Statistical Inference for Cox Proportional Hazards Models with a Diverging Number of Covariates.
cancer epidemiology
debiased lasso
lung cancer
precision matrix
quadratic programming
sparsity
Journal
Scandinavian journal of statistics, theory and applications
ISSN: 0303-6898
Titre abrégé: Scand Stat Theory Appl
Pays: England
ID NLM: 0427163
Informations de publication
Date de publication:
Jun 2023
Jun 2023
Historique:
medline:
6
7
2023
pubmed:
6
7
2023
entrez:
6
7
2023
Statut:
ppublish
Résumé
For statistical inference on regression models with a diverging number of covariates, the existing literature typically makes sparsity assumptions on the inverse of the Fisher information matrix. Such assumptions, however, are often violated under Cox proportion hazards models, leading to biased estimates with under-coverage confidence intervals. We propose a modified debiased lasso method, which solves a series of quadratic programming problems to approximate the inverse information matrix without posing sparse matrix assumptions. We establish asymptotic results for the estimated regression coefficients when the dimension of covariates diverges with the sample size. As demonstrated by extensive simulations, our proposed method provides consistent estimates and confidence intervals with nominal coverage probabilities. The utility of the method is further demonstrated by assessing the effects of genetic markers on patients' overall survival with the Boston Lung Cancer Survival Cohort, a large-scale epidemiology study investigating mechanisms underlying the lung cancer.
Identifiants
pubmed: 37408772
doi: 10.1111/sjos.12595
pmc: PMC10321494
mid: NIHMS1793093
doi:
Types de publication
Journal Article
Langues
eng
Pagination
550-571Subventions
Organisme : NIA NIH HHS
ID : R01 AG056764
Pays : United States
Organisme : NCI NIH HHS
ID : R01 CA249096
Pays : United States
Organisme : NCI NIH HHS
ID : U01 CA209414
Pays : United States
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