Atmospheric correction of ASTER

被引:95
作者
Thome, K [1 ]
Palluconi, F
Takashima, T
Masuda, K
机构
[1] Univ Arizona, Remote Sensing Grp, Ctr Opt Sci, Tucson, AZ 85721 USA
[2] CALTECH, Jet Prop Lab, Pasadena, CA 91109 USA
[3] NASDA, Earth Observat Res Ctr, Minato Ku, Tokyo 106, Japan
[4] Meteorol Res Inst, Tsukuba, Ibaraki 305, Japan
来源
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING | 1998年 / 36卷 / 04期
基金
美国国家航空航天局;
关键词
Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) atmospheric correction; lookup table;
D O I
10.1109/36.701026
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
An atmospheric correction algorithm for operational use for the high-spatial resolution, Advanced Spaceborne Thermal Emission and Reflection Radiometer (ASTER) is presented. The correction is a straightforward approach relying on inputs from other satellite sensors to determine the atmospheric characteristics of the scene to be corrected. Methods for the solar reflective and thermal infrared (TIR) are presented separately. The solar-reflective approach uses a lookup table (LUT) based on output from a Gauss-Seidel iteration radiative transfer code. A method to handle adjacency effects is included that relies on model output, assuming a checkerboard surface. An example of a numerical simulation shows that the effect of a land surface on the radiance over the ocean is stronger just off the coastal zone and decreases exponentially with increasing distance from the land. A typical numerical simulation is performed over the Tsukuba lake area in Japan. The TIR approach relies on the radiative transfer code Moderate Resolution Atmospheric Radiance and Transmittance Model (MODTRAN), The code is run for a given set of atmospheric conditions for multiple locations in the scene for several representative elevations. Pixel-by-pixel radiances are then found using spatial interpolation, Sensitivity analysis of the methods indicate that the results of the atmospheric correction,will be limited by the accuracies of the input parameters.
引用
收藏
页码:1199 / 1211
页数:13
相关论文
共 52 条
[1]  
ABREU LW, 1991, P 1991 BATTL ATM C
[2]  
ANDERSON GP, 1993, P WORKSH ATM CORR LA
[3]   THE IMPACT OF SPECTRAL EMISSIVITY ON THE MEASUREMENT OF LAND SURFACE-TEMPERATURE FROM A SATELLITE [J].
BECKER, F .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 1987, 8 (10) :1509-1522
[4]  
CLOUGH SA, 1988, P INT RAD S HAMPT VA
[5]   ATMOSPHERIC CORRECTION OF INFRARED MEASUREMENTS OF SEA-SURFACE TEMPERATURE USING CHANNELS AT 3.7, 11 AND 12 MU-M [J].
DESCHAMPS, PY ;
PHULPIN, T .
BOUNDARY-LAYER METEOROLOGY, 1980, 18 (02) :131-143
[6]   ATMOSPHERIC TRANSFER OF RADIATION ABOVE AN INHOMOGENEOUS NON-LAMBERTIAN REFLECTIVE GROUND .2. COMPUTATIONAL CONSIDERATIONS AND RESULTS [J].
DINER, DJ ;
MARTONCHIK, JV .
JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 1984, 32 (04) :279-304
[7]  
Fraser R. S., 1977, Remote Sensing of Environment, V6, P229, DOI 10.1016/0034-4257(77)90005-0
[8]   Algorithm for atmospheric and glint corrections of satellite measurements of ocean pigment [J].
Fraser, RS ;
Mattoo, S ;
Yeh, EN ;
McClain, CR .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 1997, 102 (D14) :17107-17118
[9]   ALGORITHM FOR ATMOSPHERIC CORRECTIONS OF AIRCRAFT AND SATELLITE IMAGERY [J].
FRASER, RS ;
FERRARE, RA ;
KAUFMAN, YJ ;
MARKHAM, BL ;
MATTOO, S .
INTERNATIONAL JOURNAL OF REMOTE SENSING, 1992, 13 (03) :541-557
[10]  
FUJISADA H, 1994, P SOC PHOTO-OPT INS, V2268, P14, DOI 10.1117/12.185838