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14 results

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1. A fully-automated paper ECG digitisation algorithm using deep learning.

2. Explaining deep neural networks for knowledge discovery in electrocardiogram analysis.

3. ECG autoencoder based on low-rank attention.

4. Multichannel high noise level ECG denoising based on adversarial deep learning.

5. Combined deep CNN–LSTM network-based multitasking learning architecture for noninvasive continuous blood pressure estimation using difference in ECG-PPG features.

6. xECGArch: a trustworthy deep learning architecture for interpretable ECG analysis considering short-term and long-term features.

7. Machine learning approaches that use clinical, laboratory, and electrocardiogram data enhance the prediction of obstructive coronary artery disease.

8. A framework for comparative study of databases and computational methods for arrhythmia detection from single-lead ECG.

9. Detection of maternal and fetal stress from the electrocardiogram with self-supervised representation learning.

10. A new deep learning algorithm of 12-lead electrocardiogram for identifying atrial fibrillation during sinus rhythm.

11. Accessory pathway analysis using a multimodal deep learning model.

12. Delineation of the electrocardiogram with a mixed-quality-annotations dataset using convolutional neural networks.

13. Automatic classification of healthy and disease conditions from images or digital standard 12-lead electrocardiograms.

14. Precision Medicine and Artificial Intelligence: A Pilot Study on Deep Learning for Hypoglycemic Events Detection based on ECG.