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Assessment of the Economic Effectiveness of Investments in Mechanization and New Technologies towards the Sustainable Development of Agricultural Holdings in Serbia Cover

Assessment of the Economic Effectiveness of Investments in Mechanization and New Technologies towards the Sustainable Development of Agricultural Holdings in Serbia

Open Access
|Jul 2026

References

  1. Amare, D., Endalew, W. (2016). Agricultural mechanization: assessment of mechanization impact experiences on the rural population and the implications for Ethiopian smallholders. Engineering and Applied Sciences, 1(2), 39-48, doi: 10.11648/j.eas.20160102.15
  2. Asemi, A., Asemi, A., Houshangi, N., Mazaheri, A., Houshangi, M. (2026). AI-powered investment recommendations in the agri-food sector. British Food Journal (first online), 1-29, https://doi.org/10.1108/BFJ-05-2025-0643
  3. Balafoutis, A., Evert, F., Fountas, S. (2020). Smart farming technology trends: Economic and environmental effects, labor impact, and adoption readiness. Agronomy, 10(5), 743, https://doi.org/10.3390/agronomy10050743
  4. Banerjee, S., Punekar, R. (2020). A sustainability-oriented design approach for agricultural machinery and its associated service ecosystem development. Journal of Cleaner Production, 264, 121642, https://doi.org/10.1016/j.jclepro.2020.121642
  5. Belinska, S., Bielik, P., Adamičková, I., Husárová, P., Onyshko, S., Belinska, Y. (2024). Assessment of environmental and economic-financial feasibility of biogas plants for agricultural waste treatment. Sustainability, 16(7), 2740, https://doi.org/10.3390/su16072740
  6. Bhooshan, N., Raman, M., Gupta, S., Suyal, G., Singh, A., Sharma, A. (2024). Revolutionizing agriculture: role of agricultural mechanization and global trends in farming technology. Current Science, 126(10), 1209-1216, doi: 10.18520/cs/v126/i10/1209-1216
  7. Bilotta, G., Genovese, E., Citroni, R., Cotroneo, F., Meduri, G., Barrile, V. (2023). Integration of an innovative atmospheric forecasting simulator and remote sensing data into a geographical information system in the frame of agriculture 4.0 concept. AgriEngineering, 5(3), 1280-1301, https://doi.org/10.3390/agriengineering5030081
  8. Ćejvanović, F., Cvijanović, D., Grgić, Z., Hodžić, K., Subić, J. (2010). Teorija troškova i kalkulacija u poljoprivredi - Dodatak - Katalog kalkulacija u poljoprivredi [Theory of costs and calculations in agriculture – Supplement – Catalogue of calculations in agriculture], Institute of Agricultural Economics, Belgrade, Serbia.
  9. Champness, M., Vial, L., Ballester, C., Hornbuckle, J. (2023). Evaluating the performance and opportunity cost of a smart-sensed automated irrigation system for water-saving rice cultivation in temperate Australia. Agriculture, 13(4), 903, https://doi.org/10.3390/agriculture13040903
  10. Chel, A., Kaushik, G. (2011). Renewable energy for sustainable agriculture. Agronomy for sustainable development, 31(1), 91-118, https://doi.org/10.1051/agro/2010029
  11. Chen, X. (2025). The role of modern agricultural technologies in improving agricultural productivity and land use efficiency. Frontiers in Plant Science, 16, 1675657, https://doi.org/10.3389/fpls.2025.1675657
  12. Daum, T., Birner, R. (2017). The neglected governance challenges of agricultural mechanization in Africa:Insights from Ghana. Food Security, 9(5), 959-979, https://doi.org/10.1007/s12571-017-0716-9
  13. Devkota, R., Pant, L., Gartaula, H., Patel, K., Gauchan, D., Hambly Odame, H., Thapa, B., Raizada, M. (2020). Responsible agricultural mechanization innovation for the sustainable development of Nepal’s hillside farming system. Sustainability, 12(1), 374, https://doi.org/10.3390/su12010374
  14. Fischer, G., Kotu, B., Mutungi, C. (2021). Sustainable and equitable agricultural mechanization? A gendered perspective on maize shelling. Renewable Agriculture and Food Systems, 36(4), 396-404, doi: 10.1017/S1742170521000016
  15. Fuentes Peñailillo, F., Gutter, K., Vega, R., Silva, G. (2024). Transformative technologies in digital agriculture: Leveraging Internet of Things, remote sensing, and artificial intelligence for smart crop management. Journal of Sensor and Actuator Networks, 13(4), 39, https://doi.org/10.3390/jsan13040039
  16. Gautam, S., Das, D., Saxena, A. (2024). Economic indicators evaluation to study the feasibility of a solar agriculture farm: A case study. Solar Compass, 10, 100074, https://doi.org/10.1016/j.solcom.2024.100074
  17. Gupta, S., Hasan, W., Singh, S., Kumar, D., Ansari, M.., Nisar, S. (eds.), (2024). Agriculture 4.0: Smart farming with IoT and artificial intelligence. CRC Press, Boca Raton, USA.
