Potential Land Reserves for Agriculture in Indonesia: Suitability and Legal Aspect Supporting Food Sufficiency
Abstract
:1. Introduction
2. Materials and Methods
2.1. The Scope and Operational Definition of Land Reserves
2.2. Data and Location
2.3. Methods
2.3.1. Spatial Analysis of Land Reserves at the National Level
2.3.2. Determining Land Reserves at the Regional Level
2.3.3. Prediction of Land Needs by 2045
3. Results and Discussion
3.1. The Suitability of Abandoned Land at the National Level
3.2. Land Suitability Based on the Legal Aspect at the National Level
3.3. Assessing the Land Suitability and Land Reserves of Abandoned Land at the District Level
3.4. The Need and Availability of Land to Meet Food Demand (Rice) by 2045
3.5. Conclusions and Policy Implications
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Smith, P.; Gregory, P.J.; van Vuuren, D.; Obersteiner, M.; Havlík, P.; Rounsevell, M.; Woods, J.; Stehfest, E.; Bellarby, J. Competition for land. Philos. Trans. R. Soc. B Biol. Sci. 2010, 365, 2941–2957. [Google Scholar] [CrossRef]
- Wu, W.; Yu, Q.; You, L.; Chen, K.; Tang, H.; Liu, J. Global cropping intensity gaps: Increasing food production without cropland expansion. Land Use Policy 2018, 76, 515–525. [Google Scholar] [CrossRef]
- Roser, M.; Ritchie, H.; Ortiz-Ospina, E. World Population Growth. Available online: https://ourworldindata.org/world-population-growth (accessed on 9 September 2022).
- Badan Pusat Statistik. Statistik Indonesia 2022; Badan Pusat Statistik: Jakarta, Indonesia, 2022; Volume 1101001, p. 780. [Google Scholar]
- Badan Pusat Statistik. Proyeksi Penduduk Indonesia 2015–2045, Hasil Supas 2015; Badan Pusat Statistik: Jakarta, Indonesia, 2018. [Google Scholar]
- Irawan, B. Konversi lahan sawah: Potensi dampak, pola pemanfaatannya dan faktor determinan. Forum Penelit. Agro Ekon. 2005, 23, 1–18. [Google Scholar] [CrossRef]
- Lawton, A.; Morrison, N. The loss of peri-urban agricultural land and the state-local tensions in managing its demise: The case of Greater Western Sydney, Australia. Land Use Policy 2022, 120, 106265. [Google Scholar] [CrossRef]
- Mulyani, A.; Nursyamsi, D.; Harnowo, D. Potensi dan tantangan pemanfaatan lahan suboptimal untuk tanaman aneka kacang dan umbi. Pros. Semin. Has. Penelit. Tanam. Aneka Kacang Dan Umbi 2016, 25, 16–30. [Google Scholar]
- Sutomo, S. Analisa data konversi dan prediksi kebutuhan lahan; Direktorat Perluasan Areal, Ditjen Bina Produksi Tanaman Pangan, Departemen Pertanian: Jakarta, Indonesia, 2004. [Google Scholar]
- Wang, Y.; van Vliet, J.; Debonne, N.; Pu, L.; Verburg, P.H. Settlement changes after peak population: Land system projections for China until 2050. Landsc. Urban Plan. 2021, 209, 104045. [Google Scholar] [CrossRef]
- Hidayat, Y.; Ismail, A.; Ekayani, M. Dampak konversi lahan pertanian terhadap ekonomi rumah tangga petani padi (Studi kasus Kecamatan Kertajati Kabupaten Majalengka Jawa Barat). J. Pengkaj. Pengemb. Teknol. Pertan. 2017, 20, 171–182. [Google Scholar] [CrossRef]
- Rijanta, R. Sustainability of the Sawah Surjan Agricultural Systems in Depok Village, Panjatan Subdistrict, Kulonprogo Regency, Yogyakarta Special Province. Forum Geogr. 2018, 32, 109–118. [Google Scholar] [CrossRef]
- Greene, R.P. The farmland conversion process in a polynucleated metropolis. Landsc. Urban Plan. 1997, 36, 291–300. [Google Scholar] [CrossRef]
