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A cube framework for incorporating inter-gene information into biological data mining

Authors
Lin, Kuan-mingKang, JaewooShin, HanjunLee, Jusang
Issue Date
2009
Publisher
INDERSCIENCE ENTERPRISES LTD
Keywords
intergene analysis; cube framework; TSP; second-order correlation; data mining; bioinformatics
Citation
INTERNATIONAL JOURNAL OF DATA MINING AND BIOINFORMATICS, v.3, no.1, pp.3 - 22
Indexed
SCIE
SCOPUS
Journal Title
INTERNATIONAL JOURNAL OF DATA MINING AND BIOINFORMATICS
Volume
3
Number
1
Start Page
3
End Page
22
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/122087
DOI
10.1504/IJDMB.2009.023881
ISSN
1748-5673
Abstract
Large volumes of microarray data are registered daily in public repositories such as SMD (Belkin and Niyogi, 2003) and GEO (Ashburner et al., 2000). Such repositories have quickly become a community resource. However, due to the inherent heterogeneity of the microarray experiments, the data generated from different experiments could not be directly integrated and hence the resources have not been fully utilised. To address this problem, we propose a new microarray integration framework that achieves high-quality integration through exploiting invariant features such as relative information among genes. We also show how the proposed approach generalises the previous frameworks.
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