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Arnold J G and Fohrer N. SWAT2000: current capabilities and research opportunities in applied watershed modelling. Hydrological processes, 2005, (19): 563~572.
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Krysanova V, Meiner A, Roosaare J, Vasilyev A. Simulation modelling of the coastal waters pollution from agricultural watershed. Ecological Modelling, 1989. 49: 7~29.
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Neitsch S L, Arnold, J G, Kiniry J R, et al. Soil and water assessment tool theoretical manual. Texas: Grassland Soil Water Research Laboratory, 2002.
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Gassman P W, Reyes M, Green C H, and Arnold J G. Review of peer-reviewed literature on the SWAT model. http://www.brc.tamus.edu/swat/pubs_3rdconf.html
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Fontaine T A, Cruickshank T S, Arnold J G, et al. Development of a snowfall–snowmelt routine for mountainous terrain for the soil water assessment tool (SWAT). Journal of Hydrology, 2002, 262:209~223.
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Kang M S, Park S W, Lee J J, Yoo K H. Applying SWAT for TMDL programs to a small watershed containing rice paddy fields. Agricultural Water Management, 2005, in press.
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Weber A, Fohrer N, M?觟ller D. Long-term land use changes in a mesoscale watershed due to socio-economic factors — effects on landscape structures and functions. Ecological Modeling, 2001, 140: 125~140.
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Céline C, Ghislain de M, Faycal B, Giovanni B. A long-term hydrological modeling of the Upper Guadiana river basin (Spain). Physics and Chemistry of the Earth, 2003(28):193~200.
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Stonefelt M D, Fontaine T A, Hotchkiss RH. Impacts of climate change on water yield in the upper Wind River basin. Journal of the American Water Resources Association, 2000, 36(2): 321~336.
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Eckhardta K and Ulbrichb U. Potential impacts of climate change on groundwater recharge and streamflow in a central European low mountain range. Journal of Hydrology, 2003 (284): 244~252.
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Rosenberg N J, Epstein D L, Wang D, Vail L, Srinivasan R, Arnold J G. Possible impacts of global warming on the hydrology of the Ogallala aquifer region. Climatic Change, 1999, 42(4): 677~692.
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Wollmuth J C, Eheart J W. Surface water withdrawal allocation and trading systems for traditionally riparian areas. Journal of the American Water Resources Association, 2000. 36(2): 293~303.
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Qiu Zeyuan and Prato Tony. Physical determinants of economic value of riparian buffers in an agricultural watershed. Journal of the American Water Resources Association, 2001, 37(2): 295~303.
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Santhi C, Srinivasan R, Arnold J G, Williams J.R. A modeling approach to evaluate the impacts of water quality management plans implemented in a watershed in Texas. Environmental Modelling & Software, 2005, in press
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Srinivasan R, Arnold J G, Jones C A. Hydrologic modeling of the United States with the Soil and Water Assessment Tool. Water Resources Development, 1998, 14(3): 315~325.
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Tripathi M P, Panda R K, Raghuwanshi N S. Identification and Prioritisation of Critical Sub-watersheds for Soil Conservation Management using the SWAT Model. Biosystems Engineering, 2003, 85(3): 365~379.
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Francos A, Bidoglio G, Galbiati L, Bouraoui F, et al. Hydrological and water quality modeling in a medium-sized coastal basin. Physics and Chemistry of the Earth (B), 2001, 26(1): 47~52.
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Mamillapalli S, Srinivasan R, Arnold J G and Engel B A. Effect of spatial variability on basin scale modeling. In: Proceedings of the Third International Conference/Workshop on Intergrading GIS and environmental modeling. National Center for Geographic Information and Analysis, Santa Barbara, California, 1996. Available at http://www.ncgia.ucsb.edu/conf/
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Bingner R L, Garbrecht J, Arnold J G, and Srinivasan R. Effect of watershed subdivision on simulation runoff and fine sediment yield. Transactions of the American Society of Agricultural Engineers, 1997, 40(5): 1329~1335.
[26]
FitzHugh T W and MacKay D S. Impacts of input parameter spatial aggregation on an agricultural Non-point Source Pollution Model. Journal of Hydrology, 2000(236): 35~53.
