Observational Requirements for Long-Term Monitoring of the Global Mean Sea Level and Its Components Over the Altimetry Era
暂无分享,去创建一个
A. Cazenave | D. Chambers | G. Mitchum | P. Döll | B. Meyssignac | F. Paul | J. Benveniste | B. Hamlington | M. Merrifield | P. Thompson | V. Barletta | K. von Schuckmann | J. Legeais | A. Hogg | R. Pail | M. Horwath | S. Nerem | H. Palanisamy
[1] A. Cazenave,et al. Climate Change and Impacts on Variability and Interactions , 2020 .
[2] Lijing Cheng,et al. Measuring Global Ocean Heat Content to Estimate the Earth Energy Imbalance , 2019, Front. Mar. Sci..
[3] Jérôme Benveniste,et al. Uncertainty in satellite estimates of global mean sea-level changes, trend and acceleration , 2019, Earth System Science Data.
[4] Stefano Vignudelli,et al. Towards Comprehensive Observing and Modeling Systems for Monitoring and Predicting Regional to Coastal Sea Level , 2019, Front. Mar. Sci..
[5] Rashmi Shah,et al. Requirements for a Coastal Hazards Observing System , 2019, Front. Mar. Sci..
[6] Thriving on Our Changing Planet: A Decadal Strategy for Earth Observation from Space , 2019 .
[7] A. Kääb,et al. Sensitivity of glacier volume change estimation to DEM void interpolation , 2019, The Cryosphere.
[8] Fu Lee Lueng. DUACS DT-2018: 25 years of reprocessed sea level altimeter products , 2019 .
[9] Roland Pail,et al. Gravity Field Recovery Using High-Precision, High-Low Inter-Satellite Links , 2019, Remote. Sens..
[10] Interactive comment on “DUACS DT-2018: 25 years of reprocessed sea level altimeter products” by Guillaume Taburet et al , 2019 .
[11] A. Cazenave,et al. Uncertainty in Satellite estimate of Global Mean Sea Level changes, trend and acceleration , 2019 .
[12] Eric Rignot,et al. Global sea-level budget 1993–present , 2018, Earth System Science Data.
[13] L. Cruzado,et al. The 2017 coastal El Niño , 2018 .
[14] Marcus E. Engdahl,et al. 25 years of elevation changes of the Greenland Ice Sheet from ERS, Envisat, and CryoSat-2 radar altimetry , 2018 .
[15] A. Cazenave,et al. Exploring the uncertainty in GRACE estimates of the mass redistributions at the Earth surface: implications for the global water and sea level budgets , 2018, Geophysical Journal International.
[16] B. Smith,et al. Observed rapid bedrock uplift in Amundsen Sea Embayment promotes ice-sheet stability , 2018, Science.
[17] P. Whitehouse,et al. Glacial isostatic adjustment modelling: historical perspectives, recent advances, and future directions , 2018, Earth Surface Dynamics.
[18] D Masters,et al. Climate-change–driven accelerated sea-level rise detected in the altimeter era , 2018, Proceedings of the National Academy of Sciences.
[19] R. Reedy,et al. Global models underestimate large decadal declining and rising water storage trends relative to GRACE satellite data , 2018, Proceedings of the National Academy of Sciences.
[20] The Imbie Team. Mass balance of the Antarctic Ice Sheet from 1992 to 2017 , 2018 .
[21] I. Sasgen,et al. Joint inversion estimate of regional glacial isostatic adjustment in Antarctica considering a lateral varying Earth structure (ESA STSE Project REGINA) , 2017 .
[22] Sergei Rudenko,et al. An improved and homogeneous altimeter sea level record from the ESA Climate Change Initiative , 2017 .
[23] Roland Pail,et al. Treatment of temporal aliasing effects in the context of next generation satellite gravimetry missions , 2017 .
[24] Sergei Rudenko,et al. A new phase in the production of quality-controlled sea level data , 2017 .
[25] Matt A. King,et al. The increasing rate of global mean sea-level rise during 1993–2014 , 2017 .
[26] C. Conrad,et al. Reassessment of 20th century global mean sea level rise , 2017, Proceedings of the National Academy of Sciences.
[27] H. Dieng,et al. New estimate of the current rate of sea level rise from a sea level budget approach , 2017 .
[28] Roland Pail,et al. Gravity field recovery in the framework of a Geodesy and Time Reference in Space (GETRIS) , 2017 .
[29] Sönke Dangendorfa,et al. Reassessment of 20 th century global mean sea level rise , 2017 .
