A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular Contraction

Pace mapping is commonly used to locate the origin of ventricular arrhythmias, especially premature ventricular contraction (PVC). However, this technique relies on clinicians’ ability to rapidly interpret ECG data. To avoid time-consuming interpretation of ECG morphology, some automated algorithms...

Full description

Bibliographic Details
Main Authors: Kaiyue He, Jian Sun, Yiwen Wang, Gaoyan Zhong, Cuiwei Yang
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-02-01
Series:Frontiers in Physiology
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fphys.2021.641358/full
id doaj-c482337ce0cf4c74a1ddc841bd2e120f
record_format Article
spelling doaj-c482337ce0cf4c74a1ddc841bd2e120f2021-02-24T06:19:16ZengFrontiers Media S.A.Frontiers in Physiology1664-042X2021-02-011210.3389/fphys.2021.641358641358A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular ContractionKaiyue He0Jian Sun1Yiwen Wang2Gaoyan Zhong3Cuiwei Yang4Cuiwei Yang5Cuiwei Yang6Department of Electronic Engineering, Fudan University, Shanghai, ChinaDepartment of Cardiology, School of Medicine, Xinhua Hospital, Shanghai Jiao Tong University, Shanghai, ChinaDepartment of Electronic Engineering, Fudan University, Shanghai, ChinaDepartment of Electronic Engineering, Fudan University, Shanghai, ChinaDepartment of Electronic Engineering, Fudan University, Shanghai, ChinaKey Laboratory of Medical Imaging Computing and Computer Assisted Intervention of Shanghai, Shanghai Medical College of Fudan University, Shanghai, ChinaShanghai Engineering Research Center of Cardiac Electrophysiology, Shanghai, ChinaPace mapping is commonly used to locate the origin of ventricular arrhythmias, especially premature ventricular contraction (PVC). However, this technique relies on clinicians’ ability to rapidly interpret ECG data. To avoid time-consuming interpretation of ECG morphology, some automated algorithms or computational models have been explored to guide the ablation. Inspired by these studies, we propose a novel model based on spatial and morphological domains. The purpose of this study is to assess this model and compare it with three existing models. The data are available from the Experimental Data and Geometric Analysis Repository database in which three in vivo PVC patients are included. To measure the hit rate (A hit occurs when the predicted site is within 15 mm of the target) of different algorithms, 47 target sites are tested. Moreover, to evaluate the efficiency of different models in narrowing down the target range, 54 targets are verified. As a result, the proposed algorithm achieves the most hits (37/47) and fewest misses (9/47), and it narrows down the target range most, from 27.62 ± 3.47 mm to 10.72 ± 9.58 mm among 54 target sites. It is expected to be applied in the real-time prediction of the origin of ventricular activation to guide the clinician toward the target site.https://www.frontiersin.org/articles/10.3389/fphys.2021.641358/fullpace mappingventricular arrhythmiasablationautomated algorithmorigin of PVC
collection DOAJ
language English
format Article
sources DOAJ
author Kaiyue He
Jian Sun
Yiwen Wang
Gaoyan Zhong
Cuiwei Yang
Cuiwei Yang
Cuiwei Yang
spellingShingle Kaiyue He
Jian Sun
Yiwen Wang
Gaoyan Zhong
Cuiwei Yang
Cuiwei Yang
Cuiwei Yang
A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular Contraction
Frontiers in Physiology
pace mapping
ventricular arrhythmias
ablation
automated algorithm
origin of PVC
author_facet Kaiyue He
Jian Sun
Yiwen Wang
Gaoyan Zhong
Cuiwei Yang
Cuiwei Yang
Cuiwei Yang
author_sort Kaiyue He
title A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular Contraction
title_short A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular Contraction
title_full A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular Contraction
title_fullStr A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular Contraction
title_full_unstemmed A Novel Model Based on Spatial and Morphological Domains to Predict the Origin of Premature Ventricular Contraction
title_sort novel model based on spatial and morphological domains to predict the origin of premature ventricular contraction
publisher Frontiers Media S.A.
series Frontiers in Physiology
issn 1664-042X
publishDate 2021-02-01
description Pace mapping is commonly used to locate the origin of ventricular arrhythmias, especially premature ventricular contraction (PVC). However, this technique relies on clinicians’ ability to rapidly interpret ECG data. To avoid time-consuming interpretation of ECG morphology, some automated algorithms or computational models have been explored to guide the ablation. Inspired by these studies, we propose a novel model based on spatial and morphological domains. The purpose of this study is to assess this model and compare it with three existing models. The data are available from the Experimental Data and Geometric Analysis Repository database in which three in vivo PVC patients are included. To measure the hit rate (A hit occurs when the predicted site is within 15 mm of the target) of different algorithms, 47 target sites are tested. Moreover, to evaluate the efficiency of different models in narrowing down the target range, 54 targets are verified. As a result, the proposed algorithm achieves the most hits (37/47) and fewest misses (9/47), and it narrows down the target range most, from 27.62 ± 3.47 mm to 10.72 ± 9.58 mm among 54 target sites. It is expected to be applied in the real-time prediction of the origin of ventricular activation to guide the clinician toward the target site.
topic pace mapping
ventricular arrhythmias
ablation
automated algorithm
origin of PVC
url https://www.frontiersin.org/articles/10.3389/fphys.2021.641358/full
work_keys_str_mv AT kaiyuehe anovelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT jiansun anovelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT yiwenwang anovelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT gaoyanzhong anovelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT cuiweiyang anovelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT cuiweiyang anovelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT cuiweiyang anovelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT kaiyuehe novelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT jiansun novelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT yiwenwang novelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT gaoyanzhong novelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT cuiweiyang novelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT cuiweiyang novelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
AT cuiweiyang novelmodelbasedonspatialandmorphologicaldomainstopredicttheoriginofprematureventricularcontraction
_version_ 1724253382078627840