References

  1. C.M. Manaswi, A.K. Thawait, Application of soil and water assessment tool for runoff modeling of Karam River basin in Madhya Pradesh, Int. J. Sci. Eng. Technol., 5 (2014) 529–532.
  2. V. Devidas, S.K. Ukaran, Watershed management – estimation of runoff and geomorphological analysis of composite watershed: RS and GIS approach, Int. J. Res. Appl. Sci. Eng. Technol., 9 (2017) 11–18.
  3. M.K. Jat, P.K. Gargm, D. Khare, Monitoring and modelling of urban sprawl using remote sensing and GIS techniques, Int. J. Appl. Earth Obs. Geoinf., 10 (2008) 26–43.
  4. D. Maktav, F.S. Erbek, C. Jurgens, Remote sensing of urban areas, Int. J. Remote Sens., 26 (2005) 655–659.
  5. X. Liu, J. Li, Application of SCS model in estimation of runoff from small watershed in Loes Plateau of China, China, Geogr. Sci., 18 (2008) 235–241.
  6. H. Li, Y. Zhang, X. Zhou, Predicting surface runoff from catchment to large region, Adv. Meteorol., 2015 (2015) 1–13.
  7. H. Li, Y. Zhang, J. Vaze, B. Wang, Separating effects of vegetation change and climate variability using hydrological modeling and sensitivity–based approaches, J. Hydrol., 420 (2012) 403–418.
  8. I. Haddeland, D.B. Clark, Franssen, Multimodel estimate of the global terrestrial water balance: set-up and first results, J. Hydrometeorol., 12 (2011) 869–884.
  9. A. Abu El-Nasar, J.K. Arnold, J. Feyen, Berlamont, Modelling the hydrology of a catchment using a distributed and a semidistributed model, Hydrol. Process., 19 (2005) 573–587.
  10. N. Kamuju, Rainfall-runoff estimation and comparative analysis using advanced geospatial digital hydrological modelling tools, ArcCN-Runoff and ArcSWAT, Int. J. Geo-inf. Geol. Sci., 2 (2015) 1–5.
  11. S. Nagraj, S. Patil, R.V. Raikar, S. Manoj, Runoff modeling for Bhima River using SWAT hydrological model, Int. J. Sci. Eng. Technol., 3 (2014) 923–928.
  12. Y. Wu, J. Chen, Simulation of nitrogen and phosphorous loads in the Dongjian River basin in South China using SWAT, Front. Earth Sci. China, 3 (2009) 273–278.
  13. Y. Chen, C.-Y. Xu, X. Chen, Y. Xu, Y. Yin, L. Gao, M. Liu, Uncertainty in simulation of land-use change impact on catchment runoff with multi-timescales based on the comparison of the HSPF and SWAT models, J. Hydrol., 573 (2019) 486–500.
  14. H. Briak, R. Moussadek, K. Aboumaria, R. Mrabet, Assessing sediment yield in Kalaya gauged watershed (Northern Morocco) using GIS and SWAT model, Int. J. Water Conserv. Res., 4 (2016) 177–185.
  15. P. Shi, C. Chen, R. Srinivasan, X. Zhang, T. Cai, X. Fang, S. Qu, X. Chen, Q. Li, Evaluating the SWAT model for hydrological modeling in the Xixian and a comparison with the XAJ model, Water Resour. Manage., 25 (2011) 2595–26122.
  16. Q. Duan, S. Sorooshian, V.K. Gupta, Effective and efficient global optimization for conceptual rainfall-runoff model, Water Resour. Res., 28 (1992) 1015–1031.
  17. J. Chen, Y. Wu, Advancing representation of hydrologic processes in the soil and water assessment tool (SWAT) through integration of the Topographic Model (TOPMODEL) feature, J. Hydrol., 420 (2012) 319–328.
  18. S.L. Neitsch, J.G. Arnold, J.R. Kiniry, R. Srinivasan, J.R. Williams, Soil and Water Assessment Tool Input/Output File Documentation Version 2009, Texas Water Resources Institute Technical Report No. 365, Texas A&M University System, College Station, Texas 77843-2118, 2011.
  19. M.K. Shrestha, F. Recknagel, J. Frizenschaf, W. Meyer, Assessing SWAT models based on single and multi-site calibration for the simulation of flow and nutrient loads in the semi-arid Onkaparinga catchment in South Australia, Agric. Water Manage., 175 (2016), doi: 10.1016/j.agwat.2016.02.009.
  20. W. Cao, W.B. Bowden, T. Davie, A. Fenemor, Multi-variable and multi-site calibration and validation of SWAT in a large mountainous catchment with high spatial variability, Hydrol. Process., 20 (2006) 1057–1073.
  21. H. Briak, R. Moussadek, K. Aboumaria, R. Mrabet, Assessing sediment yield in Kalaya gauged watershed (Northern Morocco) using GIS and SWAT model, Int. Soil Water Conserv. Res., 4 (2016) 177–185.
  22. B. Uniyal, J. Dietrich, C. Vasilakos, O. Toraki, Evaluation of SWAT simulated soil water moisture at catchment scale by field measurements and Landsat derived indices, Agric. Water Manage., 193 (2017) 55–70.
  23. O. Tamm, S. Maasikamae, A. Padari, T. Tamm, Modelling the effects of land use and climate change on the water resources in the eastern Baltic Sea region using the SWAT model, Catena, 167 (2018) 78–89.
  24. D.L. Fricklin, B.L. Barnhart, J.H. Knouft, I.T. Stewart, E.P. Maurer, S.L. Letsinger, G.W. Whittaker, Climate change and stream temperature projections in the Columbia River basin: habitat implications of spatial variation in hydrologic drives, Hydrol. Earth Syst. Sci., 18 (2014) 4897–4912.
  25. D. Balin, H. Lee, M. Rode, Is point uncertain rainfall likely to have a great impact on distributed complex hydrological modeling, Water Resour. Res., 46 (2010) 1–13.
  26. J. Gao, Y.A. Shesshukov, H. Yen, J. Michael, Impacts of alternative climate information on hydrologic processes with SWAT: a comparison of NCDC, PRISM and NEXRAD datasets, Catena, 156 (2017) 353–364.
  27. G. Achamyeleh, L. Mengistu, Van Renburg, Y.E. Woyessa, Techniques for calibration and validation of SWAT model in data scare arid and semi-arid catchments in South Africa, J. Hydrol.: Regional Stud., 25 (2019).
  28. J.G. Arnold, P.M. Allen, Bernhardt, A comprehensive surface groundwater flow model, J. Hydrol., 142 (1993) 47–69.
  29. J.G. Arnold, R. Srinivasan, R.S. Muttiah, J.R. Williams, Large area hydrologic modeling and assessment part I: model development, JAWRA, 34 (1998) 73–90.
  30. T. Kassa, G. Foerch, Impact of Land Use/Cover Dynamics on Stream Flow: The Case of Hare Watershed, Ethiopia, Proceedings of 4th International SWAT Conference, 2005.
  31. K.C. Abbaspour, C.A. Johnson, M.T. Van Genuchten, Estimating uncertain flow and transport parameters using a sequential uncertainty fitting procedure, Vadose Zone J., 3 (2004) 1340–135.
  32. K.C. Abbaspour, User manual for SWAT-CUP, SWAT Calibration and Uncertainty Analysis Programs, Swiss Federal Institute of Aquatic Science and Technology, Eawag, Dubendorf, Switzerland, 2007.