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Hyperthermia Treatment Monitoring via Deep Learning Enhanced Microwave Imaging: A Numerical Assessment.

Álvaro Yago RuizMarta CavagnaroLorenzo Crocco
Published in: Cancers (2023)
The paper deals with the problem of monitoring temperature during hyperthermia treatments in the whole domain of interest. In particular, a physics-assisted deep learning computational framework is proposed to provide an objective assessment of the temperature in the target tissue to be treated and in the healthy one to be preserved, based on the measurements performed by a microwave imaging device. The proposed concept is assessed in-silico for the case of neck tumors achieving an accuracy above 90%. The paper results show the potential of the proposed approach and support further studies aimed at its experimental validation.
Keyphrases
  • deep learning
  • high resolution
  • artificial intelligence
  • convolutional neural network
  • machine learning
  • radiofrequency ablation
  • molecular docking
  • mass spectrometry
  • newly diagnosed
  • human health