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A Machine Learning Method for Differentiation Crohn's Disease and Intestinal Tuberculosis.

Yufeng ShuZhe ChenJingshu ChiSha ChengHuan LiPeng LiuJu Luo
Published in: Journal of multidisciplinary healthcare (2024)
We developed an ML model based on XGBoost. The ML model could provide effective and efficient differential diagnoses of ITB and CD with diagnostic bases. The ML model performs well in real-world clinical practice, and the agreement between the ML model and MDT is strong.
Keyphrases
  • machine learning
  • mycobacterium tuberculosis
  • hepatitis c virus
  • hiv aids
  • deep learning
  • human immunodeficiency virus
  • adverse drug