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mikropml: User-Friendly R Package for Supervised Machine Learning Pipelines.

Begüm D TopçuoğluZena LappKelly L SovacoolEvan SnitkinJenna WiensPatrick D Schloss
Published in: Journal of open source software (2021)
Machine learning (ML) for classification and prediction based on a set of features is used to make decisions in healthcare, economics, criminal justice and more. However, implementing an ML pipeline including preprocessing, model selection, and evaluation can be time-consuming, confusing, and difficult. Here, we present mikropml (prononced "meek-ROPE em el"), an easy-to-use R package that implements ML pipelines using regression, support vector machines, decision trees, random forest, or gradient-boosted trees. The package is available on GitHub, CRAN, and conda.
Keyphrases
  • machine learning
  • healthcare
  • artificial intelligence
  • big data
  • deep learning
  • climate change
  • quality improvement
  • mental health
  • health information