Satellite image classification using a classifier integration model

A new satellite image classification method using a classifier integration model(CIM)is proposed in this paper. CIM does not use the entire feature vectors extracted from the original data in a concatenated form to classify each datum, but rather uses groups of features related to each feature vecto...

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Published in2011 9th IEEE/ACS International Conference on Computer Systems and Applications (AICCSA) pp. 90 - 94
Main Authors Dong-Chul Park, Taekyung Jeong, Yunsik Lee, Soo-Young Min
Format Conference Proceeding
LanguageEnglish
Published IEEE 01.12.2011
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ISBN9781457704758
1457704757
ISSN2161-5322
DOI10.1109/AICCSA.2011.6126608

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Abstract A new satellite image classification method using a classifier integration model(CIM)is proposed in this paper. CIM does not use the entire feature vectors extracted from the original data in a concatenated form to classify each datum, but rather uses groups of features related to each feature vector separately. In the training stage, a confusion table calculated from each local classifier that uses a specific feature vector group is drawn throughout the accuracy of each local classifier and then, in the testing stage, the final classification result is obtained by applying weights corresponding to the confidence level of each local classifier. The CIM is applied to the problem of satellite image classification on a set of image data. The results demonstrate that the CIM scheme can enhance the classification accuracy of individual classifiers that use specific feature vector group.
AbstractList A new satellite image classification method using a classifier integration model(CIM)is proposed in this paper. CIM does not use the entire feature vectors extracted from the original data in a concatenated form to classify each datum, but rather uses groups of features related to each feature vector separately. In the training stage, a confusion table calculated from each local classifier that uses a specific feature vector group is drawn throughout the accuracy of each local classifier and then, in the testing stage, the final classification result is obtained by applying weights corresponding to the confidence level of each local classifier. The CIM is applied to the problem of satellite image classification on a set of image data. The results demonstrate that the CIM scheme can enhance the classification accuracy of individual classifiers that use specific feature vector group.
Author Yunsik Lee
Soo-Young Min
Taekyung Jeong
Dong-Chul Park
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  surname: Taekyung Jeong
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  surname: Soo-Young Min
  fullname: Soo-Young Min
  email: minsy@keti.re.kr
  organization: Syst. IC R&D Div., Korea Electron. Tech. Inst., Songnam, South Korea
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Snippet A new satellite image classification method using a classifier integration model(CIM)is proposed in this paper. CIM does not use the entire feature vectors...
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StartPage 90
SubjectTerms Accuracy
classification
classifier fusion
Computer integrated manufacturing
Discrete cosine transforms
Feature extraction
image data
local classifier
Satellites
Training data
Vectors
Title Satellite image classification using a classifier integration model
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