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Object-Based Convolutional Neural Networks for Cloud and Snow Detection in High-Resolution Multispectral Imagers

机译:高分辨率多光谱成像仪云和雪检测的基于对象的卷积神经网络

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摘要

Cloud and snow detection is one of the most significant tasks for remote sensing image processing. However, it is a challenging task to distinguish between clouds and snow in high-resolution multispectral images due to their similar spectral distributions. The shortwave infrared band (SWIR, e.g., Sentinel-2A 1.55⁻1.75 µm band) is widely applied to the detection of snow and clouds. However, high-resolution multispectral images have a lack of SWIR, and such traditional methods are no longer practical. To solve this problem, a novel convolutional neural network (CNN) to classify cloud and snow on an object level is proposed in this paper. Specifically, a novel CNN structure capable of learning cloud and snow multiscale semantic features from high-resolution multispectral imagery is presented. In order to solve the shortcoming of “salt-and-pepper„ in pixel level predictions, we extend a simple linear iterative clustering algorithm for segmenting high-resolution multispectral images and generating superpixels. Results demonstrated that the new proposed method can with better precision separate the cloud and snow in the high-resolution image, and results are more accurate and robust compared to the other methods.
机译:云和雪检测是遥感图像处理最重要的任务之一。然而,由于它们的类似光谱分布,在高分辨率多光谱图像中区分云和雪是一个具有挑战性的任务。短波红外频带(SWIR,例如,Sentinel-2a1.55⁻1.75μm频带)广泛应用于雪和云的检测。然而,高分辨率的多光谱图像缺乏SWIR,并且这种传统方法不再实用。为了解决这个问题,在本文中提出了一种新颖的卷积神经网络(CNN),用于对物体级别进行分类云和雪。具体地,呈现了一种新的CNN结构,其能够从高分辨率多光谱图像中学习云和雪多尺度语义特征。为了解决像素水平预测中“盐和胡椒”的缺点,我们扩展了一种简单的线性迭代聚类算法,用于分割高分辨率多光谱图像和生成超像素。结果表明,新的方法可以在高分辨率图像中具有更好的精度分离云和积雪,与其他方法相比,结果更准确且鲁棒。

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