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AffordTissue: Dense Affordance Prediction for Tool-Action Specific Tissue Interaction

Description

Surgical action automation has progressed rapidly toward achieving surgeon-like dexterous control, driven primarily by advances in learning from demonstration and vision-language-action models. While these have demonstrated success in table-top experiments, translating them to clinical deployment remains challenging: current methods offer limited predictability on where instruments will interact on tissue surfaces and lack explicit conditioning inputs to enforce tool-action-specific safe interac

Source

http://arxiv.org/abs/2604.01371v1