Terrestrial laser scanning of rock slope instabilities

被引:264
|
作者
Abellan, Antonio [1 ]
Oppikofer, Thierry [2 ]
Jaboyedoff, Michel [1 ]
Rosser, Nicholas J. [3 ]
Lim, Michael [4 ]
Lato, Matthew J. [5 ]
机构
[1] Univ Lausanne, Fac Geosci & Environm, CRET, CH-1015 Lausanne, Switzerland
[2] Geol Survey Norway, N-7491 Trondheim, Norway
[3] Univ Durham, Inst Hazard Risk & Resilience, Sci Labs, Durham DH1 3LE, England
[4] Northumbria Univ, Sch Built & Nat Environm, Newcastle Upon Tyne NE1 8ST, Tyne & Wear, England
[5] RockSense GeoSolut Inc, Ottawa, ON, Canada
关键词
LiDAR; terrestrial laser scanner; rock slope; characterization; discontinuity; orientation; landslide; rockfall; monitoring; mass wasting; SQUARES 3D SURFACE; LIDAR DATA; DIGITAL PHOTOGRAMMETRY; MAGNITUDE-FREQUENCY; SAR INTERFEROMETRY; YOSEMITE VALLEY; LANDSLIDES; AIRBORNE; REGISTRATION; RESOLUTION;
D O I
10.1002/esp.3493
中图分类号
P9 [自然地理学];
学科分类号
0705 ; 070501 ;
摘要
This manuscript presents a review on the application of a remote sensing technique (terrestrial laser scanning, TLS) to a well-known topic (rock slope characterization and monitoring). Although the number of publications on the use of TLS in rock slope studies has rapidly increased in the last 5-10years, little effort has been made to review the key developments, establish a code of best practice and unify future research approaches. The acquisition of dense 3D terrain information with high accuracy, high data acquisition speed and increasingly efficient post-processing workflows is helping to better quantify key parameters of rock slope instabilities across spatial and temporal scales ranging from cubic decimetres to millions of cubic metres and from hours to years, respectively. Key insights into the use of TLS in rock slope investigations include: (a) the capability of remotely obtaining the orientation of slope discontinuities, which constitutes a great step forward in rock mechanics; (b) the possibility to monitor rock slopes which allows not only the accurate quantification of rockfall rates across wide areas but also the spatio-temporal modelling of rock slope deformation with an unprecedented level of detail. Studying rock slopes using TLS presents a series of key challenges, from accounting for the fractal character of rock surface to detecting the precursory deformation that may help in the future prediction of rock failures. Further investigation on the development of new algorithms for point cloud filtering, segmentation, feature extraction, deformation tracking and change detection will significantly improve our understanding on how rock slopes behave and evolve. Perspectives include the use of new 3D sensing devices and the adaptation of techniques and methods recently developed in other disciplines as robotics and 3D computer-vision to rock slope instabilities research. Copyright (c) 2013 John Wiley & Sons, Ltd.
引用
收藏
页码:80 / 97
页数:18
相关论文
共 50 条
  • [41] Research on Side-Slope Monitoring by Integrating Terrestrial Laser Scanning and UAV-Based Photogrammetry
    Wang Y.
    Duan P.
    Li J.
    Zhang Z.
    Environmental and Engineering Geoscience, 2023, 29 (02) : 1 - 14
  • [42] Research on Side-Slope Monitoring by Integrating Terrestrial Laser Scanning and UAV-Based Photogrammetry
    Wang, Yunchuan
    Duan, Ping
    LI, Jia
    Zhang, Zhike
    ENVIRONMENTAL & ENGINEERING GEOSCIENCE, 2023, 29 (02): : 133 - 146
  • [43] Application of three-dimensional laser scanning and surveying in geological investigation of high rock slope
    Huang Runqiu
    Dong Xiujun
    JOURNAL OF CHINA UNIVERSITY OF GEOSCIENCES, 2008, 19 (02) : 184 - 190
  • [44] Application of Three-Dimensional Laser Scanning and Surveying in Geological Investigation of High Rock Slope
    黄润秋
    董秀军
    Journal of China University of Geosciences, 2008, (02) : 184 - 190
  • [45] DEVELOPMENT OF TERRESTRIAL LASER SCANNING SIMULATOR
    Luhmann, Thomas
    Chizhova, Maria
    Gorkovchuk, Denys
    Popovas, Darius
    Gorkovchuk, Julia
    Hess, Mona
    9TH INTERNATIONAL WORKSHOP 3D-ARCH 3D VIRTUAL RECONSTRUCTION AND VISUALIZATION OF COMPLEX ARCHITECTURES, VOL. 46-2, 2022, : 329 - 334
  • [46] Target identification in terrestrial laser scanning
    Ge, X.
    Wunderlich, T.
    SURVEY REVIEW, 2015, 47 (341) : 129 - 140
  • [47] Terrestrial Laser Scanning in Forest Inventories
    Liang, Xinlian
    Kaartinen, Harri
    Hyyppa, Juha
    Pfeifer, Norbert
    GIM INTERNATIONAL-THE WORLDWIDE MAGAZINE FOR GEOMATICS, 2016, 30 (02): : 26 - 29
  • [48] Terrestrial Laser Scanning for Vegetation Sampling
    Richardson, Jeffrey J.
    Moskal, L. Monika
    Bakker, Jonathan D.
    SENSORS, 2014, 14 (11) : 20304 - 20319
  • [49] Applications of Terrestrial Laser Scanning in Geomorphology
    Hayakawa, Yuichi S.
    Oguchi, Takashi
    JOURNAL OF GEOGRAPHY-CHIGAKU ZASSHI, 2016, 125 (03) : 299 - 324
  • [50] Sampling forests with terrestrial laser scanning
    Boucher, Peter B.
    Paynter, Ian
    Orwig, David A.
    Valencius, Ilan
    Schaaf, Crystal
    ANNALS OF BOTANY, 2021, 128 (06) : 689 - 707