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COVID-19 Diagnosis Applied DWT and CNN on X-ray Chest Images.

Authors :
Al-Ani, Muzhir Shaban
Al-Shayea, Qeethara
Al-Barzinji, Shokhan M.
Al-Ani, Dimah Mezher Shaban
Al-Ani, Zainab Mezher Shaban
Source :
UHD Journal of Science & Technology. Dec2023, Vol. 7 Issue 2, p69-76. 8p.
Publication Year :
2023

Abstract

Background: Medical images have many important applications, and this importance increased when the emergence of the COVID-19 pandemic. These applications have been focused on computed tomography chest images and X-ray images. This research will focus on special X-ray medical image applications of coronavirus (COVID-19). Methods: Many methods are applied on medical images to achieve certain features. The designed approach is implemented through many steps starting from preprocessing up to classification step. The proposed approach focusing on generating efficient features using discrete wavelet transform (DWT) then applying convolutional neural network (CNN) to classify between normal and abnormal COVID-19. Results: The COVID-19 diagnosis approach is implemented to achieve high performance system. The obtained result of COVID-19 diagnosis applied CNN tool leading to validation accuracy of 92.31%. Conclusion: Hybridizing two technologies (DWT and CNN) is intended to reach the best results in the diagnostic process. In addition, X-ray chest image is an important tool for detection and diagnosis of COVID-19 diseases. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
25214209
Volume :
7
Issue :
2
Database :
Academic Search Index
Journal :
UHD Journal of Science & Technology
Publication Type :
Academic Journal
Accession number :
175588605
Full Text :
https://doi.org/10.21928/uhdjst.v7n2y2023.pp69-76