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Markov Chain Aggregation and Its Application to Rule-Based Modelling

Petrov T.
2019
  • book part

Abstract
Rule-based modelling allows to represent molecular interactions in a compact and natural way. The underlying molecular dynamics, by the laws of stochastic chemical kinetics, behaves as a continuous-time Markov chain. However, this Markov chain enumerates all possible reaction mixtures, rendering the analysis of the chain computationally demanding and often prohibitive in practice. We here describe how it is possible to efficiently find a smaller, aggregate chain, which preserves certain properties of the original one. Formal methods and lumpability notions are used to define algorithms for automated and efficient construction of such smaller chains (without ever constructing the original ones). We here illustrate the method on an example and we discuss the applicability of the method in the context of modelling large signaling pathways.
DOI
10.1007/978-1-4939-9102-0_14
WOS
WOS:000706407000014
Archivio
https://hdl.handle.net/11368/3070444
info:eu-repo/semantics/altIdentifier/scopus/2-s2.0-85064239546
Diritti
metadata only access
Soggetti
  • Bisimulation

  • Lumpability

  • Markov chain aggregat...

  • Rule-based modelling

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