Reproducibility in machine learning for health research: Still a ways to go

机器学习在健康研究中的可重复性:仍有很长的路要走

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Abstract

Machine learning for health must be reproducible to ensure reliable clinical use. We evaluated 511 scientific papers across several machine learning subfields and found that machine learning for health compared poorly to other areas regarding reproducibility metrics, such as dataset and code accessibility. We propose recommendations to address this problem.

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