Inversion of Atmospheric CO 2 Concentrations
313
R. M. Law and P. Vohralik. Methane sources from mass-balance inversions: Sensitivity to
transport. CSIRO Atmospheric Research Technical Paper no. 50, 2001. Electronic edition at: http://www.dar.csiro.au/publications/Law_2001a.pdf.
R. M. Law, P. J. Rayner, A. S. Denning, D. Erickson, I. Y. Fung, M. Heimann, S. C. Piper
et al. Variations in modeled atmospheric transport of carbon dioxide and the consequences for CO 2 inversions. Glob. Biogeochem. Cycles, 10:783–796, 1996.
R. M. Law, P. J. Rayner, L. P. Steele, and I. G. Enting. Using high temporal frequency data for
CO 2 inversions. Glob. Biogeochem. Cycles, 16, 2002, doi:10.1029/2001GB001593.
R. M. Law, Y.-H. Chen, K. R. Gurney, and TransCom3 modellers. Transcom 3 CO 2 inversion inter-comparison: 2. Sensitivities of annual mean results to data choices. Tellus,
55B:580–595, 2003a.
R. M. Law, P. J. Rayner, L. P. Steele, and I. G. Enting. Data and modelling requirements for
CO 2 inversions using high-frequency data. Tellus, 55B:512–521, 2003b.
R. M. Law, P. J. Rayner, and Y. P. Wang. Inversion of diurnally varying synthetic CO 2 : Network
optimization for an Australian test case. Glob. Biogeochem. Cycles, 18:1044, 2004,
doi:10.1029/2003GB002136.
A. C. Manning, R. F. Keeling, and J. P. Severinghaus. Precise atmospheric oxygen measurements
with a paramagnetic oxygen analyzer. Glob. Biogeochem. Cycles, 13:1107–1115, 1999.
A. Michalak, L. Bruhwiler, and P. P. Tans. A geostatistical approach to surface fl ux estimation
of atmospheric trace gases. J. Geophys. Res., 109:D14109, 2004, doi:10.1029/2003/
JD004422.
A. Michalak, A. Hirsch, L. Bruhwiler, K. R. Gurney, and P. P. Tans. Maximum likelihood
estimation of covariance parameters for Bayesian atmospheric trace gas surface fl ux
inversions. J. Geophys. Res., 110:D24107, 2005, doi:10.1029/205/JD005970.
G. N. Newsam and I. G. Enting. Inverse problems in atmospheric constituent studies: I.
Determination of surface sources under a diffusive transport approximation. Inverse
Problems, 4:1037–1054, 1988.
D. M. O’Brien and P. J. Rayner. Global observations of the carbon budget. 2. CO 2 column from
differential absorption of refl ected sunlight in the 1.61 μm band of CO 2 . J. Geophy. Res.,
107D, 2002, doi:10.1029/2001JD000617.
H. Oeschger and M. Heimann. Uncertainties of predictions of future atmospheric CO 2 concentrations. J. Geophys. Res., 88C:1258–1262, 1983.
H. Oeschger, U. Siegenthaler, U. Schotterer, and A. Gugelmann. A box diffusion model to
study the carbon dioxide exchange in nature. Tellus, 27:168–192, 1975.
B. C. Pak and M. J. Prather. CO 2 source inversions using satellite observations of the upper
troposphere. Geophys. Res. Lett., 28:4571–4574, 2001.
P. K. Patra and S. Maksyutov. Incremental approach to the optimal network design for
CO 2 surface source inversion. Geophys. Res. Lett., 29:1459, 2002. doi:10.1029/2001/
GL013943.
P. K. Patra, S. Maksyutov, and TransCom 3 Modellers. Optimal network design for improved
CO 2 source inversion. Tellus, 55B:498–511, 2003.
P. K. Patra, S. Maksyutov, M. Ishizawa, T. Nakazawa, and J. Ukita. Interannual and decadal changes in the sea-air CO 2 fl ux from atmospheric CO 2 inverse modelling. Glob.
Biogeochem. Cycles, 19:GBC4013, 2005, doi:10/1029/2004GB002257.
G. I. Pearman. Atmospheric CO 2 concentration measurements. A review of methodologies,
existing programmes and available data. Technical Report Report no. 3, WMO Project
on Research and Monitoring of Atmospheric CO 2 , Geneva, 1980.
R. G. Prinn. Measurement equation for trace chemicals in fl uids and solution of its inverse. In
Kasibhatla et al. (2000), pp. 3–18.
R. G. Prinn, R. F. Weiss, P. J. Fraser, P. G. Simmonds, D. M. Cunnold, F. N. Alyea, S. O’Doherty
et al. A history of chemically and radiatively important gases in air deduced from ALE/
GAGE/AGAGE. J. Geophys. Res., 105D:17751–17792, 2000.
