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Low-cost UAV surveys of hurricane damage in Dominica: automated processing with co-registration of pre-hurricane imagery for change analysis

Author

Listed:
  • Martin Schaefer

    (University of Portsmouth, Buckingham Building)

  • Richard Teeuw

    (University of Portsmouth, Burnaby Building)

  • Simon Day

    (University College London)

  • Dimitrios Zekkos

    (University of California at Berkeley, Davis Hall)

  • Paul Weber

    (University of Portsmouth, Buckingham Building)

  • Toby Meredith

    (University of Portsmouth, Eldon Building)

  • Cees J. Westen

    (University of Twente)

Abstract

In 2017, hurricane Maria caused unprecedented damage and fatalities on the Caribbean island of Dominica. In order to ‘build back better’ and to learn from the processes causing the damage, it is important to quickly document, evaluate and map changes, both in Dominica and in other high-risk countries. This paper presents an innovative and relatively low-cost and rapid workflow for accurately quantifying geomorphological changes in the aftermath of a natural disaster. We used unmanned aerial vehicle (UAV) surveys to collect aerial imagery from 44 hurricane-affected key sites on Dominica. We processed the imagery using structure from motion (SfM) as well as a purpose-built Python script for automated processing, enabling rapid data turnaround. We also compared the data to an earlier UAV survey undertaken shortly before hurricane Maria and established ways to co-register the imagery, in order to provide accurate change detection data sets. Consequently, our approach has had to differ considerably from the previous studies that have assessed the accuracy of UAV-derived data in relatively undisturbed settings. This study therefore provides an original contribution to UAV-based research, outlining a robust aerial methodology that is potentially of great value to post-disaster damage surveys and geomorphological change analysis. Our findings can be used (1) to utilise UAV in post-disaster change assessments; (2) to establish ground control points that enable before-and-after change analysis; and (3) to provide baseline data reference points in areas that might undergo future change. We recommend that countries which are at high risk from natural disasters develop capacity for low-cost UAV surveys, building teams that can create pre-disaster baseline surveys, respond within a few hours of a local disaster event and provide aerial photography of use for the damage assessments carried out by local and incoming disaster response teams.

Suggested Citation

  • Martin Schaefer & Richard Teeuw & Simon Day & Dimitrios Zekkos & Paul Weber & Toby Meredith & Cees J. Westen, 2020. "Low-cost UAV surveys of hurricane damage in Dominica: automated processing with co-registration of pre-hurricane imagery for change analysis," Natural Hazards: Journal of the International Society for the Prevention and Mitigation of Natural Hazards, Springer;International Society for the Prevention and Mitigation of Natural Hazards, vol. 101(3), pages 755-784, April.
  • Handle: RePEc:spr:nathaz:v:101:y:2020:i:3:d:10.1007_s11069-020-03893-1
    DOI: 10.1007/s11069-020-03893-1
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    Citations

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    Cited by:

    1. Mark A. Trigg & Mohammad Saied Dehghani & Yohannes Y. Kesete & Andrew B. Carr & Stephanie G. Trigg & Dimitrios Zekkos & David Lopez & Marta Pertierra & Cees J. Westen & Victor Jetten & Fred L. Ogden, 2023. "Realities of bridge resilience in Small Island Developing States," Mitigation and Adaptation Strategies for Global Change, Springer, vol. 28(1), pages 1-26, January.
    2. Sun Ho Ro & Jie Gong, 2024. "Scalable approach to create annotated disaster image database supporting AI-driven damage assessment," Natural Hazards: Journal of the International Society for the Prevention and Mitigation of Natural Hazards, Springer;International Society for the Prevention and Mitigation of Natural Hazards, vol. 120(13), pages 11693-11712, October.
    3. Samuel Battut & Tony Rey & Raphaël Cécé & Didier Bernard & Yann Krien, 2023. "Responses and adjustments of the coastal systems of Dominica (Lesser Antilles) when faced with an extreme event: Hurricane Maria (September 2017)," Natural Hazards: Journal of the International Society for the Prevention and Mitigation of Natural Hazards, Springer;International Society for the Prevention and Mitigation of Natural Hazards, vol. 116(1), pages 151-191, March.

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