青少年超重和肥胖相关生活方式风险因素的数据挖掘

Anthony Pochini, Yitian Wu, Gongzhu Hu
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引用次数: 7

摘要

数据挖掘技术已经应用于商业世界和我们日常生活的许多领域,包括医疗保健和临床健康服务。肥胖和超重是最受关注的健康问题之一,尤其是儿童和青少年。在本文中,我们试图在美国高中生中找到与超重和肥胖相关的最重要的生活方式风险因素。使用2011年全国青少年危险行为调查(YRBS)的生活方式调查数据,将学生的体重状况(超重或肥胖)作为两个目标变量。为每个目标变量建立了逻辑回归模型和决策树模型。逻辑回归和决策树方法均表明,经常进行体育锻炼和每天吃早餐是防止超重或肥胖的保护因素。研究发现,吸烟和经常饮用含糖饮料与肥胖风险增加有关。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Data Mining for Lifestyle Risk Factors Associated with Overweight and Obesity among Adolescents
Data mining techniques have been applied to many areas in the business world and our daily life, including healthcare and clinical health services. One of the mostly watched health problems is obesity and overweight, particularly for children and adolescents. In this paper, we try to find the most significant lifestyle risk factors associated with overweight and obesity among high school students in the US. Lifestyle survey data from the 2011 National Youth Risk Behavior Survey (YRBS) was used with the students' body weight statuses, overweight or obesity, considered as two target variables. Both logistic regression models and decision tree models were created for each target variable. Both the logistic regression and decision tree method show that frequently doing physical activity and having breakfast everyday were protective factors against being overweight or obese. Smoking and drinking sugar-sweeten beverage frequently were found to be associated with an increased risk to be obese.
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