Literature DB >> 25173434

Determining identifiable parameter combinations using subset profiling.

Marisa C Eisenberg1, Michael A L Hayashi2.   

Abstract

Identifiability is a necessary condition for successful parameter estimation of dynamic system models. A major component of identifiability analysis is determining the identifiable parameter combinations, the functional forms for the dependencies between unidentifiable parameters. Identifiable combinations can help in model reparameterization and also in determining which parameters may be experimentally measured to recover model identifiability. Several numerical approaches to determining identifiability of differential equation models have been developed, however the question of determining identifiable combinations remains incompletely addressed. In this paper, we present a new approach which uses parameter subset selection methods based on the Fisher Information Matrix, together with the profile likelihood, to effectively estimate identifiable combinations. We demonstrate this approach on several example models in pharmacokinetics, cellular biology, and physiology.
Copyright © 2014 Elsevier Inc. All rights reserved.

Keywords:  Fisher Information Matrix; Identifiability; Mathematical modeling; Parameter estimation; Profile likelihood

Mesh:

Year:  2014        PMID: 25173434     DOI: 10.1016/j.mbs.2014.08.008

Source DB:  PubMed          Journal:  Math Biosci        ISSN: 0025-5564            Impact factor:   2.144


  18 in total

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