arXiv:2603.05992cs.RO2026-03被引 1

首个开源磁导航机器人仿真平台,助力医疗机器人设计与测试。

MagRobot:An Open Simulator for Magnetically Navigated Robots

  • 构建通用开源自适应仿真环境,支持刚性与柔性机器人
  • 验证仿真精度:在体外与离体实验中表现一致
  • 适用于呼吸、血管、胃肠等多类医疗场景的算法优化

磁导航系统在无遮挡定位和远程控制体内医疗设备方面展现出巨大潜力,如胶囊内窥镜和心血管介入。然而,磁导航机器人的设计仍严重依赖耗时昂贵的实验原型。同时,缺乏统一的实验环境来对比不同系统的硬件与算法。为此,我们提出首个通用开源仿真平台,支持磁驱动与磁追踪任务的可视化设计与分析,可模拟包含可变形解剖结构的多种医疗应用。平台提供开放接口,允许用户加载第三方解剖模型并自定义硬件与算法配置。通过体模与离体实验对连续型机器人和胶囊机器人的磁导航进行验证,仿真精度得到确认。三个典型应用场景(支气管镜、血管介入、胃肠道内窥镜)已实现,表明系统配置与算法可通过该平台灵活设计与优化。

原文摘要 · Abstract (English)

Magnetic navigation systems, including magnetic tracking systems and magnetic actuation systems, have shown great potential for occlusion-free localization and remote control of intracorporeal medical devices and robots in minimally invasive medicine, such as capsule endoscopy and cardiovascular intervention. However, the design of magnetically navigated robots remains heavily reliant on experimental prototyping, which is time-consuming and costly. Furthermore, there is a lack of a consistent experimental environment to compare and benchmark the hardware and algorithms across different magnetic navigation systems. To address these challenges, we propose the first universal open-source simulation platform to facilitate research, design and benchmarking of magnetically navigated robots. Our simulator features an intuitive graphical user interface that enables the user to efficiently design, visualize, and analyze magnetic navigation systems for both rigid and soft robots. The proposed simulator is versatile, which can simulate both magnetic actuation and magnetic tracking tasks in diverse medical applications that involve deformable anatomies. The proposed simulator provides an open development environment, where the user can load third-party anatomical models and customize both hardware and algorithms of magnetic navigation systems. The fidelity of the simulator is validated using both phantom and ex vivo experiments of magnetic navigation of a continuum robot and a capsule robot with diverse magnetic actuation setups. Three use cases of the simulator, i.e., bronchoscopy, endovascular intervention, and gastrointestinal endoscopy, are implemented to demonstrate the functionality of the simulator. It is shown that the configuration and algorithms of magnetic navigation systems can be flexibly designed and optimized for better performance using the simulator.

机器人仿真磁导航医疗机器人开源平台

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