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Papers

Cardiologist-Level Arrhythmia Detection with Convolutional Neural Networks

2017-07-06 · Pranav Rajpurkar, Awni Y. Hannun, Masoumeh Haghpanahi, Codie Bourn, Andrew Y. Ng

We develop an algorithm which exceeds the performance of board certified cardiologists in detecting a wide range of heart arrhythmias from electrocardiograms recorded with a single-lead wearable monitor. We build a dataset with more than 500 times the number of unique patients than previously studied corpora. On this dataset, we train a 34-layer convolutional neural network which maps a sequence of ECG samples to a sequence of rhythm classes. Committees of board-certified cardiologists annotate a gold standard test set on which we compare the performance of our model to that of 6 other individual cardiologists. We exceed the average cardiologist performance in both recall (sensitivity) and precision (positive predictive value).

📄 PDF Abstract BibTeX arXiv:1707.01836

Code (7)

VinGPan/paper_implementations tf
brain-bzh/health_exg
lxdv/ecg-classification pytorch
physhik/ecg-mit-bih tf
varocarras/ECG-523 tf
vkduy19/paper_implementations-master tf
xiaoxianedwindu/ecg-mit-bih-ae tf

Tasks

Arrhythmia DetectionElectrocardiography (ECG)RhythmSensitivity

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