Probabilistic Assessment of Extreme Heat Stress on Indian Wheat Yields Under Climate Change
暂无分享,去创建一个
[1] J. Skees,et al. Designing and Rating an Area Yield Crop Insurance Contract , 1997 .
[2] P. Waylen,et al. Investigating teleconnection drivers of bivariate heat waves in Florida using extreme value analysis , 2015, Climate Dynamics.
[3] P. McCullagh,et al. Generalized Linear Models , 1972, Predictive Analytics.
[4] U. C. Mohanty,et al. Impact of climate variability on various Rabi crops over Northwest India , 2016, Theoretical and Applied Climatology.
[5] Andrej Ceglar,et al. Wheat yield loss attributable to heat waves, drought and water excess at the global, national and subnational scales , 2017 .
[6] Shailza Sharma,et al. Increasing frequency and spatial extent of concurrent meteorological droughts and heatwaves in India , 2017, Scientific Reports.
[7] S. D. Singh,et al. Assessment of impacts of climate change on rice and wheat in the Indo-Gangetic plains , 2014 .
[8] Niklaus E. Zimmermann,et al. Accelerated increase in plant species richness on mountain summits is linked to warming , 2018, Nature.
[9] Senthold Asseng,et al. Hot spots of wheat yield decline with rising temperatures , 2017, Global change biology.
[10] Senthold Asseng,et al. Influences of increasing temperature on Indian wheat: quantifying limits to predictability , 2013 .
[11] R. Moss,et al. Climate model projections from the Scenario Model Intercomparison Project (ScenarioMIP) of CMIP6 , 2020, Earth System Dynamics.
[12] Jing Wang,et al. Satellite Solar-Induced Chlorophyll Fluorescence Reveals Heat Stress Impacts on Wheat Yield in India , 2020, Remote. Sens..
[13] Hamid Moradkhani,et al. A Bayesian Framework for Probabilistic Seasonal Drought Forecasting , 2013 .
[14] Direct and indirect impacts of climate change on wheat yield in the Indo-Gangetic plain in India , 2021 .
[15] Brian C. O'Neill,et al. The Scenario Model Intercomparison Project (ScenarioMIP) for CMIP6 , 2016 .
[16] G. Leng. Maize yield loss risk under droughts in observations and crop models in the United States , 2021 .
[17] F. Hao,et al. Changes in climate-crop yield relationships affect risks of crop yield reduction , 2021, Agricultural and Forest Meteorology.
[18] S. Wang,et al. Examination of the Climate Factors That Reduced Wheat Yield in Northwest India during the 2000s , 2019, Water.
[19] Bias correction methods for hydrologic impact studies over India’s Western Ghat basins , 2018 .
[20] H. Bozdogan,et al. Akaike's Information Criterion and Recent Developments in Information Complexity. , 2000, Journal of mathematical psychology.
[21] Amir AghaKouchak,et al. Heat wave Intensity Duration Frequency Curve: A Multivariate Approach for Hazard and Attribution Analysis , 2019, Scientific Reports.
[22] G. M. Paulsen,et al. Interaction of drought and high temperature on photosynthesis and grain-filling of wheat , 2003, Plant and Soil.
[23] T. Ouarda,et al. Historical and Projected Surface Temperature over India during the 20th and 21st century , 2017, Scientific Reports.
[24] S. Asseng,et al. The impact of temperature variability on wheat yields , 2011 .
[25] N. Subash,et al. Evaluation of the impact of climatic trends and variability in rice–wheat system productivity using Cropping System Model DSSAT over the Indo-Gangetic Plains of India , 2012 .
[26] D. Lobell,et al. Climate Trends and Global Crop Production Since 1980 , 2011, Science.
[27] V. Singh,et al. Impact of dependence changes on the likelihood of hot extremes under drought conditions in the United States , 2020 .
[28] Amir AghaKouchak,et al. Probabilistic estimates of drought impacts on agricultural production , 2017 .
[29] Robin Flowerdew,et al. ANALYSIS OF COUNT DATA USING POISSON REGRESSION , 1989 .
[30] V. M. Sandeep,et al. Spatial analysis of the sensitivity of wheat yields to temperature in India , 2015 .
[31] James W. Jones,et al. The Agricultural Model Intercomparison and Improvement Project (AgMIP): Protocols and Pilot Studies , 2013 .
[32] P. Aggarwal,et al. Vulnerability of wheat production to climate change in India , 2014 .
[33] T. Ouarda,et al. Nonstationary warm spell frequency analysis integrating climate variability and change with application to the Middle East , 2019, Climate Dynamics.
[34] A. Mondal,et al. On the rarity of the 2015 drought in India: A country-wide drought atlas using the multivariate standardized drought index and copula-based severity-duration-frequency curves , 2020 .
[35] R. Sendhil,et al. Tracking the Performance of Wheat Production in Uttar Pradesh , 2019, Indian Journal of Economics and Development.
[36] H. Singh,et al. Growth and Instability in Wheat Production: A Region Wise Analysis of Uttar Pradesh, India , 2017 .
