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Improving suicide risk prediction via targeted data fusion: proof of concept using medical claims data.

Wanwan XuChang SuYan LiSteven RogersFei WangKun ChenRobert Aseltine
Published in: Journal of the American Medical Informatics Association : JAMIA (2021)
We proposed a general targeted fusion learning framework that can be used to build a tailored predictive model for any specific healthcare setting. Results from this study suggest we can improve the performance of predictive models in specific target settings without complete integration of the raw records from external data sources.
Keyphrases
  • healthcare
  • electronic health record
  • big data
  • cancer therapy
  • drinking water
  • health insurance
  • smoking cessation
  • drug delivery
  • social media