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KIAM Preprint № 83, Moscow, 2022
Authors: Orlov Y.N., Soloviev V.O.
To the accuracy estimation of the high intensive flows of experimental data
Abstract:
The computational aspects of processing a large volume of experimental data related to the unsteadiness of the process, measurement inaccuracy, and inaccuracy of classifying algorithms are investigated. The limitations of the Bayesian approach to the problem of pattern recognition are also considered, when the maximum probability of matching the current state to one of the basic standards is determined by decomposing the fragment under study according to a known basis.
Keywords:
non-stationary time series, big data, basis patterns, classification
Publication language: russian,  pages: 24
Research direction:
Mathematical modelling in actual problems of science and technics
Russian source text:
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About authors:
  • Orlov Yurii Nikolaevich,  ov31509f@yandex.ruorcid.org/0000-0002-1356-5137KIAM RAS
  • Soloviev Viktor Olegovich,  solovievvo@yandex.ru,  Mechanical Engineering Research Institute of RAS