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首页> 外文期刊>The British journal of mathematical and statistical psychology >Non-ignorable missingness item response theory models for choice effects in examinee-selected items
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Non-ignorable missingness item response theory models for choice effects in examinee-selected items

机译:选定的项目中选择效果的非忽略缺失物品响应理论模型

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Examinee-selected item (ESI) design, in which examinees are required to respond to a fixed number of items in a given set, always yields incomplete data (i.e., when only the selected items are answered, data are missing for the others) that are likely non-ignorable in likelihood inference. Standard item response theory (IRT) models become infeasible when ESI data are missing not at random (MNAR). To solve this problem, the authors propose a two-dimensional IRT model that posits one unidimensional IRT model for observed data and another for nominal selection patterns. The two latent variables are assumed to follow a bivariate normal distribution. In this study, the mirt freeware package was adopted to estimate parameters. The authors conduct an experiment to demonstrate that ESI data are often non-ignorable and to determine how to apply the new model to the data collected. Two follow-up simulation studies are conducted to assess the parameter recovery of the new model and the consequences for parameter estimation of ignoring MNAR data. The results of the two simulation studies indicate good parameter recovery of the new model and poor parameter recovery when non-ignorable missing data were mistakenly treated as ignorable.
机译:考生选择的项目(ESI)设计,其中考生需要在给定集中响应固定数量的项目,始终产生不完整的数据(即,仅当仅回答所选项目时,其他人缺少数据)可能在似然推论中不可知。标准物品响应理论(IRT)模型在缺少随机(MNAR)时变得不可行。为了解决这个问题,作者提出了一种二维IRT模型,其针对观察到的数据,另一个用于标称选择模式。假设两个潜在的变量遵循双重正态分布。在本研究中,采用MIRT免费软件包来估算参数。作者进行实验,以证明ESI数据通常是不可知的,并确定如何将新模型应用于收集的数据。进行两项后续仿真研究以评估新模型的参数恢复以及忽略MNAR数据的参数估计的后果。两种仿真研究的结果表明,当非易忽略的丢失数据被错误地被视为无知时,新模型的良好参数恢复和参数恢复差。

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