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Dive into the research topics where Guillaume Chauvet is active.

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Featured researches published by Guillaume Chauvet.


Biometrical Journal | 2018

Closed-form variance estimator for weighted propensity score estimators with survival outcome

David Hajage; Guillaume Chauvet; Lisa Belin; Alexandre Lafourcade; Florence Tubach; Yann De Rycke

Propensity score (PS) methods are widely used in observational studies for evaluating marginal treatment effects. PS-weighting is a popular PS-based method that allows for estimating both the average treatment effect on the overall population (ATE) and the average treatment effect on the treated population (ATT). Previous research has shown that the variance of the treatment effect is accurately estimated only if the variance estimator takes into account the fact that the propensity score is itself estimated from the available data in a first step of the analysis. In 2016, Austin showed that the bootstrap-based variance estimator was the only existing estimator resulting in approximately correct estimates of standard errors when evaluating a survival outcome and a Cox model was used to estimate a marginal hazard ratio (HR). This author stressed the need to develop a closed-form variance estimator of the marginal HR accounting for the estimation of the PS. In the present research, we developed such variance estimators both for the ATE and ATT. We evaluated their performance with an extensive simulation study and compared them to bootstrap-based variance estimators and to naive variance estimators that do not account for the estimation step. We found that the performance of the proposed variance estimators was similar to that of the bootstrap-based estimators. The proposed variance estimators provide an alternative to the bootstrap estimator, particularly interesting in situations in which time-consumption and/or reproducibility are an important issue. An implementation has been developed for the R software and is freely available (package hrIPW).


Biometrika | 2011

On balanced random imputation in surveys

Guillaume Chauvet; Jean-Claude Deville; David Haziza


Journal of Statistical Planning and Inference | 2011

Optimal Inclusion Probabilities for Balanced Sampling

Guillaume Chauvet; Daniel Bonnery; Jean-Claude Deville


Journal of Statistical Planning and Inference | 2011

Improved variance estimation for balanced samples drawn via the cube method

F. Jay Breidt; Guillaume Chauvet


Canadian Journal of Statistics-revue Canadienne De Statistique | 2012

Fully efficient estimation of coefficients of correlation in the presence of imputed survey data

Guillaume Chauvet; David Haziza


Australian & New Zealand Journal of Statistics | 2010

SAMPLING AND ESTIMATION IN THE PRESENCE OF CUT‐OFF SAMPLING

David Haziza; Guillaume Chauvet; Jean-Claude Deville


Canadian Journal of Statistics-revue Canadienne De Statistique | 2014

Doubly robust imputation procedures for finite population means in the presence of a large number of zeros

David Haziza; Christian Olivier Nambeu; Guillaume Chauvet


arXiv: Methodology | 2018

Preserving the distribution function in surveys in case of imputation for zero inflated data

Guillaume Chauvet; Brigitte Gelein


Statistics in Medicine | 2017

Estimation of conditional and marginal odds ratios using the prognostic score

David Hajage; Yann De Rycke; Guillaume Chauvet; Florence Tubach


Scandinavian Journal of Statistics | 2016

Doubly robust inference for the distribution function in the presence of missing survey data

Hélène Boistard; Guillaume Chauvet; David Haziza

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David Haziza

Université de Montréal

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Daniel Bonnery

École Normale Supérieure

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Yann De Rycke

French Institute of Health and Medical Research

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