基于信念传播的高斯模型区域提取

A. Minagawa, K. Uda, N. Tagawa
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引用次数: 5

摘要

提出了一种基于循环网络信念传播的快速区域提取算法。该区域分割问题包括区域提取问题,无论采用传统的迭代方法还是统计抽样方法,都需要耗费大量的计算量。在该方法中,将高斯循环信念传播应用于连续值问题,以取代离散标记问题。结果表明,该算法可以有效地减少区域提取的计算量,并将其应用于云纹地形中不连续区域的提取。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Region extraction based on belief propagation for gaussian model
We show a fast algorithm for region extraction based on belief propagation with loopy networks. The solution to this region segmentation problem, which includes the region extraction problem, is of significant computational cost if a conventional iterative approach or statistical sampling methods are applied. In the proposed approach, Gaussian loopy belief propagation is applied to a continuous-valued problem that replaces the discrete labeling problem. We show that the computational cost for region extraction can be reduced by using this algorithm, and apply the method to the extraction of a discontinuous area in Moire topography.
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