arXiv:2412.08135cs.ROcs.CV2024-12ICRA被引 4

解决视觉惯性里程计初始化中外参与陀螺仪偏置的耦合误差问题。

DOGE: An Extrinsic Orientation and Gyroscope Bias Estimation for Visual-Inertial Odometry Initialization

  • 通过纯旋转约束联合估计外参姿态与陀螺仪偏置
  • 在无平移运动情况下仍保持高精度与鲁棒性
  • 适合长期使用后参数漂移的设备快速初始化

现有视觉惯性里程计(VIO)初始化方法依赖精确预标定的外参,但长期使用中温度变化、机械挤压等导致外参尤其是旋转部分发生不可逆变形。现有同时估计外参的方法因需充足平移运动,存在鲁棒性差、精度低、初始化延迟等问题。为此,本文提出一种新VIO初始化方法,将外参姿态与陀螺仪偏置联合建模于正常对极约束中,实现更高精度与更好鲁棒性,且无需等待旋转校准延迟。首先设计仅旋转约束用于外参姿态与陀螺仪偏置估计,可解于纯旋转场景;其次提出加权策略与失效检测机制以提升估计精度与鲁棒性;最后利用最大后验概率在充分平移视差出现前优化结果。大量实验证明,本方法在准确性和鲁棒性上均优于当前最先进方法,同时保持良好效率。

原文摘要 · Abstract (English)

Most existing visual-inertial odometry (VIO) initialization methods rely on accurate pre-calibrated extrinsic parameters. However, during long-term use, irreversible structural deformation caused by temperature changes, mechanical squeezing, etc. will cause changes in extrinsic parameters, especially in the rotational part. Existing initialization methods that simultaneously estimate extrinsic parameters suffer from poor robustness, low precision, and long initialization latency due to the need for sufficient translational motion. To address these problems, we propose a novel VIO initialization method, which jointly considers extrinsic orientation and gyroscope bias within the normal epipolar constraints, achieving higher precision and better robustness without delayed rotational calibration. First, a rotation-only constraint is designed for extrinsic orientation and gyroscope bias estimation, which tightly couples gyroscope measurements and visual observations and can be solved in pure-rotation cases. Second, we propose a weighting strategy together with a failure detection strategy to enhance the precision and robustness of the estimator. Finally, we leverage Maximum A Posteriori to refine the results before enough translation parallax comes. Extensive experiments have demonstrated that our method outperforms the state-of-the-art methods in both accuracy and robustness while maintaining competitive efficiency.

视觉惯性位姿估计初始化

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