Automatic lung disease classification from the chest X-ray images using hybrid deep learning algorithm

被引:13
|
作者
Farhan, Abobaker Mohammed Qasem [1 ]
Yang, Shangming [1 ]
机构
[1] Univ Elect Sci & Technol China, Sch informat & Software Engn, Chengdu, Peoples R China
关键词
Computer aided diagnosis; Convolutional neural network; Deep learning; Features scaling; Lung disease; X-ray image; CONVOLUTIONAL NEURAL-NETWORKS; DIAGNOSIS;
D O I
10.1007/s11042-023-15047-z
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
The chest X-ray images provide vital information about the congestion cost-effectively. We propose a novel Hybrid Deep Learning Algorithm (HDLA) framework for automatic lung disease classification from chest X-ray images. The model consists of steps including pre-processing of chest X-ray images, automatic feature extraction, and detection. In a pre-processing step, our goal is to improve the quality of raw chest X-ray images using the combination of optimal filtering without data loss. The robust Convolutional Neural Network (CNN) is proposed using the pre-trained model for automatic lung feature extraction. We employed the 2D CNN model for the optimum feature extraction in minimum time and space requirements. The proposed 2D CNN model ensures robust feature learning with highly efficient 1D feature estimation from the input pre-processed image. As the extracted 1D features have suffered from significant scale variations, we optimized them using min-max scaling. We classify the CNN features using the different machine learning classifiers such as AdaBoost, Support Vector Machine (SVM), Random Forest (RM), Backpropagation Neural Network (BNN), and Deep Neural Network (DNN). The experimental results claim that the proposed model improves the overall accuracy by 3.1% and reduces the computational complexity by 16.91% compared to state-of-the-art methods.
引用
收藏
页码:38561 / 38587
页数:27
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