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Tang, Longlong; Ii, Ryouta; Tokimatsu, Koji; Itsubo, Norihiro. 2018. Development of human health damage factors related to CO2 emissions by considering future socioeconomic scenarios. [The International Journal of Life Cycle Assessment] . 23(12): 2288-2299 DOI: https://doi.org/10.1007/s11367-015-0965-9
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Ercin, A. Ertug; Hoekstra, Arjen Y. 2014. Water footprint scenarios for 2050: A global analysis. [Environment International] . 64: 71-82 DOI: https://doi.org/10.1016/j.envint.2013.11.019
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Sakschewski, Boris; von Bloh, Werner; Huber, Veronika; Müller, Christoph; Bondeau, Alberte. 2014. Feeding 10 billion people under climate change: How large is the production gap of current agricultural systems?. [Ecological Modelling] . 288: 103-111 DOI: https://doi.org/10.1016/j.ecolmodel.2014.05.019
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Bodirsky, B. L.; Popp, A.; Weindl, I.; Dietrich, J. P.; Rolinski, S.; Scheiffele, L.; Schmitz, C.; Lotze-Campen, H. 2012. N2O emissions from the global agricultural nitrogen cycle – current state and future scenarios. [Biogeosciences] . 9(10): 4169-4197 DOI: https://doi.org/10.5194/bg-9-4169-2012
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Droogers, P.; Immerzeel, W. W.; Terink, W.; Hoogeveen, J.; Bierkens, M. F. P.; van Beek, L. P. H.; Debele, B. 2012. Water resources trends in Middle East and North Africa towards 2050. [Hydrology and Earth System Sciences] . 16(9): 3101-3114 DOI: https://doi.org/10.5194/hess-16-3101-2012
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Nicholls, Robert J. 2004. Coastal flooding and wetland loss in the 21st century: changes under the SRES climate and socio-economic scenarios. [Global Environmental Change] . 14(1): 69-86 DOI: https://doi.org/10.1016/j.gloenvcha.2003.10.007
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