Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model

The aim of this paper is to promote the development of new biological models and the application of optimization methods to these models. Fast and cheap computing power allows for the ready implementation of increasingly complex dynamic models in biology. However, these models are normally developed...

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Main Authors: Al Helal, Z., Rehbock, Volker, Loxton, Ryan
Format: Journal Article
Published: John Wiley and Sons 2018
Online Access:http://hdl.handle.net/20.500.11937/67018
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author Al Helal, Z.
Rehbock, Volker
Loxton, Ryan
author_facet Al Helal, Z.
Rehbock, Volker
Loxton, Ryan
author_sort Al Helal, Z.
building Curtin Institutional Repository
collection Online Access
description The aim of this paper is to promote the development of new biological models and the application of optimization methods to these models. Fast and cheap computing power allows for the ready implementation of increasingly complex dynamic models in biology. However, these models are normally developed in isolation, and their highly coupled nature can make it difficult to incorporate features from one model into another. In addition, there are many recent advances in numerical optimal control, which have not yet been applied to biological models. In this paper, we illustrate how an existing biological model can be extended to incorporate features from other models, and we demonstrate that numerical optimal control techniques can readily determine optimal strategies for managing the resulting system. In particular, we develop a new composite dynamic model for the blood glucose regulatory system by incorporating the effects of exercise and insulin injections into an existing model with 8 state variables. We formulate an optimal control problem, in which the aim is to determine optimal injection times, optimal injection volumes, and an optimal exercise regime to regulate the blood glucose level. A numerical approach, based on the concept of control parameterization and a time-scaling transformation, is then developed for solving the optimal control problem. Numerical results for 5 scenarios show that optimal treatment regimes can be readily determined via the proposed approach.
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publishDate 2018
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spelling curtin-20.500.11937-670182018-11-01T01:14:48Z Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model Al Helal, Z. Rehbock, Volker Loxton, Ryan The aim of this paper is to promote the development of new biological models and the application of optimization methods to these models. Fast and cheap computing power allows for the ready implementation of increasingly complex dynamic models in biology. However, these models are normally developed in isolation, and their highly coupled nature can make it difficult to incorporate features from one model into another. In addition, there are many recent advances in numerical optimal control, which have not yet been applied to biological models. In this paper, we illustrate how an existing biological model can be extended to incorporate features from other models, and we demonstrate that numerical optimal control techniques can readily determine optimal strategies for managing the resulting system. In particular, we develop a new composite dynamic model for the blood glucose regulatory system by incorporating the effects of exercise and insulin injections into an existing model with 8 state variables. We formulate an optimal control problem, in which the aim is to determine optimal injection times, optimal injection volumes, and an optimal exercise regime to regulate the blood glucose level. A numerical approach, based on the concept of control parameterization and a time-scaling transformation, is then developed for solving the optimal control problem. Numerical results for 5 scenarios show that optimal treatment regimes can be readily determined via the proposed approach. 2018 Journal Article http://hdl.handle.net/20.500.11937/67018 10.1002/oca.2371 John Wiley and Sons fulltext
spellingShingle Al Helal, Z.
Rehbock, Volker
Loxton, Ryan
Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model
title Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model
title_full Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model
title_fullStr Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model
title_full_unstemmed Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model
title_short Insulin injections and exercise scheduling for individuals with diabetes: An optimal control model
title_sort insulin injections and exercise scheduling for individuals with diabetes: an optimal control model
url http://hdl.handle.net/20.500.11937/67018