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The Use of Genetic Algorithms for Searching Parameter Space in Gaussian Process Modeling

  • Journal of Telecommunications and Information Technology
  • National Institute of Telecommunications
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Abstract

The aim of the paper is to present the possibilities of modeling the experimental data by Gaussian processes. Genetic algorithms are used for finding the Gaussian process parameters. Comparison of data modeling accuracy is made according to neural networks learned by Kalman filtering. Concrete hysteresis loops obtained by the experiment of cyclic loading are considered as the real data time series.

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DOI
10.26636/jtit.2015.3.970
OpenAlex
W2594893730
Document type
article
Language
EN
Source
Journal of Telecommunications and Information Technology
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