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Mathematical morphology and active contours for object extraction and localization in medical images

机译:物理形态与医学图像对象提取与定位的活动轮廓

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Segmentation refers to the process of extracting meaningful regions from images. Such regions typically correspond to objects of interest or to their parts. The segmentation of medical images of soft tissues into regions (corresponding to meaningful biological structures such as cells and organs) is a difficult problem because of the large variety of their characteristics. Numerous segmentation methods have been proposed; their choice depend on the type of images, and of a priori knowledge about the objects to be detected. We present a method of segmentation that is combination of two attractive tools for segmentation, morphological segmentation and active contours. We describe the principle of morphological segmentation and active contours segmentation. We also present a method integrating the two approaches. Finally, we present three examples of the use of this method: segmentation of isolated nuclei for DNA quantification; segmentation of tumoral lobules in histological sections and extraction of the cerebellum in MR image of a human brain.
机译:分割是指从图像中提取有意义的区域的过程。这些区域通常对应于感兴趣的对象或其部件。软组织的医学图像分割成区域(对应于细胞和器官等有意义的生物结构)是由于它们的各种特征的各种难题。已经提出了许多分段方法;他们的选择取决于图像的类型,以及关于要检测的对象的先验知识。我们提出了一种分割方法,即两种有吸引力的分割工具组合,用于分割,形态分割和活性轮廓。我们描述了形态学分割和活跃轮廓分割的原则。我们还提供了一种集成这两种方法的方法。最后,我们提出了使用这种方法的三个例子:DNA定量分离核的分割;人脑MR图像组织学区中肿瘤叶片的分割及小脑脑的提取。

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