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Machine learning to predict pediatric choledocholithiasis: A Western Pediatric Surgery Research Consortium retrospective study

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This multicenter study developed a machine learning model using nine clinical and laboratory features to predict choledocholithiasis in pediatric cholecystectomy patients with 93.5% accuracy. The Extra-Trees algorithm identified key predictors including CBD diameter, liver enzymes, and bilirubin levels in 1,597 patients across 10 institutions.

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How to cite: GlobalCastMD. Machine learning to predict pediatric choledocholithiasis: A Western Pediatric Surgery Research Consortium retrospective study. GlobalCastMD Medical Library. 2023-12-31. https://library.globalcastmd.com/article/7771

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