Techniques for automated local activation time annotation and conduction velocity estimation in cardiac mapping
File(s)Cantwell_Techniques for automated.pdf (1.67 MB)
Published version
Author(s)
Type
Journal Article
Abstract
Measurements of cardiac conduction velocity provide valuable functional and structural insight into the initiation and perpetuation of cardiac arrhythmias, in both a clinical and laboratory context. The interpretation of activation wavefronts and their propagation can identify mechanistic properties of a broad range of electrophysiological pathologies. However, the sparsity, distribution and uncertainty of recorded data make accurate conduction velocity calculation difficult. A wide range of mathematical approaches have been proposed for addressing this challenge, often targeted towards specific data modalities, species or recording environments. Many of these algorithms require identification of activation times from electrogram recordings which themselves may have complex morphology or low signal-to-noise ratio. This paper surveys algorithms designed for identifying local activation times and computing conduction direction and speed. Their suitability for use in different recording contexts and applications is assessed.
Date Issued
2015-10-01
Date Acceptance
2015-04-16
Citation
Computers in Biology and Medicine, 2015, 65, pp.229-242
ISSN
0010-4825
Publisher
Elsevier
Start Page
229
End Page
242
Journal / Book Title
Computers in Biology and Medicine
Volume
65
Copyright Statement
© 2015 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/)
License URL
Subjects
Science & Technology
Life Sciences & Biomedicine
Technology
Biology
Computer Science, Interdisciplinary Applications
Engineering, Biomedical
Mathematical & Computational Biology
Life Sciences & Biomedicine - Other Topics
Computer Science
Engineering
Conduction velocity
Cardiac electrophysiology
Local activation time
Cardiac mapping
Arrhythmias
HUMAN ATRIAL-FIBRILLATION
BIPOLAR EXTRACELLULAR ELECTROGRAMS
SUSTAINED VENTRICULAR-TACHYCARDIA
GAP-JUNCTION DISTRIBUTION
EPICARDIAL BORDER ZONE
WAVE-FRONT PROPAGATION
REENTRANT CIRCUITS
SINUS RHYTHM
SLOW CONDUCTION
VECTOR-FIELDS
Publication Status
Published