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Device-based measurement of physical activity in pre-schoolers: Comparison of machine learning and cut point methods.

Matthew N AhmadiStewart G Trost
Published in: PloS one (2022)
Under free living conditions, ML classification models for hip or wrist accelerometer data provide more accurate assessments of PA intensity in young children than CP methods. The results demonstrate the relative advantage of ML methods over threshold-based approaches and adds to a growing evidence base supporting the feasibility and accuracy of ML accelerometer data processing methods.
Keyphrases
  • physical activity
  • machine learning
  • big data
  • deep learning
  • body mass index
  • high resolution
  • artificial intelligence
  • high intensity
  • mass spectrometry
  • sleep quality