离散对称平面形状的单视图识别

O. Poliannikov, H. Krim
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引用次数: 0

摘要

在本文中,我们考虑了一个从单一视图识别离散对称形状的问题。对于所提出的一类对象,我们根据它们的“骨架”推导出它们的表示,这反过来又产生了可以从任何单个图像计算的不变量。此外,这种表示几乎是最优的,因为它几乎捕获了图像中包含的所有几何信息。此外,我们考虑噪声图像的情况,即当定义形状的点已知直至加性高斯噪声时。我们推导了噪声“骨架”点的分布,并提出了一种最优技术来估计真正的“骨架”,从而识别真实的形状。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
On identification of discrete symmetric planar shapes from a single view
In this paper, we consider a problem of identifying a discrete symmetric shape from a single view. For the proposed class of objects, we derive their representation in terms of their "skeletons", which in turn yield invariants readily computable from any single image. In addition, the representation is almost optimal in the sense that it captures virtually all geometric information contained in the image. Further, we consider the case of a noisy image, i.e. when the points defining a shape are known up to an additive Gaussian noise. We derive the distribution for the noisy "skeleton" points and propose an optimal technique to estimate the true "skeleton" and thus identify the true shape.
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