首页> 外文会议>International Conference on Medical Image Computing and Computer-Assisted Intervention;MICCAI 2008 >Detection of Deformable Objects in 3D Images Using Markov-Chain Monte Carlo and Spherical Harmonics
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Detection of Deformable Objects in 3D Images Using Markov-Chain Monte Carlo and Spherical Harmonics

机译:使用马尔可夫链蒙特卡罗和球谐函数检测3D图像中的可变形物体

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We address the problem of segmenting 3D microscopic volumetric intensity images of a collection of spatially correlated objects (such as fluores-cently labeled nuclei in a tissue). This problem arises in the study of tissue morphogenesis where cells and cellular components are organized in accord with biological role and fate. We formulate the image model as stochastically generated based on biological priors and physics of image formation. We express the segmentation problem in terms of Bayesian inference and use data-driven Markov Chain Monte Carlo to fit the image model to data. We perform an initial step in which the intensity volume is approximated as an expansion in 4D spherical harmonics, the coefficients of which capture the general organization of objects. Since cell nuclei are membrane-bound their shapes are subject to membrane lipid bilayer bending energy, which we use to constrain individual contours. Moreover, we parameterize the nuclear contours using spherical harmonic functions, which provide a shape description with no restriction to particular symmetries. We demonstrate the utility of our approach using synthetic and real fluorescence microscopy data.
机译:我们解决了对空间相关对象(例如组织中以荧光为中心标记的核)集合的3D显微体积强度图像进行分割的问题。这个问题出现在组织形态发生的研究中,其中细胞和细胞成分是根据生物学作用和命运来组织的。我们将图像模型公式化为根据生物学先验和图像形成物理学随机生成的图像模型。我们用贝叶斯推断来表达分割问题,并使用数据驱动的马尔可夫链蒙特卡罗方法将图像模型拟合到数据中。我们执行一个初始步骤,在该步骤中,强度体积近似为4D球谐函数的展开,其系数捕获对象的一般组织。由于细胞核是膜结合的,因此它们的形状会受到膜脂质双层弯曲能的影响,我们将其用于约束各个轮廓。此外,我们使用球谐函数对核轮廓进行参数化,该函数提供了不受特定对称性限制的形状描述。我们使用合成的和真实的荧光显微镜数据证明了我们方法的实用性。

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