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A double thresholding method for cancer stem cell detection

Xu, Jin Wei (author)
Bioinformatics Research Group School of Engineering and Information Technology The University of New South Wales Canberra, ACT 2600, Australia
Pham, Tuan D. (author)
Bioinformatics Research Group School of Engineering and Information Technology The University of New South Wales Canberra, Australia
Zhou, Xiaobo (author)
The Methodist Hospital Research Institute Cornell University Houston, TX 77030, USA
 (creator_code:org_t)
Institute of Electrical and Electronics Engineers (IEEE), 2011
2011
English.
Series: Image and Signal Processing and Analysis (ISPA), 1845-5921
  • Conference paper (peer-reviewed)
Abstract Subject headings
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  • Image analysis of cancer cells is important for cancer diagnosis and therapy, because it recognized as the most efficient and effective way to observe its proliferation. For the purpose of adaptive and accurate cancer cell image segmentation, a double threshold segmentation method is proposed in this paper. Based on a single gray-value histogram of the RGB color space, a double threshold, the key parameters of threshold segmentation can be fixed by a fitted-curve of the RGB component histogram. As reasonable thresholds confirmed, binary segmentation dependent on two thresholds, will be put into practice and result in binary image. With the post-processing of mathematical morphology and division of whole image, the better segmentation result can be finally achieved. By the comparison with other advanced segmentation methods such as level set and active contour, the proposed double thresholding has been found as the simplest strategy with shortest processing time as well as highest accuracy. The proposed method can be effectively used in the detection and recognition of cancer stem cells in images.

Subject headings

TEKNIK OCH TEKNOLOGIER  -- Medicinteknik -- Medicinsk bildbehandling (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Medical Engineering -- Medical Image Processing (hsv//eng)

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By the author/editor
Xu, Jin Wei
Pham, Tuan D.
Zhou, Xiaobo
About the subject
ENGINEERING AND TECHNOLOGY
ENGINEERING AND ...
and Medical Engineer ...
and Medical Image Pr ...
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Image and Signal ...
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Linköping University

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