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Surgical Gym: A high-performance GPU-based platform for reinforcement learning with surgical robots

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arxiv 2310.04676 v2 pith:Z4K3JK4R submitted 2023-10-07 cs.RO cs.LG

classification cs.ROcs.LG
keywords surgicallearningmakingdataefficientreinforcementinvasiveminimally
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Recent advances in robot-assisted surgery have resulted in progressively more precise, efficient, and minimally invasive procedures, sparking a new era of robotic surgical intervention. This enables doctors, in collaborative interaction with robots, to perform traditional or minimally invasive surgeries with improved outcomes through smaller incisions. Recent efforts are working toward making robotic surgery more autonomous which has the potential to reduce variability of surgical outcomes and reduce complication rates. Deep reinforcement learning methodologies offer scalable solutions for surgical automation, but their effectiveness relies on extensive data acquisition due to the absence of prior knowledge in successfully accomplishing tasks. Due to the intensive nature of simulated data collection, previous works have focused on making existing algorithms more efficient. In this work, we focus on making the simulator more efficient, making training data much more accessible than previously possible. We introduce Surgical Gym, an open-source high performance platform for surgical robot learning where both the physics simulation and reinforcement learning occur directly on the GPU. We demonstrate between 100-5000x faster training times compared with previous surgical learning platforms. The code is available at: https://github.com/SamuelSchmidgall/SurgicalGym.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. SonoGym: High Performance Simulation for Challenging Surgical Tasks with Robotic Ultrasound

    cs.RO 2025-07 conditional novelty 6.0 of 10

    SonoGym provides parallel, realistic ultrasound simulation for training RL and imitation-learning agents on robotic orthopedic tasks including navigation, reconstruction, and surgery.

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