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Please use this identifier to cite or link to this item: https://oldena.lpnu.ua/handle/ntb/45918
Title: Методика визначення розливів нафти в Керченській протоці за різночасовими космічними знімками
Other Titles: Method of determination of oil spill in the Kerch strait by different time space images
Authors: Четверіков, Б.
Корнієнко, О.
Сорока, О.
Кілару, В.
Chetverikov, B.
Korniyenko, O.
Soroka, O.
Kilaru, V.
Affiliation: Національний університет “Львівська політехніка”
Lviv Polytechnic National University
Bibliographic description (Ukraine): Методика визначення розливів нафти в Керченській протоці за різночасовими космічними знімками / Б. Четверіков, О. Корнієнко, О. Сорока, В. Кілару // Сучасні досягнення геодезичної науки та виробництва. — Львів : Видавництво Львівської політехніки, 2019. — № 2(38). — С. 67–71.
Bibliographic description (International): Method of determination of oil spill in the Kerch strait by different time space images / B. Chetverikov, O. Korniyenko, O. Soroka, V. Kilaru // Modern achievements of geodesic science and industry. — Vydavnytstvo Lvivskoi politekhniky, 2019. — No 2(38). — P. 67–71.
Is part of: Сучасні досягнення геодезичної науки та виробництва, 2(38), 2019
Modern achievements of geodesic science and industry, 2(38), 2019
Journal/Collection: Сучасні досягнення геодезичної науки та виробництва
Issue: 2(38)
Issue Date: 28-Feb-2019
Publisher: Видавництво Львівської політехніки
Place of the edition/event: Львів
UDC: 528.92
Keywords: модуль DeltaCue
неконтрольована класифікація
різночасові космічні знімки
розлив нафти
синтезовані знімки
DeltaCue module
uncontrolled classification
different time space images
oil spill
synthesized images
Number of pages: 5
Page range: 67-71
Start page: 67
End page: 71
Abstract: The aim of the work is to familiarize with the method of satellite monitoring of oil spills on the sea surface, the formation of skills and abilities to detect the presence of changes on time-varying space images for a specific area with the help of DeltaCue module ErdasImagine software package. Method. The technological scheme proposed in the paper involves the use of two independent methods of processing time-varying space images to determine the oil spill area in the Kerch Strait and compare the results. The first technique is to use of defining changes to DeltaCue objects, included in the ErdasImagine software package. This module includes the processing of images before and after the event. When processing data, it is possible to use three filters: spectral segmentation, incorrect recording of pixel pairs images and spatial filtering. The second method used is the uncontrolled classification by the ISODATA algorithm. Firstly, an image of the oil spill was classified, and then after the spill. With an image after the spill it was carried out 6 iterations, while not grouping classes to two: spill and everything else. After that, the results were exported to a vector format that detected the difference in the images at the spill location. The obtained data is comparatively and it is determined that the method using the DeltaCue module showed a better result and is more suitable for this kind of work. Results. As a result of the research, the oil spill area in the Kerch Strait in 2007 was received. Using the DeltaCue module of the ErdasImagine software package, an area of 30,918.4 km2 was obtained. After taking an uncontrolled classification of images, an area of oil spill was obtained at 29717.5 km2. After analyzing the results obtained, it can be concluded that for such studies, it is more efficient to use the DeltaCue module, since in the uncontrolled classification a part of the pixels is recorded incorrectly. Scientific novelty. The methods presented in the studies are well-known, and the scientific novelty lies precisely in their comparison on the example of a man-made disaster. Practical significance. Using these techniques, you can determine the effects of various natural and man-made disasters and determine which one is best suited to one particular case.
URI: https://ena.lpnu.ua/handle/ntb/45918
Copyright owner: © Національний університет “Львівська політехніка”, 2019
©Західне геодезичне товариство, 2019
URL for reference material: http://www.ff.uni-lj.si/oddelki/geo/publikacije/
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Інформаційні технології космічного моніторингу водних екосистем і прогнозу водоспоживання міст. К.: Наукова думка, 223 с.
