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Change Detection of Remote Sensing Images Based on Attention Mechanism

机译:基于注意机制改变遥感图像的改变检测

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In recent years, image processing methods based on convolutional neural networks (CNNs) have achieved very good results. At the same time, many branch techniques have been proposed to improve accuracy. Aiming at the change detection task of remote sensing images, we propose a new network based on U-Net in this paper. The attention mechanism is cleverly applied in the change detection task, and the data-dependent upsampling (DUpsampling) method is used at the same time, so that the network shows improvement in accuracy, and the calculation amount is greatly reduced. The experimental results show that, in the two-phase images of Yinchuan City, the proposed network has a better antinoise ability and can avoid false detection to a certain extent.
机译:近年来,基于卷积神经网络(CNNS)的图像处理方法取得了非常好的结果。同时,已经提出了许多分支技术来提高准确性。针对遥感图像的变更检测任务,我们在本文中提出了一种基于U-Net的新网络。注意机制巧妙地应用于变化检测任务中,并且同时使用数据相关的上采样(DUPS采样)方法,使得网络精确地显示提高,并且计算量大大减少。实验结果表明,在银川市的两相图像中,所提出的网络具有更好的抗体能力,可以避免在一定程度上避免错误检测。

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