Modelling compound flooding: a case study from Jakarta, Indonesia
暂无分享,去创建一个
R. Haigh | Y. Xuan | D. Amaratunga | H. Karunarathna | H. Rahayu | D. Septiadi | B. Kombaitan | A. A. Kuntoro | M. Farid | W. G. Bennett | M. Kusuma | Tri N. A. Kesuma
[1] G. Villarini,et al. On the generation of high‐resolution probabilistic design events capturing the joint occurrence of rainfall and storm surge in coastal basins , 2022, International Journal of Climatology.
[2] T. Gallien,et al. Characterizing multivariate coastal flooding events in a semi-arid region: the implications of copula choice, sampling, and infrastructure , 2022, Natural Hazards and Earth System Sciences.
[3] Faisal Alsaaq,et al. Extreme Wind Wave Climate off Jeddah Coast, the Red Sea , 2022, Journal of Marine Science and Engineering.
[4] K. Emanuel,et al. Tropical cyclone climatology change greatly exacerbates US extreme rainfall–surge hazard , 2022, Nature Climate Change.
[5] Jun Wang,et al. Assessing tropical cyclone compound flood risk using hydrodynamic modelling: a case study in Haikou City, China , 2021, Natural Hazards and Earth System Sciences.
[6] A. Vafeidis,et al. Investigating the interaction of waves and river discharge during compound flooding at Breede Estuary, South Africa , 2021, Natural Hazards and Earth System Sciences.
[7] R. Bakhtyar,et al. Inter‐Model Comparison of Delft3D‐FM and 2D HEC‐RAS for Total Water Level Prediction in Coastal to Inland Transition Zones , 2021, JAWRA Journal of the American Water Resources Association.
[8] Qiming Zhou,et al. Evolution of Frequency and Intensity of Concurrent Heavy Precipitation and Storm Surge at the Global Scale: Implications for Compound Floods , 2021, Frontiers in Earth Science.
[9] R. Nicholls,et al. Regional analysis of multivariate compound coastal flooding potential around Europe and environs: sensitivity analysis and spatial patterns , 2021, Natural Hazards and Earth System Sciences.
[10] M. Losada,et al. Flood management challenges in transitional environments: Assessing the effects of sea-level rise on compound flooding in the 21st century , 2021 .
[11] Y. Setiawan,et al. Impact of continuous Jakarta megacity urban expansion on the formation of the Jakarta-Bandung conurbation over the rice farm regions , 2020 .
[12] S. Kure,et al. Flood inundation simulations based on GSMaP satellite rainfall data in Jakarta, Indonesia , 2020, Progress in Earth and Planetary Science.
[13] Yijun Hou,et al. Risk Prediction of Coastal Hazards Induced by Typhoon: A Case Study in the Coastal Region of Shenzhen, China , 2020, Remote. Sens..
[14] L. Cadavid,et al. Multivariate statistical modelling of the drivers of compound flood events in south Florida , 2020, Natural Hazards and Earth System Sciences.
[15] H. Winsemius,et al. Measuring compound flood potential from river discharge and storm surge extremes at the global scale , 2020 .
[16] Dai Yamazaki,et al. The effect of surge on riverine flood hazard and impact in deltas globally , 2020, Environmental Research Letters.
[17] Mohamed M. Morsy,et al. Flood risk assessment and increased resilience for coastal urban watersheds under the combined impact of storm tide and heavy rainfall , 2019 .
[18] H. Herdiansyah,et al. The impact analysis of flood disaster in DKI jakarta: prevention and control perspective , 2019, Journal of Physics: Conference Series.
[19] R. Nicholls,et al. Assessing the characteristics and drivers of compound flooding events around the UK coast , 2019, Hydrology and Earth System Sciences.
[20] Yuezhang Xia,et al. Impacts of Sea Level Rise and River Discharge on the Hydrodynamics Characteristics of Jakarta Bay (Indonesia) , 2019, Water.
[21] Yi He,et al. An integrated 1D–2D hydraulic modelling approach to assess the sensitivity of a coastal region to compound flooding hazard under climate change , 2018, Natural Hazards.
