Abstract
Surendra Kumar Chandniha, Chinmayee Sahu, Santanu Mukherjee, Rupesh Kumar, Dharmendra Singh Tomar
Abstract
Authors
Institutions
No local reference links have been materialized yet.
No local citing links have been materialized yet.
Application and performance assessment of SWAT hydrological model over kharun river basin, Chhattisgarh, India
2019
Estimating uncertain flow and transport parameters using a sequential uncertainty fitting procedure
10.2136/vzj2004.1340 · 2004
Estimation of monthly snowmelt contribution to runoff using gridded meteorological data in SWAT model for upper alaknanda river basin, India
10.1007/s10661-023-12236-z · 2024
Calibration and uncertainty analysis for modelling runoff in the tambo river basin, Peru, using sequential uncertainty fitting Ver-2 (SUFI-2) algorithm
10.1177/1178622120988707 · 2021
Attribution and sensitivity analysis of runoff variation in the yellow river basin under climate change
10.3390/su142214981 · 2022
The NHDPlus dataset, watershed subdivision and SWAT model performance
10.1080/02626667.2014.916408 · 2015
Understanding the role of water scarcity in natural disaster vulnerability: an overview
10.1002/9781394345854.ch12 · 2025
Reconceptualizing HRU threshold definition in the soil and water assessment tool
10.1111/1752-1688.13000 · 2022
The soil and water assessment tool: historical development, applications, and future research directions
Provenance
crossref
Confidence 100%
openalex
Confidence 95%
datacite
Confidence 0%
10.13031/2013.23637 · 2007
Decomposition of the mean squared error and NSE performance criteria: implications for improving hydrological modelling
10.1016/j.jhydrol.2009.08.003 · 2009
Status of automatic calibration for hydrologic models: Comparison with multilevel expert calibration
10.1061/(asce)1084-0699(1999)4:2(135) · 1999
Threshold effects in HRU definition ofthe soil and water assessment tool
2015
Application of SWAT in an Indian river basin for modeling runoff, sediment and water balance
10.1007/s12665-016-6316-8 · 2017
Water balance modeling of tandula (India) reservoir catchment using SWAT
10.1007/s12517-020-5092-7 · 2020
Integrating SWAT and machine learning for streamflow simulation and runoff sensitivity in the Tawi watershed
10.1007/s44533-026-00049-1 · 2026
Observed field drainage and concentration dynamics reveal the importance of onsite mitigation of pesticide pollution in a rice growing area in eastern China
10.1016/j.agwat.2025.109578 · 2025
Infiltration, throughflow and overland flow
2019
Hydrological modeling with respect to impact of land-use and land-cover change on the runoff dynamics in godavari river basin using the HEC-HMS model
10.3390/ijgi7060206 · 2018
Advances in ecohydrological modelling with SWAT—A review
10.1623/hysj.53.5.939 · 2008
Hydroclimatic impact assessment using the SWAT model in India: state-of-the-art review
2023
Evaluating the use of goodness-of-fit measures in hydrologic and hydroclimatic model validation
10.1029/1998wr900018 · 1999
Cross-Comparing modelling approaches for hydrological ecosystem services in a semi-arid and highly anthropogenic area
2026
Developing groundwater for secure rural water supplies in Africa
10.1016/j.desal.2008.05.100 · 2009
Application of hydrological modeling in real-world scenarios in India: a critical review
10.1134/s0097807825602390 · 2026
SCS-CN method
2003
Use of contour-based DEMs for deriving and mapping topographic attributes
2002
Model evaluation guidelines for systematic quantification of accuracy in watershed simulations
10.13031/2013.23153 · 2007
Application of semi‐distributed hydrological model for basin level water balance of the ken basin of central India
10.1002/hyp.9950 · 2014
River flow forecasting through conceptual models, Part 1 - a discussion of principles
10.1016/0022-1694(70)90255-6 · 1970
Simulation of water balance components using SWAT model at sub catchment level
10.3390/su15021438 · 2023
Hydrological modelling of the vistula and odra river basins using SWAT
10.1080/02626667.2017.1321842 · 2017
Application of SWAT for the upper North Bosque river watershed
10.13031/2013.3000 · 2000
Influence of the spatial distribution of rain gauges on SWAT model calibration in two coastal river basins in Paraná State, Brazil
10.1590/2318-0331.312620250188 · 2026
Global water cycle: dynamics, interactions and emerging challenges
2026
SWAT model application and prediction uncertainty analysis in the Lake Tana basin, Ethiopia
10.1002/hyp.7457 · 2010
Hydrologic modeling of the iroquois river watershed using HSPF and SWAT
2004
Simulation of monthly streamflow using the SWAT model of the Ib river watershed, India
10.1016/j.hydres.2020.09.001 · 2020
Hydrologic modeling: progress and future directions
10.1186/s40562-018-0113-z · 2018
Hydrological simulation of the betwa river basin (India) using the SWAT model
10.1080/02626667.2016.1271420 · 2017
