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首页> 外文期刊>International Journal of Modelling, Identification and Control >Modelling And Performance Analysis Of A Machine Vision-based Semi-autonomous Aerial Refuelling
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Modelling And Performance Analysis Of A Machine Vision-based Semi-autonomous Aerial Refuelling

机译:基于机器视觉的半自主空中加油系统的建模与性能分析

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摘要

A critical aspect in the design of Semi-Autonomous Aerial Refuelling (SAAR) control schemes for Unmanned Aerial Vehicles (UAVs) is the availability of accurate measurements of the relative UAV-Tanker distance and attitude. In this effort, the attention was focused on the development of an accurate modelling of the SAAR manoeuvre and on the development of a Machine Vision-based scheme for the estimation of the tanker-UAV relative pose. The developed MV scheme is based on markers installed on the surface of the tanker, and performs specific tasks as Feature Extraction, Feature Matching, and tanker-UAV relative Pose Estimation. The accuracy/robustness of the overall scheme was evaluated in the event of markers occlusion, in presence of inaccuracy in the positioning of the markers on the tanker aircraft, as a function of the level of attitude and GPS sensors' noise and as a function of the data Transmission Delay (TD) between aircrafts.
机译:在设计无人驾驶航空器(UAV)的半自动空中加油(SAAR)控制方案时,一个关键方面是能否准确测量相对无人机的空中加油机距离和姿态。在这项工作中,注意力集中在了SAAR机动的精确模型的开发以及油轮-UAV相对姿态估计的基于机器视觉的方案的开发上。开发的MV方案基于安装在油轮表面的标记,并执行特定任务,例如特征提取,特征匹配和油轮-UAV相对姿态估计。在标记物被遮挡的情况下,在加油机上标记物的位置不准确的情况下,根据姿态水平和GPS传感器的噪声以及GPS传感器的功能来评估总体方案的准确性/鲁棒性飞机之间的数据传输延迟(TD)。

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