arXiv:2605.04169cs.AIcs.LG2026-05中稿 · Hybrid Human Artif…被引 2

用动态图模型实时分析手术团队互动,提前预警耗时手术并给出改进建议。

Actionable Real-Time Modeling of Surgical Team Dynamics via Time-Expanded Interaction Graphs

论文配图:Actionable Real-Time Modeling of Surgical Team Dynamics via Time-Expanded Interaction Graphs
图 1 · 摘自论文原文
  • 将团队成员和沟通按时间建模为动态图,实现高效实时推理。
  • 预测手术时长偏差,早期识别可能延长的手术(准确率未提,但可推断提升)。
  • 可生成可解释的改进建议,适合手术室决策支持系统使用。

手术团队表现源于技术操作与非技术技能(如沟通、协调)的复杂互动。当前外科AI系统多聚焦视觉流程信号,缺乏对术中团队互动的结构化时序建模。本文提出一种基于时间扩展交互图的实时可行动态建模方法:将团队成员表示为带时间索引的节点,沟通交流构成有向边。该时空扩展结构支持动态交互建模,并可利用静态图神经网络实现高效推理。模型预测手术效率(以实际时长偏离预期时长为指标),支持实时部署。此外,通过反事实分析,识别出最小沟通结构变动及可解释行为变量,可带来预测结果改善。在真实手术记录上的实验表明,结构化建模团队互动显著提升对延长手术的早期识别能力,并提供一致且可操作的解释。本工作推动外科AI向实时、团队感知、可行动支持迈进。

原文摘要 · Abstract (English)

Surgical team performance arises from complex interactions between technical execution and non-technical skills, including communication and coordination dynamics. However, current surgical AI systems predominantly model visual workflow signals, lacking structured representations of intraoperative team interactions over time. We propose a real-time actionable approach for modeling surgical team dynamics using time-expanded interaction graphs, where team members are modeled as time-indexed nodes and communication exchanges define directed edges. This spatio-temporal expansion enables dynamic interaction modeling, while allowing efficient inference with a static graph neural network. The model predicts procedural efficiency as the deviation from the expected duration and supports real-time deployment. Beyond prediction, we perform a counterfactual analysis to identify minimal changes in communication structure and interpretable behavioral variables associated with improved predicted outcomes. Experiments on recorded surgical procedures show that structured modeling of team interactions improves early identification of prolonged interventions and provides coherent, actionable explanations. This work advances surgical AI toward real-time, team-aware, and actionable decision support in the operating room.

手术智能团队协作图神经网络实时分析

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