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Practical approaches in evaluating validation and biases of machine learning applied to mobile health studies.

Johannes AllgaierRuediger Pryss
Published in: Communications medicine (2024)
The way mHealth-based data are generated by EMA leads to questions of user and assessment level and appropriate validation of ML models. Our analysis shows that further research needs to follow to obtain robust ML models. In addition, simple heuristics can be considered as an alternative for ML. Domain experts should be consulted to find potentially hidden groups in the data.
Keyphrases
  • machine learning
  • big data
  • electronic health record
  • artificial intelligence