时间动态、群变增值模型。

IF 2.9 2区 心理学 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Psychometrika Pub Date : 2024-09-01 Epub Date: 2024-06-22 DOI:10.1007/s11336-024-09979-0
Garritt L Page, Ernesto San Martín, David Torres Irribarra, Sébastien Van Bellegem
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引用次数: 0

摘要

我们的目标是及时动态地估算学校的附加值。我们这样做的主要动机是确定学校效益的持续性,同时考虑到学校绩效从一年到下一年通常存在的时间依赖性。我们提出了两种将时间依赖性纳入增值模型的方法。第一种方法是用自回归过程来模拟增值模型中常见的随机学校效应。在第二种方法中,我们根据上一届学生的表现来模拟下一届学生的表现,从而在增值估算中加入依赖性。通过识别分析,我们明确了相应增值指标的含义:基于这些含义,我们证明了每种模型都有助于监测学校持续性的特定方面。此外,我们还仔细详述了如何估算随时间变化的增值。我们通过模拟证明,如果忽略存在的时间依赖性,就会降低增值估算的效率,而纳入时间依赖性则会提高估算效率(即使时间依赖性很弱)。最后,我们以智利全国数学标准化测试中的两批学生为例,对这一方法进行了说明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Temporally Dynamic, Cohort-Varying Value-Added Models.

Temporally Dynamic, Cohort-Varying Value-Added Models.

We aim to estimate school value-added dynamically in time. Our principal motivation for doing so is to establish school effectiveness persistence while taking into account the temporal dependence that typically exists in school performance from one year to the next. We propose two methods of incorporating temporal dependence in value-added models. In the first we model the random school effects that are commonly present in value-added models with an auto-regressive process. In the second approach, we incorporate dependence in value-added estimators by modeling the performance of one cohort based on the previous cohort's performance. An identification analysis allows us to make explicit the meaning of the corresponding value-added indicators: based on these meanings, we show that each model is useful for monitoring specific aspects of school persistence. Furthermore, we carefully detail how value-added can be estimated over time. We show through simulations that ignoring temporal dependence when it exists results in diminished efficiency in value-added estimation while incorporating it results in improved estimation (even when temporal dependence is weak). Finally, we illustrate the methodology by considering two cohorts from Chile's national standardized test in mathematics.

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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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