HR: 1340h
AN: B43B-1160 [Abstracts]
TI: Remote sensing of threshold conditions in an arid ecosystem
AU: * Steele, C M
EM: caiti@nmsu.edu
AF: USDA-ARS Jornada Experimental Range, PO Box 30003 MSC 3JER
New Mexico State University, Las Cruces, NM 88003-8003, United States
AU: Bestelmeyer, B T
EM: bbestelm@nmsu.edu
AF: USDA-ARS Jornada Experimental Range, PO Box 30003 MSC 3JER
New Mexico State University, Las Cruces, NM 88003-8003, United States
AU: Rango, A
EM: alrango@nmsu.edu
AF: USDA-ARS Jornada Experimental Range, PO Box 30003 MSC 3JER
New Mexico State University, Las Cruces, NM 88003-8003, United States
AU: Smith, P L
EM: phil_smith@nm.blm.gov
AF: Las Cruces District Office, Bureau of Land Management, 1800 Marquess Street, Las
Cruces, NM 88005-3370, United States
AU: Laliberte, A S
EM: alaliber@nmsu.edu
AF: USDA-ARS Jornada Experimental Range, PO Box 30003 MSC 3JER
New Mexico State University, Las Cruces, NM 88003-8003, United States
AB:
Land management in the arid southwestern USA increasingly addresses thresholds in response to recent
concepts adopted by private and public lands agencies and conservation organizations. Vegetation in arid
rangelands typically presents as distinctive mosaics of vegetation patches, which persist in dynamic equilibrium
with the abiotic environment and facilitative-competitive interactions between organisms. Theory and observation
suggest that as an area approaches a threshold in response to disturbance, there is a concomitant change in the
spatial arrangement of vegetation patches. This change is readily identifiable on fine spatial resolution aerial
photography or satellite sensor imagery. We propose a classification method for identifying threshold-inducing
change in vegetation pattern. To illustrate this method, we have applied an object-oriented, supervised
classification to subsets of Quickbird imagery (70 cm ground resolution) over the Jornada basin in southern New
Mexico. The imagery covers several land management regimes (private, public, federal) and provides spatial
variation in ecosystem conditions. Imagery was first segmented to create fine and coarse resolution image
objects. Fine resolution image objects are defined as having within-object spectral homogeneity at the scale of
the shrub or single patch of grass or soil. Coarse resolution image objects are defined as containing spectral
homogeneity at the scale of the vegetation stand. A classification tree was used to classify coarse resolution
image objects to high risk of a threshold, low risk of a threshold, or post-threshold according to the content and
spatial arrangement of shrub, grass and soil patches within them. Ground-based monitoring to detect localized
threshold conditions across broad management areas is intractable so the use of remote sensing is essential to
successful prevention of threshold development.
DE: 0430 Computational methods and data processing
DE: 0439 Ecosystems, structure and dynamics (4815)
DE: 0480 Remote sensing
DE: 1632 Land cover change
DE: 1809 Desertification
SC: Biogeosciences [B]
MN: 2007 Fall Meeting