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LabelECG: A Web-Based Tool for Distributed Electrocardiogram Annotation

机译:LabelECG:基于Web的分布式心电图注释工具

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Electrocardiography plays an essential role in diagnosing and screening cardiovascular diseases in daily healthcare. Deep neural networks have shown the potentials to improve the accuracies of arrhythmia detection based on electrocardiograms (ECGs). However, more ECG records with ground truth are needed to promote the development and progression of deep learning techniques in automatic ECG analysis. Here we propose a web-based tool for ECG viewing and annotating, LabelECG. With the facilitation of unified data management, LabelECG is able to distribute large cohorts of ECGs to dozens of technicians and physicians, who can simultaneously make annotations through web-browsers on PCs, tablets and cell phones. Along with the doctors from four hospitals in China, we applied LabelECG to support the annotations of about 15,000 12-lead resting ECG records in three months. These annotated ECGs have successfully supported the First China ECG intelligent Competition. LabelECG will be freely accessible on the Internet to support similar researches, and will also be upgraded through future works.
机译:心电图在日常医疗保健中对心血管疾病的诊断和筛查起着至关重要的作用。深度神经网络已显示出改善基于心电图(ECG)的心律失常检测准确性的潜力。但是,需要更多具有真实性的ECG记录来促进自动ECG分析中深度学习技术的发展和进步。在这里,我们提出了一种用于ECG查看和注释的基于Web的工具LabelECG。通过统一数据管理,LabelECG可以将大量的ECG分发给数十名技术人员和医师,他们可以同时通过PC,平板电脑和手机上的网络浏览器进行注释。与来自中国四家医院的医生一起,我们使用LabelECG在三个月内支持大约15,000条12导联静息心电图记录的注释。这些带注释的ECG已成功支持了首届中国ECG智能竞赛。 LabelECG将可以在Internet上免费访问以支持类似的研究,并且还将通过将来的工作进行升级。

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