Agricultural waste management in Bali faced complex challenges due to various obstacles in the transition to sustainable organic agriculture. This research focused on collaborative models among stakeholders involved in agricultural waste management. The aim of this research was to explore collaborative models for stakeholders in agricultural waste management that aligned with the journey towards organic farming. This research used a qualitative descriptive method, including a literature review and field observations to identify challenges and opportunities. The results indicated that the Sustainable Organic Circle Model could improve waste management efficiency, reduce greenhouse gas emissions, and enhance soil fertility. The issue of agricultural waste in Bali (rice straw, horticultural waste, livestock waste) was the most critical, but at the same time, it had great potential for sustainability, particularly through composting, animal feed, and biogas production. Current practices were still dominated by crop residue burning due to a lack of knowledge, facilities, and financial constraints. The Integrated Farming System Program and collaboration among stakeholders (including government, NGOs, and academics) were ongoing, but still faced challenges such as limited farmer knowledge and unintegrated policies.
Widhianthini, W. (2022). Performance of Agricultural Sector in Bali. KnE Life Sciences, 7, 579–592. http://doi.org/10.18502/kls.v7i3.11163.
Zargaran Khouzani, M.R.; Dehghani Ghahfarokhi, Z. (2022). Evaluation of Agricultural Waste Management Mechanism in Iran. Industrial and Domestic Waste Management, 2, 113–124. http://doi.org/10.53623/idwm.v2i2.112.
Sardiana, I.K.; Kusmiyarti, T.B. (2021). Sustainability performance of organic farming at vegetable fields in Tabanan, Bali, Indonesia. Sains Tanah, 18, 8–15. http://doi.org/10.20961/STJSSA.V18I1.45482.
Chandra Manna, M.; et al. (2018). Bio-Waste Management in Subtropical Soils of India: Future Challenges and Opportunities in Agriculture. Elsevier Ltd, 152, 1–x. http://doi.org/10.1016/bs.agron.2018.07.002.
Kaur, P.; Singh, K.; Sachdeva, T. (2019). Enhanced bio-composting of rice straw using agricultural residues: an alternate to burning. International Journal of Recycling of Organic Waste in Agriculture, 8, 479–483. http://doi.org/10.1007/s40093-019-0263-9.
Alvarez, R. (2022). Comparing Productivity of Organic and Conventional Farming Systems: A Quantitative Review. Archives of Agronomy and Soil Science, 68, 1947–1958. http://doi.org/10.1080/03650340.2021.1946040.
Sriartha, I.P.; Gede Diatmika, I.P.; Pradnyana Putra, P.Y. (2021). Farmers’ Responses to the Adoption of Organic Rice Farming in Buleleng Regency, Bali. http://doi.org/10.4108/eai.9-9-2021.2313647.
Gudadur, K.; Dolli, S.; Sudhakar, S. (2023). Opportunities for Entrepreneurship in Waste Management: Need for Collaborative Approach Under NEP. International Journal of Environmental and Climate Change, 13, 727–734. http://doi.org/10.9734/IJECC/2023/v13i113219.
Harshwardhan, K.; Upadhyay, K. (2017). Fundamentals of Renewable Energy and Applications Effective Utilization of Agricultural Waste: Review. Journal of Fundamental Renewable Energy Applications, 7, 5–7. http://doi.org/10.4172/20904541.1000237.
Hua, W.; Zheng, X.; Luo, L.; Zhu, X. (2025). Farmer cooperative fever and collective environmental action: Evidence from China’s Rural Human Settlements Improvements. Journal of Cleaner Production, 486, 144468. http://doi.org/10.1016/J.JCLEPRO.2024.144468.
Sarkar, S.; Biwas, T.; Malta, M.C.; Meira, D.; Dutta, A. (2023). A coalition formation framework of smallholder farmers in an agricultural cooperative. Expert Systems with Applications, 221, 119781. http://doi.org/10.1016/j.eswa.2023.119781.
