Ocean color chlorophyll algorithms for SeaWiFS
- 15 October 1998
- journal article
- Published by American Geophysical Union (AGU) in Journal of Geophysical Research: Oceans
- Vol. 103 (C11) , 24937-24953
- https://doi.org/10.1029/98jc02160
Abstract
A large data set containing coincident in situ chlorophyll and remote sensing reflectance measurements was used to evaluate the accuracy, precision, and suitability of a wide variety of ocean color chlorophyll algorithms for use by SeaWiFS (Sea‐viewing Wide Field‐of‐view Sensor). The radiance‐chlorophyll data were assembled from various sources during the SeaWiFS Bio‐optical Algorithm Mini‐Workshop (SeaBAM) and is composed of 919 stations encompassing chlorophyll concentrations between 0.019 and 32.79 μg L−1. Most of the observations are from Case I nonpolar waters, and ∼20 observations are from more turbid coastal waters. A variety of statistical and graphical criteria were used to evaluate the performances of 2 semianalytic and 15 empirical chlorophyll/pigment algorithms subjected to the SeaBAM data. The empirical algorithms generally performed better than the semianalytic. Cubic polynomial formulations were generally superior to other kinds of equations. Empirical algorithms with increasing complexity (number of coefficients and wavebands), were calibrated to the SeaBAM data, and evaluated to illustrate the relative merits of different formulations. The ocean chlorophyll 2 algorithm (OC2), a modified cubic polynomial (MCP) function which uses Rrs490/Rrs555, well simulates the sigmoidal pattern evident between log‐transformed radiance ratios and chlorophyll, and has been chosen as the at‐launch SeaWiFS operational chlorophyll a algorithm. Improved performance was obtained using the ocean chlorophyll 4 algorithm (OC4), a four‐band (443, 490, 510, 555 nm), maximum band ratio formulation. This maximum band ratio (MBR) is a new approach in empirical ocean color algorithms and has the potential advantage of maintaining the highest possible satellite sensor signal: noise ratio over a 3‐orders‐of‐magnitude range in chlorophyll concentration.This publication has 73 references indexed in Scilit:
- Quantification of non-algal light attenuation in the Sargasso Sea: Implications for biogeochemistry and remote sensingDeep Sea Research Part II: Topical Studies in Oceanography, 1996
- Regional models for phytoplankton absorption as a function of chlorophyll a concentrationJournal of Geophysical Research: Oceans, 1995
- Variability in the chlorophyll‐specific absorption coefficients of natural phytoplankton: Analysis and parameterizationJournal of Geophysical Research: Oceans, 1995
- The lognormal distribution as a model for bio‐optical variability in the seaJournal of Geophysical Research: Oceans, 1995
- Coccolithophorid blooms in the global oceanJournal of Geophysical Research: Oceans, 1994
- Coastal zone color scanner “system calibration”: A retrospective examinationJournal of Geophysical Research: Oceans, 1994
- Response of water‐leaving radiance to particulate calcite and chlorophyll a concentrations: A model for Gulf of Maine coccolithophore bloomsJournal of Geophysical Research: Oceans, 1994
- Time scales of pattern evolution from cross‐spectrum analysis of advanced very high resolution radiometer and coastal zone color scanner imageryJournal of Geophysical Research: Oceans, 1994
- A three-component model of ocean colour and its application to remote sensing of phytoplankton pigments in coastal watersInternational Journal of Remote Sensing, 1989
- Relationships between chlorophyll and ocean color constituents as they affect remote‐sensing reflectance models1Limnology and Oceanography, 1986