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An Efficient Object Recognition Method Based On Pyramid Match Kernel Using Shape Contexts

机译:基于形状上下文的基于金字塔匹配核的有效目标识别方法

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In object recognition problems, we may face the situation in which two similar objects with very different angles are mistaken to be two different objects. Here we present a novel approach to solve this kind of problem by emphasizing the shape recognition. In our framework, the measurement of similarity is preceded by (1) solving correspondences between points on the two shapes, (2) using the correspondences to estimate an aligning transform, (3) after transformation, we use the PMK to estimate the similarity of the two shapes. In order to solve the correspondence problem, we attach a descriptor, the shape context, to each point. The shape context at a reference point captures the distribution of the remaining points related to it, thus offering a globally discriminative characterization. Corresponding points on two similar shapes will have similar shape contexts, which enables us to solve correspondences as an optimal assignment problem. Given the point correspondences, we estimate the transformation which best aligns the two shapes; then we use kernel-based classification method--pyramid match kernel to estimate the similarity between two shapes.
机译:在物体识别问题中,我们可能会遇到这样的情况,即两个角度相差很大的相似物体被误认为是两个不同的物体。在这里,我们提出一种通过强调形状识别来解决此类问题的新颖方法。在我们的框架中,相似度的测量之前是(1)解决两个形状上的点之间的对应关系,(2)使用对应关系来估计对齐变换,(3)变换后,我们使用PMK来估计相似度。这两个形状。为了解决对应问题,我们在每个点上附加了一个描述符,即形状上下文。参考点处的形状上下文捕获了与之相关的其余点的分布,从而提供了全局区分性。两个相似形状上的对应点将具有相似的形状上下文,这使我们能够将对应作为最佳分配问题进行求解。给定点的对应关系,我们估算出最能使两个形状对齐的变换。然后我们使用基于核的分类方法-金字塔匹配核来估计两个形状之间的相似度。

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