- Fiqriyati, A.R.; Panuju, D.R.; Mulya, S.P. The dynamics of rice-field conversion in the surroundings Cipali toll-roads of Subang Regency. In Proceedings of the 2nd International Seminar on Natural Resources and Environmental Management (2nd ISeNREM 2021), Bogor, Indonesia, 4–5 August 2021. [Google Scholar]
- Song, J.; Ye, J.; Zhu, E.; Deng, J.; Wang, K. Analyzing the Impact of Highways Associated with Farmland Loss under Rapid Urbanization. ISPRS Int. J. Geo-Inf. 2016, 5, 94. [Google Scholar] [CrossRef]
- Prayitno, G.; Dinanti, D.; Hidayana, I.I.; Nugraha, A.T. Place attachment and agricultural land conversion for sustainable agriculture in Indonesia. Heliyon 2021, 7, e07546. [Google Scholar] [CrossRef]
- Pribadi, D.O.; Pauleit, S. The dynamics of peri-urban agriculture during rapid urbanization of Jabodetabek Metropolitan Area. Land Use Policy 2015, 48, 13–24. [Google Scholar] [CrossRef]
- Fu, S.; Xu, X.; Zhang, J. Land conversion across cities in China. Reg. Sci. Urban Econ. 2021, 87, 103643. [Google Scholar] [CrossRef]
- Kuang, W.; Liu, J.; Dong, J.; Chi, W.; Zhang, C. The rapid and massive urban and industrial land expansions in China between 1990 and 2010: A CLUD-based analysis of their trajectories, patterns, and drivers. Landsc. Urban Plan. 2016, 145, 21–33. [Google Scholar] [CrossRef]
- Li, X.; Zhang, L.; Liang, C. A GIS-based buffer gradient analysis on spatiotemporal dynamics of urban expansion in Shanghai and its major satellite cities. Procedia Environ. Sci. 2010, 2, 1139–1156. [Google Scholar] [CrossRef]
- Yu, M.; Chen, Z.; Long, Y.; Mansury, Y. Urbanization, land conversion, and arable land in Chinese cities: The ripple effects of high-speed rail. Appl. Geogr. 2022, 146, 102756. [Google Scholar] [CrossRef]
- Li, S.; Nadolnyak, D.; Hartarska, V. Agricultural land conversion: Impacts of economic and natural risk factors in a coastal area. Land Use Policy 2019, 80, 380–390. [Google Scholar] [CrossRef]
- Santoso, P.B.K.; Widiatmaka, W.; Sabiham, S.; Machfud, M.; Rusastra, I.W. Analisis Pola Konversi Lahan Sawah Dan Struktur Hubungan Penyebab Dan Pencegahannya (Studi Kasus Kabupaten Subang, Provinsi Jawa Barat). J. Pengelolaan Sumberd. Alam Dan Lingkung. 2017, 7, 184–194. [Google Scholar] [CrossRef]
- Firman, T. Rural to urban land conversion in Indonesia during boom-and-bust periods. Land Use Policy 2000, 17, 13–20. [Google Scholar] [CrossRef]
- Panuju, D.R.; Mizuno, K.; Trisasongko, B.H. The dynamics of rice production in Indonesia 1961–2009. J. Saudi Soc. Agric. Sci. 2013, 12, 27–37. [Google Scholar] [CrossRef]
- Mori, H. Land Conversion at the Urban Fringe: A Comparative Study of Japan, Britain and the Netherlands. Urban Stud. 1998, 35, 1541–1558. [Google Scholar] [CrossRef]
- Pham, V.C.; Pham, T.T.H.; Tong, T.H.A.; Nguyen, T.T.H.; Pham, N.H. The conversion of agricultural land in the peri-urban areas of Hanoi (Vietnam): Patterns in space and time. J. Land Use Sci. 2015, 10, 224–242. [Google Scholar] [CrossRef]
- Sklenicka, P. Classification of farmland ownership fragmentation as a cause of land degradation: A review on typology, consequences, and remedies. Land Use Policy 2016, 57, 694–701. [Google Scholar] [CrossRef]
- Nursyamsi, D. Inovasi Pemupukan Berbasis Keseimbangan Hara Terintegrasi Untuk Mendukung Swasembada Pangan Nasional; IAARD Press. Badan Penelitian dan Pengembangan Pertanian: Jakarta, Indonesia, 2017. [Google Scholar]
- Husni, M.; Sufardi, S.; Khalil, M. Evaluasi Status Kesuburan Pada Beberapa Jenis Tanah Di Lahan Kering Kabupaten Pidie Provinsi Aceh. J. Ilm. Mhs. Pertanian. 2016, 1, 147–154. [Google Scholar] [CrossRef]
