Automated Hemorrhage Slices Detection for CT Brain Images

This paper presents an automated method to detect the hemorrhage slices for Computed Tomography(CT) brain images. The proposed system can be divided into two stages which are preprocessing stage and detection stage. Preprocessing basically is to prepare and enhance the images for the detection stage...

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Bibliographic Details
Published inVisual Informatics: Sustaining Research and Innovations pp. 268 - 279
Main Authors Tong, Hau-Lee, Ahmad Fauzi, Mohammad Faizal, Haw, Su-Cheng
Format Book Chapter
LanguageEnglish
Published Berlin, Heidelberg Springer Berlin Heidelberg 2011
SeriesLecture Notes in Computer Science
Subjects
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ISBN3642251900
9783642251900
ISSN0302-9743
1611-3349
DOI10.1007/978-3-642-25191-7_26

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Summary:This paper presents an automated method to detect the hemorrhage slices for Computed Tomography(CT) brain images. The proposed system can be divided into two stages which are preprocessing stage and detection stage. Preprocessing basically is to prepare and enhance the images for the detection stage. During detection stage, new midline detection approach is proposed to divide the intracranial area into left and right hemispheres. Then histogram features are extracted from left and right hemispheres for the dissimilarity comparison. All the feature components will be channeled into support vector machine (SVM) classifier to determine the existence of the hemorrhage. Ten-fold cross validation was applied during the SVM classification. The experiments were performed on 450 CT images and results were evaluated in terms of recall and precision. The recall and precision obtained from experimental results for hemorrhage slices detection are 84.86% and 96.82% respectively.
ISBN:3642251900
9783642251900
ISSN:0302-9743
1611-3349
DOI:10.1007/978-3-642-25191-7_26