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首页> 外文期刊>Environmental Research Letters >A novel remote sensing algorithm to quantify phycocyanin in cyanobacterial algal blooms
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A novel remote sensing algorithm to quantify phycocyanin in cyanobacterial algal blooms

机译:一种定量蓝藻藻华中藻蓝蛋白的新型遥感算法

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We present a novel three-band algorithm (PC3) to retrieve phycocyanin (PC) pigment concentration in cyanobacteria laden inland waters. The water sample and remote sensing reflectance data used for PC3 calibration and validation were acquired from highly turbid productive catfish aquaculture ponds. Since the characteristic PC absorption feature at 620 nm is contaminated with residual chlorophyll-a (Chl-a) absorption, we propose a coefficient (ψ) for isolating the PC absorption component at 620 nm. Results show that inclusion of the model coefficient relating Chl-a absorption at 620 nm–665 nm enables PC3 to compensate for the confounding effect of Chl-a at the PC absorption band and considerably increases the accuracy of the PC prediction algorithm. In the current dataset, PC3 produced the lowest mean relative error of prediction among all PC algorithms considered in this research. Moreover, PC3 eliminates the nonlinear sensitivity issue of PC algorithms particularly at high PC range (>100 μg L?1). Therefore, introduction of PC3 will have an immediate positive impact on studies monitoring inland and coastal cyanobacterial harmful algal blooms.
机译:我们提出了一种新颖的三波段算法(PC3),以检索载有蓝藻的内陆水域中藻蓝蛋白(PC)的色素浓度。用于PC3校准和验证的水样和遥感反射率数据是从高度混浊的cat鱼水产养殖池塘中获得的。由于620 nm处的PC吸收特征被残留的叶绿素a(Chl-a)吸收所污染,因此我们提出了一个系数(ψ)来隔离620 nm处的PC吸收组分。结果表明,包含与Chl-a在620 nm至665 nm处的吸收有关的模型系数使PC3能够补偿Chl-a在PC吸收带处的混杂效应,并大大提高了PC预测算法的准确性。在当前数据集中,PC3产生的平均预测相对误差在本研究中考虑的所有PC算法中最低。此外,PC3消除了PC算法的非线性灵敏度问题,尤其是在高PC范围(> 100μgL?1)时。因此,引入PC3将对监测内陆和沿海蓝藻有害藻华的研究产生直接的积极影响。

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