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Comparative analysis of four semi-analytical models for estimating chlorophyll-a concentration in case-2 waters using field hyperspectral reflectance

机译:使用场高光谱反射率估算叶绿素 - 叶绿素-A浓度的四个半分析模型的比较分析

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摘要

Hyperspectral remote sensing can capture the complicated and variable characteristics of inland waters; thus, it is suited for the water quality assessment of Case-2 waters, and it has the potential to attain high estimation accuracy. In the present study, four improved models adapted from published approaches (three-band index, Delta phi, BNDBI and TCARI) were investigated to estimate chlorophyll-a (chl-a) for the case of Dianshan Lake, China. Calibration and validation were provided from in situ measured chl-a and field hyperspectral measurements. The improved three-band (ITB) model, Delta phi model, and BNDBI model yielded satisfactory results and enabled the estimation of chl-a for inland Case-2 waters with coefficients of determination (R-2) reaching 0.75, 0.76, and 0.86, respectively. In particular, the TCARI/OSAVI model presented the highest accuracy (R-2 = 0.94) compared to the other models. All of the results provide strong evidence that the hyperspectral models presented in this paper are promising and applicable to estimate chl-a in eutrophic inland Case-2 waters.
机译:高光谱遥感可以捕获内陆水域的复杂和可变特征;因此,它适用于壳体-2水的水质评估,具有达到高估计精度的可能性。在本研究中,研究了来自公布的方法(三频段指数,三角形PHI,BNDBI和TCARI)的四种改进模型,以估计中国滇山的叶绿素-A(CHL-A)。从原位测量的CHL-A和场高光谱测量提供校准和验证。改进的三频段(ITB)模型,Delta PHI模型和BNDBI模型产生了令人满意的结果,并使内陆壳-2水的CHL-A估计,具有测定系数(R-2)达到0.75,0.76和0.86 , 分别。特别是,与其他模型相比,TCari / Osavi模型呈现最高精度(R-2 = 0.94)。所有结果都提供了强有力的证据表明本文中提出的高光谱模型是有前途的,适用于估计富营养的内陆案例-2水中的CHL-A。

著录项

  • 来源
    《International journal of remote sensing》 |2020年第2期|584-594|共11页
  • 作者单位

    Fudan Univ Dept Environm Sci & Engn Shanghai 200433 Peoples R China|Fudan Univ Key Lab Informat Sci Electromagnet Waves MoE Shanghai Peoples R China;

    Fudan Univ Dept Environm Sci & Engn Shanghai 200433 Peoples R China;

    Fudan Univ Dept Environm Sci & Engn Shanghai 200433 Peoples R China;

    Fudan Univ Dept Environm Sci & Engn Shanghai 200433 Peoples R China;

    Fudan Univ Dept Environm Sci & Engn Shanghai 200433 Peoples R China;

    Calif State Univ Long Beach Dept Geog Long Beach CA 90840 USA;

    Fudan Univ Dept Environm Sci & Engn Shanghai 200433 Peoples R China|Shanghai Inst Ecochongming SIEC 3663 Northern Zhongshan Rd Shanghai Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
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