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A PARTICLE FILTER APPROACH TO LEARNING PARTIAL SHAPE CORRESPONDENCES

机译:学习部分形状对应的粒子滤波器方法

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This paper describes a Particle Filter approach to solve the partial shape correspondence problem. The shapes are represented by ordered sequences of local features along their polygonal boundary. Learning domain knowledge which specifies additional global constraints, the Particle Filter system finds locally and globally consistent correspondences between similar shape parts. Experiments using standard alignment techniques based on the given correspondence relationships, demonstrate the advantages of this approach, outperforming related approaches in partial shape matching
机译:本文描述了解决部分形状对应问题的颗粒滤波器方法。形状由沿着它们的多边形边界的局部特征的有序序列表示。学习域知识指定其他全局约束,粒子过滤系统在类似的形状部分之间找到本地和全球一致的对应关系。基于给定的对应关系的标准对准技术进行实验,证明了这种方法的优点,以局部形状匹配而表现优于相关的方法

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