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Physics-driven Deep Learning for PET/MRI (2206.06788v1)

Published 11 Jun 2022 in eess.IV, cs.LG, eess.SP, and physics.med-ph

Abstract: In this paper, we review physics- and data-driven reconstruction techniques for simultaneous positron emission tomography (PET) / magnetic resonance imaging (MRI) systems, which have significant advantages for clinical imaging of cancer, neurological disorders, and heart disease. These reconstruction approaches utilize priors, either structural or statistical, together with a physics-based description of the PET system response. However, due to the nested representation of the forward problem, direct PET/MRI reconstruction is a nonlinear problem. We elucidate how a multi-faceted approach accommodates hybrid data- and physics-driven machine learning for reconstruction of 3D PET/MRI, summarizing important deep learning developments made in the last 5 years to address attenuation correction, scattering, low photon counts, and data consistency. We also describe how applications of these multi-modality approaches extend beyond PET/MRI to improving accuracy in radiation therapy planning. We conclude by discussing opportunities for extending the current state-of-the-art following the latest trends in physics- and deep learning-based computational imaging and next-generation detector hardware.

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Authors (6)
  1. Abhejit Rajagopal (7 papers)
  2. Andrew P. Leynes (5 papers)
  3. Nicholas Dwork (12 papers)
  4. Jessica E. Scholey (6 papers)
  5. Thomas A. Hope (5 papers)
  6. Peder E. Z. Larson (25 papers)
Citations (3)

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