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An efficient feature selection method for classification in health care systems using machine learning techniques

机译:使用机器学习技术在医疗保健系统中进行分类的有效特征选择方法

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Data mining can be used for a large amount of applications. Among one is the health care systems. Usually, medical databases have large quantities of data about patients and their medical history. Analyzing this voluminous data manually is impossible. But this medical data contain very useful and valuable information which may save many lives if analyzed and utilized properly. Data mining technology is very effective for Health Care applications for identifying patterns and deriving useful information from these databases. Diabetes is one of the major causes of premature illness and death worldwide. In developing countries, less than half of people with diabetes are diagnosed. Without timely diagnoses and adequate treatment, complications and morbidity from diabetes rise exponentially. India has the world's largest diabetes population, followed by China with 43.2 million. This paper describes about the application of data mining techniques for the detection of diabetes in PIMA Indian Diabetes Dataset (PIDD). In this paper we propose a Feature Selection approach using a combination of Ranker Search method. The classification accuracy of 81% resulted from our approach proves to be higher when compared with previous results
机译:数据挖掘可用于大量应用程序。其中之一是卫生保健系统。通常,医学数据库具有有关患者及其病史的大量数据。手动分析此大量数据是不可能的。但是,这些医学数据包含非常有用和有价值的信息,如果进行正确的分析和利用,可能会挽救许多生命。数据挖掘技术对于医疗保健应用程序非常有效,可以识别模式并从这些数据库中获取有用的信息。糖尿病是世界范围内过早疾病和死亡的主要原因之一。在发展中国家,只有不到一半的人被诊断出患有糖尿病。没有及时的诊断和适当的治疗,糖尿病的并发症和发病率将成倍增加。印度拥有世界上最大的糖尿病人口,其次是中国,为4,320万。本文介绍了数据挖掘技术在PIMA印度糖尿病数据集(PIDD)中检测糖尿病的应用。在本文中,我们提出了一种结合了Ranker Search方法的特征选择方法。与以前的结果相比,我们的方法得出的分类精度为81%

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