4.5 Article

Automatic ECG quality scoring methodology: mimicking human annotators

Journal

PHYSIOLOGICAL MEASUREMENT
Volume 33, Issue 9, Pages 1479-1489

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0967-3334/33/9/1479

Keywords

ECG; signal quality; noise; recording; QRS detection; electrocardiogram

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An algorithm to determine the quality of electrocardiograms (ECGs) can enable inexperienced nurses and paramedics to record ECGs of sufficient diagnostic quality. Previously, we proposed an algorithm for determining if ECG recordings are of acceptable quality, which was entered in the PhysioNet Challenge 2011. In the present work, we propose an improved two-step algorithm, which first rejects ECGs with macroscopic errors (signal absent, large voltage shifts or saturation) and subsequently quantifies the noise (baseline, powerline or muscular noise) on a continuous scale. The performance of the improved algorithm was evaluated using the PhysioNet Challenge database (1500 ECGs rated by humans for signal quality). We achieved a classification accuracy of 92.3% on the training set and 90.0% on the test set. The improved algorithm is capable of detecting ECGs with macroscopic errors and giving the user a score of the overall quality. This allows the user to assess the degree of noise and decide if it is acceptable depending on the purpose of the recording.

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