Application of analytic hierarchy process for evaluation Western region of Ukraine with the purpose of organic land use development
DOI:
https://doi.org/10.32347/2411-4049.2022.1.69-88Keywords:
method of analysis of hierarchies, territory assessment, organic land use, potentially suitable landAbstract
The purpose of the research described in this article is to test the method of hierarchies for assessing the territory according to the selected criteria and to determine the most attractive area for the development of organic land use in the Western region of Ukraine, which is suitable for organic land use. The interest of agricultural producers in organic products comes from a stable trend towards growth of the global organic market, and the significant potential of our country as one of the main producers and exporters of organic raw materials and products. The method of hierarchies was chosen to provide the accurate evaluation of the areas for developing organic land use, as it allows to gradually break down the problems into more and more simple components and set the priority of criteria. That is, to assess the importance of individual indicators in the further processing of the sequence of judgments based on the results of pairwise comparisons, which are then expressed numerically, as well as to evaluate alternative solutions and find the best of them. Taking into account the recommendations of scientists and the requirements of the standards according to which organic producers work, in order to build a hierarchical structure of indicators of agricultural land selection there were used ecological-toxicological and agrochemical indicators of its condition. There were derived normalized ratings for each criterion and checked their reliability by the index and the ratio of consistency. There was made a comparison for each criterion, for all studied alternatives and the corresponding generalized ratings were calculated. A matrix of global priorities is constructed, which characterizes the potential of the considered areas. According to the results of the assessment by the hierarchy method, the greatest potential for the introduction of organic land use in the Western region of Ukraine is in Lviv, Khmelnytsky and Ternopil regions. There is the largest area of agricultural land which is potentially suitable for organic production with the least risk and greater economic efficiency in the above-mentioned regions. Further research will focus on the use of the hierarchy method to evaluate the potential of the territory in terms of areas of the region on a wider list of criteria, taking into consideration the suggestions and priorities of the farmer (the potential investor).
References
Organicinfo.ua. Export of Ukrainian organic products (2020, review). Retrieved from: https://organicinfo.ua/infographics/ua-organic-export-2020/.
On approval of the National Economic Strategy for the period up to 2030. Retrieved from: https://www.kmu.gov.ua/npas/pro-zatverdzhennya-nacionalnoyi-eko-a179.
Skripchuk, P.M. (2015). Scientific and practical principles of organic production. Rivne [In Ukrainian].
Novak, N.P. (2016). Principles and competitive advantages of organic agricultural production in Ukraine. Agrosvit, (9), 30–33 [In Ukrainian].
Shkuratov, O.I, Chudovskaya, V.A, & Vdovichenko, A.V. (Eds.). (2015). Organic agriculture: ecological and economic imperatives of development: monograph. Kyiv: DIA [In Ukrainian].
Pisarenko, V.M., Pisarenko, P.V. & Ponomarenko, S.V. (2017). Organic farming for the private sector. Poltava [In Ukrainian].
Pisarenko, P.V., & Chaika, T.O. (2015). Estimation of economic efficiency of organic agriculture. Kharkiv: Striped printing house. Retrieved from: http://dspace.pdaa.edu.ua:8080/xmlui/handle/123456789/4616.
Shpak, G.M. (2019). Applied aspects of geomanagement in organic farming. Balanced nature management, (2), 33–41 [In Ukrainian].
Skripchuk, P.M. (Ed.). (2018). Information support for the development of organic agriculture. Rivne: NUVHP [In Ukrainian].
Khomyuk, N.L., & Skripchuk, P.M. (2018). Regulatory framework in the field of taxation of organic land use. Innovative Economics, 7-8, 78–86 [In Ukrainian].
Akıncı, H., Özalp, A. Y., & Turgut, B. (2013). Agricultural land use suitability analysis using GIS and AHP technique. Computers and Electronics in Agriculture, 97, 71–82. https://doi.org/10.1016/j.compag.2013.07.006.
Bhatta, G.D., & Doppler, W. (2010). Farming Differentiation in the Rural-urban Interface of the Middle Mountains, Nepal: Application of Analytic Hierarchy Process (AHP) Modeling. Journal of Agricultural Science, 2(4). https://doi.org/10.5539/jas.v2n4p37.
Bunruamkaew, K., & Murayam, Y. (2011). Site Suitability Evaluation for Ecotourism Using GIS & AHP: A Case Study of Surat Thani Province, Thailand. Procedia - Social and Behavioral Sciences, 21, 269–278. https://doi.org/10.1016/j.sbspro.2011.07.024.
