Multimodal Convolutional Neural Networks for Detection of Covid-19 Using Chest X-Ray and CT Images

被引:4
|
作者
Ouahab, Abdelwhab [1 ,2 ]
机构
[1] Univ Adrar, Fac Sci & Technol, Math & Comp Sci Dept, Adrar 01000, Algeria
[2] Univ Sci & Technol Oran, Lab Signaux Syst & Donnees LSSD, Bir El Djir 31000, Algeria
关键词
Convolutional Neural Network; multimodal; Covid-19; chest X-ray images; CT images;
D O I
10.3103/S1060992X21040044
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
The Covid-19 was first appeared in 2019 in Wuhan, China. It widely and rapidly expanded all over the world. Since then, it has had a strong effect on people's daily lives, the world economy and the public health. The fast prediction of Covid-19 can assist the medicine to choose the right treatment. In this paper, we propose a classification of Covid-19 using Models based on a Convolutional Neural Network (CNN). We propose two models to detect Covid-19. The first one uses CNN with CT or X-ray images separately. The second uses CNN with both CT and X-ray images at the same time. The used datasets contain X-ray and CT images divided into three classes which are Covid-19, Normal and Pneumonia. Each type image class has 1045 images for training and 300 for testing. All these data sets are available in Kaggle repository. In order to evaluate the proposed models, we calculate the confusion matrix, the accuracy, precision, recall and F1 score. The model that uses CNN with both X-ray and CT images of 0.99 achieves the best accuracy. We deduced that using CT images is more efficient than using X-ray images to predict Covid-19. The combination of the CT and X-ray images to detect Covid-19 is more efficient than using only CT or X-ray images. The proposed models could effectively assist the radiologists in predicting Covid-19.
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页码:276 / 283
页数:8
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