Tang, Y.; Li, X.; Wang, J.; Chen, H.; Zhao, L. (2024). Harnessing synergy: Integrating agricultural waste and nanomaterials for enhanced sustainability. Environmental Pollution, 341, 123023. http://doi.org/10.1016/J.ENVPOL.2023.123023.
Sarkar, S.; Roy, A.; Ghosh, P.; Dutta, S.; Chatterjee, S. (2020). Management of crop residues for improving input use efficiency and agricultural sustainability. Sustainability, 12, 1–24. http://doi.org/10.3390/su12239808.
Koul, B.; Yakoob, M.; Shah, M. (2022). Agricultural Waste Management Strategies For Environmental Sustainability. Environmental Research, 15, 112285. http://doi.org/10.1016/j.envires.2021.112285.
Chang, C.C.; Li, R. (2019). Agricultural waste. Water Environment Research, 91, 1150–1167. http://doi.org/10.1002/wer.1211.
Chilakamarry, C.; Reddy, K.R.; Kumar, A.; Sharma, S.; Singh, R. (2022). Advance in Solid-State Fermentation for Bioconversion of Agricultural Waste to Value-Added Products: Opportunities and Challenges. Bioresource Technology, 343, 1–10. http://doi.org/10.1016/j.bitec.2021.126065.
Kim, H.; Sefcik, J.; Bradway, C. (2018). Characteristics of Qualitative Descriptive Studies: A Systematic Review. Research in Nursing & Health, 40, 23–42. http://doi.org/10.21061/jcte.v21i1.647.
Colorafi, K.; Evans, B. (2017). Qualitative Descriptive Methods in Health Science Research. Physiology & Behavior, 9, 16–25. http://doi.org/10.1177/0022146515594631.Marriage.
Berressem, H. (2019). Critical Literature Review. In Thomas Pynchon in Context, 354–360. http://doi.org/10.1017/9781108683784.045.
Siddaway, A.P.; Wood, A.M.; Hedges, L.V. (2019). How to Do a Systematic Review: A Best Practice Guide for Conducting and Reporting Narrative Reviews, Meta-Analyses, and Meta-Syntheses. Annual Review of Psychology, 70, 1–x. http://doi.org/10.1146/annurev-psych-010418-102803.
Patil, D. (2020). Agricultural waste-utilization and management. Food Safety, 18, 1. http://lens.org/029-864-727-797-294.
Duque-Acevedo, M.; Belmonte-Ureña, L.J.; Cortés-García, F.J.; Camacho-Ferre, F. (2020). Agricultural waste: Review of the evolution, approaches and perspectives on alternative uses. Global Ecology and Conservation, 22, 1–x. http://doi.org/10.1016/j.gecco.2020.e00902.
Puglia, D.; Pezzolla, D.; Gigliotti, G.; Torre, L.; Bartucca, M.L.; Del Buono, D. (2021). The opportunity of valorizing agricultural waste, through its conversion into biostimulants, biofertilizers, and biopolymers. Sustainability, 13, 1–26. http://doi.org/10.3390/su13052710.
Sharma, B.; Vaish, B.; Monika; Singh, U.K.; Singh, P.; Singh, R.P. (2019). Recycling of Organic Wastes in Agriculture: An Environmental Perspective. International Journal of Environmental Research, 13, 409–429. http://doi.org/10.1007/s41742-019-00175-y.
Gontard, N.; Guilbert, S.; Cuq, B.; Gontard, E. (2018). A research challenge vision regarding management of agricultural waste in a circular bio-based economy. Critical Reviews in Environmental Science and Technology, 48, 614–654. http://doi.org/10.1080/10643389.2018.1471957.
BPS Bali - Luas Panen dan Produksi Padi di Provinsi Bali, 2023 (Angka Tetap) (accessed on 23 November 2025) Available online: https://bali.bps.go.id/pressrelease/2023/03/01/950/luas-panen-dan-produksi-padi-di-provinsi-riau--2022--angka-tetap-.html.
Muliarta, I.N.; Purba, J.H. (2020). Potential of Loss of Organic Fertilizer in Lowland Rice Farming in Klungkung District, Bali. Agro Bali, 3, 179–185. http://doi.org/10.37637/ab.v3i2.567.
