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A machine learning algorithm predicting risk of dilating VUR among infants with hydronephrosis using UTD
Hsin-Hsiao Scott Wang1, Michael Li1, Dylan Cahill2
1Department of Urology, Boston Children's Hospital, Boston, MA, USA.
Journal of Pediatric Urology
|November 22, 2023
Summary
A machine learning model can predict dilating vesico-ureteral reflux (VUR) in infants with prenatal hydronephrosis using early ultrasound. This tool aids in personalized management and selective use of voiding cystourethrogram (VCUG).
Area of Science:
- Pediatric Urology
- Medical Imaging
- Machine Learning in Healthcare
Background:
- Urinary Tract Dilation (UTD) classification aims for objective grading of antenatal and postnatal UTD.
- Current UTD classifications have unclear associations with anomalies like VUR, leading to subjective management recommendations.
Purpose of the Study:
- To develop a reliable machine learning (ML) model for predicting VUR from early postnatal ultrasounds.
- To improve the objectivity of management decisions for infants with prenatal hydronephrosis.
Main Methods:
- Retrospective review of radiology and medical records for infants (0-90 days) with antenatal UTD.
- Development and validation of an ML model using features like gender, ureteral dilation, and parenchymal appearance.
- Primary outcome was defined as dilating (≥Gr3) VUR, confirmed via VCUG.
Main Results:
- The study included 280 infants (540 renal units), with 66 units diagnosed with ≥ grade 3 VUR.
- The final ML model, incorporating clinical and ultrasound features, achieved an AUC of 0.81 for VUR prediction.
- Key predictors included gender, ureteral dilation, parenchymal appearance, parenchymal thickness, and central calyceal dilation.
Conclusions:
- A machine learning model can effectively predict dilating VUR from early postnatal ultrasounds in infants with hydronephrosis.
- This predictive model supports individualized management strategies for children with prenatal hydronephrosis.
- The model facilitates a more selective and efficient use of voiding cystourethrogram (VCUG).
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