Author: Bhardwaj, Prashant; Kaur, Amanpreet
                    Title: A novel and efficient deep learning approach for COVIDâ€19 detection using Xâ€ray imaging modality  Cord-id: fvergmd0  Document date: 2021_7_21
                    ID: fvergmd0
                    
                    Snippet: With the exponential growth of COVIDâ€19 cases, medical practitioners are searching for accurate and quick automated detection methods to prevent Covid from spreading while trying to reduce the computational requirement of devices. In this research article, a deep learning Convolutional Neural Network (CNN) based accurate and efficient ensemble model using deep learning is being proposed with 2161 COVIDâ€19, 2022 pneumonia, and 5863 normal chest Xâ€ray images that has been collected from prev
                    
                    
                    
                     
                    
                    
                    
                    
                        
                            
                                Document: With the exponential growth of COVIDâ€19 cases, medical practitioners are searching for accurate and quick automated detection methods to prevent Covid from spreading while trying to reduce the computational requirement of devices. In this research article, a deep learning Convolutional Neural Network (CNN) based accurate and efficient ensemble model using deep learning is being proposed with 2161 COVIDâ€19, 2022 pneumonia, and 5863 normal chest Xâ€ray images that has been collected from previous publications and other online resources. To improve the detection accuracy contrast enhancement and image normalization have been done to produce better quality images at the preâ€processing level. Further data augmentation methods are used by creating modified versions of images in the dataset to train the four efficient CNN models (Inceptionv3, DenseNet121, Xception, InceptionResNetv2) Experimental results provide 98.33% accuracy for binary class and 92.36% for multiclass. The performance evaluation metrics reveal that this tool can be very helpful for early disease diagnosis.
 
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