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Agricultural land optimization to supports sustainable shallot production on fluvial and structural landforms

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Języki publikacji
EN
Abstrakty
EN
As shalot land decreases annually, it is crucial to take deliberate measures to boost production on current agricultural land. This study aimed to formulate a strategy for optimizing shallot agricultural land in two different landscapes in the tropics. A rapid scan approach was used to identify land characteristics, while linear regression analysis was used to identify land limiting factors on shallot productivity. Literature and DPSIR (Driving Forces, Pressures, States, Impacts, and Responses) were used to develop a land optimization strategy. Typically, the pedogeomorphology analysis showed that both landscapes studied had initial alkaline conditions. Specifically, the fluvial landscape experienced a drastic acidification range (pH 4.55-7.39) due to anthropogenic factors, while the structural landscape maintained its alkaline conditions (pH 6.58-7.74). The regression results showed that the anthropogenic modifications made soil pH and EC limiting factors for productivity (R² = 0.61 for pH; R² = 0.68 for EC). Optimal results were consistently at pH conditions approaching neutral, with EC approaching one dS/m. Finally, land and water management is the best response to land optimization, accompanied by policies favoring local farmers. These findings can be used in policy-making to manage shallot agricultural land in other tropical areas.
Twórcy
  • Doctoral Program in Environmental Science, Universitas Gadjah Mada, Indonesia
  • Doctoral Program in Environmental Science, Universitas Gadjah Mada, Indonesia
  • Departemen of Geography and Environmental, Universitas Gadjah Mada, Indonesia
autor
  • Departemen of Geography and Environmental, Universitas Gadjah Mada, Indonesia
autor
  • Departemen of Geography and Environmental, Universitas Gadjah Mada, Indonesia
  • Department of Soil, Universitas Gadjah Mada, Jl. Flora, Bulaksumur, Yogyakarta, 55281, Indonesia
  • Research Center of Land Resources Development, Universitas Gadjah Mada, Jl. Kuningan, Karang Malang, Yogyakarta, 55281, Indonesia
  • Master of Disaster Management, Graduate School, Universitas Gadjah Mada, Indonesia
Bibliografia
  • 1. Adiyoga, W. (2023). Assessing True Shallot Seed (TSS) Performance and Farmers’ Perceptions of Its Innovation Attributes. IOP Conference Series: Earth and Environmental Science, 1230(1), 012191. https://doi.org/10.1088/1755-1315/1230/1/012191
  • 2. Akhter, F., D, A., Begum, M., & Alam, N. (2017). Accumulation of Diazinon in Indian Spinach Under Different Doses of Rice Hull. Dhaka University Journal of Biological Sciences, 26(2), 125-131. https://doi.org/10.3329/dujbs.v26i2.46393
  • 3. Aldila, H. F., Fariyanti, A & N. Tinaprila. (2015). Competitiveness of Red Onions in Production Center Areas in Indonesia. Jurnal Manajemen & Agribisnis. 14(1): 43-53. https://doi.org/10.20961/ carakatani.v18i2.20380 (In Bahasa).
  • 4. Asadi, H., Raeisvandi, A., Rabiei, B., & Ghadiri, H. (2011). Effect of Landuse and Topography on Soil Properties and Agronomic Productivity on Calcareous Soils of a Semiarid Region, Iran. Land Degradation & Amp; Development, 23(5), 496-504. https://doi.org/10.1002/ldr.1081
  • 5. Barančoková, M., Krnáčová, Z., & Chasníková, S. (2017). Quantification of The Natural Factors’ Impact Effectiveness on Environmental Hazards – Slope Movements in The Flysch Areas of The Kysuce Region. Ekológia (Bratislava), 36(3), 197-213. https://doi.org/10.1515/eko-2017-0017
  • 6. Bawarta, I. G. A. A., Yasa, I. M. W., & Arisena, G. M. K. (2022). Risk Analysis of Red Onion Farming Production. Benchmark, 3, 33-42. https://doi.org/10.46821/benchmark.v3i1.264 (In Bahasa).
  • 7. Chai, H., Rao, S. R., Wang, R., Liu, J., Huang, Q., & Mou, X. (2015). The Effect of The Geomorphologic Type as Surrogate to The Time Factor on Digital Soil Mapping. Open Journal of Soil Science, 05(06), 123-134. https://doi.org/10.4236/ojss.2015.56012
  • 8. Chen, Y., Kipkulei, H. K., Xie, Z., & Sieber, S. (2024). Assessment of agricultural sustainability performance in Dali Prefecture, China using the DPSIR Model. International Journal of Agricultural Sustainability, 22(1), 1–23. https://doi.org/10.1 080/14735903.2024.2401201
  • 9. EEA, 2000. Down to earth: soil degradation and sustainable development in Europe. Environmental Issues Series, No. 16. European Environment Agency, Copenhagen.
