面向入侵检测的大网络流量数据处理与分析

Nikola Ilić, J. Zdravković, D. Stojanović
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引用次数: 0

摘要

为了保护计算机系统免受攻击和入侵,处理和分析大量数据是一个非常耗时的过程。这个问题的解决方案是开发分布式防火墙和防病毒程序,这些程序使用机器学习算法进行数据分析,可以几乎实时地执行与安全相关的任务。介绍了采用ML算法开发的分布式防火墙。在较短的时间内,在一个大数据集上实现并测试了所提出的解决方案,以衡量其速度和准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Processing and Analytics of Big Network Traffic Data for Intrusion Detection
Processing and analyzing a vast amount of data, in order to keep computer systems safe from attacks and intrusions, is a very time-consuming process. The solution for this problem is the development of distributed firewalls and antivirus programs that use machine-learning algorithms for data analytics and can perform security-related tasks in almost real-time. Developed distributed firewall that uses ML algorithms is presented. The proposed solution was implemented and tested over a big dataset in a short time period to measure its speed and accuracy.
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