• Journal of Infrared and Millimeter Waves
  • Vol. 40, Issue 6, 809 (2021)
Jin-Jin LI1、2, Shi QIU1、*, Yu ZHANG1, Cai-Xia GAO1, Yong-Gang QIAN1, and Yao-Kai LIU1
Author Affiliations
  • 1Key Laboratory of Quantitative Remote Sensing Information Technology,Aerospace Information Research Institute,Chinese Academy of Sciences,Beijing 100094,China
  • 2School of Optoelectronics,University of Chinese Academy of Sciences,Beijing 100049,China
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    DOI: 10.11972/j.issn.1001-9014.2021.06.015 Cite this Article
    Jin-Jin LI, Shi QIU, Yu ZHANG, Cai-Xia GAO, Yong-Gang QIAN, Yao-Kai LIU. Performance assessments of VIIRS DNB on-orbit radiometric calibration accuracy and stability on SNPP and NOAA-20[J]. Journal of Infrared and Millimeter Waves, 2021, 40(6): 809 Copy Citation Text show less
    References

    [1] De-Ren LI, Xi LI. Applications of night-time light remote sensing in evaluating of socioeconomic development. Journal of Macro-quality Research..

    [2] C N Doll, J Muller, J G Morley. Mapping regional economic activity from night-time light satellite imagery. Ecological Economics, 57, 75-92(2006).

    [3] M M Bennett, L C Smith. Advances in using multitemporal night-time lights satellite imagery to detect, estimate, and monitor socioeconomic dynamics. Remote Sensing of Environment, 192, 176-197(2017).

    [4] B Pandey, P K Joshi, K C Seto. Monitoring urbanization dynamics in India using DMSP/OLS night time lights and SPOT-VGT data. International Journal of Applied Earth Observation and Geoinformation, 23, 49-61(2013).

    [5] S E Bauer, S E Wagner, J Burch et al. A case-referent study: light at night and breast cancer risk in Georgia. International Journal of Health Geographics, 12, 1-10(2013).

    [6] M O Roman, E C Stokes. Holidays in lights: Tracking cultural patterns in demand for energy services. Earths Future, 3, 182-205(2015).

    [7] X J Xiong, J A Esposito, J Q Sun et al. Degradation of MODIS optics and its reflective solar bands calibration. Proceedings of SPIE, 4540, 62-70(2001).

    [8] W F Staylor. Degradation rates of the AVHRR visible channel for the NOAA 6, 7, and 9 spacecraft. Journal of Atmospheric and Oceanic Technology, 7, 411-23(1990).

    [9] C R N Rao, J Chen. Calibration of the visible and near-infrared channels of the advanced very high resolution radiometer (AVHRR) after launch. SPIE, 56-66(1938).

    [10] D L Smith, P D Read, C T Mutlow. The calibration of the visible/near infrared channels of the along-track-scanning-radiometer-2 (ATSR-2), 3221, 53-62(1997).

    [11] C Cao, S Uprety, J Xiong et al. Establishing the Antarctic Dome C community reference standard site towards consistent measurements from Earth observation satellites. Canadian Journal of Remote Sensing, 36, 498-513(2014).

    [12] S J Doherty, S G Warren. The Antarctic and Greenland snow surfaces as calibration targets for the visible channel of the advanced very high resolution radiometer. IEEE International Geoscience & Remote Sensing Symposium, 2267-9(1998).

    [13] S J Masonis, S G Warren. Gain of the AVHRR visible channel as tracked using bidirectional reflectance of Antarctic and Greenland snow. International Journal of Remote Sensing, 22, 1495-520(2001).

    [14] N G Loeb. In-flight calibration of NOAA AVHRR visible and near-IR bands over Greenland and Antarctica. International Journal of Remote Sensing, 18, 477-90(2010).

    [15] D Six, M Fily, S Alvain et al. Surface characterisation of the Dome Concordia area (Antarctica) as a potential satellite calibration site, using Spot 4/Vegetation instrument. Remote Sensing of Environment, 89, 83-94(2004).

