Acta Optica Sinica, Volume. 35, Issue 8, 801001(2015)
Cloud Contaminated Satellite Data Processing Method in CO2 Retrieving
[1] [1] R Pachauri, A Reisinger. IPCC Fourth Assessment Report[R]. IPCC, Geneva, 2007: 5-15.
[2] [2] P J Rayner, D M O′Brien. The utility of remotely sensed CO2 concentration data in surface source inversions[J]. Geophysical Research Letters, 2001, 28(1): 175-178.
[3] [3] S Houweling, F M Breon, I Aben, et al.. Inverse modeling of CO2 sources and sinks using satellite data: A synthetic inter-comparison of measurement techniques and their performance as a function of space and time[J]. Atmospheric Chemistry and Physics, 2004, 4: 523-538.
[4] [4] S C Olsen, J T Randerson. Differences between surface and column atmospheric CO2 and implications for carbon cycle research[J]. Journal of Geophysical Research: Atmospheres, 2004, 109(D2).
[5] [5] C E Miller, D Crisp, P L DeCola, et al.. Precision requirements for space-based XCO2 data[J]. Journal of Geophysical Research, 2007, 112(D10): D10314.
[6] [6] A Kuze, H Suto, M Nakajima, et al.. Thermal and near infrared sensor for carbon observation Fourier-transform spectrometer on the Greenhouse Gases Observing Satellite for greenhouse gases monitoring[J]. Applied Optics, 2009, 48(35): 6716-6733.
[7] [7] D Crisp, R M Atlas, F-M Breon, et al.. The orbiting carbon observatory (OCO) mission[J]. Advances in Space Research, 2004, 34(4): 700-709.
[8] [8] M Buchwitz, M Reuter, H Bovensmann, et al.. Carbon monitoring satellite (CarbonSat): Assessment of atmospheric CO2 and CH4 retrieval errors by error parameterization[J]. Atmospheric Measurement Techniques, 2013, 6(12): 3477-3500.
[9] [9] Y Liu, D X Yang, Z N Cai. A retrieval algorithm for TanSat XCO2 observation: Retrieval experiments using GOSAT data[J]. Chinese Science Bulletin, 2013, 58(13): 1520-1523.
[10] [10] Shi Hailiang, Xiong Wei, Li Zhiwei, et al.. Phase error correction of spatial heterodyne spectrometer[J]. Acta Optica Sinica, 2013, 33(3): 0330003.
[11] [11] Li Zhiwei, Xiong Wei, Shi Hailiang, et al.. Study on laboratory calibration of spatial heterodyne spectrometer[J]. Acta Optica Sinica, 2014, 34(4): 0430002.
[12] [12] Li Zhiwei, Xiong Wei, Shi Hailiang, et al.. Correction of detector response error for hyperspectral spatial heterodyne interferometer[J]. Acta Optica Sinica, 2014, 34(5): 0530001.
[13] [13] N Eguchi, T Yokota. Investigation of clear-sky occurrence rate estimated from CALIOP and MODIS observations[J]. Geophysical Research Letters, 2008, 35(23): L23816.
[14] [14] I Aben, O Hasekamp, W Hartmann. Uncertainties in the space-based measurements Of CO2 columns due to scattering in the Earth′s atmosphere[J]. Journal of Quantitative Spectroscopy and Radiative Transfer, 2007, 104(3): 450-459.
[15] [15] O Schneising, M Buchwitz, J P Burrows, et al.. Three years of greenhouse gas column-averaged dry air mole fractions retrieved from satellite-Part 1: Carbon dioxide[J]. Atmospheric Chemistry and Physics, 2008, 8(14): 3827-3853.
[16] [16] J Mao, S R Kawa. Sensitivity studies for space-based measurement of atmospheric total column carbon dioxide by reflected sunlight[J]. Applied Optics, 2004, 43(4): 914-927.
[17] [17] T E Taylor, C W O′Dell, D M O′Brien, et al.. Comparison of cloud-screening methods applied to GOSAT near-infrared spectra[J]. Geoscience and Remote Sensing, 2012, 50(1): 295-309.
[18] [18] A Benedetti, J-J Morcrette, O Boucher, et al.. Aerosol analysis and forecast in the European centre for medium-range weather forecasts integrated forecast system: 2. data assimilation[J]. Journal of Geophysical Research, 2009, 114(D13): D13205.
