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Shape L'Ane Rouge: Sliding Wavelets for Indexing and Retrieval

机译:形状L'Ane Rouge:用于索引和检索的滑动小波

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Shape representation and retrieval of stored shape models are becoming increasingly more prominent infields such as medical imaging, molecular biology and remote sensing. We present a novel framework that directly addresses the necessity for a rich and compressible shape representation, while simultaneously providing an accurate method to index stored shapes. The core idea is to represent point-set shapes as the square root of probability densities expanded in a wavelet basis. We then use this representation to develop a natural similarity metric that respects the geometry of these probability distributions, i.e. under the wavelet expansion, densities are points on a unit hypersphere and the distance between densities is given by the separating arc length. The process uses a linear assignment solver for non-rigid alignment between densities prior to matching; this has the connotation of "sliding" wavelet coefficients akin to the sliding block puzzle L'Ane Rouge. We illustrate the utility of this framework by matching shapes from the MPEG-7 data set and provide comparisons to other similarity measures, such as Euclidean distance shape distributions.
机译:形状表示和存储形状模型的检索变得越来越突出的界面,如医学成像,分子生物学和遥感。我们提出了一种新颖的框架,可直接解决丰富和可压缩形状表示的必要性,同时提供准确的方法来索引存储的形状。核心思想是表示点设置的形状,因为概率密度的平方根以小波膨胀。然后,我们使用该表示来开发尊重这些概率分布的几何形状的自然相似度,即在小波膨胀下,密度在单位间距上是点,密度之间的距离由分离弧长给出。该过程使用线性分配求解器进行匹配前密度之间的非刚性对准;这具有“滑动”小波系数的内涵类似于滑动块拼图L'Ane Rouge。我们通过从MPEG-7数据集中匹配形状并提供与其他相似度措施的比较,例如欧几里德距离形状分布来说明该框架的实用性。

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