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A robust 2D Otsu's thresholding method in image segmentation

机译:强大的2D Otsu阈值分割方法

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Otsu's method is a classic thresholding approach in image segmentation. While the two-dimensional (2D) Otsu's method performs better than the original one in segmenting images corrupted by noise, it is sensitive to Salt&Pepper noise. In order to solve this problem, we present a robust 2D Otsu's thresholding method in this paper. Our method builds the 2D histogram based on the image smoothed by both median and average filters, in contrast to the traditional method using averaged image only. Then the optimal threshold vector is determined with two one-dimensional searches on the two dimensions of the 2D histogram. In addition, we introduce a region post-processing step to deal with the pixels of noise and edges. Compared with the traditional 2D Otsu's method, our method improves the robustness to Salt&Pepper noise and Gaussian noise significantly. Experimental results on both synthetic and real images validate the effectiveness of the proposed MAOTSU_2D method. (C) 2016 Elsevier Inc. All rights reserved.
机译:Otsu的方法是图像分割中的经典阈值方法。虽然二维(2D)Otsu的方法在分割受噪声破坏的图像方面比原始方法要好,但是它对Salt&Pepper噪声敏感。为了解决这个问题,本文提出了一种鲁棒的2D Otsu阈值化方法。与仅使用平均图像的传统方法相比,我们的方法基于通过中值和平均滤波器平滑后的图像来构建2D直方图。然后,通过对2D直方图的二维进行两次一维搜索来确定最佳阈值向量。此外,我们引入了区域后处理步骤来处理噪声和边缘像素。与传统的2D Otsu方法相比,我们的方法大大提高了对Salt&Pepper噪声和Gaussian噪声的鲁棒性。在合成图像和真实图像上的实验结果验证了所提出的MAOTSU_2D方法的有效性。 (C)2016 Elsevier Inc.保留所有权利。

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