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A Siamese convolutional neural network with high-low level feature fusion for change detection in remotely sensed images

机译:具有高低电平特征融合的暹罗卷积神经网络,用于在远程感测图像中改变检测

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摘要

Automatic change detection is an important and difficult task in the field of remote sensing. In this study, a deep Siamese convolutional network based on the fusion of high- and low-level features is proposed for change detection in remote sensing images. Given that low-level features correspond to low-order ones (e.g., texture) that are sensitive to change and that high-level features can accurately reflect image category information (e.g., semantic information), we fuse these features to enhance the abstractness and robustness of the extracted features in the change detection framework. The whole system is end-to-end and does not require any pre- or post-processing. Experimental results on three datasets show that our method is superior to other advanced methods by adding a high- and low-level fusion framework.
机译:自动变化检测是遥感领域的一个重要和艰巨的任务。 在本研究中,提出了一种基于高级和低级特征融合的深度暹罗卷积网络,以改变遥感图像中的检测。 考虑到低级特征对应于对变化敏感的低位(例如,纹理)并且高级功能可以准确反映图像类别信息(例如,语义信息),我们融合了这些功能以增强抽象和增强抽象和 改变检测框架中提取特征的鲁棒性。 整个系统是端到端的,不需要任何预先处理或后处理。 三个数据集的实验结果表明,通过添加高电平和低电平融合框架,我们的方法优于其他先进方法。

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  • 来源
    《Remote sensing letters》 |2021年第6期|387-396|共10页
  • 作者单位

    Wuhan Univ Sch Remote Sensing & Informat Engn Wuhan Peoples R China;

    Wuhan Univ Sch Remote Sensing & Informat Engn Wuhan Peoples R China;

    Wuhan Univ Sch Remote Sensing & Informat Engn Wuhan Peoples R China|Wuhan Univ Inst Artificial Intelligence Geomat Wuhan Peoples R China;

    Wuhan Univ Sch Remote Sensing & Informat Engn Wuhan Peoples R China;

    Wuhan Univ Sch Resource & Environm Sci Wuhan Peoples R China;

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