Future socio-ecosystem productivity threatened by compound drought–heatwave events
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W. Schlenker | P. Gentine | Shenglian Guo | N. Hanasaki | L. Xiong | L. Gu | Jiabo Yin | Y. Pokhrel | L. Slater
[1] P. Gentine,et al. Global Increases in Lethal Compound Heat Stress: Hydrological Drought Hazards Under Climate Change , 2022, Geophysical Research Letters.
[2] Jui-Pin Wang,et al. Projection of droughts and their socioeconomic exposures based on terrestrial water storage anomaly over China , 2022, Science China Earth Sciences.
[3] I. C. Prentice,et al. Retraction Note: A constraint on historic growth in global photosynthesis due to increasing CO2 , 2022, Nature.
[4] Y. Pokhrel,et al. Implications of changes in climate and human development on 21st-century global drought risk. , 2022, Journal of environmental management.
[5] J. Zscheischler,et al. Precipitation trends determine future occurrences of compound hot–dry events , 2022, Nature Climate Change.
[6] I. C. Prentice,et al. RETRACTED ARTICLE: A constraint on historic growth in global photosynthesis due to increasing CO2 , 2021, Nature.
[7] Patrick R. Roehrdanz,et al. Mapping the irrecoverable carbon in Earth’s ecosystems , 2021, Nature Sustainability.
[8] W. Buermann,et al. Increasing impact of warm droughts on northern ecosystem productivity over recent decades , 2021, Nature Climate Change.
[9] L. Mentaschi,et al. Increased economic drought impacts in Europe with anthropogenic warming , 2021, Nature Climate Change.
[10] M. Trnka,et al. Recent European drought extremes beyond Common Era background variability , 2021, Nature Geoscience.
[11] T. Stacke,et al. Global terrestrial water storage and drought severity under climate change , 2021, Nature Climate Change.
[12] A. Mishra,et al. Increase in Compound Drought and Heatwaves in a Warming World , 2020, Geophysical Research Letters.
[13] Jinwei Dong,et al. A global moderate resolution dataset of gross primary production of vegetation for 2000–2016 , 2017, Scientific Data.
[14] P. Burek,et al. A quantitative evaluation of the issue of drought definition: a source of disagreement in future drought assessments , 2021, Environmental Research Letters.
[15] Deliang Chen,et al. Abrupt shift to hotter and drier climate over inner East Asia beyond the tipping point , 2020, Science.
[16] D. Lobell,et al. Changes in the drought sensitivity of US maize yields , 2020, Nature Food.
[17] J. Adamowski,et al. A century of observations reveals increasing likelihood of continental-scale compound dry-hot extremes , 2020, Science Advances.
[18] C. Liang,et al. Ecological restoration impact on total terrestrial water storage , 2020, Nature Sustainability.
[19] Jonas Ardö,et al. The FLUXNET2015 dataset and the ONEFlux processing pipeline for eddy covariance data , 2020, Scientific Data.
[20] C. Müller,et al. Emergent constraint on crop yield response to warmer temperature from field experiments , 2020, Nature Sustainability.
[21] R. Horton,et al. A typology of compound weather and climate events , 2020, Nature Reviews Earth & Environment.
[22] T. Jiang,et al. Population, urbanization and economic scenarios over the Belt and Road region under the Shared Socioeconomic Pathways , 2020, Journal of Geographical Sciences.
[23] J. Arblaster,et al. Australian hot and dry extremes induced by weakenings of the stratospheric polar vortex , 2019, Nature Geoscience.
[24] Pierre Gentine,et al. Land–atmosphere feedbacks exacerbate concurrent soil drought and atmospheric aridity , 2019, Proceedings of the National Academy of Sciences.
[25] Diego G. Miralles,et al. Amplification of mega-heatwaves through heat torrents fuelled by upwind drought , 2019, Nature Geoscience.
[26] Adell L. Amos,et al. Scope and limitations of drought management within complex human–natural systems , 2019, Nature Sustainability.
[27] Joseph Hamman,et al. How Do Modeling Decisions Affect the Spread Among Hydrologic Climate Change Projections? Exploring a Large Ensemble of Simulations Across a Diversity of Hydroclimates , 2019, Earth's Future.
[28] A. Arneth,et al. Beyond the extreme: recovery of carbon and water relations in woody plants following heat and drought stress , 2019, Tree physiology.
