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PMID: 21614138 Published · ppublish English Journal Article

An Interactive Java Statistical Image Segmentation System: GemIdent.

Journal of statistical software ·Vol. 30 ·No. 10 ·2009-06-01

Holmes S, Kapelner A, Lee PP

Abstract

Supervised learning can be used to segment/identify regions of interest in images using both color and morphological information. A novel object identification algorithm was developed in Java to locate immune and cancer cells in images of immunohistochemically-stained lymph node tissue from a recent study published by Kohrt et al. (2005). The algorithms are also showing promise in other domains. The success of the method depends heavily on the use of color, the relative homogeneity of object appearance and on interactivity. As is often the case in segmentation, an algorithm specifically tailored to the application works better than using broader methods that work passably well on any problem. Our main innovation is the interactive feature extraction from color images. We also enable the user to improve the classification with an interactive visualization system. This is then coupled with the statistical learning algorithms and intensive feedback from the user over many classification-correction iterations, resulting in a highly accurate and user-friendly solution. The system ultimately provides the locations of every cell recognized in the entire tissue in a text file tailored to be easily imported into R (Ihaka and Gentleman 1996; R Development Core Team 2009) for further statistical analyses. This data is invaluable in the study of spatial and multidimensional relationships between cell populations and tumor structure. This system is available at http://www.GemIdent.com/ together with three demonstration videos and a manual.

Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Holmes Susan
Department of Statistics Sequoia Hall Stanford CA 94305, United States of America [email protected].
Kapelner Adam
Lee Peter P
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Article Info
Journal
Journal of statistical software
Abbr.
J Stat Softw
ISSN
1548-7660
Published
2009-06-01
Language
English
Region
United States
NLM ID
101307056
PMCID
PMC3100170
Grants
NIGMS NIH HHS · R01 GM086884 · United States
NIGMS NIH HHS · R01 GM086884-02 · United States
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