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首页> 外文期刊>ISPRS Journal of Photogrammetry and Remote Sensing >A cloud detection algorithm-generating method for remote sensing data at visible to short-wave infrared wavelengths
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A cloud detection algorithm-generating method for remote sensing data at visible to short-wave infrared wavelengths

机译:可见光至短波红外波长遥感数据的云检测算法生成方法

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摘要

To realize highly precise and automatic cloud detection from multi-sensors, this paper proposes a cloud detection algorithm-generating (CDAG) method for remote sensing data from visible to short-wave infra-red (SWIR) bands. Hyperspectral remote sensing data with high spatial resolution were collected and used as a pixel dataset of cloudy and clear skies. In this paper, multi-temporal AVIRIS (Airborne Visible/Infrared Imaging Spectrometer) data with 224 bands at visible to SWIR wavelengths and a 20 m spatial resolution were used for the dataset. Based on the pixel dataset, pixels of different types of clouds and land cover were distinguished artificially and used for the simulation of multispectral sensors. Cloud detection algorithms for the multispectral remote sensing sensors were then generated based on the spectral differences between the cloudy and clear-sky pixels distinguished previously. The possi-bility of assigning a pixel as cloudy was calculated based on the reliability of each method. Landsat 8 OLI (Operational Land Imager), MODIS (Moderate Resolution Imaging Spectroradiometer) Terra and Suomi NPP VIIRS (Visible/Infrared Imaging Radiometer) were used for the cloud detection test with the CDAG method, and the results from each sensor were compared with the corresponding artificial results, demonstrating an accurate detection rate of more than 85%. (C) 2016 The Authors. Published by Elsevier B.V. on behalf of International Society for Photogrammetry and Remote Sensing, Inc. (ISPRS).
机译:为了实现多传感器的高精度自动云检测,本文提出了一种从可见光到短波红外(SWIR)波段遥感数据的云检测算法生成(CDAG)方法。收集具有高空间分辨率的高光谱遥感数据,并将其用作多云和晴朗天空的像素数据集。在本文中,多时相AVIRIS(机载可见/红外成像光谱仪)数据在SWIR波长可见,具有224个波段,空间分辨率为20 m,用于该数据集。基于像素数据集,人工区分了不同类型的云和土地覆盖的像素,并将其用于多光谱传感器的仿真。然后根据先前区分的阴天和晴空像素之间的光谱差异,生成了用于多光谱遥感传感器的云检测算法。基于每种方法的可靠性,计算了将像素分配为浑浊的可能性。使用CDAG方法将Landsat 8 OLI(操作性陆地成像仪),MODIS(中等分辨率成像光谱仪)Terra和Suomi NPP VIIRS(可见/红外成像辐射仪)用于云探测测试,并将每个传感器的结果与相应的人工结果,证明准确检测率超过85%。 (C)2016作者。由Elsevier B.V.代表国际摄影测量与遥感学会(ISPRS)发布。

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