Alpers, W., & H. Espedal (2004). Oils and surfactants. In: Synthetic Aperture Radar Marine User’s Manual. U.S. Department of Commerce, Washington, p. 263-276
Brekke, C., & A. H. S. Solberg. 2005. Oil spill detection by satellite remote sensing. Rem Sens. Environ., 95: 1-13.
Loncar, J., & M. Maradin. 2009. Environmental challenges sustainable development in the Croatian North Adriatic littoral region. Razgledi, 31: 159¬173. (available at: http://www.ff.uni-lj.si/oddelki/geo/publikacije/ dela/files/dela_31/10_loncar.pdf).
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Fingas M. F., Brown C. E. (2000). Review of oil spill remote sensing. Proc. of the 5th Internat. Conf. on Remote Sensing for Marine and Coastal
Environments. Environmental Research Institute of Michigan, Ann Arbor, Michigan, P. 211-218.
Rasmussen, C, Gerke, O, Greco, M, Richard, P, Alberto, J, Dobson, E, Nijenhuis, R. Spill (2007). in Kerch Strait, Ukraine, Final Report, Community Civil Protection Mechanism, European Commission.
Shi, L., A. Yu. Ivanov, M.-X. He, & C. Zhao (2008). Oil spill mapping in the western part of the East China Sea using synthetic aperture radar imagery. Int. J. of Rem.. Sens., 29 (21): 6315-6329.
References (International): Litovchenko K. Ts., Lavrova O. Yu., Mityagina M. I. i dr. (2007). Neftyanyie zagryazneniya vostochnoy chasti Chernogo morya: kosmicheskiy monitoring i podsputnikovaya verifikatsiya. Issledovanie Zemli iz kosmosa. No. 1, C. 81-94.
Ivanov A. Yu., Ermoshkin I. S. (2004). Kartografirovanie plenochnyih zagryazneniy morskoy poverhnosti po dannyim kosmicheskoy radiolokatsii. Tehnologii TEK, No. 3, S. 64-69.
Ivanov A., Ostrovskiy A. (2003). Primenenie sredstv kosmicheskoy radiolokatsii dlya monitoringa morskoy dobyichi i transportirovki nefti. Tehnologii TEK, No. 6, S. 58-64.
Krasovsky'j G. Ya., Petrosov V. A. (2003). Informacijni texnologiyi kosmichnogo monitoryngu vodnyx ekosystem i prognozu vodospozhyvannya mist. K.: Naukova dumka, 223 s.
Alpers, W., & H. Espedal (200). Oils and surfactants. In: Synthetic Aperture Radar Marine User’s Manual. U.S.
Department of Commerce, Washington, p. 263-276.
Brekke, C., & A. H. S. Solberg (2005). Oil spill detection by satellite remote sensing. Rem. Sens. Environ., 95: 1-13. Loncar, J., & M. Maradin. 2009. Environmental challenges sustainable development in the Croatian North Adriatic littoral region. Razgledi, 31: 159-173. (available at: http:// www.ff.uni-lj.si/oddelki/geo/publikacije/dela/files/dela_31/10_loncar.pdf).
Ostergaard, P. (2004). Oil Spill Contingency Planning and Technical Cooperation of the Black Sea Region.
Fingas M. F., Brown C. E. (2000). Review of oil spill remote sensing. Proc. of the 5th Internat. Conf. on Remote Sensing for Marine and Coastal Environments. Environmental Research Institute of Michigan, Ann Arbor, Michigan, P. 211-218.
Rasmussen, C., Gerke, O., Greco, M., Richard, P., Alberto, J., Dobson, E., Nijenhuis, R. (2007). Spill in Kerch Strait, Ukraine, Final Report, Community Civil Protection Mechanism, European Commission.
Shi, L., A. Yu. Ivanov, M.-X. He, & C. Zhao (2008). Oil spill mapping in the western part of the East China Sea using synthetic aperture radar imagery. Int. J. of Rem. ^ns., 29 (21): 6315-6329.
Content type: Article
Appears in Collections:Сучасні досягнення геодезичної науки та виробництва. – 2019. – Випуск 2(38)

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