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Clustering and Cross-talk in a Yeast Functional Interaction Network
2006
2006 IEEE Symposium on Computational Intelligence and Bioinformatics and Computational Biology
Many different clustering algorithms have been applied to biological networks, with varying degrees of success. The output of a clustering algorithm may be hard to interpret in biological terms because such networks are often large and highly interconnected, with structural and functional modules overlapping to varying degrees. In this paper we describe an evolutionary network clustering algorithm specifically designed for the analysis of large, complex biological networks. It identifies
doi:10.1109/cibcb.2006.330983
dblp:conf/cibcb/HallinanW06
fatcat:nps5wigqebcnffngs5fqfuwsmq