Publication | Closed Access
A regression model approach for mapping woody foliage projective cover using landsat imagery in Queensland, Australia
20
Citations
7
References
2004
Year
Unknown Venue
Precision AgricultureEngineeringForest BiometricsRegression Model ApproachLand UseForestryLand CoverLandsat ImageryEarth ScienceSocial SciencesBiogeographyRegression ModelVapour Pressure DeficitGeographyFoliage Projective CoverLand Cover MapDeforestationRemote SensingCover MappingForest Inventory
This paper describes the development of a regression model for predicting foliage projective cover (FPC) using an extensive set of over 2000 field observations for Queensland, Australia. The model includes Landsat TM and ETM+ imagery and a climatological ancillary variable, vapour pressure deficit. The resulting model was validated using independent site data and preliminary validation against FPC estimates from airbourne laser scanner data is presented. Results suggest the model is robust and performing well over a range of soil types and vegetation communities. This regression-based methodology is currently included in the process of monitoring annual woody vegetation change over Queensland and will form the basis of new products for monitoring longer term trends in FPC
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