Spectral Methods for Cancer Classification using Microarray Data

Citations

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4
Citations

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6

초록

In this paper we present a novel method based on spectral bipartitioning, traditionally used for finding min-cuts in graphs, for classification of cancer using microarray data. Our method is applied to five publicly available datasets of acute leukemia, colon cancer ovarian cancer prostate cancer and diffuse large B-cell lymphoma, and is shown to have classification accuracy comparable to that of some of the currently known best classification methods for microarray data.

키워드

GENEPREDICTIONPATTERNS
제목
Spectral Methods for Cancer Classification using Microarray Data
저자
Kim, Saejoon
DOI
10.1109/CSO.2009.389
발행일
2009
유형
Proceedings Paper
저널명
INTERNATIONAL JOINT CONFERENCE ON COMPUTATIONAL SCIENCES AND OPTIMIZATION, VOL 1, PROCEEDINGS
페이지
588 ~ 592