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TOWARDS A LOW-COST, REAL-TIME PHOTOGRAMMETRIC LANDSLIDE MONITORING SYSTEM UTILISING MOBILE AND CLOUD COMPUTING TECHNOLOGY

机译:朝着低成本,实时摄影测图山体积监控系统利用移动和云计算技术

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Close-range photogrammetric techniques offer a potentially low-cost approach in terms of implementation and operation for initial assessment and monitoring of landslide processes over small areas. In particular, the Structure-from-Motion (SfM) pipeline is now extensively used to help overcome many constraints of traditional digital photogrammetry, offering increased user-friendliness to nonexperts, as well as lower costs. However, a landslide monitoring approach based on the SfM technique also presents some potential drawbacks due to the difficulty in managing and processing a large volume of data in real-time. This research addresses the aforementioned issues by attempting to combine a mobile device with cloud computing technology to develop a photogrammetric measurement solution as part of a monitoring system for landslide hazard analysis. The research presented here focusses on (i) the development of an Android mobile application; (ii) the implementation of SfM-based open-source software in the Amazon cloud computing web service, and (iii) performance assessment through a simulated environment using data collected at a recognized landslide test site in North Yorkshire, UK. Whilst the landslide monitoring mobile application is under development, this paper describes experiments carried out to ensure effective performance of the system in the future. Investigations presented here describe the initial assessment of a cloud-implemented approach, which is developed around the well-known VisualSFM algorithm. Results are compared to point clouds obtained from alternative SfM 3D reconstruction approaches considering a commercial software solution (Agisoft PhotoScan) and a web-based system (Autodesk 123D Catch). Investigations demonstrate that the cloud-based photogrammetric measurement system is capable of providing results of centimeter-level accuracy, evidencing its potential to provide an effective approach for quantifying and analyzing landslide hazard at a local-scale.
机译:近距离摄影测量技术在实施和运行方面提供了潜在的低成本方法,用于初步评估和监测小区的滑坡流程。特别地,现在广泛地用于帮助克服传统数码摄影测量的许多限制,向非处方提供增加的用户友好,以及降低成本的结构 - 从 - 动作(SFM)管道。然而,由于难以在实时管理和处理大量数据,基于SFM技术的滑坡监测方法也具有一些潜在的缺点。该研究通过尝试将具有云计算技术的移动设备组合来开发摄影测量解决方案作为滑坡危险分析的监测系统的一部分,解决上述问题。这里提出的研究重点是(i)Android移动应用程序的开发; (ii)通过使用在英国北约克郡的公认的滑坡测试站点收集的数据,通过模拟环境在亚马逊云计算Web服务中实施基于SFM的开源软件。(iii)性能评估。虽然Landslide监控移动申请正在开发,但本文介绍了在未来确保系统有效性能的实验。这里提出的调查描述了云实施方法的初步评估,其围绕着名的VisualSFM算法开发。结果与考虑商业软件解决方案(AGISOFT Photoscan)和基于Web的系统(Autodesk 123D Catch)获得的替代SFM 3D重建方法获得的点云进行比较。调查表明,基于云的摄影测量系统能够提供厘米级精度的结果,证明其潜力提供了一种有效的方法,用于以局部规模定量和分析滑坡危害。

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