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Range image segmentation based on differential geometry: a hybrid approach

机译:基于微分几何的距离图像分割:一种混合方法

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The authors describe a hybrid approach to the problem of image segmentation in range data analysis, where hybrid refers to a combination of both region- and edge-based considerations. The range image of 3-D objects is divided into surface primitives which are homogeneous in their intrinsic differential geometric properties and do not contain discontinuities in either depth of surface orientation. The method is based on the computation of partial derivatives, obtained by a selective local biquadratic surface fit. Then, by computing the Gaussian and mean curvatures, an initial region-gased segmentation is obtained in the form of a curvature sign map. Two additional initial edge-based segmentations are also computed from the partial derivatives and depth values, namely, jump and roof-edge maps. The three image maps are then combined to produce the final segmentation. Experimental results obtained for both synthetic and real range data of polyhedral and curved objects are given.
机译:作者描述了一种用于距离数据分析中图像分割问题的混合方法,其中混合是指基于区域和基于边缘的考虑因素的组合。 3-D对象的距离图像分为表面图元,这些表面图元在其固有的微分几何特性上是同质的,并且在任何一个表面方向深度上均不包含不连续性。该方法基于通过选择局部双二次曲面拟合获得的偏导数的计算。然后,通过计算高斯曲率和平均曲率,以曲率符号图的形式获得初始区域充气分割。还从偏导数和深度值(即跳跃和屋顶边缘贴图)计算出两个附加的基于初始边缘的分割。然后将这三个图像图进行组合以产生最终的分割。给出了从多面体和弯曲物体的合成和真实范围数据获得的实验结果。

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