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Synthetic Aperture Radar Images Changes Detection based on Random Label Propagation

机译:基于随机标签传播的合成孔径雷达图像变化检测

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Change detection using SAR images has drawn increasing attentions in remote sensing communities. It is important to take advantage of the label information in changed and unchanged pixels classification. However, most existing methods ignore the fact that the training process may get corrupt when noise labels exist. To overcome the problem, in this paper, we study the influence of the label noise in SAR image change detection, and introduce a random label propagation (RLP) algorithm to cleanse the label noise. The key idea of RLP is to use the probability transform matrix that considers the prior information simultaneously to propagate the label information. Experimental results on two real SAR datasets demonstrated that the proposed method can effectively reduce the noisy labels and therefore improve the change detection performance.
机译:使用SAR图像进行变化检测在遥感社区中引起了越来越多的关注。重要的是在变化和不变的像素分类中利用标签信息。但是,大多数现有方法都忽略了以下事实:存在噪声标签时,训练过程可能会恶化。为了解决这个问题,本文研究了标签噪声对SAR图像变化检测的影响,并引入了随机标签传播(RLP)算法来清除标签噪声。 RLP的关键思想是使用同时考虑先验信息的概率变换矩阵来传播标签信息。在两个真实SAR数据集上的实验结果表明,该方法可以有效减少噪声标签,从而提高了变化检测性能。

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