Recent history functional linear models for sparse longitudinal data

We consider the recent history functional linear models, relating a longitudinal response to a longitudinal predictor where the predictor process only in a sliding window into the recent past has an effect on the response value at the current time. We propose an estimation procedure for recent histo...

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Published inJournal of statistical planning and inference Vol. 141; no. 4; pp. 1554 - 1566
Main Authors Kim, Kion, Şentürk, Damla, Li, Runze
Format Journal Article
LanguageEnglish
Published Kidlington Elsevier B.V 01.04.2011
Elsevier
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ISSN0378-3758
1873-1171
DOI10.1016/j.jspi.2010.11.003

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Abstract We consider the recent history functional linear models, relating a longitudinal response to a longitudinal predictor where the predictor process only in a sliding window into the recent past has an effect on the response value at the current time. We propose an estimation procedure for recent history functional linear models that is geared towards sparse longitudinal data, where the observation times across subjects are irregular and the total number of measurements per subject is small. The proposed estimation procedure builds upon recent developments in literature for estimation of functional linear models with sparse data and utilizes connections between the recent history functional linear models and varying coefficient models. We establish uniform consistency of the proposed estimators, propose prediction of the response trajectories and derive their asymptotic distribution leading to asymptotic point-wise confidence bands. We include a real data application and simulation studies to demonstrate the efficacy of the proposed methodology.
AbstractList We consider the recent history functional linear models, relating a longitudinal response to a longitudinal predictor where the predictor process only in a sliding window into the recent past has an effect on the response value at the current time. We propose an estimation procedure for recent history functional linear models that is geared towards sparse longitudinal data, where the observation times across subjects are irregular and total number of measurements per subject is small. The proposed estimation procedure builds upon recent developments in literature for estimation of functional linear models with sparse data and utilizes connections between the recent history functional linear models and varying coefficient models. We establish uniform consistency of the proposed estimators, propose prediction of the response trajectories and derive their asymptotic distribution leading to asymptotic point-wise confidence bands. We include a real data application and simulation studies to demonstrate the efficacy of the proposed methodology.
We consider the recent history functional linear models, relating a longitudinal response to a longitudinal predictor where the predictor process only in a sliding window into the recent past has an effect on the response value at the current time. We propose an estimation procedure for recent history functional linear models that is geared towards sparse longitudinal data, where the observation times across subjects are irregular and total number of measurements per subject is small. The proposed estimation procedure builds upon recent developments in literature for estimation of functional linear models with sparse data and utilizes connections between the recent history functional linear models and varying coefficient models. We establish uniform consistency of the proposed estimators, propose prediction of the response trajectories and derive their asymptotic distribution leading to asymptotic point-wise confidence bands. We include a real data application and simulation studies to demonstrate the efficacy of the proposed methodology.We consider the recent history functional linear models, relating a longitudinal response to a longitudinal predictor where the predictor process only in a sliding window into the recent past has an effect on the response value at the current time. We propose an estimation procedure for recent history functional linear models that is geared towards sparse longitudinal data, where the observation times across subjects are irregular and total number of measurements per subject is small. The proposed estimation procedure builds upon recent developments in literature for estimation of functional linear models with sparse data and utilizes connections between the recent history functional linear models and varying coefficient models. We establish uniform consistency of the proposed estimators, propose prediction of the response trajectories and derive their asymptotic distribution leading to asymptotic point-wise confidence bands. We include a real data application and simulation studies to demonstrate the efficacy of the proposed methodology.
We consider the recent history functional linear models, relating a longitudinal response to a longitudinal predictor where the predictor process only in a sliding window into the recent past has an effect on the response value at the current time. We propose an estimation procedure for recent history functional linear models that is geared towards sparse longitudinal data, where the observation times across subjects are irregular and the total number of measurements per subject is small. The proposed estimation procedure builds upon recent developments in literature for estimation of functional linear models with sparse data and utilizes connections between the recent history functional linear models and varying coefficient models. We establish uniform consistency of the proposed estimators, propose prediction of the response trajectories and derive their asymptotic distribution leading to asymptotic point-wise confidence bands. We include a real data application and simulation studies to demonstrate the efficacy of the proposed methodology.
Author Şentürk, Damla
Li, Runze
Kim, Kion
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Issue 4
Keywords Basis expansion
Sparse design
Local least squares
Smoothing
Functional data analysis
B-splines
B spline
Statistical distribution
Prediction theory
Response model
Stochastic process
Statistical simulation
Linear model
Consistent estimator
Least squares method
Confidence band
Linear estimation
Mathematical expansion
Expansion
Linear functional
Data analysis
Smoothing methods
Prediction
Functional analysis
Statistical estimation
Statistical decision
Statistical method
Response time
Experimental design
Observation data
Filtering theory
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Snippet We consider the recent history functional linear models, relating a longitudinal response to a longitudinal predictor where the predictor process only in a...
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SubjectTerms B-splines
Basis expansion
Exact sciences and technology
Functional data analysis
General topics
Global analysis, analysis on manifolds
Linear inference, regression
Local least squares
Mathematics
Probability and statistics
Probability theory and stochastic processes
Sciences and techniques of general use
Smoothing
Sparse design
Statistics
Stochastic processes
Topology. Manifolds and cell complexes. Global analysis and analysis on manifolds
Title Recent history functional linear models for sparse longitudinal data
URI https://dx.doi.org/10.1016/j.jspi.2010.11.003
https://www.ncbi.nlm.nih.gov/pubmed/21691421
https://www.proquest.com/docview/1835550596
https://pubmed.ncbi.nlm.nih.gov/PMC3117473
Volume 141
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