DocumentCode :
1981139
Title :
Region and contour based cell cluster segmentation algorithm for in-situ microscopy
Author :
Sheehy, A. ; Martinez, G. ; Frerichs, J.-G. ; Scheper, T.
Author_Institution :
IPCV-Lab., Univ. de Costa Rica, San Jose
fYear :
2008
fDate :
12-14 Nov. 2008
Firstpage :
168
Lastpage :
172
Abstract :
In this contribution a new algorithm is proposed for segmenting the image regions of the cell clusters present in a static image captured by an in-situ microscope inside of a bioreactor. A cell cluster is a group of one or more cells that are very close to each other, almost overlapping. The new algorithm combines a contour based segmentation approach with a region based segmentation approach. First, seeds are selected only in the background. To this end, image contours and the first and second moments of the pixelspsila intensity values in the background and in the cell clusters are evaluated. The moments are estimated from the histogram of the pixelspsila intensity values by applying a Maximum-Likelihood estimator. Following, the background region is extracted by region growing from the selected seeds. Finally, the segmented regions of the cell clusters are those image regions which do not belong to the previously extracted background region. Experimental results show an improvement of 33.33% in the reliability and an improvement of 55.1% in the accuracy of the cell cluster segmentation results.
Keywords :
bioreactors; cellular biophysics; image segmentation; maximum likelihood estimation; medical image processing; pattern clustering; statistical analysis; bioreactor; cell clusters; image contours; image segmentation; in-situ microscope; maximum-likelihood estimator; pixel; second moments; static image; Automatic control; Biomedical engineering; Bioreactors; Chemistry; Clustering algorithms; Histograms; Image segmentation; Maximum likelihood estimation; Optical microscopy; Pixel; Biomedical engineering; biomedical image processing; biomedical microscopy; biomedical monitoring; biomedical optical imaging; cell cluster segmentation; image segmentation; in-situ microscopy;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Electrical Engineering, Computing Science and Automatic Control, 2008. CCE 2008. 5th International Conference on
Conference_Location :
Mexico City
Print_ISBN :
978-1-4244-2498-6
Electronic_ISBN :
978-1-4244-2499-3
Type :
conf
DOI :
10.1109/ICEEE.2008.4723393
Filename :
4723393
Link To Document :
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