Three decades of multi-dimensional change in global leaf phenology (original) (raw)
References
Bonan, G. B. Forests and climate change: Forcings, feedbacks, and the climate benefits of forests. Science320, 1444–1449 (2008). ArticleCAS Google Scholar
Myhre, G. et al. in Climate Change 2013: The Physical Science Basis (eds Stocker, T. F. et al.) 659–740 (IPCC, Cambridge Univ. Press, 2013). Google Scholar
Both, C., Bouwhuis, S., Lessells, C. M. & Visser, M. E. Climate change and population declines in a long-distance migratory bird. Nature441, 81–83 (2006). ArticleCAS Google Scholar
Post, E. et al. Ecological dynamics across the Arctic associated with recent climate change. Science325, 1355–1358 (2009). ArticleCAS Google Scholar
Thomas, C. D. et al. Extinction risk from climate change. Nature427, 145–148 (2004). ArticleCAS Google Scholar
Zhu, W. et al. Extension of the growing season due to delayed autumn over mid and high latitudes in North America during 1982–2006. Glob. Ecol. Biogeogr.21, 260–271 (2012). Article Google Scholar
White, M. A. et al. Intercomparison, interpretation, and assessment of spring phenology in North America estimated from remote sensing for 1982–2006. Glob. Change Biol.15, 2335–2359 (2009). Article Google Scholar
Zhou, L. et al. Variations in northern vegetation activity inferred from satellite data of vegetation index during 1981 to 1999. J. Geophys. Res.106, 20069–20083 (2001). Article Google Scholar
Nemani, R. R. et al. Climate-driven increases in global terrestrial net primary production from 1982 to 1999. Science300, 1560–1563 (2003). ArticleCAS Google Scholar
Ciais, P. et al. Europe-wide reduction in primary productivity caused by the heat and drought in 2003. Nature437, 529–533 (2005). ArticleCAS Google Scholar
Zhao, M. & Running, S. W. Drought-induced reduction in global terrestrial net primary production from 2000 through 2009. Science329, 940–943 (2010). ArticleCAS Google Scholar
Running, S. W. et al. A continuous satellite-derived measure of global terrestrial primary production. Bioscience54, 547–560 (2004). Article Google Scholar
De Jong, R., Verbesselt, J., Schaepman, M. E. & de Bruin, S. Trend changes in global greening and browning: Contribution of short-term trends to longer-term change. Glob. Change Biol.18, 642–655 (2012). Article Google Scholar
Scheffer, M. et al. Anticipating critical transitions. Science338, 344–348 (2012). ArticleCAS Google Scholar
Parmesan, C. & Yohe, G. A globally coherent fingerprint of climate change impacts across natural systems. Nature421, 37–42 (2003). ArticleCAS Google Scholar
Root, T., Price, J. & Hall, K. Fingerprints of global warming on wild animals and plants. Nature421, 57–60 (2003). ArticleCAS Google Scholar
Menzel, A. et al. European phenological response to climate change matches the warming pattern. Glob. Change Biol.12, 1969–1976 (2006). Article Google Scholar
Reyes-Fox, M. et al. Elevated CO2 further lengthens growing season under warming conditions. Nature510, 259–262 (2014). ArticleCAS Google Scholar
Freedman, J., Fitzjarrald, D., Moore, K. & Sakai, R. Boundary layer clouds and vegetation–atmosphere feedbacks. J. Clim.14, 180–197 (2001). Article Google Scholar
Samanta, A. et al. Comment on “Drought-induced reduction in global terrestrial net primary production from 2000 through 2009”. Science333, 1093 (2011). ArticleCAS Google Scholar
Ray, D. K., Ramankutty, N., Mueller, N. D., West, P. C. & Foley, J. A. Recent patterns of crop yield growth and stagnation. Nature Commun.3, 1293 (2012). Article Google Scholar
Olsson, L., Eklundh, L. & Ardö, J. A recent greening of the Sahel—trends, patterns and potential causes. J. Arid Environ.63, 556–566 (2005). Article Google Scholar
Paruelo, J. M., Garbulsky, M. F., Guerschman, J. P. & Jobbágy, E. G. Two decades of Normalized Difference Vegetation Index changes in South America: Identifying the imprint of global change. Int. J. Remote Sensing25, 2793–2806 (2004). Article Google Scholar
Lehmann, C. E. R. et al. Savanna vegetation–fire–climate relationships differ among continents. Science343, 548–552 (2014). ArticleCAS Google Scholar
Higgins, S. I., Delgado-Cartay, M. D., February, E. C. & Combrink, H. J. Is there a temporal niche separation in the leaf phenology of savanna trees and grasses? J. Biogeogr.38, 2165–2175 (2011). Article Google Scholar
Flato, G. J. et al. in Climate Change 2013: The Physical Science Basis (eds Stocker, T. F. et al.) 741–866 (IPCC, Cambridge Univ. Press, 2013). Google Scholar
Field, C. B., Jackson, R. B. & Mooney, H. A. Stomatal responses to increased CO2: Implications from the plant to the global scale. Plant Cell Environ.18, 1214–1225 (1995). Article Google Scholar
Buitenwerf, R., Bond, W. J., Stevens, N. & Trollope, W. S. W. Increased tree densities in South African savannas: > 50 years of data suggests CO2 as a driver. Glob. Change Biol.18, 675–684 (2012). Article Google Scholar
Poulter, B. et al. Contribution of semi-arid ecosystems to interannual variability of the global carbon cycle. Nature509, 600–603 (2014). ArticleCAS Google Scholar
Pinzon, J. E. & Tucker, C. J. A non-stationary 1981–2012 AVHRR NDVI3g time series. Remote Sensing6, 6929–6960 (2014). Article Google Scholar
Fridley, J. D. Extended leaf phenology and the autumn niche in deciduous forest invasions. Nature485, 359–362 (2012). ArticleCAS Google Scholar