Video is becoming the most important data in asynchronous transfer mode (ATM) networks. In ATM networks, image quality remains almost the same by encoding a video signal at variable bit rates (VBRs). Moving picture experts group (MPEG) video consists of three different frames: intra (I), predictive
Multiplicative multifractal modelling of long-range-dependent network traffic
β Scribed by Jianbo Gao; Izhak Rubin
- Publisher
- John Wiley and Sons
- Year
- 2001
- Tongue
- English
- Weight
- 257 KB
- Volume
- 14
- Category
- Article
- ISSN
- 1074-5351
- DOI
- 10.1002/dac.509
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β¦ Synopsis
Abstract
We present a multiplicative multifractal process to model traffic which exhibits longβrange dependence. Using traffic trace data captured by Bellcore from operations across local and wide area networks, we examine the interarrival time series and the packet length sequences. We also model the frame size sequences of VBR video traffic process. We prove a number of properties of multiplicative multifractal processes that are most relevant to their use as traffic models. In particular, we show these processes to characterize effectively the longβrange dependence properties of the measured processes. Furthermore, we consider a single server queueing system which is loaded, on one hand, by the measured processes, and, on the other hand, by our multifractal processes (the latter forming a MF~e~/MF~g~/1 queueing system model). In comparing the performance of both systems, we demonstrate our models to effectively track the behaviour exhibited by the system driven by the actual traffic processes. We show the multiplicative multifractal process to be easy to construct. Through parametric dependence on one or two parameters, this model can be calibrated to fit the measured data. We also show that in simulating the packet loss probability, our multifractal traffic model provides a better fit than that obtained by using a fractional Brownian motion model. Copyright Β© 2001 John Wiley & Sons, Ltd.
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