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Spatiotemporal monitoring of surface soil moisture using optical remote sensing data: a case study in a semi-arid area

机译:使用光学遥感数据的地表土壤水分的时空监测:半干旱地区案例研究

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摘要

Surface soil moisture content (SSMC) monitoring constitutes an important parameter to estimate crop water requirements, especially in arid and semi-arid areas. Remote sensing became a useful tool for estimating SSMC. Two approaches were applied for monitoring the SSMC during the 2013/14 cropping season in the irrigated perimeter of Tadla (Morocco) using multispectral bands of Landsat-8 OLI images. The first approach examined the potential of visible and short-wave infrared drought index (VSDI), normalized multi-band drought index (NMDI) and short-wave infrared water stress index (SIWSI), to retrieve SSMC. The second approach attempted to develop a new SSMC model based on evaluation of the correlations between multispectral bands and measured SSMC using a stepwise multiple regression analysis. Results showed that the established model is highly correlated with the measured SSMC at all crop growth stages withR(2)of 0.87, 0.85 and 0.89, for bare soil, partially covered and entirely covered by vegetation, respectively.
机译:表面土壤水分含量(SSMC)监测构成了估算作物水需求的重要参数,特别是在干旱和半干旱地区。遥感成为估计SSMC的有用工具。使用MultiSpectral乐队的Landsat-8 OLI图像,在2013/14次裁剪季节期间应用两种方法来监测SSMC。第一种方法检查了可见光和短波红外干旱指数(VSDI),归一化多频带干旱指数(NMDI)和短波红外水应激指数(SIWSI)的潜力,以检索SSMC。第二种方法试图根据使用逐步多元回归分析对多光谱频带之间的相关性的相关性的评估来开发新的SSMC模型。结果表明,已建立的模型与0.87,0.85和0.89的所有作物生长阶段的测量模型与0.87,0.85和0.89的所有作物生长阶段高度相关,用于分别部分覆盖并完全被植被覆盖。

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