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An Edge Detection Approach Based On Directional Wavelet Transform

机译:基于方向小波变换的边缘检测方法

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The standard 2D wavelet transform (WT) has been an effective tool in image processing. In recent years, many new transforms have been proposed successively, such as curvelets, bandlets, directional wavelet transform etc, which inherit the merits of the standard WT, and are more adequate at the 2D image processing tasks. Intuitively, it seemed that applying these novel tools to edge detection should acquire finer performance. In this paper, we propose an edge detection approach based on directional wavelet transform which retains the separable filtering and the simplicity of computations and filter design from the standard 2D WT. In addition, the corresponding gradient magnitude is redefined and a new algorithm for non-maximum suppression is described. The experimental results of edge detection for several test images are provided to demonstrate our approach.
机译:标准的2D小波变换(WT)已成为图像处理中的有效工具。近年来,相继提出了许多新的变换,例如Curvelet,bandlets,方向小波变换等,它们继承了标准WT的优点,并且更适合2D图像处理任务。直观上,将这些新颖的工具应用于边缘检测似乎应该获得更好的性能。在本文中,我们提出了一种基于方向小波变换的边缘检测方法,该方法保留了与标准2D WT分离的滤波以及计算和滤波器设计的简单性。此外,重新定义了相应的梯度幅度,并描述了一种用于非最大抑制的新算法。提供了针对几个测试图像的边缘检测的实验结果,以证明我们的方法。

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