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The use of test scores from large-scale assessment surveys: psychometric and statistical considerations

机译:大规模评估调查中考试分数的使用:心理和统计学考虑

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Abstract Background Economists are making increasing use of measures of student achievement obtained through large-scale survey assessments such as NAEP, TIMSS, and PISA. The construction of these measures, employing plausible value (PV) methodology, is quite different from that of the more familiar test scores associated with assessments such as the SAT or ACT. These differences have important implications both for utilization and interpretation. Although much has been written about PVs, it appears that there are still misconceptions about whether and how to employ them in secondary analyses. Methods We address a range of technical issues, including those raised in a recent article that was written to inform economists using these databases. First, an extensive review of the relevant literature was conducted, with particular attention to key publications that describe the derivation and psychometric characteristics of such achievement measures. Second, a simulation study was carried out to compare the statistical properties of estimates based on the use of PVs with those based on other, commonly used methods. Results It is shown, through both theoretical analysis and simulation, that under fairly general conditions appropriate use of PV yields approximately unbiased estimates of model parameters in regression analyses of large scale survey data. The superiority of the PV methodology is particularly evident when measures of student achievement are employed as explanatory variables. Conclusions The PV methodology used to report student test performance in large scale surveys remains the state-of-the-art for secondary analyses of these databases.
机译:摘要背景经济学家越来越多地使用通过大规模调查评估(例如NAEP,TIMSS和PISA)获得的学生成绩衡量标准。这些采用合理值(PV)方法的度量的构建与与诸如SAT或ACT之类的评估相关的更熟悉的测试分数完全不同。这些差异对于使用和解释都具有重要意义。尽管关于PV的文章很多,但似乎仍存在关于是否以及如何在二次分析中使用它们的误解。方法我们解决了一系列技术问题,包括最近在一篇文章中提出的问题,这些文章旨在为使用这些数据库的经济学家提供信息。首先,对相关文献进行了广泛的回顾,特别关注描述此类成就指标的派生和心理计量特征的主要出版物。其次,进行了模拟研究,以比较基于使用PV的估算值与基于其他常用方法的估算值的统计特性。结果通过理论分析和模拟表明,在相当普遍的条件下,PV的适当使用可在大规模调查数据的回归分析中近似地产生模型参数的无偏估计。当采用学生成绩的度量作为解释变量时,PV方法论的优势尤其明显。结论用于在大规模调查中报告学生测试成绩的PV方法仍然是这些数据库的二次分析的最新技术。

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