Variable neighborhood search for reverse engineering of gene regulatory networks
Charles Nicholson1, Leslie Goodwin1, Corey Clark2
1School of Industrial and Systems Engineering, University of Oklahoma, Norman, OK, United States.
Abstract:
A new search heuristic, Divided Neighborhood Exploration Search, designed to be used with inference algorithms such as Bayesian networks to improve on the reverse engineering of gene regulatory networks is presented. The approach systematically moves through the search space to find topologies representative of gene regulatory networks that are more likely to explain microarray data. In empirical testing it is demonstrated that the novel method is superior to the widely employed greedy search techniques in both the quality of the inferred networks and computational time.
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