Outcome risk model development for heterogeneity of treatment effect analyses: a comparison of non-parametric machine learning methods and semi-parametric statistical methods
- Location
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Deutsche Nationalbibliothek Frankfurt am Main
- Extent
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1 Online-Ressource.
- Language
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Englisch
- Bibliographic citation
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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
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Wirtschaft
- Creator
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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
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SpringerLink (Online service)
- DOI
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10.1186/s12874-024-02265-8
- URN
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urn:nbn:de:101:1-2411132104274.617443389863
- Rights
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Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
- Last update
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15.08.2025, 7:21 AM CEST
Data provider
Deutsche Nationalbibliothek. If you have any questions about the object, please contact the data provider.
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)