A penalized integrative deep neural network for variable selection among multiple omics datasets
Yang Li,
Xiaonan Ren,
Haochen Yu
et al.
Abstract:Deep learning has been increasingly popular in omics data analysis. Recent works incorporating variable selection into deep learning have greatly enhanced the model’s interpretability. However, because deep learning desires a large sample size, the existing methods may result in uncertain findings when the dataset has a small sample size, commonly seen in omics data analysis. With the explosion and availability of omics data from multiple populations/studies, the existing methods naively pool them into one dat… Show more
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