- Subagyo, H.; Suharta, N.; Siswanto, A.B. Tanah tanah Pertanian di Indonesia. In Sumberdaya Lahan Indonesia dan Pengelolaannya; Adimihardja, A., Amien, I., Agus, F., Djaenudin, D., Eds.; Pusat Penelitian dan Pengembangan Tanah dan Agroklimat: Bogor, Indonesia, 2000. [Google Scholar]
- Gomes, E.; Banos, A.; Abrantes, P.; Rocha, J.; Kristensen, S.B.P.; Busck, A. Agricultural land fragmentation analysis in a peri-urban context: From the past into the future. Ecol. Indic. 2019, 97, 380–388. [Google Scholar] [CrossRef]
- Susilowati, S.H.; Maulana, M. Luas lahan usahatani dan kesejahteraan petani: Eksistensi petani gurem dan urgensi kebijakan reforma agraria. J. Anal. Kebijak. Pertan. 2012, 10, 17–30. [Google Scholar] [CrossRef]
- Wang, J.; Cao, Y.; Fang, X.; Li, G.; Cao, Y. Does land tenure fragmentation aggravate farmland abandonment? Evidence from big survey data in rural China. J. Rural Stud. 2022, 91, 126–135. [Google Scholar] [CrossRef]
- Li, M. The effect of land use regulations on farmland protection and non-agricultural land conversions in China. Aust. J. Agric. Resour. Econ. 2019, 63, 643–667. [Google Scholar] [CrossRef]
- Oliveira, E.; Leuthard, J.; Tobias, S. Spatial planning instruments for cropland protection in Western European countries. Land Use Policy 2019, 87, 104031. [Google Scholar] [CrossRef]
- Kraemer, R.; Prishchepov, A.V.; Müller, D.; Kuemmerle, T.; Radeloff, V.C.; Dara, A.; Terekhov, A.; Frühauf, M. Long-term agricultural land-cover change and potential for cropland expansion in the former Virgin Lands area of Kazakhstan. Environ. Res. Lett. 2015, 10, 54012. [Google Scholar] [CrossRef]
- Potapov, P.; Turubanova, S.; Hansen, M.C.; Tyukavina, A.; Zalles, V.; Khan, A.; Song, X.P.; Pickens, A.; Shen, Q.; Cortez, J. Global maps of cropland extent and change show accelerated cropland expansion in the twenty-first century. Nat. Food 2022, 3, 19–28. [Google Scholar] [CrossRef]
- Delzeit, R.; Zabel, F.; Meyer, C.; Václavík, T. Addressing future trade-offs between biodiversity and cropland expansion to improve food security. Reg. Environ. Change 2017, 17, 1429–1441. [Google Scholar] [CrossRef]
- Smith, P. Delivering food security without increasing pressure on land. Glob. Food Secur. 2013, 2, 18–23. [Google Scholar] [CrossRef]
- Androkovich, R.A. British Columbia’s agricultural land reserve: Economic, legal and political issues. Land Use Policy 2013, 30, 365–372. [Google Scholar] [CrossRef]
- Oduro-Appiah, J.; Agyemang-Duah, W. Identifying spatially-explicit land use factors associated with forest patch sizes in a forest reserve in Ghana. Land Use Policy 2021, 101, 105135. [Google Scholar] [CrossRef]
- Lambin, E.F.; Gibbs, H.K.; Ferreira, L.; Grau, R.; Mayaux, P.; Meyfroidt, P.; Morton, D.C.; Rudel, T.K.; Gasparri, I.; Munger, J. Estimating the world’s potentially available cropland using a bottom-up approach. Glob. Environ. Change 2013, 23, 892–901. [Google Scholar] [CrossRef]
- Mulyani, A.; Mulyanto, B.; Barus, B.; Panuju, D.R.; Husnain. Geospatial Analysis of Abandoned Lands Based on Agroecosystems: The Distribution and Land Suitability for Agricultural Land Development in Indonesia. Land 2022, 11, 2071. [Google Scholar] [CrossRef]
- Müller, D.; Leitão, P.J.; Sikor, T. Comparing the determinants of cropland abandonment in Albania and Romania using boosted regression trees. Agric. Syst. 2013, 117, 66–77. [Google Scholar] [CrossRef]
