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A Multistage Deep Learning Algorithm for Detecting Arrhythmia

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Date

2018

Author

Altan, Gökhan
Allahverdi, Novruz
Kutlu, Yakup

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Citation

Altan, G., Allahverdi, N., Kutlu, Y. (2018). A Multistage Deep Learning Algorithm for Detecting Arrhythmia. 1st International Conference on Computer Applications and Information Security, ICCAIS 2018, art. no. 8441942. https://doi.org/10.1109/CAIS.2018.8441942

Abstract

Deep Belief Networks (DBN) is a deep learning algorithm that has both greedy layer-wise unsupervised and supervised training. Arrhythmia is a cardiac irregularity caused by a problem of the heart. In this study, a multi-stage DBN classification is proposed for achieving the efficiency of the DBN on arrhythmia disorders. Heartbeats from the MIT-BIH Arrhythmia database are classified into five groups which are recommended by AAMI. The Wavelet packet decomposition, higher order statistics, morphology and Discrete Fourier transform techniques were utilized to extract features. The classification performances of the DBN are 94.15%, 92.64%, and 93.38%, for accuracy, sensitivity, and selectivity, respectively. © 2018 IEEE.

Source

1st International Conference on Computer Applications and Information Security, ICCAIS 2018

URI

https://doi.org/10.1109/CAIS.2018.8441942
https://hdl.handle.net/20.500.12508/473

Collections

  • Araştırma Çıktıları | Scopus İndeksli Yayınlar Koleksiyonu [1420]
  • Araştırma Çıktıları | Web of Science İndeksli Yayınlar Koleksiyonu [1460]
  • Bildiri & Sunum Koleksiyonu [20]



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