基于用户的日常行为,识别学术计算机网络的一般模式

F. K. Gülagiz, Onur Gök, S. Sahin
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引用次数: 0

摘要

随着技术的发展,互联网的使用已经变得广泛,因为这些数据已经被移到了电子环境中。随着电子环境中存储的数据越来越多,数据的安全性变得越来越重要。因此,应及早发现网络异常和攻击。有许多不同的数据挖掘方法用于检测网络异常。本研究确定了学术网络的一般行为,以检测网络异常。为此,提出了一种基于迭代k均值和轮廓隐马尔可夫模型(PHMM)的网络状态分析方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Identifying the general pattern of the academic computer networks based on users daily behaviors
The use of the internet has become wide spread with the developments in technology as a result of this data has been removed to electronic environment. With the increase of data stored in the electronic environment, the security of the data has become much important. For this reason, network anomalies and attacks should be detected early. There are many different data mining methods used to detect network anomalies. In this study general behavior of academic networks determined to detect network anomalies. For this purpose, a network state analysis method using Iterative K-Means and Profile Hidden Markov Model (PHMM) methods is proposed.
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