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Time Series UAV Image-Based Point Clouds for Landslide Progression Evaluation Applications

机译:基于时间序列无人机图像的点云在滑坡进展评价中的应用

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摘要

Landslides are major and constantly changing threats to urban landscapes and infrastructure. It is essential to detect and capture landslide changes regularly. Traditional methods for monitoring landslides are time-consuming, costly, dangerous, and the quality and quantity of the data is sometimes unable to meet the necessary requirements of geotechnical projects. This motivates the development of more automatic and efficient remote sensing approaches for landslide progression evaluation. Automatic change detection involving low-altitude unmanned aerial vehicle image-based point clouds, although proven, is relatively unexplored, and little research has been done in terms of accounting for volumetric changes. In this study, a methodology for automatically deriving change displacement rates, in a horizontal direction based on comparisons between extracted landslide scarps from multiple time periods, has been developed. Compared with the iterative closest projected point (ICPP) registration method, the developed method takes full advantage of automated geometric measuring, leading to fast processing. The proposed approach easily processes a large number of images from different epochs and enables the creation of registered image-based point clouds without the use of extensive ground control point information or further processing such as interpretation and image correlation. The produced results are promising for use in the field of landslide research.
机译:滑坡是对城市景观和基础设施的重大且不断变化的威胁。定期检测和捕获滑坡变化至关重要。传统的滑坡监测方法耗时,昂贵,危险,并且数据的质量和数量有时无法满足岩土工程的必要要求。这激发了开发更多自动和有效的遥感方法来进行滑坡进展评估。涉及低空无人机图像点云的自动变化检测虽然已得到证实,但相对来说还没有得到充分的探索,并且在解决体积变化方面进行的研究很少。在这项研究中,已经开发了一种方法,该方法可以基于多个时间段内提取的滑坡陡坡之间的比较,自动得出水平方向的变化位移率。与迭代最近投影点(ICPP)配准方法相比,该方法充分利用了自动几何测量的优势,从而实现了快速处理。所提出的方法容易地处理来自不同时期的大量图像,并且能够创建基于注册的图像的点云,而无需使用广泛的地面控制点信息或诸如解释和图像相关性之类的进一步处理。产生的结果有望用于滑坡研究领域。

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