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A new nonlinear tracking differentiator and its application in edge detection

机译:一种新的非线性跟踪鉴别因子及其在边缘检测中的应用

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Edge detection has traditionally been a fundamental problem in digital image processing. Although many different detection approaches have already been proposed, there still exists a contradiction between noise suppression, edge protection and algorithm complexity. So it is still a challenging problem and continues to be an active research area. In this paper, we explore new solutions in nonlinear field by introducing the idea of optimal control into edge detection. Firstly, a new discrete-time nonlinear Tracking Differentiator is derived by phase plane analysis, which has a better noise suppression ability and a smaller amount of calculation compared with some influential algorithms. Then, the new tracking differentiator is applied to 2-dimensional space to obtain the gray gradient of an image. Subsequently, the edges can be extracted by applying hysteresis thresholding to the gray gradient obtained. The experimental results show our method can outperform the conventional Canny algorithm. This paper provides a new idea for edge detection technology.
机译:边缘检测传统上是数字图像处理的基本问题。尽管已经提出了许多不同的检测方法,但噪声抑制,边缘保护和算法复杂性之间仍然存在矛盾。因此,它仍然是一个有挑战性的问题,并且仍然是一个活跃的研究区域。在本文中,我们通过将最佳控制的思想引入边缘检测来探讨非线性字段中的新解决方案。首先,通过相平面分析导出新的离散时间非线性跟踪区分器,其具有更好的噪声抑制能力和与一些有影响力的算法相比的较小量。然后,将新的跟踪区分器应用于二维空间以获得图像的灰度梯度。随后,可以通过向获得的灰度梯度施加滞后阈值来提取边缘。实验结果表明,我们的方法可以优于传统的Canny算法。本文为边缘检测技术提供了新的思路。

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