- Kolecka, N.; Kozak, J.; Kaim, D.; Dobosz, M.; Ostafin, K.; Ostapowicz, K.; Wężyk, P.; Price, B. Understanding farmland abandonment in the Polish Carpathians. Appl. Geogr. 2017, 88, 62–72. [Google Scholar] [CrossRef]
- Grădinaru, S.R.; Kienast, F.; Psomas, A. Using multi-seasonal Landsat imagery for rapid identification of abandoned land in areas affected by urban sprawl. Ecol. Indic. 2019, 96, 79–86. [Google Scholar] [CrossRef]
- Balai Besar Sumberdaya Lahan Pertanian. Atlas Peta Tanah Skala 1:50.000 per Kabupaten/Kota. [Peta]; Balai Besar Litbang Sumberdaya Lahan Pertanian: Bogor, Indonesia, 2016. [Google Scholar]
- Balai Besar Sumberdaya Lahan Pertanian. Atlas Peta Tanah Semidetail Skala 1:50.000 per Kabupaten/Kota. [Peta]; Balai Besar Litbang Sumberdaya Lahan Pertanian: Bogor, Indonesia, 2017. [Google Scholar]
- Balai Besar Sumberdaya Lahan Pertanian. Atlas Peta Tanah Semidetail Skala 1:50.000 per Kabupaten/Kota. [Peta]; Balai Besar Litbang Sumberdaya Lahan Pertanian: Bogor, Indonesia, 2018. [Google Scholar]
- Ritung, S.; Suryani, E.; Subardja, D.; Sukarman; Nugroho, K.; Suparto; Hikmatullah; Mulyani, A.; Tefakresnanto, C.; Sulaeman, Y.; et al. Sumberdaya Lahan Pertanian Indonesia: Luas, Penyebaran dan Potensi Ketersediaan; Badan Penelitian dan Pengembangan: Jakarta, Indonesia, 2015; p. 96. [Google Scholar]
- Visser, O.; Mamonova, N.; Spoor, M. Oligarchs, megafarms and land reserves: Understanding land grabbing in Russia. In The New Enclosures: Critical Perspectives on Corporate Land Deals; White, B., Borras, S., Jr., Hall, R., Scoones, I., Wolford, W., Eds.; Routledge: London, UK, 2013; p. 512. [Google Scholar]
- Mulyani, A.; Sukarman; Hikmat, M.; Puspitahati, D.; Nurwinda. Atlas Peta Sebaran Kakao di Sulawesi. [Peta]; Laporan Kerjasama antara Ditjen Perkebunan dan Balai Besar Sumberdaya Lahan Pertanian: Jakarta, Indonesia, 2020. [Google Scholar]
- Mulyani, A.; Sukarman; Hikmat, M.; Puspitahati, D.; Nurwinda. Atlas Peta Sebaran Potensi Kelapa di Sulawesi. [Peta]; Laporan Kerjasama antara Ditjen Perkebunan dan Balai Besar Sumberdaya Lahan Pertanian: Jakarta, Indonesia, 2020. [Google Scholar]
- Ritung, S.; Suryani, E.; Yatno, E.; Hikmatullah; Nugroho, K.; Sukarman; Subandiono, R.E.; Tafakresnanto, C.; Suratman; Hidayat, H.; et al. Peta Lahan Gambut Indonesia Skala 1:50.000. [Peta]; Balai Besar Litbang Sumberdaya Lahan Pertanian: Bogor, Indonesia, 2019. [Google Scholar]
- Ritung, S.; Suryani, E.; Yatno, E.; Subandiono, R.E. Laporan Akhir Pemutakhiran Peta Sumberdaya Lahan Rawa; Balai Besar Penelitian dan Pengembangan Lahan Pertanian: Bogor, Indonesia, 2020. [Google Scholar]
- Ramamurthy, V.; Chattaraj, S.; Singh, S.K.; Yadav, R.P. Identification of potential areas for crops. Curr. Sci. 2018, 115, 955–961. [Google Scholar] [CrossRef]
- Bachri, S.; Sulaeman, Y.; Sugrawijaya, R.; Hidayat, H.; Mulyani, A. Petunjuk Pengoperasian Sistem Penilaian Kesesuaian Lahan (Spkl) Versi 2.0; Balai Besar Litbang Sumberdaya Lahan Pertanian: Bogor, Indonesia, 2016; p. 42. [Google Scholar]
- Reddy, N.N.; Das, B.S. Digital soil mapping of key secondary soil properties using pedotransfer functions and Indian legacy soil data. Geoderma 2023, 429, 116265. [Google Scholar] [CrossRef]
- Aber, J.S.; Marzolff, I.; Ries, J.B.; Aber, S.E.W. (Eds.) Chapter 1—Introduction to Small-Format Aerial Photography. In Small-Format Aerial Photography and UAS Imagery, 2nd ed.; Academic Press: Cambridge, MA, USA, 2019; pp. 1–10. [Google Scholar]
