Literature DB >> 20538754

A systems engineering approach to validation of a pulmonary physiology simulator for clinical applications.

A Das1, Z Gao, P P Menon, J G Hardman, D G Bates.   

Abstract

Physiological simulators which are intended for use in clinical environments face harsh expectations from medical practitioners; they must cope with significant levels of uncertainty arising from non-measurable parameters, population heterogeneity and disease heterogeneity, and their validation must provide watertight proof of their applicability and reliability in the clinical arena. This paper describes a systems engineering framework for the validation of an in silico simulation model of pulmonary physiology. We combine explicit modelling of uncertainty/variability with advanced global optimization methods to demonstrate that the model predictions never deviate from physiologically plausible values for realistic levels of parametric uncertainty. The simulation model considered here has been designed to represent a dynamic in vivo cardiopulmonary state iterating through a mass-conserving set of equations based on established physiological principles and has been developed for a direct clinical application in an intensive-care environment. The approach to uncertainty modelling is adapted from the current best practice in the field of systems and control engineering, and a range of advanced optimization methods are employed to check the robustness of the model, including sequential quadratic programming, mesh-adaptive direct search and genetic algorithms. An overview of these methods and a comparison of their reliability and computational efficiency in comparison to statistical approaches such as Monte Carlo simulation are provided. The results of our study indicate that the simulator provides robust predictions of arterial gas pressures for all realistic ranges of model parameters, and also demonstrate the general applicability of the proposed approach to model validation for physiological simulation.

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Year:  2010        PMID: 20538754      PMCID: PMC3024823          DOI: 10.1098/rsif.2010.0224

Source DB:  PubMed          Journal:  J R Soc Interface        ISSN: 1742-5662            Impact factor:   4.118


  10 in total

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Authors:  J G Hardman; A R Aitkenhead
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2.  Robustness as a measure of plausibility in models of biochemical networks.

Authors:  Mineo Morohashi; Amanda E Winn; Mark T Borisuk; Hamid Bolouri; John Doyle; Hiroaki Kitano
Journal:  J Theor Biol       Date:  2002-05-07       Impact factor: 2.691

3.  Modelling: a core technique in anaesthesia and critical care research.

Authors:  J G Hardman; J J Ross
Journal:  Br J Anaesth       Date:  2006-11       Impact factor: 9.166

4.  A physiology simulator: validation of its respiratory components and its ability to predict the patient's response to changes in mechanical ventilation.

Authors:  J G Hardman; N M Bedforth; A B Ahmed; R P Mahajan; A R Aitkenhead
Journal:  Br J Anaesth       Date:  1998-09       Impact factor: 9.166

5.  Simple, accurate equations for human blood O2 dissociation computations.

Authors:  J W Severinghaus
Journal:  J Appl Physiol Respir Environ Exerc Physiol       Date:  1979-03

6.  Estimating venous admixture using a physiological simulator.

Authors:  J G Hardman; N M Bedforth
Journal:  Br J Anaesth       Date:  1999-03       Impact factor: 9.166

7.  Robustness analysis of biochemical network models.

Authors:  J Kim; D G Bates; I Postlethwaite; L Ma; P A Iglesias
Journal:  Syst Biol (Stevenage)       Date:  2006-05

8.  The dose-response relationship for hypoxic pulmonary vasoconstriction.

Authors:  B E Marshall; W R Clarke; A T Costarino; L Chen; F Miller; C Marshall
Journal:  Respir Physiol       Date:  1994-05

9.  Continuous distributions of ventilation-perfusion ratios in normal subjects breathing air and 100 per cent O2.

Authors:  P D Wagner; R B Laravuso; R R Uhl; J B West
Journal:  J Clin Invest       Date:  1974-07       Impact factor: 14.808

10.  Validation and application of a high-fidelity, computational model of acute respiratory distress syndrome to the examination of the indices of oxygenation at constant lung-state.

Authors:  R A McCahon; M O Columb; R P Mahajan; J G Hardman
Journal:  Br J Anaesth       Date:  2008-06-20       Impact factor: 11.719

  10 in total
  6 in total

1.  Effect of oxygen fraction on airway rescue: a computational modelling study.

Authors:  Marianna Laviola; Christian Niklas; Anup Das; Declan G Bates; Jonathan G Hardman
Journal:  Br J Anaesth       Date:  2020-01-31       Impact factor: 9.166

2.  Ventilation strategies for front of neck airway rescue: an in silico study.

Authors:  Marianna Laviola; Christian Niklas; Anup Das; Declan G Bates; Jonathan G Hardman
Journal:  Br J Anaesth       Date:  2021-03-03       Impact factor: 11.719

3.  Evaluation of lung recruitment maneuvers in acute respiratory distress syndrome using computer simulation.

Authors:  Anup Das; Oana Cole; Marc Chikhani; Wenfei Wang; Tayyba Ali; Mainul Haque; Declan G Bates; Jonathan G Hardman
Journal:  Crit Care       Date:  2015-01-12       Impact factor: 9.097

4.  Hemodynamic effects of lung recruitment maneuvers in acute respiratory distress syndrome.

Authors:  Anup Das; Mainul Haque; Marc Chikhani; Oana Cole; Wenfei Wang; Jonathan G Hardman; Declan G Bates
Journal:  BMC Pulm Med       Date:  2017-02-08       Impact factor: 3.317

5.  Validation of at-the-bedside formulae for estimating ventilator driving pressure during airway pressure release ventilation using computer simulation.

Authors:  Sonal Mistry; Anup Das; Sina Saffaran; Nadir Yehya; Timothy E Scott; Marc Chikhani; John G Laffey; Jonathan G Hardman; Luigi Camporota; Declan G Bates
Journal:  Respir Res       Date:  2022-04-26

6.  Simulations for mechanical ventilation in children: review and future prospects.

Authors:  Olivier Flechelles; Annie Ho; Patrice Hernert; Guillaume Emeriaud; Nesrine Zaglam; Farida Cheriet; Philippe A Jouvet
Journal:  Crit Care Res Pract       Date:  2013-03-07
  6 in total

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