Publication | Open Access
A consensus-based model for global optimization and its mean-field limit
142
Citations
40
References
2016
Year
Mathematical ProgrammingLarge-scale Global OptimizationEngineeringSwarm DynamicConsensus-based ModelConsensus Formation ModelsSi ModelOperations ResearchPde-constrained OptimizationPde AnalysisUncertainty QuantificationSystems EngineeringStochastic Diffusion SearchContinuous OptimizationDistributed Constraint OptimizationComputer ScienceOptimization ProblemNetworked SwarmSwarm RoboticsDynamic Optimization
We introduce a novel first-order stochastic swarm intelligence (SI) model in the spirit of consensus formation models, namely a consensus-based optimization (CBO) algorithm, which may be used for the global optimization of a function in multiple dimensions. The CBO algorithm allows for passage to the mean-field limit, which results in a nonstandard, nonlocal, degenerate parabolic partial differential equation (PDE). Exploiting tools from PDE analysis we provide convergence results that help to understand the asymptotic behavior of the SI model. We further present numerical investigations underlining the feasibility of our approach.
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