Transferable Tool-Tissue Contact Detection from Stereo Depth in Robot-Assisted Surgery

📅 2026-08-18
📈 Citations: 0
Influential: 0
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🤖 AI Summary
本文通过利用立体深度图像生成的工具-组织距离信息,结合隐藏马尔科夫模型,提高机器人辅助手术中工具-组织接触检测的准确性和泛化能力。
📝 Abstract
Reliable tool--tissue contact detection can support interaction-aware control and downstream force estimation in robot-assisted surgery. Most existing methods learn a contact classifier from RGB appearance, which is hard to generalize. In this work, we use the depth image generated from a stereo pair to give more information about tool--tissue contact. For each depth frame, we localize a spatially supported minimum-distance patch around the tool boundary and reduce it to a single scalar, $-\log_{10}|d|$; this signal rises and falls in step with ground-truth contact. We formalize this observation with a fully supervised two-state hidden Markov model. We fit this model as a six-fold leave-one-session-out (LOSO) ensemble on six palpation sessions against a single silicone cup-like phantom, with the decision threshold selected from the pooled out-of-fold predictions. It is evaluated on four held-out sessions of three categories: 1. same task on same phantom; 2. same task on different phantom; 3. different task on different phantom. This model reaches held-out macro F1 $0.927$ and AUPRC $0.980$. We further compare against a reproduction of an RGB-based contact classifier from prior work. This RGB-based model achieves high performance on the first category (F1 $0.965$), but substantially lower performance on the other two, resulting in macro F1 $0.320$ across all four sessions. These results indicate that the tool--tissue distance is a strong, transferable cue for contact detection in robot-assisted surgery.
Problem

Research questions and friction points this paper is trying to address.

tool-tissue contact
robot-assisted surgery
generalization
Innovation

Methods, ideas, or system contributions that make the work stand out.

stereo depth
hidden Markov model
transferable cue
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M
Mingyeung Wu
Department of Electrical and Computer Engineering, Vanderbilt University, Nashville, TN, United States
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Zhonghao Zhang
Department of Electrical and Computer Engineering, Vanderbilt University, Nashville, TN, United States
H
Hao Yang
Department of Computer Science, Vanderbilt University, Nashville, TN, United States
Alan Kuntz
Alan Kuntz
Assistant Professor, Robotics Center and Kahlert School of Computing, University of Utah
RoboticsRobot Motion PlanningMedical RoboticsSurgical RoboticsDesign Optimization
Jie Ying Wu
Jie Ying Wu
Assistant Professor in CS, Vanderbilt University
Medical RoboticsModelling and SimulationMachine LearningTelerobotics