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Synthetic Aperture Radar Image Segmentation Based on Improved Fuzzy Markov Random Field Model

机译:基于改进模糊马尔可夫随机场模型的合成孔径雷达图像分割

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Fuzzy Markov random field (FMRF) is a novel model for data clustering or image segmentation. This paper presents an improved FMRF segmentation method for synthetic aperture radar (SAR) images. The originality of this algorithm based on the fact that there are many interlaced edges or mixed areas among different types of regions in SAR images, which are often caused by the limited resolutions of the acquisition systems or speckle noise of sensor. Fuzzy method is just a shortcut for this kind of uncertain classification, which could give more flexible and reasonable segmentation than the 'hard' method. Although many scholars had done much work in the two-level FMRF segmentation, we improved the algorithm from two-level to multi-level and gave more clear and reasonable threshold definitions for hard and fuzzy MRF. The first part of our work involves definitions of the multi-level FMRF and standards for hard and fuzzy MRF. Then we apply the simulated annealing (SA) and expectation- maximization (EM) algorithms to search global optimal resolutions and estimate unknown parameters. Finally the segmentation experiments of two SAR images demonstrate that the proposed algorithm is efficient to distinguish interlaced edges or mixed areas and successful to restrain noise.
机译:模糊Markov随机字段(FMRF)是数据聚类或图像分割的新模型。本文提出了一种改进的合成孔径雷达(SAR)图像的FMRF分段方法。该算法的原始性基于以下事实:在SAR图像中不同类型的区域中存在许多交错边缘或混合区域,其通常由由采集系统的有限分辨率或传感器的散斑噪声引起的。模糊方法只是这种不确定分类的快捷方式,这可能提供比“硬”方法更灵活和合理的分割。虽然许多学者在两级FMRF分割中做了很多工作,但我们从两级到多级改进了算法,并为硬质和模糊MRF提供了更清晰合理的阈值定义。我们的工作的第一部分涉及多级FMRF和硬质和模糊MRF标准的定义。然后我们应用模拟退火(SA)和期望 - 最大化(EM)算法,以搜索全局最佳分辨率和估计未知参数。最后,两个SAR图像的分割实验表明,所提出的算法有效地区分隔行边缘或混合区域并成功地抑制噪声。

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