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首页> 外文期刊>Journal of neurosurgical sciences >High performance of chlorophyll- a prediction algorithms based on simulated OLCI Sentinel-3A bands in cyanobacteria-dominated inland waters
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High performance of chlorophyll- a prediction algorithms based on simulated OLCI Sentinel-3A bands in cyanobacteria-dominated inland waters

机译:基于模拟Olci Sentinel-3a带的叶绿素 - 一种预测算法的高性能 - 三枝子占地管制中的内陆水域

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In this research, we have investigated whether the chlorophyll-a(chla) retrieval algorithms based on OLCI Sentinel-3A bands are suitable for cyanobacteria-dominated waters. Phytoplankton assemblages model optical properties of the water, influencing the performance of bio-optical algorithms. Understanding these processes is important to improve the prediction of photoactive pigments in order to use them as a proxy for trophic state and harmful algal bloom. So that, both empirical and semi-analytical approaches designed for different inland waters were tested. In addition, empirical models were tuned based on dataset collectedin situ. The study was conducted in the Funil hydroelectric reservoir, where chlaranged from 2.33 to 208.68?mg?m?3in May 2012 (austral fall) and 4.37 to 306.03?mg?m?3in October 2012 (austral spring). OLCI Sentinel-3A bands were tested in existing algorithms developed for other sensors and new band combinations were compared to analyze the errors produced. Normalized Difference Chlorophyll Index (NDCI) exhibited the best performance, with a Normalized Root Mean Square Error (NRMSE) of 9.30%. Result showed that wavelength at 665?nm is adequate to estimate chla, although the maximum pigment absorption band is shifted due to phycocyanin fluorescence at approximately 650?nm.
机译:在本研究中,我们研究了基于OLCI Sentinel-3a带的叶绿素-α(CHLA)检索算法是否适用于蓝杆菌主导的水。 Phytoplankton组装模型的水,影响生物光学算法的性能。理解这些过程对于改善光活性颜料的预测是重要的,以便将它们作为营养状态和有害藻类绽放的代理。因此,测试了为不同的内陆水域设计的实证和半分析方法进行了测试。此外,基于DataSet Coll ContectedIN的原位进行了经验模型。该研究进行了在Fileil水库中进行的,其中Chlanged从2.33到208.68?MG?M?3月3日(澳大利亚)和4.37至306.03?MG?M?3在2012年10月(澳门春天)。在为其他传感器开发的现有算法中测试了OLCI Sentinel-3A带,并将新的频段组合进行了比较,以分析所产生的误差。归一化差异叶绿素指数(NDCI)表现出最佳性能,具有9.30%的归一化根均线误差(NRMSE)。结果表明,665℃的波长足以估计CHAA,尽管由于大约650Ω·Nm的植物蛋白荧光而移动最大颜料吸收带。

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