arXiv:2512.00080cs.CVcs.RO2025-12

用视觉立体里程计让辐射监测机器人在隧道中更自主导航

Conceptual Evaluation of Deep Visual Stereo Odometry for the MARWIN Radiation Monitoring Robot in Accelerator Tunnels

  • 纯视觉方法结合立体视差与自监督学习估计位姿和深度
  • 相比传统方案减少尺度漂移,适合低纹理、强辐射环境
  • 适合需要低成本高可靠性的安全关键场景导航研究

MARWIN机器人在欧洲X射线自由电子激光器(European XFEL)的长而单调的加速器隧道中执行自主辐射监测任务,现有导航依赖激光边缘检测、轮式/激光里程计及周期性QR码定位,缺乏对未知结构的适应能力。本文探索深视觉立体里程计(DVSO)结合3D几何约束的替代方案。DVSO基于立体视差、光流与自监督学习,无需标注数据即可联合估计深度与自身运动。为保证全局一致性,可进一步融合绝对参考点(如地标)或其他传感器。以欧洲XFEL为案例,评估其在隧道环境中的可行性。预期优势包括:通过立体视觉降低尺度漂移、低成本感知、可扩展的数据采集;挑战仍存于低纹理表面、光照变化、计算负载及辐射环境下的鲁棒性。论文提出研究路线图,旨在实现MARWIN在受限、安全关键基础设施中更自主的导航。

原文摘要 · Abstract (English)

The MARWIN robot operates at the European XFEL to perform autonomous radiation monitoring in long, monotonous accelerator tunnels where conventional localization approaches struggle. Its current navigation concept combines lidar-based edge detection, wheel/lidar odometry with periodic QR-code referencing, and fuzzy control of wall distance, rotation, and longitudinal position. While robust in predefined sections, this design lacks flexibility for unknown geometries and obstacles. This paper explores deep visual stereo odometry (DVSO) with 3D-geometric constraints as a focused alternative. DVSO is purely vision-based, leveraging stereo disparity, optical flow, and self-supervised learning to jointly estimate depth and ego-motion without labeled data. For global consistency, DVSO can subsequently be fused with absolute references (e.g., landmarks) or other sensors. We provide a conceptual evaluation for accelerator tunnel environments, using the European XFEL as a case study. Expected benefits include reduced scale drift via stereo, low-cost sensing, and scalable data collection, while challenges remain in low-texture surfaces, lighting variability, computational load, and robustness under radiation. The paper defines a research agenda toward enabling MARWIN to navigate more autonomously in constrained, safety-critical infrastructures.

视觉里程计自主导航机器人辐射监测

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