  • 10. Elwan, A. A. (2023). Impacts Of Geomorphic Units on Soil Properties in Wadi El-Ashara, Suez Canal West, Egypt. Alexandria Science Exchange Journal, 44(3), 387-408. https://doi.org/10.21608/ asejaiqjsae.2023.312322
  • 11. Fitriani, M. L., Wiyono, S., & Sinaga, M. S. (2020). Potential of Arbuscular Mycorrhizal Colonization and Endophytic Fungi for Controlling Fusarium Wilt in Shallots. Jurnal Fitopatologi Indonesia, 15(6), 228-238. https://doi.org/10.14692/jfi.15.6.228–238 (In Bahasa).
  • 12. Firmansyah, A & A. Bhermana. (2019). The Growth, Production, and Quality of Shallot at Inland Quartz Sand (Quarzipsamments) in the off season. Agricultural Science 4, 110-116. https://doi.org/10.22146/ ipas.39676
  • 13. Gao, J., Kennedy, D. M., & Konlechner, T. M. (2020). Coastal Dune Mobility Over The Past Century: A Global Review. Progress in Physical Geography: Earth and Environment, 44(6), 814-836. https://doi.org/10.1177/0309133320919612
  • 14. Girsang, S. S., Manurung, E. D., & Girsang, M. A. (2021). Evaluation of Land Suitability and Factors Influencing The Development of Shallots (Allium cepa L.) in North Padang Lawas, North Sumatera. IOP Conference Series: Earth and Environmental Science, 648(1), 012013. ion S S Girsang et al 2021 IOP Conf. Ser.: Earth Environ. Sci. 648 012013. https://doi.org/10.1088/1755-1315/648/1/012013
  • 15. Gobin, A., Jones, R., Kirkby, M., Campling, P., Govers, G., Kosmas, C., & Gentile, A. R. (2004). Indicators for pan-European assessment and monitoring of soil erosion by water. Environmental Science and Policy, 7(1), 25–38. https://doi.org/10.1016/j. envsci.2003.09.004
  • 16. Hadiwiyono, H., Sari, K., & Poromarto, S. H. (2020). Yields Losses Caused by Basal Plate Rot (Fusarium Oxysporum F.Sp. Cepae) In Some Shallot Varieties. Caraka Tani: Journal of Sustainable Agriculture, 35(2), 250. https://doi.org/10.20961/ carakatani.v35i2.26916
  • 17. Hawayanti, E., Ibrahim, J. T., Sutanto, A., & Muchsiri, M. (2024). Impact of Suboptimal Land on Shallot Plant Growth: Mini review. Earth and Agriculture Management, 1(1), 17-28. https://doi.org/10.31102/eam.1.1.17-28
  • 18. Hathout, A. S., Saleh, E. M., Hussain, O., Amer, M., Mossa, A. H., & Yassen, A.A. (2021). Determination of Pesticide Residues in Agricultural Soil Samples Collected from Sinai and Ismailia Governorates, Egypt. Egyptian Journal of Chemistry, 65(3), 415-425. https://doi.org/10.21608/ ejchem.2021.93174.4404
  • 19. Kabała, C. (2022). Origin, Transformation and Classification of Alluvial Soils (Mady) In Poland – Soils of The Year 2022. Soil Science Annual, 73(3), 1-13. https://doi.org/10.37501/soilsa/156043
  • 20. Kafoor, S. (2017). Iron Oxide Contents in Relation to The Colour of Asnawa Soils. UKH Journal of Science and Engineering, 1(1), 89-94. https://doi.org/10.25079/ukhjse.v1n1y2017.pp89-94
  • 21. Luo, W., Nelson, P. N., Li, M., Cai, J., Zhang, Y. Y., Zhang, Y. G., … & Jiang, Y. (2015). Contrasting pH Buffering Patterns in Neutral-Alkaline Soils along a 3600 km Transect in Northern China. Biogeosciences, 12(23), 7047-7056. https://doi.org/10.5194/ bg-12-7047-2015
  • 22. Malawani, M. N., Mardiatno, D., Mutaqin, B. W., Suhendro, I., Setiawan, N., Muharram, F. W., & Rhosadi, I. (2024). Dynamics of The Aeolian Landform at The Coastal Geosite Of Parangtritis Sand Dune Area, Yogyakarta. Journal of Degraded and Mining Lands Management, 11(3), 5839-5847. https://doi.org/10.15243/jdmlm.2024.113.5839
  • 23. Mamondol, M. R. and Meringgi, A. R. A. B. (2022). The Effectiveness of Oil Palm Empty Bunch Compost and Goat Manure on Shallots Cultivated on Red Yellow Podzolic Soil. PLANTA TROPIKA: Jurnal Agrosains (Journal of Agro Science), 10(1), 13-26. https://doi.org/10.18196/pt.v10i1.1062
  • 24. Maulana, E., Sartohadi, J., & Setiawan, M. A. (2025). Landscape design for gully erosion control on the upper slopes of Mount Sumbing, Central Java, Indonesia. Journal of Degraded and Mining Lands Management 12(2), 7037–7047. https://doi.org/10.15243/jdmlm.2025.122.7037
