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Archetypal shapes based on landmarks and extension to handle missing data

机译:基于地标和扩展的原型形状处理缺失数据

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Archetype and archetypoid analysis are extended to shapes. The objective is to find representative shapes. Archetypal shapes are pure (extreme) shapes. We focus on the case where the shape of an object is represented by a configuration matrix of landmarks. As shape space is not a vectorial space, we work in the tangent space, the linearized space about the mean shape. Then, each observation is approximated by a convex combination of actual observations (archetypoids) or archetypes, which are a convex combination of observations in the data set. These tools can contribute to the understanding of shapes, as in the usual multivariate case, since they lie somewhere between clustering and matrix factorization methods. A new simplex visualization tool is also proposed to provide a picture of the archetypal analysis results. We also propose new algorithms for performing archetypal analysis with missing data and its extension to incomplete shapes. A well-known data set is used to illustrate the methodologies developed. The proposed methodology is applied to an apparel design problem in children.
机译:原型和原型分析延伸到形状。目标是找到代表性的形状。原型形状是纯(极端)形状。我们专注于对象的形状由地标的配置矩阵表示的情况。由于形状空间不是矢量空间,我们在切线空间中工作,围绕平均形状的线性化空间。然后,每个观察由实际观察(原型)或原型的凸组合近似,这是数据集中的观察的凸组合。这些工具可以促进对形状的理解,如在通常的多变量的情况下,因为它们位于聚类和矩阵分解方法之间的某个地方。还提出了一种新的Simplex可视化工具来提供原型分析结果的图片。我们还提出了新的算法,用于使用缺失的数据及其扩展来执行初值分析,以不完全形状。众所周知的数据集用于说明所开发的方法。该提出的方法应用于儿童的服装设计问题。

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