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A Novel Control-flow based Intrusion Detection Technique for Big Data Systems

机译:基于新型数据系统的新型控制流动入侵检测技术

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Security and distributed infrastructure are two of the most common requirements for big data software. But the security features of the big data platforms are still premature. It is critical to identify, modify, test and execute some of the existing security mechanisms before using them in the big data world. In this paper, we propose a novel intrusion detection technique that understands and works according to the needs of big data systems. Our proposed technique identifies program level anomalies using two methods - a profiling method that models application behavior by creating process signatures from control-flow graphs; and a matching method that checks for coherence among the replica nodes of a big data system by matching the process signatures. The profiling method creates a process signature by reducing the control-flow graph of a process to a set of minimum spanning trees and then creates a hash of that set. The matching method first checks for similarity in process behavior by matching the received process signature with the local signature and then shares the result with all replica datanodes for consensus. Experimental results show only 0.8% overhead due to the proposed technique when tested on the hadoop map-reduce examples in real-time.
机译:安全性和分布式基础设施是两个大数据软件中最常见的要求。但是大数据平台的安全功能仍然为时过早。关键是要确定,修改,测试和在大数据世界使用前执行一些现有的安全机制。在本文中,我们提出了理解和作品根据大数据系统的需要一种新的入侵检测技术。使用两种方法提供了所提出的技术方案识别水平异常 - 一个仿形方法,通过建立从控制流图过程签名模型的应用程序行为;和匹配的方法,该方法检查通过匹配过程签名一个大数据系统的副本节点之间的一致性。仿形方法通过减少的处理的控制流图来设定的最小生成树创建一个进程签名,然后创建该组的散列。在过程的行为相似通过匹配与本地签名所接收的处理签名,然后将匹配方法首先检查共享与所有副本数据节点协商一致的结果。实验结果,当在地图的Hadoop-减少在实时实施例中测试由于所提出的技术的开销只显示0.8%。

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