首页> 外文期刊>International journal of software science and computational intelligence >Zero-Crossing Analysis of Levy Walks and a DDoS Dataset for Real-Time Feature Extraction: Composite and Applied Signal Analysis for Strengthening the Internet-of-Things Against DDoS Attacks
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Zero-Crossing Analysis of Levy Walks and a DDoS Dataset for Real-Time Feature Extraction: Composite and Applied Signal Analysis for Strengthening the Internet-of-Things Against DDoS Attacks

机译:征途的零交叉分析和DDoS数据集用于实时特征提取:复合信号和应用信号分析,可增强物联网抵御DDoS攻击

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摘要

A comparison between the probability similarities of a Distributed Denial-of-Service (DDoS) dataset and Levy walks is presented. This effort validates Levy walks as a model resembling DDoS probability features. In addition, a method, based on the Smirnov transform, for generating synthetic data with the statistical properties of L6vy-walks is demonstrated. The Smirnov transform is used to address a cybersecurity problem associated with the Internet-of-things (IoT). The synthetic Levy-walk is merged with sections of distinct signals (uniform noise, Gaussian noise, and an ordinary sinusoid). Zero-crossing rate (ZCR) within a varying-size window is utilized to analyze both the composite signal and the DDoS dataset. ZCR identifies all the distinct sections in the composite signal and successfully detects the occurrence of the cyberattack. The ZCR value increases as the signal under analysis becomes more complex and produces steadier values as the varying window size increases. The ZCR computation directly in the time-domain is its most notorious advantage for real-time implementations.
机译:提出了分布式拒绝服务(DDoS)数据集和征费走动的概率相似度之间的比较。这项工作验证了Levy走道是类似于DDoS概率特征的模型。此外,还展示了一种基于Smirnov变换的具有L6vy-walks统计特性的合成数据生成方法。 Smirnov转换用于解决与物联网(IoT)相关的网络安全问题。合成的Levy-walk与不同信号的部分(统一噪声,高斯噪声和普通正弦波)合并。可变大小窗口内的过零率(ZCR)用于分析复合信号和DDoS数据集。 ZCR识别复合信号中的所有不同部分,并成功检测到网络攻击的发生。 ZCR值随着所分析的信号变得更加复杂而增加,并且随着变化的窗口大小的增加而产生更稳定的值。对于实时实现而言,直接在时域中进行ZCR计算是其最臭名昭著的优势。

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