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A Satellite-based Remote Sensing Technique for Surface Water Quality Estimation

机译:基于卫星的遥感技术估算地表水水质

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Remote sensing provides a synoptic view of the earth surface that can provide spatial and temporal trends necessary for comprehensive water quality (WQ) monitoring and assessment. This study explores the applicability of Landsat 8 and regression analysis in developing models for estimating WQ parameters such as pH, dissolved oxygen (DO), total dissolved solids (TDS), total suspended solids (TSS), biological oxygen demand (BOD), turbidity, and conductivity. The input image was radiometrically-calibrated using fast line-of-sight atmospheric analysis (FLAASH) and then atmospherically corrected to obtain surface reflectance (SR) bands using FLAASH and dark object subtraction (DOS) for comparison. SR bands derived using FLAASH and DOS, water indices, band ratio, and principal component analysis (PCA) images were utilized as input data. Feature vectors were then collected from the input bands and subsequently regressed together with the WQ data. Forward regression results yielded significant high R~(2) values for all WQ parameters except TSS and conductivity which had only 60.1% and 67.7% respectively. Results also showed that the regression models of pH, BOD, TSS, TDS, DO, and conductivity are highly significant to SR bands derived using DOS. Furthermore, the results of this study showed the promising potential of using RS-based WQ models in performing periodic WQ monitoring and assessment.
机译:遥感提供地球表面的概要视图,可以提供全面水质(WQ)监测和评估所必需的时空趋势。这项研究探索了Landsat 8的适用性和回归分析在开发模型中的估计模型,这些模型用于估计WQ参数,例如pH,溶解氧(DO),总溶解固体(TDS),总悬浮固体(TSS),生物需氧量(BOD),浊度和电导率。使用快速视线大气分析(FLAASH)对输入图像进行辐射校准,然后使用FLAASH和暗物减法(DOS)进行大气校正以获得表面反射率(SR)波段进行比较。使用FLAASH和DOS得出的SR谱带,水指数,谱带比和主成分分析(PCA)图像用作输入数据。然后从输入波段中收集特征向量,然后与WQ数据一起回归。前向回归结果显示,除TSS和电导率分别仅为60.1%和67.7%之外,所有WQ参数的R〜(2)值均显着较高。结果还表明,pH,BOD,TSS,TDS,DO和电导率的回归模型对于使用DOS推导的SR谱带非常重要。此外,这项研究的结果表明,在执行定期的WQ监测和评估中,使用基于RS的WQ模型具有广阔的前景。

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