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基于模型的分类准确性和一致性指数的汇总区间。

Summary Intervals for Model-Based Classification Accuracy and Consistency Indices.

作者信息

Gonzalez Oscar

机构信息

The University of North Carolina at Chapel Hill, USA.

出版信息

Educ Psychol Meas. 2023 Apr;83(2):240-261. doi: 10.1177/00131644221092347. Epub 2022 Apr 28.

Abstract

When scores are used to make decisions about respondents, it is of interest to estimate classification accuracy (CA), the probability of making a correct decision, and classification consistency (CC), the probability of making the same decision across two parallel administrations of the measure. Model-based estimates of CA and CC computed from the linear factor model have been recently proposed, but parameter uncertainty of the CA and CC indices has not been investigated. This article demonstrates how to estimate percentile bootstrap confidence intervals and Bayesian credible intervals for CA and CC indices, which have the added benefit of incorporating the sampling variability of the parameters of the linear factor model to summary intervals. Results from a small simulation study suggest that percentile bootstrap confidence intervals have appropriate confidence interval coverage, although displaying a small negative bias. However, Bayesian credible intervals with diffused priors have poor interval coverage, but their coverage improves once empirical, weakly informative priors are used. The procedures are illustrated by estimating CA and CC indices from a measure used to identify individuals low on mindfulness for a hypothetical intervention, and R code is provided to facilitate the implementation of the procedures.

摘要

当分数被用于对受访者做出决策时,估计分类准确性(CA)(做出正确决策的概率)和分类一致性(CC)(在该测量的两次平行施测中做出相同决策的概率)是很有意义的。最近有人提出了基于线性因子模型计算的CA和CC的基于模型的估计,但CA和CC指数的参数不确定性尚未得到研究。本文展示了如何估计CA和CC指数的百分位数自助置信区间和贝叶斯可信区间,这还有一个额外的好处,即能将线性因子模型参数的抽样变异性纳入汇总区间。一项小型模拟研究的结果表明,百分位数自助置信区间具有适当的置信区间覆盖率,尽管显示出较小的负偏差。然而,具有扩散先验的贝叶斯可信区间的区间覆盖率较差,但一旦使用经验性、弱信息先验,其覆盖率会有所改善。通过从用于识别正念水平较低的个体以进行假设干预的测量中估计CA和CC指数来说明这些程序,并提供了R代码以促进程序的实施。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ae54/9972125/6a638e7ebf66/10.1177_00131644221092347-fig1.jpg

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