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A new computational framework for 2D shape-enclosing contours

机译:二维形状封闭轮廓的新计算框架

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摘要

In this paper, a new framework for one-dimensional contour extraction from discrete two-dimensional data sets is presented. Contour extraction is important in many scientific fields such as digital image processing, computer vision, pattern recognition, etc. This novel framework includes (but is not limited to) algorithms for dilated contour extraction, contour displacement, shape skeleton extraction, contour continuation, shape feature based contour refinement and contour simplification. Many of the new techniques depend strongly on the application of a Delaunay tessellation. In order to demonstrate the versatility of this novel toolbox approach, the contour extraction techniques presented here are applied to scientific problems in material science, biology, handwritten letter recognition, astronomy and heavy ion physics.
机译:本文提出了一种从离散的二维数据集中提取一维轮廓的新框架。轮廓提取在许多科学领域都很重要,例如数字图像处理,计算机视觉,模式识别等。这种新颖的框架包括(但不限于)用于膨胀轮廓提取,轮廓位移,形状骨架提取,轮廓连续,形状的算法基于特征的轮廓细化和轮廓简化。许多新技术在很大程度上取决于Delaunay细分的应用。为了证明这种新颖的工具箱方法的多功能性,此处介绍的轮廓提取技术应用于材料科学,生物学,手写字母识别,天文学和重离子物理学中的科学问题。

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