神经模糊技术的网络取证

Eleazar Aguirre Anaya, M. Nakano-Miyatake, H. Meana
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引用次数: 10

摘要

法医学的方法论是由若干阶段组成的,分析是其中的一个阶段。分析负责确定数据何时构成证据;因此,它可以呈上法庭。当网络中的数据量较小时,其分析相对简单,但当数据量很大时,数据分析对取证专家来说是一个挑战。本文提出了一种取证网络模型,该模型允许在相关的TCP/IP网络中获取现有证据。该模型使用模糊逻辑和人工神经网络来检测网络或主机中实现可疑活动的网络流,最大限度地减少了处理信息的成本和时间,以区分哪些是正常的网络流,哪些是遭受攻击和入侵的网络流。
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Network forensics with Neurofuzzy techniques
Forensics science is based on a methodology composed by a group of stages, being the analysis one of them. Analysis is responsible to determine when a data constitutes evidence; and as a consequence it can be presented to a court. When the amount of data in a Network is small, its analysis is relatively simple, but when it is huge the data analysis becomes a challenge for the forensics expert. In this paper a forensics network model is proposed, which allows to obtain the existing evidence in an involved TCP/IP network. This Model uses the Fuzzy Logic and the Artificial Neural Networks to detect the Network flows that realize suspicious activities in the network or hosts, minimizing also the cost and the time to process the information in order to discriminate which are normal network flows and which has been subjected to attacks and intrusions.
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