RETRACTED: Deep Convolutional Neural Network Mechanism Assessment of COVID-19 Severity (Retracted Article)

被引:4
|
作者
Nirmaladevi, J. [1 ]
Vidhyalakshmi, M. [2 ]
Edwin, E. Bijolin [3 ]
Venkateswaran, N. [4 ]
Avasthi, Vinay [5 ]
Alarfaj, Abdullah A. [6 ]
Hirad, Abdurahman Hajinur [6 ]
Rajendran, R. K. [7 ]
Hailu, Tegegne Ayalew [8 ]
机构
[1] Bannari Amman Inst Technol, Dept Informat Sci & Engn, Sathyamangalam 638401, Tamil Nadu, India
[2] SRM Inst Sci & Technol, Dept Elect & Commun Engn, Chennai 600089, Tamil Nadu, India
[3] KarunyaInstitue Technol & Sci, Dept Comp Sci & Engn, Coimbatore 641114, Tamil Nadu, India
[4] Panimalar Engn Coll, Dept Management Studies, Chennai 600123, Tamil Nadu, India
[5] Univ Petr & Energy Studies, Sch Comp Sci, Dehra Dun 248007, Uttaranchal, India
[6] King Saud Univ, Coll Sci, Dept Bot & Microbiol, POB 2455, Riyadh 11451, Saudi Arabia
[7] Univ Houston, Dept Engn, Houston, TX USA
[8] Wollo Univ, Kombolcha Inst Technol, Dept Elect & Comp Engn, Dessie, Ethiopia
关键词
MACHINE;
D O I
10.1155/2022/1289221
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
As an epidemic, COVID-19's core test instrument still has serious flaws. To improve the present condition, all capabilities and tools available in this field are being used to combat the pandemic. Because of the contagious characteristics of the unique coronavirus (COVID-19) infection, an overwhelming comparison with patients queues up for pulmonary X-rays, overloading physicians and radiology and significantly impacting the quality of care, diagnosis, and outbreak prevention. Given the scarcity of clinical services such as intensive care and motorized ventilation systems in the aspect of this vastly transmissible ailment, it is critical to categorize patients as per their risk categories. This research describes a novel use of the deep convolutional neural network (CNN) technique to COVID-19 illness assessment seriousness. Utilizing chest X-ray images as contribution, an unsupervised DCNN model is constructed and suggested to split COVID-19 individuals into four seriousness classrooms: low, medium, serious, and crucial with an accuracy level of 96 percent. The efficiency of the DCNN model developed with the proposed methodology is demonstrated by empirical findings on a suitably huge sum of chest X-ray scans. To the evidence relating, it is the first COVID-19 disease incidence evaluation research with four different phases, to use a reasonably high number of X-ray images dataset and a DCNN with nearly all hyperparameters dynamically adjusted by the variable selection optimization task.
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页数:14
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