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Cloud detection in Landsat-8 imagery in Google Earth Engine based on a deep convolutional neural network

机译:基于深度卷积神经网络的谷歌地球发动机覆盖地球发动机云检测

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摘要

Google Earth Engine (GEE) provides a convenient platform for applications based on optical satellite imagery of large areas. With such data sets, the detection of cloud is often a necessary prerequisite step. Recently, deep learning-based cloud detection methods have shown their potential for cloud detection but they can only be applied locally, leading to inefficient data downloading time and storage problems. This letter proposes a method to directly perform cloud detection in Landsat-8 imagery in GEE based on deep learning (DeepGEE-CD). A deep convolutional neural network (DCNN) was first trained locally, and then the trained DCNN was deployed in the JavaScript client of GEE. An experiment was undertaken to validate the proposed method with a set of Landsat-8 images and the results show that DeepGEE-CD outperformed the widely used function of mask (Fmask) algorithm. The proposed DeepGEE-CD approach can accurately detect cloud in Landsat-8 imagery without downloading it, making it a promising method for routine cloud detection of Landsat-8 imagery in GEE.
机译:Google Earth Engine(Gee)为基于大面积光学卫星图像的应用提供了便捷的应用平台。通过这种数据集,云的检测通常是必要的先决条件。最近,基于深度学习的云检测方法已经显示了它们对云检测的可能性,但它们只能在本地应用,导致数据下载时间和存储问题效率低下。这封信提出了一种基于深度学习(Deepgee-CD)在Gee中Landsat-8图像中直接执行云检测的方法。深度卷积神经网络(DCNN)首次在本地培训,然后在GEE的JavaScript客户端部署训练的DCNN。进行了一个实验,以验证具有一组Landsat-8图像的提出方法,结果表明,DeepGee-CD优于掩模(FMask)算法的广泛使用功能。建议的深度-CD方法可以准确地检测Landsat-8图像中的云,而无需下载它,使其成为GEE中Landsat-8图像的常规云检测的有希望的方法。

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  • 来源
    《Remote sensing letters》 |2020年第12期|1181-1190|共10页
  • 作者单位

    Chinese Acad Sci Innovat Acad Precis Measurement Sci & Technol Key Lab Environm & Disaster Monitoring & Evaluat Wuhan 430077 Hubei Peoples R China|Anhui Univ Anhui Prov Key Lab Wetland Ecosyst Protect & Rest Hefei Anhui Peoples R China|Univ Chinese Acad Sci Beijing Peoples R China;

    Chinese Acad Sci Innovat Acad Precis Measurement Sci & Technol Key Lab Environm & Disaster Monitoring & Evaluat Wuhan 430077 Hubei Peoples R China;

    Univ Nottingham Sch Geog Nottingham England;

    Chinese Acad Sci Innovat Acad Precis Measurement Sci & Technol Key Lab Environm & Disaster Monitoring & Evaluat Wuhan 430077 Hubei Peoples R China;

    Chinese Acad Sci Innovat Acad Precis Measurement Sci & Technol Key Lab Environm & Disaster Monitoring & Evaluat Wuhan 430077 Hubei Peoples R China;

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