Texture image segmentation based on the elements of Gray Level Aura Matrices

Zohra Haliche, K. Hammouche, J. Postaire
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引用次数: 1

Abstract

We present a method for texture image segmentation based on Gray Level Aura Matrices (GLAMs). The GLAMs allow describing the relationship between the target pixel and its neighboring pixels located in neighborhood structure defined by a structuring element. Their elements are directly used in this paper instead of Haralick features in order to characterize each pixel of the image. The pixels having the same features are then gathered into classes using the Fuzzy C-means algorithm. Experiments results on synthetic and real images show the relevance of the elements of GLAMs in the segmentation of images with different textures.
基于灰度光环矩阵元素的纹理图像分割
提出了一种基于灰度光环矩阵的纹理图像分割方法。该GLAMs允许描述目标像素与其位于由结构元素定义的邻域结构中的相邻像素之间的关系。本文直接使用它们的元素代替Haralick特征来表征图像的每个像素。然后使用模糊c均值算法将具有相同特征的像素聚集到类中。在合成图像和真实图像上的实验结果表明,GLAMs元素在不同纹理图像的分割中具有相关性。
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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