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PAPERS

A comparison of existing coordinate transformation models and parameters in Australia

Pages 13-25 | Published online: 13 Dec 2011

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Süreyya Özgür Uygur, Cuneyt Aydin & Orhan Akyilmaz. (2022) Retrieval of Euler rotation angles from 3D similarity transformation based on quaternions. Journal of Spatial Science 67:2, pages 255-272.
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Matej Varga, Marijan Grgić & Tomislav Bašić. (2017) Empirical comparison of the Geodetic Coordinate Transformation Models: a case study of Croatia. Survey Review 49:352, pages 15-27.
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A. El-Mowafy, H. Fashir & Y. Al-Marzooqi. (2009) Improved Coordinate Transformation in Dubai Using a New Interpolation Approach of Coordinate Differences. Survey Review 41:311, pages 71-85.
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H. S. Yun, D. S. Song & J. M. Cho. (2006) Horizontal datum transformation by distortion modelling in Korea. Survey Review 38:301, pages 554-562.
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Will Featherstone & Petr Vanicek. (1999) The Role of Coordinate Systems, Coordinates and Heights in Horizontal Datum Transformations. Australian Surveyor 44:2, pages 143-150.
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Will Featherstone & Petr Vanicek. (1999) The role of coordinate systems, coordinates and heights in horizontal datum transformations. Australian Surveyor 44:2, pages 143-150.
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W.E. Featherstone, D. Galloway, P. Goulding & B.-G. Reit. (1999) Transformation between Australian datums using a modified transverse Mercator projection. Cartography 28:1, pages 19-31.
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Articles from other publishers (11)

Ikechukwu Kalu, Christopher E. Ndehedehe, Onuwa Okwuashi & Aniekan E. Eyoh. (2021) A comparison of existing transformation models to improve coordinate conversion between geodetic reference frames in Nigeria. Modeling Earth Systems and Environment 8:1, pages 611-624.
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Pingping Zhang & Qun Wang. (2021) Perturbation analysis and condition numbers of mixed least squares-scaled total least squares problem. Numerical Algorithms 89:3, pages 1223-1246.
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Bing Zheng & Zhanshan Yang. (2019) Perturbation analysis for mixed least squares–total least squares problems. Numerical Linear Algebra with Applications 26:4.
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Yao Yevenyo Ziggah, Hu Youjian, Prosper Basommi Laari & Zhenyang Hui. (2017) NOVEL APPROACH TO IMPROVE GEOCENTRIC TRANSLATION MODEL PERFORMANCE USING ARTIFICIAL NEURAL NETWORK TECHNOLOGY. Boletim de Ciências Geodésicas 23:1, pages 213-233.
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Yao Yevenyo Ziggah, Hu Youjian, Xianyu Yu & Laari Prosper Basommi. (2016) Capability of Artificial Neural Network for Forward Conversion of Geodetic Coordinates $$(\phi ,\lambda ,h)$$ ( ϕ , λ , h ) to Cartesian Coordinates (X, Y, Z). Mathematical Geosciences 48:6, pages 687-721.
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Ahmad H. Alashaikh, Hasan M. Bilani & Saad A. Alshehri. (2016) Nine-parameter curvilinear transformation between datums. Arabian Journal of Geosciences 9:2.
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Joseph L. Awange & Béla PalánczJoseph L. Awange & Béla Paláncz. 2016. Geospatial Algebraic Computations. Geospatial Algebraic Computations 459 499 .
B. Schaffrin, F. Neitzel, S. Uzun & V. Mahboub. (2012) Modifying Cadzow's algorithm to generate the optimal TLS-solution for the structured EIV-Model of a similarity transformation. Journal of Geodetic Science 2:2, pages 98-106.
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Joseph L. Awange, Erik W. Grafarend, Béla Paláncz & Piroska ZaletnyikJoseph L. Awange, Erik W. Grafarend, Béla Paláncz & Piroska Zaletnyik. 2010. Algebraic Geodesy and Geoinformatics. Algebraic Geodesy and Geoinformatics 303 338 .
Teoh Chee Hooi. (2009) An Integrated GIS Database Server for Malaysian Mapping, Cadastral and Location-Based Systems (LBS). An Integrated GIS Database Server for Malaysian Mapping, Cadastral and Location-Based Systems (LBS).
R. I. Hackney & W. E. Featherstone. (2003) Geodetic versus geophysical perspectives of the ‘gravity anomaly’. Geophysical Journal International 154:1, pages 35-43.
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