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G-computation estimation for causal inference with complex longitudinal data

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Publication:1010519
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DOI10.1016/j.csda.2006.06.016zbMath1157.62378OpenAlexW1982085767MaRDI QIDQ1010519

Romain Neugebauer, Mark J. Van der Laan

Publication date: 6 April 2009

Published in: Computational Statistics and Data Analysis (Search for Journal in Brave)

Full work available at URL: https://doi.org/10.1016/j.csda.2006.06.016

zbMATH Keywords

algorithmlongitudinal datamarginal structural modelG-computation estimation


Mathematics Subject Classification ID

Nonparametric estimation (62G05)


Related Items

Causal inference in case of near‐violation of positivity: comparison of methods



Cites Work

  • Nonparametric causal effects based on marginal structural models
  • Causal effects in longitudinal studies: Definition and maximum likelihood estimation
  • Bayesian inference for causal effects: The role of randomization
  • On the application of probability theory to agricultural experiments. Essay on principles. Section 9. Translated from the Polish and edited by D. M. Dąbrowska and T. P. Speed
  • Causal inference for complex longitudinal data: the continuous case.
  • Unified methods for censored longitudinal data and causality
  • A new approach to causal inference in mortality studies with a sustained exposure period—application to control of the healthy worker survivor effect
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