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A predictive Bayesian network that risk stratifies patients undergoing Barrett's surveillance for personalized risk of developing malignancy.

Alison BradleySharukh SamiHwei Jene NgAnne MacleodManju PrasanthMuneeb ZafarNiroshini HemadasaGregg NeagleIsobelle RosindellJeyakumar Apollos
Published in: PloS one (2020)
This Bayesian network is unique in the way it utilizes published data to translate the existing empirical evidence surrounding the risk of developing adenocarcinoma in Barrett's esophagus to make personalized risk predictions. Further work is required but this tool marks a vital step towards delivering a more personalized approach to Barrett's surveillance.
Keyphrases
  • patients undergoing
  • public health
  • squamous cell carcinoma
  • electronic health record
  • systematic review
  • randomized controlled trial
  • machine learning
  • deep learning
  • rectal cancer