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Jha M, Gassman P W, Secchi S, Gu R. and Arnold J G. Effect of watershed subdivision on SWAT flow, sediment, and nutrient predictions. Journal of the American Water Resources Association, 2004, 40(3): 811~825.
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Chaplot V. Impact of DEM mesh size and soil map scale on SWAT runoff, sediment, and NO3–N loads predictions. Journal of Hydrology, 2005, in press.
Griensven A V and Bauwens W. Application and evaluation of ESWAT on the Dender basin and the Wister Lake basin. Hydrological processes, 2005, (19): 827~838.
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Eckhardt K, Haverkamp S, Fohrer N, Frede H G. SWAT-G a version of SWAT99.2 modified for application to low mountain range catchments. Physics and Chemistry of the Earth, 2002, 27(9/10): 641~644.
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Sophocleous M A, Koelliker J K, Govindaraju R S, Birdie T, Ramireddygari S R, Perkins S P. Integrated numerical modeling for basinwide water management: the case of the Rattlesnake Creek basin in south-central Kansas. Journal of Hydrology, 1999, 214: 179~196.
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Watson B M, Selvalingam S. and Ghafouri M. Improved simulation of forest growth for the Soil and Water Assessment Tool (SWAT). http://www.brc.tamus.edu/swat/pubs_3rdconf.html
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Arnold J G and Allen P M. Estimating hydrologic budgets for three Illinois watersheds. Journal of Hydrology, 1996(176): 57~77.
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Arnold J G, Srinivasan R, Muttiah R S, Allen P M. Continental scale simulation of the hydrologic balance. Journal of the American Water Resources Association, 1999, 35(5): 1037~1051.
[40]
Eckhardt K and Arnold J G. Automatic calibration of a distributed catchment model. Journal of Hydrology, 2001(251): 103~109.
[41]
Manguerra H B and Engel B A. Hydrologic parameterization of watersheds for runoff prediction using SWAT. Journal of the American Water Resources Association, 1998, 34(5): 1149~1162.
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Chanasyk D S, Mapfumo E, Willms W. Quantification and simulation of surface runoff from fescue grassland watersheds. Agricultural Water Management, 2003(59): 137~153.
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Gosain A K, Rao S, Srinivasan R. and Reddy N G. Return-flow assessment for irrigation command in the Palleru river basin using SWAT model. Hydrological processes, 2005, (19): 673~682.
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VanLiew M W and Garbrecht J. Hydrologic simulation of the Little Washita River Experimental Watershed using SWAT. Journal of the American Water Resources Association, 2003, 39(2): 413~426.
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Fohrer N, M?觟ller D, Steiner N. An interdisciplinary modeling approach to evaluate the effects of land use change. Physics and Chemistry of the Earth, 2002, 27: 655~662.
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Hernandez M, Miller S N, Goodrich D C, et al. Modeling runfoff response to land cover and rainfall spatial variability in semi-arid watersheds. Environmental Monitoring and Assessment, 2000(64): 285~298.
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Andrea W, Fohrer N, M?觟ller D. Long-term land use changes in a mesoscale watershed due to socio-economic factors-Effects on landscape structures and functions. Ecological modeling, 2001, 140(1/2): 125~140.
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Cruise J F, Limaye A S, Al-Abed N. Assessment of impacts of climate change on water quality in the southeastern United States. Journal of the American Water Resources Association, 1999, 35(6): 1539~1550.
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Hotchkiss R H, Jorgensen S F, Stone M C, Fontaine T A. Regulated river modeling for climate change impact assessment: the Missouri river. Journal of the American Water Resources Association, 2000, 36(2): 375~386.
[50]
Saleh A, Arnold J G, Gassman P W, et al. Application of SWAT for the Upper North Bosque River Watershed. Transactions of the American Society of Agricultural Engineers, 2000, 43(5): 1077~1087.
[51]
Qiu Zeyuan and Prato Tony. Economic evaluation of riparian buffers in an agricultural watershed. Journal of the American Water Resources Association, 1998, 34(3): 877~890.