DocumentCode
3214680
Title
Comparison of simulated and clinical intracardiac electrograms
Author
Keller, Matthias Walter ; Schuler, Steffen ; Luik, Armin ; Seemann, G. ; Schilling, Claudia ; Schmitt, C. ; Dossel, O.
Author_Institution
Inst. of Biomed. Eng., Karlsruhe Inst. of Technol. (KIT), Karlsruhe, Germany
fYear
2013
fDate
3-7 July 2013
Firstpage
6858
Lastpage
6861
Abstract
Intracardiac electrograms are the key in understanding, interpretation and treatment of cardiac arrhythmias. However, electrogram morphologies are strongly variable due to catheter position, orientation and contact. Simulations of intracardiac electrograms can improve comprehension and quantification of influencing parameters and therefore reduce misinterpretations. In this study simulated intracardiac electrograms are analyzed regarding tilt angles of the catheter relative to the propagation direction, electrode tissue distances as well as clinical filter settings. Catheter signals are computed on a realistic 3D catheter geometry using bidomain simulations of cardiac electrophysiology. Thereby high conductivities of the catheter electrodes are taken into account. For validation, simulated electrograms are compared with in vivo electrograms recorded during an EP-study with direct annotation of catheter orientation and tissue contact. Good agreement was reached regarding timing and signal width of simulated and measured electrograms. Correlation was 0.92±0.07 for bipolar, 0.92±0.05 for unipolar distal and 0.80 ± 0.12 for unipolar proximal electrograms for different catheter orientations and locations.
Keywords
bioelectric phenomena; biological tissues; biomedical electrodes; catheters; electrocardiography; filtering theory; medical signal processing; EP-study; bidomain simulation; bipolar distal; cardiac arrhythmia treatment; cardiac electrophysiology; catheter contact; catheter electrode; catheter orientation; catheter position; catheter signal; catheter tilt angle; clinical filter setting; clinical intracardiac electrogram; direct annotation; electrode tissue distance; electrogram morphology; propagation direction; realistic 3D catheter geometry; signal width; simulated intracardiac electrogram; tissue contact; unipolar distal; unipolar proximal electrograms; Catheters; Computational modeling; Correlation; Electric potential; Electrodes; Extracellular; Morphology;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society (EMBC), 2013 35th Annual International Conference of the IEEE
Conference_Location
Osaka
ISSN
1557-170X
Type
conf
DOI
10.1109/EMBC.2013.6611133
Filename
6611133
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