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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Monitoring agricultural drought for arid and humid regions using multi-sensor remote sensing data
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Monitoring agricultural drought for arid and humid regions using multi-sensor remote sensing data

机译:使用多传感器遥感数据监测干旱和潮湿地区的农业干旱

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摘要

While existing remote sensing-based drought indices have characterized drought conditions in arid regions successfully, their use in humid regions is limited. We propose a new remote sensing-based drought index, the Scaled Drought Condition Index (SDCI), for agricultural drought monitoring in both arid and humid regions using multi-sensor data. This index combines the land surface temperature (LST) data and the Normalized Difference Vegetation Index (NDVI) data from Moderate Resolution Imaging Spectroradiometer (MODIS) sensor, and precipitation data from Tropical Rainfall Measuring Mission (TRMM) satellite. Each variable was scaled from 0 to 1 to discriminate the effect of drought from normal conditions, and then combined with the selected weights. When tested against in-situ Palmer Drought Severity Index (PDSI), Palmer's Z-Index (Z-Index), 3-month Standardized Precipitation Index (SPI), and 6-month SPI data during a ten-year (2000-2009) period, SDCI performed better than existing indices such as NDVI and Vegetation Health Index (VHI) in the arid region of Arizona and New Mexico as well as in the humid region of North Carolina and South Carolina. The year-to-year changes and spatial distributions of SDCI over both arid and humid regions generally agreed to the changes documented by the United States Drought Monitor (USDM) maps.
机译:尽管现有的基于遥感的干旱指数已成功地表征了干旱地区的干旱状况,但在潮湿地区的使用却受到限制。我们提出了一种新的基于遥感的干旱指数,即规模干旱状况指数(SDCI),用于使用多传感器数据在干旱和潮湿地区进行农业干旱监测。该指数将中分辨率成像光谱仪(MODIS)传感器的地表温度(LST)数据和归一化植被指数(NDVI)数据与热带降雨测量任务(TRMM)卫星的降水数据结合在一起。将每个变量从0缩放到1,以区分干旱与正常状况的影响,然后与选定的权重相结合。在十年(2000-2009)的10年间针对原位Palmer干旱严重度指数(PDSI),Palmer的Z指数(Z-Index),3个月的标准化降水指数(SPI)和6个月的SPI数据进行了测试在此期间,SDCI在亚利桑那州和新墨西哥州的干旱地区以及北卡罗来纳州和南卡罗来纳州的湿润地区表现优于现有指数,例如NDVI和植被健康指数(VHI)。干旱和潮湿地区SDCI的逐年变化和空间分布总体上与美国干旱监测(USDM)地图记录的变化一致。

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