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cs.CV2026

SPIRIT: Spatio-temporal Pairwise Relational Modeling of Instrument-Tissue Interactions for Surgical Action Triplet Recognition

Saurav Sharma, Lorenzo Arboit, Nabani Banik +11

Fine-grained understanding of surgical activity is essential for context-aware assistance in the operating room, including safety monitoring, adverse event identification, and skil…

cs.CV2026

Where are they looking in the operating room?

Keqi Chen, Séraphin Baributsa, Lilien Schewski +5

Purpose: Gaze-following, the task of inferring where individuals are looking, has been widely studied in computer vision, advancing research in visual attention modeling, social sc…

cs.CV2026

S4M: 4-points to Segment Anything

Adrien Meyer, Lorenzo Arboit, Giuseppe Massimiani +3

Purpose: The Segment Anything Model (SAM) promises to ease the annotation bottleneck in medical segmentation, but overlapping anatomy and blurred boundaries make its point prompts…

cs.CV2026

Self-Supervised Uncalibrated Multi-View Video Anonymization in the Operating Room

Keqi Chen, Vinkle Srivastav, Armine Vardazaryan +3

Privacy preservation is a prerequisite for using video data in Operating Room (OR) research. Effective anonymization relies on the exhaustive localization of every individual; even…

cs.CV2026

DExTeR: Weakly Semi-Supervised Object Detection with Class and Instance Experts for Medical Imaging

Adrien Meyer, Didier Mutter, Nicolas Padoy

Detecting anatomical landmarks in medical imaging is essential for diagnosis and intervention guidance. However, object detection models rely on costly bounding box annotations, li…

cs.CV2025

State-Change Learning for Prediction of Future Events in Endoscopic Videos

Saurav Sharma, Chinedu Innocent Nwoye, Didier Mutter +1

Surgical future prediction, driven by real-time AI analysis of surgical video, is critical for operating room safety and efficiency. It provides actionable insights into upcoming e…