首页> 外文会议>Image Processing pt.2; Progress in Biomedical Optics and Imaging; vol.6 no.24 >Statistical Shape Model Generation Using Nonrigid Deformation of a Template Mesh
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Statistical Shape Model Generation Using Nonrigid Deformation of a Template Mesh

机译:使用模板网格的非刚性变形生成统计形状模型

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Active shape models (ASMs) have been studied extensively for the statistical analysis of three-dimensional shapes. These models can be used as prior information for segmentation and other image analysis tasks. In order to create an ASM, correspondence between surface points on the training shapes must be provided. Various groups have previously investigated methods that attempted to provide correspondences between points on pre-segmented shapes. This requires a time-consuming segmentation stage before the statistical analysis can be performed. This paper presents a method of ASM generation that requires as input only a single segmented template shape obtained from a mean grayscale image across the training set. The triangulated mesh representing this template shape is then propagated to the other shapes in the training set by a nonrigid transformation. The appropriate transformation is determined by intensity-based nonrigid registration of the corresponding grayscale images. Following the transformation of the template, the mesh is treated as an active surface, and evolves towards the image edges while preserving certain curvature constraints. This process results in automatic segmentation of each shape, but more importantly also provides an automatic correspondence between the points on each shape. The resulting meshes are aligned using Procrustes analysis, and a principal component analysis is performed to produce the statistical model. For demonstration, a model of the lower cervical vertebrae (C6 and C7) was created. The resulting model is evaluated for accuracy, compactness, and generalization ability.
机译:主动形状模型(ASM)已被广泛研究用于三维形状的统计分析。这些模型可用作分割和其他图像分析任务的先验信息。为了创建ASM,必须提供训练形状上的曲面点之间的对应关系。各个小组先前已经研究了试图提供预分割形状上的点之间的对应关系的方法。在执行统计分析之前,这需要一个耗时的细分阶段。本文介绍了一种ASM生成方法,该方法仅需要从整个训练集的平均灰度图像获得的单个分段模板形状作为输入。然后,通过非刚性变换将表示此模板形状的三角网格传播到训练集中的其他形状。适当的变换由相应灰度图像的基于强度的非刚性配准确定。转换模板后,将网格视为活动表面,并在保留某些曲率约束的同时向图像边缘演化。该过程导致每个形状的自动分割,但更重要的是,还提供了每个形状上的点之间的自动对应。使用Procrustes分析将生成的网格对齐,并执行主成分分析以生成统计模型。为了演示,创建了下颈椎模型(C6和C7)。评估所得模型的准确性,紧凑性和泛化能力。

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