Modeling sensitivity to accuracy in classified imagery: a study of areal interpolation by dasymetric mapping.

Part of a special section on the creation of meaningful and appropriate spatial units of analysis and their use in further geographic analysis. A study was conducted to examine the propagation of error in a classified Landsat image into the areal interpolation of population counts. Areal interpola...

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Published in:Professional Geographer Vol. 48; pp. 299 - 310
Main Authors: Fisher, Peter F., Langford, Mitchel
Format: Article
Published: Taylor & Francis Ltd August 1996
Subjects:
Online Access:View this record in EBSCOhost
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      dt: August 1996
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      pub: Taylor & Francis Ltd
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        512829714
        10.1111/j.0033-0124.1996.00299.x
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        atl: Modeling sensitivity to accuracy in classified imagery: a study of areal interpolation by dasymetric mapping.
      aug:
        au:
          Fisher, Peter F.
          Langford, Mitchel
      su:
        Population statistics
        Interpolation
        Geography -- Statistical methods
        Geographic information systems
        Cartography
        Methodology
      sug:
        subj:
          Population statistics
          Interpolation
          Geography -- Statistical methods
          Geographic information systems
          Cartography
          Methodology
      ab: Part of a special section on the creation of meaningful and appropriate spatial units of analysis and their use in further geographic analysis. A study was conducted to examine the propagation of error in a classified Landsat image into the areal interpolation of population counts. Areal interpolation is defined as the process by which data gathered from one set of zonal units can be estimated for another zonal division of the same space that shares few or no boundaries with the first. The methods of areal interpolation examined are reviewed, and the error modeling procedures employed are outlined. The nature of the errors in classified Landsat imagery is discussed, and methods for simulating errors in a classified image are presented. The findings reveal that population estimates by dasymetric mapping are largely insensitive to errors of classification in the Landsat image when compared with other methods tested.
      pubtype: Academic Journal
      doctype: Article
      src: R
    language: English
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