Learning Expert Strategy for Autonomous Robotic Endovascular Intervention via Decoupled Procedural Execution

arXiv:2607.00066v1 Announce Type: new Abstract: Endovascular interventions are high-stakes procedures requiring precise device operation within complex and tortuous vascular anatomies. Autonomous endovascular navigation has the potential to standardize procedural quality and reduce the performance variability inherent in manual operation. Although Reinforcement Learning (RL) approaches have demonstrated promise in enabling autonomy in endovascular intervention, they often struggle with explicit ...

arXiv cs.RO ·Yanxi Chen, Tianliang Yao, Shaolong Tang, Jiyuan Zhao, Hengyu Hu, Zhaoxing Li, Antonio J. S\'anchez Egea, Peng Qi ·
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