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MRF model-based segmentation of range images

机译:基于MRF模型的范围图像分割

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Consideration is given to the application of Markov random field (MRF) models to the problem of edge labeling in range images. The authors propose a segmentation algorithm which handles both jump and crease edges. The jump and crease edge likelihoods at each edge site are computed using special local operators. These likelihoods are then combined in a Bayesian framework with a MRF prior distribution on the edge labels to derive the a posterior distribution of labels. An approximation to the maximum a posteriori estimate is used to obtain the edge labelings. The edge-based segmentation has been integrated with a region-based segmentation scheme resulting in a robust surface segmentation method.
机译:考虑Markov随机字段(MRF)模型在范围图像中的边缘标签问题中的应用。作者提出了一种分割算法,其处理跳转和折痕边缘。使用特殊的本地操作员计算每个边缘站点的跳转和折弯边缘似然。然后将这些似然在贝叶斯框架中组合在边缘标签上的MRF先前分布,以导出标签的后部分布。用于最大后后估计的近似值用于获得边缘贴标签。基于边缘的分割已经与基于区域的分割方案集成在一起,导致鲁棒表面分割方法。

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