HR: 0800h
AN: V31A-0600 [Abstracts]
TI: Combining Oblique Thermal Imagery and Topographic Data of Lava Flows
AU: * James, M R
EM: m.james@lancs.ac.uk
AF: Lancaster University, Department of Environmental Science, Lancaster, LA1 4YQ
United Kingdom
AU: Robson, S
EM: s.robson@ge.ucl.ac.uk
AF: University College London, Department of Geomatic Engineering,
Gower Street, London, WC1E 6BT
United Kingdom
AB:
Collecting ground-based images of environmental scenes usually results in images with significant depth of field and strongly
oblique views of the objects of interest. These factors complicate quantitative analysis by introducing large changes in
scale within images and, in the case of thermal data, varying the corrections required to account for atmospheric
attenuation.
We report on the use of photogrammetric and machine vision techniques to combine spatial data with thermal imagery in order
to allow distance, velocity and appropriately corrected thermal data to be obtained. Topographic information was determined
by photogrammetry, using visible images from a consumer-grade digital SLR camera which were collected simultaneously with the
thermal images. Orientation of the thermal images (i.e. calculation of camera position and pointing direction) then allowed
viewing distance corrections to be applied to the thermal images on a pixel-by-pixel basis. Rectification of the corrected
images allows them to be presented in geographic coordinates and therefore facilitates correlation with other datasets for
analysis.
Examples are given from the 2004 to 2005 eruption of Mount Etna, Sicily. Images were collected from flow front regions just
south of Monte Centenari, approximately 2 km from the active vent. From the viewing positions occupied, the lava flowed
towards the camera, with distances to the flow being between ~50 and 400 m. We describe the viewing distance corrections
applied to the thermal data and illustrate how sequence analysis in a 3D spatial context can be used to determine flow
profiles and lava flux rates. Significant variations in flux can be correlated with periods of levee building, breaching and
ogive formation.
DE: 8414 Eruption mechanisms and flow emplacement
DE: 8425 Effusive volcanism
DE: 8485 Remote sensing of volcanoes
DE: 8494 Instruments and techniques
SC: Volcanology, Geochemistry, Petrology [V]
MN: Fall Meeting 2005