Stand-alone single-frequency GPS ice velocity observations on Nordenskiöldbreen, Svalbard
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Veijo A. Pohjola | W. Boot | Johannes Oerlemans | J. Oerlemans | V. Pohjola | C. Reijmer | Carleen H. Reijmer | M. den Ouden | R. S. W. van de Wal | R. Wal | W. Boot | M. D. Ouden
[1] Matt A. King. Rigorous GPS data-processing strategies for glaciological applications , 2004, Journal of Glaciology.
[2] Alun Hubbard,et al. Greenland ice sheet motion coupled with daily melting in late summer , 2009 .
[3] E. Rignot,et al. Changes in the Velocity Structure of the Greenland Ice Sheet , 2006, Science.
[4] J. Oerlemans,et al. Reconstructing the glacier contribution to sea-level rise back to 1850 , 2007 .
[5] G. Seeber,et al. Ice-Motion Determination by Means of Satellite Positioning Systems , 1988, Annals of Glaciology.
[6] W. T. Pfeffer,et al. Kinematic Constraints on Glacier Contributions to 21st-Century Sea-Level Rise , 2008, Science.
[7] William H. Press,et al. Numerical Recipes in Fortran 77 , 1992 .
[8] S. P. Anderson,et al. Glaciers Dominate Eustatic Sea-Level Rise in the 21st Century , 2007, Science.
[9] Anne-Marie Nuttall,et al. Temporal variations in flow velocity at Finsterwalderbreen, a Svalbard surge-type glacier , 2005, Annals of Glaciology.
[10] M. Ponraj,et al. GPS determination of the velocity and strain-rate fields on Schirmacher Glacier, central Dronning Maud Land, Antarctica , 2007, Journal of Glaciology.
[11] Richard Betts,et al. The science of climate change , 2010 .
[12] A. Hubbard,et al. An investigation into the mechanisms controlling seasonal speedup events at a High Arctic glacier , 2008 .
[13] Konrad Steffen,et al. Surface Melt-Induced Acceleration of Greenland Ice-Sheet Flow , 2002, Science.
[14] J. Hagen,et al. On the Net Mass Balance of the Glaciers and Ice Caps in Svalbard, Norwegian Arctic , 2003 .
[15] C. J. P. P. Smeets,et al. Large and Rapid Melt-Induced Velocity Changes in the Ablation Zone of the Greenland Ice Sheet , 2008, Science.
[16] A. Hubbard,et al. Hydrological controls on patterns of surface, internal and basal motion during three “spring events”: Haut Glacier d’Arolla, Switzerland , 2003, Journal of Glaciology.
[17] R. Bindschadler,et al. Combined measurements of subglacial water pressure and surface velocity of Findelengletscher, Switzerland: conclusions about drainage system and sliding mechanism , 1986 .
[18] I. Willis,et al. Seasonal patterns of velocity and strain across the tongue of the polythermal glacier midre Lovénbreen, Svalbard , 2005, Annals of Glaciology.
[19] Jon Ove Hagen,et al. Geometry changes on Svalbard glaciers: mass-balance or dynamic response? , 2005, Annals of Glaciology.
[20] Andreas Kääb,et al. Flow field of Kronebreen, Svalbard, using repeated Landsat 7 and ASTER data , 2005, Annals of Glaciology.
[21] Ian Joughin,et al. Seasonal Speedup Along the Western Flank of the Greenland Ice Sheet , 2008, Science.
[22] Andrew J. Weaver. The Science of Climate Change , 2003 .
[23] T. Vincenty. DIRECT AND INVERSE SOLUTIONS OF GEODESICS ON THE ELLIPSOID WITH APPLICATION OF NESTED EQUATIONS , 1975 .