Machine learning-based algorithm as an innovative approach for the differentiation between diabetes insipidus and

Uri Nahum1,2, Julie Refardt3,2, Irina Chifu4

  • 1Pediatric Pharmacology and Pharmacometrics Research Center, University Children's Hospital Basel, University of Basel, Basel, Switzerland.

Summary

Machine learning accurately differentiates central diabetes insipidus (cDI) from primary polydipsia (PP). This approach uses clinical and lab data, potentially avoiding lengthy diagnostic tests for cDI.

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