Muliarta, I.N. (2018). Utilization burning rice straw and crops planted. International Journal of Life Sciences, 2, 142–150. http://doi.org/10.29332/ijls.v2n3.234.
Zhang, R.; Li, M.; Chen, Y.; Wang, H.; Zhou, X.; Gao, J. (2024). Straw return enhances grain yield and quality of three main crops: evidence from a meta-analysis. Frontiers in Plant Science, 15, 1–13. http://doi.org/10.3389/fpls.2024.1433220.
Umaternate, A.W.W.; Eoh, M.; Patty, C.W. (2023). Pemanfaatan Limbah Pertanian Tanaman Pangan Sebagai Pakan Ternak Ruminansia Di Kecamatan Waelata Kabupaten Buru. BIOPENDIX Journal of Biology, 9, 148–157.
Akter, M.; Halawani, R.F.; Aloufi, F.A.; Taleb, M.A.; Akter, S.; Mahmood, S. (2022). Utilization of Agro-Industrial Wastes for the Production of Quality Oyster Mushrooms. Sustainability, 14, 1–10. http://doi.org/10.3390/su14020994.
Zárate-Salazar, J.R.; Santos, M.N.; Caballero, E.N.M.; Martins, O.G.; Herrera, Á.A.P. (2020). Use of lignocellulosic corn and rice wastes as substrates for oyster mushroom (Pleurotus ostreatus Jacq.) cultivation. SN Applied Sciences, 2, 1–x. http://doi.org/10.1007/s42452-020-03720-z.
Sukmawati, S.; J, A.; Mulyadi, M. (2024). Pertumbuhan dan hasil jamur merang (Volvariella volvacea) pada berbagai media tanam limbah pertanian. Jurnal Agrotek Ummat, 11, 274. http://doi.org/10.31764/jau.v11i3.25101.
Huang, X.; Li, Y.; Zhang, H.; Wang, J.; Chen, L.; Liu, Q. (2023). Rice Straw Composting Improves the Microbial Diversity of Paddy Soils to Stimulate the Growth, Yield, and Grain Quality of Rice. Sustainability, 15, 932. http://doi.org/10.3390/su15020932.
Tamba, I.M. (2023). Kajian Buah-Buahan Lokal Unggulan Provinsi Bali dan Potensi Dinamisnya. JIA (Jurnal Ilmiah Agribisnis dan Ilmu Sosial Ekonomi Pertanian), 9, 126–132. http://doi.org/10.37149/jia.v9i2.1117.
De Laurentiis, V.; Corrado, S.; Sala, S. (2018). Quantifying household waste of fresh fruit and vegetables in the EU. Waste Management, 77, 238–251. http://doi.org/10.1016/j.wasman.2018.04.001.
Sagar, N.A.; Pareek, S.; Sharma, S.; Yahia, E.M.; Lobo, M.G. (2018). Fruit and Vegetable Waste: Bioactive Compounds, Their Extraction, and Possible Utilization. Comprehensive Reviews in Food Science and Food Safety, 17, 512–531. http://doi.org/10.1111/1541-4337.12330.
Nirmal, N.P.; Sirohi, R.; Kumar, R.; Singh, R.; Yadav, R.; Patel, A. (2023). Valorization of Fruit Waste for Bioactive Compounds and Their Applications in the Food Industry. Foods, 12, 1–26. http://doi.org/10.3390/foods12030556.
Hutahaean, L.; Rahardjo, Y.P.; Rohaeni, E.S. (2023). Utilizing Cattle Livestock Waste for Biogas Energy Production in Barito Kuala Regency, South Kalimantan. Atlantis Press International BV: Dordrecht, Netherlands. http://doi.org/10.2991/978-94-6463-116-6_20.
Santoso, M.C.; Giriantari, I.A.D.; Ariastina, W.G. (2019). Studi Pemanfaatan Kotoran Ternak Untuk Pembangkit Listrik Tenaga Biogas di Bali. Jurnal SPEKTRUM, 6, 58. http://doi.org/10.24843/spektrum.2019.v06.i04.p9.
