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Estimation of chlorophyll-a concentration in turbid productive waters using airborne hyperspectral data

机译:浑浊生产中叶绿素a浓度的估算 水域使用机载高光谱数据

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摘要

Algorithms based on red and near infra-red (NIR) reflectances measured using field spectrometers have been previously shown to yield accurate estimates of chlorophylla concentration in turbid productive waters, irrespective of variations in the bio-optical characteristics of water. The objective of this study was to investigate the performance of NIR-red models when applied to multi-temporal airborne reflectance data acquired by the hyperspectral sensor, Airborne Imaging Spectrometer for Applications (AISA), with non-uniform atmospheric effects across the dates of data acquisition. The results demonstrated the capability of the NIR-red models to capture the spatial distribution of chlorophyll-a in surface waters without the need for atmospheric correction. However, the variable atmospheric effects did affect the accuracy of chlorophyll-a retrieval. Two atmospheric correction procedures, namely, Fast Line-of-sight Atmospheric Adjustment of Spectral Hypercubes (FLAASH) and QUick Atmospheric Correction (QUAC), were applied to AISA data and their results were compared. QUAC produced a robust atmospheric correction, which led to NIR-red algorithms that were able to accurately estimate chlorophyll- a concentration, with a root mean square error of 5.54 mg m-3 for chlorophylla concentrations in the range 2.27-81.17 mg m-3.
机译:先前已经证明,使用现场光谱仪测量的基于红色和近红外(NIR)反射率的算法可以准确地估算混浊生产水中的叶绿素浓度,而无需考虑水生物光学特性的变化。这项研究的目的是调查将NIR红色模型应用于由高光谱传感器,应用机载成像光谱仪(AISA)采集的多时空中反射率数据时的性能,并在整个数据日期中产生不均匀的大气影响收购。结果表明,NIR-红色模型具有捕获地表水中叶绿素a空间分布的能力,而无需进行大气校正。但是,可变的大气影响确实影响了叶绿素a检索的准确性。将两种大气校正程序,即光谱超立方体的快速视线大气校正(FLAASH)和快速大气校正(QUAC),应用于AISA数据,并对它们的结果进行了比较。 QUAC进行了强大的大气校正,这导致了NIR-red算法能够准确估算叶绿素a的浓度,叶绿素浓度在2.27-81.17 mg m-3范围内的均方根误差为5.54 mg m-3 。

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