Literature DB >> 35935666

A Novel Multi-Stage Residual Feature Fusion Network for Detection of COVID-19 in Chest X-Ray Images.

Zhenyu Fang1,2, Jinchang Ren1,3, Calum MacLellan4, Huihui Li1, Huimin Zhao1, Amir Hussain5, Giancarlo Fortino6.   

Abstract

To suppress the spread of COVID-19, accurate diagnosis at an early stage is crucial, chest screening with radiography imaging plays an important role in addition to the real-time reverse transcriptase polymerase chain reaction (RT-PCR) swab test. Due to the limited data, existing models suffer from incapable feature extraction and poor network convergence and optimization. Accordingly, a multi-stage residual network, MSRCovXNet, is proposed for effective detection of COVID-19 from chest x-ray (CXR) images. As a shallow yet effective classifier with the ResNet-18 as the feature extractor, MSRCovXNet is optimized by fusing two proposed feature enhancement modules (FEM), i.e., low-level and high-level feature maps (LLFMs and HLFMs), which contain respectively more local information and rich semantic information, respectively. For effective fusion of these two features, a single-stage FEM (MSFEM) and a multi-stage FEM (MSFEM) are proposed to enhance the semantic feature representation of the LLFMs and the local feature representation of the HLFMs, respectively. Without ensembling other deep learning models, our MSRCovXNet has a precision of 98.9% and a recall of 94% in detection of COVID-19, which outperforms several state-of-the-art models. When evaluated on the COVIDGR dataset, an average accuracy of 82.2% is achieved, leading other methods by at least 1.2%.

Entities:  

Keywords:  COVID-19; MSRCovXNet; ResNet-18; chest x-ray imaging; feature enhancement module

Year:  2021        PMID: 35935666      PMCID: PMC9280851          DOI: 10.1109/TMBMC.2021.3099367

Source DB:  PubMed          Journal:  IEEE Trans Mol Biol Multiscale Commun        ISSN: 2332-7804


  35 in total

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4.  A novel coronavirus outbreak of global health concern.

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Journal:  Lancet       Date:  2020-01-24       Impact factor: 79.321

5.  A modified deep convolutional neural network for detecting COVID-19 and pneumonia from chest X-ray images based on the concatenation of Xception and ResNet50V2.

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Journal:  Inform Med Unlocked       Date:  2020-05-26

6.  Chest Radiographic and CT Findings of the 2019 Novel Coronavirus Disease (COVID-19): Analysis of Nine Patients Treated in Korea.

Authors:  Soon Ho Yoon; Kyung Hee Lee; Jin Yong Kim; Young Kyung Lee; Hongseok Ko; Ki Hwan Kim; Chang Min Park; Yun Hyeon Kim
Journal:  Korean J Radiol       Date:  2019-02-26       Impact factor: 3.500

7.  Development and evaluation of an artificial intelligence system for COVID-19 diagnosis.

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Journal:  Nat Commun       Date:  2020-10-09       Impact factor: 14.919

8.  Using X-ray images and deep learning for automated detection of coronavirus disease.

Authors:  Khalid El Asnaoui; Youness Chawki
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9.  Frequency and Distribution of Chest Radiographic Findings in Patients Positive for COVID-19.

Authors:  Ho Yuen Frank Wong; Hiu Yin Sonia Lam; Ambrose Ho-Tung Fong; Siu Ting Leung; Thomas Wing-Yan Chin; Christine Shing Yen Lo; Macy Mei-Sze Lui; Jonan Chun Yin Lee; Keith Wan-Hang Chiu; Tom Wai-Hin Chung; Elaine Yuen Phin Lee; Eric Yuk Fai Wan; Ivan Fan Ngai Hung; Tina Poy Wing Lam; Michael D Kuo; Ming-Yen Ng
Journal:  Radiology       Date:  2020-03-27       Impact factor: 11.105

10.  AI-assisted CT imaging analysis for COVID-19 screening: Building and deploying a medical AI system.

Authors:  Bo Wang; Shuo Jin; Qingsen Yan; Haibo Xu; Chuan Luo; Lai Wei; Wei Zhao; Xuexue Hou; Wenshuo Ma; Zhengqing Xu; Zhuozhao Zheng; Wenbo Sun; Lan Lan; Wei Zhang; Xiangdong Mu; Chenxi Shi; Zhongxiao Wang; Jihae Lee; Zijian Jin; Minggui Lin; Hongbo Jin; Liang Zhang; Jun Guo; Benqi Zhao; Zhizhong Ren; Shuhao Wang; Wei Xu; Xinghuan Wang; Jianming Wang; Zheng You; Jiahong Dong
Journal:  Appl Soft Comput       Date:  2020-11-10       Impact factor: 6.725

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  1 in total

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  1 in total

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