Shakya, S.K.; Shrestha, R.; Thapa, R.; Adhikari, P.; Bhandari, B.; Gautam, D. (2022). Livestock waste management practices to strengthen the farm profitability. Journal of Entomology and Zoology Studies, 10, 321–326. http://doi.org/10.22271/j.ento.2022.v10.i5d.9075.
Birungi, Z.S., Nkhalambayausi Chirwa, E.M., Shen, N., Roestorff, M. (2020). Recovery of Rare Earths, Precious Metals and Bioreduction of Toxic Metals from Wastewater Using Algae. In Emerging Eco-friendly Green Technologies for Wastewater Treatment. Microorganisms for Sustainability. Bharagava, R., Ed.; Springer: Singapore. http://doi.org/10.1007/978-981-15-1390-9_12.
Sarıyer, T.; Kaya, Ç. (2022). Agricultural wastes in climate change mitigation. Journal of Global Climate Change, 1, 15–20. http://doi.org/10.56768/jytp.1.1.03.
Paes, L.A.B.; Bezerra, B.S.; Deus, R.M.; Jugend, D.; Battistelle, R.A.G. (2019). Organic solid waste management in a circular economy perspective – A systematic review and SWOT analysis. Journal of Cleaner Production, 239, 118086. http://doi.org/10.1016/j.jclepro.2019.118086.
Parvaze, S.; Kumar, R. (2019). Organic wastes in agriculture: Risks and remedies for sustainable agriculture production. Contaminants in Agriculture and Environment: Health Risks and Remediation, Haridwar: Agro Environ Media, 21–37. http://doi.org/10.26832/aesa-2019-cae-0164-03.
Diacono, M.; Persiani, A.; Testani, E.; Montemurro, F.; Ciaccia, C. (2019). Recycling agricultural wastes and by-products in organic farming: Biofertilizer production, yield performance and carbon footprint analysis. Sustainability, 11, 3824. http://doi.org/10.3390/su11143824.
Pandey, P.; Adhikari, K.R.; Gairhe, J.; Adhikari, B.B.; Shrestha, R.K.; Khanal, D. (2023). Rice Straw Management Practices in Rupandehi District, Nepal. Journal of the Institute of Agriculture and Animal Science, 37, 82–90. http://doi.org/10.3126/jiaas.v37i1.56982.
Singh, L.; Brar, B.S. (2021). A Review on Rice Straw Management Strategies. Nature Environment and Pollution Technology, 20, 1485–1493. http://doi.org/10.46488/NEPT.2021.v20i04.010.
Phuong, T.H.P.; Dung, N.T.; Thao, P.T.M.; Tham, T.T. (2022). Emissions Factors of Air Pollutants from Rice Straw Burning-hood Experiments. Earth and Environmental Science, 38, 12–21. http://doi.org/10.25073/2588-1094/vnuees.4848.
Sayara, T.; Basheer-Salimia, R.; Hawamde, F.; Sánchez, A. (2020). Recycling of organic wastes through composting: Process performance and compost application in agriculture. Agronomy, 10, 1–23. http://doi.org/10.3390/agronomy10111838.
Muliarta, I.N.; Sukmadewi, D.K. (2023). Improving Soil Fertility Through Agricultural Waste Treatment in Subak Telun Ayah, Gianyar, Bali. Asian Journal of Community Service, 2, 235–246. http://doi.org/10.55927/ajcs.v2i3.3445.
Muliarta, I.N.; Sukmadewi, D.K.T.; Pratama, A.G. (2023). Waste Composting as an Effort to Realize Kelusa, Payangan, Gianyar-Bali Village as an Ecotourism Village. Asian Journal of Community Service, 2, 247–264.
Utomo, M.M.B.; Pieter, L.A.G.; Putra, H.P.; Siagian, C.M. (2023). Manifesting a sustainable circular economy in waste management by linking to Paddy Farming in Gianyar Regency, Bali. IOP Conference Series: Earth and Environmental Science, 012011. http://doi.org/10.1088/1755-1315/1190/1/012011.
