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May 6, 2026npj Digital Surgery1 citationsOpen Access

AI model predicts patient outcomes from surgical gestures and provides insights into explainability

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JHJohn R. HeardADAtharva DeoUGUmar Ghaffar

Key Points

  • To improve predictions of erectile function outcomes from surgical gestures in robotic prostatectomy using anatomical and functional context.
  • Analyzed surgical video of 147 patients at 5 surgical centers
  • Improved prediction of post-operative erectile function outcomes
  • Engaged in attention weight analysis for gesture and context combinations
  • Model prediction of post-operative EF improved from 0.78 to 0.85
  • Identification of critical gestures contributing to EF outcomes
  • Context addition enhanced clinical insight for surgeon training

Abstract

Abstract Effective surgical training requires relatively immediate feedback as to outcomes. This makes surgical learning problematic as some surgical outcomes may take months or years to become apparent. The sequence of surgical gestures, the smallest discrete actions of surgery, during the nerve-sparing step of robot-assisted radical prostatectomy has been used to predict 1-year erectile function (EF) outcomes after surgery. To improve this prediction and extract clinically meaningful insights, we describe the addition of anatomic and functional context to surgical gestures. We analyzed surgical video of 147 patients at 5 surgical centers undergoing robotic-assisted radical prostatectomy. The addition of anatomic and functional characterization to surgical gestures improved model prediction of post-operative EF from 0.78 95%CI: 0.60, 0.92 to 0.85 95%CI: 0.66, 0.96. Aggregated attention weight analysis identified novel gesture, anatomy, and function combinations contributing most to EF outcomes. The identification of these critical gestures provides a starting point for more data-driven training in clinical practice.

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Cite This Study

Heard et al. (2026) studied this question.

synapsesocial.com/papers/69faa2e204f884e66b5337echttps://doi.org/10.1038/s44484-025-00006-y
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