- Mulyani, A.; Puspitahati, D.; Nurjannah, S.S.; Mohlas; Taufik, M. Sebaran Luas Baku Sawah Berdasarkan Jenis Sawah; Balai Besar Litbang Sumberdaya Lahan Pertanian: Bogor, Indonesia, 2021. [Google Scholar]
- Badan Pusat Statistik. Statistik Indonesia 2020; Badan Pusat Statistik: Jakarta, Indonesia, 2020; Volume 1101001, p. 758. [Google Scholar]
- Badan Pertanahan Nasional. Peta Penggunaan Lahan Tahun 1999 Skala 1:250000. [Peta]; Badan Pertanahan Nasional: Jakarta, Indonesia, 1999. [Google Scholar]
- Badan Pertanahan Nasional. Peta Penggunaan Lahan Tahun 2012 Skala 1:250000. [Peta]; Badan Pertanahan Nasional: Jakarta, Indonesia, 2012. [Google Scholar]
- KLHK. Peta Spasial Tutupan Lahan Skala 1:250000. [Peta]; Kementerian Lingkungan Hidup dan Kehutanan: Jakarta, Indonesia, 2019. [Google Scholar]
- Pusat Penelitian dan Pengembangan Tanah dan Agroklimat. Atlas Arahan Tata Ruang Pertanian Indonesia Skala 1:1.000.000. [Peta]; Pusat Penelitian dan Pengembangan Tanah dan Agroklimat: Bogor, Indonesia, 2001. [Google Scholar]
- Balai Besar Sumberdaya Lahan Pertanian. Atlas Peta Tanah Skala 1:250000 per Provinsi. [Peta]; Balai Besar Lirbang Sumberdaya Lahan Pertanian: Bogor, Indonesia, 2014. [Google Scholar]
- KLHK. Peta Status Kawasan Hutan Tahun 2019. [Peta]; Kementerian Lingkungan Hidup dan Kehutanan: Jakarta, Indonesia, 2019. [Google Scholar]
- Badan Pertanahan Nasional. Peta Spasial Luas Baku Sawah Tahun 2019. [Peta]; Badan Pertanahan Nasional: Jakarta, Indonesia, 2019. [Google Scholar]
- Kemenko Perekonomian. Laporan Kegiatan Rekonsiliasi Tutupan Kelapa Sawit Nasional Tahun 2019; Kementerian Koordinasi Bidang Perekonomian: Jakarta, Indonesia, 2019. [Google Scholar]
- Badan Pusat Statistik. Kajian Konsumsi Bahan Pokok Tahun 2017; Badan Pusat Statistik: Jakarta, Indonesia, 2017. [Google Scholar]
- Mulyani, A.; Mulyanto, B.; Barus, B.; Panuju, D.R.; Husnain. Analisis Kapasitas Produksi Lahan Sawah untuk Ketahanan Pangan Nasional Menjelang Tahun 2045. J. Sumberd. Lahan 2022, 16, 33–50. [Google Scholar]
- Ritung, S.; Nugroho, K.; Mulyani, A.; Suryani, E. Petunjuk Teknis Evaluasi Lahan Untuk Komoditas Pertanian; Balai Besar Penelitian dan Pengembangan Sumberdaya Lahan Pertanian, Badan Penelitian dan Pengembangan Pertanian: Bogor, Indonesia, 2011. [Google Scholar]
- Nixon, D.V.; Newman, L. The efficacy and politics of farmland preservation through land use regulation: Changes in southwest British Columbia’s Agricultural Land Reserve. Land Use Policy 2016, 59, 227–240. [Google Scholar] [CrossRef]
- Guerra, A.; Oliveira, P.T.S.; Roque, F.O.; Rosa, I.M.D.; Ochoa-Quintero, J.M.; Guariento, R.D.; Colman, C.B.; Dib, V.; Maioli, V.; Strassburg, B.; et al. The importance of Legal Reserves for protecting the Pantanal biome and preventing agricultural losses. J. Environ. Manag. 2020, 260, 110128. [Google Scholar] [CrossRef]
- Aksu, O.; Iban, M.C. Considerations on the land management system approach in Turkey by the experiences of a case study. Surv. Rev. 2019, 51, 87–96. [Google Scholar] [CrossRef]
- Knoke, T.; Calvas, B.; Moreno, S.O.; Onyekwelu, J.C.; Griess, V.C. Food production and climate protection—What abandoned lands can do to preserve natural forests. Glob. Environ. Change 2013, 23, 1064–1072. [Google Scholar] [CrossRef]
Abandoned Land | ||||||
---|---|---|---|---|---|---|
Land Suitability | Concession Status | Forest Status | Land Types | Slopes (%) | Land Reserves | |
Recommendations | Types | |||||
Not suitable | No recommendation | - | ||||
