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首页> 外文期刊>Journal of clinical child and adolescent psychology: the official journal for the Society of Clinical Child and Adolescent Psychology, American Psychological Association, Division 53 >Effect Size Measures for Multilevel Models in Clinical Child and Adolescent Research: New R-Squared Methods and Recommendations
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Effect Size Measures for Multilevel Models in Clinical Child and Adolescent Research: New R-Squared Methods and Recommendations

机译:临床儿童多级模型的影响尺寸措施及青少年研究:新的R线方法和建议

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Clinical psychologists studying child and adolescent populations commonly analyze hierarchically structured data via multilevel modeling (MLM). In clinical child and adolescent psychology, and in psychology more broadly, increasing emphasis is being placed on the reporting of effect size, such as R-squared (R-2) measures of explained variance. In MLM, however, the literature on R-2 had, until recently, suffered from several shortcomings: (a) the relations among existing measures were unknown, (b) methods for quantifying some types of explained variance were unavailable, (c) which (if any) measures should be used for model comparison was unclear, (d) most measures did not generalize to models with more than two levels, and (e) software to compute measures was unavailable. The purpose of this article is to summarize recent methodological developments that resolved these issues and encourage the use of MLM R-2 in practice. We provide a nontechnical discussion of how the issues have been resolved and demonstrate how the new measures and methods can be implemented, highlighting their utility with an empirical example. We first consider a two-level MLM for a single hypothesized model in which we examine emotional response to social situations as a predictor of maladaptive self-cognitions, demonstrating the various ways we can quantify explained variance. We then discuss and demonstrate the use of R-2 for model comparison, and discuss the extension to models with more than two levels. Last, we discuss new free software that researchers can use to compute measures and produce associated graphics.
机译:临床心理学家学习儿童和青少年群体通常通过多级建模(MLM)分析分层结构数据。在临床儿童和青少年心理学中,更广泛地在心理学中,增加重点是对效果规模的报告,如R-Squared(R-2)解释方差的措施。然而,在MLM中,R-2上的文献才遭受了几个缺点:(a)现有措施之间的关系未知,(b)定量某些类型解释的方差的方法不可用,(c) (如果有的话)措施应该用于模型比较尚不清楚,(d)大多数措施对具有两个以上级别的模型没有概括,而(e)软件计算措施的软件无法使用。本文的目的是总结最近解决这些问题的方法论发展,并鼓励在实践中使用MLM R-2。我们提供了对如何解决问题的无线讨论,并展示如何实施新措施和方法,突出其实用性示例。我们首先考虑一个双级MLM,用于单一假设模型,其中我们将社交情况的情绪反应视为适应不良自我认知的预测因子,展示了我们可以量化解释方差的各种方式。然后,我们讨论并展示使用R-2进行模型比较,并讨论扩展到具有超过两个级别的模型。最后,我们讨论研究人员可以用于计算措施并产生相关图形的新自由软件。

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