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Erschienen in: The Journal of Supercomputing 8/2019

14.03.2019

Improved feature selection and classification for rheumatoid arthritis disease using weighted decision tree approach (REACT)

verfasst von: S. Shanmugam, J. Preethi

Erschienen in: The Journal of Supercomputing | Ausgabe 8/2019

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Abstract

Rheumatoid arthritis (RA) is a major chronic autoimmune disorder which affects multiple organs and joints of human body. Disease varies in its behavior and concern such that an early prediction is a complex process with regard to time so the diagnosis is not an easy task for the physicians. The common existing methodologies employed to analyze the severity of RA are the clinical, laboratory and physical examinations. The advancement of data mining has been employed for the RA diagnosis through learning from history of datasets. To improve the efficiency and reliability of the approach, this paper presents a hybrid optimization strategy called REACT, which is based on the combination of the features of Iterative Dichotomiser 3 and Particle Swarm Optimization for feature selection and classification of RA. The effectiveness of the proposed diagnosis strategy is validated through its prediction accuracy, specificity, sensitivity, positive predictive value and negative predictive value with existing approaches.

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Metadaten
Titel
Improved feature selection and classification for rheumatoid arthritis disease using weighted decision tree approach (REACT)
verfasst von
S. Shanmugam
J. Preethi
Publikationsdatum
14.03.2019
Verlag
Springer US
Erschienen in
The Journal of Supercomputing / Ausgabe 8/2019
Print ISSN: 0920-8542
Elektronische ISSN: 1573-0484
DOI
https://doi.org/10.1007/s11227-019-02800-1

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