13 Assessment of Hydrological Impacts …
305
Bodian A, Dezetter A, Dacosta H (2015) Rainfall-runoff modeling of water resources in the upper
Senegal River basin. Int J Water Resour Dev 32(1):89–101. https://doi.org/10.1080/07900627.
2015.1026435
Bodian A, Dezetter A, Diop L, Deme A, Djaman K, Diop A (2018) Future Climate Change Impacts
on Streamflows of Two Main West Africa River Basins: Senegal and Gambia. Hydrology 5(1):21.
https://doi.org/10.3390/hydrology5010021
Bop, M.; Amadou, A.; Seidou, O.; Kébé, C.M.F.; Ndione, J.A.; Sambou, S.; Sanda, I.S. Modeling
the Hydrological Dynamic of the Breeding Water Bodies in Barkedji’s Zone. J. Water Resour.
Prot. 2014, 6, 741–755. [Google Scholar]
Blasone R-S, Madsen H, Rosbjerg D (2007) Parameter estimation in distributed hydrological
modeling: comparison of global and local optimisation techniques. Nord Hydrol 38(4–5):451.
https://doi.org/10.2166/nh.2007.024
Brulebois E. (2016). Impacts du changement climatique sur la disponibilité de la ressource en eau
en Bourgogne : aspects quantitatifs et qualitatifs. Sciences de la Terre. Université de Bourgogne.
Français. < NNT:2016DIJOS027 > .
Buishand TA (1982) Some methods for testing the homogeneity of rainfall records. J Hydrol 58(1–
2):11–27. https://doi.org/10.1016/0022-1694(82)90066-x
Burnash, R. J., Ferral, R. L., & McGuire, R. A. (1973). A generalized streamflow simulation system,
conceptual modeling for digital computers
Burnash RJC (1995) The NWS river forecast system-catchment modeling. Computer models of
watershed hydrology 188:311–366
Cisse MT, Sambou S, Dieme Y, Diatta C, Bop M (2014) Analyse des écoulements dans le bassin
du fleuve Sénégal de 1960 à 2008. Rev Sci Eau 27(2):167. https://doi.org/10.7202/1025566ar
DACOSTA H. (1989) - Précipitation et écoulements sur le Bassin de la Casamance. Thèse de 3 ème
cycle, Faculté des Lettres et Sciences Humaines, Université Cheikh Anta Diop de Dakar, 278 p
Déqué M (2007) Frequency of precipitation and temperature extremes over France in an anthropogenic scenario: model results and statistical correction according to observed values. Global
Planet Change 57:16–26
Duan Q, Sorooshian S, Gupta V (1992) Effective and efficient global optimization for conceptual
rainfall-runoff models. Water Resour Res 28(4):1015–1031. https://doi.org/10.1029/91wr02985
Duan Q, Sorooshian S, Gupta VK (1994) Optimal use of the SCE-UA global optimization method
for calibrating watershed models. J Hydrol 158(3–4):265–284. https://doi.org/10.1016/0022-169
4(94)90057-4
Eckhardt K, Arnold JG (2001) Automatic calibration of a distributed catchment model. J Hydrol
251(1–2):103–109. https://doi.org/10.1016/s0022-1694(01)00429-2
Fabre J, Ruelland D, Dezetter A, Grouillet B (2014) Simulating long-term past changes in the
balance between water demand and availability and assessing their main drivers at the river
basin management scale. Hydrol Earth Syst Sci Dis 11(11):12315–12364. https://doi.org/10.
5194/hessd-11-12315-2014
FALL A. (2014), Le Ferlo sénégalais. Approche géographique de la vulnérabilité des anthroposystèmes sahéliens, thèse de doctorat, Université Paris 13 Sorbonne Paris-cité, 380 p
Famien AM, Janicot S, Ochou AD, Vrac M, Defrance D, Sultan B, Noël T (2018) A bias-corrected
CMIP5 dataset for Africa using CDF-t method. Earth Syst. Dynam. Discuss., under review, A
contribution to agricultural impact studies. https://doi.org/10.5194/esd-2017-111
Faye C (2018) Climatic Variability and Hydrological Impacts in West Africa: Case of the
Gambia Watershed (Senegal). Environmental and Water Sciences, public Health and Territorial
Intelligence Journal 2(1):54–66
Gan TY, Burges SJ (2006) Assessment of soil-based and calibrated parameters of the Sacramento
model and parameter transferability. J Hydrol 320(1–2):117–131. https://doi.org/10.1016/j.jhy
drol.2005.07.008
García Hernández, J., Paredes Arquiola, J., Foehn, A. and Roquier, B. (2018). RS MINERVE—
Technical manual v2.13. RS MINERVE Group, Switzerland
305
Bodian A, Dezetter A, Dacosta H (2015) Rainfall-runoff modeling of water resources in the upper
Senegal River basin. Int J Water Resour Dev 32(1):89–101. https://doi.org/10.1080/07900627.
