Non-Tidal Mass Variations in the IGS Second Reprocessing Campaign: Interpretations and Noise Analysis from GRACE and Geophysical Models
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[1] Peter Steigenberger,et al. Loading-Induced Deformation Due to Atmosphere, Ocean and Hydrology: Model Comparisons and the Impact on Global SLR, VLBI and GNSS Solutions , 2015 .
[2] Wei You,et al. Comparison of observed and modeled seasonal crustal vertical displacements derived from multi‐institution GPS and GRACE solutions , 2017 .
[3] Y. Bock,et al. Anatomy of apparent seasonal variations from GPS‐derived site position time series , 2001 .
[4] Zuheir Altamimi,et al. Strategies to mitigate aliasing of loading signals while estimating GPS frame parameters , 2011, Journal of Geodesy.
[5] Jürgen Kusche,et al. Surface mass redistribution inversion from global GPS deformation and Gravity Recovery and Climate Experiment (GRACE) gravity data , 2005 .
[6] J. Makinen,et al. Non-tidal loading by the Baltic Sea: Comparison of modelled deformation with GNSS time series , 2013 .
[7] Pavel Ditmar,et al. Optimizing estimates of annual variations and trends in geocenter motion and J2 from a combination of GRACE data and geophysical models , 2016 .
[8] T. van Dam,et al. PREDICTIONS OF CRUSTAL DEFORMATION AND OF GEOID AND SEA-LEVEL VARIABILITY CAUSED BY OCEANIC AND ATMOSPHERIC LOADING , 1997 .
[9] F. Landerer,et al. Accuracy of scaled GRACE terrestrial water storage estimates , 2012 .
[10] Shin-Chan Han,et al. Seasonal clockwise gyration and tilt of the Australian continent chasing the center of mass of the Earth's system from GPS and GRACE , 2016 .
[11] K. Maciuk. The Study of Seasonal Changes of Permanent Stations Coordinates based on Weekly EPN Solutions , 2016 .
[12] Peter Steigenberger,et al. Vertical deformations from homogeneously processed GRACE and global GPS long-term series , 2011 .
[13] J. Ray,et al. Anomalous harmonics in the spectra of GPS position estimates , 2008 .
[14] T. van Dam,et al. Displacements of the Earth's surface due to atmospheric loading: Effects on gravity and baseline measurements , 1987 .
[15] A. Amiri-Simkooei,et al. Multivariate analysis of GPS position time series of JPL second reprocessing campaign , 2017, Journal of Geodesy.
[16] J. Ray,et al. The IGS contribution to ITRF2014 , 2016, Journal of Geodesy.
[17] Bin Zhao,et al. Vertical Displacements Driven by Groundwater Storage Changes in the North China Plain Detected by GPS Observations , 2018, Remote. Sens..
[18] Jeffrey T. Freymueller,et al. Seasonal and long-term vertical deformation in the Nepal Himalaya constrained by GPS and GRACE measurements , 2012 .
[19] Ichiro Fukumori,et al. Mechanisms Controlling the Interannual Variation of Mixed Layer Temperature Averaged over the Niño-3 Region , 2007 .
[20] Zhao Li,et al. Comparative analysis of different environmental loading methods and their impacts on the GPS height time series , 2013, Journal of Geodesy.
[21] Liansheng Deng,et al. Quantitative analysis of geophysical sources of common mode component in CMONOC GPS coordinate time series , 2017 .
[22] Weiping Jiang,et al. Assessment of second- and third-order ionospheric effects on regional networks: case study in China with longer CMONOC GPS coordinate time series , 2017, Journal of Geodesy.
[23] Hua Chen,et al. GPS-derived geocenter motion from the IGS second reprocessing campaign , 2019, Earth, Planets and Space.
[24] Janusz Bogusz,et al. Estimates of Vertical Velocity Errors for IGS ITRF2014 Stations by Applying the Improved Singular Spectrum Analysis Method and Environmental Loading Models , 2018, Pure and Applied Geophysics.
[25] Paul Rebischung,et al. Toward a Global Horizontal and Vertical Elastic Load Deformation Model Derived from GRACE and GNSS Station Position Time Series , 2018 .
