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Deep learning-based automatic segmentation of bone graft material after maxillary sinus augmentation.

Baoxin TaoJiangchang XuJie GaoShamin HeShuanglin JiangFeng WangXiaojun ChenYiqun Wu
Published in: Clinical oral implants research (2023)
The proposed deep learning model yielded a more accurate and efficient performance of automatic segmentation of graft material after SA than that of the two surgeons. The proposed model could facilitate a powerful system for volumetric change evaluation, dental implant planning, and digital dentistry.
Keyphrases
  • deep learning
  • convolutional neural network
  • artificial intelligence
  • soft tissue
  • machine learning
  • quality improvement
  • high resolution
  • bone mineral density
  • body composition
  • bone loss
  • clinical evaluation