Anisotropic Edge Detection in Catadioptric Images

Enzhuang Zheng, Baojiang Zhong, K. Ma
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Abstract

Catadioptric images are produced in omnidirectional vision systems and can be expressed on Riemannian manifolds. The existing edge detectors are operated either in Euclidean space, or on Riemannian manifolds with isotropic image filtering. In this paper, a new type of edge detection is proposed—it is operated on Riemannian manifolds with anisotropic image filtering. For that, an anisotropic image filtering kernel on Riemannian manifolds is derived by solving the anisotropic heat equation embedded with Riemannian metric. With this kernel, a novel anisotropic edge detector is then developed. Compared to an edge detector operated in Euclidean space, our edge detector is more suitable for catadioptric images, since their geometric structure information will be taken into account in the detection process. Compared to existing edge detectors customized for catadioptric images, the new edge detector has a higher efficiency in preserving image edges and thus can produce more true positives.
反射图像的各向异性边缘检测
反射图像是在全向视觉系统中产生的,可以用黎曼流形表示。现有的边缘检测器要么在欧几里德空间中运行,要么在黎曼流形上进行各向同性图像滤波。提出了一种基于黎曼流形的各向异性图像滤波边缘检测方法。为此,通过求解嵌入黎曼度量的各向异性热方程,导出黎曼流形上的各向异性图像滤波核。利用该核,开发了一种新型的各向异性边缘检测器。相对于在欧氏空间中操作的边缘检测器,我们的边缘检测器更适合于反射图像,因为在检测过程中会考虑反射图像的几何结构信息。与现有的折射率图像边缘检测器相比,该检测器在保持图像边缘的效率更高,从而产生更多的真阳性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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