[30] Chunqiao Song,et al. Recent Changes in Land Water Storage and its Contribution to Sea Level Variations , 2016, Surveys in Geophysics.
[31] Yannice Faugère,et al. DUACS DT2014: the new multi-mission altimeter data set reprocessed over 20years , 2016 .
[32] I. Sasgen,et al. Geodetic measurements reveal similarities between post–Last Glacial Maximum and present-day mass loss from the Greenland ice sheet , 2016, Science Advances.
[33] Gilles Mauris,et al. Fusion of Remotely Sensed Displacement Measurements: Current status and challenges , 2016, IEEE Geoscience and Remote Sensing Magazine.
[34] Peter J. Clarke,et al. Spatial and temporal Antarctic Ice Sheet mass trends, glacio‐isostatic adjustment, and surface processes from a joint inversion of satellite altimeter, gravity, and GPS data , 2016, Journal of geophysical research. Earth surface.
[35] A. Sterl,et al. Fifteen years of ocean observations with the global Argo array , 2016 .
[36] James Hansen,et al. An imperative to monitor Earth's energy imbalance , 2016 .
[37] Jens Schröter,et al. Revisiting the contemporary sea-level budget on global and regional scales , 2016, Proceedings of the National Academy of Sciences.
[38] A. Cazenave,et al. Satellite Altimetry-Based Sea Level at Global and Regional Scales , 2016, Surveys in Geophysics.
[39] G. Spada. Glacial Isostatic Adjustment and Contemporary Sea Level Rise: An Overview , 2016, Surveys in Geophysics.
[40] Anny Cazenave,et al. Evaluation of the Global Mean Sea Level Budget between 1993 and 2014 , 2016, Surveys in Geophysics.
[41] Petra Döll,et al. Modelling Freshwater Resources at the Global Scale: Challenges and Prospects , 2016, Surveys in Geophysics.
[42] Annette Eicker,et al. Science and User Needs for Observing Global Mass Transport to Understand Global Change and to Benefit Society , 2015, Surveys in Geophysics.
[43] R. Kopp,et al. Probabilistic reanalysis of twentieth-century sea-level rise , 2015, Nature.
[44] Sergei Rudenko,et al. Improved Sea Level record over the satellite altimetry era (1993-2010) from the Climate Change Initiative project , 2015 .
[45] W. Peltier,et al. Space geodesy constrains ice age terminal deglaciation: The global ICE‐6G_C (VM5a) model , 2015 .
[46] T. R. Lauknes,et al. The glaciers climate change initiative: Methods for creating glacier area, elevation change and velocity products , 2015 .
[47] A. Cazenave,et al. Observing Mass Transport to Understand Global Change and and to benefit Society : Science and User Needs - An international multi-disciplinary initiative for IUGG , 2015 .
[48] P. Holmlund,et al. Historically unprecedented global glacier decline in the early 21st century , 2015 .
[49] J. Willis,et al. Deep-ocean contribution to sea level and energy budget not detectable over the past decade , 2014 .
[50] P. Döll,et al. Global‐scale assessment of groundwater depletion and related groundwater abstractions: Combining hydrological modeling with information from well observations and GRACE satellites , 2014 .
[51] Duncan J. Wingham,et al. Increased ice losses from Antarctica detected by CryoSat‐2 , 2014 .
[52] T. Bolch,et al. The Randolph Glacier inventory: a globally complete inventory of glaciers , 2014 .
[53] Kevin E. Trenberth,et al. Earth’s Energy Imbalance , 2014 .
[54] Petra Döll,et al. Seasonal Water Storage Variations as Impacted by Water Abstractions: Comparing the Output of a Global Hydrological Model with GRACE and GPS Observations , 2014, Surveys in Geophysics.
[55] Eric Rignot,et al. Sustained increase in ice discharge from the Amundsen Sea Embayment, West Antarctica, from 1973 to 2013 , 2014, Geophysical Research Letters.
[56] Aslak Grinsted,et al. Trends and acceleration in global and regional sea levels since 1807 , 2014 .
[57] D. Chambers,et al. Ocean bottom pressure seasonal cycles and decadal trends from GRACE Release-05: Ocean circulation implications , 2013 .
[58] Olga Didova,et al. Empirical estimation of present-day Antarctic glacial isostatic adjustment and ice mass change , 2013, The Cryosphere.
[59] Byron D. Tapley,et al. Contribution of ice sheet and mountain glacier melt to recent sea level rise , 2013 .
[60] E. Ivins,et al. Antarctic contribution to sea level rise observed by GRACE with improved GIA correction , 2013 .
