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Lung nodule image classification based on local difference pattern and combined classifier - MaRDI portal

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Lung nodule image classification based on local difference pattern and combined classifier (Q2013937)

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scientific article; zbMATH DE number 6759151
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English
Lung nodule image classification based on local difference pattern and combined classifier
scientific article; zbMATH DE number 6759151

    Statements

    Lung nodule image classification based on local difference pattern and combined classifier (English)
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    10 August 2017
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    Summary: This paper proposes a novel lung nodule classification method for low-dose CT images. The method includes two stages. First, local difference pattern (LDP) is proposed to encode the feature representation, which is extracted by comparing intensity difference along circular regions centered at the lung nodule. Then, the single-center classifier is trained based on LDP. Due to the diversity of feature distribution for different class, the training images are further clustered into multiple cores and the multicenter classifier is constructed. The two classifiers are combined to make the final decision. Experimental results on public dataset show the superior performance of LDP and the combined classifier.
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    lung nodule image classification
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    local difference pattern
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    CT imaging
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