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The Impact of Information Relevancy and Interactivity on Intensivists' Trust in a Machine Learning-Based Bacteremia Prediction System: Simulation Study.

Omer KatzburgMichael RoimiAmit FrenkelRoy IlanYuval Bitan
Published in: JMIR human factors (2024)
Information relevancy and interactivity features should be considered in the design of the user interface of ML-based clinical decision support systems to enhance intensivists' trust. This study sheds light on the connection between information relevancy, interactivity, and trust in human-ML interaction, specifically in the intensive care unit environment.
Keyphrases
  • health information
  • clinical decision support
  • machine learning
  • social media
  • endothelial cells
  • electronic health record
  • healthcare
  • artificial intelligence
  • deep learning
  • induced pluripotent stem cells
  • big data