首页> 外文会议>International Workshop on Quality of Service in Multiservice IP Networks(QoS-IP 2005); 20050202-04; Catania(IT) >On-Line Segmentation of Non-stationary Fractal Network Traffic with Wavelet Transforms and Log-Likelihood-Based Statistics
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On-Line Segmentation of Non-stationary Fractal Network Traffic with Wavelet Transforms and Log-Likelihood-Based Statistics

机译:基于小波变换和对数似然统计的非平稳分形网络流量在线分割

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摘要

Network traffic exhibits fractal characteristics, such as self-similarity and long-range dependence. Traffic fractality and its associated burstiness have important consequences for the performance of computer networks, such as higher queue delays and losses than predicted by classical models. There are several estimators of the fractal parameters, and those based on the discrete wavelet transform (DWT) are the best in terms of efficiency and accuracy. The DWT estimator does not consider the possibility of changes to the fractal parameters over time. We propose using the Schwarz information criterion (SIC) to detect changes in the variance structure of the wavelet decomposition and then segmenting the trace into pieces with homogeneous characteristics for the Hurst parameter. The procedure can be extended to the stationary wavelet transform (SWT), a non-orthogonal transform that provides higher accuracy in the estimation of the change points. The SIC analysis can be performed progressively. The DWT-SIC and SWT-SIC algorithms were tested against synthetic and well-known real traffic traces, with promising results.
机译:网络流量表现出分形特征,例如自相似性和远程依赖性。流量分形及其相关的突发性对计算机网络的性能具有重要的影响,例如比传统模型预测的队列延迟和损失更高。分形参数的估计有几种,而基于离散小波变换(DWT)的估计则是效率和准确性最好的。 DWT估算器不考虑分形参数随时间变化的可能性。我们建议使用Schwarz信息标准(SIC)来检测小波分解的方差结构中的变化,然后将迹线分割为具有Hurst参数均一特征的片段。该过程可以扩展到平稳小波变换(SWT),这是一种非正交变换,可在变化点的估计中提供更高的准确性。 SIC分析可以逐步进行。 DWT-SIC和SWT-SIC算法针对合成和众所周知的实际流量跟踪进行了测试,结果令人鼓舞。

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