References
- 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.
- 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.
- 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.
- D. Maktav, F.S. Erbek, C. Jurgens, Remote sensing of urban
areas, Int. J. Remote Sens., 26 (2005) 655–659.
- 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.
- H. Li, Y. Zhang, X. Zhou, Predicting surface runoff from
catchment to large region, Adv. Meteorol., 2015 (2015) 1–13.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- Q. Duan, S. Sorooshian, V.K. Gupta, Effective and efficient
global optimization for conceptual rainfall-runoff model, Water
Resour. Res., 28 (1992) 1015–1031.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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.
- 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).
- J.G. Arnold, P.M. Allen, Bernhardt, A comprehensive surface
groundwater flow model, J. Hydrol., 142 (1993) 47–69.
- 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.
- 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.
- 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.
- 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.