DocumentCode :
2323045
Title :
Fast simulation of self-similar traffic
Author :
Li, Jung-Shian ; Wolisz, Adam ; Popescu-Zeletin, Radu
Author_Institution :
GMD-FOKUS, Berlin, Germany
Volume :
3
fYear :
1998
fDate :
7-11 Jun 1998
Firstpage :
1829
Abstract :
This paper has two parts: Firstly, we investigate today´s ATM network, especially the most load NFS applications. Secondly, we propose a fast simulation based on fractional ARIMA processes and an importance sampling scheme. In our collected data, we have found the traffic characteristics of today´s ATM network present both long range dependence (LRD) and short range dependence (SRD) structures. Because of the strong SRD and LRD of the empirical traces, models which can present both LRD and SRD are necessary to simulate the traffic of today´s networks. However, traditional Monte Carlo simulations with long range dependent structure make the cost of the computation very large and for CLP (cell loss probability)<10-9 traditional Monte Carlo simulations are almost impossible to achieve it. The proposed fast ARIMA simulation based on importance sampling efficient to simulate the queuing performance with self-similar inputs which exhibit both SRD and LRD properties
Keywords :
Monte Carlo methods; asynchronous transfer mode; autoregressive moving average processes; fractals; queueing theory; telecommunication traffic; ATM network; NFS applications; cell loss probability; fast simulation; fractional ARIMA process; importance sampling scheme; long range dependence; queuing performance; self-similar traffic; short range dependence; Asynchronous transfer mode; Computational efficiency; Computational modeling; Gaussian noise; High-speed networks; Monte Carlo methods; Network servers; Switches; Telecommunication traffic; Traffic control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Communications, 1998. ICC 98. Conference Record. 1998 IEEE International Conference on
Conference_Location :
Atlanta, GA
Print_ISBN :
0-7803-4788-9
Type :
conf
DOI :
10.1109/ICC.1998.683144
Filename :
683144
Link To Document :
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