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Optimal radiological gallbladder lesion characterization by combining visual assessment with CT-based radiomics.

Yunchao YinDerya YakarJules J G SlangenFrederik J H HoogwaterThomas C KweeRobbert J de Haas
Published in: European radiology (2022)
Radiomic-based machine learning algorithms are able to differentiate benign gallbladder disease from gallbladder cancer. Combining machine learning algorithms with a radiological visual interpretation of gallbladder lesions at CT increases the specificity, compared to visual interpretation alone, from 73 to 93% and the accuracy from 85 to 92%. Combined use of machine learning algorithms and radiological visual assessment seems the most optimal strategy for GBC and benign gallbladder disease differentiation.
Keyphrases
  • machine learning
  • artificial intelligence
  • big data
  • contrast enhanced
  • deep learning
  • computed tomography
  • magnetic resonance imaging
  • positron emission tomography
  • lymph node metastasis
  • clinical evaluation