LIDAR INTENSITY AS A REMOTE SENSOR OF ROCK PROPERTIES

被引:71
作者
Burton, Darrin [1 ]
Dunlap, Dallas B. [1 ]
Wood, Lesli J. [1 ]
Flaig, Peter P. [1 ]
机构
[1] Bur Econ Geol, Austin, TX 78758 USA
关键词
LAND-COVER CLASSIFICATION; HIGH-RESOLUTION; OUTCROP ANALOG; LASER; MODEL; REFLECTANCE; CALIBRATION; AIRBORNE; COASTAL; HEIGHT;
D O I
10.2110/jsr.2011.31
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
Lidar collects high-resolution spatial data, making it a popular tool for outcrop investigations; however, few of these studies utilize lidar's spectral capability. Lidar scanners commonly collect intensity returns (power returned/power emitted) that are influenced primarily by distance and target reflectivity, with lesser influence from angle of incidence, roughness, and environmental conditions. Application of distance normalization results in values that approximate target reflectivity. At the near-infrared wavelength of lidar, quartz-rich sandstones are more reflective than clay-rich mudstones. Scans of unweathered core and weathered outcrop were collected to investigate the relationship between lithology and lidar intensity. In unweathered, laboratory samples, intensity shows an inverse relationship to wt. % clay and are positively correlated to wt. % combined quartz, plagioclase, and K-feldspar. A similar relationship was also observed in scans of lightly weathered outcrop, although weathering and moisture diminished intensity contrast between sand-rich and shale-rich intervals. Thus, lidar intensity is a possible remote sensor of lithology, particularly in remotely located and inaccessible outcrops.
引用
收藏
页码:339 / 347
页数:9
相关论文
共 51 条
[1]  
Ahlgren S., 2003, USING 3 D OUTCROP LA
[2]  
AHOKAS E, 2006, COMM 1 S INT SOC PHO, V36, P110
[3]   Object-based land cover classification using airborne LiDAR [J].
Antonarakis, A. S. ;
Richards, K. S. ;
Brasington, J. .
REMOTE SENSING OF ENVIRONMENT, 2008, 112 (06) :2988-2998
[4]   The ASTER spectral library version 2.0 [J].
Baldridge, A. M. ;
Hook, S. J. ;
Grove, C. I. ;
Rivera, G. .
REMOTE SENSING OF ENVIRONMENT, 2009, 113 (04) :711-715
[5]   Digital outcrop models: Applications of terrestrial scanning lidar technology in stratigraphic modeling [J].
Bellian, JA ;
Kerans, C ;
Jennette, DC .
JOURNAL OF SEDIMENTARY RESEARCH, 2005, 75 (02) :166-176
[6]   A method for acquiring and processing ground-based lidar data in difficult-to-access outcrops for use in three-dimensional, virtual-reality models [J].
Bonnaffe, Florence ;
Jennette, Dave ;
Andrews, John .
GEOSPHERE, 2007, 3 (06) :501-510
[7]  
BOWITZ J, 2008, ENVIRON GEOL, V563, P451
[8]   Object-oriented land cover classification of lidar-derived surfaces [J].
Brennan, R. ;
Webster, T. L. .
CANADIAN JOURNAL OF REMOTE SENSING, 2006, 32 (02) :162-172
[9]   Terrestrial laser scanning in geology: data acquisition, processing and accuracy considerations [J].
Buckley, Simon J. ;
Howell, J. A. ;
Enge, H. D. ;
Kurz, T. H. .
JOURNAL OF THE GEOLOGICAL SOCIETY, 2008, 165 :625-638
[10]   Coastal and estuarine habitat mapping, using LIDAR height and intensity and multi-spectral imagery [J].
Chust, Guillem ;
Galparsoro, Ibon ;
Borja, Angel ;
Franco, Javier ;
Uriarte, Adolfo .
ESTUARINE COASTAL AND SHELF SCIENCE, 2008, 78 (04) :633-643