[26] Mike P. Stewart,et al. Aliased tidal signatures in continuous GPS height time series , 2003 .
[27] S. Swenson,et al. Post‐processing removal of correlated errors in GRACE data , 2006 .
[28] Linguo Yuan,et al. Seasonal crustal vertical deformation induced by environmental mass loading in mainland China derived from GPS, GRACE and surface loading models , 2017 .
[29] M. Watkins,et al. Quantifying and reducing leakage errors in the JPL RL05M GRACE mascon solution , 2016 .
[30] Simon D. P. Williams,et al. Non‐tidal ocean loading effects on geodetic GPS heights , 2011 .
[31] Z. Altamimi,et al. ITRF2014: A new release of the International Terrestrial Reference Frame modeling nonlinear station motions , 2016 .
[32] Janusz Bogusz,et al. On the significance of periodic signals in noise analysis of GPS station coordinates time series , 2016, GPS Solutions.
[33] P. Steigenberger,et al. GGOS-D: homogeneous reprocessing and rigorous combination of space geodetic observations , 2011 .
[34] John Langbein,et al. Estimating rate uncertainty with maximum likelihood: differences between power-law and flicker–random-walk models , 2012, Journal of Geodesy.
[35] Paul Tregoning,et al. Atmospheric effects and spurious signals in GPS analyses , 2009 .
[36] U. Hugentobler,et al. Impact of Earth radiation pressure on GPS position estimates , 2012, Journal of Geodesy.
[37] Harald Schuh,et al. Correcting surface loading at the observation level: impact on global GNSS and VLBI station networks , 2019, Journal of Geodesy.
[38] Xavier Collilieux,et al. Topographically induced height errors in predicted atmospheric loading effects , 2010 .
[39] Danan Dong,et al. Displacements due to surface temperature variation on a uniform elastic sphere with its centre of mass stationary , 2014 .
[40] M. Watkins,et al. The gravity recovery and climate experiment: Mission overview and early results , 2004 .
[41] S. Williams. The effect of coloured noise on the uncertainties of rates estimated from geodetic time series , 2003 .
[42] Pedro Elosegui,et al. Climate‐driven deformation of the solid Earth from GRACE and GPS , 2004 .
[43] Weiping Jiang,et al. Effects on noise properties of GPS time series caused by higher-order ionospheric corrections , 2014 .
[44] Shin-Chan Han,et al. Elastic deformation of the Australian continent induced by seasonal water cycles and the 2010–2011 La Niña determined using GPS and GRACE , 2017 .
[45] Matt A. King,et al. Long GPS coordinate time series: Multipath and geometry effects , 2009 .
[46] Shuanggen Jin,et al. Observing and understanding the Earth system variations from space geodesy , 2013 .
[47] Geoffrey Blewitt,et al. Crustal displacements due to continental water loading , 2001 .
[48] J. Wahr,et al. A comparison of annual vertical crustal displacements from GPS and Gravity Recovery and Climate Experiment (GRACE) over Europe , 2007 .
[49] E. Small,et al. Terrestrial water storage response to the 2012 drought estimated from GPS vertical position anomalies , 2014 .
[50] Na Wei,et al. Contributions of thermoelastic deformation to seasonal variations in GPS station position , 2017, GPS Solutions.
[51] Jan Douša,et al. Tropospheric products of the second GOP European GNSS reprocessing (1996–2014) , 2017 .
[52] J. Montillet,et al. Investigation of the noise properties at low frequencies in long GNSS time series , 2019, Journal of Geodesy.
[53] Kaihua Ding,et al. Evaluating seasonal loading models and their impact on global and regional reference frame alignment , 2014 .
[54] Wu Chen,et al. Crustal vertical deformation response to different spatial scales of GRACE and GCMs surface loading , 2016 .
[55] Byron D. Tapley,et al. GRACE detects coseismic and postseismic deformation from the Sumatra‐Andaman earthquake , 2007 .
[56] M. Zhong,et al. Contributions of thermal expansion of monuments and nearby bedrock to observed GPS height changes , 2009 .