Application of Machine Learning and Deep Learning Techniques for COVID-19 Screening Using Radiological Imaging: A Comprehensive Review

被引:4
|
作者
Lasker A. [1 ]
Obaidullah S.M. [1 ]
Chakraborty C. [2 ]
Roy K. [3 ]
机构
[1] Department of Computer Science & Engineering, Aliah University, Kolkata
[2] Department of Computer Science & Engineering, National Institute of Technical Teachers’ Training & Research Kolkata, Kolkata
[3] Department of Computer Science, West Bengal State University, Barasat
关键词
COVID-19; CT; Deep learning; Machine learning; Radiological imaging; X-ray;
D O I
10.1007/s42979-022-01464-8
中图分类号
学科分类号
摘要
Lung, being one of the most important organs in human body, is often affected by various SARS diseases, among which COVID-19 has been found to be the most fatal disease in recent times. In fact, SARS-COVID 19 led to pandemic that spreads fast among the community causing respiratory problems. Under such situation, radiological imaging-based screening [mostly chest X-ray and computer tomography (CT) modalities] has been performed for rapid screening of the disease as it is a non-invasive approach. Due to scarcity of physician/chest specialist/expert doctors, technology-enabled disease screening techniques have been developed by several researchers with the help of artificial intelligence and machine learning (AI/ML). It can be remarkably observed that the researchers have introduced several AI/ML/DL (deep learning) algorithms for computer-assisted detection of COVID-19 using chest X-ray and CT images. In this paper, a comprehensive review has been conducted to summarize the works related to applications of AI/ML/DL for diagnostic prediction of COVID-19, mainly using X-ray and CT images. Following the PRISMA guidelines, total 265 articles have been selected out of 1715 published articles till the third quarter of 2021. Furthermore, this review summarizes and compares varieties of ML/DL techniques, various datasets, and their results using X-ray and CT imaging. A detailed discussion has been made on the novelty of the published works, along with advantages and limitations. © 2022, The Author(s), under exclusive licence to Springer Nature Singapore Pte Ltd.
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