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Enhanced algorithm for estimating snow depth from geostationary satellites

机译:用于对地静止卫星估计雪深的增强算法

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摘要

Observations in the visible and infrared spectral bands from the Imager instrument onboard Geostationary Operational Environmental Satellite (GOES) have been used to derive snow depth. The technique makes use of correlation between depth of the snow pack and satellite-derived subpixel fractional snow cover. Previous efforts to infer snow depth from satellite data with this technique were focused on grasslands and croplands, where the snow depth/snow fraction relationship is most pronounced. In this paper we improve the retrieval algorithm to extend snow depth estimates to forested areas. The enhanced algorithm accounts for the tree cover fraction and for the type of forest, deciduous or coniferous. The developed technique was used to derive maps of snow depth over mid-latitude areas of North America during winter seasons of 2003-2004 and 2004-2005. Satellite-based snow depth maps were produced daily at 4 km spatial resolution. To validate the retrievals we compared them with surface observations of snow depth and with the snow depth analysis prepared at the NOAA National Operational Hydrological Remote Sensing Center (NOHRSC). The estimated retrieval error was about 30% for snow depths below 30 cm and increased to 50% for snow depths ranging from 30 to 50 cm. Snow depth retrievals were limited to scenes with less than 80% deciduous forest cover fraction and less than 50% needle leaf forest cover.
机译:对地静止作战环境卫星(GOES)上的成像仪仪器在可见光谱和红外光谱带中进行的观测已用于得出积雪深度。该技术利用了积雪的深度与卫星衍生的子像素分数积雪之间的相关性。以前使用该技术从卫星数据推断积雪深度的努力主要集中在草地和农田,其中积雪深度/雪分数关系最明显。在本文中,我们改进了检索算法,以将雪深估计值扩展到林区。增强算法考虑了树木覆盖率以及落叶或针叶林的类型。所开发的技术用于得出2003-2004年和2004-2005年冬季的北美洲中纬度地区的积雪深度图。每天制作基于卫星的雪深图,其空间分辨率为4 km。为了验证检索结果,我们将它们与雪深的地面观测值以及在NOAA国家运营水文遥感中心(NOHRSC)上准备的雪深分析进行了比较。对于30 cm以下的雪深,估计的取回误差约为30%,而对于30至50 cm的积雪,估计的取回误差将增加到50%。积雪深度的检索仅限于落叶林覆盖率不到80%,针叶林覆盖率不到50%的场景。

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