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Limited information estimation of the diffusion-based item response theory model for responses and response times

机译:基于扩散的项目响应理论模型对响应和响应时间的有限信息估计

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摘要

Psychological tests are usually analysed with item response models. Recently, some alternative measurement models have been proposed that were derived from cognitive process models developed in experimental psychology. These models consider the responses but also the response times of the test takers. Two such models are the Q-diffusion model and the D-diffusion model. Both models can be calibrated with the diffIRT package of the R statistical environment via marginal maximum likelihood (MML) estimation. In this manuscript, an alternative approach to model calibration is proposed. The approach is based on weighted least squares estimation and parallels the standard estimation approach in structural equationmodelling. Estimates are determined by minimizing the discrepancy between the observed and the implied covariance matrix. The estimator is simple to implement, consistent, and asymptotically normally distributed. Least squares estimation also provides a test of model fit by comparing the observed and implied covariance matrix. The estimator and the test of model fit are evaluated in a simulation study. Although parameter recovery is good, the estimator is less efficient than the MML estimator.
机译:通常使用项目反应模型来分析心理测验。最近,已经提出了一些替代的测量模型,这些模型是从实验心理学中发展的认知过程模型中得出的。这些模型既考虑了应试者的反应,又考虑了他们的反应时间。两个这样的模型是Q扩散模型和D扩散模型。可以通过边际最大似然(MML)估计,使用R统计环境的diffIRT软件包对这两个模型进行校准。在此手稿中,提出了一种替代方法来进行模型校准。该方法基于加权最小二乘估计,并且在结构方程模型建模中与标准估计方法平行。通过最小化观察到的隐含协方差矩阵之间的差异来确定估计值。估计器易于实现,一致且渐近正态分布。最小二乘估计还通过比较观察到的隐含协方差矩阵来提供模型拟合的测试。在模拟研究中评估估计量和模型拟合检验。尽管参数恢复良好,但估计器的效率比MML估计器低。

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