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Detecting failure modes in image reconstructions with interval neural network uncertainty.

Luis OalaCosmas HeißJan MacdonaldMaximilian MärzGitta KutyniokWojciech Samek
Published in: International journal of computer assisted radiology and surgery (2021)
Interval Neural Networks offer a promising tool to expose weaknesses of deep image reconstruction models and ultimately make them more reliable. The fact that they can be applied post hoc to equip already trained deep neural network models with uncertainty scores makes them particularly interesting for deployment.
Keyphrases
  • neural network
  • deep learning
  • magnetic resonance
  • machine learning