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Building models of technological processes based on neuro-fuzzy technology

Author(s):


Medium: journal article
Language(s): English
Published in: Journal of Physics: Conference Series, , n. 1, v. 2697
Page(s): 012029
DOI: 10.1088/1742-6596/2697/1/012029
Abstract:

The work considers the issues of formalization of the extraction process in the form of a generalized regression neural network model, which are the basis for solving the problem of analysis and synthesis of the extraction process control system for obtaining petroleum products. An adaptive learning algorithm for a neural network model has been developed that is characterized by high speed and accuracy. A comparative analysis of the developed model with existing ones was made, which showed the effectiveness of the proposed algorithm for building the architecture of neural network models and learning the weight coefficients of the model.

Structurae cannot make the full text of this publication available at this time. The full text can be accessed through the publisher via the DOI: 10.1088/1742-6596/2697/1/012029.
  • About this
    data sheet
  • Reference-ID
    10777545
  • Published on:
    12/05/2024
  • Last updated on:
    12/05/2024
 
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