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使用多层混合模型评估群组随机试验中的干预效果。

Using Multilevel Mixtures to Evaluate Intervention Effects in Group Randomized Trials.

机构信息

a Department of Psychology , University of South Carolina .

b Department of Criminology , University of South Carolina .

出版信息

Multivariate Behav Res. 2008 Apr-Jun;43(2):289-326. doi: 10.1080/00273170802034893.

Abstract

There is evidence to suggest that the effects of behavioral interventions may be limited to specific types of individuals, but methods for evaluating such outcomes have not been fully developed. This study proposes the use of finite mixture models to evaluate whether interventions, and, specifically, group randomized trials, impact participants with certain characteristics or levels of problem behaviors. This study uses latent classes defined by clustering of individuals based on the targeted behaviors and illustrates the model by testing whether a preventive intervention aimed at reducing problem behaviors affects experimental users of illicit substances differently than problematic substance users or those individuals engaged in more serious problem behaviors. An illustrative example is used to demonstrate the identification of latent classes, specification of random effects in a multilevel mixture model, independent validation of latent classes, and the estimation of power for the proposed models to detect intervention effects. This study proposes specific steps for the estimation of multilevel mixture models and their power and suggests that this model can be applied more broadly to understand the effectiveness of interventions.

摘要

有证据表明,行为干预的效果可能仅限于特定类型的个体,但评估此类结果的方法尚未完全开发。本研究提出使用有限混合模型来评估干预措施,特别是群组随机试验,是否会对具有某些特征或问题行为水平的参与者产生影响。本研究使用基于目标行为对个体进行聚类定义的潜在类别,并通过测试旨在减少问题行为的预防干预措施是否对非法物质的实验使用者产生不同影响,来举例说明模型的应用,与有问题的物质使用者或从事更严重问题行为的个体不同。使用一个说明性示例来演示潜在类别的确立、多层次混合模型中随机效应的指定、潜在类别独立验证以及拟议模型检测干预效果的功效估计。本研究提出了估计多层次混合模型及其功效的具体步骤,并建议该模型可以更广泛地应用于理解干预措施的有效性。

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