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A comparison of Pose Estimation algorithms for Machine Vision based Aerial Refueling for UAVs

机译:基于无人机的基于机器视觉的空中加油姿态估计算法的比较

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This paper focuses on the analysis of the performance of specific ''detection and labeling'' and ''pose estimation'' algorithms within a machine vision (MV)-based approach for the problem of autonomous aerial refueling (AAR) of UAVs. A robust ''detection and labeling algorithm'' for the correct identification and sorting of the optical markers is proposed; a sorted list of marker positions is then provided as input to the ''pose estimation'' algorithm. A detailed study of the performance of two specific ''pose estimation'' algorithms (GLSDC and LHM) is performed with special emphasis on the required computational effort as well as on the robustness and error propagation characteristics. Extensive simulation studies demonstrate the performance of the LHM and GLSDC algorithms and show the importance of a robust ''detection and labeling'' algorithm. The simulation effort is performed using a detailed modeling of the AAR maneuver according to the USAF refueling method
机译:本文重点分析基于无人机的自主空中加油(AAR)问题的基于机器视觉(MV)的方法中特定的“检测和标记”和“姿态估计”算法的性能。提出了一种健壮的“检测和标记算法”,用于正确识别和分类光学标记;然后将标记位置的排序列表作为“姿势估计”算法的输入。对两种特定的“姿态估计”算法(GLSDC和LHM)的性能进行了详细研究,并特别强调了所需的计算工作量以及鲁棒性和错误传播特性。大量的仿真研究证明了LHM和GLSDC算法的性能,并显示了强大的“检测和标记”算法的重要性。根据美国空军的加油方法,使用AAR演习的详细模型进行模拟工作

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