BLOOD GLUCOSE LEVEL NEURAL MODEL FOR TYPE 1 DIABETES MELLITUS PATIENTS

Author:

ALANIS ALMA Y.1,LEON BLANCA S.2,SANCHEZ EDGAR N.2,RUIZ-VELAZQUEZ EDUARDO3

Affiliation:

1. CUCEI, Universidad de Guadalajara, Apartado Postal 51–71, Col. las Aguilas, C.P. 45080, Zapopan, Jalisco, Mexico

2. CINVESTAV, Unidad Guadalajara, Apartado Postal 31–438, Plaza La Luna, Guadalajara, Jalisco, C.P. 45091, Mexico

3. Division de Electronica y Computacion, CUCEI, Universidad de Guadalajara, Av. Revolucion 1500, Guadalajara, Jal., Mexico

Abstract

This paper deals with the blood glucose level modeling for Type 1 Diabetes Mellitus (T1DM) patients. The model is developed using a recurrent neural network trained with an extended Kalman filter based algorithm in order to develop an affine model, which captures the nonlinear behavior of the blood glucose metabolism. The goal is to derive a dynamical mathematical model for the T1DM as the response of a patient to meal and subcutaneous insulin infusion. Experimental data given by continuous glucose monitoring system is utilized for identification and for testing the applicability of the proposed scheme to T1DM subjects.

Publisher

World Scientific Pub Co Pte Lt

Subject

Computer Networks and Communications,General Medicine

Cited by 16 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Neural model for glucose–insulin dynamics;Bio-Inspired Strategies for Modeling and Detection in Diabetes Mellitus Treatment;2024

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3. A methodical survey of mathematical model-based control techniques based on open and closed loop control approach for diabetes management;International Journal of Biomathematics;2022-04-07

4. Deep neuronal network-based glucose prediction for personalized medicine;Feedback Control for Personalized Medicine;2022

5. Neural identification of Type 1 Diabetes Mellitus for care and forecasting of risk events;Expert Systems with Applications;2021-11

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