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Using Regression Equations Built From Summary Data in the Psychological Assessment of the Individual Case: Extension to Multiple Regression

机译:在个案的心理评估中使用从汇总数据构建的回归方程式:扩展到多元回归

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摘要

Regression equations have many useful roles in psychological assessment. Moreover, there is a large reservoir of published data that could be used to build regression equations; these equations could then be employed to test a wide variety of hypotheses concerning the functioning of individual cases. This resource is currently underused because (a) not all psychologists are aware that regression equations call be built not only from raw data but also using only basic summary data for a sample, and (b) the computations involved are tedious and prone to error. In an attempt to overcome these barriers. Crawford and Garthwaite (2007) provided methods to build and apply simple linear regression models using summary statistics as data. In the present study, we extend this work to set out the steps required to build multiple regression models from sample summary statistics and the further steps required to compute the associated statistics for drawing inferences concerning an individual case. We also develop, describe, and make available a computer program that implements these methods. Although there are caveats associated with the use of the methods, these need to be balanced against pragmatic considerations and against the alternative of either entirely ignoring a pertinent data set or using it informally to provide a clinical "guesstimate." Upgraded versions of earlier programs for regression in the single case are also provided; these add the point and interval estimates of effect size developed in the present article.
机译:回归方程在心理评估中具有许多有用的作用。而且,有大量已发布的数据可用于建立回归方程。然后,可以使用这些方程式来检验有关各个案例功能的各种假设。该资源目前未得到充分利用,因为(a)并非所有的心理学家都意识到,不仅要从原始数据构建回归方程,而且还仅使用样本的基本摘要数据构建回归方程;并且(b)所涉及的计算乏味且容易出错。为了克服这些障碍。 Crawford和Garthwaite(2007)提供了使用汇总统计数据作为数据来构建和应用简单线性回归模型的方法。在本研究中,我们将这项工作扩展到根据样本摘要统计数据建立多个回归模型所需的步骤,以及为得出有关个别案例的推论而计算相关统计数据所需的其他步骤。我们还开发,描述并提供实现这些方法的计算机程序。尽管使用这些方法存在一些警告,但需要在务实考虑和完全忽略相关数据集或非正式地使用它来提供临床“猜测”的替代方案之间进行权衡。还提供了在单个情况下用于回归的早期程序的升级版本;这些都添加了本文开发的效果大小的点和区间估计。

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