A wavelet and local binary pattern-based feature descriptor for the detection of chronic infection through thoracic X-ray images

被引:0
|
作者
Verma, Amar Kumar [1 ]
Saurabh, Prerna [1 ]
Shah, Deep Madhukant [1 ]
Inturi, Vamsi [2 ,3 ]
Sudha, Radhika [1 ]
Rajasekharan, Sabareesh Geetha [4 ]
Soundrapandiyan, Rajkumar [5 ]
机构
[1] Birla Inst Technol & Sci Pilani, Dept Elect & Elect, Hyderabad, Telangana, India
[2] Chaitanya Bharathi Inst Technol A, Dept Mech Engn, Hyderabad 500075, Telangana, India
[3] Trinity Coll Dublin, Sch Civil Struct & Environm Engn, Dublin, Ireland
[4] Birla Inst Technol & Sci Pilani, Dept Mech Engn, Hyderabad, Telangana, India
[5] Vellore Inst Technol, Sch Comp Sci & Engn, Vellore, Tamilnadu, India
关键词
Wavelet transform; local binary pattern; deep learning; feature descriptor; chronic infection; LUNG-DISEASE;
D O I
10.1177/09544119241293007
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
This investigation attempts to propose a novel Wavelet and Local Binary Pattern-based Xception feature Descriptor (WLBPXD) framework, which uses a deep-learning model for classifying chronic infection amongst other infections. Chronic infection (COVID-19 in this study) is identified via RT-PCR test, which is time-consuming and requires a dedicated laboratory (materials, equipment, etc.) to complete the clinical results. X-rays and computed tomography images from chest scans offer an alternative method for identifying chronic infections. It has been demonstrated that chronic infection can be diagnosed from X-ray images acquired in a real-world setting. The images are transformed using the discrete wavelet transform (DWT), combined with the local binary pattern (LBP) technique. Pre-trained deep-learning models, such as AlexNet, Xception, VGG-16 and Inception Resnet50, extract the features. Subsequently, the extracted features are fused using feature-fusion approaches and subjected to classification. The AlexNet, in conjunction with the DWT model, produced 99.7% accurate results, whereas the AlexNet and the LBP model produced 99.6% accurate results. Therefore, the proposed method is efficient as it offers a better detection accuracy and eventually enhances the scope of early detection, thus assisting the clinical perspectives.
引用
收藏
页码:1133 / 1145
页数:13
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