Suitable | Other concessions | Other uses area | Swamps | - | Recommendation | Food crop |
Conversion forest | Swamps | - | Recommendation | Food crop | ||
Production forest | Swamps | - | Recommendation | Food crop | ||
Other forest status | Swamps | No recommendation | - | |||
Other use area | Dryland | <15 | Recommendation | Food crop | ||
15–40 | Recommendation | Perennial crop | ||||
Conversion forest | Dryland | <15 | Recommendation | Food crop | ||
Dryland | 15–40 | Recommendation | Perennial crop | |||
Production forest | Dryland | <15 | Recommendation | Food crop | ||
Dryland | 15–40 | Recommendation | Perennial crop | |||
Other forest status | Dryland | >40 | No recommendation | - | ||
Concessions/Licenses: Cultivation rights Building rights Management rights Forestry permits Plantation permits Mining permits | Other use area, conversion forest, production forest, other forest status | Dryland/swamps | - | No recommendation | - |
Description of Data | Sources of Data | ||
---|---|---|---|
Procedure of IARRD (2008) | Procedure of Ritung et al., 2015 [51] | Procedure of this project (2016–2021) | |
A. Determining land reserves at the national level | |||
Abandoned land | Land use map 1999 at a scale of 1:1,000,000 [63] | Land use map 2012 at a scale of 1: 250,000 [64] | Land cover map 2019 at a scale of 1:250,000 [65] |
Soil database, land suitability, land management recommendation | Soil map 2001 at a scale of 1:1,000,000 [66] | Soil map 2014 at a scale of 1:250,000 [67] | Soil map 2016–2018 at a scale of 1:50,000 [48,49,50] |
Forest status | Forest status 1999 at a scale of 1:1,000,000 | Forest status 2013 at a scale of 1:250,000 | Forest status 2019 at a scale of 1:250,000 [68] |
Land tenure/land permit status | Land use map at a scale of 1:50,000 [64] | ||
Other supporting maps: Paddy field Estate Peat Swamp | Paddy field of 2019 [69] Oil palm plantations 2019 [70] Peatlands map at a scale of 1:50,000 [55] Swamp areas at a scale of 1:50,000 [56] | ||
B. Identification of land reserves at district level | |||
District selection for sample collection | Selection of six agroecosystems from 54 districts | ||
Abandoned land identified by visual interpretation | SPOT 6/7 mosaic imageries LAPAN (2015–2019) | ||
Soil database, land suitability, land management recommendation | Soil map 2016–2018 at a scale of 1:50,000 [48,49,50] | ||
Forest status | Forest status 2019 at a scale of 1:250,000 [68] | ||
Land tenure/land permit status | Land use map 2012 at a scale of 1:50,000 [64] | ||
C. Prediction of land needs by 2045 (tabular data) | |||
Paddy field area (irrigated, rainfed, tidal, and freshwater swamp lands) Cropping intensity Rice yield Projected population (2020–2045) Consumption per capita | Mulyani et al. [61] Statistik Indonesia 2020 [62] Statistik Indonesia 2020 [62] Statistik Indonesia 2021 Study of Indonesian Staple Foods [71] |
Island | Suitability of Abandoned Land | Not Suitable Land | Total Area | |||
---|---|---|---|---|---|---|
Swamp Land | Dry Land | |||||
Peat | Mineral | Slope < 15% | Slope 15–40% | |||
- ha - | ||||||
Sumatera | 40,621 | 343,240 | 2,286,296 | 1,684,586 | 2,132,166 | 6,486,908 |
Jawa | - | 7658 | 140,216 | 195,301 | 244,641 | 587,816 |
Bali + Nusa Tenggara | - | 4185 | 597,786 | 1,821,295 | 1,014,177 | 3,437,442 |
Kalimantan | 95,842 | 483,810 | 4,654,714 | 3,361,823 | 6,352,622 | 14,948,811 |
Sulawesi | 871 | 31,422 | 1,145,021 | 1,293,022 | 2,780,010 | 5,250,346 |
