DocumentCode
1243712
Title
3-D aggregated object detection and labeling from multivariate confocal microscopy images: a model validation approach
Author
Wang, Juhui ; Trubuil, Alain ; Graffigne, Christine ; Kaeffer, Bertrand
Author_Institution
Biometrics & Artificial Intelligence Labs., INRA, Jouy En Josas, France
Volume
33
Issue
4
fYear
2003
Firstpage
572
Lastpage
581
Abstract
One essential assumption used in object detection and labeling by imaging is that the photometric properties of the object are homogeneous. This homogeneousness requirement is often violated in microscopy imaging. Classical methods are usually of high computational cost and fail to give a stable solution. This paper presents a low computational complexity and robust method for three-dimensional (3-D) biological object detection and labeling. The developed approach is based on a statistical, nonparametric framework. Image is first divided into regular nonoverlapped regions and each region is evaluated according to a general photometric variability model. The regions not consistent with this model are considered as aberration in the data and excluded from the analysis procedure. Simultaneously, the interior parts of the object are detected, they correspond to regions where the supposed model is valid. In the second stage, the valid regions from a same object are merged together depending on a set of hypotheses. These hypotheses are generated by taking into account photometric and geometric properties of objects of interest and the merging is achieved according to an iterative algorithm. The approach has been applied in investigations of spatial distribution of nuclei within colonic glands of rats observed with the help of confocal fluorescence microscopy.
Keywords
biology computing; computational complexity; image segmentation; merging; microscopy; nonparametric statistics; object detection; 3D aggregated object detection; computational complexity; confocal fluorescence microscopy; geometric properties; image region; iterative algorithm; labeling; merging; model validation approach; multivariate confocal microscopy images; nonparametric framework; photometric properties; photometric variability model; regular nonoverlapped regions; three-dimensional biological object detection; Biological system modeling; Computational complexity; Computational efficiency; Iterative algorithms; Labeling; Merging; Microscopy; Object detection; Photometry; Robustness;
fLanguage
English
Journal_Title
Systems, Man, and Cybernetics, Part B: Cybernetics, IEEE Transactions on
Publisher
ieee
ISSN
1083-4419
Type
jour
DOI
10.1109/TSMCB.2003.814306
Filename
1213550
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