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Integrative Clustering by Nonnegative Matrix Factorization Can Reveal Coherent Functional Groups From Gene Profile Data
2015
IEEE journal of biomedical and health informatics
Recent developments in molecular biology and techniques for genome-wide data acquisition have resulted in abundance of data to profile genes and predict their function. These data sets may come from diverse sources and it is an open question how to commonly address them and fuse them into a joint prediction model. A prevailing technique to identify groups of related genes that exhibit similar profiles is profile-based clustering. Cluster inference may benefit from consensus across different
doi:10.1109/jbhi.2014.2316508
pmid:24733033
fatcat:ve2p32s2wbg6zncrkoggg3w4eq