在线项目监控的序列广义似然比检验。

IF 2.9 2区 心理学 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Psychometrika Pub Date : 2023-06-01 Epub Date: 2022-06-04 DOI:10.1007/s11336-022-09871-9
Hyeon-Ah Kang
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引用次数: 0

摘要

本研究介绍了监测项目随时间变化的功能的统计程序。我们提出的广义似然比检验可监测多个项目参数,并利用各种抽样技术进行连续或间歇监测。这些程序会检查项目参数在不同时间段的稳定性,一旦发现参数发生重大变化,就会立即通知相关人员。监测程序的性能通过模拟和实际评估数据进行了验证。经验评估表明,建议的程序在识别参数漂移方面表现出色。它们显示出令人满意的检测能力,并及时发出信号,同时将错误率控制在合理的低水平。与现有方法相比,这些程序也表现出更优越的性能。实证研究结果表明,多变量参数监测可以为保持项目质量提供有效而强大的控制工具。这些程序允许对多个项目参数进行联合监测,并利用强大的似然比检验获得足够的功率。根据实证实验的结果,我们提出了一些进行在线项目监控的实用策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sequential Generalized Likelihood Ratio Tests for Online Item Monitoring.

Sequential Generalized Likelihood Ratio Tests for Online Item Monitoring.

The study presents statistical procedures that monitor functioning of items over time. We propose generalized likelihood ratio tests that surveil multiple item parameters and implement with various sampling techniques to perform continuous or intermittent monitoring. The procedures examine stability of item parameters across time and inform compromise as soon as they identify significant parameter shift. The performance of the monitoring procedures was validated using simulated and real-assessment data. The empirical evaluation suggests that the proposed procedures perform adequately well in identifying the parameter drift. They showed satisfactory detection power and gave timely signals while regulating error rates reasonably low. The procedures also showed superior performance when compared with the existent methods. The empirical findings suggest that multivariate parametric monitoring can provide an efficient and powerful control tool for maintaining the quality of items. The procedures allow joint monitoring of multiple item parameters and achieve sufficient power using powerful likelihood-ratio tests. Based on the findings from the empirical experimentation, we suggest some practical strategies for performing online item monitoring.

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来源期刊
Psychometrika
Psychometrika 数学-数学跨学科应用
CiteScore
4.40
自引率
10.00%
发文量
72
审稿时长
>12 weeks
期刊介绍: The journal Psychometrika is devoted to the advancement of theory and methodology for behavioral data in psychology, education and the social and behavioral sciences generally. Its coverage is offered in two sections: Theory and Methods (T& M), and Application Reviews and Case Studies (ARCS). T&M articles present original research and reviews on the development of quantitative models, statistical methods, and mathematical techniques for evaluating data from psychology, the social and behavioral sciences and related fields. Application Reviews can be integrative, drawing together disparate methodologies for applications, or comparative and evaluative, discussing advantages and disadvantages of one or more methodologies in applications. Case Studies highlight methodology that deepens understanding of substantive phenomena through more informative data analysis, or more elegant data description.
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