DocumentCode :
1397844
Title :
Physiological interpretations based on lumped element models fit to respiratory impedance data: use of forward-inverse modeling
Author :
Lutchen, Kenneth R. ; Costa, Kevin D.
Author_Institution :
Dept. of Biomed. Eng., Boston Univ., MA, USA
Volume :
37
Issue :
11
fYear :
1990
Firstpage :
1076
Lastpage :
1086
Abstract :
Respiratory impedance (Z rs) data at lower (<4 Hz) and higher (>32 Hz) frequencies require more complicated inverse models than the standard series combination of a respiratory resistance, inertance, and compliance. A forward-inverse modeling approach was used to provide insight on how the parameters in these more complicated inverse models reflect the true physiological system. Forward models are set up to incorporate explicit physiological and anatomical detail. Simulated forward data are then fit with identifiable inverse models and the parameter estimates related to the known detail in the forward model. It is shown that inverse fitting of low-frequency data alone will not allow a distinction between frequency dependence due to airway inhomogeneities and frequency dependence due to tissue viscoelasticity. With higher frequency data, a forward model based on an asymmetric branching airways network was used to simulate Z rs from 0.1-128 Hz with increasing amounts of nonuniform peripheral airway obstruction. Hence, inverse modeling is more amenable to sensibly separating estimates of airway and tissue properties.
Keywords :
inverse problems; physiological models; pneumodynamics; 0.1 to 128 Hz; airway properties; forward-inverse modeling; low-frequency data; lumped element models; nonuniform peripheral airway obstruction; physiological interpretations; respiratory impedance data; tissue properties; tissue viscoelasticity; Biomedical engineering; Data mining; Elasticity; Frequency dependence; Impedance; Inverse problems; Laboratories; Mechanical factors; Parameter estimation; Viscosity; Zirconium; Airway Obstruction; Airway Resistance; Animals; Compliance; Dogs; Humans; Models, Biological; Respiratory Tract Diseases; Viscosity;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.61033
Filename :
61033
Link To Document :
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