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A diagnostic procedure to detect departures from local independence in item response theory models

机译:诊断项目响应理论模型中偏离局部独立性的诊断程序

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摘要

Item response theory (IRT) is a widely used measurement model. When considering its use in education, health outcomes, and psychology, it is likely to be one of the most impactful psychometric models in existence. IRT has many advantages over classical test theory-based measurement models. For these advantages to hold in practice, strong assumptions must be satisfied. One of these assumptions, local independence, is the focus of the work described here. Local independence is the assumption that, conditional on the latent variable(s), item responses are unrelated to one another (i.e., independent). Stated another way, local independence implies that the only thing causing items to co-vary is the modeled latent variable(s). Violations of this assumption, quite aptly titled local dependence, can have serious consequences for the estimated parameters. A new diagnostic is proposed, based on parameter stability in an item-level jackknife resampling procedure. We review the ideas underlying the new diagnostic and how it is computed before covering some simulated and real examples demonstrating its effectiveness.
机译:项目响应理论(IRT)是一种广泛使用的度量模型。当考虑将其用于教育,健康成果和心理学时,它很可能是现有最有影响力的心理测量模型之一。与基于经典测试理论的测量模型相比,IRT具有许多优势。为了在实践中保持这些优势,必须满足强有力的假设。这些假设之一是地方独立性,是此处描述的工作重点。局部独立性是一种假设,即在一个或多个潜在变量的条件下,项目响应彼此无关(即独立)。换句话说,局部独立性意味着导致项目共同变化的唯一因素是建模的潜在变量。违反这一假设,恰如其分地称为“局部依赖”,可能会对估计的参数产生严重的后果。基于项目级折刀重采样过程中的参数稳定性,提出了一种新的诊断方法。在介绍一些表明其有效性的模拟和真实示例之前,我们将回顾新诊断的基础思想以及如何计算新诊断。

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