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A daytime cloud detection algorithm for FY-3A/VIRR data

机译:FY-3A / VIRR数据的白天云检测算法

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摘要

Cloud detection is essential for the retrieval of atmospheric and surface parameters and it directly impacts the quality of many satellite geophysical products used in weather, climate and environmental research. In this article, a daytime cloud detection algorithm based on multi-spectral thresholds is proposed to discriminate clouds from clear skies for the visible and infrared radiometer (VIRR), which is a key instrument on board the Chinese FengYun-3A (FY-3A) polar-orbiting meteorological satellite, launched 27 May 2008. The VIRR has ten bands in the wavelengths 0.43-12.5 μm and provides global observations of atmosphere, ocean and land in the visible and infrared regions of the spectrum. In this algorithm, the underlying surface is divided into five ecological types: snow/ice, desert, coastal, land and water, and seven spectral bands of the VIRR are used to indicate a level of confidence that the VIRR is observing clear skies. This algorithm also utilizes the 1.6 μm band and the difference between the 1.38 and 1.6 n-m bands to respectively detect water cloud and high cloud. An example of cloud detection and a comparison with an official cloud masking product are given; the results show that this algorithm performs well and is better than the official algorithm in cloud detection.
机译:云探测对于检索大气和地表参数至关重要,它直接影响用于天气,气候和环境研究的许多卫星地球物理产品的质量。本文提出了一种基于多光谱阈值的白天云检测算法,以区分可见光和红外辐射计(VIRR)的晴朗天空中的云,这是中国风云3A(FY-3A)上的关键仪器极地轨道气象卫星,于2008年5月27日发射。VIRR有十个波段,波长在0.43-12.5μm之间,可对光谱的可见光和红外区的大气,海洋和陆地进行全球观测。在此算法中,下层表面分为五种生态类型:雪/冰,沙漠,沿海,陆地和水,并且VIRR的七个光谱带用于指示VIRR观测晴朗天空的置信度。该算法还利用1.6μm波段以及1.38和1.6 n-m波段之间的差异分别检测水云和高云。给出了一个云检测示例,并与官方的云遮罩产品进行了比较;结果表明,该算法性能良好,在云检测方面优于官方算法。

著录项

  • 来源
    《International journal of remote sensing》 |2011年第21期|p.6811-6822|共12页
  • 作者

    QUAN-JUN HE;

  • 作者单位

    Guangzhou Meteorological Satellite Ground Station, Guangzhou 510640, China LED, South China Sea Institute of Oceanology, CAS, Guangzhou 510301, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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