DocumentCode
995096
Title
Computing Coastal Ocean Surface Currents From Infrared and Ocean Color Satellite Imagery
Author
Crocker, R. Ian ; Matthews, Dax K. ; Emery, William J. ; Baldwin, Daniel G.
Author_Institution
Dept. of Aerosp. Eng. Sci., Colorado Univ., Boulder, CO
Volume
45
Issue
2
fYear
2007
Firstpage
435
Lastpage
447
Abstract
Many previous studies have demonstrated the viability of estimating advective ocean surface currents from sequential infrared satellite imagery using the maximum cross-correlation (MCC) technique when applied to 1.1-km-resolution Advanced Very High Resolution Radiometer (AVHRR) thermal infrared imagery. Applied only to infrared imagery, cloud cover and undesirable viewing conditions (gaps in satellite data and edge-of-scan distortions) limit the spatial and temporal coverage of the resulting velocity fields. In addition, MCC currents are limited to those represented by the displacements of thermal surface patterns, and hence, isothermal flow is not detected by the MCC method. The possibility of supplementing MCC currents derived from thermal AVHRR imagery was examined, with currents calculated from 1.1-km-resolution Moderate Resolution Imaging Spectroradiometer (MODIS) and Sea-viewing Wide Field-of-view Sensor (SeaWiFS) ocean color imagery, which often have spatial patterns complementary to the thermal infrared patterns. Statistical comparisons are carried out between yearlong collections of thermal and ocean color derived MCC velocities for the central California Current. It is found that the image surface patterns and resulting MCC velocities complement one another to reduce the effects of poor viewing conditions and isothermal flow. The two velocity products are found to agree quite well with a mean correlation of 0.74, a mean rms difference of 7.4 cm/s, and a mean bias less than 2 cm/s which is considerably smaller than the established absolute error of the MCC method. Merging the thermal and ocean color MCC velocity fields increases the spatial coverage by approximately 25% for this specific case study
Keywords
infrared imaging; ocean temperature; radiometers; remote sensing; underwater optics; Advanced Very High Resolution Radiometer; MCC technique; MODIS; Moderate Resolution Imaging Spectroradiometer; Sea-viewing Wide Field-of-view Sensor; SeaWiFS; advective ocean surface currents; central California Current; cloud cover; coastal ocean surface currents; edge-of-scan distortions; infrared satellite imagery; isothermal flow; maximum cross-correlation; ocean color satellite imagery; thermal AVHRR imagery; thermal surface patterns; velocity fields; Infrared image sensors; Infrared imaging; Isothermal processes; MODIS; Ocean temperature; Optical computing; Satellite broadcasting; Sea measurements; Sea surface; Spatial resolution; California Current (CC); coastal ocean surface currents; maximum cross-correlation (MCC) method; oceancolor imagery; thermal infrared Advanced Very High Resolution Radiometer (AVHRR) imagery;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2006.883461
Filename
4069100
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