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Challenges and Opportunities for UAV-Based Digital Elevation Model Generation for Flood-Risk Management: A Case of Princeville North Carolina

机译:基于无人机的数字高程模型生成用于洪水风险管理的挑战与机遇:以北卡罗来纳州普林斯维尔为例

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摘要

Among the different types of natural disasters, floods are the most devastating, widespread, and frequent. Floods account for approximately 30% of the total loss caused by natural disasters. Accurate flood-risk mapping is critical in reducing such damages by correctly predicting the extent of a flood when coupled with rain and stage gage data, supporting emergency-response planning, developing land use plans and regulations with regard to the construction of structures and infrastructures, and providing damage assessment in both spatial and temporal measurements. The reliability and accuracy of such flood assessment maps is dependent on the quality of the digital elevation model (DEM) in flood conditions. This study investigates the quality of an Unmanned Aerial Vehicle (UAV)-based DEM for spatial flood assessment mapping and evaluating the extent of a flood event in Princeville, North Carolina during Hurricane Matthew. The challenges and problems of on-demand DEM production during a flooding event were discussed. An accuracy analysis was performed by comparing the water surface extracted from the UAV-derived DEM with the water surface/stage obtained using the nearby US Geologic Survey (USGS) stream gauge station and LiDAR data.
机译:在不同类型的自然灾害中,洪水是最具破坏性,最广泛和最频繁的灾害。洪水约占自然灾害造成的总损失的30%。准确的洪水风险制图对于减少此类破坏至关重要,因为它可以正确预测洪水的程度(结合雨量和雨量计数据),支持应急计划,针对结构和基础设施的建设制定土地使用计划和法规,并在时空测量中提供损害评估。此类洪水评估图的可靠性和准确性取决于洪水条件下数字高程模型(DEM)的质量。这项研究调查了基于无人飞行器(UAV)的DEM进行空间洪水评估的质量,并评估了北卡罗来纳州普林斯维尔在马修飓风期间的洪水事件范围。讨论了洪水事件期间按需生产DEM的挑战和问题。通过比较从无人机衍生的DEM提取的水面与使用附近的美国地质调查局(USGS)流量表站和LiDAR数据获得的水面/水位,进行了精度分析。

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