Page 124 - AJWEP-22-6
P. 124
Takele, et al.
Hydrologic responses contemplating to land use land change impacts on water balance components of the
cover change and water balance of Lake Chamo sub- Kabul River Basin, Afghanistan. J Water Clim Change.
basin of Ethiopia. Sustain Water Resour Manag. 2022;13(11):3977-3999.
2024;10(1):29. doi: 10.2166/wcc.2022.261
doi: 10.1007/s40899-023-01003-0 37. Abbaspour KC. SWAT calibration and uncertainty
26. Kenea U, Adeba D, Regasa M, Nones M. Hydrological programs: A user manual. 2015;103:17-66.
responses to land use land cover changes in the Fincha’a 38. Abbaspour KC, Vejdani M, Haghighat S.
Watershed, Ethiopia. Land. 2021;10(9):916. MODSIM07 - Land, Water and Environmental
doi: 10.3390/land10090916 Management: Integrated Systems for Sustainability,
27. Beker BA, Kansal ML. Complexities of the urban Proceedings; 2007.
drinking water systems in Ethiopia and possible 39. Soil Conservation Service (SCS). National Engineering
interventions for sustainability. Environ Dev Sustain. Handbook, Section 4: Hydrology. Department of
2023;26(2):4629-4659. Agriculture, Washington DC; 1972. p .762.
doi: 10.1007/s10668-022-02901-7 40. Hargreaves GH, Samani ZA. Estimating
28. Gonza DK, Tekleweld FA, Hishe TG, Shumey EE, potential evapotranspiration. J Irrig Drain Div.
Birhane BS. Performance analysis of water meters for 1982;108(3):225-230.
measuring domestic water consumption, the case of doi: 10.1061/jrcea4.0001390
Dire Dawa, Ethiopia. Int J Energy Water Resources. 41. Arnold JG, Kiniry JR, Srinivasan R, Williams JR,
2021;5:405-412. Haney EB, Neitsch SL. Soil and Water Assessment Tool:
doi: 10.1007/s42108-021-00130-8 Input/Output Documentation. Version 2012. TR-439.
29. Tenaw D, Assfaw A. Households willingness to pay United States: Texas Water Resources Institute, College
for improved urban water supply in Dire Dawa city Station; 2012. p. 1-650.
administration: The role of socio-economic factors and 42. Fuka DR, Walter MT, MacAlister C, Steenhuis TS,
water supply-related perceptions. Sustain Water Resour Easton ZM. SWATModel: A multi-operating system,
Manag. 2022;8(1):24. multi-platform SWAT model package in R. J Am Water
doi: 10.1007/s40899-022-00625-0 Resour Assoc. 2014;50(5):1349-1353.
30. Erena SH, Worku H. Dynamics of land use land cover and doi: 10.1111/jawr.12170
resulting surface runoff management for environmental 43. Arnold J, Srinivasan R, Neitsch S, et al. Soil and
flood hazard mitigation: The case of Dire Dawa city, Water Assessment Tool (SWAT) Global Applications.
Ethiopia. J Hydrol Reg Stud. 2019;22:100598. Bangkok, Thailand: World Association of Soil and Water
doi: 10.1016/j.ejrh.2019.100598 Conservation; 2009.
31. Tilahun K, Merkel BJ. Estimation of groundwater 44. Neitsch SL, Williams JR, Arnold JG, Kiniry JR. Soil
recharge using a GIS-based distributed water and Water Assessment Tool Theoretical Documentation.
balance model in Dire Dawa, Ethiopia. Hydrogeol J. Version 2009. United States: Texas Water Resources
2009;17(6):1443-1457. Institute, College Station; 2011.
doi: 10.1007/s10040-009-0455-x 45. Bailey RT, Park S, Bieger K, Arnold JG, Allen PM.
32. Beyene AD, Shumetie A. Green Legacy Initiative for Enhancing SWAT+ simulation of groundwater
Sustainable Economic Development in Ethiopia. Addis Ababa. flow and groundwater-surface water interactions
Ethiopia: Ethiopian Economic Association (EEA); 2023. using MODFLOW routines. Environ Model Softw.
33. Desta H, Fetene A. Land-use and land-cover change 2020;126:104660.
in Lake Ziway watershed of the Ethiopian Central Rift doi: 10.1016/j.envsoft.2020.104660
Valley Region and its environmental impacts. Land Use 46. Pandit A, Hogan S, Mahoney DT, et al. Establishing
Policy. 2020;96:104682. performance criteria for evaluating watershed-scale
doi: 10.1016/j.landusepol.2020.104682 sediment and nutrient models at fine temporal scales.
34. Teklay A, Dile YT, Asfaw DH, Bayabil HK, Sisay K. Water Res, 2025;274:123156.
Impacts of climate and land use change on hydrological doi: 10.1016/j.watres.2025.123156
response in Gumara Watershed, Ethiopia. Ecohydrol 47. Moriasi DN, Gitau MW, Daggupati P, Pai N. Hydrologic
Hydrobiol. 2020;21(2):315-332. and water quality models: Performance measures and
doi: 10.1016/j.ecohyd.2020.12.001 evaluation criteria. Trans ASABE. 2015;58(6):1763-1785.
35. Foody GM, Mathur A. A relative evaluation of multiclass doi: 10.13031/trans.58.10715
image classification by support vector machines. IEEE 48. Mengistu AG, Van Rensburg LD, Woyessa YE.
Trans Geosci Remote Sens. 2004;42(6):1335-1343. Techniques for calibration and validation of SWAT
doi: 10.1109/tgrs.2004.827257 model in data scarce arid and semi-arid catchments in
36. Ougahi JH, Karim S, Mahmood SA. Application of South Africa. J Hydrol Reg Stud. 2019;25:100621.
the SWAT model to assess climate and land use/cover doi: 10.1016/j.ejrh.2019.100621
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