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An improved iterative neural network for high-quality image-domain material decomposition in dual-energy CT.

Zhipeng LiYong LongIl Yong Chun
Published in: Medical physics (2022)
The proposed INN architecture achieves high-quality material decompositions using iteration-wise refiners that exploit cross-material properties between different material images with distinct encoding-decoding filters. Our tight-frame study implies that cross-material CNN refiners in the proposed INN architecture are useful for noise suppression and signal restoration.
Keyphrases
  • dual energy
  • image quality
  • computed tomography
  • neural network
  • deep learning
  • blood brain barrier
  • machine learning