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Peer-reviewed veterinary case report

Using Machine Learning as a Seroma Risk Assessment Tool in Prepectoral Breast Reconstruction.

Year:
2026
Authors:
Chinta SR et al.
Affiliation:
From the Hansjörg Wyss Department of Plastic Surgery · United States

Abstract

<h4>Background</h4>This study aimed to develop a machine learning model to predict seroma risk following prepectoral breast reconstruction.<h4>Methods</h4>Two methodologies were used to develop machine learning models for predicting seroma formation based on a retrospective review of institutional data with 2-stage prepectoral breast reconstruction. Method 1 used a dataset including all preoperative patient attributes and operative details, whereas method 2 focused only on variables that were statistically significant on univariate logistic regression. Six algorithms were trained in both methods: logistic regression, Naive Bayes, support vector machine, <i>k</i>-nearest neighbors, decision tree, and random forest.<h4>Results</h4>Chart review identified 318 breasts that underwent prepectoral reconstruction, with a seroma rate of 25.58%. Univariate analysis found that body mass index, mastectomy specimen weight, hypertension, neoadjuvant chemotherapy, and skin-sparing mastectomy were positively associated with seroma. Method 1 identified the decision tree to have the highest accuracy (0.81) and area under the receiver operating characteristic curve (0.81). Method 2 improved model performance. The random forest achieved the best results, with an accuracy of 0.81 and an area under the receiver operating characteristic curve of 0.83. A web application was then created using the random forest model to provide real-time seroma risk predictions.<h4>Conclusions</h4>Machine learning models offer a valuable tool for improving clinical decision-making by accurately predicting patient-specific seroma risk in breast reconstruction. Our models outperformed traditional methods in identifying high-risk patients, allowing for tailored surgical techniques and intensified follow-up care.

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Original publication: https://europepmc.org/article/MED/41602846