arXiv:2504.01451cs.RO2025-04中稿 · IEEE/ASME Transact…被引 8

提出一种可在移动中快速初始化的激光雷达惯性系统方法。

Dynamic Initialization for LiDAR-inertial SLAM

  • 通过激光雷达与惯性测量融合迭代对齐实现动态初始化
  • 在移动状态下仍能完成初始化,支持车、手持设备、无人机等多种平台
  • 开源代码与数据集,适合救援等紧急场景应用

激光雷达-惯性SLAM系统的初始状态精度(包括初始速度、重力方向和IMU偏置)对其初始化至关重要。不准确的初始值会降低初始化速度或导致失败。在灾后搜救、排爆等紧急任务中,机器人需在运动时快速可靠地完成初始化。现有方法通常要求平台静止,难以满足动态需求。为此,本文提出一种鲁棒且快速的动态初始化方法D-LI-Init。该方法通过迭代对齐激光雷达里程计与惯性测量实现系统初始化。为增强激光雷达里程计可靠性,将激光雷达与陀螺仪在ESIKF框架内紧密融合,陀螺仪补偿点云旋转畸变,平移畸变则在迭代更新阶段处理,输出激光雷达-陀螺仪里程计。所提方法可在机器人运动或静止时均完成初始化。公开数据集和真实环境实验表明,D-LI-Init可有效适用于车辆、手持设备及无人机等多种平台,且不受具体运动模式影响。代码与数据集已开源。

原文摘要 · Abstract (English)

The accuracy of the initial state, including initial velocity, gravity direction, and IMU biases, is critical for the initialization of LiDAR-inertial SLAM systems. Inaccurate initial values can reduce initialization speed or lead to failure. When the system faces urgent tasks, robust and fast initialization is required while the robot is moving, such as during the swift assessment of rescue environments after natural disasters, bomb disposal, and restarting LiDAR-inertial SLAM in rescue missions. However, existing initialization methods usually require the platform to remain stationary, which is ineffective when the robot is in motion. To address this issue, this paper introduces a robust and fast dynamic initialization method for LiDAR-inertial systems (D-LI-Init). This method iteratively aligns LiDAR-based odometry with IMU measurements to achieve system initialization. To enhance the reliability of the LiDAR odometry module, the LiDAR and gyroscope are tightly integrated within the ESIKF framework. The gyroscope compensates for rotational distortion in the point cloud. Translational distortion compensation occurs during the iterative update phase, resulting in the output of LiDAR-gyroscope odometry. The proposed method can initialize the system no matter the robot is moving or stationary. Experiments on public datasets and real-world environments demonstrate that the D-LI-Init algorithm can effectively serve various platforms, including vehicles, handheld devices, and UAVs. D-LI-Init completes dynamic initialization regardless of specific motion patterns. To benefit the research community, we have open-sourced our code and test datasets on GitHub.

SLAM激光雷达惯性导航动态初始化

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