[19] [19] J-J Morcrette, O Boucher, L Jones, et al.. Aerosol analysis and forecast in the European Centre for medium-range weather forecasts integrated forecast system: Forward modeling[J]. Journal of Geophysical Research, 2009, 114(D6): D06206.
[20] [20] Zhang Zhaoyang, Su Lin, Chen Liangfu, et al.. Retrieval and analysis of aerosol lidar ratio at several typical regions in China[J]. Chinese J Lasers, 2013, 40(5): 0513002.
[22] [22] Y Yoshida, Y Ota, N Eguchi, et al.. Retrieval algorithm for CO2 and CH4 column abundances from short-wavelength infrared spectral observations by the greenhouse gases observing satellite[J]. Atmospheric Measurement Techniques, 2011, 4(4): 717-734.
[23] [23] C W O′Dell, B Connor, H Bosch, et al.. The ACOS CO2 retrieval algorithm-Part 1: Description and validation against synthetic observations[J]. Atmospheric Measurement Techniques, 2012, 5(1): 99-121.
[24] [24] M J Alvarado, V H Payne, E J Mlawer, et al.. Performance of the line-by-line radiative transfer model (LBLRTM) for temperature, water vapor, and trace gas retrievals: Recent updates evaluated with IASI case studies[J]. Atmospheric Chemistry and Physics, 2013, 13(14): 6687-6711.
[25] [25] M H DeGroot, M J Schervish. Probability and Statistics[M]. 4th edition. Boston: Addison Wesley, 2012: 302-314.
[26] [26] U Platt, D Perner, H Patz. Simultaneous measurement of atmospheric CH2O, O3, and NO2 by differential optical absorption[J]. Journal of Geophysical Research: Oceans (1978–2012), 1979, 84(C10): 6329-6335.
[27] [27] Jiang Xinhua, Wang Xianhua, Ye Hanhan, et al.. Correction method of atmospheric scattering effect through optical path in CO2 retrieval [J]. Acta Optica Sinica, 2014, 34(8): 0801005.
[28] [28] Y Yoshida, N Eguchi, Y Ota, et al.. Algorithm Theoretical Basis Document(ATBD) for CO2 and CH4 Column Amounts Retrieval from GOSAT TANSO-FTS SWIR[R]. Center for Global Environmental Research, National Institute for Environmental Studies, 2010: 29-63.
[29] [29] D Crisp, H Boesch, L Brown, et al.. Orbiting Carbon Observatory (OCO)-2 Level 2 Full Physics Retrieval Algorithm Theoretical Basis Document[R]. Jet Propulsion Laboratory, California Institute of Technology, 2014: 39-43.
[30] [30] A Bril, S Oshchepkov, T Yokota, et al.. Parameterization of aerosol and cirrus cloud effects on reflected sunlight spectra measured from space: Application of the equivalence theorem[J]. Applied Optics, 2007, 46(13): 2460-2470.
[31] [31] A Bril, S Oshchepkov, T Yokota. Correction of atmospheric scattering effects in space-based observations of carbon dioxide: Model study of desert dust aerosol[J]. Journal of Quantitative Spectroscopy and Radiative Transfer, 2008, 109(10): 1815-1827.
[32] [32] C D Rodgers. Inverse Methods for Atmospheric Sounding: Theory and Practice[M]. Singapole: World Scentic, 2000: 81-99.
[33] [33] S Oshchepkov, A Bril, T Yokota. PPDF-based method to account for atmospheric light scattering in observations of carbon dioxide from space[J]. Journal of Geophysical Research: Atmospheres (1984–2012), 2008, 113(D23): D23210.
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Jiang Xinhua, Wang Xianhua, Ye Hanhan, Bu Tingting, Sang Hao, Yi Weining. Cloud Contaminated Satellite Data Processing Method in CO2 Retrieving[J]. Acta Optica Sinica, 2015, 35(8): 801001
Category: Atmospheric Optics and Oceanic Optics
Received: Feb. 6, 2015
Accepted: --
Published Online: Aug. 10, 2015
The Author Email: Xinhua Jiang (jxh2010@mail.ustc.edu.cn)