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Using Structural Equation Modeling to Examine Group Differences in Assessment Booklet Designs with Sparse Data

机译:使用结构方程模型检查具有稀疏数据的评估手册设计中的组差异

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摘要

The current research demonstrates the effectiveness of using structural equation modeling (SEM) for the investigation of subgroup differences with sparse data designs where not every student takes every item. Simulations were conducted that reflected missing data structures like those encountered in large survey assessment programs (e.g., National Assessment of Educational Progress). A maximum likelihood method of estimation was implemented that allowed all data to be used without performing any imputation. A multiple indicators multiple causes (MIMIC) model was used to examine group differences. There was no detriment to the estimation of the MIMIC model parameters under sparse data design conditions when compared to the design without missing data. The overall size of samples had more influence on the variability of estimates than did the data design.
机译:当前的研究表明,使用结构方程模型(SEM)来研究子群差异的稀疏数据设计的有效性,因为并不是每个学生都拿走每一项物品。进行的模拟反映了缺失的数据结构,例如大型调查评估程序(例如国家教育进展评估)中遇到的数据结构缺失。实施了最大似然估计方法,该方法允许使用所有数据而无需执行任何估算。多指标多原因(MIMIC)模型用于检查组差异。与不丢失数据的设计相比,在稀疏数据设计条件下对MIMIC模型参数的估计没有不利影响。与数据设计相比,样本的总体大小对估计的可变性影响更大。

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  • 来源
    《Applied Measurement in Education》 |2008年第3期|253-272|共20页
  • 作者单位

    Department of Educational Research Methodology, University of North Carolina, Greensboro;

    Department of Educational Research Methodology, University of North Carolina, Greensboro;

    Department of Educational Research Methodology, University of North Carolina, Greensboro;

    Department of Educational Research Methodology, University of North Carolina, Greensboro;

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  • 正文语种 eng
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  • 入库时间 2022-08-17 13:13:13

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