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Expected Improvements in the Quantitative Remote Sensing of Optically Complex Waters with the Use of an Optically Fast Hyperspectral Spectrometer—A Modeling Study

机译:使用光学快速高光谱仪对光学复杂水域的定量遥感的预期改进-建模研究

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Using simulated data, we investigated the effect of noise in a spaceborne hyperspectral sensor on the accuracy of the atmospheric correction of at-sensor radiances and the consequent uncertainties in retrieved water quality parameters. Specifically, we investigated the improvement expected as the F-number of the sensor is changed from 3.5, which is the smallest among existing operational spaceborne hyperspectral sensors, to 1.0, which is foreseeable in the near future. With the change in F-number, the uncertainties in the atmospherically corrected reflectance decreased by more than 90% across the visible-near-infrared spectrum, the number of pixels with negative reflectance (caused by over-correction) decreased to almost one-third, and the uncertainties in the retrieved water quality parameters decreased by more than 50% and up to 92%. The analysis was based on the sensor model of the Hyperspectral Imager for the Coastal Ocean (HICO) but using a 30-m spatial resolution instead of HICO’s 96 m. Atmospheric correction was performed using Tafkaa. Water quality parameters were retrieved using a numerical method and a semi-analytical algorithm. The results emphasize the effect of sensor noise on water quality parameter retrieval and the need for sensors with high Signal-to-Noise Ratio for quantitative remote sensing of optically complex waters.
机译:使用模拟数据,我们研究了星载高光谱传感器中的噪声对传感器辐射亮度的大气校正精度以及由此带来的水质参数不确定性的影响。具体来说,我们调查了传感器的F值从3.5(这是现有运行的星载高光谱传感器中最小的)更改为1.0(可预见的将来)时预期的改进。随着F值的变化,在近红外光谱范围内,大气校正反射率的不确定性降低了90%以上,负反射率(由于过度校正而引起)的像素数量减少了近三分之一,而检索到的水质参数的不确定性降低了50%以上,最高达到92%。该分析基于沿海高光谱成像仪(HICO)的传感器模型,但使用的是30 m的空间分辨率,而不是HICO的96 m。使用Tafkaa进行大气校正。使用数值方法和半解析算法检索水质参数。结果强调了传感器噪声对水质参数检索的影响,以及对光学复杂水域的定量遥感需要高信噪比的传感器的需求。

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