Optimal ensemble construction for multistudy prediction with applications to mortality estimation
Gabriel Loewinger,
Rolando Acosta Nunez,
Rahul Mazumder
et al.
Abstract:It is increasingly common to encounter prediction tasks in the biomedical sciences for which multiple datasets are available for model training. Common approaches such as pooling datasets before model fitting can produce poor out‐of‐study prediction performance when datasets are heterogeneous. Theoretical and applied work has shown multistudy ensembling to be a viable alternative that leverages the variability across datasets in a manner that promotes model generalizability. Multistudy ensembling uses a two‐st… Show more
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