[37] Dongxiao Wang,et al. Statistical modeling and CMIP5 simulations of hot spell changes in China , 2015, Climate Dynamics.
[38] D. Pierson,et al. Examination of change factor methodologies for climate change impact assessment , 2011 .
[39] Russell S. Vose,et al. Maximum and minimum temperature trends for the globe: An update through 2004 , 2005 .
[40] J. Porter,et al. Temperatures and the growth and development of wheat: a review , 1999 .
[41] G. Clow,et al. The Diurnal Temperature Range in CMIP6 Models: Climatology, Variability, and Evolution , 2020, Journal of Climate.
[42] M. Jones,et al. Modeling European hot spells using extreme value analysis , 2014 .
[43] Thomas C. Peterson,et al. Maximum and Minimum Temperature Trends for the Globe , 1997 .
[44] Reinhard Furrer,et al. Statistical modeling of hot spells and heat waves. , 2010 .
[45] Guoyong Leng,et al. Crop yield sensitivity of global major agricultural countries to droughts and the projected changes in the future , 2019, The Science of the total environment.
[46] A. Mondal,et al. Modeling non-stationarity in intensity, duration and frequency of extreme rainfall over India , 2015 .
[47] Xuebin Zhang,et al. Evaluation of the CMIP6 multi-model ensemble for climate extreme indices , 2020 .
[48] G. M. Paulsen,et al. Mode of high temperature injury to wheat during grain development , 1984 .
[49] J. I. Ortiz-Monasterio,et al. Climate change: Can wheat beat the heat? , 2008 .
[50] F. Piontek,et al. The Inter-Sectoral Impact Model Intercomparison Project (ISI–MIP): Project framework , 2013, Proceedings of the National Academy of Sciences.
[51] A. Mondal,et al. On the role of rainfall deficits and cropping choices in loss of agricultural yield in Marathwada, India , 2020 .
[52] G. M. Paulsen,et al. High-temperature effects on photosynthetic processes in temperate and tropical cereals , 1999 .
[53] Narasimha D. Rao,et al. Sensitivity of grain yields to historical climate variability in India , 2019, Environmental Research Letters.
[54] Upmanu Lall,et al. Assessing the economic impact of a low-cost water-saving irrigation technology in Indian Punjab: the tensiometer , 2018 .
[55] T. Wheeler,et al. Effect of High Temperature Stress at Anthesis on Grain Yield and Biomass of Field-grown Crops of Wheat , 1998 .
[56] H. Akaike. A new look at the statistical model identification , 1974 .
[57] Agriculture: Wheat crops feel the heat , 2012 .
[58] Veronika Eyring,et al. Overview of the Coupled Model Intercomparison Project Phase 6 (CMIP6) experimental design and organization , 2015 .
[59] J. Palta,et al. Heat Stress in Wheat during Reproductive and Grain-Filling Phases , 2011 .
[60] S. Davis,et al. Increasing probability of mortality during Indian heat waves , 2017, Science Advances.
[61] D. Tian,et al. Impact of climate change on storage conditions for major agricultural commodities across the contiguous United States , 2020, Climatic Change.
[62] J. Abaurrea,et al. Modelling the occurrence of heat waves in maximum and minimum temperatures over Spain and projections for the period 2031-60 , 2018 .
[63] A. Aghakouchak,et al. Global warming and changes in risk of concurrent climate extremes: Insights from the 2014 California drought , 2014 .
[64] S. Lopez-Ridaura,et al. Performance of portfolios of climate smart agriculture practices in a rice-wheat system of western Indo-Gangetic plains , 2018 .
[65] R. DeFries,et al. Winter crop sensitivity to inter-annual climate variability in central India , 2014, Climatic Change.
[66] W. Cao,et al. Leaf senescence and grain filling affected by post-anthesis high temperatures in two different wheat cultivars , 2007, Plant Growth Regulation.
[67] F. Hao,et al. Probabilistic evaluation of the impact of compound dry-hot events on global maize yields. , 2019, The Science of the total environment.
[68] Elizabeth A. Ainsworth,et al. Genetic strategies for improving crop yields , 2019, Nature.
[69] James W. Jones,et al. Uncertainty in Simulating Wheat Yields Under Climate Change , 2013 .
[70] N. Akter,et al. Heat stress effects and management in wheat. A review , 2017, Agronomy for Sustainable Development.
[71] M. Janga Reddy,et al. Application of copulas for derivation of drought severity–duration–frequency curves , 2012 .
[72] J. I. Ortiz-Monasterio,et al. Extreme heat effects on wheat senescence in India , 2012 .
[73] Stefan Lange,et al. Trend-preserving bias adjustment and statistical downscaling with ISIMIP3BASD (v1.0) , 2019, Geoscientific Model Development.
[74] D. Lobell,et al. Comparing estimates of climate change impacts from process-based and statistical crop models , 2017, Environmental Research Letters.
[75] N. Smirnov. Table for Estimating the Goodness of Fit of Empirical Distributions , 1948 .
[76] P. Kyle,et al. Land-use futures in the shared socio-economic pathways , 2017 .
[77] W. Wilhelm,et al. Growing degree-days: one equation, two interpretations , 1997 .