Prevention of DDoS attack through harmonic homogeneity difference mechanism on traffic flow

Kirti, Namrata Agrawal, Sunil Kumar, D. Sah
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引用次数: 1

Abstract

The ever rising attacks on IT infrastructure, especially on networks has become the cause of anxiety for the IT professionals and the people venturing in the cyber-world. There are numerous instances wherein the vulnerabilities in the network has been exploited by the attackers leading to huge financial loss. Distributed denial of service (DDoS) is one of the most indirect security attack on computer networks. Many active computer bots or zombies start flooding the servers with requests, but due to its distributed nature throughout the Internet, it cannot simply be terminated at server side. Once the DDoS attack initiates, it causes huge overhead to the servers in terms of its processing capability and service delivery. Though, the study and analysis of request packets may help in distinguishing the legitimate users from among the malicious attackers but such detection becomes non-viable due to continuous flooding of packets on servers and eventually leads to denial of service to the authorized users. In the present research, we propose traffic flow and flow count variable based prevention mechanism with the difference in homogeneity. Its simplicity and practical approach facilitates the detection of DDoS attack at the early stage which helps in prevention of the attack and the subsequent damage. Further, simulation result based on different instances of time has been shown on T-value including generation of simple and harmonic homogeneity for observing the real time request difference and gaps.
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利用流量的谐波同质差分机制预防DDoS攻击
对IT基础设施,特别是网络的攻击不断增加,这已经成为IT专业人员和在网络世界中冒险的人们焦虑的原因。网络漏洞被攻击者利用,造成巨大经济损失的案例不胜枚举。分布式拒绝服务(DDoS)是对计算机网络最间接的安全攻击之一。许多活跃的计算机机器人或僵尸开始用请求淹没服务器,但由于其在整个Internet中的分布式特性,它不能简单地在服务器端终止。DDoS攻击一旦发起,会给服务器的处理能力和服务交付带来巨大的开销。虽然,对请求数据包的研究和分析可能有助于区分合法用户和恶意攻击者,但由于服务器上的数据包不断泛滥,这种检测变得不可行,最终导致对授权用户的拒绝服务。在本研究中,我们提出了基于同质性差异的交通流和流量计数变量的预防机制。该方法简单实用,便于在早期发现DDoS攻击,从而预防攻击和后续损害。此外,基于不同时间实例对t值的仿真结果,包括生成简单均匀性和谐波均匀性,以观察实时请求差异和间隙。
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