Evaluation of soil-dependent crop yield outcomes in Nepal using ground and satellite-based approaches
暂无分享,去创建一个
[1] David B. Lobell,et al. Sight for Sorghums: Comparisons of Satellite- and Ground-Based Sorghum Yield Estimates in Mali , 2019, Remote. Sens..
[2] David B. Lobell,et al. Smallholder maize area and yield mapping at national scales with Google Earth Engine , 2019, Remote Sensing of Environment.
[3] N. Sitko,et al. Sustainable agricultural intensification in an era of rural transformation in Africa , 2019, Global Food Security.
[4] Siobhan Murray,et al. Eyes in the Sky, Boots on the Ground: Assessing Satellite‐ and Ground‐Based Approaches to Crop Yield Measurement and Analysis , 2018, American Journal of Agricultural Economics.
[5] A. McDonald,et al. Increasing yield stability and input efficiencies with cost-effective mechanization in Nepal , 2018, Field crops research.
[6] D. Chalise,et al. Digital soil mapping in the Bara district of Nepal using kriging tool in ArcGIS , 2018, PloS one.
[7] S. Holden. Fertilizer and sustainable intensification in Sub-Saharan Africa , 2018, Global Food Security.
[8] P. Mapfumo,et al. Integrated soil fertility management sequences for reducing climate risk in smallholder crop production systems in southern Africa , 2018, Field Crops Research.
[9] Megan Sheahan,et al. Empirical assessment of subjective and objective soil fertility metrics in east Africa: Implications for researchers and policy makers , 2018 .
[10] Damien Arvor,et al. Remote Sensing and Cropping Practices: A Review , 2018, Remote. Sens..
[11] J. Abatzoglou,et al. TerraClimate, a high-resolution global dataset of monthly climate and climatic water balance from 1958–2015 , 2018, Scientific Data.
[12] Michael Dixon,et al. Google Earth Engine: Planetary-scale geospatial analysis for everyone , 2017 .
[13] A. Schut,et al. Strong spatial-temporal patterns in maize yield response to nutrient additions in African smallholder farms , 2017 .
[14] David B. Lobell,et al. Using satellite data to identify the causes of and potential solutions for yield gaps in India’s Wheat Belt , 2017 .
[15] David B. Lobell,et al. Mapping Smallholder Yield Heterogeneity at Multiple Scales in Eastern Africa , 2017, Remote. Sens..
[16] Anja Gassner,et al. Breaking Ground: Unearthing the Potential of High-resolution, Remote-sensing Soil Data in Understanding Agricultural Profits and Technology Use in Sub-Saharan Africa , 2017 .
[17] E. Fegraus,et al. Soil nutrient maps of Sub-Saharan Africa: assessment of soil nutrient content at 250 m spatial resolution using machine learning , 2017, Nutrient Cycling in Agroecosystems.
[18] R. Choudhary,et al. Long-term Effect of Residual Zinc and Crop Residues Incorporation on Soil Health and Crop Productivity under Calcareous Soils of Rice-Wheat System in India , 2017 .
[19] P. D. Voil,et al. To mulch or to munch? Big modelling of big data , 2017 .
[20] D. R. Sena,et al. Evaluation of the APSIM model in cropping systems of Asia , 2017 .
[21] Marvin N. Wright,et al. SoilGrids250m: Global gridded soil information based on machine learning , 2017, PloS one.
[22] C. Barrett,et al. Ten striking facts about agricultural input use in Sub-Saharan Africa , 2017, Food policy.
[23] B. Omonona,et al. Is increasing inorganic fertilizer use for maize production in SSA a profitable proposition? Evidence from Nigeria , 2017, Food policy.
[24] H. Binswanger-Mkhize,et al. Agricultural intensification: The status in six African countries , 2014, Food policy.
[25] O. Kirui. Impact of land degradation on household poverty: evidence from a panel data simultaneous equation model , 2016 .
[26] S. Zingore,et al. Understanding variability in crop response to fertilizer and amendments in sub-Saharan Africa , 2016, Agriculture, ecosystems & environment.
