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Keywords
(5)
Inverse Problem
Optimal Algorithm
Template Matching
Tracking System
Stem Cell
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Watershed deconvolution for cell segmentation
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Watershed deconvolution for cell segmentation
(
Citations: 3
)
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Nezamoddin N. Kachouie
,
Paul Fieguth
,
Eric Jervis
Cell segmentation and/or localization is the first stage of a (semi)automatic tracking system. We addressed the cell localization problem in our previous work where we characterized a typical blood
stem cell
in a microscopic image as an approximately circular object with dark interior and bright boundary. We also addressed the modelling of adjacent and dividing cells in our previous work as a deconvolution method to model individual blood
stem cell
as well as adjacent and dividing blood stem cells where an optimization algorithm was combined with a
template matching
method to segment cell regions and locate the cell centers. Our previous cell deconvolution method is capable of modelling different cell types with changes in the model parameters. However in cases where either a complex parameterized shape is needed to model a specific cell type, or in place of cell center localization, an exact cell segmentation is needed, this method will not be effective. In this paper we propose a method to achieve cell boundary segmentation. Considering cell segmentation as an inverse problem, we assume that cell centers are located in advance. Then, the cell segmentation will be solved by finding cell regions for optimal representation of cell centers while a
template matching
method is effectively employed to localize cell
Conference:
Annual International Conference of the IEEE Engineering in Medicine and Biology Society - EMBC
, pp. 375-378, 2008
DOI:
10.1109/IEMBS.2008.4649168
Cumulative
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Citation Context
(1)
...In last years a lot of methods for the segmentation of cell images have been developed [1],[2],[3],[
4
],[5]...
Jaroslaw Goclawski
,
et al.
A segmentation method for microscope images of BY2 tobacco cells in su...
References
(9)
Shape-based image indexing and retrieval for diagnostic pathology
(
Citations: 14
)
Dorin Comaniciu
,
P. Meer
,
D. Foran
Conference:
International Conference on Pattern Recognition - ICPR
, vol. 1, pp. 902-904 vol.1, 1998
Cell Image Segmentation for Diagnostic Pathology
(
Citations: 22
)
Dorin Comaniciu
,
Peter Meer
Quantitative microscopic image analysis by Active Contours
(
Citations: 10
)
V. Meas-yedid
,
F. Cloppet
,
A. Roumier
,
A. Alcover
,
J C Olivo-marin
,
G. Stamon
Minimum error thresholding
(
Citations: 518
)
Josef Kittler
,
John Illingworth
Journal:
Pattern Recognition - PR
, vol. 19, no. 1, pp. 41-47, 1986
A Threshold Selection Method from Gray-Level Histograms
(
Citations: 4300
)
N. Otsu
Journal:
IEEE Transactions on Systems, Man and Cybernetics, Part A: Systems and Humans - TSMCA
, vol. 9, no. 1, pp. 62-66, 1979
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Citations
(3)
An improved watershed algorithm based on multi-scale gradient and distance transformation
(
Citations: 1
)
Yinghong Liu
,
Qingjie Zhao
Conference:
Congress on Image and Signal Processing - CISP
, 2010
A segmentation method for microscope images of BY2 tobacco cells in suspension cultures
Jaroslaw Goclawski
,
Joanna Sekulska-Nalewajko
,
Patryk Aniol
Published in 2010.
Cell Segmentation Using Ellipse Curve Segmentation and Classification
Xiaomin Li
,
Yuanyuan Wang
,
Yinhui Deng
,
Jinhua Yu
Conference:
International Conference on Information Science and Engineering - ICISE
, 2009