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Statistical Shape Modeling Using Morphological Representations

机译:使用形态学表示统计形状建模

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The aim of this paper is to propose tools for statistical analysis of shape families using morphological operators. Given a series of shape families (or shape categories), the approach consists in empirically computing shape statistics (i.e., mean shape and variance of shape) and then to use simple algorithms for random shape generation, for empirical shape confidence boundaries computation and for shape classification using Bayes rules. The main required ingredients for the present methods are well known in image processing, such as watershed on distance functions or log-polar transformation. Performance of classification is presented in a well-known shape database.
机译:本文的目的是使用形态算子提出统计形状统计分析的工具。给定一系列形状家庭(或形状类别),该方法在经验计算形状统计(即,形状的平均形状和方差)中组成,然后使用简单的算法进行随机形态,用于经验形状置信界限计算和形状使用贝叶斯规则进行分类。本方法的主要成分在图像处理中是众所周知的,例如在距离函数或对数极转换上的流域。分类的性能在众所周知的形状数据库中呈现。

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