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Detection of Rheumatoid Arthritis From Hand Radiographs Using a Convolutional Neural Network

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Date

2020

Journal Title

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Volume Title

Publisher

Springer London Ltd

Open Access Color

Green Open Access

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0

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9

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No
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Top 10%
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Top 10%
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Top 1%

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Abstract

Introduction Plain hand radiographs are the first-line and most commonly used imaging methods for diagnosis or differential diagnosis of rheumatoid arthritis (RA) and for monitoring disease activity. In this study, we used plain hand radiographs and tried to develop an automated diagnostic method using the convolutional neural networks to help physicians while diagnosing rheumatoid arthritis. Methods A convolutional neural network (CNN) is a deep learning method based on a multilayer neural network structure. The network was trained on a dataset containing 135 radiographs of the right hands, of which 61 were normal and 74 RA, and tested it on 45 radiographs, of which 20 were normal and 25 RA. Results The accuracy of the network was 73.33% and the error rate 0.0167. The sensitivity of the network was 0.6818; the specificity was 0.7826 and the precision 0.7500. Conclusion Using only pixel information on hand radiographs, a multi-layer CNN architecture with online data augmentation was designed. The performance metrics such as accuracy, error rate, sensitivity, specificity, and precision state shows that the network is promising in diagnosing rheumatoid arthritis.

Description

Keywords

Convolutional Neural Network, Deep Learning, Plain Hand Radiographs, Rheumatoid Arthritis, Arthritis, Rheumatoid, Radiography, Plain hand radiographs, Humans, Convolutional neural network, Deep learning, Neural Networks, Computer, Rheumatoid arthritis, Hand, Sensitivity and Specificity

Fields of Science

03 medical and health sciences, 0302 clinical medicine

Citation

Üreten, K.; Erbay, H.; Maraş, H.H., "Detection of Rheumatoid Arthritis From Hand Radiographs Using A Convolutional Neural Network", Clinical Rheumatology, Vol. 39, No. 4, pp. 969-974, (2020).

WoS Q

Q2

Scopus Q

Q1
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OpenCitations Citation Count
67

Source

Clinical Rheumatology

Volume

39

Issue

4

Start Page

969

End Page

974
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CrossRef : 29

Scopus : 71

PubMed : 28

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Mendeley Readers : 87

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71

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62

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2

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