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Probabilistic Modeling, Estimation and Control for CALS Organization-Technical-Economic Systems

In: Probability, Combinatorics and Control

Author

Listed:
  • Igor N. Sinitsyn
  • Anatoly S. Shalamov

Abstract

Theoretical propositions of new probabilistic methodology of analysis, modeling, estimation and control in stochastic organizational-technical-economic systems (OTES) based on stochastic CALS informational technologies are considered. Stochastic integrated logistic support (ILS) of OTES modeling life cycle (LC), stochastic optimal of current state estimation in stochastic media defined by internal and external noises (including specially organized OTES-NS (noise support) and stochastic OTES optimal control) according to social-technical-economic-support criteria in real time by informational-analytical tools (IAT) of global type are presented. OTES-CALS are nonlinear and continuous-discrete. So we use approximate methods of normal approximation of probabilistic densities both for modeling and estimation. Spectrum of possibilities may be broaden by solving problems of OTES-CALS integration for existing markets of finances, goods and services. Analytical modeling, analysis, parametric optimization and optimal stochastic processes regulation in limits of illustrate some technologies and IAT given plans.

Suggested Citation

  • Igor N. Sinitsyn & Anatoly S. Shalamov, 2020. "Probabilistic Modeling, Estimation and Control for CALS Organization-Technical-Economic Systems," Chapters, in: Andrey Kostogryzov & Victor Korolev (ed.), Probability, Combinatorics and Control, IntechOpen.
  • Handle: RePEc:ito:pchaps:198617
    DOI: 10.5772/intechopen.88025
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    More about this item

    Keywords

    continuous acquisition logic support (CALS); estimation control; planning and management technologies; modeling and analysis technologies; organizational-technical-economic systems (OTES); stochastic systems (StS);
    All these keywords.

    JEL classification:

    • C60 - Mathematical and Quantitative Methods - - Mathematical Methods; Programming Models; Mathematical and Simulation Modeling - - - General

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