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Beyond Instrument Motion: Recognizing Tissue Tension Toward Surgical Skill Assessment

Marko Haralović, Zhiqi Miao, Alexander Machiel Bont, Jiapan Guo, Frans van Workum, Estefanía Talavera

arXiv:2608.17935Published August 18, 2026Updated August 19, 20260 citations
  • cs.CV
  • robot
  • trajectory
  • action

Abstract

Surgical performance assessment in minimally invasive surgery largely relies on manual expert review, making it time-consuming, subjective, and difficult to scale. While existing surgical video understanding methods address tasks such as instrument segmentation, surgical phase recognition, and action recognition, they do not explicitly capture fine-grained tissue handling, a key indicator of surgical quality. To address this gap, we introduce tissue tension recognition, a new clinically motivated video understanding task for laparoscopic and robot-assisted rectal cancer surgery. To support this task, we construct SurgTension, the first expert-annotated tissue tension dataset, providing a benchmark for objective tissue tension recognition. We further propose TensionTRAC, a lightweight trajectory-based framework that models tissue tension from sparse point trajectories. Using a compact trajectory encoder, TensionTRAC achieves competitive performance against strong pretrained video backbones.

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