Causal considerations can determine the utility of machine learning assisted GWAS
Sumit Mukherjee,
Zachary McCaw,
David Amar
et al.
Abstract:Machine Learning (ML) is increasingly employed to generate phenotypes for genetic discovery, either by imputing existing phenotypes into larger cohorts or by creating novel phenotypes. While these ML-derived phenotypes can significantly increase sample size, and thereby empower genetic discovery, they can also inflate the false discovery rate (FDR). Recent research has focused on developing estimators that leverage both true and machine-learned phenotypes to properly control the type-I error. Our work compleme… Show more
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