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SAR Satellite Image Interpretation Based On The Multilayer Level Set Approach

机译:基于多层水平集方法的SAR卫星图像解译

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Synthetic aperture radar, SAR, is a remote sensing way to explore the ground truth in day and night. How to interpreter the given SAR images provides an import clue to study the characteristics of the imaged areas. However, the image interpretations for SAR images are difficult because of the effects of speckle signals shown in the images. In order to solve the problem, several algorithms have been proposed. The processed results show the proposed algorithms still have their own limits on reducing the effect of speckle signals. In this paper, the multilayer level set approach is employed to have the SAR images be grouped into several sub-regions such that the segmented regions are homogeneous. Based on this minimization of the energy, the multilayer level set method implicitly presents the regional boundaries as several nested level lines. By increasing iterations and preselected level values, these lines evolve close to the level boundaries based on the energy minimization. This method provides numerical stability and quick convergence. In order to implement the multilayer level set approach, several level values need to be established firstly. Those level values are determined with calculating the average values from the classified groups with applying K-means method. Based on the four-color theory, the multilayer level set method is able to generate an optimal piecewise continuous approximation for the SAR image such that each approximation sub-region is homogeneous. From the processed results, the multilayer level set approach can efficiently reduce the effect of the speckle signals, and quickly segment SAR images for further image interpretation.
机译:合成孔径雷达(SAR)是一种昼夜探索地面真相的遥感方法。如何解释给定的SAR图像为研究成像区域的特征提供了重要的线索。但是,由于图像中显示的斑点信号的影响,因此很难对SAR图像进行图像解释。为了解决该问题,已经提出了几种算法。处理结果表明,所提出的算法在减少散斑信号的影响上仍然有其自身的局限性。在本文中,采用多层水平集方法将SAR图像分为几个子区域,以使分割区域是均匀的。基于能量的这种最小化,多层水平集方法隐含地将区域边界呈现为几条嵌套的水平线。通过增加迭代次数和预选的液位值,这些线会基于能量最小化而逐渐靠近液位边界。该方法提供数值稳定性和快速收敛性。为了实现多层级别设置方法,首先需要建立几个级别值。这些水平值是通过应用K-means方法从分类组中计算平均值而确定的。基于四色理论,多层水平集方法能够为SAR图像生成最佳的分段连续逼近,以使每个逼近子区域都是均匀的。从处理的结果来看,多层水平集方法可以有效地减少散斑信号的影响,并快速分割SAR图像以进行进一步的图像解释。

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