基于netflow的TCP flood攻击分析

Vsevolod Kapustin, N. Paulauskas
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引用次数: 0

摘要

流量分析是计算机网络各个部分中大多数生产系统的共同问题。攻击、配置错误和其他因素可能导致网络的可访问性增加,从而危及数据隐私。分析网络流及其单个数据包有助于异常检测。知名网络设备预置网络流量监控软件。“NetFlow”数据采集软件“Nfsen”是一种开源的方式来收集代理的信息。此外,“Nfsen”还设计用于数据排序和指令检测系统准备的数据集。准备好的数据可以被分割成片段进行人工智能学习和测试。作为人工智能单元,多层感知器是用python编程语言开发的。本文主要研究了TCP洪水流量检测的真实流量数据收集和多层感知器部署。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
ANALYSIS OF TCP FLOOD ATTACK USING NETFLOW
Traffic analysis is a common question for most of the production systems in various segments of computer networks. Attacks, configuration mistakes, and other factors can cause network increased accessibility and as a result danger for data privacy. Analyzing network flow and their single packets can be helpful for anomalies detection. Well-known network equipment has predeveloped network flow monitoring software. “NetFlow” data collector software “Nfsen” is an open-source way to collect information from agents. Also “Nfsen” is designed for data sorting and dataset for instruction detection system preparation. Prepared data can be split into fragments for artificial intelligent learning and testing. As AI unit can be used multilayer perceptron developed in a python programming language. This paper focused on real-world traffic dataset collection and multilayer perceptron deployment for TCP flood traffic detection.
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