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Investigation of Chronic Disease Correlation using Data Mining Techniques

机译:使用数据挖掘技术研究慢性疾病相关性

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A disease is an abnormal condition that affects the structure and function of one or more parts of the body. It may be caused by various factors, external and internal dysfunctions. There is a trend of various chronic diseases in any society. The major concern is that these chronic diseases are leading to many other diseases in future. An attempt to explore the correlation of various chronic diseases has become a necessity. This can be achieved by using data mining techniques, which help to derive knowledge about the affects of a particular chronic disease on the other chronic diseases. Since there is growing trend of diabetes and ischemic heart disease in the society, in this paper the focus is to investigate the effect of these diseases on the other chronic diseases using the ICD9 diagnostic codes. To achieve this goal various types of data mining techniques are used. The conclusion is an optimal set of ICD9 diagnostic codes associated with individuals having diabetes or ischemic heart disease. These codes are then investigated based on the human anatomic systems i.e. Circulatory system, Respiratory system, Nervous system, Musculoskeletal system, Renal system and Neoplasm and their relevance is justified.
机译:疾病是一种异常情况,影响体内一个或多个部位的结构和功能。它可能是由各种因素,外部和内部功能障碍引起的。任何社会都有各种慢性病的趋势。主要问题是,这些慢性疾病将来导致许多其他疾病。试图探索各种慢性疾病的相关性已成为必需品。这可以通过使用数据挖掘技术来实现,这有助于获得关于对其他慢性疾病的特定慢性疾病的影响的知识。由于社会中糖尿病和缺血性心脏病的趋势越来越呈现,在本文中,重点是使用ICD9诊断法调查这些疾病对其他慢性疾病的影响。为实现这一目标,使用各种类型的数据挖掘技术。结论是与具有糖尿病或缺血性心脏病的个体相关的最佳ICD9诊断码。然后基于人解剖学系统研究这些码,即循环系统,呼吸系统,神经系统,肌肉骨骼系统,肾系统和肿瘤,其相关性是合理的。

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