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Extreme shape analysis

机译:极限形状分析

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摘要

We consider the analysis of extreme shapes rather than the more usual mean- and variance-based shape analysis. In particular, we consider extreme shape analysis in two applications: human muscle fibre images, where we compare healthy and diseased muscles, and temporal sequences of DNA shapes from molecular dynamics simulations. One feature of the shape space is that it is bounded, so we consider estimators which use prior knowledge of the upper bound when present. Peaks-over-threshold methods and maximum-likelihood-based inference are used. We introduce fixed end point and constrained maximum likelihood estimators, and we discuss their asymptotic properties for large samples. It is shown that in some cases the constrained estimators have half the mean-square error of the unconstrained maximum likelihood estimators. The new estimators are applied to the muscle and DNA data, and practical conclusions are given.
机译:我们考虑对极端形状的分析,而不是更常见的基于均值和方差的形状分析。特别是,我们考虑了两种应用中的极限形状分析:人体肌肉纤维图像,用于比较健康和患病的肌肉;以及分子动力学模拟中DNA形状的时间序列。形状空间的一个特征是它是有界的,因此我们考虑使用存在上界的先验知识的估计量。使用峰值阈值方法和基于最大似然的推断。我们介绍了固定终点和约束最大似然估计,并讨论了它们在大样本上的渐近性质。结果表明,在某些情况下,约束估计量的均方误差是无约束最大似然估计量的一半。将新的估计器应用于肌肉和DNA数据,并给出了实用的结论。

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