HR: 1330h
AN: C32A-0437 [PDF]
TI: Evaluation of GLAS Cloud and Aerosol Data Products
AU: * Hart, W D
EM: billhart@virl.gsfc.nasa.gov
AF: Science Systems and Applications, INC, 10210 Greenbelt RD.
Suite 600, Lanham, MD 20706 United States
AU: Spinhirne, J
AF: Goddard Space Flight Center
NASA, Code 912, Greenbelt, MD 20771 United States
AU: Palm, S
AF: Science Systems and Applications, INC, 10210 Greenbelt RD.
Suite 600, Lanham, MD 20706 United States
AU: Hlavka, D
AF: Science Systems and Applications, INC, 10210 Greenbelt RD.
Suite 600, Lanham, MD 20706 United States
AU: McGill, M
AF: Goddard Space Flight Center
NASA, Code 912, Greenbelt, MD 20771 United States
AB:
NASA launched the Geoscience Laser Altimeter System (GLAS) onboard the ICESat spacecraft on January 12, 2003. The atmospheric
lidar subsystem of GLAS has the capability to detect, discriminate, and vertically locate multiple layers of clouds and
aerosols up to 40 km above the earth's surface. The results of these operations are a component of the standard data products
that make up the GLAS data product archive. The layer detection procedures are a necessary step in the effort to find
atmospheric layer optical properties from GLAS data. For the first time using and active optical instrument, GLAS makes these
products available to the atmospheric research community on a world-wide basis over an extended period of time.
In this paper, we evaluate the effectiveness of the layer detection algorithms and associated products from intercomparison
studies. The studies are designed to address the following issues regarding GLAS layer detection: 1) what is the sensitivity
of the layer detection; 2) what is the accuracy of the top and bottom boundaries; 3) how much does multiple scattering
influence the accuracy of layer boundary estimates: 4) how accurate is the cloud/aerosol layer discrimination technique; 5)
what are the frequencies of false positives and false negatives; 6) how well do layer detection results from the 1064nm
channel compare with results from the 532 nm channel; 7) how do results from nighttime observations compare with those from
daytime observations; 8) how well does GLAS atmospheric layer detection compare to other satellite-based detection, such as
from MODIS.
We also present in this paper early results of cloud layer climatological studies that show frequency of occurrence of
various cloud types and altitudes at various locations. These studies demonstrate the advantage of lidar's capability to
unambiguously discern multiple cloud layers.
DE: 0300 ATMOSPHERIC COMPOSITION AND STRUCTURE
DE: 3360 Remote sensing
SC: Cryosphere [C]
MN: 2003 Fall Meeting