arXiv:2412.08496cs.RO2024-12被引 13

用数字孪生点云匹配,解决视觉定位长期漂移问题。

Drift-free Visual SLAM using Digital Twins

  • 将VIO生成的稀疏点云与数字孪生体进行点到平面匹配
  • 在真实无人机数据上实现厘米级定位精度,优于现有系统
  • 无需特征匹配,对视角变化更鲁棒,适合室内外连续导航

城市环境中全局一致的定位对自动驾驶车辆、无人机及视障人士辅助技术至关重要。传统视觉惯性里程计(VIO)和视觉同时定位与建图(VSLAM)方法虽可实现局部姿态估计,但长期依赖局部传感器数据导致漂移。尽管GPS可抑制漂移,但在室内不可用且城市中常不可靠。另一种方案是通过视觉特征匹配将相机定位至已有3D地图,可实现厘米级精度,但受限于当前视图与地图间的视觉相似性。本文提出一种新方法:通过点到平面匹配,将VIO/VSLAM生成的稀疏3D点云与数字孪生体对齐,无需视觉数据关联;该方法为VIO/VSLAM系统提供紧耦合的6-自由度全局测量。在高保真GPS模拟器及真实无人机数据上的实验表明,该方法性能超越现有VIO-GPS系统,并在视角变化下表现出优于当前最优视觉SLAM系统的鲁棒性。

原文摘要 · Abstract (English)

Globally-consistent localization in urban environments is crucial for autonomous systems such as self-driving vehicles and drones, as well as assistive technologies for visually impaired people. Traditional Visual-Inertial Odometry (VIO) and Visual Simultaneous Localization and Mapping (VSLAM) methods, though adequate for local pose estimation, suffer from drift in the long term due to reliance on local sensor data. While GPS counteracts this drift, it is unavailable indoors and often unreliable in urban areas. An alternative is to localize the camera to an existing 3D map using visual-feature matching. This can provide centimeter-level accurate localization but is limited by the visual similarities between the current view and the map. This paper introduces a novel approach that achieves accurate and globally-consistent localization by aligning the sparse 3D point cloud generated by the VIO/VSLAM system to a digital twin using point-to-plane matching; no visual data association is needed. The proposed method provides a 6-DoF global measurement tightly integrated into the VIO/VSLAM system. Experiments run on a high-fidelity GPS simulator and real-world data collected from a drone demonstrate that our approach outperforms state-of-the-art VIO-GPS systems and offers superior robustness against viewpoint changes compared to the state-of-the-art Visual SLAM systems.

视觉定位数字孪生无漂移无人机

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