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A NOVEL APPROACH TO IMAGE THRESHOLDING BASED ON 2D HOMOGENEITY HISTOGRAM AND MAXIMUM FUZZY ENTROPY

机译:基于二维均匀性直方图和最大模糊熵的图像阈值处理新方法

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摘要

Image thresholding is an important topic for image processing, pattern recognition and computer vision. Fuzzy set theory has been successfully applied to many areas, and it is generally believed that image processing bears some fuzziness in nature. In this paper, we employ the newly proposed 2D homogeneity histogram (homogram) and the maximum fuzzy entropy principle to perform thresholding. We have conducted experiments on a variety of images. The experimental results demonstrate that the proposed approach can select the thresholds automatically and effectively. Especially, it not only can process "clean" images, but also can process images with different kinds of noises and images with multiple kinds of noise well without knowing the type of the noise, which is the most difficult task for image thresholding. It will be useful for applications in computer vision and image processing.
机译:图像阈值化是图像处理,模式识别和计算机视觉的重要主题。模糊集理论已经成功地应用于许多领域,并且通常认为图像处理在本质上具有一些模糊性。在本文中,我们采用新提出的2D均匀性直方图(直方图)和最大模糊熵原理进行阈值化。我们已经对各种图像进行了实验。实验结果表明,该方法可以自动,有效地选择阈值。特别是,它不仅可以处理“干净”的图像,而且可以在不知道噪声类型的情况下很好地处理具有各种噪声的图像和具有多种噪声的图像,这是图像阈值处理中最困难的任务。对于计算机视觉和图像处理中的应用将很有用。

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