Abstract

COVID-19 is a fatal disease caused by the SARS-CoV-2 virus that has caused around 5.3 Million deaths globally as of December 2021. The detection of this disease is a time taking process that have worsen the situation around the globe, and the disease has been identified as a world pandemic by the WHO. Deep learning-based approaches are being widely used to diagnose the COVID-19 cases, but the limitation of immensity in the publicly available dataset causes the problem of model over-fitting. Modern artificial intelligence-based techniques can be used to increase the dataset to avoid from the over-fitting problem. This research work presents the use of various deep learning models along with the state-of-the-art augmentation methods, namely, classical and generative adversarial network- (GAN-) based data augmentation. Furthermore, four existing deep convolutional networks, namely, DenseNet-121, InceptionV3, Xception, and ResNet101 have been used for the detection of the virus in X-ray images after training on augmented dataset. Additionally, we have also proposed a novel convolutional neural network (QuNet) to improve the COVID-19 detection. The comparative analysis of achieved results reflects that both QuNet and Xception achieved high accuracy with classical augmented dataset, whereas QuNet has also outperformed and delivered 90% detection accuracy with GAN-based augmented dataset.

Highlights

  • Corona virus is a respiratory disease caused by the acute respiratory syndrome corona virus 2 (SARS-CoV-2) detected in Wuhan, China, in December 2019

  • The COVID-19 has been designated as a world pandemic by the World Health Organization, and as the infection rate is increasing rapidly around the globe, there is a need for a robust disease detection mechanism

  • To overcome the data scarcity problem, we have experimented with the use of augmentation techniques, namely, classical data augmentation and generative adversarial network- (GAN-)based data augmentation

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Summary

Introduction

Corona virus is a respiratory disease caused by the acute respiratory syndrome corona virus 2 (SARS-CoV-2) detected in Wuhan, China, in December 2019. This disease further developed into a global pandemic causing disruption, unemployment, and lockdown all over the world. The result is not always accurate with a lot of false negatives and positives [1]. This virus, affects the lungs causing inflammation in air sacs, and as a response, the alveoli to be filled with fluid, which can be detected by examination of X-ray images [2], along with CT scan images and biomarkers

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