  18. Hassoun, A. (2025). Food sustainability 4.0: Harnessing fourth industrial revolution technologies for sustainable food systems. Discover Food, 5(1), 171, https://doi.org/10.1007/s44187- 025-00461-z
  19. Havrysh, V., Kalinichenko, A., Szafranek, E., Hruban, V. (2022). Agricultural land: Crop production or photovoltaic power plants. Sustainability, 14(9), 5099, https://doi.org/10.3390/su14095099
  20. Hossen, M. (2019). Mechanization in Bangladesh: Way of modernization in agriculture. International Journal of Engineering Trends and Technology, 67(9), 69-77.
  21. IAE (2025). Models of investment at family farms in Serbia:Acquiring mechanization and new technologies. Internal documentation, field research, Institute of Agricultural Economics (IAE), Belgrade, Serbia.
  22. Jeločnik, M., Subić, J. (2020). Evaluation of economic efficiency of investments in organic production at the family farms. In: Platania et al. (eds.) Course for trainers: Organic farming, eco-market and their capitalization through the entrepreneurial initiative, Alexandru Ioan Cuza University, Iasi, Romania, pp. 261-300.
  23. Jeločnik, M., Subić, J., Zdravković, A. (2022). Economic effects of investment in irrigation systems implementation at the small family farms. Economic of Agriculture, 69(3), 793-817, https://doi.org/10.5937/ekoPolj2203793J
  24. Kannan, S. (2025). Transforming Agriculture for the Digital Age: Integrating Artificial Intelligence, Cloud Computing, and Big Data Solutions for Sustainable and Smart Farming Systems. Deep Science Publishing, SF, USA.
  25. Kiropoulos, K., Bibi, S., Vakouftsi, F., Pantzios, V. (2021). Precision agriculture investment return calculation tool. In: 17th international conference on Distributed computing in Sensor Systems (DcoSS), pp. 267-271, IEEE, NY, USA, doi: 10.1109/DCOSS52077.2021.00051
  26. Klerkx, L., Jakku, E., Labarthe, P. (2019). A review of social science on digital agriculture, smart farming and agriculture 4.0: New contributions and a future research agenda. NJAS: Wageningen journal of life sciences, 90(1), 1-16, https://doi.org/10.1016/ j.njas.2019.100315
  27. Kusz, D., Kusz, B., Wicki, L., Nowakowski, T., Kata, R., Brejta, W., Barć, M. (2024). The economic efficiencies of investment in biogas plants: A case study of a biogas plant using waste from a dairy farm in Poland. Energies, 17(15), 3760, https://doi.org/10.3390/ en17153760
  28. Kuzman, B. (2006). Metodologije za poslovno-strateško planiranje [Metodologies for businessstrategic planning]. Municipal administration Beočin, Srpska knjiga, Ruma, Serbia.
  29. Liu, S., Wu, Y. (2021). Economic Benefit Evaluation and Analysis Based on Intelligent Agriculture Internet of Things. Journal of Mathematics, 2021(1), 9499197, https://doi.org/10.1155/2021/9499197
  30. Luo, X., Liao, J., Zang, Y., Zhou, Z. (2016). Improving agricultural mechanization level to promote agricultural sustainable development. Transactions of the Chinese Society of Agricultural Engineering, 32(1), 1-11.