Papua + Maluku | 175,370 | 1,314,370 | 5,199,926 | 2,843,672 | 2,358,478 | 11,891,815 |
Total area | 312,704 | 2,184,684 | 14,023,959 | 11,199,698 | 14,882,094 | 42,603,139 |
Provinces | Swamp Land | Dry Land | Total (ha) | ||
---|---|---|---|---|---|
Peat | Mineral | Lowland | Highland | ||
Aceh | 5 | 21,727 | 188,492 | 62,587 | 272,812 |
Sumatera Utara | 8676 | 13,862 | 310,580 | 107,136 | 440,254 |
Riau | 7195 | 21,265 | 88,368 | - | 116,827 |
Sumatera Barat | 138 | 8465 | 550,410 | 21,952 | 580,966 |
Jambi | 621 | 30,367 | 571,754 | 51,949 | 654,692 |
Bengkulu | - | 179 | 37,219 | 25,723 | 63,121 |
Sumatera Selatan | - | 3213 | 52,478 | 3364 | 59,055 |
Bangka Belitung | 4963 | 38,243 | 303,368 | - | 346,573 |
Kep Riau | - | 304 | 97,066 | 1264 | 98,634 |
Lampung | 495 | 19,901 | 143,029 | 5754 | 169,179 |
Banten | - | 124,179 | 423,287 | - | 547,466 |
Jawa Barat | - | 2 | 21,995 | 7783 | 29,781 |
Jawa Tengah | - | 904 | 1611 | 19 | 2534 |
Yogyakarta | - | 13 | 223 | 525 | 761 |
Jawa Timur | - | 56 | 44,809 | 13,746 | 58,611 |
Bali | - | - | 24,096 | 280 | 24,375 |
Nusa Tenggara Barat | - | 1301 | 78,783 | 5726 | 85,809 |
Nusa Tenggara Timur | - | 2191 | 704,660 | 119,908 | 826,759 |
Kalimantan Utara | - | 29,839 | 658,355 | 9122 | 697,316 |
Kalimantan Barat | 1632 | 90,006 | 324,906 | - | 416,545 |
Kalimantan Tengah | 78,932 | 228,976 | 1,377,977 | - | 1,685,885 |
Kalimantan Selatan | 3 | 28,155 | 111,507 | 378 | 140,043 |
Kalimantan Timur | 5979 | 81,823 | 1,508,741 | 135,415 | 1,731,958 |
Sulawesi Utara | - | 135 | 18,057 | 2098 | 20,290 |
Sulawesi Selatan | - | 2493 | 97,141 | 18,091 | 117,725 |
Sulawesi Tengah | 7 | 3879 | 670,670 | 193,340 | 867,897 |
Sulawesi Tenggara | - | 10,747 | 499,679 | 2410 | 512,836 |
Sulawesi Barat | 204 | 376 | 23,542 | 80,973 | 105,096 |
Gorontalo | - | 364 | 76,625 | 1630 | 78,619 |
Maluku | - | 8081 | 824,763 | 4748 | 837,592 |
Maluku Utara | - | 884 | 303,291 | 7893 | 312,068 |
Papua | 35,140 | 712,674 | 1,512,157 | 43,216 | 2,303,188 |
Papua Barat | 21,767 | 49,139 | 987,304 | 5347 | 1,063,556 |
Total | 165,759 | 1,533,743 | 12,636,943 | 932,377 | 15,268,822 |
Islands | Swamp Land | Dry Land | Total (ha) | ||||
---|---|---|---|---|---|---|---|
OUAs | CFAs | PFAs | OUAs | CFAs | PFAs | ||
Sumatera | 95,838 | 11,605 | 40,625 | 1,370,137 | 91,760 | 862,429 | 2,472,393 |
Jawa | 122,251 | 0 | 2050 | 407,993 | 0 | 83,978 | 616,275 |
Bali + NT | 2334 | 0 | 3 | 663,334 | 13,016 | 71,590 | 750,279 |
Kalimantan | 276,479 | 61,456 | 140,055 | 1,062,962 | 483,586 | 1,600,103 | 3,624,642 |
Sulawesi | 14,090 | 0 | 1 | 741,560 | 84,625 | 246,816 | 1,087,095 |
Papua + Maluku | 63,834 | 457,574 | 435,747 | 558,904 | 1,084,458 | 1,296,486 | 3,897,003 |
Total | 574,826 | 530,635 | 618,481 | 4,804,890 | 1,757,445 | 4,161,402 | 12,447,687 |
Island | Sum of District | Abandoned Land | Land Suitability | Land Reserve |
---|---|---|---|---|
ha | ||||
Sumatera | 15 | 1,765,576 | 663,701 | 506,491 |
Kalimantan | 14 | 8,326,549 | 4,332,034 | 3,147,575 |
Sulawesi | 9 | 1,347,432 | 640,546 | 356,873 |
Nusa Tenggara | 6 | 1,147,916 | 692,112 | 420,661 |
Maluku dan Papua | 9 | 4,306,771 | 2,162,771 | 1,679,207 |
Total | 54 | 16,894,244 | 8,491,164 | 6,110,808 |
Land cover (scale 1:250,000) | 54 | 18,137,873 | 11,198,120 | 6,010,697 |
Land Cover | Abandoned Land (ha) | |
---|---|---|
Land Cover Map (1:250,000) | Visual Interpretation of SPOT Images | |
Secondary forest | 824,069 | 888,375 |
