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Conducting statistical tests with data from clustered school samples

机译:使用聚集的学校样本中的数据进行统计检验

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This article discusses issues associated with statistical testing conducted with data from clustered school samples. Empirical researchers often conduct tests of statistical inference on sample data to ascertain the extent to which differences exist within groups in the population. Typically, much school-related data are collected from students. These data are hierarchical because students are nested within classes within schools. This article studies the influence of this nesting on tests of statistical significance conducted with the student as the unit of analysis. Theory that adjusts F-test scores for nested data in multi-group comparisons is presented and applied to a teacher interaction dataset. The article demonstrates the potential impact of data hierarchy on the results of statistical testing if clustering is ignored. Data analysis techniques that recognize the clustering of students in classes are essential, and it is recommended that either multilevel analysis or adjustments to statistical parameters be undertaken in studies involving nested data.
机译:本文讨论了与使用聚类学校样本数据进行统计测试有关的问题。实证研究人员经常对样本数据进行统计推断测试,以确定人群中各群体之间存在差异的程度。通常,许多与学校有关的数据都是从学生那里收集的。这些数据是分层的,因为学生嵌套在学校的班级内。本文研究了这种嵌套对以学生为分析单位的统计显着性检验的影响。提出了在多组比较中调整嵌套数据的F检验分数的理论,并将其应用于教师互动数据集。本文演示了如果忽略聚类,数据层次结构对统计测试结果的潜在影响。识别班级学生聚类的数据分析技术是必不可少的,建议在涉及嵌套数据的研究中进行多级分析或对统计参数进行调整。

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