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Automatic 3-D grayscale volume matching and shape analysis

机译:自动3-D灰度体积匹配和形状分析

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Recently, shape matching in three dimensions (3-D) has been gaining importance in a wide variety of fields such as computer graphics, computer vision, medicine, and biology, with applications such as object recognition, medical diagnosis, and quantitative morphological analysis of biological operations. Automatic shape matching techniques developed in the field of computer graphics handle object surfaces, but ignore intensities of inner voxels. In biology and medical imaging, voxel intensities obtained by computed tomography (CT), magnetic resonance imagery (MRI), and confocal microscopes are important to determine point correspondences. Nevertheless, most biomedical volume matching techniques require human interactions, and automatic methods assume matched objects to have very similar shapes so as to avoid combinatorial explosions of point. This article is aimed at decreasing the gap between the two fields. The proposed method automatically finds dense point correspondences between two grayscale volumes; i.e., finds a correspondent in the second volume for every voxel in the first volume, based on the voxel intensities. Mutiresolutional pyramids are introduced to reduce computational load and handle highly plastic objects. We calculate the average shape of a set of similar objects and give a measure of plasticity to compare them. Matching results can also be used to generate intermediate volumes for morphing. We use various data to validate the effectiveness of our method: we calculate the average shape and plasticity of a set of fly brain cells, and we also match a human skull and an orangutan skull.
机译:近年来,三维(3-D)形状匹配在诸如计算机图形学,计算机视觉,医学和生物学等广泛领域中日益重要,其应用领域包括对象识别,医学诊断和定量形态分析。生物操作。在计算机图形学领域开发的自动形状匹配技术可处理对象表面,但会忽略内部体素的强度。在生物学和医学成像中,通过计算机断层扫描(CT),磁共振成像(MRI)和共聚焦显微镜获得的体素强度对于确定点对应关系很重要。尽管如此,大多数生物医学体积匹配技术都需要人与人之间的交互,并且自动方法假定匹配的对象具有非常相似的形状,从而避免了点的组合爆炸。本文旨在缩小这两个领域之间的差距。所提出的方法自动找到两个灰度体积之间的稠密点对应关系。即,基于体素强度在第二体积中找到第一体积中每个体素的对应物。引入了多分辨率金字塔以减少计算负荷并处理高塑性物体。我们计算一组相似物体的平均形状,并给出可塑性的度量以进行比较。匹配结果还可以用于生成中间体积以进行变形。我们使用各种数据来验证我们方法的有效性:我们计算了一组苍蝇脑细胞的平均形状和可塑性,还匹配了人类的头骨和猩猩的头骨。

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