The MODIS 2.1-mu m channel - Correlation with visible reflectance for use in remote sensing of aerosol

被引:710
作者
Kaufman, YJ
Wald, AE
Remer, LA
Gao, BC
Li, RR
Flynn, L
机构
[1] SCI SYST APPLICAT INC,LANHAM,MD 20706
[2] USN,RES LAB,WASHINGTON,DC 20375
[3] UNIV HAWAII,HAWAII INST GEOPHYS & PLANETOL,HONOLULU,HI 96822
来源
IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING | 1997年 / 35卷 / 05期
关键词
aerosols; atmosphere correction; remote sensing;
D O I
10.1109/36.628795
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
A new technique for remote sensing of aerosol over the land and for atmospheric correction of Earth imagery is developed, It is based on detection of dark surface targets in the blue and red channels, as in previous methods, but uses the 2.1-mu m channel, instead of the 3.75 mu m for their detection, ii 2.1-mu m channel is present on ADEOS OCTS and GLI, and planned on EOS-MODIS and EOSP, and a similar 2.2-mu m channel is present on Landsat TM. The advantage of the 2.1-mu m channel over the 3.75-mu m channel is that it is not affected by emitted radiation, The 2.1-mu m channel is transparent to most aerosol types (except dust) and therefore can be used to detect dark surface targets, Correlation between the surface reflection in the blue (0.49 mu m), red (0.66 mu m), and 2.1 mu m is established using atmospherically corrected Landsat TRI and AVIRIS aircraft images collected over the Eastern United States, Maine, and California and spectral data obtained from the ground and Light aircraft near San Diego, CA. Results from a variety of surface covers show that the surface reflectance at 0.49 mu m (rho(0.49)) and 0.66 mu m (rho(0.66)) can he predicted from that at 2.2 mu m (rho(2.2)) within Delta rho = +/-0.006 for rho(2.2) less than or equal to 0.10, using rho(0.49) = rho(2.2)/4 and rho(0.66) = rho(2.2)/2. Error in surface reflectance of 0.006 corresponds to an error in remote sensing of aerosol optical thickness, tau, of Delta tau similar to +/-0.06. These relationships were validated using spectral data taken close to the surface over vegetated areas in a different biome, This method expands application of dark targets for remote sensing of aerosol to brighter, nonforested vegetation, The higher reflection of the surface at 2.2 mu m than that of 3.75 mu m mag even enable remote sensing of dust above surfaces with reflectivity rho(2.2) = 0.15 +/- 0.05. For this reflectivity range the dust radiative effect at 2.2 mu m is small, and the surface reflectance in the blue and red channels can be retrieved.
引用
收藏
页码:1286 / 1298
页数:13
相关论文
共 42 条
  • [31] CHARACTERISTIC SPECTRAL REFLECTANCE OF A SEMIARID ENVIRONMENT
    PINKER, RT
    KARNIELI, A
    [J]. INTERNATIONAL JOURNAL OF REMOTE SENSING, 1995, 16 (07) : 1341 - 1363
  • [32] RADKE LF, 1991, GLOBAL BIOMASS BURNING, P209
  • [33] REMOTE-SENSING OF AEROSOLS OVER THE OCEANS USING AVHRR DATA THEORY, PRACTICE AND APPLICATIONS
    RAO, CRN
    STOWE, LL
    MCCLAIN, EP
    [J]. INTERNATIONAL JOURNAL OF REMOTE SENSING, 1989, 10 (4-5) : 743 - 749
  • [34] ROGER JC, 1994, P 6 INT C PHYS MEAS, P817
  • [35] TERRESTRIAL REMOTE-SENSING SCIENCE AND ALGORITHMS PLANNED FOR EOS MODIS
    RUNNING, SW
    JUSTICE, CO
    SALOMONSON, V
    HALL, D
    BARKER, J
    KAUFMANN, YJ
    STRAHLER, AH
    HUETE, AR
    MULLER, JP
    VANDERBILT, V
    WAN, ZM
    TEILLET, P
    CARNEGGIE, D
    [J]. INTERNATIONAL JOURNAL OF REMOTE SENSING, 1994, 15 (17) : 3587 - 3620
  • [36] MODIS - ADVANCED FACILITY INSTRUMENT FOR STUDIES OF THE EARTH AS A SYSTEM
    SALOMONSON, VV
    BARNES, WL
    MAYMON, PW
    MONTGOMERY, HE
    OSTROW, H
    [J]. IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 1989, 27 (02): : 145 - 153
  • [37] SHETTLE EP, 1979, 790214 AFGL TR
  • [38] SHETTLE EP, 1984, P S RAD ATM, P74
  • [39] AEROSOL MONITORING USING A SCANNING SPECTRAL RADIOMETER IN SENDAI, JAPAN
    SHIOBARA, M
    HAYASAKA, T
    NAKAJIMA, T
    TANAKA, M
    [J]. JOURNAL OF THE METEOROLOGICAL SOCIETY OF JAPAN, 1991, 69 (01) : 57 - 70
  • [40] TANRE D, 1988, J GEOPHYS RES, V83, P14223