[61] M. R. van den Broeke,et al. A Reconciled Estimate of Glacier Contributions to Sea Level Rise: 2003 to 2009 , 2013, Science.
[62] F. Sigmundsson,et al. Iceland rising: Solid Earth response to ice retreat inferred from satellite radar interferometry and visocelastic modeling , 2013 .
[63] Anny Cazenave,et al. Causes for contemporary regional sea level changes. , 2013, Annual review of marine science.
[64] Guillaume Ramillien,et al. Earth System Mass Transport Mission (e.motion): A Concept for Future Earth Gravity Field Measurements from Space , 2013, Surveys in Geophysics.
[65] Axel Rülke,et al. An investigation of Glacial Isostatic Adjustment over the Amundsen Sea sector, West Antarctica , 2012 .
[66] Eric Rignot,et al. A Reconciled Estimate of Ice-Sheet Mass Balance , 2012, Science.
[67] Alexander H. Jarosch,et al. Past and future sea-level change from the surface mass balance of glaciers , 2012 .
[68] J. Ray,et al. Geocenter motion and its geodetic and geophysical implications , 2012 .
[69] D. Roemmich,et al. 135 years of global ocean warming between the Challenger expedition and the Argo Programme , 2012 .
[70] W. Tad Pfeffer,et al. Recent contributions of glaciers and ice caps to sea level rise , 2012, Nature.
[71] Pieter Visser,et al. Estimating low resolution gravity fields at short time intervals to reduce temporal aliasing errors , 2011 .
[72] M. Tamisiea,et al. Ongoing glacial isostatic contributions to observations of sea level change , 2011 .
[73] Josh K. Willis,et al. Balancing the Sea Level Budget , 2011 .
[74] John B. Anderson,et al. Understanding Sea-Level Rise and Variability , 2011 .
[75] N. White,et al. Sea-Level Rise from the Late 19th to the Early 21st Century , 2011 .
[76] R. Hock,et al. Regionally differentiated contribution of mountain glaciers and ice caps to future sea-level rise , 2011 .
[77] J. Bamber,et al. The sea level fingerprint of recent ice mass fluxes , 2010 .
[78] K. Lambeck,et al. Paleoenvironmental Records, Geophysical Modeling, and Reconstruction of Sea-Level Trends and Variability on Centennial and Longer Timescales , 2010 .
[79] Peter Steigenberger,et al. Improved Constraints on Models of Glacial Isostatic Adjustment: A Review of the Contribution of Ground-Based Geodetic Observations , 2010 .
[80] Bob E. Schutz,et al. Glacial Isostatic Adjustment over Antarctica from combined ICESat and GRACE satellite data , 2009 .
[81] R. Dietrich,et al. Signal and error in mass change inferences from GRACE: the case of Antarctica , 2009 .
[82] J. Graham Cogley. Geodetic and direct mass-balance measurements: comparison and joint analysis , 2009, Annals of Glaciology.
[83] Guillaume Ramillien,et al. Sea level budget over 2003-2008: A reevaluation from GRACE space gravimetry, satellite altimetry and Argo , 2009 .
[84] D. Chambers,et al. Estimating Geocenter Variations from a Combination of GRACE and Ocean Model Output , 2008 .
[85] David N. Wiese,et al. A possible Dual-GRACE mission with 90 degree and 63 degree inclination orbits , 2008 .
[86] D. Rowlands,et al. Recent glacier mass changes in the Gulf of Alaska region from GRACE mascon solutions , 2008, Journal of Glaciology.
[87] A. Ohmura,et al. Mass balance of glaciers and ice caps: Consensus estimates for 1961–2004 , 2006 .
[88] J. Wahr,et al. Measurements of Time-Variable Gravity Show Mass Loss in Antarctica , 2006, Science.
[89] M. Watkins,et al. GRACE Measurements of Mass Variability in the Earth System , 2004, Science.
[90] W. Peltier. GLOBAL GLACIAL ISOSTASY AND THE SURFACE OF THE ICE-AGE EARTH: The ICE-5G (VM2) Model and GRACE , 2004 .
[91] R. Scharroo,et al. Antarctic elevation change from 1992 to 1996 , 1998, Science.
[92] M. Meier,et al. Mass balance of mountain and subpolar glaciers: a new global assessment , 1997 .
[93] Andrew J. Plater,et al. Book reviewSea-level change: Roger Revelle; Studies in Geophysics, National Research Council, National Academy Press, Washington, DC, 1990; xii + 246 pp.; USD 29.95, GBP 25.75; ISBN 0-309-04039 , 1992 .
[94] R. B.,et al. The United Nations , 1947, Nature.