Ennaji, W., Barakat, A., El Baghdadi, M., Oumenskou, H., Aadraoui, M., Karroum, L. A., & Hilali, A. (2018). GIS-based multi-criteria land suitability analysis for sustainable agriculture in the northeast area of Tadla plain (Morocco). Journal of Earth System Science, 127(6), 475. https://doi.org/10.1007/s12040-018-0980-x.
Kieu, P.T., van Nguyen, T., Nguyen, V.T., & Ho, T.P. (2021). A Spherical Fuzzy Analytic Hierarchy Process (SF-AHP) and Combined Compromise Solution (CoCoSo) Algorithm in Distribution Center Location Selection: A Case Study in Agricultural Supply Chain. Axioms, 10(2), 53. https://doi.org/10.3390/axioms10020053.
Mishra, A.K., Deep, S., & Choudhary, A. (2015). Identification of suitable sites for organic farming using AHP & GIS. The Egyptian Journal of Remote Sensing and Space Science, 18(2), 181–193. https://doi.org/10.1016/j.ejrs.2015.06.005.
Alphonce, C.B. (1997). Application of the analytic hierarchy process in agriculture in developing countries. Agricultural Systems, 53(1), 97–112. https://doi.org/10.1016/S0308-521X(96)00035-2.
Sajadian, M., Khoshbakht, K., Liaghati, H., Veisi, H., & Mahdavi Damghani, A. (2017). Developing and quantifying indicators of organic farming using analytic hierarchy process. Ecological Indicators, 83, 103–111. https://doi.org/10.1016/j.ecolind.2017.07.047.
Zhukovskyy, V.V., Skripchuk, P.M., & Zhukovska, N.A. (2018). Design and development of geoinformation-analytical system of organic production. Scientific notes of Tavriya National University named after V.I. Vernadsky. Series: Technical Sciences, 29(5), 121–125 [In Ukrainian].
Kulinyak, I.Ya., & Kopets, G.R. (2017). Method of analysis of hierarchies as a tool for assessing the level of innovation activity in the regions of Western Ukraine. Bulletin of the National University "Lviv Polytechnic", 873, 60-71 [In Ukrainian].
Onishchenko, S.V. (2017). Determining strategic priorities of public finance management using the method of hierarchy analysis. Scientific Bulletin of Kherson State University. Ser. Economic Sciences, Vol. 23, part 3, 101–106 [In Ukrainian].
Cartograms of the quality of soils of Ukraine. Institute of Soil Protection of Ukraine. Retrieved from: https://www.iogu.gov.ua/pasportizaciya/karty-po-vmistu-pozhyvnyh-rechovyn-rn-humus-fosfor-kalij/.
Antonenko, A., Vavrinevych, O., Omelchuk, S., & Korshun, M. (2015). Prediction of pesticide risks to human health by drinking water extracted from underground sources. Georgian Medical News, (244-245), 99–106.
Vavrinevych, O., Antonenko, A., Omelchuk, S., Korshun, M., & Bardov, V. (2015). Prediction of soil and ground water contamination with fungicides of different classes according to soil and climate conditions in Ukraine and other European countries. Georgian Medical News, (242), 77–84.
Baranovsky, V.A. (2006). Ukraine. Ecological and geographical atlas. Atlas-monograph. Kyiv: Varta [In Ukrainian].
Bondar, O., Finin, G., & Shevchenko, R. (2020). Mapping of radiation pollution on the territory of Ukraine. Ecological Sciences, 2(2), 20–30. https://doi.org/10.32846/2306-9716/2020.eco.2-29.2.4.
Vlasyuk, A.P., & Zhukovskii, V.V. (2017). Mathematical Simulation of the Migration of Radionuclides in a Soil Medium Under Nonisothermal Conditions with Account for Catalytic Microparticles and Nonlinear Processes. Journal of Engineering Physics and Thermophysics, 90(6), 1386–1398. https://doi.org/10.1007/s10891-017-1697-4.
Vlasyuk, A., Zhukovskyy, V., Zhukovska, N., & Shatnyi, S. (2020). Parallel Computing optimization of Two- Dimensional Mathematical Modeling of Contaminant Migration in Catalytic Porous Media. In 2020 10th International Conference on Advanced Computer Information Technologies (ACIT), (pp. 23–28). IEEE. https://doi.org/10.1109/ACIT49673.2020.9208878.
The Institute of Agriculture of NAAS has developed a map of soil suitability for organic farming. Retrieved from: http://naas.gov.ua/news/?ELEMENT_ID=5028.
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2022 Zhukovskyy V.V., Sydor A.I., Shpak H.M., Shatnyi S.V.

This work is licensed under a Creative Commons Attribution 4.0 International License.
The journal «Environmental safety and natural resources» works under Creative Commons Attribution 4.0 International (CC BY 4.0).
The licensing policy is compatible with the overwhelming majority of open access and archiving policies.