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Detecting Flying Objects Using a Single Moving Camera

机译:使用单个移动摄像机检测飞行物体

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We propose an approach for detecting flying objects such as Unmanned Aerial Vehicles (UAVs) and aircrafts when they occupy a small portion of the field of view, possibly moving against complex backgrounds, and are filmed by a camera that itself moves. We argue that solving such a difficult problem requires combining both appearance and motion cues. To this end we propose a regression-based approach for object-centric motion stabilization of image patches that allows us to achieve effective classification on spatio-temporal image cubes and outperform state-of-the-art techniques. As this problem has not yet been extensively studied, no test datasets are publicly available. We therefore built our own, both for UAVs and aircrafts, and will make them publicly available so they can be used to benchmark future flying object detection and collision avoidance algorithms.
机译:我们提出了一种检测飞行物体的方法,例如无人飞行器(UAV)和飞机,它们占据视场的一小部分,可能会在复杂的背景下移动,并由本身移动的相机拍摄。我们认为解决这样一个困难的问题需要结合外观和动作提示。为此,我们提出了一种基于回归的方法来稳定图像块的以对象为中心的运动,该方法使我们能够在时空图像立方体上实现有效的分类,并且性能优于最新技术。由于尚未对该问题进行广泛研究,因此没有公开的测试数据集。因此,我们为无人机和飞机制造了自己的产品,并将它们公开发布,以便它们可用于基准测试未来的飞行物体检测和避免碰撞算法。

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