Shrubs | 349,615 | 275,632 |
Grassland | - | 6277 |
Open land | 29,636 | 2828 |
Total | 1,203,321 | 1,173,112 |
Land Typology | Annual Crop | Perennial Crop | Total (ha) |
---|---|---|---|
Mineral swamp | 86,295 | - | 86,295 |
Upland | 258,797 | 288,463 | 547,260 |
Total | 345,092 | 288,463 | 633,555 |
Land Typology | Land Reserves for Agricultural Development | ||||||
---|---|---|---|---|---|---|---|
Annual Crop | Perennial Crop | Total | |||||
OUAs | CFAs | PFAs | OUAs | CFAs | PFAs | (ha) | |
Mineral swamp | 23,820 | 51,885 | 5258 | - | - | - | 80,964 |
Upland | 19,425 | 134,455 | 8625 | 119,006 | 28,168 | 73,046 | 382,724 |
Total | 43,245 | 186,340 | 13,883 | 119,006 | 28,168 | 73,046 | 463,688 |
Year | FN_110 | FN_95 | PC_90 | PC_60 | LN_90a | LN_60a | LN_90b | LN_60b |
---|---|---|---|---|---|---|---|---|
Million Tons MG | Million ha | |||||||
2020 | 54.0 | 54.0 | 55.0 | 55.0 | (0.3) | (0.28) | (0.3) | (0.3) |
2021 | 54.6 | 54.3 | 54.3 | 54.3 | 0.1 | 0.01 | (0.0) | (0.1) |
2022 | 55.1 | 54.5 | 53.6 | 53.7 | 0.4 | 0.29 | 0.3 | 0.1 |
2023 | 55.6 | 54.8 | 53.0 | 53.0 | 0.8 | 0.57 | 0.5 | 0.3 |
2024 | 56.2 | 55.0 | 52.3 | 52.4 | 1.1 | 0.85 | 0.8 | 0.5 |
2025 | 56.7 | 55.2 | 51.7 | 51.7 | 1.4 | 1.13 | 1.0 | 0.7 |
2026 | 57.2 | 55.4 | 51.0 | 51.1 | 1.8 | 1.40 | 1.3 | 0.9 |
2027 | 57.7 | 55.6 | 50.3 | 50.5 | 2.1 | 1.66 | 1.5 | 1.1 |
2028 | 58.1 | 55.8 | 49.7 | 49.9 | 2.4 | 1.93 | 1.8 | 1.3 |
2029 | 58.6 | 55.9 | 49.0 | 49.3 | 2.8 | 2.19 | 2.0 | 1.4 |
2030 | 59.1 | 56.1 | 48.3 | 48.7 | 3.1 | 2.45 | 2.2 | 1.6 |
2031 | 59.5 | 56.2 | 47.7 | 48.2 | 3.4 | 2.70 | 2.4 | 1.7 |
2032 | 59.9 | 56.3 | 47.0 | 47.6 | 3.7 | 2.95 | 2.7 | 1.9 |
2033 | 60.4 | 56.4 | 46.4 | 47.0 | 4.0 | 3.20 | 2.9 | 2.1 |
2034 | 60.8 | 56.4 | 45.7 | 46.5 | 4.3 | 3.44 | 3.1 | 2.2 |
2035 | 61.2 | 56.5 | 45.0 | 46.0 | 4.6 | 3.68 | 3.3 | 2.3 |
2036 | 61.5 | 56.5 | 44.4 | 45.4 | 4.9 | 3.92 | 3.5 | 2.5 |
2037 | 61.9 | 56.6 | 43.7 | 44.9 | 5.2 | 4.15 | 3.7 | 2.6 |
2038 | 62.2 | 56.6 | 43.0 | 44.4 | 5.5 | 4.38 | 3.9 | 2.7 |
2039 | 62.6 | 56.5 | 42.4 | 43.9 | 5.8 | 4.60 | 4.1 | 2.9 |
2040 | 62.9 | 56.5 | 41.7 | 43.4 | 6.1 | 4.82 | 4.3 | 3.0 |
2041 | 63.2 | 56.5 | 41.1 | 42.9 | 6.4 | 5.04 | 4.4 | 3.1 |
2042 | 63.5 | 56.4 | 40.4 | 42.4 | 6.6 | 5.25 | 4.6 | 3.2 |
2043 | 63.8 | 56.3 | 39.7 | 42.0 | 6.9 | 5.45 | 4.8 | 3.3 |
2044 | 64.1 | 56.2 | 39.1 | 41.5 | 7.2 | 5.66 | 4.9 | 3.4 |
2045 | 64.3 | 56.1 | 38.4 | 41.1 | 7.4 | 5.86 | 5.1 | 3.5 |
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Mulyani, A.; Mulyanto, B.; Barus, B.; Panuju, D.R.; Husnain. Potential Land Reserves for Agriculture in Indonesia: Suitability and Legal Aspect Supporting Food Sufficiency. Land 2023, 12, 970. https://doi.org/10.3390/land12050970
Mulyani A, Mulyanto B, Barus B, Panuju DR, Husnain. Potential Land Reserves for Agriculture in Indonesia: Suitability and Legal Aspect Supporting Food Sufficiency. Land. 2023; 12(5):970. https://doi.org/10.3390/land12050970
Chicago/Turabian StyleMulyani, Anny, Budi Mulyanto, Baba Barus, Dyah Retno Panuju, and Husnain. 2023. "Potential Land Reserves for Agriculture in Indonesia: Suitability and Legal Aspect Supporting Food Sufficiency" Land 12, no. 5: 970. https://doi.org/10.3390/land12050970
APA StyleMulyani, A., Mulyanto, B., Barus, B., Panuju, D. R., & Husnain. (2023). Potential Land Reserves for Agriculture in Indonesia: Suitability and Legal Aspect Supporting Food Sufficiency. Land, 12(5), 970. https://doi.org/10.3390/land12050970