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Landslide Detection of Hyperspectral Remote Sensing Data Based on Deep Learning With Constrains

机译:基于深度学习的基于深度学习的超光线检测

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摘要

Detecting and monitoring landslides are hot topics in remote sensing community, particularly with the development of remote sensing technologies and the significant progress of computer vision. To the best of our knowledge, no study focused on deep learning-based methods for landslide detection on hyperspectral images. We proposes a deep learning framework with constraints to detect landslides on hyperspectral image. The framework consists of two steps. First, a deep belief network is employed to extract the spectral-spatial features of a landslide. Second, we insert the high-level features and constraints into a logistic regression classifier for verifying the landslide. Experimental results demonstrated that the framework can achieve higher overall accuracy when compared to traditional hyperspectral image classification methods. The precision of the landslide detection on the whole image, obtained by the proposed method, can reach 97.91%, whereas the precision of the linear support vector machine, spectral information divergence, and spectral angle match are 94.36%, 84.50%, and 86.44%, respectively. Also, this article reveals that the high-level feature extraction system has a significant potential for landslide detection, especially in multi-source remote sensing.
机译:检测和监测山体滑坡是遥感社区的热门话题,特别是随着遥感技术的发展和计算机视觉的显着进展。据我们所知,没有研究专注于对高光谱图像对滑坡检测的深层学习方法。我们提出了一个深入的学习框架,其限制来检测高光谱图像上的滑坡。该框架由两个步骤组成。首先,采用深度信念网络来提取滑坡的光谱空间特征。其次,我们将高级功能和约束插入逻辑回归分类器,以验证滑坡。实验结果表明,与传统的高光谱图像分类方法相比,框架可以实现更高的总体精度。通过所提出的方法获得的整个图像上滑坡检测的精度可以达到97.91%,而线性支持向量机的精度,光谱信息发散和光谱角匹配的精度为94.36%,84.50%和86.44% , 分别。此外,本文揭示了高级特征提取系统对滑坡检测具有重要潜力,特别是在多源遥感中。

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