422
Hejazi, M., Edmonds, J., Clarke, L., Kyle, P., Davies, E., Chaturvedi, V., Wise, M., Patel, P., Eom,
J., Calvin, K., Moss, R., & Kim, S. (2014a). Long-term global water projections using six
socioeconomic scenarios in an integrated assessment modeling framework. Technological
Forecasting and Social Change, 81, 205–226. https://doi.org/10.1016/j.techfore.2013.05.006.
Hejazi, M. I., Edmonds, J., Clarke, L., Kyle, P., Davies, E., Chaturvedi, V., Wise, M., Patel, P.,
Eom, J., & Calvin, K. (2014b). Integrated assessment of global water scarcity over the 21st century under multiple climate change mitigation policies. Hydrology and Earth System Sciences,
18(8), 2859–2883. https://doi.org/10.5194/hess-18-2859-2014.
Hejazi, M. I., Voisin, N., Liu, L., Bramer, L., Fortin, D., Huang, M., Hathaway, J., Kyle, P., Leung,
L.  R., Li, H.-Y., Liu, Y., Patel, P., Pulsipher, T., Rice, J.  S., Tesfa, T.  K., Vernon, C.  R., &
Zhou, Y. (2015). 21st Century U.S. emissions mitigation increases water stress more than the
climate change it is mitigating. Proceedings of the National Academy of Sciences, 112(34),
10635–10640.
Hively, W.  D., Hapeman, C.  J., McConnell, L.  L., Fisher, T.  R., Rice, C.  P., McCarty, G.  W.,
Sadeghi, A. M., Whitall, D. R., Downey, P. M., & de Guzmán, G. T. N. (2011). Relating nutrient and herbicide fate with landscape features and characteristics of 15 subwatersheds in the
Choptank River watershed. Science of the Total Environment, 409(19), 3866–3878.
Jang, J.-H., Jung, K.-W., & Yoon, C. G. (2012). Modification of SWAT model for simulation of
organic matter in Korean watersheds. Water Science & Technology, 66(11), 2355–2362.
Khoi, D. N., & Suetsugi, T. (2014). Impact of climate and land-use changes on the hydrological processes and sediment yield—A case study for the Be River Catchment, Vietnam. Hydrological
Sciences Journal, 59(5), 1095–1108.
Lang, M., McCarty, G., Oesterling, R., & Yeo, I.-Y. (2013). Topographic metrics for improved
mapping of forested wetlands. Wetlands, 33(1), 141–155.
Luo, Y., Ficklin, D.  L., Liu, X., & Zhang, M. (2013). Assessment of climate change impacts
on hydrology and water quality with a watershed modeling approach. Science of the Total
Environment, 450, 72–82.
Michalak, A.  M., Anderson, E.  J., Beletsky, D., Boland, S., Bosch, N.  S., Bridgeman, T.  B.,
Chaffin, J. D., Cho, K., Confesor, R., & Daloğlu, I. (2013). Record-setting algal bloom in Lake
Erie caused by agricultural and meteorological trends consistent with expected future conditions. Proceedings of the National Academy of Sciences, 110(16), 6448–6452.
Miralles-Wilhelm, F., Clarke, L., Hejazi, M., Kim, S., Gustafson, K., Muñoz-Castillo, R., &
Graham, N. (2017). Physical impacts of climate change on water resources. World Bank
Discussion Paper.
Neitsch, S. L., Arnold, J. G., Kiniry, J. R., & Williams, J. R. (2011). Soil and Water Assessment Tool
theoretical documentation: Version 2009 (618p). Texas Water Resources Institute Technical
Report 406. Texas Water Resources Institute.
Palao, L. K. M., Dorado, M. M., Anit, K. P. A., & Lasco, R. D. (2013). Using the Soil and Water
Assessment Tool (SWAT) to assess material transfer in the Layawan watershed, Mindanao,
Philippines and its implications on payment for ecosystem services. Journal of Sustainable
Development, 6(6), 73–88.
SEI (Stockholm Environment Institute). (2001). WEAP: Water evaluation and planning system—
User guide. Boston, MA: SEI.
Sieber, J., Yates, D., Purkey, D., & Huber Lee, A. (2004). WEAP: A demand, priority and preference driven water planning model: Part 1: Model characteristics. Water International. https://
doi.org/10.1080/02508060508691893.
White, M., Santhi, C., Kannan, N., Arnold, J., Harmel, D., Norfleet, L., Allen, P., DiLuzio, M.,
Wang, X., & Atwood, J. (2014). Nutrient delivery from the Mississippi River to the Gulf of
Mexico and effects of cropland conservation. Journal of Soil and Water Conservation, 69(1),
26–40.
Yepsen, M., Baldwin, A. H., Whigham, D. F., McFarland, E., LaForgia, M., & Lang, M. (2014).
Agricultural wetland restorations on the USA Atlantic coastal plain achieve diverse native
wetland plant communities but differ from natural wetlands. Agriculture, Ecosystems &
Environment, 197, 11–20.
F. R. Miralles-Wilhelm
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