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Monitoring Active Volcanos Using Aerial Images and the Orthoview Tool

机译:使用航拍影像和Orthoview工具监控活动火山

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In volcanic areas, where it can be difficult to perform direct surveys, digital photogrammetry techniques are rarely adopted for routine volcano monitoring. Nevertheless, they have remarkable potentialities for observing active volcanic features (e.g., fissures, lava flows) and the connected deformation processes. The ability to obtain accurate quantitative data of definite accuracy in short time spans makes digital photogrammetry a suitable method for controlling the evolution of rapidly changing large-area volcanic phenomena. The systematic acquisition of airborne photogrammetric datasets can be adopted for implementing a more effective procedure aimed at long-term volcano monitoring and hazard assessment. In addition, during the volcanic crisis, the frequent acquisition of oblique digital images from helicopter allows for quasi-real-time monitoring to support mitigation actions by civil protection. These images are commonly used to update existing maps through a photo-interpretation approach that provide data of unknown accuracy. This work presents a scientific tool (Orthoview) that implements a straightforward photogrammetric approach to generate digital orthophotos from single-view oblique images provided that at least four Ground Control Points (GCP) and current Digital Elevation Models (DEM) are available. The influence of the view geometry, of sparse and not-signalized GCP and DEM inaccuracies is analyzed for evaluating the performance of the developed tool in comparison with other remote sensing techniques. Results obtained with datasets from Etna and Stromboli volcanoes demonstrate that 2D features measured on the produced orthophotos can reach sub-meter-level accuracy.
机译:在难以进行直接勘测的火山地区,常规火山监测很少采用数字摄影测量技术。然而,它们具有观测活跃的火山特征(例如,裂缝,熔岩流)和相关的变形过程的巨大潜力。在短时间内获得具有一定精确度的精确定量数据的能力使数字摄影测量法成为控制快速变化的大面积火山现象演变的合适方法。可以采用对航空摄影测量数据集的系统采集来实施针对长期火山监测和危害评估的更有效程序。此外,在火山危机期间,经常从直升机上获取倾斜的数字图像可以进行准实时监控,以支持民防部门的缓解行动。这些图像通常用于通过照片解释方法来更新现有地图,该方法提供未知准确度的数据。这项工作提出了一种科学工具(Orthoview),该工具将实施一种简单的摄影测量方法,以从单视图斜图像生成数字正射影像,前提是至少有四个地面控制点(GCP)和当前的数字高程模型(DEM)可用。与其他遥感技术相比,分析了视图几何形状,稀疏和未信号化的GCP和DEM错误的影响,以评估已开发工具的性能。使用埃特纳火山和斯特龙博利火山的数据集获得的结果表明,在生产的正射影像上测得的二维特征可以达到亚米级的精度。

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