UDC: 
DOI: 
10.22389/0016-7126-2023-991-1-29-41
1 Loginov D.S.
Year: 
№: 
991
Pages: 
29-41

Target Horizon, LLC

1, 
Abstract:
The author presents the results of a web service development aimed at implementing a conceptual model of field geophysical surveys mapping monitoring. The issues of adapting the open source software DBMS PostgreSQL and JavaScript library Leaflet for centralized data gathering, systematization, updating and cartographic visualization of the geological exploration’s field phase progress are considered. The web service was tested during the seismic acquisition at the license areas in the Russian Federation and the Republic of India. It was used as the main tool for spatial analysis of the field crews’ productivity and considering natural and anthropogenic objects that prevent the timely execution of planned volumes of topographic and geodetic and seismic surveys, as well as a means of communication between specialists and administrative decision making. The results of the approbation showed an increase in the efficiency of geological exploration works’ field phase cartographic support. The experience of using open source software, a systematic approach to forming the server space and storing information in the database presented in the article enables developing web-mapping of exploration work carried out simultaneously in several territories through different methods of geophysical exploration.
References: 
1.   Burtsev M. A., Mamaev A. S., Proshin A. A., Flitman E. V. Upravlenie dostupom k web-resursam v raspredelennykh sistemakh distantsionnogo monitoringa. Sovremennye problemy distantsionnogo zondirovaniya Zemli iz kosmosa, 2011, Vol. 8, no. 3, pp. 155–160.
2.   Vorob'ev A. V., Pilipenko V. A., Enikeev T. A., Vorob'eva G. R., Khristodulo O. I. Sistema dinamicheskoi vizualizatsii geomagnitnykh vozmushchenii po dannym nazemnykh magnitnykh stantsii. Nauchnaya vizualizatsiya, 2021, Vol. 13, no. 1, pp. 162–176. DOI: 10.26583/sv.13.1.11.
3.   Dalaa S. M., Khuurak Ch. B. Sozdanie interaktivnykh kart dlya dialektologicheskogo korpusa tuvinskogo yazyka. Nauchnye trudy Tuvinskogo gosudarstvennogo universiteta. Materialy ezhegodnoi nauchno-prakticheskoi konferentsii prepodavatelei, sotrudnikov i aspirantov TuvGU, posvyashchennoi Godu ekologii v Rossiiskoi Federatsii i Godu molodezhnykh initsiativ v Tuve, 2017, XVIII. pp. 25–27.
4.   Zagrebin G. I., Krylov S. A., Kotova O. I. Sozdanie interaktivnykh web-kart na territoriyu goroda. Interekspo Geo-Sibir', 2021, Vol. 1, pp. 169–177.
5.   Kanukov A. S. Integratsiya bazy dannykh geologicheskoi informatsii v sistemu geoinformatsionnogo modelirovaniya. Geologiya i geofizika Yuga Rossii, 2017, no. 3, pp. 57–66.
6.   Krasnoperov R. I., Solov'ev A.A., Nikolov B. P., Zharkikh Yu. I., Grudnev A. A. Interaktivnoe veb-prilozhenie dlya kompleksnogo izucheniya prostranstvennoi informatsii po naukam o Zemle s ispol'zovaniem bazy geodannykh GTs RAN. Issledovaniya po geoinformatike: trudy geofizicheskogo tsentra RAN, 2016, Vol. 4, no. 1, pp. 1–7. DOI: 10.2205/2016BS039.
7.   Loginov D.S. (2022) Conceptual model of cartographic monitoring field geophysical surveys and proposals for its implementation. Geodezia i Kartografia, 83(6), pp. 30-41. (In Russian). DOI: 10.22389/0016-7126-2022-984-6-30-41.
8.   Loginov D. S. Razrabotka kartograficheskogo veb-servisa monitoringa polevykh geofizicheskikh issledovanii. Izvestia vuzov. Geodesy and Aerophotosurveying, 2022, no. 2, pp. 48–61.
9.   Molorodov Yu. I., Chernenko V. V. Ispol'zovanie biblioteki Leaflet dlya vizualizatsii i analiza zarazhennosti territorii kleshchevymi infektsiyami. Vychislitel'nye tekhnologii, 2016, Vol. 21, no. 1, pp. 75–81.