Sudita, I.D.N.; Situmeang, Y. (2022). Feeding Fermented Livestock from Agricultural Waste to the Bhakti Pertiwi Cattle Group, Belimbing Village, Pupuan District, Tabanan Regency. Asian Journal of Applied Research in Community Development and Empowerment, 7, 34–38. http://doi.org/10.29165/ajarcde.v7i1.190.
Malenica, D.; Kass, M.; Bhat, R. (2023). Sustainable Management and Valorization of Agri-Food Industrial Wastes and By-Products as Animal Feed: For Ruminants, Non-Ruminants and as Poultry Feed. Sustainability, 15, 117. http://doi.org/10.3390/su15010117.
Wyngaarden, S.L.; Lightburn, K.K.; Martin, R.C. (2020). Optimizing livestock feed provision to improve the efficiency of the agri-food system. Agroecology and Sustainable Food Systems, 44, 188–214. http://doi.org/10.1080/21683565.2019.1633455.
Abbas, W.; Sutrisno, S.; Ambarwati, L. (2023). Instilling Utilization of Fermentation of Corn Cob Waste for Animal Feed by Mesa Pau Farmers Group in Ihing Village. Riwayat Education Journal of History and Humanities, 6, 60–67. http://doi.org/10.24815/jr.v6i1.29336.
Reetsch, A.; Feger, K.H.; Schwärzel, K.; Dornack, C.; Kapp, G. (2020). Organic farm waste management in degraded banana-coffee-based farming systems in NW Tanzania. Agricultural Systems, 185, 102915. http://doi.org/10.1016/j.agsy.2020.102915.
Mencet Yelboğa, M.N.; Sayın, C.; Metin, F.D. (2024). Strategies for Managing Agricultural Waste and Disposal Options Available to Farmers. SAGE Open, 14, 1–9. http://doi.org/10.1177/21582440241290008.
Gholipour, A.; Sadegheih, A.; Mostafaeipour, A.; Fakhrzad, M.B. (2024). Designing an optimal multi-objective model for a sustainable closed-loop supply chain: a case study of pomegranate in Iran. Environment, Development, and Sustainability, 26, 3993–4027. http://doi.org/10.1007/s10668-022-02868-5.
Selvan, T.; Panmei, L.; Murasing, K.K.; Guleria, V.; Ramesh, K.R.; Bhardwaj, D.R.; Thakur, C.L.; Kumar, D.; Sharma, P.; Digvijaysinh Umedsinh, R.; Kayalvizhi, D.; Deshmukh, H.K. (2023). Circular economy in agriculture: Unleashing the potential of integrated organic farming for food security and sustainable development. Frontiers in Sustainable Food Systems, 7, 1–17. http://doi.org/10.3389/fsufs.2023.1170380.
De Keyser, E.; Mathijs, E. (2023). A typology of sustainable circular business models with applications in the bioeconomy. Frontiers in Sustainable Food Systems, 6, 1–12. http://doi.org/10.3389/fsufs.2022.1028877.
van der Velden, R.; da Fonseca-Zang, W.; Zang, J.; Clyde Smith, D.; Leandro, W.M.; Parikh, P.; Borrion, A.; Campos, L.C. (2022). Closed-loop organic waste management systems for family farmers in Brazil. Environmental Technology, 43, 2252–2269. http://doi.org/10.1080/09593330.2021.1871660.
Rufí Salís, M.; Alturki, A.; Izquierdo, J.; Ramos, I.; Zougagh, M.; García Sánchez, A.; Renau Morata, B.; Parra, J.; Domínguez Perles, R.; Ferrer, A.; et al. (2020). Recirculating water and nutrients in urban agriculture: An opportunity towards environmental sustainability and water use efficiency? Journal of Cleaner Production, 261, 121213. http://doi.org/10.1016/j.jclepro.2020.121213.
