DocumentCode :
814488
Title :
Land-surface temperature measurement from space: physical principles and inverse modeling
Author :
Zhengming, Wan ; Dozier, Jeff
Author_Institution :
Acad. Sinica, Beijing, China
Volume :
27
Issue :
3
fYear :
1989
fDate :
5/1/1989 12:00:00 AM
Firstpage :
268
Lastpage :
278
Abstract :
To apply the multiple-wavelength (split-window) method used for satellite measurement of sea-surface temperature from thermal-infrared data to land-surface temperatures, the authors statistically analyze simulations using an atmospheric radiative transfer model. The range of atmospheric conditions and surface temperatures simulated is wide enough to cover variations in clear atmospheric properties and surface temperatures, both of which are larger over land than over sea. Surface elevation is also included as the most important topographic effect. Land covers characterized by measured or modeled spectral emissivities include snow, clay, sands, and tree leaf samples. The empirical inverse model can estimate the surface temperature with a standard deviation less than 0.3 K and a maximum error less than 1 K. A band in the region from 10.2 to 11.0 μm will usually give the most reliable single-band estimate of surface temperature. A band in either the 3.5-4.0-μm region or in the 11.5-12.6-μm region must be included for accurate atmospheric correction
Keywords :
atmospheric light propagation; geophysical techniques; radiative transfer; remote sensing; temperature measurement; 10.2 to 11.0 micron; 11.5 to 12.6 micron; 3500 to 4000 nm; 8200 to 8800 nm; accurate atmospheric correction; atmospheric conditions; atmospheric radiative transfer model; clay; clear atmospheric properties; cloud-free conditions; empirical inverse model; inverse modeling; land-surface elevation; land-surface temperature measurement; maximum error; middle-IR; multiple wavelength measurement; sands; satellite IR remote sensing; single-band estimate; snow; spectral emissivities; split-window methods; thermal-infrared data; three-channel measurement; topographic effect; tree leaf samples; Atmospheric measurements; Atmospheric modeling; Extraterrestrial measurements; Land surface temperature; Ocean temperature; Sea measurements; Sea surface; Surface topography; Temperature distribution; Temperature measurement;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/36.17668
Filename :
17668
Link To Document :
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