A spectral response approach for detecting dominant phytoplankton size class from satellite remote sensing

Robert J W Brewin Samantha J Lavender Nick J Hardman-Mountford Takafumi Hirata

RobertJWBrewin, SamanthaJLavender, NickJHardman-Mountford, TakafumiHirata. A spectral response approach for detecting dominant phytoplankton size class from satellite remote sensing[J]. 海洋学报英文版, 2010, (2): 14-32. doi: 10.1007/s13131-010-0018-y
引用本文: RobertJWBrewin, SamanthaJLavender, NickJHardman-Mountford, TakafumiHirata. A spectral response approach for detecting dominant phytoplankton size class from satellite remote sensing[J]. 海洋学报英文版, 2010, (2): 14-32. doi: 10.1007/s13131-010-0018-y
Robert J W Brewin, Samantha J Lavender, Nick J Hardman-Mountford, Takafumi Hirata. A spectral response approach for detecting dominant phytoplankton size class from satellite remote sensing[J]. Acta Oceanologica Sinica, 2010, (2): 14-32. doi: 10.1007/s13131-010-0018-y
Citation: Robert J W Brewin, Samantha J Lavender, Nick J Hardman-Mountford, Takafumi Hirata. A spectral response approach for detecting dominant phytoplankton size class from satellite remote sensing[J]. Acta Oceanologica Sinica, 2010, (2): 14-32. doi: 10.1007/s13131-010-0018-y

A spectral response approach for detecting dominant phytoplankton size class from satellite remote sensing

doi: 10.1007/s13131-010-0018-y
基金项目: This work is funded by the National Environmental Research Council, UK, through a PhD studentship at the Centre for observation of Air-Sea Interactions & fluXes (CASIX), the National Centre for Earth Observation and NERC Oceans 2025 programme (Themes 6 and 10).

A spectral response approach for detecting dominant phytoplankton size class from satellite remote sensing

  • 摘要: An important goal in ocean colour remote sensing is to accurately detect different phytoplankton groups with the potential uses including the validation of multi-phytoplankton carbon cycle models; synoptically monitoring the health of our oceans, and improving our understanding of the bio-geochemical interactions between phytoplankton and their environment. In this paper a new algorithm is developed for detecting three dominant phytoplankton size classes based on distinct differences in their optical signatures. The technique is validated against an independent coupled satellite reflectance and in situ pigment dataset and run on the 10-year NASA Sea viewing Wide Field of view Sensor (SeaWiFS) data series. Results indicate that on average 3.6% of the global oceanic surface layer is dominated by microplankton, 18.0% by nanoplankton and 78.4% by picoplankton. Results, however, are seen to vary depending on season and ocean basin.
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出版历程
  • 收稿日期:  2008-12-11
  • 修回日期:  2009-04-07

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