- Cinnadurai, C., Gopalaswamy, G., & Balachandar, D. (2013). Diversity of cultivable Azotobacter in the semi-arid alfisol receiving long-term organic and inorganic nutrient amendments. Ann Microbiol, l 63, 1397-1404. [Google Scholar]
- Cho, H.K., & Koyama, A. (1997). Korean natural farming: indigenous microorganisms and vital power of crop/livestock. Korean Natural Farming [Google Scholar]
- Cvijanović, G., Milošević, N., & Jarak, M. (2007). The Importance of Diazotrophs as Biofertilisers in the Maize and Soybean Production. Genetika - Genetics, 39 (3), 395 [Google Scholar]
- Cvijanović, G., Đurić, N., Marinković, J., Đukić, V., Dozet, G., Petrović, G., & Cvijanović, M. (2017). The influence of different ways of feeding wheat on rhizosphere microflora and wheat yield. Proceedings of the PKB Agroeconomics Institute, 23(1-2), 95-104. [Google Scholar]
- Fehr, W.R. & Caviness, C.E. (1977). Stages of soybean development. Iowa Agric. and Home Econ. Exp. Stn. Spec. Rep. 80. [Google Scholar]
- Higa T. (1991). Effective microorganisms: A biotechnology for mankind.p. 8-14. In J.F. Parr, S.B. Hornick, and C.E. Whitman (ed.) Proceedings of the First International Conference on Kyusei Nature Farming. U.S. Department of Agriculture, Washington, D.C., USA. [Google Scholar]
- Higa, T. & Wididana, G.N. (1991). Changes in the soil microflora induced by Effective Microorganisms., 153-162. In J.F. Parr, S.B. Hornick, and C.E. Whitman. (ed.) Proceedings of the First International Conference on Kyusei Nature Farming. U.S. Department of Agriculture, [Google Scholar]
- Higa, T. (2001). Effective Microorganisms in the context of Kyusei Nature Farming: a technology for the future. Paper presented at: Sixth International Conference on Kyusei Nature Farming Pretoria, South Africa. [Google Scholar]
- Himangini, J., Somduttand, Piyush, C., & Mundr, S.L. (2019). Role of Effective Microorganisms (EM) in Sustainable Agriculture Int. J. Curr. Microbiol. App. Sci, 8(3), 172-181. [Google Scholar]
- Goessler, W. & Kuehenelt, D. (2002). Analytical methods for the determination of arsenic and arsenic compounds in the environment. In: William T, Frankenberger Jr, 27-50. [Google Scholar]
- Jahanban, L. & Lotfifar, O. (2012). Study of the effective organism (EM) application effect on efficacy of chemical and organic fertilizers in corn cultivation (Zea maizs. C704). Plant Production Technology, 11, 43-52. [Google Scholar]
- Javaid, A. (2006). Foliar application of effective microorganisms on pea as an alternative fertilizer. Agron Sustain Dev, 26, 257–262. [Google Scholar]
- Javaid, A., Bajwa, R., Rabbani, N., & Uzma, M. (2000). EM and VAM Technology in Pakistan. IX: Effect of EM application on growth, yield, nodulation and VA mycorrhizal colonization in Vigna radiata (L) Wilczek. Pak J Biol Sci, 3, 694-698. [Google Scholar]
- Kim, J.K. & Lee, B.K. (2000). Mass production of Rhodopseudomonas palustris as diet for aquaculture. Aquacult Eng, 23, 281-293. [Google Scholar]
- Ranjith, N.K., Sasikala, C., & Ramana, C.V. (2007). Catabolism of l-phenylalanine and l-tyrosine by Rhodobacter sphaeroides OU5 occurs through 3, 4- dihydroxyphenylalanine. Res. Microbiol., 158, 506–511. [Google Scholar]
- Martinez-Romero, E. & Caballero-Mellado, J. (1996). Rhizobium phylogenies and bacterial genetic diversity. Critical Rev. Plant Sci., 15, 113-140. [Google Scholar]
- Moulin, L., Munive, A., Dreyfus, B., & Boivin-Masson, C. (2001). Nodulation of legumes by members of the beta-subclass of Proteobacteria. Nature, 411: 948–950 [Google Scholar]
- Murugan, R. & Kumar, S. (2013). Influence of long-term fertilisation and crop rotation on changes in fungal and bacterial residues in a tropical ricefield soil. Biol Fertil Soils, 49, 847-856. [Google Scholar]
- Priyadi, K., Hadi, A., Siagian, T.H., Nisa, C., Azizah, A., Raihani, N., and Inubushi, K. (2005). Effect of soil type, applications of chicken manure and effective microorganisms on corn yield and microbial properties of acidic wetland soils in Indonesia. Soil Science & Plant Nutrition 51, 689-691. [Google Scholar]
- Sabeti, Z., Armin, M., & Vaezi, K.M.R. (2017). Investigation of effective microorganisms application method on alleviation of salt stress effects on root morphology of sweet corn. Farming and vegetable growing, 54(2), 48-55. https://doi.org/10.5937/ratpov54-12469 [Google Scholar] [Crossref]
- Sangakkara, U.R. & Higa, T. (1994). Effect of EM on the growth and yield of selected food crops in Sri Lanka. In: Parr JF, Homick SB, Simpson ME (eds) Proceedings of the 2nd International Conference on Kyusei Nature Farming, USDA, Washington, DC, 118–124. [Google Scholar]
- Sun, P.F., Fang, W.T., Shin, L.Y., Wei, J.Y., Fu, S.F., & Chou, J.Y. (2014). Indole-3- Acetic Acid-producing yeasts in the phyllosphere of the carnivorous plant Drosera indica L. Plos one 9(12), e114196, https://doi.org/10.1371/journal.pone.0114196. [Google Scholar] [Crossref]
- Xiaohou, S., Diyou, L., Liang, Z., Hu, W., & Hui, W. (2001). Use of EM-tech-nology in agriculture and environmental management in China, Nat. Farm. Environ. 2, 9-18. [Google Scholar]
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