State-dependent importance sampling for a Jackson tandem network

Author:

Miretskiy Denis1,Scheinhardt Werner1,Mandjes Michel2

Affiliation:

1. University of Twente, AE Enschede, The Netherlands

2. University of Amsterdamm, TV Amsterdam, The Netherlands

Abstract

This article considers importance sampling as a tool for rare-event simulation. The focus is on estimating the probability of overflow in the downstream queue of a Jacksonian two-node tandem queue; it is known that in this setting “traditional” state-independent importance-sampling distributions perform poorly. We therefore concentrate on developing a state-dependent change of measure, that we prove to be asymptotically efficient. More specific contributions are the following. (i) We concentrate on the probability of the second queue exceeding a certain predefined threshold before the system empties. Importantly, we identify an asymptotically efficient importance-sampling distribution for any initial state of the system. (ii) The choice of the importance-sampling distribution is backed up by appealing heuristics that are rooted in large-deviations theory. (iii) The method for proving asymptotic efficiency relies on probabilistic arguments only. The article is concluded by simulation experiments that show a considerable speedup.

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Science Applications,Modelling and Simulation

Reference20 articles.

1. }}Anantharam V. Heidelberger P. and Tsoucas P. 1990. Analysis of rare events in continuous time Markov chains via time reversal and fluid approximation. IBM Res. rep. 16280. }}Anantharam V. Heidelberger P. and Tsoucas P. 1990. Analysis of rare events in continuous time Markov chains via time reversal and fluid approximation. IBM Res. rep. 16280.

2. Analysis of state-independent importance-sampling measures for the two-node tandem queue

3. Alternative proof and interpretations for a recent state-dependent importance sampling scheme

4. }}Dembo A. and Zeitouni O. 1998. Large Deviations Techniques and Applications. 2nd Ed. Springer New York. }}Dembo A. and Zeitouni O. 1998. Large Deviations Techniques and Applications. 2nd Ed. Springer New York.

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