Fractional-Order Adaptive Control Techniques for Artificial Pancreas

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dc.contributor.author BENSALEM, Serine
dc.contributor.author Bensalem, Serine
dc.contributor.other Ladaci S.Directeur de thèse
dc.date.accessioned 2025-12-09T12:59:57Z
dc.date.available 2025-12-09T12:59:57Z
dc.date.issued 2025
dc.identifier.other EP01046
dc.identifier.uri http://repository.enp.edu.dz/jspui/handle/123456789/11362
dc.description Mémoire de Projet de Fin d’Études :Automatique : Alger, École Nationale Polytechnique : 2025 fr_FR
dc.description.abstract Type 1 diabetes mellitus is a disease where the patient is not able to produce necessary insulin to regulate the concentration of glucose in the blood. Artificial pancreas is a device that can regulate this concentration and turn the behavior to normal. The human regulatory system can be modeled using differential equations; their order could be integer or fractional. In this work, we examine the accuracy of fractional-order modeling of the minimal model using real data, then robust control techniques are implemented. First, a model reference indirect adaptive controller is designed using two approaches: integer order approach and fractional-order approach, then a fractional-order sliding mode controller is implemented with a robust sliding mode observer to estimate the glucose concentration in the blood. The controller is tuned by a genetic optimization algorithm. Finally, a Neuro fuzzy controller. Several robustness tests are presented (Meal simulation) and evaluated using different types of errors’ criteria. fr_FR
dc.description.sponsorship , fr_FR
dc.language.iso en fr_FR
dc.subject Artificial Pancreas fr_FR
dc.subject Fractional Calculus, Adaptive fr_FR
dc.subject Control, Sliding fr_FR
dc.subject Mode Control fr_FR
dc.subject Bergman fr_FR
dc.subject Minimal Model fr_FR
dc.subject IVTT Model fr_FR
dc.subject Robustness Test fr_FR
dc.subject Meal Intake fr_FR
dc.subject Adaptive Neuro Fuzzy Controller, fr_FR
dc.subject Genetic Algorithm fr_FR
dc.subject Optimization. fr_FR
dc.title Fractional-Order Adaptive Control Techniques for Artificial Pancreas fr_FR
dc.type Thesis fr_FR


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