DocumentCode
3562186
Title
Accuracy of inverse solution computation of dominant frequencies and phases during atrial fibrillation
Author
Pedron-Torrecilla, J. ; Climent, A.M. ; Liberos, A. ; Rodrigo, M. ; Perez-David, E. ; Millet, J. ; Fernandez-Aviles, F. ; Berenfeld, O. ; Atienza, F. ; Guillem, M.S.
Author_Institution
ITACA, Univ. Politec. de Valencia, Valencia, Spain
fYear
2014
Firstpage
537
Lastpage
540
Abstract
Ablation of sources identified by dominant frequency (DF) or phase analyses in patients with atrial fibrillation (AF) is proposed as a therapy to terminate the arrhythmia. The aim of this study was to evaluate noninvasive identification of AF sources by solving the inverse problem. Realistic mathematical models of atria and torso anatomy with different DF patterns of AF were used. For these models inverse-computed electrograms EGMs were compared to intracardiac EGMs in terms of their voltage, phase and frequency spectrum errors. In models without added noise, atrial spectrums were estimated with lower relative errors than phases (3.8±3.8 vs 41±17 % respectively, p<;0.01) and after noise addition differences between relative errors of spectrums and phases were more pronounced (5.5±4.1 vs 48±14 %, respectively p<;0.01). Non-invasive location of the highest DF during AF showed a better accuracy than in the phase and voltage domain, being a promising clinical tool for identification of sources prior to ablation.
Keywords
bioelectric potentials; diseases; electrocardiography; error analysis; feature extraction; frequency-domain analysis; inverse problems; medical signal processing; noise; physiological models; radiation therapy; spectral analysis; AF DF pattern; AF source ablation; EGM comparison; arrhythmia termination; atrial fibrillation patient; atrial model; atrial spectrum estimation; clinical tool; dominant frequency analysis; frequency spectrum error comparison; intracardiac EGM; inverse problem; inverse solution computation accuracy; inverse-computed electrogram; mathematical model; noise addition effect; noninvasive AF source identification evaluation; noninvasive highest DF location; phase analysis; phase comparison; phase domain; relative phase error; relative spectrum error; therapy; torso anatomy model; voltage comparison; voltage domain; Abstracts; Equations; Maintenance engineering; Mathematical model; Nonhomogeneous media; Signal to noise ratio; Veins;
fLanguage
English
Publisher
ieee
Conference_Titel
Computing in Cardiology Conference (CinC), 2014
ISSN
2325-8861
Print_ISBN
978-1-4799-4346-3
Type
conf
Filename
7043098
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