Distributed denial of service attacks detection in cloud computing using extreme learning machine

Gopal Singh Kushwah, Syed Taqi Ali
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引用次数: 12

Abstract

Cloud computing has become popular due to its on-demand, pay-as-you-use and ubiquitous features. This technology suffers from various security risks. Distributed denial of service (DDoS) attack is one of these security risks. It is used to disrupt the services provided by cloud computing. In DDoS attack, the cloud server is overwhelmed with fake requests by the attacker. This makes long response time for legitimate users or shut down of the service completely. In this work, a DDoS attack detection model based on extreme learning machine (ELM) has been proposed. Experiments show that proposed model can be trained in a very short period of time and provides high detection accuracy.
基于极限学习机的云计算分布式拒绝服务攻击检测
云计算因其按需、按使用付费和无处不在的特性而变得流行。该技术存在各种安全风险。分布式拒绝服务(DDoS)攻击就是这些安全风险之一。它被用来破坏云计算提供的服务。在DDoS攻击中,云服务器被攻击者的虚假请求所淹没。这使得合法用户的响应时间很长,或者完全关闭服务。提出了一种基于极限学习机(ELM)的DDoS攻击检测模型。实验表明,该模型可以在很短的时间内完成训练,并且具有较高的检测精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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