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Educational Applications of Hierarchical Linear Models: A Review

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  • Stephen W. Raudenbush

Abstract

The search for appropriate statistical methods for hierarchical, multilevel data has been a prominent theme in educational statistics over the past 15 years. As a result of this search, an important class of models, termed hierarchical linear models by this review, has emerged. In the paradigmatic application of such models, observations within each group (e.g., classroom or school) vary as a function of group-level or “microparameters.†However, these microparameters vary randomly across the population of groups as a function of “macroparameters.†Research interest has focused on estimation of both micro- and macroparameters. This paper reviews estimation theory and application of such models. Also, the logic of these methods is extended beyond the paradigmatic case to include research domains as diverse as panel studies, meta-analysis, and classical test theory. Microparameters to be estimated may be as diverse as means, proportions, variances, linear regression coefficients, and logit linear regression coefficients. Estimation theory is reviewed from Bayes and empirical Bayes viewpoints and the examples considered involve data sets with two levels of hierarchy.

Suggested Citation

  • Stephen W. Raudenbush, 1988. "Educational Applications of Hierarchical Linear Models: A Review," Journal of Educational and Behavioral Statistics, , vol. 13(2), pages 85-116, June.
  • Handle: RePEc:sae:jedbes:v:13:y:1988:i:2:p:85-116
    DOI: 10.3102/10769986013002085
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    Cited by:

    1. Boudreaux, Christopher J. & Nikolaev, Boris N. & Klein, Peter, 2019. "Socio-cognitive traits and entrepreneurship: The moderating role of economic institutions," Journal of Business Venturing, Elsevier, vol. 34(1), pages 178-196.
    2. Gómez Silva Carlos Alberto, 2016. "Clasificación de colegios según las pruebas Saber 11 del ICFES: un análisis usando modelos marginales (MM)," Revista Sociedad y Economía, Universidad del Valle, CIDSE, vol. 0(30), pages 11-404, January.
    3. Christopher J. Boudreaux & Boris Nikolaev, 2019. "Capital is not enough: opportunity entrepreneurship and formal institutions," Small Business Economics, Springer, vol. 53(3), pages 709-738, October.
    4. Masci, Chiara & Johnes, Geraint & Agasisti, Tommaso, 2018. "Student and school performance across countries: A machine learning approach," European Journal of Operational Research, Elsevier, vol. 269(3), pages 1072-1085.
    5. Cory Koedel & Rachana Bhatt, 2011. "Large-Scale Evaluations of Curricular Effectiveness: The Case of Elementary Mathematics in Indiana," Working Papers 1122, Department of Economics, University of Missouri, revised 31 Jan 2012.
    6. Jaume Arnau & Roser Bono & Rebecca Bendayan & Maria Blanca, 2016. "Analyzing longitudinal data and use of the generalized linear model in health and social sciences," Quality & Quantity: International Journal of Methodology, Springer, vol. 50(2), pages 693-707, March.
    7. Gustavo Britto, 2008. "Industrial productivity growth and localisation in Brazil: a firm level analysis," Anais do XXXVI Encontro Nacional de Economia [Proceedings of the 36th Brazilian Economics Meeting] 200807211548190, ANPEC - Associação Nacional dos Centros de Pós-Graduação em Economia [Brazilian Association of Graduate Programs in Economics].
    8. Gao, Yang & Zhang, Xiao & Wu, Lei & Yin, Shijiu & Lu, Jiao, 2017. "Resource basis, ecosystem and growth of grain family farm in China: Based on rough set theory and hierarchical linear model," Agricultural Systems, Elsevier, vol. 154(C), pages 157-167.
    9. Weiqi Dai & Mingqing Liao, 2019. "Entrepreneurial attention to deregulations and reinvestments by private firms: Evidence from China," Asia Pacific Journal of Management, Springer, vol. 36(4), pages 1221-1250, December.
    10. Christopher J. Boudreaux & Boris Nikolaev, 2018. "Shattering the glass ceiling? How the institutional context mitigates the gender gap in entrepreneurship," Papers 1812.03771, arXiv.org.

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