Outcome risk model development for heterogeneity of treatment effect analyses: a comparison of non-parametric machine learning methods and semi-parametric statistical methods

Location
Deutsche Nationalbibliothek Frankfurt am Main
Extent
1 Online-Ressource.
Language
Englisch

Bibliographic citation
Outcome risk model development for heterogeneity of treatment effect analyses: a comparison of non-parametric machine learning methods and semi-parametric statistical methods ; volume:24 ; number:1 ; day:23 ; month:7 ; year:2024 ; pages:1-9 ; date:12.2024
BMC medical research methodology ; 24, Heft 1 (23.7.2024), 1-9, 12.2024

Classification
Wirtschaft

Creator
Xu, Edward
Vanghelof, Joseph
Wang, Yiyang
Patel, Anisha
Furst, Jacob
Raicu, Daniela Stan
Neumann, Johannes Tobias
Wolfe, Rory
Gao, Caroline X.
McNeil, John J.
Shah, Raj C.
Tchoua, Roselyne
Contributor
SpringerLink (Online service)

DOI
10.1186/s12874-024-02265-8
URN
urn:nbn:de:101:1-2411132104274.617443389863
Rights
Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
Last update
15.08.2025, 7:21 AM CEST

Data provider

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Associated

  • Xu, Edward
  • Vanghelof, Joseph
  • Wang, Yiyang
  • Patel, Anisha
  • Furst, Jacob
  • Raicu, Daniela Stan
  • Neumann, Johannes Tobias
  • Wolfe, Rory
  • Gao, Caroline X.
  • McNeil, John J.
  • Shah, Raj C.
  • Tchoua, Roselyne
  • SpringerLink (Online service)

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