Abstract:Background: The overall genetic profile for noise-induced hearing loss (NIHL) remains to be explored. Here we used a novel machine learning (ML) strategy to evaluate individual susceptibility to NIHL and identify the underlying genetic variants based on a subsample of participants with extreme phenotype. Methods: Demographic and audiometric data of 5,539 shipbuilding workers from large cross-sectional surveys were included in four ML algorithms to predict the hearing level. The area under the curve (AUC) and p… Show more
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