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author:

Ji, T.-Y. (Ji, T.-Y..) [1] | Xie, C.-X. (Xie, C.-X..) [2] | Yang, T. (Yang, T..) [3] | Kuo, I.-C. (Kuo, I.-C..) [4] | Chen, S.-L. (Chen, S.-L..) [5] | Wang, L.-H. (Wang, L.-H..) [6]

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Abstract:

Current sudden cardiac death (SCD) studies mostly use traditional machine learning algorithms and suffer from low accuracy. Deep learning has a promising application in the field of SCD research. The study extract R-R interval and R amplitude from ECG signals as inputs, combined convolutional neural network and gated recurrent unit, and take full advantage of hybrid neural network structure to realize the risk stratification of high-risk patients who may have SCD within 90 minutes, with the highest accuracy of 95.33%. © 2024 IEEE.

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  • [ 1 ] [Ji T.-Y.]Fuzhou University, College of Physics and Information Engineering, Department of Microelectronics, Fuzhou, China
  • [ 2 ] [Xie C.-X.]Fuzhou University, College of Physics and Information Engineering, Department of Microelectronics, Fuzhou, China
  • [ 3 ] [Yang T.]Fuzhou University, College of Physics and Information Engineering, Department of Microelectronics, Fuzhou, China
  • [ 4 ] [Kuo I.-C.]Fuzhou University, College of Biological Science and Engineering, Fuzhou, China
  • [ 5 ] [Chen S.-L.]Chung Yuan Christian University, Department of Electronic Engineering, Taoyuan City, Taiwan
  • [ 6 ] [Wang L.-H.]Fuzhou University, College of Physics and Information Engineering, Department of Microelectronics, Fuzhou, China

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Year: 2024

Page: 577-578

Language: English

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ESI Highly Cited Papers on the List: 0 Unfold All

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30 Days PV: 1

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