Vitalii, K.; Artem, T. (2024). Strategic principles of reformatting the logistics chain of agricultural products into a system of closed cycles in the circular economy paradigm. Ukrainian Journal of Applied Economics and Technology, 9, 107–112. http://doi.org/https://orcid.org/0009-0005-1780-7286.
Rizieq, R.; Ekawati, E.; Reswari, R.A. (2024). Circular economy in the agriculture sector: A case study of West Kalimantan province. 1st Al Banjari Postgraduate International Conference: Multidisciplinary Perspective on Sustainable Development 2024, 21–30. http://doi.org/10.31602/piuk.v0i0.15424.
Ryals, R.; Panmei, L.; Selvan, T.; Guleria, V.; Ramesh, K.R.; Bhardwaj, D.R.; Thakur, C.L.; Kumar, D.; Sharma, P.; Umedsinh, R.D.; Kayalvizhi, D.; Deshmukh, H.K. (2021). Toward zero hunger through coupled ecological sanitation – agriculture systems. Frontiers in Sustainable Food Systems, 5, 1–18. http://doi.org/10.3389/fsufs.2021.716140.
Dsouza, A.; Price, G.W.; Dixon, M.; Graham, T. (2021). A conceptual framework for incorporation of composting in closed loop urban controlled environment agriculture. Sustainability, 13, 1–28. http://doi.org/10.3390/su13052471.
Wang, E.; Li, Z.; Wu, Y.; Zhang, G.; Zhao, J.; Liu, Q.; Chen, X.; Yang, Z.; Gao, H. (2020). Development of a closed loop irrigation system for sugarcane farms using the Internet of Things. Computers and Electronics in Agriculture, 172, 105376. http://doi.org/10.1016/j.compag.2020.105376.
Lal, R. (2023). Carbon farming by recarbonization of agroecosystems. Pedosphere, 33, 676–679. http://doi.org/10.1016/j.pedsph.2023.07.024.
Tahat, M.M.; Alananbeh, K.M.; Othman, Y.A.; Leskovar, D.I. (2020). Soil health and sustainable agriculture. Sustainability, 12, 1–26. http://doi.org/10.3390/su12124859.
Ahn, T.I.; Son, J.E. (2019). Theoretical and experimental analysis of nutrient variations in electrical conductivity based closed loop soilless culture systems by nutrient replenishment method. Agronomy, 9, 7–9. http://doi.org/10.3390/agronomy9100649.
Tamasiga, P.; Miri, T.; Onyeaka, H.; Hart, A. (2022). Food waste and circular economy: Challenges and opportunities. Sustainability, 14, 1–30. http://doi.org/10.3390/su14169896.
Toplicean, I.M.; Datcu, A.D. (2024). An overview on bioeconomy in agricultural sector, biomass production, recycling methods, and circular economy considerations. Agriculture, 14, 1–25. http://doi.org/10.3390/agriculture14071143.
Das, S.; Lee, S.; Kumar, P.; Kim, K.; Soo, S.; Sundar, S. (2019). Solid waste management: Scope and the challenge of sustainability. Journal of Cleaner Production, 228, 658–678. http://doi.org/10.1016/j.jclepro.2019.04.323.
Bernal, M.P. (2017). Grand challenges in waste management in agroecosystems. Frontiers in Sustainable Food Systems, 1, 1–4. http://doi.org/10.3389/fsufs.2017.00001.
Sahri, M.; Pramana, G.I.; Noak, P.A. (2023). Implementation of Simantri and Sipadu policies in green politics: Case study of combined farmer group 356 Sari Buana, Antapan village, Baturiti district, Bali. Journal of Transformational Global Studies, 10, 160–162.
Nababan, F.E.; Regina, D. (2021). The challenges of integrated farming system development towards sustainable agriculture in Indonesia. E3S Web of Conferences, 306, 1–9. http://doi.org/10.1051/e3sconf/202130605015.
Kamakaula, Y.; Palinggi, Y.; Pattiasina, T.A. (2024). Integration of traditional agricultural systems with the concept of sustainable agriculture: Opportunities and challenges. West Science Natural Technologies, 2, 180–184.
