The Effect of Small Sample Size on Two-Level Model Estimates: A Review and Illustration

被引:511
作者
McNeish, Daniel M. [1 ]
Stapleton, Laura M. [1 ]
机构
[1] Univ Maryland, Dept Human Dev & Quantitat Methodol, Measurement Stat & Evaluat Program, 1230 Benjamin Bldg, College Pk, MD 20742 USA
关键词
Multilevel model; HLM; Small sample; Mixed model; Small number of clusters; RESTRICTED MAXIMUM-LIKELIHOOD; MULTILEVEL MODELS; RANDOMIZED-TRIALS; STATISTICAL POWER; MIXED-MODEL; ROBUSTNESS; SIMULATION; PARAMETERS; COUNTRIES; ISSUES;
D O I
10.1007/s10648-014-9287-x
中图分类号
G44 [教育心理学];
学科分类号
0402 ; 040202 ;
摘要
Multilevel models are an increasingly popular method to analyze data that originate from a clustered or hierarchical structure. To effectively utilize multilevel models, one must have an adequately large number of clusters; otherwise, some model parameters will be estimated with bias. The goals for this paper are to (1) raise awareness of the problems associated with a small number of clusters, (2) review previous studies on multilevel models with a small number of clusters, (3) to provide an illustrative simulation to demonstrate how a simple model becomes adversely affected by small numbers of clusters, (4) to provide researchers with remedies if they encounter clustered data with a small number of clusters, and (5) to outline methodological topics that have yet to be addressed in the literature.
引用
收藏
页码:295 / 314
页数:20
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