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Structural indexing: efficient 3-D object recognition

机译:结构索引:高效的3D对象识别

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The authors present an approach for the recognition of multiple 3-D object models from three 3-D scene data. The approach uses two different types of primitives for matching: small surface patches, where differential properties can be reliably computed, and lines corresponding to depth or orientation discontinuities. These are represented by splashes and 3-D curves, respectively. It is shown how both of these primitives can be encoded by a set of super segments, consisting of connected linear segments. These super segments are entered into a table and provide the essential mechanism for fast retrieval and matching. The issues of robustness and stability of the features are addressed in detail. The acquisition of the 3-D models is performed automatically by computing splashes in highly structured areas of the objects and by using boundary and surface edges for the generation of 3-D curves. The authors present results with the current system (3-D object recognition based on super segments) and discuss further extensions.
机译:作者提出了一种从三个3-D场景数据中识别多个3-D对象模型的方法。该方法使用两种不同类型的图元进行匹配:小的表面斑块(可以可靠地计算出微分特性)和对应于深度或方向不连续性的线。这些分别由飞溅和3-D曲线表示。它显示了如何通过由连接的线性段组成的一组超级段对这两个基元进行编码。这些超级段将输入到表中,并提供快速检索和匹配的基本机制。详细讨论了功能的健壮性和稳定性问题。通过计算对象的高度结构化区域中的飞溅并通过使用边界和表面边缘生成3-D曲线,可以自动执行3-D模型的获取。作者介绍了当前系统(基于超级片段的3-D对象识别)的结果,并讨论了进一步的扩展。

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