彩色图像新的张量表示:张量形态梯度在彩色图像分割中的应用

L. Rittner, F. C. Flores, R. Lotufo
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引用次数: 57

摘要

本文提出了一种新的HSI彩色图像的张量表示方法,其中每个像素是一个2乘以2的二阶张量,可以用椭圆表示。提出的张量形态梯度(TMG)被定义为由结构元素确定的邻域的最大不相似度,并用于分水岭分割框架。测试了许多张量不相似函数,并比较了其他颜色梯度。对比采用了一种新的分水岭分割彩色图像的定性评价方法,将n个最显著区域的分水岭线叠加在原始图像上进行视觉对比。实验表明,使用Frobenius范数不相似函数的TMG分割效果优于其他测试过的梯度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
New Tensorial Representation of Color Images: Tensorial Morphological Gradient Applied to Color Image Segmentation
This paper proposes a new Tensorial Representation of HSI color images, where each pixel is a 2 times 2 second order tensor, that can be represented by an ellipse. A proposed tensorial morphological gradient (TMG) is defined as the maximum dissimilarity over the neighborhood determined by a structuring element, and is used in the watershed segmentation framework. Many tensor dissimilarity functions are tested and other color gradients are compared. The comparison uses a new methodology for qualitative evaluation of color image segmentation by watershed, where the watershed lines of the n most significant regions are overlaid on the original image for visual comparison. Experiments show that the TMG using Frobenius norm dissimilarity function presents superior segmentation results, in comparison to other tested gradients.
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