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Decision fusion with reliabilities in multisource data classificationIn this paper, a new multisource classifier which is based on a fusion of the class decisions of each separate data set is proposed. Each data set is separately fed into the local classifier and a final classification is performed by summarizing these local class decisions. An optimum decision fusion rule based on the minimum expected cost is derived. This new decision fusion rule can handle not only data set reliabilities but also classwise reliabilities of each data set. Classification experiments with two remotely sensed Thematic Mapper (TM) data sets show promising improvement over conventional multisource classification algorithms.
Document ID
19930066523
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Jeon, Byeungwoo
(NASA Headquarters Washington, DC United States)
Landgrebe, David A.
(Purdue Univ. West Lafayette, IN, United States)
Date Acquired
August 16, 2013
Publication Date
October 1, 1992
Subject Category
Cybernetics
Meeting Information
Meeting: 1992 IEEE International Conference on Systems, Man, and Cybernetics
Location: Chicago, IL
Country: United States
Start Date: October 18, 1992
End Date: October 21, 1992
Accession Number
93A50520
Funding Number(s)
CONTRACT_GRANT: NAGW-925
Distribution Limits
Public
Copyright
Other

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