arXiv:2503.15273cs.RO2025-03中稿 · IEEE/RSJ Internati…被引 6

让无人机在陌生无特征环境中自主导航,实时规划最佳视角。

Perception-aware Planning for Quadrotor Flight in Unknown and Feature-limited Environments

  • 构建视角切换图,动态选择最优观测点。
  • 生成兼顾探索与定位的航向轨迹,提升环境感知能力。
  • 适合无人机动态未知场景下的鲁棒飞行,实测验证有效。

针对视觉退化环境下四旋翼状态估计精度不足的问题,现有方法多依赖先验环境信息,在未知且特征稀疏的环境中表现受限。本文提出一种面向未知、特征有限环境的感知意识规划方法,通过合理分配感知资源实现高效导航。引入视角转换图,自适应选择局部目标视角,引导无人机在抵达目标的同时保持足够的可定位性,避免陷入特征匮乏区域。局部规划中,提出一种新型偏航轨迹生成方法,同时考虑探索能力与可定位性,基于特征共可见性评估构建可定位通道,以高效方式保障定位鲁棒性。仿真与真实实验验证了该方法的可行性与实时性能。代码将开源共享。

原文摘要 · Abstract (English)

Various studies on perception-aware planning have been proposed to enhance the state estimation accuracy of quadrotors in visually degraded environments. However, many existing methods heavily rely on prior environmental knowledge and face significant limitations in previously unknown environments with sparse localization features, which greatly limits their practical application. In this paper, we present a perception-aware planning method for quadrotor flight in unknown and feature-limited environments that properly allocates perception resources among environmental information during navigation. We introduce a viewpoint transition graph that allows for the adaptive selection of local target viewpoints, which guide the quadrotor to efficiently navigate to the goal while maintaining sufficient localizability and without being trapped in feature-limited regions. During the local planning, a novel yaw trajectory generation method that simultaneously considers exploration capability and localizability is presented. It constructs a localizable corridor via feature co-visibility evaluation to ensure localization robustness in a computationally efficient way. Through validations conducted in both simulation and real-world experiments, we demonstrate the feasibility and real-time performance of the proposed method. The source code will be released to benefit the community.

无人机导航感知规划路径规划

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