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Trudy SPIIRAN, 2019, Issue 18, volume 5, Pages 1119–1148
DOI: https://doi.org/10.15622/sp.2019.18.5.1119-1148
(Mi trspy1076)
 

This article is cited in 3 scientific papers (total in 3 papers)

Mathematical Modeling, Numerical Methods

Statistical stability analysis of stationary Markov models

J. V. Doronina, A. V. Skatkov

Sevastopol State University (SEVGU)
Abstract: An approach is proposed to assess the quality of stationary Markov models without absorbing states on the basis of a measure of statistical stability: the description is formulated and its properties are determined. It is shown that the estimates of statistical stability of models were raised by different authors, either as a methodological aspect of the model quality, or within the framework of other model properties. When solving practical problems of simulation, for example, based on Markov models, there is a pronounced problem of ensuring the dimension of the required samples. On the basis of the introduced formulations, a constructive approach to solving the problems of sample size optimization and statistical volatility analysis of the Markov model to the emerging anomalies with restrictions on the accuracy of the results is proposed, which ensures the required reliability and the exclusion of non-functional redundancy.
To analyze the type of transitions in the transition matrix, a measure of its divergence (normalized and centered) is introduced. This measure does not have the completeness of the description and is used as an illustrative characteristic of the models of a certain property. The estimation of the divergence of transition matrices can be useful in the study of models with high sensitivity of detection of the studied properties of objects. The key stages of the approach associated with the study of quasi-homogeneous models are formulated.
Quantitative estimates of statistical stability and statistical volatility of the model are proposed on the example of modeling a real technical object with failures, recovery and prevention. The effectiveness of the proposed approaches in solving the problem of statistical stability analysis in the problems of qualimetric analysis of quasi-homogeneous models of complex systems is shown. On the basis of the offered constructive approach the operational tool of decision-making on parametric and functional adjustment of difficult technical objects on long-term and short-term prospects is received.
Keywords: statistical stability, quasi-homogeneous model, statistical volatility, random walk, Markov chain, complex technical system, accuracy, transition probability, number of process implementations, model divergence.
Received: 23.04.2019
Bibliographic databases:
Document Type: Article
UDC: 004.94
Language: Russian
Citation: J. V. Doronina, A. V. Skatkov, “Statistical stability analysis of stationary Markov models”, Tr. SPIIRAN, 18:5 (2019), 1119–1148
Citation in format AMSBIB
\Bibitem{DorSka19}
\by J.~V.~Doronina, A.~V.~Skatkov
\paper Statistical stability analysis of stationary Markov models
\jour Tr. SPIIRAN
\yr 2019
\vol 18
\issue 5
\pages 1119--1148
\mathnet{http://mi.mathnet.ru/trspy1076}
\crossref{https://doi.org/10.15622/sp.2019.18.5.1119-1148}
\elib{https://elibrary.ru/item.asp?id=40938367}
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  • This publication is cited in the following 3 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Informatics and Automation
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