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Segmenting multiple overlapping Nuclei in H[amp ]E Stained Breast Cancer Histopathology Images based on an improved watershed

Authors :
Ling Li
Jia Gu
Wanming Hu
Pengfei Shen
Shifu Chen
Wenjian Qin
Jie Yang
Tiexiang Wen
Source :
2015 IET International Conference on Biomedical Image and Signal Processing (ICBISP 2015).
Publication Year :
2015
Publisher :
Institution of Engineering and Technology, 2015.

Abstract

In histopathology images, there often exists several Nuclei overlapped with each other which causes difficulty to automatic nuclei segmentation. As we all know, watershed algorithm has been widely employed in image segmentation. But the limitation of watershed segmentation is sensitive to noise and can lead to serious over-segmentation. In this paper, we present an improved watershed transformation that incorporates opening-closing reconstruction and the distance transform with chamfer algorithm after color deconvolution, and H-minima . Unlike the classical watershed segmentation algorithm our improved method is able to resolve oversegmentation. The experiment results demonstrate our method successfully segment out each nuclei on breast cancer histology images, effectively address over-segmentation existed in traditional watershed segmentation , and preserve the original edges of each nuclei in the image completely.

Details

Database :
OpenAIRE
Journal :
2015 IET International Conference on Biomedical Image and Signal Processing (ICBISP 2015)
Accession number :
edsair.doi...........99736e4db0fadad83bee07be741840d5
Full Text :
https://doi.org/10.1049/cp.2015.0779