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Machine learning methods for functional recovery prediction and prognosis in post-stroke rehabilitation: a systematic review.

Silvia CampagniniChiara ArientiMichele PatriniPiergiuseppe LiuzziAndrea ManniniMaria Chiara Carrozza
Published in: Journal of neuroengineering and rehabilitation (2022)
We identified several methodological limitations: small sample sizes, a limited number of external validation approaches, and high heterogeneity among input and output variables. Although these elements prevented a quantitative comparison across models, we defined the most frequently used models given a specific outcome, providing useful indications for the application of more complex machine learning algorithms in rehabilitation medicine.
Keyphrases
  • machine learning
  • artificial intelligence
  • big data
  • deep learning
  • single cell
  • high resolution
  • mass spectrometry
  • clinical evaluation