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Edge detection from edge knots in live plant image processing

机译:活植物图像处理中来自边缘结的边缘检测

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摘要

This paper proposes an optimization model for extracting edges in gray-scale images. The model sufficiently utilizes the gray-level information in a pair of orthogonal directions at each considered pixel. The model has three major features in its novelty: (1) Emphasizing the globality of traditional local features; (2) Being a generalized case of the classical snake models; and (3) Offering a theoretical interpretation to the setting of the parameters for the method based on the Simulation of Particle Motion in a Vector Image Field (SPMVIF). Our Edge Detection from Edge Knots (EDEK) model can be divided into two stages: the generation of edge knots on or near edges and a propagation process for producing complete edges from these edge knots. One advantage of our approach is that the propagation process does not depend on any control parameters. The EDEK model is suitable for live plant image processing, which is demonstrated by a number of simulation results on the edge detection of live plant images. Our model is simple in computing and robust, and can perform very well even in situations where high curvature exists.
机译:本文提出了一种用于提取灰度图像边缘的优化模型。该模型在每个考虑的像素处充分利用一对正交方向上的灰度级信息。该模型的新颖性具有三个主要特征:(1)强调传统地方特征的全球化; (2)作为经典蛇模型的广义情况; (3)为基于矢量图像场中粒子运动模拟(SPMVIF)的方法的参数设置提供理论解释。我们的边缘结边缘检测(EDEK)模型可分为两个阶段:在边缘上或边缘附近生成边缘结,以及从这些边缘结产生完整边缘的传播过程。我们方法的优点之一是传播过程不依赖于任何控制参数。 EDEK模型适用于有生命的植物图像处理,这通过许多有关有生命的植物图像边缘检测的仿真结果得到证明。我们的模型计算简单且健壮,即使在存在高曲率的情况下也可以表现出色。

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