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2009 Third UK Sim European Symposium on Computer Modeling and Simulation Misuse Detection via a Novel Hybrid System

机译:2009年第三英国SIM欧洲计算机建模和仿真误用通过新型混合系统滥用检测

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Intrusion detection systems (IDS) are tools located inside computer networks that analyze the network traffics. In this paper, a novel fuzzy-evolutionary system is presented to effectively detect the intrusion in computer networks. This system utilizes a hybridization of simulated annealing heuristic and tabu search algorithm to improve the accuracy of fuzzy if-then rules as intrusion detectors. Each of these algorithms has its advantageous and disadvantageous. Using the hybrid model of both algorithms, the proposed system employs the good features of them to improve the accuracy of obtained rules. Evaluation of the proposed system is done on the KDDCup99 Dataset which has information about normal and intrusive behaviors in networks. Results of our model have been compared with several well-known intrusion detection systems.
机译:入侵检测系统(IDS)是位于计算机网络内的工具,用于分析网络流量。本文提出了一种新型模糊进化系统,以有效地检测计算机网络中的入侵。该系统利用模拟退火启发式和禁忌搜索算法的杂交,以提高模糊IF-DOT规则作为入侵检测器的准确性。这些算法中的每一个都具有有利且不利的。使用这两种算法的混合模型,所提出的系统采用它们的良好功能来提高获得规则的准确性。对所提出的系统的评估是在KDDCup99数据集上完成的,该数据集具有有关网络中正常和侵入性行为的信息。我们的模型的结果与几种知名入侵检测系统进行了比较。

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