journal article Open Access Dec 01, 2024

Evaluation of probability distribution methods for flood frequency analysis in the Jhelum Basin of North-Western Himalayas, India

Cleaner Water Vol. 2 pp. 100044 · Elsevier BV
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References
68
[1]
Aksoy "Use of gamma distribution in hydrological analysis" Turk. J. Eng. Environ. Sci. (2000)
[2]
Alam "Using landsat satellite data for assessing the land use and land cover change in Kashmir valley" GeoJournal (2020) 10.1007/s10708-019-10037-x
[3]
Archer "Assessment of severity of the extreme River Tyne flood in January 2005 using gauged and historical information" Hydrol. Sci. J. (2007) 10.1623/hysj.52.5.992
[4]
Arnell "The impacts of climate change on river flood risk at the global scale" Clim. Change (2016) 10.1007/s10584-014-1084-5
[5]
Ashofteh "Scenario assessment of streamflow simulation and its transition probability in future periods under climate change" Water Resour. Manag. (2013) 10.1007/s11269-012-0182-2
[6]
Baker "Paleoflood hydrology and extraordinary flood events" J. Hydrol. (1987) 10.1016/0022-1694(87)90145-4
[7]
Benson "Use of historical data in flood-frequency analysis" Eos Trans. Am. Geophys. Union (1950) 10.1029/tr031i003p00419
[8]
Flood trends in Europe: are changes in small and big floods different?

Miriam Bertola, Alberto Viglione, David Lun et al.

