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Transformation of initial cartographic materials for the “Main State Topographic Map” to coordinate system UCS-2000 Cover

Transformation of initial cartographic materials for the “Main State Topographic Map” to coordinate system UCS-2000

Open Access
|Oct 2024

References

  1. Ahrens, B., & Böhmer, K-H. (2010). NTv2-grid files for the conversion of cadastre-related databases into eTRS89. ZFV – Zeitschrift fur Geodasie. Geoinformation und Landmanagement, 135(1), 16–20.
  2. Berk, S., & Komadina, Ž. (2013). Local to ETRS89 datum transformation for Slovenia: triangle-based transformation using virtual tie points. Survey Review, 45(328), 25–34. http://dx.doi.org/10.1179/1752270611Y.0000000020
  3. Bondar, A., zayets’, I. M., & Kucher, O. V. (2001). Stan ta osnovni napryamy rozvytku Derzhavnoyi heo-dezychnoyi merezhi Ukrayiny. Visnyk heodeziyi ta kartohrafiyi, 3, 17–23.
  4. Carosio, A., & Plazibat, M. (1995). Lineare transformation mit finiten elementen. Geomatik Schweiz, Geoinformation and Land Management, 94(4) 192–194. https://mapref.org/LinkedDocuments/vpk_4_95fineltra_de.pdf
  5. Fazilova, D. (2022). Uzbekistan’s coordinate system transformation from CS42 to WGS84 using distortion GRID model. Geodesy and Geodynamics, 13(1), 24–30. https://doi.org/10.1016/j.geog.2021.10.001
  6. Garnero, G. (2014). Use of NTv2 transformation grids in engineering applications. Earth Science Informatics, 7(2), 139–145. https://doi.org/10.1007/s12145-013-0135-1
  7. González-Matesanz, J., Dalda, A., Quirós, R., & Celada, J. (2003). eD50-eTRS89 transition models for the Spanish geodetic network. In Report on the Symposium of the IAG Subcommission for Europe (EUREF), Toledo (pp. 4–7).
  8. Grachov, O. (2005). Klasyfikatsiia metodiv interpoliatsii ta aproksymatsii funktsii transformuvannia rastrovykh zobrazhen. Modern achievements of geodetic science and production, 1, 22–25.
  9. Karpinskyi, Yu. (2002). Afinne transformuvannia koordynat metodom skinchennykh elementiv. Visnyk of Geodesy and Cartography, 4(27), 23–27.
  10. Karpinskyi, Yu., & Grachov, O. (2001). Transformuvannia rastrovykh modelei tsyfrovykh kart i planiv. Visnyk of Geodesy and Cartography, 1, 22–25.
  11. Karpinskyi, Yu., & Kin, D. (2020). Research of the transition from cartometric to analytical operations. Proceedings of the XXV Jubilee International Scientific and Technical Conference «Geoforum – 2020», Lviv, Ukraine, 2–4 September. https://doi.org/10.13140/RG.2.2.34353.40806
  12. Karpinskyi, Yu., & Lazorenko-Hevel, N. (2020). Topographic mapping in the national spatial data infrastructure in Ukraine. Proceedings of the 9th International Scientific-Technical Conference on Environmental Engineering, Photogrammetry, Geoinformatics – Modern Technologies and Development Perspectives (EEPG Tech 2019), Lublin, Poland, 17–20 September, Article 02004. https://doi.org/10.1051/e3sconf/202017102004
  13. Kin, D., & Karpinskyi, Yu. (2020). Peculiarities of the method of calculation feature’s geodetic area on the reference ellipsoid in GIS. Proceedings of the International Conference of Young Professionals «GeoTerrace-2020», Lviv, Ukraine, 7–9 December, 1–5. https://doi.org/10.3997/2214-4609.20205757
  14. Kucher, O., Renkevich, O., Lepetyuk, B., & zayets, I. (2003). Naukovo-tekhnichne zabezpechennia vprovadzhennia referentsnoi systemy koordynat dlia terytorii Ukrainy. Modern geodesic advances of sciences and industry, 1, 23–31.
  15. Van der Marel, H. (2014). Reference systems for surveying and mapping. Delft University of Technology. http://gnss1.tudelft.nl/pub/vdmarel/reader/CTB3310_RefSystems_1-2a_online.pdf
  16. Markič, Š., Donaubauer, A., & Borrmann, A. (2018). enabling geodetic coordinate reference systems in building information modeling for infrastructure. Proceedings of the 17th International Conference on Computing in Civil and Building Engineering, Tampere, Finland, 5–7 June. https://icccbe2018.exordo.com/files/papers/114/final_draft/Markic_etal_Final_Paper_ICCCBe2018.pdf
  17. Meaden, G. J., Jenness, J., & Walker, S. (2013). Preparing data for GIS use. In G. J. Meaden & J. Aguilar-Manjarre (eds.), Advances in geographic information systems and remote sensing for fisheries and aquaculture (pp. 113–146). FAO. http://www.fao.org/tempref/FI/CDrom/T552/root/05.pdf
  18. Nakaz Ministerstva ahrarnoi polityky ta prodovolstva Ukrainy vid 02.12.2016 № 509 «Pro zatverdzhennia Poriadku vykorystannia Derzhavnoi heodezychnoi referentsnoi systemy koordynat USK-2000 pry zdiisnenni robit iz zemleustroiu» (2016) (Ukraine). https://zakon.rada.gov.ua/laws/show/z1646-16#Text
  19. Ono, M. N. (2009). On problems of coordinates, coordinate systems and transformation parameters in local map production, updates and revisions in Nigeria. Proceedings of the FIG Working Week, Eilat, Israel, 3–8 May. https://www.fig.net/resources/proceedings/fig_proceedings/fig2009/papers/ts05c/ts05c_ono_3437.pdf
  20. Postanova Kabinetu Ministriv Ukrainy vid 17 zhovtnia 2012 r. № 1051 “Pro zatverdzhennia Poriadku vedennia Derzhavnoho zemelnoho kadastru” (2012) (Ukraine). https://zakon.rada.gov.ua/laws/show/1051-2012-%D0%BF#Text
  21. Weber, V., Navratil, G., & Blauensteiner, F. (2022). Managing inhomogeneity in the control point network during staking out cadastral boundaries in Austria. ISPRS International Journal of Geo-Information, 11(5), 274. https://doi.org/10.3390/ijgi11050274
  22. Zakon Ukrainy “Pro natsionalnu infrastrukturu heoprostorovykh danykh” (2020) (Ukraine). http://w1.c1.rada.gov.ua/pls/zweb2/webproc34?id=&pf3511=67268&pf35401=525603
DOI: https://doi.org/10.2478/pcr-2024-0004 | Journal eISSN: 2450-6966 | Journal ISSN: 0324-8321
Language: English
Page range: 46 - 54
Submitted on: Jan 12, 2024
Accepted on: Aug 20, 2024
Published on: Oct 12, 2024
Published by: Polish Geographical Society
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2024 Yurii Karpinskyi, Nadiia Lazorenko, Danylo Kin, Olga Vitruk, published by Polish Geographical Society
This work is licensed under the Creative Commons Attribution 4.0 License.