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The Impact of Statistically Adjusting for Rater Effects on Conditional Standard Errors of Performance Ratings

机译:统计评估评分者效应对绩效等级的条件标准误差的影响

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摘要

Prior research indicates that the overall reliability of performance ratings can be improved by using ordinary least squares (OLS) regression to adjust for rater effects. The present investigation extends previous work by evaluating the impact of OLS adjustment on standard errors of measurement (SEM) at specific score levels. In addition, a cross-validation (i.e., resampling) design was used to determine the extent to which any improvements in measurement precision would be realized for new samples of examinees. Conditional SEMs were largest for scores toward the low end of the score distribution and smallest for scores at the high end. Conditional SEMs for adjusted scores were consistently less than conditional SEMs for observed scores, although the reduction in error was not uniform throughout the distribution. The improvements in measurement precision held up for new samples of examinees at all score levels.
机译:先前的研究表明,通过使用普通最小二乘(OLS)回归来调整评估者效果,可以提高性能评估的总体可靠性。本研究通过评估OLS调整对特定得分水平下的标准测量误差(SEM)的影响,扩展了以前的工作。另外,使用交叉验证(即,重采样)设计来确定对于新的受检者样本实现测量精度的任何改进的程度。条件SEM的得分朝向得分分布的低端最大,而高端的得分最小。调整分数的条件SEM始终小于观测分数的条件SEM,尽管在整个分布中误差的降低并不均匀。测量精度的提高阻止了所有分数水平的新考生样本的出现。

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