arXiv:2409.08337cs.RO2024-09被引 1

用虚拟孪生技术提升微机器人在X光下的定位与操控精度。

X-ray Fluoroscopy Guided Localization and Steering of Medical Microrobots through Virtual Enhancement

  • 构建微机器人工作区的数字孪生环境,实现虚实坐标同步。
  • 实测追踪延迟平均仅20毫秒,可实时操控磁性微机器人。
  • 减少持续照射的X光剂量,适合动物与人体临床前研究。

在开发无缆毫米级和微米级医疗机器人时,确保安全与有效性依赖于体内检测、实时追踪与精确定位。然而人体固有的不透明性构成重大障碍,使机器人检测主要受限于专用成像系统如X射线荧光透视,而这类系统常缺乏关键解剖细节。因此,操作者(人或机器)难以准确判断机器人位置并引导其运动。本研究探索通过构建包含模型微机器人操作空间精确数字副本(虚拟孪生)的仿真环境,克服此难题。通过同步虚拟与真实世界的坐标系,并将图像流中的微机器人位置数据持续注入虚拟孪生,使操作者可在虚拟世界中控制导航。实验验证了在受限仿体中对移动磁性机器人进行高时间分辨率(<100毫秒,平均约20毫秒)视觉反馈下的追踪与操控。此外,基于目标检测的定位方法有望在不牺牲追踪精度的前提下降低患者整体受照的X射线剂量。本研究填补了无缆医疗微机器人影像引导远程干预的关键空白,尤其适用于近未来在动物模型及人类患者中的应用。

原文摘要 · Abstract (English)

In developing medical interventions using untethered milli- and microrobots, ensuring safety and effectiveness relies on robust methods for detection, real-time tracking, and precise localization within the body. However, the inherent non-transparency of the human body poses a significant obstacle, limiting robot detection primarily to specialized imaging systems such as X-ray fluoroscopy, which often lack crucial anatomical details. Consequently, the robot operator (human or machine) would encounter severe challenges in accurately determining the location of the robot and steering its motion. This study explores the feasibility of circumventing this challenge by creating a simulation environment that contains the precise digital replica (virtual twin) of a model microrobot operational workspace. Synchronizing coordinate systems between the virtual and real worlds and continuously integrating microrobot position data from the image stream into the virtual twin allows the microrobot operator to control navigation in the virtual world. We validate this concept by demonstrating the tracking and steering of a mobile magnetic robot in confined phantoms with high temporal resolution (< 100 ms, with an average of ~20 ms) visual feedback. Additionally, our object detection-based localization approach offers the potential to reduce overall patient exposure to X-ray doses during continuous microrobot tracking without compromising tracking accuracy. Ultimately, we address a critical gap in developing image-guided remote interventions with untethered medical microrobots, particularly for near-future applications in animal models and human patients.

微机器人X光导航虚拟孪生精准医疗

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