Crop establishment with conservation tillage and crop residue retention in rice-based cropping systems of Eastern India: yield advantage and economic benefit
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V. Singh | C. Nath | K. K. Hazra | S. S. Singh | R. Malik | S. Poonia | R. Nandan | C. Solanki | V. Kumar | V. Kumar
[1] B. Das,et al. Greenhouse gas emission from direct seeded paddy fields under different soil water potentials in Eastern India , 2016 .
[2] Frédéric Baudron,et al. Crop residue management and soil health: A systems analysis , 2015 .
[3] T. P. Tiwari,et al. Conservation agriculture based tillage and crop establishment options can maintain farmers’ yields and increase profits in South Asia's rice–maize systems: Evidence from Bangladesh , 2015 .
[4] R. Bhattacharyya,et al. Weed-management and wheat productivity in a conservation agriculture-based maize (Zea mays)-wheat (Triticum aestivum)-mungbean (Vigna radiata) system in north-western Indo-Gangetic plains of India , 2015 .
[5] S. Chandra,et al. Effect of Extended Water Stress on Growth, Tiller Mortality and Nutrient Recovery Under System of Rice Intensification , 2016, Proceedings of the National Academy of Sciences, India Section B: Biological Sciences.
[6] M. S. Venkatesh,et al. Long-term effect of pulse crops inclusion on soil–plant nutrient dynamics in puddled rice (Oryza sativa L.)-wheat (Triticum aestivum L.) cropping system on an Inceptisol of Indo-Gangetic plain zone of India , 2014, Nutrient Cycling in Agroecosystems.
[7] T. Sapkota,et al. Seven years of conservation agriculture in a rice–wheat rotation of Eastern Gangetic Plains of South Asia: Yield trends and economic profitability , 2014 .
[8] H. Koch,et al. Effect of long-term tillage treatments on the temporal dynamics of water-stable aggregates and on macro-aggregate turnover at three German sites , 2014 .
[9] Guanghui Yu,et al. Response of the bacterial diversity and soil enzyme activity in particle-size fractions of Mollisol after different fertilization in a long-term experiment , 2014, Biology and Fertility of Soils.
[10] M. Jackson. Soil Chemical Analysis , 2014 .
[11] Yadvinder-Singh,et al. Double no-till and permanent raised beds in maize-wheat rotation of north-western Indo-Gangetic plains of India: Effects on crop yields, water productivity, profitability and soil physical properties , 2013 .
[12] M. S. Venkatesh,et al. Long-term effect of pulses and nutrient management on soil carbon sequestration in Indo-Gangetic plains of India , 2013, Canadian Journal of Soil Science.
[13] S. Chandra,et al. Mild to prolonged stress increased rice tillering and source-to-sink nutrient translocation under SRI management , 2013, Paddy and Water Environment.
[14] J. S. Bohra,et al. Greenhouse gas emissions from rice crop with different tillage permutations in rice–wheat system , 2012 .
[15] John P. A. Lamers,et al. Conservation agriculture in Central Asia—What do we know and where do we go from here? , 2012 .
[16] Ajit Kumar Nayak,et al. Long-term effect of different integrated nutrient management on soil organic carbon and its fractions and sustainability of rice–wheat system in Indo Gangetic Plains of India , 2012 .
[17] B. Soane,et al. No-till in northern, western and south-western Europe: A review of problems and opportunities for crop production and the environment , 2012 .
[18] J. Ladha,et al. Effect of Tillage and Crop Establishment Methods on Physical Properties of a Medium-Textured Soil under a Seven-Year Rice−Wheat Rotation , 2011 .
[19] U. S. Walia,et al. Effect of water management on dry seeded and puddled transplanted rice. Part 1: Crop performance , 2011 .
[20] Sudhir-Yadav,et al. Effect of water management on dry seeded and puddled transplanted rice: Part 2: Water balance and water productivity , 2011 .
[21] Vipin Kumar,et al. Evaluation of precision land leveling and double zero-till systems in the rice–wheat rotation: Water use, productivity, profitability and soil physical properties , 2009 .
[22] V. Laxmi,et al. Zero tillage impacts in India's rice–wheat systems: A review , 2008 .
[23] J. Six,et al. Impact of tillage and crop rotation on light fraction and intra-aggregate soil organic matter in two Oxisols , 2007 .
[24] J. Ladha,et al. Saving of Water and Labor in a Rice–Wheat System with No-Tillage and Direct Seeding Technologies , 2007 .
[25] P. Hobbs,et al. Conservation Agriculture : What Is It and Why Is It Important for Future Sustainable Food Production ? , 2006 .
[26] C. Rice,et al. Tillage and Manure Effects on Soil and Aggregate-Associated Carbon and Nitrogen , 2004 .
[27] Raj Kumar Gupta,et al. How extensive are yield declines in long-term rice-wheat experiments in Asia? , 2003 .
[28] J. Duxbury,et al. Sustainability of the rice-wheat system in Pakistan's Punjab: how large is the problem? , 2003 .
[29] Johan Six,et al. Soil macroaggregate turnover and microaggregate formation: a mechanism for C sequestration under no-tillage agriculture , 2000 .
[30] J. Tisdall,et al. Organic matter and water‐stable aggregates in soils , 1982 .
[31] W. Lindsay,et al. Development of a DTPA soil test for zinc, iron, manganese and copper , 1978 .
[32] S. R. Olsen,et al. Estimation of available phosphorus in soils by extraction with sodium bicarbonate , 1954 .
[33] A. Walkley,et al. A CRITICAL EXAMINATION OF A RAPID METHOD FOR DETERMINING ORGANIC CARBON IN SOILS—EFFECT OF VARIATIONS IN DIGESTION CONDITIONS AND OF INORGANIC SOIL CONSTITUENTS , 1947 .