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Spam Filtering in Twitter Using Sender-Receiver Relationship

机译:使用发件人-收件人关系在Twitter中进行垃圾邮件过滤

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Twitter is one of the most visited sites in these days. Twitter spam, however, is constantly increasing. Since Twitter spam is different from traditional spam such as email and blog spam, conventional spam filtering methods are inappropriate to detect it. Thus, many researchers have proposed schemes to detect spammers in Twitter. These schemes are based on the features of spam accounts such as content similarity, age and the ratio of URLs. However, there are two significant problems in using account features to detect spam. First, account features can easily be fabricated by spammers. Second, account features cannot be collected until a number of malicious activities have been done by spammers. This means that spammers will be detected only after they send a number of spam messages. In this paper, we propose a novel spam filtering system that detects spam messages in Twitter. Instead of using account features, we use relation features, such as the distance and connectivity between a message sender and a message receiver, to decide whether the current message is spam or not. Unlike account features, relation features are difficult for spammers to manipulate and can be collected immediately. We collected a large number of spam and non-spam Twitter messages, and then built and compared several classifiers. From our analysis we found that most spam comes from an account that has less relation with a receiver. Also, we show that our scheme is more suitable to detect Twitter spam than the previous schemes.
机译:Twitter是近来访问量最大的网站之一。但是,Twitter垃圾邮件正在不断增加。由于Twitter垃圾邮件与传统垃圾邮件(例如电子邮件和博客垃圾邮件)不同,因此常规垃圾邮件过滤方法不适用于检测它。因此,许多研究人员提出了检测Twitter中垃圾邮件发送者的方案。这些方案基于垃圾邮件帐户的功能,例如内容相似性,年龄和URL比例。但是,使用帐户功能检测垃圾邮件存在两个重大问题。首先,垃圾邮件发送者可以轻松地制作帐户功能。其次,只有垃圾邮件发送者进行了许多恶意活动后,才能收集帐户功能。这意味着只有在发送大量垃圾邮件后,才会检测到垃圾邮件发送者。在本文中,我们提出了一种新颖的垃圾邮件过滤系统,可以检测Twitter中的垃圾邮件。代替使用帐户功能,我们使用关系功能(例如,邮件发送者和邮件接收者之间的距离和连接性)来确定当前邮件是否为垃圾邮件。与帐户功能不同,关联功能对于垃圾邮件发送者来说很难操纵,可以立即收集。我们收集了大量垃圾邮件和非垃圾邮件Twitter消息,然后构建并比较了几个分类器。根据我们的分析,我们发现大多数垃圾邮件来自与接收者的联系较少的帐户。此外,我们证明了该方案比以前的方案更适合检测Twitter垃圾邮件。

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