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Decision tree models for characterizing smoking patterns of older adults

机译:表征老年人吸烟模式的决策树模型

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The main objective of the present paper is to characterize smoking behavior among older adults by assessing the psychological distress, physical health status, alcohol use, and demographic variables in relations to the current smoking. We targeted 466 senior American smokers who are 65 years of age or older from the 2006 National Survey on Drug Use and Health (NSDUH, 2006). We employed a decision tree algorithm to conduct classification analysis to find the relationship between the average numbers of cigarette use per day. The results showed that the most important explanatory variable for prediction of the average number of cigarette use per day is the age when first started smoking cigarettes every day, followed by education level, and psychological distress. These results suggest that social workers need to provide more customized and individualized intervention to older adults.
机译:本文的主要目的是通过评估心理困扰,身体健康状况,饮酒情况以及与当前吸烟关系的人口统计学变量来表征老年人的吸烟行为。根据2006年《美国药物使用与健康调查》(NSDUH,2006年),我们针对466岁,年龄在65岁以上的美国高级吸烟者进行了调查。我们采用决策树算法进行分类分析,以发现每天平均吸烟量之间的关系。结果表明,预测每天平均吸烟量的最重要的解释变量是每天首次开始吸烟的年龄,其次是文化程度和心理困扰。这些结果表明,社会工作者需要为老年人提供更多的个性化和个性化干预。

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