[27] Mariana Belgiu,et al. Random forest in remote sensing: A review of applications and future directions , 2016 .
[28] Brian McConkey,et al. Root distribution by depth for temperate agricultural crops , 2016 .
[29] A. Gitelson,et al. Informative spectral bands for remote green LAI estimation in C3 and C4 crops , 2016 .
[30] S. Riha,et al. Maize productivity dynamics in response to mineral nutrient additions and legacy organic soil inputs of contrasting quality , 2016 .
[31] J. Huising,et al. Maize response to macronutrients and potential for profitability in sub-Saharan Africa , 2015, Nutrient Cycling in Agroecosystems.
[32] J. Michaelsen,et al. The climate hazards infrared precipitation with stations—a new environmental record for monitoring extremes , 2015, Scientific Data.
[33] C. Barrett,et al. The self-reinforcing feedback between low soil fertility and chronic poverty , 2015 .
[34] O. Oenema,et al. Soil mulching significantly enhances yields and water and nitrogen use efficiencies of maize and wheat: a meta-analysis , 2015, Scientific Reports.
[35] K. Shepherd,et al. Total elemental composition of soils in Sub-Saharan Africa and relationship with soil forming factors , 2015 .
[36] D. Lobell,et al. A scalable satellite-based crop yield mapper , 2015 .
[37] G. Heuvelink,et al. Mapping Soil Properties of Africa at 250 m Resolution: Random Forests Significantly Improve Current Predictions , 2015, PloS one.
[38] K. Giller,et al. Integrated soil fertility management in sub-Saharan Africa: unravelling local adaptation , 2014 .
[39] Chris Murphy,et al. APSIM - Evolution towards a new generation of agricultural systems simulation , 2014, Environ. Model. Softw..
[40] G. Heuvelink,et al. SoilGrids1km — Global Soil Information Based on Automated Mapping , 2014, PloS one.
[41] R. Lal,et al. Comparison of Soil Quality Index Using Three Methods , 2014, PloS one.
[42] Regis Chikowo,et al. Farm typologies, soil fertility variability and nutrient management in smallholder farming in Sub-Saharan Africa , 2014, Nutrient Cycling in Agroecosystems.
[43] A. Gitelson,et al. Estimating green LAI in four crops: Potential of determining optimal spectral bands for a universal algorithm , 2014 .
[44] Y. S. Shivay,et al. Zinc Fertilization of Cereals for Increased Production and Alleviation of Zinc Malnutrition in India , 2013, Agricultural Research.
[45] K. Giller,et al. When yield gaps are poverty traps: The paradigm of ecological intensification in African smallholder agriculture , 2013 .
[46] J. Wolf,et al. Yield gap analysis with local to global relevance—A review , 2013 .
[47] Chuanfa Chen,et al. A robust method of thin plate spline and its application to DEM construction , 2012, Comput. Geosci..
[48] N. Ramankutty,et al. Closing yield gaps through nutrient and water management , 2012, Nature.
[49] I. Cakmak,et al. Biofortification of wheat with zinc through zinc fertilization in seven countries , 2012, Plant and Soil.
[50] Edmar I. Teixeira,et al. Global Agro-Ecological Zones (GAEZ v3.0) , 2012 .
[51] Dhiren Ghosh,et al. Outliers : An Evaluation of Methodologies , 2012 .
[52] B. Sitaula,et al. Evolution and future direction of intensified agriculture in the central mid-hills of Nepal , 2011 .
[53] Jin Li,et al. A review of comparative studies of spatial interpolation methods in environmental sciences: Performance and impact factors , 2011, Ecol. Informatics.
[54] Yantai Gan,et al. Rooting systems of oilseed and pulse crops. II: Vertical distribution patterns across the soil profile , 2011 .
[55] Ken E. Giller,et al. Competing use of organic resources, village-level interactions between farm types and climate variability in a communal area of NE Zimbabwe , 2011 .
[56] C. Pacini,et al. Communicating complexity: Integrated assessment of trade-offs concerning soil fertility management within African farming systems to support innovation and development , 2011 .
