IEICE Transactions on Communications
Online ISSN : 1745-1345
Print ISSN : 0916-8516
Regular Section
A Long Range Dependent Internet Traffic Model Using Unbounded Johnson Distribution
Sunggon KIMSeung Yeob NAM
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2013 年 E96.B 巻 1 号 p. 301-304

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It is important to characterize the distributional property and the long-range dependency of traffic arrival processes in modeling Internet traffic. To address this problem, we propose a long-range dependent traffic model using the unbounded Johnson distribution. Using the proposed model, a sequence of traffic rates with the desired four quantiles and Hurst parameter can be generated. Numerical studies show how well the sequence of traffic rates generated by the proposed model mimics that of the real traffic rates using a publicly available Internet traffic trace.
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© 2013 The Institute of Electronics, Information and Communication Engineers
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