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A graph-based technique for semi-supervised segmentation of 3D surfaces

机译:基于图的3D曲面半监督分割技术

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摘要

A wide range of cheap and simple to use 3D scanning devices has recently been introduced in the market. These tools are no longer addressed to research labs and highly skilled professionals, but rather, they are mostly designed to allow inexperienced users to acquire surfaces and whole objects easily and independently. In this scenario, the demand for automatic or semi-automatic algorithms for 3D data processing is increasing. In this paper we address the task of segmenting the acquired surfaces into perceptually relevant parts. Such a problem is well known to be ill-defined both for 2D images and 3D objects, as even with a perfect understanding of the scene, many different and incompatible semantic or syntactic segmentations can exist together. For this reason recent years have seen a great research effort into semi-supervised approaches, that can make use of small bits of information provided by the user to attain better accuracy. We propose a semi-supervised procedure that exploits an initial set of seeds selected by the user. In our framework segmentation happens by propagating part labels over a weighted graph representation of the surface directly derived from its triangulated mesh. The assignment of each element is driven by a greedy approach that accounts for the curvature between adjacent triangles. The proposed technique does not require to perform edge detection or to fit parametrized surfaces and its implementation is very straightforward. Still, despite its simplicity, tests made on a standard database of scanned 3D objects show its effectiveness even with moderate user supervision.
机译:市场上最近引入了各种廉价且易于使用的3D扫描设备。这些工具不再面向研究实验室和高技能的专业人员,而是主要用于允许没有经验的用户轻松,独立地获取表面和整个对象。在这种情况下,对用于3D数据处理的自动或半自动算法的需求正在增加。在本文中,我们解决了将获取的曲面分割成在感知上相关的部分的任务。众所周知,对于2D图像和3D对象,此类问题定义不明确,因为即使对场景有一个很好的理解,也可以同时存在许多不同且不兼容的语义或句法分割。因此,近年来,人们对半监督方法进行了大量研究,可以利用用户提供的少量信息来获得更高的准确性。我们提出了一种半监督程序,该程序利用用户选择的初始种子集。在我们的框架中,通过在直接从其三角网格划分的曲面的加权图表示上传播零件标签来进行分割。每个元素的分配由贪婪方法驱动,该方法考虑了相邻三角形之间的曲率。所提出的技术不需要执行边缘检测或拟合参数化的表面,并且其实现非常简单。尽管其简单性,但即使在中等用户监督下,对扫描的3D对象的标准数据库进行的测试仍显示其有效性。

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