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A Wild Bootstrap Approach for the Aalen-Johansen Estimator

  • Tobias Bluhmki
  • , Claudia Schmoor
  • , D. Dobler
  • , Markus Pauly
  • , Jürgen Finke
  • , Martin Schumacher
  • , Jan Beyersmann

Research output: Contribution to JournalArticleAcademicpeer-review

Abstract

We suggest a wild bootstrap resampling technique for nonparametric inference on transition probabilities in a general time-inhomogeneous Markov multistate model. We first approximate the limiting distribution of the Nelson–Aalen estimator by repeatedly generating standard normal wild bootstrap variates, while the data is kept fixed. Next, a transformation using a functional delta method argument is applied. The approach is conceptually easier than direct resampling for the transition probabilities. It is used to investigate a non-standard time-to-event outcome, currently being alive without immunosuppressive treatment, with data from a recent study of prophylactic treatment in allogeneic transplanted leukemia patients. Due to non-monotonic outcome probabilities in time, neither standard survival nor competing risks techniques apply, which highlights the need for the present methodology. Finite sample performance of time-simultaneous confidence bands for the outcome probabilities is assessed in an extensive simulation study motivated by the clinical trial data. Example code is provided in the web-based Supplementary Materials.

Original languageEnglish
Pages (from-to)977-985
Number of pages9
JournalBiometrics
Volume74
Issue number3
DOIs
Publication statusPublished - 2018
Externally publishedYes

Funding

The authors thank the referees and the editors for helpful comments that have substantially improved the article. The research leading to these results was conducted as part of the COMBACTE −MAGNET consortium. This work was supported by the Innovative Medicines Initiative Joint Undertaking under grant agreement no 115523 | 115620 | 115737 resources of which are composed of financial contribution from the European Union Seventh Framework Programme (FP7/2007-2013) and EFPIA companies in kind contribution. Jan Beyersmann was partially supported by Grant BE 4500/1-1 of the German Research Foundation (DFG). Dennis Dobler and Markus Pauly were partially supported by the Strategic Research Fund (SFF) grant F-2012/375-12.

FundersFunder number
Strategic Research Fund
Deutsche Forschungsgemeinschaft
Seventh Framework Programme115737
Innovative Medicines Initiative115620, 115523
San Francisco FoundationF-2012/375-12
European Federation of Pharmaceutical Industries and AssociationsBE 4500/1-1

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 3 - Good Health and Well-being
      SDG 3 Good Health and Well-being

    Keywords

    • Blood cancer
    • Graft-versus-host-disease
    • Illness-death model
    • Resampling
    • Survival analysis
    • Time-dependent covariate

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