  31. Mahmood, G., Liberatori, S., Mazzetto, F. (2025). Agricultural mechanization perspective in Pakistan: present challenges and digital future. Journal of Agricultural Engineering, 56(2), 1636, doi: 10.4081/jae.2025.1636
  32. Mansour, A., Alkady, Y., Elashmawi, W., Elbahnasaw, M., Shamseldin, T. (2026). Revolutionizing farming with agriculture 4.0: Technology-driven sustainability and productivity. In: Precision and Intelligence in Agriculture: Advanced Technologies for Sustainable Farming, pp. 51-96, IGI Global Scientific Publishing, Hershey, USA. doi: 10.4018/979-8-3373-5283- 1.ch003
  33. Maula, I. (2025). Machine Learning-Based Disease Detection in Cocoa Plantations: Economic Viability Study in Luwu Regency, South Sulawesi. Journal of Agricultural Economy and Technology Development, 2(2), 30-55, https://doi.org/10.59261/jaetd.v2i2.42
  34. Mishra, H., Mishra, D., Tiwari, A., Nishad, D. (2025). Cost–benefit analysis of sensing and data collection with drones for IoT applications. In: Hassan et al. (eds.) Machine Learning for Drone-Enabled IoT Networks: Opportunities, Developments, and Trends, pp. 141-168, Springer, Cham, Switzerland, https://doi.org/10.1007/978-3-031-80961-3_8
  35. Obaideen, K., & Hassoun, A. (2025). Industry 4.0 for Sustainable Agriculture and Food Industry. In: Hassoun, A. (edt.) Food Industry 4.0 and Food Sustainability. Sustainable Development Goals Series. Springer, Cham, Switzerland, pp. 25-48, https://doi.org/10.1007/978-3-032-06527-8_2
  36. Onwude, D., Abdulstter, R., Gomes, C., Hashim, N. (2016). Mechanisation of large‐scale agricultural fields in developing countries: A review. Journal of the Science of Food and Agriculture, 96(12), 3969-3976, https://doi.org/10.1002/jsfa.7699
  37. Pedersen, S. (2023). Economic Performance of Precision Agriculture Technologies. In: Zhang, Q. (eds.) Encyclopedia of Digital Agricultural Technologies, Springer, Cham, Switzerland, pp. 420-429, https://doi.org/10.1007/978-3-031-24861-0_203
  38. Petrović, M., Marina, I., Jeločnik, M. (2024). The significance and role of using innovative technologies in modern agricultural production. Journal of Research and Innovation for Sustainable Society (JRISS), 6(2), 289-303, doi: 10.33727/JRISS.2024.2.32:289-303
  39. Pham, V. (2023). Investing in internet of things technology: Case studies of smart alternate wetting and drying irrigation. IOP Conference Series: Earth and Environmental Science 1155(1), 012029, doi: 10.1088/1755-1315/1155/1/012029
  40. Pingali, P. (2007). Agricultural mechanization: Adoption patterns and economic impact. In: Evenson, R., Pingali, P. (eds.) Handbook of agricultural economics, vol. 3, Agricultural Development: Farmers, Farm Production and Farm Markets, pp. 2779-2805, https://doi.org/10.1016/S1574-0072(06)03054-4, Elsevier Inc., Amsterdam, the Netherlands.
  41. Prahitaningtyas, S. (2025). Internet of Things (IoT) Implementation in Tilapia Aquaculture: Profitability Assessment of Smart Pond Management in Subang District, West Java. Journal of Agricultural Economy and Technology Development, 2(2), 81-100, https://doi.org/10.59261/jaetd.v2i2.44
  42. Prananda, N. G. (2025). Drone-Assisted Precision Fertilization in Shallot Cultivation: Cost- Efficiency Evaluation in Brebes Regency, Central Java. Journal of Agricultural Economy and Technology Development, 2(2), 101-118, https://doi.org/10.59261/jaetd.v2i2.41
  43. Premashthira, A., Pranchai, A., Manthamkarn, V. (2022). Financial Feasibility of UAV-based Forest Inventory of Teak Plantation: A Case Study of Khaokrayang Forest Plantation, Phitsanulok Province. Journal of Business, Innovation and Sustainability (JBIS), 17(4), 90-104.
