Intelligent services for discovery of complex geospatial features from remote sensing imagery

Peng Yue, Liping Di, Yaxing Wei, Weiguo Han

Research output: Contribution to journalArticlepeer-review

37 Scopus citations

Abstract

Remote sensing imagery has been commonly used by intelligence analysts to discover geospatial features, including complex ones. The overwhelming volume of routine image acquisition requires automated methods or systems for feature discovery instead of manual image interpretation. The methods of extraction of elementary ground features such as buildings and roads from remote sensing imagery have been studied extensively. The discovery of complex geospatial features, however, is still rather understudied. A complex feature, such as a Weapon of Mass Destruction (WMD) proliferation facility, is spatially composed of elementary features (e.g., buildings for hosting fuel concentration machines, cooling towers, transportation roads, and fences). Such spatial semantics, together with thematic semantics of feature types, can be used to discover complex geospatial features. This paper proposes a workflow-based approach for discovery of complex geospatial features that uses geospatial semantics and services. The elementary features extracted from imagery are archived in distributed Web Feature Services (WFSs) and discoverable from a catalogue service. Using spatial semantics among elementary features and thematic semantics among feature types, workflow-based service chains can be constructed to locate semantically-related complex features in imagery. The workflows are reusable and can provide on-demand discovery of complex features in a distributed environment.

Original languageEnglish
Pages (from-to)151-164
Number of pages14
JournalISPRS Journal of Photogrammetry and Remote Sensing
Volume83
DOIs
StatePublished - Sep 2013

Funding

We are grateful to the anonymous reviewers for their valuable comments. Part of the work discussed in the paper was funded by U.S. Department of Energy (Grant #DE-NA0001123 , PI: Prof. Liping Di), National Basic Research Program of China ( 2011CB707105 ), and Project 41271397 supported by NSFC . The authors would also like to thank Ms. Julia Di for editing and proofreading the manuscript.

Keywords

  • Complex geospatial features
  • Feature discovery
  • GIS
  • Geospatial services
  • Image mining
  • Semantic
  • Workflow

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