Framingham Risk Score by Data Mining Method

Ş. Kitiş
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Abstract

There are cleaning, integration, reduction, conversion, algorithm implementation and evaluation stages in data mining meaning finding necessary data from a wide variety of variables and data. It is important to create a data warehouse to realize these steps. Data randomly selected from data warehouse is evaluated with certain algorithms. While deaths resulting from heart diseases in our country are 37% according to 2016 data, 420-440 thousand people are diagnosed as heart patients each year and the number of deaths per year can reach 340 thousand people. These values correspond to approximately three times of Europe. In this study, risk of heart attack is calculated by data mining method by taking advantage of Framingham risk score. In order to determine this risk factor; 10-year risk is calculated by looking at sex, age, total cholesterol, HDL cholesterol, blood pressure, diabetes and smoking. While the effects of the ages for men starts -9 points, ends with +13 points and for women starts -7 points, ends with +16 points. While the effects of the total cholesterol for men starts 0 points, ends with +11 points and for women starts 0 points, ends with +13 points. Total scores are between 0-17 and over in men, and scores between 0-25 and over in women. There are risk values ranging from 1% to 30%.
基于数据挖掘方法的Framingham风险评分
在数据挖掘中,有清理、整合、约简、转换、算法实现和评估阶段,这意味着从各种变量和数据中找到必要的数据。创建一个数据仓库来实现这些步骤非常重要。从数据仓库中随机抽取数据,用一定的算法对数据进行评估。根据2016年的数据,我国因心脏病导致的死亡率为37%,每年有42 -44万人被诊断为心脏病患者,每年死亡人数可达34万人。这些数值大约相当于欧洲的三倍。本研究采用数据挖掘方法,利用Framingham风险评分法计算心脏病发作风险。为了确定这个风险因素;10年的风险是通过观察性别、年龄、总胆固醇、高密度脂蛋白胆固醇、血压、糖尿病和吸烟来计算的。年龄对男性的影响从-9分开始,到+13分结束;对女性的影响从-7分开始,到+16分结束。总胆固醇对男性的影响从0分开始,到+11分结束,对女性的影响从0分开始,到+13分结束。男性总分在0-17分以上,女性总分在0-25分以上。风险值从1%到30%不等。
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