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Current Studies On Intrusion Detection System, Genetic Algorithm And Fuzzy Logic

机译:入侵检测系统,遗传算法和模糊逻辑的最新研究

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Nowadays Intrusion Detection System (IDS) which is increasingly a key element of system security is used to identify the malicious activities in a computer system or network. There are different approaches being employed in intrusion detection systems, but unluckily each of the technique so far is not entirely ideal. The prediction process may produce false alarms in many anomaly based intrusion detection systems. With the concept of fuzzy logic, the false alarm rate in establishing intrusive activities can be reduced. A set of efficient fuzzy rules can be used to define the normal and abnormal behaviors in a computer network. Therefore some strategy is needed for best promising security to monitor the anomalous behavior in computer network. In this paper I present a few research papers regarding the foundations of intrusion detection systems, the methodologies and good fuzzy classifiers using genetic algorithm which are the focus of current development efforts and the solution of the problem of Intrusion Detection System to offer a realworld view of intrusion detection. Ultimately, a discussion of the upcoming technologies and various methodologies which promise to improve the capability of computer systems to detect intrusions is offered.
机译:如今,入侵检测系统(IDS)日益成为系统安全性的重要组成部分,用于识别计算机系统或网络中的恶意活动。入侵检测系统中采用了不同的方法,但不幸的是,到目前为止,每种技术都不是完全理想的。预测过程可能会在许多基于异常的入侵检测系统中产生错误警报。使用模糊逻辑的概念,可以减少建立侵入性活动时的误报率。可以使用一组有效的模糊规则来定义计算机网络中的正常和异常行为。因此,需要一些策略来保证最佳的安全性,以监视计算机网络中的异常行为。在本文中,我提出了一些有关入侵检测系统的基础,使用遗传算法的方法和良好的模糊分类器的研究论文,这些研究是当前开发工作的重点,也是解决入侵检测系统问题的方法,以提供真实的观点。入侵检测。最终,讨论了有望提高计算机系统检测入侵能力的即将出现的技术和各种方法。

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