Visual identification of some regularities in packet network traffic

Q3 Mathematics
Sharafat Mirzakulova, Zhanar Ibrayeva, Saule Kuanova, Aisha Mamyrova, Bakyt Japparkulov, Ruslan Kamal
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引用次数: 0

Abstract

Modern heterogeneous packet networks generate network traffic with a complex structure. In this article, the object of study is a time series. The total number of User Datagram Protocol (UDP) packets has reached 250242. According to analysts, the growth trend of traffic, including real-time applications, will continue and the volume of data will grow, which may lead to the formation of packet queues when processed by network devices. In this case, there may be losses in case of long queues. To solve this problem, a power spectrum assessment was carried out. The AR maximum entropy estimator has been shown to be more sensitive than the auxiliary Fourier estimator. Accounting for non-stationarity by spectral methods is possible only through estimation in a sliding time window. Nine diagrams of spectral-temporal analysis of the original series, its increments, and the mixed series of increments were obtained: with default parameters, with small and large windows. Diagrams related to the original series reflect the dynamics of changes in data transmission intensity in the network; they show higher temporal resolution, indicating the presence of high-frequency components (noise) and the presence of low-frequency components (trend). Diagrams with increments describe signals of periodic components; changing the length of the window did not reflect the presence of noise or trend signs. Diagrams with mixed increments show that frequency components are uniformly distributed. The uniqueness of this work lies in the real measured data, and a distinctive feature of the obtained results is the visual examination of the complex traffic structure, allowing for the resolution of the investigated problem. Practical application of the results obtained can be applied in Quality of Service (QoS) management, resource planning, and network performance optimization
可视化识别分组网络流量中的一些规律性现象
现代异构分组网络会产生结构复杂的网络流量。本文的研究对象是一个时间序列。用户数据报协议(UDP)数据包总数已达 250242 个。据分析家称,流量(包括实时应用)的增长趋势将持续下去,数据量也会越来越大,这可能导致网络设备在处理数据包时形成数据包队列。在这种情况下,队列过长可能会造成损失。为解决这一问题,我们进行了功率谱评估。事实证明,AR 最大熵估算器比辅助傅立叶估算器更灵敏。只有通过在滑动时间窗口中进行估算,才能通过频谱方法考虑非稳态因素。对原始序列、其增量以及增量的混合序列进行频谱-时间分析后,得到了九个图表:默认参数、小窗口和大窗口。与原始序列相关的图表反映了网络中数据传输强度的动态变化;它们显示出更高的时间分辨率,表明存在高频成分(噪声)和低频成分(趋势)。带增量的图表描述了周期性成分的信号;改变窗口长度并不能反映噪音或趋势的存在。混合增量图显示频率成分均匀分布。这项工作的独特之处在于采用了真实的测量数据,所获结果的一个显著特点是对复杂的交通结构进行了可视化检查,从而解决了所研究的问题。所获结果的实际应用可用于服务质量(QoS)管理、资源规划和网络性能优化。
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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来源期刊
Eastern-European Journal of Enterprise Technologies
Eastern-European Journal of Enterprise Technologies Mathematics-Applied Mathematics
CiteScore
2.00
自引率
0.00%
发文量
369
审稿时长
6 weeks
期刊介绍: Terminology used in the title of the "East European Journal of Enterprise Technologies" - "enterprise technologies" should be read as "industrial technologies". "Eastern-European Journal of Enterprise Technologies" publishes all those best ideas from the science, which can be introduced in the industry. Since, obtaining the high-quality, competitive industrial products is based on introducing high technologies from various independent spheres of scientific researches, but united by a common end result - a finished high-technology product. Among these scientific spheres, there are engineering, power engineering and energy saving, technologies of inorganic and organic substances and materials science, information technologies and control systems. Publishing scientific papers in these directions are the main development "vectors" of the "Eastern-European Journal of Enterprise Technologies". Since, these are those directions of scientific researches, the results of which can be directly used in modern industrial production: space and aircraft industry, instrument-making industry, mechanical engineering, power engineering, chemical industry and metallurgy.
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