DocumentCode :
2956476
Title :
Parallel Simulation of Hybrid Network Traffic Models
Author :
Liu, Jason
Author_Institution :
Colorado Sch. of Mines, Golden
fYear :
2007
fDate :
12-15 June 2007
Firstpage :
141
Lastpage :
151
Abstract :
We examine a parallel processing method for simulations of large-scale networks with a hybrid traffic representation combining both a time-stepped fluid model and a discrete-event packet-oriented model. This method benefits from the observation that the time it takes to propagate fluid characteristics along the path taken by the traffic flows has a lower bound equal to the minimum link delay as manifested by the governing ordinary differential equations (ODEs). A better lookahead can thus be used to allow parallel simulation of the hybrid model to run without more synchronization overhead than the corresponding discrete-event packet-oriented model. We derive an analytical model comparing the fluid model and the packet-oriented model both for sequential and parallel simulations. We demonstrate the benefit of the parallel hybrid model through a series of simulation experiments of a large-scale network consisting of over 170,000 hosts and 1.6 million traffic flows on a small parallel cluster.
Keywords :
differential equations; discrete event simulation; large-scale systems; parallel processing; telecommunication traffic; discrete-event packet-oriented model; hybrid network traffic models; large-scale networks; ordinary differential equations; parallel processing method; sequential simulations; time-stepped fluid model; Computational modeling; Computer networks; Computer simulation; Concurrent computing; Differential equations; Discrete event simulation; Fluid flow; Large-scale systems; Telecommunication traffic; Traffic control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Principles of Advanced and Distributed Simulation, 2007. PADS '07. 21st International Workshop on
Conference_Location :
San Diego, CA
Print_ISBN :
0-7695-2898-8
Type :
conf
DOI :
10.1109/PADS.2007.26
Filename :
4262800
Link To Document :
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