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Fast binary segmentation of gray-level images using a morphological operator

机译:使用形态学运算符对灰度图像进行快速二进制分割

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Abstract: During the binary segmentation an image transforms into a binary representation, in which the regions of interest as objects (or their parts) for further analysis are detected as connected components. The underlying image model for binary segmentation and analysis is composed of two separated parts: the first one is to model image domain by using notions and operations of mathematical morphology and the second one is to model the values of intensity function, defined on this domain. The proposed morphological operator transforms gray-scale images into binary ones by comparing image local properties within the structuring elements or structuring regions with a tolerance threshold, giving eroded objects as connected components and dilated contours for further analysis. Since the implementation of this operation is rather complicated, fast algorithms to calculate local properties of intensity function (e.g. mean, square deviation, median, absolute deviation, etc.), using spatial recursion, have been developed. They give a speed-up of order O(N), where N $EQ L $MUL L is the structuring element size, for computing, e.g. local mean and variance, as compared with their naive calculation. !12
机译:摘要:在二进制分割过程中,图像转换为二进制表示形式,其中将感兴趣的区域作为对象(或它们的零件)进行进一步分析,将其检测为连接的组件。用于二进制分割和分析的基础图像模型由两部分组成:第一部分是通过使用数学形态学的概念和运算来对图像域进行建模,第二部分是对该域上定义的强度函数的值进行建模。通过将结构元素或结构区域内的图像局部属性与公差阈值进行比较,提出的形态学算子将灰度图像转换为二值图像,从而将侵蚀的对象作为连接的分量和膨胀的轮廓进行进一步分析。由于此操作的实施相当复杂,因此已开发出使用空间递归来计算强度函数的局部属性(例如,均值,平方偏差,中位数,绝对偏差等)的快速算法。它们给出了阶数O(N)的加速,其中N $ EQ L $ MUL L是结构元素的大小,用于计算,例如与其平均计算相比,局部均值和方差。 !12

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