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A direct approach for object detection with catadioptric omnidirectional cameras

机译:使用折反射全向摄像机进行物体检测的直接方法

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摘要

In this paper, we present an omnidirectional vision-based method for object detection. We first adopt the conventional camera approach that uses sliding windows and histogram of oriented gradients (HOG) features. Then, we describe how the feature extraction step of the conventional approach should be modified for a theoretically correct and effective use in omnidirectional cameras. Main steps are modification of gradient magnitudes using Riemannian metric and conversion of gradient orientations to form an omnidirectional sliding window. In this way, we perform object detection directly on the omnidirectional images without converting them to panoramic or perspective images. Our experiments, with synthetic and real images, compare the proposed approach with regular (unmodified) HOG computation on both omnidirectional and panoramic images. Results show that the proposed approach should be preferred.
机译:在本文中,我们提出了一种基于全向视觉的物体检测方法。我们首先采用传统的摄像机方法,该方法使用滑动窗口和定向梯度直方图(HOG)功能。然后,我们描述了传统方法的特征提取步骤应如何修改,以在理论上正确和有效地用于全向摄像机。主要步骤是使用黎曼度量修改梯度幅度以及将梯度方向转换为全向滑动窗口。这样,我们直接在全向图像上执行对象检测,而无需将其转换为全景图像或透视图像。我们的实验使用合成图像和真实图像将拟议的方法与全向和全景图像的常规(未经修改)HOG计算进行了比较。结果表明,建议的方法应该是首选。

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