Title :
Fuzzy-Based Controller for Glucose Regulation in Type-1 Diabetic Patients by Subcutaneous Route
Author :
Campos-Delgado, D.U. ; Hernandez-Ordonez, M. ; Femat, R. ; Gordillo-Moscoso, A.
Author_Institution :
Fac. de Ciencias, Univ. Autonoma de San Luis Potosi, Mexico City
Abstract :
This paper presents an advisory/control algorithm for a type-1 diabetes mellitus (TIDM) patient under an intensive insulin treatment based on a multiple daily injections regimen (MDIR). The advisory/control algorithm incorporates expert knowledge about the treatment of this disease by using Mamdani-type fuzzy logic controllers to regulate the blood glucose level (BGL). The overall control strategy is based on a two-loop feedback strategy to overcome the variability in the glucose-insulin dynamics from patient to patient. An inner-loop provides the amount of both rapid/short and intermediate/long acting insulin (RSAI and ILAI) formulations that are programmed in a three-shots daily basis before meals. The combined preparation is then injected by the patient through a subcutaneous route. Meanwhile, an outer-loop adjusts the maximum amounts of insulin provided to the patient in a time-scale of days. The outer-loop controller aims to work as a supervisor of the inner-loop controller. Extensive closed-loop simulations are illustrated, using a detailed compartmental model of the insulin-glucose dynamics in a TIDM patient with meal intake
Keywords :
biochemistry; biocontrol; blood; diseases; fuzzy control; molecular biophysics; patient treatment; physiological models; Mamdani-type fuzzy logic controllers; advisory/control algorithm; blood glucose level; blood glucose regulation; closed-loop simulations; fuzzy-based controller; glucose-insulin dynamics; inner-loop controller; intensive treatment; intermediate/long acting insulin; multiple daily injections regimen; outer-loop controller; rapid/short acting insulin; subcutaneous route; two-loop feedback strategy; type-1 diabetic patients; Biochemistry; Blood; Diabetes; Diseases; Feedback; Fuzzy logic; Insulin; Medical treatment; Pancreas; Sugar; Diabetes mellitus; fuzzy control; glucose regulation; intensive insulin therapy; Algorithms; Blood Glucose; Computer Simulation; Diabetes Mellitus, Type 1; Drug Therapy, Computer-Assisted; Feedback; Humans; Injections, Subcutaneous; Insulin; Models, Biological;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2006.879461