Information-rich spectral channels for simulated retrievals of partial column-averaged methane

被引:4
作者
Su, Zhan [1 ]
Xi, Xi [1 ]
Natraj, Vijay [2 ]
Li, King-Fai [1 ,3 ]
Shia, Run-Lie [1 ]
Miller, Charles E. [2 ]
Yung, Yuk L. [1 ,2 ]
机构
[1] CALTECH, Div Geol & Planetary Sci, Pasadena, CA 91125 USA
[2] CALTECH, Jet Prop Lab, Pasadena, CA USA
[3] Univ Washington, Dept Appl Math, Seattle, WA 98195 USA
基金
美国国家航空航天局;
关键词
remote sensing; information analysis; channel selection; methane cycle; ATMOSPHERIC METHANE; REFLECTED SUNLIGHT; MOLE FRACTIONS; CH4; CO2; RESOLUTION; ALGORITHM; SATELLITE; AEROSOL; SPECTROMETER;
D O I
10.1002/2015EA000120
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Space-based remote sensing of the column-averaged methane dry air mole fraction (XCH4) has greatly increased our understanding of the spatiotemporal patterns in the global methane cycle. The potential to retrieve multiple pieces of vertical profile information would further improve the quantification of CH4 across space-time scales. We conduct information analysis for channel selection and evaluate the prospects of retrieving multiple pieces of information as well as total column CH4 from both ground-based and space-based near-infrared remote sensing spectra. We analyze the degrees of freedom of signal (DOF) in the CH4 absorption bands near 2.3m and 1.6m and select approximate to 1% of the channels that contain >95% of the information about the CH4 profile. The DOF is around 4 for fine ground-based spectra (resolution=0.01cm(-1)) and 3 for coarse space-based spectra (resolution=0.20cm(-1)) based on channel selection and a signal-to-noise ratio (SNR) of 300. The DOF varies from 2.2 to 3.2 when SNR is between 100 and 300, and spectral resolution is 0.20cm(-1). Simulated retrieval tests in clear-sky conditions using the selected channels reveal that the retrieved partial column-averaged CH4 values are not sensitive to the a priori profiles and can reflect local enhancements of CH4 in different partial air columns. Both the total and partial column-averaged retrieval errors in all tests are within 1% of the true state. These simulated tests highlight the possibility to retrieve up to three to four pieces of information about the vertical distribution of CH4 in reality.
引用
收藏
页码:2 / 14
页数:13
相关论文
共 61 条
[41]   OPTICAL-CONSTANTS OF SULFURIC-ACID - APPLICATION TO CLOUDS OF VENUS [J].
PALMER, KF ;
WILLIAMS, D .
APPLIED OPTICS, 1975, 14 (01) :208-219
[42]   Methane observations from the Greenhouse Gases Observing SATellite: Comparison to ground-based TCCON data and model calculations [J].
Parker, Robert ;
Boesch, Hartmut ;
Cogan, Austin ;
Fraser, Annemarie ;
Feng, Liang ;
Palmer, Paul I. ;
Messerschmidt, Janina ;
Deutscher, Nicholas ;
Griffith, David W. T. ;
Notholt, Justus ;
Wennberg, Paul O. ;
Wunch, Debra .
GEOPHYSICAL RESEARCH LETTERS, 2011, 38
[43]  
Rodgers C.D., 2000, Inverse Methods for Atmospheric Sounding: Theory and Practice, VVolume 2
[44]   Information content and optimisation of high spectral resolution remote measurements [J].
Rodgers, CD .
REMOTE SENSING: INVERSION PROBLEMS AND NATURAL HAZARDS, 1998, 21 (03) :361-367
[45]   The HITRAN 2008 molecular spectroscopic database [J].
Rothman, L. S. ;
Gordon, I. E. ;
Barbe, A. ;
Benner, D. Chris ;
Bernath, P. E. ;
Birk, M. ;
Boudon, V. ;
Brown, L. R. ;
Campargue, A. ;
Champion, J. -P. ;
Chance, K. ;
Coudert, L. H. ;
Dana, V. ;
Devi, V. M. ;
Fally, S. ;
Flaud, J. -M. ;
Gamache, R. R. ;
Goldman, A. ;
Jacquemart, D. ;
Kleiner, I. ;
Lacome, N. ;
Lafferty, W. J. ;
Mandin, J. -Y. ;
Massie, S. T. ;
Mikhailenko, S. N. ;
Miller, C. E. ;
Moazzen-Ahmadi, N. ;
Naumenko, O. V. ;
Nikitin, A. V. ;
Orphal, J. ;
Perevalov, V. I. ;
Perrin, A. ;
Predoi-Cross, A. ;
Rinsland, C. P. ;
Rotger, M. ;
Simeckova, M. ;
Smith, M. A. H. ;
Sung, K. ;
Tashkun, S. A. ;
Tennyson, J. ;
Toth, R. A. ;
Vandaele, A. C. ;
Vander Auwera, J. .
JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2009, 110 (9-10) :533-572
[46]   Derivation of tropospheric methane from TCCON CH4 and HF total column observations [J].
Saad, K. M. ;
Wunch, D. ;
Toon, G. C. ;
Bernath, P. ;
Boone, C. ;
Connor, B. ;
Deutscher, N. M. ;
Griffith, D. W. T. ;
Kivi, R. ;
Notholt, J. ;
Roehl, C. ;
Schneider, M. ;
Sherlock, V. ;
Wennberg, P. O. .
ATMOSPHERIC MEASUREMENT TECHNIQUES, 2014, 7 (09) :2907-2918
[47]   Methane retrievals from Greenhouse Gases Observing Satellite (GOSAT) shortwave infrared measurements: Performance comparison of proxy and physics retrieval algorithms [J].
Schepers, D. ;
Guerlet, S. ;
Butz, A. ;
Landgraf, J. ;
Frankenberg, C. ;
Hasekamp, O. ;
Blavier, J. -F. ;
Deutscher, N. M. ;
Griffith, D. W. T. ;
Hase, F. ;
Kyro, E. ;
Morino, I. ;
Sherlock, V. ;
Sussmann, R. ;
Aben, I. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2012, 117
[48]   Three years of greenhouse gas column-averaged dry air mole fractions retrieved from satellite - Part 2: Methane [J].
Schneising, O. ;
Buchwitz, M. ;
Burrows, J. P. ;
Bovensmann, H. ;
Bergamaschi, P. ;
Peters, W. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2009, 9 (02) :443-465
[49]  
Seinfeld J. H., 2006, Atmospheric chemistry and physics: from air pollution to climate change
[50]   A discrete-ordinates solution for radiative-transfer models that include polarization effects [J].
Siewert, CE .
JOURNAL OF QUANTITATIVE SPECTROSCOPY & RADIATIVE TRANSFER, 2000, 64 (03) :227-254