Automatic Diagnosis of Strict Left Bundle Branch Block from Standard 12-lead Electrocardiogram

Xiaojuan Xia*, Anne-Christine Ruwald, Martin H. Ruwald, Nene Ugoeke, Barbara Szepietowska, Valentina Kutyifa, Mehmet K. Aktas, Poul Erik Bloch Thomsen, Wojciech Zareba, Arthur J. Moss, Jean Philippe Couderc

*Kontaktforfatter

Publikation: Bidrag til bog/antologi/rapport/konference proceedingKonferenceartikel i proceedingForskningpeer review

1 Citationer (Scopus)

Abstract

Strict Left Bundle Branch Block (LBBB) criteria were recently proposed to identify patients with complete LBBB to benefit most from Cardiac Resynchronization Therapy (CRT). The objective of our study was to automate this strict LBBB criteria in order to facilitate broader application of the criteria which require the measurements of subtle QRS patterns from standard 12-lead ECGs. We developed a series of algorithms to automatically detect and measure the QRS parameters required for strict LBBB criteria. A total of 612 signal-averaged 12-lead ECGs from 612 LBBB patients were used to train and validate the algorithms. Four clinicians independently performed adjudication on equally assigned ECGs to assess the performance of automatic results comparing to manually adjudicated results, as well as the inter-observer and intra-observer variabilities. Overall 95% and 86% of sensitivity and specificity are reached for detecting complete LBBB. Our study shows good performance in reference to manual results.

OriginalsprogEngelsk
TitelComputing in Cardiology Conference (CinC), 2015
Antal sider4
ForlagIEEE
Publikationsdato2015
Sider665-668
Artikelnummer7410998
ISBN (Trykt)978-1-5090-0685-4
ISBN (Elektronisk) 978-1-5090-0684-7
DOI
StatusUdgivet - 2015
Begivenhed42nd Computing in Cardiology Conference, CinC 2015 - Nice, Frankrig
Varighed: 6 sep. 20159 sep. 2015

Konference

Konference42nd Computing in Cardiology Conference, CinC 2015
Land/OmrådeFrankrig
ByNice
Periode06/09/201509/09/2015
SponsorCNRS Advancing the Frontiers, et al., IBM, Mortara, Physological Measurement, Universite Nice Sophia Antipolis
NavnComputing in Cardiology
Vol/bind42
ISSN2325-887X

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