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Activity Number:
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468
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Type:
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Contributed
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Date/Time:
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Wednesday, August 1, 2007 : 2:00 PM to 3:50 PM
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Sponsor:
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Biometrics Section
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| Abstract - #309080 |
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Title:
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Semiparametric Marginalized Model for Longitudinal Data with a Terminating Event
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Author(s):
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Mengling Liu*+ and Wenbin Lu
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Companies:
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New York University and North Carolina State University
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Address:
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650 First Ave, New York, NY, 10016,
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Keywords:
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Generalised estimating equations ; Generalised linear model ; Marginalised random-effects model ; Nonignorable dropout ; Transformation model
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Abstract:
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We investigate marginal inference of longitudinal data when there exists a dependent terminating event. The proposed marginalized model directly specifies marginal associations between longitudinal responses and covariates and incorporates the dependent terminating event, which marginally follows a semiparametric transformation model, through a flexible conditional mean model. We develop an estimation procedure based on a series of asymptotically unbiased estimating equations. The resulting regression estimators are shown to be consistent and asymptotically normal, with a sandwich-type variance-covariance matrix that can be consistently estimated by the usual plug-in rule. The proposed approach is evaluated by simulations under practical settings and illustrated by real data applications.
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