An expanded histogram approach for multilevel image thresholding

M. Quweider
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Abstract

In this paper a new image thresholding technique is proposed based on expanding the histogram of the image to accommodate spatial-related information in the form of a variance map of every gray level present in the image. The expanded histogram along with the variance levels are fed into a thresholding finding algorithm based on partitioning the interval (histogram) in an optimal way using dynamic programming with an entropy-based cost function. Compared with many existing methods, simulations on a range of images show good results. The effectiveness of the algorithm is shown even in the presence of low to moderate additive Gaussian noise levels.
一种用于多级图像阈值分割的扩展直方图方法
本文提出了一种新的图像阈值分割技术,该技术通过扩展图像的直方图来容纳图像中每个灰度级的方差图形式的空间相关信息。将扩展后的直方图与方差水平一起输入阈值查找算法,该算法使用基于熵的代价函数的动态规划以最优方式划分间隔(直方图)。与现有的许多方法相比,在一系列图像上的仿真显示了良好的效果。即使在存在低到中等加性高斯噪声水平的情况下,该算法的有效性也得到了证明。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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