Utilization of Transfer Learning Model in Detecting COVID-19 Cases From Chest X-Ray Images
Author:
Affiliation:
1. Central Leather Research Institute, Chennai, India
2. Vellore Institute of Technology, Chennai, India
3. SASTRA University, Thanjavur, India
4. Near East University, Nicosia, Turkey
Abstract
Diagnosis of COVID-19 pneumonia using patients’ chest X-Ray images is new but yet important task in the field of medicine. Researchers from different parts of the globe have developed many deep learning models to classify COVID-19. The performance of feature extraction and classifier plays a vital role in the recognizing the different patterns in the image. The pivotal process is the extraction of optimum features from the chest X-Ray images. The main goal of this study is to design an efficient hybrid algorithm that integrates the robustness of MobileNet (using transfer learning approach) to extract features and Support Vector Machine (SVM) to classify COVID-19. Experiments were conducted to test the proposed algorithm and it was found to have a high classification accuracy of 95%.
Publisher
IGI Global
Subject
Health Informatics,Computer Science Applications
Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
1. A fuzzy fine-tuned model for COVID-19 diagnosis;Computers in Biology and Medicine;2023-02
2. POSTER: Diagnosis of COVID-19 through Transfer Learning Techniques on CT Scans: A Comparison of Deep Learning Models;2022 2nd International Conference of Smart Systems and Emerging Technologies (SMARTTECH);2022-05
3. Screening Support System Based on Patient Survey Data—Case Study on Classification of Initial, Locally Collected COVID-19 Data;Applied Sciences;2021-11-15
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