评价聚类算法的框架

J. Nehinbe
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引用次数: 5

摘要

在云计算和基于web的应用程序的使用中,安全性是建立和维持信任关系的一个重要问题。因此,采用允许和不允许概念的入侵检测器被用于网络取证。不允许的策略执行器对已知的坏事件发出警报,而允许的策略执行器监视偏离已知好的事件。然而,复杂的计算机攻击案例往往使试图将失败的攻击与成功的攻击区分开来的努力无效。因此,攻击被错误地解释,尽管入侵探测器事先产生了大量的警告,但大多数成功的计算机攻击事件并没有在进行中被预先阻止。因此,我们提出了一种新的聚类算法来减少这些问题。一系列的评估表明,如何采用类别效用来提高检测和预防入侵的方法的有效性。结果还区分了对计算机资源的失败攻击和成功攻击。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Framework for Evaluating Clustering Algorithm
Security is an important issue for building and sustaining trust relationship in cloud computing and in the usage of web-based applications. Consequently, intrusion detectors that adopt allowable and disallowable concepts are used in network forensics. The disallowable policy enforcers alert on events that are known to be bad while the allowable policy enforcers monitor events that deviate from known good. Nevertheless, sophisticated cases of computer attacks often render attempts to isolate failed attacks from successful attacks ineffective. Thus, attacks are erroneous interpreted and most successful cases of computer attacks are not forestalled while in progress despite the huge volume of warnings that intrusion detectors generate beforehand. Therefore, we present a new clustering algorithm to lessen these problems. Series of evaluations showed how to adopt category utility to improve the efficacies of methods for detecting and preventing intrusions. The results also differentiated failed attacks on computer resources from successful attacks.
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