条件最大似然框架中评价项目判别的一种改进推理方法

IF 1.9 3区 心理学 Q2 EDUCATION & EDUCATIONAL RESEARCH
Clemens Draxler, A. Kurz, Can Gürer, J. Nolte
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引用次数: 0

摘要

提出了一种改进的归纳推理方法,用于在条件最大似然和Rasch建模框架下评估项目判别。新方法涉及四个假设检验的推导。它意味着对经典方法中假设的概率分布集的线性限制,该方法以直接有效的方式表示不同项目判别的场景。与经典程序(测试和信息标准)相比,讨论了它的改进,并在蒙特卡洛实验和教育研究的真实数据示例中进行了说明。结果表明,改进试验的功率提高了0.3。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Improved Inferential Procedure to Evaluate Item Discriminations in a Conditional Maximum Likelihood Framework
A modified and improved inductive inferential approach to evaluate item discriminations in a conditional maximum likelihood and Rasch modeling framework is suggested. The new approach involves the derivation of four hypothesis tests. It implies a linear restriction of the assumed set of probability distributions in the classical approach that represents scenarios of different item discriminations in a straightforward and efficient manner. Its improvement is discussed, compared to classical procedures (tests and information criteria), and illustrated in Monte Carlo experiments as well as real data examples from educational research. The results show an improvement of power of the modified tests of up to 0.3.
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来源期刊
CiteScore
4.40
自引率
4.20%
发文量
21
期刊介绍: Journal of Educational and Behavioral Statistics, sponsored jointly by the American Educational Research Association and the American Statistical Association, publishes articles that are original and provide methods that are useful to those studying problems and issues in educational or behavioral research. Typical papers introduce new methods of analysis. Critical reviews of current practice, tutorial presentations of less well known methods, and novel applications of already-known methods are also of interest. Papers discussing statistical techniques without specific educational or behavioral interest or focusing on substantive results without developing new statistical methods or models or making novel use of existing methods have lower priority. Simulation studies, either to demonstrate properties of an existing method or to compare several existing methods (without providing a new method), also have low priority. The Journal of Educational and Behavioral Statistics provides an outlet for papers that are original and provide methods that are useful to those studying problems and issues in educational or behavioral research. Typical papers introduce new methods of analysis, provide properties of these methods, and an example of use in education or behavioral research. Critical reviews of current practice, tutorial presentations of less well known methods, and novel applications of already-known methods are also sometimes accepted. Papers discussing statistical techniques without specific educational or behavioral interest or focusing on substantive results without developing new statistical methods or models or making novel use of existing methods have lower priority. Simulation studies, either to demonstrate properties of an existing method or to compare several existing methods (without providing a new method), also have low priority.
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