10.   Orlov P. Yu., Zhurkin I. G. Ispol'zovanie graficheskoi biblioteki Cesium dlya sozdaniya web-orientirovannykh geoinformatsionnykh sistem na primere GIS okolozemnogo kosmicheskogo prostranstva. Nauchnaya vizualizatsiya, 2018, Vol. 10, no. 3, pp. 58–71. DOI: 10.26583/sv.10.3.04.
11.   Pankrat'ev P. V., Vlatskaya I. V., Petrishchev V. P., Stepanov A. S., Baranov D. A. Opyt razrabotki informatsionnogo kartograficheskogo portala dannykh ekologicheskoi bezopasnosti Orenburgskoi oblasti. Vestnik Orenburgskogo gosudarstvennogo universiteta, 2016, no. 5 (193), pp. 70–73.
12.   Popov E. V., Zakharkin I. V., Tkacheva E. A., Mikhailova S. M., Shpektorova O. A., Mikhailova G. A. Vozmozhnosti novogo geologicheskogo informatsionnogo resursa – «Interaktivnaya karta izuchennosti». Otechestvennaya geologiya, 2020, no. 6, pp. 15–22. DOI: 10.47765/0869-7175-2020-10027.
13.   Semikin V. A., Goncharova V. N., Kyzylova E. L., Pereyatinets I. V., Purtov V. A., Remen' N. S. Geoportal YuGRA. Predostavlenie dostupa k prostranstvennym dannym na territoriyu KhMAO – Yugry. Geomatika, 2014, no. 4, pp. 78–83.
14.   Ajwaliya R. J., Patel S., Sharma S. A. (2017) Web-GIS based application for utility management system. Journal of Geomatics, Volume 11, no. 1, pp. 86–97.
15.   Boyarshinov G. S., Popov A. B., Odintsova A. A., Gvozdik S. A., Rybkina A. I., Korolkova A. A. (2022) Application of Geoportal's Web-Technologies in GIS, Case Study: Interactive Geology Atlas. Russian Journal of Earth Sciences, Volume 22, no. 3, pp. 1–9. DOI: 10.2205/2022ES000794.
16.   Chafiq T., Ouadoud M., Oulidi H.J., Fekri A., Elaloui A. (2019) Towards SDI Services for Geological Maps Data. Advanced Intelligent Systems for Sustainable Development (AI2SDТ2018). pp. 34–44. DOI: 10.1007/978-3-030-11881-5_4.
17.   Edler D., Vetter M. (2019) The Simplicity of Modern Audiovisual Web Cartography: An Example with the Open-Source JavaScript Library leaflet.js. Journal of Cartography and Geographic Information, no. 69 (1), pp. 51–62. DOI: 10.1007/s42489-019-00006-2.
18.   Krylov S. A., Mosolov D. A. (2022) Organization of spatial databases for multi-scale web mapping. URL: clck.ru/33Rzj (accessed: 25.12.2022).
19.   Mazhindu A. N., Madamombe H. K. (2022) Design and Implementation of a Web-GIS for the management of road infrastructure in Zimbabwe. South African Journal of Geomatics, Volume 11, no. 1, pp. 53–64.
20.   Pokorny R., Peterkova M. T. (2016) The Quarry Inventories of the CR/CSR digitized, version 1.0. Geoscience Research Reports. Czech Geological Survey, no. 49, pp. 75–78. DOI: 10.3140/zpravy.geol.2016.11.
21.   Ren Y., Tang J. (2010) Mashup service for distributed geospatial data service. The 2nd International Conference on Information Science and Engineering (4–6 December 2010). DOI: 10.1109/icise.2010.5690092.
22.   Sitdikov R., Kharisov A., Kornilov M., Krylov P., Nurgaliev D., Kosarev V., Fattakhov A. (2021) About Automated Accounting of Exclusive Zones in The Design of Seismic Surveys. Conference Proceedings, ProGREssТ21. pp. 1–5. DOI: 10.3997/2214-4609.202159126.
23.   Zepner L., Karrasch P., Wiemann F., Bernard L. (2020) ClimateCharts.net – an interactive climate analysis web platform. International Journal of Digital Earth, Volume 14, no. 3, pp. 338–356. DOI: 10.1080/17538947.2020.1829112.
Citation:
Loginov D.S., 
(2023) Implementing a web service for cartographic monitoring of the geological exploration field stage using open-source software. Geodesy and cartography = Geodezia i Kartografia, 84(1), pp. 29-41. (In Russian). DOI: 10.22389/0016-7126-2023-991-1-29-41
Publication History
Received: 26.11.2022
Accepted: 30.01.2023
Published: 20.02.2023

Content

2023 January DOI:
10.22389/0016-7126-2023-991-1