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Patient Similarity in Prediction Models Based on Health Data: A Scoping Review.

Anis SharafoddiniJoel A DubinJoon Lee
Published in: JMIR medical informatics (2017)
Interest in patient similarity-based predictive modeling for diagnosis and prognosis has been growing. In addition to raw/coded health data, wavelet transform and term frequency-inverse document frequency methods were employed to extract predictors. Selecting predictors with potential to highlight special cases and defining new patient similarity metrics were among the gaps identified in the existing literature that provide starting points for future work. Patient status prediction models based on patient similarity and health data offer exciting potential for personalizing and ultimately improving health care, leading to better patient outcomes.
Keyphrases
  • healthcare
  • case report
  • public health
  • electronic health record
  • big data
  • machine learning
  • deep learning
  • health promotion
  • social media
  • artificial intelligence