Partial-linear single-index transformation models with censored data
被引:0
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作者:
Lee, Myeonggyun
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机构:
NYU, Grossman Sch Med, Dept Populat Hlth, Div Biostat, New York, NY 10016 USANYU, Grossman Sch Med, Dept Populat Hlth, Div Biostat, New York, NY 10016 USA
Lee, Myeonggyun
[1
]
Troxel, Andrea B.
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机构:
NYU, Grossman Sch Med, Dept Populat Hlth, Div Biostat, New York, NY 10016 USANYU, Grossman Sch Med, Dept Populat Hlth, Div Biostat, New York, NY 10016 USA
Troxel, Andrea B.
[1
]
Liu, Mengling
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机构:
NYU, Grossman Sch Med, Dept Populat Hlth, Div Biostat, New York, NY 10016 USANYU, Grossman Sch Med, Dept Populat Hlth, Div Biostat, New York, NY 10016 USA
Liu, Mengling
[1
]
机构:
[1] NYU, Grossman Sch Med, Dept Populat Hlth, Div Biostat, New York, NY 10016 USA
B-spline smoothing;
EM algorithm;
Nonparametric maximum likelihood estimation;
Semiparametric model;
Time-to-event outcome;
POLYNOMIAL SPLINE ESTIMATION;
VARIABLE SELECTION;
REGRESSION-MODELS;
EFFICIENT ESTIMATION;
D O I:
10.1007/s10985-024-09624-z
中图分类号:
O1 [数学];
学科分类号:
0701 ;
070101 ;
摘要:
In studies with time-to-event outcomes, multiple, inter-correlated, and time-varying covariates are commonly observed. It is of great interest to model their joint effects by allowing a flexible functional form and to delineate their relative contributions to survival risk. A class of semiparametric transformation (ST) models offers flexible specifications of the intensity function and can be a general framework to accommodate nonlinear covariate effects. In this paper, we propose a partial-linear single-index (PLSI) transformation model that reduces the dimensionality of multiple covariates into a single index and provides interpretable estimates of the covariate effects. We develop an iterative algorithm using the regression spline technique to model the nonparametric single-index function for possibly nonlinear joint effects, followed by nonparametric maximum likelihood estimation. We also propose a nonparametric testing procedure to formally examine the linearity of covariate effects. We conduct Monte Carlo simulation studies to compare the PLSI transformation model with the standard ST model and apply it to NYU Langone Health de-identified electronic health record data on COVID-19 hospitalized patients' mortality and a Veteran's Administration lung cancer trial.
机构:
New York University Grossman School of Medicine,Division of Biostatistics, Department of Population HealthNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
Myeonggyun Lee
Andrea B. Troxel
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机构:
New York University Grossman School of Medicine,Division of Biostatistics, Department of Population HealthNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
Andrea B. Troxel
Sophia Kwon
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h-index: 0
机构:
New York University Grossman School of Medicine,Division of Pulmonary, Critical Care and Sleep Medicine, Department of MedicineNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
Sophia Kwon
George Crowley
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h-index: 0
机构:
New York University Grossman School of Medicine,Division of Pulmonary, Critical Care and Sleep Medicine, Department of MedicineNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
George Crowley
Theresa Schwartz
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h-index: 0
机构:
Fire Department of New York,Bureau of Health Services and Office of Medical AffairsNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
Theresa Schwartz
Rachel Zeig-Owens
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h-index: 0
机构:
Montefiore Medical Center and Albert Einstein College of Medicine,Pulmonary Medicine Division, Department of MedicineNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
Rachel Zeig-Owens
David J. Prezant
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机构:
Fire Department of New York,Bureau of Health Services and Office of Medical AffairsNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
David J. Prezant
Anna Nolan
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h-index: 0
机构:
Albert Einstein College of Medicine,Department of Epidemiology and Population HealthNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health
Anna Nolan
Mengling Liu
论文数: 0引用数: 0
h-index: 0
机构:
Montefiore Medical Center and Albert Einstein College of Medicine,Pulmonary Medicine Division, Department of MedicineNew York University Grossman School of Medicine,Division of Biostatistics, Department of Population Health