• Laser & Optoelectronics Progress
  • Vol. 55, Issue 8, 80101 (2018)
Ji Changdong1, Sun Daozhong1, and Ma Chuanning2
Author Affiliations
  • 1[in Chinese]
  • 2[in Chinese]
  • show less
    DOI: 10.3788/lop55.080101 Cite this Article Set citation alerts
    Ji Changdong, Sun Daozhong, Ma Chuanning. NPP VIIRS Data Fast Atmospheric Correction and Accuracy Evaluation Based on 6S Model[J]. Laser & Optoelectronics Progress, 2018, 55(8): 80101 Copy Citation Text show less
    References

    [1] Su W, Zhang M Z, Jiang K P, et al. Study on atmospheric correction method of Sentinel-2 image[J]. Acta Optica Sinica, 2018, 38(1): 0128001.

    [2] Yang H, Li X W, Gao F. An algorithm for the retrieval of albedo from space using new go kernel-driven BRDF model[J]. Journal of Remote Sensing, 2002, 6(4): 240-251.

    [3] Hao J T, Yang W N, Li Y X, et al. Atmospheric correction of multi-spectral imagery ASTER[J]. Remote Sensing Information, 2008, 6(1): 78-81.

    [4] Zheng S, Zhao X, Zhang H, et al. Atmospheric correction on CCD data of HJ-1 satellite and analysis of its effect[J]. Journal of Remote Sensing, 2011, 15(4): 709-721.

    [5] Sun C K, Sun L, Ma S F, et al. Atmospheric correction method based on HJ-1 CCD data[J]. Journal of Remote Sensing, 2012, 16(4): 826-836.

    [6] Zhou L, Li Y M, Guo Y L, et al. Atmospheric correction for case-2 water using a radiative transfer optimized model[J]. Acta Optica Sinica, 2014, 34(2): 0201002.

    [7] Zhu C M, Yang L, Chen S, et al. Basing on ATCOR2 model achieved CBERS02 atmospheric correction[J]. Remote Sensing Technology and Application, 2008, 23(5): 565-570.

    [8] Wang Y F, Jing J L. Comparison of FLAASH and ATCOR2 atmospheric correction modules on Landsat ETM+ data[J]. Geomatics & Spatial Information Technology, 2014, 37(9): 122-125.

    [9] Song X Y, Wang J H, Liu L Y, et al. Atmospheric correction of hyper-spectral imagery: evaluation of the FLAASH algorithm with AVRIS data[J]. Remote Sensing Technology and Application, 2005, 20(4): 393-398.

    [10] He L M, Wang Q, Li X W, et al. Techniques and software’s analysis on atmospheric correction of optical remote sensing imagery[J]. Journal of Geo-Information Science, 2006, 8(2): 110-115.

    [11] Liu J, Wang L M, Yang L B, et al. GF-1 satellite image atmospheric correction based on 6S model and its effect[J]. Transactions of the Chinese Society of Agricultural Engineering, 2015, 31(19): 159-168.

    [12] Yang J, Wang J J, Wang F, et al. Error mechanism and calibration of infrared polarization detection in atmospheric transmission[J]. Acta Optica Sinica, 2016, 36(10): 1001002.

    [13] Wang J J, Yang J, Zhang W T, et al. Atmospheric correction of polarization remote sensing image by independent component analysis[J]. Laser & Optoelectronics Progress, 2016, 53(1): 011001.

    [14] Wang H B, Hu X Q, Zhang L, et al. Polarization correction for grating dispersive imaging spectrometer[J]. Acta Optica Sinica, 2016, 36(8): 0812004.

    [15] Su C L, Su L, Chen L F, et al. Retrieval of aerosol optical depth using NPP VIIRS data[J]. Journal of Remote Sensing, 2015, 19(6): 977-982.

    [16] Xia L, Mao K B, Sun Z W, et al. Cloud detection application on NPP VIIRS[J]. China Environmental Science. 2014, 34 (3): 574-580.

    [17] Hillger D, Seaman C, Liang C, et al. Suomi NPP VIIRS imagery evaluation[J]. Journal of Geophysical Research Atmospheres, 2014, 119(11): 6440-6455.

    [18] Schueler C F, Lee T F, Miller S D. VIIRS constant spatial-resolution advantages[J]. International Journal of Remote Sensing, 2013, 34(16): 5761-5777.

    [19] Yao W, Li Z J, Yao G, et al. Atmospheric correction model for Landsat images[J]. Transactions of Atmospheric Sciences, 2011, 34(2): 251-256.

    [20] Tanré D, Herman M, Deschamps P Y, et al. Atmospheric modeling for space measurements of ground reflectance, including bidirectional properties[J]. Applied Optics, 1979, 18(21): 3587-3594.

    [21] Zhang Y. Investigation and application of atmospheric correction based on 6S radiative transfer model[D]. Changsha: Central South University, 2014.

    [22] Vermote E F, Tanré D, Deuzé J L, et al. Second simulation of the satellite signal in the solar spectrum, 6S: an overview[J]. IEEE Transactions on Geoscience and Remote Sensing, 1997, 35(3): 675-686.

    [23] Zhou C Y, Liu Q H, Tang Y, et al. Comparison between MODIS aerosol product C004 and C005 and evaluation of their applicability in the north of China[J]. Journal of Remote Sensing, 2009, 13(5): 854-872.

    [24] Song Y H, Shi L L, Wang Y F, et al. Retrieve of lidar ratio of aerosols by iteration[J]. Chinese Journal of Lasers, 2016, 43(1): 0113001.

    [25] Kaufman Y J, Tanré D, Remer L, et al. Operational remote sensing of tropospheric aerosol over land from EOS moderate resolution imaging spectroradiometer[J]. Journal of Geophysical Research Atmospheres, 1997, 102(27): 51-17.

    [26] Levy R C, Remer L A, Mattoo S, et al. Second-generation operational algorithm: retrieval of aerosol properties over land from inversion of moderate resolution imaging spectroradiometer spectral reflectance[J]. Journal of Geophysical Research Atmospheres, 2007, 112: D13211.

    Ji Changdong, Sun Daozhong, Ma Chuanning. NPP VIIRS Data Fast Atmospheric Correction and Accuracy Evaluation Based on 6S Model[J]. Laser & Optoelectronics Progress, 2018, 55(8): 80101
    Download Citation