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A machine learning-based model for a dose point kernel calculation.

Ignacio ScarinciMauro ValentePedro Pérez
Published in: EJNMMI physics (2023)
An ML model was developed to assess dosimetry calculations in nuclear medicine. The implemented approach has shown the capacity to accurately predict the sDPK for monoenergetic beta sources in a wide range of energy in different materials. The ML model to calculate the sDPK for beta-emitting radionuclides allowed to obtain VDK useful to achieve reliable patient-specific absorbed dose distributions required short computation times.
Keyphrases
  • machine learning
  • monte carlo
  • magnetic resonance imaging
  • artificial intelligence
  • deep learning
  • density functional theory
  • big data