2015.1026435
Bodian A, Dezetter A, Diop L, Deme A, Djaman K, Diop A (2018) Future Climate Change Impacts
on Streamflows of Two Main West Africa River Basins: Senegal and Gambia. Hydrology 5(1):21.
https://doi.org/10.3390/hydrology5010021
Bop, M.; Amadou, A.; Seidou, O.; Kébé, C.M.F.; Ndione, J.A.; Sambou, S.; Sanda, I.S. Modeling
the Hydrological Dynamic of the Breeding Water Bodies in Barkedji’s Zone. J. Water Resour.
Prot. 2014, 6, 741–755. [Google Scholar]
Blasone R-S, Madsen H, Rosbjerg D (2007) Parameter estimation in distributed hydrological
modeling: comparison of global and local optimisation techniques. Nord Hydrol 38(4–5):451.
https://doi.org/10.2166/nh.2007.024
Brulebois E. (2016). Impacts du changement climatique sur la disponibilité de la ressource en eau
en Bourgogne : aspects quantitatifs et qualitatifs. Sciences de la Terre. Université de Bourgogne.
Français. < NNT:2016DIJOS027 > .
Buishand TA (1982) Some methods for testing the homogeneity of rainfall records. J Hydrol 58(1–
2):11–27. https://doi.org/10.1016/0022-1694(82)90066-x
Burnash, R. J., Ferral, R. L., & McGuire, R. A. (1973). A generalized streamflow simulation system,
conceptual modeling for digital computers
Burnash RJC (1995) The NWS river forecast system-catchment modeling. Computer models of
watershed hydrology 188:311–366
Cisse MT, Sambou S, Dieme Y, Diatta C, Bop M (2014) Analyse des écoulements dans le bassin
du fleuve Sénégal de 1960 à 2008. Rev Sci Eau 27(2):167. https://doi.org/10.7202/1025566ar
DACOSTA H. (1989) - Précipitation et écoulements sur le Bassin de la Casamance. Thèse de 3 ème
cycle, Faculté des Lettres et Sciences Humaines, Université Cheikh Anta Diop de Dakar, 278 p
Déqué M (2007) Frequency of precipitation and temperature extremes over France in an anthropogenic scenario: model results and statistical correction according to observed values. Global
Planet Change 57:16–26
Duan Q, Sorooshian S, Gupta V (1992) Effective and efficient global optimization for conceptual
rainfall-runoff models. Water Resour Res 28(4):1015–1031. https://doi.org/10.1029/91wr02985
Duan Q, Sorooshian S, Gupta VK (1994) Optimal use of the SCE-UA global optimization method
for calibrating watershed models. J Hydrol 158(3–4):265–284. https://doi.org/10.1016/0022-169
4(94)90057-4
Eckhardt K, Arnold JG (2001) Automatic calibration of a distributed catchment model. J Hydrol
251(1–2):103–109. https://doi.org/10.1016/s0022-1694(01)00429-2
Fabre J, Ruelland D, Dezetter A, Grouillet B (2014) Simulating long-term past changes in the
balance between water demand and availability and assessing their main drivers at the river
basin management scale. Hydrol Earth Syst Sci Dis 11(11):12315–12364. https://doi.org/10.
5194/hessd-11-12315-2014
FALL A. (2014), Le Ferlo sénégalais. Approche géographique de la vulnérabilité des anthroposystèmes sahéliens, thèse de doctorat, Université Paris 13 Sorbonne Paris-cité, 380 p
Famien AM, Janicot S, Ochou AD, Vrac M, Defrance D, Sultan B, Noël T (2018) A bias-corrected
CMIP5 dataset for Africa using CDF-t method. Earth Syst. Dynam. Discuss., under review, A
contribution to agricultural impact studies. https://doi.org/10.5194/esd-2017-111
Faye C (2018) Climatic Variability and Hydrological Impacts in West Africa: Case of the
Gambia Watershed (Senegal). Environmental and Water Sciences, public Health and Territorial
Intelligence Journal 2(1):54–66
Gan TY, Burges SJ (2006) Assessment of soil-based and calibrated parameters of the Sacramento
model and parameter transferability. J Hydrol 320(1–2):117–131. https://doi.org/10.1016/j.jhy
drol.2005.07.008
García Hernández, J., Paredes Arquiola, J., Foehn, A. and Roquier, B. (2018). RS MINERVE—
Technical manual v2.13. RS MINERVE Group, Switzerland
