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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >Homological methods for extraction and analysis of linear features in multidimensional images
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Homological methods for extraction and analysis of linear features in multidimensional images

机译:提取和分析多维图像线性特征的同源方法

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摘要

We show that the problem of extracting linear features from a noisy image and counting the number of branching points may be successfully solved by homological methods applied directly to the image without the need of skeletonization and the analysis of the resulting graph. The method is based on the superimposition of a mask set over the original image and works even when the homology of the feature is trivial and in arbitrary dimension. We tested the method on computer-generated data, 2D images of blood vessels, 2D satellite images and 3D images of collagen fibers.
机译:我们表明,从噪声图像中提取线性特征并计算分支点数量的问题可以通过直接应用于图像的同源方法成功解决,而无需进行骨架化和结果图分析。该方法基于在原始图像上设置的蒙版的叠加,即使特征的同源性很小且具有任意维度,该方法也可以使用。我们在计算机生成的数据,血管的2D图像,2D卫星图像和3D胶原纤维图像上测试了该方法。

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