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3D Object Detection from a Single Fisheye Image Without a Single Fisheye Training Image

机译:3D对象检测从单个Fisheye图像没有单一的鱼眼训练图像

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Existing monocular 3D object detection methods have been demonstrated on rectilinear perspective images and fail in images with alternative projections such as those acquired by fisheye cameras. Previous works on object detection in fisheye images have focused on 2D object detection, partly due to the lack of 3D datasets of such images. In this work, we show how to use existing monocular 3D object detection models, trained only on rectilinear images, to detect 3D objects in images from fisheye cameras, without using any fisheye training data. We outperform the only existing method for monocular 3D object detection in panoramas on a benchmark of synthetic data, despite the fact that the existing method trains on the target non-rectilinear projection whereas we train only on rectilinear images. We also experiment with an internal dataset of real fisheye images.
机译:已经在直线透视图像上演示了现有的单目3D对象检测方法,并且在具有替代投影的图像中失败,例如由Fisheye摄像机获取的替代投影。 以前关于Fisheye图像的对象检测的工作已经集中于2D对象检测,部分原因是由于这些图像的3D数据集缺乏。 在这项工作中,我们展示了如何使用现有的单目3D对象检测模型,仅在直线图像上培训,以检测来自Fisheye摄像机的图像中的3D对象,而不使用任何Fisheye训练数据。 尽管现有的方法列车在目标非直线投影上的现有方法列车,但我们仅在直线图像上训练的情况下,我们在综合性数据的基准中唯一的现有方法。 我们还尝试了真实鱼眼图像的内部数据集。

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