Pueppke, S.G.; Kennedy, D.E.; Ashraf, I.; Benke, K.; Skop, E.; Oppelt, N.; et al. (2018). Challenges for sustainable use of the fish resources from Lake Balkhash, a fragile lake in an arid ecosystem. Sustainability, 10, 1–15. http://doi.org/10.3390/su10041234.
Varma, N.; Wadatkar, H.; Salve, R.; Kumar, T.V. (2024). Advancing sustainable agriculture: A comprehensive review of organic farming practices and environmental impact. Journal of Experimental Agriculture International, 46, 695–703. http://doi.org/10.9734/jeai/2024/v46i72623.
Giri, D.; Pokhrel, S. (2022). Organic farming for sustainable agriculture: A review. Russian Journal of Agricultural Socio-Economic Sciences, 10, 23–32. http://doi.org/10.18551/rjoas.2022-10.03.
Herrera, S.I.O.; Kallas, Z.; Serebrennikov, D.; Thorne, F.; McCarthy, S.N. (2023). Towards circular farming: Factors affecting EU farmers’ decision to adopt emission reducing innovations. International Journal of Agricultural Sustainability, 21, 2270149. http://doi.org/10.1080/14735903.2023.2270149.
Chung, D.K.; Van Duy, L.; Thi, L.; Loan, T. (2024). Circular agriculture: A general review. Vietnam Journal of Agricultural Sciences, 7, 2173–2184. http://doi.org/10.31817/vjas.2024.7.2.07.
Keeffe, O.; Stein, S.; Curran, M.; Zikeli, S.; Siegmund Schultze, M.; Baumgart, L. (2025). How to square the circle? A conceptual framework synergising strategies for circular agriculture to tackle climate change and enhance overall on farm sustainability. Ambio, 54, 1334–1352. http://doi.org/10.1007/s13280-025-02154-4.
Ascui, F.; Farmery, A.K.; Gale, F. (2020). Comparing sustainability claims with assurance in organic agriculture standards. Australasian Journal of Environmental Management, 27, 22–41. http://doi.org/10.1080/14486563.2019.1682078.
Budiasa, W. (2024). Organic farming as an innovative farming system development model toward sustainable agriculture in Bali. AgEcon Search, 11, 1–26.
Kesumadewi, A.A.I.; Susila, I.W.; Gunadi, G.A.; Sarjana, D.G.R.; Diara, I.W.; Wirya, G.N.A.S. (2020). Identifikasi potensi dan pengembangan sistem pertanian organik menuju Bali Pulau Organik terutama para petani dan sebagian besar pelaku agribisnis. Jurnal Bali Membangun Bali, 1, 221–225.
Jouzi, Z.; Jouzi, Z.; Azadi, H.; Taheri, F.; Zarafshani, K.; Gebrehiwot, K.; Van Passel, S.; Lebailly, P. (2017). Organic farming and small scale farmers: Main opportunities and challenges. Ecological Economics, 132, 144–154. http://doi.org/10.1016/j.ecolecon.2016.10.016.
Mutiara, V.I.; Arai, S. (2017). The challenges in organic agricultural products market in Southeast Asia. Review of Agricultural Science, 5, 36–44. http://doi.org/10.7831/ras.5.36.
Srivastava, A.K.; Kumar, A. (2022). Exploring organic farming: Advantages, challenges, and future directions. Plant Science Archive, 7, 9–13. http://doi.org/10.51470/PSA.2022.7.3.09.
Gunasekaran, V.; Murugan, S. (2020). Challenges and opportunities of organic product market. Studies in Indian Place UGC Care Journal, 40, 2626. http://doi.org/10.12700/thto.1.01.2017.1.8.
Sudirjo, F.; Lestari, M.D.; Faisal, H.N.; Sajali, C.U. (2024). The effect of sustainable agricultural practices, product diversification, and digital marketing on the economic performance of organic vegetable farmers in Bali. West Science Agro, 2, 195–204. http://doi.org/10.58812/wsa.v2i04.1453.
