White blood cell segmentation and classification in microscopic bone marrow images

An automatic segmentation technique for microscopic bone marrow white blood cell images is proposed in this paper. The segmentation technique segments each cell image into three regions, i.e., nucleus, cytoplasm, and background. We evaluate the segmentation performance of the proposed technique by c...

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主要作者: Nipon Theera-Umpon
格式: Conference Proceeding
出版: 2018
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spelling th-cmuir.6653943832-621612018-09-11T09:25:12Z White blood cell segmentation and classification in microscopic bone marrow images Nipon Theera-Umpon Computer Science Mathematics An automatic segmentation technique for microscopic bone marrow white blood cell images is proposed in this paper. The segmentation technique segments each cell image into three regions, i.e., nucleus, cytoplasm, and background. We evaluate the segmentation performance of the proposed technique by comparing its results with the cell images manually segmented by an expert. The probability of error in image segmentation is utilized as an evaluation measure in the comparison. From the experiments, we achieve good segmentation performances in the entire cell and nucleus segmentation. The six-class cell classification problem is also investigated by using the automatic segmented images. We extract four features from the segmented images including the cell area, the peak location of pattern spectrum, the first and second granulometric moments of nucleus. Even though the boundaries between cell classes are not well-defined and there are classification variations among experts, we achieve a promising classification performance using neural networks with five-fold cross validation. © Springer-Verlag Berlin Heidelberg 2005. 2018-09-11T09:22:55Z 2018-09-11T09:22:55Z 2005-10-27 Conference Proceeding 03029743 2-s2.0-26944437877 https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=26944437877&origin=inward http://cmuir.cmu.ac.th/jspui/handle/6653943832/62161
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
topic Computer Science
Mathematics
spellingShingle Computer Science
Mathematics
Nipon Theera-Umpon
White blood cell segmentation and classification in microscopic bone marrow images
description An automatic segmentation technique for microscopic bone marrow white blood cell images is proposed in this paper. The segmentation technique segments each cell image into three regions, i.e., nucleus, cytoplasm, and background. We evaluate the segmentation performance of the proposed technique by comparing its results with the cell images manually segmented by an expert. The probability of error in image segmentation is utilized as an evaluation measure in the comparison. From the experiments, we achieve good segmentation performances in the entire cell and nucleus segmentation. The six-class cell classification problem is also investigated by using the automatic segmented images. We extract four features from the segmented images including the cell area, the peak location of pattern spectrum, the first and second granulometric moments of nucleus. Even though the boundaries between cell classes are not well-defined and there are classification variations among experts, we achieve a promising classification performance using neural networks with five-fold cross validation. © Springer-Verlag Berlin Heidelberg 2005.
format Conference Proceeding
author Nipon Theera-Umpon
author_facet Nipon Theera-Umpon
author_sort Nipon Theera-Umpon
title White blood cell segmentation and classification in microscopic bone marrow images
title_short White blood cell segmentation and classification in microscopic bone marrow images
title_full White blood cell segmentation and classification in microscopic bone marrow images
title_fullStr White blood cell segmentation and classification in microscopic bone marrow images
title_full_unstemmed White blood cell segmentation and classification in microscopic bone marrow images
title_sort white blood cell segmentation and classification in microscopic bone marrow images
publishDate 2018
url https://www.scopus.com/inward/record.uri?partnerID=HzOxMe3b&scp=26944437877&origin=inward
http://cmuir.cmu.ac.th/jspui/handle/6653943832/62161
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