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Item Selection and Hypothesis Testing for the Adaptive Measurement of Change

机译:适应性变化度量的项目选择和假设检验

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摘要

Assessing individual change is an important topic in both psychological and educational measurement. An adaptive measurement of change (AMC) method had previously been shown to exhibit greater efficiency in detecting change than conventional nonadaptive methods. However, little work had been done to compare different procedures within the AMC framework. This study introduced a new item selection criterion and two new test statistics for detecting change with AMC that were specifically designed for the paradigm of hypothesis testing. In two simulation sets, the new methods for detecting significant change improved on existing procedures by demonstrating better adherence to Type I error rates and substantially better power for detecting relatively small change.
机译:评估个人变化是心理和教育测量中的重要主题。以前已经显示出自适应变化测量(AMC)方法比传统的非自适应方法显示出更高的检测变化效率。但是,在AMC框架内比较不同程序的工作很少。这项研究引入了一个新的项目选择标准和两个新的检验统计量,用于检测AMC的变化,这些统计量是专门为假设检验范式设计的。在两个仿真集中,通过证明更好地遵守I类错误率和显着提高检测相对较小变化的能力,在现有过程中改进了检测重大变化的新方法。

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