Slope gradient analysis at different resolution using terrestrial laser scanner

Slope instability in landslide prone area is a costly problem, which can lead to travel disruption, property damages, and injury or loss of life. For many years, slope monitoring activities are largely carried out by conventional survey instruments such as Total Station, levelling and Global Positio...

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Main Authors: Wan Mohd. Akib, Wan Abdul Aziz, Tahar, K.N, Ahmad, Anuar
Format: Book Section
Published: IEEE 2012
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Online Access:http://eprints.utm.my/id/eprint/35913/
http://dx.doi.org/10.1109/CSPA.2012.6194712
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Institution: Universiti Teknologi Malaysia
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spelling my.utm.359132017-02-04T06:19:34Z http://eprints.utm.my/id/eprint/35913/ Slope gradient analysis at different resolution using terrestrial laser scanner Wan Mohd. Akib, Wan Abdul Aziz Tahar, K.N Ahmad, Anuar G Geography (General) Slope instability in landslide prone area is a costly problem, which can lead to travel disruption, property damages, and injury or loss of life. For many years, slope monitoring activities are largely carried out by conventional survey instruments such as Total Station, levelling and Global Positioning System (GPS). However, these techniques is a time consuming, hazardous, and costly process, and it can be difficult to ensure that problems are recorded and handled in a consistent manner. Terrestrial laser scanners (TLS) find rapidly growing interest in remote sensing and photogrammetry field as efficient tools for fast and reliable threedimensional (3D) point cloud data acquisition. The TLS technology is based on the reflectorless and contactless acquisition of a point cloud of the topography using the time-of-flight distance measurement of an infrared laser pulse. This paper describes the capabilities of TLS in slope mapping studies. The main objective of this study is to evaluate the slope mapping pattern at different resolution. This study has been conducted at Cameron Highland, Malaysia, which approximately located at latitude 4d2636 and longitude 101d234. Several data acquisitions on selected cut slopes were performed using the Topcon GLS1500 laser scanner. Ground control points were established using Real Time Kinematic GPS to provide a local coordinate system on laser scanning data. Resolution of a laser scanner determines a density of point cloud during data acquisition. In this experiment, there is a different number of resolution has been set during data acquisition in order to evaluate the result of slope mapping pattern. It was found that, resolution gives an effect in slope mapping pattern. IEEE 2012 Book Section PeerReviewed Wan Mohd. Akib, Wan Abdul Aziz and Tahar, K.N and Ahmad, Anuar (2012) Slope gradient analysis at different resolution using terrestrial laser scanner. In: Proceedings - 2012 IEEE 8th International Colloquium on Signal Processing and Its Applications, CSPA 2012. IEEE, New York, USA, pp. 169-173. ISBN 978-146730961-5 http://dx.doi.org/10.1109/CSPA.2012.6194712 DOI:10.1109/CSPA.2012.6194712
institution Universiti Teknologi Malaysia
building UTM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Teknologi Malaysia
content_source UTM Institutional Repository
url_provider http://eprints.utm.my/
topic G Geography (General)
spellingShingle G Geography (General)
Wan Mohd. Akib, Wan Abdul Aziz
Tahar, K.N
Ahmad, Anuar
Slope gradient analysis at different resolution using terrestrial laser scanner
description Slope instability in landslide prone area is a costly problem, which can lead to travel disruption, property damages, and injury or loss of life. For many years, slope monitoring activities are largely carried out by conventional survey instruments such as Total Station, levelling and Global Positioning System (GPS). However, these techniques is a time consuming, hazardous, and costly process, and it can be difficult to ensure that problems are recorded and handled in a consistent manner. Terrestrial laser scanners (TLS) find rapidly growing interest in remote sensing and photogrammetry field as efficient tools for fast and reliable threedimensional (3D) point cloud data acquisition. The TLS technology is based on the reflectorless and contactless acquisition of a point cloud of the topography using the time-of-flight distance measurement of an infrared laser pulse. This paper describes the capabilities of TLS in slope mapping studies. The main objective of this study is to evaluate the slope mapping pattern at different resolution. This study has been conducted at Cameron Highland, Malaysia, which approximately located at latitude 4d2636 and longitude 101d234. Several data acquisitions on selected cut slopes were performed using the Topcon GLS1500 laser scanner. Ground control points were established using Real Time Kinematic GPS to provide a local coordinate system on laser scanning data. Resolution of a laser scanner determines a density of point cloud during data acquisition. In this experiment, there is a different number of resolution has been set during data acquisition in order to evaluate the result of slope mapping pattern. It was found that, resolution gives an effect in slope mapping pattern.
format Book Section
author Wan Mohd. Akib, Wan Abdul Aziz
Tahar, K.N
Ahmad, Anuar
author_facet Wan Mohd. Akib, Wan Abdul Aziz
Tahar, K.N
Ahmad, Anuar
author_sort Wan Mohd. Akib, Wan Abdul Aziz
title Slope gradient analysis at different resolution using terrestrial laser scanner
title_short Slope gradient analysis at different resolution using terrestrial laser scanner
title_full Slope gradient analysis at different resolution using terrestrial laser scanner
title_fullStr Slope gradient analysis at different resolution using terrestrial laser scanner
title_full_unstemmed Slope gradient analysis at different resolution using terrestrial laser scanner
title_sort slope gradient analysis at different resolution using terrestrial laser scanner
publisher IEEE
publishDate 2012
url http://eprints.utm.my/id/eprint/35913/
http://dx.doi.org/10.1109/CSPA.2012.6194712
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