A 2D-fractional derivative mask for image feature edge detection

Meriem Hacini, Akram Hacini, H. Akdag, F. Hachouf
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引用次数: 15

Abstract

Feature extraction is a classic problem of machine vision and image processing. Edges are often detected using integer-order differential operators. In this paper, a one-dimensional digital fractional-order Charef differentiator (1D-FCD) is introduced and extended to 2D by a multi-directional operator. The obtained 2D-fractional differentiation (2D-FCD) is a new edge detection operation. The computed multi-directional mask coefficients are computed in a way that image details are detected and preserved. Experiments on texture images have demonstrated the efficiency of the proposed filter compared to existing techniques.
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一种用于图像特征边缘检测的二维分数阶导数掩模
特征提取是机器视觉和图像处理领域的一个经典问题。通常使用整阶微分算子检测边缘。本文介绍了一种一维数字分数阶Charef微分器(1D-FCD),并通过多向算子将其扩展到二维。得到的2d分数阶微分(2D-FCD)是一种新的边缘检测操作。以检测和保留图像细节的方式计算计算的多向掩模系数。在纹理图像上的实验证明了该滤波器与现有技术相比的有效性。
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