Dynamic systems control and identification using VSC-based learning algorithms for perceptron networks

  • Francklin Rivas Echeverría Universidad de Los Andes-Venezuela
  • Eliezer Colina Morles Universidad de Los Andes-Venezuela
Palabras clave: neural networks, variable structure control, learning algorithms, identification, control

Resumen

In this paper a set of Variable Structure Control (VSC)-based on-line learning algorithms for continuous time two layer and three layer perceptron networks with non-linear and linear activation functions are presented. The proposed algorithms result in a temporal learning capabilities of a neural network with dynamically adjusted weights, and zero convergence of the learning error in a finite time. These learning algorithms are used with identification and control schemes for linear and non linear dynamic systems.

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Cómo citar
Rivas Echeverría, F. y Colina Morles, E. (1) «Dynamic systems control and identification using VSC-based learning algorithms for perceptron networks», Rev. Téc. Fac. Ing. Univ. Zulia, 23(1). Disponible en: https://produccioncientificaluz.org/index.php/tecnica/article/view/5648 (Accedido: 23septiembre2025).
Sección
Artículos de Investigación