Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual Framework

Sinkholes cause subsidence and collapse problems for many transportation infrastructure assets. Subsequently, transportation infrastructure management agencies dedicate a considerable amount of time and money to detect and map sinkholes as part of their asset management programs. Traditionally, sink...

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Main Authors: Zhang Su, Bogus Susan, Baros Shirley, Neville Paul, Dow Ryan
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:MATEC Web of Conferences
Online Access:https://www.matec-conferences.org/articles/matecconf/pdf/2019/20/matecconf_tran-set2019_02005.pdf
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spelling doaj-1e2e8f8c820f4855876da3090cad56232021-03-02T10:03:58ZengEDP SciencesMATEC Web of Conferences2261-236X2019-01-012710200510.1051/matecconf/201927102005matecconf_tran-set2019_02005Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual FrameworkZhang Su0Bogus Susan1Baros Shirley2Neville Paul3Dow Ryan4Earth Data Analysis Center, University of New MexicoDepartment of Civil, Construction, and Environmental Engineering, University of New MexicoEarth Data Analysis Center, University of New MexicoEarth Data Analysis Center, University of New MexicoDepartment of Civil, Construction, and Environmental Engineering, University of New MexicoSinkholes cause subsidence and collapse problems for many transportation infrastructure assets. Subsequently, transportation infrastructure management agencies dedicate a considerable amount of time and money to detect and map sinkholes as part of their asset management programs. Traditionally, sinkholes are detected through area reconnaissance, which includes visual inspection of a site to locate existing sinkholes or device inspection of a site to locate potential sinkholes or previously filled sinkholes. Another method for sinkhole detection is through a review of maps such as geological maps. These methods are expensive, time-consuming, and labor-intensive. Recent advances in remote sensing, especially airborne light detection and ranging (LiDAR), allows for the examination of the change in the Earth's surface elevation accurately and rapidly. The focus of this study is to develop a conceptual framework for sinkhole detection and mapping with airborne LiDAR. This conceptual framework lays the foundation for the future application of airborne LiDAR for sinkhole detection and mapping.https://www.matec-conferences.org/articles/matecconf/pdf/2019/20/matecconf_tran-set2019_02005.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Zhang Su
Bogus Susan
Baros Shirley
Neville Paul
Dow Ryan
spellingShingle Zhang Su
Bogus Susan
Baros Shirley
Neville Paul
Dow Ryan
Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual Framework
MATEC Web of Conferences
author_facet Zhang Su
Bogus Susan
Baros Shirley
Neville Paul
Dow Ryan
author_sort Zhang Su
title Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual Framework
title_short Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual Framework
title_full Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual Framework
title_fullStr Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual Framework
title_full_unstemmed Karst Sinkhole Detecting and Mapping Using Airborne LiDAR - A Conceptual Framework
title_sort karst sinkhole detecting and mapping using airborne lidar - a conceptual framework
publisher EDP Sciences
series MATEC Web of Conferences
issn 2261-236X
publishDate 2019-01-01
description Sinkholes cause subsidence and collapse problems for many transportation infrastructure assets. Subsequently, transportation infrastructure management agencies dedicate a considerable amount of time and money to detect and map sinkholes as part of their asset management programs. Traditionally, sinkholes are detected through area reconnaissance, which includes visual inspection of a site to locate existing sinkholes or device inspection of a site to locate potential sinkholes or previously filled sinkholes. Another method for sinkhole detection is through a review of maps such as geological maps. These methods are expensive, time-consuming, and labor-intensive. Recent advances in remote sensing, especially airborne light detection and ranging (LiDAR), allows for the examination of the change in the Earth's surface elevation accurately and rapidly. The focus of this study is to develop a conceptual framework for sinkhole detection and mapping with airborne LiDAR. This conceptual framework lays the foundation for the future application of airborne LiDAR for sinkhole detection and mapping.
url https://www.matec-conferences.org/articles/matecconf/pdf/2019/20/matecconf_tran-set2019_02005.pdf
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AT barosshirley karstsinkholedetectingandmappingusingairbornelidaraconceptualframework
AT nevillepaul karstsinkholedetectingandmappingusingairbornelidaraconceptualframework
AT dowryan karstsinkholedetectingandmappingusingairbornelidaraconceptualframework
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