arXiv:2602.16641cs.RO2026-02被引 1

用模板引导机器人精准转动探头,减少扫描面积同时完整覆盖肾脏。

Towards Autonomous Robotic Kidney Ultrasound: Spatial-Efficient Volumetric Imaging via Template Guided Optimal Pivoting

  • 通过模板匹配定位肾脏,指导探头最优旋转扫描
  • 实测探头覆盖范围缩小75毫米,定位误差低于7.36毫米
  • 适合需要标准化肾超声的临床机器人系统

医学超声是诊断肾病的首选工具。传统手工扫描存在结果不一致、依赖操作者、缺乏三维定位信息及职业性肌肉骨骼损伤风险。尽管机器人超声系统可实现标准化三维数据采集,但现有方法无法确定最优成像窗口,常导致盲目扫描、探头覆盖过量,引发声影遮挡和器官覆盖不全。为此,本文提出一种自主式高效肾超声成像流程:先进行探索性扫描获取部分肾图像,再与肾模板配准以估计器官姿态;随后机器人以固定点为中心沿肾长轴方向旋转扫查,最小化探头移动距离。仿真结果显示,60%探索比例在定位精度与扫描效率间取得最佳平衡;两名男性受试者的在体实验表明,定位精度可达7.36毫米(位置)与13.84度(角度),相比基线方法探头足迹减少约75毫米。结果验证了基于解剖模板实现探头最优对齐的有效性。

原文摘要 · Abstract (English)

Medical ultrasound (US) imaging is a frontline tool for the diagnosis of kidney diseases. However, traditional freehand imaging procedure suffers from inconsistent, operator-dependent outcomes, lack of 3D localization information, and risks of work-related musculoskeletal disorders. While robotic ultrasound (RUS) systems offer the potential for standardized, operator-independent 3D kidney data acquisition, the existing scanning methods lack the ability to determine the optimal imaging window for efficient imaging. As a result, the scan is often blindly performed with excessive probe footprint, which frequently leads to acoustic shadowing and incomplete organ coverage. Consequently, there is a critical need for a spatially efficient imaging technique that can maximize the kidney coverage through minimum probe footprint. Here, we propose an autonomous workflow to achieve efficient kidney imaging via template-guided optimal pivoting. The system first performs an explorative imaging to generate partial observations of the kidney. This data is then registered to a kidney template to estimate the organ pose. With the kidney localized, the robot executes a fixed-point pivoting sweep where the imaging plane is aligned with the kidney long axis to minimize the probe translation. The proposed method was validated in simulation and in-vivo. Simulation results indicate that a 60% exploration ratio provides optimal balance between kidney localization accuracy and scanning efficiency. In-vivo evaluation on two male subjects demonstrates a kidney localization accuracy up to 7.36 mm and 13.84 degrees. Moreover, the optimal pivoting approach shortened the probe footprint by around 75 mm when compared with the baselines. These results valid our approach of leveraging anatomical templates to align the probe optimally for volumetric sweep.

机器人超声肾脏成像自动化扫描

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