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Machine learning models in predicting viability after testicular torsion: a proof of concept study
link.springer.com shows its articles on its own site.
Read the article on link.springer.com ↗Article · Jan 2026 · 1 min read
In brief
In brief
This proof-of-concept study explores machine learning algorithms to predict testicular viability following torsion, addressing a critical clinical challenge in determining salvageability. The research evaluates computational models that could assist urologists in surgical decision-making regarding orchidopexy versus orchiectomy based on preoperative and intraoperative parameters.
Written by the GCMD Library team from the article.
Purpose Methods Results Conclusion
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