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Discovering biomarkers from gene expression data for predicting cancer subgroups using neural networks and relational fuzzy clustering

79

Citations

27

References

2007

Year

Abstract

Although the proposed method is tested on a SRBCT data set, it is quite general and can be applied to other cancer data sets. Our scheme takes into account the interaction between genes as well as that between genes and the tool and thus is able find a very small set and can discover novel genes. Our findings suggest the possibility of developing specialized microarray chips or use of real-time qPCR assays or antibody based methods such as ELISA and western blot analysis for an easy and low cost diagnosis of the subgroups.

References

YearCitations

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