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Clinical Trial Summary

Gangrenous cholecystitis is the most common complication of acute cholecystitis. There is no research using machine learning models to construct predictive diagnostic models for gangrenous cholecystitis.


Clinical Trial Description

This study reviewed the clinical data of 2023 cholecystectomy patients admitted to our center between January 1, 2015, and May 31, 2015, it includes demographic, clinical features, laboratory and imaging indexes, and constructs five commonly used Decision Tree, SVM, Random Forest, XGBoost, AdaBoost models, feature subsets are selected by Recursive Feature Elimination with Cross-Validation and the importance of variables in each model, model performance is evaluated by Balanced accuracy, Recall, Precision, F1score, and the Precision-Recall(PR) curve, and the final results are verified by independent external validation sets. ;


Study Design


Related Conditions & MeSH terms


NCT number NCT06399081
Study type Observational
Source Dalian Medical University
Contact
Status Completed
Phase
Start date December 1, 2023
Completion date March 2, 2024

See also
  Status Clinical Trial Phase
Completed NCT03754751 - Enhanced Recovery in Laparoscopic Cholecystectomy N/A