HR: 1350h
AN: U23C-1449 [Abstracts]
TI: GEOPHYSICAL SITE CHARACTERIZATION USING SPACE-BASED IMAGERY AND INTEGRATED IMAGING ANALYSIS METHODS: AN OVERVIEW
AU: * Yong, A
EM: yong@usgs.gov
AF: U.S. Geological Survey, 525 South Wilson Avenue., Pasadena, CA 91106, United States
AU: Hough, S E
EM: hough@usgs.gov
AF: U.S. Geological Survey, 525 South Wilson Avenue., Pasadena, CA 91106, United States
AU: Abrams, M J
EM: michael.j.abrams@jpl.nasa.gov
AF: Jet Propulsion Laboratory, California Institue of Technology, 4800 Oak Grove Drive. MS
183-501, Pasadena, CA 91109, United States
AU: Rymer, M J
EM: mrymer@usgs.gov
AF: U.S. Geological Survey, 525 South Wilson Avenue., Pasadena, CA 91106, United States
AU: Hulslander, D
EM: daveh@ittvis.com
AF: ITT Visual Information Solutions, 4990 Pearl East Circle., Boulder, CO 80301, United
States
AU: Wills, C J
EM: cwills@conserv.ca.gov
AF: California Geological Survey, 81 K Street. MS 12-32, Sacramento, CA 95814, United States
AB:
The identification of active faults and the estimation of local geological site conditions are critical components of
seismic hazard assessment. Precise information about regional and local geomorphic and geologic conditions
are required to characterize both of these components. In many regions of the world, map information about the
character of local terrain is imprecise, sparse, or is not readily available. Because of this, seismic hazard maps
for many regions in the world are based on an imprecise assessment of active faults and without consideration
of site conditions. We report on our development of methods using high-resolution, multi-spectral, remote
sensing data to identify surficial fault features and to provide preliminary site characterizations for estimating
ground motions in future earthquakes. Our data sets consist of: 1) optical imagery that include regions in the
visible near-infrared (VNIR) through the thermal infrared (TIR) domains, and 2) relative digital elevation models
(DEM), based on stereoscopic-correlation methods, derived from NASA's ASTER (Advanced Space-borne
Thermal Emission and Reflection Radiometer) sensors. To identify active fault features, we apply edge-detection
imaging analysis technology based on contrasts in the luminous intensity in our data. To determine terrain
features that control ground motion, we apply automatic object-oriented and pixel-based feature extraction
methods on the relative DEM and optical ASTER data, respectively. Using site classification schemes from the
Wills et al (2000) and Wills and Clahan (2006) maps of California, we assign Vs30 values for selected regions in
California, Afghanistan and Pakistan. Our results demonstrate that detailed site characterization maps, the key
basis for microzonation, can be determined from remote-sensing imagery in parts of the world where
conventional geological maps are limited or unavailable.
DE: 0300 ATMOSPHERIC COMPOSITION AND STRUCTURE
DE: 0400 BIOGEOSCIENCES
DE: 0700 CRYOSPHERE (4540)
DE: 4200 OCEANOGRAPHY: GENERAL
DE: 7200 SEISMOLOGY
SC: Union [U]
MN: 2007 Fall Meeting