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首页> 外文期刊>International journal of biomedical engineering and technology >Decision support system for type II diabetes and its risk factor prediction using bee-based harmony search and decision tree algorithm
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Decision support system for type II diabetes and its risk factor prediction using bee-based harmony search and decision tree algorithm

机译:使用基于BEE的和声搜索和决策树算法的II型糖尿病的决策支持系统及其风险因子预测

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摘要

The objective of this research is to develop a decision support system for the investigation of type II diabetes and its risk factors over the region of specific group of people. A total of 732 cases were collected from a government hospital. Predictive analysis was carried out using bee based harmony search algorithm and C4.5 decision tree algorithm with its splitting criterion. From the experimental results, it has been observed that the risk corresponding to Postprandial Plasma Glucose (PPG), A1c-Glycosylated Haemoglobin, Mean Blood Glucose level (MBG), with a prediction accuracy of about 92.87% respectively. It is estimated that the age group corresponding to 34 to 73 was found more prevalent to the disease. The mathematical model proves that age, PPG and MBG have strong co-relation over data matrix. Hence predictive analytics with swarm intelligence techniques can be deployed over risk identification which reduces treatment analysis.
机译:本研究的目的是制定决策支持系统,用于调查II型糖尿病及其特定人群地区的危险因素。 从政府医院收集了732例。 使用基于BEE的和声搜索算法和C4.5决策树算法进行了预测分析。 从实验结果中,已经观察到,对应于餐后血浆葡萄糖(PPG),A1C-糖基化血红蛋白,平均血糖水平(MBG)的风险分别为约92.87%的预测精度。 据估计,对应于34至73的年龄组对该疾病更普遍。 数学模型证明年龄,PPG和MBG对数据矩阵具有强烈共同关系。 因此,可以部署具有群体智能技术的预测性分析,其风险识别降低了治疗分析。

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