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Unfolding IRT Models for Likert-Type Items With a Don’t KnowOption

机译:未知的李克特型物品的IRT模型展开选项

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摘要

Attitude surveys are widely used in the social sciences. It has been argued that the underlying response process to attitude items may be more aligned with the ideal-point (unfolding) process than with the cumulative (dominance) process, and therefore, unfolding item response theory (IRT) models are more appropriate than dominance IRT models for these surveys. Missing data and don’t know (DK) responses are common in attitude surveys, and they may not be ignorable in the likelihood for parameter estimation. Existing unfolding IRT models often treat missing data or DK as missing at random. In this study, a new class of unfolding IRT models for nonignorable missing data and DK were developed, in which the missingness and DK were assumed to measure a hierarchy of latent traits, which may be correlated with the latent attitude that a test intended to measure. The Bayesian approach with Markov chain Monte Carlo methods was used to estimate the parameters of the new models. Simulation studies demonstrated that the parameters were recovered fairly well, and ignoring nonignorable missingness or DK resulted in poor parameter estimates. An empirical example of a religious belief scale about health was given.
机译:态度调查在社会科学中被广泛使用。有人认为,对态度项目的潜在反应过程可能比与理想点(展开)过程更一致,而不是与累积(支配)过程一致,因此,展开项目反应理论(IRT)模型比支配地位更合适这些调查的IRT模型。数据丢失和不知道(DK)响应在态度调查中很常见,并且在参数估计的可能性方面可能无法忽略。现有的展开式IRT模型通常将丢失的数据或DK视为随机丢失。在这项研究中,开发了针对不可忽略的缺失数据和DK的一类新的展开式IRT模型,其中假定缺失和DK用来衡量潜在特征的层次结构,这可能与测试旨在测量的潜在态度相关。使用马尔可夫链蒙特卡罗方法的贝叶斯方法来估计新模型的参数。仿真研究表明,参数恢复得相当好,而忽略不可忽略的缺失或DK导致参数估计不佳。给出了有关健康的宗教信仰量表的经验示例。

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