利用嵌入式零树小波压缩计算机网络测量

K. Kyriakopoulos, D. Parish
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引用次数: 1

摘要

监控和测量高数据速率和高容量网络的各种指标会在很长一段时间内产生大量的信息。诸如吞吐量和延迟等特性是从包级信息派生出来的,并且可以表示为时间序列信号。本文研究了由Shapiro提出的嵌入式零树算法,该算法用于压缩计算机网络延迟和吞吐量测量,同时保留有趣特征的质量并控制压缩信号的质量水平。所检查的质量特征是均方误差(MSE)的保存,标准差,一般视觉质量(PSNR)和缩放行为。实验结果评价了该算法在时延和数据速率信号下的性能。最后,将压缩性能与无损工具bzip2进行了比较。
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Compressing Computer Network Measurements Using Embedded Zerotree Wavelets
Monitoring and measuring various metrics of high data rate and high capacity networks produces a vast amount of information over a long period of time. Characteristics such as throughput and delay are derived from packet level information and can be represented as time series signals. This paper looks at the Embedded Zero Tree algorithm, proposed by Shapiro, in order to compress computer network delay and throughput measurements while preserving the quality of interesting features and controlling the level of quality of the compressed signal. The quality characteristics that are examined are the preservation of the mean square error (MSE), the standard deviation, the general visual quality (the PSNR) and the scaling behavior. Experimental results are obtained to evaluate the behaviour of the algorithm on delay and data rate signals. Finally, a comparison of compression performance is presented against the lossless tool bzip2.
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