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Edge Detection Based on the Fusion of Multiscale Anisotropic Edge Strength Measurements

机译:基于多尺度各向异性边缘强度测量的边缘检测

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Edge detection plays an essential role in many computer vision tasks, but there is limited literature on the fusion of multi-scale edge strength measurements. In this paper, we extend an edge detector using both isotropic and anisotropic Gaussian kernels in multi-scale space to obtain the multiscale anisotropic edge strength measurements (AESMs). Subsequently, we propose a fusion scheme of multiscale AESMs based on geometric mean. This scheme inherits the merits of the isotropic/anisotropic Gaussian kernel based method and suppress the scale-space diffusion at the same time. Experimental results on example images in the EUSFLAT Edge Detection Competition dataset illustrate that the proposed method outperforms the widely used Canny method and the state-of-the-art isotropic/anisotropic Gaussian kernel method.
机译:边缘检测在许多计算机视觉任务中发挥着重要作用,但在多尺度边缘强度测量的融合中有有限的文献。在本文中,我们在多尺度空间中使用各向同性和各向异性高斯核来延伸边缘检测器,以获得多尺寸各向异性边缘强度测量(AESMS)。随后,我们提出了一种基于几何平均值的多尺度AESMS的融合方案。该方案继承了基于各向同性/各向异性高斯核的方法的优点,并同时抑制了刻度空间扩散。 EUSFLAT边缘检测竞争数据集中的示例图像上的实验结果表明,所提出的方法优于广泛使用的罐头方法和最先进的各向同性/各向异性高斯高斯核方法。

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