视觉失效下仍能捕获翻滚卫星的自适应视觉伺服系统
Adaptive Visual Servoing for On-Orbit Servicing
- 融合ICP与自适应卡尔曼滤波,实现故障下的实时状态估计
- 在视觉完全失效最后10秒仍成功捕获漂浮目标
- 适用于航天器在轨服务,特别适合复杂动态环境
本文提出一种用于在轨服务机器人的自适应视觉伺服框架,专为捕获翻滚卫星设计。该视觉引导系统可在部分或完全视觉故障情况下,特别是短期故障中选择最优控制动作。自主系统考虑物理与操作约束,通过最小化代价函数执行视觉伺服任务。采用分层控制架构,集成改进的迭代最近点(ICP)算法、带约束的噪声自适应卡尔曼滤波器、故障检测与恢复逻辑,以及受限最优路径规划器。动态估计算法实时估计未知状态和不确定参数,用于运动预测,并通过不等式约束保证一致性;同时根据意外视觉误差自适应调整卡尔曼滤波参数。一旦检测到视觉系统故障,故障检测逻辑通过图像配准的度量拟合误差监控视觉反馈,触发恢复策略。估计/预测的姿态与参数随后输入最优路径规划器,引导机械臂末端到达目标抓取点,过程受加速度限制、平滑捕获及视线保持等多重约束。实验表明,即使在接近与捕获前最后10秒内视觉系统完全被遮挡,该视觉伺服系统仍成功捕获自由漂浮物体。
原文摘要 · Abstract (English)
This paper presents an adaptive visual servoing framework for robotic on-orbit servicing (OOS), specifically designed for capturing tumbling satellites. The vision-guided robotic system is capable of selecting optimal control actions in the event of partial or complete vision system failure, particularly in the short term. The autonomous system accounts for physical and operational constraints, executing visual servoing tasks to minimize a cost function. A hierarchical control architecture is developed, integrating a variant of the Iterative Closest Point (ICP) algorithm for image registration, a constrained noise-adaptive Kalman filter, fault detection and recovery logic, and a constrained optimal path planner. The dynamic estimator provides real-time estimates of unknown states and uncertain parameters essential for motion prediction, while ensuring consistency through a set of inequality constraints. It also adjusts the Kalman filter parameters adaptively in response to unexpected vision errors. In the event of vision system faults, a recovery strategy is activated, guided by fault detection logic that monitors the visual feedback via the metric fit error of image registration. The estimated/predicted pose and parameters are subsequently fed into an optimal path planner, which directs the robot's end-effector to the target's grasping point. This process is subject to multiple constraints, including acceleration limits, smooth capture, and line-of-sight maintenance with the target. Experimental results demonstrate that the proposed visual servoing system successfully captured a free-floating object, despite complete occlusion of the vision system.
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