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SAR Image Superpixels by Minimizing a Statistical Model and Ratio of Mean Intensity Based Energy

机译:通过最小化平均强度能量的统计模型和比例来实现SAR图像超像素

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Superpixel based SAR image classification methods can take advantage of the contextual information in SAR images effectively, leading to robust classification results. The accuracy of superpixel generation has great impact on the performance of the following classification stage. In this paper, based on the property of SAR images, an energy minimizing based superpixel generation approach is proposed for SAR images. The energy function is composed of two parts. The data term is defined according to the statistical characteristic of SAR images, and the regularization term is defined by using the ratio of mean intensity. Then the superpixel generation is performed by energy minimizing with graph cut based energy minimization method. Experimental results on both synthetic and real SAR image data verify the good performance of the proposed approach. Compared with several superpixel approaches, the proposed approach can deal with speckle noise more effectively, resulting in better applicability for SAR images.
机译:基于SuperPixel的SAR图像分类方法可以有效地利用SAR图像中的上下文信息,导致强大的分类结果。超像素生成的准确性对以下分类阶段的性能产生了很大的影响。本文基于SAR图像的性质,提出了一种基于Superpixel生成方法的能量,用于SAR图像。能量功能由两部分组成。数据项根据SAR图像的统计特性定义,并且通过使用平均强度的比率来定义正则化术语。然后通过基于曲线切割的能量最小化方法最小化,通过能量最小化来执行超顶旋装生成。合成和真实SAR图像数据的实验结果验证了所提出的方法的良好性能。与几种超像素接近相比,所提出的方法可以更有效地处理散斑噪声,从而更好地对SAR图像适用性。

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