Stochastic Graph Transformation with Regions

Authors

  • Paolo Torrini
  • Reiko Heckel
  • Istvan Rath
  • Gabor Bergmann

DOI:

https://doi.org/10.14279/tuj.eceasst.29.413

Abstract

Graph transformation can be used to implement stochastic simulation of dynamic systems based on semi-Markov processes, extending the standard approach based on Markov chains. The result is a discrete event system, where states are graphs, and events are rule matches associated to general distributions, rather than just exponential ones. We present an extension of this model, by introducing a hierarchical notion of event location, allowing for stochastic dependence of higher-level events on lower-level ones.

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Published

2010-07-22

How to Cite

[1]
P. Torrini, R. Heckel, I. Rath, and G. Bergmann, “Stochastic Graph Transformation with Regions”, eceasst, vol. 29, Jul. 2010.