A comparison of deep learning models for pneumonia detection from chest x-ray images

被引:3
|
作者
Kadiroglu, Zehra [1 ]
Deniz, Erkan [1 ]
Senyigit, Abdurrahman [2 ]
机构
[1] Firat Univ, Fac Technol, Dept Elect & Elect Engn, TR-23119 Elazig, Turkiye
[2] Dicle Univ, Fac Med, Dept Chest Dis & TB, TR-21280 Diyarbakir, Turkiye
关键词
Pneumonia detection; convolutional neural networks; deep feature extraction; transfer learning; chest x-ray images; CONVOLUTIONAL NEURAL-NETWORK; COMPUTER-AIDED DIAGNOSIS; ARCHITECTURES;
D O I
10.17341/gazimmfd.1204092
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Purpose: The aim of this study is to develop an automatic pneumonia detection system for disease detection by effectively extracting disease-related features from chest X-ray images.Theory and Methods: Three different deep learning approaches are proposed for automatic detection of pneumonia. These approaches are deep feature extraction, transfer learning, and end-to-end learning. In experimental studies, 10 different pre-trained convolutional neural network models (AlexNet, VGG16, VGG19, ResNet50, DenseNet201, DarkNet53, ShuffleNet, SqueezeNet, MobileNetV2 and NasNetMobile) were used and a new network was trained from scratch. The extracted features are classified with the support vector machine, k nearest neighbor and random forest classifiers.Results: The success of the fine-tuned AlexNet model produced an accuracy score of a 98.50%, which was the highest of all results achieved. In the deep feature extraction method, the ShuffleNet model showed the highest success rate of 98.00% among all models. The end-to-end training of the developed CNN model yielded 96.75% results.Conclusions: As a result, in this paper, a new chest X-ray pneumonia dataset is introduced. Various deep learning approaches are employed for pneumonia detection on this new dataset.
引用
收藏
页码:729 / 740
页数:12
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