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Efficient contour-based annotation by iterative deep learning for organ segmentation from volumetric medical images.

Mingrui ZhuangZhonghua ChenHongkai WangHong TangJiang HeBobo QinYuxin YangXiaoxian JinMengzhu YuBaitao JinTaijing LiLauri Kettunen
Published in: International journal of computer assisted radiology and surgery (2022)
Taking advantage of the boundary shape prior and the contour representation, our method is more efficient, more accurate and less prone to inter-operator variability than the SOTA AID methods for organ segmentation from volumetric medical images. The good shape learning ability and flexible boundary adjustment function make it suitable for fast annotation of organ structures with regular shape.
Keyphrases
  • deep learning
  • convolutional neural network
  • artificial intelligence
  • healthcare
  • machine learning
  • high resolution
  • rna seq
  • magnetic resonance imaging
  • magnetic resonance
  • single cell
  • computed tomography