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Generic spatial-color metric for scale-space processing of catadioptric images

机译:折反射图像比例空间处理的通用空间颜色度量

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Images produced by omnidirectional catadioptric systems provide a larger field of view than conventional cameras. However, these images contain significant radial distortions making classical processing unadapted. In addition, color information is almost neglected in omnidirectional imaging. In this paper, we propose a unifying framework, for central catadioptric color image processing, using Riemannian embedding that deals simultaneously with the geometric deformation due to the use of curved mirrors, and the multi-dimensional characteristic of the image. Based on the introduced Riemannian metric, we derive an adapted Gaussian kernel which is essential in widely used image processing. The resulting new formulation is then applied to various image processing: Image smoothing, Difference of Gaussians filtering and scale-space analysis, edge extraction and corner feature detection using Gaussian derivatives. The experiments illustrate the potential of the proposed approach, and show the higher quality of the adapted processing.
机译:全向折反射系统产生的图像比常规照相机提供更大的视野。但是,这些图像包含明显的径向变形,使经典处理无法适应。此外,在全向成像中几乎忽略了颜色信息。在本文中,我们提出了一个统一的框架,用于中央折反射彩色图像处理,使用黎曼嵌入技术,同时处理由于使用曲面镜而引起的几何变形以及图像的多维特征。基于引入的黎曼度量,我们得出了一个适应性的高斯核,它在广泛使用的图像处理中必不可少。然后将生成的新公式应用于各种图像处理:图像平滑,高斯滤波的差分和比例空间分析,使用高斯导数的边缘提取和角特征检测。实验说明了所提出方法的潜力,并显示了适应处理的更高质量。

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