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Three-dimensional body composition parameters using automatic volumetric segmentation allow accurate prediction of colorectal cancer outcomes.

Aiya BimurzayevaMin Jung KimJong-Sung AhnGa Yoon KuDokyoon MoonJinsun ChoiHyo Jun KimHan-Ki LimRumi ShinJi Won ParkSeung-Bum RyooKyu Joo ParkHan-Jae ChungJong-Min KimSang Joon ParkSeung-Yong Jeong
Published in: Journal of cachexia, sarcopenia and muscle (2023)
3D volumetric parameters generated using an automatic segmentation program showed higher correlations with the short- and long-term outcomes of patients with CRC than conventional 2D parameters.
Keyphrases
  • body composition
  • deep learning
  • convolutional neural network
  • resistance training
  • bone mineral density
  • machine learning
  • quality improvement
  • high resolution
  • type diabetes
  • postmenopausal women