Chiangnangam, S.; Manorom, P.; Chansanam, W. (2025). Integrating management and marketing strategies in organic farming: A topic modeling analysis of sustainable development and entrepreneurship. International Review of Management and Marketing, 15, 61–70. http://doi.org/10.32479/irmm.17559.
Layek, J.; Das, S.; Nandi, R.; Kumar, S.; Juyal, N.; Subba, R.; Chhetri, B.; Sah, R.; Meena, M.; Deka, M.; Shrestha, R.; Tripathi, R.; Tiwari, S.; Gautam, D.; Shankar, S. (2023). An integrated organic farming system: Innovations for farm diversification, sustainability, and livelihood improvement of hill farmers. Frontiers in Sustainable Food Systems, 7, 3–9. http://doi.org/10.3389/fsufs.2023.1151113.
Baidala, V.; Butenko, V.; Vakulenko, V.; Yastrebov, P.; Xiaowei, L. (2023). Assessing the level of organic farming development in the European countries. Environmental Economics, 15, 56–69. http://doi.org/10.21511/EE.15(1).2024.05.
Ziętara, W.; Mirkowska, Z. (2021). The Green Deal: Towards organic farming or greening of agriculture? Zagadnienia Ekonomiki Rolnej / Problems of Agricultural Economics, 368, 29–54. http://doi.org/10.30858/zer/135520.
Harkányi, A.; Ujj, A. (2024). Impact of nature conservation resources of agroecology: insights from Hungarian farmers and consumer perspectives. Resources, 13, 170. http://doi.org/10.3390/resources13120170.
Gruber, M. (2022). The integration of local actors in policy implementation: the case of organic farming in Costa Rica. Sustainability, 14, 1–23. http://doi.org/10.3390/su14127265.
Haldar, A.; Maiti, S.; Goswami, R.; Mandal, S. N.; Shee, A.; Goswami, B.; Mahato, D.; Ghorai, D.; Pal, K.; Khan, M. K.; Samanta, M. K.; Das, M. K.; Dey, M.; Barma, P.; Chatterjee, P.; Mukherjee, R. D.; Roy, R.; Das, S.; Ghosh, S.; Das, U.; Roy, K.; Das, A.; Das, P. (2024). Driving factors for developing integrated farming: multi criteria decision making analysis. Indian Journal of Agricultural Sciences, 94, 49–55. http://doi.org/10.56093/ijas.v94i3.148603.
Prajanti, S. D. W.; Soesilowati, E.; Lestari, E. P. (2025). Sustainability strategy of integrated organic farming based on circular economy in realizing sustainable agriculture and food system. Journal of Ilmiah Ilmu Terapan Universitas Jambi, 9, 527–545. http://doi.org/10.22437/jiituj.v9i2.39889.
Sharma, H. K.; Kaur, M. (2017). Utilization of waste from tropical fruits. John Wiley & Sons Ltd: Hoboken, USA. http://doi.org/10.1002/9781118432921.ch3.
Adil, A.; Syarief, R.; Widiatmaka; Najib, M. (2022). Stakeholder analysis and prioritization of sustainable organic farming management: a case study of Bogor, Indonesia. Sustainability, 14, 1–16. http://doi.org/10.3390/su142416706.
Milliet, E.; Plancherel, C.; Roulin, A.; Butera, F. (2024). The effect of collaboration on farmers’ pro environmental behaviors: a systematic review. Journal of Environmental Psychology, 93, 102223. http://doi.org/10.1016/j.jenvp.2023.102223.
Cao, W.; Tao, X. (2025). A study on the evolutionary game of the four party agricultural product supply chain based on collaborative governance and sustainability. Sustainability, 17, 1762. http://doi.org/10.3390/su17041762.
SUBMITTED: 30 October 2025
ACCEPTED: 30 November 2025
PUBLISHED:
3 December 2025
SUBMITTED to ACCEPTED: 31 days
DOI:
https://doi.org/10.53623/idwm.v5i2.872