[57] J. Six,et al. Does the combined application of organic and mineral nutrient sources influence maize productivity? A meta-analysis , 2011, Plant and Soil.
[58] J. Six,et al. Agronomic use efficiency of N fertilizer in maize-based systems in sub-Saharan Africa within the context of integrated soil fertility management , 2011, Plant and Soil.
[59] T. Schnurbusch,et al. Boron toxicity tolerance in wheat and barley: Australian perspectives , 2010 .
[60] B. Sitaula,et al. Agricultural Intensification: Linking with Livelihood Improvement and Environmental Degradation in Mid-Hills of Nepal , 2010 .
[61] R. Shrestha. Fertilizer Policy Development in Nepal , 2010 .
[62] C. Barrett,et al. State‐Conditional Fertilizer Yield Response on Western Kenyan Farms , 2009 .
[63] J. Six,et al. Organic and Mineral Input Management to Enhance Crop Productivity in Central Kenya , 2009 .
[64] B. Minasny,et al. Digital Soil Map of the World , 2009, Science.
[65] L. Verchot,et al. Nutrient constraints to tropical agroecosystem productivity in long‐term degrading soils , 2008 .
[66] K. Giller,et al. Yield gaps, nutrient use efficiencies and response to fertilisers by maize across heterogeneous smallholder farms of western Kenya , 2008, Plant and Soil.
[67] Subodh Sharma,et al. Developing a sustainable agro-system for central Nepal using reduced tillage and straw mulching. , 2008, Journal of environmental management.
[68] J. I. Ortiz-Monasterio,et al. Climate change: Can wheat beat the heat? , 2008 .
[69] L. Verchot,et al. Reversibility of Soil Productivity Decline with Organic Matter of Differing Quality Along a Degradation Gradient , 2008, Ecosystems.
[70] Y. S. Shivay,et al. Effect of zinc-enriched urea on productivity, zinc uptake and efficiency of an aromatic rice–wheat cropping system , 2008, Nutrient Cycling in Agroecosystems.
[71] Tarinder Kaur,et al. Soil organic matter dynamics as affected by long-term use of organic and inorganic fertilizers under maize–wheat cropping system , 2008, Nutrient Cycling in Agroecosystems.
[72] P. Andersen. A Review of Micronutrient Problems in the Cultivated Soil of Nepal , 2007 .
[73] I. Cakmak,et al. Effects of Zinc Deficiency and Drought on Grain Yield of Field-grown Wheat Cultivars in Central Anatolia , 2007 .
[74] R. Chand,et al. Partnering with farmers to accelerate adoption of new technologies in South Asia to improve wheat productivity , 2007, Euphytica.
[75] M. Wijk,et al. Nutrient use efficiencies and crop responses to N, P and manure applications in Zimbabwean soils: Exploring management strategies across soil fertility gradients , 2007 .
[76] Rattan Lal,et al. Enhancing crop yields in the developing countries through restoration of the soil organic carbon pool in agricultural lands , 2006 .
[77] Robert E. Wolfe,et al. A Landsat surface reflectance dataset for North America, 1990-2000 , 2006, IEEE Geoscience and Remote Sensing Letters.
[78] A. Hartemink. Soil fertility decline: definitions and assessment , 2006 .
[79] P. Tittonell,et al. Within-farm soil fertility gradients affect response of maize to fertiliser application in western Kenya , 2007, Nutrient Cycling in Agroecosystems.
[80] C. Johansen,et al. Severe boron deficiency limiting grain legumes in the inner Terai of Nepal. , 2005 .
[81] I. Cakmak,et al. Differential response of rye, triticale, bread and durum wheats to zinc deficiency in calcareous soils , 2004, Plant and Soil.
[82] Aaron Moody,et al. Land-Surface Phenologies from AVHRR Using the Discrete Fourier Transform , 2001 .
[83] R. Webster,et al. Kriging: a method of interpolation for geographical information systems , 1990, Int. J. Geogr. Inf. Sci..