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The Impact of Inappropriate Modeling of Cross-Classified Data Structures on Random-Slope Models
2017
Journal of Modern Applied Statistical Methods
Previous studies that explored the impact of misspecification of cross-classified data structure as strictly hierarchical are limited to random intercept models. This study examined the effects of misspecification of a two-level, cross-classified, random effect model (CCREM) where both the level-1 intercept and slope were allowed to vary randomly. Results suggest that ignoring one of the crossed factors produced considerably underestimated standard errors for: 1) the regression coefficients of
doi:10.22237/jmasm/1509495900
fatcat:zss3qhikerhz5nvjgpbnafv2d4