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Erschienen in: Cluster Computing 3/2014

01.09.2014

Adaptive mining prediction model for content recommendation to coronary heart disease patients

verfasst von: Jae-Kwon Kim, Jong-Sik Lee, Dong-Kyun Park, Yong-Soo Lim, Young-Ho Lee, Eun-Young Jung

Erschienen in: Cluster Computing | Ausgabe 3/2014

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Abstract

This paper proposes the Fuzzy Rule-based Adaptive Coronary Heart Disease Prediction Support Model (FbACHD_PSM), which gives content recommendation to coronary heart disease patients. The proposed model uses a mining technique validated by medical experts to provide recommendations. FbACHD_PSM consists of three parts for heart disease risk prediction. First, a fuzzy membership function is constructed using medical guidelines and statistical methods. Then, a decision-tree rule induction technique creates mining-based rules that are subjected to validation by medical experts. As the rules may not be medically suitable, the experts add rules that have been verified and delete inappropriate rules. Thirdly, using fuzzy inference based on Mamdani’s method, the model predicts the risk of heart disease. Based on this, final recommendations are provided to patients regarding normal living, nutrition control, exercise, and drugs. To implement our proposed model and evaluate its performance, we use a dataset from a single tertiary hospital.

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Metadaten
Titel
Adaptive mining prediction model for content recommendation to coronary heart disease patients
verfasst von
Jae-Kwon Kim
Jong-Sik Lee
Dong-Kyun Park
Yong-Soo Lim
Young-Ho Lee
Eun-Young Jung
Publikationsdatum
01.09.2014
Verlag
Springer US
Erschienen in
Cluster Computing / Ausgabe 3/2014
Print ISSN: 1386-7857
Elektronische ISSN: 1573-7543
DOI
https://doi.org/10.1007/s10586-013-0308-1

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