  44. Raucci, D., Agostinone, S., Carnevale, M. (2019). Technical and economic evaluation of renewable energy production in the Italian agricultural firm: Financing a biogas plant investment. World Review of Entrepreneurship, Management and Sustainable Development, 15(4), 513-538, https://doi.org/10.1504/WREMSD.2019.102344
  45. Razu, M., Shah, M., Husain, M. (2025). A study on the impact of agricultural mechanization and practices of traditional knowledge in agriculture in Jhenaidah district, Bangladesh. Humanity Journal, 2(1), 2025002, https://10.31893/humanitj.2025002
  46. Ritz, S., Rizzo, D., Fourati Jamoussi, F., Dantan, J., Combaud, A., Dubois, M. (2019). Training in agricultural technologies: A new prerequisite for smart farming. In: 3rd Rendez-Vous Techniques – AXEMA, Villepinte, France, pp. 1-11, hal-03153999.
  47. Sassenrath, G., Heilman, P., Luschei, E., Bennett, G., Fitzgerald, G., Klesius, P., Zimba, P. (2008). Technology, complexity and change in agricultural production systems. Renewable Agriculture and Food Systems, 23(4), 285-295, doi: 10.1017/S174217050700213X
  48. Sekhar, M., Rastogi, M., Saikanth, D., Rout, S., Kumar, S., Patel, A. (2024). Exploring traditional agricultural techniques integrated with modern farming for a sustainable future: A review. Journal of Scientific Research and Reports, 30(3), 185-198, https://doi.org/10.9734/jsrr/2024/v30i31871
  49. Sengupta, T., Narayanamurthy, G., Moser, R., Hota, P. (2019). Sharing app for farm mechanization: Gold Farm’s digitized access-based solution for financially constrained farmers. Computers in Industry, 109, 195-203, https://doi.org/10.1016/j.compind.2019.04.017
  50. Sharma, K., Shivandu, S. (2024). Integrating artificial intelligence and Internet of Things (IoT) for enhanced crop monitoring and management in precision agriculture. Sensors International, 5, 100292, https://doi.org/10.1016/j.sintl.2024.100292
  51. Sims, B., Kienzle, J. (2016). Making mechanization accessible to smallholder farmers in sub- Saharan Africa. Environments, 3(2), 11, https://doi.org/10.3390/environments3020011
  52. Sims, B., Kienzle, J. (2017). Sustainable agricultural mechanization for smallholders: What is it and how can we implement it? Agriculture, 7(6), 50, https://doi.org/10.3390/agriculture7060050
  53. Sita, L., Ketut, S., Pasek, M., Kurniawan, S., Wan, R., Bahrin, S. (2024). Management Strategy Planning and Implementation of Advanced Technology in Increasing Agricultural Productivity. Russian Journal of Agricultural and Socio-Economic Sciences, 153(9), 97- 106.
  54. Soum, A., Ayache, A. (2025). Adopting precision agriculture in Algeria:insights and challenges from the perspective of Algerian agricultural engineers. Western Balkan Journal of Agricultural Economics and Rural Development (WBJAERD), 7(1), 19-36, doi: 10.5937/WBJAE2501019S
  55. Subić, J. (2010). Specifičnosti procesa investiranja u poljoprivredi [Specificities of investing process in agriculture], Institute of Agricultural Economics, Belgrade, Serbia.
  56. Subić, J. (2010). Specifičnosti procesa investiranja u poljoprivredi [Specificities of investing process in agriculture], Institute of Agricultural Economics, Belgrade, Serbia. Subić, J. (2017). Assessment of Investments by the use of Software Application for Development of the Business Plan in Agriculture. Ekonomika, 63(2), 1-14.
  57. Subić, J., Cicea, C., Jeločnik, M. (2017). Methodology and Software Application for Creation of Business Plan in Any Area of Agricultural Production. In: Proceedings of 11th International Management Conference - The Role of Management in the Economic Paradigm of the XXI Century, ASE, Faculty of Management, Bucharest, Romania, pp. 887-897.
