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Precise localization of geometrically known image edges in noisy environment

机译:在嘈杂环境中的几何形象边缘精确定位

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摘要

A method based on random samples least variance geometric form determination in precision measurement using computer vision is presented. The method is designed to extract the geometrically known image edges in a digital image with subpixel precision. The advantages of such a method are that the localization precision is unaffected by the noisy environment, and for many elementary geometrical forms it does not need traditional edge-following but only vertical and/or horizontal scannings of images. The precise localization and the elimination of the noise effect are achieved by iterative form determination from randomly chosen image points and the selection of points according to the measurement of the distance between image points and the reference primitive. The application of this technique to the measurement of ellipse and polygonal family forms is presented.
机译:呈现了一种基于随机样本最小方差的方法,使用计算机视觉的精度测量中的几何形状确定。该方法旨在以子像素精度提取数字图像中的几何已知图像边缘。这种方法的优点是本地化精度不受噪声环境影响,并且对于许多基本的几何形式,它不需要传统的边缘,但仅是图像的垂直和/或水平扫描。通过来自随机选择的图像点的迭代形式确定和根据图像点与参考原语之间的距离的测量的点来实现精确的定位和消除噪声效应。提出了这种技术在椭圆和多边形家族形式的测量。

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