DocumentCode :
2855571
Title :
On optimal defibrillating pulse synthesis
Author :
Barbieri, E. ; Eberth, J.F. ; Attarzadeh, F.
Author_Institution :
Dept. of Eng. Technol., Univ. of Houston, Houston, TX, USA
fYear :
2011
fDate :
June 29 2011-July 1 2011
Firstpage :
4781
Lastpage :
4786
Abstract :
This article proposes a control framework suitable to study the synthesis of electrical signals that bring a flbrillating heart to a nominal (deflbrillated) state so that regular, autonomous cardiac activity resumes. A parallel resistor/capacitor (single RC-circuit) and energy source has been used for over 70 years to describe the heart´s deflbrillated state as a condition of reaching nominal threshold potential values represented by the capacitor voltage. The bidomain model adopted in the 1990´s was an improvement as it provided 2D and 3D continuum models of cardiac tissue enabling significant advances in modeling electrical cardiac activity. We have spatially discretized a version of the bidomain equations so that the temporal behavior of the transmembrane potential at a point is deduced from an infinite number of first-order differential equations. The connection to a network of RC-circuits is logical and creates opportunities for theoretical and practical modeling and control contributions. A strategy that minimizes a weighted time/energy cost for the single RC-circuit was applied to a multi-RC model. The proposed pulse is agile and energy conscientious thus outperforming the pulse developed to minimize energy consumption alone. The results can also be used to formalize ad-hoc reports that explore the time-energy tradeoff in other defibrillating pulse candidates. In addition, the multi-RC circuit may be used to explore cardiac tissue recovery and multi-path defibrillation. A minimum-time strategy is proposed for the multi-RC circuit to address fast capacitor discharge requirements. These efforts suggest new waveforms to potentially innovate defibrillator design using feedback control.
Keywords :
bioelectric phenomena; cardiology; differential equations; feedback; medical signal processing; 2D continuum models; 3D continuum models; ad-hoc reports; autonomous cardiac activity; bidomain equations; bidomain model; capacitor discharge requirements; capacitor voltage; cardiac tissue recovery; control framework; electrical cardiac activity modeling; electrical signal synthesis; feedback control; first-order differential equations; flbrillating heart; heart deflbrillated state; innovate defibrillator design; minimum-time strategy; multiRC circuit; multiRC model; multipath defibrillation; nominal state; nominal threshold potential values; optimal defibrillating pulse synthesis; parallel resistor-capacitor; regular cardiac activity; time-energy tradeoff; transmembrane temporal behavior; weighted time-energy cost; Capacitors; Cardiac tissue; Electric potential; Equations; Heart; Integrated circuit modeling; Mathematical model; Defibrillation; bidomain model; optimal;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference (ACC), 2011
Conference_Location :
San Francisco, CA
ISSN :
0743-1619
Print_ISBN :
978-1-4577-0080-4
Type :
conf
DOI :
10.1109/ACC.2011.5991302
Filename :
5991302
Link To Document :
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