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1000 Titel
  • Assessing LISFLOOD-FP with the next-generation digital elevation model FABDEM using household survey and remote sensing data in the Central Highlands of Vietnam
1000 Autor/in
  1. Hawker, Laurence |
  2. Neal, Jeffrey |
  3. Savage, James |
  4. Kirkpatrick, Thomas |
  5. Lord, Rachel |
  6. Zylberberg, Yanos |
  7. Groeger, Andre |
  8. Thuy, Truong Dang |
  9. Fox, Sean |
  10. Agyemang, Felix |
  11. Nam, Pham Khanh |
1000 Verlag
  • Copernicus Publications
1000 Erscheinungsjahr 2024
1000 Publikationstyp
  1. Artikel |
1000 Online veröffentlicht
  • 2024-02-15
1000 Erschienen in
1000 Quellenangabe
  • 24(2):539-566
1000 Copyrightjahr
  • 2024
1000 Lizenz
1000 Verlagsversion
  • https://doi.org/10.5194/nhess-24-539-2024 |
1000 Publikationsstatus
1000 Begutachtungsstatus
1000 Sprache der Publikation
1000 Abstract/Summary
  • <jats:p>Abstract. Flooding is an endemic global challenge with annual damages totalling billions of dollars. Impacts are felt most acutely in low- and middle-income countries, where rapid demographic change is driving increased exposure. These areas also tend to lack high-precision hazard mapping data with which to better understand or manage risk. To address this information gap a number of global flood models have been developed in recent years. However, there is substantial uncertainty over the performance of these data products. Arguably the most important component of a global flood model is the digital elevation model (DEM), which must represent the terrain without surface artifacts such as forests and buildings. Here we develop and evaluate a next generation of global hydrodynamic flood model based on the recently released FABDEM DEM. We evaluate the model and compare it to a previous version using the MERIT DEM at three study sites in the Central Highlands of Vietnam using two independent validation data sets based on a household survey and remotely sensed observations of recent flooding. The global flood model based on FABDEM consistently outperformed a model based on MERIT, and the agreement between the model and remote sensing was greater than the agreement between the two validation data sets. </jats:p>
1000 Liste der Beteiligten
  1. https://frl.publisso.de/adhoc/uri/SGF3a2VyLCBMYXVyZW5jZQ==|https://frl.publisso.de/adhoc/uri/TmVhbCwgSmVmZnJleQ==|https://frl.publisso.de/adhoc/uri/U2F2YWdlLCBKYW1lcw==|https://frl.publisso.de/adhoc/uri/S2lya3BhdHJpY2ssIFRob21hcw==|https://frl.publisso.de/adhoc/uri/TG9yZCwgUmFjaGVs|https://frl.publisso.de/adhoc/uri/WnlsYmVyYmVyZywgWWFub3M=|https://frl.publisso.de/adhoc/uri/R3JvZWdlciwgQW5kcmU=|https://frl.publisso.de/adhoc/uri/VGh1eSwgVHJ1b25nwqBEYW5n|https://frl.publisso.de/adhoc/uri/Rm94LCBTZWFu|https://frl.publisso.de/adhoc/uri/QWd5ZW1hbmcsIEZlbGl4|https://frl.publisso.de/adhoc/uri/TmFtLCBQaGFtwqBLaGFuaA==
1000 Hinweis
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1000 Label
1000 Förderer
  1. National Foundation for Science and Technology Development |
  2. Natural Environment Research Council |
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1000 Dateien
1000 Förderung
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    1000 Förderer National Foundation for Science and Technology Development |
    1000 Förderprogramm -
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  2. 1000 joinedFunding-child
    1000 Förderer Natural Environment Research Council |
    1000 Förderprogramm -
    1000 Fördernummer -
1000 Objektart article
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1000 @id frl:6480715.rdf
1000 Erstellt am 2024-05-23T16:21:18.594+0200
1000 Erstellt von 322
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1000 Zuletzt bearbeitet Mon May 27 10:54:38 CEST 2024
1000 Objekt bearb. Mon May 27 10:54:38 CEST 2024
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