Hydrology and Earth System Sciences 2020 10.5194/hess-24-1805-2020
[9]
Bezak "Comparison between the peaks-over-threshold method and the annual maximum method for flood frequency analysis" Hydrol. Sci. J. (2014) 10.1080/02626667.2013.831174
[10]
Bhagat "Flood frequency analysis using Gumbel's distribution method: a case study of Lower Mahi Basin, India" J. Water Resour. Ocean Sci. (2017) 10.11648/j.wros.20170604.11
[11]
Bhat "Flood frequency analysis of river Jhelum in Kashmir basin" Quat. Int. (2019) 10.1016/j.quaint.2018.09.039
[12]
Bobee "Generalized method of moments applied to LP3 distribution" J. Hydraul. Eng. (1988) 10.1061/(asce)0733-9429(1988)114:8(899)
[13]
Brath "Assessing the effect on flood frequency of land use change via hydrological simulation (with uncertainty)" J. Hydrol. (2006) 10.1016/j.jhydrol.2005.10.001
[14]
Brázdil "Historical hydrology for studying flood risk in Europe" Hydrol. Sci. J. (2006) 10.1623/hysj.51.5.739
[15]
Castellarin "Assessing the effectiveness of hydrological similarity measures for flood frequency analysis" J. Hydrol. (2001) 10.1016/s0022-1694(00)00383-8
[16]
Center, A.D.R. (2015). Sendai framework for disaster risk reduction 2015–2030. United Nations Office for Disaster Risk Reduction: Geneva, Switzerland. 〈https://www.undrr.org/publication/sendai-framework-disaster-risk-reduction-2015-2030〉.
[17]
Cohn "A generalized Grubbs-Beck test statistic for detecting multiple potentially influential low outliers in flood series" Water Resour. Res. (2013) 10.1002/wrcr.20392
[18]
Coles (2001)
[19]
Cunnane "Factors affecting choice of distribution for flood series" Hydrol. Sci. J. (1985) 10.1080/02626668509490969
[20]
Cunnane, C. (1989). Statistical distribution for flood frequency analysis. WMO Operational Hydrology, Report No. 33, WMO-No. 718, Geneva, Switzerland.
[21]
Dey (2016)
[22]
Douglas "Trends in floods and low flows in the United States: impact of spatial correlation" J. Hydrol. (2000) 10.1016/s0022-1694(00)00336-x
[23]
Farooq "Flood frequency analysis of river swat using Log Pearson type 3, Generalized Extreme Value, Normal, and Gumbel Max distribution methods" Arab. J. Geosci. (2018) 10.1007/s12517-018-3553-z
[24]
Farquharson "Regional flood frequency analysis in arid and semi-arid areas" J. Hydrol. (1992) 10.1016/0022-1694(92)90132-f
[25]
Griffis "Log-Pearson type 3 distribution and its application in flood frequency analysis. I: distribution characteristics" J. Hydrol. Eng. (2007) 10.1061/(asce)1084-0699(2007)12:5(482)
[26]
Griffis "Log Pearson type 3 quantile estimators with regional skew information and low outlier adjustments" Water Resour. Res. (2004) 10.1029/2003wr002697
[27]
Gumbel "The return period of flood flows" Ann. Math. Stat. (1941) 10.1214/aoms/1177731747
[28]
Hadi "A modification of a method for the detection of outliers in multivariate samples" J. R. Stat. Soc. Ser. B: Stat. Methodol. (1994) 10.1111/j.2517-6161.1994.tb01988.x
[29]
Hire, P.S. (2000). Geomorphic and hydrologic studies of floods in the Tapi basin (Doctoral dissertation). https://doi.org/10.13140/RG.2.2.29414.86084.
[30]
Holmes, R.R. (2019). Floods: Recurrence intervals and 100-year Floods (USGS).
[31]
Hosking "Probability-weighted moments" Technometrics (1985)
[32]
Hossain, S., & Rahman, A. (2018, January). Flood frequency analysis for the Brisbane River catchment. In Hydrology and Water Resources Symposium (HWRS 2018): Water and Communities (pp. 340-350). Melbourne: Engineers Australia.
[33]
Hu "Sensitivity of flood frequency analysis to data record, statistical model, and parameter estimation methods: an evaluation over the contiguous United States" J. Flood Risk Manag. (2020) 10.1111/jfr3.12580
[34]
Ivošević "A probabilistic method for estimating the percentage of corrosion depth on the inner bottom plates of aging bulk carriers" Journal of Marine Science and Engineering (2020) 10.3390/jmse8060442
[35]
Kim "Monte Carlo statistical methods" Technometrics (2000) 10.1080/00401706.2000.10485722
[36]
Kumar "Flood frequency analysis of the Rapti river basin using log pearson type-III and Gumbel Extreme Value-1 methods" J. Geol. Soc. India (2019) 10.1007/s12594-019-1344-0
[37]
Kumar "Frequency analysis of flood flow in markanda basin of ghaggar river system in North Western India" J. Geol. Soc. India (2023) 10.1007/s12594-023-2422-x
[38]
Lang "Towards operational guidelines for over-threshold modeling" J. Hydrol. (1999) 10.1016/s0022-1694(99)00167-5
[39]
Malik "Spatial dimension of impact, relief, and rescue of the 2014 flood in Kashmir Valley" Nat. Hazards (2022) 10.1007/s11069-021-05018-8
[40]
Malik "Ethnographic account of flooding in North-Western Himalayas: a study of Kashmir Valley" GeoJournal (2022) 10.1007/s10708-020-10304-2
[41]
Martins "Generalized maximum-likelihood generalized extreme-value quantile estimators for hydrologic data" Water Resour. Res. (2000) 10.1029/1999wr900330
[42]
McCuen (2014)
[43]
Moges "Regional flood frequency curves for remote rural areas of the Nile River Basin: the case of Baro-Akobo drainage basin, Ethiopia" Extrem. Hydrol. Clim. Var. (2019) 10.1016/b978-0-12-815998-9.00030-0
[44]
Murtaza "The investigation of runoff variations and the flood frequency estimates of the Jhelum River, India" Sustain. Water Resour. Manag. (2022) 10.1007/s40899-022-00645-w
[45]
Flood Studies Report (1975)
[46]
Peel "The utility of L-moment ratio diagrams for selecting a regional probability distribution" Hydrol. Sci. J. (2001) 10.1080/02626660109492806
[47]
Pegram "A review of the regional maximum flood and rational formula using geomorphological information and observed floods" Water Sa (2004) 10.4314/wsa.v30i3.5087
[48]
Perez "Using physically based synthetic peak flows to assess local and regional flood frequency analysis methods" Water Resour. Res. (2019) 10.1029/2019wr024827
[49]
Rahman "A study on selection of probability distributions for at-site flood frequency analysis in Australia" Nat. Hazards (2013) 10.1007/s11069-013-0775-y
[50]
Ramasamy "A case study of flood frequency analysis by intercomparison of graphical linear log-regression method and Gumbel's analytical method in the Vaigai river basin of Tamil Nadu, India" Chemosphere (2022) 10.1016/j.chemosphere.2021.131571

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Published
Dec 01, 2024
Vol/Issue
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100044
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Asif Iqbal Shah, Nibedita Das Pan (2024). Evaluation of probability distribution methods for flood frequency analysis in the Jhelum Basin of North-Western Himalayas, India. Cleaner Water, 2, 100044. https://doi.org/10.1016/j.clwat.2024.100044