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本文引用的文献

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Robustness of Adaptive Measurement of Change to Item Parameter Estimation Error.变化的自适应测量对项目参数估计误差的稳健性。
Educ Psychol Meas. 2022 Aug;82(4):643-677. doi: 10.1177/00131644211033902. Epub 2021 Aug 16.
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Hypothesis Testing Methods for Multivariate Multi-Occasion Intra-Individual Change.多元多场合个体内变化的假设检验方法。
Multivariate Behav Res. 2021 May-Jun;56(3):459-475. doi: 10.1080/00273171.2020.1730739. Epub 2020 Mar 3.
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Sources of Error in IRT Trait Estimation.IRT特质估计中的误差来源。
Appl Psychol Meas. 2018 Jul;42(5):359-375. doi: 10.1177/0146621617733955. Epub 2017 Oct 6.
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Multivariate Hypothesis Testing Methods for Evaluating Significant Individual Change.用于评估显著个体变化的多元假设检验方法
Appl Psychol Meas. 2018 May;42(3):221-239. doi: 10.1177/0146621617726787. Epub 2017 Oct 13.
5
The Impact of Item Parameter Drift in Computer Adaptive Testing (CAT).计算机自适应测试(CAT)中项目参数漂移的影响。
J Appl Meas. 2016;17(1):54-78.
6
Factorial Invariance within Longitudinal Structural Equation Models: Measuring the Same Construct across Time.纵向结构方程模型中的因子不变性:跨时间测量相同的构念
Child Dev Perspect. 2010 Apr 1;4(1):10-18. doi: 10.1111/j.1750-8606.2009.00110.x.

项目参数漂移背景下变化的自适应测量

Adaptive Measurement of Change in the Context of Item Parameter Drift.

作者信息

Cooperman Allison W, Tai Ming Him, DeWeese Joseph N, Weiss David J

机构信息

University of Minnesota - Twin Cities, Minneapolis, MN, USA.

Pennsylvania State University, State College, PA, USA.

出版信息

Appl Psychol Meas. 2024 Dec 30:01466216241310599. doi: 10.1177/01466216241310599.

DOI:10.1177/01466216241310599
PMID:39742387
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11683792/
Abstract

Adaptive measurement of change (AMC) uses computerized adaptive testing (CAT) to measure and test the significance of intraindividual change on one or more latent traits. The extant AMC research has so far assumed that item parameter values are constant across testing occasions. Yet item parameters might change over time, a phenomenon termed item parameter drift (IPD). The current study examined AMC's performance in the context of IPD with unidimensional, dichotomous CATs across two testing occasions. A Monte Carlo simulation revealed that AMC false and true positive rates were primarily affected by changes in the difficulty parameter. False positive rates were related to the location of the drift items relative to the latent trait continuum, as the administration of more drift items spuriously increased the magnitude of estimated trait change. Moreover, true positive rates depended upon an interaction between the direction of difficulty parameter drift and the latent trait change trajectory. A follow-up simulation further showed that the number of items in the CAT with parameter drift impacted AMC false and true positive rates, with these relationships moderated by IPD characteristics and the latent trait change trajectory. It is recommended that test administrators confirm the absence of IPD prior to using AMC for measuring intraindividual change with educational and psychological tests.

摘要

适应性变化测量(AMC)使用计算机自适应测试(CAT)来测量和检验个体内部在一个或多个潜在特质上变化的显著性。目前的AMC研究迄今一直假定项目参数值在不同测试场合是恒定的。然而,项目参数可能会随时间变化,这种现象被称为项目参数漂移(IPD)。当前的研究在IPD背景下,通过两次测试场合的单维、二分CAT检验了AMC的性能。蒙特卡洛模拟显示,AMC的假阳性率和真阳性率主要受难度参数变化的影响。假阳性率与漂移项目相对于潜在特质连续体的位置有关,因为更多漂移项目的施测会虚假地增加估计特质变化的幅度。此外,真阳性率取决于难度参数漂移方向与潜在特质变化轨迹之间的相互作用。后续模拟进一步表明,存在参数漂移时CAT中的项目数量会影响AMC的假阳性率和真阳性率,这些关系会受到IPD特征和潜在特质变化轨迹的调节。建议测试管理者在使用AMC通过教育和心理测试测量个体内部变化之前,确认不存在IPD。