DocumentCode
3161622
Title
A neuro-fuzzy classifier for land cover classification
Author
Sang Gu Lee ; Han, Jong Gyu ; Chi, Kwang Hoon ; Suh, Jae Young ; Hyol, Hee ; Miyazaki, Lee Michio ; Akizuki, Kageo
Author_Institution
Hannan Univ., Taejon, South Korea
Volume
2
fYear
1999
fDate
22-25 Aug. 1999
Firstpage
1063
Abstract
In this paper, we present a neuro-fuzzy classifier derived from the generic model of a 3-layer fuzzy perceptron and implement a classification software system for land cover classification. Comparisons with the proposed and maximum-likelihood classifiers are also presented, We use the image of Daeduk Science Complex Town which is obtained by AMS (airborne multispectral scanner). The results show that the mixed composition areas such as "bare soil", "dried grass" and "coniferous tree" are classified more accurately in the proposed method. This system can be used to classify the mixed composition area like the natural environment of the Korean peninsula. This classifier is superior in suppression of the classification errors for mixtures of land cover signatures.
Keywords
fuzzy neural nets; geography; image classification; multilayer perceptrons; spectral analysis; terrain mapping; vegetation mapping; 3-layer fuzzy perceptron; AMS; Daeduk Science Complex Town; Korean peninsula; airborne multispectral scanner; bare soil; classification error suppression; coniferous tree; dried grass; land cover classification; land cover signature mixtures; maximum-likelihood classifiers; mixed composition areas; neuro-fuzzy classifier; Algorithm design and analysis; Cities and towns; Classification tree analysis; Fuzzy neural networks; Fuzzy systems; Geology; Multispectral imaging; Probability density function; Remote sensing; Software systems;
fLanguage
English
Publisher
ieee
Conference_Titel
Fuzzy Systems Conference Proceedings, 1999. FUZZ-IEEE '99. 1999 IEEE International
Conference_Location
Seoul, South Korea
ISSN
1098-7584
Print_ISBN
0-7803-5406-0
Type
conf
DOI
10.1109/FUZZY.1999.793101
Filename
793101
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