[22] H. Winsemius,et al. Dependence between high sea-level and high river discharge increases flood hazard in global deltas and estuaries , 2018, Environmental Research Letters.
[23] Gangfeng Ma,et al. Extreme value analysis of wave climate in Chesapeake Bay , 2018, Ocean Engineering.
[24] Zhiguo He,et al. The impacts of the large-scale hydraulic structures on tidal dynamics in open-type bay: numerical study in Jakarta Bay , 2018, Ocean Dynamics.
[25] K. Fukushi,et al. Assessment of future flood inundations under climate and land use change scenarios in the Ciliwung River Basin, Jakarta , 2018 .
[26] A. Vafeidis,et al. Investigating compound flooding in an estuary using hydrodynamic modelling: a case study from the Shoalhaven River, Australia , 2017 .
[27] Mathieu Vrac,et al. Multivariate statistical modelling of compound events via pair-copula constructions: analysis of floods in Ravenna (Italy) , 2017 .
[28] Petra Hellegers,et al. Estimation of river flood damages in Jakarta, Indonesia , 2017, Natural Hazards.
[29] Michael Hartnett,et al. High-resolution multi-scale modelling of coastal flooding due to tides, storm surges and rivers inflows. A Cork City example , 2017 .
[30] K. Fukushi,et al. Impact Assessment of Climate and Land-Use Changes on Flooding Behavior in the Upper Ciliwung River, Jakarta, Indonesia , 2016 .
[31] Thomas Wahl,et al. Increasing risk of compound flooding from storm surge and rainfall for major US cities , 2015 .
[32] J. Syvitski,et al. Profiling risk and sustainability in coastal deltas of the world , 2015, Science.
[33] J. Aerts,et al. River flood risk in Jakarta under scenarios of future change , 2015 .
[34] R. Silasari,et al. Two-dimensional Model of Ciliwung River Flood in DKI Jakarta for Development of the Regional Flood Index Map , 2013 .
[35] H. Karunarathna,et al. A statistical-process based approach for modelling beach profile variability , 2013 .
[36] R. Nicholls,et al. Future flood losses in major coastal cities , 2013 .
[37] Chao Ma,et al. Joint impact of rainfall and tidal level on flood risk in a coastal city with a complex river network: a case study of Fuzhou City, China , 2012 .
[38] H. Moel,et al. How are flood risk estimates affected by the choice of return-periods? , 2011 .
[39] N. Grigg,et al. Jakarta flooding: systems study of socio-technical forces , 2011 .
[40] Irwan Gumilar,et al. Land subsidence of Jakarta (Indonesia) and its relation with urban development , 2011 .
[41] Jeroen C. J. H. Aerts,et al. Coastal inundation and damage exposure estimation: a case study for Jakarta , 2011 .
[42] Tia Setiawati,et al. Studi Pengembangan Peta Indeks Resiko Banjir pada Kelurahan Bukit Duri Jakarta , 2010 .
[43] John F. B. Mitchell,et al. The next generation of scenarios for climate change research and assessment , 2010, Nature.
[44] Pauline Texier,et al. Floods in Jakarta: when the extreme reveals daily structural constraints and mismanagement , 2008 .
[45] J C R Hunt,et al. Inland and coastal flooding: developments in prediction and prevention , 2005, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[46] G. Stelling,et al. Development and validation of a three-dimensional morphological model , 2004 .
[47] Eric P. Smith,et al. An Introduction to Statistical Modeling of Extreme Values , 2002, Technometrics.
[48] Ben Gouldby,et al. The joint probability of waves and water levels in coastal engineering design , 2002 .
[49] M. Farid,et al. Relationship between extreme rainfall and design flood-discharge of the Ciliwung river , 2021 .
[50] J. Hellman,et al. One Risk Replaces Another , 2015 .
[51] J. Aerts,et al. Flood risk assessment for delta mega-cities: a case study of Jakarta , 2014, Natural Hazards.
[52] S. Hanson,et al. A global ranking of port cities with high exposure to climate extremes , 2011 .