通过多孔径成像系统实现飞行器厘米级定位与弧分级姿态估计
Accurate Pose Estimation for Flight Platforms based on Divergent Multi-Aperture Imaging System
- 设计发散式多孔径成像系统,兼顾大视场与高分辨率
- 实测达到厘米级定位、弧分钟级姿态精度
- 适用于需要高精度导航的无人机等飞行平台
基于视觉的位姿估计算法在飞行平台自主导航中至关重要,但传统相机视场与空间分辨率限制了估计精度。本文设计了一种发散式多孔径成像系统(DMAIS),可等效为单个成像系统,同时实现大视场和高分辨率观测,突破传统限制。为实现位姿估计,提出基于三维标定场的DMAIS标定方法,确定其成像参数后,将系统建模为广义相机。进一步提出新的飞行平台位姿估计算法,将绝对位姿问题转化为非线性最小化问题,并基于拉格朗日乘子建立新最优性条件求解。真实标定实验验证了方法有效性与准确性,实际飞行实验表明系统可实现厘米级定位精度和弧分钟级姿态精度。
原文摘要 · Abstract (English)
Vision-based pose estimation plays a crucial role in the autonomous navigation of flight platforms. However, the field of view and spatial resolution of the camera limit pose estimation accuracy. This paper designs a divergent multi-aperture imaging system (DMAIS), equivalent to a single imaging system to achieve simultaneous observation of a large field of view and high spatial resolution. The DMAIS overcomes traditional observation limitations, allowing accurate pose estimation for the flight platform. {Before conducting pose estimation, the DMAIS must be calibrated. To this end we propose a calibration method for DMAIS based on the 3D calibration field.} The calibration process determines the imaging parameters of the DMAIS, which allows us to model DMAIS as a generalized camera. Subsequently, a new algorithm for accurately determining the pose of flight platform is introduced. We transform the absolute pose estimation problem into a nonlinear minimization problem. New optimality conditions are established for solving this problem based on Lagrange multipliers. Finally, real calibration experiments show the effectiveness and accuracy of the proposed method. Results from real flight experiments validate the system's ability to achieve centimeter-level positioning accuracy and arc-minute-level orientation accuracy.
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