的价值,并对用户的参与度产生负面影响。随着垃圾邮件发送者在被捕获时不断创建更新的帐户和规避技术,因此对其垃圾邮件策略的深入了解对于设计未来的社交媒体防御机制至关重要。在这项工作中,我们将通过OSN行为特征的角度对OSN中的垃圾邮件帐户进行独特的分析。我们的分析包括在1个月内从Twitter收集的超过1亿条消息。我们表明存在两种行为上不同的垃圾邮件发送者类别,并且它们采用了不同的垃圾邮件发送策略。然后,我们说明这两个类别的用户如何展示不同的个人属性以及社交互动模式。最后,我们针对三类功能(即内容属性,社交互动和个人资料属性)分析了垃圾邮件帐户的可检测性。

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