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首页> 外文期刊>Journal of substance abuse treatment >Using chi-Squared Automatic Interaction Detection (CHAID) modelling to identify groups of methadone treatment clients experiencing significantly poorer treatment outcomes
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Using chi-Squared Automatic Interaction Detection (CHAID) modelling to identify groups of methadone treatment clients experiencing significantly poorer treatment outcomes

机译:使用卡方自动交互检测(CHAID)建模来识别经历明显较差的治疗结果的美沙酮治疗客户组

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摘要

In times of scarce resources it is important for services to make evidence based decisions when identifying clients with poor outcomes. chi-Squared Automatic Interaction Detection (CHAID) modelling was used to identify characteristics of clients experiencing statistically significant poor outcomes. A national, longitudinal study recruited and interviewed, using the Maudsley Addiction Profile (MAP), 215 clients starting methadone treatment and 78% were interviewed one year later. Four CHAID analyses were conducted to model the interactions between the primary outcome variable, used heroin in the last 90. days prior to one year interview and variables on drug use, treatment history, social functioning and demographics. Results revealed that regardless of these other variables, males over 22. years of age consistently demonstrated significantly poorer outcomes than all other clients. CHAID models can be easily applied by service providers to provide ongoing evidence on clients exhibiting poor outcomes and requiring priority within services.
机译:在资源匮乏的时期,对于服务而言,在确定结果不佳的客户时做出基于证据的决策非常重要。卡方自动交互检测(CHAID)建模用于识别经历统计显着差的客户的特征。一项使用Maudsley瘾倾向档案(MAP)招募和访问的全国性纵向研究,有215位患者开始接受美沙酮治疗,一年后接受了78%的访问。进行了四次CHAID分析,以模拟主要结果变量,一年访谈前的最后90天中使用的海洛因与药物使用,治疗史,社会功能和人口统计学变量之间的相互作用。结果显示,不管其他变量如何,22岁以上的男性始终显示出比所有其他患者明显差的结局。服务提供商可以轻松地使用CHAID模型,以提供持续的证据,以证明结果不佳且需要优先服务的客户。

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