Literature DB >> 20396628

Reduced Rank Mixed Effects Models for Spatially Correlated Hierarchical Functional Data.

Lan Zhou1, Jianhua Z Huang, Josue G Martinez, Arnab Maity, Veerabhadran Baladandayuthapani, Raymond J Carroll.   

Abstract

Hierarchical functional data are widely seen in complex studies where sub-units are nested within units, which in turn are nested within treatment groups. We propose a general framework of functional mixed effects model for such data: within unit and within sub-unit variations are modeled through two separate sets of principal components; the sub-unit level functions are allowed to be correlated. Penalized splines are used to model both the mean functions and the principal components functions, where roughness penalties are used to regularize the spline fit. An EM algorithm is developed to fit the model, while the specific covariance structure of the model is utilized for computational efficiency to avoid storage and inversion of large matrices. Our dimension reduction with principal components provides an effective solution to the difficult tasks of modeling the covariance kernel of a random function and modeling the correlation between functions. The proposed methodology is illustrated using simulations and an empirical data set from a colon carcinogenesis study. Supplemental materials are available online.

Entities:  

Year:  2010        PMID: 20396628      PMCID: PMC2853971          DOI: 10.1198/jasa.2010.tm08737

Source DB:  PubMed          Journal:  J Am Stat Assoc        ISSN: 0162-1459            Impact factor:   5.033


  8 in total

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3.  Bayesian hierarchical spatially correlated functional data analysis with application to colon carcinogenesis.

Authors:  Veerabhadran Baladandayuthapani; Bani K Mallick; Mee Young Hong; Joanne R Lupton; Nancy D Turner; Raymond J Carroll
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4.  Joint modelling of paired sparse functional data using principal components.

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  8 in total
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