Increased ecohydrological drying over terrestrial ecosystems
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Qinglong You | N. Pepin | Laurent Z. X. Li | Deliang L. Chen | P. Zhai | Guodong Sun | Z. Zuo | Mingcai Li | Zheng Jin | Zheng Jin
[1] Yongqiang Zhang,et al. Increasing Tibetan Plateau terrestrial evapotranspiration primarily driven by precipitation , 2022, Agricultural and Forest Meteorology.
[2] Yongqiang Zhang,et al. Calibration‐Free Complementary Relationship Estimates Terrestrial Evapotranspiration Globally , 2021 .
[3] Jianping Huang,et al. Multifaceted characteristics of dryland aridity changes in a warming world , 2021, Nature Reviews Earth & Environment.
[4] Wei Zhao,et al. Distinct vegetation response to drying and wetting trends across an aridity threshold , 2021 .
[5] Atul K. Jain,et al. Recent global decline of CO2 fertilization effects on vegetation photosynthesis , 2020, Science.
[6] Qinglong You,et al. Fingerprints of Anthropogenic Influences on Vegetation Change Over the Tibetan Plateau From an Ecohydrological Diagnosis , 2020, Geophysical Research Letters.
[7] J. Thepaut,et al. The ERA5 global reanalysis , 2020, Quarterly Journal of the Royal Meteorological Society.
[8] Ke Zhang,et al. Increased control of vegetation on global terrestrial energy fluxes , 2020, Nature Climate Change.
[9] R. Solé,et al. Global ecosystem thresholds driven by aridity , 2020, Science.
[10] P. Ciais,et al. Characteristics, drivers and feedbacks of global greening , 2019, Nature Reviews Earth & Environment.
[11] Wenbin Liu,et al. Complementary‐Relationship‐Based Modeling of Terrestrial Evapotranspiration Across China During 1982–2012: Validations and Spatiotemporal Analyses , 2019, Journal of Geophysical Research: Atmospheres.
[12] V. Brovkin,et al. China and India lead in greening of the world through land-use management , 2019, Nature Sustainability.
[13] J. Canadell,et al. Lower land-use emissions responsible for increased net land carbon sink during the slow warming period , 2018, Nature Geoscience.
[14] J. Canadell,et al. Recent increases in terrestrial carbon uptake at little cost to the water cycle , 2017, Nature Communications.
[15] I. C. Prentice,et al. Recent pause in the growth rate of atmospheric CO2 due to enhanced terrestrial carbon uptake , 2016, Nature Communications.
[16] Y. Guan,et al. Land-Cover Characterization and Aridity Changes of South America (1982–2006): An Attribution by Ecohydrological Diagnostics , 2016 .
[17] N. Verhoest,et al. GLEAM v3: satellite-based land evaporation and root-zone soil moisture , 2016 .
[18] J. Canadell,et al. Greening of the Earth and its drivers , 2016 .
[19] Marc Macias-Fauria,et al. Sensitivity of global terrestrial ecosystems to climate variability , 2016, Nature.
[20] Jianping Huang,et al. Accelerated dryland expansion under climate change , 2016 .
[21] Margaret S. Torn,et al. Vegetation controls on surface heat flux partitioning, and land‐atmosphere coupling , 2015 .
[22] Shan Guo,et al. Vegetation Dynamics on the Tibetan Plateau (1982–2006): An Attribution by Ecohydrological Diagnostics , 2015 .
[23] B. Poulter,et al. Detection and attribution of vegetation greening trend in China over the last 30 years , 2015, Global change biology.
[24] T. McVicar,et al. Impact of CO2 fertilization on maximum foliage cover across the globe's warm, arid environments , 2013 .
[25] S. J. Birks,et al. Terrestrial water fluxes dominated by transpiration , 2013, Nature.
[26] Alessandro Anav,et al. Global Data Sets of Vegetation Leaf Area Index (LAI)3g and Fraction of Photosynthetically Active Radiation (FPAR)3g Derived from Global Inventory Modeling and Mapping Studies (GIMMS) Normalized Difference Vegetation Index (NDVI3g) for the Period 1981 to 2011 , 2013, Remote. Sens..
[27] T. Holmes,et al. Global land-surface evaporation estimated from satellite-based observations , 2010 .
[28] T. McMahon,et al. Updated world map of the Köppen-Geiger climate classification , 2007 .
[29] H. Haberl,et al. Quantifying and mapping the human appropriation of net primary production in earth's terrestrial ecosystems , 2007, Proceedings of the National Academy of Sciences.
[30] C. Tucker,et al. Analysis of Sahelian vegetation dynamics using NOAA-AVHRR NDVI data from 1981–2003 , 2005 .
[31] C. Tucker,et al. Climate-Driven Increases in Global Terrestrial Net Primary Production from 1982 to 1999 , 2003, Science.
[32] Lars Eklundh,et al. Vegetation index trends for the African Sahel 1982–1999 , 2003 .
[33] I. C. Prentice,et al. Climatic Control of the High-Latitude Vegetation Greening Trend and Pinatubo Effect , 2002, Science.
[34] Bruce T. Milne,et al. A scale invariant coupling of plants, water, energy, and terrain , 2002 .
[35] Khaled H. Hamed,et al. A modified Mann-Kendall trend test for autocorrelated data , 1998 .
[36] C. Tucker,et al. Increased plant growth in the northern high latitudes from 1981 to 1991 , 1997, Nature.
[37] C. J. Tucker,et al. Relationship between atmospheric CO2 variations and a satellite-derived vegetation index , 1986, Nature.
[38] A. Arneth,et al. University of Birmingham Current challenges of implementing anthropogenic land-use and land-cover change in models contributing to climate change assessments , 2017 .
[39] G. Bonan,et al. Effects of boreal forest vegetation on global climate , 1992, Nature.