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OmniSIFT: Scale invariant features in omnidirectional images

机译:OmniSIFT:在全向图像中缩放不变特征

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We propose a method to compute scale invariant features in omnidirectional images. We present a formulation based on Riemannian geometry for the definition of differential operators on non-Euclidian manifolds that correspond to the particular form of the mirrors in omnidirectional imaging. These operators lead to a scale-space analysis that preserves the geometry of the visual information in omnidirectional images. We eventually build novel scale-invariant omniSIFT features inspired by the planar SIFT framework. We apply our generic solution to omnidirectional images captured with parabolic mirrors. Simple descriptors that use omniSIFT characteristics offer promising performance in the case of image rotation or translation where visual features can be preserved due to the proper handling of the implicit image geometry.
机译:我们提出了一种在全向图像中计算尺度不变特征的方法。我们提出了一种基于黎曼几何的公式,用于定义非欧氏流形上的微分算子,该微分算子对应于全向成像镜的特定形式。这些运算符导致进行标度空间分析,从而保留了全向图像中视觉信息的几何形状。我们最终从平面SIFT框架中获得了新颖的尺度不变的omniSIFT功能。我们将通用解决方案应用于用抛物面镜捕获的全向图像。在图像旋转或平移的情况下,使用omniSIFT特性的简单描述符可提供有希望的性能,在这些情况下,由于对隐式图像几何结构的正确处理,可以保留视觉特征。

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