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一种基于回归的综合方法,用于识别典型反应测量中个体不匹配的来源。

A Comprehensive Regression-Based Approach for Identifying Sources of Person Misfit in Typical-Response Measures.

作者信息

Ferrando Pere J, Lorenzo-Seva Urbano

机构信息

Rovira i Virgili University, Tarragona, Spain.

出版信息

Educ Psychol Meas. 2016 Jun;76(3):470-486. doi: 10.1177/0013164415594659. Epub 2015 Jul 8.

Abstract

This article proposes a general parametric item response theory approach for identifying sources of misfit in response patterns that have been classified as potentially inconsistent by a global person-fit index. The approach, which is based on the weighted least squared regression of the observed responses on the model-expected responses, can be used with a variety of unidimensional and multidimensional models intended for binary, graded, and continuous responses and consists of procedures for identifying (a) general deviation trends, (b) local inconsistencies, and (c) single response inconsistencies. A free program called REG-PERFIT that implements most of the proposed techniques has been developed, described, and made available for interested researchers. Finally, the functioning and usefulness of the proposed procedures is illustrated with an empirical study based on a statistics-anxiety scale.

摘要

本文提出了一种通用的参数项目反应理论方法,用于识别被全局个体拟合指数归类为潜在不一致的反应模式中的不拟合来源。该方法基于观察到的反应对模型预期反应的加权最小二乘回归,可用于各种用于二元、分级和连续反应的单维和多维模型,包括识别(a)一般偏差趋势、(b)局部不一致性和(c)单个反应不一致性的程序。已开发、描述并向感兴趣的研究人员提供了一个名为REG-PERFIT的免费程序,该程序实现了大部分所提出的技术。最后,通过一项基于统计焦虑量表的实证研究说明了所提出程序的功能和实用性。

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