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Edge detection using orthogonal moment-based operators

机译:边缘检测使用正交矩的运算符

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Presents a new approach to detect step edges with subpixel accuracy. The proposed approach is based on a set of orthogonal complex moments of the image known as Zernike moments. An ideal 2-D step edge is modeled in terms of four parameters: the background gray level, the step size, the distance of the edge from the center of the mask, and the orientation of the edge. Discrete Zernike moments are used to obtain a total of three masks to compute all the edge parameters for subpixel detection. For pixel-level edge detection only two masks (one real and one complex) are required. The theoretical analysis of the influence of noise on the location and the orientation of an edge is presented. This analysis reveals that the accuracy of the proposed approach is virtually unaffected by the additive noise. Experimental results are presented to demonstrate the efficacy of the proposed technique.
机译:呈现一种新的方法来检测具有子像素精度的步进边缘。所提出的方法基于一组称为Zernike矩的图像的一组正交复杂的时刻。理想的2-D步进边缘是以四个参数建模的:背景灰度级,阶梯尺寸,边缘从掩模中心的距离以及边缘的方向。离散Zernike矩被用于获得总共三个掩模以计算子像素检测的所有边缘参数。对于像素级边缘检测,只需要两个掩模(一个真实和一个复杂的)。提出了对噪声影响的理论分析和边缘的位置和方向。该分析表明,所提出的方法的准确性几乎不受添加剂噪声影响。提出了实验结果以证明所提出的技术的功效。

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