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Estimating Non-Normal Latent Trait Distributions within Item Response Theory Using True and Estimated Item Parameters

机译:使用真实和估计的项目参数估计项目响应理论中的非正态潜在特征分布

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摘要

Item response theory (IRT) procedures have been used extensively to study normal latent trait distributions and have been shown to perform well; however, less is known concerning the performance of IRT with non-normal latent trait distributions. This study investigated the degree of latent trait estimation error under normal and non-normal conditions using four latent trait estimation procedures and also evaluated whether the test composition, in terms of item difficulty level, reduces estimation error. Most importantly, both true and estimated item parameters were examined to disentangle the effects of latent trait estimation error from item parameter estimation error. Results revealed that non-normal latent trait distributions produced a considerably larger degree of latent trait estimation error than normal data. Estimated item parameters tended to have comparable precision to true item parameters, thus suggesting that increased latent trait estimation error results from latent trait estimation rather than item parameter estimation.
机译:项目反应理论(IRT)程序已被广泛用于研究正常的潜在性状分布,并表现出良好的表现。然而,对于具有非正态潜在特征分布的IRT的性能知之甚少。这项研究使用四种潜在性状估计程序研究了正常和非正常条件下潜在性状估计错误的程度,并且还评估了测试组合物是否在项目难度级别方面降低了估计性错误。最重要的是,检查真实和估计的项目参数,以区分潜在特征估计误差与项目参数估计误差的影响。结果表明,非正常的潜在性状分布比正常数据产生了更大程度的潜在性状估计误差。估计的项目参数往往具有与真实项目参数相当的精度,因此表明,潜在特征估计误差的增加是由于潜在特征估计而不是项目参数估计引起的。

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  • 来源
    《Applied Measurement in Education》 |2008年第1期|65-88|共24页
  • 作者单位

    Department of Educational Psychology, University of Texas at San Antonio,;

    Department of Psychology, Eastern Michigan University,;

    Department of Educational Psychology, University of Wisconsin—Milwaukee,;

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  • 正文语种 eng
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