检测治疗结果匹配效应的替代分析方法。

J P Carbonari, P W Wirtz, L R Muenz, R L Stout
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引用次数: 13

摘要

MATCH项目为统计学家、数据分析师和内容专家组成的团队提供了一个独特的机会,让他们聚在一起,探讨将各种统计模型应用于这项大型试验中收集的数据类型的优缺点。评估了以下模型:多层模型、事件历史模型、多层结构方程模型、时间序列模型、有序重复测量设计和广义估计方程。没有一种模式被认为是完美的解决方案,每种模式似乎都有可取之处。未来对这些方法的研究将揭示许多问题。希望酒精研究人员在计划和开展研究时能在本章中找到有用的指导方针。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Alternative analytical methods for detecting matching effects in treatment outcomes.

Project MATCH presented a unique opportunity for a team of statisticians, data analysts and content experts to come together and explore the strengths and weaknesses of the application of various statistical models to the data of the type being collected in this large trial. The following models were evaluated: multilevel models, event history models, multiple were structural equation modeling, time series models, ordinal repeated measures designs and generalized estimating equations. No one model was found to be the perfect solution and each seemed to have something to recommend it. Future research on these methods will shed light on many issues raised. It is hoped that alcohol researchers will find useful guidelines within this chapter as they plan and carry out their studies.

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