A New Model for the Segmentation of Multiple, Overlapping, Near-Circular Objects

Csaba Molnar, Z. Kato, Ian H. Jermyn
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引用次数: 6

Abstract

Some of the most difficult image segmentation problems involve an unknown number of object instances that can touch or overlap in the image, e.g. microscopy imaging of cells in biology. In an important set of cases, the nature of the objects and the imaging process mean that when objects overlap, the resulting image is approximately given by the sum of intensities of individual objects; and, in addition, the objects of interest are `blob-like' or near-circular. We propose a new model for the segmentation of the objects in such images. The posterior energy is the sum of a prior energy modelling shape and a likelihood energy modelling the image. The prior is a multi-layer nonlocal phase field energy that favours configurations consisting of a number of possibly overlapping or touching near-circular object instances. The likelihood energy models the additive nature of image intensity in regions corresponding to overlapping objects. We use variational methods to compute a MAP estimate of the object instances in an image. We test the resulting model on synthetic data and on fluorescence microscopy images of cell nuclei.
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一种新的多、重叠、近圆目标分割模型
一些最困难的图像分割问题涉及未知数量的物体实例,这些物体实例可以在图像中触摸或重叠,例如生物学中细胞的显微镜成像。在一组重要的情况下,物体的性质和成像过程意味着,当物体重叠时,所得到的图像大约是由单个物体的强度总和给出的;此外,感兴趣的物体是“斑点状”或近圆形的。我们提出了一种新的图像对象分割模型。后验能量是建模形状的先验能量和建模图像的似然能量的总和。前者是一种多层非局域相场能量,它有利于由许多可能重叠或接触的近圆形物体实例组成的构型。似然能模拟了重叠物体对应区域图像强度的可加性。我们使用变分方法来计算图像中对象实例的MAP估计。我们在合成数据和细胞核荧光显微镜图像上测试了所得到的模型。
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