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 in | Journal of statistical planning and inference Vol. 141; no. 4; pp. 1554 - 1566 |
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Main Authors | , , |
Format | Journal Article |
Language | English |
Published |
Kidlington
Elsevier B.V
01.04.2011
Elsevier |
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Online Access | Get full text |
ISSN | 0378-3758 1873-1171 |
DOI | 10.1016/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. |
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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 |
Author_xml | – sequence: 1 givenname: Kion surname: Kim fullname: Kim, Kion – sequence: 2 givenname: Damla surname: Şentürk fullname: Şentürk, Damla email: dsenturk@stat.psu.edu – sequence: 3 givenname: Runze surname: Li fullname: Li, Runze |
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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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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 |
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