  • 25. Maulana, E., Sartohadi, J., & Setiawan, M. A. (2023). Soil conservation at the gully plot scale in the tropical volcanic landscape of Sumbing. AIMS Environmental Science 10(December), 832–846. https://doi.org/10.3934/environsci.2023045
  • 26. Maulana, E., Wulan, T. R., Wahyunungsih, D. S., Ibrahim, F., Putra, A. S., & Putra, M. D. (2017). Geoecology identification using landsat 8 for spatial planning in north Sulawesi Coastal. Indonesian Journal of Geography, 49(2), 212–217. https://doi.org/10.22146/ijg.13189
  • 27. Maznah, Z., Muhamad, H., Sahid, I., & Seman, I. A. (2016). Adsorption-Desorption of Hexaconazole in Soils with Respect to Soil Properties, Temperature, and pH. Turkish Journal of Agriculture - Food Science and Technology, 4(6), 493. https://doi.org/10.24925/turjaf.v4i6.493-497.669
  • 28. Ministry of Agriculture. (2022). Laporan Kinerja Kementrian Pertanian. Kementrian Pertanian. Jakarta. (In Bahasa).
  • 29. Motior, M. R., Abdou, A. S., Fareed, H. A. D. F. G., & M, S. A. (2011). Growth and Nutrient Uptake of Maize Plants as Affected by Elemental Sulfur and Nitrogen Fertilizer in Sandy Calcareous Soil. African Journal of Biotechnology, 10(60), 12882- 12889. https://doi.org/10.5897/AJB11.2075
  • 30. Nayyef, H. R. (2022). Effect of Continuous Cultivation and Soil Texture on Some Soil Properties. GSC Advanced Research and Reviews, 13(1), 077-084. https://doi.org/10.30574/gscarr.2022.13.1.0271
  • 31. Nunes, M. R., Lima, R. P. d., Tormena, C. A., & Karlen, D. L. (2021). Corn Seedling Root Growth Response to Soil Physical Quality. Agronomy Journal, 113(4), 3135-3146. https://doi.org/10.1002/ agj2.20705
  • 32. Nurcholis, M., Isdiyanto, R., Krismawan, H., & Satria, F. A. (2023). Land Suitability Study for Sweet Sorghum (Sorghum Bicolor (L.) Moench) Farming in Pleret Yogyakarta. IOP Conference Series: Earth and Environmental Science, 1180(1), 012001. https://doi.org/10.1088/1755-1315/1180/1/012001
  • 33. Notebaert, B., Verstraeten, G., Vandenberghe, D., Marinova, E., Poesen, J., & Govers, G. (2011). Changing Hillslope and Fluvial Holocene Sediment Dynamics in a Belgian Loess Catchment. Journal of Quaternary Science, 26(1), 44-58. https://doi.org/10.1002/jqs.1425
  • 34. Olivaris, B.O., J.Calero., J.C.Rey., D.Lobo., B.B.Landa., J.A.Gómez. (2022). Correlation of Banana Productivity Levels and Soil Morphological Properties using Regularized Optimal Scaling Regression. Catena 208, 1-11. https://doi.org/10.1016/j.catena.2021.105718
  • 35. Putranti, K. D., Pulungan, N. A. H. J., & Nurudin, M. (2023). Crop Pattern Suitability Based on Water Availability in Dry-Land Agriculture Nawungan, Selopamioro, Imogiri, Bantul. BIO Web of Conferences, 80. https://doi.org/10.1051/ bioconf/20238003005
  • 36. Pramesti, R. A. and Harini, R. (2023). Dynamics of Landuse Change and The Relationship with Food Sufficiency in Pacitan Regency. IOP Conference Series: Earth and Environmental Science, 1233(1), 012044. https://doi.org/10.1088/1755-1315/1233/1/012044
  • 37. Pramono, H. (2007). Physiography of Parangtritis and its Surroundings. Geomedia. 5(1): 65-78. https://doi.org/10.1088/1755-1315/256/1/01203 (In Bahasa)
  • 38. Rahayu, R., Syamsiyah, J., & Dewi, L. (2021). Soil Characteristic and Shallot Growth with Gypsum and Zeolite Amendments in Irrigated Saline Alfisol and Inceptisol. Journal of Degraded and Mining Lands Management, 8(3), 2801-2808. https://doi.org/10.15243/jdmlm.2021.083.2801
  • 39. Riyanto, I. A., Cahyadi, A., Sismoyo, D., Ulfa, A., Fathoni, W. A., & Wicaksono, G. N. (2022). Soil Geomorphology in the Geological Transition of the Wonosari and Nglanggran Formations in Purwosari District, Gunungkidul, Yogyakarta. Jurnal Geografi, Edukasi dan Lingkungan (JGEL), 6(2), 74-86. https://doi.org/10.22236/jgel.v6i2.9072 (In Bahasa).
