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Detecting a malicious insider in the cloud environment using sequential rule mining

机译:使用顺序规则挖掘在云环境中检测恶意内部人员

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Cloud computing is a growing paradigm that offers a lot of benefits to cloud users. Despite the potential benefits that cloud computing could offer to business and individuals, security remains one of the growing concerns that are hindering the adoption of this paradigm. Researchers have identified and dealt with many security threats to cloud computing. However, insider threats still remain as one of the major concerns. Threats from malicious insiders are often listed as dangerous threats by many researchers. However, this threat has not received the attention it deserves because many organizations turn out to be extra careful about external threats than insider threats. This paper discusses an approach that can help in identifying insiders behaving in a malicious way, which may lead to an attack. A rule learning algorithm was used in learning the behavior pattern of users, in order to build user profiles. A Matching algorithm was then used to match the historical behavior of the user with the current behavior, in order to identify users that masquerade in the system as normal users. The obtained results show that it was possible to identify insiders that masquerade in the system by observing their behavior patterns.
机译:云计算是一个不断发展的范例,它为云用户提供了很多好处。尽管云计算可以为企业和个人带来潜在的好处,但是安全仍然是阻碍采用该范例的日益增长的担忧之一。研究人员已经确定并应对了云计算的许多安全威胁。但是,内部威胁仍然是主要问题之一。来自恶意内部人员的威胁通常被许多研究人员列为危险威胁。但是,这种威胁并未引起应有的重视,因为事实证明,许多组织对内部威胁要比内部威胁更加谨慎。本文讨论了一种方法,该方法可帮助识别以恶意方式行事的内部人员,这可能导致攻击。为了建立用户档案,使用规则学习算法来学习用户的行为模式。然后使用匹配算法将用户的历史行为与当前行为进行匹配,以便将在系统中伪装的用户识别为正常用户。获得的结果表明,可以通过观察他们的行为模式来识别在系统中伪装的内部人员。

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