[29] Stefan Lange,et al. Trend-preserving bias adjustment and statistical downscaling with ISIMIP3BASD (v1.0) , 2019, Geoscientific Model Development.
[30] Vincent Humphrey,et al. GRACE-REC: a reconstruction of climate-driven water storage changes over the last century , 2019, Earth System Science Data.
[31] P. Gentine,et al. Projected increases in intensity, frequency, and terrestrial carbon costs of compound drought and aridity events , 2019, Science Advances.
[32] P. Gentine,et al. A global spatially contiguous solar-induced fluorescence (CSIF) dataset using neural networks , 2018, Biogeosciences.
[33] Matti Kummu,et al. Gridded global datasets for Gross Domestic Product and Human Development Index over 1990–2015 , 2018, Scientific Data.
[34] Chris Kilsby,et al. Future heat-waves, droughts and floods in 571 European cities , 2018 .
[35] P. Reich,et al. A common thermal niche among geographically diverse populations of the widely distributed tree species Eucalyptus tereticornis: No evidence for adaptation to climate‐of‐origin , 2017, Global change biology.
[36] S. Lange. Bias correction of surface downwelling longwave and shortwave radiation for the EWEMBI dataset , 2017 .
[37] J. Kimball,et al. Numerical Terradynamic Simulation Group 8-2017 Satellite Observations of Regional Drought Severity in the Continental United States Using GRACE-Based Terrestrial Water Storage Changes , 2018 .
[38] Andrej Ceglar,et al. Wheat yield loss attributable to heat waves, drought and water excess at the global, national and subnational scales , 2017 .
[39] Jesse W. Campbell,et al. Large historical growth in global terrestrial gross primary production , 2017, Nature.
[40] S. Seneviratne,et al. Dependence of drivers affects risks associated with compound events , 2017, Science Advances.
[41] T. Woollings,et al. Impact of Atmospheric Blocking on South America in Austral Summer , 2017 .
[42] Atul K. Jain,et al. Global patterns of drought recovery , 2015, Nature.
[43] P. Blanken,et al. The increasing importance of atmospheric demand for ecosystem water and carbon fluxes , 2016 .
[44] Fabrizio Durante,et al. A multivariate copula‐based framework for dealing with hazard scenarios and failure probabilities , 2016 .
[45] M. Burke,et al. Global non-linear effect of temperature on economic production , 2015, Nature.
[46] Amir AghaKouchak,et al. Substantial increase in concurrent droughts and heatwaves in the United States , 2015, Proceedings of the National Academy of Sciences.
[47] Nate G. McDowell,et al. On underestimation of global vulnerability to tree mortality and forest die-off from hotter drought in the Anthropocene , 2015 .
[48] F. Biondi,et al. Pervasive drought legacies in forest ecosystems and their implications for carbon cycle models , 2015, Science.
[49] P. Waylen,et al. Increased risk of heat waves in Florida: Characterizing changes in bivariate heat wave risk using extreme value analysis , 2014 .
[50] P. Dirmeyer,et al. Evolving Land-Atmosphere Interactions over North America from CMIP5 Simulations , 2013 .
[51] S. Fankhauser,et al. Understanding the adaptation deficit: why are poor countries more vulnerable to climate events than rich countries? , 2013 .
[52] S. Seneviratne,et al. Climate extremes and the carbon cycle , 2013, Nature.
[53] D. Lobell,et al. The critical role of extreme heat for maize production in the United States , 2013 .
[54] R. Seager,et al. Temperature as a potent driver of regional forest drought stress and tree mortality , 2013 .
[55] Demetris Koutsoyiannis. Clausius–Clapeyron equation and saturation vapour pressure: simple theory reconciled with practice , 2012, European Journal of Physics.
[56] P. Ciais,et al. Europe-wide reduction in primary productivity caused by the heat and drought in 2003 , 2005, Nature.
[57] T. Vesala,et al. On the separation of net ecosystem exchange into assimilation and ecosystem respiration: review and improved algorithm , 2005 .
[58] C. Tucker,et al. Climate-Driven Increases in Global Terrestrial Net Primary Production from 1982 to 1999 , 2003, Science.
[59] Adrian Simmons,et al. Stratospheric water vapour and tropical tropopause temperatures in Ecmwf analyses and multi‐year simulations , 1999 .
[60] H. Akaike. A new look at the statistical model identification , 1974 .