A Correlation Among the Increased Temperatures Toward the Productivity of Ladang in Kutai Barat Regency, the province of East Kalimantan

  • Akas Pinaringan Sujalu The University of 17 Agustus 1945 Samarinda

Sažetak


The studies on the impact of global warming in particularly food production could provide more accurate analysis to support a policy of food security. This research was conducted to find out the trends and the impact of the increase in the air temperature toward the production of ladang (swidden field) in the Kutai Barat Regency.

The result of the research done to some of the traditional rice fields indicates it has technology barely changes prominently, and fixed-based organic cultivation. During the years 1990-2015 air temperature increased daily average of 21.20C-25.20C or an average increase 0.160C/year. In the same period increased the productivity of ladang  1.87-3.19 tons/hectares or an average increased 0.26 tons/hectare/year. Linear regression analysis results on the level of significance of 5% showed the existence of the real correlation (r=0.7) between the average air temperature change and the productivity of the paddy fields.

Biografija autora

Akas Pinaringan Sujalu, The University of 17 Agustus 1945 Samarinda
Departement of Agrotechnology, Faculty of Agriculture

Reference

Allen J.C, 2000. A Modified Sine Wave Method for Calculating Degree-Days. Environtal Entomology. 5 (3): 388-396.

Amthor, J.S. 2001. Effects of atmospheric CO2 concentration on wheat yield: review of results from experiments using various approaches to control CO2 concentration. Field Crops Res volume 73:1–34.

Anwar MR, O’Leary G, and McNeil D. 2007. Climate change impact on rainfed wheat in south- eastern Australia. Field Crops Res. volume104:139–47.

Angelsen A. 1995. Shifting cultivation and “deforestation”: a study from Indonesia. World Dev. 23:1713–1729.

Ave JB, and King VT. 1986. Borneo: the people of the weeping forest, tradition and change in Borneo. Leiden: National Museum of Ethnology.

Central Bureau of Statistics 1991. Figures Kutai Barat In 1991.Samarinda

Central Bureau of Statistics 1996. Kutai Barat In Numbers 1996. Samarinda

Central Bureau of Statistics.2001. The figures Kutai Barat In 200. Samarinda

Central Bureau of Statistics.2005. Figures Kutai Barat In 2005. Samarinda

Central Bureau of Statistics.2011. The figures Kutai Barat In 2011. Samarinda

Central Bureau of Statistics.2016. The figures Kutai Barat In 2016. Samarinda

Challinor AJ and Wheeler TR. 2008. Crop yield reduction in the tropics under climate change: processes and uncertainties. Agric Forest Meteorology. volume148(343–356).

Eitzinger, J., S. Orlandini, R. Stefanski and R.E.L. Naylor, 2010. Climate change and agriculture: Introductory editorial. J. Agric. Sci., 148: 499-500.

Elizondo D.A, Clendon R.W and Mc. Hoogenboom, 1994. Neural network models for predicting flowering and physiological maturity of soybean. J. American Society of Agricultural Engineers, Volume 37 (3): 981-988.

Greenwood, J. 1994. Basis of preparation and application of the model of computer simulations for agriculture. Department of Geophysics and meteorology, F-SCIENCES, Bogor Agricultural University.

Inoue M, and Lahjie AM. 1990. Dynamics of Swidden agriculture in East Kalimantan. Agroforestry Syst. 12:269–284.

Jerry L. H. and J.H. Prueger. 2015. Temperature extremes: Effect on plant growth and development. Weather and Climate Extremes, Volume 10 (Part A): 4-10

Koesmaryono, Y., Sangadji Y, S, and T, June 2002. The accumulation of Hot Buckwheat (Fagopyrum esculentum) at Two Elevations in Tropical Wet Climate. Journal Agromet Indonesia15 (1): 8-13.

Lal R. 2005. Climate change, soil carbon dynamics, and global food security. In: Lal R, Stewart B, Uphoff N,., editors. Climate change and global food security. Boca Raton (FL): CRC Press; 113–43.

Las I., Y. Koesmaryono, Runtunuwu E, Pramudia T, and June, 2007. Analysis and prediction of Precipitation Prediction for Rice Production in order to anticipate Drought Insecurity. Bogor Agricultural University (Final Report KP3T Research). Cooperation between the Secretariat of the Research Agency with IPB and the development of agriculture, the Ministry of agriculture.

Li, X., T. Takahashi, N. Suzuki and H.M. Kaiser, 2011. The impact of climate change on maize yields in the United States and China. Agricult. Syst., 104: 348-353.

Lynch,J.P., aand St. Clair, S.B., 2004. Mineral stress: the missing link in understanding how global climate change will affect plant in real world soils. Field Crops Res. 90: 101–115.

Mearns, L.O. 2000. Climate change and variability. In: Reddy KR, Hodges, H.F, editors. Climate change and global crop productivity. New York: CABI Publishing; p. 7–35.

Mirza, M.Q., Dixit, A., and Nishat, A. (eds.). 2003. Flood problem and management in South Asia. Dordrecht: Kluwer Academic Publishers

Nurhasanah and Sunaryo, 2015. Genetic diversity of local rice Kutai Barat.Proceedings of the National Seminar on Biodiversity Community Indonesia. Volume 1(7):1553-1558

Sheehy JE, Elmido A, Centeno G, and Pablico P. 2005 Searching for new plants for climate change. J. Agriculture Meteorology 60: 463-468.

Yamaguci M, 1983. World Vegetables : Principle, Production and Nutritive Values. AVI Publishing company, Inc. Westport, Connecticut.

Yinhong Kang, Shahbaz Khan, and Xiaoyi Ma. 2009. Climate change impacts on crop yield, crop water productivity and food security – A review. Progress in Natural Science. Volume 19 (12): 1665–1674

Thomson MJ, Polato NR, Prasetiyono J, Trijatmiko KR, Silitonga TS, and McCouch SR. 2009. Genetic Diversity of Isolated Populations of Indonesian Landraces of Rice (Oryza sativa L.) Collected in East Kalimantan on the Island of Borneo. Rice 2: 80-92.

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2019/01/30
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