  • 40. Sari, P. G. N., Pustika, A. B., Solichah, C., Wicaksono, D., Widyayanti, S., Sudarmaji, … & Yolanda, K. (2023). The Effect of Antagonistic Microbial and Seed Bulb-size on Fusarium Wilt and Yield of Shallot. E3S Web of Conferences, 467, 01006. https://doi.org/10.1051/e3sconf/202346701006
  • 41. Saputro, G.B., Marschiavelli, M.I.C., Ibrahim, F., Maulana, E. 2017. Identification of typology related to the coastal line changes in Bantul. IOP Conf. Ser.: Earth Environ. Sci. 54 (1) (2017), 012099, https://doi.org/10.1088/1755-1315/54/1/012099.
  • 42. Sartohadi, J. 2011. Soil geomorphological approach for natural hazard mapping: a case study at Yogyakarta Province. In: M. Anda, R. Shofiyati, K. Nugroho, Y. Sulaeman, M. H. Suwanda (Eds.). Proceeding Of International Workshop on Globalsoilmap.net Oceania Node. Bogor. 143-156.
  • 43. Sembiring, A., Muharam, A., Rosliani, R., & Prabawati, S. (2021). Governments and Farmers’ Preference toward True Shallot Seed Institution Model in Indonesia. E3S Web of Conferences, 232, 02028. https://doi.org/10.1051/e3sconf/202123202028
  • 44. Setiawan, R., Insani, A. A., Indrastuti, A. N., Purwanto, D., Rohmah, H. N., Suci, R. P., … & Putri, R. F. (2022). Dynamics of Agricultural Land and Sustainability of The Agricultural Sector In The Province Of Bali 2015-2020. Proceedings of the 2nd International Conference on Smart and Innovative Agriculture (ICoSIA 2021). https://doi.org/10.2991/ absr.k.220305.008
  • 45. Sutardi., Pramono, J., Widodo, S., Martini, T., Alifia, A. D., Apriyana, Y., … & Hanafi, H. (2022). Double Production of Shallot (allium cepa l var. aggregatum) Based on Climate, Water, and Soil Management in Sandy Land. International Journal on Advanced Science, Engineering and Information Technology, 12(5), 1756-1767. https://doi.org/10.18517/ijaseit.12.5.14698
  • 46. Tomar, D. and and Bhat, M.A. (2023). Morphology, Genetic Relationships and Classification of Soils of Selected Micro-Watersheds in North-West India. Indian Journal of Ecology 50(5):1251-1264. DOI:10.55362/IJE/2023/4044
  • 47. Turk, J. K. and Young, R. A. (2020). Field Conditions and The Accuracy of Visually Determined Munsell Soil Color. Soil Science Society of America Journal, 84(1), 163-169. https://doi.org/10.1002/saj2.20023
  • 48. Wardhani, P. I., Musiyam, M., Wibowo, Y. A., Rahmadana, A. D. W., Utami, S., Maulana, E. (2024). Evaluation of disaster safe education unit programme implementation in Mt. Merapi using the pressure state response approach. Jàmbá: Journal of Disaster Risk Studies, 16(1), 1–7.
  • 49. Warlina, L. and Pradana, S. B. R. (2021). Sustainable Agricultural Land Management in Garut Regency, West Java Province, Indonesia. Journal of Engineering Research. https://doi.org/10.36909/jer. ASSEEE.16089
  • 50. Widodo, K.H & D. Rembulan. (2010). Basic Supply Chain Bawang Merah (Allium ascalonicum L) di Kabupaten Bantul Daerah Istimewa Yogyakarta dari Perspektif Sistem Dinamis. INASEA. 11(2): 87-95.
  • 51. Yeshiwas, Y., Z. Temsegen., M. Wubie., T. Wagnew. (2023). Effects of Varieties and Different Environment on Growth and Yield Performance of Shallot (Allium cepa var. agrregatum). International Journal of Agronomy 6, 1-6. https://doi.org/10.1155/2023/3276547
  • 52. Yu, X., Fu, Y., & Lu, S. (2016). Characterization of The Pore Structure and Cementing Substances of Soil Aggregates by A Combination of Synchrotron Radiation X‐Ray MicroComputed Tomography and Scanning Electron Microscopy. European Journal of Soil Science, 68(1), 66-79. https://doi.org/10.1111/ejss.12399
Typ dokumentu
Bibliografia
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