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Development of an Integrated Digital Elevation Model for Safe Takeoff and Landing of the Aircraft

handbook, Warsaw, Polish Scientific Publishers PWN Ciećko A., Oszczak B., Oszczak S., (2006), Efficient and Cost-Effective Generation of Precise Digital Terrain Model (DTM) with the Use of GPS and GSM/GPRS Technology, ION NTM 2006, Monterey, California, USA, 18-20 January 2006, pp. 490-496 Ciećko A., Oszczak B., Oszczak S., (2006), Drive-by DTM - GPS and GSM Power Cost- Effective Terrain Modeling - GPS Word, Vol. 17, No. 4, April 2006, pp. 44-49 Erol B., (2012), Spectral evaluation of Earth geopotential models and an

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From Tensor to Vector of Gravitation

-6. Bouman J., Koop R., Tscherning C. C. and Visser P. (2004) Calibration of GOCE SGG data using high-low STT, terrestrial gravity data and global gravity field models, Journal of Geodesy, 78, 124-137. Bouman J., Fiorot S., Fuchs M., Gruber T., Schrama E., Tscherning C., Veicherts M., Visser P. (2011) GOCE gravitational gradients along the orbit, Journal of Geodesy, 85, 791-805. de Min E. (1994) On the numerical evaluation of Stokes’s integral, International Geoid Service Bulletin, 3, 41-46. ESA (1999) Gravity Field and

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The Effect of Polar Gaps on the Solutions of Gradiometric Boundary Value Problems

.H Freeman and company, San Fransisco and London. Hwang C. (1991) Orthogonal functions over the oceans and applications to the determination of orbit error, geoid and sea surface topography from satellite altimetry , PhD dissertation, 229 pp. Hwang C. (1993) Fast algorithm for the formulation of normal equations in a least-squares spherical harmonic analysis by FFT, Manuscripta Geodaetica.   62 :46-52. Koop R. (1993) Global gravity field modeling using satellite gravity gradiometry. Publ

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Simplification of Geopotential Perturbing Force Acting on A Satellite

.M., Williamson R.G., Pavlis E.C., Rapp R.H. and Olson T.R. (1998) The Development of the Joint NASA GSFC and NIMA Geopotential Model EGM96 , NASA/TP-1998-206861. Goddard Space Flight Center, Greenbelt Parrot D. (1989) Short arc orbit improvement for GPS satellites , MSc thesis, Department of Surveying Engineering, University of New Brunswick, Canada. Reigber C., Schwintzer P. and Luhr H. (1999) The CHAMP geopotential mission, Boll. Geof. Teor. Appl. Vol. 40, 285-289. Reigber Ch., Jochmann H

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Sensitivity of Lageos Orbits to Global Gravity Field Models

., Baur O., Kusche J. (2011) The combined satellite-only global gravity field model GOCO02S. Presented at the 2011 General Assembly of the European Geosciences Union , Vienna, Austria, April 4-8, 2011 Herring, T. A., P. M. Mathews, and B. A. Buffett (2002) Modeling of nutation-precession: Very long baseline interferometry results, J. Geophys. Res. , 107(B4), 2069, doi:10.1029/2001JB000165 ICGEM (2011) International Centre for Global Earth Models GFZ Helmholtz Centre Potsdam http

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Impact of the Atmospheric Drag on Starlette, Stella, Ajisai, and Lares Orbits

earth parameters using SLR data for the low satellites STARLETTE and STELLA, Acta Geophysica Vol. 60, No. 4, DOI 10.2478/s11600-012-0045-5. Seeber G. (2003) Satellite Geodesy, 2nd edn. de Gruyter. Sośnica K., Thaller D., Jäggi A., Dach R., Beutler G. (2012) Sensitivity of Lageos Orbits to Global Gravity Field Models, Artificial Satelllites Vol. 47, No. 2, 47-65, DOI 10.2478/v10018-012-0013-y. Sośnica K., Thaller D., Dach R., Jäggi A., Beutler G. (2013) Impact of loading displacements on SLR-derived parameters and on the consistency between GNSS and SLR results

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Spatially Restricted Integrals in Gradiometric Boundary Value Problems

) Orthogonal Functions Over the Oceans and Applications to the Determination of Orbit Error, Geoid and Sea Surface Topography from Satellite Altimetry , PhD dissertation, JPL 958121, OSURF 720426, 229 pp, Dec, 1991. Ilk K.H. (1983) Ein Beitrag zur Dynamik ausgedehnter Körper-Gravitationswechselwirkung. Deutsche Geodätische Kommission, Reihe C, Heft Nr. 288, München. Kim M.C. and Tapley B. (2000) Formation of surface spherical harmonic normal matrices and application to high-degree geopotential modeling, Journal of

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Geometric correction of APEX hyperspectral data

, J, Bourke, T & Scherzinger, B 2007, ‛New developments of inertial navigation systems at Applanix’, Proceedings of Photogrammetric Week, pp. 201-213. LeapSeconds, 2015. Available from: <http://maia.usno.navy.mil/>. [28 January 2016]. Lemoine, FG, Kenyon, SC, Factor, JK, Trimmer, RG, Pavlis NK, Chinn, DS, Cox, CM, Klosko, SM, Luthcke, SB, Torrence, MH, Wang, YM, Williamson, RG, Pavlis, EC, Rapp, RH & Olson, TR 1998, The development of joint NASA GFSC and NIMA geopotential model EGM96, NASA Goddard Space Flight Center, Maryland, USA

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Preliminary Unification of Kronsztadt86 Local Vertical Datum with Global Vertical Datum

). Estimating Canadian vertical datum offsets using GNSS/ levelling benchmark information and GOCE global geopotential models. Journal of Geodetic Science 2 (4). doi: 10.2478/ v10156-012-0008-4. Heiskanen, W. A. & Moritz, H. (1967). Physical Geodesy. San Francisco, California: W. H. Freeman and Company. Hoa, H. M. (2013). Estimating the geopotential value W 0 of the local geoid based on data from local and global normal heights of GPS/ leveling points in Vietnam. Geodesy and Cartography (Lithuania) 01/2013, 39 (3). doi: 10.3846/20296991.2013.823705. IGWiAG (2000

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Theoretical and Applied Research in the Field of Higher Geodesy Conducted in Rzeszow

). Mathematical models for the combination of terrestrial and satellite Networks. The Canadian Surveyor, 28(5). Kryński J., Kloch-Główka G., (2009). Evaluation of the Performance of the New EGM2008 Global Geopotential Model over Poland. Geoinformation Issues, Vol. 1, No 1, 7-1 7/2009 Liwosz T. , Rogowski J., Kruczyk M., Rajner M., Kurka W.(2012). Wyrównanie kontrolne obserwacji satelitarnych GNSS wykonanych na punktach ASG-EUPOS, EUREF-POL, EUVN, POLREF i osnowy I klasy wraz z ocena wyników. Katedra Geodezji i Astronomii Geodezyjnej Wydział

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