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  4. PTB-XL+, a comprehensive electrocardiographic feature dataset
 
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2023
Journal Article
Title

PTB-XL+, a comprehensive electrocardiographic feature dataset

Abstract
Machine learning (ML) methods for the analysis of electrocardiography (ECG) data are gaining importance, substantially supported by the release of large public datasets. However, these current datasets miss important derived descriptors such as ECG features that have been devised in the past hundred years and still form the basis of most automatic ECG analysis algorithms and are critical for cardiologists’ decision processes. ECG features are available from sophisticated commercial software but are not accessible to the general public. To alleviate this issue, we add ECG features from two leading commercial algorithms and an open-source implementation supplemented by a set of automatic diagnostic statements from a commercial ECG analysis software in preprocessed format. This allows the comparison of ML models trained on clinically versus automatically generated label sets. We provide an extensive technical validation of features and diagnostic statements for ML applications. We believe this release crucially enhances the usability of the PTB-XL dataset as a reference dataset for ML methods in the context of ECG data.
Author(s)
Strodthoff, Nils
Mehari, Temesgen
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
Nagel, Claudia
Aston, Philip J.
Sundar, Ashish
Graff, Claus
Kanters, Jörgen Kim
Haverkamp, Wilhelm
Dössel, Olaf
Loewe, Axel
Bär, Markus
Schaeffter, Tobias R.
Journal
Scientific data  
Open Access
DOI
10.1038/s41597-023-02153-8
Additional link
Full text
Language
English
Fraunhofer-Institut für Nachrichtentechnik, Heinrich-Hertz-Institut HHI  
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