    [16] G Jaross, J Warner. Use of Antarctica for validating reflected solar radiation measured by satellite sensors. Journal of Geophysical Research, 113, 1-13(2008).

    [17] A Wu. Using Dome C for moderate resolution imaging spectroradiometer calibration stability and consistency. Journal of Applied Remote Sensing, 3, 1-12(2009).

    [18] B N Wenny, X Xiong. Using a cold earth surface target to characterize long-term stability of the MODIS thermal emissive bands. IEEE Geoscience and Remote Sensing Letters, 5, 162-165(2008).

    [19] S Qiu, X Shao, C Cao et al. Feasibility demonstration for calibrating Suomi-National Polar-Orbiting Partnership Visible Infrared Imaging Radiometer Suite day/night band using Dome C and Greenland under moon light. Journal of Applied Remote Sensing, 10, 016024 1-13(2016).

    [20] S Uprety, C Cao. Suomi NPP VIIRS reflective solar band on-orbit radiometric stability and accuracy assessment using desert and Antarctica Dome C sites. Remote Sensing of Environment, 166(2015).

    [21] N Baker, H Kilcoyne. Joint polar satellite system(JPSS)VIIRS radiometric calibration algorithm theoretical basis document (ATBD).

    [22] L B Liao, S Weiss, S Mills et al. Suomi NPP VIIRS day-night band on-orbit performance. Journal of Geophysical Research: Atmospheres, 118, 12705-12718(2013).

    [23] S Lee, K Chiang, X Xiong et al. The S-NPP VIIRS day-night band on-orbit calibration/characterization and current state of SDR products. Remote Sensing, 6, 12427-46(2014).

    [24] S MillS, S Weiss, C Liang. VIIRS day/night band (DNB) stray light characterization and correction. Earth Observing Systems XVIII, 78(2013).

    [25] L Shihyan, J Mcintire, H Oudrari et al. A new method for Suomi-NPP VIIRS day–night band on-orbit radiometric calibration. IEEE Transactions on Geoscience and Remote Sensing, 53, 324-34(2015).

    [26] S Uprety, C Cao, Y Gu et al. Calibration improvements in S-NPP VIIRS DNB sensor data record using version 2 reprocessing. IEEE Transactions on Geoscience and Remote Sensing, 57, 9602-11(2019).

    [27] S Uprety, C Cao. Radiometric and spectral characterization and comparison of the Antarctic Dome C and Sonoran Desert sites for the calibration and validation of visible and near-infrared radiometers. Journal of Applied Remote Sensing, 6, 1-15(2012).

    [28] S Qiu, X Shao, C Y Cao et al. Assessment of straylight correction performance for the VIIRS Day/Night Band using Dome-C and Greenland under lunar illumination. International Journal of Remote Sensing, 38, 5880-98(2017).

    [29] S R Hudson, S G Warren, R E Brandt et al. Spectral bidirectional reflectance of Antarctic snow: Measurements and parameterization. Journal of Geophysical Research, 111, 1-19(2006).

    [30] S G Warren, R E Brandt, P O'RAWE HINTON. Effect of surface roughness on bidirectional reflectance of Antarctic snow. Journal of Geophysical Research: Planets, 103, 25789-807(1998).

    [31] S D Miller, R E Turner. A dynamic lunar spectral irradiance dataset for NPOESSVIIRS DayNight Band nighttime environmental. IEEE Transactions on Geoscience And Remote Sensing, 47, 2316-29(2009).

    [32] J Li, S Qiu, Y Zhang et al. Assessment of BRDF impact on VIIRS DNB from observed top-of-atmosphere reflectance over Dome C in nighttime. Remote Sensing, 13, 301(2021).

    Jin-Jin LI, Shi QIU, Yu ZHANG, Cai-Xia GAO, Yong-Gang QIAN, Yao-Kai LIU. Performance assessments of VIIRS DNB on-orbit radiometric calibration accuracy and stability on SNPP and NOAA-20[J]. Journal of Infrared and Millimeter Waves, 2021, 40(6): 809
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