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首页> 外文期刊>ACM Transactions on Graphics >Geometry and Context for Semantic Correspondences and Functionality Recognition in Man-Made 3D Shapes
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Geometry and Context for Semantic Correspondences and Functionality Recognition in Man-Made 3D Shapes

机译:人造3D形状中语义对应和功能识别的几何和上下文

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摘要

We address the problem of automatic recognition of functional parts of man-made 3D shapes in the presence of significant geometric and topolog-ical variations. We observe that under such challenging circumstances, the context of a part within a 3D shape provides important cues for learning the semantics of shapes. We propose to model the context as structural relationships between shape parts and use them, in addition to part geometry, as cues for functionality recognition. We represent a 3D shape as a graph interconnecting parts that share some spatial relationships. We model the context of a shape part as walks in the graph. Similarity between shape parts can then be defined as the similarity between their contexts, which in turn can be efficiently computed using graph kernels. This formulation enables us to: (1) find part-wise semantic correspondences between 3D shapes in a nonsupervised manner and without relying on user-specified textual tags, and (2) design classifiers that learn in a supervised manner the functionality of the shape components. We specifically show that the performance of the proposed context-aware similarity measure in finding part-wise correspondences outperforms geometry-only-based techniques and that contextual analysis is effective in dealing with shapes exhibiting large geometric and topological variations.
机译:我们解决了在存在明显的几何和拓扑变化的情况下自动识别人造3D形状的功能部件的问题。我们观察到,在这种具有挑战性的情况下,3D形状内零件的上下文为学习形状的语义提供了重要线索。我们建议将上下文建模为形状零件之间的结构关系,并使用它们(除了零件几何形状)作为功能识别的提示。我们将3D形状表示为图形,将共享某些空间关系的零件互连起来。我们在图中行走时对形状零件的上下文进行建模。然后可以将形状部分之间的相似性定义为它们的上下文之间的相似性,而这些相似性又可以使用图形内核进行有效地计算。这种表述使我们能够:(1)以非监督方式找到3D形状之间的部分语义对应关系,而无需依赖于用户指定的文本标签;以及(2)以监督方式学习形状组件功能的设计分类器。我们具体表明,拟议中的上下文感知相似性度量在查找部分对应关系方面的性能优于仅基于几何的技术,并且上下文分析在处理呈现较大几何和拓扑变化的形状方面有效。

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