Deciding which random effects to retain is a central decision in mixed effect models. Recent recommendations advise a maximal structure whereby all theoretically relevant random effects are retained. Nonetheless, including many random effects often leads to nonpositive definiteness. A typical remedy is to simplify the random effect structure by removing random effects or associated covariances. However, this practice is known to bias estimates of remaining covariance parameters and compromise fixed effect inferences. Cholesky decompositions frequently are suggested as an alternative and are automatically implemented in some software. Instead of Cholesky decompositions, we describe factor analytic structures as an approach to avoid nonpositive definiteness. This approach is occasionally employed in biosciences like plant breeding, but, ironically, has not been established in behavioral sciences despite the close historical connection with factor analysis in these fields. We discuss how a factor analytic structure facilitates estimation and conduct simulations to compare convergence and performance to simplifying the random effects structure or Cholesky decomposition approaches. Results show a lower rate of nonpositive definiteness with the factor analytic structure than Cholesky decomposition and suggest that factor analytic covariance structure may be useful to combating nonpositive definiteness, especially in models with many random effects.
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Princeton Univ, Dept Operat Res & Financial Engn, Princeton, NJ 08544 USAPrinceton Univ, Dept Operat Res & Financial Engn, Princeton, NJ 08544 USA
Xue, Lingzhou
Ma, Shiqian
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Chinese Univ Hong Kong, Dept Syst Engn & Engn Management, Hong Kong, Hong Kong, Peoples R ChinaPrinceton Univ, Dept Operat Res & Financial Engn, Princeton, NJ 08544 USA
Ma, Shiqian
Zou, Hui
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Univ Minnesota, Sch Stat, Minneapolis, MN 55455 USAPrinceton Univ, Dept Operat Res & Financial Engn, Princeton, NJ 08544 USA
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NOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USANOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USA
Ver Hoef, Jay M.
Blagg, Eryn
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Iowa State Univ, Dept Stat, Ames, IA USANOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USA
Blagg, Eryn
Dumelle, Michael
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US EPA, Corvallis, OR USANOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USA
Dumelle, Michael
Dixon, Philip M.
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Iowa State Univ, Dept Stat, Ames, IA USANOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USA
Dixon, Philip M.
Zimmerman, Dale L.
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Univ Iowa, Dept Stat & Actuarial Sci, Iowa City, IA USANOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USA
Zimmerman, Dale L.
Conn, Paul B.
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NOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USANOAA, Marine Mammal Lab, NMFS Alaska Fisheries Sci Ctr, 7600 Sand Point Way NE, Seattle, WA 98115 USA
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Michigan State Univ, Dept Anim Sci, E Lansing, MI 48824 USAMichigan State Univ, Dept Anim Sci, E Lansing, MI 48824 USA
Bello, Nora M.
Steibel, Juan P.
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Michigan State Univ, Dept Anim Sci, E Lansing, MI 48824 USA
Michigan State Univ, Dept Fisheries & Wildlife, E Lansing, MI 48824 USAMichigan State Univ, Dept Anim Sci, E Lansing, MI 48824 USA
Steibel, Juan P.
Tempelman, Robert J.
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Michigan State Univ, Dept Anim Sci, E Lansing, MI 48824 USAMichigan State Univ, Dept Anim Sci, E Lansing, MI 48824 USA