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Incorporating spatial context into statistical classification of multidimensional image dataCompound decision theory is employed to develop a general statistical model for classifying image data using spatial context. The classification algorithm developed from this model exploits the tendency of certain ground-cover classes to occur more frequently in some spatial contexts than in others. A key input to this contextural classifier is a quantitative characterization of this tendency: the context function. Several methods for estimating the context function are explored, and two complementary methods are recommended. The contextural classifier is shown to produce substantial improvements in classification accuracy compared to the accuracy produced by a non-contextural uniform-priors maximum likelihood classifier when these methods of estimating the context function are used. An approximate algorithm, which cuts computational requirements by over one-half, is presented. The search for an optimal implementation is furthered by an exploration of the relative merits of using spectral classes or information classes for classification and/or context function estimation.
Document ID
19820014712
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Bauer, M. E.
(Purdue Univ. West Lafayette, IN, United States)
Tilton, J. C.
(Purdue Univ. West Lafayette, IN, United States)
Swain, P. H.
(Purdue Univ. West Lafayette, IN, United States)
Date Acquired
September 4, 2013
Publication Date
August 1, 1981
Subject Category
Earth Resources And Remote Sensing
Report/Patent Number
E82-10106
NASA-CR-167455
LARS-072981
SR-P1-04148
NAS 1.26:167455
Report Number: E82-10106
Report Number: NASA-CR-167455
Report Number: LARS-072981
Report Number: SR-P1-04148
Report Number: NAS 1.26:167455
Accession Number
82N22586
Funding Number(s)
CONTRACT_GRANT: NAS9-15466
PROJECT: PROJ. AGRISTARS
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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