Literature DB >> 22587170

Random dynamical models from time series.

Y I Molkov1, E M Loskutov, D N Mukhin, A M Feigin.   

Abstract

In this work we formulate a consistent Bayesian approach to modeling stochastic (random) dynamical systems by time series and implement it by means of artificial neural networks. The feasibility of this approach for both creating models adequately reproducing the observed stationary regime of system evolution, and predicting changes in qualitative behavior of a weakly nonautonomous stochastic system, is demonstrated on model examples. In particular, a successful prognosis of stochastic system behavior as compared to the observed one is illustrated on model examples, including discrete maps disturbed by non-Gaussian and nonuniform noise and a flow system with Langevin force.

Year:  2012        PMID: 22587170     DOI: 10.1103/PhysRevE.85.036216

Source DB:  PubMed          Journal:  Phys Rev E Stat Nonlin Soft Matter Phys        ISSN: 1539-3755


  4 in total

1.  Circadian variability of body temperature responses to methamphetamine.

Authors:  Abolhassan Behrouzvaziri; Maria V Zaretskaia; Daniel E Rusyniak; Dmitry V Zaretsky; Yaroslav I Molkov
Journal:  Am J Physiol Regul Integr Comp Physiol       Date:  2017-09-06       Impact factor: 3.619

2.  Amphetamine enhances endurance by increasing heat dissipation.

Authors:  Ekaterina Morozova; Yeonjoo Yoo; Abolhassan Behrouzvaziri; Maria Zaretskaia; Daniel Rusyniak; Dmitry Zaretsky; Yaroslav Molkov
Journal:  Physiol Rep       Date:  2016-09

3.  Principal nonlinear dynamical modes of climate variability.

Authors:  Dmitry Mukhin; Andrey Gavrilov; Alexander Feigin; Evgeny Loskutov; Juergen Kurths
Journal:  Sci Rep       Date:  2015-10-22       Impact factor: 4.379

4.  Bayesian Data Analysis for Revealing Causes of the Middle Pleistocene Transition.

Authors:  Dmitry Mukhin; Andrey Gavrilov; Evgeny Loskutov; Juergen Kurths; Alexander Feigin
Journal:  Sci Rep       Date:  2019-05-13       Impact factor: 4.379

  4 in total

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