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Statistical models for deformable templates in image and shape analysis

机译:图像和形状分析中可变形模板的统计模型

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High dimensional data are more and more frequent in many application fields. It becomes particularly important to be able to extract meaningful features from these data sets. Deformable template model is a popular way to achieve this. This paper is a review on the statistical aspects of this model as well as its generalizations. We describe the different mathematical frameworks to handle different data types as well as the deformations. We recall the theoretical convergence properties of the estimators and the numerical algorithm to achieve them. We end with some published examples.
机译:高维数据在许多应用领域中越来越普遍。能够从这些数据集中提取有意义的特征变得尤为重要。可变形模板模型是实现此目的的一种流行方法。本文是对该模型的统计方面及其概括的综述。我们描述了不同的数学框架来处理不同的数据类型以及变形。我们回想一下估计量的理论收敛性质和实现它们的数值算法。我们以一些公开的例子结束。

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