用部分姿态信息提升无人船在开阔海域的定位精度
Invariant Extended Kalman Filtering with Partial Orientation Measurement Integration: Theoretical Derivations and Application to Autonomous Surface Vessels
- 提出新型不变扩展卡尔曼滤波框架,融合航向模糊的姿态观测
- 在无固定地标环境下,实现厘米级姿态估计性能
- 适合缺乏完整姿态传感器的海上无人艇应用
自主水面航行器(ASV)在海洋科学中日益重要,是水下测绘与检查的可靠平台。精确的状态估计,尤其是车辆位姿,对高精度海床测绘至关重要,因为即使微小的表面偏差也会对下方探测产生显著影响。为应对这一挑战,本文提出一种不变扩展卡尔曼滤波(InEKF)框架,用于整合部分姿态测量。传统方法依赖于固定地标间的相对位置,但在开阔海域中,ASV主要观测前方视野。我们利用前视单目相机估计相对于地平线的俯仰和横滚,获得具有航向模糊性的部分姿态信息。为在InEKF中有效利用此类数据,提出一种新框架。该方法不同于传统假设完整姿态测量的InEKF实现,特别适用于以主航向旋转为主、俯仰与横滚变化有限的“半平面”环境。本文详细阐述了所提出的InEKF框架,其与基于地平线的俯仰/横滚观测及双天线GPS航向测量的融合方式,并与使用完整姿态的InEKF和乘性卡尔曼滤波(MEKF)进行了对比分析。结果表明,所提部分姿态测量方法在开阔海域环境中具有优异的准确性和鲁棒性。
原文摘要 · Abstract (English)
Autonomous surface vessels (ASVs) are increasingly vital for marine science, offering robust platforms for underwater mapping and inspection. Accurate state estimation, particularly of vehicle pose, is paramount for precise seafloor mapping, as even small surface deviations can have significant consequences when sensing the seafloor below. To address this challenge, we propose an Invariant Extended Kalman Filter (InEKF) framework designed to integrate partial orientation measurements. While conventional estimation often relies on relative position measurements to fixed landmarks, open ocean ASVs primarily observe a receding horizon. We leverage forward-facing monocular cameras to estimate roll and pitch with respect to this horizon, which provides yaw-ambiguous partial orientation information. To effectively utilize these measurements within the InEKF, we introduce a novel framework for incorporating such partial orientation data. This approach contrasts with traditional InEKF implementations that assume full orientation measurements and is particularly relevant for vehicles operating in a \say{semi-planar} environment, where the attitude is characterized by a dominant yaw rotation with limited roll and pitch variations. This paper details the developed InEKF framework; its integration with horizon-based roll/pitch observations and dual-antenna GPS heading measurements for ASV state estimation; and provides a comparative analysis against the InEKF using full orientation and a Multiplicative EKF (MEKF). Our results demonstrate the efficacy and robustness of the proposed partial orientation measurements for accurate ASV state estimation in open ocean environments.
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