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자료유형
학술저널
저자정보
R. Karthik (Vellore Institute of Technology) R. Rajalakshmi (Vellore Institute of Technology) Joel Raymann (Vellore Institute of Technology)
저널정보
대한의용생체공학회 Biomedical Engineering Letters (BMEL) Biomedical Engineering Letters (BMEL) Vol.11 No.1
발행연도
2021.1
수록면
3 - 13 (11page)

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초록· 키워드

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Precise delineation of the ischemic lesion from unimodal Magnetic Resonance Imaging (MRI) is a challenging task due tothe subtle intensity difference between the lesion and normal tissues. Hence, multispectral MRI modalities are used for characterizingthe properties of brain tissues. Traditional lesion detection methods rely on extracting significant hand-engineeredfeatures to differentiate normal and abnormal brain tissues. But the identification of those discriminating features is quitecomplex, as the degree of differentiation varies according to each modality. This can be addressed well by ConvolutionalNeural Networks (CNN) which supports automatic feature extraction. It is capable of learning the global features from imageseffectively for image classification. But it loses the context of local information among the pixels that need to be retained forsegmentation. Also, it must provide more emphasis on the features of the lesion region for precise reconstruction. The majorcontribution of this work is the integration of attention mechanism with a Fully Convolutional Network (FCN) to segmentischemic lesion. This attention model is applied to learn and concentrate only on salient features of the lesion region bysuppressing the details of other regions. Hence the proposed FCN with attention mechanism was able to segment ischemiclesion of varying size and shape. To study the effectiveness of attention mechanism, various experiments were carried outon ISLES 2015 dataset and a mean dice coefficient of 0.7535 was obtained. Experimental results indicate that there is animprovement of 5% compared to the existing works.

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