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首页> 外文期刊>The British journal of mathematical and statistical psychology >Marginal likelihood inference for a model for item responses and response times
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Marginal likelihood inference for a model for item responses and response times

机译:项目响应和响应时间模型的边际似然推断

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Marginal maximum-likelihood procedures for parameter estimation and testing the fit of a hierarchical model for speed and accuracy on test items are presented. The model is a composition of two first-level models for dichotomous responses and response times along with multivariate normal models for their item and person parameters. It is shown how the item parameters can easily be estimated using Fisher's identity. To test the fit of the model, Lagrange multiplier tests of the assumptions of subpopulation invariance of the item parameters (i.e., no differential item functioning), the shape of the response functions, and three different types of conditional independence were derived. Simulation studies were used to show the feasibility of the estimation and testing procedures and to estimate the power and Type I error rate of the latter. In addition, the procedures were applied to an empirical data set from a computerized adaptive test of language comprehension.
机译:提出了用于参数估计和测试层次模型的拟合以提高测试项目的速度和准确性的边际最大似然程序。该模型由用于二分式响应和响应时间的两个第一级模型以及用于其项和人参数的多元正常模型组成。它显示了如何使用Fisher身份轻松估计项目参数。为了测试模型的拟合度,得出了Lagrange乘数检验,该检验假设了项目参数的亚人群不变性(即无差异项功能),响应函数的形状以及三种不同类型的条件独立性。仿真研究被用来证明估计和测试程序的可行性,并估计后者的功率和I型错误率。此外,该程序还应用于计算机的语言理解自适应测验中的经验数据集。

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