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Multispectral remote-sensing algorithms for particulate organic carbon (POC): The Gulf of Mexico

机译:用于颗粒有机碳(pOC)的多光谱遥感算法:墨西哥湾

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摘要

To greatly increase the spatial and temporal resolution for studying carbon dynamics in the marine environment, we have developed remote-sensing algorithms for particulate organic carbon (POC) by matching in situ POC measurements in the Gulf of Mexico with matching SeaWiFS remote-sensing reflectance. Data on total particulate matter (PM) as well as POC collected during nine cruises in spring, summer and early winter from 1997-2000 as part of the Northeastern Gulf of Mexico (NEGOM) study were used to test algorithms across a range of environments from low %POC coastal waters to high %POC open-ocean waters. Finding that the remote-sensing reflectance clearly exhibited a peak shift from blue-to-green wavelengths with increasing POC concentration, we developed a Maximum Normalized Difference Carbon Index (MNDCI) algorithm which uses the maximum band ratio of all available blue-to-green wavelengths, and provides a very robust estimate over a wide range of POC and PM concentrations (R2 = 0.99, N = 58). The algorithm can be extrapolated throughout the region of shipboard sampling for more detailed coverage and analysis.
机译:为了大大提高研究海洋环境中碳动力学的时空分辨率,我们通过将墨西哥湾的原位POC测量值与相匹配的SeaWiFS遥感反射率相匹配,开发了用于颗粒有机碳(POC)的遥感算法。作为墨西哥东北海湾(NEGOM)研究的一部分,使用了1997-2000年春季,夏季和初冬的九次航行中收集的总颗粒物(PM)和POC数据,以测试从POC含量低的沿海水域到POC含量高的开放海域。发现随着POC浓度的增加,遥感反射率明显呈现出从蓝到绿波长的峰移,我们开发了最大归一化碳指数(MNDCI)算法,该算法使用了所有可用蓝到绿的最大谱带比波长,并在很宽的POC和PM浓度范围内提供了非常可靠的估计值(R2 = 0.99,N = 58)。可以在船上采样的整个区域外推该算法,以进行更详细的覆盖和分析。

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