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Modelling avian biodiversity using raw,unclassified satellite imagery
Authors:Véronique St-Louis  Anna M Pidgeon  Tobias Kuemmerle  Ruth Sonnenschein  Volker C Radeloff  Murray K Clayton  Brian A Locke  Dallas Bash  Patrick Hostert
Institution:1.Department of Forest and Wildlife Ecology, University of Wisconsin-Madison, Madison, WI, USA;2.Geography Department, Humboldt-Universität zu Berlin, Berlin, Germany;3.Department of Statistics, University of Wisconsin-Madison, Madison, WI, USA;4.Directorate of Environment, Fort Bliss, TX, USA
Abstract:Applications of remote sensing for biodiversity conservation typically rely on image classifications that do not capture variability within coarse land cover classes. Here, we compare two measures derived from unclassified remotely sensed data, a measure of habitat heterogeneity and a measure of habitat composition, for explaining bird species richness and the spatial distribution of 10 species in a semi-arid landscape of New Mexico. We surveyed bird abundance from 1996 to 1998 at 42 plots located in the McGregor Range of Fort Bliss Army Reserve. Normalized Difference Vegetation Index values of two May 1997 Landsat scenes were the basis for among-pixel habitat heterogeneity (image texture), and we used the raw imagery to decompose each pixel into different habitat components (spectral mixture analysis). We used model averaging to relate measures of avian biodiversity to measures of image texture and spectral mixture analysis fractions. Measures of habitat heterogeneity, particularly angular second moment and standard deviation, provide higher explanatory power for bird species richness and the abundance of most species than measures of habitat composition. Using image texture, alone or in combination with other classified imagery-based approaches, for monitoring statuses and trends in biological diversity can greatly improve conservation efforts and habitat management.
Keywords:avian habitat modelling  biodiversity conservation  Chihuahuan Desert  image texture  spectral mixture analysis  landsat
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