A spectral analysis of perceptual shape variation

Alex Hughes, Richard C. Wilson
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引用次数: 2

Abstract

Many methods of statistical shape description operate by describing shapes in terms of the variations inherent in a training set. This represents a limitation in that a training set must be assembled beforehand, and that only shapes lying within the span of the training data can be succinctly described. We develop a statistical representation that describes a shape in terms of the variations inherent in that shape, without reference to training images. Our new representation is then used to characterise a number of perceptual deformations, with the intent being to investigate how well such deformations can be captured and modelled by our description.
感知形状变化的光谱分析
统计形状描述的许多方法是根据训练集中固有的变化来描述形状的。这代表了一个限制,因为必须事先组装训练集,并且只有位于训练数据范围内的形状才能被简洁地描述。我们开发了一种统计表示,根据该形状固有的变化来描述形状,而不参考训练图像。然后,我们的新表示用于描述许多感知变形,目的是研究如何很好地捕获这些变形并通过我们的描述建模。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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