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Improvement to the PhytoDOAS method for identification of coccolithophores using hyper-spectral satellite data

机译:利用高光谱卫星数据鉴定球椰核荧光体的PhytoDOAS方法的改进

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摘要

The goal of this study was to improve PhytoDOAS, which is a new retrieval method for quantitative identification of major phytoplankton functional types (PFTs) using hyper-spectral satellite data. PhytoDOAS is an extension of the Differential Optical Absorption Spectroscopy (DOAS, a method for detection of atmospheric trace gases), developed for remote identification of oceanic phytoplankton groups. Thus far, PhytoDOAS has been successfully exploited to identify cyanobacteria and diatoms over the global ocean from SCIAMACHY (SCanning Imaging Absorption spectroMeter for Atmospheric CHartogra-phY) hyper-spectral data. This study aimed to improve PhytoDOAS for remote identification of coccolithophores, another functional group of phytoplankton. The main challenge for retrieving more PFTs by PhytoDOAS is to overcome the correlation effects between different PFT absorption spectra. Different PFTs are composed of different types and amounts of pigments, but also have pigments in common, e.g. chl a, causing correlation effects in the usual performance of the PhytoDOAS retrieval. Two ideas have been implemented to improve PhytoDOAS for the PFT retrieval of more phytoplankton groups. Firstly, using the fourth-derivative spectroscopy, the peak positions of the main pigment components in each absorption spectrum have been derived. After comparing the corresponding results of major PFTs, the optimized fit-window for the PhytoDOAS retrieval of each PFT was determined. Secondly, based on the results from derivative spectroscopy, a simultaneous fit of PhytoDOAS has been proposed and tested for a selected set of PFTs (coccolithophores, diatoms and dinoflagellates) within an optimized fit-window, proven by spectral orthogonality tests. The method was then applied to the processing of SCIAMACHY data over the year 2005. Comparisons of the PhytoDOAS coccolithophore retrievals in 2005 with other coccolithophore-related data showed similar patterns in their seasonal distributions, especially in the North Atlantic and the Arctic Sea. The seasonal patterns of the PhytoDOAS coccolithophores indicated very good agreement with the coccolithophore modeled data from the NASA Ocean Biochemical Model (NOBM), as well as with the global distributions of particulate inorganic carbon (PIC), provided by MODIS (MODerate resolution Imaging Spectroradiometer)-Aqua level-3 products. Moreover, regarding the fact that coccolithophores belong to the group of haptophytes, the PhytoDOAS seasonal coccolithophores showed good agreement with the global distribution of haptophytes, derived from synoptic pigment relationships applied to SeaWiFS chl a. As a case study, the simultaneous mode of PhytoDOAS has been applied to SCIAMACHY data for detecting a coccolithophore bloom which was consistent with the MODIS RGB image and the MODIS PIC map of the bloom, indicating the functionality of the method also in short-term retrievals.
机译:这项研究的目的是改进PhytoDOAS,这是一种使用高光谱卫星数据定量识别主要浮游植物功能类型(PFT)的新检索方法。 PhytoDOAS是差分光学吸收光谱法(DOAS,一种用于探测大气中痕量气体的方法)的扩展,专为远程识别海洋浮游植物群而开发。到目前为止,PhytoDOAS已成功用于从SCIAMACHY(大气CHartogra-phY的成像成像吸收光谱仪)高光谱数据中识别全球海洋中的蓝细菌和硅藻。这项研究旨在改善PhytoDOAS,以远程鉴定球藻浮游生物(浮游植物的另一个功能群)。 PhytoDOAS检索更多PFT的主要挑战是克服不同PFT吸收光谱之间的相关效应。不同的PFT由不同类型和数量的颜料组成,但也有共同的颜料,例如chl a,在PhytoDOAS检索的常规性能中造成相关影响。已经实施了两种方法来改进PhytoDOAS,以便对更多浮游植物进行PFT检索。首先,使用四阶导数光谱法,得出了每个吸收光谱中主要颜料成分的峰位置。比较主要PFT的相应结果后,确定用于每个PFT的PhytoDOAS检索的优化拟合窗口。其次,基于导数光谱的结果,PhytoDOAS的同时拟合已被提出并在优化的拟合窗口内对一组选定的PFT(球墨,硅藻和鞭毛鞭毛虫)进行了测试,并通过光谱正交性测试证明了这一点。然后将该方法应用于2005年SCIAMACHY数据的处理。2005年PhytoDOAS球石藻取回物与其他与球石藻相关的数据的比较显示,它们的季节分布具有相似的模式,尤其是在北大西洋和北极海地区。 PhytoDOAS球墨体的季节性变化表明与NASA海洋生化模型(NOBM)的针石体模型数据以及MODIS(中等分辨率成像光谱仪)提供的颗粒无机碳(PIC)的全球分布非常一致-Aqua 3级产品。此外,关于球花藻属于属植物的事实,PhytoDOAS季节性球藻植物与来自于SeaWiFS chl的天气色素关系的植物的全球分布具有很好的一致性。作为一个案例研究,PhytoDOAS的同时模式已应用于SCIAMACHY数据中,用于检测球石藻的水华,这与水华的MODIS RGB图像和MODIS PIC图一致,表明该方法在短期检索中的功能。

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