© 2010 by Taylor and Francis Group, LLC
313
R. M. Law and P. Vohralik. Methane sources from mass-balance inversions: Sensitivity to
transport. CSIRO Atmospheric Research Technical Paper no. 50, 2001. Electronic edition at: http://www.dar.csiro.au/publications/Law_2001a.pdf.
R. M. Law, P. J. Rayner, A. S. Denning, D. Erickson, I. Y. Fung, M. Heimann, S. C. Piper
et al. Variations in modeled atmospheric transport of carbon dioxide and the consequences for CO 2 inversions. Glob. Biogeochem. Cycles, 10:783–796, 1996.
R. M. Law, P. J. Rayner, L. P. Steele, and I. G. Enting. Using high temporal frequency data for
CO 2 inversions. Glob. Biogeochem. Cycles, 16, 2002, doi:10.1029/2001GB001593.
R. M. Law, Y.-H. Chen, K. R. Gurney, and TransCom3 modellers. Transcom 3 CO 2 inversion inter-comparison: 2. Sensitivities of annual mean results to data choices. Tellus,
55B:580–595, 2003a.
R. M. Law, P. J. Rayner, L. P. Steele, and I. G. Enting. Data and modelling requirements for
CO 2 inversions using high-frequency data. Tellus, 55B:512–521, 2003b.
R. M. Law, P. J. Rayner, and Y. P. Wang. Inversion of diurnally varying synthetic CO 2 : Network
optimization for an Australian test case. Glob. Biogeochem. Cycles, 18:1044, 2004,
doi:10.1029/2003GB002136.
A. C. Manning, R. F. Keeling, and J. P. Severinghaus. Precise atmospheric oxygen measurements
with a paramagnetic oxygen analyzer. Glob. Biogeochem. Cycles, 13:1107–1115, 1999.
A. Michalak, L. Bruhwiler, and P. P. Tans. A geostatistical approach to surface fl ux estimation
of atmospheric trace gases. J. Geophys. Res., 109:D14109, 2004, doi:10.1029/2003/
JD004422.
A. Michalak, A. Hirsch, L. Bruhwiler, K. R. Gurney, and P. P. Tans. Maximum likelihood
estimation of covariance parameters for Bayesian atmospheric trace gas surface fl ux
inversions. J. Geophys. Res., 110:D24107, 2005, doi:10.1029/205/JD005970.
G. N. Newsam and I. G. Enting. Inverse problems in atmospheric constituent studies: I.
Determination of surface sources under a diffusive transport approximation. Inverse
Problems, 4:1037–1054, 1988.
D. M. O’Brien and P. J. Rayner. Global observations of the carbon budget. 2. CO 2 column from
differential absorption of refl ected sunlight in the 1.61 μm band of CO 2 . J. Geophy. Res.,
107D, 2002, doi:10.1029/2001JD000617.
H. Oeschger and M. Heimann. Uncertainties of predictions of future atmospheric CO 2 concentrations. J. Geophys. Res., 88C:1258–1262, 1983.
H. Oeschger, U. Siegenthaler, U. Schotterer, and A. Gugelmann. A box diffusion model to
study the carbon dioxide exchange in nature. Tellus, 27:168–192, 1975.
B. C. Pak and M. J. Prather. CO 2 source inversions using satellite observations of the upper
troposphere. Geophys. Res. Lett., 28:4571–4574, 2001.
P. K. Patra and S. Maksyutov. Incremental approach to the optimal network design for
CO 2 surface source inversion. Geophys. Res. Lett., 29:1459, 2002. doi:10.1029/2001/
GL013943.
P. K. Patra, S. Maksyutov, and TransCom 3 Modellers. Optimal network design for improved
CO 2 source inversion. Tellus, 55B:498–511, 2003.
P. K. Patra, S. Maksyutov, M. Ishizawa, T. Nakazawa, and J. Ukita. Interannual and decadal changes in the sea-air CO 2 fl ux from atmospheric CO 2 inverse modelling. Glob.
Biogeochem. Cycles, 19:GBC4013, 2005, doi:10/1029/2004GB002257.
G. I. Pearman. Atmospheric CO 2 concentration measurements. A review of methodologies,
existing programmes and available data. Technical Report Report no. 3, WMO Project
on Research and Monitoring of Atmospheric CO 2 , Geneva, 1980.
R. G. Prinn. Measurement equation for trace chemicals in fl uids and solution of its inverse. In
Kasibhatla et al. (2000), pp. 3–18.
R. G. Prinn, R. F. Weiss, P. J. Fraser, P. G. Simmonds, D. M. Cunnold, F. N. Alyea, S. O’Doherty
et al. A history of chemically and radiatively important gases in air deduced from ALE/
GAGE/AGAGE. J. Geophys. Res., 105D:17751–17792, 2000.
© 2010 by Taylor and Francis Group, LLC
