Stroke prediction from electrocardiograms by deep neural network

被引:0
|
作者
Yifeng Xie
Hongnan Yang
Xi Yuan
Qian He
Ruitao Zhang
Qianyun Zhu
Zhenhai Chu
Chengming Yang
Peiwu Qin
Chenggang Yan
机构
[1] Hangzhou Dianzi University,Department of Automation
[2] Tsinghua-Berkeley Shenzhen Institute,Center of Precision Medicine and Healthcare
[3] Southern University of Science and Technology Hospital,Division of Neurology
[4] Southern University of Science and Technology Hospital,Division of Ophthalmology
来源
Multimedia Tools and Applications | 2021年 / 80卷
关键词
Electrocardiograms; Stroke; Convolutional neural network; Classification;
D O I
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中图分类号
学科分类号
摘要
The brain is an energy-consuming organ that heavily relies on the heart for energy supply. Heart abnormalities detected by electrocardiogram (ECG) might provide diagnostic indicators for brain dysfunctions such as stroke. Diagnosis of brain diseases by ECG requires proficient domain knowledge, which is both time and labor consuming. Deep learning is capable of constructing a nonlinear correlation between ECG and stroke without prior expert knowledge. Here, we propose a data-driven classifier-Dense convolutional neural Network (DenseNet) for stroke prediction based on 12-leads ECG data. With our finely-tuned model, we obtain the training accuracy of 99.99% and the prediction accuracy of 85.82%. To our knowledge, this is the first report studying the correlation between stroke and ECG with the aid of deep learning. The results indicate that ECG is a valuable complementary technique for stroke diagnostics.
引用
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页码:17291 / 17297
页数:6
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