Determining the Precision of Spectral Patterns Arising from Atmospheric Correction Utilizing MODTRAN-FLAASH and 6S Approaches on High-Resolution SPOT-6 Imagery

被引:0
作者
Sartika, Sartika [1 ]
Bayanuddin, Athar A. [2 ]
Putri, Fanny A. [1 ]
Ulfa, Kurnia [1 ]
Hadiyanto, Ahmad L. [1 ]
Candra, Danang S. [1 ]
Chulafak, Galdita A. [1 ]
机构
[1] Natl Res & Innovat Agcy BRIN, Res Ctr Remote Sensing, Cibinong, Indonesia
[2] Natl Res & Innovat Agcy BRIN, Directorate Lab Management Res Facil & Sci & Tech, Parepare, Indonesia
来源
2023 IEEE INTERNATIONAL CONFERENCE ON AEROSPACE ELECTRONICS AND REMOTE SENSING TECHNOLOGY, ICARES | 2023年
关键词
SPOT-6; atmospheric correction; MODTRAN-FLAASH; 6S; SATELLITE DATA; WATERS; MODIS; CODE;
D O I
10.1109/ICARES60489.2023.10329791
中图分类号
V [航空、航天];
学科分类号
08 ; 0825 ;
摘要
High-resolution SPOT-6 imagery plays a crucial role in spatial and regional analysis, as well as land monitoring. However, atmospheric disturbances in scene images lead to suboptimal information extraction. Hence, the atmospheric correction process is essential during the initial processing of SPOT images. Unfortunately, the atmospheric correction of high-resolution images has not been extensively studied. In this paper, we compare the accuracy of the radiation transfer model technique by assessing the MODTRAN-FLAASH and 6S algorithms on high-resolution SPOT-6 images within Semarang city. RMSE values from both algorithms are calculated for nine different objects: grass, red floor tiles, granite tiles, brick tiles, paving blocks, marble, water, mangroves, and garbage piles. The RMSE values obtained from the MODTRAN-FLAASH and 6S methods are nearly identical for each object. Based on the average RMSE value, it is evident that the MODTRAN-FLAASH algorithm yields a lower average RMSE value than the 6S algorithm. Consequently, the MODTRAN-FLAASH approach is recommended for the SPOT image atmospheric correction process.
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页数:7
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共 30 条
  • [1] Anderson G. P., 1999, 1999 IEEE Aerospace Conference. Proceedings (Cat. No.99TH8403), P177, DOI 10.1109/AERO.1999.792088
  • [2] MODTRAN™5, a reformulated atmospheric band model with auxiliary species and practical multiple scattering options:: Update
    Berk, A
    Anderson, GP
    Acharya, PK
    Bernstein, LS
    Muratov, L
    Lee, J
    Fox, M
    Adler-Golden, SM
    Chetwynd, JH
    Hoke, ML
    Lockwood, RB
    Gardner, JA
    Cooley, TW
    Borel, CC
    Lewis, PE
    [J]. Algorithms and Technologies for Multispectral, Hyperspectral, and Ultraspectral Imagery XI, 2005, 5806 : 662 - 667
  • [3] MODTRAN4 radiative transfer modeling for atmospheric correction
    Berk, A
    Anderson, GP
    Bernstein, LS
    Acharya, PK
    Dothe, H
    Matthew, MW
    Adler-Golden, SM
    Chetwynd, JH
    Richtsmeier, SC
    Pukall, B
    Allred, CL
    Jeong, LS
    Hoke, ML
    [J]. OPTICAL SPECTROSCOPIC TECHNIQUES AND INSTRUMENTATION FOR ATMOSPHERIC AND SPACE RESEARCH III, 1999, 3756 : 348 - 353
  • [4] Atmospheric correction issues for retrieving total suspended matter concentrations in inland waters using OLI/Landsat-8 image
    Bernardo, Nariane
    Watanabe, Fernanda
    Rodrigues, Thanan
    Alcantara, Enner
    [J]. ADVANCES IN SPACE RESEARCH, 2017, 59 (09) : 2335 - 2348
  • [6] Cooley T, 2002, INT GEOSCI REMOTE SE, P1414, DOI 10.1109/IGARSS.2002.1026134
  • [7] Fibriawati L., 2016, SEM NAS PENG JAUH, P98
  • [8] An Operational Radiometric Landsat Preprocessing Framework for Large-Area Time Series Applications
    Frantz, David
    Roeder, Achim
    Stellmes, Marion
    Hill, Joachim
    [J]. IEEE TRANSACTIONS ON GEOSCIENCE AND REMOTE SENSING, 2016, 54 (07): : 3928 - 3943
  • [9] A new approach for atmospheric correction of MODIS imagery in turbid coastal waters: a case study for the Pearl River Estuary
    He, Quanjun
    Chen, Chuqun
    [J]. REMOTE SENSING LETTERS, 2014, 5 (03) : 249 - 257
  • [10] Validation of a vector version of the 6S radiative transfer code for atmospheric correction of satellite data. Part I: Path radiance
    Kotchenova, Svetlana Y.
    Vermote, Eric F.
    Matarrese, Raffaella
    Klemm, Frank J., Jr.
    [J]. APPLIED OPTICS, 2006, 45 (26) : 6762 - 6774