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Large Sample Confidence Intervals for Item Response Theory Reliability Coefficients

机译:项目响应理论可靠性系数的大样本置信区间

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摘要

In applications of item response theory (IRT), an estimate of the reliability of the ability estimates or sum scores is often reported. However, analytical expressions for the standard errors of the estimators of the reliability coefficients are not available in the literature and therefore the variability associated with the estimated reliability is typically not reported. In this study, the asymptotic variances of the IRT marginal and test reliability coefficient estimators are derived for dichotomous and polytomous IRT models assuming an underlying asymptotically normally distributed item parameter estimator. The results are used to construct confidence intervals for the reliability coefficients. Simulations are presented which show that the confidence intervals for the test reliability coefficient have good coverage properties in finite samples under a variety of settings with the generalized partial credit model and the three-parameter logistic model. Meanwhile, it is shown that the estimator of the marginal reliability coefficient has finite sample bias resulting in confidence intervals that do not attain the nominal level for small sample sizes but that the bias tends to zero as the sample size increases.
机译:在项目响应理论(IRT)的应用中,经常会报告能力估计或总分的可靠性估计。然而,在文献中没有关于可靠性系数的估计器的标准误差的分析表达式,因此通常没有报告与估计的可靠性相关的可变性。在这项研究中,假设二元和多态IRT模型假设一个潜在的渐近正态分布项参数估计量,则得出IRT边际和检验可靠性系数估计量的渐近方差。结果用于构造可靠性系数的置信区间。仿真结果表明,在广义局部信用模型和三参数对数模型的各种设置下,测试可靠性系数的置信区间在有限样本中具有良好的覆盖特性。同时,表明边际可靠性系数的估计量具有有限的样本偏差,导致置信区间对于小样本量无法达到标称水平,但是随着样本量的增加,偏差趋于零。

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