  58. Subić, J., Jeločnik, M. (2023). Economic Aspects of the Innovative Alternatives Use in Agriculture. In: Chivu, L., De Los Ríos Carmenado, I., Andrei, J. (eds.) Crisis after the Crisis: Economic Development in the New Normal - ESPERA 2021, Springer Proceedings in Business and Economics, Springer, Cham, the Switzerland, pp. 91-105, https://doi.org/10.1007/978-3-031-30996-0_7
  59. Subić, J., Jeločnik, M. (2023). Economic Efficiency of Investment in Facilities and Equipment for Grains Storing. In: Proceedings of the International Conference on Business Excellence (ICBE 2023), De Gruyter, Warsaw, Poland, pp. 1476-1486, https://doi.org/10.2478/picbe-2023-0133
  60. Subić, J., Jeločnik, M. (2026). MatLab softverska aplikacija za obradu i prikaz podataka [MatLab software application for data processing and displaying]. Internal documentation, field research due to advancement of financial knowledge and evidention at farms in Serbia. Institute of Agricultural Economics, Belgrade, Serbia.
  61. Subić, J., Jeločnik, M., Ivolga, A., Erokhin, V. (2025). Economic Effects of Investing in Entrepreneurial Initiatives in Rural Communities: Case Study of Greenhouse Structures Production. In: Proceeding of the International Conference on Business Excellence (ICBE 2025). Sciendo, Warsaw, Poland, pp. 687-701, doi: 10.2478/picbe-2025-0055
  62. Subić, J., Jovanović, M., Despotović, Ž., Jeločnik, M. (2017). Possibilities of Applying Robotic Systems and Smart Sensor Networks in Integrated Agricultural Apple Production. In: Rodic, A. (edt.) Advances in Robot Design and Intelligent Control, 25th Conference on Robotics in Alpe-Adria Danube region, Advances in Intelligent Systems and Computing, RAAD, pp. 269-281, Springer, Cham, Switzerland, https://doi.org/10.1007/978-3-319-49058-8_30
  63. Subić, J., Nastić, L., Roljević Nikolić, S. (2020). Economic effects of investment in dairy farming. Western Balkan Journal of Agricultural Economics and Rural Development, 2(2), 135-146, doi: 10.5937/WBJAE2002135S
  64. Subić, J., Umihanić, B., Hamović, V. (2008). Sastavljanje investicione kalkulacije i njen značaj za izradu biznis plana na poljoprivrednim gazdinstvima [Developing of investment calculation and its importance for business plan creation at family farms]. Proceedings, pp. 287-294, University in Belgrade, Faculty of Agriculture, Belgrade, Serbia.
  65. Suman, J., Prasad, K., Murthy, A., Gurunadha, R., Hema, M., Gurrapu, O. (2025). AI and Sustainable Agriculture Through Cost-Benefit Analysis of Smart Irrigation Systems. Research on World Agricultural Economy, 6(4), 266-279, https://doi.org/10.36956/rwae.v6i4.2503
  66. Tantalaki, N., Souravlas, S., Roumeliotis, M. (2019). Data-driven decision making in precision agriculture: The rise of big data in agricultural systems. Journal of agricultural & food information, 20(4), 344-380, https://doi.org/10.1080/10496505.2019.1638264
  67. Tozer, P. (2009). Uncertainty and investment in precision agriculture: Is it worth the money? Agricultural systems, 100(1-3), 80-87, https://doi.org/10.1016/j.agsy.2009.02.001
  68. Van Evert, F., Gaitán Cremaschi, D., Fountas, S., Kempenaar, C. (2017). Can precision agriculture increase the profitability and sustainability of the production of potatoes and olives? Sustainability, 9(10), 1863, https://doi.org/10.3390/su9101863
  69. Van Loon, J., Woltering, L., Krupnik, T., Baudron, F., Boa, M., Govaerts, B. (2020). Scaling agricultural mechanization services in smallholder farming systems: Case studies from sub- Saharan Africa, South Asia, and Latin America. Agricultural systems, 180, 102792, https://doi.org/10.1016/j.agsy.2020.102792
  70. Vasiljević, Z. (2006). Upravljenje investicijama [Management under investments]. Script. University Braća Karić, Faculty for trade and banking „Janićije and Danica Karić“, Belgrade, Serbia.
Language: English
Page range: 4733 - 4751
Published on: Jul 23, 2026
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2026 Jonel SUBIĆ, Marko JELOČNIK, Vasilii EROKHIN, Anna IVOLGA, published by Bucharest University of Economic Studies
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