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Segmentation of color images by chromaticity features using self-organizing maps

机译:使用自组织地图对色度特征进行彩色图像的分割

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摘要

Usually, the segmentation of color images is performed using cluster-based methods and the RGB space to represent the colors. The drawback with these methods is the a priori knowledge of the number of groups, or colors, in the image; besides, the RGB space issensitive to the intensity of the colors. Humans can identify different sections within a scene by the chromaticity of its colors of, as this is the feature humans employ to tell them apart. In this paper, we propose to emulate the human perception of color by training a self-organizing map (SOM) with samples of chromaticity of different colors. The image to process is mapped to the HSV space because in this space the chromaticity is decoupled from the intensity, while in the RGB space this is not possible. Our proposal does not require knowing a priori the number of colors within a scene, and non-uniform illumination does not significantly affect the image segmentation. We present experimental results using some images from the Berkeley segmentation database by employing SOMs with different sizes, which are segmented successfully using only chromaticity features.
机译:通常,使用基于群集的方法和RGB空间来执行彩色图像的分割以表示颜色。这些方法的缺点是图像中的组数或颜色的先验知识;此外,RGB空间对颜色的强度有效。人类可以通过其颜色的色度来识别场景中的不同部分,因为这是人类雇用的特征。在本文中,我们建议通过培训自组织地图(SOM)与不同颜色的色度样本来模拟对颜色的人类感知。进程的图像被映射到HSV空间,因为在该空间中,色度从强度解耦,而在RGB空间中是不可能的。我们的提案不需要知道在场景中的颜色的数量,并且不均匀的照明不会显着影响图像分割。我们通过使用具有不同大小的SOM使用来自伯克利分段数据库的某些图像来呈现实验结果,这些尺寸仅使用两种色度特征成功分割。

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