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Linking Discrete and Stochastic Models: The Chemical Master Equation as a Bridge between Process Hitting and Proper Generalized Decomposition

Article dans une revue avec comité de lecture
Auteur
CHANCELLOR, Courtney
21439 Institut de Recherche en Communications et en Cybernétique de Nantes [IRCCyN]
ccAMMAR, Amine
211916 Laboratoire Angevin de Mécanique, Procédés et InnovAtion [LAMPA]
ccCHINESTA SORIA, Francisco
10921 Institut de Recherche en Génie Civil et Mécanique [GeM]
MAGNIN, Morgan
21439 Institut de Recherche en Communications et en Cybernétique de Nantes [IRCCyN]
ROUX, Olivier
21439 Institut de Recherche en Communications et en Cybernétique de Nantes [IRCCyN]

URI
http://hdl.handle.net/10985/10259
DOI
10.1007/978-3-642-40708-6_5
Date
2013
Journal
Lecture Notes in Computer Science

Résumé

Modeling frameworks bring structure and analysis tools to large and non-intuitive systems but come with certain inherent assumptions and limitations, sometimes to an inhibitive extent. By building bridges in existing models, we can exploit the advantages of each, widening the range of analysis possible for larger, more detailed models of gene regulatory networks. In this paper, we create just such a link between Process Hitting [6,7,8], a recently introduced discrete framework, and the Chemical Master Equation in such a way that allows the application of powerful numerical techniques, namely Proper Generalized Decomposition [1,2,3], to overcome the curse of dimensionality. With these tools in hand, one can exploit the formal analysis of discrete models without sacrificing the ability to obtain a full space state solution, widening the scope of analysis and interpretation possible. As a demonstration of the utility of this methodology, we have applied it here to the p53-mdm2 network [4,5], a widely studied biological regulatory network.

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Documents liés

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  • Kinetic Theory Modeling and Efficient Numerical Simulation of Gene Regulatory Networks Based on Qualitative Descriptions 
    Article dans une revue avec comité de lecture
    ccCHINESTA SORIA, Francisco; MAGNIN, Morgan; ROUX, Olivier; ccAMMAR, Amine; ccCUETO, Elias (MDPI, 2015)
    In this work, we begin by considering the qualitative modeling of biological regulatory systems using process hitting, from which we define its probabilistic counterpart by considering the chemical master equation within ...
  • Chemical Master Equation Empirical Moment Closure 
    Article dans une revue avec comité de lecture
    ccAMMAR, Amine; MAGNIN, Morgan; ROUX, Olivier; ccCUETO, Elias; ccCHINESTA SORIA, Francisco (Omics Publishing Group, 2016)
    The numerical solution of the Chemical Master Equation (CME) governing gene regulatory networks and cell signaling processes remains a challenging task due to its complexity, exponentially growing with the number of species ...
  • On the solution of the heat equation in very thin tapes 
    Article dans une revue avec comité de lecture
    ccPRULIERE, Etienne; ccCHINESTA SORIA, Francisco; ccAMMAR, Amine; LEYGUE, Adrien; POITOU, Arnaud (Elsevier, 2012)
    This paper addresses two issues usually encountered when simulating thermal processes in forming processes involving tape-type geometries, as is the case of tape or tow placement, surface treatments, / The first issue ...
  • Introduction for the special Issue: statistical fluid dynamics 
    Article dans une revue avec comité de lecture
    ccAMMAR, Amine; ccVALETTE, Rudy; ccCHINESTA SORIA, Francisco (MDPI AG, 2022-06)
    Characterizing complex material consists in establishing the relationship between flow rheology during forming processes and the induced micro-structural state that affects directly the final mechanical properties of the ...
  • Parametric Analysis of Thick FGM Plates Based on 3D Thermo-Elasticity Theory: A Proper Generalized Decomposition Approach 
    Article dans une revue avec comité de lecture
    ccKAZEMZADEH-PARSI, Mohammad-Javad; ccAMMAR, Amine; ccCHINESTA SORIA, Francisco (2023)
    In the present work, the general and well-known model reduction technique, PGD (Proper Generalized Decomposition), is used for parametric analysis of thermo-elasticity of FGMs (Functionally Graded Materials). The FGMs have ...

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