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Two preprocessing techniques based on grey level and geometric thickness to improve segmentation results

机译:两种基于灰度和几何厚度的预处理技术可提高分割效果

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摘要

Two different techniques of performing preprocessing of an image to improve segmentation results are presented. The methods use the grey level thickness of the objects, in order to find the resulting image, by varying the size of a neighbourhood depending on the sum of the included grey levels. The first method, RW, uses the random walk of a particle, defined in the neighbourhood of the position of the particle. The resulting image holds the number of times the particle visits a pixel. Instead of randomization to find the number of visits, the second method, IP, scans the image iteratively and calculates the expected value of the same number. Three different kinds of real world applications are demonstrated to get better segmentation results with the preprocessing techniques included than without.
机译:介绍了执行图像预处理以改善分割结果的两种不同技术。该方法通过根据所包括的灰度级的总和来改变邻域的大小来使用对象的灰度级厚度,以便找到所得图像。第一种方法RW使用在粒子位置附近定义的粒子随机游走。生成的图像保留粒子访问像素的次数。第二种方法IP而不是随机找到访问次数,而是迭代扫描图像并计算相同次数的期望值。演示了三种不同的现实世界应用程序,其中包含的预处理技术比没有使用时可获得更好的分割结果。

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