FAIRsharing record for: Reproducibility standards for machine learning in the life sciences
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This FAIRsharing record describes: To make machine-learning analyses in the life sciences more computationally reproducible, we propose standards based on data, model and code publication, programming best practices and workflow automation. By meeting these standards, the community of researchers applying machine-learning methods in the life sciences can ensure that their analyses are worthy of trust.
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FAIRsharing创建时间:
2024-12-02



