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Intrusion Detection via Artificial Immune System: a Performance-based Approach

机译:通过人工免疫系统进行入侵检测:一种基于性能的方法

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In this paper, we discuss the design and engineering of a biologically-inspired, host-based intrusion detection system to protect computer networks. To this end, we have implemented an Artificial Immune System (AIS) that mimics the behavior of the biological adaptive immune system. The proposed AIS, consists of a number of running artificial white blood cells, which search, recognize, store and deny anomalous requests on individual hosts. The model monitors the system through analysing the set of parameters to provide a general information on its state - ill or not. When some parameters are discovered to have anomalous values, then the artificial immune system takes a proper action. To prove the effectiveness of the suggested model, an exhaustive test on the AIS is conducted, using a server running Apache, Mysql and OpenSSH, and results are reported. Four types of attacks were tested: remote buffer overflow, Distributed Denial of Service (DDOS), port scanning, and dictionary-attack. The test proved that our definition of selfon-self system components is quite effective in protecting host-based systems.
机译:在本文中,我们讨论了一种基于生物的,基于主机的入侵检测系统的设计和工程,以保护计算机网络。为此,我们已实现了模仿生物适应性免疫系统行为的人工免疫系统(AIS)。拟议的AIS由许多运行中的人造白细胞组成,这些白细胞可以搜索,识别,存储和拒绝单个主机上的异常请求。该模型通过分析参数集来监视系统,以提供有关其状态(是否有病)的一般信息。当发现某些参数具有异常值时,则人工免疫系统将采取适当的措施。为了证明所建议模型的有效性,使用运行Apache,Mysql和OpenSSH的服务器对AIS进行了详尽的测试,并报告了结果。测试了四种类型的攻击:远程缓冲区溢出,分布式拒绝服务(DDOS),端口扫描和字典攻击。该测试证明,我们对自/非自系统组件的定义在保护基于主机的系统方面非常有效。

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