Estimation of Contaminants Decomposition in Solid Phase with Ozone by Differential Neural Networks with Discontinuous Learning Law

T. Poznyak, I. Chairez, A. Poznyak

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

Resumen

A discontinuous learning law is implemented here to adjust an adaptive non-parametric identifier, based on the differential neural networks (DNNs) approximations. The learning law for DNN uses the vector form of an extended super-twisting algorithm as the output injection term in the DNN structure. The learning laws with discontinuous dynamics have been obtained from the application of a special class of strong lower semi-continuous Lyapunov function. The developed observer was tested on both modelled and experimental input-output information on the specific the ozonation process of a contaminated solid phase. A numerical example illustrates the observer performance when the input-output information is free of the observation noise. The observer has been evaluated using real experimental data, obtained by the direct laboratory analysis. In both cases, modelling and real experiments, the coincidence between the ozonation variables and the estimated states shows a remarkable correspondence.

Idioma originalInglés
Título de la publicación alojada2018 15th International Workshop on Variable Structure Systems, VSS 2018
EditorialIEEE Computer Society
Páginas291-296
Número de páginas6
ISBN (versión impresa)9781538664391
DOI
EstadoPublicada - 10 sep. 2018
Evento15th International Workshop on Variable Structure Systems, VSS 2018 - Graz, Austria
Duración: 9 jul. 201811 jul. 2018

Serie de la publicación

NombreProceedings of IEEE International Workshop on Variable Structure Systems
Volumen2018-July
ISSN (versión impresa)2165-4816
ISSN (versión digital)2165-4824

Conferencia

Conferencia15th International Workshop on Variable Structure Systems, VSS 2018
País/TerritorioAustria
CiudadGraz
Período9/07/1811/07/18

Huella

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