Remote Sensing (Jan 2015)

A GEOBIA Methodology for Fragmented Agricultural Landscapes

  • Angel Garcia-Pedrero,
  • Consuelo Gonzalo-Martin,
  • David Fonseca-Luengo,
  • Mario Lillo-Saavedra

DOI
https://doi.org/10.3390/rs70100767
Journal volume & issue
Vol. 7, no. 1
pp. 767 – 787

Abstract

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Very high resolution remotely sensed images are an important tool for monitoring fragmented agricultural landscapes, which allows farmers and policy makers to make better decisions regarding management practices. An object-based methodology is proposed for automatic generation of thematic maps of the available classes in the scene, which combines edge-based and superpixel processing for small agricultural parcels. The methodology employs superpixels instead of pixels as minimal processing units, and provides a link between them and meaningful objects (obtained by the edge-based method) in order to facilitate the analysis of parcels. Performance analysis on a scene dominated by agricultural small parcels indicates that the combination of both superpixel and edge-based methods achieves a classification accuracy slightly better than when those methods are performed separately and comparable to the accuracy of traditional object-based analysis, with automatic approach.

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