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MID: An Innovative Model for Intrusion Detection by Mining Maximal Frequent Patterns

机译:MID:采矿最大频繁模式的入侵检测创新模型

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Intrusion detection is a very important topic in dependable computing. Intrusion detection system has become a vital part in network security systems with wide spread use of computer networks. It has been the recent research focus and trend to apply various kinds of data mining techniques in IDS for discovering new types of attacks efficiently, but it is still in its infancy. The most difficult part is their poor performance and accuracy. This paper presents an innovative model, called MID, that counts maximal frequent patterns for detecting intrusions, needless to count all association rules, can significantly improve the accuracy and performance of an IDS. The experimental results show that MID is efficient and accurate for the attacks that occur intensively in a short period of time.
机译:入侵检测是可靠计算的一个非常重要的主题。入侵检测系统已成为网络安全系统的重要组成部分,具有广泛的计算机网络。它是最近的研究重点和趋势,以应用于IDS中的各种数据挖掘技术,以便有效地发现新类型的攻击,但它仍处于初期初期。最困难的部分是他们的性能和准确性差。本文介绍了一个叫做MID的创新模型,这对检测入侵的最大频繁模式,无需计算所有关联规则,可以显着提高IDS的准确性和性能。实验结果表明,中期高效,准确地在短时间内发生浓度。

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