Assessing climate change impact on water balance components of a river basin using SWAT model
10.1007/s11269-015-1089-5 · 2015
Identifying dominant parameters in SWAT across subbasin and HRU scales using a two-step deep learning-assisted spatial sensitivity analysis
10.5194/hess-30-4095-2026 · doi-reference
On the validation of models
10.1080/02723646.1981.10642213 · doi-reference
Assessment of system responses in intensively irrigated stream–aquifer systems using SWAT-MODFLOW
10.3390/w11081576 · doi-reference
Suitability of SWAT for the conservation effects assessment project: comparison on USDA agricultural research service watersheds
10.1061/(asce)1084-0699(2007)12:2(173) · doi-reference
Assessing climate change impact on water balance components of a river basin using SWAT model
10.1007/s11269-015-1089-5 · doi-reference
Hydrological simulation of the betwa river basin (India) using the SWAT model
10.1080/02626667.2016.1271420 · doi-reference
Hydrologic modeling: progress and future directions
10.1186/s40562-018-0113-z · doi-reference
Simulation of monthly streamflow using the SWAT model of the Ib river watershed, India
10.1016/j.hydres.2020.09.001 · doi-reference
SWAT model application and prediction uncertainty analysis in the Lake Tana basin, Ethiopia
10.1002/hyp.7457 · doi-reference
Influence of the spatial distribution of rain gauges on SWAT model calibration in two coastal river basins in Paraná State, Brazil
10.1590/2318-0331.312620250188 · doi-reference
Application of SWAT for the upper North Bosque river watershed
10.13031/2013.3000 · doi-reference
Hydrological modelling of the vistula and odra river basins using SWAT
10.1080/02626667.2017.1321842 · doi-reference
Simulation of water balance components using SWAT model at sub catchment level
10.3390/su15021438 · doi-reference
River flow forecasting through conceptual models, Part 1 - a discussion of principles
10.1016/0022-1694(70)90255-6 · doi-reference
Application of semi‐distributed hydrological model for basin level water balance of the ken basin of central India
10.1002/hyp.9950 · doi-reference
Model evaluation guidelines for systematic quantification of accuracy in watershed simulations
10.13031/2013.23153 · doi-reference
Application of hydrological modeling in real-world scenarios in India: a critical review
10.1134/s0097807825602390 · doi-reference
Developing groundwater for secure rural water supplies in Africa
10.1016/j.desal.2008.05.100 · doi-reference
Evaluating the use of goodness-of-fit measures in hydrologic and hydroclimatic model validation
10.1029/1998wr900018 · doi-reference
Advances in ecohydrological modelling with SWAT—A review
10.1623/hysj.53.5.939 · doi-reference
Hydrological modeling with respect to impact of land-use and land-cover change on the runoff dynamics in godavari river basin using the HEC-HMS model
10.3390/ijgi7060206 · doi-reference
Observed field drainage and concentration dynamics reveal the importance of onsite mitigation of pesticide pollution in a rice growing area in eastern China
10.1016/j.agwat.2025.109578 · doi-reference
Integrating SWAT and machine learning for streamflow simulation and runoff sensitivity in the Tawi watershed
10.1007/s44533-026-00049-1 · doi-reference
Water balance modeling of tandula (India) reservoir catchment using SWAT
10.1007/s12517-020-5092-7 · doi-reference
Application of SWAT in an Indian river basin for modeling runoff, sediment and water balance
10.1007/s12665-016-6316-8 · doi-reference
Status of automatic calibration for hydrologic models: Comparison with multilevel expert calibration
10.1061/(asce)1084-0699(1999)4:2(135) · doi-reference
Decomposition of the mean squared error and NSE performance criteria: implications for improving hydrological modelling
10.1016/j.jhydrol.2009.08.003 · doi-reference
The soil and water assessment tool: historical development, applications, and future research directions
10.13031/2013.23637 · doi-reference
Reconceptualizing HRU threshold definition in the soil and water assessment tool
10.1111/1752-1688.13000 · doi-reference
Understanding the role of water scarcity in natural disaster vulnerability: an overview
10.1002/9781394345854.ch12 · doi-reference
The NHDPlus dataset, watershed subdivision and SWAT model performance
10.1080/02626667.2014.916408 · doi-reference
Attribution and sensitivity analysis of runoff variation in the yellow river basin under climate change
10.3390/su142214981 · doi-reference
Calibration and uncertainty analysis for modelling runoff in the tambo river basin, Peru, using sequential uncertainty fitting Ver-2 (SUFI-2) algorithm
10.1177/1178622120988707 · doi-reference
Estimation of monthly snowmelt contribution to runoff using gridded meteorological data in SWAT model for upper alaknanda river basin, India
10.1007/s10661-023-12236-z · doi-reference
Estimating uncertain flow and transport parameters using a sequential uncertainty fitting procedure
10.2136/vzj2004.1340 · doi-reference