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The erlangization method for Markovian fluid flows
Authors:V. Ramaswami  Douglas G. Woolford  David A. Stanford
Affiliation:(1) AT&T Labs Research, 180 Park Avenue, Florham Park, NJ 07932, USA;(2) Department of Statistical & Actuarial Sciences, The University of Western Ontario, London, ON, Canada
Abstract:For applications of stochastic fluid models, such as those related to wildfire spread and containment, one wants a fast method to compute time dependent probabilities. Erlangization is an approximation method that replaces various distributions at a time t by the corresponding ones at a random time with Erlang distribution having mean t. Here, we develop an efficient version of that algorithm for various first passage time distributions of a fluid flow, exploiting recent results on fluid flows, probabilistic underpinnings, and some special structures. Some connections with a familiar Laplace transform inversion algorithm due to Jagerman are also noted up front.
Keywords:Erlangization  Fluid flow  Markov modulation  Markov process
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