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Reducing cloud obscuration on MODIS Snow Cover Area products by applying spatio-temporal techniques combined with topographic effects.

机译:通过将时空技术与地形效应相结合,减少MODIS Snow Cover Area产品上的云遮盖。

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摘要

Rapid population growth in Arizona is leading to increasing demand and decreasing availability of water, requiring a detailed quantification of hydrological processes. The integration of detailed spatial water fluxes information from remote sensing platforms, and hydrological models is one of the steps towards this goal. One example step is the use of MODIS Snow Cover Area (SCA) information to update the snow component of a land surface model (LSM). Because cloud cover obscures the images, this project explores a rule-based method to remove the clouds. The rules include: combination of SCA maps from two satellites; time interpolation method; spatial interpolation method; and the probability of snow occurrence in a pixel based on topographic variables. The application in sequence of these rules over the Upper Salt River Basin for WY 2005 resulted in a reduction of cloud obscuration by 93.7878% and the resulting images' accuracy is similar to the accuracy of the original SCA maps. The results of this research will be used on a LSM to improve the management of reservoirs on the Salt River. This research seeks to improve SCA data for further use in a LSM to increase the knowledge base used to manage water resources. It will be relevant for regions were snow is the primary source of water supply.
机译:亚利桑那州人口的快速增长导致需求增加和水供应减少,需​​要对水文过程进行详细的量化。来自遥感平台和水文模型的详细空间水通量信息的集成是实现此目标的步骤之一。一个示例步骤是使用MODIS雪盖面积(SCA)信息更新陆地表面模型(LSM)的雪分量。由于云层遮盖了图像,因此该项目探索了一种基于规则的方法来去除云层。这些规则包括:来自两颗卫星的SCA地图的组合;时间插值法;空间插值法以及基于地形变量的像素中下雪的概率。这些规则在2005年WY上盐湖流域中的顺序应用导致云遮盖度降低了93.7878%,并且所得图像的准确性与原始SCA地图的准确性相似。这项研究的结果将用于LSM,以改善盐河水库的管理。这项研究旨在改善SCA数据,以便在LSM中进一步使用,以增加用于管理水资源的知识库。这将与雪是主要水源的地区有关。

著录项

  • 作者

    Lopez-Burgos, Viviana.;

  • 作者单位

    The University of Arizona.;

  • 授予单位 The University of Arizona.;
  • 学科 Hydrology.;Remote Sensing.
  • 学位 M.S.
  • 年度 2010
  • 页码 124 p.
  • 总页数 124
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:37:18

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